光学 精密工程, 2017, 25 (5): 1119, 网络出版: 2017-06-30  

利用平面激光诱导荧光技术及CH滤镜测量微喷管射流火焰OH及CH基元

Measurement of OH and CH radicals in micro-jet flames using planar laser induced fluorescence and CH filter
李星 1,2,3蒋利桥 1,2,3杨浩林 1,2,3张京 1,2,3赵黛青 1,2,3
作者单位
1 中国科学院 广州能源研究所, 广东 广州 510640
2 中国科学院 可再生能源重点实验室, 广东 广州 510640
3 广东省新能源和可再生能源研究开发与应用重点实验室, 广东 广州 510640
摘要
微射流火焰形貌观测及火焰中重要基元的准确测量, 对利用微尺度火焰燃烧特性研制开发微型燃烧动力系统具有重要意义。本文建立了微喷管射流火焰实验及光学测量系统, 对H2和CH4微射流火焰进行了实验研究, 测量了两种重要基元(CH,OH)的空间分布。首先, 探索了相机曝光时间对H2微射流火焰成像的影响, 得到了不同流速下H2微射流火焰形貌的变化规律。其次, 采用平面激光诱导荧光测量技术得到了不同燃料流速下H2及CH4微射流火焰中OH基元分布,同时还利用单反相机加CH滤镜通过长时间曝光(30 s)的方法获得了CH4微射流火焰中CH基元的分布。结果表明, 火焰图像清晰度随曝光时间增加提高, 曝光时间30 s时可获得H2微射流火焰的清晰照片; 采用分辨率2 048×2 048的ICCD相机可获得微尺度火焰OH基元分布的清晰图像。微射流火焰形貌及重要基元的实验结果表明相关数值计算方法准确可靠。
Abstract
The observation of micro-jet flame shape and measurements of important radicals in micro-jet flame are of great significance to the research and development of micro energy and power system based on combustion characteristics of micro-jet flames. In this work, an optical measurement system of mcro-jet flames was established experimentally to study micro-jet flames using H2 and CH4 as fuels and to measure the spatial distribution of two important radicals, CH and OH. Firstly, the effect of exposure time of camera on images of the H2 micro-jet flames was explored, obtaining the variation of micro-jet flame shape under different flow velocities. Then, the Laser Induced Predissociative Fluorescence (OH-PLIF) technique was applied to obtain the distribution of OH radical in H2 and CH4 micro-jet flames under different fuel flow velocities, meanwhile, a Digital Single Lens Reflector (DSLR) plus a CH filter with a long time exposure (30 s) was employed to obtain the distribution of CH radical in CH4 micro-jet flame. The results showed that, the clarity of flame image is promoted as the exposure time increased and a clear image of H2 micro-jet flame is acquired when exposure time is 30 s; a clear image of distribution of OH radical in micro-scale flames is captured via an ICCD camera with a resolution of 2 048×2 048. The experimental results indicate that the numerical computation of micro-jet flame shape and important radicals is accurate and reliable.
参考文献

[1] JU Y G, MARUTA K. Microscale combustion: Technology development and fundamental research [J]. Progress in Energy and Combustion Science, 2011, 37(6): 669-715.

[2] MARUTA K. Micro and mesoscale combustion [J]. Proceedings of the Combustion Institute, 2011, 33(1): 125-150.

[3] MATTA L M, NEUMEIER Y, LEMON B, et al.. Characteristics of microscale diffusion flames [J]. Proceedings of the Combustion Institute, 2002, 29(1): 933-939.

[4] CHENG T S, CHAO Y C, WU C Y, et al.. Experimental and numerical investigation of microscale hydrogen diffusion flames[J]. Proceedings of the Combustion Institute, 2005, 30(2): 2489-2497.

[5] CHENG T S, CHEN C P, CHEN C S, et al.. Characteristics of microjet methane diffusion flames [J]. Combustion Theory and Modelling, 2006, 10(5): 861-881.

[6] NAKAMURA Y, YAMASHITA H, SAITO K. A numerical study on extinction behaviour of laminar micro-diffusion flames [J]. Combustion Theory and Modelling, 2006, 10(6): 927-938.

[7] FUJIWARA K, NAKAMURA Y. Experimental study on the unique stability mechanism via miniaturization of jet diffusion flames (microflame) by utilizing preheated air system[J]. Combustion and Flame, 2013, 160(8): 1373-1380.

[8] HOSSAIN A, NAKAMURA Y. Thermal and chemical structures formed in the micro burner of miniaturized hydrogen-air jet flames [J]. Proceedings of the Combustion Institute, 2015, 35(3): 3413-3420.

[9] 李星, 张京, 杨浩林, 等. 微喷管甲烷非预混射流火焰燃烧特性实验研究[J]. 工程热物理学报, 2016, 37(4): 907-911.

