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Preliminary Mean-line Design and Optimization of a Radial Turbo-Expander for Waste Heat Recovery using Organic Rankine Cycle

机译:使用有机朗肯循环的径向涡轮膨胀器的初步尺寸设计与优化垃圾热量回收

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This study presents an optimized modelling approach for ORC based on radial turbo-expander, where the constant expander efficiency is replaced by dynamic efficiency and is unique for each set of cycle operating conditions and working fluid properties. The model was used to identify the key variables that have significant effects on the turbine overall size. These parameters are then included in the optimization process using genetic algorithm to minimize the turbine overall size for six organic fluids. Results showed that, dynamic efficiency approach predicted considerable differences in the turbine efficiencies of various working fluids at different operating conditions with the maximum difference of 7.3% predicted between the turbine efficiencies of n-pentane and R245fa. Also, the optimization results predicted that minimum turbine overall size was achieved by R236fa with the value of 0.0576m. Such results highlight the potential of the optimized modeling technique to further improve the performance estimation of ORC and minimize the size.
机译:本研究提出了一种基于径向涡轮扩展器的ORC的优化建模方法,其中恒定的扩展效率由动态效率取代,并且对于每组循环操作条件和工作流体性能是独特的。该模型用于识别对涡轮机总体尺寸具有显着影响的关键变量。然后使用遗传算法将这些参数包括在优化过程中,以使六种有机液体的涡轮机整体尺寸最小化。结果表明,动态效率方法在不同的操作条件下预测了各种工作流体的涡轮机效率的显着差异,最大差异为N-戊烷和R245FA的涡轮效率之间预测的7.3%。此外,优化结果预测,R236FA的最小涡轮机总体尺寸为0.0576M。这种结果突出了优化建模技术的潜力,以进一步提高兽人的性能估计并最小化尺寸。

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