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湍流和预混火焰相互作用的实验研究 总被引:2,自引:0,他引:2
建立了湍流预混火焰实验系统并实现了驻定火焰。无条件示踪条件下的研究结果表明,火焰区的速度分布呈现 双峰分布,初步证实火焰区湍流度峰值的存在是由于火焰脉动导致速度测值分散,最终由统计得到表观湍流度的增大。条 件示踪测量结果表明,在火焰区反应物来流的湍流度与上游的测值并没有明显的变化,进一步证实了这一结论。 相似文献
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本文对甲烷预混气在多孔介质中的火焰传播特性进行了实验研究,在开口竖直管中充填多孔介质,通过改变预混气氧含量使火焰在不同多孔介质中传播并测量火焰传播速度。预混气中氧含量最高达到29%。实验结果表明:多孔介质中甲烷可燃预混气火焰传播速度大于其层流火焰传播速度,可达到5倍以上(当量比的甲烷-空气预混气);多孔介质当量孔直径越大,或预混气层流火焰速度越高,则预混气火焰传播速度越高;多孔介质中可燃混气的火焰传播界限变小,当量孔直径大的多孔介质其界限值较大。实验结果与Babkin提出的多孔介质中的火焰传播机理相符。 相似文献
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化学发光能够对火焰结构和燃烧过程进行良好的表征,但利用化学发光对湍流火焰进行测量的研究相对较少。为了更深入地研究和发展湍流燃烧理论,设计了伴燃射流燃烧器,通过ICCD相机和相应滤波片获取了OH^*和CH^*的化学发光图像,对甲烷/空气层流和湍流预混火焰的化学发光特性进行了研究,并利用分布高度、峰值位置、强反应区占比、峰值等参数对不同速度和当量比时的OH^*和CH^*进行表征。结果表明,层流时OH^*和CH^*的分布明显不同,而湍流的混合作用导致二者的分布范围趋向一致。随着当量比增大,不同速度下OH^*和CH^*的分布高度都呈单调递增趋势,但湍流的增长趋势要相对平缓;峰值位置的变化趋势与分布高度几乎一致,间接表明OH^*和CH^*的主导生成反应不变。强反应区占比在层流和湍流状态下的表现完全相反:从贫燃到富燃,层流中由大于0.1降低到0.05以下,而湍流中则由0.05上升到0.1以上,表明湍流对贫燃时的燃烧反应起抑制作用,在富燃时反而起促进作用。另外, OH^*和CH^*的峰值变化可以对火焰的流动状态进行判断,且CH^*尤为明显:随当量比增加,如果峰值先升后降,则可以认为火焰为层流状态;如果峰值单调递增,则是湍流状态。以速度和当量比为自变量,以OH^*和CH^*的峰值比为因变量,提出了不同速度条件下利用化学发光对当量比进行定量表征的统一关系式,解决了不同速度时需要分别进行拟合的问题,对后续的化学发光燃烧诊断研究具有重要意义。 相似文献
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本文建立了预混滞止火焰燃烧实验装置,采用激光多普勒技术对湍流冷态流场进行了诊断。对测量的速度信息进行了分析和处理,得到了该测点的欧拉时间关联函数和积分时间尺度,并通过傅立叶转换得出湍流冷态流场的湍谱特性。该实验结果和数据处理方法为将来的热态实验提供了基础数据和技术支持。 相似文献
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地面常重力(1g)条件下,丙烷/空气预混火焰向上传播的富燃极限为9.2%C_3H_8,而向下传播时的富燃极限仅为6.3%C_3H_8,二者之间存在明显差距。利用微重力条件下的实验,对燃料浓度从6.5%到8.6%(微重力实验中测定的可燃极限)范围内的丙烷/空气预混火焰特性进行了研究。实验发现,重力对近极限丙烷/空气火焰的传播有显著影响,影响程度随着当量比的增加而增大。微重力下丙烷/空气的富燃极限为8.6%C_3H_8(φ=2.24),明显高于1g条件下向下传播火焰的可燃极限,略低于向上传播火焰的可燃极限。随着当量比的增大,根据压力变化曲线计算的火焰层流燃烧速度从8.5cm/s逐渐减小到2.7 cm/s,可燃极限处的层流燃烧速度与前人实验数据一致。 相似文献
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Sanjeev Kr. Ghai Umair Ahmed Nilanjan Chakraborty Markus Klein 《Entropy (Basel, Switzerland)》2022,24(4)
The statistical behaviours of different entropy generation mechanisms in the head-on interaction of turbulent premixed flames with a chemically inert wall within turbulent boundary layers have been analysed using Direct Numerical Simulation data. The entropy generation characteristics in the case of head-on premixed flame interaction with an isothermal wall is compared to that for an adiabatic wall. It has been found that entropy generation due to chemical reaction, thermal diffusion and molecular mixing remain comparable when the flame is away from the wall for both wall boundary conditions. However, the wall boundary condition affects the entropy generation during flame-wall interaction. In the case of isothermal wall, the entropy generation due to chemical reaction vanishes because of flame quenching and the entropy generation due to thermal diffusion becomes the leading entropy generator at the wall. By contrast, the entropy generation due to thermal diffusion and molecular mixing decrease at the adiabatic wall because of the vanishing wall-normal components of the gradients of temperature and species mass/mole fractions. These differences have significant effects on the overall entropy generation rate during flame-wall interaction, which suggest that combustor wall cooling needs to be optimized from the point of view of structural integrity and thermodynamic irreversibility. 相似文献
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An experimental study has been conducted to find the heat transfer characteristics of methane/air flames impinging normally to a flat surface using different burner geometries. The burners used were of nozzle, tube, and orifice type each with a diameter of 10 mm. Due to different exit velocity profiles, the flame structures were different in each case. Because of nearly flat velocity profile, the flame spread was more in case of orifice and nozzle burners as compared to tube burner. Effects of varying the value of Reynolds number (600–2500), equivalence ratio (0.8–1.5) and dimensionless separation distance (0.7–8) on heat transfer characteristics on the flat plate have been investigated for the tube burner. Different flame shapes were observed for different impingement conditions. It has been observed that the heat transfer characteristics were intimately related to flame shapes. Heat transfer characteristics were discussed for the cases when the flame inner reaction cone was far away, just touched, and was intercepted by the plate. Negative heat fluxes at the stagnation point were observed when the inner reaction cone was intercepted by the plate due to impingement of cool un-burnt mixture directly on the surface. Different heat transfer characteristics were observed for different burner geometries with similar operating conditions. In case of tube burner, the maximum heat flux is around the stagnation point and decay is faster in the radial direction. In case of nozzle and orifice burner, the heat transfer distribution is more uniform over the surface. 相似文献
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燃煤电厂亚微米颗粒物排放是造成大气环境污染和影响人体健康的重要因素。本文搭建亚微米颗粒湍流团聚实验平台,通过场发射扫描电镜(FESEM)对亚微米颗粒的团聚形貌进行微观表征以及扫描电迁移率粒径谱仪(SMPS)对亚微米颗粒团聚前后的粒径分布特性进行宏观测量。结果表明:亚微米颗粒湍流团聚形成多分叉颗粒树聚团结构,进口流速为0.8?5.3m/s条件下,PM1和PM0.1的脱除效率分别为5.6%?18.6%和7.0%?21.4%,且PM1和PM0.1的脱除效率曲线随速度变化呈现二次函数规律。 相似文献