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TOWARDS INVESTIGATION OF EXTERNAL OIL FLOW FROM A JOURNAL BEARING IN AN EPICYCLIC GEARBOX

机译:着眼于研究齿轮箱中轴颈轴承的外部油流

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High loads and bearing life requirements make journal bearings the preferred choice for use in high power, epicyclic gearboxes in jet engines. In contrast to conventional, non-orbiting journal bearings in epicyclic star gearboxes, the kinematic conditions in epicyclic planetary arrangements are much more complex. With the planet gears rotating about their own axis and orbiting around the sun gear, centrifugal forces generated by both motions interact with each other and affect the external flow behavior of the oil exiting the journal bearing. 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. Later, these can be extended in a step-wise manner to allow key underlying physical phenomena to be identified. Preliminary modeling considerations will also be presented. This includes assessing different geometrical inlet conditions with the aim of minimizing computational requirements and different numerical models for near-wall treatment. The correct choice of near-wall treatment models is particularly crucial as it determines the bearing's internal and external thermal behavior and properties. 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. The inlet boundary conditions for simulating the external oil flow are generated by partly simulating the internal oil flow within the lubricating gap. In order to track the phase interface between the oil and the air surrounding the bearing, the Volume of Fluid (VoF) method is used. The quality of the CFD simulations of the domain of interest is not only dependent on the accuracy of the inlet conditions, but is also dependent on the computational mesh type, cell count, cell shape and numerical methods used. External journal bearing oil flow was simulated with a number of different mesh densities and the effect on the flow field behavior will be discussed. Two different operating temperatures, representing low and high viscosity oil, were used and their effect on the flow field behavior will also be assessed. In order to achieve the future objective of creating a design tool for routine use, key areas will be identified in which further progress is required. This includes the need to progressively increase the model fidelity to eventually simulate an orbiting journal bearing in planetary configuration with an eccentric, i.e. convergent-divergent, lubricating gap.
机译:高负荷和轴承寿命要求使轴颈轴承在喷气发动机中使用的高功率,环状齿轮箱中的首选。与环状星齿轮箱中的传统非轨道轴承相比,行星行星布置中的运动条件更复杂。随着行星齿轮围绕其自身的轴旋转并围绕太阳齿轮,两种运动产生的离心力彼此相互作用,并影响离开轴颈轴承的油的外部流动行为。本文介绍了文献和最先进的知识审查,以确定对类似外部轴承油流量的情况进行的现有工作。为了在数值上调查外部轴颈轴承油流动,提出了一种将实际轴颈轴承分解为简化模型的方法。后来,这些可以以逐步的方式扩展,以允许识别潜在的物理现象。还将提出初步建模考虑因素。这包括评估不同的几何入口条件,目的是最大限度地减少用于近壁处理的不同数值模型。正确选择近壁处理模型特别至关重要,因为它决定了轴承的内部和外部热行为和性质。研究结果和结论用于创造三维(3D),双组分计算流体动态(CFD)扇区模型,具有实际轴颈轴承最简单的近似的旋转周期性边界:非轨道表示,旋转自己的轴,具有周向恒定的,即同心润滑间隙。通过部分地模拟润滑间隙内的内部油流动产生用于模拟外部油流的入口边界条件。为了跟踪油与轴承周围的空气之间的相界面,使用流体(VOF)方法。感兴趣领域的CFD模拟的质量不仅取决于入口条件的准确性,而且还取决于所使用的计算网格类型,小区数,细胞形状和数值方法。用许多不同的网状密度模拟外部轴颈轴承油流,并将讨论对流场行为的影响。使用两种不同的操作温度,代表低和高粘度油,也将评估对流场行为的影响。为了实现创建常规使用设计工具的未来目标,将识别关键区域,以便需要进一步进展。这包括逐步提高模型保真度,最终通过偏心,即收敛 - 发散,润滑间隙最终模拟行星结构的轨道轴颈轴承。

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