[go: up one dir, main page]

NL2033377A - Displacement response measuring device and measuring method under impact environment - Google Patents

Displacement response measuring device and measuring method under impact environment Download PDF

Info

Publication number
NL2033377A
NL2033377A NL2033377A NL2033377A NL2033377A NL 2033377 A NL2033377 A NL 2033377A NL 2033377 A NL2033377 A NL 2033377A NL 2033377 A NL2033377 A NL 2033377A NL 2033377 A NL2033377 A NL 2033377A
Authority
NL
Netherlands
Prior art keywords
angle sensor
measuring
displacement
rotating shaft
sensor
Prior art date
Application number
NL2033377A
Other languages
Dutch (nl)
Other versions
NL2033377B1 (en
Inventor
Wang Yuqi
Liu Haichao
Sun He
Han He
Yan Ming
Sun Ziqiang
Jin Yingli
Xu Wei
Ba Zhongcheng
Wu Zikun
Original Assignee
Univ Shenyang Technology
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 Univ Shenyang Technology filed Critical Univ Shenyang Technology
Publication of NL2033377A publication Critical patent/NL2033377A/en
Application granted granted Critical
Publication of NL2033377B1 publication Critical patent/NL2033377B1/en

Links

Classifications

    • GPHYSICS
    • G01MEASURING; TESTING
    • G01MTESTING STATIC OR DYNAMIC BALANCE OF MACHINES OR STRUCTURES; TESTING OF STRUCTURES OR APPARATUS, NOT OTHERWISE PROVIDED FOR
    • G01M7/00Vibration-testing of structures; Shock-testing of structures
    • G01M7/08Shock-testing
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01BMEASURING LENGTH, THICKNESS OR SIMILAR LINEAR DIMENSIONS; MEASURING ANGLES; MEASURING AREAS; MEASURING IRREGULARITIES OF SURFACES OR CONTOURS
    • G01B5/00Measuring arrangements characterised by the use of mechanical techniques
    • G01B5/004Measuring arrangements characterised by the use of mechanical techniques for measuring coordinates of points

Landscapes

  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Length Measuring Devices With Unspecified Measuring Means (AREA)

Abstract

Disclosed is a displacement response measuring device and a measuring method under an impact environment. Both ends of a base of the device are connected with an X—direction rotating frame through bearings of an X—direction rotating shaft; the X—direction rotating shaft is clamped with an X—direction angle sensor, and the X—direction angle sensor is fixed on the base; the Xdirection rotating frame is connected with a Z-direction rotating shaft through the bearings, and one end of the Z-direction rotating shaft is clamped with a Z-direction angle sensor; the Z-direction angle sensor is fixed on the X—direction rotating frame, and the Z-direction rotating shaft is connected with a Z-direction rotating block; the Z-direction rotating block is connected with a telescopic displacement sensor, and the end of the telescopic displacement sensor is connected with a connector. The measuring method is: recording a position of a measuring point when the measuring point is not impacted; when the measuring point is impacted, recording values of the telescopic displacement sensor, the Z-direction angle sensor and the X—direction angle sensor at each data acquisition moment in this process, and obtaining a displacement response of the measuring point through a displacement response model. The invention solves problems of an inconvenient installation, a large measurement error and the like of the existing measuring method.

