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首页> 外文期刊>Journal of intelligent material systems and structures >Design and testing of a high-specific work actuator using miniature pneumatic artificial muscles
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Design and testing of a high-specific work actuator using miniature pneumatic artificial muscles

机译:使用微型气动人造肌肉的高功能工作执行器的设计和测试

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摘要

Micro-air vehicle (MAV) development is moving toward smaller and more capable platforms to enable missions such as indoor reconnaissance. This miniaturization creates challenging constraints on volume and energy generation/storage for all systems onboard. Actuator technologies must also address these miniaturization goals. Much research has focused on active material systems, such as piezoelectric materials and synthetic jets, but these advanced technologies have specific, but limited, capability. Conventional servo technology has also encountered concerns over miniaturization. Motivation has thus been established to develop a small-scale actuation technology prototype based on pneumatic artificial muscles, which are known for their lightweight, high-output, and low-pressure operation. The miniature actuator provides bidirectional control capabilities for a range of angles, rates, and loading conditions. Problems addressed include the scaling of the pneumatic actuators and design of a mechanism to adjust the kinematic load-stroke profile to suit the pneumatic actuators. The kinematics of the actuation system was modeled, and a number of bench-top configurations were fabricated, assembled, and experimentally characterized. Angular deflection and angular rate output of the final bench-top prototype system are presented, showing an improvement over conventional servo motors used in similar applications, especially in static or low-frequency operation.
机译:微型飞行器(MAV)的开发正在朝着更小巧,功能更强大的平台发展,以实现诸如室内侦察之类的任务。这种小型化对船上所有系统的体积和能量产生/存储产生了挑战性的约束。执行器技术还必须解决这些小型化目标。许多研究都集中在活性材料系统上,例如压电材料和合成射流,但是这些先进技术具有特定但有限的功能。传统的伺服技术也遇到了关于小型化的担忧。因此,已经建立了动机来开发基于气动人造肌肉的小型致动技术原型,该原型以其轻便,高输出和低压操作而闻名。微型执行器为各种角度,速率和负载条件提供双向控制功能。解决的问题包括气动执行器的缩放比例和调整运动负荷冲程轮廓以适合气动执行器的机构的设计。对致动系统的运动学进行建模,并制造,组装和实验表征许多台式配置。展示了最终台式原型系统的角偏转和角速率输出,显示出与类似应用中使用的常规伺服电机相比有所改进,特别是在静态或低频操作中。

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