• 제목/요약/키워드: Pulse frequency

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AL 및 AL합금의 저주파 PULSE MIG 용접법의 개발 (Development of Low Frequency Pulse MIG Welding Process for AL and its alloy)

  • 최병길;이사영;이승학;천성진
    • 전력전자학회:학술대회논문집
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    • 전력전자학회 1997년도 전력전자학술대회 논문집
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    • pp.45-48
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    • 1997
  • The low frequency pulsed MIG welding process of new current waveform control to switch over unit pulse conditions (pulse current, pulse duration) in the fixed cycle was developed and its effect were investigated for aluminium and its alloy. By using this new welding process, the bead appearance having clear ripple pattern, such as TIG welding bead can be obtained and the gap tolerance of lap and butt welding joint can be expanded.

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추력기 제어를 위한 PWPF 설계변수 설계 (PWPF Parameters Design for Thruster Control)

  • 김태석;이승우
    • 한국항공우주학회지
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    • 제45권10호
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    • pp.872-880
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    • 2017
  • 일반적으로 추력기는 on/off 제어 방식을 이용한다. Bang-Bang Control, PWM(Pulse Width Modulator), PWPF(Pulse Width Pulse Frequency) 등이 그 방법으로 많이 이용되고 있다. PWPF를 설계할 때 파라미터($K_m$, ${\tau}$, $U_{on}$, $U_{off}$, $U_m$)를 잘못 선정하면 위상 지연, 연료 낭비, 수명 감소 등이 발생한다. 그러므로 파라미터가 시스템 성능에 미치는 영향을 분석하고 적절한 파라미터를 선정하여야 한다. 본 논문은 정적 해석을 수행하여 PWPF 파라미터 설계방안을 제시하였으며, 동적 분석 및 시뮬레이션을 수행하여 설계변수에 미치는 상호 영향을 분석하였다.

완맥(緩脈)의 동서의학적(東西醫學的) 해석 -맥율(脈率)을 중심으로- (Detection and interpretation of wan-maeck by the pulse diagnostic apparatus -on the pulse/respiration rate-)

  • 박영배;강성길;김창환;고형균;김용석;이윤호;김성운;허웅;윤충화
    • 대한한의학회지
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    • 제18권1호
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    • pp.143-156
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    • 1997
  • This report was conducted to quantify the pulse/respiration ratio and set up the normal range of wan-maeck(緩脈). In order to objectify the pulse diagnosis and use as basic clinical index of Cold-Hot diagnosis, we developed the hardware and software for detection and interpretation of pulse/respiration ratio, pulse/expiration ratio, pulse/respiration ratio, inspiration time, expiration time, respiration frequency, respiration time, duration of one pulse and pulse and pulse rate per minute, The results were as follows; pulse/respiration ratio is $4.30{\pm}1.03$ times, pulse/respiration ratio is $1.60{\pm}0.32$ times, pulse/respiration ratio is $2.37{\pm}0.75$ times, inspiration time is $1.35{\pm}0.20$ sec, expiration time is $1.89{\pm}0.39$ sec, respiration frequency is $17.16{\pm}3.49$ times/min, total respiration time is $3.63{\pm}0.71$ sec, duration of a pulse is $0.86{\pm}0.15$ sec, pulse rate is $71.51{\pm}12.30$ times/min.

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HVC-고주파변압기 내장형 펄스전원장치를 이용한 Microwave Oven의 효율 향상 (Efficiency Improvement of Microwave Oven Using a Pulse Power Supply Embedded HVC-High Frequency Transformer)

  • 정병환;조준석;강병희;목형수;최규하
    • 대한전기학회논문지:전기기기및에너지변환시스템부문B
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    • 제53권3호
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    • pp.180-187
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    • 2004
  • A conventional power supply of a microwave oven has a 60Hz transformer and high voltage capacitor(HVC). Though it is very simple and has low cost, it has several problems such as large size, heavy weight and low efficiency To improve these problems, various high frequency inverter type power supply have been investigated and developed in recent years. But these cost is higher than the conventional one due to additional control circuit, fast switching devces. In this paper, a novel pulse power supply for microwave oven using high frequency transformer embedded HVC(High Voltage Capacitor) is proposed for down-sizing, cost reduction and efficient improvement. To verify the effectiveness of the proposed transformer, an equivalent circuit of transformer embedded HVC is derived and it's characteristic is described. And the validity of the proposed pulse power supply embedded HVC-high frequency transformer is shown by simulations and experiments accroding to various operating conditions.

