Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Energy Loss in a MEMS Disk Resonator Gyroscope

View through CrossRef
Analysing and minimizing energy loss is crucial for high performance disk resonator gyroscopes (DRGs). Generally, the primary energy loss mechanism for high vacuum packaged microelectromechanical system (MEMS) resonators includes thermoelastic damping, anchor loss, and electronic damping. In this paper, the thermoelastic damping, anchor loss, and electronic damping for our DRG design are calculated by combining finite element analysis and theoretical derivation. Thermoelastic damping is the dominant energy loss mechanism and contributes over 90% of the total dissipated energy. Benefiting from a symmetrical structure, the anchor loss is low and can be neglected. However, the electronic damping determined by the testing circuit contributes 2.6%–9.6% when the bias voltage increases from 10 V to 20 V, which has a considerable impact on the total quality factor (Q). For comparison, the gyroscope is fabricated and seal-packaged with a measured maximum Q range of 141k to 132k when the bias voltage varies. In conclusion, thermoelastic damping and electronic damping essentially determine the Q of the DRG. Thus, optimizing the resonance structure and testing the circuit to reduce energy loss is prioritized for a high-performance DRG design.
Title: Energy Loss in a MEMS Disk Resonator Gyroscope
Description:
Analysing and minimizing energy loss is crucial for high performance disk resonator gyroscopes (DRGs).
Generally, the primary energy loss mechanism for high vacuum packaged microelectromechanical system (MEMS) resonators includes thermoelastic damping, anchor loss, and electronic damping.
In this paper, the thermoelastic damping, anchor loss, and electronic damping for our DRG design are calculated by combining finite element analysis and theoretical derivation.
Thermoelastic damping is the dominant energy loss mechanism and contributes over 90% of the total dissipated energy.
Benefiting from a symmetrical structure, the anchor loss is low and can be neglected.
However, the electronic damping determined by the testing circuit contributes 2.
6%–9.
6% when the bias voltage increases from 10 V to 20 V, which has a considerable impact on the total quality factor (Q).
For comparison, the gyroscope is fabricated and seal-packaged with a measured maximum Q range of 141k to 132k when the bias voltage varies.
In conclusion, thermoelastic damping and electronic damping essentially determine the Q of the DRG.
Thus, optimizing the resonance structure and testing the circuit to reduce energy loss is prioritized for a high-performance DRG design.

Related Results

A MEMS IMU De-Noising Method Using Long Short Term Memory Recurrent Neural Networks (LSTM-RNN)
A MEMS IMU De-Noising Method Using Long Short Term Memory Recurrent Neural Networks (LSTM-RNN)
Microelectromechanical Systems (MEMS) Inertial Measurement Unit (IMU) containing a three-orthogonal gyroscope and three-orthogonal accelerometer has been widely utilized in positio...
(Invited) A 1-mG MEMS Sensor
(Invited) A 1-mG MEMS Sensor
MEMS (microelectromechanical systems) technology has contributed substantially to the miniaturization of inertial sensors, such as accelerometers and gyroscopes [1]. Nowadays, MEMS...
Antibiogram of Escherichia coli isolated from semi-closed system farmed Asian clam (Corbicula fluminea)
Antibiogram of Escherichia coli isolated from semi-closed system farmed Asian clam (Corbicula fluminea)
In the present study, antibiogram of Escherichia coli isolated from farmed Asian clam, Corbiculafluminea was characterised. Asian clam or locally known as ‘etak’ is processed to be...
Spinning gyroscope (bicycle wheel), force, and zero torque exerted by angular momentum
Spinning gyroscope (bicycle wheel), force, and zero torque exerted by angular momentum
   This paper (preprint) shows the author’s analysis which unveils a problem related to the motion of a spinning gyroscope (bicycle wheel). The classical mechanics formula for torq...
System Modeling of a MEMS Vibratory Gyroscope and Integration to Circuit Simulation
System Modeling of a MEMS Vibratory Gyroscope and Integration to Circuit Simulation
Recently, consumer applications have dramatically created the demand for low-cost and compact gyroscopes. Therefore, on the basis of microelectromechanical systems (MEMS) technolog...
RELIABILITY OF MEMS ACCELEROMETERS FOR INSTRUMENTAL INTENSITY MAPPING OF EARTHQUAKES
RELIABILITY OF MEMS ACCELEROMETERS FOR INSTRUMENTAL INTENSITY MAPPING OF EARTHQUAKES
This work investigates suitability of low cost Micro-Electro Mechanical System (MEMS) sensors in strong motion related studies, particularly in shaking intensity networks. Two type...
An Innovative MEMS-Based MWD Method for Directional Drilling
An Innovative MEMS-Based MWD Method for Directional Drilling
Abstract To overcome the challenges and disadvantages of conventional simple vertical drilling methods, directional drilling, which directs a wellbore along a predef...
The carrier-generating analysis of MEMS gyroscope interface circuit
The carrier-generating analysis of MEMS gyroscope interface circuit
In this paper, the main factors which influence the noise ratio of gyroscope output signal were analysed, according to the MEMS gyro interface circuit technology. A working princip...

Back to Top