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Mean-line modeling and CFD analysis of a miniature radial turbine for distributed power generation systems

机译:分布式发电系统微型径向涡轮的均线建模和CFD分析

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Distributed power generation (DPG) based on organic Rankine cycle offers potential in the effective use of energy from low grade heat sources up to 200℃. In this regard, developing an effective expander plays a major role in determining the overall cycle efficiency. In this work mean-line modeling and CFD techniques are employed to develop a small-scale radial turbine for DPG systems with a power output of ~5 kWe. A parametric study is carried out using the mean-line approach to investigate the effects of key input parameters such as operating conditions, velocity ratio, rotational speed and rotor flow angles on the turbine rotor inlet diameter and overall performance. Results from the mean-line approach show that in order to achieve high power output, inlet total temperature, mass flow rate and pressure ratio should be increased. However, for reducing the rotor inlet diameter the velocity ratio should be decreased. CFD technique is then used to assess the flow field and to improve the blade loading by modification of blade angle distribution. CFD is also used to determine the minimum number of rotor blades and the results show that the value suggested by mean-line modeling overestimates this parameter. By using these two approaches a wide range of design configurations are explored and the most effective design is identified to be with specific diameter of 4.83 (rotor inlet diameter of 0.0787 m), specific speed of 0.433 (rotational speed of 55 000 rpm), 10 blades and output power of 4.662 kW.
机译:基于有机朗肯循环的分布式发电(DPG)为有效利用高达200℃的低品位热能提供了潜力。在这方面,开发有效的膨胀机在确定整体循环效率方面起着重要作用。在这项工作中,均线建模和CFD技术被用于为DPG系统开发功率输出约为5 kWe的小型径向涡轮机。使用均线方法进行了参数研究,以研究关键输入参数(例如工况,速比,转速和转子流角)对涡轮转子入口直径和整体性能的影响。平均线方法的结果表明,为了实现高功率输出,应提高入口总温度,质量流量和压力比。但是,为减小转子入口直径,应减小速度比。然后,将CFD技术用于评估流场并通过修改叶片角度分布来改善叶片负载。 CFD还用于确定转子叶片的最小数量,结果表明,均线模型建议的值高估了此参数。通过使用这两种方法,探索了广泛的设计配置,最有效的设计被确定为比直径为4.83(转子入口直径为0.0787 m),比速度为0.433(转速为55000 rpm),10叶片,输出功率为4.662 kW。

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