Krawat et al., 2019 - Google Patents
A Lorentz Force Magnetometer with 600 nT/√ Hz Resolution over a Bandwidth of 480 Hz utilizing Force Feedback and CMOS Readout ElectronicsKrawat et al., 2019
- Document ID
- 11667539019625143806
- Author
- Krawat D
- Marx M
- Nessler S
- Biegler H
- Dienger M
- Rockstroh J
- Dehé A
- Manoli Y
- Publication year
- Publication venue
- 2019 IEEE SENSORS
External Links
Snippet
This work presents a 1D-Lorentz force magnetometer embedded in an integrated electromechanical closed-loop readout circuit. The readout circuit tracks the mechanical resonance frequency of the sensor in order to operate it with the highest sensitivity and to …
- 230000035945 sensitivity 0 abstract description 6
Classifications
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01P—MEASURING LINEAR OR ANGULAR SPEED, ACCELERATION, DECELERATION, OR SHOCK; INDICATING PRESENCE, ABSENCE, OR DIRECTION, OF MOVEMENT
- G01P15/00—Measuring acceleration; Measuring deceleration; Measuring shock, i.e. sudden change of acceleration
- G01P15/02—Measuring acceleration; Measuring deceleration; Measuring shock, i.e. sudden change of acceleration by making use of inertia forces using solid seismic masses
- G01P15/08—Measuring acceleration; Measuring deceleration; Measuring shock, i.e. sudden change of acceleration by making use of inertia forces using solid seismic masses with conversion into electric or magnetic values
- G01P15/125—Measuring acceleration; Measuring deceleration; Measuring shock, i.e. sudden change of acceleration by making use of inertia forces using solid seismic masses with conversion into electric or magnetic values by capacitive pick-up
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R33/00—Arrangements or instruments for measuring magnetic variables
- G01R33/02—Measuring direction or magnitude of magnetic fields or magnetic flux
- G01R33/028—Electrodynamic magnetometers
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01P—MEASURING LINEAR OR ANGULAR SPEED, ACCELERATION, DECELERATION, OR SHOCK; INDICATING PRESENCE, ABSENCE, OR DIRECTION, OF MOVEMENT
- G01P15/00—Measuring acceleration; Measuring deceleration; Measuring shock, i.e. sudden change of acceleration
- G01P15/02—Measuring acceleration; Measuring deceleration; Measuring shock, i.e. sudden change of acceleration by making use of inertia forces using solid seismic masses
- G01P15/08—Measuring acceleration; Measuring deceleration; Measuring shock, i.e. sudden change of acceleration by making use of inertia forces using solid seismic masses with conversion into electric or magnetic values
- G01P2015/0805—Measuring acceleration; Measuring deceleration; Measuring shock, i.e. sudden change of acceleration by making use of inertia forces using solid seismic masses with conversion into electric or magnetic values being provided with a particular type of spring-mass-system for defining the displacement of a seismic mass due to an external acceleration
- G01P2015/0808—Measuring acceleration; Measuring deceleration; Measuring shock, i.e. sudden change of acceleration by making use of inertia forces using solid seismic masses with conversion into electric or magnetic values being provided with a particular type of spring-mass-system for defining the displacement of a seismic mass due to an external acceleration for defining in-plane movement of the mass, i.e. movement of the mass in the plane of the substrate
- G01P2015/0811—Measuring acceleration; Measuring deceleration; Measuring shock, i.e. sudden change of acceleration by making use of inertia forces using solid seismic masses with conversion into electric or magnetic values being provided with a particular type of spring-mass-system for defining the displacement of a seismic mass due to an external acceleration for defining in-plane movement of the mass, i.e. movement of the mass in the plane of the substrate for one single degree of freedom of movement of the mass
