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    题名 作者 年代 出处 被引量
1兴安地块下泥盆统古地磁结果对其古地理位置的制约显示文摘兴安地块对中亚造山带的晚古生代演化过程具有重要意义,然而其古地理位置目前仍无可靠古地磁数据限制.本文选取黑龙江省多宝山地区的一个下泥盆统泥鳅河组紫红色粉砂岩剖面开展了系统古地磁学研究,11个采点均显示高低温双分量特征.低温分量在地理坐标系下与现代地磁场接近,应为近代获得的黏滞剩磁或热黏滞剩磁;高温分量显示单一负极性特征,在35.7%褶皱展开处获得最大集中,经与同时代乌里雅斯太陆缘和中蒙古额尔古纳地块的古地磁数据进行对比,认为其可能遭受了附近309~299 Ma(石炭-二叠纪负极性超时期间)的花岗岩浆侵入热事件改造而获得重磁化特征剩磁分量:D/I=28.6°/-33.2°,k=18.6,α95=10.9°,对应的古地磁极为λp/φp=17.3°S/97.1°E(dp/dm=7.0°/12.4°).结合同时代周边地块的古地磁数据分析认为:晚石炭世中蒙古-额尔古纳地块、乌里雅斯太陆缘和兴安地块纬度差异小于3°,可能已形成统一陆块,位于28°~30°N附近;此时西伯利亚位于45°~50°N附近而华北和松辽-锡林浩特地块则位于赤道低纬度地区;古亚洲洋此时仍未关闭,主洋盆为贺根山洋而非索伦洋.张东海 黄宝春 赵千 张也 2018科学通报2018,63,15:7
2东北及邻区晚古生代地层接触关系与佳-蒙地块的形成和演化显示文摘东北及邻区晚古生界及其相关地层间的接触关系含有丰富的大地构造信息,本文系统梳理了这些资料,用以阐述佳-蒙地块的形成与演化。佳-蒙地块南缘的西别河组、北缘的卧都河组及东缘的黑台组等晚志留世—早泥盆世地层底部均发育不整合(或非整合),揭示了东北地区曾经历了一次十分重要的大地构造运动,标志着佳-蒙地块的形成。区内泥盆纪—石炭纪和石炭纪—二叠纪地层之间多为整合接触,说明这一时期佳-蒙地块处于稳定沉降接受沉积阶段。佳-蒙地块南缘晚二叠世林西组底部的平行不整合界面及其上部的磨拉石建造,以及中—晚二叠世地层序列由海相向陆相的转化,表明林西组处于前陆盆地的沉积环境,标志着佳-蒙地块与华北板块发生碰撞拼合。佳-蒙地块南缘早三叠世卢家屯组底部的不整合及卢家屯组下部砾岩所具有的磨拉石建造特征,说明碰撞造山作用仍在持续进行,属于递进造山作用。晚三叠世大酱缸组底部的不整合,说明造山作用已经完成,佳-蒙地块独立发展的历程结束。李宁 王成文 2017吉林大学学报(地球科学版)2017,47,5:6
3吉中地区晚古生代腕足动物古生物地理与环境的协同演化显示文摘吉中地区发育了普里道利期—洛霍考夫期Retziella、杜内期通气沟组以及空谷期—沃德期哲斯等腕足动物群。前两者属于'暖水'动物群、后者属于'凉水'动物群。同时参考珊瑚和等动物群分析,说明吉中地区从普里道利期至阿瑟尔期发育'暖水'动物群,从空谷期到沃德期发育'凉水'动物群。'凉、暖'转换是以寿山沟组的Monodiexodina动物群为代表,发生在萨克马尔期。'凉、暖'水动物群的发育及其转换是构造古地理与气候变化双重因素导致的结果。晚志留世—早泥盆世,西伯利亚板块、哈萨克斯坦板块、佳-蒙地块均位于中—低纬度带。吉中地区晚志留世—早泥盆世(乃至中泥盆世)腕足动物群属于'暖水'动物群,古生物地理区划属于中-澳生物地理区。石炭纪,东欧板块东北缘、哈萨克斯坦板块大部分地区、佳-蒙地块南缘属于特提斯洋北缘构造域,发育了特提斯洋北缘腕足动物群,形成了特提斯北缘生物地理区,吉中地区腕足动物群属于这一生物地理区。空谷期—沃德期凉水型哲斯腕足动物群的形成是由于佳-蒙地块西端与塔里木板块以及华北板块西端拼合,形成了西拉木伦洋构造域,以及此时期全球降温事件导致的结果。古生物地理、构造古地理以及古气候之间的协同演化关系表明吉中地区晚古生代地层应属于佳-蒙地块南缘的大陆边缘沉积。李宁 王成文 2015古生物学报2015,54,2:4
4Coevolution of Brachiopod Paleobiogeography and Tectonopaleogeography during the Early–Middle Permian显示文摘A comprehensive compilation and systematic analysis of known early and middle Permian brachiopod faunas shows that the early Permian brachiopod faunas comprise three realms, six regions, and eleven provinces, while those of the middle Permian comprise three realms, four regions, and eight provinces. A comparison and analysis of brachiopod faunal patterns reveal a coevolution between global brachiopod paleobiogeography and tectonopaleogeography during the early–middle Permian. Although temperature/latitude is the main factor controlling the formation of three realms, tectonopaleogeographic factors determine the temperature/latitude in which the continents were located. The ‘continental barrier' of Pangea, as a ‘central axis' continent, divided the three realms into six regions, which indicates that the formation of biogeographic regions was controlled mainly by the tectonopaleogeographic factors. The evolution of tectonopaleogeography was sometimes a long-term process, so that the biogeographic regions(or provinces) controlled by tectonopaleogeography displayed relative stability. Shifts in the nature of biogeographic provinces(e.g., from cool water to warm water, and vice versa), extensions or narrowing of geographical ranges, and recombinations of some provinces were