Three-dimensional modeling of grain structure growth within ceramic tool material

被引:3
作者
Wang, Dong [1 ,2 ]
Zhao, Bo [1 ]
Jiang, Man [1 ]
Zhao, Jianwen [1 ]
Lei, Yuyang [1 ]
机构
[1] Xian Technol Univ, Sch Mech Engn, Xian 710021, Peoples R China
[2] Ningbo Univ, Key Lab Impact & Safety Engn, Minist Educ, Ningbo 315211, Zhejiang, Peoples R China
基金
中国国家自然科学基金; 中国博士后科学基金;
关键词
Ceramic tool materials; SPS; Cellular automata; Grain evolution model; MECHANICAL-PROPERTIES; MICROSTRUCTURE; SIMULATION; EVOLUTION;
D O I
10.1016/j.jeurceramsoc.2023.11.013
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Ceramic cutting tool materials possess specific advantages, including high hardness, excellent wear resistance, and high chemical stability, making them unparalleled in the machining of difficult-to-process materials compared to traditional cutting tools. The mechanical performance of these materials is primarily determined by their microstructure. Therefore, it is necessary to simulate and optimize the microstructure of ceramic cutting tool materials to provide theoretical guidance for further enhancing their fracture toughness. In this paper, a simulation model based on sintering densification theory was proposed, coupling crystal plasticity with a threedimensional cellular automaton, to investigate the impact of nanoparticle content, sintering temperature, sintering pressure, and holding time on grain growth in composite ceramic materials using spark plasma sintering (SPS). Furthermore, an evolution model for grain growth of TiB2-TiC-SiC nanocomposite ceramic materials in cutting tools is established, and the optimal sintering process parameters are obtained. Finally, SPS experiments were conducted. Under the conditions of a sintering temperature of 1600 degrees C, holding time of 7 min, and sintering pressure of 40 MPa, optimal mechanical performance composite ceramic cutting tool materials were prepared. The experimental results, including a hardness of 25.6 GPa, fracture toughness of 7.1 MPa center dot m1/2, and flexural strength of 628.2 MPa, were consistent with the simulation outcomes. This indicates that the designed simulation model for nanocomposite ceramic grain growth reliably reflects the physical process of grain growth in the material and provides valuable guidance for further understanding the mechanisms underlying grain growth.
引用
收藏
页码:2000 / 2012
页数:13
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