Ludwieg管向超声速流域拓展的设计技术

Extention of hypersonic Ludwieg tube to supersonic wind tunnel

  • 摘要: Ludwieg管风洞能低成本、高效率地产生低湍流度的高超声速气流,被广泛用于高超声速(马赫数6及以上)基础空气动力学实验研究。尽管Ludwieg管式高超声速风洞逐渐普及,但是基于Ludwieg管风洞管原理建设的超声速风洞并不多见,制约了实验人员对超声速空气动力学问题的研究。本文以拓展德国不伦瑞克工业大学马赫数6 Ludwieg管风洞到马赫数3流域为例,详细介绍了串列式喷管Ludwieg式超声速风洞的设计技术。串列式喷管Ludwieg式超声速风洞在传统Ludwieg管风洞的结构基础上额外引入一个Laval喷管(第一段Laval喷管)和稳定段,并重新设计试验段对应的Laval喷管(第二段Laval喷管),最终获得超声速流动。文章首先介绍了串列式喷管Ludwieg式超声速风洞的空气动力设计原理;之后分别介绍了不同部件在这种风洞上的优化设计方法;最后,针对这种风洞的独特设计特点,对其将来的发展方向以及科研应用背景进行了展望。串列式喷管Ludwieg式超声速风洞基于常规的Ludwieg式管风洞改建而成,在继承原Ludwieg管风洞优点的同时,以极低的成本拓展了原风洞的运行速域,极其适合高校和科研机构用于开展超声速空气动力学的基础实验研究。

     

    Abstract: Ludwieg tube tunnel is employed frequently in hypersonic fundamental studies due to its cost-efficient property and also high flow quality. However, supersonic wind tunnels designed based on Ludwieg tube principle are scarce despite the hypersonic Ludwieg tubes are spreading widely all over the world these days, restricting the experimental studies of supersonic flows in a cost-efficient way. This paper reviewed the design of a variant of conventional hypersonic Ludwieg tube, i.e., the so-called tandem nozzle supersonic wind tunnel, taking the reconstruction of Mach 6 hypersonic Ludwieg tube tunnel from Technical University of Braunschweig as example. By inserting an additional Laval nozzle and a settling chamber, tandem nozzle supersonic wind tunnel is capable to produce supersonic flow lower than that of original hypersonic Ludwieg tube. In this paper, we introduced the aerodynamic design principles of tandem nozzle supersonic wind tunnel first; thereafter, the design for each components of tandem nozzle supersonic wind tunnel, such as the first and second Laval nozzles, the settling chamber, were reviewed and elaborated; next, the development and possible applications of tandem nozzle supersonic wind tunnel were given. Tandem nozzle supersonic wind tunnel can extend the operation capability of original hypersonic Ludwieg tube facility to supersonic flow region with a relatively low price, while it inherits the advantages of the hypersonic Ludwieg tube. This behavior makes it suitable for fundamental research of supersonic flow in academic institutions and universities.

     

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