油气减震器流动的非稳态多相模拟

Fluids Pub Date : 2024-03-07 DOI:10.3390/fluids9030068
A. S. Sheikh Al-Shabab, B. Grenko, Paulo A. S. F. Silva, A. Antoniadis, Panagiotis Tsoutsanis, M. Skote
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引用次数: 0

摘要

油气减震器的内部流动是一个复杂的多物理场问题,结合了高度不稳定湍流和多相混合之间的相互作用以及其他效应。本文旨在介绍一种经过验证的模拟方法,通过捕捉主要的内部流动物理特性来促进减震器的性能预测。这是通过模拟约 1 吨重、初始接触垂直速度为 2.7 米/秒(相当于轻型射流)的跌落试验来实现的。流场求解器为 ANSYS Fluent,使用非稳态二维轴对称多相设置,并带有与减震器活塞冲程速率相对应的时变入口速度边界条件。冲程速率是通过减震器在所加载荷下的二方程动态系统模型计算得出的。除了标准的物理检查外,还根据冲程期间减震器总受力的实验测量结果对模拟进行了验证。流场分析的重点是多相混合及其对湍流自由剪切层和再循环流的影响。建议采用混合指数方法,以便系统地量化混合过程,并确定相互作用的不同阶段。研究发现,气油相互作用对减震器上腔的流动发展有重大影响,强烈的混合导致周期性的小气泡流从再循环区的大气泡进入射流的剪切层,特别是在孔板和减震器外壁之间的角落。
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Unsteady Multiphase Simulation of Oleo-Pneumatic Shock Absorber Flow
The internal flow in oleo-pneumatic shock absorbers is a complex multiphysics problem combining the interaction between highly unsteady turbulent flow and multiphase mixing, among other effects. The aim is to present a validated simulation methodology that facilitates shock absorber performance prediction by capturing the dominant internal flow physics. This is achieved by simulating a drop test of approximately 1 tonne with an initial contact vertical speed of 2.7 m/s, corresponding to a light jet. The flow field solver is ANSYS Fluent, using an unsteady two-dimensional axisymmetric multiphase setup with a time-varying inlet velocity boundary condition corresponding to the stroke rate of the shock absorber piston. The stroke rate is calculated using a two-equation dynamic system model of the shock absorber under the applied loading. The simulation is validated against experimental measurements of the total force on the shock absorber during the stroke, in addition to standard physical checks. The flow field analysis focuses on multiphase mixing and its influence on the turbulent free shear layer and recirculating flow. A mixing index approach is suggested to facilitate systematically quantifying the mixing process and identifying the distinct stages of the interaction. It is found that gas–oil interaction has a significant impact on the flow development in the shock absorber’s upper chamber, where strong mixing leads to a periodic stream of small gas bubbles being fed into the jet’s shear layer from larger bubbles in recirculation zones, most notably in the corner between the orifice plate and outer shock absorber wall.
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