新型混合SVC喷管流动特性及参数影响研究

F. Song, Jing-wei Shi, Li Zhou, Zhanxue Wang, Xiaobo Zhang
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引用次数: 0

摘要

轻量化、简化结构、提高矢量效率和加快矢量响应速度是航空发动机排气系统发展的新趋势。为了应对这些新的挑战,本文提出了一种混合SVC喷嘴的概念,通过采用可旋转阀和引入二次流喷射来实现推力矢量。本文对混合式SVC喷管的流动机理进行了数值研究。考虑喷嘴压力比(NPR)、二次压力比(SPR)和可旋转阀转角(θ)等气动参数和几何参数的影响,对喷嘴性能(推力矢量角和推力系数)进行了研究。数值计算结果表明,旋转阀和二次喷射的引入使喷嘴内壁产生非对称分布的静压。这种静压分布在一次流上产生侧力,从而实现推力矢量。减小NPR或增大θ均可提高推力矢量角和矢量效率。当NPR为3时,最大矢量角为16.7°,矢量效率为6.33°/%。随着推力矢量角的升高,推力矢量角先增大后减小,最大推力矢量角存在一个最佳推力矢量角。θ和SPR对推力系数的影响不显著。利用可旋转阀可以提高矢量效率,并达到预期的矢量角度控制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Investigation of Flow Characteristics and Parameter Effects for a New Concept of Hybrid SVC Nozzle
Lighter weight, simpler structure, higher vectoring efficiency and faster vector response are recent trends in development of aircraft engine exhaust system. To meet these new challenges, a concept of hybrid SVC nozzle was proposed in this work to achieve thrust vectoring by adopting a rotatable valve and by introducing a secondary flow injection. In this paper, we numerically investigated the flow mechanism of the hybrid SVC nozzle. Nozzle performance (e.g. the thrust vector angle and the thrust coefficient) was studied with consideration of the influence of aerodynamic and geometric parameters, such as the nozzle pressure ratio (NPR), the secondary pressure ratio (SPR) and the deflection angle of the rotatable valve (θ). The numerical results indicate that the introductions of the rotatable valve and the secondary injection induce an asymmetrically distributed static pressure to nozzle internal walls. Such static pressure distribution generates a side force on the primary flow, thereby achieving thrust vectoring. Both the thrust vector angle and vectoring efficiency can be enhanced by reducing NPR or by increasing θ. A maximum vector angle of 16.7 ° is attained while NPR is 3 and the corresponding vectoring efficiency is 6.33 °/%. The vector angle first increases and then decreases along with the elevation of SPR, and there exists an optimum value of SPR for maximum thrust vector angle. The effects of θ and SPR on the thrust coefficient were found to be insignificant. The rotatable valve can be utilized to improve vectoring efficiency and to control the vector angle as expected.
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