TY - JOUR
T1 - Exploring optimum power unit of propulsion system for high altitude airship
AU - Chen, Shengqi
AU - Song, Bifeng
AU - Wang, Haifeng
N1 - Publisher Copyright:
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PY - 2015/2/17
Y1 - 2015/2/17
N2 - Different schemes of a propulsion system have a distinguished influence on the overall performance of high altitude airship. There is an optimum power, called optimum power unit, to achieve the lowest propulsion system and energy system weight for a high altitude airship. The paper represents an optimization model of the optimum power unit for a high altitude airship. Firstly, the optimal Latin hypercube design method is applied to obtain the sample points of the distributed low power propulsion system. Secondly, the surrogate model, which is used to establish the optimization model, is obtained by responding surface method based on these sample points. The computational model of the energy system is obtained by the airship's location and the working time. Finally, the multi-island genetic algorithm is used to find the optimum power unit for a typical high altitude airship. Furthermore, the optimization work under different typical power levels and diameters is carried out to verify the effectiveness of the optimum power unit design method. It has been found that the identical result validates the effectiveness of the optimum power unit design method.
AB - Different schemes of a propulsion system have a distinguished influence on the overall performance of high altitude airship. There is an optimum power, called optimum power unit, to achieve the lowest propulsion system and energy system weight for a high altitude airship. The paper represents an optimization model of the optimum power unit for a high altitude airship. Firstly, the optimal Latin hypercube design method is applied to obtain the sample points of the distributed low power propulsion system. Secondly, the surrogate model, which is used to establish the optimization model, is obtained by responding surface method based on these sample points. The computational model of the energy system is obtained by the airship's location and the working time. Finally, the multi-island genetic algorithm is used to find the optimum power unit for a typical high altitude airship. Furthermore, the optimization work under different typical power levels and diameters is carried out to verify the effectiveness of the optimum power unit design method. It has been found that the identical result validates the effectiveness of the optimum power unit design method.
KW - energy system
KW - High altitude airship
KW - multi-island genetic algorithm
KW - optimum power unit
KW - propeller propulsion system
KW - surrogate model
UR - http://www.scopus.com/inward/record.url?scp=84920984101&partnerID=8YFLogxK
U2 - 10.1177/0954410014531741
DO - 10.1177/0954410014531741
M3 - 文章
AN - SCOPUS:84920984101
SN - 0954-4100
VL - 229
SP - 301
EP - 311
JO - Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering
JF - Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering
IS - 2
ER -