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首页> 外文期刊>Energy Conversion & Management >Performance comparison and working fluid analysis of subcritical and transcritical dual-loop organic Rankine cycle (DORC) used in engine waste heat recovery
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Performance comparison and working fluid analysis of subcritical and transcritical dual-loop organic Rankine cycle (DORC) used in engine waste heat recovery

机译:亚临界和跨临界双回路有机朗肯循环(DORC)用于发动机废热回收的性能比较和工作流体分析

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摘要

In this paper, a new dual-loop organic Rankine cycle (DORC) consisting of a high-temperature (HT) cycle and a low-temperature (LT) cycle is proposed to recover the waste heat of the exhaust and the engine coolant and the residual heat of the HT cycle. Two different systems are adopted. According to the cycle mode adopted in the LT cycle, the system can be defined as subcritical-subcritical (sub-sub) DORC or subcritical-transcritical (sub-trans) DORC. R125, R143a and R218 are chosen as the candidate working fluids in the LT cycle of the sub-trans DORC, while R124, R134a, R245fa, R600, R600a and R1234yf are the candidates of the sub-sub DORC. Net output power and exergy efficiency are selected as the objective functions. Results show that R143a-based sub-trans DORC system performs the best and the net output power and the exergy efficiency are 39.91 kW and 48.42%, respectively. Small condensation temperature of the HT cycle is advantageous for the performance optimization. Irreversibilities of evaporator E_(HT), condenser C_(LT) and the two turbines (T_(HT) and T_(LT)) are the top four, which are the optimization objectives. For R143a-based sub-trans DORC, system performs best with 100% operating load.
机译:本文提出了一种由高温(HT)循环和低温(LT)循环组成的新型双回路有机朗肯循环(DORC),以回收废气和发动机冷却液的废热。 HT循环的余热。采用两种不同的系统。根据LT循环中采用的循环模式,可以将系统定义为亚临界-亚临界(sub-sub)DORC或亚临界-跨临界(sub-trans)DORC。在子反DORC的LT循环中,将R125,R143a和R218选择为候选工作流体,而将R124,R134a,R245fa,R600,R600a和R1234yf作为子反DORC的候选工作流体。选择净输出功率和火用效率作为目标函数。结果表明,基于R143a的次跨DORC系统性能最佳,净输出功率和能效效率分别为39.91 kW和48.42%。 HT循环的冷凝温度低有利于性能优化。蒸发器E_(HT),冷凝器C_(LT)和两个涡轮机(T_(HT)和T_(LT))的不可逆性是最优化的目标。对于基于R143a的sub-trans DORC,系统在100%的工作负载下表现最佳。

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