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东南亚大地构造特征与成矿作用

刘书生, 杨永飞, 郭林楠, 聂飞, 彭智敏, 潘桂堂

刘书生, 杨永飞, 郭林楠, 聂飞, 彭智敏, 潘桂堂. 东南亚大地构造特征与成矿作用[J]. 中国地质, 2018, 45(5): 863-889. DOI: 10.12029/gc20180501
引用本文: 刘书生, 杨永飞, 郭林楠, 聂飞, 彭智敏, 潘桂堂. 东南亚大地构造特征与成矿作用[J]. 中国地质, 2018, 45(5): 863-889. DOI: 10.12029/gc20180501
LIU Shusheng, YANG Yongfei, GUO Linnan, NIE Fei, PENG Zhiming, PAN Guitang. Tectonic characteristics and metallogeny in Southeast Asia[J]. GEOLOGY IN CHINA, 2018, 45(5): 863-889. DOI: 10.12029/gc20180501
Citation: LIU Shusheng, YANG Yongfei, GUO Linnan, NIE Fei, PENG Zhiming, PAN Guitang. Tectonic characteristics and metallogeny in Southeast Asia[J]. GEOLOGY IN CHINA, 2018, 45(5): 863-889. DOI: 10.12029/gc20180501

东南亚大地构造特征与成矿作用

基金项目: 

中国地质调查局地质调查项目"老挝、柬埔寨及邻区矿产资源潜力评价" DD20160107

国家自然科学基金青年基金项目"南澜沧江弧火山岩带文玉铜多金属矿床成矿作用研究" 41702087

详细信息
    作者简介:

    刘书生, 男, 1977年生, 高级工程师, 从事东南亚、南亚地区矿产资源潜力评价工作; E-mail:cdlshusheng@qq.com

    通讯作者:

    杨永飞, 男, 1984年生, 博士, 从事东南亚构造与成矿作用研究; E-mail:yyf6811@163.com

  • 中图分类号: P548;P611

Tectonic characteristics and metallogeny in Southeast Asia

Funds: 

China Geological Survey Program DD20160107

National Natural Science Foundation of China 41702087

More Information
    Author Bio:

    LIU Shusheng, male, born in 1977, senior engineer, majors in evaluation of mineral resources potential in Southeast Asia and South Asia; E-mail: cdlshusheng@qq.com.

    Corresponding author:

    YANG Yongfei, male, born in 1984, doctor, majors in tectonics and metallogenesis in Southeast Asia; E-mail:yyf6811@163.com.

  • 摘要:

    东南亚地区位于全球特提斯成矿域、环太平洋成矿域与印度-澳大利亚成矿域的交汇地带。构造演化独特,先后经历了原-古-中-新特提斯增生造山、印度-欧亚陆陆碰撞造山、太平洋俯冲等多期次构造-岩浆事件,形成了多条火山弧带、蛇绿混杂带以及同碰撞和后碰撞岩浆岩带。本文在总结前人大地构造研究成果基础上,将东南亚地区划分为6个一级构造单元、32个二级构造单元和57个三级构造单元。伴随着原-古-中-新特提斯构造演化、印度-欧亚大陆碰撞、太平洋俯冲等多期次构造域事件,以构造单元划分为基础,将东南亚地区划分为3个一级成矿域,6个二级成矿省,21个三级成矿带,并结合构造演化初步探讨了主要成矿事件。

    Abstract:

    Southeast Asia is located at the intersection of the Tethys, the circum-Pacific and the India-Australia metallogenic domain. The tectonic evolution is unique in that it has experienced multi-stage tectonic-magmatic events including the Proto-, Paleo-, Meso-, and Neo-Tethys accreting orogenesis, collisional orogenesis between the Indian Plate and Eurasian Plate, and the Pacific plate subduction. These activities have developed many volcanic arcs, ophiolite belts, and post-collision magmatic belts in Southeast Asia. Based on the previous tectonic researches, this paper divides Southeast Asia into 6 first-order, 32 second-order and 57 third-order tectonic units. Along with the multi-stage tectonic events including evolution of the Proto-, Paleo-, Meso-, and Neo-Tethys, the Indian-Eurasian collision, and the Pacific subduction and on the basis of the tectonic-unit division, this paper divides the Southeast Asian region into 3 first-level metallogenic domains, 6 second-level metallogenic provinces, and 21 thirdlevel metallogenic belts. The main metallogenic events are discussed in combination with tectonic evolution.

  • 永定河中下游在区域地理位置上处于东部沿海平原与陆相冲积平原过渡地带,所处位置具有充足的沉积可容空间,其第四纪沉积受海洋和陆地双重作用的影响。晚第四纪以来,全球气候冷暖变化,导致海平面的升降,造成河流等水体的进退改变,沉积物的输运过程、供给不断发生变化,地层发育特征及古气候复杂多变。中国东部沿海平原沉积环境演化主要受控于全球性海平面升降旋回(王靖泰等,1980秦蕴珊等,1987王强等, 1999, 2004, 2009),其中第四纪海侵与气候(汪品先等,1981;杨怀仁等, 1987, 1988李从先,1998Cao et al., 2013Ge et al., 2014)是重大的地学问题之一,地层连接性研究及海洋氧同位素分期在逐步深化和提升(Martinson et al., 1987Liu et al., 2000袁宝印等,2002王强等,2008Liu et al., 2010杨献忠等,2010)。

    在永定河中下游地区由于受工作条件和技术方法的限制,加之以往研究的钻孔数量较少,对第四纪地层划分方面存在争议较大(张利利,2012刘丹, 2012, 蔡向民等,2016何静等,2019),另一方面海洋氧同位素分期地层划分在平原地区应用甚少,对其沉积地层演化、古气候环境研究较薄弱,且比较可靠的年代标尺的使用,目前仅限于晚第四纪以来渤海湾西岸—苏北废黄河口以北的滨海平原(王强, 1982, 1999王强等, 1983, 2009高秀林,1986杨怀仁等,1988),并在永定河下游天津市域西北境内钻孔地层,以及廊坊南部地区钻孔地层中,已经发现河海交互沉积的状况(王强,1982章红晖,1985)。因此,在永定河中下游地区需要开展进一步探索研究,追溯泛滥平原河流沉积与滨海平原海洋氧同位素分期气候之间的关系,也是破解该流域地层沉积与环境变迁问题的关键所在。

    本文利用北京1∶50000安次县等3幅区调项目所获取的A27钻孔,在对岩心进行岩性地层、年代地层、微体生物、孢粉组合的综合研究基础上,引入了海洋氧同位素分期划分地层的手段,重点探讨了MIS7(约240 ka)以来地层沉积演化及其新时器时代以来气候环境的变迁,为探讨区域第四纪地层划分、推动海陆交汇的平原地区与沿海平原地层对比提供新的思路,为区域古地理环境及生态建设和修复提供重要参考依据。

    研究钻孔A27位于廊坊市城区东部西管地村北约300 m,地理坐标39.54°N,116.75°E,孔口标高12.11 m,孔深80 m,钻具取心直径为110 mm,全孔取心率达90%以上,地理沉积位置隶属于永定河中下游沉积地区(图 1)。

    图  1  区域地形地貌与钻孔A27位置图
    Figure  1.  Regional geomorphology and location of Borehole A27

    A27钻孔为区调项目全取心标准孔,野外将岩心沿纵向剖开,一半用于保留,另一半用于岩性描述、分层、照相,同时采取14C、微体古生物、孢粉等测试分析样品。

    微体古生物、孢粉测试与鉴定的目的是分析判断古环境,并结合地层特征、浅部测年数据,辅助确定沉积环境背景,进行地层划分。微体古生物样品采集约60 g,以期获得较多的鉴定标本,样品分析处理和鉴定按照《海洋调查规范—海洋地质地球物理调查(GB/T12763.8-2007)》的要求进行,干样置于清水内以双氧水分解后,以240目分析筛淘洗,取筛上物置于蒸发皿内,烘干后放置显微镜下挑选标本;孢粉依据石油天然气行业标准分析方法

    SY/T5245-91,取样50 g,经过泡酸、煮碱、氢氟酸处理后,用浓盐酸进行氧化,最后过筛集中孢粉并制片,鉴定依据石油天然气行业标准SY/T5915-94在显微镜下鉴定,最后用Tilia软件制作孢粉百分比图谱。AMS14C测年由美国Beba实验室测试,采集含有机质的淤泥或沉积物20~30 g,大块样品直接放入自封袋,避免造成污染,贴好标签并及时送至实验室测试,依据AMS14C年龄数据,可进行地层年代标定和判断。

    本次钻孔获取了MIS3以来地层AMS14C测年数据(表 1),为研究提供了必要年龄资料。

    表  1  A27钻孔AMS14C测年数据
    Table  1.  AMS 14C dating data from borehole A27
    下载: 导出CSV 
    | 显示表格

    以钻孔岩心材料为基础,结合年龄数据、微体古生物和孢粉样品鉴定结果,将该孔自上而下划分为8个(U1~U8)岩性组合单元,钻孔下部沉积物颜色以灰色、灰黑色为主,上部以黄褐色、棕红色为主,且识别出了4期显著的河谷充填沉积,总体沉积环境变化较大(图 2)。

    图  2  A27孔岩心照片与柱状图(岩心缺失部位—工程勘察原状样品取样)
    Figure  2.  Core photos and column in borehole A27(The missing core-Sampling of undisturbed samples)

