[1] Sun G Q, Wang Y, Guo J, et al. Clay minerals and element geochemistry of clastic reservoirs in the Xiaganchaigou Formation of the Lenghuqi area, northern Qaidam Basin, China[J]. Minerals, 2019, 9(11): 678.
[2] Werne J P, Lyons T W, Hollander D J, et al. Reduced sulfur in euxinic sediments of the Cariaco Basin: Sulfur isotope constraints on organic sulfur Formation[J]. Chemical Geology, 2003, 195(1/2/3/4): 159-179.
[3] 范玉海,屈红军,王辉,等. 微量元素分析在判别沉积介质环境中的应用:以鄂尔多斯盆地西部中区晚三叠世为例[J]. 中国地质,2012,39(2):382-389.

Fan Yuhai, Qu Hongjun, Wang Hui, et al. The application of trace elements analysis to identifying sedimentary media environment: A case study of Late Triassic strata in the middle part of western Ordos Basin[J]. Geology in China, 2012, 39(2): 382-389.
[4] Algeo T J, Maynard J B. Trace-element behavior and redox facies in core shales of Upper Pennsylvanian Kansas-type cyclothems[J]. Chemical Geology, 2004, 206(3/4): 289-318.
[5] 李宏义,汤良杰,姜振学,等. 柴达木盆地北缘冷湖七号构造油气成藏过程与模式[J]. 地质学报,2007,81(2):267-272.

Li Hongyi, Tang Liangjie, Jiang Zhenxue, et al. Process and model of hydrocarbon accumulation in the area of Lenghu No.7 on the northern margin of the Qaidam Basin[J]. Acta Geologica Sinica, 2007, 81(2): 267-272.
[6] 白亚东,杨巍,马峰,等. 柴北缘冷湖七号—南八仙地区构造特征及油气勘探方向[J]. 特种油气藏,2019,26(1):75-79.

Bai Yadong, Yang Wei, Ma Feng, et al. Tectonic feature and oil and gas exploration direction of Lenghu 7—Nanbaxian area on north margin of Qaidam Basin[J]. Special Oil & Gas Reservoirs, 2019, 26(1): 75-79.
[7] 谢宗奎,胡锌波,陶宗谱,等. 柴达木盆地冷湖七号第三系储层物性影响因素及分类意义[J]. 内蒙古石油化工,2006,32(10):81-83.

Xie Zongkui, Hu Xinbo, Tao Zongpu, et al. The influence on reservoir physical property of Lenghu-7 Tertiary, Qindam Basin along with classification significance[J]. Inner Mongolia Petrochemical Industry, 2006, 32(10): 81-83.
[8] 谢宗奎,刘人和,苏燕,等. 柴达木盆地冷湖七号构造成藏分析及勘探意义[J]. 石油天然气学报(江汉石油学院学报),2005,27(增刊3):451-452,459.

Xie Zongkui, Liu Renhe, Su Yan, et al. Hydrocarbon accumulation analysis and exploration significance of No.7 Lenghu structure in Qaidam Basin[J]. Journal of Oil and Gas Technology (Journal of Jianghan Petroleum Institute), 2005, 27(Suppl. 3): 451-452, 459.
[9] 李得信,黄素品,杨洪明,等. 对柴达木盆地北缘冷湖构造带冷湖七号构造深层油气显示的深化认识[J]. 青海石油,2006,24(3):9-14.

Li Dexin, Huang Supin, Yang Hongming, et al. Deepening understanding of the deep oil and gas display of the Lenghu No. 7 structure in the cold lake tectonic belt of the northern margin of the Qaidam Basin[J]. Qinghai Petroleum, 2006, 24(3): 9-14.
[10] 王步清,王清华,陈汉林,等. 柴北缘冷湖地区构造建模和构造分析[J]. 大地构造与成矿学,2006,30(4):430-434.

Wang Buqing, Wang Qinghua, Chen Hanlin, et al. Three-dimensional structure modeling and structural analysis of the Lenghu area on the northern margin of Qaidam Basin[J]. Geotectonica et Metallogenia, 2006, 30(4): 430-434.
[11] 林洪,李凤杰,李磊,等. 柴达木盆地北缘古近系重矿物特征及物源分析[J]. 天然气地球科学,2014,25(4):532-541.

