Analysis of Studies on the Mechanical Deformation of Textile Materials: Enhancing Durability and Improving Recovery Properties
Jakhongir Soloxiddinov
Namangan Institute of Textile Industry, Namangan, Uzbekistan
Husanhon Bobojanov
Corresponding author
Shokirjon Abdulazizov
Namangan Institute of Engineering and Technology, Namangan, Uzbekistan
Keywords: mechanical deformation, textile durability, recovery properties, tensile testing, fiber blending, shape memory polymers, nanotechnology, textile engineering, fabric weave, digital image correlation.
Abstract
The mechanical deformation of textile materials is a critical area of study, given the broad applications of textiles in industries ranging from fashion to aerospace. This article examines the various studies on the mechanical behavior of textile materials, particularly focusing on ways to enhance durability and recovery properties. Through analyzing tensile, bending, compression, and shear deformation, this research identifies how factors such as fiber type, yarn structure, fabric weave, and finishing treatments influence textile performance. Techniques to improve durability and recovery, including fiber blending, the use of shape memory polymers, and advancements in nanotechnology, are discussed. The paper also highlights experimental approaches, including tensile testing and digital image correlation (DIC), which provide deeper insights into the deformation behavior of textiles. Overall, the research emphasizes the ongoing innovations necessary for developing next-generation textiles with enhanced mechanical performance for diverse industrial applications.
References
1. Hu, J. (2004). "Structure and Mechanics of Woven Fabrics." Textile Research Journal, 74(3), 226-234.
2. Peirce, F.T. (1937). "The Geometry of Cloth Structure." Journal of the Textile Institute Transactions, 28(3), T45-T96.
3. Hearle, J.W.S., Grosberg, P., & Backer, S. (1969). Structural Mechanics of Fibers, Yarns, and Fabrics. Wiley-Interscience.
4. Chen, X., & Shao, Z. (2009). "Mechanical Performance of Woven Fabrics in Relation to Fabric Structure." Fibers and Polymers, 10(4), 469-475.
5. Lewin, M., & Sello, S.B. (1984). Handbook of Fiber Science and Technology. Marcel Dekker.
6. Mattila, H. (2006). Intelligent Textiles and Clothing. CRC Press.
7. Hu, J., Zhu, Y., Huang, H., & Lu, J. (2012). "Recent Advances in Shape Memory Polymers: Structure, Mechanism, and Applications." Progress in Polymer Science, 37(12), 1720-1763.
8. Das, A., & Alagirusamy, R. (2010). Technical Textile Yarns: Industrial and Medical Applications. Woodhead Publishing.
9. Lyons, J.G., Liu, J., & Sutcliffe, M.P.F. (2006). "Digital Image Correlation Measurement of Large Strains in Fiber-Reinforced Composites." Composites Part A: Applied Science and Manufacturing, 37(2), 192-198.