• Title/Summary/Keyword: 루프

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Overseas - Parametric DesignXI (해외건축동향: 미국 - 파라메트릭 디자인XI)

  • Sung, Woojae
    • Korean Architects
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    • s.572
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    • pp.118-121
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    • 2016
  • 저번 회에서는 Barclays Center의 그린루프의 디자인 과정을 개략적으로 살펴보았습니다. 소음 저감의 목적으로 인하여 도출되었던 두 가지의 변수(새로운 루프의 중량과 두 겹의 루프사이에 위치하는 빈 공간)및 기존의 바클레이 센터가 가지고 있는 물리적인 특성(파라펫 및 기존 루프의 형상)을 고려하여 design surface를 설정하였고, 중량에 대한 조건 및 주변의 고층 주거빌딩들로 인해 일반적인 루프와는 다른 미적인 특이성을 고려하여 그린 루프라는 큰 방향을 제시하고, 양방향 곡면의 특성을 가지는 루프의 지오메트리와 시공 상의 복잡함과 공기의 단축을 위해 모듈로 이루어진 시스템을 제안하게 되었습니다. 이번 회에서는 루프의 디자인을 진행함에 있어서 어떠한 제약 조건이 있었으며 그러한 제약 조건들이 최종적인 루프 디자인 및 패턴에 어떠한 영향을 미쳤는지, 그리고 이러한 과정에서 파라메트릭 툴이 어떻게 사용되었는지에 대해 자세히 살펴보도록 하겠습니다. 이어서 다음 회에서는 디자인 측면에서가 아닌 pre-construction의 측면에서 시공상의 시행착오를 줄이고 공기를 단축하기 위한 목적으로 파라메트릭 툴의 사용하여 시뮬레이션을 했던 과정에 대해 자세히 알아보도록 하겠습니다.

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Phase Locked Loop with Analog Band-Selection Loop (아날로그 부대역 선택 루프를 이용한 위상 고정 루프)

  • Lee, Sang-Ki;Choi, Young-Shig
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.49 no.8
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    • pp.73-81
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    • 2012
  • In this paper, a novel phase locked loop has been proposed using an analog band-selection loop. When the PLL is out-lock, the PLL has a fasting locking characteristic with the analog band-selection loop. When the PLL is near in-lock, the bandwidth becomes narrow with the fine loop. A frequency voltage converter is introduced to improve a stability and a phase noise performance. The proposed PLL has been designed based on a 1.8V $0.18{\mu}m$ CMOS process and proved by HSPICE simulation.

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.

Low Noise Phase Locked Loop with Negative Feedback Loop including Frequency Variation Sensing Circuit (주파수 변화 감지 회로를 포함하는 부궤환 루프를 가지는 저잡음 위상고정루프)

  • Choi, Young-Shig
    • The Journal of Korea Institute of Information, Electronics, and Communication Technology
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    • v.13 no.2
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    • pp.123-128
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    • 2020
  • A low phase noise phase locked loop (PLL) with negative feedback loop including frequency variation sensing circuit (FVSC) has been proposed. The FVSC senses the frequency variation of voltage controlled oscillator output signal and controls the volume of electric charge in loop filter capacitance. As the output frequency of the phase locked loop increases, the FVSC reduces the loop filter capacitor charge. This causes the loop filter output voltage to decrease, resulting in a phase locked loop output frequency decrease. The added negative feedback loop improves the phase noise characteristics of the proposed phase locked loop. The size of capacitance used in FVSC is much smaller than that of loop filter capacitance resulting in no effect in the size of the proposed PLL. The proposed low phase noise PLL with FVSC is designed with a supply voltage of 1.8V in a 0.18㎛ CMOS process. Simulation results show the jitter of 273fs and the locking time of 1.5㎲.

An Ultra Small Size Phase Locked Loop with a Signal Sensing Circuit (신호감지회로를 가진 극소형 위상고정루프)

  • Park, Kyung-Seok;Choi, Young-Shig
    • The Journal of Korea Institute of Information, Electronics, and Communication Technology
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    • v.14 no.6
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    • pp.479-486
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    • 2021
  • In this paper, an ultra small phase locked loop (PLL) with a single capacitor loop filter has been proposed by adding a signal sensing circuit (SSC). In order to extremely reduce the size of the PLL, the passive element loop filter, which occupies the largest area, is designed with a very small single capacitor (2pF). The proposed PLL is designed to operate stably by the output of the internal negative feedback loop including the SSC acting as a negative feedback to the output of the single capacitor loop filter of the external negative feedback loop. The SSC that detects the PLL output signal change reduces the excess phase shift of the PLL output frequency by adjusting the capacitance charge of the loop filter. Although the proposed structure has a capacitor that is 1/78 smaller than that of the existing structure, the jitter size differs by about 10%. The PLL is designed using a 1.8V 180nm CMOS process and the Spice simulation results show that it works stably.

