无线分布式系统中的低辐射高效无线能量传输

S. Nikoletseas, Theofanis P. Raptis, C. Raptopoulos
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引用次数: 47

摘要

无线能量传输(WET)领域的快速技术进步为无线分布式系统中能量管理的新方法铺平了道路,最近的研究工作已经开始考虑考虑这些新技术的网络模型。本文采用一种新的方法研究了在电磁辐射安全约束下,使用一组无线能量充电器对一组可充电节点进行高效充电的问题。特别是,我们定义了一个新的充电模型,它与现有模型有很大的不同,因为它考虑了系统中充电器和节点的实际技术限制,主要是能量限制。我们的模型还引入了非线性约束(在时域),这从根本上改变了我们所考虑的计算问题的性质。在这个充电模型中,我们提出并研究了低辐射效率充电问题(LREC),在这个问题中,我们希望优化从充电器转移到节点的“有用”能量的数量(在最大施加辐射水平的约束下)。我们提出了这个问题的几个基本性质,并指出了它的硬度。最后,我们提出了一种迭代局部改进启发式LREC算法,该算法在多项式时间内运行,并通过仿真对其性能进行了评估。该算法将目标函数的计算与最大辐射的计算解耦,并且不依赖于网络各点电磁辐射计算的精确公式,在充电效率和辐射控制之间实现了良好的权衡,并表现出良好的能量平衡特性。我们提供了大量的模拟结果来支持我们的主张和理论结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low Radiation Efficient Wireless Energy Transfer in Wireless Distributed Systems
Rapid technological advances in the domain of Wireless Energy Transfer (WET) pave the way for novel methods for energy management in Wireless Distributed Systems and recent research efforts have already started considering network models that take into account these new technologies. In this paper, we follow a new approach in studying the problem of efficiently charging a set of rechargeable nodes using a set of wireless energy chargers, under safety constraints on the electromagnetic radiation incurred. In particular, we define a new charging model that greatly differs from existing models in that it takes into account real technology restrictions of the chargers and nodes of the system, mainly regarding energy limitations. Our model also introduces non-linear constraints (in the time domain), that radically change the nature of the computational problems we consider. In this charging model, we present and study the Low Radiation Efficient Charging Problem (LREC), in which we wish to optimize the amount of "useful" energy transferred from chargers to nodes (under constraints on the maximum level of imposed radiation). We present several fundamental properties of this problem and provide indications of its hardness. Finally, we propose an iterative local improvement heuristic for LREC, which runs in polynomial time and we evaluate its performance via simulation. Our algorithm decouples the computation of the objective function from the computation of the maximum radiation and also does not depend on the exact formula used for the computation of the electromagnetic radiation in each point of the network, achieving good trade-offs between charging efficiency and radiation control, it also exhibits good energy balance properties. We provide extensive simulation results supporting our claims and theoretical results.
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