    U1单元(0.00~12.10 m):0.00~1.50 m为人工杂土堆积,1.50~4.25 m为黄褐色粉砂质黏土,含有大量锈斑,底部3.90~4.25 m地层颜色稍变暗,显示含有机质物的出现。4.25~7.00 m为灰黑色有机质黏土或淤泥,AMS14C测年显示为(3860±30)a B.P.以来沉积物,其下7.00~11.80 m为河谷充填沉积,11.80 m处呈明显的冲刷面即为层序界面,推测砂层为受中全新世东亚季风较强时期持续大河流所在处。底部11.80~12.10 m为灰黑色有机质黏土或泥炭,该层上部AMS 14C年龄为(7340±30)a B.P.,下部12.20 m AMS14C年龄为(12380±40)a B.P.,依据沉积速率推断12.10 m为全新世的底界位置所在,在该地区全新世呈现出与下部地层连续的湖沼有机质沉积,可见在华北平原全新世早期海侵后,气候已逐步影响到内陆地带。U1单元总体上中下部为湖沼相、河谷沉积为主,为河漫湖沉积体系,上部为泛滥平原沉积。

    U2单元(12.10~27.50 m):为一套氧化-还原变化层段,可分为3个亚沉积单元。

    U2-1亚单元(12.10~16.70 m):自下而上为灰黑色含有机质黏土沉积,13.75 m样见有2瓣布氏土星介Ilyocypris bradyi Sars,为末次盛冰期后气候转暖进入冰消期的显著体现,区域水文状况得到好转,显示湖沼相沉积。

    U2-2亚单元(16.70~23.45 m):为泛滥平原-河谷沉积,上部的砂层为末次盛冰期下切河谷沉积,之后逐渐积水,向上形成基底湖沼沉积或泥炭沉积。

    U2-3亚单元(23.45~27.50 m):以含典型铁锰质结核为主的一套黏土沉积,暴露在大气下遭受氧化而形成,依据年龄推测为LGM硬质黏土层位(李从先,1998王强等,2009杨献忠等,2010李保华等,2010)。

    U3单元(27.50~47.60 m):自下而上依次是浅灰色、灰褐色黏土、粘质粉砂—贫营养湖、泛滥平原沉积,下伏棕红色黏土明显被侵蚀,反映了平原逐渐积水,向上转变为含有有机质的贫营养湖(积水洼地),再形成富营养湖环境的沉积层序。在39.50~41.70 m为灰黑色粉质黏土、黑色黏土,为富含有机质湖沼沉积,且在39.70 m、41.60 m样分别见有4瓣布氏土星介、3瓣白小旋螺Gyraulus albus (O.F.Muller),40.50 m样发现有1枚三室三玦虫Triloculina trigonula (Lamarck),40倍双目立体显微镜下拍照见图 2

    由41.70 m处向上,有机质成分逐渐增多,沉积物颜色由黄褐色向灰色、深灰色转变,41.60 m样孢粉和藻类不足50粒,为孢粉贫乏带,39.70 m、40.50 m样孢粉组合中菊科Compositae和藜科Chenopodiaceae花粉植被多为在沿海滩涂湿地生长类型,水生草本植物香蒲属Typha(7.3%)和蕨类孢子水龙骨科Polypodiaceae(5.1%)有一定含量,说明约在41.70 m处地质环境可能变迁的转折点,结合微古鉴定,向上逐渐转变成滩涂湿地环境,气候较湿润偏湿环境。上部27.50~39.50 m为河谷、泛滥平原沉积体系,河流水体发育,39.50 m处明显的不整合冲刷面接触为层序界面,其下滩涂—湖沼相灰黑色黏土顶部很可能存在被侵蚀的现象,在钻孔40.50 m有机质黏土层样品获(29850±170)a B.P.测年数据。

    U4单元(47.55~49.60 m):棕红色、黄褐色黏土,下部可见2~3层薄层状黏质粉砂,厚度2~4 cm,黏土沉积整体上呈显著氧化颜色,表现为缺乏有机质的河间地块沉积。

    U5单元(49.60~60.50 m):主体为湖沼夹分支河道沉积体系,可分为5个亚单元沉积。

    U5-1亚单元(49.60~52.50 m):灰色、灰黑色黏土,局部夹薄层黏质粉砂,层厚2~4 cm,系河间洼地,由于暴露失水,从而顶部颜色发生淡化。

    U5-2亚单元(52.50~54.30 m):灰色、灰褐色黏质粉砂,发育显著的潜育化锈斑、铁锰结核和轻度的潴育化,底部见有钙质雏形,显示频繁的水位波动。

    U5-3亚单元(54.30~55.40 m):自下而上为灰黑色、浅灰棕色粉砂质黏土,含钙质结核,主体为湖沼相沉积。

    U5-4亚单元(55.40~57.80 m):自下而上为浅灰色黏质粉砂、发育水平纹层;上部中度潴育化呈灰褐色,局部呈黄褐色粉质黏土沉积,顶部约10 cm呈现棕褐色,底部15~20 cm呈现蓝灰色,发生强烈的潜育化。55.50 m样见纯净小玻璃介Candoniella albicans (Brady)、苏氏小玻璃介C. suzini Schneider以及小玻璃介未定种C. sp.,属于近静水沉积。在55.50 m、57.80 m样所见孢粉和藻类不足50粒,为孢粉贫乏带,推测是沉积时期地质环境变迁导致植被不发育。

    U5-5亚单元(57.80~60.50 m):灰色、灰黑色黏土,富含有机质,系湖沼相沉积。

    U6单元(60.50~70.50 m):70.50 m处存在显著的冲刷面,下伏黏土被侵蚀,为典型的层序界面,本段主体为一套河谷充填细粉砂沉积,局部夹有湖沼灰色粉砂质黏土层沉积(65.65~67.10 m),可见含钙质结核,在65.90 m黏土层草本植物花粉占绝对优势,平均含量为94.12%,以蒿属Artemisia(39.49%)和藜科Chenopodiaceae(35.23%)花粉为主,其次为禾本科Gramineae(8.52%)、毛茛科Ranunculaceae(5.97%)花粉和莎草科Cyperaceae(3.41%);木本植物花粉稀少,平均含量为8.57%,蕨类植物孢子稀少,反映气候较湿润。在63.70 m、66.50 m样极少见微体生物。该单元早期为河道沉积,中部气候短暂转暖,河道发生充填,为短暂的湖沼沉积,晚期再次发育河谷砂层堆积。

    U7单元(70.50~77.65 m):灰黑色、深灰色黏土,富含有机质,71.50 m、74.50 m样分别见有4瓣白小旋螺Gyraulus albus (O.F. Müller)、11瓣布氏土星介Ilyocypris bradyi Sars系湖沼沉积。在71.50 m、74.50 m样草本植物花粉占绝对优势,平均含量为97.35%,以蒿属Artemisia(27.90%)和藜科Chenopodiaceae(29.25%)花粉为主,其次为菊科(大网型)Taraxacum type(12.59%)、毛茛科Ranunculaceae(10.54%)、禾本科Gramineae(8.84%)和莴苣属Lactuca(4.42%);木本植物、蕨类植物孢子稀少,显示该单元处于沿海滩涂环境,气候为较湿润状况。

    U8单元(77.65~80.00 m):自下而上依次见黄褐色、灰黄色粉质黏土夹小钙质结核,显示经历过水体浓缩,层中锈色发育,向上渐变为棕褐色黏土,见潴育化斑点和铁锰质结核发育,为泛滥平原沉积。

    根据A27钻孔岩性变化及其沉积演化特征,参照区域上中国东部晚第四纪海侵研究及氧同位素分期气候下沉积地层特征(王强等,1999Tian et al., 2002),结合钻孔地层测年数据,对其时间序列划分如下(图 3)。

    图  3  沉积时间序列与氧同位素阶段对比图(图例同图 2
    (氧同位素序列见Tian et al., 2002;标注数字为氧同位素阶段)
    Figure  3.  Correlation of stratigraphic units to marine Oxygen isotope stage(Legend is the same as figure 2)
    (Oxygen isotope sequence after Tian et al., 2002; the number is oxygen isotope stage)

    U1单元处于全新世,其沉积时期相当于MIS1阶段。发育了河谷—湖沼—泛滥平原沉积体系,依据AMS14C测年及沉积速率推算,在全新世~7300 a、4000~2200 a为暖湿气候的湖沼沉积,7000~4000 a本区以持续大河流所在处。

    U2单元既存在硬质黏土、也发育河谷和顶部的湖沼沉积,该单元应属于MIS2。MIS2时期全球气候干冷,东部海平面明显下降,黄土堆积也出现向南迁移(丁仲礼等,1989),深海氧同位素正值达到MIS5以来最大,末次盛冰期时发育了硬质黏土层。末次盛冰期后形成的灰黑色黏土沉积与全新世基底有机质沉积或泥炭显示了连续的沉积过程,未出现沉积间断,体现了永定河中下游地区该时期沉积环境和地层的特殊性。

    U3单元区域上应属于MIS3。MIS3气候波动较小,海平面短暂的上升有明显暖湿气候,钻孔发育一套泛滥平原—湖沼—河谷—泛滥平原沉积体系,AMS14C测年显示大约在30 ka存在一期明显的暖湿气候下的湖沼沉积,与渤海西部地区基本相当(王强等,1995)。

    U4单元区域上应属于MIS4。MIS4时期海平面下降,在陆域主要发育河间地块沉积,地层沉积处于暴露失水的环境,发育棕褐色硬质黏土层。

    U5单元区域上应属于MIS5。MIS5时期,三次温暖时期为高海平面,而相间的低海平面时期气候偏凉,在本次钻孔中地层沉积相基本吻合,在孔内出现了U5-1~U5-5的沉积亚单元演化,该时期与附近PGZ01钻孔研究认识基本一致(赵勇等,2018),与东部沿海出现海进现象研究成果也可对应(王强等, 1999, 2009)。

