Citation:
SU Ya-xin, REN Li-ming, SU A-long, DENG Wen-yi. NO reduction by methane on the surface of iron and iron oxides[J]. Journal of Fuel Chemistry and Technology,
;2013, 41(11): 1393-1400.
-
NO reduction by methane on the surface of iron and iron oxides was experimentally investigated in a one-dimensional temperature-programmed ceramic tubular reactor at 300~1 100℃ in both nitrogen and simulated flue gas atmospheres. To ensure that the residual methane after NO reduction and the intermediates (e.g. CO) formed during the NO reduction were completely burned out, a second furnace with a supply of O2 was connected in series after the first furnace. The results indicated that methane can effectively reduce NO to N2 over the surface of metallic iron and iron oxides. In N2 atmosphere, more than 95% of NO is reduced by methane over metallic iron at a temperature above 900℃, which is very close to that for NO reduction over iron oxides. In the simulated flue gas atmosphere with an excessive air ratio being lower than 1.0, more than 90% of NO is reduced by methane over both metallic iron and iron oxides at a temperature above 900℃; there is little difference in NO reduction under both burnout or non-burnout conditions. NO is reduced simultaneously via two routes, i.e. the direct reduction by metallic iron and the reduction by reburning of methane. Iron oxides are reduced to metallic iron by methane through partial oxidation over iron oxides to maintain the sustainable reduction of NO by metallic iron. At the same time, the intermediate products during NO reduction by methane such as HCN/NH3 are converted by iron oxides, which prevent the NO reduction efficiency from dropping after burnout. The present results then prove that methane can effectively reduce NO over iron or iron oxides under fuel rich condition.
-
Keywords:
- NO reduction,
- methane,
- iron,
- iron oxides
-
-
-
[1]
[1] 马风哪, 程伟琴.国内火电厂氮氧化物排放现状及控制技术探讨[J]. 广州化工, 2011, 39(15): 57-59. (MA Feng-na, CHENG Wei-qin. The discharge status and controlling measures of nitrogen oxides of thermal power plants in China[J]. Guangzhou Chemical Industry, 2011, 39(15): 57-59.)
-
[2]
[2] PARVULESCU V I, GRANGE P, DELMON B. Catalytic removal of NO[J]. Catal Today, 1998, 46(4): 233-316.
-
[3]
[3] JANSSEN F, MEIJER R. Quality control of DeNOx catalysts performance testing, surface analysis and characterization of DeNOx catalysts[J]. Catal Today, 1993, 16(2): 157-185.
-
[4]
[4] CENTI G, PERATHONER S. Introduction: State of the art in the development of catalytic processes for the selective catalytic reduction of NOx into N2[J]. Stud Surf Sci Catal, 2007, 171: 1-24.
-
[5]
[5] BETHKE KA, KUNG M C, YANG B, SHAH M, ALT D, LI C, KUNG H H. Metal oxide catalysts for lean NOx reduction[J]. Catal Today, 1995, 26(2):169-183.
-
[6]
[6] BETHKE K A, ALT D, KUNG M C. NO reduction by hydrocarbons in an oxidizing atmosphere over transition metal-zirconium mixed oxides[J]. Catal Lett, 1994, 25(1/2): 37-48.
-
[7]
[7] ILIOPOULOU E F, EVDOU A P, LEMONIDOU A A, VASALOS I A. Ag/alumina catalysts for the selective catalytic reduction of NO<em>x using various reductants[J]. Appl Catal A: Gen, 2004, 274(1/2): 179-189.
-
[8]
[7] KOTSIFA A, KONDARIDES D I, VERYKIOS X E. A comparative study of the selective catalytic reduction of NO by propylene over supported Pt and Rh catalysts[J]. Appl Catal B: Environ, 2008, 80(3/4): 260-270.
-
[9]
[9] LIU Z, WANG K, ZHANG X, WANG J, CAO H, GONG M, CHEN Y. Study on methane selective catalytic reduction of NO on Pt/Ce0.67Zr0.33O2 and its application[J]. J Nat Gas Chem, 2009, 18(1): 66-70.
-
[10]
[10] GRADON B, LASEK J. Investigation of reduction of NO to N2 by reaction with Fe[J]. Fuel, 2010, 89(11): 3505-3509.
-
[11]
[11] 苏亚欣, 苏阿龙, 成豪. 金属铁直接催化还原NO的实验研究[J]. 煤炭学报, 2013, 38(S1):206-210. (SU Ya-xin, SU A-long, CHENG Hao. Experimental study on direct catalytic reduction of NO by metallic iron[J]. Journal of China Coal Society, 2013, 38(s1): 206-210.)
-
[12]
[12] 李然家, 沈师孔. 晶格氧用于甲烷氧化制合成气的研究-氧化铁的氧化还原性能[J]. 分子催化, 2001, 3(15): 181-186. (LI Ran-jia, SHENG Shi-kong. Study on lattice oxygen used in the conversion of methane to synthesis gas-redox performance of Fe2O3 catalyst[J]. Journal of Molecular Catalysis(China), 2001, 3(15): 181-186.)
