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首页> 外文期刊>Electrochimica Acta > C O 2 /CO formation from the (primary) anode process in?aluminium electrolysis using an electrothermodynamic model (for?coke crystallites)]]>
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C O 2 /CO formation from the (primary) anode process in?aluminium electrolysis using an electrothermodynamic model (for?coke crystallites)]]>

机译:<![CDATA [预测 c O 2 / CO从(主要)阳极过程中的铝电解使用电动机模型(用于焦晶石)]]] >

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摘要

AbstractAn electrothermodynamic model is proposed for the carbon anode consumption of the aluminium electrolysis process. Anode consumption produces a primary anode gas composed of CO andCO2. Experimentally, higher electrolysis potentials at the bath/anode interface promotes the formation ofCO2over CO, reducing the carbon consumption at the cost of greater power requirement. Based on the graphenic character of the anode nanostructure, the model successfully predicts this phenomena. The model predicts the charge capture phenomena occurring at the bath/anode interface during electrolysis as a function of the extent of the graphenic crystallites of the carbon anode. Calculated electrolysisCO2/CO ratios are also in good agreement with experimental values. The electrothermodynamic model for the interdependence between the structural, chemical and electrical properties of the anode graphenic crystallites and the primary anode gasCO2/CO ratio could improve industrial optimization of the anode consumption for various nanostructures and interface potentials. For example, it is predicted that increasing the maximal heat treatment temperature of the anode by100K(which improves the extent of the graphenic nanostructure) could lower the anode consumption by6%, similar to experimentally reported values (9%).Graphical abstractDisplay Omitted]]>
机译:<![CDATA [ 抽象 一种electrothermodynamic模型提出了铝电解过程的碳阳极消耗。阳极消耗产生和CO组成的主阳极气体 C 0 2 。在实验上,在该浴/阳极接口更高的电解电位促进 C 0 2 过CO,降低了碳消耗的更大的功率要求的成本。基于阳极纳米结构的石墨烯特性,该模型成功地预测这种现象。该模型预测电解作为碳阳极的石墨烯微晶的程度的函数期间在浴/阳极界面上产生的电荷捕获的现象。计算电解 C 0 2 / CO比也是在与实验值吻合。数学的xmlns:MML =“http://www.w3.org/1998/Math/MathML” altimg用于阳极石墨烯微晶的结构,化学和电性能和所述主阳极气体 C 0 2 / CO比能改善产业优化阳极消耗量的各种纳米结构和接口的电势。例如,预测到由 100 ķ (这提高了石墨烯纳米结构体的程度)可能会降低由 6 类似于实验报告的值( 9 图形抽象 显示中省略 ]]>

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