轴颈轴承表面纹理优化设计方法研究

IF 3.1 3区 工程技术 Q2 ENGINEERING, MECHANICAL
Chunxing Gu, Yumin Cui, Di Zhang
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引用次数: 0

摘要

为了提高轴颈轴承系统的综合性能,本文提出了一种多目标自适应尺度纹理优化设计方法。通过考虑气蚀和粗糙度的影响,建立了纹理轴颈轴承系统的混合润滑模型。使用多目标灰狼优化器对纹理的几何参数进行共同优化,以获得适合不同工作条件的最优纹理方案。通过这种方法,可以研究不同纹理方案在瞬态运行条件下的影响。结果发现,不同的纹理方案会产生不同的减摩效果。适当的表面纹理有利于增加最小油膜厚度,降低表面接触的可能性。自适应刻度纹理表现出很强的适应性,并实现了显著的流体力学效果。因此,所开发的方法为轴颈轴承系统的优化设计提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research on the Optimal Design Approach of the Surface Texture for Journal Bearings
Aiming to improve the comprehensive performance of the journal bearing system, this paper presents a multi-objective adaptive scale texture optimization design approach. A mixed lubrication model for the textured journal bearing system is established by considering the effects of cavitation and roughness. The geometrical parameters of the textures were co-optimized using a multi-objective grey wolf optimizer to obtain the optimal texture schemes that are suitable for different operating conditions. Through this approach, the influences of different texture schemes under transient operating conditions can be investigated. According to the results, it was found that different texture schemes result in different friction reduction effects. Proper surface texture is beneficial in increasing the minimum oil film thickness and reducing the possibility of asperity contact. The adaptive scale texture exhibits strong adaptability and achieves significant hydrodynamic effects. Therefore, the developed approach provides valuable insights for the optimization design of journal bearing systems.
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来源期刊
Lubricants
Lubricants Engineering-Mechanical Engineering
CiteScore
3.60
自引率
25.70%
发文量
293
审稿时长
11 weeks
期刊介绍: This journal is dedicated to the field of Tribology and closely related disciplines. This includes the fundamentals of the following topics: -Lubrication, comprising hydrostatics, hydrodynamics, elastohydrodynamics, mixed and boundary regimes of lubrication -Friction, comprising viscous shear, Newtonian and non-Newtonian traction, boundary friction -Wear, including adhesion, abrasion, tribo-corrosion, scuffing and scoring -Cavitation and erosion -Sub-surface stressing, fatigue spalling, pitting, micro-pitting -Contact Mechanics: elasticity, elasto-plasticity, adhesion, viscoelasticity, poroelasticity, coatings and solid lubricants, layered bonded and unbonded solids -Surface Science: topography, tribo-film formation, lubricant–surface combination, surface texturing, micro-hydrodynamics, micro-elastohydrodynamics -Rheology: Newtonian, non-Newtonian fluids, dilatants, pseudo-plastics, thixotropy, shear thinning -Physical chemistry of lubricants, boundary active species, adsorption, bonding
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