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Microstructure and fracture toughness of a WC-Fe cemented carbide layer produced by a diffusion-controlled reaction

机译:通过扩散控制反应产生的WC-Fe硬质合金层的微观结构和断裂韧性

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摘要

To improve the mechanical properties of the surface of iron-based alloys, a tungsten carbide-iron (WC-Fe) cemented carbide layer is produced on an alloy by adopting an isothermal annealing process, which was performed at 1050 degrees C for 4 h. By deeply etching the obtained sample, the morphologies of the WC ceramic grains in the WC-Fe hardmetal layer are characterized via scanning electron microscopy. The present results reveal three distinct morphologies consisting of rectangular, triangular prism and multi-layered shapes. Furthermore, the mechanical properties and fracture toughness of the WC-Fe layer are investigated through combined nanoindentation and Vickers indentation techniques. Nanoindentation testing is performed in a load range of 100 to 450 mN. Based on the data collected from the nanoindentation results, the average values of the hardness, Young' modulus and deformation ratio are evaluated, and the fracture toughness is determined to have a value of 3.08 MPa.m(1/2 )at 450 mN. In the Vickers indentation technique, however, by identifying the crack type and choosing the appropriate model, the fracture toughness is calculated to be 1.85-3.44 MPa.m(1/2) at applied loads ranging from 0.98 to 4.9 N. The obtained fracture toughness results exhibit good consistence between the nanoindentation and Vickers indentation methods.
机译:为了改善铁基合金表面的机械性能,通过采用等温退火工艺在合金上生产碳化钨 - 铁(WC-Fe)碳化物层,其在1050℃下进行4小时。通过深度蚀刻所得样品,通过扫描电子显微镜表征WC-Fe硬粒层中的WC陶瓷晶粒的形态。目前的结果揭示了由矩形,三角形棱柱和多层形状组成的三种不同的形态。此外,通过组合纳米凸缘和维氏压痕技术来研究WC-Fe层的机械性能和断裂韧性。纳米狭窄测试在100至450mN的负载范围内进行。基于从纳米狭窄结果收集的数据,评估硬度,幼年模量和变形比的平均值,并且确定裂缝韧性在450mN下具有3.08mPa.m(1/2)的值。在维氏压痕技术,然而,通过识别裂缝类型和选择适当的模型,断裂韧性被计算为在应用负载范围从0.98至4.9 N的所得断裂1.85-3.44 MPa.m(1/2)韧性结果表现出纳米凸缘和维氏压痕方法之间的良好一致性。

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