Author
Listed:
- Yufeng Pei
(Northeast Electric Power Design Institute Co., Ltd. of China Power Engineering Consulting Group, Changchun 130021, China)
- Dandan Li
(Northeast Electric Power Design Institute Co., Ltd. of China Power Engineering Consulting Group, Changchun 130021, China
School of Energy and Power Engineering, Northeast Electric Power University, Jilin 132012, China)
- Xiuyan Zhang
(Northeast Electric Power Design Institute Co., Ltd. of China Power Engineering Consulting Group, Changchun 130021, China)
- Chang Yu
(Northeast Electric Power Design Institute Co., Ltd. of China Power Engineering Consulting Group, Changchun 130021, China
School of Energy and Power Engineering, Northeast Electric Power University, Jilin 132012, China)
- Jili Leng
(Northeast Electric Power Design Institute Co., Ltd. of China Power Engineering Consulting Group, Changchun 130021, China)
- Qing Wang
(School of Energy and Power Engineering, Northeast Electric Power University, Jilin 132012, China
Engineering Research Centre of Oil Shale Comprehensive Utilization, Ministry of Education, Northeast Electric Power University, Jilin 132012, China)
- Da Cui
(School of Energy and Power Engineering, Northeast Electric Power University, Jilin 132012, China
Engineering Research Centre of Oil Shale Comprehensive Utilization, Ministry of Education, Northeast Electric Power University, Jilin 132012, China)
- Shuang Wu
(School of Energy and Power Engineering, Northeast Electric Power University, Jilin 132012, China
Engineering Research Centre of Oil Shale Comprehensive Utilization, Ministry of Education, Northeast Electric Power University, Jilin 132012, China)
Abstract
In this study, thermogravimetric analysis was employed to investigate the non-isothermal combustion behavior and kinetic characteristics of poplar biomass under air and oxy-fuel (O 2 /CO 2 ) atmospheres. The effects of heating rate and oxygen concentration on combustion performance, gaseous emissions, and kinetic parameters were systematically analyzed. Results show that poplar biomass combustion consists of four distinct stages: moisture evaporation, devolatilization with volatile oxidation, char and fixed carbon oxidation, and final burnout. Increasing the heating rate intensifies the combustion process, shifting characteristic temperatures to higher values and significantly enhancing the comprehensive combustion index. Compared with air combustion, oxy-fuel conditions reduce ignition temperature and the temperature corresponding to the maximum combustion rate, leading to an earlier ignition and a more concentrated reaction interval. Higher oxygen concentrations further improve overall combustion performance and promote more complete carbon conversion. Gas emission analysis indicates that oxy-fuel combustion effectively suppresses NO 2 and SO 2 formation, demonstrating notable emission-reduction potential. Kinetic analysis using the Kissinger–Akahira–Sunose and Flynn–Wall–Ozawa isoconversional methods shows that the activation energy varies with conversion degree and is generally higher under oxy-fuel atmospheres than in air. Overall, oxy-fuel combustion enhances biomass reactivity while achieving coordinated emission control through increased oxygen partial pressure and improved heat and mass transfer, supporting its practical application in biomass energy systems.
Suggested Citation
Yufeng Pei & Dandan Li & Xiuyan Zhang & Chang Yu & Jili Leng & Qing Wang & Da Cui & Shuang Wu, 2026.
"Combustion Characteristics and Combustion Kinetics of Poplar Biomass Under Oxy-Fuel Conditions,"
Energies, MDPI, vol. 19(6), pages 1-13, March.
Handle:
RePEc:gam:jeners:v:19:y:2026:i:6:p:1444-:d:1892291
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