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The Effects of Nonlinear Bending Stiffness on the Flutter Speed and Pitch Motion of UAV with High Aspect Ratio

机译:非线性弯曲刚度对高宽高比扑振速度和间距运动的影响

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A nonlinear finite element incorporated with the Von Karman strains is used to simulate the pitching, bending and vertical motions of an UAV subjected to air flow circulation around the high aspect ratio wing. The Hopf bifurcation is used to determine the Eigen value at flutter speed for each of vibration amplitude. The nonlinear bending stiffness will decrease the flutter speed, and shift the energy from the vertical and bending modes to the pitching mode at flutter speed. The increased pitching amplitude will shift the resultant of lift force outboard of wing and instantly reincrease the wing tip deflection, which accounts for the persistent high dihedral during the continuous turbulent flow period. The increase of the vibration amplitude per unit height of dihedral becomes more pronounced for higher vibration amplitude. As pitch mode become more dominated for higher nonlinear bending stiffness, a growing dihedral will result in a divergent pitching motion.
机译:包含与Von Karman菌株的非线性有限元件用于模拟围绕高纵横比翼进行空气流动循环的无人机的俯仰,弯曲和垂直运动。 Hopf分叉分叉用于针对每个振动幅度确定颤振速度的特征值。非线性弯曲刚度将降低颤振速度,并以颤秒将能量从垂直和弯曲模式移动到俯仰模式。增加的俯仰幅度将换档机翼升力舷外的所合成的升力,并立即再释放翼尖偏转,这在连续湍流流动时段期间占持续高二面体的翼尖偏转。对于较高的振动幅度,每单位单位高度的振动幅度的增加变得更加明显。由于俯仰模式变得更加主导,对于更高的非线性弯曲刚度,生长的二面向运动将导致发散的俯仰运动。

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