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通过分子动力学模拟研究了与转动半径变化相关的润滑剂剪切稀化行为。

Lubricant shear thinning behavior correlated with variation of radius of gyration via molecular dynamics simulations.

机构信息

Department of Mechanical Engineering, Northwestern University, Evanston, Illinois 60208, USA.

Valvoline, Inc., Lexington, Kentucky 40509, USA.

出版信息

J Chem Phys. 2017 Aug 28;147(8):084904. doi: 10.1063/1.4986552.

Abstract

The shear thinning of a lubricant significantly affects lubrication film generation at high shear rates. The critical shear rate, defined at the onset of shear thinning, marks the transition of lubricant behaviors. It is challenging to capture the entire shear-thinning curve by means of molecular dynamics (MD) simulations owing to the low signal-to-noise ratio or long calculation time at comparatively low shear rates (10-10 s), which is likely coincident with the shear rates of interest for lubrication applications. This paper proposes an approach that correlates the shear-thinning phenomenon with the change in the molecular conformation characterized by the radius of gyration of the molecule. Such a correlation should be feasible to capture the major mechanism of shear thinning for small- to moderate-sized non-spherical molecules, which is shear-induced molecular alignment. The idea is demonstrated by analyzing the critical shear rate for squalane (CH) and 1-decene trimer (CH); it is then implemented to study the behaviors of different molecular weight poly-α-olefin (PAO) structures. Time-temperature-pressure superpositioning (TTPS) is demonstrated and it helps further extend the ranges of the temperature and pressure for shear-thinning behavior analyses. The research leads to a relationship between molecular weight and critical shear rate for PAO structures, and the results are compared with those from the Einstein-Debye equation.

摘要

润滑剂的剪切稀化会显著影响高剪切速率下的润滑膜生成。在剪切稀化开始时定义的临界剪切速率标志着润滑剂行为的转变。由于在相对较低的剪切速率(10-10 s)下,分子动力学(MD)模拟的信噪比低或计算时间长,很难捕捉到整个剪切稀化曲线,而这个剪切速率可能与润滑应用中的感兴趣的剪切速率一致。本文提出了一种方法,将剪切稀化现象与分子构象的变化相关联,分子构象由分子的转动半径来表征。这种相关性应该可以捕捉到中小非球形分子剪切稀化的主要机制,即剪切诱导的分子取向。通过分析 squalane (CH) 和 1-decene trimer (CH) 的临界剪切速率来证明这个想法,然后将其应用于研究不同分子量聚-α-烯烃 (PAO) 结构的行为。时间-温度-压力叠加 (TTPS) 得到了证明,它有助于进一步扩展剪切稀化行为分析的温度和压力范围。研究得出了 PAO 结构的分子量和临界剪切速率之间的关系,并将结果与爱因斯坦-德拜方程的结果进行了比较。

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