TY - JOUR
T1 - Oil release mechanisms in porous polyimide bearing cages
T2 - A multiphysics modeling study
AU - Feng, Xiangyu
AU - Wang, Wenzhong
AU - Hu, Yanqiang
AU - Liang, He
AU - Bai, Pengpeng
AU - Cao, Hui
AU - Zhu, Pengzhe
N1 - Publisher Copyright:
© 2026 Elsevier Ltd.
PY - 2026/7
Y1 - 2026/7
N2 - Porous polyimide bearing cages are widely used in space applications for their excellent self-lubricating capability. However, the oil release mechanisms still need to be further elucidated. This study develops a multiphysics coupled model to investigate oil release mechanisms under centrifugal, thermal and mechanical loading. The model incorporates thermal expansion, viscosity-temperature effect, and poroelastic coupling, and is validated through centrifugal fluorescence imaging and static heating experiments. The results reveal that centrifugal oil release follows a preferential flow-dominated mechanism. Lubricant exits exclusively through the outer surface while pocket surfaces exhibit inward flow, risking oil starvation at ball-cage contacts. The decoupling analysis demonstrates that viscosity reduction dominates thermally enhanced oil release, while thermal expansion plays a minor role. Moreover, solid-phase thermal expansion and poroelastic effects cannot be neglected; otherwise, the lubricant release can be overestimated by up to 82 %. In addition, ball-cage collision is found to induce transient flow with spatiotemporal hysteresis. These findings suggest that gradient porosity design and lubricant selection based on viscosity-temperature characteristics are more effective strategies for space bearing applications.
AB - Porous polyimide bearing cages are widely used in space applications for their excellent self-lubricating capability. However, the oil release mechanisms still need to be further elucidated. This study develops a multiphysics coupled model to investigate oil release mechanisms under centrifugal, thermal and mechanical loading. The model incorporates thermal expansion, viscosity-temperature effect, and poroelastic coupling, and is validated through centrifugal fluorescence imaging and static heating experiments. The results reveal that centrifugal oil release follows a preferential flow-dominated mechanism. Lubricant exits exclusively through the outer surface while pocket surfaces exhibit inward flow, risking oil starvation at ball-cage contacts. The decoupling analysis demonstrates that viscosity reduction dominates thermally enhanced oil release, while thermal expansion plays a minor role. Moreover, solid-phase thermal expansion and poroelastic effects cannot be neglected; otherwise, the lubricant release can be overestimated by up to 82 %. In addition, ball-cage collision is found to induce transient flow with spatiotemporal hysteresis. These findings suggest that gradient porosity design and lubricant selection based on viscosity-temperature characteristics are more effective strategies for space bearing applications.
KW - Bearing cage
KW - Multiphysics coupling
KW - Oil release mechanism
KW - Porous polyimide
UR - https://www.scopus.com/pages/publications/105030933158
U2 - 10.1016/j.triboint.2026.111863
DO - 10.1016/j.triboint.2026.111863
M3 - Article
AN - SCOPUS:105030933158
SN - 0301-679X
VL - 219
JO - Tribology International
JF - Tribology International
M1 - 111863
ER -