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微焰燃烧技术在小体积燃气热水器上的研究与应用
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作者 李冲 何巍巍 《日用电器》 2024年第11期42-49,共8页
本文主要针对燃气热水器中现有燃烧器火焰高度高、燃烧系统体积大等问题进行了测试分析,并采用数值分析与实验验证相结合的手段,提出了相应的优化方案。通过对燃烧器引射段、头部、火口形状的重新设计,提出了微焰燃烧技术,并实现了火焰... 本文主要针对燃气热水器中现有燃烧器火焰高度高、燃烧系统体积大等问题进行了测试分析,并采用数值分析与实验验证相结合的手段,提出了相应的优化方案。通过对燃烧器引射段、头部、火口形状的重新设计,提出了微焰燃烧技术,并实现了火焰高度降低25 %以上。并通过设计无盘管风冷降温燃烧系统,以及对燃烧系统的一、二次空气系数、火焰均匀性等进行了优化,实现了燃烧系统体积缩小,使微焰燃烧技术应用在小体积燃气热水器上。 展开更多
关键词 燃气热水器 燃烧 微焰燃烧 风冷降温 小体积
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微焰燃烧器火焰稳定性实验与CFD分析对比探讨
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作者 余艺源 罗伟平 《日用电器》 2023年第11期129-134,共6页
本文通过对微焰燃烧器火焰稳定性实验及模型CFD分析对比,在流速分布空气系数a=0的条件下,测得的火焰高度界线及未燃气体边界线和CFD分析得出的流速分布线趋势一致;在空气系数为a>1的条件下,燃气浓度越低,火焰的颜色越深且高度高,未... 本文通过对微焰燃烧器火焰稳定性实验及模型CFD分析对比,在流速分布空气系数a=0的条件下,测得的火焰高度界线及未燃气体边界线和CFD分析得出的流速分布线趋势一致;在空气系数为a>1的条件下,燃气浓度越低,火焰的颜色越深且高度高,未燃气体边界线越低;在空气系数a<1的条件下,燃气浓度越高颜色越浅;燃气浓度不均及流速分布不均的情况下,火焰稳定性余量小,烟气排放高,过剩空气系数可选范围小,燃气浓度和流速均匀,火焰稳定性好,烟气排放低,过剩空气系数可选范围广。 展开更多
关键词 微焰燃烧 稳定性 CFD分析
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Effects of wall thickness and material on flame stability in a planar micro-combustor 被引量:1
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作者 LIU Lei ZHAO Liang FAN Ai-wu 《Journal of Central South University》 SCIE EI CAS CSCD 2019年第8期2224-2233,共10页
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 stabi... 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. 展开更多
关键词 MICRO-COMBUSTOR flame stability flame inclination blowout limit heat recirculation heat loss
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