Modeling of Tar Removal in a Partial Oxidation Burner: Effect of Air Injection on Temperature, Tar Conversion, and Soot Formation

二次空气喷射 燃烧室 烟灰 燃烧 tar(计算) 部分氧化 气流 计算流体力学 小学(天文学) 流量(数学) 化学 废物管理 氧气 材料科学 化学工程 环境科学 极限氧浓度 煤气燃烧器 工艺工程 分析化学(期刊) 核工程 燃油喷射 废气 燃烧室 流体力学 热力学
作者
Yongbin Wang,Guoqiang Cao,Sen Wang,Donghai Hu,Zhongren Ba,Chunyu Li,Jiantao Zhao,Yitian Fang
出处
期刊:Processes [Multidisciplinary Digital Publishing Institute]
卷期号:13 (12): 3903-3903
标识
DOI:10.3390/pr13123903
摘要

In this study, a three-dimensional computational fluid dynamic (CFD) model was constructed and validated against experimental data. The oxygen injection methods—specifically the primary air flow and secondary air flow—were investigated. The results demonstrate that primary air flow is the dominant factor in combustion. An increase of primary air from an φ of 0.20 to 0.75 lead to a rise in combustion peak temperature from 892.17 K to 1321.02 K, while simultaneously expending the flame combustion zone and enhancing the conversion of C10H8 and CH4. Conversely, increasing the secondary air flow from 1 L/min to 7 L/min reduced the centrally measured temperatures form 886.09 K to 856.07 K due to irregular flow patterns, which expanded the central low-temperature region. While secondary air flow promoted more uniform reactant conversion and slightly suppressed intermediate products (e.g., soot, C6H6), its overall effect was secondary to that of the primary air. This research reveals a critical design insight: using primary air injection to introduce oxygen into the reactor is a reasonable approach. The findings provide valuable guidance for optimizing partial oxidation burner design and operating conditions to maximize tar conversion while maintaining reactor integrity. The study also establishes a rigorously validated CFD framework for analyzing complex reacting flows in tar thermochemical conversion reactors.
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