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Effect of pulverized coal particles on emission characteristics of aggregate drying pulverized coal burner

  • Jing WANG Haiying CHENG Zhiyong HU Zhenliang WANG
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  • College of Mechanical Engineering, Inner Mongolia University of Technology, Hohhot, Inner Mongolia 010051, China

Received date: 2017-11-29

  Revised date: 2018-03-22

  Online published: 2018-12-19

Abstract

Pulverized coal used as fuel of burner in the process of aggregate drying had the significant economic and comprehensive benefits. However, pulverized coal combustion generated a variety of noxious gases which polluted the atmosphere. Effective reduction of pollutant emission was significant for pulverized coal burner’s industrialization and became an important issue in coal combustion. Pulverized coal particle size affected the turbulence, diffusion and coupled motion of internal flow field in pulverized coal burner, thus affected its emission characteristics. Based on the technology of aggregate drying and followed the essential mechanism of coal combustion, a three-dimensional physical model was established by the modeling software CREO. Computer aided engineering software Gambit was used to make unstructured mesh generation for the pulverized coal burner. Control model of pulverized coal combustion behavior was constructed to simulate the internal fields of aggregate drying pulverized coal burner in Fluent software. The standard k?? model was used to describe the turbulent motion of turbulent flow in the process of pulverized coal combustion, and the P1 radiation model was used to describe the phenomenon of thermal radiation and heat transfer between solid phase and air phase. The stochastic particle trajectory model was used to describe the dispersion of discrete phase and the eddy dissipation model was used to describe the motion and combustion of turbulent eddy. The kinetics/diffusion-limited model was chosen as the combustion model in process of pulverized coal combustion. The influence of pulverized coal particle size on emission characteristics during pulverized coal combustion process in aggregate drying was analysed with the pollutant mass fraction as the evaluation standard. The results showed that with the increase of particle size, because of incomplete combustion of pulverized coal, the CO emission increased and the CO2 emission declined. With the increase of particle size, the emission of SO2 grew, the optimal emission of NO was when pulverized coal particle size was 100 μm.

Cite this article

Jing WANG Haiying CHENG Zhiyong HU Zhenliang WANG . Effect of pulverized coal particles on emission characteristics of aggregate drying pulverized coal burner[J]. The Chinese Journal of Process Engineering, 2018 , 18(6) : 1245 -1252 . DOI: 10.12034/j.issn.1009-606X.217425

