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1.
北大别白垩纪花岗岩多期侵位与造山带演化的关系   总被引:1,自引:0,他引:1  
大别造山带白垩纪花岗岩的多期侵位与地壳结构变化的关系,是研究大别造山带演化的热点和前沿问题之一.北大别造山带产出三期白垩纪花岗岩,通过对石鼓尖岩体、天堂寨岩体和薄刀锋岩体进行锆石U-Pb年龄和Sr-Nd同位素研究,探讨了北大别白垩纪三期花岗岩的侵位时间和造山带地壳结构的演化.石鼓尖石英二长岩年龄为142±4Ma,(87Sr/86Sr)t比值范围为0.707 801~0.707 870,εNd(t)值范围为-17.94~-17.09;天堂寨斑状二长花岗岩年龄为132±4Ma,(87Sr/86Sr)t比值范围为0.708 390~0.708 934,εNd(t)值范围为-16.89~-13.86;薄刀锋细粒花岗岩的年龄为130±4Ma,(87Sr/86Sr)t比值范围为0.711 424~0.714 972,εNd(t)值范围为-14.88~-12.97.这样的同位素组成显示花岗岩的多期侵位与地壳结构演化的密切关系,第一期花岗岩形成于增厚的基性下地壳部分熔融,第二期花岗岩来源于大别造山带伸展垮塌过程的中酸性中下地壳的部分熔融,晚期无变形花岗岩形成于造山带伸展垮塌后,酸性中上地壳的部分熔融.  相似文献   

2.
北山造山带位于中亚造山带最南缘,为多期岛弧、蛇绿混杂岩拼贴而成的增生型造山带;晚古生代,北山造山带的构造活动引发强烈的花岗质岩浆活动,伴随有广泛的钨(钼)成矿作用;本文对北山南带花牛山岛弧三个典型含钨花岗岩体:盘陀山、鹰嘴红山及玉山岩体进行详细的锆石U-Pb年代学、全岩地球化学研究。SIMS锆石U-Pb定年结果表明该区成矿花岗岩分为两个侵入期次:(1)晚志留世月牙山-洗肠井蛇绿混杂岩南段出露花岗岩,其中,盘陀山二长花岗岩422.0±1.5Ma;盘陀山钾长花岗岩417.0±1.7Ma;鹰咀红山钾长花岗岩424.0±1.3Ma;(2)晚二叠世柳园蛇绿混杂带北侧玉山花岗岩体,定年结果为280.8±3.0Ma。岩石地球化学研究表明盘陀山-鹰嘴红山花岗岩带为过铝质S型花岗岩,玉山岩体为A型花岗岩。岩体稀土含量较高,具右倾型稀土配分模式,LREE分异强烈,HREE分异不明显,样品Eu亏损强烈。原始地幔标准化蛛网图中总体显示较为一致的分布模式,大离子亲石元素Ba、Sr呈现明显负异常,富集Th、U、Pb、Zr、Hf等元素而亏损高场强元素Ta、Nb、Ti、P。结合晚古生代北山构造演化过程,推断国庆-鹰嘴红山钨矿为公婆泉岛弧与花牛山岛弧碰撞阶段形成,而玉山钨矿床为晚华力西期弧后伸展构造背景的产物。  相似文献   

