This study aims to investigate the applicable conditions and key operational parameters for an integrated compression, purification, decarbonization, and denitrification process applied to natural gas oxy-fuel combustion flue gas. The research seeks to clarify the technical feasibility and performance boundaries of this process for achieving efficient carbon dioxide (CO2) capture coupled with deep removal of nitrogen oxides (NOx), providing a practical solution for integrated carbon capture and pollutant control in natural gas oxy-fuel combustion systems.
A steady-state process model for the compression and purification of oxy-fuel combustion flue gas was developed using Aspen Plus, which accurately describes the thermodynamic behavior of the high-pressure, multi-component gas mixture. Through systematic simulation and parametric sensitivity analysis, the study focused on the combined effects of the initial CO2 volume fraction in the flue gas and the system operating pressure on process performance. Key performance indicators evaluated include the CO2 recovery rate, liquid CO2 product purity, NOx removal efficiency, and specific comprehensive power consumption.
The simulation results establish a definitive and strong correlation between the CO2 recovery efficiency and the initial concentration of CO2 in the flue gas. A clear technical threshold is identified: to attain a CO2 recovery rate of 80% or higher, the initial CO2 volume fraction must exceed 60%. This finding defines a primary applicability criterion for the compression-purification approach. Subsequent analysis concentrated on flue gas compositions meeting this high-concentration criterion (>60% CO2). Within this domain, the system operating pressure emerges as the most influential parameter governing the synergistic relationship between NOx abatement and CO2 purification efficiency. Detailed parametric optimization reveals a distinct optimal operating pressure of 2.8 MPa. Operating at this pressure enables the process to achieve superior performance across all key metrics: the NOx removal efficiency surpasses 94%, the purified liquid CO2 product attains a purity of 95% or higher, and the target CO2 recovery rate of ≥80% is reliably maintained. Crucially, this operating point corresponds precisely to the minimum in specific power consumption, which is quantified at 120.1 kW·h per ton of CO2 captured. This represents an optimal trade-off, balancing high environmental performance with minimized energy penalty, a critical factor for economic feasibility.
The compression and purification technology is suitable for treating oxy-fuel combustion flue gas with a high initial CO2 volume fraction (>60%). By optimizing the system pressure to 2.8 MPa, efficient CO2 capture and deep NOx removal can be achieved simultaneously with low energy consumption. This study clarifies the key performance thresholds and optimal operating parameters for this integrated process, providing a concrete and feasible technical solution for achieving pollution reduction, carbon mitigation, and resource utilization in natural gas oxy-fuel combustion systems.
| 科 Family | 属数 Number of genus | 种数 Number of species | 占总种数比例 Percentage of total species (%) | 属 Genus | 种数 Number of species | 占总种数比例 Percentage of total species (%) |
|---|---|---|---|---|---|---|
| 鹅膏菌科Amanitaceae | 2 | 11 | 5.26 | 鹅膏菌属 Amanita | 10 | 4.78 |
| 小菇科 Mycenaceae | 2 | 12 | 5.74 | 丝盖伞属 Inocybe | 5 | 2.39 |
| 多孔菌科 Polyporaceae | 8 | 14 | 6.70 | 蜡蘑属 Laccaria | 5 | 2.39 |
| 红菇科 Russulaceae | 3 | 23 | 11.00 | 小皮伞属 Marasmius | 6 | 2.87 |
| 小菇属 Mycena | 11 | 5.26 | ||||
| 光柄菇属 Pluteus | 5 | 2.39 | ||||
| 红菇属 Russula | 17 | 8.13 | ||||
| 栓菌属 Trametes | 5 | 2.39 |