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WO2009070065A1 - Appareil de contrôle de roues - Google Patents

Appareil de contrôle de roues Download PDF

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Publication number
WO2009070065A1
WO2009070065A1 PCT/SE2007/001066 SE2007001066W WO2009070065A1 WO 2009070065 A1 WO2009070065 A1 WO 2009070065A1 SE 2007001066 W SE2007001066 W SE 2007001066W WO 2009070065 A1 WO2009070065 A1 WO 2009070065A1
Authority
WO
WIPO (PCT)
Prior art keywords
wheel
modules
tyre
ecu
operable
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/SE2007/001066
Other languages
English (en)
Inventor
Erik CARRESJÖ
Per Hasselberg
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Volvo Truck Corp
Original Assignee
Volvo Lastvagnar AB
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Volvo Lastvagnar AB filed Critical Volvo Lastvagnar AB
Priority to PCT/SE2007/001066 priority Critical patent/WO2009070065A1/fr
Publication of WO2009070065A1 publication Critical patent/WO2009070065A1/fr
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01MTESTING STATIC OR DYNAMIC BALANCE OF MACHINES OR STRUCTURES; TESTING OF STRUCTURES OR APPARATUS, NOT OTHERWISE PROVIDED FOR
    • G01M1/00Testing static or dynamic balance of machines or structures
    • G01M1/14Determining imbalance
    • G01M1/16Determining imbalance by oscillating or rotating the body to be tested
    • G01M1/28Determining imbalance by oscillating or rotating the body to be tested with special adaptations for determining imbalance of the body in situ, e.g. of vehicle wheels
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C23/00Devices for measuring, signalling, controlling, or distributing tyre pressure or temperature, specially adapted for mounting on vehicles; Arrangement of tyre inflating devices on vehicles, e.g. of pumps or of tanks; Tyre cooling arrangements
    • B60C23/02Signalling devices actuated by tyre pressure
    • B60C23/04Signalling devices actuated by tyre pressure mounted on the wheel or tyre
    • B60C23/0408Signalling devices actuated by tyre pressure mounted on the wheel or tyre transmitting the signals by non-mechanical means from the wheel or tyre to a vehicle body mounted receiver
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C23/00Devices for measuring, signalling, controlling, or distributing tyre pressure or temperature, specially adapted for mounting on vehicles; Arrangement of tyre inflating devices on vehicles, e.g. of pumps or of tanks; Tyre cooling arrangements
    • B60C23/06Signalling devices actuated by deformation of the tyre, e.g. tyre mounted deformation sensors or indirect determination of tyre deformation based on wheel speed, wheel-centre to ground distance or inclination of wheel axle
    • B60C23/061Signalling devices actuated by deformation of the tyre, e.g. tyre mounted deformation sensors or indirect determination of tyre deformation based on wheel speed, wheel-centre to ground distance or inclination of wheel axle by monitoring wheel speed
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C23/00Devices for measuring, signalling, controlling, or distributing tyre pressure or temperature, specially adapted for mounting on vehicles; Arrangement of tyre inflating devices on vehicles, e.g. of pumps or of tanks; Tyre cooling arrangements
    • B60C23/06Signalling devices actuated by deformation of the tyre, e.g. tyre mounted deformation sensors or indirect determination of tyre deformation based on wheel speed, wheel-centre to ground distance or inclination of wheel axle
    • B60C23/061Signalling devices actuated by deformation of the tyre, e.g. tyre mounted deformation sensors or indirect determination of tyre deformation based on wheel speed, wheel-centre to ground distance or inclination of wheel axle by monitoring wheel speed
    • B60C23/062Frequency spectrum analysis of wheel speed signals, e.g. using Fourier transformation
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01MTESTING STATIC OR DYNAMIC BALANCE OF MACHINES OR STRUCTURES; TESTING OF STRUCTURES OR APPARATUS, NOT OTHERWISE PROVIDED FOR
    • G01M17/00Testing of vehicles
    • G01M17/007Wheeled or endless-tracked vehicles
    • G01M17/013Wheels

Definitions

  • the present invention relates to apparatus operable to monitor characteristics of wheels and/or their associated tyres; for example, to an apparatus for monitoring characteristics of wheels and/or their associated tyres and conveying information indicative of these aforementioned characteristics via a communication link to an electronic control unit (ECU) and/or control system, for example for user-display.
  • ECU electronice control unit
  • the present invention also concerns methods of monitoring characteristics of wheels and/or their associated tyres.
  • the present invention also relates to software and software products executable on computing hardware for executing these aforesaid methods.
  • Tyres also known as "tires" in American-English, are critical components in road vehicles. Contemporary tyres not only ensure adhesion of their associated road vehicles to road surfaces in widely varying weather conditions, but also perform vibration and shock isolation functions. Moreover, during their operating lifetime, tyres are required to survive potentially up to several thousand or even millions of deformation cycles without exhibiting work- hardening failure, and yet exhibit a relatively modest degree of energy dissipation therein as a result of viscous dampening effects. As an additional operating requirement, contemporary tyres need to be robust against scuffing and objects impacting thereonto.
  • tubeless tyres are required to robustly grip onto their associated wheel hubs even when subject to considerable stresses, for example during emergency braking.
  • the tyres are constructed from elastic synthetic rubber, natural rubber and/or plastics material reinforced by meshes of metal wire, carbon fibre and similar. Modern tyres are therefore to be respected as highly optimized and advanced products.
  • Tyre failure during operation can potentially result in immobilization of an associated vehicle or even accident.
  • tyres operated at unsuitable pressures can adversely influence associated vehicle fuel economy; fuel economy is becoming increasingly pertinent in view of increases in fuel costs as well as in view of carbon dioxide generation and its perceived impact on World climate change.
  • a pneumatic sensor device suitable for use with a tyre of a vehicle for detecting tyre pressure and generating corresponding tyre pressure information.
  • the device includes a transmitter for transmitting the pressure information together with an identification code for distinguishing the sensor device from other such sensor devices simultaneously included on other wheels of the vehicle.
  • a control unit of the vehicle is operable to receive the transmitted pressure information and its associated identification code. The received pressure information is stored in a memory of the control unit.
  • the control unit is operable to raise an alarm in an event that tyre pressure is not correct pursuant to predefined criteria.
  • tyre monitors are described which are mounted adjacent to tyres near their tyre inflation valve stems.
  • the tyre monitors include sensors to measure pressure, temperature and rotation direction of their respective tyres.
  • the monitors are operable to communicate measured sensor signals via transmitters to their respective receiver for subsequent processing and eventual presentation on a display unit.
  • a vehicle mounted controller in communication with the receiver is operable to determine whether pressure information is associated with a front tyre or a rear tyre based on the strength of the wireless signal received at the receiver, and whether pressure data is associated with a right tyre or left tyre based on associated rotation direction data.
  • a technical problem addressed by the present invention is therefore to provide a more advanced wheel and tyre monitoring apparatus.
  • the present invention seeks to provide such wheel and tyre monitoring apparatus in a manner better suited, for example, to the requirements of commercial fleet operators; such fleet operators can, for example, include heavy commercial vehicle fleet operators, taxi fleet operators, and automobile leasing and hiring enterprises.
  • An object of the present invention is to provide an improved wheel and/or tyre monitoring apparatus which is capable of enhancing safety and reliability of vehicles.
  • a wheel-monitoring apparatus for monitoring operation of at least one wheel of a vehicle, the apparatus including one or more sensor modules operatively mounted to revolve with the at least one wheel, the one or more modules being operatively coupled in communication with a processing arrangement (ECU) of the vehicle, the one or more modules being operable to sense at least one physical parameter of the wheel and to generate at least one corresponding sensor signal for the processing arrangement, the processing arrangement (ECU) being operable to process the at least one sensor signal to compute information indicative of operation of the at least one wheel, the apparatus including a sensor arrangement for sensing an angular orientation ( ⁇ ) of the at least one wheel,
  • the processing arrangement is operable to process the at least one sensor signal in respect of the angular orientation ( ⁇ ) and/or an angular frequency ( ⁇ ) of rotation of said at least one wheel;
  • the one or more modules are operable to sense dynamic changes occurring in the at least one physical parameter within one or more revolutions of the at least one wheel as communicated in the at least one sensor signal to the processing arrangement (ECU) for computing the information indicative of operation of the at least one wheel.
  • the invention is of advantage in that the apparatus is capable of providing enhanced monitoring of operation of the at least one wheel, thereby enhancing safety and reliability, by monitoring wheel characteristics within each revolution of the at least one wheel.
  • the one or more modules include a temperature sensor for sensing a temperature (T mO d) thereat, the one or more modules being operable to communicate a signal indicative of the temperature (T mOd ) to the processing arrangement (ECU) for use in computing the information indicative of operation of the at least one wheel.
  • Monitoring the temperature (T mO d) enables a pressure (P) measured within a tyre or inflated cavity of the at least one wheel to be at least partially corrected for temperature effects when executing computations regarding wheel operation.
  • a warning can be optionally issued by the apparatus.
  • the one or more modules include at least one of: (a) a pressure sensor operable to sense a pressure (P) existing within a tyre or an inflated cavity of the at least one wheel, the one or more modules being operable to communicate a signal indicative of the pressure (P) to the processing arrangement (ECU) for use in computing the information indicative of operation of the at least one wheel; (b) a strain gauge sensor for measuring flexure of the tyre or the inflated cavity of the at least one wheel, the module being operable to communicate a signal indicative of the flexure to the processing arrangement (ECU) for use in computing the information indicative of operation of the at least one wheel;
  • an accelerometer for measuring acceleration (A x , A y , A z ) in at least one axis at a mounting location (L1 , L2, L3; L4) of the one or more modules on the at least one wheel, the one or more modules being operable to communicate a signal indicative of the acceleration (A x , A y , A z ) to the processing arrangement (ECU) for use in computing the information indicative of operation of the at least one wheel; and
  • a magnetic sensor for measuring a magnetic field applied to the one or more modules, the one or more modules being operable to communicate a signal indicative of the applied magnetic field to the processing arrangement (ECU) for use in controlling operation of the apparatus.
  • ECU processing arrangement
  • Such physical parameters have been found to be beneficial to monitor when assessing operation of the at least one wheel.
  • the one or more modules can be equipped with a subset of the options (a) to (d); for example, a module can be provided with only a pressure sensor, or only an accelerometer, or a combination of a pressure sensor and an accelerometer.
  • certain modules are optionally provided with only a single- axis accelerometer, whereas other such modules are provided with triple-axis accelerometers. Other combinations of sensors included within the modules are possible pursuant to the present invention.
  • the accelerometer is a multi-axis accelerometer operable to measure components of acceleration (A x , A y , A z ) in at least one of radial, tangential and transverse axes in respect of rotations of the at least one wheel.
  • the accelerometer is beneficially a silicon micromachined device. Such silicon devices are extremely compact, robust, cost effective and are capable of providing precise and accurate measurement of acceleration.
  • the processing arrangement is operable to apply auto-alignment to one or more sensing axes of the accelerometer to effectively align them to at least one of true radial, tangential and transverse axes in respect of rotations of the at least one wheel.
  • auto-alignment is capable of simplifying installation of the one or more modules by rendering placement of the one or more modules on the at least one wheel less angularly critical.
  • the processing arrangement (ECU) includes an angular resolver for implementing the auto-alignment which is operable to seek during its calibration to null lateral acceleration components and to seek to null tangential acceleration components integrated over one or more complete revolutions of the at least one wheel.
  • an angular resolver for implementing the auto-alignment which is operable to seek during its calibration to null lateral acceleration components and to seek to null tangential acceleration components integrated over one or more complete revolutions of the at least one wheel.
  • acceleration measurements can be implemented for a part of a revolution, for example a half-revolution, of the at least one wheel and the measurements for a remaining half-revolution of the at least one wheel synthesized therefrom for integration purposes; such an implementation is to be construed to mean integration for a complete revolution of the wheel.
  • the processing arrangement (ECU) is operable to calibrate its auto-alignment during at least one of:
  • the one or more modules are mounted at one or more locations (L1 , L2, L3, L4) on the at least one wheel, the one or more locations including: (a) on a hub of the at least one wheel substantially at an axis (B-B) of rotation of the at least one wheel;
  • Mounting the one or more modules at these different locations is of benefit in that certain types of defect in the at least one wheel are more reliably sensed when the one or more modules are mounted at specific favourable locations. For example, wheel imbalance is better sensed with a module mounted on the wheel near its hub, whereas flexural characteristics of the tyre or inflatable cavity are better sensed with a module attached to a side wall of the tyre or flexible inflatable cavity. More optionally, a module is mounted to an inside rim of a tyre, adjacent to its treads.
  • the one or more modules include at least one wireless interface for communicating between the one or more modules and the processing arrangement (ECU), the one or more modules forming a wireless network wherein certain of the one or more modules are operable to function as one or more relay nodes for conveying signal exchange between the processing arrangement (ECU) and other of the one or more modules.
  • ECU processing arrangement
  • modules mounted in wireless shadows where they are occluded by conductive elements are operable, via the network, to provide their measured signals to the processing arrangement.
  • the one or more modules include at least one wireless interface for communicating between the one or more modules and the processing arrangement (ECU), the one or more modules forming a wireless network which is dynamically reconfigurable for conveying signals between the one or more modules and the processing arrangement (ECU).
  • ECU processing arrangement
  • An ability exhibited by the network to dynamically reconfigure itself is of advantage in that the apparatus is able to continue operating with reduced monitoring functionality in an event of one or more of the modules ceasing to provide their respective signals to the processing arrangement (ECU).
  • Such a reconfigurable property of the network not only renders the apparatus more robust, but also allows the apparatus to adapt when additional modules are added to the apparatus.
