The Division of Qingbaikouan-Triassic Tectono-Stratigraphic Regions and Their Characteristics in South China
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摘要: 构造-地层区划是一项具有全局性和战略性的工作,是地质学和地球科学所涉及各领域调查研究的“骨架”。本文针对华南新元古代青白口纪—中生代三叠纪地层发育特征,提出华南该时段构造-地层一至三级综合区划方案。区划的原则是找出各单元独特的、明显区别于相邻单元的构造-岩石建造特征。区划工作主要以大地构造背景和演化历程、洋陆重建与分布、深部构造及结构、构造隆升与坳陷、地层序列和结构、沉积相序等为依据,划分出3 个一级单元、6 个二级单元和44 个三级单元。通过一至三级区划,揭示出青白口纪—三叠纪期间华南原型盆地成生与地层充填序列、控制盆地发育的大地构造环境均与周缘洋盆的演化和洋陆转换过程密切相关。Abstract: The tectono-stratigraphic regionalization is a global and strategic work, also the“skeleton”of investigation and research in all fields of geology and earth science. An integrated regionalization scheme of the first to third levels of tectono-stratigraphy in South China is proposed in accordance with the development characteristics of Qingbaikouan-Triassic strata. The principle of regionalization is to find out the unique tectono-stratigraphic characteristics of each unit distinguishing from adjacent units. South China tectono-stratigraphic regions are divided into 3 first-level units, 6 second-level units and 44 third-level units according to the tectonic setting and evolutionary history, ocean-continental reconstruction distribution, deep tectonics and structures, tectonic uplift and depression, stratigraphic sequence and structure, sedimentary facies sequence, and so on. Then it is revealed that the formation and stratigraphic filling sequence of the prototype basin in South China and the tectonic environment controlling the development of the basins are closely related to the evolution of peripheral ocean basins and the ocean-continental transition.
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[1] 常印佛,刘湘培,吴言昌.1991.长江中下游铜铁成矿带[M].北京:地质出版社.
[2] 陈旭,张元动,樊隽轩,成俊峰,李启剑.2010.赣南奥陶纪笔石地层序列与广西运动[J].中国科学:地球科学,40(12):1621-1631.
[3] 陈旭,张元动,樊隽轩,唐兰,孙海清.2012.广西运动的进程:来自生物相和岩相带的证据[J].中国科学:地球科学,42(11):1617-1626.
[4] 程裕淇,王泽九,黄枝高.2009.中国地层典·总论[M].北京:地质出版社,1-411.
[5] 邓晋福,冯艳芳,狄永军,等.2015.中国侵入岩大地构造图说明书(1:2500000)[M].北京:地质出版社.
[6] 邓晋福,冯艳芳,狄永军,等.2017.中国侵入岩大地构造图[M].北京:地质出版社.
[7] 丁炳华,史仁灯,支霞臣,郑磊,陈雷.2008.江南造山带存在新元古代(~850 Ma)俯冲作用:来自皖南SSZ 型蛇绿岩锆石SHRIMPU-Pb 年龄证据[J].岩石矿物学杂志,27(5):375-388.
[8] 丁莲芳,李勇,胡夏嵩,肖娅萍,苏春乾,黄建成.1996.震旦纪庙河生物群[M].北京:地质出版社.
[9] 董树文,薛怀民,项新葵,马立成.2010.赣北庐山地区新元古代细碧-角斑岩系枕状熔岩的发现及其地质意义[J].中国地质,37(4):1021-1033.
[10] 杜秋定,汪正江,王剑,卓皆文,谢尚克,邓奇,杨菲.2013.湘中长安组碎屑锆石LA-ICP-MS U-Pb 年龄及其地质意义[J].地质论评,59(2):334-344.
[11] 郭令智,卢华复,施央申,马瑞士,孙岩,舒良树,贾东,张庆龙.1996.江南中、新元古代岛弧的运动学和动力学[J].高校地质学报,2(1):1-13.
