论文标题

在近原子尺度的7xxx-Al合金中重新审视应力腐蚀破裂和氢的含糖

Revisiting stress-corrosion cracking and hydrogen embrittlement in 7xxx-Al alloys at the near-atomic-scale

论文作者

Freixes, Martí López, Zhou, Xuyang, Zhao, Huan, Godin, Hélène, Peguet, Lionel, Warner, Timothy, Gault, Baptiste

论文摘要

氢化(HE)影响所有主要的高强度结构材料,因此是轻巧的主要障碍,例如车辆并有助于减少碳排放,并达到零净。高强度的7xxx系列铝合金可以满足光,高强度材料的需求,并且已经在航空航天中广泛用于减轻体重。但是,根据热机械和载荷状态,这些合金可以通过阳极溶解和氢化剂对应力腐蚀破裂(SCC)敏感。在这里,我们在近原子尺度上研究前方和传播SCC裂纹之后的粒内和粒间微结构。我们从与应用不严格相关的模型案例中移开,我们对工程AL-7XXX合金进行了行业标准测试。发现H隔离于平面阵列的位错和晶界,我们可以将其与氢增强局部可塑性(帮助)和氢增强的脱粘(HEDE)机制的综合作用相关联。我们在腐蚀的裂纹表面上报告了富含Mg的High富含H。我们显示出高达1个AT%O的1,即远高于氧化物 - 金属界面附近的O o的溶解度极限,而在矩阵中未发现H的H含量增加。我们提供了一系列的讨论点相对于结构缺陷的相互作用,溶质的运输,从而改变了对裂纹传播的阻力,这些电阻在SCC文献中被忽略了,并防止了准确的服务寿命预测。

Hydrogen embrittlement (HE) affects all major high-strength structural materials and as such is a major impediment to lightweighting e.g. vehicles and help reduce carbon-emissions and reach net-zero. The high-strength 7xxx series aluminium alloys can fulfil the need for light, high strength materials, and are already extensively used in aerospace for weight reduction purposes. However, depending on the thermomechanical and loading state, these alloys can be sensitive to stress-corrosion cracking (SCC) through anodic dissolution and hydrogen embrittlement. Here, we study at the near-atomic-scale the intra- and inter-granular microstructure ahead and in the wake of a propagating SCC crack. Moving away from model cases not strictly relevant to application, we performed an industry-standard test on an engineering Al-7XXX alloy. H is found segregated to planar arrays of dislocations and to grain boundaries that we can associate to the combined effects of hydrogen-enhanced localized plasticity (HELP) and hydrogen-enhanced decohesion (HEDE) mechanisms. We report on a Mg-rich H-rich amorphous oxide on the corroded crack surface and evidence of Mg-related diffusional processes leading to dissolution of the strengthening eta-phase precipitates ahead of the crack. We show ingress of up to 1 at% O, i.e. well above the solubility limit of O in Al, near the oxide-metal interface, while no increased level of H is found in the matrix. We provide an array of discussion points relative to the interplay of structural defects, transport of solutes, thereby changing the resistance against crack propagation, which have been overlooked across the SCC literature and prevent accurate service life predictions.

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