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旋流火焰三维温度场与速度场的同时激光测量
引用本文:张斌,肖立辉,侯俊庆,陈伟,姜婕妤,何燕.旋流火焰三维温度场与速度场的同时激光测量[J].中国激光,2021(3):36-45.
作者姓名:张斌  肖立辉  侯俊庆  陈伟  姜婕妤  何燕
作者单位:青岛科技大学机电工程学院
基金项目:山东省自然科学基金(ZR2017MF030);泰山学者特聘专家工程(ts20190937)。
摘    要:燃烧诊断与流场显示领域的研究热点已延伸至研发同时满足非侵入式、多参量同步测量、定量计算、多维可视化等技术要求的显示、测量新方法。研究复杂燃烧三维温度场和速度场的同时激光测量,表征燃烧化学反应和流场输运的重要特性。提出一种光偏折层析测温方法与粒子图像测速方法相结合的燃烧多参量场激光测量方法。设计温度场和速度场激光测量的实验系统,获取4方向莫尔偏折条纹和4幅火焰粒子图像。同时重建与可视化旋流燃烧温度分布和速度云图、流线、涡量等流场,并分析不同工况下的旋流火焰特性。对直接测量数据与重建结果进行对比,验证了所提方法的有效性。

关 键 词:测量  燃烧诊断  光偏折层析  粒子图像测速  旋流火焰

Simultaneous Laser Measurement of Three-Dimensional Temperature and Velocity Fields in Swirling Flame
Zhang Bin,Xiao Lihui,Hou Junqing,Chen Wei,Jiang Jieyu,He Yan.Simultaneous Laser Measurement of Three-Dimensional Temperature and Velocity Fields in Swirling Flame[J].Chinese Journal of Lasers,2021(3):36-45.
Authors:Zhang Bin  Xiao Lihui  Hou Junqing  Chen Wei  Jiang Jieyu  He Yan
Affiliation:(College of Electromechanical Engiyieering,Qingdao University of Science and Technology,Qingdao,Shandong 266061,China)
Abstract:Objective Combustion mechanism research and new burner design rely on the measurement and analysis of important parameters such as temperature,velocity,and composition of the combustion process.Combustion laser diagnostic technology provides the advantages of being nonintrusive and highly precise,providing both real-time results as well as high temporal and spatial resolutions.In recent decades,combustion diagnosis methods based on laser and optical technology have been developed vigorously.Combustion diagnosis has always emphasized the importance of scalar fields such as temperature,component concentration,density,and soot volume fraction to understand the combustion mechanism.However,with the emphasis on combustion dynamics in complex and rapidly evolving flow fields in the recent years,the demand for the measurement of transport characteristics such as velocity,vorticity,and diffusion is increasing.As two important parameters that reflect chemical reactions and flow field transport,velocity and temperature affect combustion mechanism and combustion dynamics.Therefore,simultaneous measurement and visualization of the two parameters become crucial to characterize and understand complex combustion.Methods Herein,a measurement technique coupled with deflection tomography and particle image velocimetry(PIV) is proposed to obtain the three-dimensional(3 D) temperature and velocity fields of swirling combustion.PIV overcomes the limitation of single-point velocity measurement and enables two-dimensional(2 D) or even 3 D velocity field measurements.PIV records velocity distributions from numerous spatial points under certain transient conditions and provides abundant flow field spatial structures and flow characteristics.Deflection tomography using Moire technology is known for its simple devices,wide temperature-measurement range,and a low requirement for mechanical stability.Deflection tomography is considered suitable for the measurements of high temperature and high flow-velocity fields.A combustion system is developed to generate a nonpremixed swirling flame.A hybrid imaging system is designed for the simultaneous sampling of Moire fringes and particle images(Fig.2).Particle image acquisition and particle recognition were realized under a flame high brightness background.The effects of the particle size and concentration of tracer particles on deflection tomography and PIV imaging are studied,and the optimum particle parameters are determined.Results and Discussions The PIV and deflection tomography systems are experimentally calibrated to obtain the correspondence between the actual size and the camera pixels.Direct measurement is performed prior to the laser measurement.A thermocouple and a hot-wire anemometer are used for point measurements of the combustion temperature and velocity.Then,the laser beams emitted from the Nd:YAG for PIV and He-Ne lasers for deflection tomography are passed through the flame.Fringe patterns are obtained in four view angles,and the deflection angles are extracted.The deflection angle revision reconstruction technique is used to reconstruct the temperature distributions on different cross sections.Visualization technology is then employed to generate a 3 D temperature field(Fig.6).Four CCD cameras capture the particle images illuminated by a volume light source.The tracer particles in four particle images obtained are then screened,identified,and matched.A 3 D cross-correlation calculation is performed on the particle distributions of the A-and B-frame images generated through the double pulses to obtain a3 D velocity field.Then,the isovelocity surface,constant vorticity surface,and velocity streamlines are visualized simultaneously(Fig.7 and Fig.8).The relative error of the temperature between the reconstruction value and the thermocouple measurement is 6.9%,and the relative error of the velocity between the reconstruction value and the anemometer measurement is 3.3%.The factors affecting the measurement results are analyzed.The swirling combustion characteristics are analyzed based on the quantitative measurement and visualization of parameter distributions.The evolution of the flow field and the combustion reaction process are explained.Conclusions A multitechnology integrated method for the multiparameter measurement of swirling combustion was constructed herein.PIV and deflection tomography are combined for the simultaneous measurement and visualization of 3 D temperatures and velocity fields.Fringe patterns are obtained in four view angles using a Moire deflec tome ter to reconstruct the temperature distributions in different cross sections.Visualization technology is used to generate a3 D temperature field.The particle images illuminated by a volume light source are captured using four CCD cameras to reconstruct the velocity distribution.Furthermore,the isovelocity surface,isosurface of vorticity magnitude,and velocity streamlines are visualized simultaneously.The swirling combustion characteristics are analyzed on the bases of quantitative measurement and visualization of the parameter distributions.The validity of the experimental results is verified via direct point measurements,and the measurement errors are then discussed.
Keywords:measurement  combustion diagnosis  optical deflection tomography  particle image velocimetry  swirling flame
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