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Mehdi Bidabadi

Researcher at Iran University of Science and Technology

Publications -  117
Citations -  1286

Mehdi Bidabadi is an academic researcher from Iran University of Science and Technology. The author has contributed to research in topics: Combustion & Adiabatic flame temperature. The author has an hindex of 17, co-authored 108 publications receiving 1071 citations. Previous affiliations of Mehdi Bidabadi include McGill University.

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Quenching distance of laminar flame in aluminum dust clouds

TL;DR: In this article, the authors measured the minimum quenching distance for aluminum dust flames in an improved flow system which can yield stable, controlled, uniform dust mixtures using an annular high speed jet which disperses dust continuously supplied via a piston-type dust feeding system.
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The effect of Lewis and Damköhler numbers on the flame propagation through micro-organic dust particles

TL;DR: In this paper, the role of Lewis and Damkohler numbers on premixed flame propagation through micro-organic dust particles is investigated and it is assumed that the fuel particles vaporize first to yield a gaseous fuel, which is oxidized in the gas phase.
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Generation of High Quality Biogenic Silica by Combustion of Rice Husk and Rice Straw Combined with Pre- and Post-Treatment Strategies—A Review

TL;DR: In this article, a comprehensive literature review on rice husk and rice straw combustion as well as applied strategies for raw material pre-treatment and/or post-treatment of resulting ashes to obtain high quality biogenic silica.
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Modeling combustion of lycopodium particles by considering the temperature difference between the gas and the particles

TL;DR: In this article, the effect of temperature difference between the gas and the particles on propagation of premixed flames in a combustible mixture containing volatile fuel particles uniformly distributed in an oxidizing gas mixture is analyzed in the asymptotic limit.
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Modeling of laminar flame propagation through organic dust cloud with thermal radiation effect

TL;DR: In this article, a mathematical model is performed to analyze the structure of flame propagation through a two-phase mixture consisting of organic fuel particles and air, and the results show that the induced thermal radiation from flame interface into the preheat and vaporization zones plays a significant role in the improvement of vaporization process and burning velocity of organic dust mixture.