首页> 外文会议>Proceedings of the ASME international design engineering technical conferences and computers and information in engineering conference 2018 >MODELING AND TESTING OF A MINIMALLY POWERED SOI-DRIE MEMS PRESSURE SENSOR FOR DISCRETE BLAST DETECTION
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MODELING AND TESTING OF A MINIMALLY POWERED SOI-DRIE MEMS PRESSURE SENSOR FOR DISCRETE BLAST DETECTION

机译:用于离散爆破检测的最小功率SOI干法MEMS压力传感器的建模和测试

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摘要

MEMS diaphragms utilizing an embedded cantilever array to sense pressure were investigated in an effort to detect blast-induced loads that potentially cause mild traumatic brain injury (mTBI). Overhanging cantilever beams of varying length sequentially contacted convexly deformed diaphragms during pressure loading to enable binned binary threshold pressure sensing. Diaphragms and overhanging cantilever beam arrays pho-tolithographically defined using double-layer SOI-DRIE processes were designed to minimize footprint and maximize sensing resolution while avoiding diaphragm fracture. Analytic models based on classical plate theory were correlated with a FEA model to guide design decisions by predicting deflection behavior of circular diaphragms under uniformly distributed pressure loads. Fabricated sensors experimentally tested under static conditions revealed good agreement with modeling, and indicated such a sensor may be well-suited for integration into a future wearable device capable of sensing potentially mTBI-causing blasts using minimal power.
机译:研究了利用嵌入式悬臂阵列感应压力的MEMS膜片,以检测爆炸引起的负载,这些负载可能导致轻度颅脑损伤(mTBI)。在压力加载期间,不同长度的悬臂悬臂梁顺序接触凸形变形的膜片,从而能够进行二进制二进制阈值压力感测。使用双层SOI-DRIE工艺在光刻技术上定义的膜片和悬臂悬臂梁阵列,旨在最大程度地减少覆盖区并最大化传感分辨率,同时避免膜片破裂。基于经典板理论的分析模型与FEA模型相关联,以通过预测圆形膜片在均匀分布压力载荷下的挠曲行为来指导设计决策。在静态条件下进行实验测试的预制传感器显示出与建模的良好一致性,并表明这种传感器可能非常适合集成到将来的可穿戴设备中,该设备能够以最小的功率感测可能引起mTBI的爆炸。

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