• 제목/요약/키워드: auto-ignition

검색결과 148건 처리시간 0.017초

노말테트라데칸의 연소특성치 측정에 의한 위험성 평가 (The Evaluation of Hazard by Measurement of Combustible Characteristics of n-Tetradecane)

  • 하동명
    • 한국안전학회지
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    • 제27권5호
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    • pp.70-76
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    • 2012
  • For the safe handling of n-tetradecane, the lower flash points and the upper flash point, fire point, AITs (auto-ignition temperatures) by ignition delay time were experimented. Also lower and upper explosion limits by using measured the lower and upper flash points for n-tetradecane were calculated. The lower flash points of n-tetradecane by using closed-cup tester were measured $104^{\circ}C$ and $112^{\circ}C$. The lower flash points and fire point of n-tetradecane by using open cup tester were measured $113^{\circ}C$ and $115^{\circ}C$, respectively. This study measured relationship between the AITs and the ignition delay times by using ASTM E659 apparatus for n-tetradecane. The experimental AIT of n-tridecane was $207^{\circ}C$. The calculated lower and upper explosion limit by using measured lower $104^{\circ}C$ and upper flash point $140^{\circ}C$ for n-tetradecane were 0.63 Vol.% and 3.18 Vol%.

가솔린 균일 예혼합 압축착화 엔진의 착화시점 검출 (Start of Combustion Detection Method for Gasoline Homogeneous Charge Compression Ignition Engine)

  • 최두원;이민광;선우명호
    • 한국자동차공학회논문집
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    • 제16권4호
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    • pp.151-158
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    • 2008
  • Gasoline Homogeneous Charge Compression Ignition (HCCI) combustion is a new combustion concept. Unlike the conventional internal combustion engine, the premixed fuel mixture with high residual gas rate is auto-ignited and burned without flame propagation. There are several operating factors which affect HCCI combustion such as start of combustion (SOC), residual gas fraction, engine rpm, etc. Among these factors SOC is a critical factor in the combustion because it affects exhaust gas emissions, engine power, fuel economy and combustion characteristics. Therefore SOC of gasoline HCCI should be controlled precisely, and SOC detection should be preceded SOC control. This paper presents a control oriented SOC detection method using 50 percent normalized difference pressure. Normalized difference pressure is defined as the normalized value of difference pressure and difference pressure is difference between the in-cylinder firing pressure and the motoring pressure. These methods were verified through the HCCI combustion experiments. The SOC detection method using difference pressure provides a fast and precise SOC detection.

사이클로펜탄올의 연소특성치의 측정 (The Measurement of Combustible Properties of Cyclopentanol)

  • 하동명
    • 한국가스학회지
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    • 제18권2호
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    • pp.35-40
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    • 2014
  • 사이클로펜탄올의 안전한 취급을 위해, 폭발한계는 문헌을 통해 고찰하였으며, 인화점과 발화지연시간에 의한 자연발화온도는 장치를 이용하여 측정하였다. 그 결과, 사이클로펜탄올의 밀페식 장치에 의한 하부인화점은 $49^{\circ}C$로 측정되었으며, 개방식에서는 $59^{\circ}C$로 측정되었다. ASTM E659 장치를 사용하여 자연발화온도와 발화지연시간을 측정하였고, 사이클펜탄올의 최소자연발화온도는 $363^{\circ}C$로 측정되었다.

노말펜타데칸의 화재 및 폭발 특성치의 측정 (The Measurement of Fire and Explosion Properties of n-Pentadecane)

  • 하동명
    • 한국안전학회지
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    • 제28권4호
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    • pp.53-57
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    • 2013
  • For the safe handling of n-pentadecane, the lower flash points and the upper flash point, fire point, AITs(auto-ignition temperatures) by ignition delay time were experimented. Also lower and upper explosion limits by using measured the lower and upper flash points for n-pentadecane were calculated. The lower flash points of n-pentadecane by using closed-cup tester were measured $118^{\circ}C$ and $122^{\circ}C$. The lower flash points and fire point of n-pentadecane by using open cup tester were measured $126^{\circ}C$ and $127^{\circ}C$, respectively. This study measured relationship between the AITs and the ignition delay times by using ASTM E659 apparatus for n-pentadecane. The experimental AIT of n-pentadecane was $195^{\circ}C$. The calculated lower and upper explosion limit by using measured lower $118^{\circ}C$ and upper flash point $174^{\circ}C$ for n-pentadecane were 0.54 Vol.% and 6.40 Vol.%.

DME와 Diesel의 HCCI 연소특성 비교 (DME and Diesel HCCI Combustion Characteristics)

  • 이주광;국상훈;박철웅;배충식
    • 한국연소학회:학술대회논문집
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    • 대한연소학회 2003년도 제27회 KOSCO SYMPOSIUM 논문집
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    • pp.231-236
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    • 2003
  • HCCI(Homogeneous Charge Compression Ignition) combustion is an advanced combustion process explained as a homogeneously premixed charge of a fuel where air is admitted into the cylinder and compression ignited. It has possibility to reduce NOx by spontaneous auto-ignition at multiple points that allows very lean combustion resulting in low combustion temperatures. Particulate matters (PM) could be also reduced by the homogeneous combustion and no fuel-rich zones. Injection timing is extremely advanced to achieve homogeneous charge where a diesel fuel could not be vaporized sufficiently due to low pressure and low temperature condition. Also the over-penetration could be a severe problem. The small injection angle and multi-hole injectors were applied to solve these problems. Dimethyl ether (DME) as an altenative fuel was also applied to relive the bad vaporization problem associated with early injection of diesel fuel. Neat DME has a very high cetane rating and high vapor pressure. Contained oxygen reduces soot during the combustion. Experimental result shows DME can be easily operated in an HCCI engine. PM shows almost zero value and NOx is reduced more than 90% compared to direct-injection diesel engine operating mode but problem of early ignition needs more investigation.