    U6单元区域上应属于MIS6。MIS6全球多处处于冷干的气候,但是冷干的背景下仍有暖湿的波动,本次钻孔揭露了在MIS6期上、下为冷期低海平面时形成的下切河谷沉积,中部夹有短暂的暖期背景下的湖沼沉积(距今140~150 ka间的MIS6.3),可见与全球气候变化基本一致,也体现了永定河中下游地区气候变化的区域性。

    U7单元区域上应属于MIS7。MIS7海平面变化也是呈现“两高夹一低”状态,此阶段全球都处于温暖湿润的气候,但是气候波动变化,暖湿的背景下仍有寒冷干旱气候的出现,本次研究在此阶段响应的比较明显,上下为暖湿气候的湖沼相沉积夹中部干冷气候下河谷砂层沉积。

    上述分析可见,U1到U7单元在古季风作用下暖期(MIS1、3、5、7)时海面总体处于相对升高趋势,海水就可能顶托陆相冲积平原河水,使之下泄不畅,造成河流中下游形成牛轭湖类湖泊—湖沼沉积环境,以致地层样品中常见淡水介形类及局部海相有孔虫等,且前述沉积学关于气候冷期时海面下降,对下切河谷、硬质黏土的鉴别是正确的,在古季风气候影响下永定河中下游地层沉积与全球气候演变背景具有一致性,如极端气候条件下(LGM期)同样可以形成特殊沉积物(硬黏土层), 又如AMS14C测年结果证实了该孔也同样存在着30~40 ka的MIS3阶段还原环境沉积,下伏氧化层段为MIS4阶段地层等现象。由此可将陆相第四纪地层学地层划分问题向更深度的发展,利于整个陆相冲积平原与东部滨海平原形成机制的进一步研究,也唯有如此,地层学研究方能发挥“地质学的脊梁”的作用。

    有孔虫、海相介形类等海相生物在地层中的出现,历来是作为海侵的重要识别标志。在廊坊地区以东的天津市武清城关镇幅J50E003012等4幅1∶50000区调项目中,在几个钻孔见到1~2枚有孔虫,鉴于武清幅东侧、东南侧都有海侵记录,确定这些少量海相生物出现,皆为海侵波及所致。在廊坊地区南部煎茶铺钻孔曾见有海相介形类(章红晖,1985),近年在香河县梨园村Q6钻孔也见有零星海相生物,加之在A27孔深度上相当MIS3地层也见一枚有孔虫,整体都显示了海侵边缘区海相生物较少见的特点。在江苏镇江地区,由于古长江河道的海水上溯,仅一个钻孔见一枚小个体视为“易飘种”的有孔虫(杨献忠等,2010)。故而,经过本次工作,一方面可推断廊坊城区东当时可能存在着的潮汐河道,试探性地将原先海侵界限(章红晖,1985王强等,1999)向北推进至廊坊城区东部一线,这对海侵事件强度、规模的认识具有重要地质指示意义,对今后开展工作亦有一定启发。另一方面,根据所见有孔虫标本表面的氧化特征,判断其也可能是在暴露的边滩层位,尚不能排除系由风、水、鸟从海岸再搬运来的可能。

    永定河属于海河水系,在天津市区三岔口汇入海河,海河至塘沽入海(李从先等,2013)。据前述的沉积环境及其演化特征,可识别出MIS6冷期气候下存在的2期典型下切河谷和MIS1、MIS3时期存在的2期持续大河沉积环境。其中MIS1持续大河流位置,也可能受中全新世(5.5~4.6 cal ka B.P.)一次全球性较强的降温事件影响(张梦莹等,2012),河道侵蚀面下降,中下游地区排水能力加强,河道下蚀作用增强,岩心上可见其下淤积泥炭发生了明显的侵蚀,此间河道发育了粗颗粒砂层沉积,构成一次显著的侵蚀层序界面。MIS6普遍认为是第四纪寒冷冰期时的强海退期(刘振夏等, 2000, 2001),在本区也有所响应,发育了2期明显的下切河谷沉积,沉积侵蚀面亦显著(图 2),MIS6时期表现出上下发育两期沉积物粒度较粗下切河谷相砂层,中部出现含钙质结核的蓝灰色粉砂质黏土,其2期下切河谷层可以作为识别MIS6的标志层具有重要地质意义。

    MIS2、MIS4冷期分别发育2层硬质黏土层。在MIS2时期该区发育黄褐色、棕色含铁锰质结核黏土沉积,与区域上硬质黏土层可进行对比(陈庆强等,1998李从先等,1999Li et al., 2014赵勇等,2018Li et al., 2019),即本区第1硬质黏土层;在MIS4时期,沉积环境处于暴露失水状态,形成第2硬质黏土层,亦可作为MIS4的识别标志层。

    由于华北平原地区地壳差异性断块构造作用和气候双重影响下,深刻改变了区域自然环境,在永定河中下游区域沉积了一套湖沼—河床—泛滥平原体系。在全新世早中期,即进入新石器时代,永定河中下游地势低洼、废弃的河道形成了湖沼广泛发育的古地理面貌(图 4a),在新石器中晚期(5000~3750 a)露头剖面上(图 5)孢粉以乔木植物花粉为主,均占总数87.3%,其中桦、栎、胡桃及椴等最多;灌木及草本植物花粉占总数9.6%;蕨类植物孢子占总数的3.1%,反映该期为一片具有森林草原景观的河—湖面貌,气候温暖湿润,湖沼得到进一步扩大演化,随之发育了泥炭层,据考古资料显示,发掘的遗址大多分布在远离永定河流域而靠近山前的一些丘、岗、台地而居(周昆叔,1989),且其重要交通要道主要沿太行山东麓南北一线地势较高分布(侯仁之,1983),反映该时期平原气候的温暖较湿,永定河流域大量湖沼、水体发育,自然条件阻碍人们交往,也未有发现文物的报道。进入3500 a(商周时期)以来,结合孢粉分析(图 5),乔木植物花粉较多,均占总数的68.6%,以松属占优势(55.3%);灌木及草本植物花粉占总数的19.8%;蕨类植物孢子占总数的11.6%,可见该时期植被属森林型之针叶林,气候较之前转为温凉轻湿,降水量减少,先存河湖体系逐渐退缩和消失,河流发生频繁迁移,演化为冲积泛滥平原面貌(图 4b),并且随着原来阻碍人们活动的湖沼洼地因素的消失,人类活动范围扩大,出现了大量文字记载的历史。可见,自然环境的演变对人类活动起到了主导作用。

    图  4  永定河中下游地区全新世古地理图
    Figure  4.  Map of the Holocene paleogeographic in the middle and lower region of the Yongding River
    图  5  剖面孢粉图
    Figure  5.  Sporopollen diagram of the section

    京津地区自古以来为北方频繁交流的地区,而永定河流域占据着重要地理位置,3000多年以前殷商时代,出现了以“蓟”为中心的聚落,其形成和发展是人类长期共同开发和经营的结果。历史时期人类活动大规模地利用和改造自然条件,对永定河流域进行开凿、防洪、灌溉等工程兴建以及战争焚伐等,天然森林植被遭到破坏,永定河中、上游地区水土流失,尤其是元代时期破坏甚大(罗哲文,1962),造成中下游河流淤积加速,动荡不宁,泛滥和决堤频繁,永定河由先存的“地下河”逐渐演变为高于堤外泛滥平原的“地上河”状态,可见进入新石器时期,尤其是在晚近的人类历史期,人类活动对自然环境的影响越来越大,环境恶化严重。依据永定河中下游古沉积环境演化和地理条件,“以古为镜,可以知兴替”,只要措施得当,完全有可能逐步恢复生态环境,也是现代城市规划和保护区域生态环境重要的途径。

    (1)在陆相第四系精确年代地层对比难题下,按照钻孔氧化、还原层及沉积层序演化,使用海洋氧同位素分期进行地层划分的做法是可行的,将会为第四纪地层识别、划分对比提供新的思路,在年代划分基础上可规避同期异相的问题。

    (2)以钻孔岩性组合为主,结合AMS14C测年、微体生物、孢粉等手段,在永定河中下游地区划分出了8个地层沉积单元,分别对应于MIS1~MIS7、MIS8晚期的沉积地层,并对其进行了精细刻画,重塑了MIS7以来沉积环境模式和序列,建立了晚第四纪的标准年代地层框架标尺。

    (3)在永定河中下游识别出了MIS2、MIS4发育的2期硬质黏土层,MIS6上、下时期发育下切河谷,中部出现短暂湖沼沉积,其可作为MIS6时期的标志层之一,可指导第四纪岩心野外识别的有效性。

    (4)对全新世以来地层演化、气候环境与人类活动关系进行了探索。认为新石器时代以来大尺度的气候变化对自然环境的变迁影响较大,商周时期以来人类活动对生态环境的影响越来越大,河道迁移频繁,致使湖沼逐渐消退并演化为冲积泛滥平原之面貌。

    致谢:感谢审稿专家和编辑部老师对本文的修改提出中肯的建议。

    注释

    ❶贾晓青, 吴荣泽, 陈星, 朱翔鹏, 田德培.2013.武清城关镇幅(J50E003012)、大口屯镇幅(J50E003013)、黄花店乡幅(J50E004012)、武清县幅(J50E004013)1:50 000区域地质调查报告[R].天津市地质调查研究院.

    ❷王继明, 方同明, 吕金波. 2007.北京市多参数立体地质调查第二专题调查报告[R].北京市地质调查研究院, 48-55.

