西安交通大学动力工程多相流国家重点实验室,西安,710049
网络首发:2018-12-10,
纸质出版:2018
移动端阅览
要雅姝, 温渡, 周屈兰, 等. 高温水蒸气氛围中煤燃烧特性研究[J]. 西安交通大学学报, 2018,52(12):84-92.
Study on Combustion Characteristics of Coals in High Temperature Water Vapor Atmospheres[J]. 2018, 52(12): 84-92.
要雅姝, 温渡, 周屈兰, 等. 高温水蒸气氛围中煤燃烧特性研究[J]. 西安交通大学学报, 2018,52(12):84-92. DOI: 10.7652/xjtuxb201812013.
Study on Combustion Characteristics of Coals in High Temperature Water Vapor Atmospheres[J]. 2018, 52(12): 84-92. DOI: 10.7652/xjtuxb201812013.
针对煤燃烧过程中产生大量NO
x
的问题
提出了在燃烧系统中加入高温水蒸气来实现低氮燃烧的方案
并对此进行了热力学计算和实验研究。根据标准摩尔反应吉布斯自由能变、标准摩尔反应焓和平衡常数
理论计算了加入高温水蒸气后煤的挥发分燃烧过程中各反应发生的可能性和限度。反应路径推测的结果表明:高温水蒸气氛围中
在煤燃烧的温度区间内可能进行N元素转化为N
2
的反应。利用HSC Chemistry软件计算了过量空气系数不同时
在系统中加入不同含量的高温水蒸气后的平衡态组分。热力学计算结果表明:当过量空气系数在0.6~0.8、温度在700~800 ℃时
向燃烧体系中加入高温水蒸气可以抑制NO
x
生成; 高温水蒸气的含量增加时
NO
x
减少率增加。利用煤粉固定床燃烧实验系统进行了在水蒸气和空气氛围中煤粉的燃烧特性实验。实验结果表明:加入高温水蒸气抑制了NO
x
的生成
且优于计算结果; NO
x
减少率与水蒸气体积分数呈现非线性关系。该研究可为煤的低氮燃烧提供经济高效的参考方案。
A scheme of adding high temperature water vapor to the combustion system to achieve low-nitrogen combustion is proposed to reduce NO
x
production during coal combustion
and its thermodynamic calculation and experimental research are carried out. Firstly
the possibility and limitation of the reactions in the volatile combustion process of coal after adding high temperature water vapor are examined by theoretical calculation based on the standard molar reaction Gibbs free energy change
the standard molar enthalpy and the equilibrium constant. Results of reaction path speculation show that in the high temperatu
re water vapor atmosphere
the reactions of converting N element to N
2
occur in the temperature range of coal combustion. Secondly
in reactions with various excess air coefficients
the equilibrium components after adding different concentrations of high temperature water vapor are calculated using the software HSC Chemistry. Results of the thermodynamic calculation show that the reaction of NO
x
precursor to N
2
happens in a wide temperature range: when the temperature ranges from 700 to 800 and excess air coefficient lies between 0.6 and 0.8
the formation of NO
x
significantly reduces by adding high temperature water vapor; Reduction rate of NO
x
increases with the concentration of high temperature water vapor increasing. Eventually
the combustion characteristics of pulverized coal in water vapor and air atmosphere are tested in a pulverized coal fixed bed combustion experiment system. It shows that the formation of NO
x
is inhibited by adding high temperature water vapor and the effect is better that the result of the thermodynamic calculation
and the NO
x
reduction rate has a nonlinear relation with the water vapor concentration and the temperature. This study may provide an economical and efficient reference solution to low NO
x
combustion of coal.
翁非. 中国能源结构特征及发展前瞻 [J]. 经济视角(下旬刊), 2012(3): 90-92.
顾卫荣, 周明吉. 火电厂烟气脱硝国内市场分析 [J]. 化工进展, 2012, 31(11): 2581-2585.
GU Weirong, ZHOU Mingji. Denitrification industry of power plant [J]. Chemical Industry and Engineering Progress, 2012, 31(11): 2581-2585.
TIGGES K D, LEISSE A, LASTAUS D, et al. The development of low pollutant Pulverized-fuel firing systems [J]. VGB Krafwerkstechnik English Version, 1996, 76(5): 358-363.
BLEVINS L G, ROBY R J. An experimental study of NOx reduction in laminar diffusion flames by addition of high levels of steam [C]∥Proceedings of the 1995 International Gas and Aeroengine Congress and Exposition. New York, USA: ASME, 1995: V003T06A-054.
CAI Lei, ZOU Chun, GUAN Yanwen, et al. Effect of steam on ignition of pulverized coal particles in oxy-fuel combustion in a drop tube furnace [J]. Fuel, 2016, 182: 958-966.
GIL M V, RIAZA J, ÁLVAREZ L, et al. A study of oxy-coal combustion with steam addition and biomass blending by thermogravimetric analysis [J]. Journal of Thermal Analysis and Calorimetry, 2012, 109(1): 49-55.
ZHANG Liang, ZOU Chun, WU Di, et al. A study of coal chars combustion in O2/H2O mixtures by thermogravimetric analysis [J]. Journal of Thermal Analysis and Calorimetry, 2016, 126(2): 995-1005.
