A new discrete element model to deal with rapid deformation and fracture of flat fibrous materials is derived. The method is based on classical mechanical theories and is a combination of traditional particle dynamics and nonlinear engineering beam theory. It is assumed that a fiber can be seen as a beam that is represented by discrete particles, which are moving according to Newton's laws of motion. Damage is dealt with by fracture of fiber-segments and fiberfiber bonds when the potential energy of a segment or bond exceeds the critical fracture energy. This allows fractures to evolve as a result of material properties only. To validate the model, four examples are shown and compared with analytical results found in literature. Copyright (c) 2013 John Wiley & Sons, Ltd.
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Guangdong Polytech, Sch Text, Foshan 528041, Peoples R China
Guangdong Polytech, Inst Text & Clothing, Foshan 528041, Peoples R ChinaGuangdong Polytech, Sch Text, Foshan 528041, Peoples R China
Chen, Jiahao
Tao, Peipei
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Guangdong Polytech, Sch Text, Foshan 528041, Peoples R China
Guangdong Polytech, Inst Text & Clothing, Foshan 528041, Peoples R ChinaGuangdong Polytech, Sch Text, Foshan 528041, Peoples R China
Tao, Peipei
Zhu, Jiangbo
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Guangdong Polytech, Sch Text, Foshan 528041, Peoples R China
Guangdong Polytech, Inst Text & Clothing, Foshan 528041, Peoples R ChinaGuangdong Polytech, Sch Text, Foshan 528041, Peoples R China
Zhu, Jiangbo
Li, Zhujun
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Guangdong Polytech, Sch Text, Foshan 528041, Peoples R China
Guangdong Polytech, Inst Text & Clothing, Foshan 528041, Peoples R ChinaGuangdong Polytech, Sch Text, Foshan 528041, Peoples R China
Li, Zhujun
Gong, Jixian
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Tiangong Univ, Sch Text Sci & Engn, Tianjin 300387, Peoples R China
Tiangong Univ, Key Lab Adv Text Composites, Educ Minist, Tianjin 300387, Peoples R ChinaGuangdong Polytech, Sch Text, Foshan 528041, Peoples R China