首页> 外文会议>International Astronautical Congress >AERODYNAMIC AND ENGINEERING DESIGN OF A 1.5 SECONDS HIGH QUALITY MICROGRAVITY DROP TOWER FACILITY CURRENTLY UNDER DEVELOPMENT AT BAYLOR UNIVERSITY IN WACO, TEXAS, USA
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AERODYNAMIC AND ENGINEERING DESIGN OF A 1.5 SECONDS HIGH QUALITY MICROGRAVITY DROP TOWER FACILITY CURRENTLY UNDER DEVELOPMENT AT BAYLOR UNIVERSITY IN WACO, TEXAS, USA

机译:1.5秒的空气动力学和工程设计1.5秒高质量的微匍匐塔架设施,德克萨斯州德克萨斯州德克萨斯州的贝勒大学正在开发

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Microgravity experiments are essential for research in space science,biology, fluid mechanics, combustion, and material sciences. One way to conduct microgravity experiments on Earth is by using drop tower facilities. These facilities combine a high quality of microgravity, adequate payload masses and have the advantage of virtually unlimited repeatability under same experimental conditions, at a low cost. In a collaboration between the Institute of Space Systems (IRS) at the University of Stuttgart and Baylor University (BU) in Waco, Texas, a new drop tower is currently under development at the Center for Astrophysics, Space Physics and Engineering Research (CASPER). The design parameters of the drop tower ask for at least 1.5 seconds in free fall duration while providing a quality of at least 10~(-5) g. Previously, this quality has only been achieved in vacuum drop tower facilities where the capsule experiences virtually zero aerodynamic drag during its free fall. Since this design comes at high costs, a different drop tower design concept, which does not require an evacuated drop shaft, was chosen. It features a dual-capsule system in which the experiment capsule is shielded from aerodynamic forces by surrounding it with a drag shield during the drop. As no other dual-capsule drop tower has been able to achieve a quality as good as or better than 10~(-5) g previous work optimized the design with an aerodynamic perspective by using computational fluid dynamics (CFD) simulations to determine the ideal shape and size of the outer capsule and to specify the aerodynamically crucial dimensions for the overall system. Experiments later demonstrated that the required quality of microgravity can be met with the proposed design. The main focus of this paper is the mechanical realization of the capsule as well as the development and layout of the surrounding components, such as the release mechanism, the deceleration device and the drop shaft. Because the drop tower facility is a complex system with many interdependencies between all of the components, several engineering challenges had to be addressed. For example, initial disturbances that are caused by the release mechanism are a common issue that arises at drop tower facilities. These vibrations may decrease the quality of microgravity during the initial segment of free fall. Because this would reduce the free fall time experiencing high quality microgravity, a mechanism has been developed to provide a soft release. Challenges and proposed solutions for all components are highlighted in this paper.
机译:微重力试验是在空间科学,生物学,流体力学,燃烧,和材料科学的研究是必不可少的。在地球上进行微重力实验的方法之一是使用落塔设施。这些设施相结合的微重力,充分有效载荷质量的高品质和具有相同的实验条件下,几乎无限的可重复性的优势,以较低的成本。在空间系统在斯图加特和贝勒大学(BU)大学在德克萨斯州韦科研究所(IRS)之间的合作,新的下落塔是目前正处于天体物理中心,空间物理和工程研究(CASPER)发展。液滴塔的设计参数在自由下落时间要求至少1.5秒,同时提供至少10〜(-5)g的质量。此前,这种品质只被真空落塔设施将胶囊经验几乎为零的自由落体过程中的空气阻力来实现的。由于这种设计来自于成本高,不同的下落塔的设计理念,不需要抽真空的竖井,被选为。它具有一个双胶囊系统,其中所述实验胶囊从空气动力学的力通过与所述下降期间的拖曳屏蔽周围屏蔽。由于没有其他的双胶囊落塔已经能够实现质量一样好或好于10〜(-5)克优化设计具有空气动力学透视以前的工作,通过使用计算流体动力学(CFD)模拟,以确定理想的形状和外胶囊的大小,并指定为整个系统的空气动力学关键尺寸。后来实验证明,微重力所要求的质量可与所提出的设计来满足。本文的主要焦点是胶囊的机械实现以及周边组件,例如释放机构,减速装置和滴轴的发展和布局。由于落塔设施的所有组件之间的相互依赖许多复杂的系统,一些工程上的挑战必须得到解决。例如,由释放机构引起的初始扰动是出现在落塔设施的共同课题。这些振动可自由下落的初始部分期间减少微重力的质量。因为这会降低自由落体时间体验高品质的微重力,一种机制已经发展到提供软释放。所有组件的挑战和提出的解决方案是突出了本文。

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