ACUTE A, LVAREZ L, RIAZA J, et al. NO emissions in oxy-coal combustion with the addition of steam in an entrained flow reactor [J]. Greenhouse Gases Science and Technology, 2011, 1(2): 180-190.
武洋仿, 景晓霞, 孙鸿, 等. 煤种及气氛对煤热解中NH3和HCN释放的影响 [J]. 山西化工, 2008, 28(1): 18-20.
WU Yangfang, JING Xiaoxia, SUN Hong, et al. Effect of coal and reaction gas on NH3 released during coal pyrolysis [J]. Shanxi Chemical Industry, 2008, 28(1): 18-20.
苟湘, 周俊虎, 周志军, 等. 水蒸气对煤粉燃烧生成NO的影响 [J]. 热力发电, 2007, 36(10): 4-8.
GOU Xiang, ZHOU Junhu, ZHOU Zhijun, et al. The influence of water vapor upon formation of NO in combustion of pulverized coal [J]. Thermal Power Generation, 2007, 36(10): 4-8.
田路泞, 陈振辉, 王贤华, 等. 水蒸气和石灰石对流化床富氧燃烧NO的影响 [J]. 华中科技大学学报(自然科学版), 2014, 42(8): 95-99.
TIAN Luning, CHEN Zhenfeng, WANG Xianhua, et al. Effect of steam and limestone on NO during oxy-fuel fluidized bed combustion [J]. Journal of Huazhong University of Science and Technology(Natural Science Edition), 2014, 42(8): 95-99.
陈移峰. 生物质与煤矸石混合热解与燃烧特性实验研究 [D]. 重庆: 重庆大学, 2007: 33-34.
杨波. 煤焦水蒸气气化过程中含N气体产物的析出特性 [J]. 能源研究与管理, 2013(3): 29-31.
YANG Bo. Formation of N-containing gas-phase species from char gasification in steam [J]. Energy Research and Management, 2013(3): 29-31.
葛华才, 袁高清, 彭程. 物理化学 [M]. 北京: 高等教育出版社, 2008: 35-36.
刘艳华, 车得福, 李荫堂, 等. X射线光电子能谱确定铜川煤及其焦中氮的形态 [J]. 西安交通大学学报, 2001, 35(7): 661-665.
LIU Yanhua, CHE Defu, Li Yintang, et al. X-ray photoelectron spectroscopy determination of the forms of nitrogen in Tongchuan coal and its chars [J]. Journal of Xi'an Jiaotong University, 2001, 35(7): 661-665.
赵科, 谭厚章, 周屈兰, 等. 煤的模型化合物热解过程中HCN、NH3的逸出规律 [J]. 热能动力工程, 2004, 19(3): 246-248.
ZHAO Ke, TAN Houzhang, ZHOU Qulan, et al. The law of HCN and NH3 escape during the pyrolysis of model compounds of coal [J]. Journal of Engineering for Thermal Energy and Power, 2004, 19(3): 246-248.
毕勇. Gasmet便携式傅里叶变换红外气体分析仪及其在环境应急监测中的应用 [J]. 现代科学仪器, 2011(4): 90-92.
BI Yong. Gasmet handy Fourier transform infrared spectrometer and application examples in environmental emergency monitoring [J]. Modern Scientific Instruments, 2011(4): 90-92.
汪映,白元启,王鹏,等.高辛烷值组分对正庚烷着火燃烧特性的影响.2018,52(11):30-36.[doi:10.7652/xjtuxb201811 005]
刘璐萱,李志刚,李军.进口端壁不重合对跨声速透平叶栅端壁流动和传热特性影响的研究.2018,52(11):37-44.[doi:10.7652/xjtuxb201811006]
何子奇,高忠权,贾伟东,等.低频交流电场对甲烷/空气预混火焰影响的机理研究.2018,52(11):45-50.[doi:10.7652/xjtuxb201811007]
冯雪佳,王顺森.在煤富氧燃烧下的超临界CO2再压缩循环的热力学分析.2018,52(11):100-105.[doi:10.7652/xjtuxb 201811015]
马志豪,贾义,陈占耀,等.燃料在亚/超临界环境下的喷射现象学研究.2018,52(9):127-133.[doi:10.7652/xjtuxb201809 017]
陶子宸,王长安,王鹏乾,等.半焦富氧燃烧扩散效应研究.2018,52(9):155-161.[doi:10.7652/xjtuxb201809021]
邢超,张晓明,赵亚琳,等.利用图像信息熵差检测炉渣碳质量分数.2018,52(8):49-53.[doi:10.7652/xjtuxb201808008]
王振林,李祥晟,庄士超,等.旋进涡核与火焰面耦合作用对燃烧稳定性影响的数值研究.2018,52(7):60-67.[doi:10.7652/xjtuxb201807009]
孟浩,杨猛,何子奇玲,等.正直流电场对球形火焰影响的机理分析.2018,52(7):68-73.[doi:10.7652/xjtuxb201807010]
张烨苗,李倩倩,闫治宇,等.异辛烷掺混乙醇在高温下层流预混燃烧特性的研究.2018,52(7):74-79.[doi:10.7652/xjtuxb201807011]
0
浏览量
6
下载量
2
CSCD
关联资源
相关文章
相关作者
相关机构
京公网安备11010802024621