  • the one or more modules include at least one wireless interface for communicating between the one or more modules and the processing arrangement (ECU), the one or more modules forming a wireless network which is dynamically reconfigurable in response to the one or more modules changing between functional and non-functional states in operation, for enabling the apparatus to continue to function with modified functionality in respect of monitoring operation of the at least one wheel.
  • ECU processing arrangement
  • the one or more modules are each provided with a corresponding identification code (ID) for communicating to the processing arrangement (ECU) so that the processing arrangement (ECU) is able to recognize from which module corresponding signal data has been sent.
  • ID identification code
  • Use of such identification codes (ID) enables one or more wheels which have developed problems, or have been found to have potential problems, to be clearly identified and a corresponding unambiguous informative warning sent to the driver of the vehicle and/or to a service facility responsible for addressing such problems or potential problems.
  • the one or more modules include one or more sources of electrical power for energizing the one or more modules, the one or more sources of electrical power including at least one rechargeable battery and one or more generators for recharging the one or more sources, the one or more generators deriving energy from rotations of the at least one wheel.
  • the one or more modules rotating with their respective wheels, providing electrical slip rings or inductive electrical couplings represents a considerable practical complication, especially in view of regions around wheels of contemporary wheels already being heavily populated with other components such as ABS rotation sensors, disc brakes, suspension components and so forth.
  • local sources of power can become exhausted unless recharged or replaced; inclusion of the one or more generators are capable of addressing such problems.
  • the one or more generators are at least one of:
  • an electromagnetic generator based upon movement of a mass operable to move in response to rotations of the at least one wheel; and (b) a piezo-electric generator based upon force generated by a mass operable to apply a varying force to a piezo-electric device in response to rotations of the at least one wheel.
  • the wheel-monitoring apparatus is optionally implemented such that the one or more modules are radially distributed around the at least one wheel for sensing operation of the at least one wheel at a plurality of angular locations therearound.
  • At least one of the one or more modules optionally includes a wireless interface coupled to an electrically conducting mesh of a tyre of the at least one wheel, the conducting mesh being operable to function as a wireless patch antenna for the at least one module for supporting wireless communication between the at least module and the processing arrangement (ECU).
  • ECU processing arrangement
  • the apparatus includes a display coupled in communication with the processing arrangement (ECU) for presenting information to a driver of the vehicle indicating at least one of:
  • the display is however not limited to displaying such information as in (a) to (e) and is optionally capable of presenting other analysis information provided from the processing arrangement, for example a time record of changes in one or more wheel parameters as sensed by the one or more modules; for example, the display can beneficially present a graph representing tyre pressure as a function of time, a list describing a configuration of modules presently coupled in communication with the processing arrangement, and so forth.
  • the processing arrangement (ECU) is provided with a wireless interface for communicating with a service facility remote from the vehicle, the processing arrangement (ECU) being operable to communicate information indicative of functionality of the at least one wheel, the information being indicative of one or more faults or potential faults associated with the at least one wheel as computed from signals provided from the one or more modules, and for receiving instructions from the service facility regarding actions to be taken for addressing the one or more faults or potential faults.
  • the wheel-monitoring apparatus further comprises a global positioning unit for generating a signal indicative of a spatial position of the vehicle, and for conveying information via the processing arrangement (ECU) to the wireless interface to the service facility indicative of the spatial position of the vehicle.
  • ECU processing arrangement
  • the modules themselves are provided with local computing capability.
  • the one or more modules include a processor coupled to an associated data memory, the one or more modules via their pressure sensors being operable to record a pressure (P) within a tyre or inflated cavity of the at least one wheel in relation to time (t) as determined by a clock arrangement (CLK) included within the one or more modules, and the processor is operable to monitor changes in the pressure (P) with time (t) to identify one or more of:
  • Such processing is useful for detecting events, for example unauthorized swapping of tyres or tampering events, occurring when an associated wheel is temporarily dismantled from the vehicle and outside a wireless communication range of the processing arrangement (ECU). More optionally, in the wheel-monitoring apparatus, the one or modules are operable to communicate to the processing arrangement a message that sensed data pertaining to the tyre or inflated cavity of the at least one wheel being potentially unreliable due to the abrupt depressurization. Generation of such a message is useful for enhancing safety; unauthorized or unintentional swapping of a tyre or wheel of the vehicle can potentially contribute to safety risks or degraded reliability about which the driver of the vehicle is beneficially informed.
  • events for example unauthorized swapping of tyres or tampering events, occurring when an associated wheel is temporarily dismantled from the vehicle and outside a wireless communication range of the processing arrangement (ECU).
  • the one or modules are operable to communicate to the processing arrangement a message that sensed data
  • the one or more modules are operable to monitor the pressure (P), irrespective of whether or not the one or more modules are in their hibernating energy-saving state.
  • Such operation renders tampering executed on the vehicle when in a parked state detectable.
  • the one or more modules are operable to switch between an active state and an energy-saving hibernating state.
  • the hibernating state is of benefit in that it prolongs a period of use of the batteries associated with the one or more modules and renders frequent recharging of the batteries less necessary thereby prolonging their operating lifetime.
  • Rechargeable batteries are only capable of withstanding a finite number of discharge cycles before their electrical storage capacity deteriorates.
  • the one or more modules are operable to switch between the active state and the hibernating state in response to one or more instructions communicated by wireless to the one or more modules.
  • wireless instructions By using such wireless instructions, it is feasible to force all the one or more modules into their hibernating state promptly after, for example, parking the vehicle and switching-off its combustion engine; the hibernating state conserves energy in batteries of the one or more modules when the vehicle is not in use.
  • a single wireless instruction is capable of waking up the one or more modules from their hibernating state when the vehicle is started again.
  • the one or more modules are themselves capable of autonomously switching to their hibernating state to conserve their batteries.
  • the one or more modules are operable to switch from the active state to the energy-saving hibernating state in response to a period of time (t) in which the one or more modules detect one or more of:
  • the one or modules are beneficially capable of automatically and autonomously returning to their active state without the processing arrangement needing to send any explicit instructions.
  • the one or more modules are operable to switch from the energy-saving hibernating state to the active state in response to the one or more modules detecting one or more of:
  • the one or more modules are beneficially operable to briefly switch momentarily to their active state to identify whether the processing arrangement is issuing a active state command and/or physical parameters such as pressure and/or acceleration have began to fluctuate in a manner indicative that the at lest one wheel is in motion.
  • the at least one physical parameter includes at least one of:
  • an acceleration (A x , A y , A z ) as measured substantially at the one or more modules; wherein the processing arrangement (ECU) is operable to apply an harmonic analysis to signals corresponding the pressure (P) and/or the acceleration (A x , A y , A 2 ), the harmonic analysis being operable to identify harmonic components in respect of angular frequency ( ⁇ ) corresponding to a temporal rate of change of the angular orientation ( ⁇ ) of the at least one wheel.
  • the harmonic analysis applies computation to at least one of: (a) magnitudes of the harmonic components;
  • the processing arrangement is operable to employ the harmonic analysis for identifying an occurrence of at least one of: (a) the at least one wheel is imbalanced;
  • a tyre or an inflated cavity of the at least one wheel is oval or has a higher-order lobed distortion;
  • the at least one wheel has a mass imbalance therein;
  • wheel bearings associated with an axle rotationally supporting the at least one wheel in operation are vibrating or rattling in an unexpected manner indicative of a fault, or a potentially developing fault.
  • the processing arrangement is not limited to detecting problems (a) to (j) above and is capable of detecting other problems, for example rattling noises in bearings associated with an axle of the wheel as manifested in acceleration or acoustic sensed signals at the one or more modules.
  • the processing arrangement is operable to perform the analysis of the harmonic components by applying:
  • the processing arrangement (ECU) is provided with a predetermined list of types of wheels susceptible to being employed with the vehicle and associated expected characteristics, and the one or more modules are operable to communicate information to the processing arrangement (ECU) regarding an identification of a type of wheel onto which the one or more modules are mounted, and the processing arrangement (ECU) is operable to compare measured signals provided from the one or more modules with signals that would be expected from the one or more modules as simulated from the predetermined list, and wherein a disparity between the measured signals and the simulated signals is indicative of one or more faults or potential faults.
  • Such an approach is susceptible to avoiding a need to perform an harmonic analysis and therefore is computationally less intensive for the processing arrangement.
  • the one or more modules include one or more processors therein, and computation effort executed in operation for identifying one or more faults or potential faults in the at least one wheel is shared between the one or more processors and the processing arrangement (ECU).
  • the processing arrangement In order that the processing arrangement is operable to perform a correct monitoring of wheels of the vehicle, it requires a recent list or record of modules present on the wheels. In order to compile such a list or record in the wheel-monitoring apparatus, the processing arrangement (ECU) is operable to send a message requesting the one or more modules to respond back to the processing arrangement (ECU) for declaring their identification codes
  • ID to the processing arrangement (ECU) for enabling the processing arrangement to identify its configuration of one or more modules, and for identifying any changes in the configuration of one or more modules occurring.
  • the wheel-monitoring apparatus is implemented such that the one or more modules are operable to also respond with data indicative of expected characteristics of the at least one wheel to which the one of more modules are mounted. Operational integrity the wheel-monitoring apparatus is desirable so that detection of problems and potential problems is as effective as possible.
  • the processing arrangement ECU is operable to compare rotation measurements from the sensor arrangement for sensing the angular orientation (0) of the at least one wheel against signals supplied from the one or more corresponding modules for checking functional operation of the sensor arrangement and/or the one or more modules.
  • the sensor arrangement is an ABS wheel angular orientation sensor associated with brakes of the vehicle.
  • a method as defined in appended claim 38 there is provided a method for monitoring operation of at least one wheel of a vehicle using a wheel-monitoring apparatus pursuant to the first aspect of the invention, the apparatus including one or more sensor modules operatively mounted to revolve with the at least one wheel, the one or more modules being operatively couplable in communication with a processing arrangement (ECU) of the vehicle,
  • ECU processing arrangement
  • the method including steps of:
  • the processing arrangement is operable to process the at least one sensor signal in respect of the angular orientation (#) and/or an angular frequency ( ⁇ ) of rotation of said at least one wheel;
  • the at least one module is operable to sense dynamic changes occurring in the at least one physical parameter within one or more revolutions of the at least one wheel as communicated in the at least one sensor signal to the processing arrangement (ECU) for computing the information indicative of operation of the at least one wheel.
  • ECU processing arrangement
  • the method includes steps of sensing a temperature (T mO d) of the one or more modules using a temperature sensor thereat, and communicating from the one or more modules a signal indicative of the temperature (T mod ) to the processing arrangement (ECU) for use in computing the information indicative of operation of the at least one wheel.
  • T mO d a temperature of the one or more modules using a temperature sensor thereat
  • ECU processing arrangement
  • the one or more modules include at least one of: (a) a pressure sensor operable to sense a pressure (P) existing within a tyre or an inflated cavity of the at least one wheel, the one or more modules being operable to communicate a signal indicative of the pressure (P) to the processing arrangement (ECU) for use in computing the information indicative of operation of the at least one wheel; (b) a strain gauge sensor for measuring flexure of the tyre or the inflated cavity of the at least one wheel, the one or more modules being operable to communicate a signal indicative of the flexure to the processing arrangement (ECU) for use in computing the information indicative of operation of the at least one wheel;
  • an accelerometer for measuring acceleration (A x , A y , A z ) in at least one axis at a mounting location (L1 , L2, L3, L4) of the one or more modules on the at least one wheel, the one or more modules being operable to communicate a signal indicative of the acceleration [A x , A y , A z ) to the processing arrangement (ECU) for use in computing the information indicative of operation of the at least one wheel;
  • a magnetic sensor for measuring a magnetic field applied to the one or more modules, the one or more modules being operable to communicate a signal indicative of the applied magnetic field to the processing arrangement (ECU) for use in controlling operation of the apparatus.
  • the accelerometer is a multi-axis accelerometer operable to measure components of acceleration (A x , A y , A 2 ) in at least one of radial, tangential and transverse axes in respect of rotations of the at least one wheel.
  • the accelerometer is a silicon micromachined (MEMS) device.
  • the method includes a step of applying auto-alignment using the processing arrangement (ECU) to one or more sensing axes of the accelerometer to effectively align them to at least one of true radial, tangential and transverse axes in respect of rotations of the at least one wheel.
  • the processing arrangement (ECU) includes an angular resolver for implementing the auto-alignment which is operable to seek during its calibration to null lateral acceleration components and to seek to null tangential acceleration components integrated over one or more complete revolutions of the at least one wheel.
  • the processing arrangement (ECU) is operable to calibrate its auto-alignment during at least one of: (a) a calibration procedure when configuring the processing arrangement (ECU) in relation to its at least one module; and (b) in a dynamic manner during driving of the vehicle.
  • the one or more modules are mounted at one or more locations (L1 , L2, L3, L4) on the at least one wheel, the one or more locations including:
  • the one or more modules include at least one wireless interface for communicating between the one or more modules and the processing arrangement (ECU), the one or more modules forming a wireless network wherein certain of the one or more modules are operable to function as one or more relay nodes for conveying signal exchange between the processing arrangement (ECU) and other of the one or more modules.
  • the one or more modules include at least one wireless interface for communicating between the one or more modules and the processing arrangement (ECU), the one or modules forming a wireless network which is dynamically reconfigurable for conveying signals between the one or more modules and the processing arrangement (ECU).
  • the one or more modules include at least one wireless interface for communicating between the one or more modules and the processing arrangement (ECU), the one or more modules forming a wireless network which is dynamically reconfigurable in response to the one or more modules changing between functional and non-functional states in operation, for enabling the apparatus to continue functioning with modified functionality when monitoring operation of the at least one wheel.
