[1] 白云风,程日辉,王璞珺,刘万洙. 2006. 库鲁克塔格地区巷古勒塔格组瘤状灰岩及其沉积环境. 新疆地质,24(4):361-364. [Bai Y F,Cheng R H,Wang P J,Liu W Z. 2006. Nodular limestone in the warty sedimentary sequence of Hanguletag Formation in Kuruktag,XinJiang. XinJiang Geology,24(4):361-364]
[2] 鲍志东,金之钧,孙龙德,王招明,王清华,张清海,时晓章,李伟,吴茂炳,顾乔元,武新民,张宏伟. 2006. 塔里木地区早古生代海平面波动特征:来自地球化学及岩溶的证据. 地质学报,80(3):366-373. [Bao Z D,Jin Z J,Sun L D,Wang Z M,Wang Q H,Zhang Q H,Shi X Z,Li W,Wu M B,Gu Q Y,Wu X M,Zhang H W. 2006. Sea-Level fluctuation of the Tarim area in the Early Paleozoic:Respondence from geochemistry and karst. Acta Geologica Sinica,80(3):366-373]
[3] 蔡雄飞. 2001. 深水沉积环境条带状层理的分类特征及意义. 沉积与特提斯地质,21(4):84-88. [Cai X F. 2001. The types and geological implications of the banded stratification in deep-water sedimentary environments. Sedimentary Geology and Tethyan Geology,21(4):84-88]
[4] 段吉业,夏德馨,安素兰. 2005. 新疆库鲁克塔格新元古代一早古生代裂陷槽深水沉积与沉积—构造古地理. 地质学报,79(1):7-16. [Duan J Y,Xia D X,An S L. 2005. Deep-water Sedimentation and Sedimento-Tectonopaleogeography of the Neoproterozoic-Early Palaeozoic Aulacogen in Kuruktag,Xingjiang,China. Acta Geologica Sinica,79(1):7-16].
[5] 冯增昭,鲍志东,吴茂炳,金振奎,时晓章,骆艾荣. 2007. 塔里木地区奥陶纪岩相古地理. 古地理学报,9(5):447-460. [Feng Z Z,Bao Z D,Wu M B,Jin Z K,Shi X Z,Luo A R. 2007. Lithotacies palaeogeography of the Ordovician in Tarim area. Journal of Palaeogeography(Chinese Edition),9(5):447-460]
[6] 高志勇,张水昌,李建军,张宝民,顾乔元,卢玉红. 2011. 塔里木盆地东部中—上奥陶统却尔却克组海相碎屑岩中的有效烃源岩. 石油学报,32(1):32-40. [Gao Z Y,Zhang S C,Li J J,Zhang B M,Gu Q Y,Lu Y H. 2011. Hydrocarbon source rocks in marine crastic of the Middle-Upper Ordovician Queerquek Formation in the eastern Tarim basin,China. Acta Petrolei Sinica,32(1):32-40]
[7] 高振中,何幼斌,张兴阳,翟永红,胡云杨,杨海军,李新生,李勇. 2000. 塔中地区中奥陶世内波/内潮汐沉积. 沉积学报,18(3):400-407. [Gao Z Z,He Y B,Zhang X Y,Zhai Y H,Hu Y Y,Yang H J,Li X S,Li Y. 2000. Internal-wave and internal-tide deposits of the Middle-Upper Ordovician in the center Tarim Basin. Acta Sedimentologica Sinica,18(3):400-407]
[8] 高振中,何幼斌,李向东. 2010. 中国地层记录中的内波及内潮汐沉积研究. 古地理学报,12(5):527-534. [Gao Z Z,He Y B,Li X D. 2010. Study of internal wave and internal tide deposits in stratigraphical record in China. Journal of Palaeogeography (Chinese Edition),12(5):527-534]
[9] 郭成贤. 2000. 中国深水异地沉积研究三十年. 古地理学报,2(1):1-10. [Guo C X. 2000. The thirty year study of deep-water allogene deposits in China. Journal of Palaeogeography (Chinese Edition),2(1):1-10]
[10] 郭成贤,王正允,王方平. 2009. 深水碳酸盐岩成岩作用的稳定同位素特征. 石油与天然气地质,20(2):144-147. [Guo C X,Wang Z Y,Wang F P. 2009. Stable isotopic characteristic of diagensis in deep water carbonate rocks. 0il & Gas Geology,20(2):144-147]
