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Sensitivity Analysis of Counterflow Thrust Vector Control with a Three-Dimensional Rectangular Nozzle

机译:用三维矩形喷嘴对逆流推力矢量控制的敏感性分析

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摘要

Currently, the fluidic thrust vectoring technique is a promising method offering an alternative to the classical method of thrust deviation employing mechanical actuators with potential mass gain. In this article, theoretical and computational fluid dynamics investigations of counterflow fluidic thrust vectoring technique of a rectangular nozzle are carried through. A new engineering-type analytical approach based on mass and momentum conservation laws applied to specific control volumes is developed to predict the vectoring performance. Furthermore, the performance of the vectoring technique is computationally clarified for diverse nozzle pressure ratios (NPRs) and secondary pressure ratios (SPRs). Obtained conclusions indicate that the vectoring deflection angle diminishes with an increase in the NPR, whereas the thrust vectoring efficiency coefficient increases. The vectoring deflection angle and the thrust vectoring efficiency coefficient increase with a decrease in the SPR.
机译:目前,流体推力矢量技术是一种有希望的方法,其提供了采用具有潜在质量增益的机械致动器的推力偏差的经典方法。 在本文中,通过矩形喷嘴的逆流流体推力矢量技术的理论和计算流体动力学研究。 开发了一种基于群众和动量保护法的新工程型分析方法,适用于特定控制体积的群体,以预测矢量性能。 此外,对于不同的喷嘴压力比(NPRS)和次要压力比(SPR)来计算矢量技术的性能。 获得的结论表明,随着NPR的增加,矢量偏转角度减小,而推力矢量效率系数增加。 矢量偏转角度和推力矢量效率系数随着SPR减小而增加。

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