  • ECU processing arrangement
  • the one or more modules are each provided with a corresponding identification code (ID) for communicating to the processing arrangement (ECU) so that the processing arrangement (ECU) is able to recognize from which module corresponding signal data has been sent.
  • ID identification code
  • the one or more modules include one or more sources of electrical power for energizing the one or more modules, the one or more sources of electrical power including at least one rechargeable battery and one or more generators for recharging the one or more sources, the one or more generators deriving energy from rotations of the at least one wheel.
  • the one or more generators are beneficially at least one of: (a) an electromagnetic generator based upon movement of a mass operable to move in response to rotations of the at least one wheel; and (b) a piezo-electric generator based upon force generated by a mass operable to apply a varying force to a piezo-electric device in response to rotations of the at least one wheel.
  • the method is implemented so that the one or more modules are radially distributed around the at least one wheel for sensing operation of the at least one wheel at a plurality of angular locations therearound. . .
  • At least one of the one or more modules includes a wireless interface coupled to an electrically conducting mesh of a tyre of the at least one wheel, the conducting mesh being operable to function as a wireless patch antenna for the at least one of the one or more modules for supporting wireless communication between the at least one of the one or more modules and the processing arrangement (ECU).
  • ECU processing arrangement
  • the apparatus when implementing the method, includes a display coupled in communication with the processing arrangement (ECU) for presenting information to a driver of the vehicle indicating at least one of: (a) an operating status of the one or more modules;
  • the processing arrangement (ECU) when implementing the method, is provided with a wireless interface for communicating with a service facility remote from the vehicle, the processing arrangement (ECU) being operable to communicate information indicative of functionality of the at least one wheel, the information being indicative of one or more faults or potential faults associated with the at least one wheel as computed from signals provided from the one or more modules, and for receiving instructions from the service facility regarding actions for addressing the one or more faults or potential faults.
  • a global positioning unit for generating a signal indicative of a spatial position of the vehicle, and for conveying information via the processing arrangement (ECU) to the wireless interface to the service facility indicative of the spatial position of the vehicle.
  • ECU processing arrangement
  • the one or more modules include a processor coupled to an associated data memory, the one or more modules via their pressure sensors being operable to record a pressure (P) within a tyre or inflatable cavity of the at least one wheel in relation to time (t) as determined by a clock arrangement (CLK) included within the one or more modules, and the processor is operable to monitor changes in the pressure (P) with time (t) to identify one or more of: (a) a gradual leak of air or gas from the tyre or inflatable cavity indicative of a need to recharge the tyre or inflatable cavity with air or gas;
  • CLK clock arrangement
  • the one or more modules are operable to communicate to the processing arrangement a message that sensed data pertaining to the tyre or inflatable cavity of the at least one wheel being potentially unreliable on account of the abrupt depressurization of the tyre or cavity.
  • the one or more modules are operable to monitor the pressure (P), irrespective of whether or not the one or more modules are in their hibernating energy-saving state.
  • the one or more modules are operable to switch between an active state and an energy-saving hibernating state.
  • the one or more modules are operable to switch between the active state and the hibernating state in response to one or more instructions communicated by wireless to the one or more modules.
  • the one or more modules are operable to switch from the active state to the energy-saving hibernating state in response to a period of time (t) in which the one or more modules detect one or more of:
  • the one or more modules are operable to switch from the energy-saving hibernating state to the active state in response to the one or more modules detecting one or more of:
  • the method is implemented such that the at least one physical parameter includes at least one of: - -
  • an acceleration (A x , A y , A 2 ) as measured substantially at the one or more modules; wherein the processing arrangements (ECU) is operable to apply an harmonic analysis to signals corresponding to the pressure (P) and/or the acceleration (A x , A y , A z ), the harmonic analysis being operable to identify harmonic components in respect of angular frequency ( ⁇ ) corresponding to a temporal rate of the angular orientation ( ⁇ 9) of the at least one wheel.
  • the harmonic analysis includes computations pertaining to at least one of:
  • the processing arrangement is operable to employ the harmonic analysis for identifying an occurrence of at least one of:
  • the at least one wheel is loose and wobbling about on its fasteners;
  • a tyre, an inflatable cavity and/or a spring matrix of the at least one wheel has defects in its flexural characteristics;
  • a tyre or an inflatable cavity of the at least one wheel is insufficiently inflated;
  • a tyre or an inflatable cavity of the at least one wheel is over inflated;
  • a tyre or an inflatable cavity of the at least one wheel is oval or has a higher-order lobed distortion;
  • wheel bearings associated with an axle rotationally supporting the at least one wheel in operation are vibrating or rattling in an unexpected manner indicative of a fault, or a potentially developing fault.
  • the processing arrangement is operable to perform the analysis of the harmonic components by applying:
  • the processing arrangement (ECU) is provided with a predetermined list of types of wheel susceptible to being employed with the vehicle and associated expected characteristics, and the one or more modules are operable to communicate information to the processing arrangement (ECU) regarding an identification of a type of wheel onto which the one or more modules are mounted, and the processing arrangement (ECU) is operable to compare measured signals provided from the one or more modules with signals that would be expected from the one or more modules as simulated from the predetermined list, and wherein a disparity between the measured signals and the simulated signals is indicative of one or more faults or potential faults.
  • the one or more modules include one or more processors therein, and computation effort executed in operation for identifying one or more faults or potential faults in the at least one wheel is shared between the one or more processors and the processing arrangement (ECU).
  • the processing arrangement (ECU) is operable to send a message requesting the one or more modules to respond back to the processing arrangement (ECU) for declaring their identification codes (ID) to the processing arrangement (ECU) for enabling the processing arrangement to identify its configuration of one or more modules, and for identifying any changes in the configuration of one or more modules occurring.
  • ID identification codes
  • the one or more modules are operable to also respond with data indicative of expected characteristics of the at least one wheel to which the one of more modules are mounted.
  • the processing arrangement is operable to compare rotation measurements from the sensor arrangement for sensing the angular orientation ( ⁇ ) of the at least one wheel against signals supplied from the one or more corresponding modules for checking functional operation of the sensor arrangement and/or the one or more modules.
  • the sensor arrangement is beneficially an ABS sensor associated with brakes of the vehicle.
  • a vehicle including a wheel- monitoring apparatus pursuant to the first aspect of the invention, the apparatus being operable to monitor operation of at least one wheel of the vehicle.
  • the vehicle is at least one of: a heavy commercial vehicle, a construction vehicle, an automobile, a motorcycle, a scooter, an aircraft, a helicopter, a bicycle.
  • the present invention is susceptible to being adapted for other uses, for example for monitoring a rotor of an electrical wind turbine operable to generate electricity from wind power.
  • a wheel including one or more modules mounted thereonto, the one or more modules operable to function with a wheel-monitoring apparatus pursuant to the first aspect of the invention.
  • a module for mounting onto a wheel operable to function with a wheel-monitoring apparatus pursuant to the first aspect of the invention.
  • a tyre for a vehicle said tyre including a module pursuant to the fifth aspect of the invention.
  • the module is mounted to a side wall of the tyre.
  • a software product recorded on a data carrier, the product being executable on computing hardware for executing a method pursuant to the aforementioned second aspect of the invention.
  • Figure 1 is an illustration of a wheel of a contemporary heavy commercial vehicle
  • Figure 2 is a schematic cross-sectional view of a portion of the wheel of Figure 1 ;
  • Figure 3 is a schematic cross-sectional view of a tyre (tire) of the wheel of Figure 1 ;
  • Figure 4 is a cross-sectional view of a contemporary front wheel assembly of a heavy commercial vehicle
  • Figure 5 is a cross-sectional view of a contemporary rear wheel assembly of a heavy commercial vehicle
  • Figure 6 is a schematic cross-sectional view of the wheel of Figure 1 illustrating potential locations for mounting monitoring modules pursuant to the present invention; the potential locations include hub-mounting at a location L1, hub rim-mounting at a location L2, and in-tyre mounting at a location L3 or L4;
  • Figure 7 is a schematic cross-sectional view of a tyre of the wheel of Figure 1 with its monitoring module mounted at a location L2 on a rim of a hub of the wheel with a wire connection from the module to a patch antenna exposed on the hub;
  • Figure 8 is a schematic cross-sectional view of a tyre of the wheel of Figure 1 with its monitoring module mounted at a location L3 on the tyre, the module being provided with a film antenna wrapped around an edge of the tyre and exposed on an exterior surface of the tyre;
  • Figure 9 is a schematic diagram illustrating spatial movement of a monitoring module mounted on the wheel of Figure 1, together with a representation of a spring suspension together with a representation of forces acting upon the wheel when in operation;
  • Figure 10 is an graph illustrating a general form of acceleration signal obtainable in operation from the monitoring module mounted at the location L3 as shown in Figure 6;
  • Figure 11 is a first embodiment of a wheel- and tyre-monitoring apparatus pursuant to the present invention for use with the wheel of Figure 1, the monitoring apparatus being operable to process acceleration signals;
  • Figure 12 is a second embodiment of a wheel- and tyre-monitoring apparatus pursuant to the present invention for use with the wheel of Figure 1 ; the monitoring apparatus being operable to process pressure signals;
  • Figure 13 is a third embodiment of a wheel- and tyre-monitoring apparatus pursuant to the present invention for use with the wheel of Figure 1, the monitoring apparatus being operable to process both acceleration and pressure signals;
  • Figure 14 is a schematic diagram of a monitoring module operable to be mounted onto the wheel of Figure 1 and to sense operation characteristics of the wheel 10;
  • FIGS 15a to 15e illustrate various alternative network communication topographies for monitoring modules mounted at various location on the wheel of Figures 1 and 6;
  • Figure 16 is a schematic illustration of a wheel monitoring system pursuant to the present invention for a heavy commercial vehicle in conjunction with a remote control facility and service facility;
  • Figure 17 is an illustration of the wheel of Figure 1 provided with a module including an accelerometer, the module and its accelerometer being mounted such that its sensing axes are angularly misaligned with true traverse, radial and tangential axes of the wheel;
  • Figure 18 is a fourth embodiment of a wheel- and tyre-monitoring apparatus pursuant to the present invention for use with the wheel of Figure 17, the monitoring apparatus being operable to process acceleration signals;
  • Figure 19 is an illustration of a wheel including an air-less tyre based upon a spring matrix providing the wheel with elasticity, the wheel being provided with modules suitable for use in implementing a monitoring apparatus pursuant to the present invention.
  • Figure 20 is an illustration of a wheel including a hybrid suspension system comprising an outer spring matrix and an inner inflatable flexible cavity, the outer spring matrix and the inflatable cavity when inflated cooperating to provide the wheel with elasticity, the wheel and its hybrid suspension being provided with modules suitable for use in implementing a monitoring apparatus pursuant to the present invention.
  • Wheel hubs can potentially be swapped between vehicles and be sporadically furnished with new tyres when their existing tyres are deemed to have been worn out.
  • there is a legal requirement to switch between winter tyres and summer tyres such switch between winter tyres and summer tyres is achieved by exchanging wheel hubs rather than removing tyres from their respective hubs.
  • FIG. 1 there is shown in side view a schematic diagram of a wheel of a heavy commercial vehicle.
  • the wheel is indicated generally by 10.
  • the wheel 10 comprises a steel hub indicted by 20 and a tyre (tire) denoted by 30.
  • the tyre 30 is contemporarily often tubeless, namely does not include any separate inner tube.
  • a circular inner flange 40 of the hub 20 includes a circular arrangement of mounting holes 50 for receiving bolts or similar fasteners for attaching the wheel 10 to an axle (not shown in Figure 1) of its associated vehicle.
  • Extending radially outwards from the inner flange 40 is a substantially frusto-conical web 60 having a radial series of circular or elliptical ventilation holes 70 formed therein as illustrated, for example one of these ventilation holes 70 enables access to an air valve 80 in fluid (air) communication with a volume enclosed by the tyre 30 for purposes of inflating or deflating the tyre 30.
  • the frusto-conical web 60 is coupled to a circular rim 90 for receiving the tyre 30.
  • FIG 1 a cross-sectional axis is denoted by A-A and a corresponding cross-sectional view of the wheel 10 is shown in Figure 2 for substantially an upper portion of the wheel 10.
  • the wheel 10 has a general form which has evolved over many years to substantially an optimal implementation for reasons which will now be elucidated.
  • the inner flange 40 is provided with its regularly spaced configuration of mounting holes 50 for mounting the wheel 10 securely using aforementioned bolts or fasteners to an end of a wheel axle 110 of the corresponding vehicle; the wheel axle 110 is operable to rotate about an axis B-B.
  • An excess of holes 50 is often provided to be certain of retaining the wheel 10 onto the wheel axle 110.
  • a disc brake 115 is included near an end of the wheel axle 110 in relative close proximity to the frusto-conical web 60 and its associated ventilation holes 70.
  • an ABS angular sensor encoder 118 for implementing an ABS baking system for sensing an angular orientation of the axle 110 and hence that of the wheel 10 is contemporarily included as standard components on heavy commercial vehicles; the angular sensor encoder 118 is operable to generate a signal indicative of an angular orientation 6Of the wheel 10.
  • the angular sensor encoder 118 is often implemented as an optical, electrostatic and/or magnetic sensing device.
  • the rim 90 has various ridges formed therein to enhance its mechanical strength and also has end ridges 170 to provide reliable retention of the tyre 30 in operation.
  • the tyre 30 encloses a volume denoted by 120 which is maintained at an elevated pressure P during operation.
