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受载煤岩组合体电磁辐射生成机理

Formation mechanism of electromagnetic radiation in coal-rock assemblages under load

  • 摘要: 实际煤岩主要以组合体形式赋存,其受载产生的电磁辐射特征与应力状态间关联性明显。为揭示受载煤岩组合体电磁辐射生成机理,分析煤岩组合体微观结构及其元素占比,阐释单一煤岩材料电磁辐射产生过程,建立受载煤岩组合体电磁辐射时变模型,并借助单轴实验对其验证。结果表明:结构上煤岩组合体煤层原生裂纹数量明显高于岩层,虽然不同煤岩组合体成分上C、Si、O合计占比均接近75%,但在单一煤、岩材料中其占比差异明显,这增大了受载煤岩组合体电磁辐射产生过程的复杂性;受载煤岩组合体的电磁辐射为复合信号,其是岩层压电效应、煤层内多裂隙摩擦效应及少量磁性介质磁化效应的共同体现;煤岩组合体电磁辐射兼具波动特征与非线性时变特征,其体积组合比与加载速率对两种特征的明显性有影响;体积组合比中煤层占比越高,受载煤岩组合体电磁辐射波动性越强且整体趋势与受载单一煤体越接近;加载速率增大,电磁辐射平稳性降低,均方差平均下降33.01%,在0.3 mm/min时其最为明显,其波动性在前60%加载时间内最为明显;理论建模所得结论与实验结果趋势高度一致,有效验证了所建受载煤岩组合体电磁辐射强度时变模型的合理性。研究成果对阐释各加载条件下受载煤岩电磁辐射演化规律具有重要意义,同时为深入研究煤岩动力灾害多源信号耦合机理奠定了基础。

     

    Abstract: The actual coal-rock is mainly in the form of assemblage, and the characteristics of the EMR generated during loading are clearly related to its stress state. In order to reveal the EMR generation mechanism of coal-rock assemblages, this study first analyzes the microstructure and element proportion of coal-rock assemblages, and explains the EMR generation process of different single coal-rock materials. Then, a time-varying model for the EMR of coal-rock assemblage is established, and its rationality and universality are verified by several uniaxial experiments. The results are as follows: In terms of structure, the number of original fractures in the coal seam of the coal-rock assemblage is significantly higher than that of the rock seam. And in terms of composition, while the total fraction of C, Si, and O in the coal-rock assemblage is close to 75% and they are the dominant components, the fractions of all three are significantly different in single coal-rock materials. Both of them increase the complexity of the EMR generation process for loaded coal-rock assemblies. The EMR of the loaded coal-rock assemblages is a composite signal, which is the result of the piezoelectric effect of the rock, the friction effect of multiple fractures in the coal seam, and the magnetization effect of ferromagnetic materials. This results in EMR having both fluctuation and nonlinear time-varying characteristics, that is, the volume composition ratio and loading rate have an impact on the distinctiveness of these two characteristics. The higher the proportion of the coal in the volume composition ratio, the stronger the fluctuation of the EMR, and the overall trend is closer to that of the loaded single coal. And the loading rate increases, the stability of the EMR decreases, with the average standard deviation decreasing by 33.01%, which is most obvious at 0.3 mm/min. At the same time, the fluctuation is most obvious within the first 60% of the loading time. The trend of the experimental results is in good agreement with the theoretical analysis, effectively validating the plausibility of the time-varying model for the EMR intensity of coal-rock assemblies. The above results are helpful to explain the EMR evolution law of coal-rock under different loading conditions, and also lay a foundation for study of multi-source signal coupling mechanism of coal and rock dynamic disasters.

     

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