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Pulse Magnetic Properties Measurement and Characterization of Fe-Based Nanocrystalline Cores for High-Voltage Pulse Magnetics Applications

机译:高压脉冲磁应用的铁基纳米晶核的脉冲磁性能测量和表征

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摘要

Fe-based nanocrystalline (FE-N) cores are widely used in power electronics and pulsed power applications. In pulsed power applications, it always requires high excitation current (up to tens of kiloampere) to excite large-volume cores (up to hundreds of cubic centimeter) with fewer number of winding turns, and it is hard to use the traditional test scheme to obtain the pulse magnetic properties in this case. The principles and scopes for the application of pulse magnetic properties measurement circuits, including the single-winding test circuit and double-winding test circuit, are analyzed and presented. Although the double-winding test circuit is classical to test the hysteresis loop, the single-winding test circuit is not totally useless in some cases. Based on the double-winding test circuit, the initial magnetization curves and maximum hysteresis loops of toroidal FE-N cores with high and low remanence are obtained under a relative constant magnetization rate with the order of 0.7–7 T/μs, and an equivalent frequency from 49 to 650 kHz. The unsaturated permeability is calculated based on the experimental results and fitted with the magnetization rate. The loss densities and permeability are fitted and compared. A design procedure of the saturable pulse transformer is illustrated for the application of the testing results. It is proved that the initial energy loss and unsaturated permeability are used for the design of the pulse transformer, and the traditional core loss is suitable for the estimation of power loss under the repetitive operation condition.
机译:铁基纳米晶体(FE-N)芯广泛用于电力电子和脉冲功率应用。在脉冲功率应用中,总是需要高励磁电流(高达数十千安培)来以更少的绕组匝数来激发大容量的磁芯(高达数百立方厘米),并且很难使用传统的测试方案来在这种情况下获得脉冲磁性能。分析并提出了脉冲磁特性测量电路的原理和适用范围,包括单绕组测试电路和双绕组测试电路。尽管双绕组测试电路是测试磁滞回路的经典方法,但在某些情况下,单绕组测试电路并非完全没有用。在双绕组测试电路的基础上,以0.7–7 T /μs的相对恒定磁化率获得了具有高和低剩磁的环形FE-N磁芯的初始磁化曲线和最大磁滞回线,等效频率从49到650 kHz。根据实验结果计算出不饱和磁导率,并与磁化率拟合。拟合并比较了损耗密度和磁导率。举例说明了可饱和脉冲变压器的设计程序,以用于测试结果的应用。实践证明,脉冲变压器的设计采用了初始能量损耗和不饱和磁导率,而传统的铁芯损耗适合于重复运行条件下的功率损耗估算。

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