[11] 纪友亮,彭传圣,张立强. 2002. 新疆库鲁克塔格地区奥陶纪岩相古地理. 古地理学报,4(1):43-51. [Ji Y L,Peng C S,Zhang L Q. 2002. Lithofacies palaeogeography of the Ordovician in Kuruketage region of XingJiang. Journal of Palaeogeography (Chinese Edition),4(1):43-51]
[12] 江茂生,朱井泉,李学杰. 2001. 深水碳酸盐沉积研究进展. 古地理学报,3(4):61-68. [Jiang M S,Zhu J Q,Li X J. 2001. New progress in research on deep water carbonate sedimentation. Journal of Palaeogeography (Chinese Edition),3(4):61-68]
[13] 金若谷. 1989. 一种深水沉积标志:“瘤状结核"及其成因. 沉积学报,7(2):51-61. [Jin R G. 1989. A deep water sedimentary criteria knotty nodule and origin. Acta Sedimentologica Sinica,7(2):51-61]
[14] 刘家军,刘建明,郑明华,周渝峰,顾雪祥,张斌. 1999. 西秦岭寒武系金矿床中硅岩的地质地球化学特征及其沉积环境意义. 岩石学报,15(1):145-154. [Liu J J,Liu J M,Zheng M H,Zhou Y F,Gu X X,Zhang B. 1999. The geological and geochemical characteristics of Cambrian chert and their sedimentary environmental implications in western Qinling. Acta Petrologica Sinica,15(1):145-154]
[15] 刘忠宝,于炳松,陈晓林,高志前,曹清古,李廷艳. 2003. 塔里木盆地塔东地区中—上奥陶统海底扇浊积岩层序地层格架及沉积特征. 现代地质,17(4):408-414. [Liu Z B,Yu B S,Chen X L,Gao Z Q,Cao Q G,Li T Y. 2003. Sequence stratigraphy and sedimentary characteristic of submarine fan of Middle-Upper Ordovician in Tadong area,the Tarim Basin. Geoscience,17(4):408-414]
[16] 彭军,徐望国. 2001. 湘西上震旦统层状硅质岩沉积环境的地球化学标志. 地球化学,30(3):293-298. [Peng J,Xu W G. 2001. Geochemical characteristics of depositional environment of the Upper Sinian bedded siliceous rocks in Western Hunan. Geochimica,30(3):293-298]
[17] 钱一雄,蔡习尧,刘忠宝,尤东华,陈跃. 2009. 塔里木盆地卡塔克南缘中2井良里塔格组碳酸盐岩沉积地球化学特征. 现代地质,23(3):631-637. [Qian Y X,Cai X Y,Liu Z B,You D H,Chen Y. 2009. Characteristic of sedimentary geochemistry of carbonate rock in Lianglitage Formation of the Upper Ordovician,southern margin of Katake Uplift,Tarmi Basin. Geoscience,23(3):631-637]
[18] 钱一雄,沙旭光,李慧莉,沈向存,李玉兰,夏永涛,刘忠宝,尤东华,吴仕强,施奇. 2013. 塔里木盆地塔中西部加里东中晚期构造—层序结构与奥陶系碳酸盐岩储集体分布. 地学前缘,20(1):260-274. [Qian Y X,Sha X G,Li H L,Shen X C,Li Y L,Xia Y T,Liu Z B,You D H,Wu S Q,Shi Q. 2013. An approach to Caledonian unconformities and sequence stratigraphic patterns and distribution of reservoirs of Ordovician carbonate in the western Tazhong area,Tarim basin. Earth Science Frontiers,20(1):260-274]
[19] 任战利,肖晖,韩伟,梁宇,卿颖,腾志宏,史政. 2009. 孔雀河斜坡与库鲁克隆起构造—热演化史研究. 西北大学学报(自然科学版),39(3):510-516. [Ren Z L,Xiao H,Han W,Liang Y,Qing Y,Teng Z H,Shi Z. 2009. Research on basin mountain tectonic thermal history of Kongquehe Slope and Kuruketag Uplift. Journal of Northwest University(Natural Science Edition),39(3):510-516].
