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Finite-volume CFD modelling of fluid-solid interaction in EHL contacts

机译:EHL接触中流固相互作用的有限体积CFD模型

摘要

Classically in an elastohydrodynamic (EHD) problem, the Reynolds equation is the most widely used PDE to describe the behaviour of lubricants in high-pressure non-conforming contacts, and elastic deformation is usually calculated using the Hertzian theory of elastic contacts. This thesis outlines the development of a new method for modelling of fluid-solid interactions in elastohydrodynamic lubrication (EHL) contact based on Finite Volume (FV) techniques. udA Computational Fluid Dynamics (CFD) approach to solve the Navier-Stokes equations is implemented to model lubrication in roller bearings using the open-source package OpenFOAM. This has first been applied to simulate full film hydrodynamic lubrication (HL), enabling an accurate description of the flow within the entire domain surrounding the contact region. The rheology is assumed to be non-Newtonian and shear-thinning. The phenomenon of cavitation is modelled by implementing a homogenous equilibrium cavitation model, which maintains specified lubricant saturation pressure in cavitating region. The current fluid solver involves the solution of the full momentum and energy equations, and satisfying continuity. The aim is firstly to demonstrate the range of applicability and the limitations of traditional formulations of the Reynolds equation and secondly to highlight areas where Navier-Stokes based approaches are necessary for accurate solution of lubrication problems. Subsequently, a finite volume solid solver is fully coupled with the fluid solver in a forward iterative manner to take into account elastic deflection effects using Navier-Lamé equation. The advantage of using a single numerical tool enables an internal transfer of information at the fluid-solid interface through one common data structure. The stability of the model, in the presence of high contact pressures, is enhanced by incorporation of multigrid method, implicit coupling and improved mesh adaption and motion techniques. The developed model has been applied to a series of lubricated metal on metal smooth line contact with slide to roll ratios ranging from 0 to 2 and is stable for a wide range of industrial operating conditions (pressures up to 4 GPa). The model is further improved to account for time-dependent transient behaviour of an EHL rough contact. The results for a travelling ridge, dent and sinusoidal wave through EHL conjunction are presented.
机译:在弹性流体动力学(EHD)问题中,经典的说来,雷诺方程是使用最广泛的PDE来描述高压不合格接触中润滑剂的行为,通常使用弹性接触的赫兹理论来计算弹性变形。本文概述了一种基于有限体积(FV)技术的弹性流体动力润滑(EHL)接触中流固耦合建模的新方法的发展。 udA使用开源软件包OpenFOAM,实现了解决Navier-Stokes方程的计算流体动力学(CFD)方法,以对滚动轴承中的润滑进行建模。这已首先应用于模拟全膜流体动力润滑(HL),从而能够准确描述围绕接触区域的整个区域内的流动。流变被认为是非牛顿的和剪切稀化的。通过实施均质的平衡空化模型来模拟空化现象,该模型在空化区域中保持指定的润滑剂饱和压力。当前的流体求解器涉及全部动量和能量方程的求解,并且满足连续性。目的是首先证明雷诺方程的传统公式的适用范围和局限性,其次是突出基于Navier-Stokes的方法对于精确解决润滑问题所必需的领域。随后,将有限体积的固体求解器与流体求解器以正向迭代的方式完全耦合,以考虑使用Navier-Lamé方程的弹性挠度效应。使用单个数值工具的优点是可以通过一个通用数据结构在流固界面上进行内部信息传递。通过引入多网格方法,隐式耦合以及改进的网格自适应和运动技术,可以提高在高接触压力下模型的稳定性。该开发的模型已应用于一系列滑行滚动比为0到2的润滑金属与金属平滑线接触,并且在各种工业运行条件(压力高达4 GPa)下均稳定。该模型得到了进一步改进,以解决EHL粗接触的时间依赖性瞬态行为。给出了通过EHL联合传播的山脊,凹痕和正弦波的结果。

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    Hajishafiee Alireza;

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  • 年度 2014
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