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A biomimetic robotic platform to study flight specializations of bats

机译:仿生机器人平台,用于研究蝙蝠的飞行专长

摘要

Bats have long captured the imaginations of scientists and engineers with their unrivaled agility and maneuvering characteristics, achieved by functionally versatile dynamic wing conformations as well as more than 40 active and passive joints on the wings. Wing flexibility and complex wing kinematics not only bring a unique perspective to research in biology and aerial robotics but also pose substantial technological challenges for robot modeling, design, and control. We have created a fully self-contained, autonomous flying robot that weighs 93 grams, called Bat Bot (B2), to mimic such morphological properties of bat wings. Instead of using a large number of distributed control actuators, we implement highly stretchable silicone-based membrane wings that are controlled at a reduced number of dominant wing joints to best match the morphological characteristics of bat flight. First, the dominant degrees of freedom (DOFs) in the bat flight mechanism are identified and incorporated in B2’s design by means of a series of mechanical constraints. These biologically meaningful DOFs include asynchronous and mediolateral movements of the armwings and dorsoventral movements of the legs. Second, the continuous surface and elastic properties of bat skin under wing morphing are realized by an ultrathin (56 micrometers) membranous skin that covers the skeleton of the morphing wings. We have successfully achieved autonomous flight of B2 using a series of virtual constraints to control the articulated, morphing wings.
机译:长期以来,蝙蝠凭借其无与伦比的敏捷性和机动性吸引了科学家和工程师的想象力,它们通过功能多样的动态机翼构型以及机翼上的40多个主动和被动关节来实现。机翼的灵活性和复杂的机翼运动学特性不仅为生物学和空中机器人研究提供了独特的视角,而且还对机器人的建模,设计和控制提出了重大的技术挑战。我们创建了一个重量达93克的完全独立的自动飞行机器人,称为Bat Bot(B2),以模仿蝙蝠翅膀的这种形态特性。代替使用大量的分布式控制执行器,我们实现了高度可拉伸的基于有机硅的薄膜机翼,该机翼被控制在数量减少的主导翼节中,以最佳地匹配蝙蝠飞行的形态特征。首先,确定蝙蝠飞行机制中的主要自由度(DOF),并通过一系列机械约束将其纳入B2的设计中。这些具有生物学意义的自由度包括臂部的异步运动和中外侧运动以及腿的背腹运动。第二,机翼变形下的蝙蝠皮的连续表面和弹性特性是通过覆盖了变形机翼骨架的超薄(56微米)膜状皮肤实现的。我们已使用一系列虚拟约束条件来成功控制B2的自主飞行,以控制铰接的变形机翼。

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