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基于高级㶲分析的有机朗肯循环(ORC)余热回收研究

Advanced Exergy-Based Analysis of an Organic Rankine Cycle (ORC) for Waste Heat Recovery.

作者信息

Fergani Zineb, Morosuk Tatiana

机构信息

Laboratory of Biomaterials and Transport Phenomena, Department of Process and Environmental Engineering, University of Medea, Medea 26000, Algeria.

Institute for Energy Engineering, Technische Universität Berlin, Marchstr. 18, 10587 Berlin, Germany.

出版信息

Entropy (Basel). 2023 Oct 23;25(10):1475. doi: 10.3390/e25101475.

Abstract

In this study, advanced exergy and exergoeconomic analysis are applied to an Organic Rankine Cycle (ORC) for waste heat recovery to identify the potential for thermodynamic and economic improvement of the system (splitting the decision variables into avoidable/unavoidable parts) and the interdependencies between the components (endogenous and exogenous parts). For the first time, the advanced analysis has been applied under different conditions: constant heat rate supplied to the ORC or constant power generated by the ORC. The system simulation was performed in Matlab. The results show that the interactions among components of the ORC system are not strong; therefore, the approach of component-by-component optimization can be applied. The evaporator and condenser are important components to be improved from both thermodynamic and cost perspectives. The advanced exergoeconomic (graphical) optimization of these components indicates that the minimum temperature difference in the evaporator should be increased while the minimum temperature difference in the condenser should be decreased. The optimization results show that the exergetic efficiency of the ORC system can be improved from 27.1% to 27.7%, while the cost of generated electricity decreased from 18.14 USD/GJ to 18.09 USD/GJ.

摘要

在本研究中,先进的㶲分析和㶲经济分析应用于有机朗肯循环(ORC)余热回收系统,以确定系统在热力学和经济方面的改进潜力(将决策变量分为可避免/不可避免部分)以及各组件之间的相互依存关系(内生和外生部分)。首次在不同条件下进行了先进分析:向ORC提供恒定热流率或由ORC产生恒定功率。系统模拟在Matlab中进行。结果表明,ORC系统各组件之间的相互作用不强;因此,可以应用逐个组件优化的方法。从热力学和成本角度来看,蒸发器和冷凝器是需要改进的重要组件。对这些组件进行的先进㶲经济(图形)优化表明,应增加蒸发器中的最小温差,同时减小冷凝器中的最小温差。优化结果表明,ORC系统的㶲效率可从27.1%提高到27.7%,而发电成本从18.14美元/吉焦降至18.09美元/吉焦。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8611/10606046/89d74783075a/entropy-25-01475-g001.jpg

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