3.
白马山复式岩体位于湘西雪峰山弧形构造隆起带与湘中白马山-龙山-紫云山EW向构造带的交汇处,由水车、龙潭、小沙江和龙藏湾超单元花岗岩组成。锆石LA-ICP-MS U-Pb同位素定年显示,水车、龙潭、小沙江、龙藏湾超单元花岗岩的侵位年龄分别为424.9±2.2Ma、228.2±1.3Ma、225.3±1.1Ma和215.0±1.2Ma。水车超单元形成于加里东期,其余3个超单元花岗岩均形成于印支晚期,首次系统搭建了白马山复式岩体的年代学格架。印支期龙潭和小沙江超单元花岗岩具有低硅、低碱、准铝质-弱过铝质的特点,显示较强的Rb、Th、U、Pb正异常和Nb、Sr、P、Ti负异常,具有较弱的负Eu异常(δEu为0.55~1.07);富集Sr同位素[(~(87)Sr/~(86)Sr)i=0.719027~0.721297]、亏损Nd同位素[εNd(t)=-10.5~-9.4]和锆石Hf同位素[εHf(t)=-7.7~-4.1],具有古老的Nd同位素(1.76~1.85Ga)和Hf同位素(1.42~1.83Ga)二阶段模式年龄。相反,龙藏湾超单元花岗岩具有高硅、高碱、强过铝质的特点,显示较强的Rb、Th、U、Ta、Pb正异常和Ba、Nb、Sr、Ti负异常,显示强的负Eu异常(δEu=0.28~0.51)和高(~(87)Sr/~(86)Sr)i值(0.741441~0.748761),具有负的εNd(t)值(-11.3~-10.7)和εHf(t)值(-11.5~-3.5),Nd同位素(1.87~1.91Ga)和Hf同位素(1.47~1.97Ga)二阶段模式年龄更老。结合元素和同位素地球化学特征,可推断出龙潭和小沙江超单元花岗岩是华南古老地壳基底中基性变质火成岩混有变质沉积岩发生部分熔融形成的I型或者I-S过渡性质的花岗质岩石,而龙藏湾超单元花岗岩则由华南成熟度更高的古老地壳基底富粘土变沉积岩发生部分熔融形成的S型花岗岩。白马山复式岩体中印支期超单元花岗岩很可能是华南板块受印支板块碰撞挤压后地壳发生伸展减薄,由加厚的地壳发生部分熔融形成的。这些印支期花岗岩与其周缘的金、钨矿床在时、空上具有密切联系,可能具有良好的成矿潜力;湘中地区印支期花岗岩的成岩、成矿作用在强度和广度上可能远高于过去的传统认识。  相似文献   

4.
青藏高原中新生代花岗岩Sr、Nd同位素研究   总被引:10,自引:2,他引:10  
青藏高原中新生代岩浆活动强烈,本文报道青藏高原西部中新生代代表性花岗岩的Sr,Nd同位素测定结果,结合前人已发表的东部地区花岗岩同位素资料,初步探讨了青藏高原地区中新生代花岗岩的Sr,Nd同位素组成、物质来源与成因。研究表明,分布于冈底斯地块北南边界(即冈底斯花岗岩北带和南带)与洋壳俯冲有关的燕山晚期花岗岩,具有低^87Sr/^86Sr初始值(小于0.706)、正εNd(t)值和年轻的t2DM模式年龄的特征,岩浆来源于俯冲洋壳的熔融;与陆-陆碰撞及碰撞后有关的冈底斯花岗岩^87Sr/^86Sr初始值变化大(0.706~0719),而εNd(t)值和t2DM都在很小范围变化,Sr、Nd同位素组成似乎与时代、岩性无关,说明壳幔混合花岗岩的同位素源区长时期保持相对均一。无洋壳物质参与的通过陆内俯冲作用形成的喜马拉雅区花岗岩,具有高^87Sr/^86Sr初始值(大于0.720)、古老模式t2DM年龄(1792~2206Ma)和低εNd(t)值(-10.3~-16.3)特征,并与基底岩石的Sr,Nd组成一致,岩浆源区为壳源。由此说明花岗岩类及其岩石组合的形成主要取决于深部部分熔融物质的成分,不同火成岩组合的差异反映了青藏高原岩石圈组成和演化的不均一性。  相似文献   

