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High Altitude Long Endurance Air Vehicle Analysis of Alternatives and Technology Requirements Development

机译:高空长寿命飞行器的替代方案分析和技术要求的发展

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摘要

The objective of this study was to develop a variety of High Altitude Long Endurance (HALE) Unmanned Aerial Vehicle (UAV) conceptual designs for two operationally useful missions (hurricane science and communications relay) and compare their performance and cost characteristics. Sixteen potential HALE UAV configurations were initially developed, including heavier-than-air (HTA) and lighter-than-air (LTA) concepts with both consumable fuel and solar regenerative (SR) propulsion systems. Through an Analysis of Alternatives (AoA) down select process, the two leading consumable fuel configurations (one each from the HTA and LTA alternatives) and an HTA SR configuration were selected for further analysis. Cost effectiveness analysis of the consumable fuel configurations revealed that simply maximizing vehicle endurance can lead to a sub-optimum system solution. An LTA concept with a hybrid propulsion system (solar arrays and a hydrogen-air proton exchange membrane fuel cell) was found to have the best mission performance; however, an HTA diesel-fueled wing-body-tail configuration emerged as the preferred consumable fuel concept because of the large size and technical risk of the LTA concept. The baseline missions could not be performed by even the best HTA SR concept. Mission and SR technology trade studies were conducted to enhance understanding of the potential capabilities of such a vehicle. With near-term technology SR-powered HTA vehicles are limited to operation in favorable solar conditions, such as the long days and short nights of summer at higher latitudes. Energy storage system specific energy and solar cell efficiency were found to be the key technology areas for enhancing HTA SR performance.
机译:这项研究的目的是为两个对飞行有用的任务(飓风科学和通信中继)开发各种高空长期耐力(HALE)无人机(UAV)概念设计,并比较其性能和成本特性。最初开发了16种潜在的HALE无人机配置,包括重于空气(HTA)和轻于空气(LTA)概念以及可消耗燃料和太阳能再生(SR)推进系统。通过备选方案分析(AoA)向下选择过程,选择了两种主要的消耗性燃料配置(分别来自HTA和LTA备选方案)和HTA SR配置进行进一步分析。对可消耗燃料配置的成本效益分析表明,仅最大程度地提高车辆的耐久性会导致次优系统解决方案。带有混合推进系统(太阳能阵列和氢-空气质子交换膜燃料电池)的LTA概念被发现具有最佳的任务性能。但是,由于LTA概念的体积较大且存在技术风险,因此HTA柴油机翼尾翼配置已成为首选的消耗性燃料概念。即使最好的HTA SR概念也无法执行基准任务。进行了任务和SR技术贸易研究,以加深对此类车辆潜在能力的了解。借助近期技术,由SR供电的HTA车辆只能在有利的太阳能条件下运行,例如在纬度较高的夏季,白天较长或夜晚较短。储能系统的特定能量和太阳能电池效率是增强HTA SR性能的关键技术领域。

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