Experimental Investigation of the Performance of a Novel Ejector–Diffuser System with Different Supersonic Nozzle Arrays

Fluids Pub Date : 2024-07-02 DOI:10.3390/fluids9070155
Dachuan Xu, Yunsong Gu, Wei Li, Jingxiang Chen
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Abstract

The supersonic–supersonic ejector–diffuser system is employed to suck supersonic low-pressure and low-temperature flow into a high-pressure environment. A new design of a supersonic–supersonic ejector–diffuser was introduced to verify pressure control performance under different operating conditions and vacuum background pressure. A 1D analysis was used to predict the geometrical structure of an ejector–diffuser with a rectangular section based on the given operating conditions. Different numbers and types of nozzle plates were designed and installed on the ejector to study the realizability of avoiding or postponing the aerodynamic choking phenomenon in the mixing section. The effects of different geometrical parameters on the operating performance of the ejector–diffuser system were discussed in detail. Experimental investigation of the effects of different types of nozzle plates and the back pressures on the pressure control performance of the designed ejector–diffuser system were performed in a straight-flow wind tunnel. The results showed that the position, type and number of the nozzle plates have a significant impact on the beginning of the formation of aerodynamic choking. The geometry of the ejector and the operating conditions, especially the backpressure and inlet pressure of the ejecting stream, determined the entrainment ratio of the two supersonic streams. The experimental results showed that long nozzle-plate had a better performance in terms of maintaining pressure stability in the test section, while short a nozzle-plate had a better pressure matching performance and could maintain a higher entrainment ratio under high backpressure conditions.
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带有不同超音速喷嘴阵列的新型喷射器-扩散器系统性能的实验研究
超音速-超音速喷射器-扩散器系统用于将超音速低压和低温气流吸入高压环境。我们引入了一种新设计的超音速-超音速喷射器-扩散器,以验证在不同工作条件和真空背景压力下的压力控制性能。根据给定的工作条件,使用一维分析预测了矩形截面喷射器-扩散器的几何结构。设计并在喷射器上安装了不同数量和类型的喷嘴板,以研究避免或推迟混合段气动窒息现象的可行性。详细讨论了不同几何参数对喷射器-扩散器系统运行性能的影响。在直流风洞中对不同类型的喷嘴板和背压对所设计的喷射器-扩散器系统的压力控制性能的影响进行了实验研究。结果表明,喷嘴板的位置、类型和数量对开始形成空气动力窒息有显著影响。喷射器的几何形状和工作条件,特别是喷射流的背压和入口压力,决定了两股超音速气流的夹带率。实验结果表明,长喷嘴板在保持试验段压力稳定性方面具有更好的性能,而短喷嘴板具有更好的压力匹配性能,并能在高背压条件下保持较高的夹带比。
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