Lin Hong, Li Fengjie, Li Lei, et al. Characteristics of Paleogene heavy mineral and its source in northern margin of Qaidam Basin[J]. Natural Gas Geoscience, 2014, 25(4): 532-541.
[12] 赵睿. 柴北缘冷湖地区古近系物源研究[C]//2015年全国沉积学大会沉积学与非常规资源论文摘要集. 武汉:中国地质学会沉积地质专业委员会,中国矿物岩石地球化学学会沉积学专业委员会,长江大学地球科学学院,2015:2.

Zhao Rui. Paleogene provenance study in Lenghu area, northern margin of Qaidam Basin[C]//Abstracts of papers on sedimentology and unconventional resources of 2015 national sedimentology congress. Wuhan: Sedimentary Geology Committee of Chinese Geological Society, Sedimentology Committee of Chinese Society of Mineralogy and Petrochemistry School of Earth Sciences, Changjiang University, 2015: 2.
[13] 顾家裕. 塔里木盆地石炭系东河砂岩沉积环境分析及储层研究[J]. 地质学报,1996,70(2):153-161.

Gu Jiayu. Sedimentary environment and reservoir characters of the Carboniferous Donghe sandstone in the Tarim Basin[J]. Acta Geologica Sinica, 1996, 70(2): 153-161.
[14] 韩清华,兖鹏,余朝华,等. 渤海湾盆地东营凹陷辛东地区构造演化及油气成藏规律[J]. 地质力学学报,2008,14(4):362-373,345.

Han Qinghua, Yan Peng, Yu Zhaohua, et al. Structural evolution and hydrocarbon accumulation in the Xindong area of Dongying Sag, Bohai Bay Basin[J]. Journal of Geomechanics, 2008, 14(4): 362-373, 345.
[15] 贾艳艳,邢学军,孙国强,等. 柴北缘西段古—新近纪古气候演化[J]. 地球科学,2015,40(12):1955-1967.

Jia Yanyan, Xing Xuejun, Sun Guoqiang, et al. The Paleogene-Neogene paleoclimate evolution in western sector of northern margin of Qaidam Basin[J]. Earth Science, 2015, 40(12): 1955-1967.
[16] 王朝文,洪汉烈,李朝晖,等. 新生代柴北缘的气候和构造演化:来自沉积学和矿物学的证据[J]. 地球科学,2013,24(3):314-327.

Wang Chaowen, Hong Hanlie, Li Zhaohui, et al. Climatic and tectonic evolution in the north Qaidam since the Cenozoic: Evidence from sedimentology and mineralogy[J]. Journal of Earth Science, 2013, 24(3): 314-327.
[17] 孙国强,郑建京,苏龙,等. 柴达木盆地西北区中—新生代构造演化过程研究[J]. 天然气地球科学,2010,21(2):212-217.

Sun Guoqiang, Zheng Jianjing, Su Long, et al. Mesozoic-Cenozoic tectonic evolution in northwestern Qaidam Basin[J]. Natural Gas Geoscience, 2010, 21(2): 212-217.
[18] 靳宁,李安春,刘海志,等. 帕里西维拉海盆西北部表层沉积物中粘土矿物的分布特征及物源分析[J]. 海洋与湖沼,2007,38(6):504-511.

Jin Ning, Li Anchun, Liu Haizhi, et al. Clay minerals in surface sediment of the northwest Parece Vela Basin: Distribution and provenance[J]. Oceanologia et Limnologia Sinica, 2007, 38(6): 504-511.
[19] 杨作升. 黄河、长江、珠江沉积物中粘土的矿物组合、化学特征及其与物源区气候环境的关系[J]. 海洋与湖沼,1988,19(4):336-346.

Yang Zuosheng. Mineralogical assemblages and chemical characteristics of clays from sediments of the Huanghe, Changjiang, Zhujiang rivers and their relationship to the climate environment in their sediment source areas[J]. Oceanologia et Limnologia Sinica, 1988, 19(4): 336-346.
[20] 党玉琪,胡勇,余辉龙,等. 柴达木盆地北缘石油地质[M]. 北京:地质出版社,2003:45-78.

