ANALYSIS OF THE CURRENT STATE OF THE THEORY AND PRACTICE OF DEFORMATION PROCESSES IN STRUCTURES MADE OF COMPOSITE MATERIALS

Sabir Khalmuradovich Yakubov

Rustam Alijonovich Ruzmatov

##semicolon## Polymer Composite Materials, Static and Variable Loads, Mechanical Engineering, Strength, Stiffness, Fatigue Strength, Experimental Equipment, Testing.


सार

The article analyzes scientific works of both domestic and foreign authors devoted to the study of deformation and destruction of composite materials, and presents a review of scientific and technical literature devoted to the study of the processes of deformation and destruction of composite materials. Considerable attention is also paid to the wide range of test methods used to determine the strength properties and mechanical characteristics of composite materials.


##submission.citations##

1. Abashev, D.R., Bondar, V.S., Vorobyov, I.A., Sharova, V.I. Determination of the Elastic Parameters of Polymer Composite Materials and Cylindrical Shells Made Therefrom // Problems of Strength and Plasticity. Nizhny Novgorod: Lobachevsky State University, No. 1, 2024, p.45-59.

2. Abrosimov, N.A., Bazhenov, V.G. Nonlinear Problems of the Dynamics of Composite Structures. Nizhny Novgorod: Lobachevsky State University, 2002, 391 p.

3. Azarov, A.V., Babichev, A.A., Sinkovsky, F.K. Design and Fabrication of a Composite High-Pressure Tank for a Spacecraft // Composites and Nanostructures. – 2013. – No. 4. – P. 44-57.

4. Andreev A.N., Nemirovsky Yu.V. Multilayer anisotropic shells and plates. – Novosibirsk: Nauka, 2001. – P. 287-288.

5. Anoshkin A.N., Vildeman V.E., Lobanov D.S., Chikhachev A.I. Evaluation of repair efficiency in structures made of polymer fiber composite materials // Mechanics of composite materials – 2014. - No. 3. – P. 441-450.

6. Vasiliev V.V., Composite materials. - Moscow: Mashinostroenie, 1990.

7. Vildeman V.E., Sannikova T.V., Tretyakov M.P. Experimental Study of Patterns of Deformation and Fracture of Materials under Plane Stress // Problems of Mechanical Engineering and Machine Reliability. — 2010. — No. 5. — P. 106-111.

8. Laptev M. Yu., Adamov A. A. Comparison of Methods for Determining Elastic and Strength Characteristics of Polymer Composite Materials under Different Types of Loading // Computational Continuum Mechanics. 2015. — No.2. — P. 244.

9. Mushtari H. M. On the Application of Various Theories of Three-Layer Plates and Shells / Mushtari H. M. // Izvestiya. USSR Academy of Sciences: Department of Mechanics and Mechanical Engineering. — 1960. — No. 6. — P. 165.

10. Rotsen K. A., Skudra A. M. Compliance matrix of an elastic material reinforced with isotropic films. – Research in the mechanics of building materials and structures. - Riga, RPI Publ., 1969, issue 4, pp. 123-133.

11. Sukhinin, S.N. Stability of three-layer CM shells under the combined action of axial compression and lateral pressure/Sukhinin, S.N., and V.I. Mikisheva // Mechanics of composite materials. – 1981. – No. 6. – pp. 1035-1041

12. Azzi V.D., Tsai S.W. Elastic moduli of laminated anisotropic composites.–Experim. Mech., 1965, vol. 5, № 6, P. 177-185.

13. Carera E. Theories and finite elements for multilayered plates and shells: a unified compact formulation with numerical assessment and benchmarking /E. Carera // J. Arch. Comput. Meth. Eng. – 2003. – 10(3). – P. 215-296.

14. Carera E. A survey with numerical assessment of classical and refined theories for the analysis of sandwich plates / S. Briscotto, E. Carera // Appl. Mech. Rev. – 2009. – 62(20). – P. 1-17

15. Jen M.–H.R., Lee C.H., Strength and life in thermoplastic composite laminates under static and fatigue loads Part I: Experimental. Int. J. Fatigue 20(9), 605–615, 1998.

16. Hadavinia H., Kinloch A.J., Little M.S.G., Taylor A.C., The prediction of crack growth in bonded joints under cyclic–fatigue loading I. Exp. Stud. Int. J. Adhes. Adhes. 23(6), 449–461, 2003.

17. Harris B., A historical review of the fatigue behavior of fiber-reinforced plastics, in Fatigue in Composites-Science and Technology of the Fatigue Response of Fiber-Reinforced Plastics, ed. by B. Harris, Woodhead Publishing Limited, Cambridge, pp. 1–35, 2003.

18. Keller T., Gürtler H., Quasi–static and fatigue performance of a cellular FRP bridge deck adhesively bonded to steel girders. Compos. Struct. 70(4), 484–496, 2005.

19. Noor A. K. Assessment of computational models for multilayered composite shells / W. S. Burton, A. K. Noor // Appl. Mech. Rev. – 1990. – Vol. 43. –№4. – P. 67-97.

20. Noor A. K. Assessment of computational models for multilayered composite cylinders / W. S. Burton, A. K. Noor, J. M. Peters // Int. J. Solids and Struct.–1991. – Vol. 27. – № 10. – P. 1269-1286.

21. Tsai S. W., Hahn H. T. Failure analysis of composite materials. – In.: Inelastic behavior of composite materials. New York, 1975, P. 73-96.

22. Reddy J. N. Theories and computational models for composite laminates/J. N. Reddy, D. H. Robbins // Appl. Mech. Rev. – 1994. – 47 (7). – P. 147-165.

23. Rotem A., Nelson H. G. Failure of a Laminated Composite Under Tension Compression Fatigue Loading // Composites Science and Technology, № 36, 1989, pp. 45-62.

24. Ozdil F., Carlsson L. A., Beam analysis of angle–ply laminate DCB specimens. Compos. Sci. Technol. 59(2), 305–315 (1999)

25. Owen M. J., Griffiths J. R., Evaluation of biaxial stress failure surfaces for a glass fabric reinforced polyester resin under static and fatigue loading. J. Mater. Sci. 13(7), 1521–1537 (1978).

26. Shimizu S., Tosha K., Tsuchiya K., New data analysis of probabilistic stress–life (P–S–N) curve and its application for structural materials. Int. J. Fatigue 32 (3), 565–575, 2010. 149. Vassilopoulos A. P., Manshadi B. D., Keller T., Piecewise non-linear constant life diagram formulation for FRP composite materials. Int. J. Fatigue 32 (10), 2010, pp. 1731–1738.

27. Smith E. W., Pascoe K. J., Biaxial fatigue of a glass–fiber reinforced composite. Part 2: Failure criteria for fatigue and fracture in Biaxial and Multiaxial Fatigue ed. by M. W. Brown, K. J. Miller, Mechanical Engineering Publications, London, 1989, pp. 397–421.

28. Philippidis T. P., Vassilopoulos A. P., Stiffness reduction of composite laminates under combined cyclic stresses. Adv. Compos. Lett. 10(3), 113–124, 2001.

29. Puck A., Shurmann H. Failure analysis of FRP laminates by means of physically based phenomenological models, Failure criteria if fiberreinforced-polymer composites, Elsevier, 2004, pp. 832-876.

30. Chai H., The characterization of Mode I delamination failure in non–woven, multidirectional laminates. Composites 15(4), 277–290, 1984.

31. Whitney J. M., Fatigue characterization of composite materials, in Fatigue of fibrous composite materials, ASTM STP 723, (1981), pp. 133–151.