년 - 년
FMCW 레이더용 타입-3 PLL의 설계 가이드 KCI 등재
한국ITS학회 한국ITS학회논문지 제11권 제4호 통권42호 2012.08 pp.70-79
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4,000원
FMCW 레이더에서 주파수 램프 신호를 발생시키기 위하여 필요한 타입-3 PLL의 설계 가이드를 제시하였다. 그러기 위해서 개루프 전달함수의 크로스오버 주파수를 1 Hz로 정규화 한 조건에서 Pspice 시뮬레이션을 통하여 폐루프 특성을 비교하였다. 결론적으로 타입-3 PLL의 1) 위상여유는 45도로 하고, 2) 두 개의 영점은 같도록 하며, 3) PLL 차수를 높이기 위한 극점은 개루프 전달함수의 크로스오버 주파수보다 10배 정도 크게 할 것을 권한다.
A design guide to type-3 PLLs for FMCW radars is provided. To do that, the cross-over frequencies of the open-loop transfer functions were normalized to 1 Hz and closed-loop properties were compared through simulations using Pspice. As a result, several guides to design type-3 PLLs were provided: 1) secure 45 degrees of phase margin, 2) locate two zeroes at an identical frequency, and 3) poles may be added to raise order of the PLL at higher frequencies than the cross-over frequency of the open-loop transfer function about ten times.
이중 위상고정루프 구조를 갖는 PLDRO 설계 및 제작
한국ITS학회 한국ITS학회논문지 제3권 제2호 통권5호 2004.12 pp.69-74
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4,000원
본 논문에서는 MMC(Microwave Micro Cell)장비와 ITS용 무선장비에 사용될 수 있는 PLDRO를 설계하였다. 일반적인 PLDRO구조에 이중루프구조를 이용해 위상을 고정하였다. 제안된 이중루프구조 PLDRO의 측정결과 주파수 18.7GHz에서 0dBm의 출력레벨과 기준주파수에서 1kHz 떨어진 지점에서 -804Bc/Hz, 10kHz에서 -83dBc/Hz의 위상잡음 특성을 얻었다
In this work, A PLDRO (Phase Locked Dielectric Resonator Oscillator) which can be used for the wireless communication systems fur MMC(Microwave Micro Cell) and ITS wireless communication system is designed. A different approach to the PLDRO structure is applied for phase locking by dual phase lock loop structure. The proposed dual loop PLDRO generates the output power of 0 dBm at 18.7 GHz and has the characteristics of a phase noise of -80 dBc/Hz at 1kHz, -83 dBc/Hz at 10 kHz offset frequency from carrier frequency
보안공학연구지원센터(IJSIP) International Journal of Signal Processing, Image Processing and Pattern Recognition Vol.8 No.6 2015.06 pp.145-154
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In this paper, the break-lock phenomenon of phase locked loop (PLL) in monopulse radar receiver for missile seeking applications is presented. The continuous wave radar echo and linear frequency modulated (LFM) interference signals are injected into the PLL simultaneously with an assumption that initially, the PLL locks on to the echo signal frequency. The PLL is assumed to be operating at an intermediate frequency (IF) of 50 MHz with a typical bandwidth of 200 kHz. The frequency deviation required to break-lock as a function of interference signal power and modulation rate is analyzed. The simulation results show that break-lock is achieved at a frequency deviation of 0.36 MHz for a typical LFM signal power of -14 dBm and 200 kHz modulation rate. The break-lock in the PLL is also estimated for selected values of LFM signal power and modulation rates, such as 300, 400 kHz, when the echo signal power at the PLL input is -10 and -14 dBm. The PLL with third order passive loop filter is modeled and designed using exact method. The computer simulation is carried out using visual system simulator (VSS) AWR software and potential conclusions are demonstrated.
Gunn 발진기용 디지털 PLL(Phase Lock Loop) 제어기 제작
[Kisti 연계] 한국천문학회 한국천문학회보 Vol.31 No.2 2006 p.35
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Gunn 발진기용 디지털 PLL(Phase Lock Loop) 제어기 제작
[Kisti 연계] 한국천문학회 한국천문학회보 Vol.31 2006 p.35
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A Low Jitter and Fast Locking Phase-Lock Loop with Adaptive Bandwidth Controller
[Kisti 연계] 한국해양정보통신학회 International journal of maritime information and communication sciences Vol.3 No.1 2005 pp.18-22
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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.
