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Integrated Manufacture of Exoskeletons and Sensing Structures for Folded Millirobots

机译:折叠式Millirobots外骨骼和传感结构的集成制造

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Inspired by the exoskeletons of insects, we have developed a number of manufacturing methods for the fabrication of structures for attachment, protection, and sensing. This manufacturing paradigm is based on infrared laser machining of lamina and the bonding of layered structures. The structures have been integrated with an inexpensive palm-sized legged robot, the VelociRoACH [Haldane et al., 2013, "Animal-Inspired Design and Aerodynamic Stabilization of a Hexapedal Millirobot," IEEE/RSJ International Conference on Robotics and Automation, Karlsruhe, Germany, May 6-10, pp. 3279-3286]. We also present a methodology to design and fabricate folded robotic mechanisms, and have released an open-source robot, the OpenRoACH, as an example implementation of these techniques. We present new composite materials which enable the fabrication of stronger, larger scale smart composite microstructures (SCM) robots. We demonstrate how thermoforming can be used to manufacture protective structures resistant to water and capable of withstanding terminal velocity falls. A simple way to manufacture traction enhancing claws is demonstrated. An electronics layer can be incorporated into the robot structure, enabling the integration of distributed sensing. We present fabrication methods for binary and analog force sensing arrays, as well as a carbon nanotube (CNT) based strain sensor which can be fabricated in place. The presented manufacturing methods take advantage of low-cost, high accuracy two-dimensional fabrication processes which will enable low-cost mass production of robots integrated with mechanical linkages, an exoskeleton, and body and limb sensing.
机译:受昆虫骨骼的启发,我们开发了许多制造方法来制造用于附着,保护和传感的结构。该制造范例基于薄片的红外激光加工和分层结构的粘合。这些结构已与廉价的掌上有腿的机器人VelociRoACH [Haldane等人,2013,“六足机器人Millirobot的动物灵感设计和空气动力稳定性”,IEEE / RSJ国际机器人技术和自动化会议,卡尔斯鲁厄,德国,5月6日至10日,第3279-3286页]。我们还提出了一种设计和制造折叠式机器人机构的方法,并发布了开源机器人OpenRoACH作为这些技术的示例实现。我们提出了新的复合材料,这些材料能够制造更坚固,更大规模的智能复合微结构(SCM)机器人。我们演示了如何使用热成型来制造耐水且能够承受最终速度下降的防护结构。演示了一种制造增强抓地力的爪的简单方法。可以将电子层合并到机器人结构中,从而实现分布式传感的集成。我们介绍了用于二进制和模拟力传感阵列的制造方法,以及可以在适当位置制造的基于碳纳米管(CNT)的应变传感器。提出的制造方法利用了低成本,高精度的二维制造工艺,这将使低成本的批量生产具有机械连杆,外骨骼以及身体和肢体感应的机器人成为可能。

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