太原理工大学热能工程系,太原,310024
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纸质出版:2020
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马红和 1, 李军 1, 周璐 1, 等. 多孔壁风耦合空气分级条件下煤粉燃烧的数值模拟[J]. 西安交通大学学报, 2020,54(10):137-143.
Numerical Simulation of Pulveri-ed Coal Combustion in Staged Air Coupling with Multi-Hole Wall Air[J]. 2020, 54(10): 137-143.
马红和 1, 李军 1, 周璐 1, 等. 多孔壁风耦合空气分级条件下煤粉燃烧的数值模拟[J]. 西安交通大学学报, 2020,54(10):137-143. DOI: 10.7652/xjtuxb202010017.
Numerical Simulation of Pulveri-ed Coal Combustion in Staged Air Coupling with Multi-Hole Wall Air[J]. 2020, 54(10): 137-143. DOI: 10.7652/xjtuxb202010017.
为阐明多孔壁风耦合空气分级对煤粉燃烧的作用特性
利用商业软件Ansys Fluent进行了数值模拟研究
并采用用户自定义函数法(UDF)编译写入了焦炭气化反应和NO被焦炭异相还原的宏文件。探究了燃烧炉中流场、温度场和主要组分浓度场的分布规律
分析了多孔壁风对NO
x
排放和燃烧效率的影响。结果表明:多孔壁风系数存在优化值
此时不会明显影响炉内的燃烧组织; 多孔壁风可在主燃区和还原区壁面形成空气膜
其中
主燃区空气膜中氧气体积分数大于4%
还原区不低于2%
阻止了还原性气体的腐蚀; 多孔壁带入还原区的氧气能够与焦炭结合
在焦炭表面生成含氧络合物C(O)
既能强化NO的异相还原
又能促进焦炭在燃尽区燃烧。
Numerical simulation using Ansys Fluent software is performed to clarify the combustion characteristics of pulveri-ed coal in staged air coupling with multi-hole wall air
and a user defined function method(UDF)is used to compile and write macro documents of char gasification reaction and NO dissimilar reduction by char. The distributions of flow field
temperature field and concentration field of major species are investigated
and the influence of multi-hole wall air on NO
x
emission and combustion efficiency is analy-ed. Calculating results show that: there exits an optimal multi-hole wall air ratio
and in this case the combustion is not affected adversely; an air film is formed near the wall
and the oxygen concentrations in the primary and reduction -ones are abov
e 4% and 2%
respectively
thus the corrosion due to the reducing species is prevented; the complex C(O)is produced on the char surface in the reduction -one
which enhances the reduction of NO and promotes the
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