Processing Optimization of Shear Thickening Fluid Assisted Micro-Ultrasonic Machining Method for Hemispherical Mold Based on Integrated CatBoost-GA Model

Author:

Yin Jiateng12,Zhao Jun12,Song Fengqi12,Xu Xinqiang12,Lan Yeshen13

Affiliation:

1. College of Mechanical Engineering, Zhejiang University of Technology, Hangzhou 310023, China

2. Key Laboratory of Special Purpose Equipment and Advanced Processing Technology, Zhejiang University of Technology, Ministry of Education & Zhejiang Province, Hangzhou 310023, China

3. School of Mechatronics Engineering, Quzhou College of Technology, Quzhou 324000, China

Abstract

Micro-electro-mechanical systems (MEMS) hemispherical resonant gyroscopes are used in a wide range of applications in defense technology, electronics, aerospace, etc. The surface roughness of the silicon micro-hemisphere concave molds (CMs) inside the MEMS hemispherical resonant gyroscope is the main factor affecting the performance of the gyroscope. Therefore, a new method for reducing the surface roughness of the micro-CM needs to be developed. Micro-ultrasonic machining (MUM) has proven to be an excellent method for machining micro-CMs; shear thickening fluids (STFs) have also been used in the ultra-precision polishing field due to their perfect processing performance. Ultimately, an STF-MUM polishing method that combines STF with MUM is proposed to improve the surface roughness of the micro-CM. In order to achieve the excellent processing performance of the new technology, a Categorical Boosting (CatBoost)-genetic algorithm (GA) optimization model was developed to optimize the processing parameters. The results of optimizing the processing parameters via the CatBoost-GA model were verified by five groups of independent repeated experiments. The maximum absolute error of CatBoost-GA is 7.21%, the average absolute error is 4.69%, and the minimum surface roughness is reduced by 28.72% compared to the minimum value of the experimental results without optimization.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

MDPI AG

Subject

General Materials Science

Reference40 articles.

1. The Development of Micromachined Gyroscope Structure and Circuitry Technology;Xia;Sensors,2014

2. Drive-Mode Control for Vibrational MEMS Gyroscopes;Dong;IEEE Trans. Ind. Electron.,2009

3. Neural Adaptive Control for MEMS Gyroscope with Full-State Constraints and Quantized Input;Shao;IEEE Trans. Ind. Inf.,2020

4. Output Feedback Control of Micromechanical Gyroscopes Using Neural Networks and Disturbance Observer;Zhang;IEEE Trans. Neural Netw. Learn. Syst.,2022

5. Investigating the Effects of Quadrature Error in Parametrically and Harmonically Excited MEMS Rate Gyroscopes;Mohammadi;Measurement,2016

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