Mechanical Characterization of the Elastoplastic Response of a C11000-H2 Copper Sheet

This work presents an elastoplastic characterization of a rolled C11000-H2 99.90% pure copper sheet considering the orthotropic non-associated Hill-48 criterion together with a modified Voce hardening law. One of the main features of this material is the necking formation at small strains levels cau...

Full description

Bibliographic Details
Main Authors: Matías Pacheco, Claudio García-Herrera, Diego Celentano, Jean-Philippe Ponthot
Format: Article
Language:English
Published: MDPI AG 2020-11-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/13/22/5193
id doaj-b0c0644d163542dab2e1dc4e806e7cd9
record_format Article
spelling doaj-b0c0644d163542dab2e1dc4e806e7cd92020-11-25T04:08:22ZengMDPI AGMaterials1996-19442020-11-01135193519310.3390/ma13225193Mechanical Characterization of the Elastoplastic Response of a C11000-H2 Copper SheetMatías Pacheco0Claudio García-Herrera1Diego Celentano2Jean-Philippe Ponthot3Departamento de Ingeniería Mecánica, Universidad de Santiago de Chile, USACH, Av. Bernardo O’Higgins 3363, Santiago de Chile 9170124, ChileDepartamento de Ingeniería Mecánica, Universidad de Santiago de Chile, USACH, Av. Bernardo O’Higgins 3363, Santiago de Chile 9170124, ChileDepartamento de Ingeniería Mecánica y Metalúrgica, Pontificia Universidad Católica de Chile, PUC, Av. Vicuña Mackenna 4860, Santiago de Chile 7820436, ChileDepartment of Aerospace and Mechanical Engineering, University of Liège, Allée de la Découverte 13A, B-4000 Liège, BelgiumThis work presents an elastoplastic characterization of a rolled C11000-H2 99.90% pure copper sheet considering the orthotropic non-associated Hill-48 criterion together with a modified Voce hardening law. One of the main features of this material is the necking formation at small strains levels causing the early development of non-homogeneous stress and strain patterns in the tested samples. Due to this fact, a robust inverse calibration approach, based on an experimental–analytical–numerical iterative predictor–corrector methodology, is proposed to obtain the constitutive material parameters. This fitting procedure, which uses tensile test measurements where the strains are obtained via digital image correlation (DIC), consists of three steps aimed at, respectively, determining (a) the parameters of the hardening model, (b) a first prediction of the Hill-48 parameters based on the Lankford coefficients and, (c) corrected parameters of the yield and flow potential functions that minimize the experimental–numerical error of the material response. Finally, this study shows that the mechanical characterization carried out in this context is capable of adequately predicting the behavior of the material in the bulge test.https://www.mdpi.com/1996-1944/13/22/5193mechanical characterizationcopper sheetnon-associated Hill-48 criteriontensile testbulge test
collection DOAJ
language English
format Article
sources DOAJ
author Matías Pacheco
Claudio García-Herrera
Diego Celentano
Jean-Philippe Ponthot
spellingShingle Matías Pacheco
Claudio García-Herrera
Diego Celentano
Jean-Philippe Ponthot
Mechanical Characterization of the Elastoplastic Response of a C11000-H2 Copper Sheet
Materials
mechanical characterization
copper sheet
non-associated Hill-48 criterion
tensile test
bulge test
author_facet Matías Pacheco
Claudio García-Herrera
Diego Celentano
Jean-Philippe Ponthot
author_sort Matías Pacheco
title Mechanical Characterization of the Elastoplastic Response of a C11000-H2 Copper Sheet
title_short Mechanical Characterization of the Elastoplastic Response of a C11000-H2 Copper Sheet
title_full Mechanical Characterization of the Elastoplastic Response of a C11000-H2 Copper Sheet
title_fullStr Mechanical Characterization of the Elastoplastic Response of a C11000-H2 Copper Sheet
title_full_unstemmed Mechanical Characterization of the Elastoplastic Response of a C11000-H2 Copper Sheet
title_sort mechanical characterization of the elastoplastic response of a c11000-h2 copper sheet
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2020-11-01
description This work presents an elastoplastic characterization of a rolled C11000-H2 99.90% pure copper sheet considering the orthotropic non-associated Hill-48 criterion together with a modified Voce hardening law. One of the main features of this material is the necking formation at small strains levels causing the early development of non-homogeneous stress and strain patterns in the tested samples. Due to this fact, a robust inverse calibration approach, based on an experimental–analytical–numerical iterative predictor–corrector methodology, is proposed to obtain the constitutive material parameters. This fitting procedure, which uses tensile test measurements where the strains are obtained via digital image correlation (DIC), consists of three steps aimed at, respectively, determining (a) the parameters of the hardening model, (b) a first prediction of the Hill-48 parameters based on the Lankford coefficients and, (c) corrected parameters of the yield and flow potential functions that minimize the experimental–numerical error of the material response. Finally, this study shows that the mechanical characterization carried out in this context is capable of adequately predicting the behavior of the material in the bulge test.
topic mechanical characterization
copper sheet
non-associated Hill-48 criterion
tensile test
bulge test
url https://www.mdpi.com/1996-1944/13/22/5193
work_keys_str_mv AT matiaspacheco mechanicalcharacterizationoftheelastoplasticresponseofac11000h2coppersheet
AT claudiogarciaherrera mechanicalcharacterizationoftheelastoplasticresponseofac11000h2coppersheet
AT diegocelentano mechanicalcharacterizationoftheelastoplasticresponseofac11000h2coppersheet
AT jeanphilippeponthot mechanicalcharacterizationoftheelastoplasticresponseofac11000h2coppersheet
_version_ 1724426192484827136