• Title/Summary/Keyword: HACA Mechanism

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Soot and PAH Formation in Counterflow Diffusion Flames of Ethylene-Propane (에틸렌/프로판 대향류 확산화염에서 PAH 와 매연의 생성특성)

  • Yoon, Seung-Suk;Lee, Sang-Min;Hwang, Jun-Young;Chung, Suk-Ho
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.26 no.6
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    • pp.817-822
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    • 2002
  • Sooting characteristics of counterflow ethylene/propane mixture flames have been experimentally studied to investigate the fuel structure effect on PHM and soot formation. Laser-induced incandescene and laser-induced fluorescene techniques were employed to measure soot volume fraction and polycyclic aromatic hydrocarbon (PAH) concentration, respectively. Importance of $C_{3-}$species on PAH growth as well as the H-abstraction-C$_2$ $H_2$addition (HACA) mechanism has been emphasized, considering that PAH growth rate is greater for with mixed fuel than fer pure fuel flames. It was also confirmed that HACA pathways are the dominant soot growth mechanism. A new PAH growth model including both $C_{2-}$ and $C_{3-}$growth mechanisms is proposed based on the experimental results.

Soot formation in Counterflow diffusion of ethylene/propane mixtures (에틸렌/프로판 대향류 확산화염에서 매연생성특성에 대한 실험적 연구)

  • Yoon, S.S.;Lee, S.M.;Hwang, J.Y.;Chung, S.H.
    • 한국연소학회:학술대회논문집
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    • 2000.12a
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    • pp.229-235
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    • 2000
  • Soot formation characteristics in counterflow diffusion flames of ethylene/propane/nitrogen mixtures have been studied experimentally to investigate the soot formation mechanism. The effect of HACA reaction on PAH and soot growth has been experimentally investigated by using 2-D planar LII and PAH LIF techniques.

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Effects of CO Addition on Soot Formation in the Well Stirred Reactor (WSR에서 매연 생성에 관한 CO 첨가 효과)

  • Jeong, Tae-Hee;Lee, Eui-Ju
    • Fire Science and Engineering
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    • v.26 no.5
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    • pp.35-40
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    • 2012
  • Numerical investigation was performed to study on the soot formation characteristics in the WSR according to the CO addition. Ethylene and pure air were used as a fuel and an oxidizer, respectively, and three different equivalence ratios (2.0, 2.5, 3.0) were used in the calculation. The resulted CO mole fraction of 10 % CO addition showed the maximum value in spite of the least CO supply. This means that the conversion of CO to soot and other carbon compounds is weakened under incipient soot formation. The soot volume fraction was decreased with increasing the CO addition because the important species for soot formation such as pyrene and acetylene, were decreased with the addition of CO. When the equivalence ratio was 2.5, the soot volume fraction shows the highest value, which results from the contribution of fuel rich condition and reacting temperature. Furthermore, surface growth rate and species concentrations justified the HACA mechanism for soot formation.