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Leaching of base metals from spent Ni-metal hydride batteries with emphasis on kinetics and characterization

机译:从废镍氢电池中浸出贱金属,重点在于动力学和表征

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Nickel-metal hydride (Ni-MH) batteries which generally contain nearly 55-60%Ni and 4-6% Co along with a few other metals may be considered an important resource for recycling and supply of these metals. In this study, leaching kinetics of nickel and cobalt, and other base metals from the spent Ni-MH batteries in sulfuric acid solutions have been investigated with an emphasis on the process characterization at different stages of the treatment. The maximum dissolution of nickel, cobalt, iron, manganese and zinc was found to be 91.6, 97.8, 65.5, 93.5 and 99.2%, respectively in a single stage under the optimum conditions comprising of 2 M H2SO4, 100 g/L pulp density and 348 K temperature after 120 min of leaching. Kinetic data for the dissolution of all the metals including the rare earths (as a group) showed the best fit to the chemical control shrinking core model. The activation energy of 8.7, 6.8, 7.12, 6.7 and 7.9 kJ/mol was determined for the leaching of base metals viz., nickel, cobalt, iron, manganese and zinc, respectively in the temperature range 305-348 K. With the help of the XRD phase analysis and the change in morphological features along with the elemental mapping in the leach residues with time and the untreated electrode material by SEM-EDS, the leaching mechanism was established. The process characterization corroborated the kinetic model for the leaching of metals which progressed through the chemical reaction of the lixiviant on the surface of the spherical particles of electrode powder. The XRD analysis of the residue showed the presence of metallic nickel which required stringent conditions for improved recovery of this metal. (C) 2015 Elsevier B.V. All rights reserved.
机译:通常包含近55-60%Ni和4-6%Co以及几种其他金属的镍氢(Ni-MH)电池可被视为回收和供应这些金属的重要资源。在这项研究中,已经研究了镍和钴以及其他贱金属从废镍氢电池在硫酸溶液中的浸出动力学,重点研究了处理不同阶段的工艺特性。在包括2 M H2SO4、100 g / L纸浆密度和2 g H浸出120分钟后,温度为348K。包括稀土(作为一个整体)在内的所有金属溶解的动力学数据表明,它最适合化学控制收缩核模型。分别在305-348 K的温度范围内测定了贱金属(镍,钴,铁,锰和锌)的浸出活化能8.7、6.8、7.12、6.7和7.9 kJ / mol。通过SEM-EDS对XRD的相分析,形态特征的变化以及浸出残渣中的元素随时间的变化以及未处理的电极材料进行了元素映射,建立了浸出机理。工艺表征证实了浸提动力学模型,该过程是通过浸滤剂在电极粉球形颗粒表面上的化学反应而发展的。残余物的XRD分析表明存在金属镍,这要求严格的条件以改善该金属的回收率。 (C)2015 Elsevier B.V.保留所有权利。

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