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首页> 外文期刊>Tribology International >Piston surface design to improve the lubrication performance of a swash plate pump
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Piston surface design to improve the lubrication performance of a swash plate pump

机译:活塞表面设计,提高旋转斜盘泵的润滑性能

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摘要

Mechanical power loss in hydraulic piston pumps comes from the friction between parts in relative motion, and wear is among the top pump failure mechanisms. Reducing friction and preventing wear require lubrication enhancement, which may be accomplished by proper surface texture design. Cylinder length is an important factor affecting the lubrication performance of the piston-cylinder system in a swash-plate pump. Our previous analyses revealed that under the same load, increasing the cylinder length could decrease the maximum pressure and increase the minimum film thickness, favorable for the pump operation with reduced wear; however, friction would become higher. The work reported in this paper intends to lower friction by textures in the piston surface while increasing, or at least maintaining, the load capacity of the piston system. Several textures are designed and their lubrication performances investigated, aiming at reducing the piston friction and improving the load-carrying ability of the system in a wide range of operation conditions. The effects of texture type, application location, and texture shape are studied, and their relationships with the friction and film thickness characteristics of the piston-cylinder interface are explored. Two optimal surface-texture designs are suggested, which are named the Step-Multiple-Grooves design and the Combine design.
机译:液压活塞泵中的机械功率损耗来自相对运动的部件之间的摩擦,磨损是顶部泵故障机构中的磨损。减少摩擦和预防磨损需要润滑增强,这可以通过适当的表面纹理设计来实现。气缸长度是影响斜轮泵中活塞缸系统的润滑性能的重要因素。我们之前的分析显示,在相同的载荷下,增加气缸长度可以降低最大压力并增加最小膜厚度,有利于泵的操作减少;然而,摩擦会变得更高。本文报道的工作旨在通过活塞表面的纹理摩擦降低,同时增加,或者至少保持活塞系统的负载能力。设计了几种纹理,并调查了它们的润滑性能,旨在减少活塞摩擦并在各种操作条件下提高系统的承载能力。研究了纹理类型,施用位置和纹理形状的影响,探索了与活塞缸界面的摩擦和膜厚度特性的关系。建议两个最佳的表面纹理设计,该设计被命名为步骤 - 多槽设计和组合设计。

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