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DYNAMIC ANALYSIS OF A MICROSCALE CRICKET FILIFORM HAIR SOCKET

机译:微型板栗丝状长袜的动力学分析

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Filiform hairs of crickets are of great interest to engineers because of their highly sensitive response to low velocity air currents. In this study, the cercal sensory system of a common house cricket has been analyzed. The sensory system consists of two antennae like appendages called cerci that are situated at the rear of the cricket's abdomen. Each cercus is covered with 500-750 flow sensitive hairs that are embedded in a complex viscoelastic socket that acts as a spring -dashpot system and guides the movement of the hair. When the hair deflects due to the drag force induced on its length by a moving air-current, the spiking activity of the neuron and the combined spiking activity of all hairs are extracted by the cercal sensory system. The hair has been experimentally studied by few researchers though its characteristics are not fully understood. The socket structure has not been analyzed experimentally or theoretically from a mechanical standpoint. Therefore, this study aims to understand the dynamic response of socket and its interaction with the filiform hair. First, a 3D Finite Element Analysis (FEA) model, representing hair and hair-socket, has been developed. Then the dynamic analysis is conducted utilizing the appropriate load and boundary conditions based on the physical conditions that an insect experiences. These numerical analyses aid to understand the dynamic response of the hair and hair-socket system. The operating principles of the hair and hair-socket could be used for the design of highly responsive MEMS devices such as fluid flow sensors or micro-manipulators.
机译:engineers的丝状毛引起了工程师的极大兴趣,因为它们对低速气流具有高度敏感的响应。在这项研究中,分析了普通家house的大脑感觉系统。感觉系统由位于antenna腹部后部的两个称为cerci的触角状附件组成。每个蜡cer覆盖着500-750个对流量敏感的头发,这些头发被嵌入复杂的粘弹性插座中,该插座充当弹簧阻尼系统并引导头发的运动。当头发由于流动的气流在其长度上引起的拖曳力而偏斜时,神经感觉的刺突活动和所有头发的联合刺突活动会通过大脑的感觉系统被提取出来。尽管尚未完全了解其特征,但很少有研究人员通过实验研究过这种头发。插座的结构尚未从机械的角度进行实验或理论上的分析。因此,本研究旨在了解窝的动态响应及其与丝状毛发的相互作用。首先,已经开发了代表头发和发夹的3D有限元分析(FEA)模型。然后,根据昆虫经历的物理条件,利用适当的载荷和边界条件进行动力学分析。这些数值分析有助于理解头发和头发插口系统的动态响应。毛发和毛发插口的工作原理可用于设计高响应度的MEMS设备,例如流体流量传感器或微操纵器。

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