Study on scuffing failure of gas turbine ball bearing based on 3D mixed lubrication and dynamics

Yan Feng, Xiujiang Shi, Xi Qun Lu, Wen Sun, Kun Peng Liu, Yun Fei Fei
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Abstract

Ship gas turbine bearings are subjected to heavy loads and intricate interface micromorphologies, predominantly operate in a mixed lubrication regime. Excessive asperity relative sliding can cause transient high-temperature spikes at contact points, leading to scuffing failures. Dynamic parameters such as bearing friction and clearance, along with vibrations causing fluctuating velocities and loads, further influence the lubrication condition that, in its turn, can increase the risk of scuffing. This study focuses on oil-lubricated gas turbine bearings, accounting for their typical transient working conditions and real surface roughness. The coupling characteristics of ball bearing dynamics, lubrication, and flash temperature are explored. Findings indicate that the most severe contact conditions occur at azimuth angles of 0° and 360°. The risk of ball Scuffing failure exceeds that of the inner raceway. As axial load increases under the azimuth angle of 360°, the area with zero film thickness is increasing, elevating the chances of asperity contact, friction coefficient, and interface temperature, which is detrimental to lubrication. To mitigate pitting and scuffing failures, it's recommended to maintain the bearing's maximum hertz pressure below 1.21 GPa.
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基于三维混合润滑和动力学的燃气轮机球轴承擦伤故障研究
船舶燃气轮机轴承承受着重载和复杂的界面微观形态,主要在混合润滑系统中运行。过度的表面相对滑动会在接触点造成瞬时高温峰值,导致擦伤故障。轴承摩擦和游隙等动态参数,以及导致速度和载荷波动的振动,会进一步影响润滑条件,进而增加发生擦伤的风险。本研究以油润滑燃气轮机轴承为重点,考虑了其典型的瞬态工作条件和实际表面粗糙度。研究探讨了球轴承动力学、润滑和闪蒸温度的耦合特性。研究结果表明,最严重的接触条件发生在方位角 0° 和 360°。滚珠发生擦伤故障的风险超过了内滚道。在 360° 的方位角下,随着轴向载荷的增加,零薄膜厚度的区域也在增加,从而提高了非圆面接触的几率、摩擦系数和界面温度,这对润滑是不利的。为减少点蚀和擦伤故障,建议将轴承的最大赫兹压力保持在 1.21 GPa 以下。
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