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首页> 外文期刊>Materials Science and Engineering >Deformation microstructures and strengthening mechanisms for the wire + arc additively manufactured Al-Mg4.5Mn alloy with inter-layer rolling
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Deformation microstructures and strengthening mechanisms for the wire + arc additively manufactured Al-Mg4.5Mn alloy with inter-layer rolling

机译:夹层轧制线材+电弧增材制造的Al-Mg4.5Mn合金的变形组织与强化机制

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摘要

AbstractApplying inter-layer rolling to the wire+arc additively manufacturing (WAAM) process with increasing loads of 15kN, 30kN and 45kN, achieves excellent mechanical properties for 5087 (Al-Mg4.5-Mn) alloys. Compared with the as-deposited alloy, the average micro hardness, yield stress and ultimate tensile strength of 45kN rolled alloys reached to 107.2 HV, 240MPa and 344MPa, which were enhanced by 40%, 69% and 18.2%, respectively. Primary coarse grain structures were found to become greatly refined with an evident rolling texture after deformation. The strengthening mechanisms mainly are deformation strengthening, grain refinement, and solution strengthening. Meanwhile, the elongation of rolled alloys stays over 20%. The plasticity was not obviously diminished compared with the as-deposited alloy. This is two times greater than the commercial wrought Al-Mg alloy with similar composition. The excellent plasticity may be chiefly due to grain refinement, pores closure and reduction, and grain recrystallization during the WAAM re-heating process. The combination process of rolling deformation with WAAM deposition is an effective technique in refining microstructure and improving mechanical properties for AM aluminum alloys.
机译: 摘要 将层间轧制应用于15kN,30kN和45kN的增加载荷的线材+电弧增材制造(WAAM)工艺,可获得5087(Al- Mg4.5-Mn)合金。与沉积合金相比,45kN轧制合金的平均显微硬度,屈服应力和极限抗拉强度分别达到107.2 HV,240MPa和344MPa,分别提高了40%,69%和18.2%。发现原始粗晶粒结构在变形后变得非常细化,具​​有明显的滚动纹理。强化机制主要是变形强化,晶粒细化和固溶强化。同时,轧制合金的伸长率保持在20%以上。与沉积后的合金相比,可塑性没有明显降低。这是具有相似成分的商业锻造Al-Mg合金的两倍。优异的可塑性可能主要归因于WAAM再加热过程中的晶粒细化,孔的封闭和减少以及晶粒的再结晶。轧制变形与WAAM沉积相结合的过程是细化AM铝合金并改善其力学性能的有效技术。

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