The impact of altitude, latitude, and endurance duration on the design of a high altitude, solar powered unmanned aerial vehicle

A. Alsahlani, T. Rahulan
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引用次数: 6

Abstract

In this paper, a previously developed conceptual design tool has been used to study the impact of the latitude, altitude, and the flight duration on the weight estimation and the main characteristics of a high altitude, long endurance and solar powered unmanned aerial vehicle. The available solar energy during the daylight hours has been calculated at given locations and altitudes for specific periods to be used in the pre-conceptual design stage. The pre-conceptual design methodology is based on an analytical and continuous method, which consists of establishing the relationships between all the components with analytical functions using the component characteristics. This design approach can directly provide a unique and optimal design. This study is conducted for a solar aircraft designed for a surveillance mission over Iraq. It is concluded that increasing the operational altitude can lead to a heavier aircraft in spite of the high levels of the available solar energy that can be absorbed. Hence, at high altitude, the surface area required for solar power generation is less than that needed to obtain adequate lift. Increasing the maximum solar irradiance during the daylight hours can lead to further lowering of the aircraft weight. Moreover, an increase in the daylight hours can be beneficial if the charging and discharging losses of the fuel cells are considered.
海拔高度、纬度和续航时间对高空太阳能无人机设计的影响
本文利用已开发的概念设计工具,研究了纬度、高度和飞行时间对高空长航时太阳能无人机重量估算和主要特性的影响。白天可用的太阳能已经在特定的地点和高度计算,以便在概念前设计阶段使用。概念前设计方法是基于一种分析和连续的方法,它包括利用组件特性建立具有分析功能的所有组件之间的关系。这种设计方法可以直接提供独特的优化设计。这项研究是为在伊拉克上空执行监视任务而设计的一架太阳能飞机进行的。结论是,尽管可吸收的太阳能水平很高,但增加操作高度可能导致飞机更重。因此,在高海拔地区,太阳能发电所需的表面积小于获得足够升力所需的表面积。增加白天的最大太阳辐照度可以进一步降低飞机重量。此外,如果考虑到燃料电池的充电和放电损失,增加白天的时间是有益的。
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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