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Finite element investigation on pretreatment temperature-dependent orthogonal cutting of unidirectional CFRP

机译:有限元调查单向CFRP预处理温度依赖性正交切割

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Mechanical properties and related machinability of carbon fiber reinforced polymer (CFRP) composites have a significant temperature dependence. In the present work, we elucidate the thermal-mechanical coupled material removal mechanisms of unidirectional CFRP composites with thermal and cryogenic pretreatments in orthogonal cutting by means of macro-scale finite element (FE) simulations. A thermal-mechanical FE model constituted with temperature-dependent constitutive law for CFRP as an equivalent homogeneous material is established. Furthermore, the failure behaviors of fiber reinforcement and polymer matrix is jointly characterized by Hashin and Puck fracture criteria, and a fracture energy-based damage propagation algorithm is proposed to account for the post-damage degradation behavior. The microscopic deformation mechanisms of 90 degrees -oriented CFRP under orthogonal cutting, as well as their correlations with macroscopic cutting results in terms of cutting temperature evolution, machining force evolution, chip formation, subsurface damage and machined surface integrity, are firstly investigated by FE simulation and corresponding experiment performed at room temperature. Subsequent FE simulation results demonstrate significant temperature-dependent material characteristics of CFRP, i.e., cryogenic embrittlement and thermal softening, which have strong impacts on subsequent cutting processes. Furthermore, the coupling effect between fiber orientation and pretreatment temperature on the CFRP cutting is also addressed. Current findings provide guidelines for the rational design of temperature pretreatment strategy for enhancing machinability of CFRP composites.
机译:碳纤维增强聚合物(CFRP)复合材料的机械性能和相关加工性具有显着的温度依赖性。在本作工作中,我们通过宏观调整有限元(FE)模拟,在正交切割中具有热和低温预处理的单向CFRP复合材料的热机械耦合材料去除机制。建立了具有CFRP的温度依赖性本构型法作为等同均质材料的热机械Fe模型。此外,纤维增强和聚合物基质的失效行为是通过Hashin和Puck裂缝标准的共同特征,并且提出了裂缝能量的损伤传播算法,以解释损伤后的降级行为。通过FE模拟首先通过FE模拟研究了正交切割下90摄氏度的CFRP的微观变形机制,以及与切割温度演化,加工力演化,芯片形成,地下损坏和加工表面完整性的相关性。并且在室温下进行的相应实验。随后的FE模拟结果表明CFRP,即低温脆化和热软化的显着温度依赖性材料特征,对随后的切削过程产生强烈影响。此外,还解决了CFRP切割上的纤维取向和预处理温度之间的耦合效应。目前的调查结果提供了用于提高CFRP复合材料的可加工性的温度预处理策略的合理设计指导。

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