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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Combustion control using a lobed swirl injector and a plasma swirler
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Combustion control using a lobed swirl injector and a plasma swirler

机译:使用裂片旋流注射器和等离子体旋流器的燃烧控制

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A low swirl injector incorporating a lobed swirler and a plasma swirler was developed for combustion control. The lobed swirler was used to replace the vane swirler to enhance fuel/air mixing and stabilize flame downstream of the injector. The plasma swirler installed at the exit of the injector was used to control the flame lift-off height, which is a critical parameter influencing the flame stability and thermal load. The plasma swirler is composed of three dielectric barrier discharge (DBD) actuators which were placed in a circular array around the axis to generate ionic wind in the circumferential direction. Experiments were carried out to investigate the aerodynamics and combustion characteristics of the low swirl injector. Non-reacting velocity distributions at the exit of the injector with different blockage ratios were captured with two-dimensional Particle Image Velocimetry. Reacting flow velocity profiles downstream of the lobed swirl injector were measured by two-dimensional Laser Doppler Anemometry. Based on the non-reacting flow field analysis, guidelines of the optimal design were deduced and a proper perforated plate was chosen to carry out further combustion experiments. Stable lifted flame was sustained by the lobed swirler with a vane angle of 30 degrees and a blockage ratio of 75.5% which demonstrated that the flow field with a suspended central recirculation zone was suitable for stabilizing the lifted flame. It was found that the DBD actuation enhances the effectiveness of combustion control that can be used to adjust the position of the flame front.
机译:开发了一种掺入裂片旋流器和等离子体旋流器的低涡流注射器用于燃烧控制。裂片旋流器用于代替叶片旋流器以增强燃料/空气混合并稳定喷射器下游的火焰。安装在喷射器出口处的等离子体旋流器用于控制火焰升空高度,这是影响火焰稳定性和热负荷的关键参数。等离子体旋流器由三个介电阻挡放电(DBD)致动器组成,该致动器围绕轴线置于圆形阵列中以在圆周方向上产生离子风。进行实验,以研究低涡流注射器的空气动力学和燃烧特性。利用二维粒子图像速度捕获具有不同封闭式比率的喷射器出口处的非反应速度分布。通过二维激光多普勒式气旋测量裂片涡流注射器下游的反应流速谱。基于非反应流场分析,推导出最佳设计的指导,并选择适当的穿孔板以进行进一步的燃烧实验。稳定的升降火焰由叶片角度的叶片角度为30度,堵塞比为75.5%,这证明了具有悬浮中央再循环区的流场适合稳定提升的火焰。发现DBD致动提高了可用于调节火焰前部的位置的燃烧控制的有效性。

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