Yu Hai, Liu Yunpeng, Hu Yunxiang, Ta Mingyang
School of Civil Engineering, North Minzu University, Yinchuan 750021, China.
School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing 100083, China.
Materials (Basel). 2022 Jun 4;15(11):4004. doi: 10.3390/ma15114004.
In order to investigate the effect of gradient interface on the mechanical properties of Cu/WC functional gradient materials, digital image correlation technique was used to analyze the mechanical characteristics of laminated Cu/WC functional gradient material under tension load in the layer direction. In this paper, the deformation information of the specimens is obtained by the digital image correlation method. In order to obtain high-precision measurement results, speckle patterns with small spots and uniform distribution are prepared on the specimen surface by using small sample speckle preparation technology. The tensile experimental results showed that the incorporation of WC particles significantly improved the stiffness and strength of Cu/WC composites. Meanwhile, the plastic strain and plastic strain rate are non-uniform in each layer of the five-layer Cu/WC functional gradient material under the tension load along the layer direction. The plastic strain and plastic strain rate in each layer gradually increase along with the decreasing direction of WC content. It is found, from the analysis of experimental results, the existence of the gradient interface has an obvious inhibitory effect on the increase in plastic strain rate along the decreasing direction of WC content, and the specimen fracture location also has a certain relationship with the plastic strain rate, which reflects the important influence of the gradient interface on the mechanical properties of Cu/WC functional gradient materials.
为了研究梯度界面对Cu/WC功能梯度材料力学性能的影响,采用数字图像相关技术分析了层状Cu/WC功能梯度材料在层向拉伸载荷作用下的力学特性。本文通过数字图像相关方法获取试样的变形信息。为了获得高精度的测量结果,采用小样本散斑制备技术在试样表面制备了斑点小且分布均匀的散斑图案。拉伸实验结果表明,WC颗粒的加入显著提高了Cu/WC复合材料的刚度和强度。同时,在沿层向的拉伸载荷作用下,五层Cu/WC功能梯度材料的每一层中塑性应变和塑性应变率都是不均匀的。每一层中的塑性应变和塑性应变率随着WC含量的降低方向逐渐增大。从实验结果分析发现,梯度界面的存在对沿WC含量降低方向的塑性应变率的增加有明显的抑制作用,并且试样的断裂位置也与塑性应变率有一定关系,这反映了梯度界面对Cu/WC功能梯度材料力学性能的重要影响。