4.6 Article

Impact of Pyrite Oxidation on the Pore-Structure Characteristics of Shale Reservoir Rocks under the Interaction of Fracturing Fluid

期刊

ACS OMEGA
卷 -, 期 -, 页码 -

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsomega.2c02690

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资金

  1. National Natural Science Foundation of China [42102197]
  2. Basic Research Program (free exploration) Project of Shanxi Province, China [20210302124436]
  3. Scientific and Technological Innovation Programs of Higher Education Institutions in Shanxi [2019L0387, 2019L0383]
  4. Shenzhen Fund in Special Foundation for Guiding Local Science and Technology Development of the Central Government [2021Szvup001]
  5. China Postdoctoral Science Foundation [2021M690247]
  6. Science and Technology Innovation Fund of Shanxi Agricultural University [2018YJ22, 2018YJ25, 2020BQ47]
  7. Excellent Doctors Come to Shanxi to Reward Scientific Research Projects [SXYBKY2018027, SXYBKY2018024]

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Hydraulic fracturing combined with horizontal drilling is widely used in shale gas development. This study focused on the impact of pyrite oxidation on pore structure after fracturing. The results showed that pyrite-rich shale experienced mineral dissolution, leading to increased mesopores and enhanced pore-structure complexity. In contrast, pyrite-poor shale only underwent swelling and had degraded pore-structure complexity. These findings provide new insights into optimizing fracturing operation conditions based on shale's mineral composition characteristics.
Hydraulic fracturing combined with horizontal drilling is widely used to develop shale gas resources, and huge amounts of fracturing fluid are injected into shale reservoirs. However, the fracturing fluid is ineluctably retained in reservoir rocks after fracturing, resulting in the alteration of shale pore systems and further affecting the hydrocarbons production efficiency. In this work, two types of shales with different pyrite contents, namely, pyrite rich (PR, Niutitang Formation) and pyrite poor (PP, Xiamaling Formation), were emphasized to illustrate the effect of pyrite oxidation on pore structure after fracturing operation. Slickwater fracturing fluid was used to treat the shale samples for a period of 3 days, under the condition of 100 degrees C and 50 MPa. The field emission scanning electron microscopy (FE-SEM) and X-ray diffraction (XRD) were utilized to determine the surface morphology and mineral composition. The low-temperature N-2 adsorption was performed to quantify the pore structure. The results showed that the pyrite oxidation induced the dissolution of both the pyrite and calcite and generated many dissolution pores for the pyrite-rich shale after slickwater treatment. The mineral dissolution led to an increase in the number of mesopores, enlarged the total specific surface area (TSSA) and total pore volume (TPV), and strengthened the pore-structure complexity. On the other hand, the pyrite-poor shale only experienced day swelling after slickwater treatment. Its pore surface roughness and pore-structure complexity degraded with the loss of nanopores and the reductions in TSSA and TPV. The results of this study enhance the understanding of the impact of pyrite oxidation on the pore structure and provide new insight into the optimization of fracturing operation conditions based on shale's mineral composition characteristics.

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