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Optimization and Analysis of Centrifugal Pump considering Fluid-Structure Interaction

机译:考虑流体结构相互作用的离心泵优化与分析

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This paper presents the optimization of vibrations of centrifugal pump considering fluid-structure interaction (FSI). A set of centrifugal pumps with various blade shapes were studied using FSI method, in order to investigate the transient vibration performance. The Kriging model, based on the results of the FSI simulations, was established to approximate the relationship between the geometrical parameters of pump impeller and the root mean square (RMS) values of the displacement response at the pump bearing block. Hence, multi-island genetic algorithm (MIGA) has been implemented to minimize the RMS value of the impeller displacement. A prototype of centrifugal pump has been manufactured and an experimental validation of the optimization results has been carried out. The comparison among results of Kriging surrogate model, FSI simulation, and experimental test showed a good consistency of the three approaches. Finally, the transient mechanical behavior of pump impeller has been investigated using FSI method based on the optimized geometry parameters of pump impeller.
机译:本文介绍了考虑流体结构相互作用(FSI)离心泵振动的优化。使用FSI方法研究了一组具有各种叶片形状的离心泵,以研究瞬态振动性能。基于FSI模拟的结果,建立了基于FSI模拟的结果,以近似泵轴承块在泵叶轮的几何参数与泵轴承件的旋转响应的根均线(RMS)值之间的关系。因此,已经实现了多岛遗传算法(MIGA)以最小化叶轮位移的均方根值。已经制造了离心泵的原型,并进行了优化结果的实验​​验证。 Kriging代理模型,FSI模拟和实验测试结果的比较显示了三种方法的良好一致性。最后,通过基于泵叶轮的优化几何参数,使用FSI方法研究了泵叶轮的瞬态力学行为。

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