• Title/Summary/Keyword: Compensation Circuit

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Common Mode Noise Reduction for an LLC Resonant Converter by Using Passive Noise Cancellation

  • Ryu, Younggon;Kim, Sungnam;Jeong, Geunseok;Park, Jaesu;Kim, Duil;Park, Jongwook;Kim, Jingook;Han, Ki Jin
    • Journal of electromagnetic engineering and science
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    • v.15 no.2
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    • pp.89-96
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    • 2015
  • This paper describes the application of a passive noise cancellation method to a prototype inductor-inductor-capacitor (LLC) resonant converter by placing a compensation winding in a transformer to reduce common mode noise. The connection method for the compensation winding is investigated. A circuit analysis is implemented for the displacement currents between the primary and secondary windings in the transformer. The analyzed displacement currents are verified by performing a circuit simulation and a proper compensation winding connection that reduces common mode noise is found. The measurement results show that common mode noise is reduced effectively up to 20 dB in the 1 to 7 MHz frequency region for the prototype LLC resonant converter by using the proposed passive noise cancellation method.

Compensation of temperature characteristics by frequency control of an electronic ballastfor a compact fluorescent lamp (콤팩트 형광램프용 전자식 안정기의 주파수 제어에 의한 온도보상)

  • Song, Sang-Bin;Gwark, Jae-Young;Yeo, In-Seon
    • The Transactions of the Korean Institute of Electrical Engineers B
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    • v.48 no.1
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    • pp.27-33
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    • 1999
  • Compact fluorescent lamps are very sensitive to the variation of ambient temperature. This paper investigates the temperature characteristics of a 15[W] compact fluorescent lamp, and compensates the variation of light output by frequency control of its electronic ballast. Circuit parameters for the inverter of the electronic ballast are obtained by analyzing the R-L-C equivalent circuit for the inverter and the lamp. The optimum ratio of the two capacitance($C_1$/$C_2$), which are connected with the lamp in series and in parallel, respectively, is determined which consideration of the temperature variation within a range of 10~35[$^{\circ}C$]. As a result a value of 10 for the ratio is obtained at an operating frequency of 57[kHz], and with this value the frequency control works well for temperature compensation. Its validity is verified by investigating light output stabilization characteristics resulting from frequency control of the lamp at various temperatures.

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A Low-Power Current-Mode CMOS Voltage Reference Circuit (저전력 전류모드 CMOS 기준전압 발생 회로)

  • 권덕기;오원석
    • Proceedings of the IEEK Conference
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    • 1998.10a
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    • pp.1077-1080
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    • 1998
  • In this paper, a simple low-power current-mode CMOS wotage reference circuit is proposed. The reference circuit of enhancement-mode MOS transistors and resistors. Temperature compensation is made by adding a current component proportional to a thermal voltage to a current component proportional to a threshold voltage. The designed circuit has been simulated using a $0.65\mu\textrm{m}$ n-well CMOS process parameters. The simulation results show that the reference circuit has a temperature coefficient less than $7.8ppm/^{\circ}C$ and a power-supply(VDD) coefficient less than 0.079%/V for a temperature range from $-30^{\circ}C$ to $130^{\circ}C$ and a VDD range from 4.0V to 12V. The power consumption is 105㎼ for VDD=5V and $T=30^{\circ}C.$ The proposed reference circuit can be designed to generate a wide range of reference voltages owing to its current-mode operation.

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Design and characteristics of operating circuit for the LED Traffic Signal Lamp (LED 교통 신호등의 구동 회로 설계 및 특성)

  • No, Kyung-Ho;Lim, Byoung-No;Park, Jong-Yeun
    • Proceedings of the Korean Institute of IIIuminating and Electrical Installation Engineers Conference
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    • 2005.05a
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    • pp.106-110
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    • 2005
  • In this paper, LED traffic signal lamp's operating circuit using Flyback converter and PFC IC has been presented. Most power conversion circuits use PFC IC for Power Factor Correction. The design parameter's value of Flyback converter has been proposed and the error amplifier which regulates the output voltage has been designed Besides, the under voltage protection circuit and the over voltage protection circuit for protecting the operating circuit kin unbalance of common electric power source and the temperature compensation circuit for fixed optical output power have been proposed.

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Silicon-based 0.69-inch AMOEL Microdisplay with Integrated Driver Circuits

  • Na, Young-Sun;Kwon, Oh-Kyong
    • Journal of Information Display
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    • v.3 no.3
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    • pp.35-43
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    • 2002
  • Silicon-based 0.69-inch AMOEL microdisplay with integrated driver and timing controller circuits for microdisplay applications has been developed using 0.35 ${\mu}m$ l-poly 4-metal standard CMOS process with 5 V CMOS devices and CMP (Chemical Mechanical Polishing) technology. To reduce the large data programming time consumed in a conventional current programming pixel circuit technique and to achieve uniform display, de-amplifying current mirror pixel circuit and the current-mode data driver circuit with threshold roltage compensation are proposed. The proposed current-mode data driver circuit is inherently immune to the ground-bouncing effect. The Monte-Carlo simulation results show that the proposed current-mode data driver circuit has channel-to-channel non-uniformity of less than ${\pm}$0.6 LSB under ${\pm}$70 mV threshold voltage variaions for both NMOS and PMOS transistors, which gives very good display uniformity.

