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Aerodynamic Studies in Preparation for CALLISTO - Reusable VTVL Launcher First Stage Demonstrator

机译:用于铃声的空气动力学研究 - 可重复使用的VTVL发射器第一阶段演示者

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Reusability applied to launchers is expected to reduce costs of access to space and increase of the operational flexibility. With the goal to improve knowledge in this field, DLR, CNES and JAXA are jointly developing a vertical take-off and landing (VTVL) reusable and scaled launcher first stage demonstrator. With this vehicle, called CALLISTO (Cooperative Action Leading to Launcher Innovation in Stage Toss-back Operations), DLR, CNES and JAXA want to acquire and demonstrate the capability to recover and reuse a vehicle under conditions representative for an operational launcher first stage. Furthermore, during CALLISTO flights, data will be gathered to improve knowledge on the operation of reusable vehicle and therefore help optimizing reusability capabilities of future launch systems. In order to demonstrate the feasibility of the CALLISTO project during the system requirement review (SRR) and in preparation of the Preliminary Design Review (PDR), extensive aerodynamic analyses have been performed. The entire CALLISTO reference mission is complex and includes many flight phases: ascent, tilt-over manoeuvre, descent and landing. During the flight, the vehicle aerodynamic configuration, the mass, the centre of gravity position and the inertia characteristics change significantly. The flight envelope is characterised by a large range of Mach numbers and dynamic pressures, the angle of attack changes from 0° during ascent to 180° during descent and landing. One of the most important flight phases is the controlled descent through the dense layers of the atmosphere with aerodynamic control surfaces. Therefore aerodynamic design of the vehicle and especially guarantying stability and controllability are of key importance. The use of classic engineering aero-prediction methods cannot provide the necessary precision and reliability for the estimation of the aerodynamic coefficients even in very early design phase. Therefore CFD methods have to be used even in very early
机译:可重用性施加到发射有望降低访问的成本和空间增加的操作灵活性。随着以提高在该领域的知识目标,DLR,CNES和JAXA正在联合开发一种垂直起飞和着陆(VTVL)可重复使用的,规模化启动第一阶段演示。有了这个车,叫CALLISTO(合作行动在舞台投掷回操作,以领先的创新启动),DLR,CNES和JAXA希望获取和展示的能力恢复并代表操作启动第一阶段的条件下重复使用的车辆。此外,在CALLISTO航班,数据将齐聚一堂,提高可重复使用的车辆的操作知识,从而有助于优化未来的发射系统的可重用性的能力。为了在系统需求评审(SRR)期间和编制初步设计评审(PDR)的证明CALLISTO项目的可行性,大量的空气动力学分析已经完成。整个CALLISTO参考的任务是复杂的,包括许多飞行阶段:上升,倾斜了机动,下降和着陆。在飞行期间,该车辆的空气动力学构型,质量,的重心位置和惯性特性显著变化。飞行包线的特征在于,大范围的马赫数和动态压力,从0变化攻击°上升到180°期间下降和着陆过程中的角度。其中最重要的飞行阶段是通过大气的致密层用气动控制面的受控下降。因此,车辆的空气动力学设计,特别是中保证稳定性和可控性都至关重要。采用经典工程航空预测方法甚至不能在非常早期的设计阶段提供必要的精度和可靠性的空气动力系数的估计。因此CFD方法必须在非常早的甚至用

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