Passive Oxide Destruction by Dense Low-Energy Radionuclide i-Analyzed by Voltammetry ii-Analyzed by Chaos

G. Bellanger
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Abstract

The destruction of the passive oxide can be caused by the action of a radionuclide, which collides with the surface of the oxide. In this case, the β− nuclear particle produced by the decay of tritiated water is considered for corrosion, and it follows that the β− energy is absorbed first into the oxide. The penetration depth is sufficient for all the passive oxides to be destabilized. Destabilization was examined by voltammetry and by the electrochemical circuit in the passive potential. The corresponding pathway leads to the destruction of oxide. Tests carried out using a chaos data analyzer are an aid for expertise. Different behavior may occur depending on the passive potential and the β− density. The synchronization of phase space spectra and tests realized sector by sector make possible the interpretation of divergence leading to unstable oxide and oxide destruction at different passive potentials and for different β− particle densities.
致密低能放射性核素对氧化物的被动破坏——伏安法分析——混沌法分析
放射性核素与氧化物表面的碰撞可引起被动氧化物的破坏。在这种情况下,由氚化水衰变产生的β -核粒子被认为是腐蚀的原因,因此β -能首先被氧化物吸收。穿透深度足以使所有的钝化氧化物失稳。用伏安法和被动电位中的电化学回路检测了不稳定性。相应的途径导致氧化物的破坏。使用混沌数据分析仪进行的测试有助于获得专业知识。不同的被动电位和β -密度会产生不同的行为。相空间光谱的同步和逐区测试使得解释在不同被动电位和不同β -粒子密度下导致不稳定氧化物和氧化物破坏的散度成为可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
4.50
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