脉冲激光加工WC-Co硬质合金表层的组织与性能

G. Brover, E. E. Shcherbakova
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摘要

本文介绍了在脉冲激光辐射的极端热效应和变形效应下WC-Co硬质合金表层结构形成效应的金属物理研究结果。结果表明:175 MW/m2功率密度辐射处理后,硬质合金VK6、VK8、VK10的组织和性能与碳化物夹杂周围区域的状态有关,这些区域是由“碳化物键”成分边界上出现的各种应力(包括热致应力和相应力)引起的。结果是由于接触熔化导致碳化物边界区溶解,并伴随着“碳化物键”系统中边界处原子的相互传质,可能形成一层薄的非晶状超硬壳。这些工艺可以通过改变激光处理工艺参数和起始材料的成分,在硬质合金中创建具有一系列不同特性的组合物。当激光辐照功率密度为200 MW/m2时,涂层(钴、镍)硬质合金表面出现温度梯度和热应力,导致涂层熔融组分对流混合,渗透深度超过20 μm。同时,尽管激光脉冲时间极短(10-3 s),但在辐照区,钨、碳和钛原子的质随着硬化从碳化物的熔化边界区转移到相邻的键区是可能的。结果表明,经过高温激光加热后,碳化物与初始碳化物相比,形成了球状晶粒。它们是分散的,并且化学计量特征在与键相邻的局部区域发生变化(形成络合型碳化物CoxWyCz)。因此,由于这些过程,硬质合金的表层粘度和辐照产品的性能都有所提高。与未辐照的硬质合金样品相比,其极限强度提高了15%,强度和耐久性提高了30 - 40%。
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Structural organization and properties of surface layers of WC–Co hard alloys after pulsed laser processing
The article presents the metal-physical studies results of the structure formation effects in surface layers in the hard alloys of the WC–Co system under extreme thermal and deformation effects of pulsed laser radiation. It is shown that the structural organization and properties of hard alloys VK6, VK8, VK10 upon radiation treatment with a power density of 175 MW/m2 are determined by state of the zones which are formed around carbide inclusions due to the various kinds of stresses appearance at the “carbide-bond” composition boundaries, including thermostrictive and phase stresses. The result is dissolution of the carbides boundary zones due to contact melting, which is accompanied by mutual mass transfer of atoms at the boundaries in the “carbide-bond” system with the possible formation of a thin amorphous-like super hard shell. These processes make it possible to create compositions in hard alloys with a set of differentiated properties specified by varying the laser treatment process parameters and composition of the starting materials. After laser alloying with a radiation power density of 200 MW/m2, temperature gradients and thermal stresses appearing in the surface layers of hard alloys with coatings (cobalt, nickel) contribute to convective mixing of the molten coating components and their penetration into the hard alloy to a depth of more than 20 μm. Simultaneously, despite the extremely short laser pulse time (10–3 s), mass transfer of tungsten, carbon and titanium atoms from the melted boundary zones of carbides to the adjacent bond zones with their hardening is possible in the irradiated zones. It was established that after high-temperature laser heating, carbides, in contrast to the initial ones, achieve a globular shape of grains. They are dispersed, and stoichiometric characteristics change in the local zones bordering the bond (the complex type carbide CoxWyCz is formed). As a result, due to these processes, the surface layers’ viscosity of hard alloys and the irradiated products performance increase. Compared to non-irradiated samples of hard alloy, the ultimate strength increases by 15 %, strength and durability – by 30 – 40 %.
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