TY - JOUR
T1 - Necking instabilities in elastoviscoplastic materials
AU - Moriel, Avraham
AU - Bouchbinder, Eran
N1 - We acknowledge support from the Richard F. Goodman Yale/Weizmann Exchange Program, the William Z. and Eda Bess Novick Young Scientist Fund, and the Harold Perlman Family. We are grateful to Y. Bar-Sinai for his valuable help in developing the numerical tools, to E. A. Brener for fruitful discussions and a critical reading of the manuscript, and to C. H. Rycroft and J. Schroers for their comments on the final version of the manuscript.
PY - 2018/7
Y1 - 2018/7
N2 - Necking instabilities, in which tensile (extensional) deformation localizes into a small spatial region, are generic failure modes in elastoviscoplastic materials. Materials in this very broad class - including amorphous, crystalline, polycrystalline, and other materials - feature a predominantly elastic response at small stresses, plasticity onset at a rather well-defined yield stress, and rate dependence. Necking instabilities involve a unique coupling between the system's geometry and its constitutive behavior. We consider generic elastoviscoplastic constitutive relations involving an internal-state field, which represents the structural evolution of the material during plastic deformation, and study necking in the long-wavelength approximation (sometimes termed the lubrication or slender-bar approximation). We derive a general expression for the largest time-dependent eigenvalue in an approximate WKB-like linear stability analysis, highlighting various basic physical effects involved in necking. This expression is then used to propose criteria for the onset of necking and more importantly for the emergence of strong localization. Applications to strain-softening amorphous plasticity, in the framework of the shear-transformation-zone model, and to strain-hardening crystalline/polycrystalline plasticity, in the framework of the Kocks-Mecking model, are presented. These quantitative analyses of widely different material models support the theoretical predictions, most notably for the strong localization during necking.
AB - Necking instabilities, in which tensile (extensional) deformation localizes into a small spatial region, are generic failure modes in elastoviscoplastic materials. Materials in this very broad class - including amorphous, crystalline, polycrystalline, and other materials - feature a predominantly elastic response at small stresses, plasticity onset at a rather well-defined yield stress, and rate dependence. Necking instabilities involve a unique coupling between the system's geometry and its constitutive behavior. We consider generic elastoviscoplastic constitutive relations involving an internal-state field, which represents the structural evolution of the material during plastic deformation, and study necking in the long-wavelength approximation (sometimes termed the lubrication or slender-bar approximation). We derive a general expression for the largest time-dependent eigenvalue in an approximate WKB-like linear stability analysis, highlighting various basic physical effects involved in necking. This expression is then used to propose criteria for the onset of necking and more importantly for the emergence of strong localization. Applications to strain-softening amorphous plasticity, in the framework of the shear-transformation-zone model, and to strain-hardening crystalline/polycrystalline plasticity, in the framework of the Kocks-Mecking model, are presented. These quantitative analyses of widely different material models support the theoretical predictions, most notably for the strong localization during necking.
U2 - 10.1103/PhysRevMaterials.2.073602
DO - 10.1103/PhysRevMaterials.2.073602
M3 - مقالة
SN - 1098-0121
VL - 2
JO - Physical Review Materials
JF - Physical Review Materials
IS - 7
M1 - 073602
ER -