A 1.8 V 0.18-μm 1 GHz CMOS Fast-Lock Phase-Locked Loop using a Frequency-to-Digital Converter
[Kisti 연계] 한국정보통신학회 Journal of information and communication convergence engineering Vol.10 No.2 2012 pp.187-193
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A 1 GHz CMOS fast-lock phase-locked loop (PLL) is proposed to support the quick wake-up time of mobile consumer electronic devices. The proposed fast-lock PLL consists of a conventional charge-pump PLL, a frequency-to-digital converter (FDC) to measure the frequency of the input reference clock, and a digital-to-analog converter (DAC) to generate the initial control voltage of a voltage-controlled oscillator (VCO). The initial control voltage of the VCO is driven toward a reference voltage that is determined by the frequency of the input reference clock in the initial mode. For the speedy measurement of the frequency of the reference clock, an FDC with a parallel architecture is proposed, and its architecture is similar to that of a flash analog-to-digital converter. In addition, the frequency-to-voltage converter used in the FDC is designed simply by utilizing current integrators. The circuits for the proposed fast-lock scheme are disabled in the normal operation mode except in the initial mode to reduce the power consumption. The proposed PLL was fabricated by using a 0.18-${\mu}m$ 1-poly 6-metal complementary metal-oxide semiconductor (CMOS) process with a 1.8 V supply. This PLL multiplies the frequency of the reference clock by 10 and generates the four-phase clock. The simulation results show a reduction of up to 40% in the worstcase PLL lock time over the device operating conditions. The root-mean-square (rms) jitter of the proposed PLL was measured as 2.94 ps at 1 GHz. The area and power consumption of the implemented PLL are $400{\times}450{\mu}m^2$ and 6 mW, respectively.
A New Phase-Locked Loop System with the Controllable Output Phase and Lock-up Time
[Kisti 연계] 제어로봇시스템학회 제어로봇시스템학회 학술대회논문집 2003 pp.1836-1840
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This paper, we propose a new phase-locked loop (PLL) system with the controllable output phase, independent from the output frequency, and lock-up time. This PLL system has a dual control loop is described, the inner loop greatly improved VCO characteristic such as faster speed response as well as higher operation bandwidth, to minimize the effect of the VCO noise and the power supply variation and also get better linearity of VCO output. The main loop is the heart of this PLL which greatly improved the output frequency instability due to the external high frequency noise coupling to the input reference frequency also the main loop can control the output phase, independent from the output frequency, and reduce the lock-up time of the step frequency response. The experimental results confirm the validity of the proposed strategy.
IEEE1394 S800대응 고주파 PLL ASIC 설계
[Kisti 연계] 대한전기학회 대한전기학회 학술대회논문집 1998 pp.582-584
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IEEE1394 is an international standard that will integrate entertainment, communication, and computing electronics into consumer multimedia. IEEE1394 is a hardware and software for transporting data at 100,200, or 400Mbps. There are efforts to create speed improvements to 800 and muti-Gigabit speed s. An 980Mhz frequency synthesizer is proposed for high speed transport and designed by a 0.35um CMOS process.
위상동기루프 방식을 이용한 고빈도 진동환기 장치의 설계
[NRF 연계] 영남대학교 의과대학 Journal of Yeungnam Medical Science Vol.6 No.2 1989.12 pp.217-222
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In this study, high frequency oscillatory ventilator was designed and constructed. Using designed by phase-lock loop system, in order to accurately and easily treat both the outlet volume and rpm. A system has been designed and is being evaluated using CD4046A PLL IC. We use this PLL IC for the purpose of motor controls. The device consists of PLL system, pumping mechanism, piston, cylinder, and special crank shaft are required. This system characteristics were as follows: 1) Frequency: 20-1800 rpm 2) Outlet air volume: 1-50 cc
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