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Influence of charging conditions on simulated temperature-programmed desorption for hydrogen in metals

机译:充电条件对金属氢模拟温度编程解吸的影响

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Failures attributed to hydrogen embrittlement are a major concern for metals so a better understanding of damage micro-mechanisms and hydrogen diffusion within the metal is needed. Local concentrations depend on transport phenomena including trapping effects, which are usually characterised by a temperature-programmed desorption method often referred to as Thermal Desorption Analysis (TDA). When the hydrogen is released from the specimen during the programmed heating, some desorption peaks are observed that are commonly related to detrapping energies by means of an analytical procedure. The limitations of this approach are revisited here and gaseous hydrogen charging at high temperatures is simulated. This popular procedure enables attaining high concentrations due to the higher solubility of hydrogen at high temperatures. However, the segregation behaviour of hydrogen into traps depends on charging time and temperature. This process and the subsequent cooling alter hydrogen distribution are numerically modelled; it is found that TDA spectra are strongly affected by the charging temperature and the charging time, both for weak and strong traps. However, the influence of ageing time at room temperature after cooling and before desorption is only appreciable for weak traps. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:归因于氢脆化的故障是金属的主要问题,因此需要更好地理解金属内金属内的损伤微机制和氢气扩散。局部浓度依赖于运输现象,包括捕获效果,其通常通过经常被称为热解吸分析(TDA)的温度编程的解吸方法。当在编程加热期间从样本中释放氢时,观察到一些解吸峰,其通常通过分析程序与剥离能量有关。这里重述该方法的局限性,并模拟高温下的气态氢气。这种流行的手术使得能够获得高浓度,因为氢在高温下较高的溶解度。然而,氢气进入陷阱的分离行为取决于充电时间和温度。该方法和随后的冷却改变氢分布是数值模拟的;发现TDA光谱受到充电温度和充电时间的强烈影响,用于弱和强大的陷阱。然而,冷却后和解吸前的室温下老化时间对弱陷阱仅意识到的影响。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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