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Combustion under Flue Gas Recirculation Conditions in a Gas Turbine Lean Premix Burner

机译:燃气轮机稀薄预混燃烧器中烟气再循环条件下的燃烧

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An EV burner as installed in Alstom's dry low NO_X gas turbines was experimentally investigated under different Flue Gas Recirculation (FGR) and engine conditions. FGR enables the reduction of the high exhaust volume flow while significantly increasing the exhaust CO_2 concentration. This may substantially improve the post-combustion capture of CO_2. However, FGR introduces consequent changes in the gas turbine combustion process mainly because of the oxygen depletion and CO_2 increase within the oxidizer.N2 and CO_2 were mixed with air in order to obtain at the burner inlet a synthetic oxidizer mixture reproducing O_2 and CO_2 levels spanning different FGR levels of interest for engine operation. In addition, various degrees of unmixedness of the reactive mixture were investigated by varying the ratio of fuel injected at different port locations in the investigated burner set.Stable operation was achieved in all tested conditions. The lean premix flame shifts downstream when O_2 is depleted due to the decrease of the reactivity, although it always stays well within the combustion chamber. The potential for NO_X reduction when using FGR is demonstrated. Changes of the NO_X formation mechanism are described and compared to the experimental data for validation. Unmixedness appears to be less detrimental to NO_X emission when under high FGR ratio. However, CO emission is shown to increase when FGR ratio is increased. Meanwhile, with the present gas turbine combustor, the CO emission follows the equilibrium limit even at high FGR ratio. Interestingly, it is observed that when the burner inlet pressure is increased (and consequently the inlet burner temperature), the increase of CO emission due to FGR is lowered while the NO_X emission stays at a very low level. This present an argument for using a higher cycle pressure in gas turbines optimized for FGR operation.
机译:在不同的烟气再循环(FGR)和发动机条件下,通过实验研究了安装在阿尔斯通干燥低NO_X燃气轮机中的EV燃烧器。 FGR能够减少高排气量流量,同时显着提高排气中的CO_2浓度。这可以显着改善燃烧后CO_2的捕获。但是,FGR导致燃气轮机燃烧过程随之发生变化,这主要是因为氧化剂中的氧气消耗和CO_2增加。 将N2和CO_2与空气混合,以便在燃烧器入口处获得合成氧化剂混合物,该混合物产生的O_2和CO_2含量跨越了发动机运行所需的不同FGR含量。另外,通过改变在所研究的燃烧器组中的不同端口位置处喷射的燃料的比例,研究了反应混合物的各种不混合程度。 在所有测试条件下均实现了稳定的运行。当O_2耗尽时,稀薄的预混火焰由于反应性降低而向下游移动,尽管它始终很好地留在燃烧室内。证明了使用FGR时NO_X还原的潜力。描述了NO_X形成机理的变化,并将其与实验数据进行比较以进行验证。当处于高FGR比时,非混合性似乎对NO_X排放的危害较小。但是,当FGR比增加时,CO排放量会增加。同时,对于本燃气轮机燃烧器,即使在高FGR比下,CO排放也遵循平衡极限。有趣的是,观察到当燃烧器入口压力升高(因此入口燃烧器温度升高)时,由于FGR引起的CO排放量的增加被降低,而NO_X排放量保持在非常低的水平。这为在针对FGR运行进行优化的燃气轮机中使用较高的循环压力提出了一个论据。

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