PSI - Issue 28
Available online at www.sciencedirect.com Available online at www.sciencedirect.com Available online at www.sciencedirect.com
ScienceDirect
Procedia Structural Integrity 28 (2020) 2065–2071 Structural Integrity Procedia 00 (2020) 000–000 Structural Integrity Procedia 00 (2020) 000–000
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© 2020 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (https://creativecommons.org/licenses/by-nc-nd/4.0) Peer-review under responsibility of the European Structural Integrity Society (ESIS) ExCo © 2020 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (http: // creativecommons.org / licenses / by-nc-nd / 4.0 / ) P r-review under responsibility of the European Structural Integrity Society (ESIS) ExCo. Keywords: Thin foil; Metal; Buckling; Necking; Fracture; Elastic-Plastic; Cohesive zone. The remote load at buckling and at failure is determined and given on dimensionless form, which leaves Poisson’s ratio and the ratio of buckling stress versus failure stress as the only free parameters. Two scales of yielding, the load at the ASTM-limit for linear fracture mechanics and twice that load, including the purely elastic result are investigated. Poisson’s ratio is varied in the interval from -0.9 to 0.5 for the elastic case and from -0.6 to 0.5 for the plastic cases. The lower theoretical limit -1 for Poisson’s ratio was not obtained because of numerical di ffi culties. The results rules out the possibility of failure before buckling for any reasonable construction material. © 2020 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (http: // creativecommons.org / licenses / by-nc-nd / 4.0 / ) Peer-review under responsibility of the European Structural Integrity Society (ESIS) ExCo. Keywords: Thin foil; Metal; Buckling; Necking; Fracture; Elastic-Plastic; Cohesive zone. 1st Virtual European Conference on Fracture On buckling and fracture of thin elastic-plastic foils Per Ståhle a,b, ∗ , Mahdieh Shahmardani a,c , Sharon Kao-Walter a,d a Faculty of Eng., Blekinge Institute of Technology, Karlskrona, Sweden b Div. of Solid Mechanics, Lund University, Lund, Sweden c Interdisciplinary C. for Adv. Materials Simulation (ICAMS), Ruhr-Universita¨ t Bochum, Universita¨ tsstr. 150, 44801 Bochum, Germany d College of Engineering, Shanghai Polytechnic University, Shanghai, China Abstract The interaction of simultaneous fracture and buckling constitutes problems at manufacturing and handling of thin foils. Buckling occurs as an additional event that complicates the prediction of the critical load that may lead to fracture. For most su ffi ciently thin foils the plastic slip occurs through the foil thickness which leads to reduction of the cross section width until the foil fails. The process leads to a necking type of deformation which confines itself to a narrow region that extends ahead of the crack tip. The width of the region is close to the foil thickness. At failure the width of the necking region is twice the foil thickness. In the present investigation the crack is assumed to be small compared to the foil geometry and the foil is assumed to be small compared with the crack length. Because of the latter the necking type of plastic region is modelled as a cohesive zone. Since the fracture toughness is not involved in the failure the only two relevant length parameters are crack length and foil thickness. The material model is defined by the elastic modulus, Poisson’s ratio and yield stress. The remote load at buckling and at failure is determined and given on dimensionless form, which leaves Poisson’s ratio and the ratio of buckling stress versus failure stress as the only free parameters. Two scales of yielding, the load at the ASTM-limit for linear fracture mechanics and twice that load, including the purely elastic result are investigated. Poisson’s ratio is varied in the interval from -0.9 to 0.5 for the elastic case and from -0.6 to 0.5 for the plastic cases. The lower theoretical limit -1 for Poisson’s ratio was not obtained because of numerical di ffi culties. The results rules out the possibility of failure before buckling for any reasonable construction material. 1st Virtual European Conference on Fracture On buckling and fracture of thin elastic-plastic foils Per Ståhle a,b, ∗ , Mahdieh Shahmardani a,c , Sharon Kao-Walter a,d a Faculty of Eng., Blekinge Institute of Technology, Karlskrona, Sweden b Div. of Solid Mechanics, Lund University, Lund, Sweden c Interdisciplinary C. for Adv. Materials Simulation (ICAMS), Ruhr-Universita¨ t Bochum, Universita¨ tsstr. 150, 44801 Bochum, Germany d College of Engineering, Shanghai Polytechnic University, Shanghai, China Abstract The interaction of simultaneous fracture and buckling constitutes problems at manufacturing and handling of thin foils. Buckling occurs as an additional event that complicates the prediction of the critical load that may lead to fracture. For most su ffi ciently thin foils the plastic slip occurs through the foil thickness which leads to reduction of the cross section width until the foil fails. The process leads to a necking type of deformation which confines itself to a narrow region that extends ahead of the crack tip. The width of the region is close to the foil thickness. At failure the width of the necking region is twice the foil thickness. In the present investigation the crack is assumed to be small compared to the foil geometry and the foil is assumed to be small compared with the crack length. Because of the latter the necking type of plastic region is modelled as a cohesive zone. Since the fracture toughness is not involved in the failure the only two relevant length parameters are crack length and foil thickness. The material model is defined by the elastic modulus, Poisson’s ratio and yield stress.
1. Introduction 1. Introduction
The focus of this pilot study is on sub-millimetre thickness foils of elastic plastic materials. Single metal or polymer laminated metal foils is an important group of products that come in a variety of combinations, one-sided, two-sided, The focus of this pilot study is on sub-millimetre thickness foils of elastic plastic materials. Single metal or polymer laminated metal foils is an important group of products that come in a variety of combinations, one-sided, two-sided,
∗ Per Ståhle. Tel.: + 46-070-553-9492. E-mail address: per.stahle@solid.lth.se ∗ Per Ståhle. Tel.: + 46-070-553-9492. E-mail address: per.stahle@solid.lth.se
2452-3216 © 2020 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (https://creativecommons.org/licenses/by-nc-nd/4.0) Peer-review under responsibility of the European Structural Integrity Society (ESIS) ExCo 10.1016/j.prostr.2020.11.030 2210-7843 © 2020 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (http: // creativecommons.org / licenses / by-nc-nd / 4.0 / ) Peer-review under responsibility of the European Structural Integrity Society (ESIS) ExCo. 2210-7843 © 2020 The Authors. Published by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (http: // creativecommons.org / licenses / by-nc-nd / 4.0 / ) Peer-review under responsibility of the European Structural Integrity Society (ESIS) ExCo.
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