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FTIR and Raman Spectral Research on Metamorphism and Deformation of Coal

机译:煤变质和变形的FTIR和拉曼光谱研究

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Under different metamorphic environments, coal will form different types of tectonically deformed coal (TDC) by tectonic stress and even the macromolecular structure can be changed. The structure and composition evolution of TDC have been investigated in details using Fourier transform infrared spectroscopy and Raman spectroscopy. The ductile deformation can generate strain energy via increase of dislocation in molecular structure of TDC, and it can exert an obvious influence on degradation and polycondensation. The brittle deformation can generate frictional heat energy and promote the metamorphism and degradation, but less effect on polycondensation. Furthermore, degradation affects the structural evolution of coal in lower metamorphic stage primarily, whereas polycondensation is the most important controlling factor in higher metamorphic stage. Tectonic deformation can produce secondary structural defects in macromolecular structure of TDC. Under the control of metamorphism and deformation, the small molecules which break and fall off from the macromolecular structure of TDC are replenished and embedded into the secondary structural defects preferentially and form aromatic rings by polycondensation. These processes improved the stability of macromolecular structure greatly. It is easier for ductile deformation to induce secondary structural defects than in brittle deformation.
机译:在不同的变质环境下,煤将通过构造应力形成不同类型的构造变形煤(TDC),甚至可以改变大分子结构。使用傅里叶变换红外光谱和拉曼光谱详细研究了TDC的结构和组成演变。延性变形可通过增加TDC分子结构中的位错而产生应变能,并对降解和缩聚产生明显的影响。脆性变形可产生摩擦热能并促进变质和降解,但对缩聚的影响较小。此外,降解主要影响低变质期煤的结构演化,而缩聚是高变质期最重要的控制因素。构造变形会在TDC的大分子结构中产生次级结构缺陷。在变质和变形的控制下,从TDC的大分子结构上脱落下来的小分子被补充并优先嵌入二级结构缺陷中,并通过缩聚形成芳香环。这些过程大大提高了大分子结构的稳定性。延性变形比脆性变形容易诱发二次结构缺陷。

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