Description

DISPLACEMENT RESPONSE MEASURING DEVICE AND MEASURING METHOD
UNDER IMPACT ENVIRONMENT
TECHNICAL FIELD
The invention relates to impact measurement technology, and in particular to a displacement response measuring device and a measuring method under an impact environment.
BACKGROUND
Impacts exist widely in aerospace, ships, automobiles and other related fields, so technicians in these fields pay great attention to responses of related equipment or parts after the impacts, so as to solve an impact of the impacts on the equipment or the parts through impact responses. A displacement response is one of the most important parameters in the impact response.
A point in a space may be represented by coordinates of X, Y and Z directions. Therefore, for a measurement of an impact displacement response of the point in the space, three displacement sensors are usually used to measure displacement changes in the X, Y and Z directions in a sampling time, and the displacement response of the point is obtained. This measuring method is simple in structure and intuitive in displacement response data. However, the sensors for measuring horizontal displacements in the X and Y directions must be at a same level as a measured point, so it is inconvenient to install the sensors at any point in a measurement space. In addition, an measurement error is increased by manually installing the sensors in three directions. Patent CN109341506B mentions a three-way displacement measuring device. The device adopts three groups of bases, a telescopic rod and three groups of displacement measuring modules, so that displacement measurements in the three directions may be concentrated together, and the measured point and the telescopic rod may be connected together, and the displacements of the measured point may be obtained through the displacement measuring modules. Because the three directions are perpendicular to each other, when the measuring device is started, the telescopic rod is located at a center of the largest base and perpendicular to a base plane. In order to connect the measured point with the telescopic rod, there must be an enough space between the measuring device and the measured point, so that the measured point is directly above the telescopic rod. The use of this device is inconvenient and flexible because of an additional requirement for an installation position. In addition, a displacement value is obtained by measuring a deformation of an elastic sheet caused by a spring pull through the displacement measuring module. An accuracy of the displacement value of the measured point is disturbed due to an additional spring force.
SUMMARY
Purpose: the invention provides a displacement response measuring device and a measuring method under an impact condition, aiming at solving problems of an inconvenient installation, a large measurement error and the like of the existing measuring method.
Technical scheme:
According to the displacement response measuring device, both ends of a base of the device are connected with an X-direction rotating frame through bearings of an X-direction rotating shaft; the X-direction rotating shaft is clamped with an X-direction angle sensor, and the
X-direction angle sensor is fixed on the base; the X-direction rotating frame is connected with a
Z-direction rotating shaft through the bearings, and one end of the Z-direction rotating shaft is clamped with a Z-direction angle sensor; the Z-direction angle sensor is fixed on the X-direction rotating frame, and the Z-direction rotating shaft is connected with a Z-direction rotating block; the Z-direction rotating block is connected with a telescopic displacement sensor, and the end of the telescopic displacement sensor is connected with a connector.
Furthermore, the X-direction rotating frame has a cuboid hollow structure, with shaft holes at both ends in a long side direction and Z-direction bearing holes at both ends in a short side direction.
Furthermore, the Z-direction rotating shaft has a stepped shaft structure, with a pin hole in a middle, and a first plane at one end with a smaller diameter, and the first plane is clamped with the Z-direction angle sensor.
Furthermore, the X-direction rotating shaft is clamped with the X-direction angle sensor through a second plane of a connecting pin.
Furthermore, one end of the connector is provided with a joint bearing, and the other end is provided with a threaded hole; the threaded hole is fixedly connected with the end of the telescopic displacement sensor, and the joint bearing is used for connecting a measured piece.
A measuring method of the displacement response measuring device under the impact environment,
S1, setting the base and the X-direction rotating frame at a horizontal position, and setting the position when the telescopic displacement sensor is vertical and fully retracted as an initial position of the device;
S2, fixing the base on an installation basis of measured equipment, and connecting the connector with a measuring point of the measured equipment, and recording values of the telescopic displacement sensor, the Z-direction angle sensor and the X-direction angle sensor at this time to obtain the position of the measuring point of the measured equipment when the measuring point is not impacted; and
S3, generating a space displacement with the measuring point when the measured equipment is impacted, and recording the values of the telescopic displacement sensor, the Z- direction angle sensor and the X-direction angle sensor at each data acquisition moment in this process, and obtaining a displacement response of the measuring point through a displacement response model.
