Dynamic mechanisms of tight gas accumulation and numerical simulation methods: Narrowing the gap between theory and field application

Authors

  • Wen Zhao Research Institute of Petroleum Exploration and Development, PetroChina, Beijing 100083, P. R. China
  • Chengzao Jia* Research Institute of Petroleum Exploration and Development, PetroChina, Beijing 100083, P. R. China;PetroChina Company Ltd., Beijing 100011, P. R. China(Email:jiacz@petrochina.com.cn)
  • Yan Song* Research Institute of Petroleum Exploration and Development, PetroChina, Beijing 100083, P. R. China;State Key Laboratory of Petroleum Resources and Prospecting, China University of Petroleum, Beijing 102249, P. R. China(Email:sya@petrochina.com.cn)
  • Xiangfang Li State Key Laboratory of Petroleum Resources and Prospecting, China University of Petroleum, Beijing 102249, P. R. China
  • Lianhua Hou Research Institute of Petroleum Exploration and Development, PetroChina, Beijing 100083, P. R. China
  • Lin Jiang Research Institute of Petroleum Exploration and Development, PetroChina, Beijing 100083, P. R. China

Keywords:

Tight gas reservoir, dynamic mechanisms, numerical simulation, upscaling

Abstract

Despite the significant progress made in tight gas exploration and development in recent years, the understanding of the dynamic mechanisms of tight gas accumulation is still limited, and numerical simulation methods are lacking. In fact, the gap between theory and field application has become an obstacle to the development of tight gas exploration and development. This work sheds light on the dynamic mechanisms of hydrocarbon accumulation in tight formations from the aspect of capillary self-sealing theory by embedding calculation of pressure- and temperature-dependent capillary force in a pore network model. The microscale dynamic mechanisms are scaled up to the reservoir level by geological simulation, and the quantitative evaluation of reserves based on real geological sections is realized. From the results, several considerations are made to assist with resource assessment and sweet spot prediction. Firstly, the self-sealing effect of capillary in the micro-nano pore-throat system is at the core of tight sandstone gas accumulation theory; the hydrocarbon-generated expansion force is the driving force, and capillary force comprises the resistance. Furthermore, microscopic capillary force studies can be embedded into a pore network model and scaled up to a geological model using relative permeability curve and capillary force curve. Field application can be achieved by geological numerical simulations at the reservoir scale. Finally, high temperature and high pressure can reduce capillary pressure, which increases gas saturation and reserves.

Document Type: Original article

Cited as: Zhao, W., Jia, C., Song, Y., Li, X., Hou, L., Jiang, L. Dynamic mechanisms of tight gas accumulation and numerical simulation methods: Narrowing the gap between theory and field application. Advances in Geo-Energy Research, 2023, 8(3): 146-158. https://doi.org/10.46690/ager.2023.06.02

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2023-05-31

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