[1] Sellés-Martínez J. Concretion morphology, classification and genesis[J]. Earth-Science Reviews, 1996, 41(3/4): 177-210.
[2] Raiswell R. Non-steady state microbiological diagenesis and the origin of concretions and nodular limestones[J]. Geological Society, London, Special Publications, 1987, 36(1): 41-54.
[3] Raiswell R. The growth of Cambrian and Liassic concretions[J]. Sedimentology, 1971, 17(3/4): 147-171.
[4] Raiswell R. Evidence for surface reaction-controlled growth of carbonate concretions in shales[J]. Sedimentology, 1988, 35(4): 571-575.
[5] Mozley P S, Burns S J. Oxygen and carbon isotopic composition of marine carbonate concretions: An overview[J]. Journal of Sedimentary Research, 1993, 63(1): 73-83.
[6] Kiriakoulakis K, Marshall J D, Wolff G A. Biomarkers in a Lower Jurassic concretion from Dorset (UK)[J]. Journal of the Geological Society, 2000, 157(1): 207-220.
[7] Raiswell R, Fisher Q J. Mudrock-hosted carbonate concretions: A review of growth mechanisms and their influence on chemical and isotopic composition[J]. Journal of the Geological Society, 2000, 157(1): 239-251.
[8] Hendry J P, Pearson M J, Trewin N H, et al. Jurassic septarian concretions from NW Scotland record interdependent bacterial, physical and chemical processes of marine mudrock diagenesis[J]. Sedimentology, 2006, 53(3): 537-565.
[9] Loyd S J, Berelson W M, Lyons T W, et al. Constraining pathways of microbial mediation for carbonate concretions of the Miocene Monterey Formation using carbonate-associated sulfate[J]. Geochimica et Cosmochimica Acta, 2012, 78: 77-98.
[10] Stakes D S, Orange D, Paduan J B, et al. Cold-seeps and authigenic carbonate formation in Monterey Bay, California[J]. Marine Geology, 1999, 159(1/2/3/4): 93-109.
[11] Campbell K A, Nelson C S, Alfaro A C, et al. Geological imprint of methane seepage on the seabed and biota of the convergent Hikurangi margin, New Zealand: Box core and grab carbonate results[J]. Marine Geology, 2010, 272(1/2/3/4): 285-306.
[12] Pierre C, Blanc-Valleron M M, Caquineau S, et al. Mineralogical, geochemical and isotopic characterization of authigenic carbonates from the methane-bearing sediments of the Bering Sea continental margin (IODP Expedition 323, Sites U1343-U1345)[J] Deep Res[J]. Deep Sea Research Part II: Topical Studies in Oceanography, 2016, 125-126: 133-144.
[13] Oppo D, Viola I, Capozzi R. Fluid sources and stable isotope signatures in authigenic carbonates from the northern Apennines, Italy[J]. Marine and Petroleum Geology, 2017, 86: 606-619.
[14] Nemra A, Mehadji A O, Munnecke A, et al. Carbonate concretions in Miocene mudrocks in NW Algeria: Types, geochemistry, and origins[J]. Facies, 2019, 65(2): 17.
[15] 佟宏鹏,陈多福. 西藏日喀则晚白垩世冷泉碳酸盐岩的发现及其特征[J]. 科学通报,2012,57(36):3500-3510.

Tong Hongpeng, Chen Duofu. First discovery and characterizations of Late Cretaceous seep carbonates from Xigaze in Tibet[J]. Chinese Science Bulletin, 2012, 57(36): 3500-3510.
[16] 欧莉华,伊海生,夏国清,等. 内蒙古东北部林西组碳酸盐岩结核的成因及油气地质意义[J]. 成都理工大学学报(自然科学版),2013,40(4):438-444.

Lihua Ou, Yi Haisheng, Xia Guoqing, et al. Origin and petroleum geological significance of carbonate rock concretes in Linxi Formation, northeast of Inner Mongolia, China[J]. Journal of Chengdu University of Technology (Science & Technology Edition), 2013, 40(4): 438-444.
[17] 夏国清,伊海生. 羌塘盆地双湖地区曲色组冷泉碳酸盐岩及其地质意义[J]. 沉积与特提斯地质,2015,35(1):68-75.

Xia Guoqing, Yi Haisheng. Characteristics and significance of the cold-vent carbonate rocks from the Quse Formation in the Shuanghu area, Qiangtang Basin, northern Xizang[J]. Sedimentary Geology and Tethyan Geology, 2015, 35(1): 68-75.
[18] 杨华,付金华,袁效奇. 鄂尔多斯盆地南缘地质剖面图集[M]. 北京:石油工业出版社,2016:1-396.

Yang Hua, Fu Jinhua, Yuan Xiaoqi. Geological profile atlas of the southern margin of Ordos Basin[M]. Beijing: Petroleum Industry Press, 2016: 1-396.
[19] 董杰,胡作维,袁效奇,等. 鄂尔多斯盆地南缘长7油层组碳酸盐结核的特征及石油地质意义[J]. 成都理工大学学报(自然科学版),2017,44(5):553-564.

