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Analysis, economical and technical enhancement of an organic Rankine cycle recovering waste heat from an exhaust gas stream

机译:从废气流中回收废热的有机朗肯循环的分析,经济和技术改进

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Any effort with the aim of increasing the total electrical power generation (EPG) due to the existed constraints in vessels is desired in power plants. Using Organic Rankine Cycle (ORC) for recovering waste heat of an exhausting gas is considered as an auxiliary way for improving EPG value. In this study, four ORC arrangements were first modeled for six refrigerants by EES software and the first and second laws of thermodynamics efficiency (η I and η I I , respectively) and mass flow rate were studied for these cycles. Based on modeling results, the best arrangement was selected for each refrigerant such as; F‐type (Reference cycle+ Intermediate recuperator+ Final recuperator) for R123, H‐type (Reference cycle+ Intermediate recuperator) for R114 and n‐butane and R‐type (Reference cycle + Final recuperator) for n‐pentane, n‐heptane, and toluene. The η I value as a technical objective function was then optimized for the above cycles by Aspen HYSYS. n‐heptane and toluene cycles were chosen due to higher first‐law efficiency value and then were studied under different source temperature condition and n‐heptane cycle showed better adaptability. Afterward, exergoeconomic was applied on n‐heptane cycle and maximum cycle pressure was chosen as a design variable for economically optimizing net final income (NFI). Finally, NFI value is increased from 423.1$/kW·h to 609.9$/kW·h about 44.2%, while the second‐law efficiency value is just decreased from 25.6% to 20.6% about 5%.
机译:由于发电厂中存在的限制,任何旨在增加总发电量(EPG)的努力都需要在发电厂中进行。使用有机朗肯循环(ORC)回收废气的废热被认为是提高EPG值的辅助方法。在这项研究中,首先通过EES软件对六个制冷剂建模了四个ORC布置,并针对这些循环研究了热力学效率(分别为ηI和ηI I)和质量流率的第一和第二定律。根据建模结果,为每种制冷剂选择最佳布置,例如: R123的F型(参考循环+中间换热器+最终换热器),R114和正丁烷的H型(参考循环+中间换热器),正戊烷,正庚烷和R型(参考循环+最终换热器)甲苯。然后,由Aspen HYSYS针对上述循环优化作为技术目标函数的ηI值。由于较高的第一定律效率值,因此选择了正庚烷和甲苯循环,然后在不同的源温度条件下进行了研究,正庚烷循环显示出更好的适应性。之后,对正庚烷循环应用能效经济学,并选择最大循环压力作为经济优化净最终收入(NFI)的设计变量。最后,NFI值从423.1 $ / kW·h增加到609.9 $ / kW·h大约44.2%,而第二律效率值仅从25.6%降低到20.5%(大约5%)。

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