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Transformer flux leakage modeling and optimization of contactless power converter with an air gap of 1cm for small power applications

机译:气隙为1cm的非接触式功率转换器的变压器磁通泄漏建模和优化,适用于小功率应用

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DC - DC converter topology with small size, light weight and high conversion efficiency has an increasing demand on small power applications such as mobile phone chargers, robotic chargers and EV systems. Designing techniques to transmit electrical power using specially constructed ferrite cores are already developed to ensure maximum flux linkage. However, particularly while designing chargers for portable and small appliances large size and large volume cores cannot be used as they are inappropriate for the application. Therefore, designing a system with small size, less weight and cheap cost also greatly expected as equal as efficiency for producing an effective converter and to make it fit for a specific application. At the same time, these kinds of compatible cores suffer severely by eddy current loss at high frequency range due to leakage flux. Due to leakage flux, characteristic of the converter system also varies with respect to frequency. Therefore, an efficient trade-off must be carried out while designing a contactless converter system for various compact commercial applications. In this paper, to analyze the effects of leakage flux and its consequences in contactless power converters, the prototype is subjected to experimental analysis. The frequency dependant model of the transformer is presented to realize the consequences of leakage flux by simulation by which the analysis of the converter is carried out. Finally, using a frequency dependant model, the system was optimized by quantitative analysis.
机译:体积小,重量轻且转换效率高的DC-DC转换器拓扑对小功率应用(例如手机充电器,机器人充电器和EV系统)的需求不断增长。已经开发出使用特殊构造的铁氧体磁芯来传输电能的设计技术,以确保最大的磁链。但是,特别是在为便携式和小型设备设计充电器时,不能使用大尺寸和大容量的磁芯,因为它们不适合该应用。因此,也迫切期望设计一种尺寸小,重量轻且价格便宜的系统,该系统与生产有效转换器并使其适合特定应用的效率相同。同时,由于漏磁通,这些兼容的磁芯在高频范围内会受到涡流损耗的严重影响。由于漏磁通,转换器系统的特性也随频率而变化。因此,在设计用于各种紧凑型商业应用的非接触式转换器系统时,必须进行有效的折衷。在本文中,为了分析漏磁通的影响及其在非接触式电源转换器中的后果,对该原型进行了实验分析。提出了一种基于频率的变压器模型,通过仿真来实现漏磁通的后果,并通过仿真对变频器进行了分析。最后,使用频率相关模型,通过定量分析对系统进行了优化。

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