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Performance and Controls of Gas Turbine-Driven Combined Cooling Heating and Power Systems for Economic Dispatch.

机译:燃气轮机驱动的联合冷却供热系统的性能和控制,可实现经济调度。

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摘要

Combined cooling, heating and power (CCHP) systems are power generation stations designed for maximum waste heat recovery and energy sustainability. In a conventional CCHP system, a gas turbine provides the electrical generation and the waste heat is recovered for cooling and heating. Traditionally, utility-scale CCHP plants of 100 MW or more were commissioned to support large industrial processing plants. Light industry, commercial, and institutional applications have adopted smaller CCHP systems to realize economic savings and environmental benefits. Besides facing operating constraints such as smaller foot-print, shorter reaction time and shorter control tolerances, these plants also encounter low energy demands because of diurnal or seasonal variations, forcing them to operate at part-load. Coupled with relatively high capital and O&M costs, compact CCHP stations then become uneconomical for end-users. From flexibilities in operation, however, there are ample opportunities for favorable economic dispatch by operating the plant under demand response programs and ancillary services.;The small-scaled CCHP systems fall under the distributed generation (DG) category of many regulatory policies and electricity rate tariffs of utilities. Several typical rate structures applicable to CCHP systems were evaluated, including standby and non-standby time-of-use (TOU) , and critical peak pricing (CPP). The economic analysis produced insights on novel and preferred chiller dispatch strategies for energy and demand charge reduction.;The increased variability and uncertainty of renewable generation add to the balancing duties of grid regulators whom previously had to deal with such behaviors in system load. The situation is becoming direr for California, as the state mandates 33% renewable resource generation by 2020 along with a plethora of stringent environmental legislation that would displace 18,000 MW of traditional base-load plants by 2020. Therefore, ancillary services will become more valuable as grid balancing authorities such as CAISO seek to address the uncertainty and variability in renewable generation. A gas turbine-driven CCHP system is one example of an ancillary service provider capable of complementing the increased renewable penetration.;This dissertation seeks to elucidate the feasibility of implementing CCHP technology to light industrial and commercial applications for favorable economic dispatch to complement demand response services and renewable integration.
机译:冷却,加热和电力联合(CCHP)系统是旨在最大程度地回收废热和实现能源可持续性的发电站。在常规的CCHP系统中,燃气轮机提供电力,废热被回收以进行冷却和加热。传统上,100兆瓦或更高的公用事业规模CCHP工厂被委托支持大型工业加工厂。轻工业,商业和机构应用都采用了较小的CCHP系统,以实现经济节省和环境效益。这些工厂除了面临占地面积小,反应时间短和控制公差短等操作限制外,由于昼夜或季节变化,它们的能源需求也很低,迫使它们只能部分负荷运行。再加上相对较高的资金和运维成本,紧凑的CCHP站对最终用户而言变得不经济。然而,由于运营的灵活性,通过在需求响应计划和辅助服务下运营工厂,有充分的机会进行有利的经济调度。小型CCHP系统属于许多监管政策和电价的分布式发电(DG)类别公用事业的关税。评估了适用于CCHP系统的几种典型费率结构,包括备用和非备用使用时间(TOU)以及关键峰值定价(CPP)。经济分析对减少能源和需求费用的新颖且首选的冷水机组调度策略产生了见解。可再生能源发电的可变性和不确定性增加,增加了电网监管者的平衡职责,而电网监管者此前不得不应对系统负载中的此类行为。加利福尼亚州的情况变得更加严峻,因为该州要求到2020年,可再生资源的发电量达到33%,同时还有大量严格的环境立法,到2020年将取代18,000 MW的传统基本负荷电厂。因此,辅助服务将变得更加有价值诸如CAISO之类的电网平衡机构寻求解决可再生能源发电的不确定性和可变性。燃气轮机驱动的CCHP系统是能够补充可再生能源渗透率的辅助服务提供商的一个例子。本论文旨在阐明实施CCHP技术在轻工业和商业应用中的可行性,以实现有利的经济调度,以补充需求响应服务。和可再生能源整合。

著录项

  • 作者

    Do, Anh-Tuan Vu.;

  • 作者单位

    University of California, Irvine.;

  • 授予单位 University of California, Irvine.;
  • 学科 Engineering Mechanical.;Energy.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 349 p.
  • 总页数 349
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:40:42

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