Computational Fluid Dynamics Study of Balloon System Tethered to a Stratosail

Jayakanth Loganathan, K. Lim, H. Lee, B. Khoo
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Abstract

In this paper, we present a numerical study of a stratospheric balloon system tethered to a passive device, known as the Stratosail, for station-keeping operation. For scientific applications, stratospheric balloons that operate at altitudes between 15 and 20 km will need to maintain station over a fixed point above the earth for a prescribed period of time. This is a challenging problem due to the limitation of payloads and lack of an energy source. The present study uses computational fluid dynamics (CFD) simulations to analyze the drift velocity of such a balloon-Stratosail system under typical wind conditions in the stratosphere. The Stratosail is attached below the super-pressure helium balloon via a long and thin tether about 10 to 15 km below the balloon, providing a drag force to alter the flight path of the balloon. Its operation depends on the natural differences in the wind speed and wind direction at different altitudes in the atmosphere that act on the balloon and the Stratosail (spaced far apart by 10km to 15 km). In this study, we calculated the drag forces on the balloon and Stratosail for typical wind speeds at various altitudes in the stratosphere. The tether was also modelled as a cable joining the balloon and sail. With this model, the drift velocity of the system was calculated for various altitudes and the angle of attack of the sail.
系在平流层帆上的气球系统的计算流体动力学研究
在本文中,我们提出了一个数值研究平流层气球系统系在一个被动装置,称为平流层帆,为站保持操作。为了科学应用,在15至20公里高度运行的平流层气球需要在规定的时间内保持在地球上方的一个固定点上。由于有效载荷的限制和能源的缺乏,这是一个具有挑战性的问题。本研究采用计算流体动力学(CFD)模拟分析了平流层典型风况下气球-平流层帆系统的漂移速度。平流层帆通过一根又细又长的缆绳连接在超压氦气球下方,在气球下方约10至15公里处,提供阻力来改变气球的飞行路径。它的运行取决于大气中不同高度的风速和风向的自然差异,这些风速和风向作用于气球和平流层帆(间距为10公里至15公里)。在这项研究中,我们计算了在平流层不同高度的典型风速下气球和平流层帆的阻力。缆绳也被模仿成连接气球和帆的缆绳。利用该模型,计算了系统在不同高度和不同迎角下的漂移速度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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