New approach for spring-back compensation in die design application for high strength steel

2004 ◽  
Vol 101 (7-8) ◽  
pp. 607-613
Author(s):  
M. Munier ◽  
J.-M. Devin ◽  
M. El-Mouatassim
Engineering ◽  
2014 ◽  
Vol 12 (5) ◽  
pp. 54
Author(s):  
Junping Zhang ◽  
Gang Fang ◽  
Mingtu Ma ◽  
Qingsheng Jin

2018 ◽  
Vol 10 (9) ◽  
pp. 168781401879743 ◽  
Author(s):  
Van-Canh Tong ◽  
Duc-Toan Nguyen

In this article, a numerical model for predicting spring-back in U-draw bending of DP350 high-strength steel sheet was presented. First, the hardening models were formulated based on combined isotropic–kinematic hardening laws, along with the traditional pure isotropic and kinematic hardening laws. A simplified method was proposed for determining the material parameters. Comparison of stress–strain curves of uniaxial tests at various pre-strains predicted by the numerical models and experiment showed that the combined isotropic–kinematic hardening model could accurately describe the Bauschinger effect and transient behavior subjected to cyclic loading conditions. Then, a finite element model was created to simulate the U-draw bending process using ABAQUS. Simulations were then conducted to predict the spring-back of DP350 high-strength steel in U-draw bending with geometry provided in the NUMISHEET’2011 benchmark problems. It was shown that the predictions of spring-back using the proposed model were in good agreement with the experimental results available in the literature. Finally, the effects of various tool and process parameters such as punch profile radius, die profile radius, blank holding force, and punch-to-die clearance on the spring-back were investigated. The simulation results suggested the significance of tool and process parameters on the final shape of the formed parts influenced by the spring-back.


2018 ◽  
Vol 232 ◽  
pp. 02039
Author(s):  
cunping Liu

The drawing process of a high strength steel part without blank holder force was numerically simulated based on Dynaform. In present investigation, the drawing velocity and velocity profile motion of punch was studied by simulating the drawing operation of high strength steel part. The results show that restricting drawing velocity and controlling velocity profile motion of punch could all reduce the spring back. The measure of restricting drawing velocity could reduce non-pressure forming spring back about 31% and Trapezoidal motion mode of punch is the most beneficial to reduce spring back.


2015 ◽  
Vol 100 ◽  
pp. 76-79 ◽  
Author(s):  
Joonhang Lee ◽  
Kwangmin Lee ◽  
Dongok Kim ◽  
Hongseok Choi ◽  
Byungmin Kim

2013 ◽  
Vol 371 ◽  
pp. 333-337 ◽  
Author(s):  
Bogdan Chirita

High strength steels are extensively used in industries like automotive or aviation due to their convenient strength-weight ratio. However, these materials have also a downside given the high strain hardening rate and reduced ductility. Therefore in order to achieve parts with a more complex geometry multiple steps forming is often necessary. Given the complex straining history that a material passes through, it is becoming very important to understand the influence that pre-straining has on the consequent forming processes. This paper aims to investigate the capability of predicting spring-back using appropriate material models.


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