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Conceptual design, analysis and optimization of nuclear-based hydrogen production via copper-chlorine thermochemical cycles.

机译:通过铜-氯热化学循环进行核基制氢的概念设计,分析和优化。

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摘要

he world faces problems with depleting energy resources and the harmful impact of present energy consumption patterns on the environment, and consequently on the global climate and humanity. The concerns regarding global climate change are serious and have resulted in extensive research and developments on alternative, clean energy sources. While many of the available natural energy resources are limited due to their reliability, quality, quantity and density; nuclear energy has the potential to contribute a significant share of large scale energy supply without or little contributing to climate change. Hydrogen production via thermochemical water decomposition is one of the key potential processes for direct utilization of nuclear thermal energy. Thermochemical water splitting with a copper-chlorine (Cu-Cl) cycle is a promising process that could be linked with nuclear reactors to decompose water into its constituents, oxygen and hydrogen as a net result, through intermediate copper and chlorine compounds with a net input of water and heat. The process involves a series of closed-loop chemical reactions that does not contribute to any greenhouse gas emissions into the environment.;In this thesis, process analysis is performed and simulation models are developed using the Aspen Plus simulation package, based on experimental work carried out at the University of Ontario Institute of Technology (UOIT), the Argonne National Laboratory (ANL), the Atomic Energy of Canada Limited (AECL) and other sources. The energy and mass balances, stream flows and properties, the heat exchanger duties and shaft work are calculated. Heat recovery options are assessed to improve thermal management and hence overall efficiency of the Cu-Cl cycle. An integrated heat exchange network is designed to use heat from the process streams efficiently and decrease the external heat demand.;The efficiency of the process, based on three, four and five-step cycles, is examined in this thesis. The thermal efficiency of the five-step thermochemical process is calculated as 44%, of the four-step process is 43% and of the three-step process is 41%, based on the lower heating value of hydrogen. Sensitivity analyses are performed to study the effects of various operating parameters on the efficiency, yield, and cost. A parametric study is conducted, and possible efficiency improvements are discussed.;The manner is investigated in which exergy-related parameters can be used to minimize the cost of a Cu-Cl thermochemical cycle for hydrogen production. The iterative optimization technique presented requires a minimum of available data and provides effective assistance in optimizing thermal systems, particularly in dealing with complex systems and/or cases where conventional optimization techniques cannot be applied. The principles of thermoeconomics, as embodied in the specific exergy cost (SPECO) and exergy-cost-energy-mass (EXCEM) methods, are used here to determine changes in the design parameters of the cycle that improve the cost effectiveness of the overall system. It is found that the cost rate of exergy destruction varies between ;Although some preliminary technical studies of the Cu-Cl cycle have been reported and some small lab scale experiments of individual reactions in the cycle have been carried out, there is still a need to link all the sub-steps of the cycle and build a pilot plant, to facilitate eventual commercialization. Such an experimental set up of overall cycle is lacking, especially to evaluate characteristics of the complete cycle such as energy, exergy and cost effectiveness. Simulation packages, such as Aspen Plus, are useful tools to provide the system designer or operator with design, optimization and operation information before building a pilot plant.;Also, an integrated Cu-Cl cycle hydrogen production system, based on nuclear and renewable energy sources, is investigated. Nuclear and renewable energy sources are reviewed to determine the most appropriate option to couple with the Cu-Cl cycle. An environmental impact assessment is conducted and compared to the conventional methods using fossil fuels and other options. Some cost assessment studies of hydrogen production are presented for this integrated system. The results show that hydrogen production cost could drop down to as low as 2.8
机译:世界面临着能源枯竭的问题,以及当前能源消费方式对环境的不利影响,进而对全球气候和人类的危害。关于全球气候变化的担忧是严重的,并导致对替代性清洁能源的广泛研究与开发。虽然许多可用的自然能源资源由于其可靠性,质量,数量和密度而受到限制;核能有可能在大规模能源供应中占很大比重,而对气候变化的贡献很小。通过热化学水分解制氢是直接利用核热能的潜在关键过程之一。通过铜-氯(Cu-Cl)循环进行热化学水分解是一个很有前途的过程,可以与核反应堆联系在一起,通过净输入的中间铜和氯化合物将水分解为净成分氧和氢水和热量。该过程涉及一系列闭环化学反应,这些化学反应不会导致任何温室气体排放到环境中。在本论文中,基于所进行的实验工作,进行了过程分析并使用Aspen Plus仿真软件包开发了仿真模型。可以从安大略工业大学(UOIT),阿贡国家实验室(ANL),加拿大原子能有限公司(AECL)和其他来源获得。计算能量和质量平衡,物流和特性,热交换器的负荷和竖井功。评估了热回收选项,以改善热管理,从而改善Cu-Cl循环的整体效率。设计了一个集成的热交换网络,以有效地利用过程流中的热量并减少外部热量需求。本文研究了基于三步,四步和五步循环的过程效率。基于较低的氢热值,五步热化学过程的热效率计算为44%,四步过程的热效率为43%,三步过程的热效率为41%。进行敏感性分析以研究各种操作参数对效率,产量和成本的影响。进行了参数研究,并讨论了可能的效率改进。;研究了以能干相关参数可用于最小化制氢用Cu-Cl热化学循环的成本的方式。提出的迭代优化技术需要最少的可用数据,并在优化热系统方面提供有效的帮助,特别是在处理复杂系统和/或无法应用常规优化技术的情况下。热经济学原理,体现在比热能成本(SPECO)和热能成本-能量-质量(EXCEM)方法中,此处用于确定循环设计参数的变化,从而改善整个系统的成本效益。发现本能破坏的成本率之间存在差异;尽管已经报道了一些有关Cu-Cl循环的初步技术研究,并且已经进行了一些有关循环中单个反应的小型实验室实验,但仍然需要连接周期的所有子步骤,并建立一个试验工厂,以促进最终的商业化。缺乏这样一个整体循环的实验装置,特别是缺乏评估整个循环的特性,例如能量,火用和成本效益的方法。仿真程序包(例如Aspen Plus)是有用的工具,可在建造试验工厂之前为系统设计人员或操作员提供设计,优化和操作信息。此外,它还基于核能和可再生能源的集成式Cu-Cl循环制氢系统来源,正在调查中。审查了核能和可再生能源,以确定与Cu-Cl循环耦合的最合适的选择。进行了环境影响评估,并将其与使用化石燃料和其他选择的常规方法进行了比较。提出了一些针对该集成系统的制氢成本评估研究。结果表明,制氢成本可降至2.8

著录项

  • 作者

    Orhan, Mehmet Fatih.;

  • 作者单位

    University of Ontario Institute of Technology (Canada).;

  • 授予单位 University of Ontario Institute of Technology (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 265 p.
  • 总页数 265
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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