Chen Siyuan, Li Liang
Wuhan National High Magnetic Field Center, Huazhong University of Science and Technology, Wuhan 430074, China.
State Key Laboratory of Advanced Electromagnetic Engineering and Technology, Huazhong University of Science and Technology, Wuhan 430074, China.
Polymers (Basel). 2024 Jan 25;16(3):334. doi: 10.3390/polym16030334.
Accurate structural analyses of continuous fiber-reinforced polymers (FRPs) are imperative for diverse engineering applications, demanding efficient material constitutive models. Nonetheless, the constitutive modeling of FRPs is complicated by the nonlinear behavior resulting from internal damages and the inherent plasticity. Consequently, this study presents an innovative anisotropic constitutive model for FRPs, designed to adeptly capture both the damage evolution and plasticity. All requisite parameters can be easily obtained through fundamental mechanical tests, rendering the model practical and user-friendly. The model utilizes the three-dimensional Puck criteria to determine damages, initiating the evolution process through a combination of continuum damage mechanics and linear stiffness attenuation methods. This evolution is coupled with a one-parameter plastic model. Subsequently, the numerical implementation method, integrated into ANSYS, is detailed. This emphasizes the Cauchy stress and consistent tangent stiffness solution strategy. Finally, the effectiveness of the developed model is demonstrated through comprehensive verification, encompassing existing biaxial tension and open-hole-tension tests conducted on carbon and glass FRP laminates. The simulation results exhibit a remarkable correspondence with the experimental data, validating the reliability and accuracy of the proposed model.
对于各种工程应用而言,对连续纤维增强聚合物(FRP)进行精确的结构分析至关重要,这需要高效的材料本构模型。然而,FRP的本构建模因内部损伤和固有塑性导致的非线性行为而变得复杂。因此,本研究提出了一种创新的FRP各向异性本构模型,旨在巧妙地捕捉损伤演化和塑性。所有必要参数都可以通过基本力学试验轻松获得,使该模型实用且用户友好。该模型利用三维普克准则来确定损伤,通过连续损伤力学和线性刚度衰减方法的组合启动演化过程。这种演化与单参数塑性模型相结合。随后,详细介绍了集成到ANSYS中的数值实现方法。这强调了柯西应力和一致切线刚度求解策略。最后,通过全面验证证明了所开发模型的有效性,包括对碳和玻璃FRP层压板进行的现有双轴拉伸和开孔拉伸试验。模拟结果与实验数据显示出显著的一致性,验证了所提出模型的可靠性和准确性。