TY - GEN
T1 - Estimation on location of subsonic aerodynamic center for tandem airfoil configuration or multiple-lifting-surface system
AU - Hao, Cheng
AU - Hua, Wang
AU - Feng, Cheng
N1 - Publisher Copyright:
© 2017 IEEE.
PY - 2017/7/2
Y1 - 2017/7/2
N2 - With the effect of the aerodynamic interaction between lifting surfaces, the position of the airfoils' subsonic aerodynamic center will deviate from the quarter chord, so as to that of the whole aircraft. A method to estimate the location of subsonic aerodynamic center for tandem airfoil configuration or multiple-lifting-surface system is presented, which applies the increments of the aerodynamic force caused by the small change in angle of attack combined with the aerodynamic interaction between lifting surfaces. To simplify the calculation, the traditional approximation and the Taylors expansion are used. A series of tandem airfoil configurations with different parameters, such as the horizontal distance, the vertical distance, the incidence angle and the wingspan, are calculated by computational fluid dynamics and Prandtls lifting-line theory. The results indicate that the aerodynamic center are significantly influenced by the aerodynamic interaction between the two lifting surfaces. In the tandem airfoil configuration with the bigger horizontal distance, the negative vertical distance, the negative incidence angle and the smaller wingspan of the canard, the position of aerodynamic center is closer to the point without aerodynamic interaction.
AB - With the effect of the aerodynamic interaction between lifting surfaces, the position of the airfoils' subsonic aerodynamic center will deviate from the quarter chord, so as to that of the whole aircraft. A method to estimate the location of subsonic aerodynamic center for tandem airfoil configuration or multiple-lifting-surface system is presented, which applies the increments of the aerodynamic force caused by the small change in angle of attack combined with the aerodynamic interaction between lifting surfaces. To simplify the calculation, the traditional approximation and the Taylors expansion are used. A series of tandem airfoil configurations with different parameters, such as the horizontal distance, the vertical distance, the incidence angle and the wingspan, are calculated by computational fluid dynamics and Prandtls lifting-line theory. The results indicate that the aerodynamic center are significantly influenced by the aerodynamic interaction between the two lifting surfaces. In the tandem airfoil configuration with the bigger horizontal distance, the negative vertical distance, the negative incidence angle and the smaller wingspan of the canard, the position of aerodynamic center is closer to the point without aerodynamic interaction.
KW - aerodynamic center
KW - lifting-line theory
KW - multiple-lifting-surface system
KW - tandem airfoil configuration
UR - https://www.scopus.com/pages/publications/85050883991
U2 - 10.1109/ICUS.2017.8278364
DO - 10.1109/ICUS.2017.8278364
M3 - 会议稿件
AN - SCOPUS:85050883991
T3 - Proceedings of 2017 IEEE International Conference on Unmanned Systems, ICUS 2017
SP - 331
EP - 336
BT - Proceedings of 2017 IEEE International Conference on Unmanned Systems, ICUS 2017
A2 - Xu, Xin
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2017 IEEE International Conference on Unmanned Systems, ICUS 2017
Y2 - 27 October 2017 through 29 October 2017
ER -