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Optimization of the obtaining temperature of powder composite material B 4C – ZrB 2 by the boron carbide method

机译:硼碳化物法优化粉末复合材料B 4 C - ZRB 2 的优化

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Boron carbide is characterized by a unique combination of low density (2.52 g/cm~(3)), high hardness (up to 40 GPa), chemical inertness, the high melting point (2450 °C); for these reasons, the ceramics based on this compound have found application in a number of areas of state-of-the-art technologies. However, it is difficult to obtain dense B_(4)C-based ceramics because of a low value of the self-diffusion coefficient, low plastic deformation of this compound, and high sliding resistance between its grains. The use of modifying additives of transition metal diborides appears to be a promising approach to improving the operational characteristics of B_(4)C-based ceramics. They tend to activate the sintering process by means of activation energy reduction, which leads to a decrease in a grain size, an increase in density, strength, and fracture strength of sintered compositions. Zirconium diboride is often used for this purpose. The objective of the work is to study the changes occurring in the charge of boron carbide, zirconium dioxide and carbon when it is heated to determine the temperature of the complete reagents transformation into B_(4)C –ZrB_(2)composite mixture.
机译:碳化硼的特点是低密度的独特组合(2.52g / cm〜(3)),高硬度(高达40gPa),化学惰性,高熔点(2450°C);出于这些原因,基于该化合物的陶瓷已在最先进技术的多个领域中找到应用。然而,由于自扩散系数的低值,该化合物的低塑性变形,并且在其晶粒之间具有高的滑动性,难以获得致密的B_(4)C基陶瓷。改性过渡金属二硼化物的添加剂似乎是提高B_(4)C基陶瓷的操作特性的有希望的方法。它们倾向于通过激活能量降低激活烧结过程,这导致晶粒尺寸的降低,烧结组合物的密度,强度和断裂强度的增加。锆二硼化锆通常用于此目的。该工作的目的是研究在加热时碳化硼,二氧化锆和碳的电荷,二氧化锆和碳发生的变化,以确定完全试剂转化为B_(4)C -ZRB_(2)复合混合物的温度。

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