Gu Cheng, Zeng Sheng, Peng Weili, You Guoqiang, Zhao Jianhua, Wang Yajun
College of Materials Science and Engineering, Chongqing University, Chongqing 400045, China.
National Engineering Research Center for Magnesium Alloys, Chongqing University, Chongqing 400044, China.
Materials (Basel). 2023 Aug 15;16(16):5626. doi: 10.3390/ma16165626.
A reliable bonding interface between steel and Ti alloy is required for producing a steel/Ti bimetal composite. In this study, molecular dynamic simulations and diffusion welding experiments using the hot isostatic pressing process were conducted to study the atomic diffusion at the Fe-Ti interface. The simulation results indicate that the diffusion layer thickness is thinner in single crystals compared to polycrystals at the same temperature. This difference may be explained by polycrystals having grain boundaries, which increase atomic disorder and facilitate diffusion. The radial distribution function (RDF) curves for Fe-Fe and Ti-Ti exhibit a similar pattern over time, with a main peak indicating the highest atom density within a specific radius range and relatively strong binding between the central atoms and their nearest neighbors. The observed changes in the diffusion coefficient with temperature in the simulations align well with the experimental results. This study enhances the understanding of Fe-Ti interface diffusion mechanism and provides valuable insights for broader applications of steel/Ti bimetal composites.
生产钢/钛双金属复合材料需要钢与钛合金之间可靠的结合界面。在本研究中,进行了分子动力学模拟和采用热等静压工艺的扩散焊接实验,以研究铁-钛界面处的原子扩散。模拟结果表明,在相同温度下,单晶中的扩散层厚度比多晶中的薄。这种差异可能是由于多晶具有晶界,晶界增加了原子无序性并促进了扩散。铁-铁和钛-钛的径向分布函数(RDF)曲线随时间呈现出相似的模式,主峰表明在特定半径范围内原子密度最高,且中心原子与其最近邻原子之间的结合相对较强。模拟中观察到的扩散系数随温度的变化与实验结果吻合良好。本研究增进了对铁-钛界面扩散机制的理解,并为钢/钛双金属复合材料的更广泛应用提供了有价值的见解。