Behavior of Low Strain Rate Flame Disks in Counterflow Diffusion Flame

A study was conducted to clarify flame characteristics through the evaluation of critical mole fractions at flame extinction and edge-flame oscillation of low strain rate flames using the global strain rate, velocity ratio, and burner distance as experimental variables. The transition from a shrinki...

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Main Authors: Jin Han Yun, Dae Geun Park, Sang In Keel, Jeong Park
Format: Article
Language:English
Published: SAGE Publishing 2009-12-01
Series:International Journal of Spray and Combustion Dynamics
Online Access:https://doi.org/10.1260/175682709789685813
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spelling doaj-f18ff45e924f4a90a60f15aaec28361f2020-11-25T03:19:58ZengSAGE PublishingInternational Journal of Spray and Combustion Dynamics1756-82771756-82852009-12-01110.1260/17568270978968581310.1260_175682709789685813Behavior of Low Strain Rate Flame Disks in Counterflow Diffusion FlameJin Han Yun0Dae Geun Park1Sang In Keel2Jeong Park3 Eco-Machinery Research Division, Korea Institute of Machinery & Materials, 171 Jang-dong, Yuseong-gu, Daejeon 305-343, Korea School of Mechanical Engineering, Pukyong National University, San 100, Yongdang-dong, Nam-gu, Busan 608-739, Korea Eco-Machinery Research Division, Korea Institute of Machinery & Materials, 171 Jang-dong, Yuseong-gu, Daejeon 305-343, Korea School of Mechanical Engineering, Pukyong National University, San 100, Yongdang-dong, Nam-gu, Busan 608-739, KoreaA study was conducted to clarify flame characteristics through the evaluation of critical mole fractions at flame extinction and edge-flame oscillation of low strain rate flames using the global strain rate, velocity ratio, and burner distance as experimental variables. The transition from a shrinking flame disk to a flame hole was verified through gradient measurements of the maximum flame temperature. Evidence of edge-flame oscillation in flame disks was also found using numerical simulations in zero and normal gravity. The main mechanisms of flame extinction and edge-flame oscillation were analyzed by comparing the energy fractions in the energy equation. For low strain rate flame disks, radial conduction heat loss rather than flame radiation was a significant contributor to flame extinction and even edge-flame oscillation. This was experimentally demonstrated by evaluating the critical mole fraction at flame extinction and edge-flame oscillation, as well as measurements of the flame temperature gradient along the flame disk surface. These results suggest that low strain rate flame responses are determined not only by one-dimensional flame responses, but also by multi-dimensional flame responses such as radial conduction heat loss. The results also show that extinction of low strain rate flames is more probably due to multi-dimensional heat losses than to radiative extinction.https://doi.org/10.1260/175682709789685813
collection DOAJ
language English
format Article
sources DOAJ
author Jin Han Yun
Dae Geun Park
Sang In Keel
Jeong Park
spellingShingle Jin Han Yun
Dae Geun Park
Sang In Keel
Jeong Park
Behavior of Low Strain Rate Flame Disks in Counterflow Diffusion Flame
International Journal of Spray and Combustion Dynamics
author_facet Jin Han Yun
Dae Geun Park
Sang In Keel
Jeong Park
author_sort Jin Han Yun
title Behavior of Low Strain Rate Flame Disks in Counterflow Diffusion Flame
title_short Behavior of Low Strain Rate Flame Disks in Counterflow Diffusion Flame
title_full Behavior of Low Strain Rate Flame Disks in Counterflow Diffusion Flame
title_fullStr Behavior of Low Strain Rate Flame Disks in Counterflow Diffusion Flame
title_full_unstemmed Behavior of Low Strain Rate Flame Disks in Counterflow Diffusion Flame
title_sort behavior of low strain rate flame disks in counterflow diffusion flame
publisher SAGE Publishing
series International Journal of Spray and Combustion Dynamics
issn 1756-8277
1756-8285
publishDate 2009-12-01
description A study was conducted to clarify flame characteristics through the evaluation of critical mole fractions at flame extinction and edge-flame oscillation of low strain rate flames using the global strain rate, velocity ratio, and burner distance as experimental variables. The transition from a shrinking flame disk to a flame hole was verified through gradient measurements of the maximum flame temperature. Evidence of edge-flame oscillation in flame disks was also found using numerical simulations in zero and normal gravity. The main mechanisms of flame extinction and edge-flame oscillation were analyzed by comparing the energy fractions in the energy equation. For low strain rate flame disks, radial conduction heat loss rather than flame radiation was a significant contributor to flame extinction and even edge-flame oscillation. This was experimentally demonstrated by evaluating the critical mole fraction at flame extinction and edge-flame oscillation, as well as measurements of the flame temperature gradient along the flame disk surface. These results suggest that low strain rate flame responses are determined not only by one-dimensional flame responses, but also by multi-dimensional flame responses such as radial conduction heat loss. The results also show that extinction of low strain rate flames is more probably due to multi-dimensional heat losses than to radiative extinction.
url https://doi.org/10.1260/175682709789685813
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AT daegeunpark behavioroflowstrainrateflamedisksincounterflowdiffusionflame
AT sanginkeel behavioroflowstrainrateflamedisksincounterflowdiffusionflame
AT jeongpark behavioroflowstrainrateflamedisksincounterflowdiffusionflame
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