Finite element study of the microdroplet test for interfacial shear strength: Effects of geometric parameters for a carbon fibre/epoxy system

被引:13
作者
Zhao, Q. [1 ]
Qian, C. C. [1 ]
Harper, L. T. [1 ]
Warrior, N. A. [1 ]
机构
[1] Univ Nottingham, Fac Engn, Nottingham NG7 2RD, England
基金
英国工程与自然科学研究理事会;
关键词
Interfacial shear strength; interface; cohesive zone; microdroplet test; COHESIVE ZONE MODEL; MICROBOND TEST; FIBER/MATRIX INTERFACE; ENERGY-ABSORPTION; BOND STRENGTH; FIBER SYSTEMS; COMPOSITES; INTERPHASE; RESIN; DAMAGE;
D O I
10.1177/0021998317740943
中图分类号
TB33 [复合材料];
学科分类号
摘要
A 3D finite element model has been developed to identify the main causes of variability in the microdroplet test, which is commonly used to characterise the interfacial shear strength between polymer matrices and single filaments. A more realistic droplet shape and test configuration, including meniscus details and prismatic shear blades, have been modelled for a carbon fibre/epoxy system to simulate a more representative set up than is commonly used in the literature. The interfacial behaviour has been modelled using a cohesive surface contact and fibre breakage has been captured using a maximum stress criterion. A statistical study has been performed to systematically evaluate the influence of key geometrical test parameters on the variability in the measured interfacial shear strength values and the likelihood of fibre breakage. Parameters studied are fibre embedded length, fibre diameter, shear blade radial opening distance and shear blade axial misalignment. Resultsof the studied carbon fibre /epoxy system suggest that fibre embedded length and the combined effects of the shear blade radial distance and the shear blade axial misalignment are the most significant sources of variability for the measured interfacial shear strength. However, fibre embedded length and the shear blade radial distance are the most significant variables contributing to fibre breakage.
引用
收藏
页码:2163 / 2177
页数:15
相关论文
共 47 条
[1]   Finite element evaluation of the microbond test: meniscus effect, interphase region, and vise angle [J].
Ash, JT ;
Cross, WM ;
Svalstad, D ;
Kellar, JJ ;
Kjerengtroen, L .
COMPOSITES SCIENCE AND TECHNOLOGY, 2003, 63 (05) :641-651
[2]  
BLACKKETTER DM, 1993, J COMPOS TECH RES, V15, P136, DOI 10.1520/CTR10364J
[3]  
Bond MD, 2013, THESIS
[4]   The usability of recycled carbon fibres in short fibre thermoplastics: interfacial properties [J].
Burn, D. T. ;
Harper, L. T. ;
Johnson, M. ;
Warrior, N. A. ;
Nagel, U. ;
Yang, L. ;
Thomason, J. .
JOURNAL OF MATERIALS SCIENCE, 2016, 51 (16) :7699-7715
[5]  
Burn D. T., 2016, THESIS
[6]   ACCURATE MEASUREMENT OF CONTACT-ANGLE, PHASE CONTACT AREAS, DROP VOLUME, AND LAPLACE EXCESS PRESSURE IN DROP-ON-FIBER SYSTEMS [J].
CARROLL, BJ .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1976, 57 (03) :488-495
[7]   Micromechanics analysis of Kevlar-29 aramid fiber and epoxy resin microdroplet composite by Micro-Raman spectroscopy [J].
Cen, Hao ;
Kang, Yilan ;
Lei, Zhenkun ;
Qin, Qinghua ;
Qiu, Wei .
COMPOSITE STRUCTURES, 2006, 75 (1-4) :532-538
[8]   Evaluating the silk/epoxy interface by means of the Microbond Test [J].
Craven, JP ;
Cripps, R ;
Viney, C .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2000, 31 (07) :653-660
[9]   Effect of heat treatment on carbon fiber surface properties and fibers/epoxy interfacial adhesion [J].
Dai, Zhishuang ;
Zhang, Baoyan ;
Shi, Fenghui ;
Li, Min ;
Zhang, Zuoguang ;
Gu, Yizhuo .
APPLIED SURFACE SCIENCE, 2011, 257 (20) :8457-8461
[10]   Investigation of the micromechanics of the microbond test [J].
Day, RJ ;
Rodrigez, JVC .
COMPOSITES SCIENCE AND TECHNOLOGY, 1998, 58 (06) :907-914