Further, the displacement response model is: the initial position O is expressed as:
P=[0001] a transformation matrix of an elongation m in a Y-direction, a rotation angle a around an X axis and the rotation angle B around a Z axis is as follows: one ole 0 6 00 osf sing DD) + … 1 #8 {omer soe © | so 8 oom OO 6d Ld saw cose OD 1 0 mo L006 LDD OL, the location A of the connector is expressed as:
P' = PT = [-mcosasinB mcosacosB msina 1], where m, a and B are measured by the telescopic displacement sensor, the X-direction angle sensor and the Z-direction angle sensor respectively, and the rotation angles a and B are positive counter clockwise and negative clockwise.
Beneficial effects: (1) the displacement response measuring device under the impact condition provided by the invention is small in size and convenient to install, and may be connected with any point of the measured equipment; (2) the displacement response measuring device under the impact condition provided by the invention has advantages of an integrated arrangement of the sensors, no external force interference and a high measurement accuracy; and (3) the displacement response measuring device under the impact condition provided by the invention is simple in structure and convenient to manufacture.
BRIEF DESCRIPTION OF THE FIGURES
Fig. 1 is a structural diagram of the present invention.
Fig. 2 is a sectional view of the present invention along an axis of a piece 3.
Fig. 3 is a sectional view of the present invention along an axis of a piece 7.
Fig. 4 is a structural diagram of a piece 1.
Fig. 5 is a structural diagram of a piece 2.
Fig. 6 is a structural diagram of a piece 3.
Fig. 7 is a structural diagram of a piece 6.
Fig. 8 is a structural diagram of a piece 7.
Fig. 9 is a structural diagram of a piece 10.
Reference numbers: 1. base, 1-1. vertical plate, 1-2. X-direction bearing hole, 2. X-direction rotating frame, 2-1. shaft hole, 2-2. Z-direction bearing hole, 3. Z-direction rotating shaft, 3-1. pin hole, 3-2. first plane, 4. Z-direction rotating block, 5. telescopic displacement sensor, 6. connector, 7. X- direction rotating shaft, 7-1. large diameter end, 7-2. small diameter end, 7-3. connecting pin hole, 8. Z-direction angle sensor, 9. X-direction angle sensor, 10. connecting pin, 10-1. cylindrical end, 10-2. second plane, 11. pin shaft, 12. Z-direction bearing, 13. X-direction bearing.
DESCRIPTION OF THE INVENTION
The present invention is described in more detail with reference to following drawings.
As shown in Figs. 1-3, a displacement response measuring device under an impact environment according to the present invention includes a base 1, an X-direction rotating frame 2, a Z-direction rotating shaft 3, a Z-direction rotating block 4, a telescopic displacement sensor 5, a connector 6, an X-direction rotating shaft 7, a Z-direction angle sensor 8, an X-direction angle sensor 9, a connecting pin 10, a pin shaft 11, X-direction bearings 12 and Z-direction bearings 13.
As shown in Fig. 4, the base 1 has an inverted n-shaped structure, and two ends of a bottom plate of the base 1 are fixedly provided with vertical plates 1-1 with bearing holes 1-2.
As shown in Fig. 5, the X-direction rotating frame 2 has a cuboid hollow structure, with shaft holes 2-1 at both ends in a long side direction and Z-direction bearing holes 2-2 at both ends in a short side direction.
As shown in Fig. 8, the Z-direction rotating shaft 3 has a stepped shaft structure, with a pin hole 3-1 in a middle, and a first plane 3-2 at one end with a smaller diameter, so that a cross section of this end is an incomplete circle.
As shown in Fig. 2, the Z-direction bearings 12 are installed at both ends of the Z-direction rotating shaft 3, and the Z-direction bearings 12 are installed in the Z-direction bearing holes 2-2 of the X-direction rotating frame 2. The Z-direction angle sensor 8 is fixed on an outer surface of the long side of the X-direction rotating frame 2, and a shape of a central hole of the Z-direction angle sensor 8 is the same as a cross-sectional shape of a first plane 3-2 end of the Z-direction rotating shaft 3, so that the first plane 3-2 end of the Z-direction rotating shaft 3 is matched with the central hole of the Z-direction angle sensor 8, and an internal angle measuring mechanism of the Z-direction angle sensor 8 is driven to rotate through the first plane 3-2. The Z-direction rotating block 4 is installed at a middle position of the Z-direction rotating shaft 3. As shown in
Fig. 3, the pin shaft 11 connects the Z-direction rotating shaft 3 with the Z-direction rotating block 4, and the telescopic displacement sensor 5 is installed on the Z-direction rotating block 4.
As shown in Fig. 7, the connector 6 is provided with a joint bearing 6-1 and a threaded hole 6-2. Since the joint bearing 6-1 may swing in a certain range, the connector 6 may be arbitrarily connected with a measured piece within a allowed swing range of the joint bearing. Through the threaded hole 6-2, the connector 6 is installed at the end of the telescopic displacement sensor 5.
As shown in Fig. 8, the X-direction rotating shaft 7 has a cylindrical structure and is 5 provided with a large diameter end 7-1, a small diameter end 7-2 and a connecting pin hole 7-3.
As shown in Fig. 9, the connecting pin 10 has a bar-shaped structure, with a cylindrical end 10-1 and a second plane 10-2, and the end with the second plane 10-2 has an incomplete circular cross section.