[20] 宋金民,罗平,杨式升,翟秀芬,周刚,陆朋朋. 2012. 塔里木盆地苏盖特布拉克地区下寒武统肖尔布拉克组碳酸盐岩微生物建造特征. 古地理学报,14(3):404-437. [Song J M,Luo P,Yang S S,Zhai X F,Zhou G,Lu P P. 2012. Carbonate rock microbial construction of the Lower Cambrian Xiaoerblak Formation in Sugaitblak area,Tarim Basin. Journal of Palaeogeography(Chinese Edition),14(3):404-437]
[21] 孙晓猛,王璞瑶,刘鹏举,郝福江. 2006. 兴地断裂构造特征及其演化历史. 新疆地质,24(4):348-352. [Sun X M,Wang P Y,Liu P J,Hao F J. 2006. Structural features and tectonic evolutionary history of XingDi fault. Xinjiang Geology,24(4):348-352]
[22] 王英民,王海荣,邱燕,彭学超,张文明,李文成. 2007. 深水沉积的动力学机制和响应. 沉积学报,25(4):495-504. [Wang Y M,Wang H R,Qiu Y,Peng X C,Zhang W M,Li W C. 2009. Process of dynamics and its response of deep-water sedimentation. Acta Sedimentologica Sinica,25(4):495-504]
[23] 吴兴宁,斯春松,俞广,王小芳,常少英,潘文庆. 2012. 塔里木盆地奥陶纪岩相古地理恢复及其油气勘探意义. 海相油气地质,17(3):9-17. [Wu X N,Si C S,Yu G,Wang X F,Chang S Y,Pan W Q. 2009. Reconstruction of Ordovician lithofacies palaeogeography and petroleum prospecting significance in Tarim Basin. Marine Origin Petroleum Geology,17(3):9-17]
[24] 肖晖,任战利,崔军平. 2008. 塔里木盆地孔雀1井志留系含气储集层成藏期次研究. 石油实验地质,30(4):357-362. [Xiao H,Ren Z L,Cui J P. 2008. Studies of accumulation stages of Silurian gas bearing reservoirs in Well KongQue 1 in the Tarim basin. Petroleum Geology & Experiment,30(4):357-362]
[25] 张生. 1997. 碳、硫同位素储库效应的定量理论模式. 地质论评,43(2):174-180. [Zhang S. 1997. Theoretical model of reservoir effects on carbon and sulfur isotopes. Geological Review,43(2):174-180]
[26] 赵宗举,吴兴宁,潘文庆,张兴阳,张丽娟,马培领,王振宇. 2009. 塔里木盆地奥陶纪层序岩相古地理. 沉积学报,27(5):939-955. [Zhao Z J,Wu X N,Pan W Q,Zhang X Y,Zhang L J,Ma P L,Wang Z Y. 2009. Sequence lithofacies paleogeography of Ordovician in Tarim Basin. Acta Sedimentologica Sinica,27(5):939-955].
[27] 赵宗举,潘懋,杨海军,俞广,徐云俊. 2010. 塔里木盆地中—上奥陶统浊积岩物源分析及大地构造意义. 地质科学,45(3):681-697. [Zhao Z J,Pan M,Yang H J,Yu G,Xu Y J. 2010. The source rock of turbidites of Middle-Upper Ordovician in Tarim Basin and its tectonic significance. Chinese Journal of Geology (Scientia Geologica Sinica),45(3):681-697]
[28] 钟广法,刘学锋,邓常念,万里皋. 2006. 塔里木盆地塔东凸起西部中上奥陶统地震层序与海底扇沉积. 地球科学,31(3):366-371. [Zhong G F,Liu X F,Deng C N,Wan L G. 2006. Middle-Upper Ordovician seismic sequences and submarine fan deposits in west Tadong Uplift,Tarim Basin,Northwest China. Earth Science,31(3):366-371]
[29] 周志澄,方宗杰,郭震宇,王玉净,肖荫文. 2000. 拉巴灰岩:深水碳酸盐沉积成因的认识及其意义. 地层学杂志,24(3):190-194. [Zhou Z C,Fang Z J,Guo Z Y,Wang Y J,Xiao Y W. 2000. Laba limestone:Recognition of origin of deep-water carbonate deposits and it’s significance. Journal of Stratigraphy,24(3):190-194]
[30] Cook H E,Taylor M E. 1977. Comparison of continental slope and shelf environments in the Upper Cambrian and Lowest Ordovisian of Nevada.In:Cook H E,Enos P. Deep-Water Carbonate Envirorments. SEPM Special Publication,25:51-81.
[31] David V L. 1988. Characteristics of deep-marine dolomite. Journal of Sedimentary Petrology,58(6):1023-1031.
[32] Davies G R,Denison R E,Koepnick R B,Fletcher A,Howell M W,Callaway W S. 1994. Criteria for the retention of original seawater 87 Sr/ 86 Sr in ancient shelf limestones. Chemical Geology,112:131-143.
