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Bio-Inspired Micro-Fluidic Angular-Rate Sensor for Vestibular Prostheses

机译:受生物启发的前庭假体微流体角速率传感器

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This paper presents an alternative approach for angular-rate sensing based on the way that the natural vestibular semicircular canals operate, whereby the inertial mass of a fluid is used to deform a sensing structure upon rotation. The presented gyro has been fabricated in a commercially available MEMS process, which allows for microfluidic channels to be implemented in etched glass layers, which sandwich a bulk-micromachined silicon substrate, containing the sensing structures. Measured results obtained from a proof-of-concept device indicate an angular rate sensitivity of less than 1 °/s, which is similar to that of the natural vestibular system. By avoiding the use of a continually-excited vibrating mass, as is practiced in today's state-of-the-art gyroscopes, an ultra-low power consumption of 300 μW is obtained, thus making it suitable for implantation.
机译:本文提出了一种基于自然前庭半圆形管的操作方式进行角速度传感的替代方法,从而使用流体的惯性质量使旋转时的传感结构变形。所提供的陀螺仪是通过可商购的MEMS工艺制造的,该工艺允许在蚀刻的玻璃层中实现微流体通道,蚀刻的玻璃层将包含传感结构的体微机械加工的硅基板夹在中间。从概念验证设备获得的测量结果表明,角速率灵敏度小于1°/ s,这与自然前庭系统的角速率灵敏度相似。通过避免使用持续激励的振动块(如当今最先进的陀螺仪所实践的那样),可获得300μW的超低功耗,因此使其适合植入。

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