Numerical and experimental investigation of residual stresses during the induction hardening of 42CrMo4 steel

被引:12
|
作者
Areitioaurtena, Maialen [1 ]
Segurajauregi, Unai [1 ]
Fisk, Martin [2 ,3 ]
Cabello, Mario J. [1 ]
Ukar, Eneko [4 ]
机构
[1] Basque Res & Technol Alliance BRTA, Ikerlan Technol Res Ctr, Paseo JM Arizmendiarrieta 2, Arrasate Mondragon 20500, Spain
[2] Univ Malmo, Dept Mat Sci & Appl Math, Malmo, Sweden
[3] Lund Univ, Div Solid Mech, POB 118, S-22100 Lund, Sweden
[4] Univ Basque Country, Dept Mech Engn, Alameda Urquijo S-N, Bilbao 48013, Spain
关键词
Induction hardening; Finite element method; Process simulation; 42CrMo4; Multiphysics; Residual stresses; PHASE-TRANSFORMATION; HEAT-TREATMENT; SIMULATION; PREDICTION; EVOLUTION; GROWTH; MODEL;
D O I
10.1016/j.euromechsol.2022.104766
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The usage of induction hardening in the industry has increased in the last years due to its efficiency and repeatability. Induction hardening produces a hard martensitic layer on the specimen surface, which is accompanied by the generation of compressive residual stresses in the hardened case and tensile stresses in the untreated core. Residual stresses generated by induction hardening greatly impact on fatigue performance, as they act as crack growth retardants. In this work, a multiphysical coupled finite element model is developed to simulate induction hardening and compute the final residual stress state of the specimens along the microstructural transformations and hardness evolution. The impact of the transformation induced plasticity strain in the stress-state of the specimen during the process is also studied. The experimental validation shows that considering the transformation induced plasticity in induction hardening simulations improves the residual stress predictions, concluding that this effect should be included to achieve good residual stress predictions, especially in the subsurface region.
引用
收藏
页数:10
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