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사이클로헥사논의 화재 및 폭발 특성치의 측정 및 고찰 (The Measurement and Investigation of Fire and Explosion Characteristics of Cyclohexanone)

  • 하동명
    • 한국화재소방학회논문지
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    • 제25권4호
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    • pp.28-34
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    • 2011
  • 사이클로헥사논의 안전한 취급을 위해서 $25^{\circ}C$에서 폭발한계를 고찰하였고, 실험장치를 이용하여 하부 인화점과 발화지연시간에 의한 발화온도를 측정하였다. 공정의 안전을 위해서 사이클로헥사논의 폭발하한계는 1.1 Vol.%($100^{\circ}C$), 상한계는 9.4 Vol.%를 추천하였고, 하부인화점은 밀폐계에서 $42{\sim}43^{\circ}C$와 개방식에서 $49{\sim}51^{\circ}C$로 측정되었다. ASTM E659-78 장치를 사용하여 자연발화온도와 발화지연시간을 측정하였고, 여기서 측정된 최소자연발화온도는 $415^{\circ}C$였다.

DME 예혼합 압축착화 엔진에서 질소와 이산화탄소의 영향 (Effect of Nitrogen and Carbon Dioxide on DME Homogeneous Charge Compression Ignition Engine)

  • 장진영;배충식
    • 한국자동차공학회논문집
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    • 제16권5호
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    • pp.171-178
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    • 2008
  • The combustion and exhaust emission characteristics were investigated in an DME fueled HCCI engine. Carbon dioxide, nitrogen and mixed gas, which was composed of carbon dioxide and nitrogen, were used as control parameters of combustion and exhaust emission. As the oxygen concentration in induction air, which was occurred by carbon dioxide, nitrogen and mixed gas, was reduced, the start of auto-ignition was retarded and the burn duration was extended due to obstruction of combustion and reduction of combustion temperature. Due to these fact, indicated mean effective pressure was increased and indicated combustion efficiency was decreased by carbon dioxide, nitrogen and mixed gas. In case of exhaust emission, hydrocarbon and carbon monoxide was increased by reduction of oxygen concentration in induction air. Especially, partial burning was appeared at lower than about 18% of oxygen concentration by supplying carbon dioxide. However it was overcome by intake air heating.

아니솔의 연소특성치의 측정에 의한 MSDS의 적정성 (Appropriateness of MSDS by Means of the Measurement of Combustible Properties of Anisole)

  • 하동명
    • 한국화재소방학회논문지
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    • 제29권2호
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    • pp.20-24
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    • 2015
  • 아니솔의 안전한 취급을 위해, 폭발한계는 문헌을 통해 고찰하였고, 인화점과 발화지연시간에 의한 발화온도를 측정하였다. 그 결과, 밀폐식 장치에 의한 아니솔의 하부인화점은 $39^{\circ}C$$42^{\circ}C$로 측정되었으며, 개방식에서는 $50^{\circ}C$$54^{\circ}C$로 측정되었다. ASTM E659 장치를 사용하여 자연발화온도와 발화지연시간을 측정하였고, 아니솔의 최소자연발화온도는 $390^{\circ}C$로 측정되었다. 측정된 하부인화점에 의한 폭발하한계는 1.07 Vol%로 계산되었다.

사이클로헥산올의 연소특성치의 측정 (The Measurement of Combustible Properties of Cyclohexanol)

  • 하동명
    • 한국화재소방학회논문지
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    • 제28권2호
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    • pp.64-68
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    • 2014
  • 사이클로헥산올의 안전한 취급을 위해, 폭발한계는 문헌을 통해 고찰하였고, 인화점과 발화지연시간에 의한 발화온도를 측정하였다. 그 결과, 밀폐식 장치에 의한 사이클로헥산올의 하부인화점은$60^{\circ}C{\sim}64^{\circ}C$로 측정되었으며, 개방식에서는 $66^{\circ}C{\sim}68^{\circ}C$로 측정되었다. ASTM E659 장치를 사용하여 자연발화온도와 발화지연시간을 측정하였고, 사이클로헥산올의 최소자연발화온도는 $297^{\circ}C$로 측정되었다. 측정된 하부인화점과 상부인화점에 의한 폭발하한계는 0.95 Vol%, 상한계는 10.7 Vol%로 계산되었다.

노말헥사데칸의 화재 및 폭발 특성치의 측정 (The Measurement of Fire and Explosion Properties of n-Hexadecane)

  • 하동명
    • 한국안전학회지
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    • 제29권3호
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    • pp.39-45
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    • 2014
  • For the safe handling of n-hexadecane, the lower flash points and the upper flash point, fire point, AITs(auto-ignition temperatures) by ignition delay time were experimented. Also lower and upper explosion limits by using measured the lower and upper flash points for n-hexadecane were calculated. The lower flash points of n-hexadecane by using the Setaflash and the Pensky-Martens closed testers were measured $128^{\circ}C$ and $126^{\circ}C$, respectively. The lower flash points of the Tag and the Cleveland open cup testers were measured $136^{\circ}C$ and $132^{\circ}C$, respectively. The fire points of the Tag and the Cleveland open cup testers were measured $144^{\circ}C$. respectively. This study measured relationship between the AITs and the ignition delay times by using ASTM E659 apparatus for n-hexadecane. The experimental AIT of n-hexadecane was $200^{\circ}C$. The calculated lower and upper explosion limit by using measured lower $128^{\circ}C$ and upper flash point $180^{\circ}C$ for n-hexadecane were 0.42 Vol.% and 4.70 Vol.%.