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Supercapacitor assisted surge absorber (SCASA) technique: Selection of supercapacitor and magnetic components

机译:超级电容器辅助浪涌吸收器(SCASA)技术:超级电容器和磁性组件的选择

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Compared to typical non-linear devices (NLD) used in surge protection circuits, which have energy absorption ratings applicable to milliseconds order durations, current supercapacitor families have large continuous energy storage capabilities. Based on the transient absorption properties of supercapacitors, confirmed in recent investigations, a supercapacitor based surge energy absorption technique was developed by combining a multi-winding magnetic component with a typical NLD in a novel configuration. This paper presents an overview of new technique known as the supercapacitor assisted surge absorbers (SCASA) and its basis for selecting the magnetic core required and the supercapacitor sub-circuit effectively, with experimental results generated using a lightning surge simulator with surge capability up to 6.6 kV. Selection of the magnetic core is critical for the success of the technique, since the combination of the leakage and magnetizing components of the multi-winding magnetic core plays a dominant role. Overall performance of the SCASA technique with optimized magnetics is compared with a typical commercially available surge protector, which is practically used to safeguard electronic systems against transient over-voltage related power quality issues.
机译:与浪涌保护电路中使用的典型非线性器件(NLD)的能量吸收额定值适用于毫秒量级的持续时间相比,当前的超级电容器系列具有较大的连续能量存储能力。基于超级电容器的瞬态吸收特性(在最近的研究中得到证实),通过将多绕组磁性组件与典型NLD以新颖的配置相结合,开发了一种基于超级电容器的浪涌能量吸收技术。本文概述了称为超级电容器辅助浪涌吸收器(SCASA)的新技术及其有效选择所需磁芯和超级电容器子电路的基础,并使用浪涌能力高达6.6的雷电浪涌模拟器生成了实验结果千伏。磁芯的选择对于该技术的成功至关重要,因为多绕组磁芯的泄漏和磁化成分的组合起着主导作用。将具有优化磁性的SCASA技术的整体性能与典型的市售电涌保护器进行了比较,该电涌保护器实际上用于保护电子系统免受与瞬态过电压有关的电能质量问题的影响。

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