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Magnetic Circuit of a High-Voltage Transformer up to 10 kHz

机译:高达10 kHz的高压变压器的磁路

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Power and energy measurements in smart grids require a measurement system capable of performing signal processing at the higher harmonic frequencies that are present in power grids. For the calibration process of instrument voltage transformers, or high-voltage dividers, it is necessary to have a high-voltage source with an appropriate frequency range. The fundamental element of such a source is the output high-voltage transformer operating at a nominal voltage of 10 kV and in the frequency range from 200 Hz up to 10 kHz. The output current is assumed to be lower than 20 mA. This paper focuses on the design and realization of the magnetic circuit of the transformer described above. Trafoperm, ferrite or nanocrystalline materials can be used for the frequency range considered here. Ferrite materials usually reach saturation at a magnetic flux density of 0.2 T with very low permeability values, while trafoperm material usually suffers from unacceptable power losses in higher frequency areas. This is the main reason why these materials are not suitable for use in a wide range of frequencies, and some combined magnetic cores must be used. The proposed solution is based on magnetic cut C type cores made from nanocrystalline alloy (VITROPERM 500), which behaves better in the frequency range under consideration. The magnetic parameters of this material were measured and compared with trafoperm, and then, the 10 kV high-voltage transformer was designed and manufactured.
机译:智能电网中的功率和能量测量需要一种能够以电网中存在的较高谐波频率执行信号处理的测量系统。在仪表电压互感器或高压分压器的校准过程中,必须具有适当频率范围的高压电源。这种电源的基本要素是输出高压变压器,其工作电压为10 kV的额定电压,频率范围为200 Hz至10 kHz。假设输出电流低于20 mA。本文着重于上述变压器磁路的设计和实现。 Trafoperm,铁氧体或纳米晶体材料可用于此处考虑的频率范围。铁氧体材料通常在磁通密度为0.2 T且磁导率值非常低的情况下达到饱和,而磁通材料通常在高频区域遭受不可接受的功率损耗。这是这些材料不适合在宽频率范围内使用并且必须使用某些组合磁芯的主要原因。所提出的解决方案基于由纳米晶合金(VITROPERM 500)制成的C型磁切割磁芯,该磁芯在所考虑的频率范围内表现更好。测量了该材料的磁参数,并将其与trafoperm进行了比较,然后设计制造了10 kV高压变压器。

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