Xu Yingyu, Lin Jing, He Chunhua, Wu Heng, Huang Qinwen, Yan Guizhen
School of Computer, Guangdong University of Technology, Guangzhou 510006, China.
Science and Technology on Reliability Physics and Application Technology of Electronic Component Laboratory, China Electronic Product Reliability and Environmental Testing Research Institute, Guangzhou 510006, China.
Micromachines (Basel). 2024 Jan 30;15(2):206. doi: 10.3390/mi15020206.
Impact is the most important factor affecting the reliability of Micro-Electro-Mechanical System (MEMS) gyroscopes, therefore corresponding reliability design is very essential. This paper proposes a shock-protected structure (SPS) capable of withstanding a full temperature range from -40 °C to 80 °C to enhance the shock resistance of MEMS gyroscopes. Firstly, the shock transfer functions of the gyroscope and the SPS are derived using Single Degree-of-Freedom and Two Degree-of-Freedom models. The U-folded beam stiffness and maximum positive stress are deduced to evaluate the shock resistance of the silicon beam. Subsequently, the frequency responses of acceleration of the gyroscope and the SPS are simulated and analyzed in Matlab utilizing the theoretical models. Simulation results demonstrate that when the first-order natural frequency of the SPS is approximately one-fourth of the gyroscope's resonant frequency, the impact protection effect is best, and the SPS does not affect the original performance of the gyroscope. The acceleration peak of the MEMS gyroscope is reduced by approximately 23.5 dB when equipped with the SPS in comparison to its counterpart without the SPS. The anti-shock capability of the gyroscope with the SPS is enhanced by approximately 13 times over the full-temperature range. After the shock tests under the worst case, the gyroscope without the SPS experiences a beam fracture failure, while the performance of the gyroscope with the SPS remains normal, validating the effectiveness of the SPS in improving the shock reliability of MEMS gyroscopes.
冲击是影响微机电系统(MEMS)陀螺仪可靠性的最重要因素,因此相应的可靠性设计非常必要。本文提出了一种能够承受-40°C至80°C全温度范围的抗冲击结构(SPS),以提高MEMS陀螺仪的抗冲击能力。首先,使用单自由度和双自由度模型推导了陀螺仪和SPS的冲击传递函数。推导了U形折叠梁的刚度和最大正应力,以评估硅梁的抗冲击能力。随后,利用理论模型在Matlab中对陀螺仪和SPS的加速度频率响应进行了模拟和分析。仿真结果表明,当SPS的一阶固有频率约为陀螺仪共振频率的四分之一时,冲击保护效果最佳,且SPS不影响陀螺仪的原有性能。与未配备SPS的MEMS陀螺仪相比,配备SPS的MEMS陀螺仪的加速度峰值降低了约23.5 dB。在全温度范围内,配备SPS的陀螺仪的抗冲击能力提高了约13倍。在最坏情况下进行冲击测试后,未配备SPS的陀螺仪发生梁断裂故障,而配备SPS的陀螺仪性能保持正常,验证了SPS在提高MEMS陀螺仪冲击可靠性方面的有效性。