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Analysis of the vulnerability of MEMS tuning fork gyroscope during the gun launch

机译:MEMS调谐叉陀螺仪在枪发射期间的脆弱性分析

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Micro-electromechanical systems (MEMS) gyroscope is fragile under mechanical impact. Especially, MEMS tuning fork gyroscope with movable structures, such as oscillating frames and folding beams, is susceptible to failure during the gun launch. However, the gyroscope usually presents better shock resistance in the shock test than in the ballistic environment. In this paper, the multiple high-frequency axial shocks and lateral shocks were studied to explain this phenomenon. A single-axis MEMS tuning fork gyroscope was used to analyze its behavior in response to the shock. First, theoretical analysis was performed regarding to the multiple high-frequency axial shocks and lateral shocks. Then the finite element analysis (FEA) was carried out to study the failure mode of the gyroscope under the typical shocks during the gun launch. The analysis results showed that the shocks with continuous oscillating acceleration had a significant amplification effect on the stress of the gyroscope structure. In addition, axial shocks can work with lateral shocks to cause severe stress on the weak positions of the gyroscope. Shock tests were carried out to simulate the in-bore ballistic environment, where the gyroscope experienced continuous oscillating acceleration. The experimental results showed that the critical acceleration of failure will be decreased when the gyroscope is in a state of continuous oscillations.
机译:微机电系统(MEMS)陀螺仪在机械冲击下易碎。特别地,具有可移动结构的MEMS调谐叉陀螺仪,例如振荡框架和折叠梁,在枪发射期间易于发生故障。然而,陀螺仪通常在冲击试验中具有比在弹道环境中更好的抗冲击性。在本文中,研究了多次高频轴向冲击和横向冲击以解释这种现象。单轴MEMS调谐叉陀螺仪用于分析其行为以响应休克。首先,对多个高频轴向冲击和横向冲击进行理论分析。然后进行有限元分析(FEA)以研究枪发射期间典型冲击下陀螺仪的故障模式。分析结果表明,对连续振荡加速的冲击对陀螺仪结构的应力具有显着的放大效果。此外,轴向冲击可以与横向冲击一起工作,以对陀螺仪的弱位置引起严重的应力。进行了冲击测试以模拟钻孔弹道环境,陀螺仪经历了连续振荡加速度。实验结果表明,当陀螺仪处于连续振荡状态时,将减少失效的临界加速度。

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