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Inflatable Space Structures Technology Development for Large Radar Antennas

机译:大型雷达天线充气空间结构技术发展

摘要

There has been recent interest in inflatable space-structures technology for possible applications on U.S. Department of Defense (DOD) missions because of the technology's potential for high mechanical-packaging efficiency, variable stowed geometry, and deployment reliability. In recent years, the DOD sponsored Large Radar Antenna (LRA) Program applied this new technology to a baseline concept: a rigidizable/inflatable (RI) perimeter-truss structure supporting a mesh/net parabolic reflector antenna. The program addressed: (a) truss concept development, (b) regidizable materials concepts assessment, (c) mesh/net concept selection and integration, and (d) developed potential mechanical-system performance estimates. Critical and enabling technologies were validated, most notably the orbital radiation durable regidized materials and the high modulus, inflatable-deployable truss members. These results in conjunction with conclusions from previous mechanical-packaging studies by the U.S. Defense Advanced Research Projects Agency (DARPA) Special Program Office (SPO) were the impetus for the initiation of the DARPA/SPO Innovative Space-based Antenna Technology (ISAT) Program. The sponsor's baseline concept consisted of an inflatable-deployable truss structure for support of a large number of rigid, active radar panels. The program's goal was to determine the risk associated with the application of these new RI structures to the latest in radar technologies. The approach used to define the technology maturity level of critical structural elements was to: (a) develop truss concept baseline configurations (s), (b) assess specific inflatable-rigidizable materials technologies, and (c) estimate potential mechanical performance. The results of the structures portion of the program indicated there was high risk without the essential materials technology flight experiments, but only moderate risk if the appropriate on-orbit demonstrations were performed. This paper covers both programs (LRA and ISAT) in two sections, Parts 1 and 2 respectively. Please note that the terms strut, tube, and column are all used interchangeably and refer to the basic strut element of a truss. Also, the paper contains a mix of English and metric dimensional descriptions that reflect prevailing technical discipline conventions and common usage.
机译:由于可充气的空间结构技术具有很高的机械包装效率,可变的存放几何形状和部署可靠性的潜力,最近人们对在美国国防部(DOD)任务中可能应用的充气式空间结构技术产生了兴趣。近年来,DOD赞助的大型雷达天线(LRA)计划将这项新技术应用于基线概念:可支撑/可充气(RI)的周向桁架结构,支持网状/网状抛物面反射器天线。该计划涉及:(a)桁架概念开发;(b)可注册的材料概念评估;(c)网/网概念选择和集成;(d)制定潜在的机械系统性能评估。关键和使能技术得到了验证,其中最引人注目的是经轨道辐射耐久性认证的材料和高模量,可充气展开的桁架构件。这些结果与美国国防高级研究计划局(DARPA)特殊计划办公室(SPO)先前的机械包装研究得出的结论一起,推动了DARPA / SPO创新型天基天线技术(ISAT)计划的启动。 。赞助商的基本概念包括可充气展开的桁架结构,用于支撑大量的刚性有源雷达面板。该计划的目标是确定与将这些新RI结构应用于最新雷达技术相关的风险。用于定义关键结构元件的技术成熟度水平的方法是:(a)开发桁架概念的基线配置,(b)评估可充气刚性材料的特定技术,以及(c)估计潜在的机械性能。该计划的结构部分的结果表明,如果没有必要的材料技术飞行试验,则存在很高的风险,但如果进行了适当的在轨演示,则只有中等风险。本文分别在第1部分和第2部分的两个部分中介绍了这两个程序(LRA和ISAT)。请注意,术语“支撑杆”,“管”和“柱”都可以互换使用,是指桁架的基本支撑杆元件。此外,本文还包含英语和公制尺寸的描述的组合,这些描述反映了现行的技术学科惯例和常用用法。

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