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Overview of the DoD's RF Multifunction Structural Aperture (MUSTRAP) Program

机译:国防部的射频多功能结构光圈(MUSTRAP)计划概述

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The proliferation of antenna systems of state-of-the-art military aircraft has challenged major airframe manufactures to provide additional outer surface platform space for antenna placement while still maintaining a flightworthy structure. The solution is to design antennas that can sustain severe structural load. The recently completed "RF Multifunction Structural Aperture (MUSTRAP)," contract number F3361 5-97-2-3807 performed by Northrop Grumman Corporation (NGC). El Segundo, California and TRW/ASD, Rancho Bernardo, San Diego, California, together with their DoD customer have met this challenge by conceiving the novel technology of Conformal Load-bearing Antenna Structures (CLAS). Under the Air Force Research Laboratory, Air Vehicles Directorate, Structures Division's leadership and direction, the MUSTRAP team have developed multifunction, broadband, structurally integrated, low cost antennas for communications, navigation. identification (CNI) and electronic warfare (EW) applications in the 0.03 to 2.0 GHz range. Two concepts, a fuselage and a vertical tail installation, were designed, analyzed, fabricated, and tested. The fuselage demonstration article was a load bearing multifunction (UHF/SATCOM) antenna 35 by 37 inch panel subjected to combined axial and shear loading, which replicated realistic flight conditions. Ultimate failure loads imposed on the panel were 1,800 pounds per inch axial loading and 600 pounds per inch shearing loading, after successfully withstanding a single lifetime (6.000 hours) of fatigue. Electrical performance was validated using anechoic chamber measurements. The vertical tail concept was a structural excitation multifunction (VHF/UHF) antenna element that can be tailored to fit in virtually any end cap vertical tail configuration. Designed to endure the severe acoustic environment associated with empennage noise sources, the end cap was successfully flight tested on NASA/Dryden's Systems Research Aircraft (SRA) to validate the structural and electrical performance. Highlights of the program arc presented in the text.
机译:先进的军用飞机的天线系统的激增已经对主要的机身制造商提出了挑战,要求它们提供额外的外表面平台空间来放置天线,同时仍保持可飞行的结构。解决方案是设计能够承受严重结构载荷的天线。诺斯罗普·格鲁曼公司(NGC)最近完成的合同编号为F3361 5-97-2-3807的“ RF多功能结构孔径(MUSTRAP)”。加利福尼亚州的El Segundo和加利福尼亚州圣地亚哥的Rancho Bernardo的TRW / ASD与美国国防部的客户一起,通过构想了共形承重天线结构(CLAS)的新技术,迎接了这一挑战。在空军研究实验室,飞机司,结构部的领导和领导下,MUSTRAP团队开发了多功能,宽带,结构集成,低成本的通信,导航天线。识别(CNI)和电子战(EW)应用在0.03至2.0 GHz范围内。设计,分析,制造和测试了两个概念,即机身和垂直尾翼。机身演示文章是37英寸面板的多功能承重(UHF / SATCOM)天线35,承受轴向和剪切联合载荷,复制了真实的飞行条件。在成功承受了单个寿命(6.000小时)的疲劳之后,施加在面板上的极限破坏载荷为1,800磅/英寸的轴向载荷和600磅/英寸的剪切载荷。使用无回声室测量来验证电性能。垂直尾部概念是一种结构激励多功能(VHF / UHF)天线元件,可以定制以适合几乎任何端盖的垂直尾部配置。设计用于承受与尾气噪声源相关的恶劣声学环境,该端盖已在NASA / Dryden系统研究飞机(SRA)上成功进行了飞行测试,以验证其结构和电气性能。该程序的重​​点在本文中介绍。

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