Dang Yuqi, Hu Yong, Yu Huilong, et al. Petroleum geology in the northern margin of Qaidam Basin[M]. Beijing: Geological Publishing House, 2003: 45-78.
[21] 王峰,刘玄春,邓秀芹,等. 鄂尔多斯盆地纸坊组微量元素地球化学特征及沉积环境指示意义[J]. 沉积学报,2017,35(6):1265-1273.

Wang Feng, Liu Xuanchun, Deng Xiuqin, et al. Geochemical characteristics and environmental implications of trace elements of Zhifang Formation in Ordos Basin[J]. Acta Sedimentologica Sinica, 2017, 35(6): 1265-1273.
[22] 孙国强,陈波,郑永仙,等. 柴北缘冷湖五号构造中新统成岩作用及沉积环境[J]. 天然气地球科学,2015,26(4):679-688.

Sun Guoqiang, Chen Bo, Zheng Yongxian, et al. Diagenesis and sedimentary environment of Miocene in Lenghu Ⅴ tectonic belt[J]. Natural Gas Geoscience, 2015, 26(4): 679-688.
[23] 孙国强,吕婧文,赵明君,等. 柴达木盆地鄂博梁Ⅲ号中新统成岩作用及沉积环境[J]. 沉积学报,2015,33(2):337-347.

Sun Guoqiang, Jingwen Lü, Zhao Mingjun, et al. Diagenesis and sedimentary environment of Miocene series in Eboliang III area[J]. Acta Sedimentologica Sinica, 2015, 33(2): 337-347.
[24] 隆浩,王晨华,刘勇平,等. 粘土矿物在过去环境变化研究中的应用[J]. 盐湖研究,2007,15(2):21-25,29.

Long Hao, Wang Chenhua, Liu Yongping, et al. Application of clay minerals in paleoenviroment research[J]. Journal of Salt Lake Research, 2007, 15(2): 21-25, 29.
[25] Cox R, Lowe D R, Cullers R L. The influence of sediment recycling and basement composition on evolution of mudrock chemistry in the southwestern United States[J]. Geochimica et Cosmochimica Acta, 1995, 59(14): 2919-2940.
[26] 金章东. 湖泊沉积物的矿物组成、成因、环境指示及研究进展[J]. 地球科学与环境学报,2011,33(1):34-44,77.

Jin Zhangdong. Composition, origin and environmental interpretation of minerals in lake sediments and recent progress[J]. Journal of Earth Sciences and Environment, 2011, 33(1): 34-34, 77.
[27] 钟巍,方小敏,李吉均,等. 近7.0-0.73MaB.P期间甘肃临夏盆地古气候演变的沉积物地球化学记录[J]. 干旱区资源与环境,1998,12(1):36-43.

Zhong Wei, Fang Xiaomin, Li Jijun, et al. The geochemical record of paleoclimate during about 7.0Ma-0.73Ma in Linxia Basin, Gansu province[J]. Journal of Arid Land Resources and Environment, 1998, 12(1): 36-43.
[28] 匡少平,徐仲,张书圣,等. 运用地球化学方法研究中、新生代环境气候演替:兼论四川盆地侏罗纪气候变化[J]. 青岛化工学院学报,2002,23(1):4-9.

Kuang Shaoping, Xu Zhong, Zhang Shusheng, et al. Applying geochemistry to research into Meso-Cenozoic climate: Discussion on Jurassic climatic change in Sichuan Basin, China[J]. Journal of Qingdao Institute of Chemical Technology, 2002, 23(1): 4-9.
[29] 宋明水. 东营凹陷南斜坡沙四段沉积环境的地球化学特征[J]. 矿物岩石,2005,25(1):67-73.

Song Mingshui. Sedimentary environment geochemistry in the Shasi section of southern ramp, Dongying Depression[J]. Journal of Mineralogy and Petrology, 2005, 25(1): 67-73.
[30] 马宝林,王琪. 青海湖现代沉积物的元素分布特征[J]. 沉积学报,1997,15(3):120-125.

