首页> 外文期刊>IEEE systems journal >Multiobjective Optimization for Frequency Support Using Electric Vehicles: An Aggregator-Based Hierarchical Control Mechanism
【24h】

Multiobjective Optimization for Frequency Support Using Electric Vehicles: An Aggregator-Based Hierarchical Control Mechanism

机译:电动汽车频率支持的多目标优化:基于聚集器的分层控制机制

获取原文
获取原文并翻译 | 示例
           

摘要

In the last few years, there has been an exponential increase in the penetration of electric vehicles (EVs) due to their eco-friendly nature, and ability to support bidirectional energy exchanges with the smart grid. Besides serving transportation needs and reducing the carbon footprints in the environment, EVs are widely used for instantaneous grid frequency support. However, the existing research proposals have concentrated majorly on unidirectional vehicle-to-grid (V2G) support using fleet of EVs, which in turn leads to reduced frequency regulation and reserve capacity of participating EVs. Motivated from these facts, in this paper, an "aggregator-based hierarchical control mechanism" for secondary frequency regulation (SFR) using a fleet of EVs has been presented. In the proposed solution, EVs' scheduling problem has been formulated to provide optimal SFR, while satisfying EVs' energy demands under battery degradation constraints. This multiobjective primal problem (Mo-PP) under multiple constraints is solved using an approximation approach. This task is achieved by decomposing the complex Mo-PP into four different subproblems (SPs), corresponding to controllers deployed at different layers. The designed SPs are then iteratively solved using interior point method. In summary, the tradeoff between SFR and EV's bidirectional energy demands has been investigated in this paper. Moreover, battery degradation issues induced due to frequent charging and discharging cycles of EVs are also explored. Optimal dispatch of regulation signals among the aggregators and charging stations also takes into account the advantages of conventional droop mechanism. Lastly, widely accepted Pennsylvania-New Jersey-Maryland and ERCOT regulation data have been used to perform extensive simulations. The results obtained demonstrate that the proposed scheme achieves 22.6% and 6.8% better performance in comparison with the existing schemes based on colored petri net and proportional integral derivative controller, respectively.
机译:在过去的几年中,由于电动汽车的环保特性以及支持与智能电网进行双向能量交换的能力,电动汽车的渗透率呈指数级增长。除了满足运输需求并减少环境中的碳足迹外,电动汽车还广泛用于瞬时电网频率支持。然而,现有的研究建议主要集中在使用电动车队的单向车辆到电网(V2G)支持上,这反过来导致频率调节的降低和参与电动车的备用容量的降低。基于这些事实,在本文中,提出了一种使用电动车队用于次级频率调节(SFR)的“基于聚合器的分级控制机制”。在提出的解决方案中,制定了电动汽车的调度问题以提供最佳的SFR,同时在电池退化约束下满足电动汽车的能源需求。使用逼近方法解决了多约束条件下的多目标原始问题(Mo-PP)。通过将复杂的Mo-PP分解为四个不同的子问题(SP),分别对应于部署在不同层的控制器,可以实现此任务。然后使用内点法迭代求解设计的SP。综上所述,本文研究了SFR和EV双向能源需求之间的权衡。此外,还研究了由于电动汽车频繁的充电和放电循环而引起的电池退化问题。聚集器和充电站之间调节信号的最佳分配还考虑了常规下垂机制的优点。最后,广泛接受的宾夕法尼亚州-新泽西州-马里兰州和ERCOT法规数据已用于执行广泛的模拟。所得结果表明,与基于有色Petri网和比例积分微分控制器的现有方案相比,该方案分别实现了22.6%和6.8%的性能。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号