首页> 外文期刊>IEEE transactions on circuits and systems . I , Regular papers >Frequency-Adaptive Network Modeling for Integrative Simulation of Natural and Envelope Waveforms in Power Systems and Circuits
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Frequency-Adaptive Network Modeling for Integrative Simulation of Natural and Envelope Waveforms in Power Systems and Circuits

机译:频率自适应网络建模,用于电力系统和电路中自然波形和包络波形的集成仿真

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Algorithms for the simulation of transients in power electric systems and circuits can be classified into two major categories. For the simulation of diverse transients in ac and dc networks, the algorithms process instantaneous signals in the time domain to track natural waveforms as observed in reality. For the simulation of lower frequency transients that modulate ac carriers in ac networks, algorithms that process phasor signals to track envelope waveforms are popular. The methodology proposed in this paper uses analytic signals to bridge the merits of instantaneous and phasor signals and enable the efficient simulation of both natural and envelope waveforms as well as the smooth transition between both. The key enabling method referred to as frequency-adaptive simulation of transients (FAST) is distinguished by the introduction of the shift frequency as a simulation parameter in addition to the time-step size. This distinguishes the methodology from the known methods of power system and circuit simulation, which only use the setting of the time-step size to adapt the simulation process. By setting the shift frequency to a nonzero value, the Fourier spectra of the analytic signals are shifted and adapted according to the waveform type of interest. This adds value because different types of transients with and without an ac carrier can be simulated efficiently and accurately within one and the same simulation run. To provide compatibility with existing tools, the numerical integration is formulated to model the network branches such that nodal analysis can readily be used to construct the overall network model. Calculations of the accuracy as well as test studies that cover network energization and deenergization, angle modulation, and amplitude modulation substantiate the claims made and demonstrate the application of the methodology
机译:电力电气系统和电路中的瞬态仿真算法可以分为两大类。为了模拟交流和直流网络中的各种瞬态,该算法在时域中处理瞬时信号以跟踪实际观察到的自然波形。为了模拟在交流网络中调制交流载波的低频瞬变,处理相量信号以跟踪包络波形的算法很受欢迎。本文提出的方法使用分析信号来桥接瞬时信号和相量信号的优点,并能够有效模拟自然波形和包络波形以及两者之间的平滑过渡。关键启用方法称为瞬态频率自适应仿真(FAST),其特征在于除时步长外还引入了移位频率作为仿真参数。这使该方法与已知的电力系统和电路仿真方法区别开来,后者仅使用时间步长的设置来适应仿真过程。通过将移位频率设置为非零值,可以根据感兴趣的波形类型对分析信号的傅立叶频谱进行移位和调整。这增加了价值,因为可以在同一模拟运行中高效而准确地模拟带有和不带有交流载波的不同类型的瞬变。为了提供与现有工具的兼容性,对数值积分进行了公式化以对网络分支进行建模,从而可以轻松地使用节点分析来构建整体网络模型。准确性的计算以及涵盖网络通电和断电,角度调制和幅度调制的测试研究证实了所提出的权利要求并证明了该方法的应用

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