Numerical simulation of an unsteady flow in a hydraulic system with a cavitat-ing ring plate

O. Pylypenko, N. V. Petrushenko, Y. Kvasha
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Abstract

This paper addresses the construction of an efficient mathematical model to be used in the numerical simulation of unsteady liquid flows in hydraulic systems with cavitating restrictors. Existing approaches to cavitation simulation are based either on accounting for a two-phase flow structure or on representing a cavitating flow as a homogeneous medium of variable density. In the latter case, the pressure and the density are related via the barotropic equation of liquid–vapor mixture state. The goal of this work is to verify the applicability of a cavitation model based on the barotropic equation of liquid–vapor mixture state to the numerical simulation of an unsteady flow in a hydraulic system with a cavitating ring plate. The method employed is a numerical flow simulation in the axisymmetric approximation using the complete averaged Navier–Stokes equations. It is shown that the use of the barotropic equation of liquid–vapor mixture state provides a satisfactory agreement between the computed results and the experimental data available in the literature. In agreement are the peak-to-valley values of the oscillating pressure on the pipe wall immediately downstream of the cavitating ring plate and the presence of a pronounced periodic component in the pressure vs. time relationship. It is shown that the parameters of the unsteady flow downstream of the cavitating ring plate vary when going from the ring plate to the cavity collapse location: the peak-to-valley value of the oscillating pressure on the pipe wall increases and so does the contribution of high-frequency periodic components to the pressure vs. time relationship. It seems desirable that the turbulence model employed be refined further to correctly simulate cavitation oscillations generated by periodically detached cavitation in Venturi tubes, which are used in various cavitation pulse plants.
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含空化环板液压系统非定常流场数值模拟
本文建立了一个有效的数学模型,用于空化节流液压系统非定常流体流动的数值模拟。现有的空化模拟方法要么基于对两相流结构的考虑,要么基于将空化流表示为可变密度的均匀介质。在后一种情况下,压力和密度通过液-气混合状态的正压方程来表示。本文的目的是验证基于汽液混合状态正压方程的空化模型在含空化环板液压系统非定常流场数值模拟中的适用性。所采用的方法是利用完全平均Navier-Stokes方程进行轴对称近似下的数值流动模拟。结果表明,采用液-气混合态正压方程,计算结果与文献实验数据吻合较好。一致的是空化环板下游管壁上的振荡压力的峰谷值,以及压力与时间关系中明显的周期性成分的存在。结果表明,从空化环板到达空腔坍塌位置时,空化环板下游的非定常流场参数发生变化:管壁上振荡压力的峰谷值增大,高频周期分量对压力-时间关系的贡献增大。为了正确地模拟各种空化脉冲装置中使用的文丘里管中周期性分离空化所产生的空化振荡,需要进一步改进所采用的湍流模型。
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