Design and Research on High-Reliability HPEBB Used in Cascaded DSTATCOM

  • Yang, Kun;Wang, Yue;Chen, Guozhu
    • Journal of Power Electronics
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    • v.15 no.3
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    • pp.830-840
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    • 2015
  • The H-bridge inverter is the fundamental power cell of the cascaded distribution static synchronous compensator (DSTATCOM). Thus, cell reliability is important to the compensation performance and stability of the overall system. The concept of the power electronics building block (PEBB) is an ideal solution for the power cell design. In this paper, an H-bridge inverter-based “plug and play” HPEBB is introduced into the main circuit and the controller to improve the compensation performance and reliability of the device. The section that discusses the main circuit primarily emphasizes the design of electrical parameters, physical structure, and thermal dissipation. The section that presents the controller part focuses on the principle of complex programmable logic device -based universal controller This section also analyzes typical reliability and anti-interference issues. The function and reliability of HPEBB are verified by experiments that are conducted on an HPEBB test-bed and on a 10 kV/± 10 Mvar DSTATCOM industrial prototype.

The Analysis and Compensation of DC to DC Converter with Current Mode Controller (전류모드제어를 적용한 직류전원장치의 해석 및 보상에 관한 연구)

  • 김철진;김영태;송요창
    • The Transactions of the Korean Institute of Electrical Engineers B
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    • v.52 no.5
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    • pp.230-237
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    • 2003
  • Current mode control has been used for DC to DC converters for over twenty years. There are many different control schemes which use the inductor current signal in one way or another to control the DC to DC converter. In this paper, the state space averaging technique is applied for the analysis of flyback type current mode control circuit. We made real converter for the guarantee of stable output characteristic and proper design of feedback circuit. The validity of proposed method is verified from test result. The improvement of stability is confirmed by sinusoidal signal injection method with isolated transformer. It is known that phase margin is sufficient and gain crossover frequency fc is early 1/5 of switching frequency, fs, from the experimental result with frequency response analyzer.

A New Current Compensation Estimation Method For Single Phase Active Power Filter (단상 액티브 파워 필터를 위한 새로운 전류 보상 방법)

  • 곽상신;이무영
    • Proceedings of the IEEK Conference
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    • 1998.10a
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    • pp.819-822
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    • 1998
  • A new active power filter (APF) circuit with a current compesation estimation method is proposed. The current compensation estimation method replaces a current sensor with an estimating circuit and therefore reduces the implementation cost In addition, a simple control scheme, based on the energy balance concept, is adopted to control the voltage of a DC capacitor. Therefore energy change in the DC capacitor can be compensanted in the next cycle. Since a sampling technique is used, a larger DC capacitor voltage ripple can be permissible and a relatively smaller DC capacitor can be used. The proposed method has advantages of the reduction of one current sensor, low implementation cost, and fast transient responses. The theoretical analysis and simulation results are given. The proposed control method is successfully verified by computer simulation.

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Coil-Capacitor Circuit Design of a Transcutaneous Energy Transmission System to Deliver Stable Electric Power

  • Choi, Seong-Wook;Lee, Min-Hyong
    • ETRI Journal
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    • v.30 no.6
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    • pp.844-849
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    • 2008
  • A new transcutaneous energy transmission (TET) system was developed for transmitting electrical power to an implanted device, such as an artificial heart in a patient's body. This new design can maintain a stable output voltage independent of the load resistance. The system includes a compensation capacitor to reduce energy loss and increase power transfer efficiency. Experimental results show that the output voltage of the receiving coil changes very little as the load resistance varies from 14.8 ${\Omega}$ to 15 $k{\Omega}$, which corresponds to a change in output power from 0.1 to 97 W.

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Compensation of Circuit Breaker Operating Characteristics for Synchronous Switching Controller (동기차단기용 개폐제어기의 차단성 동작특성 보상)

  • Lee, W.Y.;Park, K.Y.;Chong, J.K.;Kim, H.J.
    • Proceedings of the KIEE Conference
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    • 2003.04a
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    • pp.53-55
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    • 2003
  • It is indispensable to compensate the switching characteristic variation of circuit breakers in use due to the change of operating conditions in order to get the reliable performance of controlled switching. In this paper the compensation measures against main factors such as temperature, control voltage, idle time and operating number are described. And the performance of the proposed measure is verified through the experimental results.

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