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An investigation on surface finishing in ultra-precision raster milling of aluminum alloy 6061

机译:铝合金6061超精密光栅铣削表面光洁度的研究

摘要

The technology of ultra-precision machining with single crystal diamond tool produces advanced components with a higher dimensional accuracy and a better surface quality. This article develops a three-dimensional surface topography simulation model for ultra-precision raster milling process by considering the effect of cutting parameters, tool geometry and tool interference as well as the tool-workpiece relative movement on surface generation. Based on the developed surface topography simulation model, a prediction model for the surface roughness in ultra-precision raster milling is built. The effects of depth of cut and surface topography on the cutting-induced heat generation in ultra-precision milling of aluminum alloy 6061 are investigated. Experiment is conducted to verify the developed surface topography simulation model by raster milling of aluminum alloy 6061 under different feed rates and depths of cut. The experimental results show that the surface topography simulation model can properly simulate the surface profile in the raster milling process and the predicted surface roughness agrees well with the measured results of the machined workpiece. Heat generation in horizontal cutting is less than that in vertical cutting and a larger depth of cut generates more heat on the machined workpiece. The cutting-induced heat generates precipitate on the machined aluminum alloy 6061 which results in a worse surface finish in ultra-precision raster milling.
机译:使用单晶金刚石工具进行超精密加工的技术可生产出具有更高尺寸精度和更好表面质量的高级零件。本文通过考虑切削参数,刀具几何形状和刀具干涉以及刀具-工件相对运动对曲面生成的影响,开发了用于超精密光栅铣削加工的三维表面形貌仿真模型。基于已开发的表面形貌仿真模型,建立了超精密光栅铣削表面粗糙度的预测模型。研究了切削深度和表面形貌对铝合金6061超精密铣削中切削诱导的热产生的影响。进行了实验,以验证通过在不同进给速度和切削深度下对铝合金6061进行光栅铣削所开发的表面形貌模拟模型。实验结果表明,表面形貌仿真模型可以较好地模拟光栅铣削过程中的表面轮廓,预测的表面粗糙度与加工工件的测量结果吻合良好。水平切削产生的热量少于垂直切削产生的热量,较大的切削深度会在加工的工件上产生更多的热量。切削引起的热量会在加工的铝合金6061上产生沉淀,这会导致超精密光栅铣削的表面光洁度变差。

著录项

  • 作者

    Wang SJ; To S; Chen X; Chen XD;

  • 作者单位
  • 年度 2015
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类

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