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Effects of the rotational vehicle dynamics on the ascent flight trajectory of the SpaceLiner concept

机译:旋转车辆动力学对Spaceliner Concept的Ascent飞行轨迹的影响

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During the preliminary design of space transportation systems, the vehicle dynamics are commonly reduced to a point-mass model for definition of the flight trajectory. While this approach effectively reduces the number of model parameters in the design process, it neglects the rotational dynamics of the vessel completely. Since the rotational degrees of freedom (DOF) have a significant influence on the vehicle's controllability, a sole analysis of the translational dynamics is insufficient to assess the general feasibility of the concept. This study investigates the ascent flight trajectory of the SpaceLiner vehicle, a concept for a hypersonic suborbital space plane, based on a newly developed 6-DOF flight dynamics simulation to determine the influence of the rotational dynamics on the vehicle's controllability and performance. The first part of this paper will focus on the developed vehicle model which features a transient inertia model, as well as an algorithmic-designed flight control system. The second part will present several simulations of nominal and off-nominal ascent trajectories. Based on the results it will be shown that SpaceLiner's thrust vector control system is sufficiently dimensioned for the investigated mission scenarios, while the vehicle performance is only slightly influenced by the rotational dynamics.
机译:在空间运输系统的初步设计期间,车辆动力学通常被降低到用于定义飞行轨迹的点质量模型。虽然这种方法有效地减少了设计过程中的模型参数的数量,但它完全忽略了容器的旋转动态。由于自由度(DOF)的旋转程度对车辆的可控性具有显着影响,因此对平移动态的唯一分析不足以评估概念的一般可行性。本研究研究了Spaceliner车辆的Ascent飞行轨迹,基于新开发的6-DOF飞行动力学模拟来确定旋转动力学对车辆可控性和性能的影响。本文的第一部分将专注于开发的车辆模型,该模型具有瞬态惯性模型,以及算法设计的飞行控制系统。第二部分将呈现几个标称和非名义上升轨迹的模拟。基于结果,将显示Spaceliner的推力矢量控制系统对于调查的任务方案足够尺寸,而车辆性能仅受旋转动态的略微影响。

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