[33] Denison R E,Koepnick R B,Burke W H. 1994. Construction of the Mississippian,Pennsylvanian and Permian seawater 87 Sr/ 86 Sr curve. Chemical Geology,112:145-167.
[34] Denison R E,Koepnick R B,Burke W H. 1998. Construction of the Cambrian and Ordovician seawater 87 Sr/ 86 Sr curve. Chemical Geology,152(1):109-121.
[35] Fabio T,Gianni C,Vanna M,Noris M. 2001. Mineralogy and geochemistry of early-formed deep marine dolomite in the Castagnola Formation(Oligocene-Miocene,Northern Italy). Eur. J. Mineral,13(4):727-741.
[36] Friedman G M. 2007. Structurally controlled hydrothermal dolomite reservoir facies:An overview:Discussion. AAPG Bulletin,91(9):1339-1341.
[37] Georger D. 1997. Stratigraphic patterns of deep-water dolomite,Northeast Australia. Journal of Sedimentary Petrology,67(6):1083-1096.
[38] Ingram B L,Sloan P. 1992. Strontium isotopic composition of estuarine sediments as paleosalinity-Paleoclimate indicator. Science,255:68-72.
[39] Land L S. 1985. The origin of massive dolomite. Journal of Geological Education,33(1):112-125.
[40] L��cuyer C, Allemand P. 1999. Modelling of the oxygen isotope evolution of seawater:Implications for the climate interpretation of δ 18 O of marine sediments. Geochimica et Cosmochimica Acta,63(3/4):351-361.
[41] Lumsden D N. 1988. Characteristics of deep-marine dolomite. Journal of Sedimentary Petrology,58(8):1023-1031.
[42] Jones C E,Jenkyns H C,Hesselbo S P. 1994. Strontium isotope in Early Jurassic seawater. Geochimca et Cosmochim Acta,58:1285-1301.
[43] Kaufman A J,Jacobsen S B,Knoll A H. 1993. The Vendian record of Sr-and C-isotopic variations in seawater:Implications for tectonics and palaeoclimate. Earth Planet. Sci. Lett,20(3):409-430.
[44] Keith M L,Weber J N. 1964. Carbon and oxygen isotopic composition of selected limestones and fossils. Geochimica et Cosmochimica Acta,28(11):1787-1816.
[45] Kenneth J T,Kenneth R W. 1996. Ordovician Low-to intermediate-Mg calcite marine cements from Sweden:Marine alteration and implications for oxygen isotopes in Ordovician seawater. Sedimentology,43(4):719-735.
[46] Mclennan S M. 1989. Rare earth elements in sedimentary rocks:Influence of provenance and sedimentary processes. In:Lipin B R,Mckay G A(eds). Geochemistry and Mineralogy of Rare Earth Elements. Rev. Mineral.,21:169-200.
[47] Mclennan S M. 1993. Weathering and global denudation. Journal of Geology,101:295-310.
[48] Montanez I P,Banner J L,Osleger D A,Borg L E,Bosserman P J. 1996. Intergrated Sr isotope variation and sea-level history of Middle to Upper Canmbrian plat-form carbonates:Implication for the evolution of Cambrian seawater 87 Sr/ 86 Sr. Geology,24(10):917-920.
[49] Moore C H. 2001. Carbonate Reservoirs:Porosity Evolution and Diagenesis in a Sequence Stratigraphic Framework. Elsevier Science,19-36.
[50] Reinhardt E G,Stanley D J,Patterson R T. 1998. Strontium isotopic palaeonological method as a high-resolution paleo-salinity tool for lagoonal environments. Geology,26(11):1003-1006.
[51] Shanmugam G. 2003. Deep-marine tidal bottom currents and their reworked sands in modem and ancient submarine canyons. Marine and Petroleum Geology,20:471-491.
[52] Simms M A. 1984. Dolomitization by groundwater-flow systems in carbonate platforms:Transactions of the Gulf Coast. Association of Geological Societies,34:411-420.
[53] Veizer J,Buhl D,Diencer A,Ebneth S. 1997. Strontium isotope stratigraphy:Potential resolution and event correlation. Palaeogeography,Palaeoclimatology,Palaeoecology,132:65-77.
[54] Veizer J,Ala D,Azmy K. 1999. 87 Sr/ 86 Sr, δ 13 C and δ 18 O evolution of Phanerozoic seawater. Chemical Geology,161(1):59-88. |