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迈向混合复合材料切削的高级建模:界面区域的热不连续性

Towards an Advanced Modeling of Hybrid Composite Cutting: Heat Discontinuity at Interface Region.

作者信息

Salem Brahim, Mkaddem Ali, Ghazali Sami, Habak Malek, Felemban Bassem F, Jarraya Abdessalem

机构信息

LA2MP, National School of Engineering of Sfax, University of Sfax, Sfax 3038, Tunisia.

Department of Mechanical and Materials Engineering, FOE, University of Jeddah, Jeddah 21589, Saudi Arabia.

出版信息

Polymers (Basel). 2023 Apr 20;15(8):1955. doi: 10.3390/polym15081955.

Abstract

In this study, a thermomechanical model is developed to simulate a finite drilling set of Carbon Fibre Reinforced Polymers (CFRP)/Titanium (Ti) hybrid structures widely known for their energy saving performance. The model applies different heat fluxes at the trim plane of the two phases of the composite, owing to cutting forces, in order to simulate the temperature evolution at the workpiece during the cutting step. A user-defined subroutine VDFLUX was implemented to address the temperature-coupled displacement approach. A user-material subroutine VUMAT was developed to describe Hashin damage-coupled elasticity model for the CFRP phase while Johnson-Cook damage criteria was considered for describing the behavior of titanium phase. The two subroutines coordinate to evaluate sensitively the heat effects at the CFRP/Ti interface and within the subsurface of the structure at each increment. The proposed model has been first calibrated based on tensile standard tests. The material removal process was then investigated versus cutting conditions. Predictions show discontinuity in temperature field at interface that should further favor damage to localize especially at CFRP phase. The obtained results highlight the significant effects of fibre orientation in dominating cutting temperature and thermal effects over the whole hybrid structure.

摘要

在本研究中,开发了一种热机械模型,以模拟以节能性能广为人知的碳纤维增强聚合物(CFRP)/钛(Ti)混合结构的有限钻孔过程。由于切削力,该模型在复合材料两相的修整平面处施加不同的热通量,以模拟切削步骤中工件的温度演变。实现了一个用户定义的子程序VDFLUX来处理温度耦合位移方法。开发了一个用户材料子程序VUMAT来描述CFRP相的Hashin损伤耦合弹性模型,同时考虑Johnson-Cook损伤准则来描述钛相的行为。这两个子程序协同工作,以敏感地评估每个增量下CFRP/Ti界面以及结构次表面内的热效应。所提出的模型首先基于拉伸标准试验进行了校准。然后研究了材料去除过程与切削条件的关系。预测结果表明,界面处的温度场存在不连续性,这将进一步促使损伤局部化,尤其是在CFRP相。获得的结果突出了纤维取向在主导整个混合结构的切削温度和热效应方面的显著影响。

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