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Nonlinear Dynamic Analysis of High-Voltage Overhead Transmission Lines

机译:高压架空输电线路的非线性动力学分析

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According to a generalized Hamilton’s principle, three-dimensional (3D) nonlinear vibration equations for overhead transmission lines that consider geometric nonlinearity are established. Based on the characteristics of an actual transmission line, the 3D equations are simplified to two-dimensional equations, and the nonlinear vibration behavior of transmission lines is investigated by combining theoretical analysis with numerical simulation. The results show that transmission lines have inherently nonlinear vibration characteristics. When in free vibration, a transmission line can undergo nonlinear internal resonance, even when its initial out-of-plane energy is relatively low; as its initial out-of-plane energy increases, the coupling of in-plane and out-of-plane vibration becomes stronger. When forced to vibrate by an external excitation, due to the combined action of internal and primary resonance, the vibration energy of a transmission line transfers from the out-of-plane direction to the in-plane direction that is not directly under the excitation, resulting in an increase in the dynamic tension and the displacement amplitude of the transmission line. Increasing damping can consume the vibration energy of a transmission line but cannot prevent the occurrence of internal resonance.
机译:根据广义汉密尔顿原理,建立了考虑几何非线性的架空输电线路的三维(3D)非线性振动方程。根据实际传输线的特性,将3D方程简化为二维方程,并将理论分析与数值模拟相结合,研究了传输线的非线性振动行为。结果表明,传输线具有固有的非线性振动特性。当处于自由振动状态时,即使传输线的初始面外能量较低,传输线也会发生非线性内部共振。随着初始平面外能量的增加,平面内和平面外振动的耦合变得更强。当由于外部和外部共振而被迫振动时,由于内部和初级共振的共同作用,传输线的振动能量会从平面外方向传递到不在激励之下的平面内方向,导致传输线的动态张力和位移幅度增加。增大阻尼会消耗传输线的振动能量,但无法防止内部共振的发生。

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