Araştırma Makalesi

Comparison of Reacting DDES and LES CFD Simulation Methodologies for a Dual Inlet Ramjet Engine Combustor

Cilt: 45 Sayı: 1 7 Nisan 2025
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Comparison of Reacting DDES and LES CFD Simulation Methodologies for a Dual Inlet Ramjet Engine Combustor

Öz

The design of a dual inlet dump ramjet combustor is critical in the development of propulsion systems. Parameters such as pressure drop, pressure fluctuations, and combustion efficiency must be evaluated across various flight regimes. In this study, Large Eddy Simulation (LES) and Delayed Detached Eddy Simulation (DDES) techniques, coupled with the Steady Laminar Flamelet combustion model, are used to model a generic ramjet combustor. Grid convergence was ensured through the application of the Richardson extrapolation method, and the grid quality was evaluated using the M-index. A close agreement between both LES and DDES approaches and experimental data was observed, confirming their accuracy in simulating the complex flow behavior of the combustor. The present research demonstrates that the Steady Laminar Flamelet model is capable of predicting flow structures in a ramjet combustor under reacting conditions. Within LES simulations, the prediction of turbulent kinetic energy within the near-wall region was enhanced, resulting in faster mixing and an overestimation of combustion efficiency. Even closer agreement with experimental data was achieved in DDES predictions, highlighting the effectiveness of employing eddy simulation with near-wall modeling when wall resolution is unfeasible. This approach not only demonstrates better agreement between DDES predictions and experimental data but also showcases its efficiency in reducing the need for excessively refined meshes in the study of dump-type low subsonic combustors.

Anahtar Kelimeler

Kaynakça

  1. Benim, A. C., M. P Escudier, A. Nahavandi, K. Nickson, and K. J. Syed. 2008. DES Analysis of Confined Turbulent Swirling Flows in the Sub-critical Regime. In Advances in Hybrid RANS-LES Modelling. Notes on Numerical Fluid Mechanics and Multidisciplinary Design, ed. S.H. Peng and W. Haase. 97:172-181. Springer-Verlag Berlin Heidelberg. https://doi.org/10.1007/978-3-540-77815-8
  2. Bilger, R. W. 1976. The Structure of Diffusion Flames. Combustion Science and Technology. 13:155-70. https://doi.org/10.1080/00102207608946733
  3. Blevins, J. A., and H. W. Coleman. 1999. Apparent Failure of Scaling Methods in Ramjet Connected-Pipe Testing. Journal of Propulsion and Power. 15(5):689-98. https://doi.org/10.2514/2.5480
  4. Burke, S. P., and T. E. W. Schumann. 1928. Diffusion Flames. Industrial & Engineering Chemistry. 20(10):998-1004. https://doi.org/10.1021/ie50226a005
  5. Cagdas, C.E. 2021. Investigation Of The Relight Characteristics Of A Turbojet Engine Combustion Chamber Under High-Altitude Conditions Using Computational Fluid Dynamics Large Eddy Simulation. M.Sc. Thesis, TOBB University of Economics and Technology Institute of Natural and Applied Sciences Mechanical Engineering Science Programme, Ankara. http://www.theses.fr/2009INPT025H/document
  6. Chuang, C. L., D.L. Cherng, W.H. Hsieh, G.S. Settles, and K.K. Kuo. 1989. Study of Flowfield Structure in a Simulated Solid-Propellant Ducted Rocket Motor. 27th Aerospace Sciences Meeting. https://doi.org/10.2514/6.1989-11
  7. Claramunt, K., R. Cònsul, D. Carbonell, and C.D. Pérez-Segarra. 2006. Analysis Of The Laminar Flamelet Concept For Nonpremixed Laminar Flames. Combustion and Flame. 145(4):845-62. https://doi.org/10.1016/j.combustflame.2005.11.005
  8. Crocco, L. 1940. Sullo strato limite laminare nei gas lungo una parete piana. Rendiconti del Circolo Matematico di Palermo. 63:121-75. https://doi.org/10.1007/BF03015720

Ayrıntılar

Birincil Dil

İngilizce

Konular

Akışkan Akışı, Isı ve Kütle Transferinde Hesaplamalı Yöntemler (Hesaplamalı Akışkanlar Dinamiği Dahil)

Bölüm

Araştırma Makalesi

Yayımlanma Tarihi

7 Nisan 2025

Gönderilme Tarihi

1 Haziran 2024

Kabul Tarihi

18 Şubat 2025

Yayımlandığı Sayı

Yıl 2025 Cilt: 45 Sayı: 1

Kaynak Göster

APA
Solmaz, M. B., & Uslu, S. (2025). Comparison of Reacting DDES and LES CFD Simulation Methodologies for a Dual Inlet Ramjet Engine Combustor. Isı Bilimi ve Tekniği Dergisi, 45(1), 10-21. https://doi.org/10.47480/isibted.1490666
AMA
1.Solmaz MB, Uslu S. Comparison of Reacting DDES and LES CFD Simulation Methodologies for a Dual Inlet Ramjet Engine Combustor. Isı Bilimi ve Tekniği Dergisi. 2025;45(1):10-21. doi:10.47480/isibted.1490666
Chicago
Solmaz, Mehmet Burak, ve Sitki Uslu. 2025. “Comparison of Reacting DDES and LES CFD Simulation Methodologies for a Dual Inlet Ramjet Engine Combustor”. Isı Bilimi ve Tekniği Dergisi 45 (1): 10-21. https://doi.org/10.47480/isibted.1490666.
EndNote
Solmaz MB, Uslu S (01 Nisan 2025) Comparison of Reacting DDES and LES CFD Simulation Methodologies for a Dual Inlet Ramjet Engine Combustor. Isı Bilimi ve Tekniği Dergisi 45 1 10–21.
IEEE
[1]M. B. Solmaz ve S. Uslu, “Comparison of Reacting DDES and LES CFD Simulation Methodologies for a Dual Inlet Ramjet Engine Combustor”, Isı Bilimi ve Tekniği Dergisi, c. 45, sy 1, ss. 10–21, Nis. 2025, doi: 10.47480/isibted.1490666.
ISNAD
Solmaz, Mehmet Burak - Uslu, Sitki. “Comparison of Reacting DDES and LES CFD Simulation Methodologies for a Dual Inlet Ramjet Engine Combustor”. Isı Bilimi ve Tekniği Dergisi 45/1 (01 Nisan 2025): 10-21. https://doi.org/10.47480/isibted.1490666.
JAMA
1.Solmaz MB, Uslu S. Comparison of Reacting DDES and LES CFD Simulation Methodologies for a Dual Inlet Ramjet Engine Combustor. Isı Bilimi ve Tekniği Dergisi. 2025;45:10–21.
MLA
Solmaz, Mehmet Burak, ve Sitki Uslu. “Comparison of Reacting DDES and LES CFD Simulation Methodologies for a Dual Inlet Ramjet Engine Combustor”. Isı Bilimi ve Tekniği Dergisi, c. 45, sy 1, Nisan 2025, ss. 10-21, doi:10.47480/isibted.1490666.
Vancouver
1.Mehmet Burak Solmaz, Sitki Uslu. Comparison of Reacting DDES and LES CFD Simulation Methodologies for a Dual Inlet Ramjet Engine Combustor. Isı Bilimi ve Tekniği Dergisi. 01 Nisan 2025;45(1):10-21. doi:10.47480/isibted.1490666

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