自主气球技术:快速气球膨胀和发射的自动化方法

Arun Bishop, Nicholas Hennigan
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引用次数: 1

摘要

传统的高空气球(HAB)平台为一系列应用提供了一种现实而经济的策略。然而,手动发射通常需要几个小时,需要很多人。美国国家航空航天局喷气推进实验室的创新飞行计划已经开始研究一种完全自主的多气球发射系统,称为自动发射器。自动发射装置的目的是加快发射过程,同时允许在具有挑战性或偏远的地形中发射hab。新的设计将使多个气球的设置和连续发射完全自动化,每次飞行间隔最多30分钟。自动发射装置操纵一种新型的气球包装和运输容器,称为气球胶囊,其操作如下:胶囊自动装载到充气/发射集结地,氦气接触和锁定(HEL)系统将气球与氦气连接,并在气球充气时对其进行限制,当气球准备发射时释放气球。气球膨胀发生在气球膨胀屏障(BiB)内,该屏障在膨胀过程中保护气球。提出的设计是准模块化的,并结合离散子系统来控制有效载荷和气球存储、气球设置和装载、气球膨胀和发射。本文重点介绍了充气和发射子系统所必需的主要部件气球舱、BiB和HEL系统的开发。从两个调查研究的结果用于确定新的气球包装和气球膨胀保护方法。第一项研究考察了压缩薄壁气球的展开特性,并测试了一种新的级联折叠方法来紧密包裹气球。在第二项研究中,通过测量风速高达42公里/小时的气球挠度,实验验证了BiB设计。HEL系统的原型被建造并成功地在1.5倍的预期升力下进行了测试,并被整合到自动发射装置的结构原型中。原型车重量不到9.0公斤,长88.4厘米,宽56.4厘米,高37.2厘米。这种设计将显著减少HAB发射所需的时间和人工。剩余工作包括:实施氦气控制;气球有效载荷存储系统设计;并在全面发射时测试原型机。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Autonomous Balloon Technology: Automated Methods for Rapid Balloon Inflation and Launching
Traditional High-Altitude Balloon (HAB) platforms provide a realistic and cost-effective strategy for a range of applications. However, manual launches often take hours and require many people. The National Aeronautics and Space Administration Jet Propulsion Laboratory's Innovation To Flight program has begun work on a completely autonomous multi-balloon launching system called the autolauncher. The aim of the autolauncher is to expedite the launching process while allowing HABs to be launched in challenging or remote terrain. The new design would fully automate the set up and successive launch of multiple balloons with at most 30 minutes between each flight. The autolauncher manipulates a novel balloon packing and transport container called a Balloon Capsule and operates as follows: capsules are autonomously loaded into an inflation/launch staging area, where the Helium Engagement and Locking (HEL) system connects the balloon to helium and restrains it while it is inflated, releasing the balloon when ready for launch. The balloon inflation occurs within a Balloon Inflation Barrier (BiB) that protects the balloon during inflation. The proposed design is quasi-modular and incorporates discrete subsystems for controlling payload and balloon storage, balloon setup and loading, and balloon inflation and launch. This paper focuses on development of the Balloon Capsule, BiB, and the HEL system, primary components necessary for the inflation and launch subsystem. Results from two investigative studies used to determine new balloon packing and balloon inflation protection methods are presented. The first study examined the deployment characteristics of compressed, thin-walled balloons and tested a new cascading-folding method to tightly pack balloons. The BiB design was validated experimentally in the second study by measuring balloon deflection under wind speeds up to 42 km/h. A prototype of the HEL system was built and successfully tested under 1.5x the expected lift forces and incorporated into a structural prototype of the autolauncher. The prototype weighs less than 9.0 kg and is 88.4 cm long, 56.4 cm wide, and 37.2 cm tall. This design will significantly reduce the time and labor necessary for HAB launches. Remaining work includes: implementing the helium control; design of balloon payload storage systems; and testing the prototype during a full launch.
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