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Featured researches published by Basmil Yenerdag.


Combustion Science and Technology | 2018

Effects of Turbulence on Ignition of Methane–Air and n-Heptane–Air Fully Premixed Mixtures

Naoyuki Saito; Yuki Minamoto; Basmil Yenerdag; Masayasu Shimura; Mamoru Tanahashi

ABSTRACT We performed direct numerical simulations (DNS) for the two-dimensional (2D) turbulent ignition of ultra-lean methane–air and n-heptane–air mixtures with a high exhaust gas recirculation (EGR) rate at high pressure to determine the ignition criteria and ignition delay time. We defined an initial high-temperature region as an ignition kernel and conducted one-dimensional preliminary DNS to determine the ignition criteria in terms of the ignition source energy and the thermal conduction from the ignition kernel during the induction period. Additionally, we analyzed the 2D DNS results to clarify the influence of the turbulent strain rate on the ignition delay time and the mechanism by which the turbulence influences the establishment of the ignition kernel. We observed that the distribution of eddies and the strain rate in the high-temperature region influences the success or failure of the ignition process and, therefore, the ignition delay time. The ignition delay time increases proportionally to the square of strain rate averaged in the high concentration region of the intermediate species during the induction period. This suggests that the ignition in a turbulent field is based on the balance between the influence of a locally averaged strain rate in the preheating region and the chemical (flame) time scale. Based on these observations, a simple model for the ignition delay time was constructed based on the mean strain rate in the high concentration region of the intermediate species during the induction period. The strain rate averaged in the high concentration region of the intermediate species was normalized by using the laminar burning velocity and the laminar thermal flame thickness. Additionally, the ignition delay time was normalized by the ignition delay time of the corresponding laminar case, yielding the same ignition model/criterion for both examined fuels, which could be extended to other mixtures.


Proceedings of the Combustion Institute | 2015

Turbulence–flame interaction and fractal characteristics of H2–air premixed flame under pressure rising condition

Basmil Yenerdag; Naoya Fukushima; Masayasu Shimura; Mamoru Tanahashi; Toshio Miyauchi


Fuel | 2017

Flame–wall interactions of lean premixed flames under elevated, rising pressure conditions

Basmil Yenerdag; Yuki Minamoto; Kozo Aoki; Masayasu Shimura; Yuzuru Nada; Mamoru Tanahashi


International Journal of Hydrogen Energy | 2016

Flame propagation and heat transfer characteristics of a hydrogen–air premixed flame in a constant volume vessel

Basmil Yenerdag; Yuki Minamoto; Yoshitsugu Naka; Masayasu Shimura; Mamoru Tanahashi


Combustion and Flame | 2018

Morphology and structure of hydrogen–air turbulent premixed flames

Yuki Minamoto; Basmil Yenerdag; Mamoru Tanahashi


International Journal of Hydrogen Energy | 2018

Assessment of SGS closure for isochoric combustion of hydrogen-air mixture

Golnoush Ghiasi; Nguyen Anh Khoa Doan; Nedunchezhian Swaminathan; Basmil Yenerdag; Yuki Minamoto; Mamoru Tanahashi


The Proceedings of the Thermal Engineering Conference | 2016

Numerical Investigation on Ignition Criterion and Mechanisms of Ultra-Lean and High EGR Rate Heptane/Air Mixture

Naoyuki Saito; Yuki Minamoto; Basmil Yenerdag; Masayasu Shimura; Mamoru Tanahashi


The Proceedings of the Thermal Engineering Conference | 2016

Flame propagation characteristics of hydrogen-air premixed flames in a constant volume vessel

Basmil Yenerdag; Yuki Minamoto; Masayasu Shimura; Mamoru Tanahashi


The Proceedings of the Thermal Engineering Conference | 2015

F144 Local flame structures of methane-air premixed combustion in thin reaction zones

Basmil Yenerdag; Yoshitsugu Naka; Masayasu Shimura; Mamoru Tanahashi


JSAE/SAE 2015 International Powertrains, Fuels & Lubricants Meeting | 2015

A DNS Study on Global and Local Flame Structures In Thin Reaction Zones

Basmil Yenerdag; Masayasu Shimura; Kozo Aoki; Yoshitsugu Naka; Mamoru Tanahashi; Yuzuru Nada

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Mamoru Tanahashi

Tokyo Institute of Technology

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Masayasu Shimura

Tokyo Institute of Technology

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Yuki Minamoto

Tokyo Institute of Technology

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Naoya Fukushima

Tokyo Institute of Technology

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Toshio Miyauchi

Tokyo Institute of Technology

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Yuzuru Nada

University of Tokushima

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Itaru Yoshikawa

Tokyo Institute of Technology

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Kozo Aoki

Tokyo Institute of Technology

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Naoyuki Saito

Tokyo Institute of Technology

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