Experimental methods in chemical engineering: Thermogravimetric analysis—TGA

热重分析 等温过程 煅烧 热解 材料科学 化学工程 逸出气体分析 化学 热分析 热力学 有机化学 物理 热的 工程类 催化作用
作者
Nooshin Saadatkhah,Adrián Carillo Garcia,Sarah L. G. Ackermann,Philippe Leclerc,Mohammad Latifi,Said Samih,Gregory S. Patience,Jamal Chaouki
出处
期刊:Canadian Journal of Chemical Engineering [Wiley]
卷期号:98 (1): 34-43 被引量:378
标识
DOI:10.1002/cjce.23673
摘要

Abstract Thermogravimetric analysis (TGA) is a quantitative analytical technique that monitors the mass of a sample from 1 mg to several g as a furnace ramps temperature to as high as 1600°C under a stable or changing gas flow. The first gravimetric test was in 27 BC when Vitruvius measured limestone's change of mass as it calcined to lime. In modern chemical engineering, researchers apply the technique to derive conversions, kinetics, and mechanisms for any process with a change of mass by isothermal, non‐isothermal, and quasi‐isothermal methods. The mass drops as the sample decomposes, volatile compounds evaporate, or the oxidation state decreases, while in reactive environments (with O 2 , for example), the mass of transition metals may increase. TGA is incapable of detecting phase transitions, polymorphic transformations, or reactions for which mass is invariant. DSC or DTA couple with TGA to help deconvolute a DSC plot by separating physical changes from chemical changes. Evolved gas analysis techniques monitor the gaseous products exiting the TGA furnace on‐line as the temperature ramps. A bibliometric map of keywords from articles citing TGA indexed by Web of Science in 2016 and 2017 identified five research clusters: nanoparticles, performance, and films; crystal structures, acid, and oxidation; composites, nanocomposites, and mechanical properties; kinetics, pyrolysis, and temperature; and adsorption, water and wastewater, and aqueous solutions. This review provides an overview of the basic principles of modern TGA.
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