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首页> 外文期刊>Metals >Significant Corrosion Resistance in an Ultrafine-Grained Al6063 Alloy with a Bimodal Grain-Size Distribution through a Self-Anodic Protection Mechanism
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Significant Corrosion Resistance in an Ultrafine-Grained Al6063 Alloy with a Bimodal Grain-Size Distribution through a Self-Anodic Protection Mechanism

机译:通过自阳极保护机制,具有双峰粒度分布的超细晶粒Al6063合金具有显着的耐腐蚀性

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The bimodal microstructures of Al6063 consisting of 15, 30, and 45 vol. % coarse-grained (CG) bands within the ultrafine-grained (UFG) matrix were synthesized via blending of high-energy mechanically milled powders with unmilled powders followed by hot powder extrusion. The corrosion behavior of the bimodal specimens was assessed by means of polarization, steady-state cyclic polarization and impedance tests, whereas their microstructural features and corrosion products were examined using optical microscopy (OM), scanning transmission electron microscopy (STEM), field emission scanning electron microscopy (FE-SEM), electron backscattered diffraction (EBSD), energy dispersive spectroscopy (EDS), and X-ray diffraction (XRD) techniques. The bimodal Al6063 containing 15 vol. % CG phase exhibits the highest corrosion resistance among the bimodal microstructures and even superior electrochemical behavior compared with the plain UFG and CG materials in the 3.5% NaCl solution. The enhanced corrosion resistance is attributed to the optimum cathode to anode surface area ratio that gives rise to the formation of an effective galvanic couple between CG areas and the UFG matrix. The operational galvanic coupling leads to the domination of a “self-anodic protection system” on bimodal microstructure and consequently forms a uniform thick protective passive layer over it. In contrast, the 45 vol. % CG bimodal specimen shows the least corrosion resistance due to the catastrophic galvanic corrosion in UFG regions. The observed results for UFG Al6063 suggest that metallurgical tailoring of the grain structure in terms of bimodal microstructures leads to simultaneous enhancement in the electrochemical behavior and mechanical properties of passivable alloys that are usually inversely correlated. The mechanism of self-anodic protection for passivable metals with bimodal microstructures is discussed here for the first time.
机译:Al6063的双峰微观结构由15、30和45 vol。通过将高能机械研磨的粉末与未研磨的粉末混合,然后进行热粉末挤出,可以合成超细颗粒(UFG)基质中的%粗颗粒(CG)带。通过极化,稳态循环极化和阻抗测试评估了双峰样品的腐蚀行为,而使用光学显微镜(OM),扫描透射电子显微镜(STEM),场发射扫描检查了它们的微观结构特征和腐蚀产物电子显微镜(FE-SEM),电子反向散射衍射(EBSD),能量色散光谱(EDS)和X射线衍射(XRD)技术。含15vol。%的双峰Al6063。与在3.5%NaCl溶液中的普通UFG和CG材料相比,%CG相在双峰微结构中表现出最高的耐腐蚀性,甚至具有优异的电化学性能。增强的耐腐蚀性归因于最佳的阴极与阳极表面积之比,从而在CG区域和UFG基体之间形成有效的电偶。可操作的电流耦合导致双峰微观结构上的“自阳极保护系统”占主导地位,因此在其上形成均匀的厚保护钝化层。相反,45卷。 %CG双峰试样由于UFG区域的灾难性电偶腐蚀而显示出最低的耐腐蚀性。 UFG Al6063的观察结果表明,根据双峰微结构对晶粒结构进行冶金修整可同时增强通常呈反相关关系的可钝化合金的电化学行为和机械性能。本文首次讨论了具有双峰微结构的可钝化金属的自阳极保护机理。

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