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Role of Interface between Ferrite and Martensite in Hydrogen Embrittlement Behavior of Ultra-high Strength Dual-phase Steel Sheets

机译:铁素体与马氏体界面在超高强度双相钢板氢脆行为中的作用

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The effects of interfacial conditions between the ferrite and martensite phases of an ultra-high strength dual phase (DP) steel sheet on its hydrogen embrittlement behavior has been investigated by a sustained tensile-loading test using as-quenched DP steel and tempered DP steel specimens. The yield ratio (yield stress/tensile strength) of the as-quenched DP steel is lower than that of the tempered DP steel. In the hydrogen thermal desorption analysis, the second desorption peak disappeared and the amount of absorbed hydrogen is decreased by tempering. Under the same applied stress in the sustained tensile-loading test, the time to fracture shows no significant difference between the two steels, but the critical applied stress for fracture is increased by tempering. A quasi-cleavage fracture occurs at the fracture initiation site of both steels. On the cross section near the fracture surface, many cracks nucleate in blocks or packets in martensite and the interface between prior austenite grains, but no cracks is observed in ferrite grains. Under applied stress higher than the yield stress of the as-quenched DP steel, fracture occurs in a short time. A unique intergranular-like morphology is observed at the fracture initiation area, and the crack propagates in blocks or packets in martensite or along the interface between the ferrite and martensite phases while avoiding ferrite grains. Early fracture is inhibited by tempering. When excessive plastic deformation is applied before the sustained tensile-loading test, the time to fracture and critical applied stress of the as-quenched DP steel decreased slightly. The results of the present study indicate that the interfacial conditions between ferrite and martensite play important roles in crack propagation associated with hydrogen embrittlement of the DP steel.
机译:通过使用淬火的DP钢和回火的DP钢试样进行持续的拉伸载荷试验,研究了超高强度双相(DP)钢板的铁素体相和马氏体相之间的界面条件对其氢脆行为的影响。 。淬火后的DP钢的屈服比(屈服应力/拉伸强度)低于回火后的DP钢。在氢热解吸分析中,第二个解吸峰消失并且通过回火减少了氢的吸收量。在持续拉伸载荷试验中,在相同的施加应力下,两种钢之间的断裂时间没有显着差异,但是回火会增加临界断裂应力。准裂解断裂发生在两种钢的断裂起始点。在断裂面附近的截面上,许多裂纹在马氏体和原始奥氏体晶粒之间的界面上成块或成簇成核,但在铁素体晶粒中未观察到裂纹。在高于淬火后的DP钢的屈服应力的施加应力下,断裂会在短时间内发生。在断裂起始区域观察到独特的晶间状形态,并且裂纹在马氏体中或在铁素体与马氏体相之间的界面处以块状或小包形式传播,同时避免了铁素体晶粒。回火可抑制早期断裂。在持续的拉伸载荷试验之前,如果施加过大的塑性变形,则淬火后的DP钢的断裂时间和临界施加应力会略微降低。本研究结果表明,铁素体与马氏体之间的界面条件在与DP钢氢脆相关的裂纹扩展中起着重要作用。

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