2019
DOI: 10.1049/el.2019.1356
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Initial frequency split reduction of MEMS ring gyroscope based on cascaded springs geometrical compensation

Abstract: Small initial frequency split is preferred to reduce the complexity of control circuits and enhance the device sensitivity for mode-matching MEMS gyroscopes. A microring gyroscope with cascaded rectangular beams as supporting springs fabricated by (100) single crystal silicon (SCS) is presented. Frequency split due to the anisotropic of Young's modulus of (100) SCS is geometrically compensated by adjusting the width of cascaded springs and adding an extra mass. The rectangular beams are designed to be wide eno… Show more

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Cited by 10 publications
(4 citation statements)
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“…The mode-matching technique based on electrostatic stiffness is the second classical way to suppress the frequency error of a symmetric gyroscope, first, by determining the degree of mismatch, then by picking the tuning voltage and reducing the frequency difference through P-I-D negative feedback [24,25,33,34]. The core of this type of technology lies in determining the tuning voltage given the amplitude-frequency response and phasefrequency response of the frequency response of the gyroscope control system.…”
Section: Electrostatic Stiffness-based Mode-matching Technologymentioning
confidence: 99%
See 1 more Smart Citation
“…The mode-matching technique based on electrostatic stiffness is the second classical way to suppress the frequency error of a symmetric gyroscope, first, by determining the degree of mismatch, then by picking the tuning voltage and reducing the frequency difference through P-I-D negative feedback [24,25,33,34]. The core of this type of technology lies in determining the tuning voltage given the amplitude-frequency response and phasefrequency response of the frequency response of the gyroscope control system.…”
Section: Electrostatic Stiffness-based Mode-matching Technologymentioning
confidence: 99%
“…This method of eliminating material defects was applied to the silicon-based material of the gyroscope. The result did change the resonant frequency of the polysilicon mechanical resonator and could improve the quality factor [24,25].…”
Section: Introductionmentioning
confidence: 99%
“…Yoon et al [23] and Cao et al [10] fabricated a ring resonator supported by eight double U-shaped (capsule-shaped) beams connected to a central circular stem. Kou et al [24] designed S-shaped beams, Bai et al [25] designed tee-shaped beams, and Xiao et al [26] designed honeycomb-shaped beams. Khan et al [27] designed and fabricated a new ring resonator with a solid anchor and four supporting beams in the form of petals.…”
Section: Introductionmentioning
confidence: 99%
“…The MEMS ring resonator with twodimensional symmetrical structure characteristic is well suited for the traditional MEMS manufacturing process and can achieve low-cost mass production [9]. Compared to MEMS tuning fork gyroscopes, ring gyroscopes with the symmetrical structure have the following prominent advantages [10][11][12]: (1) high sensitivity and less drift resulting from the same mode frequency and quality factor; (2) better resistance to external shocks and undesired vibrations. Therefore, the ring gyroscope is considered as a candidate for high-performance MEMS gyroscopes.…”
Section: Introductionmentioning
confidence: 99%