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Energy Link Optimization in a Wireless Power Transfer Grid under Energy Autonomy Based on the Improved Genetic Algorithm

机译:基于改进遗传算法的能量自主的无线输电电网能量链路优化

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In this paper, an optimization method is proposed for the energy link in a wireless power transfer grid, which is a regional smart microgrid comprised of distributed devices equipped with wireless power transfer technology in a certain area. The relevant optimization model of the energy link is established by considering the wireless power transfer characteristics and the grid characteristics brought in by the device repeaters. Then, a concentration adaptive genetic algorithm (CAGA) is proposed to optimize the energy link. The algorithm avoided the unification trend by introducing the concentration mechanism and a new crossover method named forward order crossover, as well as the adaptive parameter mechanism, which are utilized together to keep the diversity of the optimization solution groups. The results show that CAGA is feasible and competitive for the energy link optimization in different situations. This proposed algorithm performs better than its counterparts in the global convergence ability and the algorithm robustness.
机译:在本文中,提出了一种用于无线电力传输网格中的能量链路的优化方法,该无线电力传输网格是区域智能微电网,其由在一定区域内配备有无线电力传输技术的分布式设备组成。通过考虑设备中继器带来的无线电力传输特性和电网特性,建立了能量链路的相关优化模型。然后,提出了一种浓度自适应遗传算法(CAGA)来优化能量链。该算法通过引入集中机制和一种新的称为正序交叉的交叉方法以及自适应参数机制来避免统一趋势,这些方法被一起使用以保持优化解决方案组的多样性。结果表明,CAGA对于不同情况下的能量链优化是可行和有竞争力的。该算法在全局收敛能力和鲁棒性方面均优于同类算法。

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