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http://dx.doi.org/10.5139/JKSAS.2019.47.4.256

Progressive Damage Analysis of Plain Weave Fabric CFRP Orthogonal Grid Shell Under Bending Load  

Lim, Sung June (Department of Weapon System Engineering, University of Science and Technology)
Baek, Sang Min (Agency for Defense Development)
Kim, Min Sung (Agency for Defense Development)
Park, Min Young (Agency for Defense Development)
Park, Chan Yik (Department of Weapon System Engineering, University of Science and Technology)
Publication Information
Journal of the Korean Society for Aeronautical & Space Sciences / v.47, no.4, 2019 , pp. 256-265 More about this Journal
Abstract
In this paper, the progressive damage of an orthogonal grid shell fabricated with plain weave fabric CFRP under bending load was investigated. The orthogonal grids were cured with the bottom composite shell. Progressive damage analysis of an orthogonal grid shell under bending was performed using nonlinear finite element method with Hashin-Rotem failure criterion and Matzenmiller-Lubliner-Taylor(MLT) model. In addition, the three - point bending test for the structure was carried out and the test results were compared with the analysis results. The comparison results of the strain and displacement agreed well. The damage area estimated by the progressive damage analysis were compared with the visual inspection and ultrasonic non-destructive inspection.
Keywords
Orthogonal grid shell; 3-Point Bending Test; Plain weave fabric composite; Progressive Damage Analysis;
Citations & Related Records
Times Cited By KSCI : 2  (Citation Analysis)
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1 Nayak, N. V., "Composite Materials in Aerospace Applications," International Journal of Scientific and Research Publications, Vol. 4, Issue 9, 2014.
2 Harris, C. E., Starnes, J. H., and Shuart, M. J., "Design and Manufacturing of Aerospace Composite Structures, State-of-the-Art Assessment," Journal of Aircraft, Vol. 39, No. 4, 2002, pp.545-560.   DOI
3 Huybrechts, S., Hahn, S., and Meink, T., "Grid stiffened structures - a survey of fabrication, analysis and design methods," Proceedings of The 12th International Conference on Composite Materials, 1999.
4 Han, D., and Tsai, S. W., "Interlocked Composite Grids Design and Manufacturing," Journal of Composite Materials, Vol. 37, No. 4, 2003, pp.287-316.   DOI
5 Hashin, Z., and Rotem, A., "A fatigue failure criterion for fiber-reinforced materials," Journal of Composite Materials, 1973, pp.448-464.
6 Hashin, Z., "Failure Criteria for Unidirectional Fiber Composites," Journal of Applied Mechanics, 1980, pp.329-334.
7 Chang, F. K., and Chang, K. Y., "A progressive Damage Model for Laminated Composites Containing Stress Concentrations," Journal of Composite Materials, Vol. 21, 1987, pp.834-855.   DOI
8 Barbero, E. J., Cosso, F. A., Roman, R., and Weadon, T. L., "Determination of Material Parameters for Abaqus Progressive Damage Analysis of E-Glass Epoxy Laminates," Composite Part B, Vol. 46, 2013, pp.211-220.   DOI
9 Xu, S., and Chen, P. H., "Prediction of low velocity impact damage in carbon/epoxy laminates," Proceedings of 7th Asian-Pacific Conference on Aerospace Technology and Science(7th APCATS 2013), 2013, pp.489-496.
10 Wang, Y., Zhu, S., Qi, J., and Xiao, J., "Development of a Finite Element Model for Progressive Damage Analysis of Composite Laminates Subjected to Low Velocity Impact," Polymers & Polymer Composites, Vol. 22, No. 1, 2014, pp.73-78.   DOI
11 Liu, Y., Zwingmann, B., and Schlaich, M., "Nonlinear Progressive Damage Analysis of Notched or Bolted Fibre-Reinforced Polymer (FRP) Laminates Based on a Three-Dimensional Strain Failure Criterion," Polymers, 2014, pp.949-976.
12 Abaqus Analysis User's Manual, Abaqus 6.14, DS Simulia.
13 El-Sisi, A. E. A., El-Emam, H. M., Salim, H. A., and Sallam, H. E. M., "Efficient 3D modeling of damage in composite materials," Journal of Composite Materials, Vol. 49, No. 7, 2015, pp.817-828.   DOI
14 Matzenmiller, A., Lubliner, J., and Taylor, R., "A constitutive model for anisotropic damage in fiber-composites," Mechanics of Materials, 1995, Vol. 20, No. 2, pp.125-152.   DOI
15 Baek, S. M., Ko, M. G., Kim, M. S., and Joo, Y. S., "Structural design of conformal load-bearing array antenna structure (CLAAS)," Advanced Composite Materials, Vol. 26, S1, 2017, pp.29-42.   DOI
16 Camanho, P., and Davila, C., "Mixed-mode decohesion finite elements for the simulation for delamination in composite materials," NASA/TM-2002-211737, Hanover.
17 Fredrik, K., and Wictor, G., "Modelling and simulation of composites crash tests for validation of material models using LS-DYNA," The Master's thesis in Applied Mechanics, Chalmers University of Technology, 2016.
18 ASTM D3039-17, "Standard Test Method for Tensile Properties of Polymer Matrix Composite Materials," Annual Book of ASTM Standard, 2017.
19 ASTM D6641-16, "Standard Test Method for Compressive Properties of Polymer Matrix Composite Materials Using a Combined Loading Compression (CLC) Test Fixture," Annual Book of ASTM Standard, 2016.
20 ASTM D5379-12, "Standard Test Method for Shear Properties of Composite Materials by the V-Nothced Beam Method," Annual Book of ASTM Strandard, 2013.
21 Alcock, B., Cabrera, N. O., Barkoula, N. M., Spoelstra, A. B., Loos, J., and Peijs, T., "The mechanical properties of woven tape all-polypropylene composites," Composites: Part A, 38, 2007, pp.147-161.   DOI
22 Huguet, C. G., "A continuum damage mechanics model for woven composites," Master Thesis, Delft University of Technology, 2017.
23 https://www.mts.com/en/products/application/materials-testing/cord-fiber-yarn-thread/axial-torsional/index.htm
24 ASTM D790-17, "Standard Test Methods for Flexural Properties of Unreinforced and Reinforced Plastics and Electrical Insulating Materials," Annual Book of ASTM Strandard, 2017.
25 http://www.ni.com/ko-kr/support/model.pxie-1071.html
26 Hong, S. C., Lee, J. R., and Park, J. W., "Nondestructive Evaluation Technique of Painted Sandwich Control Surfaces of CN-235 using Full-field Pulse-echo Ultrasonic Propagation Imaging System," Composite Research, Vol. 29, No. 5, 2016, pp.288-292.   DOI
27 Joo, Y. S., Jun, O. C., Byun, K. H., Cho, C. M., and Han, J. W., "A Study on Manufacture of Integrated Composite Wing with High Aspect Ratio," Journal of The Korean Society for Aeronautical and Space Sciences, Vol. 41, No. 2, 2013, pp.127-133.   DOI