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Effect of excimer laser surface melting on intergranular corrosion cracking of the aluminum-lithium alloy 8090

机译:准分子激光表面熔化对铝锂合金8090晶间腐蚀开裂的影响

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Excimer laser surface melting of the aluminum alloy 8090 has been conducted with the aim of improving the intergranular corrosion resistance of the alloy. Both the results of the electrochemical and the intergranular corrosion cracking immersion tests show that the laser treatment significantly increases the intergranular corrosion resistance of the alloy, especially when the material is treated in nitrogen gas. The improvement in intergranular corrosion resistance is considered to be primarily due to the elimination of grain boundary Cu enriched precipitates in the laser-melted layer, which has effectively prohibited intergranular corrosion cracking. Besides, the reduction of Cu and Fe enriched constituent particles increases the pitting corrosion resistance of the alloy. As a result, a reduction in corrosion current density of one order of magnitude has been obtained for the laser-treated material. Moreover, a strong passivation has been obtained for the N_2-treated specimen. This is attributed to the presence of the chemically stable A1N phase in the laser-melted layer. The analysis of the electrochemical impedance data shows that the polarization resistance (R_p) of the laser-treated specimens is at least two orders of magnitude higher than that of the untreated specimen; while the double layer capacitance (C_(dl)) is about one order of magnitude lower.
机译:铝合金8090的准分子激光表面熔化已经进行,目的是提高合金的耐晶间腐蚀性。电化学和晶间腐蚀开裂浸没试验的结果均表明,激光处理显着提高了合金的晶间腐蚀耐受性,特别是当材料在氮气中处理时。耐晶间腐蚀性的提高被认为主要是由于消除了在激光熔融层中富含晶界的Cu的析出物,从而有效地抑制了晶间腐蚀的产生。此外,富集Cu和Fe的组成颗粒的减少增加了合金的耐点蚀性。结果,对于激光处理的材料,腐蚀电流密度降低了一个数量级。而且,已对N_2处理的样品获得了很强的钝化作用。这归因于在激光熔融层中存在化学稳定的AlN相。电化学阻抗数据的分析表明,激光处理过的样品的极化电阻(R_p)比未处理过的样品至少高两个数量级。而双层电容(C_(dl))大约低一个数量级。

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