R1234ze(E)单压与双压蒸发有机朗肯循环热力学性能比较

Jian Li, Qiang Liu, Zhen Yang, Z. Ge, Y. Duan
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引用次数: 1

摘要

有机朗肯循环(ORC)在中低温(<350°C)热能的高效热-电转换方面具有很大的潜力。双压蒸发ORCs可以显著降低吸热过程中的火用损失。而在不同热源温度下,最优循环参数的变化以及与单压力蒸发ORC相比的热力学性能优势仍然不确定。本文研究了采用R1234ze(E)的双压蒸发ORC,由100-200℃无出口温度限制的热源驱动。优化了两级蒸发压力和高压蒸发器出口温度,并与单压蒸发ORC进行了热力性能比较。结果表明:当热源温度低于150℃时,双压蒸发ORC系统的最大净输出功率普遍大于单压蒸发ORC系统;热源温度越低,最大净功率输出增量一般越大;最大增幅为24.3%。当单压蒸发ORC吸热过程最小温差出现在蒸发泡点时,双压蒸发ORC一般可进一步提高系统净功率输出。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermodynamic Performance Comparison of Single-pressure and Dual-pressure Evaporation Organic Rankine Cycles Using R1234ze(E)
The organic Rankine cycle (ORC) presents a great potential in the efficient heat–power conversion of low and medium temperature (<350°C) thermal energy. Dual-pressure evaporation ORCs can significantly reduce the exergy loss in the endothermic process. While, variations of optimal cycle parameters and the superiority in the thermodynamic performance compared with the single-pressure evaporation ORC remain indeterminate for various heat source temperatures. This paper focuses on the dual-pressure evaporation ORC using R1234ze(E) driven by the 100–200°C heat sources without the outlet temperature limit. Two-stage evaporation pressures and the high-pressure evaporator outlet temperature were optimized, and the system thermodynamic performance was compared with that of the single-pressure evaporation ORC. Results show that the maximum net power output of the dual-pressure evaporation ORC system is generally larger than that of the single-pressure evaporation ORC system for the heat source temperature below 150°C. The heat source temperature is lower, the increment of the maximum net power output is generally larger; and the maximum increment is 24.3%. When the endothermic process minimal temperature difference of the single-pressure evaporation ORC occurs at the evaporation bubble point, the dual-pressure evaporation ORC generally can further increase the system net power output.
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