Volume 40 Issue 05
May  2012
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GENG Ceng-ceng, LI Shu-yuan, HE Ji-lai. Determination and indentification of oxygen-containing compounds in Longkou shale oil[J]. Journal of Fuel Chemistry and Technology, 2012, 40(05): 538-544.
Citation: GENG Ceng-ceng, LI Shu-yuan, HE Ji-lai. Determination and indentification of oxygen-containing compounds in Longkou shale oil[J]. Journal of Fuel Chemistry and Technology, 2012, 40(05): 538-544.

Determination and indentification of oxygen-containing compounds in Longkou shale oil

  • Received Date: 2011-07-23
  • Rev Recd Date: 2011-10-18
  • Publish Date: 2012-05-31
  • The methods of acid-base separation and extraction-chromatography were used to separate Longkou shale oil into acid fractions, basic fractions and five neutral fractions. The molecular structure and mass distribution of oxygen compounds in Longkou shale oil were investigated using gas chromatography-mass spectrometry (GC-MS) and negative-ion electrospray ionization (ESI) Fourier transform ion cyclotron resonance mass spectrometry (FT-ICR MS). The results of GC-MS show that the oxygen compounds in acid fractions involve phenols, indanols, naphthols, phenylphenols, fluorenols, phenanthrenols, and carboxylic acids ranging from C5 to C16. The oxygen compounds in neutral fraction 4 and 5 involve aliphatic ketones ranging from C9 to C32 and lipid compounds. The results of ESI FT-ICR MS show that the class species of O1, O2, O3, N1O1, N1O2 are found. The O1 and O2 have the higher ion intensity among the species in shale oil. The m/z range of shale oil is from 150 to 600. It is obviously that Longkou shale oil is mainly composed of small molecular compounds which are polymerized by Van der Waals force and hydrogen bonding. The properties of shale oil are similar to macromolecular compounds. Longkou shale oil has O1, O2, O3 compounds mainly with DBE of 1 and 4, suggesting that Longkou shale oil can be regarded as a less biodegraded oil.
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  • 孙会东, 李术元. 一种改善页岩油柴油馏分安定性的组合工艺[J]. 中外能源, 2009, 14(4): 75-77. (SUN Hui-dong, LI Shu-yuan. A combined process to improve stability of shale oil diesel fraction[J]. Sino-Global Energy, 2009, 14(4): 75-77.)
    钱家麟, 尹亮. 油页岩-石油的补充能源[M]. 北京: 中国石化出版社, 2008. (QIAN Jia-lin, YIN Liang. Shale oil-alternative energy for petroleum[M]. Beijing: China Petrochemical Press, 2008.)
    王漫, 郭绍辉, 阮竹, 张履芳. 页岩油轻馏分中含氧化合物的分析: I含氧化合物的分离[J]. 石油学报(石油加工), 1993, 9(3): 10-15. (WANG Man, GUO Shao-hui, RUAN Zhu, ZHANG Lu-fang. Analysis of oxygen-containing compounds in light fraction of shale oils :I Separation of oxygen-containing compounds in shale oils[J]. Acta Petrolei Sinica (Petroleum Processing Section), 1993, 9(3): 10-15.)
    朱志荣. 不同产地页岩油的组成分析[J]. 石油学报(石油加工), 2001, 17(5): 66-71. (ZHU Zhi-rong. Analysis of composition of shale oils from different places[J]. Acta Petrolei Sinica(Petroleum Processing Section), 1993, 9(3): 66-71.)
    王加宁, 田玉增, 关亚风, 田会元, 林民, 刘长山. 页岩油的色谱-质谱分析[J]. 色谱, 1992,10(6): 339-341. (WANG Jia-ning, TIAN Yu-zeng, GUAN Ya-feng, TIAN Hui-yuan, LIN Min, LIU Chang-shang. Class separation and characterization of shale oil by thin-layer chromatography and capillary gas chromatography-mass spectrometry[J]. Chromatography, 1992, 10(6): 339-341.)
    GUO S, RUAN Z. The composition of Fushun and Maoming shale oils[J]. Fuel, 1995, 74(11): 1719-1721.
    WU Z, RODGERS R P, MARSHALL A G. ESI FT-ICR mass spectral analysis of coal liquefaction products[J]. Fuel, 2005, 84(14/15): 1790-1797.
    SHI Q, XU C, ZHAO S, CHUNG K H, ZHANG Y, GAO W. Characterization of basic nitrogen species in coker gas oils by positive-ion electrospray ionization fourier transform ion cyclotron resonance mass spectrometry[J]. Energy Fuels, 2009, 24(1): 563-569.
    SHI Q, HOU D, CHUNG K H, XU C, ZHAO S, ZHANG Y. Characterization of heteroatom compounds in a crude oil and its saturates, aromatics, resins, and asphaltenes (SARA) and non-basic nitrogen fractions analyzed by negative-ion electrospray ionization Fourier transform ion cyclotron resonance mass spectrometry[J]. Energy Fuels, 2010, 24(4): 2545-2553.
    BAE E, NA J-G, CHUNG S H, KIM H S, KIM S. Identification of about 30 000 chemical components in shale oils by electrospray ionization (ESI) and atmospheric pressure photoionization (APPI) coupled with 15 T Fourier transform Ion cyclotron resonance mass spectrometry (FT-ICR MS) and a comparison to conventional oil[J]. Energy Fuels, 2010, 24(4): 2563-2569.
    CERNY J, PAVLKOV H, MACHOVIC V. Compound-class fractionation of coal-derived liquids by extrography[J]. Fuel, 1990, 69(8): 966-971.
    SMITH D F, SCHAUB T M, KIM S, RODGERS R P, RAHIMI P, TECLEMARIAM A, MARSHALL A G. Characterization of acidic species in Athabasca bitumen and bitumen heavy vacuum gas oil by negative-ion ESI FT-ICR MS with and without acid-ion exchange resin prefractionation[J]. Energy Fuels, 2008, 22(4): 2372-2378.
    KIM S, STANFORD L A, RODGERS R P, MARSHALL A G, WALTERS C C, QIAN K, WENGER L M, MANKIEWICZ P. Microbial alteration of the acidic and neutral polar NSO compounds revealed by Fourier transform ion cyclotron resonance mass spectrometry[J]. Org Geochem, 2005, 6(8): 1117-1134.
    BRAUN R L, BURNHAM A K, REYNOLDS D B. Oil and gas evolution kinetics for oil shale and petroleum source rocks determined from pyrolysis-TQMS data at two heating rates[J]. Energy Fuels, 1992, 6(4): 468-474.
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