超声振动辅助切削高硅铝合金的微观加工机制

Micro-machining mechanism of ultrasonic vibration-assisted cutting of high silicon aluminum alloy

  • 摘要: 高硅铝合金(Al-30wt%Si)具有较好的物理和化学性质,但由于内部增强相硅颗粒的存在,导致材料加工困难。超声振动辅助切削对改善高硅铝合金材料的可加工性有明显优势,但加工过程中的微观机制仍需研究。采用分子动力学方法分别进行常规切削和超声振动辅助切削高硅铝合金模拟,通过对切削力、温度、应力分布、相变、位错分析,探究表面形成过程和亚表面损伤机制;并通过对金刚石结构识别、刀具形变状态、径向分布函数的分析,进行刀具磨损研究。切削速度与切削力、温度、晶体相变密切相关,超声振动辅助切削可以有效降低切削力和应力,但其温度和晶体相变比例会有所增加;切削深度显著影响切削力、表面形貌及亚表面损伤,超声振动辅助切削改变了应力大小和位错分布,对提高表面质量、减少亚表面损伤有积极意义。该研究阐述了纳米切削过程中加工参数和力学性能的关系,对切削高硅铝合金的微观损伤机制进行分析,从而为超精密切削难加工材料的切削机制研究提供了微观层面的参考。

     

    Abstract: High silicon aluminum alloy (Al-30wt%Si) has good physical and chemical properties, but it is difficult to process the material because of the existence of silicon particles in the internal reinforcement phase. Ultrasonic vibration-assisted cutting has obvious advantages in improving the machinability of high-silicon aluminum alloy materials, but the microscopic mechanism in the machining process still needs to be studied. The conventional cutting and ultrasonic vibration-assisted cutting of high-silicon aluminum alloy were simulated by molecular dynamics method, and the surface formation process and subsurface damage mechanism were explored by analyzing cutting force, temperature, stress distribution, phase transformation and dislocation. Through the analysis of diamond structure identification, tool deformation state and radial distribution function, tool wear was studied. Cutting speed is closely related to cutting force, temperature and crystal phase transformation. Ultrasonic vibration-assisted cutting can effectively reduce cutting force and stress, but its temperature and crystal phase transformation ratio will increase. Cutting depth significantly affects cutting force, surface morphology and subsurface damage. Ultrasonic vibration-assisted cutting changes stress and dislocation distribution, which is of positive significance for improving surface quality and reducing subsurface damage. This study expounds the relationship between machining parameters and mechanical properties during nano-cutting, and analyzes the micro-damage mechanism of cutting high-silicon aluminum alloy, thus providing a micro-level reference for the research on cutting mechanism of ultra-precision cutting difficult-to-machine materials.

     

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