As shown in Fig. 3, the large diameter end 7-1 of the X-direction rotating shaft 7 is installed in each shaft hole 2-1 of the X-direction rotating frame 2 by screws, and the small diameter end 7-2 is installed with each X-direction bearing 13. the X-direction bearings 13 are installed in the bearing holes 1-2 of the base 1. The X-direction angle sensor 9 is installed on the outer surface of one vertical plate 1-1 of the base 1, and the shape of the central hole of the X-direction angle sensor 9 is the same as the cross-sectional shape of the second plane 10-2 end of the connecting pin 10. The cylindrical end 10-1 of the connecting pin 10 is installed in the connecting pin hole 7-3, and the second plane 10-2 end may be matched with the central hole of the X-direction angle sensor 9; and the X-direction rotating shaft 7 drives the internal angle measuring mechanism of the X-direction angle sensor 9 to rotate through the second plane 10- 2 of the connecting pin 10.
Further, a measuring method under an impact condition according to the present invention is described. The displacement response measuring device under the impact environment of the present invention may set the base 1 and the X-direction rotating frame 2 at a horizontal position, and set the position when the telescopic displacement sensor 5 is vertically and completely retracted as an initial position of the device. The device is fixed on an installation basis of measured equipment through the base 1, and the connector 6 is connected with a measuring point of the measured equipment. At this time, the telescopic displacement sensor 5 is extended, and the Z-direction rotating block 4 and the Z-direction rotating shaft 3 rotate, so that the Z-direction angle sensor 8 generates an angle value; and the X-direction rotating frame 2 and the X-direction rotating shaft 7 rotate, so the X-direction angle sensor 9 generates the angle value. Data acquisition equipment is used to record the values of the telescopic displacement sensor 5, the Z-direction angle sensor 8 and the X-direction angle sensor 9 at this time, so that the position of the measuring point of the measured equipment is obtained when the measured equipment is not impacted. When the measured equipment is impacted, the measuring point of the measured equipment has a spatial displacement due to an own deformation of the measured equipment or a vibration damping effect of a vibration isolator; during an impact process, when the measuring device is not impacted relative to the measured equipment, the telescopic displacement sensor 5 is continuously extended and shortened; the
Z-direction rotating block 4 and the Z-direction rotating shaft 3 rotate continuously, so that the Z-
direction angle sensor 8 generates a variable angle value; and the X-direction rotating frame 2 and the X-direction rotating shaft 7 rotate continuously, so that the X-direction angle sensor 9 generates the variable angle value. The data acquisition equipment records the values of the telescopic displacement sensor 5, the Z-direction angle sensor 8 and the X-direction angle sensor 9 at each data acquisition moment in this process, and obtains a displacement response of the measuring point at each data acquisition moment in the impact process through a data analysis.
A specific calculation method of a displacement response model is as follows, as shown in
Fig. 1. At this time, a position A of the connector 6 is the position where the connector 8 is connected with the measuring point when the measured equipment is not impacted. Compared with the initial position O, that is the position when the base 1 and the X-direction rotating frame 2 are in the horizontal position and the telescopic displacement sensor 5 is vertically and completely retracted, the position A of the connector 6 changes as follows: an elongation m in the Y-direction, a rotation angle a around an X axis and the rotation angle B around a Z axis, and then the position A of the connector 6 is obtained by a following matrix equation: the initial position O is expressed as:
P=[0001]; a transformation matrix of the elongation m in the Y-direction, the rotation angle a around the X axis and the rotation angle B around Z axis is as follows: one oir wo 6 Oiosd sing DO) ae | & 1 8 8 | ose sine Ù : so aaf 00
U BL 08 sine cosa OO ¢ 1 0) 0 How 00 0 0 LD 9 GL
The location A of the connector is expressed as:
P' = PT = [-mcosasinB mcosacosB msina 1], where m, a and B are measured by the telescopic displacement sensor, the X-direction angle sensor and the Z-direction angle sensor respectively, and the rotation angles a and B are positive counter clockwise and negative clockwise.
Similarly, coordinates of a point A relative to the initial position at each data sampling moment in the impact process, that is the displacement response of the measuring point under the impact condition, may be obtained by the above matrix formula.
The displacement response measuring device under an impact environment according to the invention skilfully uses the angle sensors to convert a horizontal displacement into a rotating angle, and converts collected data into data expressed by a rectangular coordinate system which is easy to understand through the transformation matrix.
The data acquisition equipment and the sensors mentioned in the above embodiments are existing devices.
The above embodiments are only used to illustrate a technical scheme of the present invention, but not to limit it; although the present invention has been described in detail with reference to the above-mentioned embodiments, it should be understood by those skilled in the art that an essence of the corresponding technical solutions does not deviate from a scope of technical solutions of the embodiments of the present invention by modifying the technical solutions described in the above-mentioned embodiments, or equivalently replacing some or all of the technical features.

