Related Experiment Video
Updated: Apr 14, 2026

Experimental Study of the Relationship Between Particle Size and Methane Sorption Capacity in Shale
Published on: August 2, 2018
Pore Evolution Mechanisms in the Longmaxi Formation Shale Reservoir of the Anchang Syncline under Basin-Mountain
Yiming Zhao1,2, Yang Wang1,2, Hanyu Zhang1,2
1Key Laboratory of Coalbed Methane Resources and Reservoir Formation Process, Ministry of Education, China University of Mining and Technology, Xuzhou, Jiangsu 221008, China.
Abstract:
The pore structure of shale defines the space available for gas generation and storage, with the evolution of these pores being closely linked to shale gas accumulation and migration. Investigating the evolution of shale pores under basin-orogenic tectonic settings is crucial for under-standing the variations in resource potential across different blocks of the Anchang Syncline. This study focuses on the Longmaxi Formation shale within the Anchang Syncline, systematically examining the differences in the lateral pore structure evolution across three distinct blocks during basin-mountain tectonic development. By integrating reservoir property characterization with burial-hydrocarbon generation modeling, and employing experimental techniques including X-ray diffraction (XRD), low-pressure nitrogen adsorption (LN2GA), and low-pressure carbon dioxide adsorption (CO2GA), this research reveals the pore evolution mechanisms in contemporaneous shale strata during tectonic uplift from the perspectives of multifractal theory and controlling factor correlation analysis. The results indicate that (1) Pore characteristics differ significantly among the three blocks. Samples from block A (e.g., MAY2) are predominantly microporous, while samples from block C (e.g., MAD4) exhibit a higher proportion of mesopores (2-50 nm). Samples from block B (e.g., MAD3) show an intermediate pore structure. (2) Despite similar thermal maturity evolution levels and TOC contents across the blocks, as well as comparable burial and hydrocarbon generation histories, the primary factors controlling the pore differences are the magnitude of latestage tectonic uplift, the duration of thermal maturity evolution, and preservation conditions. (3) Analysis of fractal dimensions suggests that mineral composition promotes the complexity of microporous structures while inhibiting the complexity of mesoporous structures. (4) Based on the interblock variations, two distinct evolutionary models are established: model 1 ("rapid evolutionsustained overpressureweak uplift modification") features a shorter maturity evolution duration, longer overpressure preservation, and minor late-stage uplift; model 2 ("slow evolutiontransient overpressurestrong uplift modification") is characterized by a longer maturity evolution duration, shorter overpressure preservation, and significant latestage uplift.
More Related Videos
10:18Dynamic Pore-scale Reservoir-condition Imaging of Reaction in Carbonates Using Synchrotron Fast Tomography
Published on: February 21, 2017
12:18Pore-scale Imaging and Characterization of Hydrocarbon Reservoir Rock Wettability at Subsurface Conditions Using X-ray Microtomography
Published on: October 21, 2018
Related Concept Videos
Pore Size Distribution
Adequate...
Deep Sea Microbial Ecology
Microbial Mats
Porosity and Absorption of Aggregate
When all pores in an aggregate are filled with water, the aggregate is considered saturated and surface-dry. If left in dry air, water will evaporate until the...
Bone Remodeling
Microbes and Methanogenesis