Analysis of impact resistance for two groups of ceramic and composite materials

IF 0.3 Q4 MECHANICS
S. Zelepugin, V. Tolkachev, Il’ya M. Tyryshkin
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引用次数: 1

Abstract

Complex experimental and theoretical studies of shock-wave characteristics and penetration parameters are conducted to develop physical and mathematical models of deformation and fracture of ceramic and composite materials under high-velocity loading. The purpose of this work is to investigate the fracture of ceramic and composite targets and their efficiency in ceramic-containing structures. The experiments are performed using a ballistic test stand (Research Institute of Applied Mathematics and Mechanics, National Research Tomsk State University). The deformation and fracture of ceramic (aluminum oxide Al2O3, aluminum oxide (KVP-98, corundum), zirconium dioxide ZrO2, silicon carbide SiC) and composite (TiC-NiCr and TiB2-B4C) materials are studied experimentally in the impact velocity range of 0.5 - 6.5 km/s. The dynamics of the fracture of ceramic plates (silicon carbide and aluminum oxide) is analyzed. The fragments of the plates and their size distribution are given. The study of the impact resistance of ceramic and composite samples reveals two groups of materials with essentially different levels of efficiency. For both groups, the dependence of the efficiency parameter on the impact velocity demonstrates a decrease in the velocity range from 0.5 to 3.0 - 4.5 km/s and a subsequent increase when the impact velocity tends to 6.5 km/s. The obtained experimental results may be used during the validation and verification of numerical and analytical models, approaches, and software packages.
两组陶瓷及复合材料的抗冲击性能分析
对冲击波特性和侵彻参数进行了复杂的实验和理论研究,建立了陶瓷和复合材料在高速载荷下变形和断裂的物理和数学模型。本工作的目的是研究陶瓷和复合靶的断裂及其在含陶瓷结构中的效率。实验是在弹道试验台进行的(托木斯克国立大学应用数学和力学研究所)。实验研究了陶瓷(氧化铝Al2O3、氧化铝(KVP-98、刚玉)、二氧化锆ZrO2、碳化硅SiC)和复合(TiC-NiCr和TiB2-B4C)材料在0.5 ~ 6.5 km/s冲击速度范围内的变形和断裂。分析了陶瓷板(碳化硅和氧化铝)断裂的动力学过程。给出了薄片的碎片及其尺寸分布。陶瓷和复合材料样品的抗冲击性研究表明,两组材料具有本质上不同的效率水平。两组效率参数对冲击速度的依赖关系在0.5 ~ 3.0 ~ 4.5 km/s范围内呈下降趋势,在6.5 km/s范围内呈上升趋势。所得的实验结果可用于数值和分析模型、方法和软件包的验证和验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
0.90
自引率
66.70%
发文量
0
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