Mititelu Ionuț, Petrișor Silviu Mihai, Savin Adriana, Šturm Roman, Bergant Zoran, Steigmann Rozina, Stanciu Mariana Domnica, Bârsănescu Paul Doru
Faculty of Mechanical Engineering, "Gheorghe Asachi" Technical University, 43 D. Mangeron Blvd., 700050 Iasi, Romania.
Nondestructive Testing Department, National Institute of R&D for Technical Physics, 47 D. Mangeron Blvd., 700050 Iasi, Romania.
Polymers (Basel). 2022 Oct 25;14(21):4507. doi: 10.3390/polym14214507.
Methods to predict the fracture of thin carbon fibre-reinforced polymers (CFRPs) under load are of great interest in the automotive industry. The manufacturing of composites involves a high risk of defect occurrence, and the identification of those that lead to failure increases the functional reliability and decreases costs. The performance of CFRPs can be significantly reduced in assembled structures containing stress concentrators. This paper presents a hybrid experimental-numerical method based on the Tsai-Hill criterion for behavior of thin CFRPs at complex loadings that can emphasize the threshold of stress by tracing the σ-τ envelope. Modified butterfly samples were made for shearing, traction, or shearing-with-traction tests in the weakened section by changing the angle of force application α. ANSYS simulations were used to determine the zones of maximum stress concentration. For thin CFRP samples tested with stacking sequences [0] and [(45/0)], the main mechanical characteristics have been determined using a Dynamic Mechanical Analyzer (DMA) and ultrasound tests. A modified Arcan device (AD) was used to generate data in a biaxial stress state, leading to the characterization of the material as a whole. The generated failure envelope allows for the prediction of failure for other combinations of normal and shear stress, depending on the thickness of the laminations, the stacking order, the pretension of the fasteners, and the method used to produce the laminations. The experimental data using AD and the application of the Tsai-Hill criterion serve to the increase the safety of CFRP components.
预测薄碳纤维增强聚合物(CFRP)在载荷作用下的断裂方法在汽车工业中备受关注。复合材料的制造存在很高的缺陷发生风险,识别那些导致失效的缺陷可提高功能可靠性并降低成本。在含有应力集中器的组装结构中,CFRP的性能可能会显著降低。本文提出了一种基于蔡-希尔准则的混合实验-数值方法,用于研究薄CFRP在复杂载荷下的行为,该方法可通过追踪σ-τ包络线来强调应力阈值。通过改变力的作用角度α,制作了改进的蝶形试样,用于在弱化截面进行剪切、拉伸或剪切-拉伸试验。利用ANSYS模拟来确定最大应力集中区域。对于采用[0]和[(45/0)]堆叠顺序测试的薄CFRP试样,使用动态力学分析仪(DMA)和超声测试确定了主要力学特性。使用改进的阿坎装置(AD)在双轴应力状态下生成数据,从而对材料整体进行表征。生成的失效包络线可根据层压板的厚度、堆叠顺序、紧固件的预紧力以及制造层压板的方法,预测其他正应力和剪应力组合下的失效情况。使用AD的实验数据和蔡-希尔准则的应用有助于提高CFRP部件的安全性。