...
首页> 外文期刊>Industrial Lubrication and Tribology >Multi-scale surface patterning - an approach to control friction and lubricant migration in lubricated systems
【24h】

Multi-scale surface patterning - an approach to control friction and lubricant migration in lubricated systems

机译:多尺度表面图案 - 一种控制润滑系统摩擦和润滑剂迁移的方法

获取原文
获取原文并翻译 | 示例
           

摘要

Purpose The paper aims to investigate the possibilities to control friction in lubricated systems by surface patterning, making use of a multi-scale approach. Surface patterns inside the tribological contact zone tend to directly reduce friction, whereas surface patterns located in the close proximity of the contact area can improve the tribological performance by avoiding lubricant starvation and migration. Finally, optimized surface patterns were identified by preliminary laboratory tests and transferred to a journal bearing, thus testing them under more realistic conditions. Design/methodology/approach Surface patterns on a large scale (depth > 10 mu m) were fabricated by micro- and roller-coining, whereas surface patterns on a small scale (depth < 2 mu m) were produced by direct laser interference patterning. The combination of both techniques resulted in multi-scale surface patterns. Tribologically beneficial surface patterns (verified in ball-on-disk laboratory tests) were transferred onto a journal bearing's shaft and tested on a special test-rig. To characterize the lubricant spreading behavior, a new test-rig was designed, which allowed for the study of the lubricant's motion on patterned surfaces under the influence of a precisely controlled temperature gradient. Findings All tested patterns accounted for a pronounced friction reduction and/or an increase in oil film lifetime. The results from the preliminary laboratory tests matched well, with results from the journal bearing test-rig, both tests showing a maximum friction reduction by a factor of 3-4. Numerical investigations, as well as experiments, have shown the possibility to actively guide lubricant over patterned surfaces. Smaller periodicities, as well as greater structural depths and widths, led to a more pronounced anisotropic spreading and/or greater spreading velocities. Multi-scale surfaces demonstrated the strongest effects regarding the lubricant's spreading behavior. Originality/value Friction, as well as lubricant migration, can be successfully controlled by using micro-coined, laser-patterned and/or multi-scale surfaces. To the best of the authors' knowledge, the study demonstrates for the first time the unique possibility to transfer results obtained in laboratory tests to a real machine component.
机译:目的旨在通过表面图案化研究控制润滑系统摩擦的可能性,利用多尺度方法。摩擦接触区域内的表面图案倾向于直接降低摩擦,而位于接触面积的近距离接近的表面图案可以通过避免润滑剂饥饿和迁移来改善摩擦学性能。最后,通过初步实验室测试识别优化的表面图案并转移到轴颈轴承,从而在更现实的条件下测试它们。通过微型和辊压重制造大规模(深度>10μm)的设计/方法/接近表面图案,而通过直接激光干扰图案化产生小规模的表面图案(深度<2μm)。两种技术的组合导致多尺度的表面图案。曲线学上有益的表面图案(在磁盘实验室测试中验证)被转移到轴颈轴承的轴上并在特殊的试验台上进行测试。为了表征润滑剂扩散行为,设计了一种新的测试钻机,其允许在精确控制的温度梯度的影响下研究润滑剂的润滑剂的运动。调查结果所有测试模式都占发作的摩擦减少和/或油膜寿命的增加。初步实验室测试的结果匹配良好,具有来自轴承试验台的结果,两个测试显示最大摩擦减少了3-4倍。数值研究以及实验表明,在图案化表面上主动引导润滑剂的可能性。较小的周期性以及更大的结构深度和宽度,导致更明显的各向异性扩散和/或更大的扩散速度。多尺度表面对润滑剂的传播行为展示了最强烈的效果。可以通过使用微涂层,激光图案化和/或多尺度表面来成功控制原创性/值摩擦和润滑剂迁移。据作者所知,这项研究首次证明了在实验室测试中获得的独特可能性转移到真实机器部件。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号