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Nearly Mode I Fracture Toughness and Fatigue Delamination Propagation in a Multidirectional Laminate Fabricated by a Wet-Layup

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Abstract

Five double cantilever beam specimens were tested quasi-statically to obtain a GIR resistance curve. In addition, nine double cantilever beam specimens were tested in fatigue to obtain a Paris-type relation to describe the delamination propagation rate da/dN where a is delamination length and N is the cycle number. Displacement ratios of Rd = 0.10 and 0.48 were used for five and four specimens, respectively. The specimens were fabricated by means of a wet-layup process from carbon fiber reinforced polymer plies. The interface containing the delamination was between a unidirectional fabric and a woven ply. The fracture toughness and fatigue delamination propagation protocols are outlined. The mechanical and thermal residual stress intensity factors were obtained by means of finite element analyses and the conservative M-integral along the delamination front. They were superposed to determine the total stress intensity factors. It was found that the total mode I stress intensity factor dominates the other two stress intensity factors. Thus, nearly mode I deformation was achieved. Interpolation expressions for the mechanical and thermal residual stress intensity factors were determined using three and two-dimensional fittings, respectively. Results are presented with an expression for GIR determined. Moreover, the fatigue data is described including threshold values and master-curves. These results shed light on the behavior of delamination propagation in multidirectional laminate composites.

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References

  1. ASTM D5528-13. Standard Test Method for Mode I Interlaminar Fracture Toughness of Unidiredional Fiber-Reinforced Polymer Matrix Composites, West Conshohocken, PA: ASTM International, 2013.

  2. ISO 15024. Fiber Reinforced Plastic Composites—Determination of Mode I Interlaminar Fracture Toughness, G Ic, for Unidirectional Reinforced Materials, Switzerland: ISO, 2001.

  3. ASTM D6115-97. Standard Test Method for Mode I Fatigue Delamination Growth Onset of Unidirectional Fiber-Reinforced Polymer Matrix Composites, West Conshohocken, PA: ASTM International, 2011.

  4. Miyagawa, H., Sato, C., Mase, T., Drown, B., Drzal, L.T., and Ikegami, K., Transverse Elastic Modulus of Carbon Fibers Measured by Raman Spectroscopy, Mat. Sci. Eng. A, 2005, vol. 412, pp. 88–92.

    Article  Google Scholar 

  5. Torayca T300 Data Sheet, Toray Carbon Fibers America, Inc. http://www.toraycfa.com/pdfs/T300DataSheet.pdf (Accessed 22.11.2015)

  6. Bowles, D.E. and Tompkins, S.S., Prediction of Coefficients of Thermal Expansion for Unidirectional Composites, J. Compos. Mater., 1989, vol. 23, pp. 370–388.

    Article  ADS  Google Scholar 

  7. Matweb—Material Property Data. http://www.matweb.com/search/DataSheet.aspx?MatGUID=3dbc779c2f034329b2836b02b9483629 (Accessed 09.04.2017)

  8. Aboudi, J., The Generalized Method of Cells and High-Fidelity Generalized Method of Cells Micromechanical Models—A Review, Mech. Adv. Mater. Struct., 2004, vol. 11, pp. 329–366.

    Article  Google Scholar 

  9. Mega, M. and Banks-Sills, L., Mixed Mode Interface Fracture Toughness of a Multi-Directional Composite—UD/Woven Pair, 2019 (submitted for publication).

    Google Scholar 

  10. Ting, T.C.T., Anisotropic Elasticity: Theory and Applications, New York: Oxford University Press, 1996.

    MATH  Google Scholar 

  11. DaVis. Version 8.3, Göttingen, Germany: LaVision, 2015.

  12. ABAQUS. Version 6.17, Providence, RI: Dassault Systèmes Simulia Corp., 2017.

  13. Banks-Sills, L., Interface Fracture and Delaminations in Composite Materials, Cham, Switzerland: Springer, 2018.

    Book  MATH  Google Scholar 

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Correspondence to L. Banks-Sills.

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Chocron, T., Banks-Sills, L. Nearly Mode I Fracture Toughness and Fatigue Delamination Propagation in a Multidirectional Laminate Fabricated by a Wet-Layup. Phys Mesomech 22, 107–140 (2019). https://doi.org/10.1134/S1029959919020036

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  • DOI: https://doi.org/10.1134/S1029959919020036

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