火星栖息地的机载风能和光伏能源组合系统

Lora Ouroumova, D. Witte, B. Klootwijk, Esm'ee Terwindt, Francesca van Marion, Dmitrij Mordasov, F. Vargas, Siri Heidweiller, M'arton G'eczi, Marcel Kempers, R. Schmehl
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引用次数: 1

摘要

在火星上生产可再生能源在技术上具有挑战性。首先,因为与地球相比,由于大气压力非常低,太阳辐射也很低,太阳能和风能等关键能源很弱。其次,由于恶劣的环境条件,需要高度自动化,以及将材料运送到地球所涉及的特殊努力和成本。就像在地球上一样,将互补资源结合起来,形成有效的可再生能源解决方案至关重要。在这项工作中,我们展示了一个设计综合练习的结果,一个10千瓦的微电网解决方案,基于泵送风筝电力系统和光伏太阳能模块,为火星栖息地的建设和后续使用提供动力。为了缓冲不可避免的能量波动,平衡季节性和日间的资源变化,两个能源系统结合了压缩气体储存系统和锂硫电池。选择机载风能解决方案是因为其重量与机翼表面积比低,包装体积紧凑,容量系数高,使其能够在空中停车模式下承受强沙尘暴。膜翼的表面积为50平方米,整个系统的质量,包括风筝控制单元和地面站,为290公斤。利用火星上选定的部署位置的可用资源数据,通过计算模拟评估了微电网的性能。该系统的预计成本为895万欧元,不包括前往火星的运输费用。
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Combined Airborne Wind and Photovoltaic Energy System for Martian Habitats
Generating renewable energy on Mars is technologically challenging. Firstly, because, compared to Earth, key energy resources such as solar and wind are weak as a result of very low atmospheric pressure and low solar irradiation. Secondly, because of the harsh environmental conditions, the required high degree of automation, and the exceptional effort and cost involved in transporting material to the planet. Like on Earth, it is crucial to combine complementary resources for an effective renewable energy solution. In this work, we present the results of a design synthesis exercise, a 10 kW microgrid solution, based on a pumping kite power system and photovoltaic solar modules to power the construction and subsequent use of a Mars habitat. To buffer unavoidable energy fluctuations and balance seasonal and diurnal resource variations, the two energy systems are combined with a compressed gas storage system and lithium-sulphur batteries. The airborne wind energy solution was selected because of its low weight-to-wing-surface-area ratio, compact packing volume, and high capacity factor which enables it to endure strong dust storms in an airborne parking mode. The surface area of the membrane wing is 50 m2 and the mass of the entire system, including the kite control unit and ground station, is 290 kg. The performance of the microgrid was assessed by computational simulation using available resource data for a chosen deployment location on Mars. The projected costs of the system are €8.95 million, excluding transportation to Mars.
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