[12] 何卫红,唐婷婷,乐明亮,邓晋福,潘桂棠,邢光福,骆满生,徐亚东,韦一,张宗言,肖异凡,张克信.2014.华南南华纪-二叠纪沉积大地构造演化[J].地球科学,39(8):929-953.
[13] 华洪,张录易,张子福,王静平.2001.高家山生物群化石组合面貌及其特征[J].地层学杂志,25(1):10-17.
[14] 黄汲清.1962.中国地层区划的初步建议[M].//见:全国地层会议学术报告汇编,总论.北京:科学出版社.
[15] 李兴振,许效松,潘桂棠.1995.泛华夏大陆群与东特提斯构造域演化[J].岩相古地理,15(4):1-13.
[16] 刘宝珺,许效松.1992.中国南方岩相古地理图集(震旦纪—三叠纪)[M].北京:科学出版社.
[17] 陆松年,郝国杰,王惠初,等.2015.中国变质岩大地构造图说明书(1:2500000)[M].北京:地质出版社.
[18] 陆松年,郝国杰,王惠初,等.2017.中国变质岩大地构造[M].北京:地质出版社.
[19] 马永生,陈洪德,王国力,等.2009.中国南方层序地层与古地理[M].北京:科学出版社.
[20] 牛志军,邓新,刘浩,李福林,宋芳,何垚砚,杨文强.2022.扬子克拉通南北缘新元古代火山-沉积岩系研究现状与问题[J].华南地质,38(1):27-45.
[21] 潘桂棠,肖庆辉,尹福光,等.2015.中国大地构造图说明书(1:2500000)[M].北京:地质出版社.
[22] 潘桂棠,陆松年,肖庆辉,张克信,尹福光,郝国杰,骆满生,任飞,袁四化.2016.中国大地构造阶段划分与演化[J].地学前缘,2016,23(6):1-23.
[23] 潘桂棠,肖庆辉,陆松年,等.2017.中国大地构造[M].北京:地质出版社.
[24] 彭松柏, 李昌年,Kusky T M, 王璐, 张先进, 蒋幸福, 熊承仁.2010.鄂西黄陵背斜南部元古宙庙湾蛇绿岩的发现及其构造意义[J].地质通报,29(1):8-20.
[25] 彭松柏,刘松峰,林木森,吴长峰,韩庆森.2016.华夏早古生代俯冲作用(I):来自糯垌蛇绿岩的新证据[J].地球科学,41(5):765-778.
[26] 任光明,庞维华,潘桂棠,王立全,孙志明,尹福光,崔晓庄,王冬兵,邓奇,任飞.2017.扬子克拉通西缘中元古代菜子园蛇绿混杂岩的厘定及其地质意义[J].地质通报,36(11): 2061-2075.
[27] 任纪舜,李崇.2016.华夏古陆及相关问题—中国南部前泥盆纪大地构造[J].地质学报,90(4):607-614.
[28] 任纪舜,孙藜薇.2001.中国大地构造与地层区划[J].地层学杂志,25(增刊):361-369.
[29] 戎嘉余,王怿,詹仁斌,樊隽轩,黄冰,唐鹏,李越,张小乐,吴荣昌,王光旭,魏鑫.2019.中国志留纪综合地层和时间框架[J].中国科学:地球科学,49:93-114.
[30] 舒德干.2009.达尔文革命与人类的由来—澄江化石库的重大贡献[M].见:沙金庚主编.世纪飞跃—辉煌的中国古生物学.北京:科学出版社,54-67.
[31] 舒良树,陈祥云,楼法生.2020.华南前侏罗纪构造[J].地质学报,94(2):333-360.
[32] 四川省地质调查院.2022.中国区域地质志·四川志[M].北京:地质出版社.
[33] 宋芳,牛志军,何垚砚,杨文强.2016.中扬子地区南华纪早期碎屑锆石U-Pb 年龄及其对物源特征和古地理格局的约束[J].地质学报,90(10):2661-2680.