  • the tyre 30 includes inner edges 180 for abutment onto the ridges 170 of the circular rim 90.
  • the inner edges 180 are often reinforced using steel rings or bands 200 molded into the tyre 30.
  • the tyre 30 includes one or more reinforced woven metal and/or reinforced fibre meshes 210 embedded by molding into the tyre 30.
  • a tread portion 220 of the tyre 30 has a greater radial thickness in comparison to a lateral thickness of side walls 230 of the tyre 30; the tread portion 220 is thicker for accommodating treads of the tyre 30.
  • the tread portion 220 is operable to provide a firm grip to a road surface (not shown) as well as a water draining function, whereas the walls 230 are designed to periodically elastically flex when the wheel 10 with its associated tyre 30 rotate in operation on the road surface.
  • one or more of bolts or fasteners applied to the holes 50 for securing the wheel 10 to the wheel axle 110 can potentially be inadequately tightened during attachment of the wheel 10 to the axle 110, or are susceptible to potentially working loose in operation; such loosening and potential loss of one or more of the bolts or fasteners can result in the wheel 10 wobbling or rattling on the axle 110 and, in a worst case, even becoming detached from the axle 110 and rolling off (!);
  • the tyre 30 and/or the valve 80 can develop a leak such that a partial loss of the pressure P within the tyre 30 in operation arises; if such loss of pressure P is undetected, problems as outlined in (a) in the foregoing can potentially arise; however, the pressure P is a function of a temperature of the tyre T t y re , and also whether or not the tyre 30 is periodically maintained by being recharged with compressed air or other gas through its valve 80;
  • the tyre 30 can develop in use an imbalance, for example a portion of rubber of the tyre 30 can become unevenly eroded with use, or a balancing weight earlier added to the wheel 10 can become detached from the wheel 10; in a situation of a double-tyre arrangement as illustrated in Figure 5 often employed at a rear of a heavy commercial vehicle, it is known for a building brick or similar object to occasionally become wedged between the double-tyres and represent a dangerous projectile in an event of the object subsequently becoming dislodged by centrifugal force whilst the double wheel is rotating; such ejected objects from tyres potentially represents a considerable danger when they smash through an automobile front window resulting in injury or accident; and
  • the tyre 30 can become oval or distorted in some other symmetrical manner which does not necessarily cause an asymmetrical imbalance to the wheel 10; moreover, the hub
  • FIGs 4 and 5 there are shown diagrams of example contemporary manufactured front and rear wheel assemblies of a heavy commercial vehicle to illustrate how compact regions around vehicle wheels are in practice. There is little extra volume in the front and wheel assemblies for accommodating additional instrumentation for monitoring . 2g .
  • components associated with the aforesaid brake 115 are included in close proximity to the wheel 10 in operation; the brake 115 has associated therewith other components such as servo actuators for forcing brake pad components against a disk component of the brake 115.
  • Characteristics which are beneficial to measure in order to monitor wheel 10 and associated tyre 30 condition include temperature T, pressure P and instantaneous acceleration A during operation. It is additionally also feasible to include film strain gauges within or bonded onto walls 230 of the tyre 30 to measure their wall flexure. Temperature T and acceleration A can be measured at various spatial positions on the wheel 10 with mutually different results, whereas the pressure P developed within the volume denoted by 120 enclosed by the tyre 30 in operation is effectively similar because the pressure P equalizes in a relatively short period of time; pressure equalization is estimated to occur within a few milliseconds on account of pressure pulses being able to propagate at a velocity in an order of 250 metres/second within the volume 120.
  • the wheel 10 has a diameter in the order of 1 metre.
  • Figure 6 illustrates schematically categories of locations whereat sensors are beneficially mounted to the wheel 10. When several sensors are included at each category of location, the several sensors are beneficially distributed at positions angularly distributed around the wheel 10 for providing most representative information indicative of operation of the hub 20 and its tyre 30.
  • the first sensor module is capable of monitoring the tyre pressure P by way of fluid (air or gas) communication to the valve 80, is capable of monitoring a temperature T hUb of the hub 20 and is capable of sensing accelerations A in one-, two- or three- orthogonal axes (x, y, z) at the hub 20 depending upon type of accelerometer employed.
  • a pressure sensor and an accelerometer included in the first sensor module for performing measurements are silicon micromachined integrated electronic components contemporarily known as MEMS ("Micro- Electronic Mechanical Systems").
  • the temperature T hub of the hub 20 will often be different from the temperature T t y re of the tyre 30; a temperature T mod measured at the first module is hence not ideally representative of the tyre 30 temperature T tyre and thus condition of the tyre 30; the hub 20 will often be subject to direct cooling air flows, and during braking events will . .
  • the first module at the location L1 is not totally screened by conductive components which renders short-distance wireless communication possible between the first module and an electronic control unit (ECU) or electronic management system of the vehicle.
  • the first sensor module at the location l_1 is most accessible and susceptible to being retrofitted to vehicles with minimal mechanical changes being required.
  • a second sensor module is beneficially mounted to an inside surface of the rim 90 at a location L2 and thereby is subject directly to the pressure P developed within the tyre 30 in operation.
  • the second module at this location L2 when measuring the temperature T mod thereat, is capable of providing an accurate measurement of the temperature T t y re of the tyre 30 as well as the aforesaid pressure P.
  • one or more accelerometers included within the second module for measuring the acceleration A at the location L2 are at a greater radial distance from the axis B-B (see Figure 2) than the first module at the location L1, and are therefore subject to greater radial components of acceleration resulting from rotation of the wheel 10.
  • a disadvantage of mounting the second sensor module at the position L2 is that the mesh 210 in combination with the rim 90 have a tendency to form a Faraday cage which severely attenuates wireless transmissions from the second module, unless the second module has an antenna exit through the rim 90, for example a small air-tight hole through which an antenna wire coupled to the second module at the position L2 is extended out onto the frusto-conical web 60 for enhancing wireless communication efficiency.
  • the second module at the location L2 is coupled via an antenna wire 300 through an insulated feed-through 310, installed in the rim 90 and operable to withstand the pressure P, to a film metal patch antenna 320; optionally, the patch antenna 320 is affixed to the frusto-conical web 60 for mechanical protection.
  • the second module at the location L2 is electrically coupled to the mesh 210 of the tyre 30 and is operable to employ this mesh 210 as an antenna for communicating by wireless to the aforesaid electronic control unit (ECU) or an electronic vehicle management system.
  • the second module at the location L2 can be directly electrically coupled by wire through the feed-through 310 or by conductive film connection to the first module and optionally derive power therefrom as well as communicating measurement data thereto.
  • a third sensor module is beneficially mounted on an inside surface of the tyre 30 at a location L3, for example by bonding the third module onto the tyre 30 using rubber or plastics material . .
  • the third module at the location L3 is capable of measuring the temperature T mO d thereat and thereby providing a direct representative indication of tyre temperature Tty re , a representative direct indication of the pressure P and is also able to provide an representative indication of flexural characteristics of the walls 230 of the tyre 30 by way of acceleration A measurements or strain gauge measurements; however, the acceleration signals generated by the third module at the location L3 are a complex modulation of various acceleration components as the wheel 10 rotates in operation and its side walls 230 flex, whereas the accelerometer of the first module mounted at the location L1 is operable to generate acceleration signals which include a relatively greater magnitude of linear acceleration components therein which renders the first module at the location L1 potentially better suited for monitoring such linear acceleration components.
  • the third module at the location L3 is also coupled to one or more resistive-film or fibre-optical strain gauge sensors (not shown) coupled onto or even embedded within the rubber material of the tyre 30, for example onto the side wall 230 and/or peripheral rim of the tyre 30.
  • the third module mounted at the location L3 suffers a similar wireless communication problem to the second module at the location L2 in that the mesh 210 in combination with the rim 90 functions as a Faraday cage to attenuate wireless communication from the volume 120 within the tyre 30.
  • the third module at the location L3 is optionally provided with a thin-film conductive antenna 350, for example fabricated by metal film sandwiched between layers of flexible insulating material such as Kapton as illustrated in Figure 8.
  • the antenna 350 is beneficially wrapped around the inner edges 180 and up around an outside wall surface of the tyre 30.
  • the second module at the location L2 is also susceptible to being provided with such a thin-film antenna, for example disposed over an edge of the rim 90 and even extending onto the frusto-conical web 60.
  • such thin-film antennas are susceptible to being damaged when the tyre 30 is installed onto the hub 20 unless adequately protected with a rubber protective film 360 or similar component added to provide mechanical protection.
  • the third module is susceptible to having its antenna coupled electrically to the mesh 210 of the tyre 30 which is then capable of functioning as an antenna; the third module is beneficially provided with an electrical piercing pin for penetrating during installation through an inside of the side wall 230 for providing an electrical connection to the conductive mesh 210.
  • the second module at the location L2 can be operable to function as a wireless relay node for conveying signals from the third module via the second module to an electronic control unit (ECU) of the vehicle; such nodal communication between modules mounted onto the wheel 10 will be - -
  • a fourth module in Figure 6 is susceptible to being mounted on an inside rim of the tyre 30. Similar considerations pertain the fourth module mounted at the location L4 as for the third module mounted at the location L3 except that flexure of the wall 230 is not directly sensed but rather operative deformation of a thread region of the tyre 30.
  • Measurement signals generated by the first, second, third and fourth modules at the locations L1 , L2, L3 and L4 respectively will now be further elucidated with reference to Figure 9.
  • FIG 9 there is shown the axis of rotation B-B around which the wheel 10 revolves in operation.
  • the wheel 10 is provided via the axle 110 with a leaf spring and/or air pneumatic suspension coupled to a chassis CH of the vehicle; the suspension is denoted by a spring constant K 3 .
  • Forces applied to the tyre 30 from a road surface in contact with the tyre 30 are denoted by a force F(t); the tyre 30 has a spring compliance described by a spring constant K x which is dependent on the pressure P within the tyre 30 and also mechanical design of the tyre 30.
  • the first, second and third sensor modules at the locations L1 , L2 and L3 respectively are each denoted by a module 400 which circumscribes in operation a radial path denoted by 410 when the wheel 10 rotates around the axis B-B corresponding to the axle 110.
  • the radial path 410 has a radius r and the module 400 is inclined at an inclination angle ⁇ relative to a normal radial direction 420.
  • the module 400 is operable to measure at least one of: (a) a temperature T mod at the module 400;
  • the module 400 When the module 400 is mounted at the location L1 , it measures the pressure P of the tyre 30 via its valve 80. -
  • the module 400 is optionally furnished with other types of sensors, for example resistive strain gauges, piezo-electric strain gauges, moisture sensors, and so forth if desired. It is convenient, for initial identification purposes during configuration routines, that the module 400 is provided with a magnetic sensor, for example implemented using a magnetic reed-relay switch operable to electrically conduct when a permanent magnet having, for example, a near-field magnetic field strength of 100 milliTesla is placed in near proximity to the module 400, for example within a distance of 10 cm therefrom.
  • a magnetic sensor for example implemented using a magnetic reed-relay switch operable to electrically conduct when a permanent magnet having, for example, a near-field magnetic field strength of 100 milliTesla is placed in near proximity to the module 400, for example within a distance of 10 cm therefrom.
  • Equation 1 Equation 1 (Eq. 1):
  • a x an x-axis acceleration measurement
  • r a radius from the axis B-B at which the module 400 is mounted
  • an angular rotation rate of the wheel 10
  • g a gravitational constant (circa 10 m/s/s); and
  • an angular offset.
  • Equation 2 Equation 2 (Eq. 2):
  • a y a y-axis acceleration measurement
  • r the radius from the axis B-B at which the module 400 is mounted
  • the angular rotation rate of the wheel 10
  • g the gravitational constant (circa 10 m/s/s); and
  • an angular offset.
  • Disparity of the measured acceleration A x from Equation 1 with measurements from such an ABS sensor encoder 118 is susceptible to being used detect one or more of:
  • checking the acceleration A x against change in turning angle ⁇ determined by the ABS sensor encoder 118 can be, for example, employed to dynamically confirm correct operation of the module 400.
  • Such dynamic confirmation of correct module function is a feature provided by the present invention.
  • the module 400 is also capable of measuring accelerations A y and A x in substantially y- and z-directions respectively when the inclination angle ⁇ is non-zero which is, for example, pertinent for the third module at the location L3 when the wall 230 of the tyre 30 flexes, or at the locations L1 and L2 when the hub 20 is loose on its fasteners or skewed in relation to the axle 110.
  • Measured acceleration signals are provided approximately as defined in Equations 3 and 4 (Eqs. 3 and 4):
  • the inclination angle ⁇ for the module 400 mounted in an orientation as depicted in Figure 9 is normally substantially zero such that the acceleration A z is normally of a relatively small magnitude and the acceleration A y is a summation of forces arising from the force F(t) resulting from road surface characteristics, centrifugal components r ⁇ 2 arising from turning of the wheel 10 and the force of gravity g modulated by turning of the wheel 10.
  • the acceleration A z is normally of a relatively small magnitude
  • the acceleration A y is a summation of forces arising from the force F(t) resulting from road surface characteristics, centrifugal components r ⁇ 2 arising from turning of the wheel 10 and the force of gravity g modulated by turning of the wheel 10.
  • the acceleration A z is normally of a relatively small magnitude
  • the acceleration A y is a summation of forces arising from the force F(t) resulting from road surface characteristics, centrifugal components r ⁇ 2 arising from turning of the wheel 10 and the force of gravity g modulated by
  • Equation 4 Equation 5
  • Equations 3 to 5 are then susceptible to being used in combination for determining a nature of the measured accelerations A y and A 2 from the module 400 mounted at the locations L1 and L2.
