• Media type: E-Article
  • Title: FLOX® Combustion at High Power Density and High Flame Temperatures
  • Contributor: Lammel, Oliver; Schütz, Harald; Schmitz, Guido; Lückerath, Rainer; Stöhr, Michael; Noll, Berthold; Aigner, Manfred; Hase, Matthias; Krebs, Werner
  • Published: ASME International, 2010
  • Published in: Journal of Engineering for Gas Turbines and Power, 132 (2010) 12
  • Language: English
  • DOI: 10.1115/1.4001825
  • ISSN: 0742-4795; 1528-8919
  • Origination:
  • Footnote:
  • Description: In this contribution, an overview of the progress in the design of an enhanced FLOX® burner is given. A fuel flexible burner concept was developed to fulfill the requirements of modern gas turbines: high specific power density, high turbine inlet temperature, and low NOx emissions. The basis for the research work is numerical simulation. With the focus on pollutant emissions, a detailed chemical kinetic mechanism is used in the calculations. A novel mixing control concept, called HiPerMix®, and its application in the FLOX® burner are presented. In view of the desired operational conditions in a gas turbine combustor, this enhanced FLOX® burner was manufactured and experimentally investigated at the DLR test facility. In the present work, experimental and computational results are presented for natural gas and natural gas+hydrogen combustion at gas turbine relevant conditions and high adiabatic flame temperatures (up to Tad=2000 K). The respective power densities are PA=13.3 MW/m2 bar (natural gas (NG)) and PA=14.8 MW/m2 bar(NG+H2), satisfying the demands of a gas turbine combustor. It is demonstrated that the combustion is complete and stable and that the pollutant emissions are very low.