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Comparison of cavitation prediction for a centrifugal pump with or without volute casing

机译:带有或不带有蜗壳的离心泵的汽蚀预测比较

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摘要

Cavitation may not only cause head and efficiency breakdown of hydraulic machines but also generate other unfavorable phenomena such as noise and vibration. Therefore, the accurate prediction of cavitation development is important for various pump applications. In this paper, two numerical models, namely, models A and B, are applied to simulate the turbulent cavitating flows inside a centrifugal pump to investigate the effect of calculation domain on the prediction accuracy of cavitation performance for hydraulic machines. Model A has a calculation domain with volute casing, whereas model B has a single blade-to-blade flow passage without volute casing. Steady simulations of cavitating flow in the pump have been conducted based on the shear stress transport k-ω turbulence model and the homogeneous cavitation model. Both models A and B predicted that the pump performance decreases with decreasing cavitation number. Experimental results show that model B can predict better the critical cavitation number at the best efficiency point compared with model A, which is the full flow passage model. Internal flow investigations indicate that an asymmetrical feature of cavitating flow exists when the calculation domain with volute casing is applied. The asymmetrical cavitation development in different blade-to-blade flow passages for model A results in an over-estimation of the decrease in pump performance because of the interaction between the impeller blade and the tongue of the volute casing. A simple calculation domain without volute casing is preferred for steady cavitation prediction in pumps rather than the full flow passage with volute casing because the former has better convergence, less resource requirements, and lower time consumption.
机译:空化不仅会导致液压机的扬程和效率下降,还会产生其他不利的现象,例如噪音和振动。因此,对于各种泵的应用,准确预测空化的发展非常重要。本文采用两个数值模型,分别为模型A和B,来模拟离心泵内部的湍流空化流,以研究计算域对液压机空化性能预测精度的影响。模型A具有带蜗壳的计算域,而模型B具有不带蜗壳的单叶片流道。基于剪切应力传递k-ω湍流模型和均质空化模型,对泵中的空化流进行了稳定的模拟。模型A和模型B均预测,泵的性能会随着气蚀次数的减少而降低。实验结果表明,与全流道模型A相比,B模型可以在最佳效率点更好地预测临界气穴数。内部流动研究表明,当应用带有蜗壳的计算域时,存在空化流动的不对称特征。对于模型A,在不同的叶片到叶片流动通道中出现不对称的气蚀现象,是由于叶轮叶片和蜗壳的舌头之间的相互作用,导致泵性能下降的高估。对于没有泵壳的稳定气蚀预测,首选简单的无蜗壳的计算域,而不是有蜗壳的全流道,因为前者具有更好的收敛性,更少的资源需求和更低的时间消耗。

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