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首页> 外文期刊>The Aeronautical Journal >Infrared signal of the lobed mixer with external air mixing
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Infrared signal of the lobed mixer with external air mixing

机译:具有外部空气混合的裂片混合器的红外信号

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摘要

In order to know the characteristics of reducing the exhaust gas infrared signal of the lobed mixer according to the external air mixing ratio, an infrared signal and temperature distribution measurement using a micro-turbojet engine is performed. A certain amount of compressed air is supplied through an external duct mounted on the micro-turbojet engine exhaust to simulate bypass flow, which is mixed with high-temperature core air and ejected to the atmosphere. The exhaust nozzle used in the experiment is a lobed mixer with a lobe of sinusoidal shape and is designed to have a penetration of 0.2. Exhaust gas temperature and infrared signal are measured according to distance from nozzle outlet under conditions of bypass ratio of 0.5, 1.0 and 1.4. Infrared reduction rates are compared to data without compressed air supply. As a result of the experiment, as the bypass ratio increased, the infrared signal of the exhaust gas and the temperature decrease with bypass ratio increase, and in the case of a bypass ratio of 1.4, the effect of reducing the temperature is observed even at a long distance. In addition, we compared the results of previous studies of a simple cone shape without mixer with infrared reduction effect. The results show that the lobed mixer has a greater effect on reducing the temperature of the exhaust gas and reducing the infrared signal than the cone nozzle. The structure of the mixed jet flow is also studied through Schlieren visualisation and 3D temperature distribution.
机译:为了了解根据外部空气混合比减小裂片混合器的废气红外信号的特性,执行使用微涡轮喷气发动机发动机的红外信号和温度分布测量。通过安装在微型涡轮喷气发动发动机排气装置上的外部管道供应一定量的压缩空气,以模拟旁路流,这与高温芯空气混合并喷射到大气中。实验中使用的排气喷嘴是具有正弦形状的叶片的裂片混合器,设计成具有0.2的渗透。废气温度和红外信号根据旁通比0.5,1.0和1.4的条件距离喷嘴出口的距离测量。将红外还原速率与无压缩空气供应的数据进行比较。作为实验的结果,随着旁路比增加,废气的红外信号和旁路比率的温度降低,并且在旁路比为1.4的情况下,即使在很长的距离。此外,我们将先前研究的结果进行了比较了简单的锥形形状,而无需混合器,具有红外还原效果。结果表明,裂片混合器对降低废气温度并减少比锥形喷嘴的温度更大的效果。通过Schlieren可视化和3D温度分布,还研究了混合射流的结构。

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