首页> 外文期刊>IEEE Transactions on Power Electronics >Three-Phase Boost-Type Grid-Connected Inverter
【24h】

Three-Phase Boost-Type Grid-Connected Inverter

机译:三相升压型并网逆变器

获取原文
获取原文并翻译 | 示例
       

摘要

Alternative energy sources, such as solar energy and fuel cells, are desirable due to their pollution-free property. In order to utilize the present infrastructure of the utility grid for power transmission and distribution, grid-connected dc-to-ac inverters are required for alternative energy source power generation. For many of these applications, the input dc voltage is usually below peak voltage of the output and may vary in a wide range. Thus single-stage buck-type inverters may not be adequate, since they have very limited input voltage range and require the input dc voltage to be higher than the peak of the output voltage. For this reason, two-power-stage topologies, cascaded topologies and multilevel topologies are reported for applications where the input voltage is lower than the peak of the output voltage. Typically, one dc–dc power stage is required to boost the dc voltage in addition to an inverter for dc–ac conversion, which yields increased circuitry complexity. One-stage inverters for low dc voltage to high ac voltage conversion have been reported for non-grid-connected inverters based on the topology of a current source inverter. In this paper, the one-cycle control (OCC) method and the pulse width modulation (PWM) method have been proposed for a three-phase boost-type grid-connected inverter. The inverter features a single power stage that converts dc power to grid-connected ac power by injecting three in phase sinusoidal currents into grids, which may reduce power losses and circuit complexity. The input dc voltage is lower than the peak grid voltage and can vary in a wide range, which greatly suits the power conversion from photovoltaic or fuel cells to grid lines. The dc inductance may be kept low because the average dc current is maintained constant in a switching cycle. With the OCC method, the inverter preserves the advantages of simple circuitry, good stability and fast dynamic response and maximum power point tracking-n-n (MPPT) function can be conveniently integrated into the control core. Experiments have been performed with a 1.5-kW laboratory prototype that demonstrated the good performance of the inverter and MPPT function.
机译:由于其无污染的性质,因此需要替代能源,例如太阳能和燃料电池。为了将公用事业电网的当前基础设施用于电力传输和分配,需要电网连接的直流到交流逆变器来替代能源发电。对于许多此类应用,输入直流电压通常低于输出的峰值电压,并且可能会在很宽的范围内变化。因此,单级降压型逆变器可能不够用,因为它们的输入电压范围非常有限,并且要求输入直流电压高于输出电压的峰值。因此,针对输入电压低于输出电压峰值的应用,报告了两级功率级拓扑,级联拓扑和多级拓扑。通常,除了用于DC-AC转换的逆变器外,还需要一个DC-DC功率级来提高DC电压,这会增加电路的复杂性。已经报道了基于电流源逆变器的拓扑结构的用于非并网逆变器的用于从低直流电压到高交流电压的单级逆变器。本文提出了一种三相升压型并网逆变器的单周期控制(OCC)方法和脉宽调制(PWM)方法。逆变器具有单个功率级,可通过向电网注入三相正弦电流将直流功率转换为并网交流功率,从而降低功率损耗和电路复杂性。输入直流电压低于峰值电网电压,并且可以在很宽的范围内变化,这非常适合从光伏或燃料电池到电网的功率转换。由于在开关周期中平均直流电流保持恒定,因此直流电感可以保持较低。使用OCC方法,逆变器保留了电路简单,稳定性好和动态响应快的优点,并且可以将最大功率点跟踪n-n(MPPT)功能方便地集成到控制内核中。用1.5千瓦的实验室原型进行的实验证明了逆变器和MPPT功能的良好性能。

著录项

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