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首页> 外文期刊>International Journal of Fracture >Rate and microstructure influence on the fracture behavior of cemented carbides WC-Co and WC-Ni
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Rate and microstructure influence on the fracture behavior of cemented carbides WC-Co and WC-Ni

机译:对碳化物碳化物WC-CO和WC-NI骨折行为的速率和组织影响

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摘要

AbstractTungsten carbide has both industrial and military applications, from high strength end mill dies and geological drilling, to kinetic energy penetrators. In these extreme environments, an understanding of the dynamic fracture properties and the potential influence of grade microstructure is necessary. The present work investigates fracture behavior of cobalt and nickel cemented tungsten carbide with varying grain size and binder content. Notched hardmetal WC-Co and WC-Ni samples are impacted under mode-I (opening) fracture conditions, and the dynamic stress intensity factor is determined from digital image correlation using ultra high-speed imaging, and compared with quasi-static values. In both grain size and binder content variants examined, the dynamic fracture toughness increased from the quasi-static by a factor of 1.51–2.44. In addition, a 7% increase in cobalt binder content (while maintaining nominally identical average grain size) resulted in a 20% increase in quasi-static fracture toughness, from 8.62 to 10.38?MPa$$sqrt{ext {m}}$$m; while the same binder increase resulted in a 34% decrease in critical SIF from 21.07 to 15.72?MPa$$sqrt{ext {m}}$$m. The 6% nickel binder WC was found to have a 4.5% higher quasi-static fracture toughness than the 6% cobalt binder WC of the same grain size, but a statistically insignificant difference under dynamic loading. Overall, there is a 28% increase in the quasi-static fracture toughness of tungsten carbide samples with an increase of average grain size from 1 to 3?$$upmu $$μm, and under dynamic loading the larger grain WC shows a nominally identical increase in fracture toughness. These findings are discussed within the theory of classical dynamic fracture mechanics, the implications of the experimental configurations pursued, and the microstructural features are examined using fractography.]]>
机译:<![cdata [ <标题>抽象 ara id =“par1”>钨碳化物具有工业和军事应用,从高强度终端磨机模具和地质钻孔,进入动能渗透器。在这些极端环境中,需要了解动态骨折性质和级微结构的潜在影响。目前的作品研究了钴和镍碳酸镍碳化镍的骨折行为,改变晶粒尺寸和粘合剂含量。缺口硬质合脉WC-CO和WC-NI样品受到模式-i(开口)断裂条件下影响,并且使用超高速成像从数字图像相关确定的动态应力强度因子,并与准静态值进行比较。在检查晶粒尺寸和粘合剂含量变体中,动态断裂韧性从准静态增加了1.51-2.44。此外,钴粘合剂含量增加7%(同时保持名义上相同的平均晶粒尺寸)导致准静态断裂韧性增加20%,从8.62到10.38?MPa $$ Sqrt { Text $$ m ;虽然相同的粘合剂增加导致关键SIF的关键SIF的减少34%至15.72?MPA “BLACKWHITE”FILEREF =“10704_2017_237_ARTICE_IEQ2.gif”格式=“GIF” Rendition =“HTML”类型=“Linedraw”/> $$ SQRT { text {m}} $$ <数学XMLNS:XLink =“http://www.w3.org/1999/xlink”> m 。发现6%的镍粘合剂Wc具有比相同粒度的6%钴粘合剂WC更高的准静态断裂韧性,但在动态载荷下具有统计学上微不足道的差异。总体而言,碳化钨样品的准静态断裂韧性增加了28%,其平均粒度从1到3的平均粒度增加? $$ Upmu $$ μ M,并且在动态加载下,较大的谷物WC显示裂缝韧性的标称相同的增加。这些发现在经典动态骨折力学理论内,使用Fractography检查了追求的实验配置的含义和微观结构特征。 ]]>

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