• Title/Summary/Keyword: 불꽃 점화

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An Experimental Study on the Reducing Method of Spurious Emission at the Spark Plug Cable (스파크 플러그 케이블에서 복사되는 불요 전자파 감소 방안에 대한 실험적 연구)

  • Kang, Sang-Won;Choe, Gwang-Je;Hur, Jung
    • Journal of IKEEE
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    • v.17 no.1
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    • pp.10-15
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    • 2013
  • This paper, we analyzed that the measured data of the radiated power spectrum of electromagnetic waves of the normal spark ignition system and the spark ignition system with feed through type ceramic condenser. The results show that the strength of power spectrum radiated from the system with feed through type ceramic condenser is weaker than the normal system, and the density of power spectrum radiated from the system with feed through type ceramic condenser is smaller than the normal system. From these results, the feed through type ceramic condenser can reduce the electromagnetic waves radiating from the spark ignition system which is the spurious emission, and it can be concluded that the ignition coil of the spark ignition system generating high voltage pulse is equivalent to the radio frequency oscillator which is oscillating high frequency from a electronic point of view.

A Study on lgnition Voltage Control for Gasoline Engine Using Inverter (인버터를 사용한 가솔린엔진 점화전압 제어에 관한 연구)

  • 김광조;김남호
    • The Proceedings of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.11 no.5
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    • pp.74-79
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    • 1997
  • 본 논문은 현재 사용되고 있는 가솔린엔진의 전기불꽃방전 점화장치의 점화전압에 대하여 조사하고, 점화전압을 엔진의 다양한 회전형태에 따라 적절하게 제어하는 방법에 대하여 연구하고 실험한 것이다. 기존의 점화장치는 고속회전에서는 통전시간의 제한으로, 그리고 기동시 에는 전지의 단자전압이 저하하여 높은 전기불꽃방전용 고전압을 얻을 수 없음으로 인하여, 고속성능이 저하하고 기동이 불확실해 진다. 이 실험에서 엔진의 회전형태에 따라 점화전압을 적절하게 제어함으로서 이러한 문제점들을 실용적으로 개선할 수 있음을 보여주었다.

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Analysis of Electromagnetic Wave for Spark Plug Cable in Distributorless Spark Ignition System (무배전기식 불꽃 점화 시스템의 점화 플러그 케이블에서 발생되는 전자파의 분석)

  • Kang, Sang-Won;Choe, Gwang-Je;Hur, Jung
    • The Journal of the Institute of Internet, Broadcasting and Communication
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    • v.13 no.2
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    • pp.121-125
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    • 2013
  • It is an analysis about electromagnetic wave which is generated from a Spark plug cable of Distributorless spark ignition system. In case of Distributorless spark ignition system, high frequency generation is an ignition coil and Spark plug cable and Spark plug could be activated with electromagnetic wave radiation antenna. I calculated a resonant frequency with HFSS by measuring length of Spark plug cable and Spark plug. The antenna was considered as ${\lambda}/4$ monopole antenna in this calculation. According to power spectrum measurement analysis of engine room radiated electromagnetic wave and calculated Resonant frequency, it is possible to find out that the Distributorless spark ignition system radiates high frequency energy in certain frequency band.

저항회로의 개폐불꽃에 의한 폭발성 가스의 점화한계에 관한 연구

  • 김재욱;이춘하
    • Proceedings of the Korean Institute of Industrial Safety Conference
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    • 1997.11a
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    • pp.129-134
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    • 1997
  • 가스폭발사고를 방지하기 위하여 사용하는 방폭형 전기기기중에서 본질안전 방폭구조는 폭발위험장소에 설치되는 전기기기 및 배선의 어떤 부분에서 정상동작 및 사고시(단락, 지락, 단선 등)에 발생하는 불꽃, 아크, 과열이 주위에 있는 폭발성 가스에 점화되지 않도록 한 구조로서, 회로의 전압과 전류를 폭발성 가스의 점화한계 이하가 되도록 구성하는 원리이며 국내외에서 사용이 증가추세에 있다. (중략)

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A Study on the Explosion Hazard by Spark Discharge of the Lithium-Ion Battery (리튬이온전지의 불꽃방전에 의한 폭발위험성에 관한 연구)

  • Lee, Chun-Ha;Jee, Seung-Wook;Kim, Shi-Kuk
    • Journal of the Korean Institute of Gas
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    • v.14 no.3
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    • pp.14-20
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    • 2010
  • This paper was studied on the explosion hazard by spark discharge of the lithium-ion battery. The experimental samples were chosen lithium-ion battery(general, notebook) which were used for source of portable equipment. The IEC(International Electrotechnical Commission) type spark ignition test apparatus and experimental gases such as methane, propane, ethylene or hydrogen were used for explosiveness test. It was confirmed through the experiment that the explosion hazard by spark discharge. Also, it was used thermal imager for confirm that spontaneous ignition possibility by short-circuit. As the result, this paper verified that lithium-ion battery should be used and designed by special attention safety in the hazardous zone which is existed explosiveness gas.

