Effects of wall thickness and material on flame stability in a planar micro-combustor壁面厚度和材料对平板型微燃烧器中火焰稳定性的影响

被引:0
作者
Lei Liu
Liang Zhao
Ai-wu Fan
机构
[1] China Tabacco Hubei Industrial Limited Liability Company,State Key Laboratory of Coal Combustion
[2] Huazhong University of Science and Technology,undefined
来源
Journal of Central South University | 2019年 / 26卷
关键词
micro-combustor; flame stability; flame inclination; blowout limit; heat recirculation; heat loss; 微燃烧器; 火焰稳定性; 火焰倾斜; 吹熄极限; 热循环; 热损失;
D O I
暂无
中图分类号
学科分类号
摘要
Flame is prone to lose its stability in micro-combustors due to the large amount of heat loss from the external walls. On the other hand, heat recirculation through the upstream combustor walls can enhance flame stability. These two aspects depend on the structural heat transfer, which is associated with the thickness and thermal conductivity of the combustor walls. In the present study, the effects of wall thickness and material on flame stability were numerically investigated by selecting two thicknesses (δ=0.2 and 0.4 mm) and two materials (quartz and SiC). The results show that when δ=0.2 mm, flame inclination occurs at a certain inlet velocity in both combustors, but it happens later in SiC combustor. For δ=0.4 mm, flame inclination still occurs in quartz combustor from a larger inlet velocity compared to the case of δ=0.2 mm. However, flame inclination in SiC combustor with δ=0.4 mm does not happen and it has a much larger blowout limit. Analysis reveals that a thicker wall can enhance heat recirculation and reduce heat loss simultaneously. Moreover, SiC combustor has larger heat recirculation ratio and smaller heat loss ratio. In summary, the micro-combustor with thicker and more conductive walls can harvest large flame stability limit.
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页码:2224 / 2233
页数:9
相关论文
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