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Evaluation of Li Electrodeposition into Al from LiCl-KCl Electrolyte

机译:从LiCl-Kcl电解质评价Li电沉积到Al中的

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This study investigated the effects of temperature and the current density on the production of an Al-Li master alloy using electrolysis. The current efficiency and the specific energy consumption were calculated according to Faraday's law to determine optimal conditions for production of the Al-Li master alloy. Solid aluminum and graphite were used as the cathode and the anode, respectively. The LiCl-KCl eutectic molten salt was used as a lithium-containing electrolyte. Different current densities were applied to obtain the optimum condition. In addition, different temperatures were investigated at the optimum current density during the deposition of lithium. Scanning electron microscopy, optical microscopy, and the X-ray diffraction analysis were used to investigate the microstructure and phase compositions. Atomic absorption spectroscopy was used to measure the existing lithium. The results showed that electrolysis at 620 degrees C and a current density of 0.9 A/cm(2) at 4 V for 3 h leads to the formation of an Al-17.43 wt % Li master alloy. The current efficiency and the specific energy consumption for the optimum conditions were found to be 96% and 16.08 kWh/kg, respectively.
机译:本文研究了温度和电流密度对电解法生产铝锂中间合金的影响。根据法拉第定律计算了电流效率和比能耗,确定了生产铝锂中间合金的最佳条件。固体铝和石墨分别用作阴极和阳极。将氯化锂-氯化钾共晶熔盐用作含锂电解液。采用不同的电流密度来获得最佳条件。此外,在最佳电流密度下研究了锂沉积过程中的不同温度。扫描电子显微镜、光学显微镜和X射线衍射分析用于研究微观结构和相组成。原子吸收光谱法被用来测量现存的锂。结果表明,在620℃和4v电流密度为0.9a/cm2的条件下电解3h,可形成Al-17.43wt%Li中间合金。最佳条件下的电流效率和比能耗分别为96%和16.08 kWh/kg。

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