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A Digital Hysteresis Current Controller for Three-Level Neural-Point-Clamped Inverter With Mixed-Levels and Prediction-Based Sampling

机译:具有混合电平和基于预测的采样的三电平神经钳位型逆变器的数字磁滞电流控制器

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摘要

For a grid-tied three-level neural-point-clamped (NPC) inverter, fully digital hysteresis controller with simple variable hysteresis band is insufficient to stabilize switching frequency (). The challenge mainly comes from the restriction of analogue-to-digital converter (ADC) sampling frequency, which leads to inaccurate current-boundary-touching capture. As a result, jitter appears. This phenomena becomes much more serious around grid voltage zero-crossing points due to zero-approaching hysteresis band, where obvious variation happens. To stabilize in a fully digital manner, two techniques are proposed in this paper: the mixed-level scheme and the prediction-based sampling method. The former one is used to cope with the obvious variation around grid voltage zero-crossing points. It switches operating status from three-level state into two-level state around grid voltage zero-crossing points to enlarge the hysteresis band for digital implementation. The latter one is used to resolve jitter. It makes the sampling and switching to happen at the moment of current boundary-touching to achieve the most effective boundary-comparing with the lowest ADC sampling frequency. With these two techniques, of the grid-tied three-level NPC inverter could be well stabilized with a fully digital hysteresis controller, and therefore, high-quality grid-side could be achieved.
机译:对于并网的三级神经网络钳位(NPC)逆变器,具有简单可变磁滞带的全数字磁滞控制器不足以稳定开关频率()。挑战主要来自模数转换器(ADC)采样频率的限制,这会导致不准确的电流边界触摸捕获。结果,出现抖动。由于接近零的磁滞带,这种现象在电网电压过零点附近变得更加严重,发生明显的变化。为了以全数字方式稳定,本文提出了两种技术:混合级别方案和基于预测的采样方法。前者用于应对电网电压过零点附近的明显变化。它在电网电压过零点附近将工作状态从三级状态切换到两级状态,以扩大用于数字实现的磁滞带。后者用于解决抖动。它使采样和切换在电流边界触摸时发生,从而以最低的ADC采样频率实现最有效的边界比较。利用这两种技术,并网的三电平NPC逆变器可以通过全数字磁滞控制器很好地稳定下来,因此可以实现高质量的电网侧。

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