Hridyesh Tewani, Jackson Cyvas, Kennedy Perez, Pavana Prabhakar
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We focus on identifying the\nmechanisms affecting crack path tortuosity and propagation rate in architected\nweave composites containing various sub-patterns. Through compact tension\ntests, we determine how architected weave patterns compared to uniform weaves\ninfluence mode-I fracture toughness of woven composites due to interactions of\ndifferent failure modes. Results show that fracture toughness increases at\ntransition regions between sub-patterns in architected weave composites, with\nmore tortuous crack propagation and higher resistance to crack growth than\nuniform weave composites. We also introduce three geometrical parameters\ntransition, area, and skewness factors to characterize sub-patterns and their\neffects on in-plane fracture toughness. This knowledge can be exploited to\ndesign and fabricate safer lightweight structures for marine and aerospace\nsectors with enhanced damage tolerance under extreme loads.","PeriodicalId":501083,"journal":{"name":"arXiv - PHYS - Applied Physics","volume":"4 1","pages":""},"PeriodicalIF":0.0000,"publicationDate":"2024-07-02","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Ar$χ$i-Textile Composites: Role of Weave Architecture on Mode-I Fracture Toughness in Woven Composites\",\"authors\":\"Hridyesh Tewani, Jackson Cyvas, Kennedy Perez, Pavana Prabhakar\",\"doi\":\"arxiv-2407.01867\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"This paper investigates the impact of weave architectures on the mechanics of\\ncrack propagation in fiber-reinforced woven polymer composites under\\nquasi-static loading. 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引用次数: 0
摘要
本文研究了在准静态加载条件下,编织结构对纤维增强编织聚合物复合材料裂纹扩展力学的影响。编织复合材料由包含 0 度(经线)和 90 度(纬线)交织纤维的织物组成,并由聚合物基体结合。虽然已经研究了平纹、斜纹、缎纹等均匀编织结构对平面模量和断裂韧性的影响,但还不清楚由子图案组合而成的图案编织(即编织结构)对这些行为的影响。我们重点研究了影响包含各种子图案的建筑编织复合材料裂纹路径曲折性和传播速度的机制。通过紧凑拉伸试验,我们确定了与均匀编织相比,拱形编织图案如何在不同失效模式的相互作用下影响编织复合材料的 I 模断裂韧性。结果表明,与均匀编织复合材料相比,拱形编织复合材料中子图案之间的过渡区域的断裂韧性会增加,裂纹传播更曲折,裂纹增长阻力更大。我们还引入了三个几何参数:过渡系数、面积系数和偏斜系数,以描述子图案及其对平面内断裂韧性的影响。利用这些知识,我们可以为海洋和航空航天领域设计和制造更安全的轻质结构,并提高在极端载荷下的损伤容限。
Ar$χ$i-Textile Composites: Role of Weave Architecture on Mode-I Fracture Toughness in Woven Composites
This paper investigates the impact of weave architectures on the mechanics of
crack propagation in fiber-reinforced woven polymer composites under
quasi-static loading. Woven composites consist of fabrics containing fibers
interwoven at 0 degrees (warp) and 90 degrees (weft) bound by a polymer matrix.
The mechanical properties can be tuned by weaving fiber bundles with single or
multiple materials in various patterns or architectures. Although the effects
of uniform weave architectures, like plain, twill, satin, etc. on in-plane
modulus and fracture toughness have been studied, the influence of patterned
weaves consisting of a combination of sub-patterns, that is, architected
weaves, on these behaviors is not understood. We focus on identifying the
mechanisms affecting crack path tortuosity and propagation rate in architected
weave composites containing various sub-patterns. Through compact tension
tests, we determine how architected weave patterns compared to uniform weaves
influence mode-I fracture toughness of woven composites due to interactions of
different failure modes. Results show that fracture toughness increases at
transition regions between sub-patterns in architected weave composites, with
more tortuous crack propagation and higher resistance to crack growth than
uniform weave composites. We also introduce three geometrical parameters
transition, area, and skewness factors to characterize sub-patterns and their
effects on in-plane fracture toughness. This knowledge can be exploited to
design and fabricate safer lightweight structures for marine and aerospace
sectors with enhanced damage tolerance under extreme loads.