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Design and optimization of organic rankine cycle for low temperature geothermal power plant.

机译:低温地热发电厂有机朗肯循环的设计与优化。

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摘要

Rising oil prices and environmental concerns have increased attention to renewable energy. Geothermal energy is a very attractive source of renewable energy. Although low temperature resources (90°C to 150°C) are the most common and most abundant source of geothermal energy, they were not considered economical and technologically feasible for commercial power generation. Organic Rankine Cycle (ORC) technology makes it feasible to use low temperature resources to generate power by using low boiling temperature organic liquids. The first hypothesis for this research is that using ORC is technologically and economically feasible to generate electricity from low temperature geothermal resources. The second hypothesis for this research is redesigning the ORC system for the given resource condition will improve efficiency along with improving economics.;ORC model was developed using process simulator and validated with the data obtained from Chena Hot Springs, Alaska. A correlation was observed between the critical temperature of the working fluid and the efficiency for the cycle. Exergy analysis of the cycle revealed that the highest exergy destruction occurs in evaporator followed by condenser, turbine and working fluid pump for the base case scenarios.;Performance of ORC was studied using twelve working fluids in base, Internal Heat Exchanger and turbine bleeding constrained and non-constrained configurations. R601a, R245ca, R600 showed highest first and second law efficiency in the non-constrained IHX configuration. The highest net power was observed for R245ca, R601a and R601 working fluids in the non-constrained base configuration. Combined heat exchanger area and size parameter of the turbine showed an increasing trend as the critical temperature of the working fluid decreased. The lowest levelized cost of electricity was observed for R245ca followed by R601a, R236ea in non-constrained base configuration. The next best candidates in terms of LCOE were R601a, R245ca and R600 in non-constrained IHX configuration. LCOE is dependent on net power and higher net power favors to lower the cost of electricity.;Overall R245ca, R601, R601a, R600 and R236ea show better performance among the fluids studied. Non constrained configurations display better performance compared to the constrained configurations. Base non-constrained offered the highest net power and lowest LCOE.
机译:不断上涨的石油价格和对环境的关注使人们越来越重视可再生能源。地热能是一种非常有吸引力的可再生能源。尽管低温资源(90°C至150°C)是最常见和最丰富的地热能源,但人们认为低温资源在商业发电中在经济和技术上都不可行。有机朗肯循环(ORC)技术使利用低温资源通过使用低沸点有机液体发电成为可能。该研究的第一个假设是,使用ORC在低温地热资源中发电具有技术和经济可行性。这项研究的第二个假设是针对给定的资源条件重新设计ORC系统,以提高效率并提高经济效益。; ORC模型是使用过程模拟器开发的,并使用从阿拉斯加Chena Hot Springs获得的数据进行了验证。在工作流体的临界温度和循环效率之间观察到相关性。对循环的火用分析表明,在基本情况下,最大的火用破坏发生在蒸发器中,其次是冷凝器,涡轮和工作流体泵。;在基座,内部换热器和涡轮渗漏受到限制的情况下,使用十二种工作流体研究了ORC的性能。非约束配置。 R601a,R245ca,R600在非约束IHX配置中显示出最高的第一定律和第二定律效率。在非约束基础配置中,观察到R245ca,R601a和R601工作流体的最高净功率。随着工作流体的临界温度的降低,组合的热交换器面积和涡轮机的尺寸参数呈增加趋势。在无约束基础配置中,R245ca的电费成本最低,其次是R601a,R236ea。就LCOE而言,次优候选者是非约束IHX配置的R601a,R245ca和R600。 LCOE取决于净功率,较高的净功率有利于降低电成本。总体而言,R245ca,R601,R601a,R600和R236ea在所研究的流体中表现出更好的性能。与约束配置相比,非约束配置显示更好的性能。无约束基础提供了最高的净功率和最低的LCOE。

著录项

  • 作者

    Barse, Kirtipal A.;

  • 作者单位

    The University of North Dakota.;

  • 授予单位 The University of North Dakota.;
  • 学科 Engineering Chemical.;Energy.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 107 p.
  • 总页数 107
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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