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Trajectory Analysis for Vertical Takeoff and Vertical Landing Reusable Launch Vehicle's Upper Stage

机译:垂直起飞和垂直着陆可重复使用运载火箭上段的弹道分析

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摘要

Reusable launch vehicles are a promising business for the future because of their flexibility, reliability, low cost, and good operability. There are two takeoff styles: the vertical takeoff and the horizontal takeoff. Compared to the horizontal takeoff vehicle, the vertical takeoff reusable launch vehicle has advantages, such as a shorter down-range landing, a quicker recovery system (wherein takeoff and landing happen in approximately the same location), and a lighter weight. A vertical profile is used for vertical takeoff and vertical landing (VTVL) vehicles to achieve a recovery at the launch site. However, the first stage of the vertical takeoff reusable launch vehicle (RLV) typically can provide a very small or even zero velocity to its second or upper stage, if the upper stage is released at the peak altitude. Therefore, primarily, this type of launch vehicle is used to achieve hundreds of seconds in a microgravity environment. The upper stage payload delivery capabilities of a vertical takeoff RLV and its potential applications are described from a trajectory point of view. A modified optimal control methodology and an intuitive method of the trajectory control, called energy for altitude and time, are used to determine the maximum throw distance, maximum flight time, and orbital insertion capabilities for certain payloads, separately. The results from this investigation show the possibilities of expanding the applications for the VTVL suborbital RLV.
机译:可重复使用的运载火箭由于其灵活性,可靠性,低成本和良好的可操作性,在未来是一项有前途的业务。有两种起飞样式:垂直起飞和水平起飞。与水平起飞运载工具相比,垂直起飞可重复使用的运载工具具有以下优点,例如较短的降落着陆,更快的恢复系统(其中,起飞和着陆发生在大致相同的位置)和更轻的重量。垂直轮廓用于垂直起飞和垂直降落(VTVL)车辆,以在发射场实现恢复。然而,如果上层在峰值高度被释放,则垂直起飞可重复使用运载火箭(RLV)的第一级通常可以为其第二层或上层提供非常小的甚至零速度。因此,首先,这种类型的运载工具用于在微重力环境下实现数百秒的飞行。从轨迹的角度描述了垂直起飞RLV的上层有效载荷输送能力及其潜在应用。改进的最优控制方法和轨迹控制的直观方法(称为高度和时间的能量)用于分别确定某些有效载荷的最大投射距离,最大飞行时间和轨道插入能力。这项调查的结果表明,有可能扩大VTVL亚轨道RLV的应用范围。

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