Wang Mengyu, Xiong Wei, Chang Dongxu, Yu Baoyi, Zhang Xianfeng, Zheng Li
School of Materials Science and Engineering, Shenyang University of Technology, Shenyang 110870, Liaoning, China.
School of Public Finance and Taxation, Inner Mongolia University of Finance and Economics, Hohhot 010070, Inner Mongolia, China.
Langmuir. 2024 Sep 3;40(35):18619-18630. doi: 10.1021/acs.langmuir.4c02146. Epub 2024 Aug 20.
Al/Ni energetic structural material with both high strength structural properties and high energy release functional properties can undergo a strong exothermic reaction under heating or impact loading conditions. In order to investigate the influence of microstructure on the mechanical properties and energy release characteristics of the Al/Ni energetic structural material, the materials with different Ni contents were prepared by cold spraying. With the increase of Ni particles, the microstructure inside the energetic structural material gradually changes from a continuous network structure of Al to a continuous network structure of Ni. The contact between Ni particles will make the stress transfer more uniform during the compression process of the energetic structural material, which enhances their strength. The results of heat-induced exothermic and shock-induced energy release show that the Al/Ni energetic structural material exhibits the best exothermic performance when Ni particles are uniformly dispersed and there are enough Al and Ni to make the material completely transform into the AlNi phase. The increase in the contact interface between Al and Ni particles facilitates the occurrence of a solid/solid reaction exothermic reaction between Al and Ni as well as the diffusion of Ni into the Al melt to generate the AlNi phase. The formation of the Ni continuous phase will lead to a reduction in the contact interface between Al and Ni, as well as an increase in porosity, which will result in a decrease in the amount of heat released during the diffusion reaction. This study will provide insights into the preparation of an Al/Ni energetic structural material with excellent properties.
具有高强度结构性能和高能量释放功能特性的铝镍含能结构材料,在加热或冲击加载条件下会发生强烈的放热反应。为了研究微观结构对铝镍含能结构材料力学性能和能量释放特性的影响,通过冷喷涂制备了不同镍含量的材料。随着镍颗粒的增加,含能结构材料内部的微观结构逐渐从铝的连续网络结构转变为镍的连续网络结构。镍颗粒之间的接触会使含能结构材料在压缩过程中的应力传递更加均匀,从而提高其强度。热诱导放热和冲击诱导能量释放的结果表明,当镍颗粒均匀分散且有足够的铝和镍使材料完全转变为AlNi相时,铝镍含能结构材料表现出最佳的放热性能。铝和镍颗粒之间接触界面的增加有利于铝和镍之间发生固/固反应放热反应以及镍扩散到铝熔体中生成AlNi相。镍连续相的形成将导致铝和镍之间的接触界面减少以及孔隙率增加,这将导致扩散反应过程中释放的热量减少。本研究将为制备具有优异性能的铝镍含能结构材料提供见解。