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A mechanical analysis of woodpecker drumming and its application to shock-absorbing systems

机译:啄木鸟打鼓的力学分析及其在减震系统中的应用

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A woodpecker is known to drum the hard woody surface of a tree at a rate of 18 to 22 times per second with a deceleration of 1200 g, yet with no sign of blackout or brain damage. As a model in nature, a woodpecker is studied to find clues to develop a shock-absorbing system for micromachined devices. Its advanced shock-absorbing mechanism, which cannot be explained merely by allometric scaling, is analyzed in terms of endoskeletal structures. In this analysis, the head structures (beak, hyoid, spongy bone, and skull bone with cerebrospinal fluid) of the golden-fronted woodpecker, Melanerpes aurifrons, are explored with x-ray computed tomography images, and their shock-absorbing mechanism is analyzed with a mechanical vibration model and an empirical method. Based on these analyses, a new shock-absorbing system is designed to protect commercial micromachined devices from unwanted high-g and high-frequency mechanical excitations. The new shock-absorbing system consists of close-packed microglasses within two metal enclosures and a viscoelastic layer fastened by steel bolts, which are biologically inspired from a spongy bone contained within a skull bone encompassed with the hyoid of a woodpecker. In the experimental characterizations using a 60 mm smoothbore air-gun, this bio-inspired shock-absorbing system shows a failure rate of 0.7% for the commercial micromachined devices at 60 000 g, whereas a conventional hard-resin method yields a failure rate of 26.4%, thus verifying remarkable improvement in the g-force tolerance of the commercial micromachined devices.
机译:啄木鸟以每秒18至22次的速度以1200 g的减速度打鼓树木的坚硬木质表面,但没有停电或脑部损伤的迹象。作为自然界中的模型,对啄木鸟进行了研究,以寻找线索来开发用于微机械设备的减震系统。它的先进的减震机制,不能仅通过异速伸缩缩放来解释,而是根据骨骼内结构进行分析的。在此分析中,用X射线计算机断层扫描图像探索了金色的啄木鸟Melanerpes aurifrons的头部结构(喙,舌骨,海绵状骨和带有脑脊髓液的颅骨),并分析了其减震机理机械振动模型和经验方法。基于这些分析,设计了一种新的减震系统,以保护商用微机械设备免受不必要的高g和高频机械激励的影响。新的减震系统由两个金属外壳中的密排微玻璃和由钢螺栓固定的粘弹性层组成,该粘弹性层的生物学灵感来自于被啄木鸟的舌骨包围的颅骨内的海绵状骨骼。在使用60毫米平滑口径气枪进行的实验表征中,这种生物启发的减震系统在60000 g的商用微加工设备上显示出0.7%的失效率,而传统的硬树脂方法产生的失效率为26.4%,因此证明了商用微加工设备在g力公差方面的显着提高。

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