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Current Mode with RMS Voltage and Offset Control Loops for a Single-Phase Aircraft Inverter Suitable for Parallel and 3-Phase Operation Modes

机译:适用于并联和三相运行模式的单相飞机逆变器的具有RMS电压和偏置控制环的电流模式

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摘要

Rms voltage regulation may be an attractive possibility for controlling power inverters. Combined with a Hall Effect sensor for current control, it keeps its parallel operation capability while increasing its noise immunity, which may lead to a reduction of the Total Harmonic Distortion (THD). Besides, as voltage regulation is designed in DC, a simple PI regulator can provide accurate voltage tracking. Nevertheless, this approach does not lack drawbacks. Its narrow voltage bandwidth makes transients last longer and it increases the voltage THD when feeding non-linear loads, such as rectifying stages. On the other hand, the implementation can fall into offset voltage error. Furthermore, the information of the output voltage phase is hidden for the control as well, making the synchronization of a 3-phase setup not trivial. This paper explains the concept, design and implementation of the whole control scheme, in an on board inverter able to run in parallel and within a 3-phase setup. Special attention is paid to solve the problems foreseen at implementation level: a third analog loop accounts for the offset level is added and a digital algorithm guarantees 3-phase voltage synchronization.
机译:Rms电压调节对于控制功率逆变器可能是一种有吸引力的可能性。结合用于电流控制的霍尔效应传感器,它在保持其并行操作能力的同时还提高了抗噪能力,这可能导致总谐波失真(THD)的降低。此外,由于电压调节是在DC中设计的,因此简单的PI调节器可以提供准确的电压跟踪。然而,这种方法并不缺乏缺点。其窄的电压带宽使瞬变持续的时间更长,并且在馈入非线性负载(例如整流级)时会增加电压THD。另一方面,实现可能会陷入失调电压误差。此外,输出电压相位的信息也被控制隐藏了,使得三相设置的同步变得不容易。本文说明了能够在三相设置内并行运行的车载逆变器中整个控制方案的概念,设计和实现。要特别注意解决在实现级别上预见的问题:添加了第三个模拟环路来说明偏移级别,并且数字算法保证了三相电压同步。

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