Ma Baolin, Wang Qi. Distribution characteristics of elements in modern sediments of Qinghai Lake[J]. Acta Sedimentologica Sinica, 1997, 15(3): 120-125.
[31] 袁宝印,陈克造,Bowler J M,等. 青海湖的形成与演化趋势[J]. 第四纪研究,1990(3):233-243.

Yuan Baoyin, Chen Kezao, Bowler J M, et al. The formation and evolution of the Qinghai Lake[J]. Quaternary Sciences, 1990(3): 233-243.
[32] 刘刚,周东升. 微量元素分析在判别沉积环境中的应用:以江汉盆地潜江组为例[J]. 石油实验地质,2007,29(3):307-314.

Liu Gang, Zhou Dongsheng. Application of microelements analysis in identifying sedimentary environment: Taking Qianjiang Formation in the Jianghan Basin as an example[J]. Petroleum Geology & Experiment, 2007, 29(3): 307-314.
[33] Gromet L P, Haskin L A, Korotev R L, et al. The “North American shale composite”: Its compilation, major and trace element characteristics[J]. Geochimica et Cosmochimica Acta, 1984, 48(12): 2469-2482.
[34] 王自强,尹崇玉,高林志,等. 黔南—桂北地区南华系化学地层特征[J]. 地球学报,2009,30(4):465-474.

Wang Ziqiang, Yin Chongyu, Gao Linzhi, et al. Chemostratigraphic characteristics of the Nanhua system in southern Guizhou-northern Guangxi area[J]. Acta Geoscientia Sinica, 2009, 30(4): 465-474.
[35] Nesbitt H W, Young G M. Early Proterozoic climates and plate motions inferred from major element chemistry of lutites[J]. Nature, 1982, 299(5885): 715-717.
[36] 杨守业,李从先. REE示踪沉积物物源研究进展[J]. 地球科学进展,1999,14(2):164-167.

Yang Shouye, Li Congxian. Research progress in REE tracer for sediment source[J]. Advances in Earth Science, 1999, 14(2): 164-167.
[37] 史基安,郭雪莲,王琪,等. 青海湖QH1孔晚全新世沉积物稀土元素地球化学与气候环境关系探讨[J]. 湖泊科学,2003,15(1):28-34.

Shi Ji’an, Guo Xuelian, Wang Qi, et al. Geochemistry of REE in QH1 sediments of Qinghai Lake since Late Holocene and its paleoclimatic significance[J]. Journal of Lake Sciences, 2003, 15(1): 28-34.
[38] Taylor S R, McLennan S M. The continental crust: Its composition and evolution[M]. Oxford: Blackwell Scientific Publication, 1985.
[39] 常华进,储雪蕾,冯连君,等. 氧化还原敏感微量元素对古海洋沉积环境的指示意义[J]. 地质论评,2009,55(1):91-99.

Chang Huajin, Chu Xuelei, Feng Lianjun, et al. Redox sensitive trace elements as paleoenvironments proxies[J]. Geological Review, 2009, 55(1): 91-99.
[40] Nothdurft L D, Webb G E, Kamber B S. Rare earth element geochemistry of Late Devonian reefal carbonates, Canning Basin, western Australia: Confirmation of a seawater REE proxy in ancient limestones[J]. Geochimica et Cosmochimica Acta, 2004, 68(2): 263-283.
[41] Haskin L A, Frey F A. Dispersed and not-so-rare earths[J]. Science, 1966, 152(3720): 299-314.
[42] Cullers R L, Basu A, Suttner L J. Geochemical signature of provenance in sand-size material in soils and stream sediments near the Tobacco Root batholith, Montana, U.S.A.[J]. Chemical Geology, 1988, 70(4): 335-348.
[43] Bhatia M R. Rare earth element geochemistry of Australian Paleozoic graywackes and mudrocks: Provenance and tectonic control[J]. Sedimentary Geology, 1985, 45(1/2): 97-113.
[44] Bhatia M R. Plate tectonics and geochemical composition of sandstones[J]. The Journal of Geology, 1983, 91(6): 611-627.
[45] Bhatia M R, Crook K A W. Trace element characteristics of graywackes and tectonic setting discrimination of sedimentary basins[J]. Contributions to Mineralogy and Petrology, 1986, 92(2): 181-193.
[46] Grunsky E, Massey N. Using geochemical data: Evaluation, presentation, interpretation[J]. Geochimica et Cosmochimica Acta, 1994, 59(3): 439-441.
[47] 常吟善,赵洪,覃军,等. 古近纪气候变化在东海盆地内的化石记录[J]. 沉积学报,2019,37(2):320-329.

