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Energy harvesting analysis for Moball, A self-propelled mobile sensor platform capable of long duration operation in harsh terrains

机译:Moball的能量收集分析,这是一种可在恶劣地形下长时间运行的自行式移动传感器平台

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This paper considers the design and optimization of an autonomous electromechanical control and energy scavenging system for the wind-propelled Moball, a spherical mobile sensor platform concept [1, 2]. This mechanism converts mechanical motion to electrical energy, and the same mechanism can function as an actuator to self-generate motion. Simulations of a simplified model on flat ground show that a 2m diameter Moball operating in typical Arctic conditions can generate 1. 8–2.7W of power continuously while being wind-propelled. We also demonstrate a simple motion control algorithm, showing that self-propulsion in windless conditions requires 1–1.5W. Hence, using this mechanism, a Moball can self-generate sufficient energy for long duration missions involving self-propulsion, sensing, and communication in harsh, cold, windy climates (e.g., Polar regions on Earth, or the surface of Titan or Mars) where solar energy may be limited. Simulations with key design parameters are also used to draw general conclusions regarding optimal design for energy recovery. The addition of springs inside the generating mechanism greatly increases the range of wind speeds over which Moball can harvest energy.
机译:本文考虑了用于风动力Moball的自主机电控制和能量清除系统的设计和优化,这是一种球形移动传感器平台的概念[1、2]。该机构将机械运动转换为电能,并且相同的机构可以用作致动器以自我产生运动。在平坦地面上的简化模型的仿真显示,在典型的北极条件下运行的直径为2m的Moball可以在风力推动下连续产生1. 8–2.7W的功率。我们还演示了一种简单的运动控制算法,该算法表明无风条件下的自推进需要1–1.5W。因此,利用这种机制,Moball可以在恶劣,寒冷,多风的气候条件下(例如地球上的极地地区或泰坦或火星表面)进行长时间任务所需的自我推进,感测和交流的长时间任务,能够自行产生足够的能量可能限制太阳能的地方。具有关键设计参数的仿真也可用于得出有关能量回收最佳设计的一般结论。发电机构内部增加了弹簧,极大地增加了Moball可以收集能量的风速范围。

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