  • 图  1   东南亚大地构造单元划分图(图中罗马数字为构造单元编号,详见正文)

    Figure  1.   Tectonic units of Southeast Asia (The Roman numeral in the figure is the number of tectonic unit. See the text for details)

    图  2   东南亚地区大中型矿床分布图(图中罗马数字为成矿带单元编号,详见正文)

    Figure  2.   Distribution of large and medium-sized deposits in Southeast Asia (The Roman numeral in the figure is the number of tectonic unit. See the text for details)

    图  3   东南亚特提斯构造演化与成矿图(据Zaw et al., 2014修改)

    Figure  3.   Tectonic evolution and metallogeny of Southeast Asia (after Zaw et al., 2014)

    表  1   东南亚地区大地构造分区表

    Table  1   Tectonic units of Southeast Asia

    下载: 导出CSV

    表  2   东南亚地区典型矿床

    Table  2   Typical deposits in Southeast Asia

    下载: 导出CSV
  • Advokaat E L, Hall R, White L T, Watkinson Ian M, Rudyawan A, BouDagher-Fadel, Marcelle K. 2017. Miocene to recent extension in NW Sulawesi, Indonesia[J]. Journal of Asian Earth Sciences, 147. http://adsabs.harvard.edu/abs/2017JAESc.147..378A

    Aldiss D T, Ghazali S A. 1984. The regional geology and evolution of the Toba volcano-tectonic depression, Indonesia[J]. Journal of the Geological Society, 141(3):487-500. doi: 10.1144/gsjgs.141.3.0487

    Barley M E, Pickard A L, Zaw K, Rak P, Doyle M G. 2003. Jurassic to Miocene magmatism and metamorphism in the Mogok metamorphic belt and the India-Eurasia collision in Myanmar[J]. Tectonics, 22(3):4. doi: 10.1029-2002TC001398/

    Blanchard S, Rossignol C, Bourquin S, Dabard M P, Hallot E, Nalpas T. 2013. Late Triassic volcanic activity in South-East Asia:New stratigraphical, geochronological and paleontological evidence from the Luang Prabang Basin (Laos)[J]. Journal of Asian Earth Sciences, 71(1):8-26. http://cn.bing.com/academic/profile?id=bcef199e0dd18aa7fc42dd35c705eb5d&encoded=0&v=paper_preview&mkt=zh-cn

    Breitfeld H T, Hall R, Galin T, Forster M A, Boudagher-Fadel M K. 2016. A Triassic to Cretaceous Sundaland-Pacific subduction margin in West Sarawak, Borneo[J]. Tectonophysics, 694:35-56. http://www.sciencedirect.com/science/article/pii/S0040195116305881

    Cai Wenjie, Zhu Guanghui, Jiang Ye, Yang Songling, Li Aishan. 2012. Petroleum geologic characteristics and exploration potential of accretionary wedge in Myanmar[J]. Natural Gas Geoscience, 23(4):742-747 (in Chinese with English abstract). http://d.old.wanfangdata.com.cn/Periodical/trqdqkx201204017

    Chambers J L C, Daley T. 1995. A tectonic model for the onshore Kutai Basin, East Kalimantan, based on an integrated geological and geophysical interpretation[J]. Search and Discovery. http://cn.bing.com/academic/profile?id=38487cd6d85b4830c6e40b369a522949&encoded=0&v=paper_preview&mkt=zh-cn

    Charlton T R, Hall R, Partoyo E. 1991. The geology and tectonic evolution of Waigeo Island, NE Indonesia[J]. Journal of Asian Earth Sciences, 6(3/4):289-297. http://www.sciencedirect.com/science/article/pii/0743954791900748

    Charusiri P, Pongsapich W, Sutthirat C. 1996. Petrochemistry of probable gem-bearing basalts in Sop Prap-Ko Kha Area, Changwat Lampang[R]. Research report.

    Charusiri P. 2002. Geotectonic evolution of Thailand:A new synthesis[J]. J. Geol. Soc. Thai, 1.

    Chen Yongqing, Huang Jingning, Zhai Xiaoming, Lu Yingxiang, Cheng Zhizhong, Li Jianrong. 2009. Zircon U-Pb age and geochemistry of granitoids within Jinla Pb-Zn-Ag polymetallic ore field across China and Myanmar[J]. Earth Science Frontiers, 16(1):344-362 (in Chinese with English abstract). doi: 10.1016/S1872-5791(08)60070-6

    Chen Yongqing, Liu Junlai, Feng Qinglai. 2010. Geology and Ore Deposits Associated with Granites in Indo-China Peninsula of Southeastern Asia[M]. Beijing:Geological Publishing House, 1-213 (in Chinese).

    Cottam M A, Hall R, Ghani A A. 2013. Late Cretaceous and Cenozoic tectonics of the Malay Peninsula constrained by thermochronology[J]. Journal of Asian Earth Sciences, 76(20):241-257. http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=JJ0231764746

    Cromie P W, Zaw K. Smith S., 2006. The Sepon sedimentary-rock hosted gold deposit. Laos: Gold-ore paragenesis and geochemical investigation[C]. SEG Conference, 14-16. May, 2006, Denver.

    Deng J, Wang Q F, Li G J, Hou Z Q, Jiang C Z, Danyushevsky L. 2015a. Geology and genesis of the giant Beiya porphyry-skarn gold deposit, northwestern Yangtze Block[J]. Ore Geology Reviews, 70:457-485. doi: 10.1016/j.oregeorev.2015.02.015

    Deng J, Wang Q F, Li G J, Li C S, Wang C M. 2014a. Tethys tectonic evolution and its bearing on the distribution of important mineral deposits in the Sanjiang region, SW China[J]. Gondwana Research, 26(2):419-437. doi: 10.1016/j.gr.2013.08.002

    Deng J, Wang Q F, Li G J, Santosh M. 2014b. Cenozoic tectonomagmatic and metallogenic processes in the Sanjiang region, southwestern China[J]. Earth-Science Reviews, 138:268-299. doi: 10.1016/j.earscirev.2014.05.015

    Deng J, Wang Q F, Li G J, Zhao Y. 2015b. Structural control and genesis of the Oligocene Zhenyuan orogenic gold deposit, SW China[J]. Ore Geology Reviews, 65:42-54. doi: 10.1016/j.oregeorev.2014.08.002

    Deng J, Wang Q F, Li G J. 2017. Tectonic evolution, superimposed orogeny, and composite metallogenic system in China[J]. Gondwana Research, 50:216-266. doi: 10.1016/j.gr.2017.02.005

    Deng J, Wang Q F. 2016. Gold mineralization in China:Metallogenic provinces, deposit types and tectonic framework[J]. Gondwana Research, 36:219-274. doi: 10.1016/j.gr.2015.10.003

    Deng Jun, Ge liangsheng, Yang Liqiang. 2013. Tectonic dynamic system and compound orogeny:Additionally discussing the temporalspatial evolution of Sanjiang orogeny, Southwest China[J]. Acta Petrologica Sinica, 29(4):1099-1114(in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-YSXB201304001.htm

    Deng Jun, Li Wenchang, Mo Xuanxue, et al. 2016. Multiple orogenic and metallogenesis of the Sanjiang Tethys[M]. Science Press: 1-622(in Chinese).

    Deng Jun, Wang Changming, Li Gongjian. 2012. Style and process of the superimposed mineralization in the Sanjiang Tethys[J]. Acta Petrologica Sinica, 28(5):1349-1361(in Chinese with English abstract). http://d.old.wanfangdata.com.cn/Periodical/ysxb98201205001

    Deng Jun, Yang Liqiang, Wang Changming. 2011. Research advances of superimposed orogenesis and metallogenesis in the Sanjiang Tethys[J]. Acta Petrologica Sinica, 27(9):2501-2509(in Chinese with English abstract). http://d.old.wanfangdata.com.cn/Periodical/ysxb98201109001

    Feng Qinglai, Shen Shangyue, Liu Benpei, Helmcke D, Qian Xianggui, Zhang Weiming. 2002. Study on radiolaria, siliceous rocks and basalts in the Daxinshan Formation in the Lancangjiang structural belt, southwestern Yunnan[J]. Science in China (Series D), 32(3):220-226 (in Chinese).

    Feng Qinglai, Yang Wenqiang, Shen Shangyue, Chongpan Chonglakmani, Kitsana Malila. 2008. Seamount stratigraphic sequence and its tectonic and paleo-geographical significance, Chiang Mai, northern Thailand[J]. Science in China (Series D), 38(11):1354-1360 (in Chinese). http://www.cnki.com.cn/Article/CJFDTotal-JDXG200812011.htm

    Gabo J A S, Dimalanta C B, Asio M G S, Queaño K L, Jr G P Y, Imai A. 2009. Geology and geochemistry of the clastic sequences from Northwestern Panay (Philippines):Implications for provenance and geotectonic setting[J]. Tectonophysics, 479(1):111-119. http://www.sciencedirect.com/science/article/pii/S0040195109000754/pdf?md5=b14a2546b9b25c8396fa2da8d53225ea&pid=1-s2.0-S0040195109000754-main.pdf&_valck=1

    Guo Yuansheng, Luo Yufu, Cui Yingliang et al. 2013. Geology and exploration of laterite-type nickel deposits in China and Southeast Asia[M]. Beijing:Geological Publishing House, 64-76 (in Chinese).

