Lithofacies Characteristics and Pore Controlling Factors of New Type of Permian Unconventional Reservoir in Sichuan Basin
Abstract
:1. Introduction
2. Geological Setting
3. Samples and Methods
4. Results
4.1. Observation of Outcrop and Core Samples
4.2. Quantitative Analysis of Mineral Components
4.3. Organic Matter Abundance
4.4. Lithofacies
4.4.1. Tuff
4.4.2. Sedimentary Tuff
4.4.3. Tuffaceous Mudstone
5. Discussion
5.1. Pore Types
5.2. Mineral Enrichment
5.2.1. Sulphur-Bearing Mineral Enrichment
5.2.2. Organic Matter Enrichment
5.3. Controlling Factors
5.3.1. Relationship between Mineral Composition and Pore
5.3.2. Relationship between TOC Content and Pore
5.3.3. Relationship between Tuffaceous Component and Pore
5.3.4. Relationship between Devitrification and Dissolution and Porosity
6. Conclusions
- (1)
- The Permian tuffaceous rocks in the Sichuan Basin are divided into three main lithofacies types, including tuff, sedimentary tuff, and tuffaceous mudstone. The tuffs mainly include detritus tuff and crystal tuff. The sedimentary tuff and tuffaceous mudstone often occur interbedded and are stratified. The mineral composition of the three lithofacies includes quartz, feldspar, carbonate minerals, pyrite, and clay, and the feldspar is mainly potassium feldspar. The tuffs have the highest feldspar, quartz and pyrite content, and the lowest clay and TOC content. The tuffaceous mudstones have the highest clay and TOC content and the lowest feldspar and quartz and pyrite content. The sedimentary tuffs are intermediate between the tuff and tuffaceous mudstone.
- (2)
- The pore types in the tuffaceous rocks mainly include shrinkage pores, dissolved pores, intergranular pores, organic pores. Shrinkage pores mainly include shrinkage pores formed during the alteration of pyroclastic material and inter-clay shrinkage pores. Shrinkage pores are the common type, usually at the nano-scale, accounting for 81.9% of the total pores. Organic pores account for 11.2% of the total pore space.
- (3)
- The feldspar and quartz content, and pyrite content in the tuffaceous rocks are inversely correlated with porosity, while the clay content and TOC content are positively correlated with porosity. The higher the tuff content in the three lithofacies, the lower the porosity; therefore, tuff has the lowest porosity, followed by sedimentary tuff, and tuffaceous mudstone has the highest porosity.
- (4)
- Tuffaceous rocks form many micropores in the process of devitrification. Organic matter pyrolysis and organic acid dissolution also increase the reservoir space and porosity for the reservoir.
- (5)
- The marine tuffaceous rocks have an overall high TOC content and porosity, and thus have a hydrocarbon generation capacity and reservoir space. They could be hydrocarbon source rocks and reservoirs. As a new type of reservoir, they could form self-accumulation and self-reservoir types of tight reservoirs, with the characteristics of co-generation of the source and reservoir, lithology reservoir, and broad plane distribution, and thus they have great exploration prospects.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Types | Rocks | Component | Sedimentary Structures |
---|---|---|---|
Normal pyroclastic rocks | Tuff | Composition of pyroclastic debris ranges between 75% and 90% | Insignificant stratification |
Sedimentary pyroclastic rocks | Sedimentary tuff | Composition of pyroclastic debris ranges between 50% and 75%; Composition of terrestrial debris <50% | Significant stratification |
Pyroclastic sedimentary rocks | Tuffaceous mudstone | Composition of clay mineral >50%; Composition of pyroclastic debris >10% | Significant stratification |
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Li, R.; Xiong, Z.; Wang, Z.; Xie, W.; Li, W.; Hu, J. Lithofacies Characteristics and Pore Controlling Factors of New Type of Permian Unconventional Reservoir in Sichuan Basin. Processes 2023, 11, 625. https://doi.org/10.3390/pr11020625
Li R, Xiong Z, Wang Z, Xie W, Li W, Hu J. Lithofacies Characteristics and Pore Controlling Factors of New Type of Permian Unconventional Reservoir in Sichuan Basin. Processes. 2023; 11(2):625. https://doi.org/10.3390/pr11020625
Chicago/Turabian StyleLi, Rong, Zhifu Xiong, Zecheng Wang, Wuren Xie, Wenzheng Li, and Jiuzhen Hu. 2023. "Lithofacies Characteristics and Pore Controlling Factors of New Type of Permian Unconventional Reservoir in Sichuan Basin" Processes 11, no. 2: 625. https://doi.org/10.3390/pr11020625
APA StyleLi, R., Xiong, Z., Wang, Z., Xie, W., Li, W., & Hu, J. (2023). Lithofacies Characteristics and Pore Controlling Factors of New Type of Permian Unconventional Reservoir in Sichuan Basin. Processes, 11(2), 625. https://doi.org/10.3390/pr11020625