颅骨及颅内内容物的振动声超声共振行为

C. Dumm, Anna C. Hiers, David B. Maupin, Marianne E. Cites, G. Klinzing, Carey D. Balaban, J. Vipperman
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引用次数: 0

摘要

头部的高频共振有可能激发不寻常的和难以测量的内部振动行为。头部是一个复杂的、相互连接的振动声体,充满空气、液体、软组织结构和骨骼。在评估相对低频和低振幅的超声波振动如何在人类和食蟹猕猴的头骨和颅骨内容物中传播方面存在文献空白。超声波发射器在现代社会中无处不在,包括用于车辆接近传感,房间占用监测,害虫控制和工业清洁。本研究使用有限元技术来研究超声信号激发下颅骨和颅腔内结构的振动声行为。先前设计用于评估听觉和前庭系统中可能的共振现象的分析程序被修订并扩展到评估人类和猕猴的头骨和颅腔内容物,包括脑脊液(CSF)和大脑的体积。结果包括识别可能在响应超声激励时经历高振幅振动的颅骨区域。这些方法和结果对于评估包括通信设备在内的各种各样的设备如何可能产生生物效应是有用的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Vibro-Acoustic Ultrasonic Resonant Behavior in Skull and Cranial Contents
High-frequency ensonification of the head has the potential to excite unusual and difficult-to-measure internal vibration behavior. The head is a complex, interconnected vibroacoustic volume filled with and bounded by air, fluids, soft tissue structures, and bone. A literature gap exists in assessment of how ultrasonic vibrations of relatively low frequency and low amplitude might propagate within the skull and cranial contents of humans and cynomolgus macaque monkeys. Ultrasonic emitters are ubiquitous in modern society, including uses in vehicular proximity sensing, room occupancy monitoring, pest control, and industrial cleaning. This investigation uses finite-element techniques to examine vibro-acoustic behaviors of the skull and structures within the cranial cavity in the context of excitation by ultrasonic signals. Previous analysis procedures designed for assessment of possible resonant phenomena in the auditory and vestibular systems are revised and extended to assessment of the skull and the contents of the cranial cavity of humans and macaques, including volumes of cerebrospinal fluid (CSF) and the brain. Results include identification of cranial regions that may experience high-amplitude vibrations in response to ultrasonic excitation. These methods and results are useful for assessing how a wide variety of devices, including communications equipment, might produce biological effects.
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