Thermomechanical behavior of three dimensionally printed fabric structures

材料科学 粘弹性 复合材料 玻璃化转变 多物理 极限抗拉强度 有限元法 热的 压缩(物理) 平纹织物 动态力学分析 结构工程 聚合物 物理 气象学 工程类 纱线
作者
Ajay Jayswal,Russell W. Mailen,Jia Liu,Gregory Harris,Midhan Siwakoti,Sabit Adanur
出处
期刊:Polymer Engineering and Science [Wiley]
卷期号:63 (6): 1725-1736 被引量:4
标识
DOI:10.1002/pen.26319
摘要

Abstract Additive manufacturing of fabrics is an emerging research topic with potential applications in several industries including high performance wearable products and high‐temperature textiles. Therefore, thermal, mechanical, and viscoelastic properties of such fabrics need to be determined. In this research, the thermomechanical behavior of additively manufactured plain weave fabrics at and above glass transition temperature ( is studied. The time‐dependent mechanical response using a viscoelastic material model is represented by a Prony series as a function of frequency ( f) . Unit cells of plain weave fabrics are additively manufactured using poly(lactic) acid (PLA). Tensile and compression tests were performed on unit cells in a thermal environment using dynamic mechanical analysis (DMA). A multiphysics finite element model is implemented to duplicate the experimental setup. The experimental results are compared with that of computational results. The relative error percentages in the peak forces at each temperature are 23.60% at 60°C, −8.85% at 65°C, and −6.25% at 70°C. A better agreement in peak forces is seen for unit cells above T g . The computational model developed for unit cells is used to predict the thermomechanical‐viscoelastic response of large additively manufactured fabric structures which is difficult to evaluate experimentally.
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