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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part J. Journal of engineering tribology >Three-dimensional thermohydrodynamic investigation on the micro-groove textures in the main bearing of internal combustion engine for tribological performances
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Three-dimensional thermohydrodynamic investigation on the micro-groove textures in the main bearing of internal combustion engine for tribological performances

机译:摩擦表演内燃机主轴轴承微槽纹理的三维热水动力学研究

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摘要

A three-dimensional thermohydrodynamic numerical simulation study was used to investigate the impact of the micro-groove surface texturing on the tribological performances in the main bearing of the internal combustion engine. For this purpose, various number of grooves and groove height to the bearing surface were applied to determine the optimal texture surface parameters by comparing the load-carrying capacity and friction force in the engine main bearing. In the multiphysics numerical model, the three-dimensional Navier-Stokes equation was employed considering the cavitation mechanism based on the Elrod method in the solution. Using the transverse grooves on the bearing surface altered the cavitation response and film reformation. To validate the use of the current numerical model for analyzing the bearings, the obtained results were compared with those of the published theoretical papers, where a good agreement was obtained. The bearing performance was studied in thermal interface conditions to find the optimal set textures parameters that gave minimum fiction force with minimum loss in load-carrying capacity. The bearing with the optimal micro-groove texture parameter showed a reduction in friction (around 16%) with the minimum reduction in load-carrying capacity (around 6%) and the maximum reduction of the flow work (around 15%) compared with the untextured bearing surface. This paper focuses on the thermohydrodynamic investigation with a combination of thermal effects of the fluid film in the textured bearing. Meanwhile, the heat transfer characteristic, temperature distribution of solid bodies, and convection heat transfer coefficient in the contact surfaces of the textured bearing were investigated. The proposed multiphysics numerical model can be widely used for predicting the optimal texture surface parameters in different engineering systems modeling. Moreover, using the three-dimensional-based numerical model is more cost-effective compared with the experimental evaluation of the textured surface.
机译:采用三维热流体力学数值模拟研究了微槽表面织构对内燃机主轴承摩擦学性能的影响。为此,通过比较发动机主轴承的承载能力和摩擦力,采用不同数量的凹槽和凹槽到轴承表面的高度来确定最佳纹理表面参数。在多物理数值模型中,采用基于Elrod方法的三维Navier-Stokes方程来考虑空化机理。使用轴承表面的横向槽改变了空化响应和油膜重构。为了验证当前数值模型在轴承分析中的应用,将所得结果与已发表的理论论文进行了比较,得到了良好的一致性。在热界面条件下对轴承性能进行了研究,以找到使摩擦力最小、承载能力损失最小的最佳设置参数。与未加固的轴承表面相比,具有最佳微槽纹理参数的轴承表现出摩擦减少(约16%),承载能力减少最小(约6%),流动功减少最大(约15%)。本文着重于结合变形轴承中流体膜的热效应进行热流体力学研究。同时,研究了变形轴承接触面内的传热特性、固体温度分布和对流换热系数。所提出的多物理数值模型可广泛用于预测不同工程系统建模中的最佳纹理表面参数。此外,与纹理表面的实验评估相比,使用基于三维的数值模型更具成本效益。

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