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Corrosion Electrochemical Behavior of Nickel in the LiCl-KCl Melt Containing Lanthanum Trichloride

机译:含镧三氯化镧的镍镍镍的腐蚀电化学行为

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The effect of temperature on the corrosion of nickel (N1) in the range from 500 to 800°C during testing in the salt melt of the eutectic mixture of lithium and potassium chlorides with the addition of lanthanum trichloride in the amounts from 0.5 to 2 mol % is studied. The nickel corrosion rate increases with temperature, and lanthanum chloride additives decrease the corrosion rate at 500-650°C (inhibition of the shielding type due to the subsequent chemical reaction). The corrosion potential of nickel is approximately - 0.5 Vrelative to the silver chloride electrode at 500°C, insignificantly decreases with temperature, and is independent of the concentration of lanthanum chloride. To specify the mechanism of corrosion damage, current-voltage curves are recorded at lanthanum chloride contents of 0.5 and 2 mol % and sweep speeds of 10 and 20 mV/s. X-ray diffraction analysis and X-ray spectral microanalysis are used. The sweep speed exerts no effect on the irreversible electrochemical oxidation process, and the addition of lanthanum chloride increases the current density in the anodic region tenfold or more. A comparison of the corrosion rates obtained by gravimetric and chemical analytical methods suggests an electrochemical corrosion mechanism.
机译:温度对镍(N1)的腐蚀的影响在锂锂和氯化钾的共晶混合物的盐熔体中的500至800℃的范围内,加入三氯化镧的量为0.5-2摩尔学习%。镍腐蚀速率随温度的增加,氯化镧添加剂在500-650℃下降低腐蚀速率(由于随后的化学反应而抑制屏蔽型)。镍的腐蚀电位约为0.5倍氯化银电极,500℃,随温度微不足道地减少,并且与氯化镧的浓度无关。为了指定腐蚀损坏的机制,电流电压曲线以0.5和2mol%的氯化镧含量和10和20mV / s的扫描速度记录。使用X射线衍射分析和X射线光谱微基分析。扫描速度对不可逆的电化学氧化过程没有影响,并且加入氯化镧在阳极区内的电流密度增加或更高。通过重量法和化学分析方法获得的腐蚀速率的比较表明了电化学腐蚀机制。

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