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Mechanistic Studies of Combustion and Structure Formation During Synthesis of Advanced Materials

机译:先进材料合成过程中燃烧和结构形成的机理研究

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摘要

Combustion in a variety of heterogeneous systems, leading to the synthesis of advanced materials, is characterized by high temperatures (2000-3500 K) and heating rates (up to 10(exp 6) K/s) at and ahead of the reaction front. These high temperatures generate liquids and gases which are subject to gravity-driven flow. The removal of such gravitational effects is likely to provide increased control of the reaction front, with a consequent improvement in control of the microstructure of the synthesized products. Thus, microgravity (mu-g) experiments lead to major advances in the understanding of fundamental aspects of combustion and structure formation under the extreme conditions of the combustion synthesis (CS) wave. In addition, the specific features of microgravity environment allow one to produce unique materials, which cannot be obtained under terrestrial conditions. The current research is a logic continuation of our previous work on investigations of the fundamental phenomena of combustion and structure formation that occur at the high temperatures achieved in a CS wave. Our research is being conducted in three main directions: 1) Microstructural Transformations during Combustion Synthesis of Metal-Ceramic Composites. The studies are devoted to the investigation of particle growth during CS of intermetallic-ceramic composites, synthesized from nickel, aluminum, titanium, and boron metal reactants. To determine the mechanisms of particle growth, the investigation varies the relative amount of components in the initial mixture to yield combustion wave products with different ratios of solid and liquid phases, under 1g and mu-g conditions; 2) Mechanisms of Heat Transfer during Reactions in Heterogeneous Media. Specifically, new phenomena of gasless combustion wave propagation in heterogeneous media with porosity higher than that achievable in normal gravity conditions, are being studied. Two types of mixtures are investigated: clad powders, where contact between reactants occurs within each particle, and mixtures of elemental powders, where interparticle contacts are important for the reaction; and 3) Mechanistic Studies of Phase Separation in Combustion of Thermite Systems. Studies are devoted to experiments on thermite systems (metal oxide-reducing metal) where phase separation processes occur to produce alloys with tailored compositions and properties. The separation may be either gravity-driven or due to surface forces, and systematic studies to elucidate the true mechanism are being conducted. The knowledge obtained will be used to find the most promising ways of controlling the microstructure and properties of combustion-synthesized materials. Low-gravity experiments are essential to create idealized an environment for insights into the physics and chemistry of advanced material synthesis processes.
机译:在各种异质系统中燃烧,导致合成高级材料,其特征是在反应前沿及前沿出现高温(2000-3500 K)和加热速率(最高10(exp 6)K / s)。这些高温会产生液体和气体,这些液体和气体会受到重力驱动的流动的影响。消除这种引力作用很可能提供对反应前沿的增强控制,从而改善了对合成产物的微观结构的控制。因此,微重力(​​mu-g)实验在理解燃烧合成(CS)波极端条件下的燃烧和结构形成的基本方面方面取得了重大进展。另外,微重力环境的特定特征允许人们生产独特的材料,这是在陆地条件下无法获得的。当前的研究是我们以前的工作的逻辑上的继续,该工作是关于在CS波中达到的高温下发生的燃烧和结构形成的基本现象的研究。我们的研究主要从三个方向进行:1)金属陶瓷复合材料燃烧合成过程中的微观结构转变。这些研究致力于研究由镍,铝,钛和硼金属反应物合成的金属间陶瓷复合材料在CS期间的颗粒生长。为了确定颗粒的生长机理,研究在1g和mu-g条件下,改变了初始混合物中各组分的相对含量,以产生固相和液相比率不同的燃烧波产物。 2)在非均质介质中反应过程中的传热机理。具体而言,正在研究无气燃烧波在孔隙度高于正常重力条件下可实现的非均质介质中传播的新现象。研究了两种类型的混合物:包覆粉末(其中每个颗粒之间发生反应物之间的接触)和元素粉末的混合物(其中颗粒间的接触对于反应很重要); 3)铝热系统燃烧相分离的机理研究。研究致力于铝热体系(还原金属氧化物的金属)的实验,其中发生相分离过程以生产具有定制成分和性能的合金。分离可能是重力驱动的,也可能是由于表面力引起的,目前正在进行系统研究以阐明其真实机理。所获得的知识将用于找到控制燃烧合成材料的微观结构和性能的最有前途的方法。低重力实验对于创建理想的环境至关重要,以深入了解高级材料合成过程的物理和化学。

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