- G01P2015/0817—Measuring acceleration; Measuring deceleration; Measuring shock, i.e. sudden change of acceleration by making use of inertia forces using solid seismic masses with conversion into electric or magnetic values being provided with a particular type of spring-mass-system for defining the displacement of a seismic mass due to an external acceleration for defining in-plane movement of the mass, i.e. movement of the mass in the plane of the substrate for one single degree of freedom of movement of the mass for pivoting movement of the mass, e.g. in-plane pendulum
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01C—MEASURING DISTANCES, LEVELS OR BEARINGS; SURVEYING; NAVIGATION; GYROSCOPIC INSTRUMENTS; PHOTOGRAMMETRY OR VIDEOGRAMMETRY
- G01C19/00—Gyroscopes; Turn-sensitive devices using vibrating masses; Turn-sensitive devices without moving masses; Measuring angular rate using gyroscopic effects
- G01C19/56—Turn-sensitive devices using vibrating masses, e.g. vibratory angular rate sensors based on Coriolis forces
- G01C19/5719—Turn-sensitive devices using vibrating masses, e.g. vibratory angular rate sensors based on Coriolis forces using planar vibrating masses driven in a translation vibration along an axis
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01R—MEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
- G01R33/00—Arrangements or instruments for measuring magnetic variables
- G01R33/02—Measuring direction or magnitude of magnetic fields or magnetic flux
- G01R33/06—Measuring direction or magnitude of magnetic fields or magnetic flux using galvano-magnetic devices, e.g. Hall effect devices; using magneto-resistive devices
Similar Documents
| Publication | Publication Date | Title |
|---|---|---|
| US9588190B2 (en) | Resonant MEMS lorentz-force magnetometer using force-feedback and frequency-locked coil excitation | |
| JP4604037B2 (en) | Resonant magnetometer device | |
| JP6461993B2 (en) | Accelerometer | |
| Emmerich et al. | Magnetic field measurements with a novel surface micromachined magnetic-field sensor | |
| US6253612B1 (en) | Generation of mechanical oscillation applicable to vibratory rate gyroscopes | |
| US8878528B2 (en) | MEMS-based magnetic sensor with a Lorentz force actuator used as force feedback | |
| Langfelder et al. | Operation of Lorentz-force MEMS magnetometers with a frequency offset between driving current and mechanical resonance | |
| US10254355B2 (en) | Magnetic sensor including a Lorentz force transducer driven at a frequency different from the resonance frequency, and method for driving a Lorentz force transducer | |
| He et al. | A CMOS Readout Circuit for SOI Resonant Accelerometer With 4-$\mu\rm g $ Bias Stability and 20-$\mu\rm g/\sqrt {{\hbox {Hz}}} $ Resolution | |
| US20130104656A1 (en) | Electronic damper circuit for mems sensors and resonators | |
| EP3346281B1 (en) | Mems triaxial magnetic sensor with improved configuration | |
| CN105008935B (en) | Sensor with electrostatic pendulum accelerometer and method of controlling such sensor | |
| KR102421386B1 (en) | Accelerometers | |
| US20160084871A1 (en) | Dual-functional resonant magnetic field sensor | |
| Krawat et al. | A Lorentz Force Magnetometer with 600 nT/√ Hz Resolution over a Bandwidth of 480 Hz utilizing Force Feedback and CMOS Readout Electronics | |
| Sonmezoglu et al. | Dual-resonator MEMS Lorentz force magnetometer based on differential frequency modulation | |
| Chen et al. | Dual-resonator MEMS magnetometer based on self-clocking sigma-delta modulation | |
| Thompson et al. | Resonant MEMS magnetometer with capacitive read-out | |
| Sonmezoglu et al. | Dual-resonator MEMS magnetic sensor with differential amplitude modulation | |
| Cagdaser et al. | Low-voltage electrostatic actuation with inherent position feedback | |
| Sonmezoglu et al. | Off-resonance operation of a MEMS Lorentz force magnetometer with improved thermal stability of the scale factor | |
| US7064541B2 (en) | Complementary metal-oxide semiconductor xylophone bar magnetometer with automatic resonance control | |
| Oja et al. | A micromechanical DC-voltage reference | |
| JPWO2015079678A1 (en) | Angular velocity sensor driving circuit, angular velocity sensor, excitation method thereof, and driving IC chip | |
| Li et al. | Magnetic sensors based on micromechanical oscillators |