石墨烯/MWCNT 增强聚芳醚酮-碳纤维多尺度复合材料力学性能的协同增强:实验研究与有限元分析

IF 9.9 Q1 MATERIALS SCIENCE, COMPOSITES
Sarath Kumar Painkal , Meera Balachandran , Karingamanna Jayanarayanan , Nagaarjun Sridhar , Sanjeev Kumar
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引用次数: 0

摘要

研究了石墨烯/MWCNT增强聚芳醚酮(PAEK) -碳纤维(CF)多尺度复合材料的协同性能。FTIR揭示了化学相互作用,HRTEM、XRD和3D x射线显微镜揭示了纳米填料的分散和微观结构特征。纳米填料上的官能团与结构特征通过形成石墨烯/MWCNT/CF复合网络,将多尺度复合材料的各个组分集成在一起,提供更大的界面面积,桥接效应和与PAEK的物理化学相互作用,同时限制了PAEK的节段迁移率。复合材料的强度、断裂韧性、层间剪切强度、玻璃化转变温度和摩擦学性能均有显著提高。在动态载荷作用下,石墨烯/MWCNT增强基体和CF协同提高了材料的存储模量和能量吸收特性。纳米和多尺度复合材料的磨损和断口形貌表现为韧性破坏,证实了界面的粘附性。试验研究中的破坏行为由Abaqus/基于显式的断裂韧性响应有限元模型支持。这项工作为开发下一代高性能结构热塑性复合材料提供了一条有希望的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Synergistic enhancement in mechanical properties of graphene/MWCNT reinforced Polyaryletherketone – carbon fiber multi-scale composites: Experimental studies and finite element analysis

Synergistic enhancement in mechanical properties of graphene/MWCNT reinforced Polyaryletherketone – carbon fiber multi-scale composites: Experimental studies and finite element analysis
This investigation focuses on the synergistic performance improvement in graphene/MWCNT reinforced Polyaryletherketone (PAEK) - carbon fiber (CF) multi-scale composites. FTIR revealed the chemical interactions while HRTEM, XRD and 3D X-ray microscopy gave insight into nanofiller dispersion and microstructural features. The functional groups on nanofillers along with structural features integrated various components of the multi-scale composites by formation of graphene/MWCNT/CF complex network that provided larger interfacial area, bridging effect and physico-chemical interaction with PAEK while restricting its segmental mobility. Multi-scale composites displayed significantly improved strength, fracture toughness, interlaminar shear strength, glass transition temperature and tribological performance. Under dynamic load, graphene/MWCNT reinforcement of matrix and CF synergistically increases the storage modulus and energy absorption characteristics. Wear and fracture surface morphology of nano and multi-scale composites showed ductile failure confirming interfacial adhesion. The failure behavior in experimental studies was supported by Abaqus/Explicit-based FEM models of fracture toughness response. This work provides a promising avenue to develop next generation high performance thermoplastic composites for structural applications.
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来源期刊
Advanced Industrial and Engineering Polymer Research
Advanced Industrial and Engineering Polymer Research Materials Science-Polymers and Plastics
CiteScore
26.30
自引率
0.00%
发文量
38
审稿时长
29 days
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