Magnetic expression in kerogen reveals impact on fluid transport.

Q3 Physics and Astronomy
Magnetic resonance (Gottingen, Germany) Pub Date : 2022-07-29 eCollection Date: 2022-01-01 DOI:10.5194/mr-3-125-2022
Benjamin Nicot, Jean-Pierre Korb, Isabelle Jolivet, Hervé Vezin, Didier Gourier, Anne-Laure Rollet
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引用次数: 0

Abstract

How can the transport of fluids in a confined and complex mixed organic/inorganic matrix be far below the expected value from a topological aspect? A good example of this situation is oil shales. Oil and gas shales are source rocks in which organic matter has matured to form hydrocarbons. They exhibit a dual porous network formed by the intertwining of mineral and organic pores that leads to very low permeability. Still, the exact origin of this extremely low permeability remains somehow unclear. The present communication addresses this important question and provides novel insights on the mechanisms that strongly hinder fluid diffusion in such materials. By combining nuclear and electronic magnetic resonance techniques with SEM imaging, we show evidence that magnetic interaction occurs in kerogen. This results from a magnetic coupling between vanadyl present in porphyrins and the organic matrix. We demonstrate that such coupling retards fluid diffusion and is reversible. This key dynamical feature explains the extremely low mobility of oil in shale rocks. This phenomenon may be a more general feature occurring in several systems where fluids are confined in a complex hierarchical matrix that embeds both organic and inorganic radicals resulting from the aging process.

干酪根中的磁性表达揭示了对流体输送的影响
摘要从特应性角度来看,流体在受限和复杂混合的有机/无机基质中的传输如何远低于预期值?这种情况的一个很好的例子是油页岩。油气页岩是有机质成熟形成碳氢化合物的烃源岩。它们表现出由矿物孔隙和有机孔隙交织形成的双重多孔网络,导致渗透率非常低。尽管如此,这种极低渗透率的确切来源仍不清楚。本通讯解决了这一重要问题,并对强烈阻碍流体在此类材料中扩散的机制提供了新的见解。通过将核磁共振和电子磁共振技术与SEM成像相结合,我们展示了干酪根中发生磁相互作用的证据。这是卟啉中存在的钒基与有机基质之间的磁耦合的结果。我们证明了这种耦合延迟了流体扩散并且是可逆的。这一关键的动力学特征解释了页岩中石油流动性极低的原因。这种现象可能是发生在几个系统中的一个更普遍的特征,其中流体被限制在一个复杂的分级矩阵中,该矩阵嵌入了老化过程中产生的有机和无机基。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.50
自引率
0.00%
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审稿时长
14 weeks
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