[34] 王剑,刘宝珺,潘桂棠.2001.华南新元古代裂谷盆地演化—Rodinia超大陆解体的前奏[J].矿物岩石,21(3):135-145.
[35] 王鸿祯.1978.论中国地层分区[J].地层学杂志,2(2):81-104.
[36] 王鸿祯,楚旭春,刘本培,等.1985.中国古地理图集[M].北京:地图出版社.
[37] 王鸿祯,杨森楠,刘本培,等,1990.中国及邻区构造古地理和生物古地理[M].武汉:中国地质大学出版社.
[38] 吴福元,万博,赵亮,肖文交,朱日祥.2020.特提斯地球动力学[J].岩石学报,36(6):1627-1674.
[39] 肖爱芳,黎敦朋.2017.闽西南下古生界东坑口组与魏坊组地层层序与物源区特征——来自碎屑锆石LA-ICP-MS U-Pb测年的约束[J].地质通报,36(10):1750-1759.
[40] 邢光福,冯益民,靳国栋,等.2015.中国火山岩大地构造图说明书(1:2500000)[M].北京:地质出版社.
[41] 徐扬,杨振宁,邓新,王令占,刘浩,金鑫镖,张维峰,魏运许,彭练红,黄海永.2021.西大别南缘印支期吕王-高桥-永佳河构造混杂岩带的厘定及其构造意义[J].地球科学,46(4):1173-1198.
[42] 许靖华,孙枢,王清晨,等.1998.中国大地构造相图[M].北京:科学出版社.
[43] 薛怀民,马芳,宋永勤.2011.扬子克拉通北缘随(州)-枣(阳)地区新元古代变质岩浆岩的地球化学和SHRIMP 锆石U-Pb年代学研究[J].岩石学报,27(4):1116-1130.
[44] 杨家騄.1988.寒武纪[M].//见:殷鸿福,等,1988.中国古生物地理学.武汉:中国地质大学出版社,65-89.
[45] 杨明桂,吴富江,宋志瑞,吕少俊.2015.赣北:华南地质之窗[J].地质学报,89(2):222-233.
[46] 杨巍然,胡德祥,张旺生.1986.华南加里东阶段古构造特征[M].//见:华南地区古大陆边缘构造史.武汉:武汉地质学院出版社,39-64.
[47] 殷鸿福,吴顺宝,杜远生,彭元桥.1999.华南是特提斯多岛洋体系的一部分[J].地球科学,24(1):1-12.
[48] 袁训来,肖书海,尹磊明,等.2002.陡山沱期生物群—早期动物辐射前夕的生命[M].合肥:中国科学技术大学出版社.
[49] 袁训来,万斌,关成国,等.2016.蓝田生物群[M].上海:科学技术出版社.
[50] 张传恒,高林志,史晓颖,韩瑶,刘耀明.2014.梵净山群火山岩锆石SHRIMP 年龄及其年代地层学意义[J].地学前缘,21(2):139-143.
[51] 张国伟,郭安林,王岳军,李三忠,董云鹏,刘少峰,何登发,程顺有,鲁如魁,姚安平.2013.中国华南大陆构造与问题[J].中国科学:地球科学,43(10):1553-1582.
[52] 张克信,潘桂棠,何卫红,肖庆辉,徐亚东,张智勇,陆松年,邓晋福,冯益民,李锦轶,赵小明,邢光福,王永和,尹福光,郝国杰,张长捷,张进,龚一鸣.2015.中国构造—地层大区划分新方案[J].地球科学,40(2):206-233.
[53] 张克信,何卫红,徐亚东,骆满生,宋博文,寇晓虎,张智勇,肖庆辉,潘桂棠.2016.中国洋板块地层分布及构造演化[J].地学前缘,23(6):24-30.
[54] 张克信,何卫红,骆满生,等.2017.中国沉积岩建造与沉积大地构造演化[M].北京:地质出版社.
