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Nickel-iron-based metallic inert anodes for aluminium electrolysis

机译:用于铝电解的镍铁基金属惰性阳极

摘要

The development of an inert anode for the aluminium electrolysis process is one of the key challenges facing the primary aluminium industry. Recent research has demonstrated that nickel-iron-based anodes offer promising performance. It has been claimed that the wear resistance of such anodes can be reduced by applying a protective metal oxide scale. Unfortunately, the behaviour of the scale during electrolysis is not well understood. In the present study, the behaviour of nickel-iron-based anodes having thermally grown protective oxide scales was investigated. Oxidised binary NixFey (x = 50-80 wt%) and ternary NixFeyCoz anodes (x/y(wt) = 1.85; z = 10, 30 and 50 wt%) were subjected to short-term electrolysis at 0.8 A/cm2 for up to 12 hours in a laboratory-scale cell. The presence of the thermally grown oxide scale was found to significantly improve the wear resistance and stability of the anodes. Unfortunately, the oxide scale was severely damaged during electrolysis. Iron and cobalt-rich anodes exhibited high wear rates, associated with selective formation and dissolution of Fe2O3 and Co3O4. Nickel-rich anodes (≥ 80 wt%) exhibited a tendency to passivate, probably associated with formation of nickel fluoride. Failure of the anodes was observed during extended electrolysis, largely due to spalling of the protective scale. The anode geometry was found to be of critical importance, influencing the local current density, level of oxide strain and oxygen bubble flow. Under very high current densities, direct dissolution of the metal was observed.The oxidation behaviour of a range of binary and ternary Ni-Fe-based alloys was studied in air, with a view to identifying the optimum alloy composition and conditions of thermal pre-oxidation. Alloys containing 60-68 wt% Ni, 25-31 wt% Fe and 3-8 wt% Co were found to offer low oxidation rates, associated with the suppression of Fe2O3 and Co3O4 formation. Preferential formation of the quaternary (Ni,Co)xFe3-xO4 spinel was observed. To achieve a compromise between scale thickness, scale adhesion and ferrite spinel formation, oxidation temperatures of 800-900°C and times of 24-48 h were found to be optimal.
机译:铝电解工艺用惰性阳极的开发是铝工业的主要挑战之一。最近的研究表明,镍铁基阳极具有令人鼓舞的性能。已经声称,可以通过施加保护性金属氧化物水垢来降低这种阳极的耐磨性。不幸的是,电解过程中水垢的行为还没有被很好地理解。在本研究中,研究了具有热生长的保护性氧化皮的镍铁基阳极的行为。将氧化的二元NixFey(x = 50-80 wt%)和三元NixFeyCoz阳极(x / y(wt)= 1.85; z = 10、30和50 wt%)进行0.8 A / cm2的短期电解在实验室规模的单元中需要12个小时。发现热生长的氧化皮的存在显着改善了阳极的耐磨性和稳定性。不幸的是,在电解过程中氧化皮被严重破坏。富含铁和钴的阳极表现出较高的磨损率,与Fe2O3和Co3O4的选择性形成和溶解有关。富镍阳极(≥80 wt%)表现出钝化趋势,可能与氟化镍的形成有关。在延长的电解期间观察到阳极的故障,这主要是由于保护垢的剥落。发现阳极几何形状至关重要,它影响局部电流密度,氧化物应变水平和氧气气泡流动。在极高的电流密度下,观察到金属的直接溶解。研究了一系列二元和三元镍铁基合金在空气中的氧化行为,以期确定最佳的合金成分和热预成型条件。氧化。发现包含60-68wt%的Ni,25-31wt%的Fe和3-8wt%的Co的合金提供低的氧化速率,与抑制Fe 2 O 3和Co 3 O 4的形成有关。观察到四价(Ni,Co)xFe3-xO4尖晶石的优先形成。为了在氧化皮厚度,氧化皮附着力和铁素体尖晶石形成之间达成折衷,氧化温度为800-900°C,时间为24-48h是最佳的。

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