• Title/Summary/Keyword: Frequency Regulator

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LDO Linear Regulator Using Efficient Buffer Frequency Compensation (효율적 버퍼 주파수 보상을 통한 LDO 선형 레귤레이터)

  • Choi, Jung-Su;Jang, Ki-Chang;Choi, Joong-Ho
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.48 no.11
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    • pp.34-40
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    • 2011
  • This paper presents a low-dropout (LDO) linear regulator using ultra-low output impedance buffer for frequency compensation. The proposed buffer achieves ultra low output impedance with dual shunt feedback loops, which makes it possible to improve load and line regulations as well as frequency compensation for low voltage applications. A reference control scheme for programmable output voltage of the LDO linear regulator is presented. The designed LDO linear regulator works under the input voltage of 2.5~4.5V and provides up to 300mA load current for an output voltage range of 0.6~3.3V.

Robust Output Regulator with Frequency Adaptation Algorithm for Optical Disc Drives (광디스크를 위한 주파수 적응 알고리즘과 함께하는 강인 출력 제어기)

  • Kim, Sang-Hyun;Kim, Hyung-Jong;Shim, Hyung-Bo
    • Journal of the Institute of Electronics Engineers of Korea SC
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    • v.48 no.4
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    • pp.17-24
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    • 2011
  • This paper presents a control scheme to cancel periodic disturbance with unknown frequency for optical disc drives. The control scheme consists of an output regulator and a frequency adaptive algorithm. Here, the frequency adaptive algorithm based on IMP plays a role in obtaining a frequency of periodic disturbance. The stability analysis of whole system and disturbance rejection performance are proven by the singular perturbation theory. The contribution of this paper are as follows. (1) There is no design constraints of the frequency range. (2) Ability for perfect disturbance rejection is preserved even with uncertain plant model.

A 50-mA 1-nF Low-Voltage Low-Dropout Voltage Regulator for SoC Applications

  • Giustolisi, Gianluca;Palumbo, Gaetano;Spitale, Ester
    • ETRI Journal
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    • v.32 no.4
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    • pp.520-529
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    • 2010
  • In this paper, we present a low-voltage low-dropout voltage regulator (LDO) for a system-on-chip (SoC) application which, exploiting the multiplication of the Miller effect through the use of a current amplifier, is frequency compensated up to 1-nF capacitive load. The topology and the strategy adopted to design the LDO and the related compensation frequency network are described in detail. The LDO works with a supply voltage as low as 1.2 V and provides a maximum load current of 50 mA with a drop-out voltage of 200 mV: the total integrated compensation capacitance is about 40 pF. Measurement results as well as comparison with other SoC LDOs demonstrate the advantage of the proposed topology.

The Development of Evaluation Process for Dynamic Characteristics of Door Module (자동차용 모듈화 도어의 동특성 평가 시험법 개발)

  • Bae, Chul-Yong;Kim, Chan-Jung;Kwon, Seong-Jin;Lee, Bong-Hyun;Jang, Woon-Sung;Lee, Joon-Woo
    • Proceedings of the Korean Society for Noise and Vibration Engineering Conference
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    • 2007.11a
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    • pp.291-296
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    • 2007
  • This study presents the evaluation process for door module. Its objective evades the resonance generated at module plate due to the operation of window regulator motor. For this study, the design improvement process is composed of experimental methods having three steps. First step is modal analysis at door assembly status for acquisition of dynamic characteristics which are modal frequency and damping. Second step is a vibration experiment to get the test mode considered an efficiency of window regulator motor. Last step is a vibration measurement by the form of $6{\times}6$ array on module plate. A vibration measurement of 6x6 array form can be got to three analysis results which are a transfer path of vibration using cross correlation function, a vibration map using OA level and a contribution by frequency band using coherent output power spectrum on module plate. These results are applied to SDM(structural dynamic modification) for design improvement to get around the resonance on module plate by the excitation of window regulator motor.

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A Study on the Dynamic Characteristics of Door Module for Vehicle (자동차용 모듈화 도어의 동특성 분석에 관한 연구)

  • Bae, Chul-Yong;Kim, Chan-Jung;Kwon, Seong-Jin;Lee, Bong-Hyun;Jang, Woon-Sung;Lee, Joon-Woo
    • Transactions of the Korean Society for Noise and Vibration Engineering
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    • v.17 no.11
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    • pp.1093-1101
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    • 2007
  • This study presents the design improvement process for door module. Its objective evades the resonance generated at module plate due to the operation of window regulator motor. For this study, the design improvement process is composed of experimental methods having three steps. First step is modal analysis at door assembly status for acquisition of dynamic characteristics which are modal frequency and damping. Second step is a vibration experiment to get the test mode considered an efficiency of window regulator motor. Last step is a vibration measurement by the form of $6{\times}6$ array on module plate. A vibration measurement of $6{\times}6$ array form can be got to three analysis results which are a transfer path of vibration using cross correlation function, a vibration map using OA level and a contribution by frequency band using coherent output power spectrum on module plate. These results are applied to SDM(structural dynamic modification) for design improvement to get around the resonance on module plate by the excitation of window regulator motor.

