Quantifying Real-Time Dynamic Responses and Damage Mechanics of Human Tympanic Membranes Exposed to Blast Waves.

Jonathan Oliveira Luiz, Anahita Alipanahi, John J Rosowski, Cosme Furlong, Jeffrey Tao Cheng
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Abstract

Understanding the tympanic membrane's (TM, or eardrum) response to high-intensity acoustical events, such as blasts, is crucial for preventing and treating blast-induced auditory injuries. Despite its importance, there remains a gap in methodologies and measurements of the TMs rapid dynamic responses to these events. This study investigates the behavior of human TMs exposed to blasts using a novel system that integrates high-speed quantitative imaging techniques with a custom shock tube (ST). High-speed three-dimensional-digital image correlation (DIC) and high-speed Schlieren imaging techniques are applied in synchronization with high-frequency pressure sensors to quantify generation and propagation of shock wave (SW) and its interaction with the TM during the tests. Additionally, digital microscopy and optical coherence tomography (OCT) are utilized to characterize the TM's morphology pre- and postblast exposure. The full-field high-speed dynamic responses of cadaveric human TMs and their fluid-solid interactions with different levels of blast overpressures are presented, and the rupture of the TMs is described in real-time. These measurements are employed to assess whether the TM behaves as a thin shell under exposure to high acoustical events. The findings from these studies enhance the comprehension of the TMs biomechanics and damage mechanics under harsh conditions, thereby advancing prevention and treatment strategies for blast-induced auditory damage.

人体鼓膜暴露在冲击波下的实时动态响应和损伤力学的量化。
了解鼓膜(TM,或耳膜)对高强度声音事件(如爆炸)的反应,对于预防和治疗爆炸引起的听觉损伤至关重要。尽管它很重要,但在TMs对这些事件的快速动态反应的方法和测量方面仍然存在差距。本研究使用一种新型系统,将高速定量成像技术与定制激波管(ST)相结合,研究了暴露于爆炸的人类TMs的行为。高速三维数字图像相关(DIC)和高速纹影成像技术与高频压力传感器同步应用,量化测试过程中冲击波(SW)的产生、传播及其与TM的相互作用。此外,利用数字显微镜和光学相干断层扫描(OCT)来表征爆炸前和爆炸后TM的形态。研究了不同爆炸超压水平下尸体人体TMs的全场高速动态响应及其流固相互作用,并实时描述了TMs的破裂过程。这些测量被用来评估TM在暴露于高声学事件下是否表现为薄壳。这些研究结果增强了对TMs在恶劣条件下的生物力学和损伤力学的理解,从而促进了爆炸致听损伤的预防和治疗策略。
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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