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首页> 外文期刊>Journal of Nuclear Materials: Materials Aspects of Fission and Fusion >Electrochemical characterisation of CaCl2 deficient LiCl-KCl-CaCl2 eutectic melt and electro-deoxidation of solid UO2
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Electrochemical characterisation of CaCl2 deficient LiCl-KCl-CaCl2 eutectic melt and electro-deoxidation of solid UO2

机译:CaCl2不足的LiCl-KCl-CaCl2共熔熔体的电化学表征和固体UO2的电脱氧

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The CaCl2 deficient ternary eutectic melt LiCl-KCl-CaCl2 (50.5: 44.2: 5.3 mol %) was electrochemically characterised by cyclic voltammetry and polarization techniques in the context of its probable use as the electrolyte in the electrochemical reduction of solid UO2 to uranium metal. Tungsten (cathodic polarization) and graphite (anodic polarization) working electrodes were used in these studies carried out in the temperature range 623 K-923 K. The cathodic limit of the melt was observed to be set by the deposition of Ca2+ ions followed by Li+ ions on the tungsten electrode and the anodic limit by oxidation of chloride ions on the graphite electrode (chlorine evolution). The difference between the onset potential of deposition of Ca2+ and Li+ was found to be 0.241 V at a scan rate of 20 mV/s at 623 K and the difference decreased with increase in temperature and vanished at 923 K. Polarization measurements with stainless steel (SS) cathode and graphite anode at 673 K showed the possibility of low-energy reactions occurring on the UO2 electrode in the melt. UO2 pellets were cathodically polarized at 3.9 V for 25 h to test the feasibility of electro-reduction to uranium in the melt. The surface of the pellets was found reduced to U metal. (C) 2015 Elsevier B.V. All rights reserved.
机译:缺乏CaCl 2的三元共熔熔体LiCl-KCl-CaCl 2(50.5:44.2:5.3 mol%)通过循环伏安法和极化技术在可能用作电解质的过程中被电化学表征,该电解质可用于将固体UO2电化学还原为铀金属。在623 K-923 K的温度范围内进行的研究中,使用了钨(阴极极化)和石墨(阳极极化)工作电极。观察到熔体的阴极极限是通过沉积Ca2 +离子,然后沉积Li +来设定的钨电极上的铝离子和阳极极限,这是由于石墨电极上的氯离子氧化(氯析出)引起的。发现在623 K下20 mV / s的扫描速率下,Ca2 +和Li +的沉积开始电位之间的差异为0.241 V,并且该差异随着温度的升高而减小,并在923 K时消失。 SS)的阴极和673 K的石墨阳极显示出在熔体中的UO2电极上发生低能反应的可能性。将UO2球团在3.9 V下阴极极化25 h,以测试将铁还原为熔体中铀的可行性。发现粒料的表面还原为U金属。 (C)2015 Elsevier B.V.保留所有权利。

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