Identyfikatory
Warianty tytułu
Języki publikacji
Abstrakty
Thin-walled composite columns with a closed rectangular cross-section are the subject of this study. The test specimens were made using the autoclave technique and were characterized by constant geometric parameters. Experimental tests were carried out using interdisciplinary techniques within the framework of experimental testing, which enabled an in-depth analysis of the bending behavior of the composite structures. The research analyzed the effect of varying boundary conditions (support spacing) on the load carrying capacity of the structure and the damage state of the composite. In the course of the research, the damage phenomenon was evaluated both quantitatively and qualitatively.
Wydawca
Rocznik
Tom
Strony
403--413
Opis fizyczny
Bibliogr. 37 poz., fig., tab.
Twórcy
autor
- Department of Machine Design and Mechatronics, Faculty of Mechanical Engineering, Lublin University of Technology, Nadbystrzycka 36, 20-618 Lublin, Poland
Bibliografia
- 1. Fascetti A., Feo L., Nistic N., Penna R. Web-flange behavior of pultruded GFRP I beams: a lattice model for the interpretation of experimental results. Composites Part B Eng, 2016;100:257–269.
- 2. Berardi V. P., Perrella M., Feo L., Cricrì G. Creep behavior of GFRP laminates and their phases: experimental investigation and analytical modeling. Composites Part B Eng, 2017;122:136–144.
- 3. Kubiak T., Kolakowski Z., Swiniarski J., Urbaniak M., Gliszczynski A. Local buckling and post-buckling of composite channel-section beams – numerical and experimental investigations. Composites Part B Eng, 2016;91:176–188.
- 4. Rozylo P. Experimental-numerical test of open section composite columns stability subjected to axial compression. Arch. Mater. Sci. Eng., 2017;84(2):58–64.
- 5. Kolanu N. R., Raju G., Ramji M. A unified numerical approach for the simulation of intra and inter laminar damage evolution in stiffened CFRP panels under compression. Composites Part B, 2020;190:107931.
- 6. Banat D., Mania R. J. Failure assessment of thin-walled FML profiles during buckling and postbuckling response. Compos Part B Eng, 2017;112:278–289.
- 7. Rozylo P. Failure phenomenon of compressed thin-walled composite columns with top-hat cross-section for three laminate lay-ups. Compos Struct, 2023;304:116381.
- 8. Rozylo P., Debski H. Failure study of compressed thin-walled composite columns with top-hat cross-section. Thin-Walled Struct, 2022;180:109869.
- 9. Li Z. M., Qiao P. Buckling and postbuckling behavior of shear deformable anisotropic laminated beams with initial geometric imperfections subjected to axial compression. Engineering Structures, 2015;85:277–292.
- 10. Madukauwa-David I. D., Drissi-Habti M. Numerical simulation of the mechanical behavior of a large smart composite platform under static loads. Composites Part B Eng, 2016;88:19–25.
- 11. Gliszczynski A., Kubiak T. Load-carrying capacity of thin-walled composite beams subjected to pure bending. Thin-Walled Struct, 2017;115:76–85.
- 12. Kazmierczyk F., Urbaniak M., Swiniarski J., Kubiak T. Influence of boundary conditions on the behaviour of composite channel section subjected to pure bending – Experimental study. Compos Struct, 2022;279:114727.
- 13. Banat D., Mania R. J., Degenhardt R. Stress state failure analysis of thin-walled GLARE composite members subjected to axial loading in the post-buckling range. Composite Structures, 2022;289:115468.
- 14. Banat D., Mania R. J. Damage analysis of thin-walled GLARE members under axial compression – Numerical and experiment investigations. Compos Struct, 2020;241:112102.
- 15. Li W., Cai H., Li C., Wang K., Fang L. Progressive failure of laminated composites with a hole under compressive loading based on micro-mechanics. Adv. Compos. Mater, 2014;23:477–490.
- 16. Hu H., Niu F., Dou T., Zhang H. Rehabilitation effect evaluation of CFRP-lined prestressed concrete cylinder pipe under combined loads using numerical simulation. Mathematical Problems in Engineering, 2018;2018:3268962.
- 17. Gliszczynski A., Czechowski L. Collapse of channel section composite profile subjected to bending, Part I: Numerical investigations. Compos Struct, 2017;178:383–394.
- 18. Jakubczak P., Gliszczynski A., Bienias J., Majerski K., Kubiak T. Collapse of channel section composite profile subjected to bending Part II: Failure analysis. Compos Struct, 2017;179:1–20.
