2015
DOI: 10.1109/tie.2014.2363442
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Frequency-Adaptive Fractional-Order Repetitive Control of Shunt Active Power Filters

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Cited by 210 publications
(94 citation statements)
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“…This will result in a severe performance degradation for tracking of periodic reference signal or rejecting of period disturbance signal [18], [19]. Therefore, it is necessary to design MRC with exact N m .…”
Section: A Fractional-order Multirate Rcmentioning
confidence: 99%
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“…This will result in a severe performance degradation for tracking of periodic reference signal or rejecting of period disturbance signal [18], [19]. Therefore, it is necessary to design MRC with exact N m .…”
Section: A Fractional-order Multirate Rcmentioning
confidence: 99%
“…Addressing above issues, a finite impulse response (FIR) based fractional delay is proposed for CRC [16], parallel structure RC [11], and selective harmonic RC [17], which enables frequency adaptation to the reference signal variations. Lagrange-interpolation-based fractional delay based RC is applied in various applications, for instance, programmable AC power source [18], grid-connected power converter [13], and shunt active power filters [19]. And the scheme of Lagrange interpolation-based fractional delay is further improved with the Farrow structure to decrease computation load in [7].…”
mentioning
confidence: 99%
“…In order to improve the performance of alternating current control, proportional resonant (PR) control has been developed to achieve infinite gain and zero error tracking at the tuned frequency [35,36]. Repetitive control, derived from the internal model principle, makes it possible to accurately track the periodic signal and enhance the steady-state performance [37,38], but its dynamic response still needs to be improved.…”
Section: Active Control Technologymentioning
confidence: 99%
“…Therefore, the transfer function (17) can be approximated by a typical type-2 system. It can be obtained that: 2 …”
Section: Parameters Design Guidelinesmentioning
confidence: 99%