Numerical Study of an Improved Non-Circular MC Fuelled with H/Air for Thermo-Photovoltaic (TPV) Applications
Article
Article Title | Numerical Study of an Improved Non-Circular MC Fuelled with H/Air for Thermo-Photovoltaic (TPV) Applications |
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Article Category | Article |
Authors | Ayad, Kakei A., Khdher, Abdolbaqi Mohammed, Albazzaz, Kamal Jalal Tawfeeq, Kakahy, Amer Najat Najmaldeen, Abdulkarim, Ali Hussein and Epaarachchi, Jayantha |
Journal Title | Mathematical Modelling of Engineering Problems |
Journal Citation | 9 (4), pp. 897-905 |
Number of Pages | 9 |
Year | 2022 |
Publisher | International Information and Engineering Technology Association |
Place of Publication | Canada |
ISSN | 2369-0739 |
2369-0747 | |
Digital Object Identifier (DOI) | https://doi.org/10.18280/mmep.090406 |
Web Address (URL) | https://www.iieta.org/journals/mmep/paper/10.18280/mmep.090406 |
Abstract | In recent years, researchers have paid special attention to wall uniformity temperature and improvement in a micro-combustor (MC) for applications as thermos-photovoltaic (TPV) since they have a direct influence on feasibility and efficiency of the required conversion of energy. Numerous experimentation and numerical studies in the field of micro-combustion have been carried out and published in this respect. This study focuses on the flame and flow behaviour in an improved MC. Utilizing the famous approach of fluid dynamics being computational (CFD), the impact of geometrical flow parameters behaviour and temperature of wall is explored and measured. The generated model is being used to evaluate the effects of Hydrogen (H) mass flow rate (MFR) and H/air equivalency ratios on the flame pattern and outer temperature of wall of conventional and enhanced MCs. Moreover, the influence of various MC cross sections (CS), such as square, circular, and flat, on temperature of wall is examined. The findings reveal that when the MFR rises, the wall outside temperature rises as well. The MC with flat cross-sections (CSs) is found to be more effective in terms of power of emitter and efficiency of emitter. |
Keywords | micro thermo-photovoltaic (MTPV); micro flat tube combustor; combustion characteristic |
ANZSRC Field of Research 2020 | 401204. Computational methods in fluid flow, heat and mass transfer (incl. computational fluid dynamics) |
490302. Numerical analysis | |
Public Notes | File reproduced in accordance with the copyright policy of the publisher/author. |
Byline Affiliations | University of Kirkuk, Iraq |
Imam Ja'afar Al-Sadiq University, Iraq | |
School of Engineering | |
Centre for Future Materials |
https://research.usq.edu.au/item/z0199/numerical-study-of-an-improved-non-circular-mc-fuelled-with-h-air-for-thermo-photovoltaic-tpv-applications
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