作者
Rongfang Qin,Lu Wang,Daiyong Cao,An Min Wang,Yingchun Wei,Jing Li
摘要
In order to carry out an in-depth study of the differences in the molecular structure evolution of the vitrinite and the inertinite during coalification, the chemical structure of 13 groups of vitrinite and inertinite with different coal ranks were comprehensively characterized using X-ray diffraction (XRD), Fourier transform infrared (FTIR) spectroscopy, and 13 C nuclear magnetic resonance ( 13 C NMR). The correlation of structure parameters and vitrinite random reflectance ( R o, ran ) were analyzed. The results show that three evolution stages of vitrinite were observed with R o, ran at 0.35%–0.90%, 1.20%–2.67%, and 3.03%–4.20%, and two evolution stages of inertinite were marked with R o, ran at 0.35%–2.07% and 2.07%–4.20%. The f a , DOC, I, f a ', f a H , f a N , f a B , X b , L a , L c , and N ave of inertinite are always larger than vitrinite, whereas the A(CH 2 )/(CH 3 ), f al , f al * , f al H , d 002 of inertinite are always smaller than vitrinite. When R o, ran = 0.35%–0.90%, the oxygen-containing functional groups and aliphatic structure of vitrinite fall off rapidly, the condensation degrees of the aromatic ring, L a , L c , and N ave increase, whereas the lengths of side chains and d 002 decrease. When R o, ran = 1.20%–2.67%, the vitrinite structure variation follows the same trend as the first stage, but the evolution rate is significantly lower. When R o, ran = 0.35%–2.07%, the oxygen-containing functional groups, methyl groups, and methylene groups of inertinite fall off at a slower rate than those of vitrinite. The aromaticity, condensation degree, aromatic carbon content, and order degree of microcrystalline structure also increase at a rate less than that of vitrinite. The vitrinite and inertinite structure variation becomes flat, and the structures of both macerals are similar in the high metamorphic stage. The content of oxygen-containing functional groups and aliphatic chain length decrease to the lowest, whereas the aromaticity increases to the maximum. This study contributes to a comprehensive understanding of the chemical structure differences between vitrinite and inertinite, which can provide a theoretical reference for the clean utilization of coal and coalbed methane (CBM) exploration and development.