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Development of V-Shaped Beam on the Shock Resistance and Driving Frequency of Micro Quartz Tuning Forks Resonant Gyroscope

机译:微石英调谐叉谐振抗震频率的V形光束的研制谐振陀螺仪

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摘要

The application of gyroscopes in harsh environments has always been a hot topic. As a high-quality material for manufacturing gyroscopes, quartz crystals need to be designed and optimized to meet the normal operation of gyroscopes in harsh environments. The Micro Electronics Mechanical System(MEMS) quartz tuning forks resonant gyroscope is one of the quartz gyroscopes. The elastic structure (V-shaped beam) between the anchor support point and tuning forks plays a vital role in the MEMS quartz tuning forks resonant gyroscope. This structure determines the natural frequency of the gyroscope, and more importantly, determines the shock resistance of the gyroscope structure. In this article, the MEMS quartz tuning forks gyroscope with different V-shaped beam thicknesses are simulated and analyzed by finite element analysis simulation software. After the modal analysis and shock simulation (the half-cycle sine shock pulse with amplitude of 1500 g (g is the acceleration of gravity) and duration of 2 ms in the six shock directions), the results show that when the beam thickness is 80 μm, the maximum stress is 94.721 MPa, which is less than the failure stress of quartz crystal. The gyroscope’s shock resistance is verified through shock testing.
机译:陀螺仪在恶劣环境中的应用一直是一个热门话题。作为制造陀螺仪的高质量材料,需要设计和优化石英晶体,以满足恶劣环境中陀螺仪的正常运行。微电子机械系统(MEMS)石英调谐叉共振陀螺是石英陀螺仪之一。锚固支撑点和调谐叉之间的弹性结构(V形梁)在MEMS石英调谐叉中起着至关重要的作用谐振陀螺仪。该结构决定了陀螺仪的固有频率,更重要的是,确定陀螺仪结构的抗冲击性。在本文中,通过有限元分析模拟软件模拟和分析具有不同V形光束厚度的MEMS石英调谐叉陀螺仪。模态分析和冲击模拟(具有1500克幅度的半周期正弦冲击脉冲(G是重力的加速)和六个冲击方向上的2ms的持续时间),结果表明,当光束厚度为80时μm,最大应力为94.721MPa,其小于石英晶体的故障应力。通过休克测试验证陀螺仪的抗冲击性。

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