• 中文核心期刊
  • CA、AA收录期刊
  • 中国机械工程学会理化检验分会会刊
Advanced Search
HAN Bingying, ZHAO Bin, LIU Yujing, SHI Peixiang, CHANG Liping, QIN Zhifeng, WANG Ning, WU Qiongxiao. Determination of Sulfide in Blast Furnace Gas and Coke Oven Gas by Gas Chromatography with Flame Photometric Detector[J]. PHYSICAL TESTING AND CHEMICAL ANALYSIS PART B:CHEMICAL ANALYSIS, 2024, 60(4): 365-370. DOI: 10.11973/lhjy-hx202404003
Citation: HAN Bingying, ZHAO Bin, LIU Yujing, SHI Peixiang, CHANG Liping, QIN Zhifeng, WANG Ning, WU Qiongxiao. Determination of Sulfide in Blast Furnace Gas and Coke Oven Gas by Gas Chromatography with Flame Photometric Detector[J]. PHYSICAL TESTING AND CHEMICAL ANALYSIS PART B:CHEMICAL ANALYSIS, 2024, 60(4): 365-370. DOI: 10.11973/lhjy-hx202404003

Determination of Sulfide in Blast Furnace Gas and Coke Oven Gas by Gas Chromatography with Flame Photometric Detector

More Information
  • Received Date: April 17, 2022
  • By optimizing the column temperature, carrier gas flow rate, photomultiplier polarization voltage, flow ratio of hydrogen to air (hydrogen-air ratio), and detector temperature, a method of gas chromatography with flame photometric detector (FPD) was proposed for the determination of hydrogen sulfide, carbonyl sulfur in blast furnace gas, and hydrogen sulfide, carbonyl sulfur, carbon disulfide, methyl mercaptan, methyl sulfide, ethyl mercaptan, thiophene, dimethyl disulfide in coke oven gas. The samples were diluted by different procedures and analyzed by gas chromatograph. In the analysis of blast furnace gas, the GDX-502 column was used as the stationary phase. The column temperature was 60 ℃, the carrier gas flow rate was 30 mL·min-1, the photomultiplier polarization voltage was 900 V, the hydrogen flow rate was 80 mL·min-1, the hydrogen-air ratio was 1∶0.67, and the detector temperature was 160 ℃. In the analysis of coke oven gas, HF-Sulfur column was used as the stationary phase, and detection was made under the condition of column temperature program (except for sampling volume, other conditions were consistent with those of blast furnace gas). It was shown that linear relationships between the natural logarithmic value of the mass concentration of each component in blast furnace gas and coke oven gas and the response value were kept in defite ranges. The detection limits of the two components in blast furnace gas ranged from 0.56 mg·m-3 to 0.87 mg·m-3, the relative errors (standard gas) ranged from -4.6% to 0.88%, and the RSDs (n=5) of the determined values ranged from 0.22% to 2.4%. The detection limits of 8 components in coke oven gas ranged from 0.711 mg·m-3 to 1.145 mg·m-3, the recoveries obtained by standard addition method were found in the range of 94.4%-105%, and the RSD (n=6) of the determined values ranged from 1.4% to 8.8%.

  • [1]
    李翔, 王学谦, 李鹏飞, 等.高炉煤气特征组分分析及其对脱硫过程的影响研究进展[J].化工进展, 2021, 40(12): 6629-6639.
    [2]
    马铭宇, 王超, 李运甲, 等.高炉煤气中羰基硫水解吸附催化剂的制备及性能研究[J].化工学报, 2022, 73(1): 275-283.
    [3]
    徐贺明, 屈一新, 闪俊杰, 等.焦炉煤气精脱硫系统的研究与优化[J].天然气化工(C1化学与化工), 2015, 40(4): 64-68.
    [4]
    吴建民, 孙启文, 张宗森, 等.钴基费托合成催化剂硫中毒热力学分析[J].化学工程, 2020, 48(7): 48-52.
    [5]
    孙克宁, 陈谦, 聂明明, 等.重整催化剂的抗硫性能研究进展[J].化工学报, 2020, 71(9): 4131-4140.
    [6]
    梁丽彤, 上官炬, 樊惠玲, 等.高浓度COS水解催化剂抗硫中毒性能的孔隙效应[J].煤炭学报, 2012, 37(12): 2102-2106.
    [7]
    李松, 尹辉, 黎国兰, 等.气相色谱法测定污染空气中恶臭硫化物[J].理化检验-化学分册, 2007, 43(7): 582-584.
    [8]
    杨秋红, 杨移斌, 胥宁, 等.气相色谱-脉冲火焰光度法测定水产品中的二硫氰基甲烷残留[J].色谱, 2017, 35(8): 881-885.
    [9]
    刘玉奇, 辛德旺, 常素萍.气相色谱法测定高硫化氢含量气体中微量有机硫化合物[J].理化检验-化学分册, 2021, 57(1): 84-87.
    [10]
    张敏刚, 胡君杰, 熊可, 等.微型热导检测器的研究进展[J].中国测试, 2020, 46(8): 1-8.
    [11]
    徐聪, 王亚敏, 张祎玮, 等.预浓缩与GC-SCD/MS联用测定燃料电池车用氢气中超痕量多形态硫化物和甲醛[J].石油学报(石油加工), 2021, 37(6): 1440-1451.
    [12]
    吴晓峰, 邢利利, 张晓旭, 等.直接进样-硫化学发光检测器-气相色谱法测定有机硫[J].中国环境监测, 2018, 34(4): 111-117.
    [13]
    梁咏梅, 刘文惠, 刘耀芳.重油催化裂化汽油中含硫化合物的分析[J].色谱, 2002, 20(3): 283-285.
    [14]
    郭磊, 江桂斌.微柱高效液相色谱与火焰光度检测器联用的初步研究[J].光谱实验室, 2000, 17(1): 30-34.
    [15]
    倪兰秀单火焰光度检测器的研究北京中国科学院大学2022倪兰秀.单火焰光度检测器的研究[D].北京: 中国科学院大学, 2022.
    [16]
    于世林.图解气相色谱技术与应用[M].北京: 科学出版社, 2010.
    [17]
    马昌宁, 陈春玉, 方艾黎, 等.焦炉煤气形态硫直接进样分析方法改进[J].天然气化工(C1化学与化工), 2021, 46(3): 133-136.
  • Related Articles

