• 제목/요약/키워드: Buck dc-dc converter

검색결과 390건 처리시간 0.022초

전력전자 변압기로 동작하는 저전압 직류배전 기능을 갖는 Quasi Z-소스 AC-AC 컨버터 (A Quasi Z-Source AC-AC Converter with a Low DC Voltage Distribution Capability Operating as a Power Electronic Transformer)

  • 류대현;엄준현;정영국;임영철
    • 전기학회논문지
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    • 제63권3호
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    • pp.358-366
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    • 2014
  • This paper proposes a quasi Z-source AC-AC converter with the low DC voltage distribution capability operating as a power electronic transformer. The proposed system has configuration that the input terminals of two quasi Z-source AC-AC converters are connected in parallel, also their output terminal are connected in series. Simple control method of duty ratio was proposed for the in phase buck-boost AC voltage mode and the DC output voltage control. DSP based experiment and PSIM simulation were performed. As a result, the PSIM simulation results were same with the measured results. By controlling the duty ratio under the condition of 100 [${\Omega}$] load, quasi Z-source AC-AC converter could buck and boost the AC output voltage in phase with the AC input voltage, and the same time, the constant DC voltage could be output without affecting the AC output characteristics. And, the DC output voltage 48[V] was constantly controlled in dynamic state in case while the load is suddenly changed ($50[\Omega]{\rightarrow}100[\Omega]$). From the above result, we could know that the quasi Z-source AC-AC converter can act as a power electronic transformer with a low DC voltage distribution capability.

새로운 게이트 드라이버를 이용한 완전 집적화된 DC-DC 벅 컨버터 (A Fully-Integrated DC-DC Buck Converter Using A New Gate Driver)

  • 안영국;전인호;노정진
    • 대한전자공학회논문지SD
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    • 제49권6호
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    • pp.1-8
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    • 2012
  • 본 논문은 패키징 인덕터를 이용한 완전 집적화된 DC-DC 벅 컨버터를 소개한다. 사용된 패키징 인덕터는 본딩 와이어와 리드 프레임의 기생 인덕턴스를 포함한다. 이들은 실리콘 위에서 구현되는 온-칩 인덕터 보다 높은 Q 인자를 가진다. 또한 본 논문은 고주파 스위칭 컨버터의 효율적인 레귤레이션을 위해 로우-스윙 게이트 드라이버를 제안한다. 로우-스윙 드라이버는 다이오드-커넥티드 트랜지스터의 전압 드롭을 이용한다. 제안된 컨버터는 $0.13-{\mu}m$ CMOS 공정을 통해 설계 및 제작되었다. 제작된 벅 컨버터의 효율은 입출력 전압비가 3.3 V/ 2.0 V와 2.8 V/ 2.3 V 일 때, 각각 68.7%, 86.6%로 측정되었다.

Simultaneous Control of DC-DC Converters by DSP Controller

  • Park Hyo-Sik;Kim Hee-Jun
    • 전력전자학회:학술대회논문집
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    • 전력전자학회 2001년도 Proceedings ICPE 01 2001 International Conference on Power Electronics
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    • pp.203-207
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    • 2001
  • This paper presents a multi output converter system that controls, simultaneously and independently, the separate Buck converter and Boost converter with the different specification by one DSP digital controller. As two separate converters are regulated by only one DSP, it is possible to achieve the simple digital control circuit for regulating the multi output DC-DC converter. By setting the software switch state, PI or Fuzzy controller can be applied as a controller for each converter without any change of hardware. Also, PI and Fuzzy control characteristics of each DC-DC converter is validated by experimental results.

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부하변동을 고려한 DC/DC 승압형 컨버터의 외란 관측기 기반 출력 궤환 제어기 (A Disturbance Observer-Based Output Feedback Controller for a DC/DC Boost Converter with Load Variation)

  • 정구종;김인혁;손영익
    • 전기학회논문지
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    • 제58권7호
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    • pp.1405-1410
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    • 2009
  • Output voltage of a DC/DC power converter system is likely to be distorted if variable loads exist in the output terminal. This paper presents a new disturbance observer(DOB) approach to maintain a robust regulation of the output voltage of a boost type DC/DC converter. Unlike the buck-type converter case, the regulation problem of the boost converter is very complicated by the fact that, with respect to the output voltage to be regulated, the system is non-minimum phase. Owing to the non-minimum phase property the classical DOB approach has not been applied to the boost converter. Motivated by a recent result on the application of DOB to non-mimimum phase system, an output feedback control law is proposed by using a parallel feedforward compensator. Simulation results using the Simulink SimPowerSystems prove the performance of the proposed controller against load variation.

소형전기자동차 견인용 직류전동기의 고효율 구동시스템 개발 (Development of High-Efficiency Drive System of DC Motors for Tracking Small-Size Electric Vehicles)

  • ;;전태원;이홍희
    • 전기학회논문지
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    • 제61권11호
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    • pp.1634-1640
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    • 2012
  • This paper develops the high-efficiency drive system of the small-size electric vehicles (EVs) driven by the brushed dc motors. A power circuit for driving the dc motor is designed with the H-bridge circuit and buck converter by considering both the efficiency and cost. In order to change smoothly the rotating direction of dc motor driven by the proposed power circuit, an operating sequence for both the field current and the armature voltage according to an accelerator pedal angle is suggested. Through the simulation studies and experimental results with the low-cost 8-bit AVR, the performances of the proposed methods are verified.