- 19. Rozylo P. Failure analysis of beam composite elements subjected to three-point bending using advanced numerical damage models. Acta Mech. Autom., 2023;17:133–144.
- 20. Heidari-Rarani M., Sayedain M. Finite element modeling strategies for 2D and 3D delamination propagation in composite DCB specimens using VCCT, CZM and XFEM approaches. Composites Part C: Open Access, 2020;2:100014.
- 21. Camanho P. P., Davila C. G., de Moura M. F. Numerical simulation of mixed-mode progressive delamination in the composite materials. Journal of Composite Materials, 2003;37(16):1415–1438.
- 22. Ribeiro M. L., Vandepitte D., Tita V. Damage model and progressive failure analyses for filament wound composite laminates. Appl. Compos. Mater, 2013;20:975–992.
- 23. Rozylo P., Debski H. Stability and load carrying capacity of thin-walled composite columns with square cross-section under axial compression. Compos Struct, 2024;329:117795.
- 24. Rozylo P. Limit states of thin-walled composite structures with closed sections under axial compression. Composites Part B Eng, 2024;287:111813.
- 25. Rozylo P., Rogala M., Pasnik J. Buckling analysis of thin-walled composite structures with rectangular cross-sections under compressive load. Materials, 2023;16:6835.
- 26. Rozylo P., Rogala M., Pasnik J. Load-carrying capacity of thin-walled composite columns with rectangular cross-section under axial compression. Materials, 2024;17:1615.
- 27. Huang Y., Sultan M. T. H., Shahar F. S., Grzejda R., Łukaszewicz A. Hybrid fiber-reinforced biocomposites for marine applications: A review. J. Compos. Sci., 2024;8:430.
- 28. Huang Y., Sultan M. T. H., Shahar F. S., Łukaszewicz A., Oksiuta Z., Grzejda R. Kenaf fiber-reinforced biocomposites for marine applications: A review. Materials, 2025;18:999.
- 29. PN-EN ISO 527–5:2010. Tworzywa Sztuczne—Oznaczanie Właściwości Mechanicznych Przy Statycznym Rozciąganiu – Część 5: Warunki Badań Kompozytów Tworzywowych Wzmocnionych Włóknami Jednokierunkowo. The Polish Committee for Standardization: Warsaw, Poland, 2010.
- 30. ASTM D3039. Standard Test Method for Tensile Properties of Polymer Matrix Composite Materials. ASTM International: West Conshohocken, PA, USA.
- 31. PN-EN ISO 14129:2000. Kompozyty Tworzywowe Wzmocnione Włóknem – Oznaczanie Naprężenia Ścinającego i Odpowiadającego Odkształcenia, Modułu Ścinania i Wytrzymałości Podczas Rozciągania pod Kątem ±45°. The Polish Committee for Standardization: Warsaw, Poland, 2010.
- 32. ASTM D3518. Standard Test Method for In-Plane Shear Response of Polymer Matrix Composite Materials by Tensile Test of a ±45° Laminate. ASTM International: West Conshohocken, PA, USA.
- 33. PN-EN ISO 14126:2002. Kompozyty Tworzywowe Wzmocnione Włóknem – Oznaczanie Właściwości Podczas Ściskania Równolegle do Płaszczyzny Laminowania. The Polish Committee for Standardization: Warsaw, Poland, 2010.
- 34. ASTM D3410. Standard Test Method for Compressive Properties of Polymer Matrix Composite Materials with Unsupported Gage Section by Shear Loading. ASTM International: West Conshohocken, PA, USA.
- 35. Rozylo P., Smagowski W., Pasnik J. Experimental research in the aspect of determining the mechanical and strength properties of the composite material made of carbon-epoxy composite. Advances in Science and Technology Research Journal, 2023;17(2):232–246.
- 36. Hodgkinson J. M. Mechanical Testing of Advanced Fibre Composites. Woodhead Publishing Ltd., Cambridge, 2000.
- 37. Ramkumar R., Rajaram K., Saravanan P., Venkatesh R., Saranya K., Jenaris D. S. Determination of mechanical properties of CFRP composite reinforced with Abaca and Kenaf fibres. Mater. Today: Proc., 2022;62:5311–5316.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa nr POPUL/SP/0154/2024/02 w ramach programu "Społeczna odpowiedzialność nauki II" - moduł: Popularyzacja nauki (2025).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-6917607b-4695-47e7-abdc-8c9ebb36bd07
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