Published September 2011 | Version v1
Journal article

Finite element analysis of an atomistically derived cohesive model for brittle fracture

  • 1. The George W. Woodruff School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30332 (United States)
  • 2. Mechanics of Materials Department, Sandia Natonal Laboratories, Livermore, CA 94550 (United States)

Description

In order to apply information from molecular dynamics (MD) simulations in problems governed by engineering length and time scales, a coarse graining methodology must be used. In previous work by Zhou et al (2009 Acta Mater. 57 4671–86), a traction-separation cohesive model was developed using results from MD simulations with atomistic-to-continuum measures of stress and displacement. Here, we implement this cohesive model within a combined finite element/cohesive surface element framework (referred to as a finite element approach or FEA), and examine the ability for the atomistically informed FEA to directly reproduce results from MD. We find that FEA shows close agreement of both stress and crack opening displacement profiles at the cohesive interface, although some differences do exist that can be attributed to the stochastic nature of finite temperature MD. The FEA methodology is then used to study slower loading rates that are computationally expensive for MD. We find that the crack growth process initially exhibits a rate-independent relationship between crack length and boundary displacement, followed by a rate-dependent regime where, at a given amount of boundary displacement, a lower applied strain rate produces a longer crack length. Our method is also extended to larger length scales by simulating a compact tension fracture-mechanics specimen with sub-micrometer dimensions. Such a simulation shows a computational speedup of approximately four orders of magnitude over conventional atomistic simulation, while exhibiting the expected fracture-mechanics response. Finally, differences between FEA and MD are explored with respect to ensemble and temperature effects in MD, and their impact on the cohesive model and crack growth behavior. These results enable us to make several recommendations to improve the methodology used to derive cohesive laws from MD simulations. In light of this work, which has critical implications for efforts to derive continuum laws from MD simulations, it is shown care must be taken when using a similar approach, and effects of ensemble, temperature and strain rate must be considered

Availability note (English)

Available from http://dx.doi.org/10.1088/0965-0393/19/6/065007

Additional details

Identifiers

DOI
10.1088/0965-0393/19/6/065007;
PII
S0965-0393(11)73267-3;

Publishing Information

Journal Title
Modelling and Simulation in Materials Science and Engineering
Journal Volume
19
Journal Issue
6
Journal Page Range
[18 p.]
ISSN
0965-0393

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
45006311
Subject category
S36: MATERIALS SCIENCE;
Descriptors DEI
CRACK PROPAGATION; CRACKS; FINITE ELEMENT METHOD; FRACTURE MECHANICS; FRACTURES; INTERFACES; MOLECULAR DYNAMICS METHOD; SIMULATION; STOCHASTIC PROCESSES; STRAIN RATE; STRESSES; SURFACES; TEMPERATURE DEPENDENCE
Descriptors DEC
CALCULATION METHODS; FAILURES; MATHEMATICAL SOLUTIONS; MECHANICS; NUMERICAL SOLUTION