Dong Jie, Hu Zuowei, Yuan Xiaoqi, et al. The carbonate concretions of Chang-7 and their hydrocarbon significance in southern Ordos Basin, China[J]. Journal of Chengdu University of Technology (Science & Technology Edition), 2017, 44(5): 553-564.
[20] 苏玲,朱如凯,崔景伟,等. 中国湖相碳酸盐岩时空分布与碳氧同位素特征[J]. 古地理学报,2017,19(6):1063-1074.

Su Ling, Zhu Rukai, Cui Jingwei, et al. Spatial-temporal distribution of lacustrine carbonate rocks in China and their carbon and oxygen isotopic characteristics[J]. Journal of Palaeogeography, 2017, 19(6): 1063-1074.
[21] 李云,胡作维,刘灿,等. 鄂尔多斯盆地渭北地区上三叠统延长组长7油层组碳酸盐结核中自生碳酸盐矿物的特征[J]. 古地理学报,2019,21(4):577-588.

Li Yun, Hu Zuowei, Liu Can, et al. Characteristics of authigenic carbonate minerals in carbonate concretions of the Chang 7 oil-bearing interval of Upper Triassic Yanchang Formation in Weibei area, Ordos Basin[J]. Journal of Palaeogeography, 2019, 21(4): 577-588.
[22] You J Y, Liu Y Q, Li Y X, et al. Discovery and significance of ancient cod fossils in hydrothermal fluid deposition areas: A case study of Chang 7-3 from the Triassic Yanchang Formation in the Ordos Basin[J]. Historical Biology, 33(2):1-14.
[23] You J Y, Liu Y Q, Song S S, et al. In situ S isotope analysis and source tracing of pyrite from lacustrine hydrothermal sedimentary rocks: The Chang 7-3 sub-member, Triassic Yanchang Formation, Ordos Basin[J]. Australian Journal of Earth Sciences, 2021, 68(3): 440-451.
[24] Zhu R K, Cui J W, Luo Z, et al. Isotopic geochemical characteristics of two types of carbonate concretions of Chang 7 member in the Middle-Upper Triassic Yanchang Formation, Ordos Basin, central China[J]. Marine and Petroleum Geology, 2020, 116: 104312.
[25] 尤继元. 鄂尔多斯盆地南缘三叠系延长组长7喷积岩特征及其与烃源岩关系研究[D]. 西安:西北大学,2020:1-162.

You Jiyuan. Study on the characteristics of hydrothermal-exhalative sedimentary rocks (HESR) and its relationship with source rocks from Chang 7 section of Triassic Yanchang Formation in the southern margin of Ordos Basin[D]. Xian: Northwest University, 2020: 1-162.
[26] 孙莎莎,姚艳斌,吝文. 鄂尔多斯盆地南缘铜川地区油页岩元素地球化学特征及古湖泊水体环境[J]. 矿物岩石地球化学通报,2015,34(3):642-645.

Sun Shasha, Yao Yanbin, Lin Wen. Elemental geochemical characteristics of the oil shale and the paleo-lake environment of the Tongchuan area, southern Ordos Basin[J]. Bulletin of Mineralogy, Petrology and Geochemistry, 2015, 34(3): 642-645.
[27] 王喆,陈清敏,杨文博,等. 鄂尔多斯盆地铜川地区油页岩特征及资源评价[J]. 非常规油气,2016,3(4):32-39.

Wang Zhe, Chen Qingmin, Yang Wenbo, et al. Characteristics and resource evaluation for oil shale in Tongchuan area of Ordos Basin[J]. Unconventonal Oil & Gas, 2016, 3(4): 32-39.
[28] Rona P A. Criteria for recognition of hydrothermal mineral deposits in oceanic crust[J]. Economic Geology, 1978, 73(2): 135-160.
[29] 徐勇航,赵太平,胡俊良,等. 华北陆块南部古元古代熊耳群硅质岩地球化学特征及其沉积环境[J]. 沉积学报,2008,26(4):602-609.

Xu Yonghang, Zhao Taiping, Hu Junliang, et al. Geochemical characteristics and sedimentary environments of cherts from the Paleoproterozoic Xiong’er Group in the southern part of the North China Block[J]. Acta Sedimentologica Sinica, 2008, 26(4): 602-609.
[30] McLennan S M, Taylor S R. Th and U in sedimentary rocks: Crustal evolution and sedimentary recycling[J]. Nature, 1980, 285(5767): 621-624.
[31] Rollison H R. 岩石地球化学[M]. 杨学明,杨晓勇,陈双喜,译. 合肥:中国科学技术大学出版社,2000:1-118.

Rollison H R. Rock geochemistry[M]. Yang Xueming, Yang Xiaoyong, Chen Shuangxi, trans. Hefei: University of Scientific and Technological of China Press, 2000: 1-118.
[32] 魏菊英,王关玉. 同位素地球化学[M]. 北京:地质出版社,1988:1-165.

