61
Views
2
CrossRef citations to date
0
Altmetric
Research Article

Effect of angle-ply arrangement on fracture behaviour of FRP composite laminate under the thermal loading conditions subjected to central elliptical cut-out

, , , , , ORCID Icon, & show all
Pages 892-902 | Accepted 20 Dec 2022, Published online: 04 Jan 2023

References

  • Patel A, Desai CK. Stress concentration around an elliptical hole in a large rectangular plate subjected to linearly varying in-plane loading on two opposite edges. Theor Appl Fract Mech. 2020;106:102432.
  • Zhanga J, Huanga Y, Liub W, et al. Interaction of multiple straight cracks and elliptical inclusions in a finite plate due to mismatched thermal expansion. Eng Fract Mech. 2020;238:107267.
  • Pradhan B, Panda SK. The influence of ply sequence and thermoelastic stress field on asymmetric delamination crack growth behavior of embedded elliptical delamination in laminated FRP composites. Compos Sci Technol. 2006;66(3–4):417–426.
  • Panda SK, Pradhan B. Thermoelastic analysis of the asymmetries of interfacial embedded delamination characteristics in laminated FRP composites. Compos Part A Appl Sci Manuf. 2007;38(2):337–347.
  • Wang D, Kishoret NN, Li CA. Crack development in graphite—epoxy cross-ply laminates under uniaxial tension. Compos Sci Technol. 1985;24(1):1–31.
  • SooBae J, Krishnaswamy S. Sub interfacial cracks in biomaterial systems subjected to mechanical and thermal loading. Eng Fract Mech. 2001;68(9):1081–1094.
  • Aiello MA, Focacci F, Nanni A. Effects of Thermal Loads on Concrete Cover of FRP Reinforced Elements: theoretical and Experimental Analysis. ACI Mater J. 2001;98:332–339.
  • Panda SK, Pradhan B. Mixed-mode analysis of superimposed thermo-elastic effects in fibre-reinforced composites with embedded interface delamination. Compos Struct. 2007;77(4):570–580.
  • Camanho PP, Catalanotti G. On the relation between the mode I fracture toughness of a composite laminate and that of a 0° ply: analytical model and experimental validation. Eng Fract Mech. 2011;78(13):2535–2546.
  • Shi S, Liang J, Gu L, et al. Degradation in compressive strength of silica/phenolic composites subjected to thermal and mechanical loading. J Reinf Plast Compos. 2016;35(7):579–588.
  • Shi S, Gu L, Liang J, et al. A mesomechanical model for predicting the degradation in stiffness of FRP composites subjected to combined thermal and mechanical loading. Mater Design. 2016;89:1079–1085.
  • Nam Le H, Gardin C. Analytical prediction of crack propagation under thermal cyclic loading inducing a thermal gradient in the specimen thickness – Comparison with experiments and numerical approach. Eng Fract Mech. 2011;78(4):638–652.
  • Wilson ML, Hawley RH, Duffy J. The effect of Loading rate and Temperature on Fracture initiation in 1020 Hot-Rolled Steel. Eng Fract Mech. 1980;13(2):371–385.
  • Saoudi J, Zitoune R, Gururaja S, et al. Prediction of critical thrust force for exit-ply delamination during drilling composite laminates: thermo-mechanical analysis. Int J Mach Mach Mater. 2016;18(1/2):77–98.
  • Daniel IM, Isaac MO. Engineering Mechanics of Composite Materials. United Kingdom: Oxford University Press; 2006.
  • Helien TK, Cesari F. On the solution of the centre cracked plate with a quadratic thermal gradient. Eng Fract Mech. 1979;12(4):469–478.
  • Wilson WK, Yu IW. The use of the J-integral in thermal stress crack problems. Int J Fract. 1979;15(4):377–387.
  • Kumari S, Nakum B, Bandhu D, et al. Multi-Attribute Group Decision Making (MAGDM) using fuzzy linguistic modeling integrated with the VIKOR method for car purchasing model. Inter J Decision Support System Tech (IJDSST). 2022;14(1):1–20.
