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Opracowanie wielowarstwowych tkanin dla struktury kompozytowej o geometrii adaptacyjnej
Języki publikacji
Abstrakty
In this study nine multilayer 3D woven structures were produced using polyamide filament yarns both in the warp and weft direction. Three different weaves: plain, 1/3 twill and 3/1 rib in the middle layer, and plain weave in both the top and bottom layers were produced. All specimens were developed on a narrow weaving machine equipped with multi beams and creel options. The samples were tested for tensile strength, air permeability, compressibility, resilience, bending and shear stiffness. Better compressibility was observed in 3/1 warp rib, followed by 1/3 twill and plain weave in the middle layer. Shear stiffness and bending rigidity were higher for those fabrics which had a plain weave in all layers and higher filling density. The air permeability was higher for low weft density, plain weave and its derivative 3/1 warp rib in the middle layer. Tensile strength was higher for those fabrics which were produced with higher weft densities.
W badaniu wytworzono dziewięć wielowarstwowych tkanych struktur 3D z przędz z włókien poliamidowych zarówno w kierunku osnowy, jak i wątku. Zastosowano trzy rodzaje splotów. Próbki zbadano pod kątem wytrzymałości na rozciąganie, przepuszczalności powietrza, ściśliwości, sprężystości, zginania i sztywności. Wartości sztywności były wyższe dla tych tkanin, które miały splot płócienny we wszystkich warstwach i większą gęstość wypełnienia. Przepuszczalność powietrza była wyższa dla wątku o małej gęstości i splotu płóciennego. Wytrzymałość na rozciąganie była wyższa dla tkanin, które były wytwarzane z większą gęstością wątku.
Czasopismo
Rocznik
Strony
56--61
Opis fizyczny
Bibliogr. 22 poz., rys., tab.
Twórcy
autor
- Université de Haute Alsace, LPMT EA 4365, F-68100 Mulhouse, France
- Université de Strasbourg, France
autor
- Université de Haute Alsace, LPMT EA 4365, F-68100 Mulhouse, France
- Université de Strasbourg, France
autor
- Université de Haute Alsace, LPMT EA 4365, F-68100 Mulhouse, France
- Université de Strasbourg, France
autor
- National Textile University, Faisalabad, Pakistan
autor
- Université de Haute Alsace, LPMT EA 4365, F-68100 Mulhouse, France
- Université de Strasbourg, France
Bibliografia
- 1. Dong Y, Ni Q-Q, Li L, Fu Y. Novel Vapor-Grown Carbon Nanofiber/Epoxy Shape Memory Nanocomposites Prepared via Latex Technology. Mater Lett. 2014; 132: 206-9.
- 2. Nishikawa M, Wakatsuki K, Takeda N. Thermomechanical Experiment and Analysis on Shape Recovery Properties of Shape Memory Polymer Influenced by Fiber Reinforcement. J Mater Sci. 2010; 45(14): 3957-60.
- 3. Turner P, Liu T, Zeng X. Collapse of 3D Orthogonal Woven Carbon Fibre Composites under In-Plane Tension/Compression and Out-Of-Plane Bending. Compos Struct. 2016; 142: 286-97.
- 4. Hart KR, Chia PXL, Sheridan LE, Wetzel ED, Sottos NR, White SR. Mechanisms and Characterization of Impact Damage in 2D and 3D Woven Fiber-Reinforced Composites Part A Applied Science and Manufacturing, 2017.
- 5. Goda I, Ganghoffer J-F. Construction of First and Second Order Grade Anisotropic Continuum Media for 3D Porous and Textile Composite Structures. Compos Struct. 2016; 141: 292-327.
- 6. Rahali Y, Assidi M, Goda I, Zghal A, Ganghoffer J-F. Computation of the Effective Mechanical Properties Including Nonclassical Moduli of 2.5 D and 3D Interlocks by Micromechanical Approaches. Compos Part B Eng. 2016; 98: 194-212.
- 7. Rahali Y, Goda I, Ganghoffer J-F. Numerical Identification of Classical and Nonclassical Moduli of 3D Woven Textiles and Analysis of Scale Effects. Compos Struct. 2016; 135: 122-39.
- 8. Elias A, Laurin F, Kaminski M, Gornet L. Experimental and Numerical Investigations of Low Energy/Velocity Impact Damage Generated in 3D Woven Composite with Polymer Matrix. Compos Struct. 2017; 159: 228-39.
- 9. Khokar N. 3D-Weaving and Noobing: Characterization of Interlaced and Non-Interlaced 3D Fabric Forming Principles. Chalmers University of Technology; 1997.
- 10. Chen X, Taylor LW, Tsai L-J. An Overview on Fabrication of Three-Dimensional Woven Textile Preforms for Composites. Text Res J. 2011; 81(9): 932-44.
- 11. Fukuta K, Miyashita R, Sekiguti J, Nagatsuka Y, Tsuburaya S, Aoki E, et al. Three-Dimensional Fabric, and Method and Loom Construction for the Production Thereof. Google Patents; 1974.
- 12. Tong L, Mouritz AP, Bannister MK. 3D Fibre Reinforced Polymer Composites. Elsevier; 2002.
- 13. Chen F, Hodgkinson JM. Impact Behaviour of Composites with Different Fibre Architecture. Proc Inst Mech Eng Part G J Aerosp Eng. 2009; 223(7): 1009-17.
- 14. Brandt J, Drechsler K, Arendts F-J. Mechanical Performance of Composites Based on Various Three-Dimensional Woven-Fibre Preforms. Compos Sci Technol. 1996; 56(3): 381-6.
- 15. Stig F, Hallström S. Assessment of the mechanical properties of a new 3D woven fibre composite material. Compos Sci Technol. 2009; 69(11-12): 1686-92.
- 16. Wang Y, Zhao D. Effect of fabric structures on the mechanical properties of 3-D textile composites. J Ind Text. 2006; 35(3): 239-56.
- 17. Yu B, James Lee L. A Simplified In-Plane Permeability Model for Textile Fabrics. Polym Compos. 2000; 21(5): 660-85.
- 18. Grujicic M, Chittajallu KM, Walsh S. Effect of Shear, Compaction and Nesting on Permeability of the Orthogonal Plain-Weave Fabric Preforms. Mater Chem Phys. 2004; 86(2-3): 358-69.
- 19. Bilisik K. Bending Behavior of Multilayered and Multidirectional Stitched Aramid Woven Fabric Structures. Text Res J. 2011; 81(17): 1748-61.
- 20. Peirce FT. 26 – The "Handle" Of Cloth As A Measurable Quantity. J Text Inst Trans. 1930; 21(9): T377-416.
- 21. Saville BP. Comfort. Phys Test Text Woodhead Publ Ltd, Cambridge, Engl. 1999; 209-43.
- 22. Bona M. Modern Control Techniques in the Textile Finishing and Making-Up. 1990.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-83c23b9b-a8f2-4ee8-96c9-31ef9662d2ef