18 Investigation of Flexural Progressive …
211
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orthogonal woven composite materials subject to quasi-static and high strain rate compressions.
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Compos. 37, 2478–2493 (2016)
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Mater. 52, 1139–1154 (2018)
11. C. Zhang, J.L. Curiel-Sosa, Q.B. Tinh, Meso-scale progressive damage modeling and life
prediction of 3D braided composites under fatigue tension loading. Compos. Struct. 201, 62–71
(2018)
12. B. Wang, G.D. Fang, S. Liu, Progressive damage analysis of 3D braided composites using
FFT-based method. Compos. Struct. 192, 255–263 (2018)
13. S.V. Lomov, A.E. Bogdanovich, D.S. Ivanov, D. Mungalov, M. Karahan, I. Verpoest, A comparative study of tensile properties of non-crimp 3D orthogonal weave and multi-layer plain weave
E-glass composites. Part 1: Materials, methods and principal results. Compos. Part A: Appl.
Sci. Manuf. 40, 1134–1143 (2009)
14. A.E. Bogdanovich, M. Karahan, S.V. Lomov et al., Quasi-static tensile behavior and damage of
carbon/epoxy composite reinforced with 3D non-crimp orthogonal woven fabric. Mech. Mater.
62, 14–31 (2013)
15. W.F. Hao, Z.R. Yuan, C. Tang et al., Acoustic emission monitoring of damage progression in
3D braiding composite shafts during torsional tests. Compos. Struct. 208, 141–149 (2018)
16. P. Lecomte-Grosbras, B. Paluch, M. Brieu, Characterization of free edge effects: influence of
mechanical properties, microstructure and structure effects. J. Compos. Mater. 47, 2823–2834
(2014)
17. L.J. Dong, Z. Wei, X.B. Ling et al., Collaborative localization method using analytical and
iterative solutions for microseismic/acoustic emission sources in the rockmass structure for
underground mining. Eng. Fracture Mech. 210, 95–112 (2019)
18. L.J. Dong, Q.C. Hu, X.J. Tong et al., Velocity-free MS/AE source location method for threedimensional hole-containing structures. Engineering, Available online (2020)
19. W. Zhou, W.Z. Zhao, Y.N. Zhang et al., Cluster analysis of acoustic emission signals and
deformation measurement for delaminated glass fiber epoxy composites. Compos. Struct. 195,
349–358 (2018)
211
References
1. Z.Y. Tian., Y. Yan, J. Li et al., Progressive damage and failure analysis of three-dimensional
braided composites subjected to biaxial tension and compression. Compos. Struct. 185, 496–
507 (2018)
2. D.T. Zhang, L. Chen, Y. Sun et al., Meso-scale progressive damage of 3D five-directional
braided composites under transverse compression. J. Compos. Mater. 50(24), 3345–3361
(2016)
3. P. Turner, T. Liu, X. Zeng, Collapse of 3D orthogonal woven carbon fibre composites under
in-plane tension/compression and out-of-plane bending. Compos. Struct. 142, 286–297 (2016)
4. R.Q. Wang, L. Zhang, D.Y. Hu et al., Progressive damage simulation in 3D four-directional
braided composites considering the jamming-action-induced yarn deformation. Compos.
Struct. 178, 330–340 (2017)
5. H. Ahn, W.R. Yu, Mechanical analysis of 3D braided and woven composites using fiber-based
continuum analysis. Compos. Struct. 160, 1105–1118 (2017)
6. G. Liu, L. Zhang, L. C. Guo, et al. Multi-scale progressive failure simulation of 3D woven
composites under uniaxial tension. Compos. Struct. 208, 233–243 (2019)
7. Y.M. Wan, B.Z. Sun, B.H. Gu. Multi-scale structure modeling of damage behaviors of 3D
orthogonal woven composite materials subject to quasi-static and high strain rate compressions.
Mech. Mater. 94, 1–25 (2016)
8. J.Y. Liu, J.M. Zhou, Y. Wang, J. Mei, J.L. Liu, High temperature compressive behavior of
three-dimensional five-directional braided composites. Compos. Struct. 226, 111196 (2018)
9. L. Hu, Z.G. Liu, Y.B, Wang, Experiments and progressive damage analyses of threedimensional full five-directional braided composites under three-point bending. Polym.
Compos. 37, 2478–2493 (2016)
10. Y.W. Ouyang, B.Z. Sun, B.H. Gu, Finite element analyses on bending fatigue of threedimensional five-directional braided composite T-beam with mixed unit-cell model. J. Compos.
Mater. 52, 1139–1154 (2018)
11. C. Zhang, J.L. Curiel-Sosa, Q.B. Tinh, Meso-scale progressive damage modeling and life
prediction of 3D braided composites under fatigue tension loading. Compos. Struct. 201, 62–71
(2018)
12. B. Wang, G.D. Fang, S. Liu, Progressive damage analysis of 3D braided composites using
FFT-based method. Compos. Struct. 192, 255–263 (2018)
13. S.V. Lomov, A.E. Bogdanovich, D.S. Ivanov, D. Mungalov, M. Karahan, I. Verpoest, A comparative study of tensile properties of non-crimp 3D orthogonal weave and multi-layer plain weave
E-glass composites. Part 1: Materials, methods and principal results. Compos. Part A: Appl.
Sci. Manuf. 40, 1134–1143 (2009)
14. A.E. Bogdanovich, M. Karahan, S.V. Lomov et al., Quasi-static tensile behavior and damage of
carbon/epoxy composite reinforced with 3D non-crimp orthogonal woven fabric. Mech. Mater.
62, 14–31 (2013)
15. W.F. Hao, Z.R. Yuan, C. Tang et al., Acoustic emission monitoring of damage progression in
3D braiding composite shafts during torsional tests. Compos. Struct. 208, 141–149 (2018)
16. P. Lecomte-Grosbras, B. Paluch, M. Brieu, Characterization of free edge effects: influence of
mechanical properties, microstructure and structure effects. J. Compos. Mater. 47, 2823–2834
(2014)
17. L.J. Dong, Z. Wei, X.B. Ling et al., Collaborative localization method using analytical and
iterative solutions for microseismic/acoustic emission sources in the rockmass structure for
underground mining. Eng. Fracture Mech. 210, 95–112 (2019)
18. L.J. Dong, Q.C. Hu, X.J. Tong et al., Velocity-free MS/AE source location method for threedimensional hole-containing structures. Engineering, Available online (2020)
19. W. Zhou, W.Z. Zhao, Y.N. Zhang et al., Cluster analysis of acoustic emission signals and
deformation measurement for delaminated glass fiber epoxy composites. Compos. Struct. 195,
349–358 (2018)
