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Author

  • Funke, Harald H.-W. (7)
  • Horikawa, A. (7)
  • Kazari, Masahide (7)
  • Haj Ayed, A. (6)
  • Keinz, Jan (6)
  • Kitajima, J. (6)
  • Kusterer, Karsten (6)
  • Okada, K. (6)
  • Börner, Sebastian (2)
  • Koga, K. (1)
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  • Fachbereich Luft- und Raumfahrttechnik (7)

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Experimental and numerical characterization of the dry low NOx micromix hydrogen combustion principle at increased energy density for industrial hydrogen gas turbine applications (2013)
Funke, Harald H.-W. ; Keinz, Jan ; Börner, Sebastian ; Haj Ayed, A. ; Kusterer, Karsten ; Tekin, Nurettin ; Kazari, Masahide ; Kitajima, J. ; Horikawa, A. ; Okada, K.
Numerical Study on Increased Energy Density for the DLN Micromix Hydrogen Combustion Principle (2014)
Funke, Harald H.-W. ; Haj Ayed, A. ; Kusterer, Karsten ; Keinz, Jan ; Kazari, Masahide ; Kitajima, J. ; Horikawa, A. ; Okada, K.
Experimental and Numerical Study on Optimizing the DLN Micromix Hydrogen Combustion Principle for Industrial Gas Turbine Applications (2015)
Funke, Harald H.-W. ; Keinz, Jan ; Kusterer, Karsten ; Haj Ayed, A. ; Kazari, Masahide ; Kitajima, J. ; Horikawa, A. ; Okada, K.
Development and Testing of a Low NOx Micromix Combustion Chamber for an Industrial Gas Turbine (2015)
Funke, Harald H.-W. ; Keinz, Jan ; Haj Ayed, A. ; Kazari, Masahide ; Kitajima, J. ; Horikawa, A. ; Okada, K.
Numerical combustion and heat transfer simulations and validation for a hydrogen fueled "micromix" test combustor in industrial gas turbine applications (2017)
Striegan, C. ; Haj Ayed, A. ; Funke, Harald H.-W. ; Loechle, Sebastian ; Kazari, Masahide ; Horikawa, A. ; Okada, K. ; Koga, K. ; Kusterer, Karsten
Development and Testing of a Low NOX Micromix Combustion Chamber for an Industrial Gas Turbine (2017)
Funke, Harald H.-W. ; Keinz, Jan ; Kusterer, Karsten ; Haj Ayed, A. ; Kazari, Masahide ; Kitajima, J. ; Horikawa, A. ; Okada, K.
The Micromix combustion principle, based on cross-flow mixing of air and hydrogen, promises low emission applications in future gas turbines. The Micromix combustion takes place in several hundreds of miniaturized diffusion-type micro-flames. The major advantage is the inherent safety against flash-back and low NOx-emissions due to a very short residence time of reactants in the flame region. The paper gives insight into the Micromix design and scaling procedure for different energy densities and the interaction of scaling laws and key design drivers in gas turbine integration. Numerical studies, experimental testing, gas turbine integration and interface considerations are evaluated. The aerodynamic stabilization of the miniaturized flamelets and the resulting flow field, flame structure and NOx formation are analysed experimentally and numerically. The results show and confirm the successful adaption of the low NOx Micromix characteristics for a range of different nozzle sizes, energy densities and thermal power output.
Numerical and experimental characterization of low NOx Micromix combustion principle for industrial hydrogen gas turbine applications (2012)
Funke, Harald H.-W. ; Börner, Sebastian ; Keinz, Jan ; Kusterer, Karsten ; Kroninger, Daniel ; Kitajima, J. ; Kazari, Masahide ; Horikawa, A.
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