首页> 外文期刊>International Journal of Applied Mechanics and Engineering >On the Bonding Strength of Fe-Based Self-Fluxing Alloy Coating Deposited by Different Methods on the Steel Substrate
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On the Bonding Strength of Fe-Based Self-Fluxing Alloy Coating Deposited by Different Methods on the Steel Substrate

机译:用不同方法在钢基材上沉积的Fe基自芯合金涂层的粘接强度

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摘要

In the present paper, the bonding strength of Fe-based self-fluxing alloy coating deposited by plasma spraying, gluing and laser remelting and alloying on the steel substrate have been investigated. When flame melting, a globular structure is formed. Against the background of the solid solution carbide-boride phases are clearly distinguishable, between which the Fe–Fe2B and Fe–FeB eutectic colonies are situated. Laser remelting leads to the formation of metastable structures, reinforced with dendrites, consisting of alloyed Fe-α and Fe-γ. At the low laser beam speeds the coating is melted completely with the formation of a cast structure with the dendrites. When the laser beam speed is increased, the dendritic structure gets fragmented. Structures of coatings alloyed with B4C and remelted by the laser beam vary with the increase of the spot speed. The bonding strength of coating without subsequent remelting decreases by 4–5 times in comparison with remelted. The bonding strength of the reinforced glue coating has adhesive and adhesive-cohesive character. When the load increases in the coating, microcracks develop, which gradually spread to the center of the bonding surface. For plasma coatings after laser remelting without additional alloying, the maximum bonding strength is observed with the minimum laser beam speed. With increasing the laser beam speed it decreases almost 1.5 times. In glue coatings reinforced with B4C particulates by laser remelting, the bonding strength is lower by 1.2–1.4 times in comparison with plasma coating.
机译:在本文中,研究了等离子体喷涂沉积,胶合和激光重熔和合金化的Fe的自芯合金涂层的粘合强度已经研究过。当火焰熔化时,形成球状结构。在固体溶液的背景下,碳化物 - 硼化阶段明显可区分,其中Fe-Fe2b和Fe-Feuctic菌落位于其位于位置。激光重熔导致亚稳结构的形成,用树枝状体加固,由合金Fe-α和Fe-γ组成。在低激光束的速度下,涂层完全熔化,形成铸造结构与树枝状体。当激光束速度增加时,树突结构变质。用B4C合金的涂层结构并被激光束重温随着光斑速度的增加而变化。与再熔断相比,涂层的粘合强度无需随后的重熔减少4-5次。增强胶涂层的粘合强度具有粘合剂和粘合剂粘性性质。当涂层中的负载增加时,微裂纹显影,逐渐蔓延到粘合表面的中心。对于激光重熔后的等离子体涂层而无需额外合金化,通过最小激光束速度观察到最大粘合强度。随着激光束速度的增加,它降低了几乎1.5倍。在通过激光重熔用B4C颗粒加固的胶乳涂层中,与等离子体涂层相比,粘合强度低1.2-1.4倍。

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