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Implementation of conduction and polarization mechanisms in transient FEM simulations of HVDC insulation systems

机译:高压直流输电绝缘系统瞬态有限元模拟中传导和极化机制的实现

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The calculation of electrical field distributions in insulation systems for high voltage direct current (HVDC) transmission using the finite element method (FEM) usually only considers the dielectric properties in the form of permittivities and conductivities. Due to not sufficiently well simulated transient processes, state of the art is considering the polarization processes by equivalent network models. The application and implementation of polarization mechanisms in a FEM software closes this gap and allows calculating the electric field distribution more precisely. An implementation of additional differential equations, according to the RC-network model, describing the field dependent polarization mechanisms, are complementing the displacement and conduction current. Material equations and their parameters are determined by measuring the polarization and depolarization currents (PDC). These equations are necessary for both the RC-network models and the differential equations for the FEM. They can be adapted to the actual temperatures in the insulation system. Hence, the necessarily multidimensional electric field calculations of complex insulation systems with stationary or transient temperature-gradients are possible. The described calculation method is verified by reactionless fieldmill voltmeter measurements of transient voltage profiles at the grading foils of modified high voltage DC-bushings. A better accuracy is achieved for the simulation of transient and stationary potential distributions.
机译:使用有限元方法(FEM)的高压直流(HVDC)传输的绝缘系统中的电场分布的计算通常仅考虑允许兴高率和电导率的形式的电介质特性。由于模拟瞬态过程不足,所以最先进的是通过等效网络模型考虑偏振过程。 PEM软件中的偏振机制的应用和实现关闭了这种间隙,并更精确地计算电场分布。根据RC网络模型的额外微分方程的实现,描述了现场相关偏振机制的互补偏振机制,是补充位移和导通电流。通过测量偏振和去极电流(PDC)来确定材料方程及其参数。对于FER的RC网络模型和微分方程,这些方程是必要的。它们可以适应绝缘系统中的实际温度。因此,可以具有固定或瞬态温度梯度的复杂绝缘系统的必然多维电场计算。通过改进的高压DC衬套的分级箔处的瞬态电压型材的无效场所电压表测量来验证所描述的计算方法。实现瞬态和固定电位分布的仿真更好的精度。

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