• Title/Summary/Keyword: Voltage controlled resistor

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Low-Power and Wide-Input Range Voltage Controlled Linear Variable Resistor Using an FG-MOSFET and Its Application

  • Kushima, Muneo;Tanno, Koichi;Kumagai, Hiroo;Ishizuka, Okihiko
    • Proceedings of the IEEK Conference
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    • 2002.07b
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    • pp.759-762
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    • 2002
  • In this paper, a voltage-controlled linear variable resistor (VCLVR) using a floating-gate MOS-FET (FG-MOSFET) is proposed. The proposed-circuit is the grounded VCLVR consists of only an ordinary MOSFET and an FG-MOSFET. The advantage of the proposed VCLVR are low-voltage and wide-input range. Next, as applications, a floating-node voltage controlled variable resistor and an operational transconductance amplifier using the proposed VCLVRs are proposed. The performance of the proposed circuits are characterized through HSPICE simulations with a standard 0.6 ${\mu}$m CMOS process. simulations of the proposed VCLVR demonstrate a resistance value of 40 k$\Omega$ to 338 k$\Omega$ and a THD of less than 1.1 %.

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A Current Compensating Scheme for Improving Phase Noise Characteristic in Phase Locked Loop

  • Han, Dae Hyun
    • Journal of Multimedia Information System
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    • v.5 no.2
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    • pp.139-142
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    • 2018
  • This work presents a novel architecture of phase locked loop (PLL) with the current compensating scheme to improve phase noise characteristic. The proposed PLL has two charge pumps (CP), main-CP (MCP) and sub-CP (SCP). The smaller SCP current with same time duration but opposite direction of UP/DN MCP current is injected to the loop filter (LF). It suppresses the voltage fluctuation of LF. The PLL has a novel voltage controlled oscillator (VCO) consisting of a voltage controlled resistor (VCR) and the three-stage ring oscillator with latch type delay cells. The VCR linearly converts voltage into current, and the latch type delay cell has short active on-time of transistors. As a result, it improves phase noise characteristic. The proposed PLL has been fabricated with $0.35{\mu}m$ 3.3 V CMOS process. Measured phase noise at 1 MHz offset is -103 dBc/Hz resulting in 3 dBc/Hz phase noise improvement compared to the conventional PLL.

Evaluation of Discharge Characteristics Followed by the Development of Blumlein Pulsed Power Source (Blumlein 펄스파워 전원개발 및 방전특성 평가)

  • Han, Sang-Bo;Park, Sang-Hyun
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.24 no.10
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    • pp.99-105
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    • 2010
  • This paper discussed the theoretical simulation results for developing the blumlein pulsed power source and showed the circuit configuration and the discharge characteristics of the realistic manufactured pulsed power system. In the simulation, the output voltage characteristics at a load resistor showed the general impulse shape when the impedance of a single coaxial cable is matched with the that of a load resistor. In addition, it is confirmed that output values of the pulsed power can be easily controlled by the duplication of coaxial cables and the pulsed waveform showed the general impulse characteristics. Specifically, the inception discharge voltage in the gap distance of 5[mm] between needle and plane electrodes is about 20[kV] and which is lower than about 29[kV] in 9[mm] due to the difference of the reaching time of the inception voltage. Therefore, this paper showed that the output voltage of the blumlein pulsed power source can be easily controlled.

A Frequency Synthesizer using Low Voltage Active Inductor VCO (저전압 능동 인덕터 VCO를 이용한 주파수 합성기)

  • Yi, Soon-Jai;Lee, Dong-Keon;Jeong, Hang-Geun
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.59 no.2
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    • pp.471-475
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    • 2010
  • This paper presents a frequency synthesizer using low voltage active inductor VCO(Voltage Controlled Oscillator). The low voltage active inductor VCO with feedback resistor increases its equivalent inductance and the quality-factor(Q). Under certain conditions, the low voltage active inductor with feedback resistor generates a negative resistance at the input. In this paper, the conditions for negative resistance are obtained by small signal analysis. The designed low voltage active inductor VCO covers a frequency band between 1059MHz and 1223MHz. The measured phase noise at 1.178GHz is -81.8dBc/Hz at 1MHz offset.

High-linearity voltage-controlled current source circuits with wide range current output (넓은 범위의 전류 출력을 갖는 고선형 전압-제어 전류원 회로)

  • Cha, Hyeong-Woo
    • Proceedings of the IEEK Conference
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    • 2004.06b
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    • pp.395-398
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    • 2004
  • High-linearity voltage-controlled current sources (VCCSs) circuits for wide voltage-controlled oscillator and automatic gun control were proposed. The VCCS consists of emitter follower for voltage input, two common-base amplifier which their emitter connected for current output, and current mirror which connected the two amplifier for large output current. The VCCS used only five transistors and a resistor without an extra bias circuit. Simulation results show that the VCCS has current output range from 0mA to 300mA over the control voltage range from 1V to 4.8V at supply voltage 5V. The linearity error of output current has less than $1.4\%$ over the current range from 0A to 300mA.