5.
北山明舒井岩体为一由辉长岩、闪长岩和花岗岩构成的岩浆杂岩体。LA-ICP-MS锆石U-Pb定年分别获得辉长岩442.9±1.2Ma、闪长岩437.0±2.3Ma、花岗岩435.9±2.2Ma的形成年龄。其中,辉长岩为富钙、高铁和镁的钙碱性岩,相对富集LREE和LILE、贫化HFSE,亏损Nb、Ta、Ti、Zr和P,Pb正异常,具中等偏高的(87Sr/86Sr)i(0.705892)、高放射性成因Pb,低εNd(t)(0.1),锆石εHf(t)变化大(-7.1~+8.3)。闪长岩和花岗岩富钠、低钙、铁和镁,为准铝质钙碱性岩;它们富集LREE和LILE、亏损HFSE,Nb、Ta及Sr、P、Ti明显负异常;也显示中等偏高的(87Sr/86Sr)i(0.705951~0.706196)和高放射性成因Pb、低εNd(t)(-0.2~-0.1),但锆石εHf(t)明显偏正(-1.1~+12.0)。不同岩类的地球化学特征及其相对一致的Sr-Nd-Pb同位素及明显不同的锆石Hf同位素,指示它们形成于板块消减带构造环境,为源自受流体交代和陆壳物质改造的幔源岩浆与新元古代陆壳物质部分熔融的岩浆混合和分离结晶演化的产物,代表北山南部早古生代晚奥陶世-早志留世晚期与大洋俯冲消减作用有关的构造岩浆事件。  相似文献   

6.
江南造山带湖南段中早古生代花岗质岩石对于研究早古生代构造演化以及金成矿作用具有重要的意义。位于该区中段的金鸡金矿床钻孔中新发现有两类花岗质岩石,分别为花岗岩和花岗闪长岩。对两类岩体样品进行了锆石LA-ICP-MS U-Pb测年,获得的年龄分别为(425.2±1.5)Ma和(430.6±1.5)Ma。岩石地球化学数据表明,花岗岩属I型花岗岩,其来源于地壳中变泥质岩石的部分融熔;花岗闪长岩属埃达克岩,其起源于地壳中变砂质岩石的部分融熔。Sr-Nd同位素分析显示,金鸡花岗闪长岩具有较高的(87Sr/86Sr)i(0.722369~0.722488)、较低的(143Nd/144Nd)i(0.511941~0.511990)以及εNd(t)值较低(–8.2~–7.2),并且金鸡花岗闪长岩的二阶段Nd模式年龄值为1.75~1.84 Ga,与江南造山带变质基底的二阶段模式年龄(1.65~2.14 Ga)一致。金鸡金矿床花岗岩和花岗闪长岩的岩石地球化学、年代学以及Sr-Nd同位素特征表明二者是华南早古生代陆内造山事件的产物,岩体成因及地球动力学背景的研究将有助于揭示湘东北地区金矿形成的地球动力学机制。  相似文献   

7.
黑龙江太平岭早侏罗世花岗岩成因及壳幔混合作用   总被引:2,自引:0,他引:2  
位于黑龙江省牡丹江一带的太平岭是兴蒙造山带的重要组成部分,在该区广泛分布大量花岗岩。这些花岗岩的SHRIMP锆石U-Pb年龄介于179~204 Ma之间,表明形成于早侏罗世,而非以往认为的晚三叠世。岩体的岩性以花岗闪长岩为主,其中普遍含有细粒闪长质包体,而二长花岗岩-正长花岗岩中偶见细粒闪长质包体。岩石学、岩相学和地球化学研究表明这些花岗岩为壳幔岩浆混合成因。太平岭早侏罗世花岗岩具有比较均一的Sr、Nd、Pb同位素成分,εNd(t)值介于-3.2~+2.3之间,(87Sr/86Sr)i值主要集中在0.704~0.706之间,进一步表明岩石的源区与幔源物质有密切的联系。花岗岩显示火山弧花岗岩的特点,代表了以挤压为主的构造环境,表明岩石可能与古太平洋板块俯冲作用有关。  相似文献   

8.
LA-ICP-MS锆石U-Pb同位素年龄测定表明,组成广西姑婆山花岗岩的东、西岩体和里松岩体的年龄分别为160.8±1.6Ma、165.0±1.9Ma、163.0±1.3Ma,在误差范围内基本一致,说明整个姑婆山岩体是同一时代的产物,是燕山中期第一阶段华南大规模陆壳重熔型花岗岩浆活动的产物。姑婆山花岗岩中的各个岩体虽然形成于同一时代,但它们之间在岩石学、地球化学特征方面有一定的差异。除了主微量元素、稀土元素特征有所不同外,Rb-Sr、Sm-Nd同位素特征研究表明姑婆山西岩体的粗粒花岗岩、东岩体、里松岩体及其包体的平均(87Sr/86Sr)i=0.7064、εNd(t)平均为-3.03,反映它们的源区有较多地幔物质组分参与;而姑婆山西岩体的细粒花岗岩的(87Sr/86Sr)i=0.7173、εNd(t)平均为-5.00,具强烈的Eu亏损、高Rb/Sr值等特征,它的源区可能是由一个相对古老地壳组分和年轻地幔组分组成的混合源区。此外,姑婆山东岩体(GP-1)中发现的继承锆石的206Pb/238U年龄为806.4Ma,与杭州—诸广山—花山花岗岩带(HZH)上的赣北九岭堇青石花岗岩、广西英桥混合花岗岩的年龄相似,为HZH带新元古代的岩浆活动提供了锆石年代学方面的依据。  相似文献   

