论文标题

在预混合旋转燃烧的火焰和流条件的涡度传输

Flame- and flow-conditioned vorticity transport in premixed swirl combustion

论文作者

Kazbekov, Askar, Steinberg, Adam M.

论文摘要

本文对在20-50之间在卡洛维茨数字的预混合漩涡燃烧中对火焰诱导的腹膜转运进行了实验分析。这种火焰具有一个大规模的压力场,除了与小规模湍流涡流相关的压力场还可以与密度梯度相互作用以产生斜压扭矩。同时层析成像粒子图像速度法和甲醛平面激光诱导的荧光测量用于获得高分辨率速度和进度可变磁场。这允许对Enstrophy Transper equation中各种术语进行统计评估。小型和大规​​模压力梯度的影响是通过在瞬时火焰刷内,火焰刷中以及轴向内的瞬时火焰前部以及燃烧器内轴向固定的位置进行调节的影响。在所研究的所有情况下,斜压扭矩是腹膜转运的重要促进者,其幅度与涡流拉伸和粘性扩散相当。斜压扭矩的腹膜衰减和产生倾向于分别朝向瞬时火焰表面的反应物和产物侧面。但是,斜压扭矩的值也同样强大地取决于燃烧器中的位置。因此,小型和大规​​模的压力场都可以通过斜压扭矩导致明显的腹部变化。这既证明了火焰诱导的涡度动力学在漩涡燃烧中很重要,并且大规模的几何学流场会影响火焰产生的湍流。

This paper presents an experimental analysis of flame-induced enstrophy transport in premixed swirl combustion at Karlovitz numbers between 20-50. Such flames posses a large-scale pressure field that -- in addition to the pressure fields associated with small-scale turbulent vortices -- can interact with density gradients to produce baroclinic torque. Simultaneous tomographic particle image velocimetry and formaldehyde planar laser induced fluorescence measurements are used to obtain high-resolution velocity and progress-variable fields. This allows statistical evaluation of the various terms in the enstrophy transport equation. The impact of small- and large-scale pressure gradients is assessed by conditioning the baroclinic torque on the position of the fluid within the instantaneous flame front, within the flame brush, and axially within the combustor. At all conditions studied, the baroclinic torque was a significant contributor to enstrophy transport, with a comparable magnitude to vortex stretching and viscous diffusion. Enstrophy attenuation and production by baroclinic torque tended to occur towards the reactant and product sides of the instantaneous flame surface, respectively. However, the value of the baroclinic torque also depended equally strongly on the position in the combustor. Hence, both small- and large-scale pressure fields can result in significant enstrophy changes through baroclinic torque. This is evidence both that flame-induced vorticity dynamics are significant in swirl combustion, and that large-scale geometry-dependent flow fields can impact flame-generated turbulence.

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