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Corrosion of AGR Fuel Pin Steel Under Conditions Relevant to Permanent Disposal

机译:AGR燃料销钢在与永久处置有关的条件下的腐蚀

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摘要

Fuel pins from the UK's Advanced Gas-cooled Reactors (AGR) consist of ceramic UO2 fuel encased in a 20/25/Nb stainless steel cladding. Spent AGR fuel is currently reprocessed, but the option of direct disposal of spent fuel in a sealed, underground Geological Disposal Facility (GDF) is now under examination. It is assumed that over several thousand years groundwater from the environment will penetrate these barriers and come into contact with the fuel surface and steel cladding. Electrochemical studies on unsensitised samples of 20/25/Nb steel in simulant groundwater electrolytes have been performed, and show low corrosion currents, typically of the order μA/cm2, at the oxidative potential stresses found in such repositories. Whilst the cladding may therefore be considered to be passive short time periods, the very long timescales involved in a GDF project mean that these currents are sufficient to cause corrosion of the full thickness of the clad in a matter of decades. Furthermore, an increase in electrochemical potential from that expected of less than 50 mV is sufficient to initiate severe pitting corrosion in a matter of hours. It can therefore be assumed that there is a risk of cladding corrosion in a repository environment, and the corrosion products created may have implications for the chemistry of the spent fuel ceramic.
机译:英国先进气冷堆(AGR)的燃料销由包裹在20/25 / Nb不锈钢包层中的陶瓷UO2燃料组成。目前已对用过的AGR燃料进行后处理,但现在正在研究是否可以在密封的地下地质处置设施(GDF)中直接处理乏燃料。假定数千年来,来自环境的地下水将渗透这些屏障,并与燃料表面和钢包层接触。已对模拟地下水电解质中的20/25 / Nb钢的未敏化样品进行了电化学研究,结果表明,在此类储存库中发现的氧化电位应力下,腐蚀电流较低,通常约为μA/ cm2。因此,尽管包层可以被认为是无源的短时间段,但是GDF项目所涉及的时间非常长,这意味着这些电流足以在几十年之内腐蚀包层的整个厚度。此外,电化学电势从预期的不到50 mV的增加足以在数小时内引发严重的点蚀。因此可以假设在储存环境中存在覆层腐蚀的风险,并且产生的腐蚀产物可能对乏燃料陶瓷的化学性质有影响。

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