  • the acceleration signal A z is thus useful, pursuant to the present invention, for identifying angular misalignment or fastener problems by monitoring using modules 400 at one or more of the locations L1 and L2.
  • the module 400 mounted at the location L3 is subject to considerable flexure of the wall 230 which tends to dominate in magnitude with regard to angular change over angular misalignment of the axle 110 or lateral wobbling of the wheel 10.
  • mounting the module 400 at the location L1 is beneficial for measuring the pressure P of the tyre 30 from its valve 80, but the temperature T mod measured by the module 400 at the location L1 is not an accurate representation of temperature T t y re of the tyre 30 on account of intermittent heating of the brakes 115 in operation.
  • periodic flexure of the wall 230 of the tyre 30 when the module 400 is mounted at the location L3 results in the inclination angle ⁇ being a strong function of the angle of rotation ⁇ of the wheel 30; the inclination angle ⁇ then becomes substantially, to a first approximation, the flexural angle of the wall 230 of the tyre 30.
  • the inclination angle ⁇ then becomes a series function as defined in Equation 6 (Eq. 6):
  • ⁇ o angular offset
  • k a harmonic coefficient
  • / a harmonic index number
  • the angular rate of rotation of the wheel 10
  • Si an angular offset.
  • Figure 10 provides in signal V1 a qualitative illustration of the angle ⁇ when the module 400 is mounted at the location L3 and the wheel 10 is rotating; the inclination angle ⁇ changes rapidly with flexure of the tyre wall 230 when a portion of the tyre 30 carrying the module 400 on its inside wall 230 comes into contact with a road surface.
  • expected performance characteristics of the tyre 30 are computed and then compared against measured characteristics.
  • the first method includes steps as follows:
  • measured data representative of the acceleration A z occurring in operation at the tyre 30 are sampled and then subject to harmonic analysis, for example by applying Fast Fourier Transform (FFT) or similar type of transform, to derive parameters therefrom and then comparing the computed parameters with those that are expected for the tyre 30; if there is a mutual difference between the computed and expected parameters for the tyre 30 by more than a predefined threshold amount, potential failure of the tyre 30 can be detected and the tyre 30 replaced if necessary.
  • FFT Fast Fourier Transform
  • the second method includes steps as follows are executed:
  • the module 400 when mounted on the wall 230 of the tyre 30 as depicted in Figure 8 be provided with a distinguishing identification code (ID).
  • ID is beneficially indicative of the characteristics of the tyre 30 to which the module 400 is attached at the position L3.
  • the module 400 is operable to communicate the identification code (ID) by wireless to an electronic control unit (ECU) which is operable to execute the variance comparison.
  • harmonic analysis is also applied to one of more of the acceleration signals A x and Ay for further confirming reliability of the harmonic analysis executed pursuant to this second method.
  • the module 400 mounted at the location L3 is especially effective for detecting potential problems or defects arising in respect of flexure and dissipation within the tyre 30
  • the module 400 mounted at the location L1 is especially effective for measuring variations in asymmetry in the wheel 10, and also for determining a type of asymmetry in the wheel 10 and its associated tyre 30.
  • the module 400 is mounted in a non-rotating manner onto the shaft 110 substantially corresponding to the axis B-B.
  • more wheel diagnostic information regarding imbalance in the wheel 10 is susceptible to being derived when the module 400 is mounted onto the wheel 10 and operable to rotated with the wheel 10, preferably near its axis B-B of rotation, for example substantially at the location L1.
  • monitoring the pressure P as the wheel 10 rotates provides unexpectedly considerable additional information regarding performance of the tyre 30, for example multi-lobed distortions of the tyre 30.
  • a data processing apparatus pursuant to the present invention indicated generally by 600; the data processing arrangement is operable to provide wheel- and tyre-monitoring.
  • the data processing apparatus 600 is capable of being implemented in at least one of the module 400 and the aforesaid electronic control unit
  • the processing arrangement 600 is susceptible to being implemented in at least one of hardware, and software executable in operation on computing hardware.
  • the software is beneficially provided as a software product executable on the computing hardware.
  • the software product is beneficially conveyed to the apparatus 600 on a data carrier; the data carrier is beneficially at least one of: a solid-state electronic data carrier, a wireless signal, an electrical signal, an optical-fibre signal, an optically and/or magnetically readable data carrier.
  • components in a linear vertically-directed acceleration A v experienced at the axle 110 which are not correlated with periodic rotation of the wheel 10.
  • components in the linear vertically-directed acceleration A v which correlate with rotation of the wheel 10 for example as referenced by way of the aforesaid ABS encoder sensor 118 providing an indication of the rotation angle ⁇ of the wheel 10 and its angular frequency of rotation ⁇ , are of benefit for determining imbalance in the wheel 10, and also potentially elucidating a type of imbalance present in the wheel 10.
  • the ABS encoder sensor and its associated signal processing circuits are denoted by 118 in Figure 11.
  • the one or more accelerometers in the one or more modules 400 measuring the accelerations A x and A y as depicted in Figure 9 are all sensitive to linear vertically-directed acceleration in response to rotation of the wheel 10.
  • the one or more modules 400 and/or an electronic control unit (ECU) in wireless communication therewith to perform angular resolving, for example as described in Equation 7 (Eq. 7):
  • Such angular resolution is executed in operation in a resolver denoted by 620 in Figure 11.
  • the resolver 620 beneficially receives its angular reference for the rotation angle ⁇ from the ABS encoder sensor and its associated circuits 118.
  • the resolver 620 is also beneficial in being operable to remove an angularly dependent component in the acceleration A v due to gravity g which becomes constant in the resolved acceleration A v . Removal of the acceleration component due to gravity g in the resolved acceleration A v is beneficial for auto- scaling the constants di and d 2 in Equation 7 (Eq. 7) for a condition that the wheel 10 is known to be correctly in balance, for example during a calibration routine performed after the wheel 10 is newly installed on the vehicle.
  • the severity of the imbalance can be determined; for example, the amplitude of harmonics Q(m) wherein m is a harmonic number in the acceleration A v signal are beneficially individually scaled by a harmonic scaling function y(m) in a sealer 640 and then summed in a summing unit 650 to compute an aggregate S tQt summed value.
  • the ⁇ n the amplitude of harmonics Q(m) wherein m is a harmonic number in the acceleration A v signal are beneficially individually scaled by a harmonic scaling function y(m) in a sealer 640 and then summed in a summing unit 650 to compute an aggregate S tQt summed value.
  • Equation 9 corresponds to a decision point DK1 illustrated in Figure 11.
  • the harmonic scaling function y(m) implemented in the sealer 640 is made dependent upon a type of tyre 30 installed on the wheel 10; for example, a robust knobbly tyre installed on the wheel 10 is potentially able to exhibit a greater degree of imbalance before representing any form of potential risk than a lean high-performance high-speed tyre optimized for reduced energy consumption during driving.
  • the harmonic scaling function y(m) implemented in the sealer 640 is beneficially also made a function of time t, namely y(m, t) in Equation 8, from an initial time t 0 at which the tyre 30 was installed onto the hub 20.
  • the harmonic scaling function y(m) is also beneficially made a function of the number of revolutions as determined from the ABS sensor encoder 118 that the wheel 10 has experienced since the tyre 30 was installed thereon, namely y(m, N) where N is the number of revolutions of the tyre 30.
  • a reason for rendering the harmonic scaling function y(m, t) or y(m, N) variable is that imbalance in a well-worn tyre 30 is more likely to potentially result in tyre 30 failure in comparison to a newly-installed substantially unworn tyre 30 whose internal mesh 210 has not been subjected to substantial work-hardening due to repetitive flexure.
  • the type of imbalance for the wheel 10 as determined from the amplitude of the harmonics Q(m) is determined from the relative amplitude of given harmonics; such determination is performed by harmonic analysis in an analyzer denoted by 670 in Figure 11.
  • harmonic analysis is beneficially implemented using a set of software rules, by applying a harmonic stencil to the harmonics to identify a signature of a specific type of imbalance present, or by feeding data indicative of the amplitude of the harmonic Q(m) into a neural network trained to recognize occurrence of certain types of defects.
  • One or more of the software rules, the harmonic stencil and the neural network are beneficially optionally rendered dependent upon a type of tyre 30 installed onto the hub 20.
  • one or more of the rules, the harmonic stencil and the neural network are also beneficially optionally dependent upon an age and/or a degree of wear of the tyre 30.
  • normalization of the amplitude of the harmonics Q(m) is beneficially implemented as a part of signal processing employed as depicted in Figure 11.
  • the hub 20 slopping around on its bolts or fasteners gives rise to sudden small jolts of the wheel 10 as the wheel 10 rotates; it has even been known for the frusto-conical web 60 to generate a bell-like ringing tone as it is pulse excited into resonance corresponding to a "cos2 ⁇ mode" of flexure, namely hoop-like deformation of the rim 90 and the frusto-conical web 60.
  • the pressure P measured by the module 400 is provided to the harmonic analyzer 630 instead of the resolved acceleration A v in a manner as depicted in Figure 12; in Figure 12, the data processing apparatus 600 adapted to harmonically analyze the pressure P is indicated generally by 680.
  • Irregularities in the tyre 30, for example local bulges or weaknesses causing blisters in the tyre 30, are manifest as pressure pulses at certain angular ⁇ positions as the wheel 10 rotates in operation.
  • the data processing apparatus 680 functions in a generally similar manner to the data processing apparatus 600 except that the pressure P is analyzed instead of the acceleration A v .
  • apparatus pursuant to the present invention is provided by combining together the data processing apparatus 600, 680 so as to provide for concurrent or periodically alternating harmonic analysis and monitoring of the acceleration A v and the pressure P as depicted in Figure 13 and as indicated by 690 therein; there is provided a switching arrangement 695 in the data processing apparatus 690, either implemented in software or hardware, for selecting between the pressure P and the acceleration A v .
  • An advantage of the data processing apparatus 690 illustrated schematically in Figure 13 is that more comprehensive monitoring to the wheel 10 is susceptible to being achieved in operation.
  • Aforementioned analysis of flexure of the wall 230 of the tyre 30 as sensed by the module 400 mounted at the location L3 is beneficially compared in the electronic control unit (ECU) and/or within the module 400 with results from harmonic signal analysis performed in respect of one or more modules 400 positioned at one or more of the locations L1 and L2.
  • ECU electronice control unit
  • a warning message is beneficially then transmitted from the data processing apparatus 600, 680 or 690 as appropriate to a driver of the vehicle and/or to a control centre of the enterprise operating a fleet of such vehicles that there is a need to perform maintenance on the vehicle, for example for devising logistics for a future maintenance schedule for the vehicle.
  • logistics can include, for example, prearranging a replacement wheel to be available and informing a service facility regarding a time of arrival of the vehicle for maintenance purposes so that appropriate task scheduling at the service facility can be implemented.
  • One or more of the modules 400 mounted at one or more of the locations L1 to L4 are susceptible to being used, optionally in communication with an electronic control unit (ECU), to detect more gradual temporal changes in the tyre 30, for example a gradual reduction in pressure P due to a slow leak therefrom, for example over a period of several weeks or months.
  • the one or more modules 400 optionally in cooperation with the aforesaid electronic control unit (ECU) in wireless communication with the one or more modules 400, can be used to monitor sudden depressurization of the tyre 30, for example sudden depressurization and subsequent re-pressurization associated with installing a new replacement tyre 30 onto the hub 20.
  • the module 400 will now be described in overview with reference to Figure 14.
  • the module 400 is required to be robust and also inexpensive in manufacture.
  • the module 400 is relatively inaccessible and needs to function reliably without user intervention.
  • the module 400 utilizes aforesaid microeletronic mechanical systems (MEMS) technology, for example based upon silicon micromachining fabrication processes.
  • the module 400 includes a battery 700 comprising one or more electro-chemical cells operable to provide electrical power, amongst other components, to a computer processor 710.
  • a data memory 720 including a software product is coupled in communication with the processor 710; the software product comprises software code which is executable upon the processor 710 and which is operable to coordinate functioning of the module 400.
  • the processor 710 has associated therewith a clock (CLK) and an analogue-to-digital (A/D) converter for converting analogue sensor signals to corresponding sampled sensor data; beneficially, the analogue- to-digital (A/D) is based upon a high-speed multi-channel sigma-delta type converter which exhibits modest power consumption. Sigma-delta converters are contemporarily employed in power-critical devices such as miniature hearing aids which are battery powered and need to function for long periods without attention, for example for battery change.
  • the module 400 further comprises a short-distance wireless interface 730 for providing bidirectional communication to and from the module 400; the wireless interface 730 is beneficially implemented using contemporary Blue Tooth, Weebre or similar wireless interface technology operating pursuant to associated standardized communication protocol.
  • the module 400 also includes an array of one or more sensors denoted by 750 whose corresponding one or more outputs are coupled to the aforesaid A/D converter.
  • the array of sensor 750 includes one or more of: (a) a pressure sensor 760 beneficially based upon a MEMS structure including a silicon micromachined membrane with strain-gauge or oscillatory resonant signal read-out; (b) a temperature sensor 765 for measuring an air or surface temperature in proximity of the module 400, wherein the temperature sensor 765 beneficially has a measuring range of -40 0 C to +100 0 C;
  • an accelerometer 770 beneficially implemented in as MEMS structure including one or more silicon micromachined proof masses on a spring suspension with corresponding position readout for the one or more proof masses indicative of acceleration; optionally, for enhanced accuracy and response, the accelerometer is a force-feedback type accelerometer; the accelerometer 770 is beneficially sensitive to acceleration in one-, two- or three orthogonal axes. For best monitoring of wheel 10 and associated tyre 30 operation, the accelerometer 770 is implemented as a three- axis accelerometer;
  • a magnetic sensor 775 preferably implemented as a vacuum-encapsulated reed relay switch but also susceptible to being implemented as an Hall-effect device; the magnetic sensor 775 is optionally included for activating the module 400 using a strong magnetic brought into proximity of the module 400; however, as will be elucidated in more detail later, other approaches to activating the module 400 are also possible and are pursuant to the present invention; and
  • strain-gauge sensor 780 which is most potentially pertinent to the module 400 when mounted at the location L3 onto the wheel 10.