[55] 张克信,徐亚东,何卫红,于洋,王丽君,王嘉轩,寇晓虎,骆满生.2018.中国新元古宙青白口纪早期(1000-820 Ma)洋陆分布[J].地球科学,43(11):3837-3852.
[56] 张克信,何卫红,徐亚东,姚华舟,张雄华,林启祥,季军良,骆满生,宋博文,于洋,韩凤禄,寇晓虎,王嘉轩,王丽君.2020.论断代构造-地层区划的原则与方法:以中国寒武纪构造-地层区划为例[J].地球科学,45(12):4267-4290.
[57] 张元动,詹仁斌,甄勇毅,王志浩,袁文伟,方翔,马譞,张俊鹏.2019.中国奥陶纪综合地层和时间框架[J].中国科学:地球科学,49(1):66-92.
[58] 赵小明,牛志军,张开明,吴年文,彭练红,龙文国,魏运许,安志辉,胡昆.2017.中南地区地层综合区划[J].地层学杂志,41(3):235-255.
[59] 赵元龙,袁金良,彭进,等.2009.凯里生物群—揭示寒武纪海洋生物多样化的特异化石库[M].//见:沙金庚主编.世纪飞跃—辉煌的中国古生物学.北京:科学出版社,68-80.
[60] 郑宁,宋天锐,李廷栋,刘训,耿树方,丁孝忠,谭正修,游国庆,凌跃升.2012.华南造山带下寒武统和中奥陶统发现放射虫[J].中国地质,39(1):260-265.
[61] 中国国土资源航空物探遥感中心.2004.中国及其毗邻海区航空磁力ΔT异常图(1:5000000)[M].北京:地质出版社.
[62] 周传明,袁训来,肖书海,陈哲,华洪.2019.中国埃迪卡拉纪综合地层和时间框架[J].中国科学:地球科学,49(1):7-25.
[63] 周金城,王孝磊,邱检生,高剑锋.2003.桂北中-新元古代镁铁质-超镁铁质岩的岩石地球化学[J].岩石学报,19(1):9-18.
[64] 周新民,邹海波,杨杰东,王银喜.1989.安徽歙县伏川蛇绿岩套的Sm-Nd 等时线年龄及其地质意义[J].科学通报,34(16):1243-1245.
[65] 朱茂炎,杨爱华,袁金良,李国祥,张俊明,赵方臣,Soo-Yeun A H N,苗兰云.2019.中国寒武纪综合地层和时间框架[J].中国科学:地球科学,49:26-65.
[66] Fu D J, Tong G H, Dai T, Liu W, Yang Y N, Zhang Y, Cui L H, Li L Y, Yun H, Wu Y, Sun A, Liu C, Pei W R, Gaines R R, Zhang X L. 2019. The Qingjiang biota—A Burgess Shale-type fossil Lagerstätte from the early Cambrian of South China [J]. Science, 363: 1338-1342.
[67] Ge Y P, Li L M, Zhao X L, Lin S F, Liu H, Han X, Feng L M. 2020. Early Palaeozoic oceanic island-seamount assemblage in northern Fujian, South China: Implications for pre-Devonian tectonic evolution of the Wuyi orogenic belt [J]. Geological Journal, 55: 3208-3228.
[68] Han J, Li G X, Wang X, Yang X G, Guo J F, Sasaki O, Komiya T. 2018. Olivooides-like tube aperture in early Cambrian carinachitids (Medusozoa, Cnidaria) [J]. Journal of Paleontology, 92(1): 3-13.
[69] He C S, Dong S W, Santosh M, Chen X H. 2013. Seismic Evidence for a Geosuture between the Yangtze and Cathaysia Blocks, South China [J]. Scientific Reports, 3: 2200.
[70] Hou X G, Aldridge R J , Bergstrm J, Siveter D J, Siveter D J, Feng X H. 2004. The Cambrian fossils of Chengjiang, China [M]. The United Kingdom: Blackwell Publishing.
