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Experimental investigation and performance analysis of an Organic Rankine Cycle for low-temperature heat to electricity generation

机译:低温热发电的有机朗肯循环实验研究与性能分析

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This paper presents experimental investigation of low-temperature heat to electricity generation system based on Organic Rankine Cycle (ORC) using R152a as the working fluid. Both energy efficiency and exergy efficiency were analyzed based on the experiments. Although energy efficiency was low to 5.0% when the evaporating and cooling temperatures were 65 degrees C and 11 degrees C, respectively, the exergy efficiency reached 25%, which showed great competitiveness among low-temperature heat utilization technologies. To reveal the energy recovery proportion from the waste heat, both energy extraction efficiency and exergy extraction efficiency as well as energy and exergy loss paths were analyzed. When the heat source was 65 degrees C, 14.9% of the maximum possible thermal energy in the heat source was absorbed by the organic working fluid, and 10.7% was transferred to the cooling medium. The power output contributed 0.64%. A total of 1.8% of the exergy in the heat stream flowed to the cooling medium. The start-up work takes dramatically 0.16% and 1.7% of energy and exergy, respectively. Other energy and exergy loss occurs due to the irreversibility of the heat transfer process and expansion process. Cascade ORC system could enlarge the temperature difference of the heat streamand raise the power output. However, the energy efficiency of themulti-stage ORC system is lower than single-stage system, since there was a downward trend of the temperature of heat source for the latter stage. ORC cycle can lower the temperature of heat source to 45 degrees C.
机译:本文介绍了基于有机朗肯循环(ORC)的低温热电发电系统的实验研究,该系统以R152a为工作流体。根据实验分析了能源效率和火用效率。尽管当蒸发温度和冷却温度分别为65摄氏度和11摄氏度时,能源效率低至5.0%,但火用效率达到25%,这在低温热利用技术中显示出很大的竞争力。为了揭示废热中的能量回收比例,分析了能量提取效率和火用提取效率以及能量和火用损失路径。当热源为65℃时,热源中最大可能的热能的14.9%被有机工作流体吸收,并且10.7%被转移到冷却介质中。功率输出贡献了0.64%。热流中总共有1.8%的火用流向冷却介质。启动工作分别耗费了能源和火力的0.16%和1.7%。由于传热过程和膨胀过程的不可逆性,还会发生其他能量和火用损失。级联ORC系统可以增大热流的温差并提高功率输出。然而,多级ORC系统的能量效率低于单级系统,因为后级的热源温度存在下降的趋势。 ORC循环可以将热源的温度降低到45摄氏度。

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