    Hall R, Ali J R, Anderson C D, Baker S J. 1995. Origin and motion history of the Philippine Sea Plate[J]. Tectonophysics, 251(1-4):229-250. doi: 10.1016/0040-1951(95)00038-0

    Hall R, Hattum M W A V, Spakman W. 2008. Impact of India-Asia collision on SE Asia:The record in Borneo[J]. Tectonophysics, 451(1):366-389. http://www.sciencedirect.com/science/article/pii/S0040195107004295

    Hall R, Morley C K. 2004. Sundaland Basins[J]. Washington Dc American Geophysical Union Geophysical Monograph, 149:55-85. http://d.old.wanfangdata.com.cn/NSTLQK/NSTL_QKJJ0230452688/

    Hall R, Spakman W. 2015. Mantle structure and tectonic history of SE Asia[J]. Tectonophysics, 658:14-45. doi: 10.1016/j.tecto.2015.07.003

    Hall R, Wilson M E J. 2000. Neogene sutures in eastern Indonesia[J]. Journal of Asian Earth Sciences, 18(6):781-808. doi: 10.1016/S1367-9120(00)00040-7

    Hall R. 1997. Cenozoic plate tectonic reconstructions of SE Asia[J]. Petroleum Geology of Southeast Asia, 126(1):11-23. doi: 10.1144-GSL.SP.1997.126.01.03/

    Hall R. 1998. The plate tectonics of Cenozoic SE Asia and the distribution of land and sea[J]. Biogeography & Geological Evolution of Se Asia, 99-132. http://cn.bing.com/academic/profile?id=14697ca32fede98ff81c768066ce6d66&encoded=0&v=paper_preview&mkt=zh-cn

    Hall R. 2002. Cenozoic geological and plate tectonic evolution of SE Asia and the SW Pacific:computer-based reconstructions, model and animations[J]. Journal of Asian Earth Sciences, 20(4):353-431. doi: 10.1016/S1367-9120(01)00069-4

    Hall R. 2011. Australia-SE Asia collision:plate tectonics and crustal flow[J]. Geological Society London Special Publications, 355(1):75-109. doi: 10.1144/SP355.5

    Hall R. 2011. Cenozoic reconstructions of SE Asia and the SW Pacific: Changing patterns of land and sea[M]. Marx, method, and the division of labor, University of Illinois Press: 1492-1495.

    Hall R. 2012. Late Jurassic-Cenozoic reconstructions of the Indonesian region and the Indian Ocean[J]. Tectonophysics, 570-571(11):1-41. http://www.sciencedirect.com/science/article/pii/S0040195112002533

    Hall R. 2016. Southeast Asia:New Views of the Geology of the Malay Archipelago[J].Annual Review of Earth & Planetary Sciences, 45(1). doi: 10.1146/annurev-earth-063016-020633

    Harbury N A, Jones M E, Audley-Charles M G, Metcalfe I, Mohamed K R. 1990. Structural evolution of Mesozoic Peninsular Malaysia[J]. Journal of the Geological Society, 147(1):11-26. doi: 10.1144/gsjgs.147.1.0011

    Hennig J, Breitfeld H T, Hall R, Nugraha A M S. 2017. The Mesozoic tectono-magmatic evolution at the Paleo-Pacific subduction zone in West Borneo[J]. Gondwana Research, 48:292-310. doi: 10.1016/j.gr.2017.05.001

    Hennig J, Hall R, Armstrong R A. 2016. U-Pb zircon geochronology of rocks from west Central Sulawesi, Indonesia:Extension-related metamorphism and magmatism during the early stages of mountain building[J]. Gondwana Research, 32:41-63. doi: 10.1016/j.gr.2014.12.012

    Hollings P, Cooke D R, Waters P J, Cousens B. 2011. Igneous geochemistry of mineralized rocks of the baguio district, philippines:implications for tectonic evolution and the genesis of porphyry-style mineralization[J]. Economic Geology, 106(8):1317-1333. doi: 10.2113/econgeo.106.8.1317

    Hou Zengqian, Wang Erchie, Mo Xuanxue, et al. 2007. Collisional orogeny and metallogenesis of the Tibetan plateau[M]. Beijing:Geological Publishing House, 789-963(in Chinese).

    Idrus A, Kolb J, Meyer F M. 2007. Chemical Composition of RockForming Minerals in Copper-Gold-Bearing Tonalite Porphyries at the Batu Hijau Deposit, Sumbawa Island, Indonesia:Implications for Crystallization Conditions and Fluorine -Chlorine Fugacity[J]. Resource Geology, 57(2), 102-113. doi: 10.1111/rge.2007.57.issue-2

    Kamvong T, Zaw K, Meffre S, Maas R., Stein H, Lai CK. 2014. Adakites in the Truong Son and Loei fold belts, Thailand and Laos:genesis and implications for geodynamics and metallogeny[J]. Gondwana Research, 26, 165-184. doi: 10.1016/j.gr.2013.06.011

    Kamvong T, Zaw K. 2009. The origin and evolution of skarn-forming fluids from the Phu Lon deposit, northern Loei Fold Belt, Thailand. Evidence from fluid inclusion and sulfur isotope studies[J]. Journal of Asian Earth Sciences, 34:624-633. doi: 10.1016/j.jseaes.2008.09.004

    Kamvong T. 2006. Geology and genesis of porphyry-skarn Cu-Au deposits at the northern Loei Fold Belt, northeast Thailand and Laos-a progress report, Progress Report 5, Geochronology, metallogenesis and deposit styles of Loei Foldbelt in Thailand and Laos PDR, ARC Linkage Project.

    Kamvong T., 2007, Geology and genesis of porphyry-skarn Cu-Au deposits at the northern Loei Fold Belt, northeast Thailand and Laos Final Report, Geochronology, metallogenesis and deposit styles of Loei Foldbelt in Thailand and Laos PDR, ARC Linkage Project.

    Katili J A. 1989. Review of past and present geotectonic concepts of eastern Indonesia[J]. Netherlands Journal of Sea Research, 24(2):103-129. http://www.sciencedirect.com/science/article/pii/0077757989901439

    Le Van De, 1997. Outline of plate-tectionic evolution of continental crust of Vietnam[C]//Dheeradilok P(eds.). Proceedings of the International Conferences on Stratigraphy and Tectoinc Evolution of Southeast Asia and the South Pacific.

    Li Wenguang, Fu Caoyi, Yao Zhongyou, Xin Di, Ge Zhiliang, Song Xuexin, Wang Tiangang. 2014a. Tectonic settings, genetic types and main metallogenic fea-tures of copper-gold deposits in Papua New Guinea[J]. Geological Bulletin of China, 32(2/3):270-282(in Chinese with English abstract).

    Li Wenguang, Wang Tiangang, Yao Zhongjun, Li Hongjun, Zhu Yiping. 2014b. Ore-controlling factors and exploration indicators of alkaline magmatism re-lated epithermal gold deposits:A case study of the Porgera gold deposit in Papua New Guinea[J]. Geological Bulletin of China, 33(2/3):308-317(in Chinese with English abstract). https://www.researchgate.net/publication/286392014_Ore-controlling_factors_and_exploration_indicators_of_alkaline_magmatism_related_epithermal_gold_deposits_A_case_study_of_the_Porgera_gold_deposit_in_Papua_New_Guinea

    Li Wenchang, Pan Guitang, Hou Zengqian, et al. 2010. Archipelagic Arc-basin System, Metallogenic Model for Collision Orogeny and Geotechnical exploration in the Sanjiang Region, SW China[M]. Beijing:Geological Publishing House, 1-491(in Chinese).

    Li Xingzhen, Jiang Xinsheng, Sun Zhiming, Shen Ganfu, Du Dexun. 2002. Collision orogenic process in Sanjiang area, Southwest China[M]. Beijing:Geological Publishing House, 1-213 (in Chinese).

    Li Xingzhen, Liu Chaoji, Ding Jun. 2004. Correlation and connection of the main suture zones in the Greater Mekong Subregion[J]. Sedimentary Geology and Tethyan Geology, 24(4):1-12 (in Chinese with English abstract). http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=yxgdl200404001

    Li Xinren, Zhou Xilin, Yan Chengmin, Wang Changbing, Li Yubing. 2017. Division and characteristics of the geotectonic units of Myanmar[J]. Geology and Resources, 26(1):99-104 (in Chinese with English abstract). http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=gjsdz201701018

    Lin Fangcheng; Shi Meifeng, Li Xingzhen, et al. 2010. Geological Background and Metallogenic Regularities of the Sanjiang -Mekong Metallogenic Belt[R]. Internal Materials of Chengdu Center, China Geological Survey, 1-437 (in Chinese).

    Lingmu Weiyuan, Shen Yaolong. 1989. History of geological tectonic development in the Philippine Islands[J]. Offshore Oil, 9(5):28-37 (in Chinese).

