材料科学
菱镁矿
动力学
等温过程
微晶
分解
热分解
化学工程
热力学
冶金
结晶学
镁
化学
物理
工程类
有机化学
量子力学
作者
Si Li,Dan Sun,Ziyang Yin,Anxiu Wang,Canjun Yu,Yihan Wang,Runtang Feng,Chengliang Ma
摘要
Abstract The thermal decomposition (TD) of magnesite is crucial for its high‐value applications, and understanding its reaction mechanisms requires establishing accurate kinetic models. This research investigates the TD kinetics of microcrystalline magnesite under varying heating rates (HRs) using thermogravimetry and differential scanning calorimetry (TG–DSC) analysis. Kinetic parameters were derived using the Coats–Redfern (CR), Kissinger–Akahira–Sunose (KAS), and Flynn–Wall–Ozawa (FWO) methods. The influence of HRs on the decomposition process and the resulting MgO morphology was analyzed. The results demonstrated that as HRs increased, the decomposition and reaction rate curves shifted to higher temperatures, necessitating elevated temperatures for similar levels of decomposition. The mean activation energy () was calculated to be 162.45 kJ/mol, with a strong linear correlation between the and pre‐exponential factor, suggesting robust kinetic compensation. The TD followed a two‐dimensional phase boundary mechanism with cylindrical symmetry. “Original shape pseudomorphs” were found to significantly affect the microstructure, particle size variation, and kinetic behavior of the decomposition products. These findings provide important insights for the industrial processing of microcrystalline magnesite.
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