Lee Sung-Jun, Kim Chang-Lae
Department of Mechanical Engineering, Chosun University, Gwangju, 61452, Republic of Korea.
Soft Matter. 2024 Feb 14;20(7):1467-1474. doi: 10.1039/d3sm01459b.
This study investigates the friction and wear characteristics of silicone rubber used in hydraulic systems, focusing on surface properties achieved through coating strategies. Silicone rubber specimens with varying surface characteristics, prepared by coating with micro-sized ceramic particles and employing etching processes, were examined. Surface morphology, roughness, water droplet contact angles, and friction and wear characteristics were evaluated. The silicone rubber was coated with ceramic particles (average size: 16 μm) and subsequently etched for different durations (1, 5, 10, 30, and 60 minutes). The results revealed that longer etching times led to increased surface roughness, while shorter etching times resulted in improved wear characteristics. The friction coefficient demonstrated a discernible reduction with escalating etching durations, with Etching-60M showing approximately 50% lower friction coefficient compared to Etching-1M. Wear rates ranged from 2.47 × 10 to 1.43 × 10 mm N mm, indicating an increasing trend with longer etching times. Distinct wear mechanisms were observed between non-etched and etched specimens, with the latter exhibiting more pronounced wear tracks. Finite element analysis highlighted variations in stress behavior during contact sliding, indicating that surface modifications significantly impact wear resistance. While longer etching times improved friction characteristics, shorter etching times yielded superior wear characteristics. Further research is recommended to explore optimal etching conditions considering various variables.
本研究调查了液压系统中使用的硅橡胶的摩擦和磨损特性,重点关注通过涂层策略实现的表面性能。对通过用微米级陶瓷颗粒涂层和采用蚀刻工艺制备的具有不同表面特性的硅橡胶试样进行了检查。评估了表面形态、粗糙度、水滴接触角以及摩擦和磨损特性。硅橡胶用陶瓷颗粒(平均尺寸:16μm)涂层,随后蚀刻不同持续时间(1、5、10、30和60分钟)。结果表明,较长的蚀刻时间导致表面粗糙度增加,而较短的蚀刻时间则使磨损特性得到改善。摩擦系数随着蚀刻持续时间的增加而明显降低,与蚀刻1分钟相比,蚀刻60分钟的摩擦系数降低了约50%。磨损率范围为2.47×10至1.43×10 mm N mm,表明随着蚀刻时间延长呈增加趋势。在未蚀刻和蚀刻试样之间观察到不同的磨损机制,后者表现出更明显的磨损轨迹。有限元分析突出了接触滑动过程中应力行为的变化,表明表面改性对耐磨性有显著影响。虽然较长的蚀刻时间改善了摩擦特性,但较短的蚀刻时间产生了更好的磨损特性。建议进一步研究,考虑各种变量来探索最佳蚀刻条件。