首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part J: Journal of Engineering Tribology >Effects of non-Newtonian micropolar fluids on the squeeze-film characteristics between a sphere and a plate surface
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Effects of non-Newtonian micropolar fluids on the squeeze-film characteristics between a sphere and a plate surface

机译:非牛顿微极性流体对球与板表面之间挤压膜特性的影响

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On the basis of the Eringen's micro-continuum theory, this study is mainly concerned with the effects of non-Newtonian micropolar-fluid rheology on the squeeze-film characteristics between a sphere and a plate surface. To account for the micro-rotational effects and the micro-rotational inertia of the fluid elements arising from the lubricant blended with additives, the non-Newtonian Reynolds-type squeeze-film equation is derived using the continuity equation and the linear momentum equations coupled with the angular momentum equations. A closed-form solution for the film pressure, the load-carrying capacity and the time–height relationship is obtained for engineering applications. According to the results, the effects of non-Newtonian micropolar fluids provide an increase in the load capacity, and therefore lengthen the response time to prevent the contact of sphere with plate. Furthermore, the non-Newtonian effects on the squeeze-film characteristics are more emphasized under lower squeeze-film heights with larger coupling numbers and smaller interacting parameters. As the value of the coupling number tends to zero or the value of the interacting parameter approaches infinity, the presented derivation provides a close agreement with the Newtonian sphere-plate systems by Conway and Lee [1].
机译:基于艾林根微连续谱理论,本研究主要关注非牛顿微极性流体流变学对球体与板表面之间挤压膜特性的影响。考虑到润滑剂与添加剂混合后产生的流体元件的微旋转效应和微旋转惯性,使用连续性方程和线性动量方程并结合了非牛顿雷诺型挤压膜方程角动量方程。对于工程应用,可以获得薄膜压力,承载能力和时间高度关系的封闭形式解决方案。根据结果​​,非牛顿微极性流体的作用增加了负载能力,因此延长了响应时间以防止球体与板接触。此外,在较低的挤压膜高度,较大的耦合数和较小的相互作用参数的情况下,对挤压膜特性的非牛顿效应更加强调。当耦合数的值趋于零或相互作用参数的值接近无穷大时,提出的推导与Conway和Lee [1]提出的牛顿球-板系统有着密切的一致性。

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