[71] Jiang G Q, Shi X Y, Zhang S H, Wang Y, Xiao S H. 2011. Stratigraphy and paleogeography of the Ediacaran Doushantuo Formation (ca. 635-551 Ma) in South China [J]. Gondwana Research, 19: 831-849.
[72] Jiang J, Xing G F, Li L M, Zhao X L, Liu H, Zhang J G, Li J H, Wang L, Lu K J, Wang B. 2020. Age and provenance of Cambrian sequences in the Nanping-Ninghua-Ganzhou Tectonic Belt: Implication for tectonic evolution of the Cathaysia Block [J]. Geological Journal, 55: 7057-7079.
[73] Jiang Y, Zhao X L, Zhang Y J, Xing G F, Xu M C, Liu H. 2019. Neoproterozoic arc volcanic rocks of the Nanping-Ninghua tectonic belt, South China: Implications for the collision between the North and South Wuyi blocks [J]. Geological Journal, 54: 2679-2692.
[74] Li J Y, Wang X L, Zhang F F, Zhou X H, Shu X J. 2016. A rhythmic source change of the Neoproterozoic basement meta-sedimentary sequences in the Jiangnan Orogen: Implications for tectonic evolution on the southeastern margin of the Yangtze Block [J]. Precambrian Research, 280: 46-60.
[75] Li L M, Lin S F, Xing G F, Xiao F, Xiao W J. 2022. Identification of ca. 520 Ma mid-ocean-ridge-type ophiolite suite in the inner Cathaysia block, South China: Evidence from shearing-type oceanic plagiogranite [J]. Geological Society of America Bulletin, 134(7/8): 1701-1720.
[76] Li X H. 1999. U-Pb zircon ages of granites from the southern margin of the Yangtze Block: timing of Neoproterozoic Jinning: Orogeny in SE China and implications for Rodinia Assembly [J]. Precambrian Research, 97(1-2): 43-57.
[77] Li Z X, Bogdanova S V, Collins A S, Davidson A, De Waele B, Ernst R E, Fitzsimons I C W, Fuck R A, Gladkochub D P, Jacobs J, Karlstrom K E, Lu S, Natapov L M, Pease V, Pisarevsky S A, Thrane K, Vernikovsky V. 2008. Assembly, configuration, and break-up history of Rodinia: a synthesis [J]. Precambrian Research, 160: 179-210.
[78] Lin S F, Xing G F, Davis D W, Yin C Q, Wu M L, Li L M, Jiang Y, Chen Z H. 2018. Appalachian-style multi-terrane Wilson cycle model for the assembly of South China [J]. Geology, 46 (4):319-322.
[79] Liu S F, Peng S B, Kusky T, Polat A, Han Q S. 2018. Origin and tectonic implications of an Early Paleozoic (460-440 Ma) subduction-accretion shear zone in the northwestern Yunkai Domain, South China [J]. Lithos, 322: 104-128.
[80] Shi Y R, Liu D Y, Zhang Z Q, Miao L C, Zhang F Q, Xue H M. 2007. SHRIMP zircon U-Pb dating of gabbro and granite from the Huashan ophiolite, Qinling orogenic belt, China: Neoproterozoic sature on the northern margin of the Yangtze craton [J]. Acta Geological Sinica, 81(2): 239-243.
[81] Tang F, Yin C Y, Bengtson S, Liu P J, Wang Z Q, Gao L Z. 2008. Octoradiate Spiral Organisms in the Ediacaran of South China [J]. Acta Geologica Sinica, 82: 27-34.
[82] Wan T F, Zhu H. 2011. Chinese continental blocks in global paleocontinental reconstruction during Paleozoic and Mesozoic [J]. Acta Geologica Sinica, 85(3):581-597.
