On Compressive Brittle Fragmentation

被引:37
作者
Hogan, James David [1 ,2 ]
Farbaniec, Lukasz [2 ]
Daphalapurkar, Nitin
Ramesh, K. T. [2 ,3 ]
机构
[1] Univ Alberta, Dept Mech Engn, Edmonton, AB T6G 2R3, Canada
[2] Johns Hopkins Univ, Hopkins Extreme Mat Inst, Baltimore, MD 21218 USA
[3] Johns Hopkins Univ, Dept Mech Engn, Baltimore, MD 21218 USA
关键词
compressive fragmentation; brittle failure; experimental mechanics; advanced ceramics; PRESSED SILICON-CARBIDE; DYNAMIC FRAGMENTATION; FAILURE; STRENGTH; CERAMICS; FRACTURE; SOLIDS; DISTRIBUTIONS; DEFECTS; MODELS;
D O I
10.1111/jace.14171
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Dynamic brittle fragmentation is typically described using analytical and computational approaches for tensile stress-states. However, most fragmentation applications ( e.g., impact, blast) involve very large initial compressive stresses and deformations. In this study, the compressive fragmentation of brittle materials is investigated experimentally across a range of materials: silicon carbide, boron carbide, spinel, basalt and a stony meteorite. Analysis of our experimental results suggests that there exists two different regimes in the fragment size distributions, based on two brittle fragmentation mechanisms. The first is a mechanism that produces larger fragments and is associated with the structural failure of the sample being tested. This mechanism is influenced by the loading conditions ( rate, stress state) and sample geometry. The second fragmentation mechanism produces comparatively smaller fragments and arises from the coalescence of fractures initiating and coalescence between defects in regions of large stresses and contact forces ( e. g., between two fractured surfaces from the larger fragments). A framework is developed for comparing experimental compressive fragmentation results with tensile fragmentation theories. The compressive experimental results are shown to be adequately described by the theories using the new framework.
引用
收藏
页码:2159 / 2169
页数:11
相关论文
共 51 条
[31]   Dynamic fragmentation of ceramics, signature of defects and scaling of fragment sizes [J].
Levy, S. ;
Molinari, J. F. .
JOURNAL OF THE MECHANICS AND PHYSICS OF SOLIDS, 2010, 58 (01) :12-26
[32]   Random fracture of a brittle solid. [J].
Lienau, CC .
JOURNAL OF THE FRANKLIN INSTITUTE, 1936, 221 :485-494
[33]   Criterion for initiation of cracks under mixed-mode I plus III loading [J].
Lin, Bisen ;
Mear, M. E. ;
Ravi-Chandar, K. .
INTERNATIONAL JOURNAL OF FRACTURE, 2010, 165 (02) :175-188
[34]   Formation of asteroid families by catastrophic disruption: Simulations with fragmentation and gravitational reaccumulation [J].
Michel, P ;
Tanga, P ;
Benz, W ;
Richardson, DC .
ICARUS, 2002, 160 (01) :10-23
[35]   Fractal dimensions of cement-based composites after mechanical comminution [J].
Momber, A. W. .
INTERNATIONAL JOURNAL OF MINERAL PROCESSING, 2012, 110 :82-89
[36]  
Mott N, 1947, P ROYAL SOC
[37]  
Mott N, 1943, AC4035 UK MIN SUPPL
[38]  
Mott N. F., 1943, AC3348 UK MIN SUPPL, VAC3348
[39]   COMPRESSION-INDUCED NONPLANAR CRACK EXTENSION WITH APPLICATION TO SPLITTING, EXFOLIATION, AND ROCKBURST [J].
NEMATNASSER, S ;
HORII, H .
JOURNAL OF GEOPHYSICAL RESEARCH, 1982, 87 (NB8) :6805-6821
[40]   A review of mechanisms and models for dynamic failure, strength, and fragmentation [J].
Ramesh, K. T. ;
Hogan, James D. ;
Kimberley, Jamie ;
Stickle, Angela .
PLANETARY AND SPACE SCIENCE, 2015, 107 :10-23