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Understanding the dissolution mechanism of fused tungsten carbides in Ni-based alloys: An experimental approach

机译:了解熔融碳化钨在镍基合金中的溶解机理:一种实验方法

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Ni-based alloys reinforced with fused tungsten carbides (FTCs) become more and more important as hardfacing material in the mining and oil drilling industry. The reason for the high abrasive wear resistance of FTCs lies in the microstructure, characterized by an eutectoid morphology of mono-tungsten carbide (WC) and di-tungsten carbide (W2C). The benefit is a combination of high hardness and fracture toughness. However, FTCs are thermally instable and dissolute in case of high thermal loads during welding. An indicator for the dissolution of FTCs is the formation of a degradation seam along the interface to the surrounding Ni-based alloy. However, the formation mechanism of the degradation seam has not been fully understood and is diversely discussed. By means of an experimental approach, the formation of the degradation seam was reproduced experimentally and proven for the first time. The degradation is initiated by the selective dissolution of the phase W2C. Due to W and C dissolved in the melt, WC precipitates in the Ni-based alloy. Fused tungsten carbides act as nucleus and promote the precipitation of WC. The precipitation of WC leads to the formation of the typical degradation seam. (C) 2017 Elsevier B.V. All rights reserved.
机译:在采矿和石油钻探行业中,用熔凝碳化钨(FTC)增强的镍基合金作为表面堆焊材料变得越来越重要。 FTC的高耐磨性的原因在于微观结构,其特征在于单碳化钨(WC)和碳化二钨(W2C)的共析形态。好处是高硬度和断裂韧性的结合。但是,FTC不稳定,在焊接期间承受高热负荷的情况下会分解。 FTC溶解的指标是沿与周围的镍基合金的界面形成的降解接缝。然而,降解接缝的形成机理尚未被完全理解,并且被不同地讨论。通过实验方法,降解接缝的形成在实验上得以再现并首次得到证实。降解是由W2C相的选择性溶解引发的。由于W和C溶解在熔体中,因此WC在Ni基合金中沉淀。熔融碳化钨充当核并促进WC的沉淀。 WC的沉淀导致典型的降解接缝的形成。 (C)2017 Elsevier B.V.保留所有权利。

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