  • the sensor 780 can be affixed to the tyre 30 prior to the tyre 30 being installed onto the hub 20.
  • the module 400 is susceptible to including other types of sensor not described in detail above.
  • the battery 700 is, at least in part, a rechargeable battery and provided with its own electro-magnetic recharging device actuated in response to rotation of the wheel 10 in operation, for example in a manner akin to an automatic wind-up mechanical wrist watch wherein wrist movement is operable to move an imbalance mass to provide watch-spring wind-up energy.
  • piezo-electric recharging of the battery 700 in response to rotation of the wheel 10 can be employed.
  • the computer processor 710 is operable to perform self-diagnostics and send a warning message via its wireless interface 730 in event of partial or total malfunction occurring within the module 400, and a confirmatory message sent when the module 400 is fully functional; in an event that the module 400 malfunctions, its associated vehicle is not immobilized, but merely results in reduced functionality in respect of wheel and associated tyre monitoring. Beneficially, the driver of the vehicle can be informed via the electronic . .
  • ECU control unit
  • the computer processor 710 detects that the signals from the accelerometer 770 are substantially constant for more than a predefined time period, for example for a time period in a range from a few seconds up to 10 minutes, after cessation of a period of rotation of the wheel 10, the computer processor 710 is beneficially operable to cause the module 400 to assume a hibernating mode to conserve power during which the wireless interface 730 is substantially de-energized.
  • the computer processor 710 is beneficially operable to periodically and momentarily activate the wireless interface 730 for short periods to detect "wake-up" commands from the electronic control unit (ECU) of the vehicle.
  • ECU electronice control unit
  • the computer processor 710 detects that signals from the accelerometer 770 and/or the pressure sensor 760 are temporally varying, for example during a pre-defined time period, the processor 710 is operable to switch the module 400 to its active state, namely non-hibernating, with all its functional parts as shown in Figure 14 brought into operation.
  • the module 400 can be explicitly set in a hibernating mode on receipt of a specific hibernate instruction from the electronic control unit (ECU) 950; beneficially, the specific instructions includes the identification code (ID) of the module 400 which is to assume such a hibernating state; similarly, the module 400 can be explicitly instructed to assume a functional active state, namely non-hibernating state, by receiving a specific wake-up instruction from the electronic control unit (ECU) 950.
  • ID identification code
  • all the modules 400 included on the wheels 10 of the vehicle can be set to a hibernate state, or set to a functional active state, by a general explicit instruction wirelessly transmitted from the electronic control unit (ECU) 950; the general explicit instruction is beneficially sent by the electronic control unit (ECU) 950 in response to the driver of the vehicle starting and stopping a combustion engine or an electric traction motor of the vehicle.
  • a general explicit instruction wirelessly transmitted from the electronic control unit (ECU) 950; the general explicit instruction is beneficially sent by the electronic control unit (ECU) 950 in response to the driver of the vehicle starting and stopping a combustion engine or an electric traction motor of the vehicle.
  • Such an electric traction motor is relevant when the vehicle has a hybrid powertrain or an electric power train provided with electric power from fuel cells.
  • the module 400 is operable to receive a synchronization signal for its given associated wheel 10 derived from the aforementioned ABS sensor encoder 118 and its associated circuits associated with the given wheel 10.
  • a synchronization signal is beneficially provided from the aforementioned electronic control unit (ECU) 950 of the vehicle operating to provide a data communication hub for the vehicle.
  • ECU electronice control unit
  • each wheel 10 and its associated modules need to be individually synchronized in respect of their associated ABS sensor encoder 118.
  • Data processing performed by the computer processor 710 is beneficially capable of reducing a volume of data to be communicated via the wireless interface 730 to the electronic control unit (ECU).
  • ECU electronice control unit
  • Such local data processing is of benefit in that it is primarily the wireless interface 730 which consumes a majority of power from the battery 700 when the module 400 is in operation.
  • Data flow can be further reduced in the module 400 by the processor 710 transmitting periodically at a beginning of time frames actual data values of sensor signals followed by data representing changes in the data values during each time frame.
  • Other approaches for obtaining data compression can also optionally be employed to reduce power consumption at the wireless interface 730.
  • the module 400 is operable to transmit accelerometer signal data and pressure P data at a maximum sample rate in a range of 50 samples/second to 200 samples/second for each accelerometer axis and/or the pressure sensor 760 taking into consideration Nyquist sampling criteria.
  • a lower rate of up to 1 sample per second for temperature T is optionally employed on account of the temperature T changing less rapidly in comparison to the acceleration A and pressure P.
  • the module 400 is operable to perform Fourier analysis of its sensor input signals provided to the processor 710, and the module 400 is operable to wirelessly communicate Fourier harmonic coefficients and optionally their relative phase relationship to the electronic control unit as an approach to reducing an quantity of data transfer occurring as well as conserving power in the battery 700 by using the wireless interface 730 sparingly. Such communication is referred to parameterized data compression performed by the module 400.
  • the module 400 is also beneficially operable to permit software updates to be downloaded from the electronic control module (ECU) to the module 400, for example via its wireless interface 730, for upgrading or modifying its operation, for example in response to amended safety standards or policy adopted by an operator of the vehicle.
  • software updates also enable new and improved data processing algorithms to be later employed, namely software upgrades.
  • the module 400 is programmed to have an identification code (ID) which is useable by the aforesaid electronic control unit (ECU) for distinguishing the module 400 from other similar modules 400 on the vehicle, and also from similar types of modules 400 on other vehicles which sporadically pass in near proximity, for example on an adjacent lane during motorway driving.
  • the electronic control unit (ECU) is operable to use the identification code (ID) to identify from which portion of the vehicle data conveyed via the module 400 is derived. Such identification will be described in more detail later.
  • the computer processor 710 in combination with its wireless interface 730 is also operable to optionally provide a communication networking function.
  • the computer processor 710 has a directly wired interface so that a first module 400 mounted at the location L1 on the wheel 10 is capable of being directly coupled via a wire or optical fibre communication link through the feed-through 310 as depicted in Figure 7 to a second module 400 mounted at the position L2 on the rim 90 within the volume 120 as depicted in Figure 15a.
  • the processor 730 of the first module 400 located at the location L1 is thereby operable to:
  • data signals from the second module 400 at the location L2 can be:
  • the data signals can be relayed via the wireless interface 730 its associated computer processor 710 of the first module 400 to the electronic control unit (ECU).
  • ECU electronice control unit
  • Such a communication link is also susceptible to being used in reverse for conveying aforementioned ABS synchronization signals via the first module 400 at the location L1 to the second module 400 at the location L2 as depicted in Figure 15b.
  • the second module 400 at the location L2 is able to function as a network relay for a third module 400 mounted at the location L3.
  • the second module 400 at the location L2 is coupled by wire or optical fibre via the feed-through 310 to the first module 400 at the location L1
  • the third module 400 at the location L3 is coupled by wireless to the second module 400 at the location L2 as depicted in Figure 15c.
  • Figure 15c problems with the mesh 210 and rim 90 functioning as a Faraday screen are avoided.
  • Wireless communication between the third module 400 at the location L3 to the second module 400 at the location L2 is beneficial in view of a potentially large number of times the third module 400 at the location L3 moves in respect of the second - -
  • the third module 400 at the location L3 is electrically coupled to the mesh 210 of the tyre 30 which is used as a highly effective patch radio antenna for communicating by wireless to the electronic control unit (ECU).
  • the third module 400 at the location L3 is capable of function as a wireless relay node for communicating data from the second module 400 mounted at the location L2 on the rim 90.
  • FIG 15d Such a configuration is illustrated in Figure 15d.
  • modules 400 at the locations L1 , L2 and L3 are also feasible.
  • the modules 400 are optionally operable to all communicate directly by wireless via their wireless interfaces 730 directly with the electronic control unit (ECU) as depicted in Figure 15e.
  • the modules 400 are dynamically reconfigurable depending upon received wireless signal strength at the electronic control unit (ECU), for example between various network modes as elucidated in the foregoing with reference to Figures 15a to 15e.
  • Such flexibility to reconfigure a communication network provided by the modules 400 is beneficial when wheels 10 are swapped around or changed on the vehicle.
  • the first, second, third and fourth modules 400 mounted at the locations L1 , L2, L3 and L4 respectively each are provided with their uniquely-defining identification codes (ID) which the modules 400 are operable to employ when communicating with the electronic control unit (ECU) for distinguishing their data from that of other modules 400.
  • identification codes (ID) are beneficial when the electronic control unit (ECU) sends synchronization signals derived from the ABS sensor encoders 118, for example in a situation where considerable data processing is performed locally at the modules 400 to reduce a quantity of data to be communicated via their wireless interfaces 730 to the electronic control unit (ECU) in operation.
  • FIG. 16 there is shown in plan view the aforementioned vehicle indicated generally by 900.
  • the vehicle 900 is driven in operation by the aforesaid driver denoted by 910 in Figure 16.
  • the vehicle 900 comprises a front tractor unit 920 including a combustion engine 930 operable to provide motive force to a pair of steerable front wheels 10 beneficially implemented in a manner substantially as depicted in Figure 4.
  • the combustion engine 930 is at least one of: a contemporary cylinder combustion engine, a combustion engine with turbocharger, an electric series or parallel hybrid engine, a gas turbine engine, a fuel cell system providing electrical power to associated electric motor traction.
  • the vehicle 900 also comprises a trailer unit 940 having two sets of double rear wheels 10 as shown; the double rear wheels 10 are beneficially implemented in a manner as depicted in Figure 5 and are also optionally also steerable in a manner similar to the front wheels 10 of the front tractor unit 920.
  • Other configurations of wheels 10 for the vehicle 900 are possible and Figure 16 is merely one example for describing the present invention.
  • the vehicle 900 is further provided with the aforementioned electronic control unit (ECU) denoted by 950; the electronic control unit (ECU) 950 includes a computer processor together with data memory and one or more wireless interfaces and electrical interfaces, the computer processor being operable to execute one or more software products including executable software code.
  • the electronic control unit (ECU) 950 is coupled in communication with a console 915 operated by the driver 910.
  • the electronic control unit (ECU) 950 is also coupled in communication with the combustion engine 930 for performing engine management and monitoring functions, for example deliberately limiting a speed, or recommending to the driver a suitable speed, at which the driver 910 is able to drive the vehicle 900 in an event of the electronic control unit (ECU) 950 detecting a problem, or potential problem, with one or more wheels 10 of the vehicle 900.
  • the electronic control unit (ECU) 950 is also wirelessly coupled to one or more modules 400 mounted on one or more of the wheels 10 of the vehicle 900 as elucidated in the foregoing.
  • the electronic control unit (ECU) 950 includes an antenna 960 for transmitting and receiving wireless signals as denoted by 970 for enabling the vehicle 900 to communicate with other facilities, for example a control centre 1000 of an enterprise organising logistics for a fleet of such vehicles 900, or to a service facility 1010 whereat wheels 10 and their tyres 30 of the vehicle 900 can be serviced or replaced as depicted in Figure 16.
  • the electronic control unit (ECU) 950 is operable to monitor operation of the wheels 10 of the vehicle 900 and automatically inform the control centre 1000 of a need to inform the driver 910 to drive the vehicle 900 into the service facility 1010 for servicing its wheels 10 and associated tyres
  • a visit to the service facility 1010 is optionally invoked in response to weather conditions or time, for example in connection with exchanging summer tyres 30 to winter tyres 30 in Northern Europe and North America.
  • the electronic control unit (ECU) 950 is also wirelessly coupled to a global positioning system (GPS) 1020 for determining in operation a spatial position of the vehicle 900 upon the surface of the Earth.
  • GPS global positioning system
  • the GPS system 1020 is, for example, that managed by US authorities or an equivalent European Galileo positioning system.
  • the GPS system 1020 is based on a mobile telephone, namely cell net, system known as GPRS or similar.
  • the electronic control unit (ECU) 950 is operable to determine whereat the vehicle 900 is located and convey this positional information to the control centre 1000 so that the control centre 1000 is aware of the position of the vehicle 900.
  • control centre 1000 can direct the vehicle 900 to a suitable geographically convenient service centre 1010.
  • control centre 1000 is also operable to arrange, based upon knowledge of the position of the vehicle 900, for the tractor 920 to be decoupled from its trailer 940 at a suitable geographical location so that an alternative tractor can be rapidly coupled to the trailer 940 to haul the trailer 940 and its contents further promptly to its destination, for example to a customer; the tractor 920 can then be serviced without disrupting time-critical deliveries in the trailer 940 to the customer.
  • the service centre 1010 can also be warned in advance, either directly from the vehicle 900 or indirectly via the control centre 1010 or both, regarding arrival of the vehicle 900 together with an indication of a likely problem with one or more wheels 10 of the vehicle 900.
  • Such notification of problems regarding the vehicle 900 to the control centre 1000 and optionally to the. service centre 1010 is susceptible to occurring automatically without the driver 910 needing to interpret messages and actively inform one or more of the control centre 1000, the service centre 1010 or the customer. An improvement of service to the customer is thereby susceptible to being achieved.
