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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Thermal Dehydration of Lithium Sulfate Monohydrate Revisited with Universal Kinetic Description over Different Temperatures and Atmospheric Water Vapor Pressures
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Thermal Dehydration of Lithium Sulfate Monohydrate Revisited with Universal Kinetic Description over Different Temperatures and Atmospheric Water Vapor Pressures

机译:在不同温度和大气水蒸气压力下具有通用动力学描述的硫酸锂一水合物的热脱水

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摘要

This study aims to universally describe the kinetic features of the thermal dehydration of lithium sulfate monohydrate across different temperatures (T) and atmospheric water vapor pressures (p(H2O)) as a model reaction of the thermal dehydration of crystalline hydrates. The features of the physicogeometrical consecutive process, comprising the induction period (IP)-surface reaction (SR)-phase boundary-controlled reaction (PBR), and the effect of p(H2O) on kinetic behavior were revealed experimentally under various heating conditions. Then, the accommodation function (AF), accounting for the effect of p(H2O) on the kinetic behavior, was derived by considering the consecutive/concurrent elementary steps of SR and PBR at the atomic and molecular levels. The universal kinetic descriptions for the IP and subsequent mass-loss process were realized by introducing the AF into formal kinetic equations and using the isoconversional kinetic relationship. Furthermore, by combining the physicogeometrical consecutive IP-SR-PBR(n) model and the formulated AF, the universal kinetic descriptions for each physicogeometrical reaction step across different T and p(H2O) conditions were obtained, which reveal novel kinetic features of each reaction step and these variations as the reaction step advances. The significance of the revealed kinetic features is discussed through demonstrating the development of the novel kinetic approach.
机译:本研究旨在普遍描述跨不同温度(T)和大气水蒸气压力(P(H2O))作为结晶水合物热脱水的模型反应的硫酸锂一水合物的动力脱水的动力学特征。在各种加热条件下,在各种加热条件下,在各种加热条件下显露,在各种加热条件下显露,存在诱导期(IP) - 抗表面反应(SR) - 静脉反应(SR) - 静脉对照反应(PBR)对动力学行为的影响以及P(H2O)的效果。然后,通过考虑在原子和分子水平下的Sr和PBR的连续/并发基本步骤来得出容纳功能(AF)对动力学行为的影响。通过将AF引入正式动力学方程并使用异组值动力学关系来实现IP和随后的质量损失过程的通用动力学描述。此外,通过组合物理几何分om连续IP-SR-PBR(N)模型和配制的AF,获得了对不同T和P(H2O)条件的每个物质常数反应步骤的通用动力学描述,揭示了每种反应的新型动力学特征步骤和这些变化作为反应步骤进步。通过证明新型动力学方法的发展,讨论了揭示的动力学特征的重要性。

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