High-Frequency PSR-Enhanced LDO regulator Using Direct Compensation Transistor (직접 보상 트랜지스터를 사용하는 고주파 PSR 개선 LDO 레귤레이터)

  • Yun, Yeong Ho;Kim, Daejeong;Mo, Hyunsun
    • Journal of IKEEE
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    • v.23 no.2
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    • pp.722-726
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    • 2019
  • In this paper, we propose a low drop-out (LDO) regulator with improved power-supply rejection (PSR) characteristics in the high frequency region. In particular, an NMOS transistor with a high output resistance is added as a compensation circuit to offset the high frequency noise passing through the finite output resistance of the PMOS power switch. The elimination of power supply noise by the compensating transistor was explained analytically and presented as the direction for further improvement. The circuit was fabricated in a $0.35-{\mu}m$ standard CMOS process and Specter simulations were carried out to confirm the PSR improvement of 26 dB compared to the conventional LDO regulator at 10 MHz.

High precision Automatic Voltage Regulator by using series transformer (직렬 변압기를 이용한 고정밀 자동전압조절기)

  • Zhang, Lei;Lee, Hwa-Chun;Jung, Tae-Uk;Nam, Hae-Kon;Nam, Soon-Ryul;Park, Sung-Jun
    • Proceedings of the KIPE Conference
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    • 2008.06a
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    • pp.574-576
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    • 2008
  • Now there are two types Non-contact compensation AC automatic voltage regulator (A.V.R). One is transformer compensation regulator, whose principle is the combination of multiple compensation transformers, do the compensation by turning on and off the connections of the transformer through the multi-full bridge circuit. This method removed the mechanical drive and contacts, which increases the life and the dynamic performance of the A.V.R. However, the compensation is multilevel, and it needs many compensation transformers and switches, the circuit is complex, the compensation precision is low. Another type is PWM switch AC regulator, whose principle is getting the AC voltage from the input, then induce the AC compensation voltage through commutating and high frequency PWM transforming, and phase tracking. Here the compensation is step-less, the compensation precision is high, and the response is fast. But the circuit is complex, and it needs an inverse compensation transformer, which is difficult to realize high-power applications. In this paper, it shows an Automatic Voltage Regulator which use high frequency PWM inverter do compensation. This A.V.R has the function as the custom-power, which make the performance of the power supply in a high level.

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Active neuro-adaptive vibration suppression of a smart beam

  • Akin, Onur;Sahin, Melin
    • Smart Structures and Systems
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    • v.20 no.6
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    • pp.657-668
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    • 2017
  • In this research, an active vibration suppression of a smart beam having piezoelectric sensor and actuators is investigated by designing separate controllers comprising a linear quadratic regulator and a neural network. Firstly, design of a smart beam which consists of a cantilever aluminum beam with surface bonded piezoelectric patches and a designed mechanism having a micro servomotor with a mass attached arm for obtaining variations in the frequency response function are presented. Secondly, the frequency response functions of the smart beam are investigated experimentally by using different piezoelectric patch combinations and the analytical models of the smart beam around its first resonance frequency region for various servomotor arm angle configurations are obtained. Then, a linear quadratic regulator controller is designed and used to simulate the suppression of free and forced vibrations which are performed both in time and frequency domain. In parallel to simulations, experiments are conducted to observe the closed loop behavior of the smart beam and the results are compared as well. Finally, active vibration suppression of the smart beam is investigated by using a linear controller with a neural network based adaptive element which is designed for the purpose of overcoming the undesired consequences due to variations in the real system.

Indirect self-tuning regulator with loopshaping

  • Han, Seong-Ho;Yoshihiro, Takita
    • 제어로봇시스템학회:학술대회논문집
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    • 2001.10a
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    • pp.47.6-47
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    • 2001
  • In this paper a new indirect robust self-tuning regulator is proposed including an inverse system of a plant and a robust compensator such that it achieves the desired frequency shape specified by solving the mixed H$\infty$ sensitivity problem within a prescribed tolerance in the H$\infty$ norm. Consequently, in the proposed self-tuning regulator, robust stability is guaranteed in spite of the identification error.

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Direct Torque Control for Induction Motors Using Fuzzy Variable Switching Sector (퍼지 가변스위칭 섹터기법를 이용한 유도전동기의 직접토크 제어)

  • 윤인식;서영민;류지수;이기상;홍순찬
    • 제어로봇시스템학회:학술대회논문집
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    • 2000.10a
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    • pp.233-233
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    • 2000
  • Direct torque control (DTC) scheme provides a very quick torque response without the complex field-orientation block and inner current regulation loop. DTC is known as an appropriate scheme for high power induction motet drives because it can be used at lower switching frequency. There are two major drawbacks with the application of DTC schemes : one is large current harmonics due to flux drooping in a low speed range, the other is that the inverter switching frequency is varying according to motor parameters and operating speed. Switching devices in the power electronics drives should be supported for relatively high switching frequency. In this paper, a P-type fuzzy controller to realize the variable switching sector scheme and a PID-type fuzzy switching frequency regulator are adopted. A meaningful contribution of this paper is to propose a simple realization scheme of the fuzzy switching frequency regulator. Simulation results show the effectiveness of those propositions.

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