• Title/Summary/Keyword: Phase-Locked PLL

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Adaptive Neural PLL for Grid-connected DFIG Synchronization

  • Bechouche, Ali;Abdeslam, Djaffar Ould;Otmane-Cherif, Tahar;Seddiki, Hamid
    • Journal of Power Electronics
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    • v.14 no.3
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    • pp.608-620
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    • 2014
  • In this paper, an adaptive neural phase-locked loop (AN-PLL) based on adaptive linear neuron is proposed for grid-connected doubly fed induction generator (DFIG) synchronization. The proposed AN-PLL architecture comprises three stages, namely, the frequency of polluted and distorted grid voltages is tracked online; the grid voltages are filtered, and the voltage vector amplitude is detected; the phase angle is estimated. First, the AN-PLL architecture is implemented and applied to a real three-phase power supply. Thereafter, the performances and robustness of the new AN-PLL under voltage sag and two-phase faults are compared with those of conventional PLL. Finally, an application of the suggested AN-PLL in the grid-connected DFIG-decoupled control strategy is conducted. Experimental results prove the good performances of the new AN-PLL in grid-connected DFIG synchronization.

Novel Structure of 3-Phase Phase-Locked Loop with Stiffness against Disturbance (외란에 강인한 새로운 구조의 3상 Phase-Locked Loop)

  • Bae Byung-Yeol;Han Byung-Moon;Park Yong-Hee;Cho Yun-Ho
    • The Transactions of the Korean Institute of Electrical Engineers B
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    • v.55 no.1
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    • pp.39-46
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    • 2006
  • PLL is a key item of power converter for power quality compensation and power flow control. This paper proposes a novel 3-phase PLL that is composed of ALC and PI controller. The operational principle was investigated through theoretical approach, and the performance was verified through computer simulations with MATLAB and experimental works with TMS320VC33 DSP board. The proposed 3-phase PLL shows accurate performance under the voltage disturbances such as sag, harmonics. phase-angle jump, and frequency change.

A Phase-Locked Loop with Embedded Analog-to-Digital Converter for Digital Control

  • Cha, Soo-Ho;Jeong, Chun-Seok;Yoo, Chang-Sik
    • ETRI Journal
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    • v.29 no.4
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    • pp.463-469
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    • 2007
  • A phase-locked loop (PLL) is described which is operable from 0.4 GHz to 1.2 GHz. The PLL has basically the same architecture as the conventional analog PLL except the locking information is stored as digital code. An analog-to-digital converter is embedded in the PLL, converting the analog loop filter output to digital code. Because the locking information is stored as digital code, the PLL can be turned off during power-down mode while avoiding long wake-up time. The PLL implemented in a 0.18 ${\mu}m$ CMOS process occupies 0.35 $mm^2$ active area. From a 1.8 V supply, it consumes 59 mW and 984 ${\mu}W$ during the normal and power-down modes, respectively. The measured rms jitter of the output clock is 16.8 ps at 1.2 GHz.

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Phase-Locked Loop with Leakage and Power/Ground Noise Compensation in 32nm Technology

  • Kim, Kyung-Ki;Kim, Yong-Bin;Lee, Young-Jun
    • JSTS:Journal of Semiconductor Technology and Science
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    • v.7 no.4
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    • pp.241-246
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    • 2007
  • This paper presents two novel compensation circuits for leakage current and power supply noise (PSN) in phase locked loop (PLL) using a nanometer CMOS technology. The leakage compensation circuit reduces the leakage current of the charge pump circuit and the PSN compensation circuit decreases the effect of power supply variation on the output frequency of VCO. The PLL design is based on a 32nm predictive CMOS technology and uses a 0.9 V power supply voltage. The simulation results show that the proposed PLL achieves 88% jitter reduction at 440 MHz output frequency compared to the PLL without leakage compensator and its output frequency drift is little to 20% power supply voltage variations. The PLL has an output frequency range of 40 $M{\sim}725$ MHz with a multiplication range of 1-1023, and the RMS and peak-to-peak jitter are 5psec and 42.7 psec, respectively.

A Novel Single Phase Synchronous Reference Frame Phase-Locked Loop with a Constant Zero Orthogonal Component

  • Li, Ming;Wang, Yue;Fang, Xiong;Gao, Yuan;Wang, Zhaoan
    • Journal of Power Electronics
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    • v.14 no.6
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    • pp.1334-1344
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    • 2014
  • A novel single phase Phase-Locked Loop (PLL) is proposed in this paper to accurately and rapidly estimate the instantaneous phase angle of a grid. A conjugate rotating vector pair is proposed and defined to synthesize the single phase signal in the stationary reference frame. With this concept, the proposed PLL innovatively sets one phase input of the PARK transformation to a constant zero. By means of a proper cancellation, a zero steady state phase angle estimation error can be achieved, even under magnitude and frequency variations. The proposed PLL structure is presented together with guidelines for parameters adjustment. The performance of the proposed PLL is verified by comprehensive experiments. Satisfactory phase angle estimation can be achieved within one input signal cycle, and the estimation error can be totally eliminated in four input cycles for the most severe conditions.

