skip to main content
OSTI.GOV title logo U.S. Department of Energy
Office of Scientific and Technical Information

Title: A computationally efficient approach for predicting toughness enhancement in ceramic composites with tailored inclusion arrangements

Journal Article · · International Journal of Fracture
 [1];  [2]; ORCiD logo [2];  [3];  [4]
  1. Missouri Univ. of Science and Technology, Rolla, MO (United States). Dept. of Mechanical and Aerospace Engineering
  2. Missouri Univ. of Science and Technology, Rolla, MO (United States). Dept. of Civil, Architectural and Environmental Engineering
  3. Missouri Univ. of Science and Technology, Rolla, MO (United States). Dept. of Materials Science and Engineering
  4. Lawrence Livermore National Lab. (LLNL), Livermore, CA (United States). Computational Engineering Division

Advanced manufacturing techniques such as extrusion-based methods have enabled the fabrication of ceramic composites with ordered inclusion phases (i.e. the size and position of the inclusion can be precisely controlled) to improve their overall strength and toughness. Conventional theories, simulation approaches, and experimental methods for analyzing fracture in composites with randomly dispersed inclusion phases (resulting in homogeneous, isotropic effective properties) become inadequate at understanding and designing composites with ordered inclusions for enhancing effective properties such as toughness. In addition, existing methods for analyzing fracture in composites can be computationally expensive and pose challenges in accurately capturing experimentally observed fracture growth. For example, extended finite element and phase-field methods are computationally expensive in evaluating the large design space of possible inclusion arrangements enabled by the new manufacturing techniques. In this work, a closed-form analytical model for the mixed-mode stress intensity factor in a composite with selected inclusion arrangements is presented, which expedites the analysis for various composite designs. Moreover, the fracture initiation calculation is adapted to approximate crack propagation with computational efficiency. The accuracy of this model for predicting fracture initiation is validated by linear elastic fracture mechanics analysis using the finite element method. The prediction of fracture propagation is validated using a phase-field model, as well as a 4-point bending experiment. Finally, the model is applied to analyze three different composite inclusion arrangements to study the effect of various material combinations and geometries on the overall toughness of the composite; a complete sampling of (and optimization) over the entire design space, however, is beyond the scope of this work. The relative increase in crack length (compared to a homogeneous material) is used as a metric to compare the relative toughness of three different composite designs. Within these designs, using the fast-running approximate method, the effect of the ratio of inclusion radius to inclusion spacing, and the elastic mismatch on the resulting crack length are compared to determine the composite arrangements that result in the greatest toughness enhancement for selected material properties. In particular, a multi-phase cubic array resulted in the greatest toughness enhancement of the designs considered.

Research Organization:
Lawrence Livermore National Laboratory (LLNL), Livermore, CA (United States)
Sponsoring Organization:
USDOE National Nuclear Security Administration (NNSA)
Grant/Contract Number:
AC52-07NA27344
OSTI ID:
1812563
Report Number(s):
LLNL-JRNL-819491; 1022082
Journal Information:
International Journal of Fracture, Vol. 221, Issue 2; ISSN 0376-9429
Publisher:
SpringerCopyright Statement
Country of Publication:
United States
Language:
English

References (33)

Quasicontinuum models of fracture and plasticity journal September 1998
Two- and three-dimensional elastic-plastic stress analysis for a double edge notched tension specimen journal January 1986
The Variational Approach to Fracture journal March 2008
Stress-Induced Microcracking at Second-Phase Inclusions journal March 1981
Mechanical properties and grain orientation evolution of zirconium diboride-zirconium carbide ceramics journal February 2018
Materials become insensitive to flaws at nanoscale: Lessons from nature journal May 2003
A general strength distribution function for brittle materials journal January 1992
Shear, shape and orientation effects in transformation toughening journal January 1986
Crack deflection processes—II. Experiment journal April 1983
Crack-particle interaction in a two-phase composite Part II: crack deflection journal August 1995
Stress intensity factors for a crack in front of an inclusion journal September 1999
Effect of patterned inclusions on the fracture behavior of ceramic composites journal September 2019
Fracture Mechanics book June 2005
Crack–inclusion interaction for mode II crack analyzed by Eshelby equivalent inclusion method journal June 2004
Crack deflection processes—I. Theory journal April 1983
Kinking of a Crack Out of an Interface journal June 1989
Effect of transformation-induced shear strains on crack growth in zirconia-containing ceramics journal July 1994
Microfabrication of Ceramics by Co-extrusion journal January 1998
Thermodynamically consistent phase-field models of fracture: Variational principles and multi-field FE implementations journal August 2010
Calculation of stress fields near inclusions by use of the fracture mechanics weight function journal January 1996
Processing, microstructure, and mechanical properties of zirconium diboride-boron carbide ceramics journal June 2017
The elastic energy-momentum tensor journal November 1975
Coefficient of thermal expansion of particulate composites with ceramic inclusions journal November 2016
Plasticity and toughness in bone journal June 2009
Proof testing of ceramic materials?an analytical basis for failure prediction journal December 1984
The Phenomena of Rupture and Flow in Solids journal January 1921
Intrinsic toughening and stable crack propagation in hexagonal boron nitride journal June 2021
Coefficient of thermal expansion of particulate composites with ceramic inclusions text January 2018
Proof testing of ceramic materials?an analytical basis for failure prediction journal September 1974
Fracture Mechanics journal January 1975
Tailoring the Properties of Ceramic-Based Composites Using Co-Extrusion Processing conference October 2006
Fracture mechanics journal July 1982
Coefficient of thermal expansion of particulate composites with ceramic inclusions text January 2018