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AN ENHANCED MICROSTRUCTURE-LEVEL FINITE ELEMENT MACHINING MODEL FOR CARBON NANOTUBE (CNT)-POLYMER COMPOSITES

机译:碳纳米管(CNT)-聚合物复合材料的增强的微结构水平有限元加工模型

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摘要

During the machining of carbon nanotube (CNT)-polymer composites, the interface plays a critical role in the load transfer between polymer and CNT. Therefore, the interface for these composites has to be explicitly considered in the microstructure-level finite element (FE) machining model, so as to better understand their machinability and the interfacial failure mechanisms. In this study, a microstructure-level FE machining model for CNT-polymer composites has been developed by considering the interface as the third phase, in addition to the polymer and the CNT phases. For the interface, two interfacial properties, viz., interfacial strength and fracture energy have been included. To account for variable temperature and strain rate over the deformation zone during machining, temperature-and strain rate-dependent mechanical properties for the interface and the polymer material have also been included in the model. It is found that the FE machining model predicts cutting force within 6% of the experimental values at different machining conditions and CNT loadings. The cutting force data reveals that the model can accurately capture the CNT pull-out/protrusion, and the subsequent surface damage. Simulated surface damage characteristics are supported by the surface topographies and roughness values obtained from the machining experiments. The study suggests that the model can be utilized to design the new generation of CNT-polymer composites with specific interfacial properties that minimize the surface/subsurface damage and improve the surface finish.
机译:在加工碳纳米管(CNT)-聚合物复合材料期间,界面在聚合物和CNT之间的负载转移中起着至关重要的作用。因此,必须在微结构级有限元(FE)加工模型中明确考虑这些复合材料的界面,以便更好地理解其可加工性和界面破坏机理。在这项研究中,通过考虑除了聚合物和CNT相之外的界面作为第三相,开发了用于CNT-聚合物复合材料的微观结构级有限元加工模型。对于界面,已经包括两种界面性质,即界面强度和断裂能。为了在加工过程中考虑变形区域上的温度和应变率变化,模型中还包括了界面和聚合物材料的温度和应变率相关的机械性能。结果表明,有限元加工模型可以预测在不同的加工条件和不同的CNT负载下,切削力在实验值的6%以内。切削力数据表明,该模型可以准确地捕获CNT的拉出/突出以及随后的表面损坏。通过表面形貌和从加工实验中获得的粗糙度值来支持模拟的表面损伤特性。研究表明,该模型可用于设计具有特定界面特性的新一代CNT-聚合物复合材料,从而最大程度地减少表面/亚表面损伤并改善表面光洁度。

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