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Exergy-based evaluation of high-CO2 biogas/diesel RCCI combustion heat flow for enhanced mixture distribution, power output, and fuel-energy performance


Citation

Dalha, Ibrahim B. and Wong, Nur Leena W.S. and Said, Mior A. and El-Adawy, Mohammed and Koca, Kemal and Abdulsalam, Muhammed and Yunusa, Suleiman U. and Man, Hafsalina C. (2026) Exergy-based evaluation of high-CO2 biogas/diesel RCCI combustion heat flow for enhanced mixture distribution, power output, and fuel-energy performance. Applied Thermal Engineering, 298. art. no. 131014. pp. 1-27. ISSN 1359-4311

Abstract

Utilising high-CO2 biogas in compression-ignition engines poses significant challenges due to poor mixture reactivity, inefficient combustion, and increased energy degradation. This work addresses these difficulties by conducting experimental research on a port-injection at the valve reactivity-controlled compression ignition (PIVE-RCCI) strategy. This study addresses these concerns by conducting experiments on a PIVE-RCCI technique to improve mixture distribution and combustion efficiency in biogas-diesel engines. The engine was modified to provide biogas through the inlet valve, allowing for controlled variations of biogas injection pressure (BIP: 1–4 bar) and port swirl ratio (PSR: 0–80%) at 1600 rpm and 4.9–5.7 bar IMEP. Energy and exergy analyses were used to determine the effect of intake flow dynamics on temperature uniformity, heat transfer, and power generation during combustion. The results reveal that normal airflow conditions minimise accounted heat loss, indicating higher thermal efficiency (ITE) and increased output power across all BIPs. In contrast, introducing a strong intake swirl dramatically improves combustion performance. The 80% PSR configuration resulted in the lowest exergy destruction and the maximum energy recovery potential, with an ITE of 26.54% at 4 bar BIP. Increasing BIP increased power output, whereas the optimal combustion work was found at 1 bar BIP and 40% PSR. The optimal working conditions were 1 bar BIP, 80% PSR, and 5.45 bar IMEP, which resulted in 26.00% exergy destruction, 39.38% destruction-to-released exergy ratio, 86.00% exergy-energy ratio of heat transfer, and 63.78% exhaust exergy-energy ratio. This work's novelty lies in integrating biogas injection, intake swirl control, and exergy-based evaluation to measure mixture distribution and energy recovery in high-CO₂ biogas RCCI combustion. The findings offer useful operational guidance for increasing energy efficiency and advancing the commercialization of renewable gaseous fuels in RCCI engines. As a result, operating the engine at half load, 80% PSR, and atmospheric air pressure (1 bar) conditions significantly enhanced the combustion efficiency and energy utilisation.


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Additional Metadata

Item Type: Article
Subject: Energy Engineering and Power Technology
Subject: Mechanical Engineering
Subject: Fluid Flow and Transfer Processes
Divisions: Faculty of Agriculture
Faculty of Engineering
DOI Number: https://doi.org/10.1016/j.applthermaleng.2026.131014
Publisher: Elsevier Ltd
Keywords: Biogas injection pressure; Energy recovery potential; Energy utilisation efficiency; Exergy destruction; Mixture homogeneity; Port swirl ratio
Sustainable Development Goals (SDGs): SDG 7: Affordable and Clean Energy, SDG 9: Industry, Innovation and Infrastructure, SDG 13: Climate Action
Depositing User: Ms. Siti Radziah Mohamed@mahmod
Date Deposited: 20 Jul 2026 09:34
Last Modified: 20 Jul 2026 09:34
Altmetrics: https://www.altmetric.com/details.php?domain=psasir.upm.edu.my&doi=10.1016/j.applthermaleng.2026.131014
URI: http://psasir.upm.edu.my/id/eprint/125191
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