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Calculation of Gas Carburizing Kinetics from Carbon Concentration Profiles based on Direct Flux Integration

机译:基于直接通量积分的碳浓度曲线计算气体渗碳动力学

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Initiated by the need of industry for gas carburizing process control and optimization, this paper focuses on understanding the effect of the time, temperature and carbon potential on the mass transfer coefficient and carbon diffusivity in Austenite. A method for direct flux integration has previously been proposed to calculate these kinetic parameters from the experimental carbon concentration profiles. AISI 8620 steel discs were gas carburized at different levels of atmosphere carburizing potential for selected austenizing temperatures. Analyses of the carburized parts included experimental measurement of weight gain, surface carbon concentration and carbon concentration profiles. The time-dependent weight gain and surface carbon content measurements allowed calculation of the time average mass transfer coefficient, while carbon concentration profiles were used to calculate the concentration dependent carbon diffusivity for selected process parameters. Excellent agreement was found between the calculated mass transfer coefficient and carbon diffusivity values and those reported in the literature. The calculated values served as input in the previously developed carburizing mode! validating the predicted results by comparison with the experimental concentration profiles.
机译:由于工业上对气体渗碳过程的控制和优化的需要,本文着重于了解时间,温度和碳势对奥氏体传质系数和碳扩散率的影响。先前已经提出了一种用于直接通量积分的方法,以根据实验碳浓度曲线来计算这些动力学参数。在选定的奥氏体化温度下,在不同水平的大气渗碳潜力下对AISI 8620钢盘进行了气体渗碳。渗碳零件的分析包括重量增加,表面碳浓度和碳浓度分布的实验测量。与时间有关的重量增加和表面碳含量的测量值允许计算时间平均传质系数,而碳浓度曲线则用于为选定的工艺参数计算与浓度有关的碳扩散率。在传质系数和碳扩散率的计算值与文献报道的值之间发现了极好的一致性。计算值用作先前开发的渗碳模式的输入!通过与实验浓度曲线进行比较来验证预测结果。

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