首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >The role of Y2O3, Cu, Mo and Mo2C additives on optimizing the corrosion resistance of WC-6Co cemented carbide in HCl and NaOH solutions
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The role of Y2O3, Cu, Mo and Mo2C additives on optimizing the corrosion resistance of WC-6Co cemented carbide in HCl and NaOH solutions

机译:Y2O3,Cu,Mo和Mo2C添加剂在优化HCl和NaOH溶液中优化WC-6Co硬质合金的耐腐蚀性的作用

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摘要

WC-6Co cemented carbide is obtained via Spark Plasma Sintering (SPS) using ammonium metatungstate, cobalt acetate and glucose as raw materials. The effects of additive type (Y2O3, Cu, Mo and Mo2C) on the microstructure and anti-corrosion ability of WC-6Co cemented carbide in HCl and NaOH solutions are investigated. The results show that the addition of Y2O3, Cu, Mo and Mo2C additives can enhance the anti-corrosion ability of WC-6Co cemented carbide. Among them, the enhancement effect of Mo is much better than other additives in grain refinement and performance improvement. By analysis, the action process and mechanism of Mo on the corrosion resistance of WC-6Co cemented carbide in different solutions are different. In HCl solution, the formation of MoO3 can adhere to the contact interface to segregate corrosion solution, and then inhibit the conduction of electrons. However, MoO3 is easily transformed into soluble HMoO42- and MoO42- in NaOH solution. Meanwhile, Mo can refine the WC grains to increase the number of WC/Co grain boundaries. In the early stage of corrosion process, the stable Co(OH)(2) is prone to form at the grain boundaries and then adheres to the interface to isolate corrosion medium and electron conduction, thereby improving the anti-corrosion ability of WC-6Co cemented carbide. (C) 2020 Elsevier B.V. All rights reserved.
机译:使用碳氮烯烃,醋酸钴和葡萄糖作为原料,通过火花血浆烧结(SPS)获得WC-6CO硬质合金。研究了添加剂型(Y2O3,Cu,Mo和Mo2c)对HCl和NaOH溶液中WC-6Co硬质合金的微观结构和抗腐蚀能力的影响。结果表明,添加Y2O3,Cu,Mo和MO2C添加剂可以增强WC-6CO硬质合金的抗腐蚀能力。其中,MO的增强效果比晶粒细化和性能改善的其他添加剂更好。通过分析,MO对不同溶液中WC-6CO硬质合金耐腐蚀性的动作过程和机制不同。在HCl溶液中,MOO3的形成可以粘附到接触界面以隔离腐蚀溶液,然后抑制电子的传导。然而,MOO3易于转化为可溶性HMOO42-和MOO42-在NaOH溶液中。同时,MO可以优化WC谷物以增加WC / CO晶界的数量。在腐蚀过程的早期阶段,稳定的CO(OH)(2)易于在晶界形成,然后粘附在界面中以隔离腐蚀介质和电子传导,从而提高WC-6CO的防腐能力硬质合金。 (c)2020 Elsevier B.v.保留所有权利。

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