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Effects of nanoscale surface texture and lubricant molecular structure on boundary lubrication in liquid

机译:纳米级表面织构和润滑剂分子结构对液体边界润滑的影响

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Nanoconfinement effects of boundary lubricants can significantly affect the friction behavior of textured solid interfaces. These effects were studied with nanotextured diamond-like carbon (DLC) surfaces using a reciprocating ball-on-flat tribometer in liquid lubricants with different molecular structures: n-hexadecane and n-pentanol for linear molecular structure and poly(α-olefin) and heptamethylnonane for branched molecular structure. It is well-known that liquid lubricants with linear molecular structures can readily form a long-range ordered structure upon nanoconfinement between flat solid surfaces. This long-range ordering, often called solidification, causes high friction in the boundary lubrication regime. When the solid surface deforms elastically due to the contact pressure and this deformation depth is larger than the surface roughness, even rough surfaces can exhibit the nanoconfinement effects. However, the liquid entrapped in the depressed region of the nanotextured surface would not solidify, which effectively reduces the solidified lubricant area in the contact region and decreases friction. When liquid lubricants are branched, the nanoconfinement-induced solidification does not occur because the molecular structure is not suitable for the long-range ordering. Surface texture, therefore, has an insignificant effect on the boundary lubrication of branched molecules.
机译:边界润滑剂的纳米约束作用可以显着影响带纹理的固体界面的摩擦行为。在往复运动的平面球式摩擦计上,在具有不同分子结构的液体润滑剂中使用纳米织构的类金刚石碳(DLC)表面研究了这些效果:正十六烷和正戊醇用于线性分子结构,聚(α-烯烃)和七甲基壬烷为支链分子结构。众所周知,具有线性分子结构的液体润滑剂在平坦的固体表面之间的纳米约束下可以容易地形成长程有序结构。这种长距离排序(通常称为凝固)在边界润滑状态下引起高摩擦。当固体表面由于接触压力而弹性变形并且该变形深度大于表面粗糙度时,即使粗糙表面也可以表现出纳米约束作用。然而,截留在纳米纹理化表面的凹陷区域中的液体将不会固化,这有效地减小了接触区域中固化的润滑剂面积并减小了摩擦。当液体润滑剂分支时,由于分子结构不适合长程有序,因此不会发生纳米约束诱导的固化。因此,表面纹理对支链分子的边界润滑影响不大。

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