Numerical simulation and cold experimental research of a low-NOx combustion technology for pulverized low-volatile coal
Wang, Jing1; Zheng, Kailiang2; Singh, Ravinder2; Lou, Helen2; Hao, Jiangping3; Wang, Baofeng1; Cheng, Fangqin1
刊名APPLIED THERMAL ENGINEERING
2017-03-05
卷号114页码:498-510
关键词Low-NOx burner Tangentially fired boiler Decoupling combustion Low-volatile coal
ISSN号1359-4311
英文摘要Large quantities of low-volatile coal are utilized in power plants throughout China. With increasingly stringent environmental regulations, it is important to develop and deploy low-NOx combustion technologies for pulverized coal boilers burning low-volatile coal. The objective of this study was to investigate a novel decoupling combustion system for low-volatile coal via experiments and computational fluid dynamics (CFD). The combustion system includes horizontal fuel-rich/lean low-NOx burners (LNB) and the associated air distribution system for a polygonal tangentially fired boiler (PTFB). The effects of coal particle diameter and coal feeding rate on the gas/particle flow characteristics of the burner, and the cold state aerodynamic field of the PTFB were analyzed in detail. The structural design of the LNB results in advantageous gas/particle flow characteristics and the PTFB improved the distribution of the flow field. The CFD models and simulation results were validated by comparing with those of cold experiments data. The simulation results demonstrated that this low-NOx combustion technology enhances staged combustion at different scales, which can reduce NOx generation significantly. In the industrial application on a 300 MW pulverized coal boiler, installation of the LNBs improved the stability of low-volatile coal combustion and reduced NOx emissions significantly. These research findings provide valuable guidance to the design of low-NOx combustion system for pulverized coal boilers using low volatile coal. (C) 2016 Elsevier Ltd. All rights reserved.
WOS标题词Science & Technology ; Physical Sciences ; Technology
类目[WOS]Thermodynamics ; Energy & Fuels ; Engineering, Mechanical ; Mechanics
研究领域[WOS]Thermodynamics ; Energy & Fuels ; Engineering ; Mechanics
关键词[WOS]TANGENTIALLY-FIRED FURNACE ; FUEL-RICH/LEAN BURNER ; UTILITY BOILER ; FLOW ; EMISSION ; MOISTURE ; BURNOUT ; SCALE
收录类别SCI
语种英语
WOS记录号WOS:000395725400045
内容类型期刊论文
源URL[http://ir.ipe.ac.cn/handle/122111/22066]  
专题过程工程研究所_多相复杂系统国家重点实验室
作者单位1.Shanxi Univ, Inst Resource & Environm, State Environm Protect Key Lab Efficient Utilizat, Taiyuan 030006, Peoples R China
2.Lamar Univ, Dan F Smith Dept Chem Engn, Beaumont, TX 77710 USA
3.Chinese Acad Sci, Inst Proc Engn, State Key Lab Multi phase Complex Syst, Beijing 100190, Peoples R China
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Wang, Jing,Zheng, Kailiang,Singh, Ravinder,et al. Numerical simulation and cold experimental research of a low-NOx combustion technology for pulverized low-volatile coal[J]. APPLIED THERMAL ENGINEERING,2017,114:498-510.
APA Wang, Jing.,Zheng, Kailiang.,Singh, Ravinder.,Lou, Helen.,Hao, Jiangping.,...&Cheng, Fangqin.(2017).Numerical simulation and cold experimental research of a low-NOx combustion technology for pulverized low-volatile coal.APPLIED THERMAL ENGINEERING,114,498-510.
MLA Wang, Jing,et al."Numerical simulation and cold experimental research of a low-NOx combustion technology for pulverized low-volatile coal".APPLIED THERMAL ENGINEERING 114(2017):498-510.
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