Coal Combustion Reactivity of Different Metamorphic Degree and Structure Changes of FTIR Analysis in Pyrolysis Process

被引:10
|
作者
Li Na [1 ]
Liu Quan-sheng [1 ]
Zhen Ming [2 ]
Zhao Bin [1 ]
Feng Wei [1 ]
Song Yin-min [1 ]
Zhi Ke-duan [1 ]
He Run-xia [1 ]
机构
[1] Inner Mongolia Univ Technol, Coll Chem Engn, Inner Mongolia Key Lab Ind Catalysis, Hohhot 010051, Peoples R China
[2] Inner Mogolia Kingdomway Pharmaceut Ltd, Hohhot 010200, Peoples R China
关键词
Coal; Different rank; Combustion performance; FTIR; OXYGEN; FUELS;
D O I
10.3964/j.issn.1000-0593(2016)09-2760-06
中图分类号
O433 [光谱学];
学科分类号
0703 ; 070302 ;
摘要
The combustion reaction of raw coals in the air was analyzed with Thermal Gravimetric Analyzer 6300 and FTIR (Fourier Transform infrared spectroscopy). The raw coals came from three different sources which were SL lignite, SH bitumite and TT anthracite. The chars were prepared by fixed bed pyrolysis equipment in different reaction temperature. The overlapping peaks were fitted into some sub-peaks by Gaussian function. The aromatic index (R), aromatic structure fused index (D) and organic maturity index (C) were calculated through sub-peaks areas. It showed that three kinds of ignition temperature of SL, SH and TT were 299. 3, 408. 2 and 441. 0 degrees C respectively. The peak temperature of maximum weight loss rate were 348. 6, 480. 5 and 507. 0 degrees C respectively. With the increase of coal rank, both ignition temperature and peak temperature of maximum weight loss rate increased in some degree. The result showed that coal structure was very complex. Vibration absorption peaks, of hydroxyl (-OH), aliphatic hydrocarbons (-CH2, -CH3), aromatic C=C), oxygen-containing functional group (C=O, C-O) and other major functional groups could be observed in the infrared spectral curves of all samples. With the increase of pyrolysis temperature, infrared vibration absorption peaks of aliphatic hydrocarbons (-CH2-, -CH3) were gradually decreased. the stretching vibration peak of C=O which was at 1 700 cm(-1) almost disappeared after coked at 550 degrees C. SL samples' absorption peak area infrared curve of oxygen functional groups at 1 000 similar to 1 800 cm(-1) was more complex. With-the increase of coking temperature they changed more significantly compared with others. While peak position and peak intensity for aromatic C=C absorption peaks of SH and Tr did not change apparently when temperature was changing. Variation trends of main functional groups among three ranks of coals were obviously different with changes of R, D and C values.
引用
收藏
页码:2760 / 2765
页数:6
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