    Liu C Z, Chung S L, Wu F Y, Zhang C, Xu Y, Wang J G, Chen Y, Guo S. 2016. Tethyan suturing in Southeast Asia:zircon U-Pb and HfO isotopic constraints from Myanmar ophiolites[J]. Geology, 44(4):311-314. doi: 10.1130/G37342.1

    Liu Guichun, Sun Zaibo, Zeng Wentao, Feng Qinglai, Huang Liang, Zhang Hu. 2017. The age of Wanhe ophiolitic mélange from Mengku area, Shuangjiang County, Western Yunnan Province, and its geological significance[J]. Acta Petrologica et Mineralogica, 36(2):163-174 (in Chinese with English abstract). http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=yskwxzz201702003

    Liu Junlai, Song Zhijie, Cao Shuyun, Zhai Yunfeng, Wang Anjian, Gao Lan, Xiu Qunye, Cao Dianhua. 2006. The dynamic setting and processes of tectonic and magmatic evolution of the oblique collision zone between Indian and Eurasian plates:Exemplified by the tectonic evolution of the Three River region, eastern Tibet[J]. Acta Petrologica Sinica, 22(4):775-786 (in Chinese with English abstract). http://cn.bing.com/academic/profile?id=e686ed6b6b00c74deb5ccc2b1ed81f35&encoded=0&v=paper_preview&mkt=zh-cn

    Liu Junlai, Tang Yuan, Song Zhijie, Tran My Dung, Zhai Yunfeng, Wu Wenbin, Chen Wen. 2011. The Ailaoshan Belt in Western Yunnan:Tectonic Framework and Tectonic Evolution[J]. Journal of Jilin University (Earth Science Edition). 41(5):1285-1303 (in Chinese with English abstract). http://cn.bing.com/academic/profile?id=27416a31f85afccb27af3e6940820b00&encoded=0&v=paper_preview&mkt=zh-cn

    Liu Shusheng, Fan Wenyu, Luo Maojin, Tang Fawei, Zhu Huaping, Chen Wenfeng. 2014. Ziron U-Pb dating and geochemistry characteristics of the bimodal volcanic rocks in Phlaythong area, Southern Laos[J]. Journal of Jilin University:Earth Science Edition, 44(2):540-553(in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-CCDZ201402014.htm

    Lu Yingxiang, Liu Hongguang, Huang Jingning, Zhang Hongyuan, Chen Yongqing. 2009. Preliminary division of the metallogenetic belts in the Central South Peninsula of Southeast Asia and their regional ore-forming characteristics[J]. Geological Bulletin of China, 28 (2-3):314-325 (in Chinese with English abstract). http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=zgqydz200902027

    Makoundi C, Zaw K, Large R R, Meffre, S, Lai C K, Hoe T G. 2014. Geology, geochemistry and metallogenesis of the Selinsing gold deposit, central Malaysia[J]. Gondwana Research, 26(1):241-261. doi: 10.1016/j.gr.2013.08.023

    Metcalfe I. 2013. Gondwana dispersion and Asian accretion:Tectonic and palaeogeographic evolution of eastern Tethys[J]. Journal of Asian Earth Sciences, 66:1-33. doi: 10.1016/j.jseaes.2012.12.020

    Mitchell, A.H.G., Win Myint, Kyi Lynn, Myint Thein Htay, Maw Oo, Thein Zaw, 2011. Geology of the high-sulfidation copper deposits, MonywaMine, Myanmar[J]. Resource Geology 61, 1-29. doi: 10.1111/rge.2011.61.issue-1

    Mo Xuanxue, Lu Fengxiang, Shen Shangyue, Zhu Qinwen, Hou Zengqian, Yang Kaihui. 1993. The Volcanism and Mineralization of Tethys in Sanjiang[M]. Beijing:Geological Publishing House, 1-269 (in Chinese).

    Morley C K. 2012. Late Cretaceous-Early Palaeogene tectonic development of SE Asia[J]. Earthence Reviews, 115(1-2):37-75. doi: 10.1016/j.earscirev.2012.08.002

    Moss S J, Chambers J, Cloke I, Satria D, Ali J R, Baker S, Milsom J, Carter A. 1997. New observations on the sedimentary and tectonic evolution of the Tertiary Kutai Basin, East Kalimantan[J]. Geological Society London Special Publications, 126(1):395-416. doi: 10.1144/GSL.SP.1997.126.01.24

    Nakano N, Osanai Y, Owada M, Nam T N, Toyoshima T, Binh P, Tsunogae T, Kagami H. 2007. Geologic and metamorphic evolution of the basement complexes in the Kontum Massif, central Vietnam[J]. Gondwana Research, 12(4):438-453. doi: 10.1016/j.gr.2007.01.003

    Pan Guitang, Lu Songnian, Xiao Qinghui, Zhang Kexin, Yin Fuguang, Hao Guojie, Luo Mansheng, Ren Fei, Yuan Sihua. 2016. Division of tectonic stages and tectonic evolution in China[J]. Earth Science Frontiers, 23(6):1-23 (in Chinese with English abstract). http://d.old.wanfangdata.com.cn/Periodical/dxqy201606001

    Pan Guitang, Xiao Qinghui, Lu Songnian, Deng Jinfu, Feng Yimin, Zhang Kexin, Zhang Zhiyong, Wang Fangguo, Xing Guangfu, Hao Guojie, Feng Yanfang. 2009. Subdivision of tectonic units in China[J]. Geology in China, 36(1):1-4 (in Chinese with English abstract). http://d.old.wanfangdata.com.cn/Periodical/zgdizhi201804003

    Pan Guitang. 2013. Tectonic Map and Instructions for the Tibet Plateau and Adjacent Areas[M]. Beijing:Geological Publishing House (in Chinese).

    Peng Zhimin, Geng Quanru, Wang Liquan, Zhang Zhang, Guan Junlei, Cong Feng, Liu Shusheng. 2014. Zircon U-Pb ages and Hf isotopic characteristics of Granitic gneiss from Bunsumco, Central Qiangtang, Qinghai-Tibet Plateau[J]. Chinese Science Bulletin, 59(26):2621-2629 (inChinese). doi: 10.1360/N972014-00014

    Peng Zhimin, Zhang Ji, Guan Junlei, Zhang Zhang, Han Wenwen, Fu Yuzhen. 2018. The discovery of Early-Middle Ordovician granitic gneiss from the giant Lincang Batholith in Sanjiang area of Western Yunnan and its geological implications[J]. Earth Science, 43(8):2571-2585 (in Chinese with English abstract). http://d.old.wanfangdata.com.cn/Periodical/dqkx201808003

    Phan C T. 2000. The Permian of Vietnam, Laos and Cambodia and its interregional correlation[J]. Developments in Palaeontology and Stratigraphy, 18(00):99-109. http://www.sciencedirect.com/science/article/pii/S0920544600800072

    Pigram C J. 1987. Terranes and the accretion history of the papua new guinea orogeny[J]. Bmrj.aust.geol. and Geophys, 10(3).

    Qian Kun, Yan Yi, Huang Qiyu, Chen Wenhuang, Yu Mengming, Tian Zhixian. 2016. Sea floor spreading of South China Sea and its depositional records of sea and land changes[J]. Marine Geology Frontiers, 32(8):10-23 (in Chinese with English abstract). http://d.old.wanfangdata.com.cn/Periodical/hydzdt201608002

    Robert Jak McCarroll, Ian T. Graham, Russell Fountain, Karen Privat, Jon Woodhead. 2014. The Ojolali region, Sumatra, Indonesia:Epithermal gold-silver mineralisation within the Sunda Arc[J]. Gondwana Research, 26(1):218-240. doi: 10.1016/j.gr.2013.08.013

    Rossignol C, Bourquin S, Poujol M, Hallot E, Dabard MP, Nalpas T. 2016. The volcaniclastic series from the Luang Prabang Basin, Laos:A witness of a triassic magmatic arc?[J]. Journal of Asian Earth Sciences, 120:159-183. doi: 10.1016/j.jseaes.2016.02.001

    Salam A, Zaw K, Meffre S, Mcphie J, Lai C K. 2014. Geochemistry and geochronology of the Chatree epithermal gold-silver deposit:Implications for the tectonic setting of the Loei Fold Belt, Central Thailand[J]. Gondwana Research, 26(1):198-217. doi: 10.1016/j.gr.2013.10.008

    Schwartz MO, Rajah SS, Askury AK and Putthapiban P. 1995. The Southeast-Asian Tin belt[J]. Earth-Science Reviews, 38(2-4):95-286. doi: 10.1016/0012-8252(95)00004-T

    Sevastjanova I, Hall R, Rittner M, Paw S M T L, Naing T T, Aldertona D H, Comfort G. 2016. Myanmar and Asia united, Australia left behind long ago[J]. Gondwana Research, 32:24-40. doi: 10.1016/j.gr.2015.02.001

    Shao Lei, You Hongqing, Hao Hujun, Wu Guoxuan, Qiao Peijun, Lei Yongchang. 2007. Petrology and depositional environments of Mesozoic strata in the northeastern South China Sea[J]. Geological Review, 53(2):164-169 (in Chinese with English abstract). http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=dzlp200702003

    Shi M F, Lin F C, Fan W Y, Deng Q, Cong F, Tran M D, Zhu H P, Wang, H. 2015. Zircon U-Pb ages and geochemistry of granitoids in the Truong Son terrane, Vietnam:Tectonic and metallogenic implications[J]. Journal of Asian Earth Sciences, 101:101-120. doi: 10.1016/j.jseaes.2015.02.001

    Shi Meifeng, Lin Fangcheng, Fan Wenyu, Wang Hong, Cong Feng, Zhu Huaping. 2015. SHRIMP zircon U-Pb dating of the monzogranites in the Pilok tintungsten mining area, western Thailand, and its geological implications[J]. Geological Bulletin of China, 34(4):769-779(in Chinese with English abstract). http://www.en.cnki.com.cn/Article_en/CJFDTOTAL-ZQYD201504016.htm

    Shi Meifeng, Lin Fangcheng, Li Xingzhen, Ling Xiaoming, Shi Hongzhao. 2011. Stratigraphic zoning and tectonic events in Indochina and adjacent areas of southwest China[J]. Geology in China, 38(5):1244-1256. http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=zgdizhi201105011

    Shi Meifeng, Lin Fangcheng, Liiu Chaoji, Li Xingzhen, Wang Hong. 2013. Classification and metallogenesis of metallogenic belts in Southeast Asia and the neighbouring southwestern part of China[J]. Sedimentary Geology and Tethyan Geology, 33(2):103-110(in Chinese with English abstract). http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=yxgdl201302015

    Smyth H R, Hamilton P J, Hall R, Kinny P D. 2007. The deep crust beneath island arcs:Inherited zircons reveal a Gondwana continental fragment beneath East Java, Indonesia[J]. Earth & Planetary Science Letters, 258(1):269-282. http://www.sciencedirect.com/science/article/pii/S0012821X07002087

