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PRELIMINARY MODELING OF AN INTRACOCHLEAR PIEZOELECTRIC MICROPHONE

机译:颅内压电微电话的初步建模

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摘要

A preliminary model of an intracochlear piezoelectric microphone is proposed that mimics the structure of stereocilia in the cochlea. Its purpose is to determine the crucial system parameters prior to fabrication of an actual testing set up via a mathematical model. As a first approximation, the system is modeled as a 1-D, periodic beam with N identical substructures. Each one consists of a nanorod grown on an Si substrate, a bottom electrode, piezoelectric thin film, and two top electrodes. The model consists of: a finite element analysis of a single substructure to obtain its flexibility matrix and differential voltage (DV) under unit loads; and a mapping of these results through the structure to predict displacement and DV of each substructure. A parametric study is then conducted based on this model. It was determined that the nanorod length was the most critical parameter in improving sensitivity. By increasing the amount of drag force on the nanorods the sensitivity grows. Substructures near fixed boundaries generate higher DV thus leading to better sensitivity too. The number of substructure in the microphone would also affect signal-to-noise ratio.
机译:提出了模拟耳蜗中的立体纤毛结构的耳蜗内压电麦克风的初步模型。其目的是在通过数学模型建立实际测试之前确定关键的系统参数。作为第一近似,将系统建模为具有N个相同子结构的1-D周期性光束。每个电极都由生长在Si基板上的纳米棒,底部电极,压电薄膜和两个顶部电极组成。该模型包括:对单个子结构的有限元分析,以获取其挠性矩阵和单位载荷下的差分电压(DV)。并通过结构映射这些结果,以预测每个子结构的位移和DV。然后基于此模型进行参数研究。已确定纳米棒的长度是提高灵敏度的最关键参数。通过增加纳米棒上的拉力的大小,灵敏度会提高。靠近固定边界的子结构会产生较高的DV,因此也导致更好的灵敏度。麦克风中子结构的数量也会影响信噪比。

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