Claims (7)

CONCLUSIESCONCLUSIONS 1. Een inrichting voor het meten van de verplaatsingsreactie bij een botsing, waarbij: — beide uiteinden van een basis (1} van de inrichting verbonden zijn met een in X-richting draaiend frame (2) door middel van lagers van een X-richting-draaiende as (7); — de X-richting-roterende as (7) is vastgeklemd met een X-richting hoeksensor{9), en de X-richting-hoeksensor (9) is bevestigd op de basis (1); — het X-richting-roterende frame (2) is verbonden met een Z-richting-roterende as (3) via de lagers, en een uiteinde van de Z-richting-roterende as (3) is ingeklemd met een Z- richting-hoeksensor (8); — de Z-richting-hoeksensor (8) is bevestigd op het X-richting-roterende frame (2), en de Z- richting-roterende as (3) is verbonden met een Z-richting-roterend blok (4); — het Z-richting-roterende blok (4) is verbonden met een telescopische verplaatsingssensor (5), en het uiteinde van de telescopische verplaatsingssensor (5) is verbonden met een connector (6).1. A device for measuring the displacement response in a collision, where: — both ends of a base (1} of the device are connected to an X-rotating frame (2) by means of X-direction bearings rotating shaft (7), - the X-direction rotating shaft (7) is clamped with an X-direction angle sensor{9), and the X-direction angle sensor (9) is fixed on the base (1); - the X-direction rotating frame (2) is connected with a Z-direction rotating shaft (3) through the bearings, and one end of the Z-direction rotating shaft (3) is clamped with a Z-direction angle sensor (8); - the Z direction angle sensor (8) is mounted on the X direction rotating frame (2), and the Z direction rotating shaft (3) is connected to a Z direction rotating block (4); - the Z-direction rotating block (4) is connected to a telescopic displacement sensor (5), and the end of the telescopic displacement sensor (5) is connected to a connector (6). 2. De inrichting voor het meten van de verplaatsingsreactie bij een botsing volgens conclusie 1, waarbij het X-richting-roterende frame (2) een kubusvormige holle structuur heeft, met asgaten (2-1) aan beide uiteinden in een lange zijrichting en Z-richting-lagergaten (2-2) aan beide uiteinden in een korte zijrichting.The apparatus for measuring the displacement reaction in a collision according to claim 1, wherein the X-direction rotating frame (2) has a cubic hollow structure, with shaft holes (2-1) at both ends in a long side direction and Z direction bearing holes (2-2) at both ends in a short side direction. 3. De inrichting voor het meten van de verplaatsingsreactie bij een botsing volgens conclusie 1, waarbij de in Z-richting draaiende as (3) een getrapte asstructuur heeft, met een pengat (3-1) in het midden, en een eerste vlak (3-2) aan een uiteinde met een kleinere diameter, en het eerste vlak (3-2) is vastgeklemd met de Z-richting-hoeksensor (8).The apparatus for measuring the displacement reaction in a collision according to claim 1, wherein the Z-rotating shaft (3) has a stepped shaft structure, with a pin hole (3-1) in the center, and a first face ( 3-2) at a smaller diameter end, and the first face (3-2) is clamped with the Z direction angle sensor (8). 4. De inrichting voor het meten van de verplaatsingsreactie bij een botsing volgens conclusie 1, waarbij de X-richting-roterende as(7) is vastgeklemd met de X-richting-hoeksensor (9) via een tweede vlak (10-2) van een verbindingspen (10).The apparatus for measuring the displacement response in a collision according to claim 1, wherein the X-direction rotating shaft (7) is clamped with the X-direction angle sensor (9) through a second face (10-2) of a connecting pin (10). 5. De inrichting voor het meten van de verplaatsingsreactie bij een botsing volgens conclusie 1, waarbij — een uiteinde van het verbindingsstuk (8) voorzien is van een gezamenlijk lager (6-1), en het andere uiteinde voorzien is van een schroefgat (6-2); — het schroefgat (8-2) vast is verbonden met het uiteinde van de telescopische verplaatsingssensor (5), en het gezamenlijke lager (6-1) wordt gebruikt voor het verbinden van een gemeten deel.The apparatus for measuring the displacement response in a collision according to claim 1, wherein - one end of the connecting piece (8) is provided with a common bearing (6-1), and the other end is provided with a screw hole (6 -2); - the screw hole (8-2) is fixedly connected to the end of the telescopic displacement sensor (5), and the joint bearing (6-1) is used for connecting a measured part. 6. Een werkwijze voor het meten onder toepassing van de inrichting voor het meten van de verplaatsingsreactie bij een botsing volgens conclusie 1, waarbij: S 1: de basis (1) en het X-richting-draaiende frame (2) in een horizontale positie worden gezet, en de positie wanneer de telescopische verplaatsingssensor (5) verticaal en volledig ingetrokken is, wordt ingesteld als beginpositie van de inrichting; S 2: bevestiging van de basis (1) op een installatiebasis van meetapparatuur, en verbinding van de connector (6) met een meetpunt van de meetapparatuur, en registratie van waarden van de telescopische verplaatsingssensor (5), de Z-richting- hoeksensor (8) en de X-richting-hoeksensor (9) op dit moment om de positie van het meetpunt van de meetapparatuur te verkrijgen wanneer het meetpunt niet wordt geraakt; en S 3: genereren van een ruimteverplaatsing met het meetpunt wanneer de gemeten apparatuur wordt geraakt, en registreren van de waarden van de telescopische verplaatsingssensor (5), de Z-richting-hoeksensor (8) en de X-richting-hoeksensor (9) op elk gegevensverwervingsmoment in dit proces, en verkrijgen van een verplaatsingsrespons van het meetpunt door middel van een verplaatsingsresponsmodel.A method of measurement using the apparatus for measuring the displacement reaction upon impact according to claim 1, wherein: S1: the base (1) and the X-direction rotating frame (2) in a horizontal position are set, and the position when the telescopic displacement sensor (5) is vertical and fully retracted is set as the home position of the device; S 2: fixing the base (1) to an installation base of measuring equipment, and connecting the connector (6) to a measuring point of the measuring equipment, and recording values of the telescopic displacement sensor (5), the Z-direction-angle sensor ( 8) and the X direction angle sensor (9) at this time to obtain the position of the measuring point of the measuring equipment when the measuring point is not hit; and S3: generating a space displacement with the measurement point when the measured equipment is hit, and recording the values of the telescopic displacement sensor (5), the Z direction angle sensor (8) and the X direction angle sensor (9) at each data acquisition point in this process, and obtaining a displacement response of the measurement point by means of a displacement response model. 7. De werkwijze voor het meten onder toepassing van de inrichting voor het meten van de verplaatsingsreactie bij een botsing volgens conclusie 1, waarbij het verplaatsingsresponsmodel is: — de beginpositie O wordt uitgedrukt als: P = [0 0 0 1]; — een transformatiematrix van een elongatie m in de Y-richting, een rotatiehoek a rond de X-as en de rotatiehoek B rond de Z-as als volgt is: os ooo 0 & U esp sing 6 0) 0 D 1 OD sag cosa U) 0D 81 Dy 0 wo to {1 ii i i { ¢ 8 1] — de plaats A van het verbindingsstuk (6) wordt uitgedrukt als: P'= PT = [-mcosasinp mcosacosB msina 1], waarbij m, a en B worden gemeten door respectievelijk de telescopische verplaatsingssensor (5), de X-richting-hoeksensor (98) en de Z-richting hoeksensor (8), en de rotatiehoeken a en B positief tegen de klok in en negatief met de klok mee zijn.The method of measurement using the apparatus for measuring displacement response upon impact according to claim 1, wherein the displacement response model is: - the initial position O is expressed as: P = [0 0 0 1]; — a transformation matrix of an elongation m in the Y direction, a rotation angle a about the X axis and the rotation angle B about the Z axis is as follows: os ooo 0 & U esp sing 6 0) 0 D 1 OD sag cosa U) 0D 81 Dy 0 wo to {1 ii i i { ¢ 8 1] — the position A of the connector (6) is expressed as: P'= PT = [-mcosasinp mcosacosB msina 1], where m, a and B are measured by the telescopic displacement sensor (5), the X-direction-angle sensor (98), and the Z-direction angle sensor (8), respectively, and the rotation angles α and β are positive counterclockwise and negative clockwise.
NL2033377A 2021-11-23 2022-10-23 Displacement response measuring device and measuring method under impact environment NL2033377B1 (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202111391306.0A CN114001903A (en) 2021-11-23 2021-11-23 Displacement response measuring device and measuring method under impact environment

