首页> 外文会议>2013 IEEE Energy Conversion Congress amp; Exposition >Analysis of grid current control in consideration of voltage feedforward and cable capacitance demonstrated on a fully sized wind turbine installed in a wind park
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Analysis of grid current control in consideration of voltage feedforward and cable capacitance demonstrated on a fully sized wind turbine installed in a wind park

机译:考虑到电压前馈和电缆电容的电网电流控制分析在风电场中安装的全尺寸风力涡轮机上进行了演示

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Before commissioning grid side converters of wind turbines, their behaviour is often validated by computer simulation. In simulation models, the grid coupling is usually modelled as inductance, resistance and ideal voltage source. The current controller is typically designed assuming that the grid influence is perfectly compensated by a voltage feedforward. In this paper it is shown that these two assumptions are under some conditions too rough and can hide oscillatory behaviour due to the following reasons. In reality the grid impedance is the result of the layout of the grid, having multiple resonances and varying with load and time. Furthermore, the voltage feedforward of the grid side current control is filtered and discrete (converter switching frequency) and does therefore not guarantee perfect decoupling from the grid situation. In this paper, the effect of imperfect grid voltage compensation is analysed for a 2 MW wind turbine installed in a wind park by using a more complex representation of the grid impedance. It is shown by transfer function analysis and time domain simulation that resonances with the cable capacitance can lead to oscillatory behaviour, although the current control loop shows excellent results when no capacitances are present.
机译:在调试风力涡轮机的电网侧变流器之前,通常通过计算机仿真来验证其行为。在仿真模型中,通常将电网耦合建模为电感,电阻和理想电压源。电流控制器通常在设计时假设电网影响可以通过电压前馈得到完美补偿。本文表明,这两个假设在某些条件下过于粗糙,并且由于以下原因可能掩盖振荡行为。实际上,电网阻抗是电网布局的结果,具有多个谐振并随负载和时间而变化。此外,电网侧电流控制的电压前馈经过滤波和离散(转换器开关频率),因此不能保证与电网状况的完美解耦。在本文中,通过使用电网阻抗的更复杂表示,分析了安装在风电场中的2 MW风力发电机的不完善电网电压补偿的影响。通过传递函数分析和时域仿真表明,尽管在没有电容的情况下电流控制环路显示出优异的结果,但电缆电容的谐振会导致振荡行为。

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