Simulation of Crack Initiation and Propagation in the Crystals of a Beam Blank

Surface cracking seriously affects the quality of beam blanks in continuous casting. To study the mechanism of surface crack initiation and propagation under beam blank mesoscopic condition, this study established a polycrystalline model using MATLAB. Based on mesoscopic damage mechanics, a full imp...

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Main Authors: Gaiyan Yang, Liguang Zhu, Wei Chen, Gaoxiang Guo, Baomin He
Format: Article
Language:English
Published: MDPI AG 2018-11-01
Series:Metals
Subjects:
Online Access:https://www.mdpi.com/2075-4701/8/11/905
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author Gaiyan Yang
Liguang Zhu
Wei Chen
Gaoxiang Guo
Baomin He
author_facet Gaiyan Yang
Liguang Zhu
Wei Chen
Gaoxiang Guo
Baomin He
author_sort Gaiyan Yang
collection DOAJ
description Surface cracking seriously affects the quality of beam blanks in continuous casting. To study the mechanism of surface crack initiation and propagation under beam blank mesoscopic condition, this study established a polycrystalline model using MATLAB. Based on mesoscopic damage mechanics, a full implicit stress iterative algorithm was used to simulate the crack propagation and the stress and strain of pores and inclusions of the polycrystalline model using ABAQUS software. The results show that the stress at the crystal boundary is much higher than that in the crystal, cracks occur earlier in the former than in the latter, and cracks extend along the direction perpendicular to the force. When a polycrystalline model with pores is subjected to tensile stress, a stress concentration occurs when the end of the pores is perpendicular to the stress direction, and the propagation and aggregation direction of the pores is basically perpendicular to the direction of the tensile stress. When a polycrystalline model with impurities is subjected to force, the stress concentrates around the impurity but the strain here is minimal, which leads to the crack propagating along the impurity direction. This study can provide theoretical guidance for controlling the generation of macroscopic cracks in beam blanks.
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spelling doaj.art-8cc2ee99dcb744a380fb672bdeb04ade2022-12-21T19:28:35ZengMDPI AGMetals2075-47012018-11-0181190510.3390/met8110905met8110905Simulation of Crack Initiation and Propagation in the Crystals of a Beam BlankGaiyan Yang0Liguang Zhu1Wei Chen2Gaoxiang Guo3Baomin He4School of Metallurgical and Ecological Engineering, University of Science and Technology Beijing, Beijing 100083, ChinaNorth China University of Science and Technology, Tangshan 063210, Hebei, ChinaNorth China University of Science and Technology, Tangshan 063210, Hebei, ChinaNorth China University of Science and Technology, Tangshan 063210, Hebei, ChinaNorth China University of Science and Technology, Tangshan 063210, Hebei, ChinaSurface cracking seriously affects the quality of beam blanks in continuous casting. To study the mechanism of surface crack initiation and propagation under beam blank mesoscopic condition, this study established a polycrystalline model using MATLAB. Based on mesoscopic damage mechanics, a full implicit stress iterative algorithm was used to simulate the crack propagation and the stress and strain of pores and inclusions of the polycrystalline model using ABAQUS software. The results show that the stress at the crystal boundary is much higher than that in the crystal, cracks occur earlier in the former than in the latter, and cracks extend along the direction perpendicular to the force. When a polycrystalline model with pores is subjected to tensile stress, a stress concentration occurs when the end of the pores is perpendicular to the stress direction, and the propagation and aggregation direction of the pores is basically perpendicular to the direction of the tensile stress. When a polycrystalline model with impurities is subjected to force, the stress concentrates around the impurity but the strain here is minimal, which leads to the crack propagating along the impurity direction. This study can provide theoretical guidance for controlling the generation of macroscopic cracks in beam blanks.https://www.mdpi.com/2075-4701/8/11/905polycrystalline modelporesinclusionsmechanismbeam blankcrystalpropagation
spellingShingle Gaiyan Yang
Liguang Zhu
Wei Chen
Gaoxiang Guo
Baomin He
Simulation of Crack Initiation and Propagation in the Crystals of a Beam Blank
Metals
polycrystalline model
pores
inclusions
mechanism
beam blank
crystal
propagation
title Simulation of Crack Initiation and Propagation in the Crystals of a Beam Blank
title_full Simulation of Crack Initiation and Propagation in the Crystals of a Beam Blank
title_fullStr Simulation of Crack Initiation and Propagation in the Crystals of a Beam Blank
title_full_unstemmed Simulation of Crack Initiation and Propagation in the Crystals of a Beam Blank
title_short Simulation of Crack Initiation and Propagation in the Crystals of a Beam Blank
title_sort simulation of crack initiation and propagation in the crystals of a beam blank
topic polycrystalline model
pores
inclusions
mechanism
beam blank
crystal
propagation
url https://www.mdpi.com/2075-4701/8/11/905
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