This study utilizes critical circle analysis to evaluate slag composition fluctuation in high-temperature applications, suggesting optimal limits for Al2O3 and MgO content.
Traditional research has primarily focused on the performance of slag, but there is little research on the allowable composition fluctuation range of slag. In this study, an innovative approach, utilizing the critical circle radius to represent the slag composition range. The results show that as the Al 2 O 3 content increases from 13 to 16 wt%, the proportion of the liquid‐phase area expands from 25.9 to 28 wt%. Critical circle analysis reveals that at 1480 °C, when the MgO content reaches 8 wt%, the critical circle radius is maximized, indicating the largest composition fluctuation range. Under low Al 2 O 3 conditions, basicity is the primary limiting factor for the inscribed circle radius. As Al 2 O 3 content increases from 10 to 25 wt%, the optimal slag basicity initially rises and then declines. With the decrease of liquid‐phase temperature from 1480 to 1440 °C, the slag's capacity to tolerate Al 2 O 3 decreases, and the optimal critical Al 2 O 3 content reduces. Increasing MgO content enhances the slag's tolerance to Al 2 O 3 . When the liquid‐phase temperature is lowered to 1420 °C, the optimal critical Al 2 O 3 content is 12.5 wt%, and the MgO content is controlled to be 5 wt%. The corresponding critical circle radius is the largest.
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Zhang et al. (2025) studied this question.
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