A Study on The Ignition Limit of Flammable Gases by Discharge Spark of Resistive Circuit (저항회로의 개폐불꽃에 의한 폭발성 가스의 점화한계에 관한 연구)

  • Lee Chun-Ha
    • Journal of the Korean Institute of Gas
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    • v.1 no.1
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    • pp.106-112
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    • 1997
  • This study measured the ignition limits of methane-air, propane-air, ethylene-air, and hydrogen-air mixture gases by discharge spark of D.C. power resistive circuit. The used experimental device is the IEC type spark ignition test apparatus, it consists of explosion chamber and supply -exhaust system of mixture gas. Mixture gases (methane-air, propane-air, ethylene-air, and hydrogen-air) were put into explosion chamber of IEC type spark ignition test apparatus, then it was confirmed whether ignition was made by 3,200 times of discharge spark between tungsten electrode and cadmium electrode. The ignition limits were found by increasing or decreasing the value of current. For the exact experiment, the ignition sensitivity was calibrated before and after the experiment in each condition. The ignition limits were found by changing the value of concentration of each gas-air mixture in D.C. 24 [V] resistive circuit. As the result of experiment, it was found that the minimum ignition limit currents exist at the value of methane-air 8.3 [$Vol\%$], propane-air 5.25[$Vol\%$], ethylene-air 7.8 [$Vol\%$], and hydrogen-air 21[$Vol\%$] mixture gases. For each the minimum ignition concentration of gases, the relationships between voltage and minimum ignition current were found. The results are as follows. - The minimum ignition limits are decreasing in the order of methane, propane, ethylene, and hydrogen. - The value of ignition current is inversely proportional to the value of source voltage. - The minimum ignition limit currents increase sharply at more than 2 [A]. The reason is caused by overheating the electrode.

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Chemical kinetic models for predicting SI engine knocking (불꽃 점화기관의 노킹을 예측하는 화학적 모델)

  • 박병완
    • Journal of the korean Society of Automotive Engineers
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    • v.13 no.4
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    • pp.35-42
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    • 1991
  • 본 연구에서는 말단가스의 온도, 압력 그리고 농도가 변화함에 따라 어떻게 자동점화가 일어나는지를 서술하는 chemical kinetic model에 대하여 서술한다. 먼저 자동점화 현상을 화학적으로 modelling하는데 두가지 다른 접근방식에 대해 서술하고 각각 model의 예측치와 실험치와의 상관관계를 알아본 후, 마지막으로 두 model을 비교하여 본다.

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Development of Electric Current Control Unit for Automobile Ignition Coil (자동차 점화코일 충전 전류제어 장치 개발)

  • Kim, Doo-Hyun;Choi, Seok-Won;Cho, Beom-Joon
    • Proceedings of the Korea Multimedia Society Conference
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    • 2012.05a
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    • pp.156-157
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    • 2012
  • 본 논문은 불꽃 점화 방식 엔진에서 차량의 주행상태에 따른 점화코일의 전류량을 측정하여 추가적인 전류를 공급하는 충전 전류제어 장치를 고안하였다. 점화 코일의 전류를 안정적으로 공급하고 과전류를 방지함으로써 차량 엔진의 출력 향상 및 효율적인 연소가 가능하도록 하였으며, 다이나모 장비를 이용하여 출력과 토크에 대한 성능평가를 하였다. 실험결과는 제안하는 장치의 유효성을 보여주었다.

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A Study on Minimum Ignition Energy by Controlled Discharge Energy (방전에너지 제어에 의한 최소점화에너지의 고찰)

  • 최상원;대택돈
    • Proceedings of the Korean Institute of Industrial Safety Conference
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    • 2003.05a
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    • pp.303-308
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    • 2003
  • 가연성 물질의 최소점화에너지(Minimum Ignition Energy; MIE)를 아는 것은 화학공정 등의 안전성 평가에 중요한 것이다. 현재 MIE의 측정에는 주로 용량성 불꽃방전이 이용되고 있다. 용량이 큰 커패시터를 이용한 방전에서는 MIE가 크게 되는 경향이 있고, MIE가 회로정수에 의존한다는 것이 실험적으로 알려져 있다. 이 현상은 방전회로의 시정수와 점화를 위한 에너지의 수송시간과의 관계에 의해 이론적으로 설명하는 것이 가능하게 되었다.(중략)

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A Study on the Controller having Disturbances in Spark Ignition Engine (불꽃점화 기관에 외란에 안정한 제어기 연구)

  • 이영춘;정진호;윤여홍;이성철
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2000.11a
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    • pp.153-156
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    • 2000
  • This paper presents an PID type fuzzy based method for nohnear engine idle controller The output is a duty cycle(DC) for driving a idle speed cont개l valve(1SCV). For precise control of SI engine, the CPS sensor and coolant temperature are used. Visual C* language is used to make simulation panel for the fast and precise idle speed control. The dSPACE board and supported Control desk program is used in experiment ta the same purpose as simulation. The experimental results have a good agreement with simulation ones.

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