Publications (2)

Publication Number Publication Date
NL2033377A true NL2033377A (en) 2023-06-13
NL2033377B1 NL2033377B1 (en) 2023-11-16

Family

ID=79929874

Family Applications (1)

Application Number Title Priority Date Filing Date
NL2033377A NL2033377B1 (en) 2021-11-23 2022-10-23 Displacement response measuring device and measuring method under impact environment

Country Status (2)

Country Link
CN (1) CN114001903A (en)
NL (1) NL2033377B1 (en)

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN119803374A (en) * 2025-03-13 2025-04-11 中铁第一勘察设计院集团有限公司 Bridge displacement monitoring system and method based on tie rod angle displacement meter

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102483318A (en) * 2009-05-19 2012-05-30 使力得法国公司 3D measuring device
CN105403182A (en) * 2015-12-13 2016-03-16 内蒙古北方重工业集团有限公司 Spatial position coordinate real-time measuring device
US20170016709A1 (en) * 2015-07-15 2017-01-19 Kistler Holding Ag Body deformation sensor and use of such a body deformation sensor
US20190003814A1 (en) * 2016-11-30 2019-01-03 Teruko ISHIKAWA Displacement measuring device
CN109341506A (en) 2018-11-16 2019-02-15 武汉理工大学 Three-way displacement measuring device