    LI X, ZHANG J, YANG H L, et al.. Experimental investigation on combustion characteristics of methane non-premixed micro-jet-flames [J]. Journal of Engineering Thermophysics, 2016, 37(4): 907-911.(in Chinese)

[10] 刘晶儒, 胡志云, 张振荣, 等. 激光光谱技术在燃烧流场诊断中的应用[J]. 光学 精密工程, 2011, 19(2): 284-296.

    LIU J R, HU ZH Y, ZHANG ZH R, et al.. Laser spectroscopy applied to combustion diagnostics [J]. Opt. Precision Eng., 2011, 19(2): 284-296.(in Chinese)

[11] 苏铁, 陈爽, 杨富荣, 等. 双色平面激光诱导荧光瞬态燃烧场测温实验[J]. 红外与激光工程, 2014, 43(6): 1750-1754.

    SU T, CHEN SH, YANG F R, et al.. Investigation of temperature of transient combustion using two-line PLIF [J]. Infrared and Laser Engineering, 2014, 43(6): 1750-1754.(in Chinese)

[12] 李国华, 胡志云, 王晟, 等. 基于相干反斯托克斯拉曼散射的二维温度场扫描测量[J]. 光学 精密工程, 2016, 24(1): 14-19.

    LI G H, HU ZH Y, WANG SH, et al.. 2D scanning CARS for temperature distribution measurement [J]. Opt. Precision Eng., 2016, 24(1): 14-19.(in Chinese)

[13] 王晟, 张振荣, 邵珺, 等. 瞬态流场定量测量中平面激光诱导荧光图像的降噪[J]. 光学 精密工程, 2013, 21(7): 1858-1864.

    WANG SH, ZHANG ZH R, SHAO J, et al.. Denoising of PLIF images for flow parameter measurement [J]. Opt. Precision Eng., 2013, 21(7): 1858-1864.(in Chinese)

[14] 邵珺, 叶景峰, 胡志云, 等.用于超燃流场羟节标记示踪背景抑制的逐步逼近特征窗口滤波[J]. 光学 精密工程, 2015, 23(10): 221-228.

    SHAO J, YE J F, HU ZH Y, et al.. Progressive approach characteristic window filtering for HTV background suppression in supersonic combustion field [J]. Opt. Precision Eng., 2015, 23(10): 221-228.(in Chinese)

[15] 张猛, 王金华, 谢永亮, 等. 利用 OH-PLIF 测量 CH4/H2/空气混合气湍流燃烧速率[J]. 燃烧科学与技术, 2013, 19(6): 512-516.

    ZHANG M, WANG J H, XIE Y L, et al.. Measurement of turbulent burning velocity of CH4/H2/air mixtures using OH-PLIF [J]. Journal of Combustion Science and Technology, 2013, 19(6): 512-516.(in Chinese)

[16] BILGER R W, STRNER S H. On reduced mechanisms for methane-air combustion in nonpremixed flames [J]. Combustion and Flame, 1990, 80(2): 135-149.

[17] 张京, 李星, 杨浩林, 等. 微喷管氢气非预混射流火焰燃烧特性[J]. 化工学报, 2016, 67(7): 2724-2731.

    ZHANG J, LI X, YANG H L, et al.. Combustion characteristic of hydrogen non-premixed micro-jet flames [J]. CIESC Journal, 2016, 67(7): 2724-2731.(in Chinese)

[18] LI X, ZHANG J, YANG H L, et al.. Combustion characteristics of non-premixed methane micro-jet flame in coflow air and thermal interaction between flame and micro tube [J]. Applied Thermal Engineering, 2017, 112: 296-303.

[19] YAMAMOTO K, OHNISHI M, HAYASHI N, et al.. Flame image and flame structure of turbulent premixed flames using simultaneous OH-HCHO PLIF technique[J]. Transactions of the Japan Society of Mechanical Engineers Series B, 2007, 73(733): 1943-1949.

[20] YAMAMOTO K, OZEKI M, HAYASHI N, et al.. Burning velocity and OH concentration in premixed combustion [J]. Proceedings of the Combustion Institute, 2009, 32(1): 1227-1235.

李星, 蒋利桥, 杨浩林, 张京, 赵黛青. 利用平面激光诱导荧光技术及CH滤镜测量微喷管射流火焰OH及CH基元[J]. 光学 精密工程, 2017, 25(5): 1119. LI Xing, JIANG Li-qiao, YANG Hao-lin, ZHANG Jing, ZHAO Dai-qing. Measurement of OH and CH radicals in micro-jet flames using planar laser induced fluorescence and CH filter[J]. Optics and Precision Engineering, 2017, 25(5): 1119.

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