...
首页> 外文期刊>AIP Advances >Effects of vibration frequency on vibration-assisted nano-scratch process of mono-crystalline copper via molecular dynamics simulation
【24h】

Effects of vibration frequency on vibration-assisted nano-scratch process of mono-crystalline copper via molecular dynamics simulation

机译:分子动力学模拟振动频率对单晶铜振动辅助纳米划痕过程的影响

获取原文
           

摘要

It has always been a critical issue to understand the material removal behavior of Vibration-Assisted Machining (VAM), especially on atomic level. To find out the effects of vibration frequency on material removal response, a three-dimensional molecular dynamics (MD) model has been established in this research to investigate the effects of scratched groove, crystal defects on the surface quality, comparing with the Von Mises shear strain and tangential force in simulations during nano-scratching process. Comparisons are made among the results of simulations from different vibration frequency with the same scratching feed, depth, amplitude and crystal orientation. Copper potential in this simulation is Embedded-Atom Method (EAM) potential. Interaction between copper and carbon atoms is Morse potential. Simulational results show that higher frequency can make groove smoother. Simulation with high frequency creates more dislocations to improve the machinability of copper specimen. The changing frequency does not have evident effects on Von Mises shear strain. Higher frequency can decrease the tangential force to reduce the consumption of cutting energy and tool wear. In conclusion, higher vibration frequency in VAM on mono-crystalline copper has positive effects on surface finish, machinablility and tool wear reduction.
机译:了解振动辅助加工(VAM)的材料去除行为一直是一个关键问题,尤其是在原子级别上。为了找出振动频率对材料去除响应的影响,本研究建立了三维分子动力学(MD)模型,以研究刮痕,晶体缺陷对表面质量的影响,并与冯·米塞斯(Von Mises)剪切力进行了比较。纳米划痕过程中模拟中的应变和切向力。在不同的振动频率,相同的划痕进给,深度,振幅和晶体取向下,对仿真结果进行了比较。此模拟中的铜电位为嵌入式原子方法(EAM)电位。铜和碳原子之间的相互作用为莫尔斯电势。仿真结果表明,较高的频率可使凹槽更平滑。高频模拟会产生更多的位错,以改善铜试样的可加工性。频率的变化对冯·米塞斯的剪切应变没有明显影响。较高的频率可以减小切向力,以减少切削能量和刀具磨损的消耗。总之,单晶铜在VAM中的较高振动频率对表面光洁度,可焊性和减少工具磨损具有积极影响。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号