Family Cites Families (39)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20120031193A1 (en) * 2009-04-01 2012-02-09 Purdue Research Foundation Identification of loads acting on an object
CN101839797B (en) * 2010-04-24 2011-08-31 上海交通大学 Device for testing transverse impact rigidity and damping characteristic of pipe joint for naval vessel
CN103207118B (en) * 2012-01-16 2014-12-24 中国石油天然气集团公司 Real-time measuring apparatus and real-time measuring method for large deformation and stress of test tube in steel pipe bending deformation
CN103018040B (en) * 2012-12-07 2015-01-14 清华大学 Bearing rigidity test system of bevel gear of automobile driving axle assembly
CN103245293B (en) * 2013-05-13 2015-09-30 长春理工大学 Adopt the device and method of laser rotary mirror scanning survey annular wheel pattern
CN103954210B (en) * 2014-05-21 2015-06-03 中国葛洲坝集团股份有限公司 Measuring device and method of automatic non-contact hydro-generator rotor roundness
CN104400560B (en) * 2014-11-07 2016-11-23 西安交通大学 A kind of numerical control machine tool cutting operating mode lower main axis orbit of shaft center On-line Measuring Method
KR20160095220A (en) * 2015-01-31 2016-08-11 조선대학교산학협력단 Impulse measuring device for vehicle-mounted cushions
CN104792280B (en) * 2015-04-21 2017-08-11 上海大学 Displacement-type bearing touch angle measuring method
CN105043438B (en) * 2015-05-18 2017-07-28 西安航空制动科技有限公司 Space object multi-Dimensional parameters measurement apparatus
CN105606016B (en) * 2015-09-11 2018-02-27 浙江理工大学 A kind of steric strain measurement apparatus and method based on the positioning of three axial rakes
US10317313B2 (en) * 2015-11-18 2019-06-11 Ascendant Engineering Solutions Large displacement, tuned marine vessel deck simulating fixture for shock isolated equipment
CN105333848B (en) * 2015-11-23 2017-12-12 西安航空制动科技有限公司 A kind of measurement apparatus and measuring method of aero tyre decrement
CN205620103U (en) * 2016-05-13 2016-10-05 沈阳工业大学 A low -frequency oscillator device for measuring low -frequency range shock response spectrum
CN105910542A (en) * 2016-06-08 2016-08-31 浙江工业大学 Non-contact measurement bearing sphere geometry parameter apparatus
CN106403848A (en) * 2016-09-02 2017-02-15 邵阳学院 Single-point laser rotation scanning-based deep hole straightness detection device and detection method
CN107218881A (en) * 2017-05-24 2017-09-29 中煤张家口煤矿机械有限责任公司 A kind of the middle pan of scraper conveyor posture on-line measuring device
CN207610831U (en) * 2017-06-23 2018-07-13 沈阳工业大学 Special Displacement Sensor for Reed Meter Response Measurement
CN109581961B (en) * 2017-09-28 2021-07-02 上海微电子装备(集团)股份有限公司 Rotating shaft rotating angle measuring device and method
CN110030940B (en) * 2018-01-11 2021-05-18 广州微易轨道交通科技有限公司 Object surface high-precision three-dimensional measurement method and device based on rotary coding technology
CN108827578A (en) * 2018-04-23 2018-11-16 东北大学 A kind of the key roof block inbreak experimental rig and method of two-way quiet dynamic load
CN109373880B (en) * 2018-08-31 2021-04-30 湘潭大学 Mountain crack monitoring and early warning system and early warning method
CN109489556B (en) * 2019-01-05 2020-09-08 中国航空制造技术研究院 A contact surface normal measurement device and method for aircraft assembly
CN109931888A (en) * 2019-03-26 2019-06-25 吉林大学 A kind of method of non-contact laser Precision measurement cylindrical gear profile radial disbalance
CN110296805B (en) * 2019-07-23 2020-12-04 中国船舶科学研究中心(中国船舶重工集团公司第七0二研究所) Eccentric wheel type horizontal shock spectrum measuring device and its installation and measuring method
CN110472365B (en) * 2019-08-22 2023-04-18 苏州智科源测控科技有限公司 Method for establishing modal test three-dimensional geometric model
CN110470242B (en) * 2019-08-23 2020-11-27 贵阳新天光电科技有限公司 Device and method for measuring roundness of inner hole of large part in situ
CN110530272B (en) * 2019-10-09 2021-02-12 河南科技大学 Non-contact measuring device and measuring method for position of inner ring groove of angular contact ball bearing
CN110763254B (en) * 2019-10-17 2023-01-03 哈尔滨工程大学 Double-shaft indexing mechanism based on MEMS navigation system and calibration method thereof
CN110658057A (en) * 2019-11-13 2020-01-07 合肥工业大学 Method and device for measuring section deformation of circular pipe in drop hammer impact test
CN111336909B (en) * 2020-03-26 2021-06-01 大连三环复合材料技术开发股份有限公司 Method for measuring oil film thickness of thrust bearing-babbit metal tile for water turbine
CN111561882B (en) * 2020-06-19 2024-07-02 中国工程物理研究院机械制造工艺研究所 Dynamic measuring device and measuring method for six degrees of freedom of rotary shaft
CN112146574B (en) * 2020-07-30 2021-08-13 浙江大学 A high-precision non-contact dynamic angle measuring device and method thereof
CN112254667B (en) * 2020-09-29 2022-05-31 扬州大学 Gear offset measurement method based on laser displacement sensor
CN112378345B (en) * 2020-09-29 2022-05-31 扬州大学 Gear angle offset measuring device and method based on laser displacement sensor
CN112945145A (en) * 2021-01-23 2021-06-11 西安交通大学 Non-contact corner measuring method based on multipoint ranging
CN112816001B (en) * 2021-02-26 2022-10-14 武汉理工大学 Jacking process-based synchronous testing method for load displacement of bearings of multiple support shaft systems
CN113252274B (en) * 2021-04-02 2022-06-17 西南交通大学 Impact test device and impact test method for energy dissipater
CN216410592U (en) * 2021-11-23 2022-04-29 沈阳工业大学 A displacement response measuring device under shock environment

