Finite Element Analysis of Crack Propagation in Precise Separation Process of Tubing Eccentric Loading Fatigue Fracture

Aiming at the difficulties of efficient and precise separation of metal tubes. For tubing fatigue fracture precision separation, this paper proposes a tubing precision separation process under eccentric wheel rotational bending fatigue loading. Mechanical properties experiments for 304 stainless ste...

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Main Authors: Renfeng Zhao, Runze Pan, Weicheng Gao, Dongya Zhang, Xudong Xiao, Pengkang Zhao, Xiaohuan Zhu
Format: Article
Language:English
Published: MDPI AG 2022-05-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/12/10/5111
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author Renfeng Zhao
Runze Pan
Weicheng Gao
Dongya Zhang
Xudong Xiao
Pengkang Zhao
Xiaohuan Zhu
author_facet Renfeng Zhao
Runze Pan
Weicheng Gao
Dongya Zhang
Xudong Xiao
Pengkang Zhao
Xiaohuan Zhu
author_sort Renfeng Zhao
collection DOAJ
description Aiming at the difficulties of efficient and precise separation of metal tubes. For tubing fatigue fracture precision separation, this paper proposes a tubing precision separation process under eccentric wheel rotational bending fatigue loading. Mechanical properties experiments for 304 stainless steel tubing are carried out. On this basis, the J-C constitutive model of 304 stainless steel tubing fatigue fracture is established. In addition, the tubing stress at different rotation angles of the eccentric wheel and the axial stress at four positions of the tubing V-groove section are analyzed, and the process of the tubing precision separation is simulated. According to the results, the axial stress of the tubing V-groove section changes basically symmetrically, and the stress is the largest at the smallest distance from the eccentric wheel excircle axis. During fatigue loading cycles from 0 to 500, the crack growth rate of tubing outer ring is greater than that of the inner ring. With the increase in loading cycles, the crack surface gradually changes from smooth to undulating. Finally, an obvious final fracture region appears, which is consistent with the experimental results.
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spelling doaj.art-98c5ceafaadd4b1ebba802c84f170dc62023-11-23T09:57:51ZengMDPI AGApplied Sciences2076-34172022-05-011210511110.3390/app12105111Finite Element Analysis of Crack Propagation in Precise Separation Process of Tubing Eccentric Loading Fatigue FractureRenfeng Zhao0Runze Pan1Weicheng Gao2Dongya Zhang3Xudong Xiao4Pengkang Zhao5Xiaohuan Zhu6Department of Mechanical and Precision Instrument Engineering, Xi’an University of Technology, Xi’an 710048, ChinaDepartment of Mechanical and Precision Instrument Engineering, Xi’an University of Technology, Xi’an 710048, ChinaDepartment of Mechanical and Precision Instrument Engineering, Xi’an University of Technology, Xi’an 710048, ChinaDepartment of Mechanical and Precision Instrument Engineering, Xi’an University of Technology, Xi’an 710048, ChinaDepartment of Mechanical and Precision Instrument Engineering, Xi’an University of Technology, Xi’an 710048, ChinaDepartment of Mechanical and Precision Instrument Engineering, Xi’an University of Technology, Xi’an 710048, ChinaDepartment of Mechanical and Precision Instrument Engineering, Xi’an University of Technology, Xi’an 710048, ChinaAiming at the difficulties of efficient and precise separation of metal tubes. For tubing fatigue fracture precision separation, this paper proposes a tubing precision separation process under eccentric wheel rotational bending fatigue loading. Mechanical properties experiments for 304 stainless steel tubing are carried out. On this basis, the J-C constitutive model of 304 stainless steel tubing fatigue fracture is established. In addition, the tubing stress at different rotation angles of the eccentric wheel and the axial stress at four positions of the tubing V-groove section are analyzed, and the process of the tubing precision separation is simulated. According to the results, the axial stress of the tubing V-groove section changes basically symmetrically, and the stress is the largest at the smallest distance from the eccentric wheel excircle axis. During fatigue loading cycles from 0 to 500, the crack growth rate of tubing outer ring is greater than that of the inner ring. With the increase in loading cycles, the crack surface gradually changes from smooth to undulating. Finally, an obvious final fracture region appears, which is consistent with the experimental results.https://www.mdpi.com/2076-3417/12/10/5111tubingcrack propagationJ-C constitutive modelfinite element simulation
spellingShingle Renfeng Zhao
Runze Pan
Weicheng Gao
Dongya Zhang
Xudong Xiao
Pengkang Zhao
Xiaohuan Zhu
Finite Element Analysis of Crack Propagation in Precise Separation Process of Tubing Eccentric Loading Fatigue Fracture
Applied Sciences
tubing
crack propagation
J-C constitutive model
finite element simulation
title Finite Element Analysis of Crack Propagation in Precise Separation Process of Tubing Eccentric Loading Fatigue Fracture
title_full Finite Element Analysis of Crack Propagation in Precise Separation Process of Tubing Eccentric Loading Fatigue Fracture
title_fullStr Finite Element Analysis of Crack Propagation in Precise Separation Process of Tubing Eccentric Loading Fatigue Fracture
title_full_unstemmed Finite Element Analysis of Crack Propagation in Precise Separation Process of Tubing Eccentric Loading Fatigue Fracture
title_short Finite Element Analysis of Crack Propagation in Precise Separation Process of Tubing Eccentric Loading Fatigue Fracture
title_sort finite element analysis of crack propagation in precise separation process of tubing eccentric loading fatigue fracture
topic tubing
crack propagation
J-C constitutive model
finite element simulation
url https://www.mdpi.com/2076-3417/12/10/5111
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AT weichenggao finiteelementanalysisofcrackpropagationinpreciseseparationprocessoftubingeccentricloadingfatiguefracture
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