all related to regional tectonic evolution. The study of the coevolution between brachiopod paleobiogeography and tectonopaleogeography not only accounts for the formation mechanisms of brachiopod paleobiogeographic patterns during the early–middle Permian, but also provides evidences for the locations and configurations of oceans and plates(blocks) during this period.WANG Chengwen MAO Yongqin LI Ning ZONG Pu 2015Acta Geologica Sinica(English Edition)2015,89,6:2
5Coevolution of global brachiopod palaeobiogeography and tectonopalaeogeography during the Carboniferous显示文摘The global brachiopod palaeobiogeography of the Mississippian is divided into three realms, six regions, and eight provinces, while that of the Pennsylvanian is divided into three realms, six regions, and nine provinces. On this basis,we examined coevolutionary relationships between brachiopod palaeobiogeography and tectonopalaeogeography using a comparative approach spanning the Carboniferous. The appearance of the Boreal Realm in the Mississippian was closely related to movements of the northern plates into middle–high latitudes. From the Mississippian to the Pennsylvanian, the palaeobiogeography of Australia transitioned from the Tethys Realm to the Gondwana Realm,which is related to the southward movement of eastern Gondwana from middle to high southern latitudes. The transition of the Yukon–Pechora area from the Tethys Realm to the Boreal Realm was associated with the northward movement of Laurussia, whose northern margin entered middle–high northern latitudes then. The formation of the six palaeobiogeographic regions of Mississippian and Pennsylvanian brachiopods was directly related to 'continental barriers', which resulted in the geographical isolation of each region. The barriers resulted from the configurations of Siberia, Gondwana, and Laurussia, which supported the Boreal, Tethys, and Gondwana realms, respectively. During the late Late Devonian–Early Mississippian, the Rheic seaway closed and North America(from Laurussia) joined with South America and Africa(from Gondwana), such that the function of 'continental barriers' was strengthened and the differentiation of eastern and western regions of the Tethys Realm became more distinct. In the Barents Ocean tectonic domain during the Pennsylvanian, the brachiopods on the northern margin of the Barents Ocean formed the Verkhoyansk–Taymyr Province, while those on the southern margin formed the Yukon–Pechora Province. The Mongolia–Okhotsk Province was formed by brachiopods of the Mongolia–Okhotsk Ocean tectonic domain. The Northern Margin of the Palaeo-Tethys Ocean Province and the Southern Margin of the Palaeo-Tethys Ocean Province were formed, respectively, by brachiopods on the northern and southern margins of the Palaeo-Tethys Ocean tectonic domain. South China and Southeast Asia were dissociated from the major continental blocks mentioned above, and formed the South China Province.Ning Li Cheng-Wen Wang Pu Zong Yong-Qin Mao 2021Journal of Palaeogeography2021,10,3:0
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