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102483318A (en) * 2009-05-19 2012-05-30 使力得法国公司 3D measuring device
US20170016709A1 (en) * 2015-07-15 2017-01-19 Kistler Holding Ag Body deformation sensor and use of such a body deformation sensor
CN105403182A (en) * 2015-12-13 2016-03-16 内蒙古北方重工业集团有限公司 Spatial position coordinate real-time measuring device
US20190003814A1 (en) * 2016-11-30 2019-01-03 Teruko ISHIKAWA Displacement measuring device
CN109341506A (en) 2018-11-16 2019-02-15 武汉理工大学 Three-way displacement measuring device

Also Published As

Publication number Publication date
CN114001903A (en) 2022-02-01
NL2033377B1 (en) 2023-11-16

Similar Documents

Publication Publication Date Title
CN202886097U (en) Mobile rigidity test equipment
NL2033377B1 (en) Displacement response measuring device and measuring method under impact environment
CN105588637B (en) A kind of complicated stable sound field acoustic pressure test device
CN103323097A (en) Ultra-low frequency high-accuracy micro-vibration measuring system
CN111168718B (en) Collaborative robot arm and environment collision force and collision power detection device
CN204101386U (en) A kind of exhaust system flexible hinge performance testing device
CN101929896A (en) High-precision friction dynamic process testing device and testing method
CN104390772A (en) Device and method for testing static and dynamic variable friction of telescopic mechanism
CN113176027B (en) Spring tube torque measuring device and test method thereof
CN101982745B (en) Pinless hinge torque test device
CN102998254A (en) Micro friction measuring device
CN103680641B (en) A kind of precisely locating platform based on compliant structure six degree of freedom
CN112178466A (en) Pipeline outside gas leakage detection device
CN102967243A (en) Detection device for deflection calibration of axially-symmetrical thrust vectoring nozzle
CN214621277U (en) Vibration detection equipment for rotor part of aircraft engine
CN110160739A (en) High-frequency vibration unsteady aerodynamic force generation device
CN216410592U (en) A displacement response measuring device under shock environment
CN107044937B (en) Tension torsion extensometer with spherical bearing linkage
CN212111606U (en) Executor testing arrangement and executor test cabinet
CN219694486U (en) Vertical stiffness calibration device for equivalent spring model of standing seam metal enclosure structure
CN220437649U (en) Online calibration device for torque of dynamometer
CN203644399U (en) Six-degree of freedom precision positioning platform based on compliant composition
CN102353443B (en) Elastic vibration disturbance testing system with adjustable rigidity
CN209028918U (en) Coriolis acceleration measurement and acceleration synthesis theorem testing experimental device
CN112344827A (en) High-speed plate thickness measuring device