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Comparative Analysis of the Flexural Stiffness of Pinniped Vibrissae

机译:夹式触须的弯曲刚度比较分析

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摘要

Vibrissae are important components of the mammalian tactile sensory system and are used to detect vibrotactile stimuli in the environment. Pinnipeds have the largest and most highly innervated vibrissae among mammals, and the hair shafts function as a biomechanical filter spanning the environmental stimuli and the neural mechanoreceptors deep in the follicle-sinus complex. Therefore, the material properties of these structures are critical in transferring vibrotactile information to the peripheral nervous system. Vibrissae were tested as cantilever beams and their flexural stiffness (EI) was measured to test the hypotheses that the shape of beaded vibrissae reduces EI and that vibrissae are anisotropic. EI was measured at two locations on each vibrissa, 25% and 50% of the overall length, and at two orientations to the point force. EI differed in orientations that were normal to each other, indicating a functional anisotropy. Since vibrissae taper from base to tip, the second moment of area (I) was lower at 50% than 25% of total length. The anterior orientation exhibited greater EI values at both locations compared to the dorsal orientation for all species. Smooth vibrissae were generally stiffer than beaded vibrissae. The profiles of beaded vibrissae are known to decrease the amplitude of vibrations when protruded into a flow field. The lower EI values of beaded vibrissae, along with the reduced vibrations, may function to enhance the sensitivity of mechanoreceptors to detection of small changes in flow from swimming prey by increasing the signal to noise ratio. This study builds upon previous morphological and hydrodynamic analyses of vibrissae and is the first comparative study of the mechanical properties of pinniped vibrissae.
机译:触须是哺乳动物触觉感觉系统的重要组成部分,用于检测环境中的触觉刺激。在哺乳动物中,Pinnipeds具有最大和最受神经支配的触须,而毛干则起着生物机械过滤器的作用,横跨环境刺激和毛囊-窦复合体深处的神经机械感受器。因此,这些结构的材料特性对于将触觉信息传递到周围神经系统至关重要。悬索梁作为悬臂梁进行测试,并测量其弯曲刚度(EI)以检验以下假设:串珠状悬索梁的形状降低了EI,并且悬索梁是各向异性的。在每个触角上的两个位置(分别为全长的25%和50%)以及指向力的两个方向上测量EI。 EI在彼此垂直的方向上有所不同,表明功能各向异性。由于触须从基部到尖端逐渐变细,因此区域(I)的第二矩比总长度的25%低50%。与所有物种的背向相比,前向在两个位置均显示出更大的EI值。光滑的触须通常比串珠的触须更硬。已知串珠状触须的轮廓在伸入流场时会减小振动的幅度。串珠触须的较低EI值以及减小的振动,可能会通过增加信噪比来增强机械感受器对检测来自游泳猎物的流量的微小变化的敏感性。这项研究建立在对触须的先前形态学和水动力分析的基础上,并且是对夹缝触角的力学性能的首次比较研究。

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