A Continuous Fine-Tuning Phase Locked Loop with Additional Negative Feedback Loop (추가적인 부궤환 루프를 가지는 연속 미세 조절 위상 고정루프)

  • Choi, Young-Shig
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.20 no.4
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    • pp.811-818
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    • 2016
  • A continuous fine-tuning phase locked loop with an additional negative feedback loop has been proposed. When the phase locked loop is out-of-lock, the phase locked loop has a fast locking characteristic using the continuous band-selection loop. When the phase locked loop is near in-lock, the bandwidth is narrowed with the fine loop. The additional negative feedback loop consists of a voltage controlled oscillator, a frequency voltage converter and its internal loop filter. It serves a negative feedback function to the main phase locked loop, and improves the phase noise characteristics and the stability of the proposed phase locked loop. The additional negative feedback loop makes the continuous fine-tuning loop work stably without any voltage fluctuation in the loop filter. Measurement results of the fabricated phase locked loop in $0.18{\mu}m$ CMOS process show that the phase noise is -109.6dBc/Hz at 2MHz offset from 742.8MHz carrier frequency.

A PLL with high-speed operating discrete loop filter (고속에서 동작하는 이산 루프필터를 가진 PLL)

  • An, Seong-Jin;Choi, Young-Shig
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.20 no.12
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    • pp.2326-2332
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    • 2016
  • In this paper, the proposed small size PLL works stable with the discrete loop filter which is controlled by voltage controlled oscillator's output signal. A switch controlled loop filter is introduced into the proposed PLL instead of a conventional $2^{nd}$-order loop filter. Those three switches are controlled by the very high frequency output signal of voltage controlled oscillator. The switches are also controlled by UP/DN signals and 'on/off' depending the presence of UP/DN signals. A negative feedback functioned capacitor with a switch does make it possible to integrate the PLL into a single chip. The proposed PLL works stably even though a total of small 180pF capacitor used in the discrete loop filter. The proposed PLL has been designed with a 1.8V supply voltage, 0.18um multi - metal and multi - poly layer CMOS process and proved by Hspice simulation.

A Jitter Characteristic Improved PLL with RC Time Constant Circuit (저항-커패시턴스 시정수 회로를 이용하여 지터 특성을 개선한 위상고정루프)

  • An, Seong-Jin;Choi, Yong-Shig
    • Journal of the Institute of Electronics and Information Engineers
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    • v.54 no.2
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    • pp.133-138
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    • 2017
  • This paper presents a jitter characteristic improved phase locked loop (PLL) with an RC time constant circuit. In the RC time constant circuit, LPF's voltage is inputted to a comparator through small and large RC time constant circuits. The signal through a small RC time constant circuit has almost same loop filter output voltage. The signal through a large RC time constant circuit has the average value of loop filter output voltage and does as a role of reference voltage to the comparator. The output of the comparator controls the sub-charge pump which provide a current to LPF. When the loop filter output voltage increases, the sub-charge pump discharges the loop filter and decreases loop filter output voltage. When the loop filter output voltage decreases, the sub-charge pump charges the loop filter and increases loop filter output voltage. The negative feedback loop reduces the variation of loop filter output voltage resulting in jitter characteristic improvement.

An Extremely Small Size Multi-Loop Phase Locked Loop (복수개의 부궤환 루프를 가진 초소형 크기의 위상고정루프)

  • Choi, Young-Shig;Han, Geun-Hyeong
    • The Journal of Korea Institute of Information, Electronics, and Communication Technology
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    • v.12 no.1
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    • pp.1-6
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    • 2019
  • An extremely small size multi-loop phase-locked loop(PLL) keeping phase noise performances has been proposed. It has been designed to have the loop filter made of small single capacitor with multiple Frequency Voltage Converters (FVCs) because the main goal is to make the size of the proposed PLL extremely small. Multiple FVCs which are connected to voltage controlled oscillator(VCO) make multiple negative feedback loops in PLL. Those multiple negative feedback loops enable the PLL with the loop filter made of an extremely small size single capacitor operate stably. It has been designed with a 1.8V $0.18{\mu}m$ CMOS process. The simulation results show that the proposed PLL has the 1.6ps jitter and $10{\mu}s$ locking time.

A Discrete-Time Loop Filter Phase-locked loop with a Frequency Fluctuation Converting Circuit (주파수변동전환회로를 가진 이산시간 루프 필터 위상고정루프)

  • Choi, Young-Shig;Park, Kyung-Seok
    • The Journal of Korea Institute of Information, Electronics, and Communication Technology
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    • v.15 no.2
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    • pp.89-94
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    • 2022
  • In this paper, a discrete-time loop filter(DLF) phase-locked loop with a Frequency Fluctuation Converting Circuit(FFCC) has been proposed. Discrete-time loop filter can improve spur characteristic by connecting the charge pump and voltage oscillator discretely unlike a conventional continuous-time loop filter. The proposed PLL is designed to operate stably by the internal negative feedback loop including the SSC acting as a negative feedback to the discrete-time loop filter of the external negative feedback loop. In addition, the phase noise is further improved by reducing the magnitude of the loop filter output voltage variation through the FFCC. Therefore, the magnitude of jitter has been reduced by 1/3 compared to the conventional structure. The proposed phase locked loop has been simulated with Hspice using the 1.8V 180nm CMOS process.