Chang Yinshan, Zhao Hong, Qin Jun, et al. Sedimentary response to paleoclimate change in the East China Sea shelf basin[J]. Acta Sedimentologica Sinica, 2019, 37(2): 320-329.
[48] 拓守廷,刘志飞. 始新世—渐新世界线的全球气候事件:从“温室”到“冰室”[J]. 地球科学进展,2003,18(5):691-696.

Shouting Tuo, Liu Zhifei. Global climate event at the Eocene-Oligocene transition: From greenhouse to icehouse[J]. Advance in Earth Sciences, 2003, 18(5): 691-696.
[49] Zachos J, Pagani M, Sloan L, et al. Trends, rhythms, and aberrations in global climate 65 Ma to present[J]. Science, 2001, 292(5517): 686-693.
[50] Miller K G, Kominz M A, Browning J V, et al. The Phanerozoic record of global sea-level change[J]. Science, 2005, 310(5752): 1293-1298.
[51] DeConto R M, Pollard D. Rapid Cenozoic glaciation of Antarctica induced by declining atmospheric CO2[J]. Nature, 2003, 421(6920): 245-249.
[52] Royden L H, Burchfiel B C, Van Der Hilst R D. The geological evolution of the Tibetan plateau[J]. Science, 2008, 321(5892): 1054-1058.
[53] 李俊武,代廷勇,李凤杰,等. 柴达木盆地鄂博梁地区古近系沉积物源方向分析[J]. 沉积学报,2015,33(4):649-658.

Li Junwu, Dai Tingyong, Li Fengjie, et al. Provenance analysis of the Palaeogene in Eboliang area of Qaidam Basin[J]. Acta sedimentologica Sinica, 2015, 33(4): 649-658.
[54] 陈迎宾. 柴达木盆地北缘构造发育特征及其对油气成藏的控制[D]. 北京:中国地质大学(北京),2010.

Chen Yingbin. Tectonic developmental feature and its control for hydrocarbon accumulation in northern margin of Qaidam Basin[D]. Beijing: China University of Geosciences (Beijing), 2010.
[55] 刘伟明,孙国强,郭佳佳,等. 柴北缘西段古近纪物源体系分析[J]. 沉积与特提斯地质,2018,38(1):53-61.

Liu Weiming, Sun Guoqiang, Guo Jiajia, et al. Provenance analysis of the Palaeogene clastic rocks in the western part of northern Qaidam Basin[J]. Sedimentary Geology and Tethyan Geology, 2018, 38(1): 53-61.
[56] 王波,周飞,石正灏,等. 柴北缘冷湖构造带古近系沉积体系及演化特征[J]. 地质与资源,2019,28(6):543-552.

Wang Bo, Zhou Fei, Shi Zhenghao, et al. The Paleogene sedimentary system and evolution characteristics of Lenghu structural belt in northern Qaidam Basin[J]. Geology and Resources, 2019, 28(6): 543-552.
[57] 赵凡,孙德强,闫存凤,等. 柴达木盆地中新生代构造演化及其与油气成藏关系[J]. 天然气地球科学,2013,24(5):940-947.

Zhao Fan, Sun Deqiang, Yan Cunfeng, et al. Meso-Cenozoic tectonic evolution of Qaidam Basin and its relationship with oil and gas accumulation[J]. Natural Gas Geoscience, 2013, 24(5): 940-947.
[58] 周建勋,徐凤银,胡勇. 柴达木盆地北缘中、新生代构造变形及其对油气成藏的控制[J]. 石油学报,2003,24(1):19-24.

Zhou Jianxun, Xu Fengyin, Hu Yong. Mesozoic and Cenozoic tectonism and its control on hydrocarbon accumulation in the northern Qaidam Basin of China[J]. Acta Petrolei Sinica, 2003, 24(1): 19-24.