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Formation Process of an LDHs Coating on Magnesium Alloy by a CO2 Pressurization Method

机译:二氧化碳加压法对镁合金LDHS涂层的形成过程

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摘要

The formation process of LDHs (layered double hydroxides) coating on magnesium alloy by the CO2 pressurization method was studied. The micro-structure was observed by OM, SEM and GAXRD. The weighted gain curve, apparent activation energy, and CO2 solubility curve were all calculated by equations. The potentiodynamic polarization curve, hydrogen evolution data, and immersion were analyzed by an electrochemical method. The results show that the LDHs coating was formed layer-by-layer. The formation positions were initially on the α-Mg phase, and then on the β-Mg17Al12 phase. It was found to be the most compact after 30 min. The LDHs coating began to appear to have severe cracks and holes over time. The formation process of the LDHs coating can be divided into three stages: a rapid growth stage (0–10 min), slow growth stage (10–20 min), and periodic growth stage (30 min, 1 h). The apparent activation energies in each of the three stages are 21.78, 31.86 and 34.92 kJ mol−1, respectively. The LDHs coating has a compact micro-structure and better anti-corrosion at a pressure of 3 MPa, a temperature of 50 °C and a time of 30 min. The CO2 pressurization promotes a formation reaction rate and achieves a high formation efficiency and good formation stability under the condition of zero pollution.
机译:研究了二氧化碳加压法对镁合金的LDH(层状双氢氧化物)涂层的形成过程。 OM,SEM和GAXRD观察微结构。加权增益曲线,表观激活能量和CO2溶解度曲线全部通过方程计算。通过电化学方法分析电位动力学曲线,氢化数据和浸渍。结果表明,LDHS涂层是由层形成的。最初在α-Mg相上,形成位置,然后在β-Mg17Al12相上。它被发现是30分钟后最紧凑的。随着时间的推移,LDHS涂层开始似乎具有严重的裂缝和孔。 LDHS涂层的形成过程可分为三个阶段:快速生长阶段(0-10分钟),缓慢生长阶段(10-20分钟)和周期性生长阶段(30分钟,1小时)。三个阶段中的每一个中的表观激活能量分别为21.78,31.86和34.92 kJ mol-1。 LDHS涂层具有紧凑的微结构,在3MPa的压力下具有更好的抗腐蚀,温度为50℃和30分钟的时间。 CO 2加压促进形成反应速率,在零污染条件下实现高形成效率和良好的形成稳定性。

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