A 40-W Flyback Converter with Dual-Operation Modes for Improved Light Load Efficiency

  • Kang, Jin-Gyu;Park, Jeongpyo;Gong, Jung-Chul;Yoo, Changsik
    • JSTS:Journal of Semiconductor Technology and Science
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    • 제15권4호
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    • pp.493-500
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    • 2015
  • A flyback converter operates with either pulse width modulation (PWM) or pulse frequency modulation (PFM) control scheme depending on the load current. At light load condition, PFM control is employed to reduce the switching frequency and thereby minimize the switching power loss. For heavier load, PWM control is used to regulate the output voltage of the flyback converter. The flyback controller has been implemented in a $0.35{\mu}m$ BCDMOS process and applied to a 40-W flyback converter. The light-load power efficiency of the flyback converter is improved up to 5.7-% comparing with the one operating with a fixed switching frequency.

Al:ZnO의 펄스 스퍼터 증착에서 주파수에 따른 플라즈마의 특성과 기판 온도 변화 (Plasma Characteristics and Substrate Temperature Change in Al:ZnO Pulse Sputter Deposition: Effects of Frequency)

  • 양원균;주정훈
    • 한국표면공학회지
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    • 제40권5호
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    • pp.209-213
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    • 2007
  • Change of the plasma volume by pulse frequency in a bipolar pulsed DC unbalanced magnetron sputtering was investigated. As increasing the frequency at off duty 10% and at a constant power, the plasma volume was lengthened in vertical direction from the AZO target. When there is an electrically floated substrate, the vertical length of the plasma area was not affected by the pulse frequency. Instead, the diameter of the plasma volume was increased. We found that the temperature rise of a substrate was affected by the pulse frequency, too. As increasing it, the maximum temperature rise of a glass substrate was decreased from $132^{\circ}C\;to\;108^{\circ}C$.

고전압 펄스 발생 장치의 관한 부하의 변화를 고려한 펄스회로의 이론적 연구 (Theoretical Study of Pulse Circuits with the Load Variation for Device of the High Voltage Pulse Generator)

  • 김영주;방상석;이채한;김상현
    • 조명전기설비학회논문지
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    • 제30권3호
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    • pp.106-112
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    • 2016
  • The high-voltage pulse generator consists of transformers of fundamental wave and harmonic waves, and shunt capacitors. The pulse has the fundamental wave and the harmonic waves that have been as a series circuit by the transformers to make high voltage pulse. This paper shows that pulse generator circuit is analyzed by using transformer equivalent circuits with the effect of load and simulated in time domain using Matlab program. The output voltage of pulse were obtained to 2.5kHz, 2.0kV. In high voltage circuit, capacitors are related to frequency band pass characteristics. Also, it is shown that the voltage of output pulse increases according to the growth of load.

샘플링율이 맥박변이도 시간 및 주파수 영역 분석에 미치는 영향 (An Effect of Sampling Rate to the Time and Frequency Domain Analysis of Pulse Rate Variability)

  • 양윤라;신항식
    • 전기학회논문지
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    • 제65권7호
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    • pp.1247-1251
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    • 2016
  • This study aims to investigate the effect of sampling frequency to the time domain and frequency domain analysis of pulse rate variability (PRV). Typical time domain variables - AVNN, SDNN, SDSD, RMSSD, NN50 count and pNN50 - and frequency domain variables - VLF, LF, HF, LF/HF, Total Power, nLF and nHF - were derived from 7 down-sampled (250 Hz, 100 Hz, 50 Hz, 25 Hz, 20 Hz, 15 Hz, 10 Hz) PRVs and compared with the result of heart rate variability of 10 kHz-sampled electrocardiogram. Result showed that every variable of time domain analysis of PRV was significant at 25 Hz or higher sampling frequency. Also, in frequency domain analysis, every variable of PRV was significant at 15 Hz or higher sampling frequency.

