{"title":"A Novel MEMS Quadruple Mass Gyroscope With Superior Overall Performance via Dual-Umbrella-Like Driving Architecture","authors":"Shaolei Ge;Bo Jiang;Yi Zhou;Shenhu Huang;Yan Su;Tong Zhou","doi":"10.1109/TIM.2025.3545194","DOIUrl":null,"url":null,"abstract":"MEMS lumped mass gyroscopes, widely used in industrial applications, have not yet reached the navigation grade. This article proposes a novel MEMS quadruple mass gyroscope (QMG) that exhibits superior overall performance in terms of bias instability (BI), angle random walk (ARW), size, and robustness. This superior overall performance is achieved via a dual-umbrella-like driving architecture (DULDA). Specifically, the DULDA is used to enhance the driving displacement by 80% and the effective mass by 180% without increasing the layout area. The DULDA also allows a single driving frame to drive four proof masses for anti-phase motion simultaneously. In addition, the DULDA, combined with a coupling mechanism for the sensing mode, positions the two operating modes in the first two orders and yields a frequency split of 5.49 kHz between the operating mode and the parasitic mode. The QMG is fabricated using MEMS processes and features wafer-level vacuum packaging, with structural layer dimensions of only <inline-formula> <tex-math>$3.9\\times 3.1$ </tex-math></inline-formula> mm. Without any compensation, the proposed QMG achieves a BI of 0.26°/h and an ARW of 0.02°/<inline-formula> <tex-math>$\\surd $ </tex-math></inline-formula>h within a full scale of ±150°/s, making a 90% reduction in BI and a 150% decrease in ARW compared with a QMG without the DULDA. Consequently, the proposed QMG, with its advanced driving architecture, offers a promising solution for angular measurement in high-end industrial applications.","PeriodicalId":13341,"journal":{"name":"IEEE Transactions on Instrumentation and Measurement","volume":"74 ","pages":"1-11"},"PeriodicalIF":5.6000,"publicationDate":"2025-03-11","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"IEEE Transactions on Instrumentation and Measurement","FirstCategoryId":"5","ListUrlMain":"https://ieeexplore.ieee.org/document/10918612/","RegionNum":2,"RegionCategory":"工程技术","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"ENGINEERING, ELECTRICAL & ELECTRONIC","Score":null,"Total":0}
引用次数: 0
Abstract
MEMS lumped mass gyroscopes, widely used in industrial applications, have not yet reached the navigation grade. This article proposes a novel MEMS quadruple mass gyroscope (QMG) that exhibits superior overall performance in terms of bias instability (BI), angle random walk (ARW), size, and robustness. This superior overall performance is achieved via a dual-umbrella-like driving architecture (DULDA). Specifically, the DULDA is used to enhance the driving displacement by 80% and the effective mass by 180% without increasing the layout area. The DULDA also allows a single driving frame to drive four proof masses for anti-phase motion simultaneously. In addition, the DULDA, combined with a coupling mechanism for the sensing mode, positions the two operating modes in the first two orders and yields a frequency split of 5.49 kHz between the operating mode and the parasitic mode. The QMG is fabricated using MEMS processes and features wafer-level vacuum packaging, with structural layer dimensions of only $3.9\times 3.1$ mm. Without any compensation, the proposed QMG achieves a BI of 0.26°/h and an ARW of 0.02°/$\surd $ h within a full scale of ±150°/s, making a 90% reduction in BI and a 150% decrease in ARW compared with a QMG without the DULDA. Consequently, the proposed QMG, with its advanced driving architecture, offers a promising solution for angular measurement in high-end industrial applications.
期刊介绍:
Papers are sought that address innovative solutions to the development and use of electrical and electronic instruments and equipment to measure, monitor and/or record physical phenomena for the purpose of advancing measurement science, methods, functionality and applications. The scope of these papers may encompass: (1) theory, methodology, and practice of measurement; (2) design, development and evaluation of instrumentation and measurement systems and components used in generating, acquiring, conditioning and processing signals; (3) analysis, representation, display, and preservation of the information obtained from a set of measurements; and (4) scientific and technical support to establishment and maintenance of technical standards in the field of Instrumentation and Measurement.