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Gasification process integration with existing combined heat and power plants for polygeneration of dimethyl ether or methanol: A detailed profitability analysis

机译:与现有的联合火力发电厂进行气化工艺集成以实现二甲醚或甲醇的多联产:详细的获利能力分析

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摘要

Combustion of waste for cogeneration of heat and power is the most convenient and practical choice to carry out through combined heat and power (CHP) plants. But, seasonal variation in heat demand throughout the year affects the operation of CHP plants. This fluctuation in the CHP operation cause less annual operating hours for the plant equipment and is also not profitable for stakeholders. This study aims to assess the technical potential of integrated gasification process with existing CHP plants for either dimethyl ether (DME) or methanol production through refuse-derived fuel (RDF). Process integration considers that the CHP plant provides the necessary heat for biofuel synthesis during off-peak hours. Mass and heat integration methods are used to develop and simulate the polygeneration processes for heat, power, and biofuel production. Both technical and economic indicators are reported and compared to assess the potential for both biofuels through process integration. Annual operation data of a real CHP plant has been extracted to evaluate the integrated processes. A flexible gasification configuration is selected for the integrated approach i.e. CHP runs at full load to provide the heat demand and only the excess heat of CHP plant is utilized for biofuel production. The energetic efficiencies of the polygeneration systems are compared with the standalone systems. Technical analysis of process integration shows the enhancement of the operational capacity of CHP during off-peak hours and it can produce biofuels without compromising the annual heat demand. Production of methanol through process integration shows ∼67% energetic efficiency while methanol production gives ∼65%. The efficiencies are higher than standalone DME and methanol processes (51% and 53%, respectively) but lower than standalone CHP plant i.e. 81%, however the process integration increases the operating time of the CHP plant with more economic benefits. Economic analysis coupled with uncertainty analysis through Monte Carlo simulations shows that by integrating CHP with gasifier to produce biofuels is significantly profitable as compared with only heat and electricity production. But, DME as a potential product shows more economic benefits than methanol. The uncertainty analysis through Monte Carlo simulations shows that the profitable probability of DME as a product in future is also greater than methanol due to higher DME selling price. The uncertainty analysis further shows that prices of DME and methanol with waste biomass prices in future will have a greater impact on the economic performance of the proposed polygeneration process.
机译:通过热电联产(CHP)电厂进行燃烧是热电联产的最方便,最实用的选择。但是,全年热量需求的季节性变化会影响热电联产设备的运行。热电联产运行中的波动导致工厂设备的年度运行时间减少,并且对利益相关者也不有利。这项研究旨在评估与现有的热电联产厂进行整合气化工艺的技术潜力,该技术可用于二甲基醚(DME)或通过垃圾衍生燃料(RDF)生产甲醇。过程集成认为,CHP工厂在非高峰时段为生物燃料合成提供了必要的热量。质量和热集成方法用于开发和模拟热,电和生物燃料生产的多联产过程。报告了技术和经济指标,并进行了比较,以通过流程整合评估两种生物燃料的潜力。提取了一个真正的热电联产厂的年度运营数据,以评估集成过程。为集成方法选择了灵活的气化配置,即CHP满负荷运行以提供热量需求,只有CHP设备的多余热量被用于生物燃料生产。将多联产系统的能量效率与独立系统进行了比较。对过程集成的技术分析表明,CHP在非高峰时段的运行能力有所提高,并且可以生产生物燃料而不会影响年度热量需求。通过工艺集成生产甲醇的能源效率约为67%,而甲醇生产的能源效率约为65%。效率高于独立的DME和甲醇工艺(分别为51%和53%),但低于独立的热电联产厂,即81%,但是工艺集成增加了热电联产厂的运行时间,并带来了更多的经济效益。经济分析以及通过蒙特卡洛模拟进行的不确定性分析表明,与仅供热和发电相比,将热电联产与气化炉集成以生产生物燃料具有明显的盈利能力。但是,作为潜在产品的DME比甲醇具有更多的经济利益。通过蒙特卡洛模拟进行的不确定性分析表明,由于较高的DME售价,DME作为产品未来的获利概率也大于甲醇。不确定性分析进一步表明,未来二甲醚和甲醇的价格以及废物生物质的价格将对拟议的多联产工艺的经济绩效产生更大的影响。

著录项

  • 来源
    《Applied Energy》 |2018年第15期|116-128|共13页
  • 作者单位

    School of Business, Society and Engineering, Mälardalen University;

    School of Business, Society and Engineering, Mälardalen University,Department of Engineering and Chemical Sciences, Karlstad University;

    School of Business, Society and Engineering, Mälardalen University;

    School of Business, Society and Engineering, Mälardalen University,School of Chemical Science and Engineering, Royal Institute of Technology;

  • 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

    Biomass-to-liquid; Waste-to-energy; Monte Carlo simulations; Aspen plus; Gasification;

    机译:生物质转化为液体;废物转化为能源;蒙特卡罗模拟;白杨加;气化;

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