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Brazilian 14-X Hypersonic Aerospace Vehicle Project

机译:巴西14-X超声波航空航天车辆项目

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The Brazilian 14-X Hypersonic Aerospace Vehicle, a new generation of scientific aerospace vehicle, designed at Prof. Henry T. Nagamatsu Laboratory of Aerothermodynamics and Hypersonics, at Institute for Advanced Studies (IEAv), is part of the continuing effort of the Department of Aerospace Science and Technology (DCTA), to develop a technological demonstrator using: i) waverider technology to provide lift to the aerospace vehicle, and ii) scramjet technology to provide hypersonic airbreathing propulsion system based on supersonic combustion. In consequence of the nature of the supersonic combustion engines, they are unable to produce thrust while stationary, the static thrust is zero. Accordingly, they must be accelerated to a speed such that the shock waves produced by the air intake are able to compress the atmospheric air. This velocity, called initial operation speed, is approximately four times the speed of sound, Mach 4, considering scramjet. Two-stage, unguided, rail launched, solid rocket engines will be used to accelerate the 14-X Hypersonic Aerospace Vehicle to the pre-established conditions to operate the scramjet engine, i.e., position (altitude, latitude and longitude), speed (Mach number), dynamic pressure and angle of attack. The 14-X Hypersonic Aerospace Vehicle project consists of four atmospheric flights. The first flight is planned for 14-X captive (accelerator and 14-X vehicles coupled during the entire flight) unpowered scramjet Mach number 6; the second for 14-X free (accelerator and 14-X vehicles separated after burn of 2~(nd) stage of accelerator vehicle) unpowered scramjet Mach number 6 flight; and the two last are planned for free hydrogen-powered scramjet Mach number 6 and Mach number 10, respectively. Pure waverider aerodynamic, scramjet power off and power on as well as 14-X stage separation will be experimentally investigated using the three Hypersonic Shock Tunnels at Prof. Henry T. Nagamatsu Laboratory of Aerothermodynamics and Hypersonics. Pressure and temperature measurements at pure waverider external upper and lower surfaces and scramjet power off and power on internal surfaces will be obtain to provide wind-tunnel data to design the full 2-m. long atmospheric flight of 14-X Hypersonic waverider scramjet Aerospace Vehicle. Non-intrusive measurements using optical diagnostic techniques have been implemented at Hypersonic Shock Tunnels, as well as in-house computational fluid dynamics have been developed for waverider, scramjet and 14-X Hypersonic Aerospace Vehicle.
机译:巴西14-x超音速航空航天车辆,一代新一代科学航空航天车,在高级研究研究所(IEAV)在亨利T. Nagamatsu教授的空间动力学和高亢的实验室设计。是持续努力的一部分航空航天科技(DCTA),开发一种技术演示,使用:i)Waverider技术为航空航天车辆提供升力,II)Scramjet技术提供基于超音速燃烧的高超声速的气囊推进系统。由于超音速燃烧发动机的性质,它们无法在静止时产生推力,静态推力为零。因此,它们必须加速到速度,使得通过进气量产生的冲击波能够压缩大气空气。这种称为初始操作速度的速度大约是声音速度,Mach 4,考虑Scramjet的四倍。两阶段,无导力,轨道推出,固体火箭发动机将用于加速14-x超声波航空航天车辆到预先建立的条件,操作斯普拉克喷头发动机,即位置(高度,纬度和经度),速度(马赫数字),动态压力和攻角。 14-x超声波航空航天车辆项目由四个大气的航班组成。第一次飞行计划为14-x俘虏(加速器和14-x车辆在整个飞行期间耦合的14-X车辆)无动力扰乱马赫号6号;第二种适用于14-X免费(加速器和14-X车辆在2〜(ND)级的加速器车辆阶段)无力争抢马赫号6飞行;并且,上次计划分别用于自由氢气动力扰锤马赫数6和马赫数10。纯粹的Waverider空气动力学,Scramjet电源关闭和电源以及14-x阶段分离将在实验上使用Three Henry T. Nagamatsu教授的空气动力学和高亢实验室进行实验研究。将获得纯Waverider外部上部和下表面的压力和温度测量和扰码电源,并在内部表面上电源进行电源,以提供风洞数据以设计完整的2-M。长大气飞行14-x超声波骑士炒盘航空航天车。使用光学诊断技术的非侵入式测量已经在超音速冲击隧道中实现,并且已经为Waverider,Scramjet和14-x超声波航空航天车开发了内部计算流体动力学。

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