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Experimental study of an Organic Rankine Cycle with HFO-1336mzz-Z as a low global warming potential working fluid for micro-scale low temperature applications

机译:HFO-1336mzz-Z作为低全球升温潜能值工作流体的有机朗肯循环的实验研究,用于微型低温应用

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An experimental evaluation of HFO-1336mzz-Z as a low global warming potential working fluid for ORC systems in micro-scale low temperature applications has been conducted. The energy performance in a fully monitored ORC module has been analyzed varying the heat source temperatures between 140 degrees C and 160 degrees C and heat sink temperatures between 25 degrees C and 40 degrees C. The ORC module uses a regenerative configuration allowing heat recovery not only from the heat source but also from the expanded vapor, thus improving the cycle thermal and electrical efficiency. The maximum gross electrical power generated was 1100 W, while the net electrical efficiency ranged from 5.5% to 8.3%. The volumetric expander performance was analyzed by means of the filling factor, while deviations of expander operation from ideal performance were evaluated by means of the isentropic and overall expander-generator efficiency. Net electrical efficiency, isentropic expander efficiency and volumetric expander performance obtained with HFO-1336mzz-Z in this work are higher than those obtained with HFC-245fa in a previous work using the same experimental facility. (C) 2017 Elsevier Ltd. All rights reserved.
机译:已进行了HFO-1336mzz-Z作为微尺度低温应用中ORC系统的低全球变暖潜能工作液的实验评估。已分析了在受到完全监控的ORC模块中的能源性能,其中改变了140°C至160°C的热源温度和25°C至40°C的散热器温度。ORC模块采用可再生配置,不仅可以进行热回收不仅来自热源,还来自膨胀的蒸气,因此提高了循环的热和电效率。产生的最大总电功率为1100 W,而净电效率为5.5%至8.3%。通过填充因子分析膨胀机的容积性能,同时通过等熵和膨胀机-发电机的整体效率评估膨胀机运行与理想性能的偏差。使用HFO-1336mzz-Z在这项工作中获得的净电气效率,等熵膨胀机效率和体积膨胀机性能要高于在先前使用相同实验设备进行的工作中使用HFC-245fa获得的净电气效率,等熵膨胀机效率和体积膨胀机性能。 (C)2017 Elsevier Ltd.保留所有权利。

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