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Microstructural prediction in metal cutting and improvement of machinability and surface integrity via laser-assisted machining.

机译:通过激光辅助加工在金属切削中的微观结构预测以及可加工性和表面完整性的改善。

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摘要

This study is concerned with the predictive modeling of surface microstructure alterations in terms of grain refinement due to mechanical deformation and thermally driven phase transformation during the machining process. To model grain refinement, a dislocation density-based numerical framework is developed to simulate the chip formation, cutting temperature and grain size during orthogonal cutting of Al 6061 T6 and OFHC Cu; to model phase change, a truly coupled metallo-thermo-mechanical scheme is proposed to considerate mechanical deformation, thermal history, and phase transformation kinetics in orthogonal cutting of AISI 1045 steel under various conditions. The developed metallo-thermo-mechanical coupled analysis is then applied to the three-dimensional (3D) hard turning process for bearing steels to investigate the surface microstructure alteration, particularly the white layer formation mechanisms incorporating both the thermally driven phase transformation and mechanical grain refinement due to severe plastic deformation.;To carry on the microstructural evolution simulation and improve computational efficiency, a coupled Eulerian-Lagrangian (CEL) model is developed to simulate steady-state chip formation in two-dimensional (2D) orthogonal cutting by using the commercial software Abaqus. 3D hard turning simulations are undertaken via AdvantEdge FEM software incorporating the material user subroutine for various hard turning conditions. A novel, arbitrary-Lagrangian-Eulerian (ALE) based finite element scheme is developed in ABAQUS to simulate the micro-milling cycles, and a strain gradient constitutive material model is incorporated to model the size effect in micro-milling. Through a quantitative assessment using the experimental data, the model simulations demonstrate the essential characteristics of the deformation field and microstructural evolution mechanism during cutting.;Microstructure and surface integrity is further studied experimentally and numerically for difficult-to-machine materials during laser-assisted machining. One-step laser-assisted machining process is proposed for hardened AISI 4130 steel to replace the hard turning and grinding operations. A heat transfer model is developed to predict the temperature field inside the workpiece of complex geometry undergoing laser-assisted profile turning. Microstructure of 4130 steel workpiece is simulated using the 3D nose turning option in AdvantEdge FEM by considering both phase transformation kinetics and grain refinement. The surface integrity analysis is experimentally studied by changing heating and operating conditions, viz., average material removal temperature, cutting speed and feed.
机译:这项研究与在加工过程中由于机械变形和热驱动相变引起的晶粒细化方面的表面微观结构变化的预测模型有关。为了模拟晶粒细化,建立了基于位错密度的数值框架,以模拟正交切削Al 6061 T6和OFHC Cu时的切屑形成,切削温度和晶粒尺寸。为了模拟相变,提出了一种真正耦合的金属-热-机械方案,以考虑各种条件下AISI 1045钢正交切削中的机械变形,热历史和相变动力学。然后将开发的金属-热-机械耦合分析应用于轴承钢的三维(3D)硬车削工艺,以研究表面微观结构的变化,特别是结合了热驱动相变和机械晶粒细化的白层形成机制为了进行微观结构演化仿真并提高计算效率,开发了一种耦合的欧拉-拉格朗日(CEL)模型,该模型通过使用商用工具来模拟二维(2D)正交切削中的稳态切屑形成。软件Abaqus。通过AdvantEdge FEM软件进行3D硬车削仿真,该软件结合了材料用户子例程,可用于各种硬车削条件。在ABAQUS中开发了一种新颖的基于任意拉格朗日欧拉(ALE)的有限元方案来模拟微铣削循环,并引入了应变梯度本构模型来模拟微铣削中的尺寸效应。通过对实验数据的定量评估,模型仿真证明了切削过程中形变场和微观结构演变机理的基本特征。进一步对难加工材料在激光辅助加工过程中的微观结构和表面完整性进行了实验和数值研究。提出了一种用于硬化AISI 4130钢的一步激光辅助加工工艺,以代替硬车削和磨削操作。开发了一种传热模型来预测复杂几何形状的工件内部经历激光辅助轮廓车削的温度场。考虑到相变动力学和晶粒细化,在AdvantEdge FEM中使用3D车削前弯角选项来模拟4130钢工件的微观结构。通过改变加热和操作条件,即平均材料去除温度,切削速度和进料,通过实验研究了表面完整性分析。

著录项

  • 作者

    Ding, Hongtao.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 194 p.
  • 总页数 194
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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