비선형 순시추종형 PWM 제어기법을 적용한 강압형 DC-DC 컨버터 (The Buck DC-DC Converter with Non-Linear Instantaneous Following PWM Control Method)

  • 김상돈;라병훈;이현우;김광태
    • 전력전자학회:학술대회논문집
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    • 전력전자학회 2002년도 전력전자학술대회 논문집
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    • pp.470-475
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    • 2002
  • Instantaneous following PWM control technique is pulsed nonlinear dynamic control method. This new control technique using analog integrator is proposed to control the duty ratio D of do-dc converter. In this control method, the duty ratio of a switch is exactly equal In or proportional to the control reference in the steady state or in a transient. Proposed control method compensates power source perturbation in one switching cycle, and the average value of the dynamic reference in one switching cycle. There is no steady state error nor dynamic error between the control reference and the average value of the switched variable. Experiments with buck converter have demonstrated the robustness of the control method and verified theoretical prediction. The control method is very general and applicable to all type PWM

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Switched Inductor Z-Source AC-DC Converter

  • Sedaghati, Farzad;Hosseini, Seyed Hossein;Sarhangzadeh, Mitra
    • Journal of international Conference on Electrical Machines and Systems
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    • 제1권1호
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    • pp.67-76
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    • 2012
  • Due to the increasing amount of applications of power electronic ac-dc converters, it is necessary to design a single-stage converter that can reliably perform both buck and boost operations. Traditionally, this can be achieved by double-stage conversion (ac/dc-dc/dc) which ultimately leads to less efficiency and a more complex control system. This paper discusses two types of modern ac-dc converters. First, the novel impedance-source ac-dc converter, abbreviated as custom Z-source rectifier, is analyzed; and then, switched inductor (SL) Z-source ac-dc converter is proposed. This paper describes the Z-source rectifiers' operating principles, the concepts behind them, and their superiorities. Analysis and simulation results show that the proposed custom Z-source rectifier can step up and step down voltage; and the main advantage of the SL Z-source ac-dc converter is its high step-up capability. Low ripple of the output dc voltage is the other advantage of the proposed converters. Finally, the SL Z-source ac-dc converter is compared with the custom Z-source ac-dc converter.

A Study on the Design of a Pulse-Width Modulation DC/DC Power Converter

  • Lho, Young-Hwan
    • International Journal of Aeronautical and Space Sciences
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    • 제11권3호
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    • pp.201-205
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    • 2010
  • DC/DC Switching power converters are commonly used to generate regulated DC output voltages with high-power efficiencies from different DC input sources. A switching converter utilizes one or more energy storage elements such as capacitors, or transformers to efficiently transfer energy from the input to the output at periodic intervals. The fundamental boost converter studied here consists of a power metal-oxide semiconductor field effect transistor switch, an inductor, a capacitor, a diode, and a pulse-width modulation circuit with oscillator, amplifier, and comparator. A buck converter containing a switched-mode power supply is also studied. In this paper, the electrical characteristics of DC/DC power converters are simulated by simulation program with integrated circuit emphasis (SPICE). Furthermore, power efficiency was analyzed based on the specifications of each component.

Integrated Current-Mode DC-DC Buck Converter with Low-Power Control Circuit

  • Jeong, Hye-Im;Lee, Chan-Soo;Kim, Nam-Soo
    • Transactions on Electrical and Electronic Materials
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    • 제14권5호
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    • pp.235-241
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    • 2013
  • A low power CMOS control circuit is applied in an integrated DC-DC buck converter. The integrated converter is composed of a feedback control circuit and power block with 0.35 ${\mu}m$ CMOS process. A current-sensing circuit is integrated with the sense-FET method in the control circuit. In the current-sensing circuit, a current-mirror is used for a voltage follower in order to reduce power consumption with a smaller chip-size. The N-channel MOS acts as a switching device in the current-sensing circuit where the sensing FET is in parallel with the power MOSFET. The amplifier and comparator are designed to obtain a high gain and a fast transient time. The converter offers well-controlled output and accurately sensed inductor current. Simulation work shows that the current-sensing circuit is operated with an accuracy of higher than 90% and the transient time of the error amplifier is controlled within $75{\mu}sec$. The sensing current is in the range of a few hundred ${\mu}A$ at a frequency of 0.6~2 MHz and an input voltage of 3~5 V. The output voltage is obtained as expected with the ripple ratio within 1%.

저-전력 전력 관리 회로를 위한 DC-DC 변환기 (DC-DC Converter for Low-Power Power Management IC)

  • 전현덕;윤범수;최중호
    • 전기전자학회논문지
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    • 제22권1호
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    • pp.174-179
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    • 2018
  • 본 논문에서 저전력 PMIC를 위한 고효율 DC-DC 변환기를 설계하였다. IoT 및 웨어러블 기기의 발전에 따라 전력 공급을 위한 고효율 에너지 습득 기술이 중요해지고 있다. 에너지 습득을 통해서 얻을 수 있는 전압은 낮고 넓은 분포의 값을 가지므로 이를 사용하기 위해서 넓은 입력 전압 범위에서 고효율을 얻을 수 있는 설계 기법이 필수적이다. 넓은 입력 전압 범위에서 일정한 스위칭 주파수를 얻기 위해 전원 전압 변화 감지 회로를 이용한 주파수 보상 회로를 설계했으며, 낮은 전력에서 고효율을 얻기 위해 burst-mode 제어 회로를 구성하여 정밀한 스위칭 동작을 제어하였다. 설계한 DC-DC 벅 변환기는 0.95~3.3V의 입력 전압 조건에서 0.9V를 출력하며 부하 전류가 180uA일 때 최대 78%의 효율을 얻을 수 있다.