论文标题
高强度Al-Alsoys中的氢诱捕和封闭
Hydrogen trapping and embrittlement in high-strength Al-alloys
论文作者
论文摘要
关于运输的温室气体排放的法规越来越严格,激发了重新审视用于车辆的材料的努力。飞机中经常使用的高强度校友可以帮助减轻汽车的重量,但容易受到环境降解的影响。氢(h)“支撑”通常被指向主要的罪魁祸首,但是,诸多罪魁祸首的机制是难以捉摸的:对H中H内部H的原子尺度分析仍然是一个挑战,这防止了采用合金设计策略来增强材料的耐用性。在这里,我们成功地对二相粒子和高强度7xxx al-Alyoy中的晶界的H进行了接近原子的量表分析。我们使用这些观察结果来指导原子AB-Initio计算,这些计算表明合金元件的共隔离和H有利于晶界的脱落,而H的强烈分配到第二倍范围内则消除了矩阵中的溶质H,从而阻止了H-物体。我们的见解进一步推进了对Al-Al-ailoys H辅助的互惠的机械理解,强调了H诱饵在阻碍破裂和指导新合金设计中的作用。
Ever more stringent regulations on greenhouse gas emissions from transportation motivate efforts to revisit materials used for vehicles. High-strength Al-alloys often used in aircrafts could help reduce the weight of automobiles, but are susceptible to environmental degradation. Hydrogen (H) "embrittlement" is often pointed as the main culprit, however, the mechanisms underpinning failure are elusive: atomic-scale analysis of H inside an alloy remains a challenge, and this prevents deploying alloy design strategies to enhance the materials' durability. Here we successfully performed near-atomic scale analysis of H trapped in second-phase particles and at grain boundaries in a high-strength 7xxx Al-alloy. We used these observations to guide atomistic ab-initio calculations which show that the co-segregation of alloying elements and H favours grain boundary decohesion, while the strong partitioning of H into the second-phases removes solute H from the matrix, hence preventing H-embrittlement. Our insights further advance the mechanistic understanding of H-assisted embrittlement in Al-alloys, emphasizing the role of H-traps in retarding cracking and guiding new alloy design.