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A predictive discrete event approach for the optimal charging of electric vehicles in microgrids

机译:微电网中电动车最佳充电的预测离散事件方法

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摘要

Distributed generation, renewables (RES), electric vehicles (EVs), storage systems and microgrids are increasing widespread all over the world owing to the necessity of applying policies for sustainable development. In particular, the progressive shift from traditional vehicles to EVs is considered as one of the key measures to achieve the objective of a significant reduction in the emission of pollutants, especially in urban areas. One of the major problem to be solved to make EVs a viable solution for the sustainable mobility is the development of effective facilities for vehicles. In this context, besides to technological aspects, one of the most important issues is the definition of fair and efficient policies for the sequencing and scheduling of the vehicle charging. In fact, scheduling problems are widely recognized as representing one of the most challenging class of optimization problems. Besides, the additional presence of specific features concerning vehicle charging systems (like controllable execution times, presence of intermittent energy sources, etc.) make even more difficult the vehicle charging problem. In this framework, despite the fact that optimization problems regarding energy systems are generally considered within a discrete-time setting, in this paper a discrete event approach is proposed. The reasons for this choice are essentially two. The first one is the necessity of containing the number of the decision variables, which grows beyond reasonable values when a small-time discretization step is chosen. The second is the impossibility of an accurate tracking of process and events using a discrete-time approach.The considered optimization problem regards the charging of a series of vehicles by a charging station that is integrated in a microgrid. Such a microgrid includes also renewable and traditional energy sources, storage systems and a local load. The objective function to be minimized results from the weighted sum of the (net) cost for purchasing energy from the external grid, the cost related to the use of fossil fuels, and the overall tardiness of the services provided to the customers. The effectiveness of the proposed approach is tested on a real case study.
机译:由于需要为可持续发展的政策申请政策,分布式发电,可再生能源(EVS),电动车辆(EVS),储存系统和微电网在全球范围内越来越大。特别是,传统车辆到EVS的逐步转变被认为是实现污染物排放的重大减少的目标的关键措施之一,特别是在城市地区。为了使可持续移动性的可行解决方案成为可持续移动性的最大问题之一是开发用于车辆的有效设施。在这种情况下,除了技术方面,最重要的问题之一是对车辆充电测序和调度的公平和有效政策的定义。事实上,调度问题被广泛认识为代表最具挑战性的优化问题之一。此外,关于车辆充电系统的具体特征的额外存在(类似可控执行时间,间歇能量源等的存在等)使得车辆充电问题更加困难。在该框架中,尽管有关于能量系统的优化问题通常在离散时间设置内被认为是提出了离散事件方法。这种选择的原因本质上是两个。 The first one is the necessity of containing the number of the decision variables, which grows beyond reasonable values when a small-time discretization step is chosen.第二种是使用离散时间方法准确地跟踪过程和事件的不可能性。考虑的优化问题是通过集成在微电网中的充电站的一系列车辆的充电。这种微普林还包括可再生和传统能源,存储系统和局部负载。目标函数是从外部网格购买能量的(网络)成本的加权之金中的最小化结果,与使用化石燃料的成本以及为客户提供的服务的总体迟到。在真正的案例研究中测试了所提出的方法的有效性。

著录项

  • 来源
    《Control Engineering Practice》 |2019年第5期|11-23|共13页
  • 作者单位

    Univ Genoa Dept Informat Bioengn Robot & Syst Engn DIBRIS Via Opera Pia 13 I-16145 Genoa Italy;

    Univ Genoa Dept Informat Bioengn Robot & Syst Engn DIBRIS Via Opera Pia 13 I-16145 Genoa Italy;

    Univ Genoa Dept Informat Bioengn Robot & Syst Engn DIBRIS Via Opera Pia 13 I-16145 Genoa Italy;

    Univ Genoa Dept Informat Bioengn Robot & Syst Engn DIBRIS Via Opera Pia 13 I-16145 Genoa Italy;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Microgrids; Electric vehicles; Scheduling; Discrete event control; Optimization;

    机译:微电网;电动车;调度;离散事件控制;优化;

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