Microscopic Optical Acoustic Sensors for Intracranial Measurements

David B. Maupin, C. Dumm, G. Klinzing, Carey D. Balaban, J. Vipperman
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引用次数: 0

Abstract

Optical acoustic sensors provide a potential means for making accurate intracranial pressure measurements. Complex cranial geometries consisting of bone, tissue, and fluid filled spaces pose problematic conditions for the use of conventional acoustic sensors. This research investigates the potential limitations of previously devised optical acoustic sensors in addition to introducing a novel procedure utilizing micro-scale additive manufacturing to fabricate such sensors with a bandwidth on the order of 20kHz to 200kHz. The significance of individual parameters describing the sensor geometry are discussed as a basis for developing sensors with desired characteristics. Results are obtained through finite element modeling comparing mechanical sensitivities and frequency response arising from diaphragm geometric design and optical fiber positioning within a sensor body. Fabrication techniques and sensor performance are reported.
用于颅内测量的显微光学声传感器
光学声传感器为精确测量颅内压提供了一种潜在的手段。复杂的颅骨几何形状包括骨、组织和充满液体的空间,这给传统的声学传感器的使用带来了问题。本研究探讨了先前设计的光学声学传感器的潜在局限性,并引入了一种利用微尺度增材制造制造这种带宽为20kHz至200kHz的传感器的新方法。讨论了描述传感器几何形状的单个参数的重要性,作为开发具有所需特性的传感器的基础。通过有限元建模,比较了膜片几何设计和光纤定位在传感器体内产生的机械灵敏度和频率响应。报告了传感器的制造技术和性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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