Numerical Investigation of Methane/Hydrogen/Air Partially Premixed Flames in the SGT-800 Burner Fitted to a Combustion Rig

被引:1
|
作者
Daniel Moëll
Daniel Lörstad
Xue-Song Bai
机构
[1] Siemens Industrial Turbomachinery AB,Department of Energy Sciences
[2] Lund University,undefined
来源
关键词
Gas turbine combustion; Turbulence model; Flamelets; Partially premixed; Hydrogen enriched flames;
D O I
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中图分类号
学科分类号
摘要
The Siemens SGT-800 3rd generation DLE burner fitted to an atmospheric combustion rig has been numerically investigated. Pure methane and methane enriched by 80 vol% hydrogen flames have been considered. A URANS (Unsteady Reynolds Averaged Navier-Stokes) approach was used in this study along with the k − ω SST and the k − ω SST-SAS models for the turbulence transport. The chemistry is coupled to the turbulent flow simulations by the use of a laminar flamelet library combined with a presumed PDF. The effect of the mesh density in the mixing and the flame region and the effect of the turbulence model and reaction rate model constant are first investigated for the methane/air flame case. The results from the k − ω SST-SAS along with flamelet libraries are shown to be in excellent agreement with experimental data, whereas the k − ω SST model is too dissipative and cannot capture the unsteady motion of the flame. The k − ω SST-SAS model is used for simulation of the 80 vol% hydrogen enriched flame case without further adjusting the model constants. The global features of the hydrogen enrichment are very well captured in the simulations using the SST-SAS model. With the hydrogen enrichment the time averaged flame front location moves upstream towards the burner exit nozzle. The results are consistent with the experimental observations. The model captures the three dominant low frequency unsteady motion observed in the experiments, indicating that the URANS/LES hybrid model indeed is capable of capturing complex, time dependent, features such as an interaction between a PVC and the flame front.
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收藏
页码:987 / 1003
页数:16
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