Xu Lizhi, Cheng Chun, Du Chengxin, Jiang Zhaoxiu, Du Zhonghua, Gao Guangfa
School of Mechanical Engineering, Nanjing University of Science and Technology, Nanjing 210094, China.
Polymers (Basel). 2020 Jul 21;12(7):1615. doi: 10.3390/polym12071615.
Based on mechanical properties of Polyamide 66 (PA66) under complex loading conditions, a Drucker-Prager yield criterion was employed to characterize its yield behavior. Then, a one-dimensional model, which contains a viscoelastic regime and a viscoplastic regime, was introduced and converted into a three-dimensional constitutive model. The three-dimensional model was implemented into a LS-DYNA software, which was used to predict the dynamic response of PA66 under Taylor impact conditions, whose corresponding tests were conducted by gas gun and recorded by high-speed camera. By contrasting the simulation results and these of the corresponding tests, the deformed shapes including the residual length, the maximum diameter and the shape of the mushroom head of the PA66 bars were found to be similar to these obtained from the tests, which verified the accuracy of the three-dimensional constitutive model, and proved that the model was able to be applied to high-rate impact loading conditions.
基于聚酰胺66(PA66)在复杂加载条件下的力学性能,采用Drucker-Prager屈服准则来表征其屈服行为。然后,引入了一个包含粘弹性区域和粘塑性区域的一维模型,并将其转换为三维本构模型。该三维模型被应用于LS-DYNA软件中,用于预测PA66在泰勒撞击条件下的动态响应,相应的试验通过气枪进行,并由高速摄像机记录。通过对比模拟结果和相应试验结果,发现PA66棒材的变形形状,包括残余长度、最大直径和蘑菇头形状,与试验得到的结果相似,这验证了三维本构模型的准确性,并证明该模型能够应用于高速冲击加载条件。