Valluri Siva Kumar, Schoenitz Mirko, Dreizin Edward
O.H. York Department of Chemical and Materials Engineering, New Jersey Institute of Technology, Newark, NJ 07102, USA.
High-Energy and Special Materials Research Laboratory, Tomsk State University, 634050 Tomsk, Russia.
Nanomaterials (Basel). 2020 Nov 28;10(12):2367. doi: 10.3390/nano10122367.
Fuel-rich composite powders combining elemental Si with the metal fluoride oxidizers BiF and CoF were prepared by arrested reactive milling. Reactivity of the composite powders was assessed using thermoanalytical measurements in both inert (Ar) and oxidizing (Ar/O) environments. Powders were ignited using an electrically heated filament; particle combustion experiments were performed in room air using a CO laser as an ignition source. Both composites showed accelerated oxidation of Si when heated in oxidizing environments and ignited readily using the heated filament. Elemental Si, used as a reference, did not exhibit appreciable oxidation when heated under the same conditions and could not be ignited using either a heated filament or laser. Lower-temperature Si fluoride formation and oxidation were observed for the composites with BiF; respectively, the ignition temperature for these composite powders was also lower. Particle combustion experiments were successful with the Si/BiF composite. The statistical distribution of the measured particle burn times was correlated with the measured particle size distribution to establish the effect of particle sizes on their burn times. The measured burn times were close to those measured for similar composites with Al and B serving as fuels.
通过猝熄反应球磨制备了将元素硅与金属氟化物氧化剂BiF和CoF相结合的富燃料复合粉末。在惰性(Ar)和氧化(Ar/O)环境中,使用热分析测量来评估复合粉末的反应活性。使用电加热丝点燃粉末;在室内空气中使用CO激光作为点火源进行颗粒燃烧实验。两种复合材料在氧化环境中加热时均显示出硅的加速氧化,并且使用加热丝很容易点燃。用作参考的元素硅在相同条件下加热时未表现出明显的氧化,并且不能使用加热丝或激光点燃。对于含BiF的复合材料,观察到较低温度下形成氟化硅并发生氧化;这些复合粉末的点火温度也较低。Si/BiF复合材料的颗粒燃烧实验取得成功。将测量的颗粒燃烧时间的统计分布与测量的颗粒尺寸分布相关联,以确定颗粒尺寸对其燃烧时间的影响。测量的燃烧时间与以Al和B为燃料的类似复合材料测量的燃烧时间相近。