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Experimental Study on Low Load Operation Range Extension by Autothermal On-Board Syngas Generation

机译:自热机载合成气产生低负荷运行范围的实验研究

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Volatile renewable energy sources induce power supply fluctuations. These need to be compensated by flexible conventional power plants. Gas turbines in combined cycle power plants adjust the power output quickly but their turn-down ratio is limited by the slow reaction kinetics, which leads to CO and unburned hydrocarbon emissions. To extend the turn-down ratio, part of the fuel can be converted to syngas, which exhibits a higher reactivity. By an increasing fraction of syngas in the fuel, the reactivity of the mixture is increased and total fuel mass flow and the power output can be reduced. An auto-thermal on-board syngas generator in combination with two different burner concepts for natural gas (NG)/syngas mixtures was presented in a previous study (Baumgartner, M. H., and Sattelmayer, T., 2017, "Low Load Operation Range Extension by Autothermal On-Board Syngas Generation," ASME J. Eng. Gas Turbines Power, 140(4), p. 041505). The study at hand shows a mass-flow variation of the reforming process with mass flows, which allow for pure syngas combustion and further improvements of the two burner concepts which result in a more application-oriented operation. The first of the two burner concepts comprises a generic swirl stage with a central lance for syngas injection. Syngas is injected with swirl to avoid a negative impact on the total swirl intensity and nonswirled. The second concept includes a central swirl stage with an outer ring of jets. For this burner, syngas is injected in both stages to avoid NOx emissions from the swirl stage. Increased NOx emissions produced by NG combustion of the swirl pilot were reported in last year's paper. For both burners, combustion performance is analyzed by OH*-chemiluminescence and gaseous emissions. The lowest possible adiabatic flame temperature without a significant increase of CO emissions was 170-210 K lower for the syngas compared to low load pure NG combustion. This corresponds to a decrease of 15-20% in terms of thermal power.
机译:挥发性可再生能源会引起电源波动。这些需要由灵活的常规电站来补偿。联合循环发电厂中的燃气轮机可快速调节功率输出,但其调节比受慢的反应动力学限制,这会导致CO和未燃烧的碳氢化合物排放。为了延长调低比,可以将部分燃料转化为合成气,从而显示出更高的反应性。通过增加燃料中合成气的比例,混合物的反应性增加并且总燃料质量流量和功率输出可以降低。先前的研究(Baumgartner,MH和Sattelmayer,T.,2017年,“低负荷运行范围扩展”)介绍了一种自动热载式合成气发生器,结合了两种用于天然气(NG)/合成气混合物的不同燃烧器概念由自动热合成气产生”,ASME J. Eng。Gas Turbines Power,140(4),第041505页。当前的研究表明,重整过程的质量流量随质量流量而变化,这允许纯合成气燃烧,并进一步改进了两种燃烧器概念,从而使操作更加面向应用。这两个燃烧器概念中的第一个包括一个通用的涡旋级,带有一个用于合成气注入的中央喷枪。合成气注入旋流,以避免对总旋流强度产生负面影响,并且不会产生旋流。第二个概念包括一个带有旋流外圈的中央涡流级。对于此燃烧器,在两个阶段都注入了合成气,以避免旋流阶段排放NOx。去年的论文报道了旋流引燃器NG燃烧产生的NOx排放增加。对于两种燃烧器,均通过OH *化学发光和气体排放来分析燃烧性能。与低负荷的纯NG燃烧相比,合成气的最低绝热火焰温度(不显着增加CO排放量)要低170-210K。就热功率而言,这相当于减少了15-20%。

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