• CN:11-2187/TH
  • ISSN:0577-6686

机械工程学报 ›› 2025, Vol. 61 ›› Issue (14): 285-296.doi: 10.3901/JME.2025.14.285

• 可再生能源与工程热物理 • 上一篇    

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基于地热能的双级蒸发双回热有机朗肯循环高级㶲和高级㶲经济分析

戴文智, 沈雄健, 李青洋, 杨新乐   

  1. 辽宁工程技术大学机械工程学院 阜新 123000
  • 收稿日期:2024-07-03 修回日期:2024-12-11 发布日期:2025-08-25
  • 作者简介:戴文智(通信作者),男,1979年出生,博士,副教授。主要从事低温余热回收利用,系统集成建模、设计、优化方面的研究。E-mail:dwz5470@163.com
  • 基金资助:
    国家自然科学基金(12302374,12202165,51774161)和辽宁省教育厅基金(LJKMZ20220685)资助项目。

Advanced Exergy and Advanced Exergy Economic Analysis of Double- stage Evaporation Double-regenerative Organic Rankine Cycle Based on Geothermal Energy

DAI Wenzhi, SHEN Xiongjian, LI Qingyang, YANG Xinle   

  1. School of Mechanical Engineering, Liaoning Technical University, Fuxin 123000
  • Received:2024-07-03 Revised:2024-12-11 Published:2025-08-25

摘要: 双级蒸发有机朗肯循环(Organic rankine cycle,ORC)能有效提高热源利用效率,回热-ORC能有效利用膨胀机排出余热,结合两者优点,提出双级蒸发双回热有机朗肯循环系统(Double-stage evaporation and double recuperation Organic rankine cycle,DEDR-ORC)。常规㶲法侧重于独立组件的㶲损失,无法识别系统组件之间的相互作用对系统性能的实际影响,提出高级㶲和高级㶲经济法对DEDR-ORC进行分析。探讨DEDR-ORC的先进性、组件㶲损失和组件之间相互作用关系和组件的实际改进潜力。结果表明:DEDR-ORC的㶲效率和净输出功相对双级蒸发-ORC和回热-ORC最大提高了27.24%和4 436.97 kW,平准化电能成本降低了0.006 。常规㶲法得到膨胀机和冷凝器的㶲损失最大为755.15 kW和567.20 kW,高级㶲法得到膨胀机、冷凝器和蒸发器1总可避免㶲损失为553.28 kW、223 kW、103.20 kW,其组件改进潜力依据总可避免㶲损失大小排序,因此,膨胀机、冷凝器和蒸发器1改进潜力最大。高级㶲经济法得到膨胀机、蒸发器1、混合回热器的总可避免成本为71.16 $/h、1.14 $/h、0.94 $/h,均为正值,其余组件均为负值,其降低成本的改进潜力仅有膨胀机、蒸发器1和混合回热器,其余组件无改进潜力。研究结果可为ORC系统设计及优化提供理论支撑与技术参考。

关键词: 地热能, 有机朗肯循环, 双级蒸发双回热, 高级㶲, 高级㶲经济

Abstract: Two-stage evaporative organic Rankine cycle(ORC) can effectively improve the efficiency of heat source utilization, and regenerative-ORC can effectively utilize the waste heat discharged by the expander. Combining the advantages of the two, a two-stage evaporative double regenerative organic Rankine cycle system(DEDR-ORC) is proposed. The conventional method focuses on the exergy loss of independent components, and cannot identify the actual impact of the interaction between components on the system performance. The advanced exergy and advanced economic law are proposed to analyze the DEDR-ORC. The advancement of DEDR-ORC, the flow relationship between components and the actual improvement potential of components are discussed. The results show that the exergy efficiency and net output power of DEDR-ORC are 27.24% and 4 436.97 kW higher than those of two-stage evaporation-ORC and regenerative-ORC, and the leveling power cost is reduced by 0.006 . The maximum exergy loss of the expander and condenser obtained by the conventional exergy method is 755.15 kW and 567.20 kW, respectively. The total avoidable exergy loss of the expander, condenser and evaporator 1 obtained by the advanced exergy method is 553.28 kW, 223 kW and 103.20 kW, respectively. The potential for component improvement is sorted according to the total avoidable exergy loss. Therefore, the expander, condenser and evaporator are obtained. According to the advanced economic law, the total avoidable costs of expander, evaporator 1 and hybrid regenerator are 71.16 $/h, 1.14 $/h and 0.94 $/h, which are positive, and the remaining components are negative. The improvement potential of cost reduction is only expander, evaporator1 and hybrid regenerator, and the remaining components have no improvement potential. The research results can provide theoretical support and technical reference for ORC system design and optimization.

Key words: geothermal energy, organic Rankine cycle, double-stage evaporation and double recuperation, advanced exergy, advanced exergy economy

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