  • the electronic control unit (ECU) 950 is operable to generate various warning messages. In an event of malfunction of one or more of the modules 400, the electronic control unit (ECU) 950 is operable to send a warning to at - -
  • At least one of the control centre 1000 and the driver 910 of such malfunction but continue to monitor other wheels 10 whose modules 400 are continuing to function correctly.
  • Such graceful decline in monitoring functionality of the modules 400 mounted on one or more of the wheels 10 is susceptible to improving operational robustness of the vehicle 900, namely failure of one or more of the modules 400 does not immobilize the vehicle 900. It is a decision then of the driver 900 and/or the control centre 1000 whether or not to continue driving the vehicle 900 in view of one or more of its module 400 becoming non-operational.
  • a potential cause of one or more of the modules 400 failing is exhaustion of batteries 700 therein, or replacement of a tyre 30 for example.
  • the module 400 is employed when implementing the present invention in various configurations.
  • the module 400 includes the accelerometer 770 as depicted in Figure 14, the module 400 can be regarded as being a form of inertial navigation unit (INU).
  • INU inertial navigation unit
  • processing signals corresponding to radial, tangential and transverse accelerations namely Ay, A x and A z as depicted in Figure 9, and resolving them to yield the vertical acceleration A v as depicted in Figures 11 and 13 is found to be highly beneficial for deriving an indication of imbalance of the wheel 10, a type of imbalance of the wheel 10, whether or not the wheel 10 is skewed out of plane, whether or not the wheel 10 is loose on its fasteners, as well as monitoring flexural characteristics of the walls 230 of the tyre 30.
  • inertial navigation units for steering vehicles such as rockets, helicopters, aircraft and so forth
  • INU inertial navigation units
  • achieving such accurate angular alignment requires accuracy and precision which is potentially time consuming and costly to achieve.
  • the one or more modules 400 be mountable to the wheel 10, for example at one or more of the locations L1 to L4, without a high degree of mounting precision and accuracy being necessary.
  • a lateral direction as being the z-axis parallel to the axis B-B;
  • the z-axis and the y-axis are pertinent at the locations L1 to L4.
  • the x-axis is dependent upon a radius r at which the point is from the axis B-B.
  • Figure 17 corresponds to Figure 9 for the inclination angle ⁇ being substantially zero.
  • the acceleration A z is especially useful, as depicted in Figure 10, for monitoring flexural characteristics of the tyre 30 as well as detecting whether or not the wheel 10 is at a skewed angle relative to its axle 110.
  • the vertical acceleration A v resolved from A x and A y acceleration components measured at a given module 400 is beneficial for monitoring imbalance in the wheel 10 and also a type of imbalance involved.
  • the module 400 is potentially mounted in an angularly misaligned position on the wheel 10 such that its local orthogonal axes denoted by x', y', z' do not align with true axes x, y, z required for generating highly useful A x , A y , A z acceleration signals.
  • Accelerations A x ', A y ', A 2 ' correspond to measurements of accelerations along the local orthogonal axes x', y', z' respectively. It is feasible to resolve the accelerations A x ', A y ⁇ A z ' in respect of the true axes x, y, z as provided by a matrix mapping as defined by Equation 10 (Eq. 10):
  • ⁇ i and ⁇ 2 are lower and upper integration limits corresponding to first and second angular rotation angles ⁇ 9of the wheel 10.
  • Suitable values for the angles a and ⁇ are susceptible to being computed in an iterative manner so that Equations 11 and 12 can be substantially achieved, or at least a minimized condition in respect of the angles or and ⁇ is susceptible to being achieved.
  • spurious road surface noise present in the accelerations A x , A y ⁇ A z ' potentially requires a minimum condition to be searched for as a best approximation for satisfying Equations 11 and 12.
  • Optimal values for the angles a and ⁇ can either be found from an explicit solution for Equations 10, 11 and 12, or iteratively by recomputing for various combinations of the angles a and /?for a sample of signals representative of the accelerations A x ', A y ', A z ' until a nearest approximation to Equations 11 and 12 is achieved.
  • Computation of the angles a and ⁇ is beneficially performed at the electronic control unit (ECU) 950.
  • distributed computing performed at the module 400 can also be employed for computing the angles a and ⁇ .
  • application of these angles a and ⁇ pursuant to Equation 10 to obtain the accelerations A x , A y , A 2 for monitoring operation of the wheel 10, for example as depicted in Figures 11 and 13, is susceptible to being implemented at the electronic control unit (ECU) 950 or at the module 400, or distributed between both the electronic control unit (ECU) 950 and the computer processor 710 of the module 400 to spread computational load. . .
  • Equations 10 to 12 are an example of auto-resolving accelerations sensed by the accelerometer 770 of the module 400 to generate corresponding acceleration signals suitable for processing as depicted in Figure 11 and 13 with associated description in the foregoing.
  • auto-resolving for a three-axis accelerometer 770 is described, such approximate auto-resolving can be also be employed when the accelerometer 770 is a two- axis accelerometer for example in simplified form.
  • Auto-resolving is also susceptible to being referred to as auto-alignment.
  • Auto-resolving for example as described in Equations 10 to 12, is of benefit in that the one or more modules 400 mounted one or more of the locations L1 to L4 do not need to be mounted onto the wheel 10 pursuant to highly precise angular alignment, thereby simplifying mounting of the one or more modules 400 to the wheel 10 and potentially reducing assembly and mounting costs.
  • a corresponding apparatus as indicated generally by 2200 in Figure 18 wherein an auto- resolver is denoted by 2210.
  • the apparatus 2200 includes at least one module 400 whose accelerometer 770 is operable to generate the acceleration signals A x , A y ', A z which are firstly auto-resolved in the auto-resolver 2210 to generate corresponding resolved acceleration data for the accelerations A x , A y , A 2 .
  • the resolved accelerations A x , A y , A z are then further resolved in the resolver 620 in respect of the rotation angle 6Of the wheel 10 as sensed by the ABS sensor encoder 118 to generate corresponding vertical acceleration A v signal data and also acceleration A x signal data.
  • the acceleration A v , A 7 , signal data are then subject to harmonic analysis in the harmonic analyzer 630 to generate corresponding series of harmonic coefficients Q v (m) and Q z (m) respectively in relation the angular frequency ⁇ of rotation of the wheel 10.
  • the harmonic coefficients Q v (m) and Q z (m) are then optionally subject to harmonic scaling in the sealer 640 to generate corresponding scaled harmonic coefficients y v (m).Q v (m) and y z (m).Q z (m) which are then subject to analysis in terms of absolute magnitude and relative magnitude to determine whether or not: (a) the wheel 10 is imbalanced;
  • the tyre 30 has defects in its flexural characteristics, for example its mesh 210 has become damaged;
  • the tyre 30 is oval or has a higher-order lobed distortion
  • wheel bearings associated with the axle 110 are vibrating or rattling in an unexpected manner indicative of a fault, or potentially developing fault, to mention a few alternative types of analysis which are executable using the apparatus 2200.
  • one or more modules 400 can be optionally mounted at one or more of the locations L1 , L2, L3 and L4.
  • the apparatus 2200 is susceptible to being implemented in hardware, in software executable on computing hardware, or a combination of such hardware and software.
  • the apparatus 2200 is susceptible to being implemented substantially in the electronic control unit (ECU) 950, on the module 400, or on both the module 400 and electronic control unit (ECU) 950 in combination.
  • the software is optionally supplied as one or more software products on one or more data carriers.
  • the software is optionally dynamically reconfigurable depending on potentially changing configurations of one or more modules 400 included on the wheel 10.
  • the apparatus 2200 illustrated in Figure 18 is susceptible to being modified in a manner akin to the apparatus 690 illustrated in Figure 13, namely concurrently or alternately being operable to harmonically analyze a sampled signal representative of the pressure P in the volume 120 of the tyre 30.
  • the auto-resolver 2210 requires calibrating in order to determine its correction angles a and ⁇ as elucidated in the foregoing. Such calibration is beneficially implemented as part of the aforesaid methods of "calibrating" the modules 400, namely enabling the electronic control unit (ECU) 950 to identify which modules 400 with which it is required to communicate on the vehicle 900, wherein the modules 400 are mounted at various locations on wheels 10 of the vehicle 900, with potentially mutually different operating characteristics of the modules 400; as elucidated earlier, a situation potentially arises in operation where certain wheels 10 of the vehicle 900 are provided with a more comprehensive set of modules 400 in comparison to other wheels of the vehicle 900, in a potentially temporally dynamically changing manner. Auto-resolving in the auto-resolver 2210 has an effect with regard to the module 400 mounted at the location L3 to effectively set the offset angle ⁇ 0 in Equation 6 (Eq. 6) to . .
  • ECU electronice control unit
  • FIG 19 there is shown a wheel indicated generally by 2500.
  • the wheel 2500 includes a hub 2510 including a central flange 2520 with holes 2530 for receiving fasteners for attaching the hub 2510 an end of the axle 110 of the vehicle 900 in a similar manner to the wheel 10.
  • the wheel 2500 is provided with a spring matrix 2540 radially surrounding a perimeter of the hub 2510.
  • the spring matrix 2540 is circularly symmetrical as shown and has a circular periphery onto which a circular flexible rim 2550 is attached; the circular flexible rim 2550 is fabricated from solid material, for example reinforced vulcanized rubber.
  • the spring matrix 2540 includes a configuration of interconnecting leaf springs 2560 arranged to provide a relatively high transverse stiffness and a radial stiffness comparable to that provided by the tyre 30 of the wheel 10 when in a correctly inflated state.
  • the leaf springs 2560 are fabricated from a material which exhibits a low susceptibility to work hardening; a polymer material such a nylon or polypropylene has been proposed, although other plastics material and/or metal alloys can be potentially employed.
  • lateral sides of the spring matrix 2540 can be protected by a membrane (not shown) to prevent snow and objects, for example stones and lumps of rock, becoming trapped between the leaf springs 2560 of the spring matrix 2540 and causing mass imbalance.
  • the wheel 2500 is of advantage in that it is not susceptible to being punctured. Moreover, on account of the leaf springs 2560 undergoing elastic flexure in operation, rolling resistance is susceptible to being reduced in comparison to the wheel 10.
  • the wheel 2500 has a potential failure mode involving one or more of the leaf springs 2560 fracturing on account of excess stress being applied thereto or by eventual work-hardening after a long period of use.
  • the leaf-springs 2560 are susceptible to acquiring permanent deformation after a long period of use or storage causing symmetrical and/or asymmetrical flexural imbalances in the wheel 2500.
  • the present invention as described in the foregoing in relation to the wheel 10 is also susceptible to being used in conjunction with the wheel 2500, with a modification that sensing the pressure P is no longer relevant for the wheel 2500.
  • the module 400 is susceptible to being mounted close to a central axis of the wheel 2500 at a location U1, at a periphery of the hub 2510 at a location U2, or on an inside of the flexible rim 2550 at a position U3.
  • the modules 400 mounted at the position U1 or U2 on the wheel 2500 are susceptible to functioning in a substantially similar manner to the modules 400 mounted at the locations L1 and L2 on the wheel 10.
  • the wheel 2500 is of benefit that the module 400 at locations U1 to U3 is not occluded by metal components such that wireless communication to the electronic control unit (ECU) 950 is more easily achieved than potentially is possible from within the tyre 30 for the wheel 10.
  • ECU electronice control unit
  • a hybrid wheel derived from the wheels 10, 2500 is also possible as shown in Figure 20 and indicated generally by 3000.
  • the wheel 3000 has both a hollow inflatable circular air-tight o
  • the wheel 3000 further comprises a spring matrix 3020 in a generally similar manner to the tyre 2500.
  • the spring matrix 3020 is beneficially interposed between the circular cavity 3010 and an exterior flexible rim 3030 of the wheel 3000.
  • a hub 3040 abutting onto the circular cavity 3010 and having a flange 3050 mountable using fasteners 3060, for example bolts, to the axle 110.
  • the wheel 3000 is of advantage in that sharp objects penetrating the flexible rim 3020 are contained within the matrix 3020 and are thereby preventing from puncturing the cavity 3010.
  • the present invention with its modules 400 as described in the foregoing is also susceptible to being employed with the wheel 3000, for example mounted upon the hub 3030, within the circular cavity 3010 and also onto the flexible rim 3020.
  • the wheel 3000 is of benefit, apart from the spring matrix 3020 protecting the cavity 3010 from being punctured by objects penetrating the rim 3030, that partial failure of leaf springs 2560 in the matrix 3020 does not cause the wheel 3000 to become immediately nonfunctional, as occurs with puncturing of the tyre 30 of the wheel 10, because the cavity 3010 continues to provide elastic support in a manner akin to the tyre 30; however, partial failure of the leaf springs 2560 can be readily detected using the modules 400 pursuant to the present invention. Conversely, in a rare situation of the cavity 3010 becoming punctured, the spring matrix 3020 continues to provide elastic support in operation.
  • the wheel 3000 is also potentially capable of exhibiting a lower rolling resistance in comparison to the wheel 10 and is thereby potentially more energy efficient which assists in respect of excess carbon dioxide emissions believed by the International Panel on Climate Change (IPCC) to be responsible for climate change associated with global warming.
  • IPCC International Panel on Climate Change
  • the wheel 3000 also potentially represents a considerable increase in safety on account of its enhanced reliability. __
  • a measure of the angular orientation ⁇ of the wheel 10, 2500, 3000 can also be computed, as elucidated in the foregoing, on a basis of the gravitational force g acting upon the accelerometer 770 of the module 400.
  • the gravitation force g is manifested in operation in the acceleration components A x , A y and is superimposed on any acceleration experienced at the wheel 10, 2500; 3000 due to general acceleration or deceleration of the vehicle 900.
