Curriculum Vitaes
Profile Information
- Affiliation
- Assistant Professor, Faculty of Science and Technology Department of Engineering and Applied Sciences, Sophia University
- Degree
- Bachelors of Science(Jun, 2014, Sabanci University)Master of Science(Sep, 2017, Sophia University)Doctorate(Mar, 2020, Sophia University)
- Researcher number
- 10881112
- ORCID ID
https://orcid.org/0000-0003-3173-1853- J-GLOBAL ID
- 202001004977557579
- researchmap Member ID
- R000004564
- External link
Research Interests
3Research Areas
4Committee Memberships
1-
Apr, 2025 - Sep, 2025
Awards
7Papers
34-
International Journal of Engine Research, Feb 6, 2026 Peer-reviewedWith the decarbonization of internal combustion engines, alternative fuels have gained increasing attention. When using fuels with low combustibility, such as ammonia, detailed analysis of the intake system and in-cylinder flow is essential for improving combustion efficiency. Proper orthogonal decomposition (POD) has been widely used to extract coherent structures in flow fields within internal combustion engines. However, most previous studies have focused on analyzing cycle-to-cycle variations in gasoline engines, while time-resolved analysis within a single cycle of diesel engines has rarely been conducted. In this study, the effect of tangential port opening on in-cylinder flow characteristics was investigated using an optical single-cylinder diesel engine equipped with two intake ports and two exhaust ports. The opening area of the tangential port was varied under five conditions using different gaskets, and in-cylinder velocities were measured using particle image velocimetry. POD was applied to the acquired velocity data to evaluate the flow structures of the higher modes and their correlations with the mean flow and turbulence intensity. The results showed that in POD mode 1, a swirl flow was formed during the compression stroke when the tangential port opening exceeded 25%. Evaluation of the correlation between POD mode 1 and the ensemble-averaged flow using the relevance index revealed a strong correlation during the compression stroke. In POD mode 2, complex flows were observed during the intake stroke, and structures different from the mean flow were also confirmed during the compression stroke. A moderate correlation was observed between POD mode 2 and turbulence intensity under all conditions. Energy contribution analysis indicated that in the early intake stroke, the variation in mode 1 was large, and the flows represented by mode 2 and higher modes were dominant, whereas in the late compression stroke, mode 1 consistently accounted for a higher proportion.
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Applied Thermal Engineering, 285 129019-129019, Feb, 2026 Peer-reviewed
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Experimental Heat Transfer, 1-21, Jan 22, 2026 Peer-reviewedLead author
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Journal of Engineering and Technological Sciences, 57(6) 735-746, Oct 28, 2025 Peer-reviewedCarbon dioxide (CO2) is the primary contributor to greenhouse gas emissions. Ammonia (NH3) has emerged as a promising alternative fuel due to its high energy density, ease of transportation, and carbon-free molecular structure. However, its practical application is challenged by slow combustion characteristics and high ignition temperatures. This study investigates the combustion behaviour of ethanol-ammonia mixtures using a high-compression-ratio engine (17.7:1) equipped with a sub-chamber. The engine operated at a constant speed of 1000 rpm. Ammonia energy ratios of 40%, 50%, and 60% were tested across ignition timings of 0°, 2°, 4°, 6°, and 8° crank angle (CA) before top dead center (BTDC). Results indicate that advancing the ignition timing increases in-cylinder pressure and heat release rate while reducing combustion duration. Lower ammonia energy ratios yielded higher thermal efficiency. Conversely, higher ammonia content and advanced ignition timings led to increased NOx emissions.
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2025 SICE Festival with Annual Conference, 779-782, Sep, 2025 Peer-reviewedInvited
Misc.
3-
Proceedings of JSPE Semestrial Meeting, 2025S 737-738, Mar 5, 2025 Peer-reviewedThe authors have proposed inclined planetary machining for drilling CFRP, which can produce higher-quality holes than conventional drills and helical machining. A portable inclined planetary machining device has been developed. Conventional inclined planetary machining devices were designed to incline the entire tool spindle and required manual adjustment. In this study, the tool tilting mechanism was automated, and a structure was created in which only the tool part could be tilted, thereby reducing vibration. The device design and mechanism were verified in this report.
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自動車技術会大会学術講演会講演予稿集(Web), 2021, 2021
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The Proceedings of the Thermal Engineering Conference, 2018 0031-0031, 2018 Peer-reviewed
Presentations
41-
2026 JSPE Spring Conference Academic Meeting, Mar 17, 2026 Invited
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2025-2026 JSAE KANTO International Conference of Automotive Technology for Young Engineers (ICATYE), Mar 12, 2026
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2025-2026 JSAE KANTO International Conference of Automotive Technology for Young Engineers (ICATYE), Mar 12, 2026
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2025-2026 JSAE KANTO International Conference of Automotive Technology for Young Engineers (ICATYE), Mar 12, 2026
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2025-2026 JSAE KANTO International Conference of Automotive Technology for Young Engineers (ICATYE), Mar 12, 2026
Teaching Experience
6-
Sep, 2024 - PresentMechanical Systems Design Seminar I (Sophia University)
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Sep, 2021 - PresentMachine Design (Sophia University)
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Sep, 2021 - PresentBasics of Differential Equations (Sophia University)
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Apr, 2021 - PresentMechanical Creative Engineering Experiment / Practice II (Sophia University)
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Apr, 2021 - PresentFundamentals of Microsystem Design (Sophia University)
Professional Memberships
5-
Jan, 2022 - Present
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Sep, 2021 - Present
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Jun, 2021 - Present
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Jun, 2021 - Present
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Jan, 2017 - Present
Research Projects
1-
Faculty of Science and Engineering Research Funding (Application Required), Sophia University, Apr, 2025 - Mar, 2026