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Identification of Intermetallic Compounds and Its Formation Mechanism in Boron Steel Hot-Dipped in Al-7 wt.% Mn Alloy

机译:硼钢中金属间化合物及其形成机制在Al-7重量下热浸渍。%Mn合金

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In laser welding and hot stamping Al-Si-coated boron steel, there is a problem that the strength of the joint is lowered due to ferrite formation in the fusion zone. The purpose of this study is to develop an Al-7 wt.% Mn hot-dip coating in which Mn, an austenite stabilizing element, replaces the ferrite stabilizing element Si. The nucleation and formation mechanism of the reaction layer was studied in detail by varying the dipping time between 0 and 120 s at 773 °C. The microstructure and phase constitution of the reaction layer were investigated by various observational methods. Phase formation is discussed using a phase diagram calculated by Thermo-CalcTM. Under a 30 s hot-dipping process, no reaction occurred due to the formation of a Fe3O4 layer on the steel surface. The Fe3O4 layer decomposed by a reduction reaction with Al-Mn molten alloy, constituent elements of steel dissolved into a liquid, and the reaction-layer nucleus was formed toward the liquid phase. A coated layer consists of a solidified layer of Al and Al6Mn and a reactive layer formed beneath it. The reaction layer is formed mainly by inter-diffusion of Al and Fe in the solid state, which is arranged on the steel in the order of Al11Mn4 → FeAl3 (θ) → Fe2Al5 (η) phases, and the Fe3AlC (κ) in several nm bands formed at the interface between the η-phase and steel.
机译:在激光焊接和热冲压族涂覆的硼钢中,存在由于融合区中的铁氧体形成而降低了接头的强度。本研究的目的是开发Al-7重量%。%Mn热浸涂层,其中Mn,奥氏体稳定元素,取代了铁氧体稳定元素Si。通过在773℃下改变0和120s之间的浸渍时间来详细研究反应层的成核和形成机制。通过各种观察方法研究了反应层的微观结构和相结构。使用由Thermo-Calctm计算的相图讨论相位形成。在30秒的热浸过程下,由于钢表面上的Fe3O4层的形成而不会发生反应。通过与Al-Mn熔融合金的还原反应分解的Fe3O4层,溶解到液体中的钢的组成元素,并朝向液相形成反应层核。涂层层由Al和Al6Mn的凝固层组成,并且形成在其下方的反应层。反应层主要通过Al和Fe的间隙形成的固态,其按Al11mN4→Feal3(θ)→Fe2Al5(η)阶段的顺序排列在钢上,以及几个FE3ALC(κ)在η相和钢之间的界面处形成的nm条带。

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