On the Fluid Behavior Response Characteristics During Early Stage of CBM Co-Production in Superimposed Pressure Systems: Insights from Experimental Analysis
Abstract
:1. Introduction
2. Simulation Test Method
2.1. Simulation Test Device
2.2. Coal Reservoir Design and Material Selection
2.3. Test Scheme and Steps
2.4. Definition of Relevant Parameters
3. Test Results and Analysis
3.1. Influences of Well-Hole Fluid Confluences on the Pressure Field
3.2. Influences of Well-Hole Fluid Confluences on the Flow Field
3.3. Influences of Well-Hole Fluid Confluences on Gas Production Characteristics
4. Conclusions
- Current laboratory research primarily focuses on seepage experiments involving series-parallel core samples, while large-scale physical simulation studies on CBM development in superimposed pressure systems are scarce. This study replicates the indoor simulation of superimposed pressure systems, which involve multiple pressure systems coexisting within a reservoir, providing a new approach for the safe and efficient extraction of superimposed pressure systems.
- Based on the characteristics of superimposed pressure systems, the reconstructed coal simulates the coal reservoir and provides the occurrence place of CBM. The impermeable gas barrier of clay is used as the low-permeability thick rock strata to cut off the fluid connection between coal reservoirs. This work provides a new research approach for revealing fluid disturbance mechanisms and guiding CBM development.
- The convergence and mixing of fluids from coal reservoirs exhibiting distinct pressure characteristics within the main well hole generate a fluid disturbance effect. The evolution process of well-hole pressure is categorized into two stages: the confluence disturbance stage and the confluence pressure drop stage. Due to well-hole fluid confluences, the well-hole pressure of branch well-holes in the corresponding low-pressure coal reservoirs increases in terms of reservoir pressure. This increase in pressure leads to fluid exchanges between the coal reservoirs and well-holes, manifesting in terms of production.
- Based on the differences between the fluid disturbance effects of CBM co-production modes, a compatibility method of dynamic characterization has been put forward. The pressure compatibility and production compatibility coefficients exhibit rapid growth during the early stages, followed by a gradual decline during the middle and later stages. The worst compatibility is witnessed during the early stage of co-production, but the compatibility will improve the extension of co-production time.
- Optimizing production strategies for superimposed pressure systems involves implementing a progressive co-production schedule. The core of this schedule lies in the dynamic introduction of gas-bearing layers: initially extracting CBM from high-pressure coal reservoirs and, once the reservoir pressure decreases to a level comparable to that of low-pressure reservoirs, co-producing CBM from the low-pressure reservoirs. The primary objective of this approach is to achieve uniform reservoir pressure (i.e., similar fluid energy) across the superimposed pressure systems, thereby minimizing fluid disturbance effects during CBM co-production and ultimately enhancing recovery efficiency.
- This research is currently focused on the flow characteristics of superimposed pressure systems within the reservoir. Future studies should prioritize investigating the coupling effects of low porosity and permeability, gas-water two-phase seepage, the coexistence of multi-phase natural gas, and multi-type reservoirs on the dynamic evolution of the fluid behavior response characteristics induced by fluid interference. Additionally, it is essential to clarify the mechanisms and impacts of reservoir damage caused by the invasion of different fluid phases during CBM co-production and to reveal the coupled flow characteristics of interlayer crossflow and wellbore pipe flow.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
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No. | Crustal Stress (MPa) | Initial Reservoir Pressure (MPa) | Production Mode | |||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
σH1 | σH2 | σH3 | σH4 | σv | σh1 | σh2 | σh3 | σh4 | PI | PII | PIII | PIV | ||
1 | 5.0 | 4.0 | 3.0 | 1.0 | 1.4 | 1.8 | 2.2 | Single production | ||||||
2 | Co-production |
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Ren, J.; Li, Q.; Zhang, M.; Xu, J.; Li, Y.; Yang, P. On the Fluid Behavior Response Characteristics During Early Stage of CBM Co-Production in Superimposed Pressure Systems: Insights from Experimental Analysis. Processes 2025, 13, 1095. https://doi.org/10.3390/pr13041095
Ren J, Li Q, Zhang M, Xu J, Li Y, Yang P. On the Fluid Behavior Response Characteristics During Early Stage of CBM Co-Production in Superimposed Pressure Systems: Insights from Experimental Analysis. Processes. 2025; 13(4):1095. https://doi.org/10.3390/pr13041095
Chicago/Turabian StyleRen, Jiewei, Qixian Li, Meichang Zhang, Jiang Xu, Yang Li, and Pengbin Yang. 2025. "On the Fluid Behavior Response Characteristics During Early Stage of CBM Co-Production in Superimposed Pressure Systems: Insights from Experimental Analysis" Processes 13, no. 4: 1095. https://doi.org/10.3390/pr13041095
APA StyleRen, J., Li, Q., Zhang, M., Xu, J., Li, Y., & Yang, P. (2025). On the Fluid Behavior Response Characteristics During Early Stage of CBM Co-Production in Superimposed Pressure Systems: Insights from Experimental Analysis. Processes, 13(4), 1095. https://doi.org/10.3390/pr13041095