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Thermally-Compensated Magnetic Core Loss Model for Time-Domain Simulations of Electrical Circuits

机译:电路时域模拟的热补偿磁芯损耗模型

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This article introduces a thermally-compensated magnetic hysteresis model, capable of accurately determining core losses of ferrite materials while accounting for core temperature variations. The employed model is based on permeance-capacitance analogy and it captures the frequency-independent hysteresis effect with the help of the Preisach model. For validation purposes, a 100 kW, 10 kHz realized medium frequency transformer prototype is selected and modeled as a part of a full-bridge LLC resonant converter in a time-domain simulation environment. Conducted simulations show the ability of the thermally-compensated magnetic hysteresis model to impact the generated core losses for core temperatures of up to 120 degrees C. Finally, a temperature-feedback loop within the transformer is successfully closed inside of a system-level simulation, allowing for a more precise determination of the core and winding steady-state temperatures.
机译:本文介绍了一种热补偿磁滞模型,能够准确地确定铁氧体材料的核心损耗,同时核算核心温度变化。所使用的模型基于渗透电容类比,并且它在Preisach模型的帮助下捕获频率无关的滞后效果。为了验证目的,选择100kW,10 kHz实现的中变频器原型,并在时域仿真环境中作为全桥LLC谐振转换器的一部分建模。进行了仿真显示了热补偿磁滞模型对核心温度的产生高达120℃的产生的能力。最后,变压器内的温度反馈回路在系统级仿真内成功关闭,允许更精确地确定芯和绕组稳态温度。

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