동의보감(東醫寶鑑)중 맥법(脈法)에 관한 연구(硏究) (A Study on the Way of Pulse-diagnosis by Dongeuibogam)

  • 주신탁;김정국;박원환
    • 대한한의진단학회지
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    • 제15권1호
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    • pp.1-28
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    • 2011
  • Objectives: A study on the importance and consistency of pulse-daignosis in the Dongeuibogam Methods: We used Deyeuk Dongeuibogam of Dongeuibogam publishing company from original photographic edition. Results: The frequency of 27 mek (pulse condition) in Dongeuibogam is as in the following. Bumek (Floating pulse) appeared 120(8.9%) times, wanmek (moderate pulse) appeared 28(2%) times, chokmek (running pulse) appeared 7 (0.5%) times, gyumek (hollow pulse) appeared 19 (1.4%) times, saekmek (uneven pulse) appeared 33 (2.4%) times, sapmek (uneven pulse) appeared 51 (3.8%) times, kyulmek (knotted pulse) appeared 18 (1.3%) times, whalmek (slippery pulse) appeared 69 (5.1%) times, chimek (slow pulse) appeared 43 (3.2%) times, demek (intermittent pulse) appeared 13 (1%) times, silmek (replete pulse) appeared 45 (3.3%) times, bokmek (deep-sited pulse) appeared 29 (2.1%) times, neomek (firm pulse) appeared 4 (0.3%) times, hyunmek (taut pulse) appeared 110 (8.1%) times, yumek (soft pulse) appeared 20 (1.5%) times, dongmek (short and rapid pulse) appeared 16 (1.2%) times, kinmek (tense pulse) appeared 67 (5%) times, yakmek (weak pulse) appeared 46 (3.4%) times, semek (thready pulse) appeared 62 (4.6%) times, hongmek (full pulse) appeared 50 (3.7%) times, jangmek (long pulse) appeared 14 (1%) times, sakmek (rapid pulse) appeared 103 (7.6%) times, mimek (indistinctive pulse) appeared 65 (4.8%) times, danmek (short pulse) appeared 16 (1.2%) times, demek (large pulse) appeared 106 (7.9%) times, chimmek (deep pulse) appeared 112 (8.3%) times, heomek appeared 70 (5.2%) times, sanmek (scattered pulse) appeared 14(1%)times. Conclusions: We can know Donguibogam is given on the basis 27mek (pulse condition), because the frequency of 27mek (pulse condition) is high. But there are another expressions. So we can not say that Donguibogam is consistent in expressing mekbub(the way of pulse-diagnosis).

Chopper Application for Magnetic Stimulation

  • Choi, Sun-Seob;Lee, Sun-Min;Kim, Jun-Hyoung;Kim, Whi-Young
    • Journal of Magnetics
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    • 제15권4호
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    • pp.213-220
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    • 2010
  • Since the hypothalamus immediately reacts to a nerve by processing all the information from the human body and the external stimulus being conducted, it performs a significant role in internal secretion; thus, a diverse and rapid stimulus pulse is required. By detecting Zero Detector accurately via the application of AVR on-Chip (ATMEL) using commercial electricity, chopping generates a stimulus pulse to the brain using an IGBT gate to designate a new magnetic stimulation following treatment and diagnosis. To simplify and generate a diverse range of stimuli for the brain, chopping can be used as a free magnetic stimulator. Then, commercial frequency (60Hz) is chopped precisely at the first level of the leakage transformer to deliver an appropriate stimulus pulse towards the hypothalamus when necessary. Discharge becomes stable, and the chopping frequency and duty-ratio provide variety after authorizing a high-pressure chopping voltage at the second level of the magnetic stimulator. These methods have several aims. The first is to apply a variable stimulus pulse via accurate switching frequency control by a voltaic pulse or a pulse repetition rate, according to the diagnostic purpose for a given hypothalamus. Consequently, the efficiency tends to increase. This experiment was conducted at a maximum of 210 W, a magnetic induced amplitude of 0.1~2.5 Tesla, a pulse duration of $200{\sim}350\;{\mu}s$, magnetic inducement of 5 Hz, stimulus frequency of 0.1~60 Hz, and a duration of stimulus train of 1~10 sec.