A Low Jitter and Fast Locking Phase-Lock Loop with Adaptive Bandwidth Controller

  • Song Youn-Gui;Choi Young-Shig
    • Journal of information and communication convergence engineering
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    • v.3 no.1
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    • pp.18-22
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    • 2005
  • This paper presents the analog adaptive phase-locked loop (PLL) architecture with a new adaptive bandwidth controller to reduce locking time and minimize jitter in PLL output for wireless communication. It adaptively controls the loop bandwidth according to the locking status. When the phase error is large, the PLL increases the loop bandwidth and reduces locking time. When the phase error is small, the PLL decreases the loop bandwidth and minimizes output jitters. The adaptive bandwidth control is implemented by controlling charge pump current depending on the locking status. A 1.28-GHz CMOS phase-locked loop with adaptive bandwidth control is designed with 0.35 $mu$m CMOS technology. It is simulated by HSPICE and achieves the primary reference sidebands at the output of the VCO are approximately -80dBc.

Advanced 1-Phase PLL (Phase Locked Loop) Algorithm Using Arcsin (Arcsin을 이용한 새로운 단상 PLL (Phase Locked Loop) 알고리즘 구현)

  • Kim, Dong-Hee;Lee, Woong;Ko, Jeong-Min;Lee, Byoung-Kuk
    • Proceedings of the KIEE Conference
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    • 2008.10c
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    • pp.240-242
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    • 2008
  • 본 논문에서는 단상 PLL알고리즘 중 하나인 영점검출 방식에서의 순시제어 불능을 극복하기 위해 arcsin을 이용한 알고리즘을 제안하였다. 또한 시뮬레이션을 통해 영점검출과 비교하여 제안된 PLL알고리즘의 순시제어 가능성을 검증하였다.

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A Low-Spur CMOS PLL Using Differential Compensation Scheme

  • Yun, Seok-Ju;Kim, Kwi-Dong;Kwon, Jong-Kee
    • ETRI Journal
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    • v.34 no.4
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    • pp.518-526
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    • 2012
  • This paper proposes LC voltage-controlled oscillator (VCO) phase-locked loop (PLL) and ring-VCO PLL topologies with low-phase noise. Differential control loops are used for the PLL locking through a symmetrical transformer-resonator or bilaterally controlled varactor pair. A differential compensation mechanism suppresses out-band spurious tones. The prototypes of the proposed PLL are implemented in a CMOS 65-nm or 45-nm process. The measured results of the LC-VCO PLL show operation frequencies of 3.5 GHz to 5.6 GHz, a phase noise of -118 dBc/Hz at a 1 MHz offset, and a spur rejection of 66 dBc, while dissipating 3.2 mA at a 1 V supply. The ring-VCO PLL shows a phase noise of -95 dBc/Hz at a 1 MHz offset, operation frequencies of 1.2 GHz to 2.04 GHz, and a spur rejection of 59 dBc, while dissipating 5.4 mA at a 1.1 V supply.

Design of a Sub-micron Locking Time Integer-N PLL Using a Delay Locked-Loop (지연고정루프를 이용한 $1{\mu}s$ 아래의 위상고정시간을 가지는 Integer-N 방식의 위상고정루프 설계)

  • Choi, Hyek-Hwan;Kwon, Tae-Ha
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.13 no.11
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    • pp.2378-2384
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    • 2009
  • A novel phase-locked loop(PLL) architecture of sub-micron locking time has been proposed. Input frequency is multiplied by using a delay-locked loop(DLL). The input frequency of a PLL is multiplied while the PLL is out of lock. The multiplied input frequency makes the PLL having a wider loop bandwidth. It has been simulated with a $0.18{\mu}m$ 1.8V CMOS process. The simulated locking time is $0.9{\mu}s$ at 162.5MHz and 2.6GHz, input and output frequency, respectively.

Steady-State Performance Improvement of Single-Phase PWM Inverters Using PLL Technique (PLL 기법을 이용한 단상 PWM 인버터의 정상상태 성능개선)

  • 정세교;이대식
    • The Transactions of the Korean Institute of Power Electronics
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    • v.9 no.4
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    • pp.356-363
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    • 2004
  • This paper presents a precision voltage control technique of a single phase PWM inverter for a constant voltage and constant frequency(CVCF) applications. The proposed control scheme employs an additional phase-locked loop(PLL) compensator which is constructed using the output capacitor voltage and current. The computer simulation and experiment are carried out for the actual single-phase PWM inverter and it is well demonstrated from these results that the steady-state performance and total harmonic distortion(THD) are remarkably improved by employing the proposed technique.