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Advancing Design Sizing and Performance Optimization Methods for Building Integrated Thermal and Electrical Energy Generation Systems

机译:推进建筑集成热电发电系统的设计规模和性能优化方法

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摘要

Combined electrical and thermal energy systems (i.e., cogeneration systems) will play an integral role in future energy supplies because they can yield higher overall system fuel utilization and efficiency, and thus produce fewer greenhouse gas emissions, than traditionally separate systems. However, methods for both design sizing and performance optimization for cogeneration systems and commercial buildings lag behind the tremendous advancements that have been made in building performance simulation methods. Therefore, the overall goal of this research is to develop and apply novel cogeneration system modeling techniques for optimizing design sizing and dispatch of generation sets that reduce energy use, energy costs, and greenhouse gas emissions. This research is divided into four main research objectives: (1) generalizing cogeneration performance of lean burn natural gas spark ignition reciprocating engines, (2) developing a new Design and Optimization of Combined Heat and Power (DOCHP) systems optimization tool for improving design-sizing of building-integrated and grid-tied CHP systems, (3) demonstrating the utility of the DOCHP tool with several practical applications, and (4) integrating on-site intermittent renewable energy systems into the DOCHP tool to analyze micro-grid applications. This research leverages recent developments in multiple areas of building and system simulation methods. DOCHP advances design sizing and performance optimization methods for building integrated thermal and electrical energy generation systems through the application of an evolutionary artificial intelligence-based genetic algorithm and its ability to resolve to non-linear optimization with discrete constraints while considering non-linear part-load generation set performance curves.
机译:组合的电能和热能系统(即热电联产系统)将在未来的能源供应中发挥不可或缺的作用,因为与传统的独立系统相比,它们可以产生更高的整体系统燃料利用率和效率,从而减少温室气体排放。然而,用于热电联产系统和商业建筑的设计尺寸和性能优化的方法都落后于建筑性能模拟方法所取得的巨大进步。因此,本研究的总体目标是开发和应用新颖的热电联产系统建模技术,以优化设计定型和发电机组调度,从而减少能源使用,能源成本和温室气体排放。这项研究分为四个主要研究目标:(1)推广稀薄燃烧天然气火花点火往复式发动机的热电联产性能,(2)开发新的设计和优化热电联产(DOCHP)系统优化工具,以改进设计,规模的建筑集成和并网的热电联产系统,(3)展示了DOCHP工具在多种实际应用中的实用性,以及(4)将现场间歇性可再生能源系统集成到DOCHP工具中,以分析微电网应用。这项研究利用了建筑和系统仿真方法在多个领域的最新发展。 DOCHP通过应用基于进化人工智能的遗传算法及其在考虑非线性部分负荷的情况下解析为具有离散约束的非线性优化的能力,为构建集成热电发电系统提供了设计尺寸和性能优化方法。发电机组性能曲线。

著录项

  • 作者

    Zakrzewski, Thomas.;

  • 作者单位

    Illinois Institute of Technology.;

  • 授予单位 Illinois Institute of Technology.;
  • 学科 Civil engineering.;Architectural engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 208 p.
  • 总页数 208
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:39:16

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