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Effects of different working fluids on the performance of a radial turbine in an organic Rankine cycle power system

机译:不同工作流体对有机朗肯循环电力系统中径向涡轮机的性能的影响

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摘要

Organic Rankine cycle (ORC) power systems are widely used for low-temperature heat recovery. The radial turbine is the most important component in the ORC system and its performance is significantly dependent on the working fluid. Therefore, the effect of different working fluid on the performance of radial turbine in ORC system for the low-temperature heat source (120180 degrees C) was investigated. First, the feasibilities of different working fluids for 150 kW radial turbine using R600a as designed working fluid were investigated. The thermal aerodynamic calculation of R600a at design condition was conducted with evaporation temperature 95 degrees C and condensation temperature 38 degrees C. The operation parameters of 5 non-designed working fluids (R600, R245fa, R245ca, R123 and R601a) were selected in the same temperature variation range as R600a. Then, the performance of a radial turbine for six working fluids at design condition was analyzed, and their three-dimensional flow field performances were also obtained by CFD numerical simulation. Finally, to broaden the operation range of the radial turbine and investigate the matching relationship between operation parameters and different working fluids, the off-design performances of radial turbine using six working fluids were analyzed and the effect of rotation speed, inlet pressure and inlet temperature on the performance of radial turbine was obtained. Results show that the performance of the radial turbine using the designed working fluid R600a is the best with efficiency of 82.7 % and output power of 150.5 kW. For the non-designed working fluids, the comprehensive performance of R600 was also judged to be good owing to the highest efficiency (85.1 %) and a relatively high power output (115.8 kW) among the fluids tested. For other working fluids, the output power of the radial turbine decreased obviously. There exists an optimum rotation speed for different working fluids to ensure that the radial turbine has the highest efficiency. The inlet pressure has a larger effect on the performance of the radial turbine than that of the inlet temperature. The results can provide basic data for the optimization design and operation of radial turbines in the ORC system.
机译:有机朗肯循环(ORC)电力系统广泛用于低温热回收。径向涡轮机是ORC系统中最重要的组成部分,其性能显着取决于工作流体。因此,研究了不同工作流体对低温热源(120180℃)的径向涡轮机的性能的影响。首先,研究了使用R600A作为设计的工作流体的150kW径向涡轮机的不同工作流体的可行性。在设计条件下R600a的热空气动力学计算通过蒸发温度95℃和冷凝温度38℃进行。在相同的情况下选择5个非设计的工作流体(R600,R245FA,R245CA,R123和R601A)的操作参数温度变化范围作为R600A。然后,分析了在设计条件下进行六个工作流体的径向涡轮机的性能,并且通过CFD数值模拟也获得了它们的三维流场性能。最后,为了拓宽径向涡轮机的操作范围并研究操作参数和不同工作流体之间的匹配关系,分析了使用六个工作流体的径向涡轮机的偏移性能,旋转速度,入口压力和入口温度的效果获得径向涡轮机的性能。结果表明,使用设计的工作流体R600A的径向涡轮机的性能是最佳的82.7%,输出功率为150.5 kW。对于非设计的工作流体,由于在测试的流体中,由于最高效率(85.1%)和相对高的功率输出(115.8 kW),也判断R600的综合性能。对于其他工作流体,径向涡轮机的输出功率明显降低。不同的工作流体存在最佳的转速,以确保径向涡轮机具有最高效率。入口压力对径向涡轮机的性能大于入口温度的效果较大。结果可以为兽人系统中的径向涡轮机的优化设计和操作提供基本数据。

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