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Optimization of a tensegrity wing for biomimetic applications

机译:优化仿生应用的静态翼

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Current attempts to build fast, efficient, and maneuverable underwater vehicles have looked to nature for inspiration. However, they have all been based on traditional propulsive techniques, i.e. rotary motors. In the current study a promising and potentially revolutionary approach is taken that overcomes the limitations of these traditional methods-morphing structure concepts with integrated actuation and sensing. Inspiration for this work comes from the manta ray (Manta birostris) and other batoid fish. These creatures are highly maneuverable but are also able to cruise at high speeds over long distances. In this paper, the structural foundation for the biomimetic morphing wing is a tensegrity structure. A preliminary procedure is presented for developing morphing tensegrity structures that include actuating elements. A shape optimization method is used that determines actuator placement and actuation amount necessary to achieve the measured biological displacement field of a ray. Lastly, an experimental manta ray wing is presented that measures the static and dynamic pressure field acting on the ray's wings during a normal flapping cycle.
机译:目前试图建立快速,高效,可动性的水下车辆,看了对灵感的自然。然而,它们一直基于传统推进技术,即旋转电机。在目前的研究中,采取了有希望和潜在的革命性的方法,克服了这些传统方法 - 变形结构概念的局限性,具有综合致动和感应。这项工作的灵感来自曼达雷(Manta Birostris)和其他轻鲨鱼。这些生物是高度可动性的,但也能够在长距离的高速下巡航。在本文中,仿生体变形翼的结构基础是一种矩形结构。提出了一种用于开发包括致动元件的变形矩形结构的初步程序。使用形状优化方法,其确定实现射线测量的生物位移场所必需的致动器放置和致动量。最后,提出了一种实验的蝠Ray翼,其测量在正常拍打周期中作用在射线翼上的静态和动态压力场。

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