Micromechanical modeling and experimental analysis of yarn separation type sewing damage on continuous filament fabrics
Fabrics with weaves of low interlacing density and smooth yarns such as continuous cuprammonium filaments are often susceptible to sewing damage of cracks perpendicular to the sewing line, seriously influencing the aesthetics of the finished garment. To understand how the important factors such as y...
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Published in | Textile Research Journal Vol. 93; no. 11-12; pp. 2908 - 2917 |
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Main Authors | , , , , , , , |
Format | Journal Article |
Language | English |
Published |
London, England
SAGE Publications
01.06.2023
Sage Publications Ltd |
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Abstract | Fabrics with weaves of low interlacing density and smooth yarns such as continuous cuprammonium filaments are often susceptible to sewing damage of cracks perpendicular to the sewing line, seriously influencing the aesthetics of the finished garment. To understand how the important factors such as yarn modulus, yarn bending stiffness, sewing needle radius, yarn-on yarn-friction, fabric counts and fabric weaves act on the crack length of such a fabric, a micromechanical model is proposed, and the experimental results are compared with the theoretical prediction. Single yarn pull-out tests and single yarn axial compression tests are performed to estimate yarn-on-yarn friction and yarn bending stiffness, respectively. The model indicates that the sewing crack length is positively proportional to the yarn tensile modulus, yarn bending stiffness and the needle radius and is negatively proportional to the fabric count and the inter-yarn friction. The model predicted crack lengths are within the range of the experimental results in warp direction while the predicted value is substantially larger than the observed crack lengths in weft direction due to the high compressibility of the weft yarn, which decreased yarn tension, bending stiffness and increased yarn cover power. For a given fabric, increasing yarn-on-yarn friction and raising yarn compressibility is an effective way to control the crack lengths. |
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AbstractList | Fabrics with weaves of low interlacing density and smooth yarns such as continuous cuprammonium filaments are often susceptible to sewing damage of cracks perpendicular to the sewing line, seriously influencing the aesthetics of the finished garment. To understand how the important factors such as yarn modulus, yarn bending stiffness, sewing needle radius, yarn-on yarn-friction, fabric counts and fabric weaves act on the crack length of such a fabric, a micromechanical model is proposed, and the experimental results are compared with the theoretical prediction. Single yarn pull-out tests and single yarn axial compression tests are performed to estimate yarn-on-yarn friction and yarn bending stiffness, respectively. The model indicates that the sewing crack length is positively proportional to the yarn tensile modulus, yarn bending stiffness and the needle radius and is negatively proportional to the fabric count and the inter-yarn friction. The model predicted crack lengths are within the range of the experimental results in warp direction while the predicted value is substantially larger than the observed crack lengths in weft direction due to the high compressibility of the weft yarn, which decreased yarn tension, bending stiffness and increased yarn cover power. For a given fabric, increasing yarn-on-yarn friction and raising yarn compressibility is an effective way to control the crack lengths. |
Author | Yiping Qiu Lina Cui Canyi Huang Chengwu Weng Gui Liu Yinjia Zhang Fanxizi Liu Chuyang Zhang |
Author_xml | – sequence: 1 givenname: Lina orcidid: 0000-0003-0060-9847 surname: Cui fullname: Cui, Lina organization: Fujian Provincial Key Laboratory of Textiles Inspection Technology (Fujian Fiber Inspection Center), China – sequence: 2 givenname: Chengwu surname: Weng fullname: Weng, Chengwu organization: Comprehensive Technology Service Center of Quanzhou Customs, China – sequence: 3 givenname: Gui surname: Liu fullname: Liu, Gui organization: Fujian Provincial Key Laboratory of Textiles Inspection Technology (Fujian Fiber Inspection Center), China – sequence: 4 givenname: Canyi orcidid: 0000-0003-4987-3585 surname: Huang fullname: Huang, Canyi organization: College of Textiles and Apparel, Quanzhou Normal University, China – sequence: 5 givenname: Fanxizi surname: Liu fullname: Liu, Fanxizi organization: Department of Technical Textiles, Donghua University, China – sequence: 6 givenname: Yinjia surname: Zhang fullname: Zhang, Yinjia email: chuyangzhang@qztc.edu.cn organization: Graduate School of Shinshu University, Shinshu University, Japan – sequence: 7 givenname: Yiping orcidid: 0000-0001-5116-9955 surname: Qiu fullname: Qiu, Yiping organization: Department of Technical Textiles, Donghua University, China – sequence: 8 givenname: Chuyang surname: Zhang fullname: Zhang, Chuyang email: chuyangzhang@qztc.edu.cn organization: College of Textiles and Apparel, Quanzhou Normal University, China |
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SubjectTerms | aesthetics Axial compression Compressibility Compression Compression tests Damage Fabrics Filaments Friction Modulus of elasticity Needles prediction Pull out tests Sewing Stiffness Warp Weft Yarns |
Title | Micromechanical modeling and experimental analysis of yarn separation type sewing damage on continuous filament fabrics |
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