TY - GEN
T1 - Airfoil Optimization of Wing-in-Ground Craft Considering Anti-waves Ability
AU - Wang, Yiheng
AU - Song, Wenping
AU - Song, Jiahui
AU - Han, Shaoqiang
AU - Han, Zhonghua
N1 - Publisher Copyright:
© The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd. 2024.
PY - 2024
Y1 - 2024
N2 - The WIG (Wing-in-Ground) craft is a novel vehicle that makes use of the ground effect to realize cruising above the water. Under the influence of ocean waves, the wing may experience lift oscillation, posing a risk to its flight safety. However, there are few researches on aerodynamic design of WIG crafts considering lift oscillation. The objective of this paper is to explore the main factors affecting the lift oscillation of WIG airfoil, find out a way to reduce the lift oscillation, and then carry out the airfoil design optimization to achieve the maximization of lift and minimization of drag, subject to the constraints of lift oscillation. First, simulation of a NACA23012 airfoil using the Volume of Fluid (VOF) method is used to simulate the periodically fluctuating water surface. An efficient global surrogate-based optimization algorithm is used for low lift oscillation design to improve anti-waves ability. Result shows that the leading edge of the upper surface has a major impact on the lift oscillation. The optimized airfoil obtains a 12% reduction in lift oscillation by reducing the strength of the low-pressure area at the leading edge. Second, on the basis of above research, the airfoil design subject to lift oscillation constraint is carried out to increase lift and reduce drag. The results show that the strength of the low-pressure area of the optimized airfoil is reduced, and the designed airfoil achieves 8.4% increase in lift-to-drag ratio as well as 8.5% reduction in lift oscillation, compared to the baseline airfoil.
AB - The WIG (Wing-in-Ground) craft is a novel vehicle that makes use of the ground effect to realize cruising above the water. Under the influence of ocean waves, the wing may experience lift oscillation, posing a risk to its flight safety. However, there are few researches on aerodynamic design of WIG crafts considering lift oscillation. The objective of this paper is to explore the main factors affecting the lift oscillation of WIG airfoil, find out a way to reduce the lift oscillation, and then carry out the airfoil design optimization to achieve the maximization of lift and minimization of drag, subject to the constraints of lift oscillation. First, simulation of a NACA23012 airfoil using the Volume of Fluid (VOF) method is used to simulate the periodically fluctuating water surface. An efficient global surrogate-based optimization algorithm is used for low lift oscillation design to improve anti-waves ability. Result shows that the leading edge of the upper surface has a major impact on the lift oscillation. The optimized airfoil obtains a 12% reduction in lift oscillation by reducing the strength of the low-pressure area at the leading edge. Second, on the basis of above research, the airfoil design subject to lift oscillation constraint is carried out to increase lift and reduce drag. The results show that the strength of the low-pressure area of the optimized airfoil is reduced, and the designed airfoil achieves 8.4% increase in lift-to-drag ratio as well as 8.5% reduction in lift oscillation, compared to the baseline airfoil.
KW - Airfoil Design Optimization
KW - Anti-waves Ability
KW - Global Surrogate-based Optimization
KW - Lift Oscillation
KW - Wing-in-Ground Craft
UR - http://www.scopus.com/inward/record.url?scp=85200512211&partnerID=8YFLogxK
U2 - 10.1007/978-981-97-4010-9_76
DO - 10.1007/978-981-97-4010-9_76
M3 - 会议稿件
AN - SCOPUS:85200512211
SN - 9789819740093
T3 - Lecture Notes in Electrical Engineering
SP - 987
EP - 998
BT - 2023 Asia-Pacific International Symposium on Aerospace Technology, APISAT 2023, Proceedings - Volume II
A2 - Fu, Song
PB - Springer Science and Business Media Deutschland GmbH
T2 - Asia-Pacific International Symposium on Aerospace Technology, APISAT 2023
Y2 - 16 October 2023 through 18 October 2023
ER -