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May 6, 2026Minerals0 citationsOpen Access

Distribution of Shale Oil, Quantitative Evaluation of Mobility, and Enrichment Mechanisms in a Lacustrine Shale from the Ordos Basin

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KDKefeng DuYHYonghong HeYGYunjin Ge

Key Points

  • To quantitatively assess the mobility of shale oil and characterize hydrocarbon retention in the Ordos Basin.
  • Analyzed Chang 7 shale using stepwise pyrolysis and pyrolysis gas chromatography–mass spectrometry (GC–MS).
  • Conducted nuclear magnetic resonance (NMR) combined with CO2 flooding experiments to study oil expulsion.
  • Evaluated the impact of displacement pressures on expelled oil volume and composition.
  • Higher light and medium hydrocarbons and lower heavy fractions found in organic-rich shale.
  • Mesopores significantly contribute to oil displacement in black shale under pressure conditions.
  • Muddy siltstone exhibits higher oil displacement efficiency than black shale, with larger expelled volumes.

Abstract

The Ordos Basin hosts abundant lacustrine shale oil resources. Adequately retained hydrocarbons in source rocks, together with favorable mobility, are prerequisites for large-scale shale oil exploitation. Therefore, the quantitative characterization of retained hydrocarbon content and mobility is a core research focus in shale oil exploration and development. This study investigates Chang 7 shale with varying lithofacies and geochemical characteristics. Stepwise pyrolysis and pyrolysis gas chromatography–mass spectrometry (GC–MS) were applied to analyze retained hydrocarbons in different occurrence states, their compositions, and biomarkers. In addition, nuclear magnetic resonance (NMR) combined with CO2 flooding experiments was conducted, and the collected products under different displacement pressures were analyzed using GC–MS. The aim was to quantitatively examine the variations in expelled oil volume, compositional differences during migration, and occurrence features of shale oil within reservoir micro-pores. The results show the following: (1) Organic-rich shale is characterized by higher proportions of light and medium hydrocarbons, lower heavy fractions, and elevated aromatic hydrocarbon content. In contrast, low-organic-carbon mudstone or siltstone contains more medium and heavy hydrocarbons, with lower light and aromatic fractions. The C13−/C14+ ratio increases with total organic carbon (TOC). (2) In black shale, oil displacement is mainly contributed by mesopores. At low pressures, oil expulsion is difficult and dominated by heavy hydrocarbons. When pressure reaches a threshold, the capillary-bound oil in micropores is released, increasing production and improving oil quality. Muddy siltstone shows higher displacement efficiency than black shale, with contributions from pores of all sizes. At low pressures, its expelled oil volume is larger and lighter than that of black shale. With increasing pressure, the oil yield rises significantly, and medium–large pores produce heavier fractions compared with micropores, likely because light hydrocarbons preferentially enter micropores and are less prone to dissipation. (3) The main controlling factors for shale oil enrichment include retained hydrocarbon content, mobile hydrocarbon fraction, fluidity, and engineering-related parameters. Thick shale layers with high organic matter abundance, high proportions of light–medium hydrocarbons, and favorable porosity–permeability conditions, as well as interbedded siltstone, are enriched in mobile hydrocarbons.

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Cite This Study

Du et al. (2026) studied this question.

synapsesocial.com/papers/69fa8e6404f884e66b530abahttps://doi.org/10.3390/min16050465
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