Wei Juying, Wang Guanyu. Isotope geochemistry[M]. Beijing: Geological Publishing House, 1988: 1-165.
[33] Fairbridge R W. The encyclopedia of geochemistry and environmental sciences[M]. New York: Van Nostrand Reinhold Co., 1972: 1321-1326.
[34] Anderson T F, Arthur M A. Stable isotopes of oxygen and carbon and their application to sedimentologic and paleoenvironmental problems[M]//Arthur M A. Stable isotopes in sedimentary geology, SEPM short course 10. 1983: 111-151
[35] Aloisi G, Bouloubassi I, Heijs S K, et al. CH4-consuming microorganisms and the formation of carbonate crusts at cold seeps[J]. Earth and Planetary Science Letters, 2002, 203(1): 195-203.
[36] 王大锐. 油气稳定同位素地球化学[M]. 北京:石油工业出版社,2000:1-240.

Wang Darui. Stable isotope geochemistry of oil and gas[M]. Beijing: Petroleum Industry Press, 2000: 1-240.
[37] Mazzullo S J. Organogenic dolomitization in peritidal to deep-sea sediments[J]. Journal of Sedimentary Research, 2000, 70(1): 10-23.
[38] Roberts J A, Bennett P C, González L A, et al. Microbial precipitation of dolomite in methanogenic groundwater[J]. Geology, 2004, 32(4): 277-280.
[39] Kenward P A, Goldstein R H, González L A, et al. Precipitation of low-temperature dolomite from an anaerobic microbial consortium: The role of methanogenic archaea[J]. Geobiology, 2009, 7(5): 556-565.
[40] Spencer R J. Origin of Ca-Cl brines in Devonian formations, western Canada sedimentary basin[J]. Applied Geochemistry, 1987, 2(4): 373-384.
[41] 张帅,伊海生,夏国清,等. 羌塘盆地南部布曲组含油白云岩中自生文石胶结物的鉴定及其成因探讨[J]. 石油实验地质,2016,38(6):772-778.

Zhang Shuai, Yi Haisheng, Xia Guoqing, et al. Mineral and genesis study of authigenic aragonite in sucrosic dolomites from Middle Jurassic Buqu Formation in southern Qiangtang Basin, Tibet[J]. Petroleum Geology & Experiment, 2016, 38(6): 772-778.
[42] Yoshida H, Yamamoto K, Minami M, et al. Generalized conditions of spherical carbonate concretion formation around decaying organic matter in early diagenesis[J]. Scientific Reports, 2018, 8(1): 6308.
[43] Yoshida H, Yamamoto K, Ohe T, et al. Diffusion controlled formation of spherical carbonate concretion in muddy sedimentary matrices[J]. Geochemical Journal, 2020, 54(4): 233-242.
[44] 李鹏,刘全有,毕赫,等. 火山活动与海侵影响下的典型湖相页岩有机质保存差异分析[J]. 地质学报,2021,95(3):632-642.

Li Peng, Liu Quanyou, Bi He, et al. Analysis of the difference in organic matter preservation in typical lacustrine shale under the influence of volcanism and transgression[J]. Acta Geologica Sinica, 2021, 95(3): 632-642.
[45] Aref M A, Taj R J. Recent evaporite deposition associated with microbial mats, Al-Kharrar supratidal⁃intertidal sabkha, Rabigh area, Red Sea coastal plain of Saudi Arabia[J]. Facies, 2018, 64(4): 28.
[46] Oelkers E H, Gislason S R, Matter J. Mineral carbonation of CO2 [J]. Elements, 2008, 4(5): 333-337.
[47] 李泯星,屈海洲,程曦,等. 火山作用对碳酸盐岩沉积及成岩的影响[J]. 沉积学报,2020,38(4):810-825.

Li Minxing, Qu Haizhou, Cheng Xi, et al. Influence of volcanism on carbonate sedimentation and diagenesis[J]. Acta Sedimentologica Sinica, 2020, 38(4): 810-825.
[48] 张文正,杨华,彭平安,等. 晚三叠世火山活动对鄂尔多斯盆地长7优质烃源岩发育的影响[J]. 地球化学,2009,38(6):573-582.

Zhang Wenzheng, Yang Hua, Peng Ping’an, et al. The influence of Late Triassic volcanism on the development of Chang 7 high grade hydrocarbon source rock in Ordos Basin[J]. Geochimica, 2009, 38(6): 573-582.
[49] 孙莎莎,刘人和,拜文华. 鄂尔多斯盆地铜川地区上三叠统油页岩含油率影响因素分析[J]. 中国石油勘探,2011,16(2):79-83.

Sun Shasha, Liu Renhe, Bai Wenhua. Effect factor analysis of oil content of Upper Triassic oil shale in Tongchuan area, Ordos Basin[J]. China Petroleum Exploration, 2011, 16(2): 79-83.
[50] 张文正,杨华,解丽琴,等. 鄂尔多斯盆地延长组长7优质烃源岩中超微化石的发现及意义[J]. 古生物学报,2011,50(1):109-117.

Zhang Wenzheng, Yang Hua, Xie Liqin, et al. Discovery of micro-and nannofossils in high grade hydrocarbon source rocks of the Triassic Yanchang Formation Chang 7 member in Ordos Basin and its scientific significance[J]. Acta Palaeontologica Sinica, 2011, 50(1): 109-117.