Numerical simulation of NOx emission characteristics during combustion in 350 MW supercritical cogeneration tangentially boiler
Author(s) -
Weishu Wang,
Zhihao Huang,
Miao Tian,
Jihong Wang,
Shan-Shan Shangguan,
Mingyu Yao
Publication year - 2020
Publication title -
thermal science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.339
H-Index - 43
eISSN - 2334-7163
pISSN - 0354-9836
DOI - 10.2298/tsci191010006w
Subject(s) - nox , boiler (water heating) , combustion , pulverized coal fired boiler , supercritical fluid , cogeneration , coal , nitrogen , materials science , environmental science , waste management , anthracite , nuclear engineering , chemistry , thermodynamics , electricity generation , engineering , organic chemistry , physics , power (physics)
In light of a 350 MW supercritical cogeneration tangential boiler, the combustion and the NOx release mechanism in the furnace were numerically simulated. The combustion characteristics were analyzed, and the influencing factors, such as the pulverized coal concentration, the velocity of separated over-fire air and the boiler load, on NOx release in the furnace were also systematically studied. The results show that the central air-flow in the furnace rises spirally, and an inverted V-type temperature distribution is formed. The generation of NOx can be effectively restrained by increasing the concentration of pulverized coal properly. Compared with the conventional concentration, the concentration of NOx at the furnace exit can be reduced by 29.63% by taking high pulverized coal concentration. The concentration of NOx at the furnace exit can be drastically reduced by increasing the velocity of separated over-fire air. When decreasing boiler load, the concentration of NOx at furnace exit declines at first and then increases.
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