  • the angular orientation ⁇ of the wheel 10, 2500, 3000 is derived from the acceleration components A x , A y , in addition to or as an alternative to the ABS encoder sensor 118, such derivation does not preclude the use of aforementioned auto-alignment of the axes x', y', z' of the module 400 to the true x, y, z axes of the wheel 10, 2500, 3000 representative of orthogonal tangential and lateral axes respectively, see Figure 9.
  • Such derivation of the angular orientation ⁇ enables the present invention to be, for example, applied to vehicles which are not equipped with ABS braking or partially equipped with ABS braking on only certain of their wheels.
  • such derivation enables the present invention to be retrofitted in certain situations to older vehicles which are not provided with ABS braking.
  • Flexure of the side-wall 230 of the tyre 30 is also susceptible to being sensed by a first module 400 mounted at the location L3 moving in respect of a second module 400 mounted at the location L2 in close spatial proximity to the first module 400. In operation, flexure of the side-wall 230 causes a relative spatial distance between the first and second modules 400 to vary correspondingly.
  • the first module 400 is provided with a source of radiation, and the second module 400 is operable to monitor a magnitude of a portion of the radiation received thereat and convey a corresponding signal by wireless to the electronic control unit (ECU) 950.
  • the signal is representative of a change of spatial separation between the first and second modules 400 as a function of their wheel 10 rotating.
  • the second module 400 is provided with a source of radiation, and the first module 400 is operable to monitor a magnitude of a portion of the radiation received thereat and convey a corresponding signal by wireless, for example using the mesh 210 of the tyre 30 as a wireless patch antenna, to the electronic control unit (ECU) 950.
  • the signal is representative of a change of spatial separation between the first and second modules 400 as a function of their wheel 10 rotating.
  • the radiation can be at least one of: a substantially constant magnetic field generated by a permanent magnet, an alternating magnetic field, ultrasonic radiation, wireless radiation, pulsed optical radiation, capacitively electrostatically-coupled radiation to mention a few examples.
  • Ultrasonic radiation is beneficially generated and received using piezo-electric transducers.

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  • Physics & Mathematics (AREA)
  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Physics & Mathematics (AREA)
  • Mathematical Physics (AREA)
  • Measuring Fluid Pressure (AREA)

Abstract

L'invention concerne un appareil de contrôle de roues (600, 680, 690, 2200) permettant de contrôler le fonctionnement d'une roue (10, 2500, 3000) d'un véhicule (900). L'appareil (600, 680, 690, 2200) comprend un module de capteur (400) monté de manière fonctionnelle pour tourner avec la roue (10, 2500, 3000). Le module (400) est couplé de façon à communiquer avec un dispositif de traitement (710, ECU 950) du véhicule (900). Le module (400) détecte au moins un paramètre physique de la roue (10, 2500, 3000) et génère un signal de capteur correspondant destiné au dispositif de traitement (950). Le dispositif de traitement (710, ECU 950) traite le signal de capteur pour calculer des données indiquant le fonctionnement de la roue (10, 2500, 3000). L'appareil (600, 680, 690, 2200) comprend un capteur (118) permettant de détecter une orientation angulaire (ϑ) de la roue (600, 680, 690, 2200). Le dispositif de traitement (710, ECU 950) permet de traiter le signal de capteur par rapport à l'orientation angulaire (ϑ, ω). En outre, le module (400) détecte les variations dynamiques se produisant dans le paramètre physique au cours d'une ou plusieurs révolutions de la roue (10, 2500, 3000) tel que communiqué dans le signal de capteur au dispositif de traitement (710, ECU 950) en vue de calculer les données indiquant le fonctionnement de la roue (10, 2500, 3000).
PCT/SE2007/001066 2007-11-30 2007-11-30 Appareil de contrôle de roues Ceased WO2009070065A1 (fr)

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WO2012089344A1 (fr) * 2010-12-30 2012-07-05 Continental Automotive France Procede de determination d'un angle de pivotement d'une unite roue montee sur une valve de gonflage de type "snap-in"
EP2487053A1 (fr) * 2011-02-11 2012-08-15 Continental Automotive France Procédé et dispositif de surveillance de données de pneumatiques de véhicule
WO2013135628A1 (fr) * 2012-03-16 2013-09-19 Continental Automotive Gmbh Dispositif et procédé pour la détermination d'une position angulaire absolue d'une roue d'un véhicule
CN103909793A (zh) * 2013-01-04 2014-07-09 英飞凌科技股份有限公司 支持间接轮胎压力监视的车轮速度传感器
DE102013202727A1 (de) 2013-02-20 2014-08-21 Aktiebolaget Skf Sensor, Vorrichtung, Verfahren und Computerprogramme zur Bestimmung einer Position
WO2014202443A1 (fr) * 2013-06-20 2014-12-24 Robert Bosch Gmbh Unité de détection pour un véhicule
US9016118B2 (en) 2010-12-22 2015-04-28 Caterpillar Inc. Mounting structure
US20160297262A1 (en) * 2013-11-25 2016-10-13 Kabushiki Kaisha Tokai Rika Denki Seisakusho Tire position determination system
CN107560872A (zh) * 2017-09-06 2018-01-09 深圳市安车检测股份有限公司 牵引车综合检测台及牵引车综合检测方法
WO2019166138A1 (fr) * 2018-02-28 2019-09-06 Robert Bosch Gmbh Dispositif de détection et procédé de détection de moyens de fixation de roue desserrés d'une roue
EP3637077A1 (fr) * 2018-10-08 2020-04-15 Continental Automotive GmbH Procédé de détection de roue non équilibrée d'un véhicule, unité de commande électronique conçue pour appliquer le procédé et support de stockage comprenant un code pour effectuer un tel procédé
WO2021108930A1 (fr) 2019-12-06 2021-06-10 Camso Inc. Systèmes et procédés de surveillance d'ensembles roues
CN118150045A (zh) * 2024-05-11 2024-06-07 山东鲁岳桥机械股份有限公司 一种在线式车轮动平衡检测装置
TWI866817B (zh) * 2022-10-05 2024-12-11 昕銳智能車輛科技有限公司 輪胎定位角度偵測型輪圈蓋裝置、輪胎定位角度偵測警示系統及輪胎定位角度偵測警示方法
TWI866816B (zh) * 2022-10-05 2024-12-11 昕銳智能車輛科技有限公司 輪胎定位角度偵測型輪圈蓋裝置、輪胎定位角度偵測警示系統及輪胎定位角度偵測警示方法
CN120697352A (zh) * 2025-08-21 2025-09-26 海安橡胶集团股份公司 一种用于轮胎钢丝的缠绕装置及缠绕方法
US12479235B2 (en) 2022-11-10 2025-11-25 Shin Ruei Intelligent Vehicle Technology Co., Ltd. Rim accessory for wheel positioning angle detection, warning system for wheel positioning angle detection and warning method for wheel positioning angle detection

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Publication number Priority date Publication date Assignee Title
CN101985268B (zh) * 2010-05-17 2014-02-26 中电国科(北京)科技有限公司 一种汽车轮胎压力和温度无线监测系统
CN101985268A (zh) * 2010-05-17 2011-03-16 中电国科(北京)科技有限公司 一种汽车轮胎压力和温度无线监测系统
US9016118B2 (en) 2010-12-22 2015-04-28 Caterpillar Inc. Mounting structure
WO2012089344A1 (fr) * 2010-12-30 2012-07-05 Continental Automotive France Procede de determination d'un angle de pivotement d'une unite roue montee sur une valve de gonflage de type "snap-in"
FR2969962A1 (fr) * 2010-12-30 2012-07-06 Continental Automotive France Procede de determination d'un angle de pivotement d'unite roue montee sur une valve de gonflage de type "snap-in"
CN103269885B (zh) * 2010-12-30 2016-08-31 法国大陆汽车公司 确定安装在卡扣充气阀上的轮单元的枢转角的方法
US9891045B2 (en) 2010-12-30 2018-02-13 Continental Automotive France Method for determining a pivoting angle of a wheel unit mounted onto a snap-in inflation valve
CN103269885A (zh) * 2010-12-30 2013-08-28 法国大陆汽车公司 确定安装在卡扣充气阀上的轮单元的枢转角的方法
WO2013037431A1 (fr) * 2011-02-11 2013-03-21 Continental Automotive France Procede et dispositif de surveillance de donnees de pneumatiques de vehicule
CN103347713A (zh) * 2011-02-11 2013-10-09 法国大陆汽车公司 用于监视与车辆轮胎有关的数据的方法和设备
CN103347713B (zh) * 2011-02-11 2016-10-19 法国大陆汽车公司 用于监视与车辆轮胎有关的数据的方法和设备
EP2487053A1 (fr) * 2011-02-11 2012-08-15 Continental Automotive France Procédé et dispositif de surveillance de données de pneumatiques de véhicule
US9555671B2 (en) 2011-02-11 2017-01-31 Continental Automotive France Method and device for monitoring data relating to the tires of a vehicle
KR20140143762A (ko) * 2012-03-16 2014-12-17 콘티넨탈 오토모티브 게엠베하 차량의 휠의 절대 각위치를 결정하기 위한 장치 및 방법
KR102001277B1 (ko) * 2012-03-16 2019-07-17 콘티넨탈 오토모티브 게엠베하 차량의 휠의 절대 각위치를 결정하기 위한 장치 및 방법
CN104303015A (zh) * 2012-03-16 2015-01-21 大陆汽车有限公司 用于确定汽车车轮的绝对角度位置的装置和方法
WO2013135628A1 (fr) * 2012-03-16 2013-09-19 Continental Automotive Gmbh Dispositif et procédé pour la détermination d'une position angulaire absolue d'une roue d'un véhicule
US9701287B2 (en) 2012-03-16 2017-07-11 Continental Automotive Gmbh Device and method for determining an absolute angular position of a wheel of a vehicle
CN103909793A (zh) * 2013-01-04 2014-07-09 英飞凌科技股份有限公司 支持间接轮胎压力监视的车轮速度传感器
DE102013202727A1 (de) 2013-02-20 2014-08-21 Aktiebolaget Skf Sensor, Vorrichtung, Verfahren und Computerprogramme zur Bestimmung einer Position
KR102246522B1 (ko) * 2013-06-20 2021-04-30 로베르트 보쉬 게엠베하 차량용 센서 유닛
JP2016530488A (ja) * 2013-06-20 2016-09-29 ローベルト ボツシユ ゲゼルシヤフト ミツト ベシユレンクテル ハフツングRobert Bosch Gmbh 車両用センサユニット
CN105452836A (zh) * 2013-06-20 2016-03-30 罗伯特·博世有限公司 用于车辆的传感器单元
KR20160022310A (ko) * 2013-06-20 2016-02-29 로베르트 보쉬 게엠베하 차량용 센서 유닛
US9911250B2 (en) 2013-06-20 2018-03-06 Robert Bosch Gmbh Sensor unit for a vehicle
CN105452836B (zh) * 2013-06-20 2018-05-29 罗伯特·博世有限公司 用于车辆的传感器单元
RU2684345C2 (ru) * 2013-06-20 2019-04-08 Роберт Бош Гмбх Блок обработки и управления
WO2014202443A1 (fr) * 2013-06-20 2014-12-24 Robert Bosch Gmbh Unité de détection pour un véhicule
US9694631B2 (en) * 2013-11-25 2017-07-04 Kabushiki Kaisha Tokai Rika Denki Seisakusho Tire position determination system
US20160297262A1 (en) * 2013-11-25 2016-10-13 Kabushiki Kaisha Tokai Rika Denki Seisakusho Tire position determination system
CN107560872A (zh) * 2017-09-06 2018-01-09 深圳市安车检测股份有限公司 牵引车综合检测台及牵引车综合检测方法
WO2019166138A1 (fr) * 2018-02-28 2019-09-06 Robert Bosch Gmbh Dispositif de détection et procédé de détection de moyens de fixation de roue desserrés d'une roue
EP3637077A1 (fr) * 2018-10-08 2020-04-15 Continental Automotive GmbH Procédé de détection de roue non équilibrée d'un véhicule, unité de commande électronique conçue pour appliquer le procédé et support de stockage comprenant un code pour effectuer un tel procédé
WO2021108930A1 (fr) 2019-12-06 2021-06-10 Camso Inc. Systèmes et procédés de surveillance d'ensembles roues
EP4069530A4 (fr) * 2019-12-06 2024-01-24 Camso Inc. Systèmes et procédés de surveillance d'ensembles roues
US12296621B2 (en) 2019-12-06 2025-05-13 Camso Inc. Systems and methods for monitoring wheel assemblies
TWI866817B (zh) * 2022-10-05 2024-12-11 昕銳智能車輛科技有限公司 輪胎定位角度偵測型輪圈蓋裝置、輪胎定位角度偵測警示系統及輪胎定位角度偵測警示方法
TWI866816B (zh) * 2022-10-05 2024-12-11 昕銳智能車輛科技有限公司 輪胎定位角度偵測型輪圈蓋裝置、輪胎定位角度偵測警示系統及輪胎定位角度偵測警示方法
US12479235B2 (en) 2022-11-10 2025-11-25 Shin Ruei Intelligent Vehicle Technology Co., Ltd. Rim accessory for wheel positioning angle detection, warning system for wheel positioning angle detection and warning method for wheel positioning angle detection
CN118150045A (zh) * 2024-05-11 2024-06-07 山东鲁岳桥机械股份有限公司 一种在线式车轮动平衡检测装置
CN120697352A (zh) * 2025-08-21 2025-09-26 海安橡胶集团股份公司 一种用于轮胎钢丝的缠绕装置及缠绕方法

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