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Iterative Approach for the Design of an Organic Rankine Cycle based on Thermodynamic Process Simulations and a Small-Scale Test Rig

机译:基于热力学过程模拟的有机朗肯循环设计的迭代方法及小规模试验台

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摘要

Waste heat recovery from industrial processes may be a door opener for market penetration of Organic Rankine Cycle (ORC) systems. Within this study, an ORC for industrial waste heat recovery is designed by adopting an iterative approach. Therefore, experiments are performed in a thermal oil heated 1 kW test rig with internal recuperator and a maximum thermal efficiency of 10.6%. The results are iteratively implemented in thermodynamic process simulation. Thus, the simulation results of different stationary operating points can be compared to experimental measurements for different steps of the iterative design process. Results outline the importance of experimental results for the design of ORC systems. The simulation accuracy can be significantly improved with a single reimplementation of experimental data, which enables accurate sensitivity analysis on ORC waste heat recovery system performance. For two different representative operating points, the mean deviations between experiment and simulation decrease from 8.4% to 1.0% and 4.1% to 1.7% respectively, considering the enthalpy and pressure of all thermodynamic state points.
机译:从工业过程中的废热回收可能是用于有机朗肯循环(ORC)系统的市场渗透的开瓶器。在这项研究中,通过采用迭代方法来设计用于工业废物热回收的兽人。因此,在热油加热的1kW试验台中进行实验,内部恢复器和最大热效率为10.6%。在热力学过程模拟中迭代地实现结果。因此,可以将不同的固定操作点的模拟结果与迭代设计过程的不同步骤进行比较的实验测量结果。结果概述了兽人系统设计实验结果的重要性。通过单一的实验数据重新实现可以显着提高模拟精度,这使得可以准确的敏感性分析兽人浪费热回收系统性能。对于两种不同的代表性操作点,考虑到所有热力学状态点的焓和压力,实验和模拟之间的平均偏差分别从8.4%降至1.0%和4.1%至1.7%。

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