    Sone M, Metcalfe I. 2008. Parallel Tethyan sutures in mainland Southeast Asia:New insights for Palaeo-Tethys closure and implications for the Indosinian orogeny[J]. Comptes Rendus Geoscience, 340(2/3):166-179. http://www.sciencedirect.com/science/article/pii/S163107130700260X

    Spakman W, Hall R. 2010. Surface deformation and slab-mantle interaction during Banda arc subduction rollback[J]. Nature Geoscience, 3(8):562-566. doi: 10.1038/ngeo917

    Suggate S M, Cottam M A, Hall R, Sevastjanova I, Forster M A, Whitea L T, Armstrongc R A, Carterd A, Mojares E. 2014. South China continental margin signature for sandstones and granites from Palawan, Philippines[J]. Gondwana Research, 26(2):699-718. doi: 10.1016/j.gr.2013.07.006

    Sun Zhen, Zhao Zhongxian, Zhou Di, Yang Shaokun, Lin Heming, Chen Guanghao. 2011. The stratigraphy and the sequence achitecture of the basins in Nansha region[J]. Earth Science, 36(5):798-806 (in Chinese with English abstract). http://d.old.wanfangdata.com.cn/Periodical/dqkx201105003

    Waipan N S, Whitehouse M J, Searle M P, Robb L J, Ghani A A, Chung S L, et al. 2015. Petrogenesis of Malaysian granitoids in the Southeast Asian tin belt:Part 2. U-Pb zircon geochronology and tectonic model[J]. Geological Society of America Bulletin, 127. http://adsabs.harvard.edu/cgi-bin/nph-data_query?bibcode=2015GSAB..127.1209W&db_key=PHY&link_type=ABSTRACT

    Wang Anjian, Cao Dianhua, Guan Ye, Liu Junlai, Li Wenchang. 2009. Metallogenic Belts of Southern Three Rivers Region, Southwest China:Distribution, Characteristics and Discussion[J]. Acta Geologica Sinica, 83(10):1365-1375. http://cn.bing.com/academic/profile?id=84718b5c63ad7ca2b28ece0dc756721b&encoded=0&v=paper_preview&mkt=zh-cn

    Wang Hong, Lin Fangcheng, Li Xingzhen, Shi Meifeng, Liu Chaoji, Shi, Hongzhao. 2012. Tectonic unit division and Neo-Tethys tectonic evolution in north-central Myanmar and its adjacent areas[J]. Geology in China, 39(4):912-922 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-DIZI201204007.htm

    Wang Hong, Lin Fangcheng, Li Xingzhen, Shi Meifeng. 2015. The division of tectonic units and tectonic evolution in Laos and its adjacent regions[J]. Geology in China, 42(1):71-84 (in Chinese with English abstract). http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=zgdizhi2015010006

    Wang Zhiyao, Qian Maolu, Su Junqing, Hu Jungang, Wang Yu, Liu Zhiying. 2017. Genesis analysis of gas source of biogenic gas reservoir in rakhine basin, Myanmar[J]. Petroleum Geology and Recovery Efficiency, 24(2):46-51 (in Chinese with English abstract). http://www.en.cnki.com.cn/Article_en/CJFDTOTAL-YQCS201702007.htm

    Watkinson I M, Hall R, Ferdian F. 2011. Tectonic re-interpretation of the Banggai-Sula-Molucca Sea margin, Indonesia[J]. Geological Society London Special Publications, 355(1):203-224. doi: 10.1144/SP355.10

    White L T, Hall R, Armstrong R A. 2014. The age of undeformed dacite intrusions within the Kolaka Fault zone, SE Sulawesi, Indonesia[J]. Journal of Asian Earth Sciences, 94(3):105-112. http://www.sciencedirect.com/science/article/pii/S1367912014003575

    Xin Di, Liu Jing, Li Lei, Ran Li, Song Xuexin. 2014. Metallogenic characteristics and controlling factors of the Ok Tedi Cu-Au deposit, Pap-ua New Guinea[J]. Geological Bulletin of China, 33(2/3):299-307(in Chinese with English abstract). http://www.en.cnki.com.cn/Article_en/CJFDTotal-ZQYD2014Z1018.htm

    Yang Wenqiang. 2010. Tectonic evolution of Nan-Uttaradit and Loei suture zones, Thailand and Lao P.D.R.[D]. China University of Geosciences: Doctoral dissertation (in Chinese with English abstract).

    Yao Y J, Liu H L, Yang C P, Han B, Tian J J, Yin Z X, Gong J L, Xu Q Y. 2012. Characteristics and evolution of cenozoic sediments in the liyue basin, se south china sea[J]. Journal of Asian Earth Sciences, 60(Complete):114-129. http://www.sciencedirect.com/science/article/pii/S1367912012003422

    Yao Zhongyou, Wang Tiangang, Fu Caoyi, Ma Chun, Qi Liping, Kong Hongjie, Wang Zhuansheng, Li Wanggang, Chen Gang. 2014. Geological framework and dominant mineral resources of Oceania[J]. Geological Bulletin of China, 33(2/3):143-158(in Chinese with English abstract) http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=zgqydz201402003

    Zaw K, Meffre S, Lai CK, Burrett C, Santosh M, Graham I, Manaka T, Salam B, Kamvong T, Cromie P. 2014. Tectonics and metallogeny of mainland Southeast Asia-A reviewand contribution[J]. Gondwana Research, 5-30. http://www.sciencedirect.com/science/article/pii/S1342937X13003572

    Zhang Kexin, Pan Guitang, He Weihong, Xiao Qinghui, Xu Yadong, Zhang Zhiyong, et al. 2015. New division of tectonic-strata superregion in China[J]. Earth Science, 40(2):206-233 (in Chinese with English abstract). http://d.old.wanfangdata.com.cn/Periodical/dqkx201502004

    Zhu D C, Zhao Z D, Niu Y L, Dilek Y, Wang Q, Li W H, Dong G C, Sui Q L, Liu Y S, Yuan H L, Mo X X. 2012. Cambrian bimodal volcanism in the Lhasa Terrane, southern Tibet:Record of an early Paleozoic Andean-type magmatic arc in the Australian protoTethyan margin[J]. Chemical Geology, 328(11):290-308. http://www.sciencedirect.com/science/article/pii/S0009254112000034

    Zhu Huaping, Fan Wenyu, Mao Hongjiang, Wu Zhenbo, Gao Jianhua, Liu Shusheng. 2014. Geological characteristics and metallogenesis of the PHaLek iron deposit in Vientiane Province, Laos[J]. Journal of Jilin University:Earth Science Edition, 44(5):1492-1501(in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-CCDZ201405010.htm

    Zhu Huaping, Lin Fangchen, Shi Meifeng, Wang Hong. 2016. Analysis of Geotectonic Environment, Metallogenic Potential and Prospecting direction of Important Mining Areas in Eastern Tethys[R]. 213-216 (in Chinese).

    Zimmermann S, Hall R. Provenance of Triassic and Jurassic sandstones in the Banda Arc:Petrography, heavy minerals and zircon geochronology[J]. Gondwana Research, 2016, 37:1-19. doi: 10.1016/j.gr.2016.06.001

    Zin-Maung-Maung-Thein, Takai M, Tsubamoto T, Egi N, ThaungHtike, Nishimura T, Maung-Maung, Zaw-Win. 2010. A review of fossil rhinoceroses from the Neogene of Myanmar with description of new specimens from the Irrawaddy sediments[J]. Journal of Asian Earth Sciences, 37(2):154-165. doi: 10.1016/j.jseaes.2009.08.009

