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ZHONG Ning-ning, LU Shuang-fang, HUANG Zhi-long, ZHANG You-sheng, XUE Hai-tao. An Approach to the Evolution of TOC Value for Source Rock and Its Relation to Efficiencies of Hydrocarbon Generation and Expulsion[J]. Acta Sedimentologica Sinica, 2004, 22(S1): 73-78.
Citation: ZHONG Ning-ning, LU Shuang-fang, HUANG Zhi-long, ZHANG You-sheng, XUE Hai-tao. An Approach to the Evolution of TOC Value for Source Rock and Its Relation to Efficiencies of Hydrocarbon Generation and Expulsion[J]. Acta Sedimentologica Sinica, 2004, 22(S1): 73-78.

An Approach to the Evolution of TOC Value for Source Rock and Its Relation to Efficiencies of Hydrocarbon Generation and Expulsion

  • Received Date: 2003-11-15
  • Publish Date: 2004-12-10
  • Pyrolysis and numeric modeling techniques were adopted to reveal the loss rate of total organic carbon content (TOO with source rock maturation process. The TOC loss rate was presented as DTOC = (TOC°-TOC/TOC°. While source rock is of lower efficiencies of hydrocarbon generation and exclusion, the DTOC is a negative value, i. e. in this case the TOC value mount up with maturation progress. With increase in efficiencies of hydrocarbon generation and exclusion, DTOC goes up gradually, i. e. TOC loss rate increases and source rock therefore change its TOC evolution path from a "carbon adding" process to a "carbon reduction" process. There is only the type I kerogen source rock that under the ideal condition of extremely high efficiencies of hydrocarbon generation and exclusion the range of DTOC increase ("carbon adding" process) could be significant. It is evident that the criteria of carbonate source rock which bases on the recovery of original TOC value is likely an overestimate of "carbon reduction" process. Thus, in many cases, it would sugar up originally poor source rock.
  • [1] 程克明,王兆云. 高成熟和过成熟海相碳酸盐岩生烃条件评价方法研究 .中国科学(D辑),1996,26(6):537~543
    [2] 郝石生,高岗,王飞宇,等. 高过成熟海相烃源岩. 北京:石油工业出版社,199 6
    [3] 刘宝泉,梁狄刚,方杰,等. 华北地区中上元古界、下古生界碳酸盐岩有机质的成熟度与找油远景. 地球化学,1985,14(2):150~162
    [4] 夏新宇,洪峰,赵林. 烃源岩生烃潜力的恢复探讨-以鄂尔多斯盆地下奥陶统碳酸盐岩为例. 石油与天然气地质,1998,19(4):307~312
    [5] 钟宁宁,张枝焕.石油地球化学进展. 北京:石油工业出版社,1998
    [6] 夏新宇. 碳酸盐岩生烃与长庆气田气源. 北京:石油工业出版社,2000.60~87
    [7] 梁狄刚,张水昌,张宝民,等. 从塔里木盆地看中国海相生油问题. 地学前缘,2000,7(4):534~546
    [8] 张水昌,梁狄刚. 关于古生界烃源岩有机质丰度的评价标准. 石油勘探与开发,2002,29(2):8~12
    [9] 钟宁宁,卢双舫,黄志龙,等. 烃源岩生烃演化过程TOC的值演变及其控制因素 . 中国科学(D辑),2004,待刊
    [10] 黄志龙,钟宁宁,张四海. 碳酸盐岩与泥质岩生气规律对比研究. 地球化学,2003,32 (1):29~34
    [11] Tissot B P, Welte D H. Petroleum Formation and Occurrence.(Second Revised an d Enlarged Edition). Springer-Verlag Berlin Heidelberg, New York, 1984. 160~19 8
    [12] 邬立言,顾信章,盛志伟,等. 生油岩热解快速定量评价. 北京:科学出版社,1986
    [13] Durand B, Monin J C. Elemental analysis of kerogen. In: Durand B ed. Kerogen . Paris: Technip, 1980. 113~142
    [14] 杨万里,高瑞祺. 松辽盆地陆相油气生成、运移和聚集. 哈尔滨:黑龙江科学技术出版社,1985
    [15] 卢双舫,赵锡嘏,黄第藩,等. 煤成烃生成和运移的模拟实验研究Ⅰ.气态和液态产物特征及其演化. 石油实验地质,1994,16(3):290~303
    [16] Hunt J M. Petroleum Geochemistry and Geology. W H Freeman and Company, San F rancisco, 1979
    [17] Ferguson J. Oil generation and migration within marine carbonate sequences- a review. Journal of Petroleum Geology,1988,11(4):389~402
    [18] 钟宁宁,秦勇. 碳酸盐岩有机岩石学. 北京:科学出版社,1995
    [19] Stockdale P B. Stylolites: their nature and origin. Indiana University Studi es, 1922, (9): 1~97
    [20] Mossop G D. Origin of the peripheral rim, Redwater Reef, Alberta. Bull. Canadian Petroleum Geol, 1972, 20: 238~280
    [21] Dunnington H V. Aspects of diagenesis and shape change in stylolitic limesto ne reservoirs. In: 7th World Petroleum Congress, Proc. 2, London: Elsevier, 1967 . 339~352
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  • Received:  2003-11-15
  • Published:  2004-12-10

An Approach to the Evolution of TOC Value for Source Rock and Its Relation to Efficiencies of Hydrocarbon Generation and Expulsion

Abstract: Pyrolysis and numeric modeling techniques were adopted to reveal the loss rate of total organic carbon content (TOO with source rock maturation process. The TOC loss rate was presented as DTOC = (TOC°-TOC/TOC°. While source rock is of lower efficiencies of hydrocarbon generation and exclusion, the DTOC is a negative value, i. e. in this case the TOC value mount up with maturation progress. With increase in efficiencies of hydrocarbon generation and exclusion, DTOC goes up gradually, i. e. TOC loss rate increases and source rock therefore change its TOC evolution path from a "carbon adding" process to a "carbon reduction" process. There is only the type I kerogen source rock that under the ideal condition of extremely high efficiencies of hydrocarbon generation and exclusion the range of DTOC increase ("carbon adding" process) could be significant. It is evident that the criteria of carbonate source rock which bases on the recovery of original TOC value is likely an overestimate of "carbon reduction" process. Thus, in many cases, it would sugar up originally poor source rock.

ZHONG Ning-ning, LU Shuang-fang, HUANG Zhi-long, ZHANG You-sheng, XUE Hai-tao. An Approach to the Evolution of TOC Value for Source Rock and Its Relation to Efficiencies of Hydrocarbon Generation and Expulsion[J]. Acta Sedimentologica Sinica, 2004, 22(S1): 73-78.
Citation: ZHONG Ning-ning, LU Shuang-fang, HUANG Zhi-long, ZHANG You-sheng, XUE Hai-tao. An Approach to the Evolution of TOC Value for Source Rock and Its Relation to Efficiencies of Hydrocarbon Generation and Expulsion[J]. Acta Sedimentologica Sinica, 2004, 22(S1): 73-78.
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