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Harmonic-by-harmonic time delay compensation Method for PHIL simulation of low impedance power systems

机译:低阻抗电力系统PHIL仿真的谐波谐波时延补偿方法

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摘要

In PHIL simulations different time delays are introduced. Although it can be reduced, there is always some time delay. As a consequence, when the device under test is part of a low impedance power system such as: microgrids, marine or aero power systems, the simulation process becomes challenging due to the poor accuracy of the results achieved by the introduction of the time delay. Therefore, in order to accurately compensate for the inherent time delay introduced in Power Hardware in the Loop (PHIL) simulations, a method based on phase-shifting the reference voltage signal harmonic-by-harmonic and phase-by-phase is proposed. In this manner the time delay compensation will not affect to the system topology and therefore the dynamic behaviour of the original system will stay as it originally was in terms of power angles and V-I phase relationships for all the harmonics processed. In this paper, an experiment where the reference voltage is altered with 5th and 7th harmonics shows that the accuracy of PHIL simulations after the application of this compensation method is greatly improved compared with traditional methods. As a result, low impedance power systems are now able to experience an accurate PHIL simulation.
机译:在PHIL仿真中,引入了不同的时间延迟。尽管可以减少时间,但总会有一些时间延迟。结果,当被测设备是低阻抗电源系统(例如:微电网,船舶或航空电源系统)的一部分时,由于引入了时间延迟而导致结果的准确性较差,因此仿真过程变得充满挑战。因此,为了准确补偿电源硬件在环路(PHIL)仿真中引入的固有时间延迟,提出了一种基于基准电压信号逐谐波和逐相移相的方法。以这种方式,时间延迟补偿将不会影响系统拓扑结构,因此原始系统的动态行为将保持原状,即对于所有处理的谐波而言,其功率角和V-I相位关系均与原始系统相同。在本文中,对参考电压进行了5次和7次谐波改变的实验表明,与传统方法相比,应用此补偿方法后PHIL仿真的精度大大提高了。结果,低阻抗电源系统现在能够进行精确的PHIL仿真。

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