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Mitigating energy loss in a robot hopping on a physically emulated dissipative substrate

机译:减少机器人在物理模拟的耗散基板上跳跃时的能量损失

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We work with geoscientists studying erosion and desertification to improve the spatial and temporal resolution of their data collection over long transects in difficult realworld environments such as deserts [1]. The Minitaur [2] robot, which can run quickly over uneven terrain and use a single leg to measure relevant ground properties such as stiffness [3], is an attractive scout robot candidate for inclusion in a heterogeneous team in collaboration with a heavily geared, sensor-laden RHex [4]. However, Minitaur is challenged by long-distance locomotion on sand dunes. Previous simulation results [5] suggested that the energetic cost of transport can be mitigated by programming a virtual damping force to slow the intrusion of a Minitaur foot into simulated granular media following a bulk-behavior force law [6]. In this paper, we present a ground emulator that can be used to test such locomotion hypotheses with a physical single-legged hopper jumping on emulated ground programmed to exhibit any compliance and damping characteristics of interest. The new emulator allows us to corroborate the conclusions of our previous simulation with physical hopping experiments. Programming the substrate emulator to exhibit the mechanics of a simplified bulk-behavior model of granular media characterized by linear stiffness and quadratic damping, we achieve a consistent energy savings of 20% in comparison with a nominal controller, with savings of up to 50% under specific conditions.
机译:我们与地球科学家合作研究侵蚀和荒漠化,以改善他们在困难的现实世界环境(如沙漠)中长样线上的数据收集的时空分辨率[1]。 Minitaur [2]机器人可以在不平坦的地形上快速运行,并可以用单腿测量相关的地面特性(例如刚度[3]),是吸引人的侦察机器人候选人,可以与重型装备,装有传感器的RHex [4]。但是,Minitaur受到沙丘上的远距离运动的挑战。先前的模拟结果[5]提示,可以通过按照虚拟的力行为规律对虚拟阻尼力进行编程,以减慢Minitaur脚进入模拟颗粒介质的速度,从而减轻运输的能源成本[6]。在本文中,我们提出了一种地面仿真器,该仿真器可用于通过仿真的地面上跳跃的物理单腿料斗跳动来测试此类运动假设,编程后的地面仿真器可显示出所需的柔度和阻尼特性。新的仿真器使我们能够通过物理跳变实验来证实先前仿真的结论。对基板仿真器进行编程以展示具有线性刚度和二次阻尼特征的粒状介质简化的整体行为模型的力学,与标称控制器相比,我们可实现20%的一致节能,在以下情况下可节省高达50%的能耗具体条件。

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