    蔡文杰, 朱光辉, 姜烨, 杨松岭, 李爱山. 2012.增生楔油气地质特征及勘探潜力——以缅甸某区块为例[J].天然气地球科学, 23(4):742-747. http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=trqdqkx201204017
    陈永清, 黄静宁, Zhai Xiaoming, 卢映祥, 程志中, 李建荣. 2009.中缅毗邻区金腊Pb-Zn-Ag多金属矿田花岗岩锆石U-Pb定年与地球化学特征[J].地学前缘, 16(1):344-362. doi: 10.3321/j.issn:1005-2321.2009.01.036
    陈永清, 刘俊来, 冯庆来. 2010.东南亚中南半岛地质及与花岗岩有关的矿床[M].北京:地质出版社, 76-89.
    邓军, 葛良胜, 杨立强. 2013.构造动力体制与复合造山作用-兼论三江复合造山带时空演化[J].岩石学报, 29(4):1099-1114. http://kns.cnki.net/KCMS/detail/detail.aspx?filename=YSXB201304001&dbname=CJFD&dbcode=CJFQ
    邓军, 李文昌, 莫宣学, 等. 2016.三江特提斯复合造山与成矿作用[M].科学出版社: 1-622.
    邓军, 王长明, 李龚健. 2012.三江特提斯叠加成矿作用样式及过程.岩石学报, 28 (5):1349-1361. http://d.old.wanfangdata.com.cn/Periodical/ysxb98201205001
    邓军, 杨立强, 王长明. 2011.三江特提斯复合造山与成矿作用研究进展[J].岩石学报, 27(9):2501-2509. http://d.old.wanfangdata.com.cn/Periodical/ysxb98201109001
    冯庆来, 沈上越, 刘本培, Helmcke D, 钱祥贵, 张伟明. 2002.滇西南澜沧江构造带大新山组放射虫、硅质岩和玄武岩研究[J].中国科学:地球科学, 32(3):220-226. http://d.old.wanfangdata.com.cn/Periodical/zgkx-cd200203006
    冯庆来, 杨文强, 沈上越, Chongpan Chonglakmani, Kitsana Malila. 2008.泰国北部清迈地区海山地层序列及其构造古地理意义[J].中国科学:地球科学, 38(11):1354-1360. http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=QK200802144796
    郭远生, 罗玉福, 崔银亮. 2013.中国和东南亚红土型镍矿地质与勘查[M].北京:地质出版社, 64-76.
    侯增谦, 王二七, 莫宣学. 2007.青藏高原碰撞造山与成矿作用[M].北京:地质出版社, 798-963.
    李文昌, 潘桂棠, 侯增谦. 2010.西南"三江"多岛弧盆-碰造山成矿理论与勘查技术[M].北京:地质出版社, 1-491.
    李文光, 傅朝义, 姚仲友, 信迪, 葛之亮, 宋学信, 王天刚. 2014a.巴布亚新几内亚铜金矿床大地构造背景、成因类型与成矿特征[J].地质通报, 33 (2/3):270-282. http://d.old.wanfangdata.com.cn/Periodical/zgqydz201402015
    李文光, 王天刚, 姚仲友, 李红军, 朱意萍. 2014b.与碱性岩有关的浅成低温热液型金矿特征与控矿因素——以巴布亚新几内亚波尔盖拉金矿为例[J].地质通报, 33 (2/3):308-317. http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=zgqydz201402018
    李新仁, 周喜林, 严城民, 王长兵, 李于冰. 2017.缅甸大地构造单元的划分与特征[J].地质与资源, 26(1):99-104. doi: 10.3969/j.issn.1671-1947.2017.01.018
    李兴振, 江新胜, 孙志明, 沈敢富, 杜德勋. 2002.西南三江地区碰撞造山过程[M].北京:地质出版社, 1-213.
    李兴振, 刘朝基, 丁俊. 2004.大湄公河次地区主要结合带的对比与连接[J].沉积与特提斯地质, 24(4):1-12. doi: 10.3969/j.issn.1009-3850.2004.04.001
    林方成, 施美凤, 李兴振. 2010.三江-湄公河成矿带地质背景和成矿规律对比研究专题成果报告[R].中国地质调查局成都地质调查中心内部资料, 1-437.
    铃木尉元, 沈耀龙. 1989.菲律宾群岛地质构造发育史[J].海洋石油, 9(5):28-37. http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=QK000001538857
    刘桂春, 孙载波, 曾文涛, 冯庆来, 黄亮, 张虎. 2017.滇西双江县勐库地区湾河蛇绿混杂岩的形成时代、岩石地球化学特征及地质意义[J].岩石矿物学杂志, 36(2):163-174. doi: 10.3969/j.issn.1000-6524.2017.02.003
    刘俊来, 宋志杰, 曹淑云, 翟云峰, 王安建, 高兰, 修群业, 曹殿华. 2006.印度-欧亚侧向碰撞带构造-岩浆演化的动力学背景与过程——以藏东三江地区构造演化为例[J].岩石学报, 22(4):775-786. http://d.old.wanfangdata.com.cn/Periodical/ysxb98200604002
    刘俊来, 唐渊, 宋志杰, Tran My Dung, 翟云峰, 吴文彬, 陈文. 2011.滇西哀牢山构造带:结构与演化[J].吉林大学学报(地球科学版), 41(5):1285-1303. http://d.old.wanfangdata.com.cn/Periodical/cckjdxxb201105003
    刘书生, 范文玉, 罗茂金, 唐发伟, 朱华平, 陈文峰. 2014.老挝南部帕莱通双峰式火山岩锆石U-Pb定年及岩石地球化学特征[J].吉林大学学报:地球科学版, 44(2):540-553. http://kns.cnki.net/KCMS/detail/detail.aspx?filename=CCDZ201402014&dbname=CJFD&dbcode=CJFQ
    卢映祥, 刘洪光, 黄静宁, 张宏远, 陈永清. 2009.东南亚中南半岛成矿带初步划分与区域成矿特征[J].地质通报, 28(2/3):314-325. http://d.old.wanfangdata.com.cn/Periodical/zgqydz200902027
    莫宣学, 路凤香, 沈上越, 朱勤文, 侯增谦, 杨开辉. 1993.三江特提斯火山作用与成矿[M].北京:地质出版社, 1-269.
    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和演化[J].地学前缘, 23(6):1-23. http://d.old.wanfangdata.com.cn/Periodical/dxqy201606001
    潘桂棠, 肖庆辉, 陆松年, 邓晋福, 冯益民, 张克信, 张智勇, 王方国, 邢光福, 郝国杰, 冯艳芳. 2009.中国大地构造单元划分[J].中国地质, 36(1):1-4. http://geochina.cgs.gov.cn/ch/reader/view_abstract.aspx?file_no=20090101&flag=1
    潘桂棠等. 2013.青藏高原及邻区大地构造图及说明书[M].北京:地质出版社.
    彭智敏, 耿全如, 王立全, 张璋, 关俊雷, 丛峰, 刘书生. 2014.青藏高原羌塘中部本松错花岗质片麻岩锆石U-Pb年龄、Hf同位素特征及地质意义[J].科学通报, 59(26):2621-2629. http://www.cnki.com.cn/Article/CJFDTOTAL-KXTB201426014.htm
    彭智敏, 张辑, 关俊雷, 张璋, 韩文文, 付于真. 2018.滇西"三江"地区临沧花岗岩基早-中奥陶世花岗质片麻岩的发现及其意义[J].地球科学, 43(8):2571-2585. http://www.wanfangdata.com.cn/details/detail.do?_type=perio&id=dqkx201808003
    钱坤, 闫义, 黄奇瑜, 陈文煌, 余梦明, 田陟贤. 2016.南海扩张过程及海陆变迁沉积记录[J].海洋地质前沿, 32(8):10-23. http://d.old.wanfangdata.com.cn/Periodical/hydzdt201608002
    邵磊, 尤洪庆, 郝沪军, 吴国瑄, 乔培军, 雷永昌. 2007.南海东北部中生界岩石学特征及沉积环境[J].地质论评, 53(2):164-169. doi: 10.3321/j.issn:0371-5736.2007.02.003
    施美凤, 林方成, 李兴振, 凌小明, 石洪召. 2011.东南亚中南半岛与中国西南邻区地层分区及沉积演化历史[J].中国地质, 38(5):1244-1256. doi: 10.3969/j.issn.1000-3657.2011.05.011
    施美凤, 林方成, 刘朝基, 李兴振, 王宏. 2013.东南亚缅泰老越柬五国与中国邻区成矿带划分及成矿特征[J].沉积与特提斯地质, 33(2):103-110. doi: 10.3969/j.issn.1009-3850.2013.02.015
    施美凤, 林方成, 范文玉, 王宏, 丛峰, 朱华平. 2015.泰国西部比洛克(Pilok)锡钨矿区二长花岗岩SHRIMP锆石U-Pb年龄及其地质意义[J].地质通报, 34(4):769-779. doi: 10.3969/j.issn.1671-2552.2015.04.016
    孙珍, 赵中贤, 周蒂, 杨少坤, 林鹤鸣, 陈广浩. 2011.南沙海域盆地的地层系统与沉积结构[J].地球科学, 36(5):798-806. http://d.old.wanfangdata.com.cn/Periodical/dqkx201105003
    王安建, 曹殿华, 管烨, 刘俊来, 李文昌. 2009.西南三江成矿带中南段金属矿床成矿规律与若干问题探讨[J].地质学报, 83(10):1365-1375. doi: 10.3321/j.issn:0001-5717.2009.10.001
    王宏, 林方成, 李兴振, 施美凤, 刘朝基, 石洪召. 2012.缅甸中北部及邻区构造单元划分及新特提斯构造演化[J].中国地质, 39(4):912-922. doi: 10.3969/j.issn.1000-3657.2012.04.006
    王宏, 林方成, 李兴振, 施美凤. 2015.老挝及邻区构造单元划分与构造演化[J].中国地质, 42(1):71-84. doi: 10.3969/j.issn.1000-3657.2015.01.006
    王芝尧, 钱茂路, 苏俊清, 胡俊刚, 王瑀, 刘志英. 2017.缅甸若开海域生物气藏气源成因分析[J].油气地质与采收率, 24(2):46-51. http://d.old.wanfangdata.com.cn/Periodical/yqdzycsl201702007
    信迪, 刘京, 李雷, 冉丽, 宋学信. 2014.巴布亚新几内亚奥克泰迪铜金矿床成矿特征和控制因素[J].地质通报, 33 (2-3):299-307. http://d.old.wanfangdata.com.cn/Periodical/zgqydz201402017
    杨文强. 2010.泰国和老挝难河-程逸及黎府缝合带构造演化[D].中国地质大学: 博士学位论文. http://cdmd.cnki.com.cn/Article/CDMD-10491-2010250456.htm
    姚仲友, 王天刚, 傅朝义, 马春, 齐立平, 孔红杰, 汪传胜, 李文光, 陈刚. 2014.大洋洲地区大地构造格架与优势矿产资源[J].地质通报, 33 (2/3):143-158. http://d.old.wanfangdata.com.cn/Periodical/zgqydz201402003
    张克信, 潘桂棠, 何卫红, 肖庆辉, 徐亚东, 张智勇, 等. 2015.中国构造-地层大区划分新方案[J].地球科学, 40(2):206-233. http://d.old.wanfangdata.com.cn/Periodical/dqkx201502004
    朱华平, 范文玉, 毛洪江, 吴振波, 高建华, 刘书生. 2014.老挝万象省爬立山(PhaLek)铁矿床地质特征及成矿作用分析[J].吉林大学学报(地球科学版), 44 (5):1492-1501. http://d.old.wanfangdata.com.cn/Periodical/cckjdxxb201405011
    朱华平, 林方成, 施美凤, 王宏. 2016.东特提斯地区重要矿区产出环境、成矿潜力和找矿方向分析[R]. 213-216.
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  • 收稿日期:  2018-09-02
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