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Pterodactyl: Thermal Protection System for Integrated Control Design of a Mechanically Deployed Entry Vehicle

机译:翼手龙:用于机械部署的进入车辆的集成控制设计的热保护系统

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The need for precision landing of high mass payloads on Mars and the return of sensitive samples from other planetary bodies to specific locations on Earth is driving the development of an innovative NASA technology referred to as the Deployable Entry Vehicle (DEV). A DEV has the potential to deliver an equivalent science payload with a stowed diameter 3 to 4 times smaller than a traditional rigid capsule configuration. However, the DEV design does not easily lend itself to traditional methods of directional control. The NASA Space Technology Mission Directorate (STMD)'s Pterodactyl project is currently investigating the effectiveness of three different Guidance and Control (G&C) systems — actuated flaps, Center of Gravity (CG) or mass movement, and Reaction Control System (RCS) — for use with a DEV using the Adaptable, Deployable, Entry, and Placement Technology (ADEPT) design. This paper details the Thermal Protection System (TPS) design and associated mass estimation efforts for each of the G&C systems. TPS is needed for the nose cap of the DEV and the flaps of the actuated flap control system. The development of a TPS selection, sizing, and mass estimation method designed to deal with the varying requirements for the G&C options throughout the trajectory is presented. Specifically, this paper discusses the methods used to i) obtain heating environments throughout the trajectory with respect to the chosen control system and resulting geometry; ii) determine a suitable TPS material; iii) produce TPS thickness estimations; and, iv) determine the final TPS mass estimation based on TPS thickness, vehicle control system, vehicle structure, and vehicle payload.
机译:对精确有效载荷在火星上着陆以及敏感样品从其他行星体返回到地球上特定位置的需求正在推动创新的NASA技术(称为可部署进入飞行器(DEV))的发展。 DEV有潜力提供等效的科学有效载荷,其装载直径比传统的刚性胶囊配置小3至4倍。但是,DEV设计并不容易将其应用于传统的方向控制方法。美国国家航空航天局(NASA)太空技术任务局(STMD)的翼手龙项目目前正在研究三种不同的制导和控制(G&C)系统的有效性-致动襟翼,重心(CG)或质量运动以及反作用控制系统(RCS)-通过自适应,可部署,输入和放置技术(ADEPT)设计与DEV一起使用。本文详细介绍了每个G&C系统的热保护系统(TPS)设计和相关的质量估算工作。 DEV的机头盖和驱动的襟翼控制系统的襟翼需要TPS。提出了一种TPS选择,大小确定和质量估计方法的开发,该方法旨在处理整个轨迹上G&C选项的各种要求。具体而言,本文讨论了用于以下方面的方法:i)获得相对于所选控制系统和所得几何形状的整个轨迹的加热环境; ii)确定合适的TPS材料; iii)生成TPS厚度估计值; iv)基于TPS厚度,车辆控制系统,车辆结构和车辆有效载荷确定最终TPS质量估计。

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