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Mechanical and thermal simulations of a microactuator for the Stimulation of the Perilymph

机译:用于刺激外周淋巴的微执行器的机械和热模拟

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摘要

The design of a microactuator serving as an implantable hearing aid to overcome ambylacousia was conducted by executing mechanical and thermal Finite Element Method (FEM) analyses using the ANSYS® software simulation tool. To do so, the deflection conditions to be fulfilled by the system were determined. The two challenges were to achieve a sufficiently high resonance frequency and to accommodate the physiological restrictions in the middle ear and the cochlea defining the maximal size of the microactuator. A model of the mechanical system was created and modal analyses were carried out. In the next step, the force required to deflect the membrane in the static case and under damping of the cochlea was simulated. In a last step, a 3-D thermal model of the complete system including the micromagnetics was created to investigate the temperature rise in the system. This is important with respect to the implantation of the actuator into the human body, avoiding a necrosis of the human tissue.
机译:通过使用软件仿真工具执行机械和热有限元方法(FEM)分析,进行了微致动器的设计,该微致动器用作克服助听器障碍的植入式助听器。为此,确定了系统要满足的偏转条件。面临的两个挑战是实现足够高的共振频率并适应中耳和耳蜗的生理限制,从而限制了微致动器的最大尺寸。建立了机械系统模型并进行了模态分析。在下一步中,模拟了在静态情况下和在耳蜗阻尼下使膜偏转所需的力。在最后一步中,创建了包含微磁的完整系统的3-D热模型,以研究系统中的温度升高。这对于将致动器植入人体,避免人体组织坏死而言是重要的。

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