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Coupling simulation of the fast startup of a centrifugal pump with cavitation in a closed-loop pipeline system

机译:闭环管路系统中带有气蚀的离心泵快速启动的耦合模拟

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Purpose Cavitation inside pumps affects not only the steady state fluid flow, but also the unsteady or transient characteristic of the flow. However, cavitation inside pumps under transient processes is difficult to predict when the influence of the pipelines system is considered. In this paper we present a simulation method applied to a centrifugal pump and its related pipeline to analyze the induced unsteady cavitation phenomenon during the startup process.Design/methodology/approach In order to effectively predict transient processes of a pump and its pipeline system, the simulation method uses a coupled 1D and 3D scheme, which reduces the simulation cost. The simulation of the startup process of a centrifugal pump in a closed-loop pipeline system with and without cavitation has been performed to verify the proposed method.Findings The evolution of the pressure and flow rate obtained with the simulation method agrees well with the experimental results. It is found that the mass flow rate at the pump inlet and outlet is highly related to the cavitation vapor volume and that the pressure at the outlet of the impeller is greatly influenced by the discharge.Originality/value The 1D-3D coupling simulation method used in this paper is proven to be highly accurate, efficient and can be used to solve transient processes combined with cavitation or other complex phenomena.
机译:目的泵内的气穴现象不仅会影响稳态流体流量,还会影响流量的不稳定或瞬态特性。但是,在考虑管道系统的影响时,很难预测瞬态过程中泵内的气蚀现象。本文介绍了一种应用于离心泵及其相关管道的仿真方法,以分析启动过程中引起的非定常空化现象。设计/方法/方法为了有效地预测泵及其管道系统的瞬态过程,仿真方法使用耦合的1D和3D方案,从而降低了仿真成本。为了验证该方法,对闭环管路系统中离心泵的启动过程进行了仿真,以验证该方法的有效性。仿真结果获得的压力和流量的变化与实验结果吻合良好。 。发现泵入口和出口处的质量流率与空化蒸汽量高度相关,叶轮出口处的压力受排放量的影响很大。原始数据/值使用的1D-3D耦合模拟方法在本文中,这种方法被证明是高度准确,高效的,可用于解决与空化或其他复杂现象结合的瞬态过程。

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