  • Mausam K, Sharma K, Bharadwaj G, et al. Multi-objective optimization design of die-sinking electric discharge machine (EDM) machining parameter for CNT-reinforced carbon fibre nanocomposite using grey relational analysis. J Braz Soc Mech Sci Eng. 2019;41(8):348.
  • Bandhu D, Vora JJ, Das S, et al. Experimental study on application of gas metal arc welding based regulated metal deposition technique for low alloy steel. Mater Manuf Processes. 2022;37(15):1727–1745.
  • Tripathi DR, Vachhani KH, Bandhu D, et al. Experimental investigation and optimization of abrasive waterjet machining parameters for GFRP composites using metaphor-less algorithms. Mater Manuf Processes. 2021;36(7):803–813.
  • Prakash C, Singh S, Basak A, et al. Processing of Ti50Nb50− xHax composites by rapid microwave sintering technique for biomedical applications. J Mater Res Technol. 2020;9(1):242–252.
  • Nguyen DN, Dao TP, Prakash C, et al. Machining parameter optimization in shear thickening polishing of gear surfaces. J Mater Res Technol. 2020;9(3):5112–5126.
  • Gupta NK, Somani N, Prakash C, et al. Revealing the WEDM process parameters for the machining of pure and heat-treated titanium (Ti-6al-4V) alloy. Materials. 2021;14(9):2292.
  • Uddin M, Basak A, Pramanik A, et al. Evaluating hole quality in drilling of Al 6061 alloys. Materials. 2018;11(12):2443.
  • Wang SS, Yau IF. An analysis of cracks emanating from a circular hole in unidirectional fiber-reinforced composites. Eng Fract Mech. 1980;13(1):57–67.
  • Doblare M, Espiga F, GraciaAnd L, et al. Study of crack propagation in orthotropic materials by using the boundary element method. Eng Fract Mech. 1990;37(5):953–967.
  • Liu N, Nicholas JA. A new boundary element method for the solution of plane steady-state thermoelastic fracture mechanics problems. Applied Maths Modeling. 1992;16(12):618–629.
  • Chwan-Huei T, Chien-Ching M. Chwan-Huei Tsai et al. Thermal weight function of cracked bodies subjected to thermal loading. Eng Fract Mech. 1992;41(1):27–40.
  • Prasad NNV, Aliabadi MH, Rooke DP. Incremental crack growth in Thermoelastic problems. Int J Fract. 1994;66(3):45–50.
  • Prasad NNV, Aliabadi MH, Rooke DP. The dual boundary element method for thermoelastic crack problems. Int J Fract. 1994;66(3):255–272.
  • Kokini K, Choules BD. K. Kokini et al. Surface thermal fracture of functionally graded ceramic coatings: effect of architecture and materials. Composite Eng. 1995;5(7):865–877.
  • Giannakopoulos AE, Suresh S, Finot M, et al. Elastoplastic analysis of thermal cycling layered materials with compositional gradients. Actamatall meter. 1995;43(4):1335–1354.
  • Jhamb S, Matai J, Marwaha J, et al. A comprehensive analysis on magnesium-based alloys and metal matrix composites for their in-vitro biocompatibility. Adv Mater Process Technol. 2022;1–34. DOI:10.1080/2374068X.2022.2113521
  • Jhamb SK, Goyal A, Pandey A, et al. (2021). Degradation behaviour of magnesium alloy and its composite used as a biomaterial. In E3S Web of Conferences, India, (Vol. 309). EDP Sciences.
  • Chakraborty D, Rathi A, Singh A, et al. Determination of mechanical properties of graphene reinforced Tetra-GEDVA nanocomposite. Materials Physics and Mech. 2020;44(3):324–331.
  • Yadav R, Gupta RK, Goyal A (2020). Study of tribological behaviour of hybrid metal matrix composites prepared by stir casting method. Materials Today: Proceedings, India, 28, 2218–2222.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.