-
[13]
[13] NAKAYAMA O, IKENAGA N, MIYAKE T, YAGASAKI E, SUZUKI T. Production of synthesis gas from methane using lattice oxygen of NiO-Cr2O3-MgO complex oxide[J]. Ind Eng Chem Res, 2010, (492): 526-534.
-
[14]
[14] 王华, 魏永刚. 晶格氧部分氧化甲烷制取合成气技术[M]. 北京: 冶金工业出版社, 2009: 88. (WANG Hua, WEI Yong-gang. Partial oxidation of methane by lattice oxygen to produce synthesis gas[M]. Beijing: Metallurgical Industry Press, 2009.)
-
[15]
[15] 苏亚欣, 邓文义, 苏阿龙. 甲烷在氧化铁表面还原NO的特性与反应机理研究[J]. 燃料化学学报, 2013, 41(9): 1129-1135. (SU Ya-xin, DENG Wen-yi, SU A long. NO reduction by methane over iron oxides and the mechanism. Journal of Fuel Chemistry and Technology, 2013, 41(9): 1129-1135.)
-
[16]
[16] SMOOT L D, HILL S C, XU H. NOx control through reburning[J]. Prog Energy Combus Sci, 1998, 24(5): 385-408.
-
[17]
[17] 苏亚欣, GATHITU B B, CHEN W Y. Fe2O3控制再燃脱硝中间产物HCN的实验研究[J]. 环境科学学报, 2011, 31(6): 1181-1186. (SU Ya-xin, GATHITU B B, CHEN W Y. Experimental examination of HCN compound control by Fe2O3 during reburning processes[J]. Acta Scientiae Circumstantiae, 2011, 31(6): 1181-1186.)
-
[18]
[18] TAN H Z, WANG X B, NIU Y Q, LIU H Y, WANG C L, XU T M. Studies of intereaction mechanism between iron and HCN[J]. Asian J Chem, 2010, 22(5): 4017-4025.
-
[19]
[19] 陈庚. 气基还原氧化铁动力学机理研究[D]. 大连: 大连理工大学, 2011. (CHENG Geng. The kinetics of the gas-based reduction of iron oxide[D]. Dalian: Dalian University of Technology, 2011.)
-
[1]
-
-
-
[1]
Yunting Shang , Yue Dai , Jianxin Zhang , Nan Zhu , Yan Su . Something about RGO (Reduced Graphene Oxide). University Chemistry, 2024, 39(9): 273-278. doi: 10.3866/PKU.DXHX202306050
-
[2]
Lina Guo , Ruizhe Li , Chuang Sun , Xiaoli Luo , Yiqiu Shi , Hong Yuan , Shuxin Ouyang , Tierui Zhang . 层状双金属氢氧化物的层间阴离子对衍生的Ni-Al2O3催化剂光热催化CO2甲烷化反应的影响. Acta Physico-Chimica Sinica, 2025, 41(1): 2309002-. doi: 10.3866/PKU.WHXB202309002
-
[3]
Zhuo WANG , Junshan ZHANG , Shaoyan YANG , Lingyan ZHOU , Yedi LI , Yuanpei LAN . Preparation and photocatalytic performance of CeO2-reduced graphene oxide by thermal decomposition. Chinese Journal of Inorganic Chemistry, 2024, 40(9): 1708-1718. doi: 10.11862/CJIC.20240067
-
[4]
Hui Shi , Shuangyan Huan , Yuzhi Wang . Ideological and Political Design of Potassium Permanganate Oxidation-Reduction Titration Experiment. University Chemistry, 2024, 39(2): 175-180. doi: 10.3866/PKU.DXHX202308042
-
[5]
Tong Zhou , Jun Li , Zitian Wen , Yitian Chen , Hailing Li , Zhonghong Gao , Wenyun Wang , Fang Liu , Qing Feng , Zhen Li , Jinyi Yang , Min Liu , Wei Qi . Experiment Improvement of “Redox Reaction and Electrode Potential” Based on the New Medical Concept. University Chemistry, 2024, 39(8): 276-281. doi: 10.3866/PKU.DXHX202401005
-
[6]
Ji-Quan Liu , Huilin Guo , Ying Yang , Xiaohui Guo . Calculation and Discussion of Electrode Potentials in Redox Reactions of Water. University Chemistry, 2024, 39(8): 351-358. doi: 10.3866/PKU.DXHX202401031
-
[7]
Zhihuan XU , Qing KANG , Yuzhen LONG , Qian YUAN , Cidong LIU , Xin LI , Genghuai TANG , Yuqing LIAO . Effect of graphene oxide concentration on the electrochemical properties of reduced graphene oxide/ZnS. Chinese Journal of Inorganic Chemistry, 2024, 40(7): 1329-1336. doi: 10.11862/CJIC.20230447
-
[8]
Xiaofeng Zhu , Bingbing Xiao , Jiaxin Su , Shuai Wang , Qingran Zhang , Jun Wang . Transition Metal Oxides/Chalcogenides for Electrochemical Oxygen Reduction into Hydrogen Peroxides. Acta Physico-Chimica Sinica, 2024, 40(12): 2407005-. doi: 10.3866/PKU.WHXB202407005
