MICROSTRUCTURE-BASED 3D FE MODELING FOR MICRO CUTTING FERRITIC-PEARLITIC CARBON STEELS

被引:0
|
作者
Abouridouane, M. [1 ]
Klocke, F. [1 ]
Lung, D. [1 ]
机构
[1] Rhein Westfal TH Aachen, Lab Machine Tools & Prod Engn WZL, D-52074 Aachen, Nrw, Germany
关键词
CHIP FORMATION; SIMULATION; BEHAVIOR;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The mechanics of the cutting process on the microscopic level differ fundamentally from the conventional macro cutting. For example, the tool edge radius influences the cutting mechanism in micro machining significantly with regard to the effective rake angle, the minimum chip thickness, the dominance of ploughing, and the related elasto-plastic deformation of the workpiece material. These phenomena, known as size effects, have a profound impact on the cutting force, process stability, and resulting surface finish in micro cutting. Therefore, microstructural effects in microscale cutting require quite different assumptions to be made concerning underlying material behaviour during micro cutting and have led to the need for new modeling approaches to account for such effects. This paper presents a three-dimensional finite element approach to incorporate microstructure into micro cutting simulation based on the concept of a representative volume element (RYE) and constitutive material modeling as well as using the Lagrangian formulation proposed in the implicit FE code Deform 3D (TM). Micro drilling and micro milling tests using solid carbide tools with different diameters (d = 50 mu m - 1 mm) were performed on ferrite-pearlite two-phase steel AISI 1045 for the verification of the developed 3D multiphase FE computation model regarding chip formation, feed force, and torque. The developed 3D multiphase FE model was successfully used to predict size effects in micro cutting.
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页数:8
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