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Energy Harvesting of Dipole Rectenna for Airship Applications

机译:用于飞艇应用的偶极矩形能量收割

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摘要

There are several potential candidate energy harvesting technologies for smart actuators and devices, such as space vehicles, high altitude airships, MAVs (Micro-Aero Vehicles), and smart robots. Smart material actuators have actively been developed during the last couples of decades for controlling flow-fields over aircraft wings, shape changes for step-motions, or discrete motion of actuators, but their applications as a practical system are limited due to hardwire circuits and high voltage requirements. The wired power configuration provides lack of maneuverability of the system, especially it is not possible for micro aerial vehicles (MAVs), space vehicles, and airship applications. In addition, the hard wiring may not be a suitable solution due to the network complexity. Moreover, the weight increase may be attributed to the a wired network, the complex gate switching of power and control networks needed, and the inter dependency of power and control routines needed. Flexible dipole rectenna devices appeared to be attractive for various applications because of the adaptability on complex structures; possibility for higher power density features, and ability of high coupling efficiency. In this paper, design concepts and results for various flexible dipole rectennas as well as effects of incident angle of microwave energy on rectennas will be discussed including their efficiencies. The discussion will also include the effects of distance between microwave source and rectennas on airship vehicles. Using the result, some applications of the system will also be addressed.
机译:智能执行器和设备有几种潜在的候选能源收集技术,例如空间车辆,高海拔飞艇,MAV(微航空车辆)和智能机器人。智能材料执行器在最后几十年的最后夫妇中积极开发,用于控制飞机翼的流场,踩踏运动的变化或执行器的离散运动,但是它们作为实际系统的应用受到硬线路电路和高的应用。电压要求。有线电源配置提供了系统的可操作性,特别是微空气(MAV),空间车辆和飞艇应用是不可能的。另外,由于网络复杂性,硬布线可能不是合适的解决方案。此外,重量增加可以归因于有线网络,所需的电力和控制网络的复杂栅极切换以及所需的电力和控制程序的依赖性。由于复杂结构的适应性,灵活的偶极纤维导线器件对于各种应用似乎具有吸引力;高功率密度特征的可能性,以及高耦合效率的能力。在本文中,将讨论各种柔性偶极线的设计概念和结果,以及微波能量的入射角的效果将被讨论包括它们的效率。讨论还将包括在飞艇车辆上微波源和矩形之间的距离的影响。使用结果,还将解决系统的某些应用程序。

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