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Combined Torsional-Bending- Axial Dynamics of a Twisted Rotating Cantilever Timoshenko Beam With Contact-Impact Loads at the Free End

机译:扭转旋转悬臂Timoshenko梁在自由端具有接触冲击载荷的组合扭转弯曲轴向动力学

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In this paper, consideration is given to the dynamic response of a rotating cantilever twisted and inclined airfoil blade subjected to contact loads at the free end. Starting with the basic geometrical relations and energy formulation for a rotating Timoshenko beam constrained at the hub in a centrifugal force field, a system of coupled partial differential equations are derived for the combined axial, lateral and twisting motions which includes the transverse shear, rotary inertia, and Coriolis effects, as well. In the mathematical formulation, the torsion of the thin airfoil also considers a very general case of shear center not being coincident with the CG (center of gravity) of the cross section, which allows the equations to be used also for analyzing eccentric tip-rub loading of the blade. Equations are presented in terms of axial load along the longitudinal direction of the beam which enables us to solve the dynamic pulse buckling due to the tip being loaded in the longitudinal as well as transverse directions of the beam column. The Rayleigh-Ritz method is used to convert the set of four coupled-partial differential equations into equivalent classical mass, stiffness, damping, and gyroscopic matrices. Natural frequencies are computed for beams with varying "slenderness ratio" and "aspect ratio" as well as "twist angles. " Dynamical equations account for the full coupling effect of the transverse flexural motion of the beam with the torsional and axial motions due to pretwist in the airfoil. Some transient dynamic responses of a rotating beam repeatedly rubbing against the outer casing is shown for a typical airfoil with and without a pretwist.
机译:在本文中,考虑了旋转悬臂扭曲倾斜的翼型叶片在自由端承受接触载荷的动力响应。从在离心力场中约束在轮毂上的旋转Timoshenko梁的基本几何关系和能量公式开始,导出了耦合的局部微分方程组,用于组合的轴向,横向和扭曲运动,包括横向剪切,旋转惯性,以及科里奥利效果。在数学公式中,薄翼型的扭转还考虑了剪切中心与横截面的CG(重心)不一致的非常普遍的情况,这使得该方程式也可以用于分析偏心叶轮刀片的加载。沿梁的纵向方向的轴向载荷表示方程,这使我们能够解决由于尖端沿梁柱的纵向和横向方向加载而引起的动态脉冲屈曲。 Rayleigh-Ritz方法用于将四个耦合偏微分方程组转换为等效的经典质量,刚度,阻尼和陀螺矩阵。计算具有变化的“细长比”和“纵横比”以及“扭转角”的梁的固有频率。动力学方程解释了梁的横向弯曲运动与预扭转引起的扭转和轴向运动的完全耦合效应。在机翼上。对于带有和不带有预绕的典型机翼,显示了反复摩擦外壳的旋转梁的一些瞬态动力响应。

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