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Design of radial impellers: a combined extended analytical and numerical method

机译:径向叶轮的设计:扩展的解析和数值方法组合

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摘要

The use of high-speed radial impellers is very common in blowers for industrial application. It is also very common to manufacture these impellers using circular arc blades. The design process as well is almost always based on former impeller series and experimental data available. In this work, a method is presented to improve the efficiency of radial impellers with a combined analytical and numerical method. This method is based on an extended analytical formulation of the flow in radial impellers, allowing optimizing efficiency in the design stage. It is complemented by the mathematical implementation of a well-known qualitative principle of efficiency optimization according to Carnot. Finally, the torque-speed characteristic of the motor is included in the design stage. The blade shapes are computed using an inverse method. The design is then validated by means of computational fluid dynamics (CFD) computation with a commercial solver. Finally, a prototype was built and measurements were carried out in a test rig. It is also shown that the design method provided very good predictions leading to an efficiency increase of 13 per cent and a maximum flowrate increase of 11 per cent. The design point was also met. It is also shown that the numerical computations and measurements are in good agreement. An analysis of the CFD results is also presented, giving an insight view into the substantial flow information within the old and the new impellers. The method presented is a combined analytical and numerical method suited to design high-efficiency radial impellers considering also the torque-speed characteristic of the motor without the need of a previous impeller series or knowledge of experimental data. [PUBLICATION ABSTRACT]
机译:在工业应用的鼓风机中,高速径向叶轮的使用非常普遍。使用圆弧叶片制造这些叶轮也是非常普遍的。设计过程几乎总是基于以前的叶轮系列和可用的实验数据。在这项工作中,提出了一种结合分析和数值方法来提高径向叶轮效率的方法。此方法基于径向叶轮流动的扩展分析公式,可在设计阶段优化效率。它是根据卡诺(Carnot)的效率优化众所周知的定性原理的数学实现来补充的。最后,电动机的转矩-速度特性包括在设计阶段。叶片形状使用逆方法计算。然后,使用商用求解器通过计算流体动力学(CFD)计算来验证设计。最后,建立了原型并在测试台上进行了测量。还表明,该设计方法提供了很好的预测,导致效率提高了13%,最大流量提高了11%。设计点也达到了。还表明,数值计算和测量结果吻合良好。还介绍了CFD结果的分析,从而深入了解了新旧叶轮内的大量流量信息。提出的方法是一种组合的分析和数值方法,适用于设计高效径向叶轮,同时考虑了电动机的转矩-速度特性,而无需先前的叶轮系列或实验数据知识。 [出版物摘要]

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