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首页> 外文期刊>Energy Conversion & Management >Process optimization and working fluid mixture design for organic Rankine cycles (ORCs) recovering compression heat in oxy-combustion power plants
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Process optimization and working fluid mixture design for organic Rankine cycles (ORCs) recovering compression heat in oxy-combustion power plants

机译:有机朗肯循环(ORC)的工艺优化和工作流体混合物设计,可回收氧气燃烧电厂的压缩热

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摘要

In this study, an Organic Rankine Cycle (ORC) is proposed to be integrated with the flue gas pre-compression process to reduce the energy cost resulting from Carbon Capture and Storage (CCS). An equation-based flowsheet optimization model is developed considering the mixture working fluid design, ORC operating conditions and the compression process simultaneously. The optimal number of stages of CO2 compression, the working fluid composition and the optimal operating conditions of ORCs and the compression train can be determined simultaneously using the proposed mathematical model. Proper heat integration can boost the power output of the ORC system significantly. The heat integration model considering variable process streams is extended to the integrated ORC and flue gas compression train process. The results show that the optimal number of stages is 4 and a pure working fluid could perform better than a mixture working fluid if operating conditions are chosen properly. The integration of ORCs can reduce the energy penalty by 7.9% compared with the original optimal design that did not include ORCs. In addition, one compressor stage is avoided.
机译:在这项研究中,提出了将有机朗肯循环(ORC)与烟气预压缩过程集成在一起的方法,以降低碳捕集与封存(CCS)产生的能源成本。同时考虑混合物工作流体设计,ORC操作条件和压缩过程,开发了基于方程的流程优化模型。使用提出的数学模型可以同时确定最佳的CO2压缩级数,工作流体成分以及ORC和压缩序列的最佳运行条件。适当的热量整合可以大大提高ORC系统的功率输出。考虑可变工艺流的热集成模型扩展到集成的ORC和烟气压缩机组工艺。结果表明,最佳阶段数为4,并且如果适当选择运行条件,纯工作液的性能可能会优于混合工作液。与不包含ORC的原始最佳设计相比,ORC的集成可以将能耗降低7.9%。另外,避免了一个压缩机级。

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