Literature DB >> 33889053

A Combined Experimental and Computational Analysis of Failure Mechanisms in Open-Hole Cross-ply Laminates under Flexural Loading.

Qingping Sun1,2, Guowei Zhou3, Haibin Tang1, Zhangxing Chen4, Joel Fenner5, Zhaoxu Meng6, Mukesh Jain2, Xuming Su4.   

Abstract

In this study, integrated experimental tests and computational modeling are proposed to investigate the failure mechanisms of open-hole cross-ply carbon fiber reinforced polymer (CFRP) laminated composites. In particular, we propose two effective methods, which include width-tapered double cantilever beam (WTDCB) and fixed-ratio mixed-mode end load split (FRMMELS) tests, to obtain the experimental data more reliably. We then calibrate the traction-separation laws of cohesive zone model (CZM) used among laminas of the composites by leveraging these two methods. The experimental results of fracture energy, i.e. G Ic and G Tc , obtained from WTDCB and FRMMELS tests are generally insensitive to the crack length thus requiring no effort to accurately measure the crack tip. Moreover, FRMMELS sample contains a fixed mixed-mode ratio of G IIc /G Tc depending on the width taper ratio. Examining comparisons between experimental results of FRMMELS tests and failure surface of B-K failure criterion predicted from a curve fitting, good agreement between the predictions and experimental data has been found, indicating that FRMMELS tests are an effective method to determine mixed-mode fracture criterion. In addition, a coupled experimental-computational modeling of WTDCB, edge notched flexure, and FRMMELS tests are adopted to calibrate and validate the interfacial strengths. Finally, failure mechanisms of open-hole cross-ply CFRP laminates under flexural loading have been studied systematically using experimental and multi-scale computational analyses based on the developed CZM model. The initiation and propagation of delamination, the failure of laminated layers as well as load-displacement curves predicted from computational analyses are in good agreement with what we have observed experimentally.

Entities:  

Keywords:  Carbon fiber reinforced polymer laminates; Cohesive zone model; Computational modeling; Delamination; Open-hole

Year:  2021        PMID: 33889053      PMCID: PMC8057715          DOI: 10.1016/j.compositesb.2021.108803

Source DB:  PubMed          Journal:  Compos B Eng        ISSN: 1359-8368            Impact factor:   11.322


  4 in total

1.  Experimental Investigation on the Effects of Fabric Architectures on Mechanical and Damage Behaviors of Carbon/Epoxy Woven Composites.

Authors:  Guowei Zhou; Qingping Sun; Zhaoxu Meng; Dayong Li; Yinghong Peng; Danielle Zeng; Xuming Su
Journal:  Compos Struct       Date:  2020-11-27       Impact factor: 5.407

2.  An Integrated Computational Materials Engineering Framework to Analyze the Failure Behaviors of Carbon Fiber Reinforced Polymer Composites for Lightweight Vehicle Applications.

Authors:  Qingping Sun; Guowei Zhou; Zhaoxu Meng; Mukesh Jain; Xuming Su
Journal:  Compos Sci Technol       Date:  2020-11-18       Impact factor: 8.528

3.  Meso-scale Modeling and Damage Analysis of Carbon/Epoxy Woven Fabric Composite under In-plane Tension and Compression Loadings.

Authors:  Guowei Zhou; Qingping Sun; Dayong Li; Zhaoxu Meng; Yinghong Peng; Zhangxing Chen; Danielle Zeng; Xuming Su
Journal:  Int J Mech Sci       Date:  2020-08-26       Impact factor: 5.329

4.  In-situ Effect in Cross-ply Laminates under Various Loading Conditions Analyzed with Hybrid Macro/Micro-scale Computational Models.

Authors:  Qingping Sun; Guowei Zhou; Haibin Tang; Zhaoxu Meng; Mukesh Jain; Xuming Su; Weijian Han
Journal:  Compos Struct       Date:  2021-01-19       Impact factor: 5.407

  4 in total

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