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A Novel Parameter-independent Fictive-axis Approach for the Voltage Oriented Control of Single-phase Inverters

机译:单相逆变器电压定向控制的一种新的参数无关的虚轴方法

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摘要

This paper presents a novel Parameter -Independent Fictive-Axis (PIFA) approach for the Voltage -Oriented Control (VOC) algorithm used in grid -tied single-phase inverters. VOC is based on the transformation of the single-phase grid current into the synchronous reference frame. As a result, an orthogonal current signal is needed. Traditionally, this signal has been obtained from fixed time delays, digital filters or a Hilbert transformation. Nevertheless, these solutions present stability and transient drawbacks. Recently, the Fictive Axis Emulation (FAE) VOC has emerged as an alternative for the generation of the quadrature current signal. FAE requires detailed information of the grid current filter along with its transfer function for signal creation. When the transfer function is not accurate, the direct and quadrature current components present steady-state oscillations as the fictive two-phase system becomes unbalanced. Moreover, the digital implementation of the transfer function imposes an additional computing burden on the VOC. The PIFA VOC presented in this paper, takes advantage of the reference current to create the required orthogonal current, which effectively eliminates the need for the filter transfer function. Moreover, the fictive signal amplitude and phase do not change with a frequency drift, which results in an increased reliability. This yields a fast, linear and stable system that can be installed without fine tuning. To demonstrate the good performance of the PIFA VOC, simulation and experimental results are presented.
机译:本文针对并网单相逆变器中的电压定向控制(VOC)算法,提出了一种新颖的参数独立虚拟轴(PIFA)方法。 VOC基于单相电网电流到同步参考系的转换。结果,需要正交电流信号。传统上,此信号是从固定的时间延迟,数字滤波器或希尔伯特变换获得的。然而,这些解决方案存在稳定性和暂时性缺陷。近来,虚构轴仿真(FAE)VOC已经成为生成正交电流信号的替代方法。 FAE需要电网电流滤波器的详细信息及其传递函数以创建信号。当传递函数不准确时,当虚拟的两相系统变得不平衡时,直流和正交电流分量会呈现稳态振荡。此外,传递函数的数字实现使VOC承受了额外的计算负担。本文介绍的PIFA VOC利用参考电流来创建所需的正交电流,从而有效地消除了对滤波器传递函数的需要。此外,虚拟信号的幅度和相位不会随频率漂移而变化,从而提高了可靠性。这样就产生了快速,线性和稳定的系统,无需进行微调即可安装。为了演示PIFA VOC的良好性能,给出了仿真和实验结果。

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