1. 新能源电力系统国家重点实验室(华北电力大学), 北京市 昌平区,102206
2. 山东大学电气工程学院,山东省,济南市,250061
纸质出版:2025
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王健, 李鸿剑, 邢泽西, 等. 石墨烯/铜基电磁发射轨道摩擦磨损性能的分子动力学模拟[J]. 中国电机工程学报, 2025,(24):9776-9786.
WANG Jian, LI Hongjian, XING Zexi, et al. Molecular Dynamics Simulation of Friction and Wear Properties of Graphene/Copper Based Electromagnetic Launcher Rail[J]. 2025, (24): 9776-9786.
王健, 李鸿剑, 邢泽西, 等. 石墨烯/铜基电磁发射轨道摩擦磨损性能的分子动力学模拟[J]. 中国电机工程学报, 2025,(24):9776-9786. DOI: 10.13334/j.0258-8013.pcsee.241285.
WANG Jian, LI Hongjian, XING Zexi, et al. Molecular Dynamics Simulation of Friction and Wear Properties of Graphene/Copper Based Electromagnetic Launcher Rail[J]. 2025, (24): 9776-9786. DOI: 10.13334/j.0258-8013.pcsee.241285.
电磁发射枢轨界面往往承受高速相对运动下的强机械摩擦,金属轨道材料磨损失效严重。石墨烯(graphene,Gr)作为一种新型自润滑材料被广泛用于提高金属基复合材料性能,但目前Gr对铜基电磁轨道抗摩擦耐磨损性能的微观机制尚不清晰。该文利用分子动力学方法建立铜基石墨烯复合材料(CuGr)模型,基于该模型在LAMMPS下计算不同Gr掺杂层数及不同压入深度下的摩擦系数,通过微观结构动态演变过程分析Gr提升铜基体摩擦磨损性能的机制,并经实验验证Gr的减摩润滑效果。结果表明:Gr的掺杂能够有效提高Cu基体的摩擦性能,Cu基体的磨损量显著降低,且摩擦系数随Gr掺杂层数的增加而下降,单层、双层、三层CuGr模型的摩擦系数相较于Cu分别下降了37.06%,42.94%,54.69%。石墨烯的引入有助于解决枢轨界面在电磁发射过程中由于摩擦引起的机械性能下降问题,石墨烯CuGr复合材料的性能增强机制为层状结构支撑作用与位错阻断。研究结果可为石墨烯/铜基复合材料的优化设计与性能提升提供一定理论指导和技术支撑。
Electromagnetic launch armature-rail interfaces often undergo severe mechanical friction under high-speed relative motion
leading to significant wear and failure of metallic rail materials. Graphene (Gr)
as a novel self-lubricating material
has been widely used to enhance the performance of metal matrix composites. However
the microscopic mechanism of Gr in improving the anti-friction and wear resistance of copper-based electromagnetic rails remains unclear. In this study
a copper-based graphene composite (CuGr) model is developed by using molecular dynamics simulations. The model is implemented in LAMMPS to calculate friction coefficients under varying graphene layer counts and indentation depths. The dynamic evolution of the microstructure is analyzed to clarify the mechanisms by which graphene enhances the friction and wear performance of the copper matrix. Experimental results confirm the lubricating effect of graphene. The findings demonstrate that graphene doping significantly improves the frictional performance of the copper matrix
with a marked reduction in wear and a decrease in friction coefficient as the number of graphene layers increases. Specifically
the friction coefficients of the single-layer
double-layer
and triple-layer CuGr models are reduced by 37.06%
42.94%
and 54.69%
respectively
compared to pure copper. The introduction of graphene helps address the mechanical performance degradation caused by friction at the armature-rail interface during electromagnetic launch. The performance enhancement mechanism of Gr/Cu composites is attributed to the layered structural support and dislocation blocking. These results provide theoretical guidance and technical support for the optimized design and performance enhancement of graphene/copper-based composites.
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