Response Surface Mapping and Multi-Objective Optimization of Crowning and Tapers in Water-Lubricated Thrust Bearings

Xin Deng, Cori Watson, M. He, R. Fittro, H. Wood
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Abstract

Fluid film bearings for turbomachinery are designed to support the loads applied by the rotor system. Oil-lubricated bearings are widely used in high speed rotating machines. However, environmental issues and risk-averse operations have made water lubricated bearings increasingly popular. Due to different viscosity properties between oil and water, the low viscosity of water decreases film thickness significantly. Crowning and tapers are two main ways to maintain the film thickness requirements in water lubrication, but no studies about the influence of these parameters on the film thickness in water-lubricated bearings have been reported. Therefore, further understanding of the performance associated with optimizing the bearing design with different weighted performance and their relationships to bearing design variables could be invaluable to bearing design engineers. This study explores the impact of three crowning and taper design variables on the performance of one tilting pad thrust bearing using the design of experiments techniques applied to a thermoelastohydrodynamic (TEHD) bearing model. The bearing design variables analyzed in this study include the radius of the ground-in crown, taper circumferential angle offset, and the vertical taper distance at the inner and outer radii. Each of the design variables is first varied over five levels, each in central composite design. The outputs from the TEHD numerical simulations used as performance measures for each bearing design point were the minimum film thickness, the film thickness at the pivot location, maximum film pressure and power loss. Multi-objective optimization was performed. A range of weighting parameters was selected for the optimization function to find a bearing design that maintains the minimum film thickness criterion while minimizing power loss. The resulting optimum design points allowed for a comparison between the design optimization at different weightings. This study demonstrates how designers can use these approaches to view the relationships between design variables and important performance metrics to design better bearing for a wide range of applications.
水润滑止推轴承顶锥响应面映射及多目标优化
涡轮机械的油膜轴承设计用于支持转子系统施加的载荷。油润滑轴承广泛应用于高速旋转机械中。然而,环境问题和规避风险的操作使得水润滑轴承越来越受欢迎。由于油和水的粘度特性不同,水的低粘度会显著降低油膜厚度。在水润滑中,冠形和锥形是维持膜厚要求的两种主要方式,但尚未有关于这些参数对水润滑轴承膜厚影响的研究报道。因此,进一步了解与优化不同加权性能的轴承设计相关的性能及其与轴承设计变量的关系,对轴承设计工程师来说是非常宝贵的。本研究采用热弹流体力学(TEHD)轴承模型的实验设计技术,探讨了三种冠度和锥度设计变量对倾斜垫推力轴承性能的影响。本研究分析的轴承设计变量包括接地冠半径、锥度周向角偏移以及内外半径处的垂直锥度距离。每个设计变量首先在五个层次上变化,每个层次都在中心复合设计中。TEHD数值模拟的输出作为每个轴承设计点的性能指标是最小膜厚度,枢轴位置的膜厚度,最大膜压力和功率损失。进行多目标优化。为优化函数选择了一系列加权参数,以找到在保持最小膜厚准则的同时使功率损失最小的轴承设计。所得到的最佳设计点允许在不同权重的设计优化之间进行比较。本研究展示了设计师如何使用这些方法来查看设计变量和重要性能指标之间的关系,从而为广泛的应用设计更好的轴承。
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