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Pore and fracture scale characterization of oil shale at different microwave temperatures

机译:不同微波温度下油页岩的孔隙和裂缝尺度表征

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摘要

The spatial complexity of oil shale systems is manifested by microstructure, pore space randomness and extensive heterogeneity. A microwave pyrolysis device developed for this study was used to pyrolyze oil shale, and the microstructure before and after pyrolysis was visually examined and quantified. The internal structure of the rock and the extent of pore and fracture expansion are more accurately determined in this way. The microstructure of oil shale at different temperatures before and after microwave pyrolysis is identified by X-ray microcomputed tomography (ACT) with automatic ultra-high-resolution scanning electron microscopy (SEM), to observe the heterogeneous state of oil shale on 2D and 3D scales and define the distribution of internal pores and fractures by post-processing ACT visualization. The study found that fractures sized from microns to millimeters along with pore fractures were observed at increasing microwave temperatures. The fractures gradually expanded with increasing temperature in the direction of horizontal or vertical laminae and generated a more connected pore network. The kerogen gradually decreased with a rise in temperature. The porosity increased from 0.26 to 13.69 at the initial temperature. This research is essential for the qualitative as well as quantitative analysis of the internal structure of oil shales under microwave radiation.
机译:油页岩系统的空间复杂性表现为微观结构、孔隙空间随机性和广泛的异质性。采用本研究开发的微波热解装置对油页岩进行热解,对热解前后的微观结构进行目视检查和量化。这样可以更准确地确定岩石的内部结构以及孔隙和裂缝的扩展程度。采用X射线显微计算机断层扫描(ACT)和全自动超高分辨率扫描电子显微镜(SEM)对油页岩在微波热解前后不同温度下的微观结构进行鉴定,在2D和3D尺度上观察油页岩的异质状态,并通过后处理ACT可视化确定内部孔隙和裂缝的分布。研究发现,在微波温度升高时,观察到从微米到毫米的裂缝以及孔隙裂缝。随着温度的升高,裂缝在水平或垂直层的方向上逐渐扩大,并产生了更紧密的孔隙网络。干酪根随着温度的升高而逐渐减少。初始温度下孔隙率从0.26%增加到13.69%。本研究对于微波辐射下油页岩内部结构的定性和定量分析具有重要意义。

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