Manukyan Khachatur V, Shuck Christopher E, Rogachev Alexander S, Mukasyan Alexander S
Department of Physics, University of Notre Dame.
Department of Chemical and Biomolecular Engineering, University of Notre Dame.
J Vis Exp. 2015 Apr 2(98):e52624. doi: 10.3791/52624.
High-Energy Ball Milling (HEBM) is a ball milling process where a powder mixture placed in the ball mill is subjected to high-energy collisions from the balls. Among other applications, it is a versatile technique that allows for effective preparation of gasless reactive nanostructured materials with high energy density per volume (Ni+Al, Ta+C, Ti+C). The structural transformations of reactive media, which take place during HEBM, define the reaction mechanism in the produced energetic composites. Varying the processing conditions permits fine tuning of the milling-induced microstructures of the fabricated composite particles. In turn, the reactivity, i.e., self-ignition temperature, ignition delay time, as well as reaction kinetics, of high energy density materials depends on its microstructure. Analysis of the milling-induced microstructures suggests that the formation of fresh oxygen-free intimate high surface area contacts between the reagents is responsible for the enhancement of their reactivity. This manifests itself in a reduction of ignition temperature and delay time, an increased rate of chemical reaction, and an overall decrease of the effective activation energy of the reaction. The protocol provides a detailed description for the preparation of reactive nanocomposites with tailored microstructure using short-term HEBM method. It also describes a high-speed thermal imaging technique to determine the ignition/combustion characteristics of the energetic materials. The protocol can be adapted to preparation and characterization of a variety of nanostructured energetic composites.
高能球磨(HEBM)是一种球磨工艺,其中置于球磨机中的粉末混合物会受到磨球的高能碰撞。在其他应用中,它是一种通用技术,可有效制备具有高体积能量密度的无气反应性纳米结构材料(Ni+Al、Ta+C、Ti+C)。在高能球磨过程中发生的反应介质的结构转变,决定了所制备的含能复合材料的反应机理。改变加工条件可以微调所制备复合颗粒的球磨诱导微观结构。反过来,高能量密度材料的反应活性,即自燃温度、点火延迟时间以及反应动力学,取决于其微观结构。对球磨诱导微观结构的分析表明,试剂之间形成新鲜的无氧紧密高比表面积接触是其反应活性增强的原因。这表现为点火温度和延迟时间降低、化学反应速率增加以及反应有效活化能总体降低。该方案详细描述了使用短期高能球磨法制备具有定制微观结构的反应性纳米复合材料的方法。它还描述了一种用于确定含能材料点火/燃烧特性的高速热成像技术。该方案可适用于各种纳米结构含能复合材料的制备和表征。