Enhanced rheological and tribological properties of nanoenhanced greases by tuning interparticle contacts

流变学 材料科学 摩擦学 润滑 粘度 复合材料 纳米颗粒 胶体 粒子(生态学) 触变性 蒙脱石 润滑油 纳米技术 化学工程 工程类 地质学 海洋学
作者
Babak Soltannia‬,Leonardo Martin‐Alarcon,Jackson Uhryn,Aleksandra Govedarica,Philip Egberts,Milana Trifkovic
出处
期刊:Journal of Colloid and Interface Science [Elsevier]
卷期号:645: 560-569 被引量:11
标识
DOI:10.1016/j.jcis.2023.04.124
摘要

Despite the wide spectrum of available nanoparticles, their utilization in lubricant and grease formulations remains challenging. To enhance their performance, an improved link between the interparticle contacts, brittleness of the resulting particle network, time-dependent rheology and tribology is required.We systematically changed interparticle contacts and examined their effect on the colloidal stability, microstructure, rheological and tribological behavior of model greases by investigating four types of nanoclays: montmorillonite (Cloisite Na+), oleic-acid functionalized Cloisite Na+ (OA-Cloisite Na+), organomodified montmorillonite (C20A) and oleic-acid functionalized C20A (C20A-OA).We observed a range of behaviors, starting from the lack of colloidal stability in greases derived with Cloisite Na+ and OA-Cloisite Na+ to semi-solid type systems with C20A and C20A-OA. Consistent with previous studies, the rheological and tribological properties of C20A systems scale with nanoclay loadings. Surprisingly, the functionalized C20A-OA system exhibited a delayed transition towards hydrodynamic lubrication, and enhanced lubrication properties, both of which were largely independent of nanoclay loadings. Coupled microstructural investigation and time-dependent rheology reveal that this behavior is governed by increasing repulsive forces, decreasing inter-particle friction between C20A-OA nanoparticles, and faster reorganization of the C20A-OA nanoparticle network under shear. Increased interparticle repulsion enables C20A-OA nanoclays to pass each other under shear and align in direction of shear, which reduces the overall viscosity, while the presence of OA on nanoclays decreases inter-particle friction and particle-steel surface friction.

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