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Method for Damping Resonant Voltages on the Output LC Filter of PWM Inveter (PWM인버터의 출력 LC필터에 의한 공진전압 억제 기법)

  • Choi G. J.;Chun T. W.;Lee H. H.;Nho E. C.;Kim H. G.
    • Proceedings of the KIPE Conference
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    • 2004.07a
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    • pp.415-419
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    • 2004
  • The U filter has been generally used to filter the output voltage of PWM inverter to the sinusoidal waveform. The resonant voltage on the output voltage of PWM inverter may be generated due to LC filter. This paper proposed the algorithm to damp the resonant voltage using the virtual resistor without decreasing the efficiency by the power loss in the real resistor The method is appled to the vector controlled induction motor driven by the PWM inverter with the LC filter. The simulation results are carried out to verify the performances of the proposed algorithm.

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3-Phase Hybrid Series Active Power Filter with Dynamic Voltage Restorer (DVR 기능을 갖는 3상 하이브리드형 직렬 능동전력필터)

  • Han Seok-Woo;Choe Gyu-Ha
    • Proceedings of the KIPE Conference
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    • 2002.07a
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    • pp.598-602
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    • 2002
  • This paper presents the 3-phase hybrid series active power filter with dynamic voltage restorer(DVR) which serve as an energy buffer and current harmonics blocking resistor connected to sensitive loads, such as, to compensate voltage dips and current harmonics in power distribution system. The DVR is to inject a dynamically controlled voltage generated by a forced commutated converter in series to the bus voltage by means of a booster transformer. The momentary amplitudes of the three injected phase voltages are controlled such as to eliminate any detrimental effects of a bus fault to the load voltage. The proposed system is able to simultaneously compensate current harmonics, voltage fluctuating and voltage unbalance in power distribution systems. The reference phase angle detected by synchronized with the positive sequence component of the unbalanced source by using symmetrical component transformation. The effectiveness of proposed system is verified by the computer simulation.

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High-linearity voltage-controlled current source circuits with wide range current output (넓은 범위의 전류 출력을 갖는 고선형 전압-제어 전류원 회로)

  • 차형우
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.41 no.7
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    • pp.89-96
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    • 2004
  • High-linearity voltage-controlled current sources (VCCSs) circuits for wide voltage-controlled oscillator and automatic gain control are proposed. The VCCS consists of emitter follower for voltage input, two common-base amplifier which their emitter connected for current output, and current mirror which connected the two amplifier for large output current. The VCCS used only five transistors and a resistor without an extra bias circuit. Simulation results show that the VCCS has current output range from 0㎃ to 300㎃ over the control voltage range from 1V to 4.8V at supply voltage 5V. The linearity error of output current has less than 1.4% over the current range from 0A to 300㎃.

A Basic Study on X-ray Controlled Semiconductor Switch for Pulse Power (펄스파워용 X선제어 무도체스위치의 기본연구)

  • Ko, Kwang-Cheol
    • The Transactions of the Korean Institute of Electrical Engineers
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    • v.41 no.9
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    • pp.1013-1020
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    • 1992
  • The conductivity variation of a high resistivity bulk silicon semiconductor, whose electrodes were deposited with aluminum vapor, was studied experimentally by measuring the X-ray intensity and current flow, which was developed by X-ray radiation while applying a pulse voltage to the silicon, in a load resistor connected to the semiconductor. The current flow observed immediately as the X-ray radiated, and when the X-ray decreased. It was found from the observation of switching current for the X-ray intensity and the voltage applied in the semiconductor that the switching current of the semiconductor increased as the intensity of the X-ray and the applied voltage increased. In case of lower applied voltage, the switching current for higher applied voltage depended on the intensity of the X-ray radiated due to the saturation of electron and hole.

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A Low Noise Phase Locked Loop with Cain-boosting Charge Pump (Cain-boosting 전하펌프를 이용한 저잡음 위상고정루프)

  • Choi Young-Shig;Han Dae-Hyun
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.9 no.2
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    • pp.301-306
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    • 2005
  • In this paper, a gain-boosting charge pump(CP) and a latch type voltage controlled oscillato.(VCO) with voltage controlled resistor(VCR) were proposed. The gain-boosting CP achieves good .current matching of less than 11$mu$V voltage difference between 43$mu$V and 32$mu$V in its output range from 0.8V to 2.3V. The VCO with VCR shows good linear characteristics over the range from 1V to 3V. The fabricated VCO exhibits -108dBc/Hz phase noise at a 100kHz and is comparable to that of the integrated LC-tank oscillator. The phase locked loop(PLL) with new circuits was simulated in a 0.35$mu$m CMOS process and showed 150$mu$s locking time.