-
[9]
Tingting Jiang , Jing Chang . Application of Ideological and Political Education in Chemical Analysis Experiment under the Background of Emerging Engineering Education: Taking the Redox Titration Experiment as an Example. University Chemistry, 2024, 39(2): 168-174. doi: 10.3866/PKU.DXHX202308007
-
[10]
Bing WEI , Jianfan ZHANG , Zhe CHEN . Research progress in fine tuning of bimetallic nanocatalysts for electrocatalytic carbon dioxide reduction. Chinese Journal of Inorganic Chemistry, 2025, 41(3): 425-439. doi: 10.11862/CJIC.20240201
-
[11]
Lisha LEI , Wei YONG , Yiting CHENG , Yibo WANG , Wenchao HUANG , Junhuan ZHAO , Zhongjie ZHAI , Yangbin DING . Application of regenerated cellulose and reduced graphene oxide film in synergistic power generation from moisture electricity generation and Mg-air batteries. Chinese Journal of Inorganic Chemistry, 2025, 41(6): 1151-1161. doi: 10.11862/CJIC.20240202
-
[12]
Wen YANG , Didi WANG , Ziyi HUANG , Yaping ZHOU , Yanyan FENG . La promoted hydrotalcite derived Ni-based catalysts: In situ preparation and CO2 methanation performance. Chinese Journal of Inorganic Chemistry, 2024, 40(3): 561-570. doi: 10.11862/CJIC.20230276
-
[13]
Hailian Tang , Siyuan Chen , Qiaoyun Liu , Guoyi Bai , Botao Qiao , Fei Liu . Stabilized Rh/hydroxyapatite Catalyst for Furfuryl Alcohol Hydrogenation: Application of Oxidative Strong Metal-Support Interactions in Reducing Conditions. Acta Physico-Chimica Sinica, 2025, 41(4): 100036-. doi: 10.3866/PKU.WHXB202408004
-
[14]
Hong LI , Xiaoying DING , Cihang LIU , Jinghan ZHANG , Yanying RAO . Detection of iron and copper ions based on gold nanorod etching colorimetry. Chinese Journal of Inorganic Chemistry, 2024, 40(5): 953-962. doi: 10.11862/CJIC.20230370
-
[15]
Xiuyun Wang , Jiashuo Cheng , Yiming Wang , Haoyu Wu , Yan Su , Yuzhuo Gao , Xiaoyu Liu , Mingyu Zhao , Chunyan Wang , Miao Cui , Wenfeng Jiang . Improvement of Sodium Ferric Ethylenediaminetetraacetate (NaFeEDTA) Iron Supplement Preparation Experiment. University Chemistry, 2024, 39(2): 340-346. doi: 10.3866/PKU.DXHX202308067
-
[16]
Jianfeng Yan , Yating Xiao , Xin Zuo , Caixia Lin , Yaofeng Yuan . Comprehensive Chemistry Experimental Design of Ferrocenylphenyl Derivatives. University Chemistry, 2024, 39(4): 329-337. doi: 10.3866/PKU.DXHX202310005
-
[17]
Tong Zhou , Liyi Xie , Chuyu Liu , Xiyan Zheng , Bao Li . Between Sobriety and Intoxication: The Fascinating Journey of Sauce-Flavored Latte. University Chemistry, 2024, 39(9): 55-58. doi: 10.12461/PKU.DXHX202312048
-
[18]
Yuyao Wang , Zhitao Cao , Zeyu Du , Xinxin Cao , Shuquan Liang . Research Progress of Iron-based Polyanionic Cathode Materials for Sodium-Ion Batteries. Acta Physico-Chimica Sinica, 2025, 41(4): 100035-. doi: 10.3866/PKU.WHXB202406014
-
[19]
Qingjun PAN , Zhongliang GONG , Yuwu ZHONG . Advances in modulation of the excited states of photofunctional iron complexes. Chinese Journal of Inorganic Chemistry, 2025, 41(1): 45-58. doi: 10.11862/CJIC.20240365
-
[20]
Linjie ZHU , Xufeng LIU . Electrocatalytic hydrogen evolution performance of tetra-iron complexes with bridging diphosphine ligands. Chinese Journal of Inorganic Chemistry, 2025, 41(2): 321-328. doi: 10.11862/CJIC.20240207
-
[1]
Metrics
- PDF Downloads(0)
- Abstract views(467)
- HTML views(91)