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Evaluating the energy balance of high altitude platforms at early design stages

机译:在早期设计阶段评估高海拔平台的能量平衡

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High altitude platforms, also known as pseudo-satellites, are envisioned as unmanned aircraft flying at altitudes above 15 km to provide observation, remote sensing or communication services. A challenging yet recurring requirement for such aicraft is to be able to perform long-endurance missions over multiple days or even weeks. A sophisticated onboard energy management system including solar panels and batteries is needed to achieve this. The energy balance of such an aircraft depends on many factors which should be considered in the design process. In this work, we propose a systematic approach to evaluate the energy balance of high altitude platform designs for specific mission scenarios. This approach can be employed at very early design stages and incrementally extended to follow the design process. We demonstrate the methodology with an exemplary parameter study for a generic fixed-wing aircraft. In particular, the impact and correlations of the mission latitude, wind conditions, flight trajectory optimization, sizing of the platform and solar panel coverage of the main wing was evaluated. A key result is that battery mass can be reduced significantly, especially for missions at high latitudes, by optimizing the holding pattern that is flown throughout the mission or by increasing the solar panel coverage. Generally, the results indicate that the method allows to evaluate mission-specific effects on the energy balance of high altitude platforms.
机译:高海拔平台,也被称为伪卫星,被设想为无人驾驶飞机在高于15公里的高度飞行,以提供观察,遥感或通信服务。对这种Aicraft的一个具有挑战性的然而,能够在多天甚至几周内进行长期耐久性任务。需要一个复杂的车载能源管理系统,包括太阳能电池板和电池来实现这一目标。这种飞机的能量平衡取决于设计过程中应考虑的许多因素。在这项工作中,我们提出了一种系统的方法来评估特定任务情景的高海拔平台设计的能量平衡。这种方法可以在非常早期的设计阶段使用,并逐步扩展到遵循设计过程。我们展示了具有通用固定翼飞机的示例性参数研究的方法。特别地,评估了任务纬度,风力条件,飞行轨迹优化,平台尺寸和主机翼的太阳能电池板覆盖的影响和相关性。一个关键的结果是,通过优化在整个任务中飞行的保持模式或通过增加太阳能电池板覆盖,可以显着降低电池质量,特别是在高纬度地区的任务。通常,结果表明该方法允许评估对高海拔平台的能量平衡的特定特定影响。

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