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High corrosion protection performance of the LDH/Ni-P composite coating on AM60B magnesium alloy

机译:AM60B镁合金对LDH / Ni-P复合涂层的高耐腐蚀性性能

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Electroless nickel-phosphorus deposit was applied on the AM60B alloy using the LDH coating as underlayer. The SEM micrographs indicated that the magnesium alloy was coated by the LDH film which showed flake-like morphology by increasing the hydrothermal processing time from 2 to 4 and 8 h. A uniform, compact, and non-porous Ni-P coating with cauliflower nodular morphology was obtained on the LDH underlayer. Formation of a regular nodular structure is ascribed to the formation of infinite number of Ni nuclei on the entire surface of the LDH-treated sample. Based on the AFM analysis, the Ni-P coating showed low surface roughness (R-a = 199.7 nm) due to the balanced growth of the nickel nodules in a direction perpendicular to the surface. The electroless coating had mixed amorphous-crystalline microstructure due to the medium phosphorus content (9.1 wt%) which was confirmed by the EDS and XRD methods. According to the EIS results, the corrosion resistance of the LDH layer enhanced from 2 to 32 k Omega cm(2), when the treatment time extended from 2 to 8 h. The PDP results also showed that the sample treated for 8 h had a corrosion current density (J(corr)) of approximately one seventh of the sample obtained after 2 h of treatment. Corrosion protection of the LDH film was attributed to its barrier properties and ion exchange capacity. Also, the Ni-P coating on the LDH underlayer showed excellent corrosion resistance during 6 h testing in 3.5 wt% NaCl, so that the polarization resistance value was about 93 k Omega cm(2) at the end of the immersion. Moreover, pore-free structure of the electroless coating was confirmed by the porosity test. The Ni-P coating showed suitable micro-hardness value (about 554 HV) and the thermal shock test confirmed its good adhesion.
机译:电解镍 - 磷沉积物涂布在使用LDH涂层作为底层的AM60B合金。的SEM显微照片表明,镁合金是由LDH膜通过增加从2水热处理时间至4和8小时显示片状形态涂覆。对LDH下层获得均匀的,紧凑,非多孔的Ni-P镀层与花椰菜结节性形态。常规结节结构的形成归因于镍核的无限数量的LDH处理的样品的整个表面上形成。基于所述AFM分析,将Ni-P涂层显示出低的表面粗糙度(R-A = 199.7纳米)由于镍结节在垂直于表面的平衡增长。非电解涂层具有混合非晶 - 结晶微观由于这是由EDS和XRD方法证实了介质磷含量(9.1重量%)。根据EIS结果中,该LDH层的耐腐蚀性提高的2至32千欧米茄厘米(2)中,当处理时间延长为2至8小时。该PDP结果还表明,8小时处理的样品具有约七分之一的治疗2小时后得到的样品的腐蚀电流密度(j(更正))。所述LDH膜的腐蚀保护是由于其阻隔性能和离子交换能力。另外,在LDH底层上的Ni-P镀层中的3.5重量%的NaCl 6小时测试显示优异的耐腐蚀性,因此,极化电阻值为约在浸没的端部93ķ欧米茄厘米(2)。另外,非电解涂层的无孔结构通过孔隙率试验证实。在Ni-P涂层显示合适的显微硬度值(约554 HV)和热冲击试验证实了它的良好的粘附性。

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