Opt Lett. 2019 Jan 15;44(2):367-370. doi: 10.1364/OL.44.000367.
Experiments were performed to demonstrate a dual-wavelength excitation krypton planar laser-induced fluorescence (Kr PLIF)-based 2D temperature imaging technique in a laminar non-sooting CH/N diffusion flame. The technique exploits the thermochemical dependence of the overlap integral arising from Kr absorption and excitation laser spectra to yield the temperature without the need to know the local mixture composition. The choice of the two excitation wavelengths is made using the knowledge of the fuel mixture and pressure. The two excitation wavelengths lie within the same 4pS01→→5p[32] transition, and their selection is informed such that the resulting Kr PLIF signal ratio depends primarily on the temperature and negligibly on local composition. Mean temperature fields show excellent agreement when compared to Fluent simulations across different regions of the combustion domain, while the single-shot temperature field exhibits slightly degraded accuracy. Overall, the technique provides very similar figures of merit compared to conventional composition-dependent thermometry approaches and showcases a promising scope for application in complex reacting flows.
实验证明了一种基于双波长激发氪平面激光诱导荧光(Kr PLIF)的二维温度成像技术,用于层流无烟尘 CH/N 扩散火焰。该技术利用 Kr 吸收和激发激光光谱的重叠积分的热化学依赖性来产生温度,而无需知道局部混合物组成。两个激发波长的选择是利用燃料混合物和压力的知识来完成的。两个激发波长位于相同的 4pS01→→5p[32]跃迁内,并且它们的选择是这样的,即产生的 Kr PLIF 信号比主要取决于温度,而与局部组成无关。与整个燃烧域不同区域的 Fluent 模拟相比,平均温度场显示出极好的一致性,而单次温度场的准确性略有降低。总的来说,与传统的依赖于成分的测温方法相比,该技术提供了非常相似的性能指标,并展示了在复杂反应流中应用的广阔前景。