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Gas transport through coal particles: Matrix-flux controlled or fracture-flux controlled?

机译:通过煤颗粒的气体运输:基质 - 助焊剂控制或骨折 - 通量控制?

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In laboratory measurements, methane ad-/de-sorption behavior on coal is known to be directly related to the particle size. As expected, coal exhibits a relatively high initial desorption rate for smaller coal particles which results in a different gas desorption volume and pressure curves from platter ones for larger coal particles. Both fracture-dominated and matrix-dominated flow theories had been proposed to explain the difference in shapes of desorption curves. These two theories, however, are contradictory to each other and neither of them is completely convincing. Based on the newly developed relationship of apparent diffusion coefficient and apparent permeability, this work uses a dual-permeability concept to explain the different shapes of desorption curves. Numerical simulation solutions indicate that the switching dominance of the fracture and matrix permeability systems produces variable desorption curve shapes. With continuing decrease of coal particle size, the flow will gradually change from fracture-dominated to matrix-dominated mode. The critical apparent permeability ratio dividing the domination of these two systems is in the order of similar to 10(2), in contrast to the initial hypothesis that if one system dominates the overall gas flow, its permeability must be smaller than that of the other. As particle radius decreases, this parameter first increases and then remain at a certain value. At last, the simulated desorption curves were validated with laboratory desorption experimental data.
机译:在实验室测量中,已知煤中的甲烷和去吸附行为与粒径直接相关。正如预期的那样,煤对较小的煤颗粒表现出相对高的初始解吸速率,从而导致来自较大煤颗粒的拼盘的不同的气体解吸体积和压力曲线。已经提出了骨折主导的和矩阵主导的流动理论来解释解吸曲线的形状差异。然而,这两个理论彼此相互矛盾,而且他们都没有完全令人信服。基于新开发的表观扩散系数和表观渗透性的关系,这项工作使用双渗透性概念来解释除解吸曲线的不同形状。数值模拟解决方案表明断裂和基质渗透系统的切换优势产生可变解吸曲线形状。随着煤颗粒尺寸的持续降低,流动将从骨折主导地逐渐变化到基质主导模式。除以这两个系统的统治的临界表观渗透率是与10(2)相似的顺序,与初步假设相比,如果一个系统主导整体气体流动,其渗透性必须小于另一个。随着粒子半径降低,该参数首先增加,然后保持一定的值。最后,通过实验室解吸实验数据验证了模拟解吸曲线。

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