An Evaluation of Chip Separation Criteria for the FEM Simulation of Machining
- 1 November 1996
- journal article
- Published by ASME International in Journal of Manufacturing Science and Engineering
- Vol. 118 (4) , 545-554
- https://doi.org/10.1115/1.2831066
Abstract
Different chip separation criteria for the FEM simulation of machining were examined. Criterion based on distance between the tool tip and the node located immediately ahead, criterion based on maximum shear stress in the element ahead of the tool tip, criterion based on average maximum shear stress in the shear plane, and criterion based on a combination of distance and stress were investigated. Under conditions of smooth separation of chip from workpiece, simulation results showed that, during steady-state cutting, the type of chip separation criteria did not greatly affect chip geometry, nor distributions of stress and strain. The magnitude of the chip separation criteria also did not significantly affect chip geometry and distributions of stress in the chip but it did affect the chip separation process, distributions of stress in the machined surface, and distributions of effective plastic strain both in the chip and in the machined surface. During the initiation of cutting, neither the geometrical nor physical criteria simulate the machining process correctly. A combination of geometric and physical criteria was also recommended in this study.Keywords
This publication has 17 references indexed in Scilit:
- Finite Element Simulation of Welding of Large StructuresJournal of Engineering for Industry, 1992
- A Coupled Finite Element Model of Thermo-Elastic-Plastic Large Deformation for Orthogonal CuttingJournal of Engineering Materials and Technology, 1992
- Finite Element Modeling of Orthogonal Metal CuttingJournal of Engineering for Industry, 1991
- An Efficient 2-D Finite Element Procedure for Isothermal Phase ChangesJournal of Engineering for Industry, 1990
- Finite Element Prediction of Chip Geometry and Tool/Workpiece Temperature Distributions in Orthogonal Metal CuttingJournal of Engineering for Industry, 1990
- Mechanics of Machining: An Analytical Approach to Assessing MachinabilityJournal of Applied Mechanics, 1990
- Application of Three Dimensional Finite Element Analysis to Shape Rolling ProcessesJournal of Engineering for Industry, 1990
- Process Modeling of Orthogonal Cutting by the Rigid-Plastic Finite Element MethodJournal of Engineering Materials and Technology, 1984
- Flow Stress Model in Metal CuttingJournal of Engineering for Industry, 1979
- Shear Front-Lamella Structure in Large Strain Plastic Deformation ProcessesJournal of Engineering for Industry, 1972