低品位能源多相流与传热北京市重点实验室(华北电力大学), 北京市 昌平区,102206
纸质出版:2025
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钱启琛, 孙恩慧, 徐进良, 等. 超临界压缩回热朗肯循环部分负荷特性研究[J]. 中国电机工程学报, 2025,(21):8503-8511.
QIAN Qichen, SUN Enhui, XU Jinliang, et al. Research on Part-load Performance of Supercritical Compressed Regenerative Rankine Cycle[J]. 2025, (21): 8503-8511.
钱启琛, 孙恩慧, 徐进良, 等. 超临界压缩回热朗肯循环部分负荷特性研究[J]. 中国电机工程学报, 2025,(21):8503-8511. DOI: 10.13334/j.0258-8013.pcsee.241336.
QIAN Qichen, SUN Enhui, XU Jinliang, et al. Research on Part-load Performance of Supercritical Compressed Regenerative Rankine Cycle[J]. 2025, (21): 8503-8511. DOI: 10.13334/j.0258-8013.pcsee.241336.
超临界压缩回热过程能够显著提升朗肯循环的回热量和循环热效率,可等效为不对环境放热的布雷顿循环。这也导致该过程工质的运行条件为超临界。当超临界机组部分负荷下主汽压力低于临界压力时或者对于亚临界机组,该过程运行受到限制。该文将超临界压缩回热过程构建为独立循环,使其工质不再依赖于朗肯循环,从而克服了该过程的应用局限性。以600 MW一次再热亚临界燃煤机组为参考,通过Ebsilon软件建模,对超临界压缩回热朗肯循环(supercritical compressed regenerative Rankine cycle,SRC)、跨临界压缩回热朗肯循环(transcritical compressed regenerative Rankine cycle,TRC)和参考朗肯循环(Rankine cycle,RK)进行热力学计算并对比分析。结果表明,SRC和TRC在全工况下的效率均高于RK,提升幅度最高可达1.58%,发电煤耗率下降可达11.86 g/(kW·h),表明超临界压缩回热过程可显著提升机组的全工况能效。通过㶲分析,发现应用超、跨临界压缩回热过程后,换热过程(锅炉和回热过程)㶲损系数降低,具体为锅炉㶲损系数降低,回热过程㶲损系数提高,表现出回热增强的特征。在50%负荷下,㶲效率提升最高可达1.44%。该文构建的超临界压缩回热朗肯循环在全工况下能保证回热量、热效率提升,突破了朗肯循环在抽汽回热中的效率提升瓶颈,可为现有机组改造提供方向。
The supercritical compressed regenerative process can significantly enhance the regeneration heat and thermal efficiency of the Rankine cycle. It can be equivalent to a Brayton cycle that does not release heat to the environment. This results in the working fluid of the process operating under supercritical conditions. However
when the live steam pressure falls below the critical pressure in a supercritical or subcritical unit
the operation of this process becomes limited. This paper regards the supercritical compressed regenerative process as an independent cycle
removing the dependency of the working fluid on the Rankine cycle
thereby overcoming the application limitations of the process. Taking the 600 MW single-reheat subcritical coal-fired unit as a reference
thermodynamic calculations are performed on the supercritical compressed regenerative Rankine cycle (SRC)
transcritical compressed regenerative Rankine cycle (TRC)
and the reference Rankine cycle (RK) using the Ebsilon software. The results indicate that the thermal efficiency of SRC and TRC is consistently higher than that of RK under all operating conditions
with an improvement of up to 1.58%. Additionally
coal consumption is reduced by a maximum of 11.86 g/(kW·h)
demonstrating that the supercritical compressed regenerative process can significantly improve thermal efficiency under all operating conditions. According to exergy analysis
the exergy destruction ratio of the heat exchange process (boiler heat supply and regeneration) decreases after applying the supercritical compressed regenerative process. Specifically
the exergy destruction ratio of the boiler decreases
while that of the regeneration process increases
indicating an improved regeneration effect. Under 50% load
the exergy efficiency can be increased by up to 1.44%. The supercritical compressed regenerative Rankine cycle constructed in this paper ensures improvement in the heat of regeneration and thermal efficiency under all operating conditions
overcoming the efficiency improvement bottleneck of the Rankine cycle in extraction steam regeneration and providing a direction for the transformation of existing units.
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