    [1]LI Junjie, ZHOU Yan, JIAO Liang, QI Dawei, FEI Ting, WU Da, LIU Baizhan. Determination of 13 Alkaline Aromatic Compounds in Cigar Tobacco Leaves by Gas Chromatography-Nitrogen Chemiluminescence Detector/Mass Spectrometry with Headspace-Programmable Temperature Vaporizing[J]. PHYSICAL TESTING AND CHEMICAL ANALYSIS PART B:CHEMICAL ANALYSIS, 2024, 60(11): 1085-1092. DOI: 10.11973/lhjy-hx220829
    [2]HU Xuebin, HU Xuexing, DONG Yonghua, CHANG Suping. Determination of Acetonitrile in High Purity Butadiene by Gas Chromatography with Nitrogen Chemiluminescence Detector[J]. PHYSICAL TESTING AND CHEMICAL ANALYSIS PART B:CHEMICAL ANALYSIS, 2024, 60(5): 472-476. DOI: 10.11973/lhjy-hx230522
    [3]DU Jiang, CAI Jinling, LONG Wenqi. Determination of Sulfide in Water by Methylene Blue Spectrophotometry Combined with New Membrane Separation Pretreatment[J]. PHYSICAL TESTING AND CHEMICAL ANALYSIS PART B:CHEMICAL ANALYSIS, 2023, 59(6): 662-666. DOI: 10.11973/lhjy-hx202306007
    [4]LI Shaofei, JIANG Lili. Determination of 8 Common Benzene Series in Indoor Air after Home Decoration by Gas Chromatography with Dual Chromatographic Columns and Dual Detectors[J]. PHYSICAL TESTING AND CHEMICAL ANALYSIS PART B:CHEMICAL ANALYSIS, 2023, 59(5): 517-522. DOI: 10.11973/lhjy-hx202305004
    [5]GAO Li, SI Ruigang. Establishment of A General Method for Analysis of Process Gas in the Synthesis Natural Gas from Coke Oven Gas by Multi-Dimensional Gas Chromatography[J]. PHYSICAL TESTING AND CHEMICAL ANALYSIS PART B:CHEMICAL ANALYSIS, 2020, 56(8): 872-877. DOI: 10.11973/lhjy-hx202008004
    [6]ZHOU Guihai. Determination of Total Sulfur in Coke Oven Gas by Ultraviolet Fluorescence Method with Pyrolysis Combustion[J]. PHYSICAL TESTING AND CHEMICAL ANALYSIS PART B:CHEMICAL ANALYSIS, 2019, 55(8): 949-951. DOI: 10.11973/lhjy-hx201908016
    [7]XU Tianjun, SU Jianfeng. Determination of Methyl-Pyrimithate and Ethyl-Pyrimithate in Garlic by Gas Chromatography and Gas Chromatography-Mass Spectrometry[J]. PHYSICAL TESTING AND CHEMICAL ANALYSIS PART B:CHEMICAL ANALYSIS, 2019, 55(4): 457-462. DOI: 10.11973/lhjy-hx201904016
    [8]ZENG Wen-chao, SHAO Yong, AN Li-chao, LIU Guang-dong. Improvement on Determination of Sulfide in Waste Water by Iodometry[J]. PHYSICAL TESTING AND CHEMICAL ANALYSIS PART B:CHEMICAL ANALYSIS, 2017, 53(1): 68-72. DOI: 10.11973/lhjy-hx201701014
    [9]SI Rui-gang, SHI Li-jie, GAO Li, MA Chao. Determination of Trace Total Sulfur in Coke Oven Gas by Ultraviolet Fluorescence Spectroscopy[J]. PHYSICAL TESTING AND CHEMICAL ANALYSIS PART B:CHEMICAL ANALYSIS, 2015, 51(5): 672-675.
    [10]ZHANG Ming-xia, CHEN Xue-qiao, ZHOU Jian-ke. Gas Chromatographic Determination of Chloropropanols in Stocks[J]. PHYSICAL TESTING AND CHEMICAL ANALYSIS PART B:CHEMICAL ANALYSIS, 2007, 43(11): 953-955.
  • Cited by

    Periodical cited type(0)

    Other cited types(1)

Catalog

    Article views (16) PDF downloads (4) Cited by(1)

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return