[83] Wan Y S, Liu D Y, Wilde S A, Cao J J, Chen B, Dong C Y, Song B, Du L L. 2010. Evolution of the Yunkai Terrane, South China: Evidence from SHRIMP zircon U-Pb dating, geochemistry and Nd isotope [J]. Journal of Asian Earth Sciences, 37: 140-153.
[84] Wang J P, Kusky T M, Polat A, Wang L, Peng S B, Jiang X F, Deng H, Wang S J. 2012. Sea-Floor Metamorphism Recorded in Epidosites from the ca. 1.0 Ga Miaowan Ophiolite, Huangling Anticline, China [J]. Journal of Earth Science, 23(5): 696-704.
[85] Wang L J, Zhang K X, He W H, Yin L M, Lin S F. 2020. An Early Paleozoic Tectonic Mélange at the Western Margin of West Cathaysia: Constraints from Organic-walled Microfossils [J]. Acta Geologica Sinica, 94(4): 1060-1070.
[86] Wang L J, Zhang K X, Lin S F, He W H, Yin L M. 2022. Origin and age of the Shenshan tectonic mélange in the Jiangshan-Shaoxing-Pingxiang Fault and late Early Paleozoic juxtaposition of the Yangtze Block and the West Cathaysia terrane, South China [J]. Geological Society of America Bulletin, 134 (1-2): 113-129.
[87] Wang W, Zhou M F, Yan D P, Li L, Malpas J. 2013. Detrital zircon record of Neoproterozoic active-margin sedimentation in the eastern Jiangnan Orogen, South China [J]. Precambrian Research, 235: 1-19.
[88] Xiao S H, Zhou C M, Liu P J, Wang D, Yuan X L. 2014. Phosphatized acanthomorphic acritarchs and related microfossils from the Ediacaran Doushantuo Formation at Weng’an (South China) and their implications for biostratigraphic correlation [J]. Journal of Paleontology, 88: 1-67.
[89] Xu Y D, Zhang K X, He W H, Yang Y, Kou X H, Song B W, Luo M S, Wang L J, Ma Z J, Yang F L. 2020. Tonian tectonic-strata regions and geological significance in China [J]. Acta Geologica Sinica, 94(4): 914-941.
[90] Xu Y, Yang K G, Polat A, Yang Z N. 2016. The~860 Ma mafic dikes and granitoids from the northern margin of the Yangtze Block, China: A record of oceanic subduction in the early Neoproterozoic [J]. Precambrian Research, 275: 310-331.
[91] Ye Q, Tong J N, Xiao S H, Zhu S X, An Z H, Tian L, Hu J. 2015. The survival of benthic macroscopic phototrophs on a Neoproterozoic snowball Earth [J]. Geology, 43: 507-510.
[92] Yu Y, Ye Q, Zhang K X, He W H, Song B W, Xu Y D, Kou X H, Wang J X, Yang F L. 2020. Stratigraphic Framework of the Cryogenian in China [J]. Acta Geologica Sinica, 94(4):942-971.
[93] Zhang K, Feng Q L. 2019. Early Cambrian radiolarians and sponge spicules from the Niujiaohe Formation in South China [J]. Palaeoworld, 28(3): 234-242.
[94] Zhao G C, Wang Y J, Huang B C, Dong Y P, Li S Z, Zhang G W, Yu S. 2018. Geological reconstructions of the East Asian blocks: From the breakup of Rodinia to the assembly of Pangea [J]. Earth Science Reviews, 186: 262-286.
[95] Zhao X L, Jiang Y, Xing G F, Wang C Z, Jin G D. 2020. The early Paleozoic oceanic island seamount in the Chencai area, Zhejiang Province: Implication of the Yangtze-Cathaysia amalgamation [J]. Geological Journal, 55:1148-1162.
[96] Zheng H W, Gao R, Li T D, Li Q S, He R Z. 2013. Collisional tectonics between the Eurasian and Philippine Sea plates from tomography evidences in Southeast China [J]. Tectonophysics, 606: 14-23.
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