ISSN 2079-6900 (Print) 
ISSN 2587-7496 (Online)

Middle Volga Mathematical Society Journal

DOI 10.15507/2079-6900.28.202603.240-257

Original article

ISSN 2079-6900 (Print)

ISSN 2587-7496 (Online)

MSC2020 49K20, 76F60, 80A20

Analysis of Central Air Injection for Enhancing Biogas Combustion Efficiency in a Reactive Flow System

U. J. Mizher1, M. J. Mezher2, P. M. Abrashkin3, P. A. Velmisov3

1Southern Technical University (Basra, Iraq)

2Al--Shatrah University (Al--Shatrah, Iraq)

3Ulyanovsk State Technical University (Ulyanovsk, Russian Federation)

Abstract. This study presents a comprehensive Computational Fluid Dynamics (CFD) analysis of a reactive flow system to investigate impact of central air injection on the combustion efficiency and emission characteristics of a biogas. Owing to its high carbon dioxide content (CO2) content, biogas typically exhibits flame instability and low calorific value. To mitigate these challenges, a central secondary air injection strategy is proposed to modify the shear layer dynamics and enhance turbulence-chemistry interactions. Numerical simulations were executed by solving the Reynolds--Averaged Navier--Stokes (RANS) equations coupled with the Realizable k-? turbulence model. The complex chemistry of the methane-carbon dioxide mixture was resolved using the Eddy Dissipation Concept (EDC) integrated with a reduced chemical kinetic mechanism. The results reveal that the aerodynamic structure induced by the central air jet establishes a stable Central Toroidal Recirculation Zone (CTRZ), which acts as a thermal anchor, significantly stabilizing the flame root and preventing its lift-off. Optimization of the central air injection velocity has led to a more uniform temperature distribution and to a remarkable decrease in unburned hydrocarbons (UHC) and Carbon Monoxide (CO) emissions at the exhaust. However, an upper threshold for the injection velocity was identified, beyond which localized thermal Nitrogen Oxide (NOx) generation increases due to intensive thermal damping from the excess cold core air. These findings offer practical guidelines for the aerodynamic optimization and design of eco-friendly, low-calorific biofuel burners.

Key Words: computational fluid dynamics, biogas combustion, central air injection, eddy dissipation concept, reduction of emissions

For citation: U. J. Mizher, M. J. Mezher, P. M. Abrashkin, P. A. Velmisov. Analysis of Central Air Injection for Enhancing Biogas Combustion Efficiency in a Reactive Flow System. Zhurnal Srednevolzhskogo matematicheskogo obshchestva. 28:3(2026), 240–257. DOI: https://doi.org/10.15507/2079-6900.28.202603.240-257

Submitted: 11.05.2026; Revised: 10.07.2026; Accepted: 25.08.2026

Information about the authors:

Usama J. Mizher, Ph.D (Tech.), Lecturer, Southern Technical University (Al-Zubair Main Road, Basra 61001, Iraq), ORCID: https://orcid.org/0000-0002-8950-9772, u.mizher@stu.edu.iq

Mustafa J. Mezher, Lecturer, Al--Shatrah University (Al-Gharraf St., Dhi Qar, Al-Shatra 64007, Iraq), ORCID: https://orcid.org/0000-0002-7573-3036, Mustafa.J.Mezher@shu.edu.iq

Pavel M. Abrashkin, postgraduate student, Ulyanovsk State Technical University (32 Severny Venets St., Ulyanovsk 432027, Russia), ORCID: https://orcid.org/0009-0009-7029-3826, abrashkinpm@gmail.com

Peter A. Velmisov, D.Sc. (Phys. and Math.), Professor, Ulyanovsk State Technical University (32 Severny Venets St., Ulyanovsk 432027, Russia), ORCID: https://orcid.org/0000-0001-7825-7015, velmisov@ulstu.ru

All authors have read and approved the final manuscript.

Conflict of interest: The authors declare no conflict of interest.

Creative Commons Attribution 4.0 International License This is an open access article distributed under the terms of the Creative Commons Attribution 4.0 International License.