References

[1] 王庆. 我国煤粉锅炉直流与旋流燃烧器的发展概况及特点分析[J]. 长沙大学学报,2008,(02):40-43.
Wang Q. Development and Characteristic Analysis of Impellerless and Swirl Pulverized Coal Burners[J]. Journal of Changsha University, 2008, (02):40-43.
[2] 冯兆兴,安连锁,李永华,等.煤粉燃烧器污染物排放特性的实验研究[J].动力工程,2007,(3):427-431
Feng Z X, An L X, Li Y H, et al. Experimental Study on Pollutant Emission Characteristics[J]. Journal of Chinese Society of Power Engineering, 2007, (3):427-431
[3] 王雪瑶.四通道煤粉燃烧器流场数值模拟研究[D].武汉理工大学,机械工程学院,2006.4
Wang X Y. Numerical Simulation Research of the Flow Field with Four-Channel Coal Burner[D]. Wuhan University of Technology, Mechanical Engineering, 2006.4
[4] 程海鹰,彭亚洲,王振亮,李建新. 煤粉种类对骨料烘干煤粉燃烧器排放特性的影响分析[J]. 煤炭技术,2016,(09):209-211.
Chen H Y, Peng Y Z, Wang Z L, Li J X. Analysis of Effect of Pulverized Coal Type on Emission Characteristics of Aggregate Drying Pulverized Coal Burner[J]. Coal Technology, 2016, (09):209-211.
[5] 程海鹰,王振亮,许立州. 骨料烘干煤粉燃烧器一次风参数设计与分析[J]. 内蒙古工业大学学报(自然科学版),2014,33(02):105-111.
Cheng H Y, Wang Z L, Xu L Z. Design and Analysis of Primary Air Parameters for Aggregate Dry Pulverized Coal Burners[J]. Journal of Inner Mongolia University of Technology (Natural Science Edition), 2014, 33(02):105-111.
[6] 王振亮,程海鹰,张语涵,付中华. 二次风口个数对煤粉燃烧器燃烧效率的影响[J]. 煤矿机械,2015,36(11):128-130.
Wang Z L, Cheng H Y, Zhang Y H, Fu Z H. Influence of Number of Secondary Air Vents on Pulverized Coal Burner Combustion Efficiency. Coal Mine Machinery, 2015, 36(11):128-130.
[7] 田建成. 面向骨料烘干的煤粉燃烧器结构设计与造型[J]. 科技创新与应用,2016,(19):73.
Tian J C. Structural Design and Molding of Pulverized Coal Burners for Aggregate Drying [J]. Technology Innovation and Application, 2016, (19):73.
[8] 王晓琴. 新型煤粉燃烧器的结构优化及数值模拟[D].重庆大学,2011.
Wang X Q. Structural Optimization and Numerical Simulation of New Pulverized Coal Burner[D]. Chongqing University, 2011.
[9] 唐家毅,卢啸风,刘汉周,陈继辉. 国外低NOx煤粉燃烧器的研究进展及发展趋势[J]. 热力发电,2008,(02):13-18.
Tang J Y, Lu X F, Liu H Z, Chen J H. Research Progress and Development Trend of Foreign Low NOx Pulverized Coal Burners[J]. Thermal Power Generation, 2008, (02):13-18.
[10] 周俊虎,赵玉晓,刘建忠,杨卫娟,周志军,岑可法. 低NOx煤粉燃烧器技术的研究进展与前景展望[J]. 热力发电,2005,(08):1-6+67.
Zhou J H, Zhao Y X, Liu J Z, Yang W J, Zhou Z J, Cen K F. Research Progress and Prospect of Low NOx Pulverized Coal Combustor Technology[J]. Thermal Power Generation, 2005, (08):1-6+67.
[11] 沈国清,师云泽,王彦博,蒋泓亮,张世平,安连锁. 声波激励对煤粉燃烧NOx生成的影响[J]. 燃烧科学与技术,2015,21(06):506-510.
Shen G Q, Shi Y Z, Wang Y B, Jiang H L, Zhang S P, An L S. Effect of Acoustic Excitation on NOx Generation of Coal Combustion[J]. Journal of Combustion Science and Technology, 2015,21(06):506-510.
[12] 王琳俊. 超细煤粉热解机理与燃烧过程NOx排放特性研究[D].上海交通大学,2015.
Wang L J. Study on Pyrolysis Mechanism and NOx Emission Characteristics of Superfine Pulverized Coal During Combustion[D]. Shanghai Jiaotong University, 2015.
[13] 张宏博,秦国彤,纪任山.煤粉燃烧过程的数值模拟[J].北京航空航天大学学报,2009,5(35):536-539
Zhang H B, Qin G T, Ji R S. Numerical Simulation of Pulverized-coal Combustion[J]. Journal of Beijing University of Aeronautics and Astronautics, 2009, 5(35):536-539
[14] 李永华,陈鸿伟,刘吉臻,等.煤粉燃烧器排放特性数值模拟[J].中国电机工程学报,2003,(3):166-169
Li Y H, Chen H W, Liu J Z, et al. Numerical Simulation of Pulverized Coal Burner Emission Characteristics[J]. Proceedings of the CSEE, 2003, (3):166-169
[15] Coimbra C F M, Azevedo J L T, Carvalho M G. 3-D Numerical Model for Predicting NOx Emissions from an Industrial Pulverized Coal Combustor [J]. Fuel , 1994, 73(7):623-629.
[16] Wang M Y, Bin Liao, Liu Y Q, Wang S B, Shan Q, Zhang A M. Numerical Simulation of Oxy-coal Combustion in a Rotary Cement Kiln[J]. Applied Thermal Engineering, 2016.
[17] Fiveland W A, Latham C E . Use of Numerical Modeling in the Design of a Low NOx Burner for Utility boiler[J]. Combust. Sci. And Tech, 1993, 93(2):53-72.
[18] Xue S, Hui S E, Liu T S, Zhou Q L, Xu T M, Hu H L. Experimental Investigation on NOx?Emission and Carbon Burnout from a Radially Biased Pulverized Coal Whirl Burner[J]. Fuel Processing Technology. 2009.
[19]?Li Z Q, Sun R, Sun S R, Wu S H, Qin Y K. Experimental Study on Characteristics of Gas-particle Flows with the Radial Bias Combustion (RBC) Swirl Pulverized Coal Burner and Influence of the Characteristics on Combustion[J]. Proceedings of the Chinese Society of Electrical Engineering.?1999,19(5):18-23.
[20]?Jiang X M,?Liu H, Yan C, Han X X, Zheng C G, Liu D C. NOx?and SO2?Emission and Combustion Characteristics of Super Fine Pulverized Coal Particle[J]. Journal of Chemical Industry and Engineering (China), 2004, 55(5): 783-787.
[21] Bai T?,?Sun B M, Guo Y H,?Kang Z Z. Effects of Tertiary Air Staged Combustion on NOx Emission Characteristic in a Pulverized-coal Boiler with Swirl Burner(C). 2011 Asia-Pacific Power and Energy Engineering Conference, APPEEC 2011.?2012, (155):255-263.
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