首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >EXPERIMENTAL INVESTIGATION OF THE COMBUSTION BEHAVIOR OF SINGLE-NOZZLE LIQUID-FLOX®-BASED BURNERS ON AN ATMOSPHERIC TEST RIG
【24h】

EXPERIMENTAL INVESTIGATION OF THE COMBUSTION BEHAVIOR OF SINGLE-NOZZLE LIQUID-FLOX®-BASED BURNERS ON AN ATMOSPHERIC TEST RIG

机译:单喷嘴液 - 氟玻璃燃烧器燃烧行为在大气试验台上的实验研究

获取原文

摘要

As an alternative to the commonly used swirl burners in micro gas turbines (MGT), the FLOX®-based combustion concept promises great potential for the nitric oxide emission reduction and increased fuel flexibility. Previous research on FLOX®-based MGT combustors mainly addressed gaseous fuels and there is limited knowledge available on liquid fuel FLOX®-based MGT combustors. Despite having to deal with a new set of challenges while utilizing liquid fuel in the burner, first steps are taken to gain more information on the influencing operational parameters. In this regard, a FLOX®-based liquid fuel burner is developed to fit into a newly designed combustor for the Capstone C30 MGT. The C30 combustor operates with three burners arranged tangentially to an annular combustion chamber and provides a total thermal power of 115 kW. In this work, operational properties of merely one of the three C30 liquid fuel burners are investigated and the rest of the two burners are emulated in form of hot cross-flow. As for the liquid burners, the experiments are conducted with three geometrically different single-nozzle burners at atmospheric pressure. The studied FLOX®-based burners consist of an air nozzle with a coaxially arranged fuel pressure atomizer. The cross-flow is realized by utilizing a 20-nozzle FLOX®-based natural gas combustor. Measurements include visualization of the reaction zone and analysis of the exhaust gas emissions. By detecting the hydroxyl radical chemiluminescence (OH*-CL) emissions, the position of the heat release zone within the combustion chamber is attained. Correspondingly, the flame height above burner and the flame length are calculated. The investigated design parameters include air preheat temperature up to 733 K, equivalence ratio, burner geometry, and thermal power. The work presented in this paper aims to deepen the understanding of the design parameter interactions involved within the single-nozzle liquid-FLOX®-based burners. The cross-flow is set at a constant operating point to take the influence of the circulating hot gases on the flame into account. Through variation of thermal power the effect of liquid fuel preparation, i.e., atomization. evaporation, and mixing on combustion properties and exhaust gas emissions are examined. Analyses of measurements of different burner configurations are shown. The results show that the burners with the medium diameter consistently performed remarkably at different flame temperatures and thermal powers. The lowest NO_x and CO emissions for the medium diameter burner lied between 5-7 ppm and 8-10 ppm, respectively. The collected data sets can be used for the validation of numerical simulations as well.
机译:作为微燃气轮机(MGT)中的常用旋流燃烧器的替代方案,氟克罗克斯型燃烧概念承诺对一氧化氮减排和提高燃料柔韧性的巨大潜力。以前关于FLOX®的MGT燃烧器的研究主要是解决气体燃料,并且在液体燃料FLOX®的MGT燃烧器上提供了有限的知识。尽管在利用燃烧器中使用液体燃料时必须处理新的挑战,但首先需要有关影响的操作参数的更多信息。在这方面,开发了一种絮凝物的液体燃料燃烧器以适合用于绞盘C30 MGT的新设计的燃烧器。 C30燃烧器用三个燃烧器与环形燃烧室相切布置,并提供115 kW的总热功率。在这项工作中,研究了三个C30液体燃料燃烧器中的一个的操作特性,并且两种燃烧器的其余部分以热交叉流动的形式仿真。至于液体燃烧器,实验在大气压下用三个几何不同单喷嘴燃烧器进行。所研究的FLOX®基燃烧器由带有同轴布置的燃料压力雾化器的气体喷嘴组成。通过利用基于20喷嘴FLOX®的天然气燃烧器来实现交叉流。测量包括反应区的可视化和废气排放的分析。通过检测羟基自由基化学发光(OH * -Cl)排放,达到燃烧室内的热释放区的位置。相应地,计算燃烧器上方的火焰高度和火焰长度。调查的设计参数包括空气预热温度,高达733 k,等效率,燃烧器几何和火力。本文提出的工作旨在加深对基于单喷嘴液 - 氟玻璃燃烧器内的设计参数交互的理解。横流设置在恒定的操作点,以对循环热气体对燃料的影响。通过热功率的变化,液体燃料制备的效果,即雾化。检查蒸发,并检查燃烧性能和废气排放的混合。示出了不同燃烧器配置的测量分析。结果表明,燃烧器在不同的火焰温度和热功率下始终如一地进行。中径燃烧器的最低NO_X和CO排放分别介于5-7ppm和8-10ppm之间。收集的数据集也可用于验证数值模拟。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号