Effects of Hardening Model and Variation of Elastic Modulus on Springback Prediction in Roll Forming

In this paper, the uniaxial loading−unloading−reloading (LUR) tensile test was conducted to determine the elastic modulus depending on the plastic pre-strain. To obtain the material parameters and parameter of Yoshida-Uemori’s kinematic hardening models, tension&#87...

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Main Authors: Jihad Naofal, Hassan Moslemi Naeini, Siamak Mazdak
Format: Article
Language:English
Published: MDPI AG 2019-09-01
Series:Metals
Subjects:
Online Access:https://www.mdpi.com/2075-4701/9/9/1005
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spelling doaj-789cba92dbf94f1a89a342c76c0742092020-11-25T02:13:39ZengMDPI AGMetals2075-47012019-09-0199100510.3390/met9091005met9091005Effects of Hardening Model and Variation of Elastic Modulus on Springback Prediction in Roll FormingJihad Naofal0Hassan Moslemi Naeini1Siamak Mazdak2‏Mechanical Engineering faculty, Tarbiat Modares University, Tehran 14115-111, Iran‏Mechanical Engineering faculty, Tarbiat Modares University, Tehran 14115-111, IranEngineering faculty, Tafresh University, Tafresh 39518-79611, IranIn this paper, the uniaxial loading−unloading−reloading (LUR) tensile test was conducted to determine the elastic modulus depending on the plastic pre-strain. To obtain the material parameters and parameter of Yoshida-Uemori’s kinematic hardening models, tension−compression experiments were carried out. The experimental results of the cyclic loading tests together with the numerically predicted response of the plastic behavior were utilized to determine the parameters using the Ls-opt optimization tool. The springback phenomenon is a critical issue in industrial sheet metal forming processes, which could affect the quality of the product. Therefore, it is necessary to represent a method to predict the springback. To achieve this aim, the calibrated plasticity models based on appropriate tests (cyclic loading) were implemented in commercial finite element (FE) code Ls-dyna to predict the springback in the roll forming process. Moreover, appropriate experimental tests were performed to validate the numerical results, which were obtained by the proposed model. The results showed that the hardening models and the variation of elastic modulus have significant impact on springback accuracy. The Yoshida-Uemori’s hardening represents more accurate prediction of the springback during the roll forming process when compared to isotropic hardening. Using the chord modulus to determine the reduction in elastic modulus gave more accurate results to predict springback when compared with the unloading and loading modulus to both hardening models.https://www.mdpi.com/2075-4701/9/9/1005roll formingspringbackhardening modelYoshida-Uemori’s kinematic
collection DOAJ
language English
format Article
sources DOAJ
author Jihad Naofal
Hassan Moslemi Naeini
Siamak Mazdak
spellingShingle Jihad Naofal
Hassan Moslemi Naeini
Siamak Mazdak
Effects of Hardening Model and Variation of Elastic Modulus on Springback Prediction in Roll Forming
Metals
roll forming
springback
hardening model
Yoshida-Uemori’s kinematic
author_facet Jihad Naofal
Hassan Moslemi Naeini
Siamak Mazdak
author_sort Jihad Naofal
title Effects of Hardening Model and Variation of Elastic Modulus on Springback Prediction in Roll Forming
title_short Effects of Hardening Model and Variation of Elastic Modulus on Springback Prediction in Roll Forming
title_full Effects of Hardening Model and Variation of Elastic Modulus on Springback Prediction in Roll Forming
title_fullStr Effects of Hardening Model and Variation of Elastic Modulus on Springback Prediction in Roll Forming
title_full_unstemmed Effects of Hardening Model and Variation of Elastic Modulus on Springback Prediction in Roll Forming
title_sort effects of hardening model and variation of elastic modulus on springback prediction in roll forming
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2019-09-01
description In this paper, the uniaxial loading−unloading−reloading (LUR) tensile test was conducted to determine the elastic modulus depending on the plastic pre-strain. To obtain the material parameters and parameter of Yoshida-Uemori’s kinematic hardening models, tension−compression experiments were carried out. The experimental results of the cyclic loading tests together with the numerically predicted response of the plastic behavior were utilized to determine the parameters using the Ls-opt optimization tool. The springback phenomenon is a critical issue in industrial sheet metal forming processes, which could affect the quality of the product. Therefore, it is necessary to represent a method to predict the springback. To achieve this aim, the calibrated plasticity models based on appropriate tests (cyclic loading) were implemented in commercial finite element (FE) code Ls-dyna to predict the springback in the roll forming process. Moreover, appropriate experimental tests were performed to validate the numerical results, which were obtained by the proposed model. The results showed that the hardening models and the variation of elastic modulus have significant impact on springback accuracy. The Yoshida-Uemori’s hardening represents more accurate prediction of the springback during the roll forming process when compared to isotropic hardening. Using the chord modulus to determine the reduction in elastic modulus gave more accurate results to predict springback when compared with the unloading and loading modulus to both hardening models.
topic roll forming
springback
hardening model
Yoshida-Uemori’s kinematic
url https://www.mdpi.com/2075-4701/9/9/1005
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AT hassanmosleminaeini effectsofhardeningmodelandvariationofelasticmodulusonspringbackpredictioninrollforming
AT siamakmazdak effectsofhardeningmodelandvariationofelasticmodulusonspringbackpredictioninrollforming
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