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Development of semi-empirical model for tritium permeation under non-uniform temperature distribution at heat exchanger tube wall

机译:热交换器管壁温度分布不均匀下of渗透的半经验模型的建立

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Prediction and mitigation of tritium permeation is an important safety issue in high temperature gas-cooled reactors (HTGRs) especially for industrial applications such as hydrogen production and process heat. This study investigated the effect of non-uniform temperature distribution on the tritium permeation rate through the heat exchanger wall and improved the prediction capability of the existing models by reflecting it. To be more explicit, the effective diffusivity (D_m) and the effective temperature (T_m) was newly defined for the heat exchanger wall, and the effective weight (x_(eff)) was derived from one-dimensional diffusion equation. Based on the data collected by numerical methods, an empirical correlation for x_(eff) was developed by a linear regression method and it was validated by comparisons with randomly generated separate numerical solutions. As a result, the new permeation model based on the effective temperature (T_(eff)) showed very good agreement with the numerical results within an error of 1.28% on average while the existing model based on the average wall temperature (T_m) showed large discrepancies exceeding 200% in the maximum error. This study concludes that the newly developed tritium permeation model significantly improves the prediction capability on the tritium permeation rate through the heat exchangers. Which is the main tritium transport path in the high temperature reactor and the integrated industrial process systems.
机译:high气渗透的预测和缓解是高温气冷堆(HTGRs)的重要安全问题,尤其是对于氢生产和过程热等工业应用而言。本研究调查了温度分布不均匀对on通过热交换器壁的渗透率的影响,并通过反映它来提高现有模型的预测能力。更明确地说,新定义了换热器壁的有效扩散率(D_m)和有效温度(T_m),并从一维扩散方程式导出了有效重量(x_(eff))。基于数值方法收集的数据,通过线性回归方法建立了x_(eff)的经验相关性,并通过与随机生成的单独数值解进行比较进行了验证。结果,基于有效温度(T_(eff))的新渗透模型与数值结果显示出很好的一致性,平均误差为1.28%,而基于平均壁温(T_m)的现有模型显示出较大的渗透率。最大误差超过200%的差异。这项研究得出的结论是,新开发的tri渗透模型大大提高了通过热交换器的on渗透率的预测能力。这是高温反应器和集成工业过程系统中the的主要传输路径。

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