利用振动辅助加工提高硬车削工艺性能的研究

Pranesh Dutta, G. Bartarya
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引用次数: 1

摘要

在硬车削中,切削力很大,导致刀具磨损和残余应力的拉伸性质。振动辅助加工(VAM),即刀具具有明显高频的低振幅振动,可以在切削力、残余应力等方面改善硬车削的工艺性能,因为VAM有助于显著降低切削力和刀具磨损。为了改进加工工艺,进行了VAM与常规加工的对比研究,以研究和提高硬车削性能。为了更好地理解工艺参数的影响,研究一维超声振动对刀具加工性能的影响,建立了二维有限元模型。在连续硬车削条件下,对所建立的模型进行了验证。研究了切削速度方向振动对切削力和工件残余应力的影响。切削速度与临界振动速度之比是影响VAM硬车削平均切削力的重要工艺参数。研究了一个完整振动周期内切削力和温度的变化规律。仿真结果表明,与常规硬车削相比,VAM硬车削产生更低的平均切削力和更大的残余压应力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On the improvement of process performance of hard turning using vibration-assisted machining
In hard turning, the cutting forces are large, which leads to tool wear and tensile nature of residual stresses. Vibration-assisted machining (VAM), where the tool is provided with a low amplitude vibration at significantly high frequency, might improve the process performance of hard turning in terms of cutting forces, residual stress, etc., as VAM helps in reduction of cutting forces and tool wear significantly. To improve the machining operation, a comparative study of VAM with conventional machining is undertaken to study and improve the hard turning performance. A two-dimensional (2D) finite element (FE) model is developed to understand the effect of process parameters better and to study the effect on machining performance by applying one-dimensional ultrasonic vibration to the tool. The model developed is validated with results from a previous work for continuous hard turning conditions. The effect of vibrations induced in cutting velocity direction is studied on the cutting forces and residual stresses induced on the machined workpiece. The ratio of cutting velocity to critical vibrating velocity is an important process parameter that affects the average cutting forces during hard turning using VAM. The nature of cutting force and temperature for a complete cycle of vibration is also studied. The simulation results establish that hard turning using VAM yields lower average cutting forces and more compressive residual stresses in comparison to conventional hard turning.
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