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Propulsion Deceleration Studies using Planar Laser-Induced Iodine Fluorescence and Computational Fluid Dynamics

机译:利用平面激光诱导的碘荧光和计算流体动力学的推进减速研究

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Future high-mass spacecraft entering the thin Martian atmosphere will require additional means of deceleration prior to deploying supersonic parachutes. Propulsive deceleration is one technology that is being considered. The interaction of the spacecraft aerodynamics with the propulsion deceleration (PD) jets has been shown to cause a decrease in drag coefficient with increasing thrust coefficient, which is not desirable for deceleration. Planar Laser-Induced Iodine Fluorescence (PLⅡF) images showed a lifting of the vehicle bow shock away from the aeroshell. Flowfield calculations performed using a CFD code showed that this lifting was responsible for the decrease in drag with increasing PD jet thrust. With 4 PD jets located midway between the aeroshell centerline and shoulder, PLⅡF images showed that the vehicle bow shock is maintained between the jets as the thrust coefficient is increased. CFD calculations established that this bow shock was responsible for greater drag preservation with the peripheral jets. The peripheral jet drag coefficient was 4 times larger than the single jet value at a thrust coefficient of 2.0. The calculations also showed low pressure wakes located radially behind the peripheral jets which are responsible for the decrease in drag coefficient with increasing thrust coefficient and that high pressure is maintained between the jets. These results suggest that using a few peripheral PD jets located near the aeroshell shoulder would provide the greatest amount of drag preservation when using propulsive deceleration.
机译:未来进入火星稀薄大气层的高质量航天器在部署超音速降落伞之前将需要其他减速方法。推进减速是一种正在考虑的技术。航天器空气动力学与推进减速(PD)喷气机之间的相互作用已显示会导致阻力系数随推力系数的增加而减小,这对于减速而言是不希望的。平面激光诱导的碘荧光(PLⅡF)图像显示出车头冲击波从机壳上抬起。使用CFD代码进行的流场计算表明,这种提升是随PD射流推力增加而导致阻力减小的原因。 PLⅡF图像显示,在机壳中心线和肩部之间的中间有4个PD喷射器时,随着推力系数的增大,车辆的弓形冲击保持在喷射器之间。 CFD计算结果表明,这种弓形冲击是外围喷气机更好地保持阻力的原因。推力系数为2.0时,外围喷射阻力系数是单喷射值的4倍。计算还表明,低压尾流沿径向位于外围射流的后面,这导致阻力系数随推力系数的增加而减小,并且在射流之间保持了高压。这些结果表明,在使用推进减速时,使用一些位于机翼肩部附近的外围PD射流可以最大程度地保持阻力。

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