首页> 外文学位 >Hard-switching and soft-switching two-switch flyback PWM DC-DC converters and winding loss due to harmonics in high-frequency transformers .
【24h】

Hard-switching and soft-switching two-switch flyback PWM DC-DC converters and winding loss due to harmonics in high-frequency transformers .

机译:硬开关和软开关两开关反激式PWM DC-DC转换器以及高频变压器中由于谐波引起的绕组损耗。

获取原文
获取原文并翻译 | 示例

摘要

The flyback pulse-width modulated (PWM) DC-DC power converter is a very important circuit in switching mode power supply (SMPS) converters for low power applications. The main drawback of the conventional single-switch flyback converter is the high turn-off voltage stress suffered by the switch. The high voltage transients are caused by the resonant behavior of the transformer leakage inductance and the transistor output capacitance, resulting in ringing superimposed on the steady-state switch voltage level. This requires a transistor with higher voltage rating. However, a transistor with higher voltage rating has higher on-resistance causing higher conduction loss. The high voltage ringing also increases the switching loss. In addition, the switch voltage stress is not easily predictable because it is difficult to determine the magnitude of ringing during the design stage. The two-switch flyback DC-DC converter is an extended version of the single-switch flyback converter. The circuit arrangement with an addition of a power transistor and two clamping diodes to the conventional single-switch flyback converter leads to the two-switch flyback PWM DC-DC converter, which effectively reduces the switch overvoltage and eliminates the uncertainty of its value. The clamping diodes in the two-switch flyback converter clamps the voltage across each switch to the DC input voltage and also provide a path to return most of the energy stored in the transformer leakage inductance to the DC input source.;In the first part of this research, detailed steady-state analyses of the two-switch flyback PWM DC-DC converter for continuous conduction mode (CCM) and discontinuous conduction mode (DCM) are performed. The transistor output capacitance and the transformer leakage inductance are included in the analyses. Design equations for both CCM and DCM operation modes are derived. Furthermore, by incorporating an active clamp circuit into the hard-switching two-switch flyback converter, a new soft-switching two-switch flyback converter, namely, zero-current transition (ZCT) two-switch flyback is proposed. The principle of circuit operation, steady-state analysis, equivalent circuits, converter steady-state waveforms, and design procedure of the proposed ZCT two-switch flyback converter is presented. The key features of the proposed soft-switching converter are (1) the voltage stresses of the main switches are reduced to DC input voltage VI , and (2) all the semiconductor devices are turned off under zero-current (ZC) switching condition. Clamping of the switch overvoltages and reduction in switching loss are achieved in the proposed ZCT two-switch flyback converter. Saber Sketch simulation and experimental results of the hard-switching and the proposed ZCT soft-switching two-switch flyback converters are presented to validate the theoretical analyses.;High frequency (HF) transformers used in PWM converters, such as flyback transformers conduct periodic nonsinusoidal currents, which give rise to additional winding losses due to harmonics. In the second part of this research, a theory is developed to find the harmonic winding loss in an HF transformer conducting periodic nonsinusoidal current. Dowell's equation is used to determine the winding resistances due to eddy currents as a function of frequency. Both skin and proximity effects are taken into account. Fourier series of the primary and secondary current waveforms in a two-winding flyback transformer and the primary and secondary winding resistances are used to determine the primary and secondary winding power losses at various harmonics for both CCM and DCM cases, respectively. The harmonic winding loss factors FRph and FRsh are introduced. The theory is illustrated by the case study of flyback converter for both CCM and DCM operations. Using the equations developed to find the winding losses due to harmonics, detailed methodology and step-by-step procedures to design two-winding flyback transformers for CCM and DCM operations, respectively, are given. Examples illustrating the design of two-winding flyback transformer for CCM and DCM operations are presented. Computed characteristics of the designed flyback transformer for a wide range of operating conditions of the flyback converter in CCM and DCM modes are presented.
机译:反激式脉宽调制(PWM)DC-DC电源转换器是用于低功耗应用的开关电源(SMPS)转换器中非常重要的电路。传统的单开关反激转换器的主要缺点是开关承受高的关断电压应力。高电压瞬变是由变压器漏感和晶体管输出电容的谐振行为引起的,从而导致振铃叠加在稳态开关电压电平上。这需要额定电压更高的晶体管。然而,具有较高额定电压的晶体管具有较高的导通电阻,从而导致较高的导通损耗。高压振铃还会增加开关损耗。另外,开关电压应力不容易预测,因为在设计阶段很难确定振铃的幅度。两开关反激式DC-DC转换器是单开关反激式转换器的扩展版本。在传统的单开关反激式转换器上增加一个功率晶体管和两个钳位二极管的电路布置导致了两开关反激式PWM DC-DC转换器,从而有效地降低了开关过电压并消除了其值的不确定性。双开关反激转换器中的钳位二极管将每个开关两端的电压钳位到DC输入电压,并且还提供一条路径,将存储在变压器漏感中的大部分能量返回到DC输入源。本研究对连续导通模式(CCM)和不连续导通模式(DCM)的双开关反激式PWM DC-DC转换器进行了详细的稳态分析。分析中包括晶体管输出电容和变压器漏感。推导了CCM和DCM操作模式的设计方程式。此外,通过将有源钳位电路结合到硬开关两开关反激式转换器中,提出了一种新的软开关两开关反激式转换器,即零电流转换(ZCT)两开关反激式。介绍了所提出的ZCT两开关反激式转换器的电路工作原理,稳态分析,等效电路,转换器稳态波形以及设计程序。所提出的软开关转换器的关键特征是:(1)将主开关的电压应力减小到直流输入电压VI;(2)在零电流(ZC)开关条件下,所有半导体器件都关闭。所提出的ZCT两开关反激式转换器实现了钳位开关过电压的钳位和开关损耗的降低。提出了Saber Sketch仿真以及硬开关和拟议中的ZCT软开关两开关反激式转换器的实验结果,以验证理论分析。; PWM转换器中使用的高频(HF)变压器,例如反激式变压器进行周期性的非正弦波电流,由于谐波会引起额外的绕组损耗。在本研究的第二部分中,发展了一种理论来寻找传导周期性非正弦电流的HF变压器中的谐波绕组损耗。 Dowell方程用于确定由于涡流引起的绕组电阻与频率的关系。皮肤和邻近效应都被考虑在内。在双绕组反激式变压器中,初级和次级电流波形的傅立叶级数以及初级和次级绕组电阻分别用于确定CCM和DCM情况下各种谐波下的初级和次级绕组功率损耗。介绍了谐波绕组损耗因子FRph和FRsh。反激转换器针对CCM和DCM操作的案例研究说明了该理论。使用开发出的方程式来查找由于谐波引起的绕组损耗,给出了分别设计用于CCM和DCM操作的两绕组反激式变压器的详细方法和分步程序。给出了说明用于CCM和DCM操作的双绕组反激式变压器设计的示例。给出了在CCM和DCM模式下针对反激转换器的广泛工作条件而设计的反激变压器的计算特性。

著录项

  • 作者

    Bellur, Dakshina Murthy.;

  • 作者单位

    Wright State University.;

  • 授予单位 Wright State University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 164 p.
  • 总页数 164
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号