Improving gas/particle flow deflection and asymmetric combustion of a 600 MWe supercritical down-fired boiler by increasing its upper furnace height

被引:12
作者
Kuang, Min [1 ]
Zhu, Qunyi [2 ]
Ling, Zhongqian [3 ]
Ti, Shuguang [4 ]
Li, Zhengqi [2 ]
机构
[1] Ningbo Univ, Fac Maritime & Transportat, Ningbo 315211, Zhejiang, Peoples R China
[2] Harbin Inst Technol, Sch Energy Sci & Engn, Harbin 150001, Peoples R China
[3] China Jiliang Univ, Inst Thermal Engn, Hangzhou 310018, Zhejiang, Peoples R China
[4] Zhengzhou Univ Light Ind, Sch Bldg Environm Engn, Zhengzhou 450002, Peoples R China
基金
中国国家自然科学基金;
关键词
Down-fired boiler; Flow-field deflection; Asymmetric combustion; Upper furnace height; NOX EMISSION CHARACTERISTICS; STAGED-AIR DECLINATION; COAL UTILITY BOILER; MULTIPLE-INJECTION; ANTHRACITE COMBUSTION; SECONDARY-AIR; PERFORMANCE; FUEL;
D O I
10.1016/j.energy.2017.04.002
中图分类号
O414.1 [热力学];
学科分类号
070201 [理论物理];
摘要
A solution characterized by lengthening its short upper furnace was put forward for improving the gas/particle flow deflection and asymmetric combustion within a 600 MWe supercritical down-fired boiler. Based on the present design dimensionless upper furnace height C-H2 = 0.864, upper furnace was lengthened in turn to C-H2 = 1.00, 1.125, and 1.263 so as to form four comparable settings. Accordingly, cold-modeling gas/particle flow experiments and numerical simulations on coal combustion were performed at these settings for confirming the solution and meanwhile recommending a reasonable C-H2 setup. Moreover, real-furnace measurements, used to confirm the numerical simulation validity, were carried out under normal full load. Results at the design setting (C-H2 = 0.864) show shat a severely deflected gas/particle flow field appears, with (i) the downward gas/particle flow penetrating much deeper in the front-half side than in the rear-half side and (ii) the upward flow fully deflecting towards the front-half side. Consequently, a bad asymmetric combustion pattern with gas temperatures being much higher in the rear-half side than in the front-half side (temperature gap reaching about 300-600 degrees C) develops, generating poor burnout and high NOx emissions. Additionally, the simulated results are consistent well with the acquired real-furnace data. In comparison with cold-modeling gas/particle flow experiments, the simulated downward gas/particle flow penetrates clearly shallower in a hot environment. Lengthening upper furnace apparently weakens both the experimental and simulated flow-field deflection and meanwhile improves the asymmetric gas velocity distribution in the upper furnace. As C-H2 increases to 1.125 and 1.263, both the experimental and simulated flow-field symmetries are acceptable, accompanied by symmetrical gas velocity distribution in the upper furnace, improved burnout rate, and lowered NOx emissions. A comprehensive consideration of symmetrical combustion, high burnout rate, relatively low NOx emissions, and controlled cost for lengthening upper furnace suggests that a reasonable C-H2 should be set at 1.125. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:581 / 593
页数:13
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