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Towards investigation of external oil flow from a journal bearing in an epicyclic gearbox

机译:研究行星齿轮箱轴颈轴承的外部油流

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摘要

High loads and bearing life requirements make journal bearings the preferred choice for use in high power, planetary gearboxes in jet engines. With the planet gears rotating about their own axis and orbiting around the sun gear, centrifugal forces generated by both motions interact with each and generate complex kinematic conditions. This paper presents a literature and state-of-the-art knowledge review to identify existing work performed on cases similar to external journal bearing oil flow. In order to numerically investigate external journal bearing oil flow, an approach to decompose an actual journal bearing into simplified models is proposed. Preliminary modeling considerations are discussed. The findings and conclusions are used to create a three dimensional (3D), two-component computational fluid dynamic (CFD) sector model with rotationally periodic boundaries of the most simplistic approximation of an actual journal bearing: a non-orbiting representation, rotating about its own axis, with a circumferentially constant, i.e. concentric, lubricating gap. In order to track the phase interface between the oil and the air, the Volume of Fluid (VoF) method is used. External journal bearing oil flow is simulated with a number of different mesh densities. Two different operating temperatures, representing low and high viscosity oil, are used to assess the effect on the external flow field behaviour. In order to achieve the future objective of creating a design tool for routine use, key areas are identified in which further progress is required.
机译:高载荷和轴承寿命要求使轴颈轴承成为喷气发动机大功率行星齿轮箱中的首选。随着行星齿轮绕其自身的轴线旋转并围绕太阳齿轮公转,由这两种运动产生的离心力彼此相互作用并产生复杂的运动学条件。本文提出了文献和最新的知识综述,以识别在类似于外部轴颈轴承油流量的案例上进行的现有工作。为了从数值上研究外部轴颈轴承的油流,提出了一种将实际轴颈轴承分解为简化模型的方法。讨论了初步建模注意事项。这些发现和结论可用于创建一个三维(3D),两分量计算流体动力学(CFD)扇区模型,该模型具有旋转轴颈边界,是实际轴颈轴承最简单的近似值:一种非轨道表示,围绕其旋转自有轴,在圆周上恒定,即同心的润滑间隙。为了跟踪油和空气之间的相界面,使用了流体体积(VoF)方法。使用多种不同的网格密度模拟外轴颈轴承的油流量。代表低粘度和高粘度油的两种不同的工作温度用于评估对外部流场行为的影响。为了实现创建日常使用的设计工具的未来目标,确定了需要进一步发展的关键领域。

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