Direct numerical simulation of flame-wall interaction at gas turbine relevant conditions

被引:3
|
作者
Niemietz, Kai [1 ]
Berger, Lukas [1 ]
Huth, Michael [2 ]
Attili, Antonio [3 ]
Pitsch, Heinz [1 ]
机构
[1] Rhein Westfal TH Aachen, Inst Combust Technol, D-52056 Aachen, Germany
[2] Siemens Energy Global GmbH & Co KG, Mellinghofer Str 55, D-45473 Mulheim, Germany
[3] Univ Edinburgh, Inst Multiscale Thermofluids, Sch Engn, Edinburgh EH9 3FD, Scotland
关键词
Direct numerical simulation; Flame -wall interaction; CO emissions; Gas turbine combustion; LAMINAR; METHANE; BURNER; COMBUSTION; EMISSIONS; IMPACT; REGIME;
D O I
10.1016/j.proci.2022.09.022
中图分类号
O414.1 [热力学];
学科分类号
摘要
A direct numerical simulation (DNS) with finite rate chemistry was performed to evaluate the main influences on carbon monoxide (CO) emissions in gas turbine combustion. A lean methane/air mixture is burned in fully turbulent jet flames in a domain enclosed by isothermal walls. The formation of CO is found to be affected by the mean strain rate of the turbulent flow, the flame-wall interaction (FWI), and the interactions of the flame with the recirculation zones of the flow. The CO production and consumption in the turbulent flame differ strongly from the reaction rates in a freely propagating flame. In the upstream part of the domain, the mean strain rate of the turbulent flow mainly affects the CO formation, while wall heat loss influences the CO oxidation process towards the end of the domain, where the strain rate decreases. In an optimal estimator analysis, the relevant parameters that dominate the formation and consumption of CO are identified as the local CO mass fraction Y CO , the wall heat loss, described by the enthalpy defect Ah , and the mass fraction of the OH radical Y OH . The heat loss is particularly influential close to the wall while the effects far from the wall are negligible. Using the local CO mass fraction as parameter describes the late-stage oxidation of CO well in the entire domain. In particular, Y CO should not be neglected at the wall. Y OH is well suited to describe the processes involved in CO oxidation, as it both parameterizes the turbulent strain and is the main reaction partner for CO oxidation. The combination of Y CO and Ah was able to improve the domainaveraged irreducible error by almost half compared to only a progress variable. Adding Y OH to the parameter set further reduced the error to 25% of the original error. & COPY; 2022 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:2209 / 2218
页数:10
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