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Dynamics of an Integrated PV/Battery system for EV charging in a microgrid.

机译:微电网中用于EV充电的集成光伏/电池系统的动力学。

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摘要

Electric Vehicles (EVs) are emerging to play a key role in mitigating fossil fuel reliance and the environmental impacts brought on by the transportation sector. In parallel, it is essential that this growing electricity demand be met mostly with renewable sources. This study, as part of the Irvine Smart Grid Demonstration (ISGD) project, analyzes the effects of a renewable solar photovoltaic (PV) nanogrid --- a small-scale, autonomous power system, that ultimately ties into the central electrical distribution grid --- for EV charging associated with a controllable battery energy storage system, deployed in a primary circuit on the UCI (University of California, Irvine) Microgrid. The system's dynamic behavior is characterized for different control algorithms that govern battery dispatch, creating four different energy management strategies.;Power quality aspects of EV charging are also investigated, with a focus on harmonic distortion. A robust system design using delta-wye grounded transformers was shown to prevent any excessive harmonic currents from flowing upstream into the microgrid. Additionally, a diversity of EV charging loads promotes favorable harmonic cancellation.;A power flow model of the nanogrid was developed in a commercial power flow software (ETAP) and verified against smart meter data, which were used as inputs for the ETAP Real-Time module.;Lastly, a linear program was developed for optimally sizing nanogrid assets in the context of minimizing operation costs for the microgrid operator. The combination of an 80 kW PV array and a 95 kWh/45 kW battery energy storage system was shown to be the best option to power 20 Level-2 (7.2 kVA) EV chargers deployed at one of the university campus parking structures.
机译:电动汽车(EV)在减轻对矿物燃料的依赖以及交通运输部门对环境的影响方面起着关键作用。同时,至关重要的是,大部分可再生资源可以满足不断增长的电力需求。这项研究是尔湾智能电网示范(ISGD)项目的一部分,分析了可再生太阳能光伏(PV)纳米电网的影响-一种小型的自治电力系统,最终与中央配电网联系在一起- -用于与可控电池储能系统相关的EV充电,部署在UCI(加州大学尔湾分校)微电网的一次回路中。该系统的动态行为针对控制电池调度的不同控制算法进行了表征,从而创建了四种不同的能源管理策略。;还研究了电动汽车充电的电能质量方面,重点是谐波失真。展示了使用三角形三角接地变压器的稳健系统设计,可防止任何过多的谐波电流从上游流入微电网。此外,多样化的电动汽车充电负载可促进良好的谐波消除。;纳米网格的功率流模型是在商用功率流软件(ETAP)中开发的,并针对智能电表数据进行了验证,这些数据被用作ETAP实时输入最后,开发了一个线性程序,以在最小化微电网运营商的运营成本的情况下优化纳米电网资产的规模。事实证明,将80 kW光伏阵列和95 kWh / 45 kW电池储能系统相结合是为部署在大学校园停车场之一的20个Level-2(7.2 kVA)EV充电器供电的最佳选择。

著录项

  • 作者

    Martinez de Novoa, Laura.;

  • 作者单位

    University of California, Irvine.;

  • 授予单位 University of California, Irvine.;
  • 学科 Engineering.;Energy.;Sustainability.
  • 学位 M.S.
  • 年度 2016
  • 页码 202 p.
  • 总页数 202
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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