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Hybrid Power System Intelligent Operation and Protection Involving Plug-in Electric Vehicles

机译:混合动力系统智能操作和涉及插电式电动车的保护

摘要

Two key solutions to reduce the greenhouse gas emissions and increase the overall energy efficiency are to maximize the utilization of renewable energy resources (RERs) to generate energy for load consumption and to shift to low or zero emission plug-in electric vehicles (PEVs) for transportation. The present U.S. aging and overburdened power grid infrastructure is under a tremendous pressure to handle the issues involved in penetration of RERS and PEVs. The future power grid should be designed with for the effective utilization of distributed RERs and distributed generations to intelligently respond to varying customer demand including PEVs with high level of security, stability and reliability. This dissertation develops and verifies such a hybrid AC-DC power system. The system will operate in a distributed manner incorporating multiple components in both AC and DC styles and work in both grid-connected and islanding modes.The verification was performed on a laboratory-based hybrid AC-DC power system testbed as hardware/software platform. In this system, RERs emulators together with their maximum power point tracking technology and power electronics converters were designed to test different energy harvesting algorithms. The Energy storage devices including lithium-ion batteries and ultra-capacitors were used to optimize the performance of the hybrid power system. A lithium-ion battery smart energy management system with thermal and state of charge self-balancing was proposed to protect the energy storage system. A grid connected DC PEVs parking garage emulator, with five lithium-ion batteries was also designed with the smart charging functions that can emulate the future vehicle-to-grid (V2G), vehicle-to-vehicle (V2V) and vehicle-to-house (V2H) services. This includes grid voltage and frequency regulations, spinning reserves, micro grid islanding detection and energy resource support.The results show successful integration of the developed techniques for control and energy management of future hybrid AC-DC power systems with high penetration of RERs and PEVs.
机译:减少温室气体排放并提高整体能源效率的两个关键解决方案是,最大限度地利用可再生能源(RER)来产生能源以减少负荷,并转向低排放或零排放的插电式电动汽车(PEV)运输。当前的美国老化和超负荷的电网基础设施承受着巨大的压力,难以解决RERS和PEV渗透的问题。未来的电网应设计用于有效利用分布式RER和分布式发电,以智能地响应不断变化的客户需求,包括具有高安全性,稳定性和可靠性的PEV。本文开发并验证了这种混合型AC-DC电源系统。该系统将以包含AC和DC样式的多个组件的分布式方式运行,并且可以在并网和孤岛模式下工作。验证是在基于实验室的混合AC-DC电力系统测试平台上进行的,该系统作为硬件/软件平台进行了测试。在该系统中,RER仿真器及其最大功率点跟踪技术和电力电子转换器被设计为测试不同的能量收集算法。包括锂离子电池和超级电容器在内的储能设备用于优化混合动力系统的性能。为了保护储能系统,提出了一种具有热量和电量状态自平衡功能的锂离子电池智能能源管理系统。还设计了具有五个锂离子电池的并网连接的DC PEV停车场仿真器,其具有智能充电功能,可以模拟未来的车辆对电网(V2G),车辆对车辆(V2V)和车辆对车辆内部(V2H)服务。其中包括电网电压和频率法规,旋转储备,微电网孤岛检测和能源支持。结果表明,已开发的技术已成功集成了未来具有RER和PEV的高渗透率的混合AC-DC电力系统的控制和能源管理。

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    Ma Tan;

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  • 年度 2015
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