9.
西藏中部拉萨地块大规模早白垩世花岗岩类的岩浆源区和岩石成因迄今尚未得到很好约束,对这些问题的深入理解将有助于揭示拉萨地块白垩纪时期的岩浆作用过程及成矿背景。本文报道了中部拉萨地块代表性花岗岩基——措勤麦嘎岩基的锆石U-Pb年代学、全岩元素地球化学、Sr-Nd同位素和锆石Hf同位素数据。本文锆石U-Pb定年结果表明,麦嘎岩基花岗质岩主要侵位于122±1Ma和113±2Ma,闪长质包体与后者同期(113±2Ma)。122±1Ma花岗质岩属I型弱过铝质高钾钙碱性系列,(87Sr/86Sr)i值高(0.7147),全岩εNd(t)(-12.0)和锆石εHf(t)(-15.7~-11.1)为较大的负值,表明其很可能来源于古老下地壳物质的重熔。113±2Ma寄主花岗质岩为I型偏铝质-弱过铝质高钾钙碱性系列,相对于122±1Ma花岗质岩石,其(87Sr/86Sr)i比值偏低(0.7094~0.7156)、全岩εNd(t)值(-12.1~-7.3)和锆石εHf(t)值(-11.1~0.1)较高,很可能来源于古老下地壳物质的部分熔融,并含有更多幔源物质。闪长质包体(113±2Ma)为偏铝质中-高钾钙碱性系列,以变化范围大的(87Sr/86Sr)i(0.7058~0.7105)、负的全岩εNd(t)值(-10.7~-9.8)及负的锆石εHf(t)值(-14.0~-5.6)为特征,可能是古老富集岩石圈地幔物质部分熔融的产物或亏损地幔物质经历强烈地壳混染作用的结果。在目前已有资料条件下(缺乏同期基性岩石的相关数据),本文暂将麦嘎岩基113±2Ma寄主花岗质岩及同期闪长质包体解释为镁铁质岩浆与长英质岩浆发生不同程度岩浆混合作用的产物,这一解释可能对中部拉萨地块同期花岗类的岩石成因具普遍意义。麦嘎岩基及中部拉萨地块同期岩浆岩约113Ma幔源物质增加现象,可能是南向俯冲的班公湖-怒江洋壳岩石圈板片断离的结果。  相似文献   

10.
甘肃北山野马泉岩体同位素地球化学特征   总被引:2,自引:0,他引:2  
Nd、Sr、Pb同位素研究结果揭示:甘肃北山野马泉岩体第Ⅰ、Ⅱ侵入阶段花岗岩类具有Ⅰ-型花岗岩的特征,(87Sr/86Sr)i=0.708~0.710,εNd=-2.229~-5.866,在207 Pb/204Pb-206Pb/204Pb构造模式图上其投影点落在造山带演化线附近,在εNd-εSr图解中,其投影点落人Ⅰ-型花岗岩类范围内,其成岩物质为壳幔混合来源。第Ⅲ侵人阶段的岩石成因类型为S-型,其(87Sr/86Sr)i=0.7149~0.7358, εNd=-7.3750~-8.9556。该岩体形成的地球动力学环境是北山陆内碰撞造山带。  相似文献   

11.
摩擦桩基桩土间极限摩阻力取值问题探讨   总被引:1,自引:0,他引:1  
陈银生 《世界地质》1999,18(1):54-59
通过对广珠东线高速公路横沥大桥的试桩及土体的工程地质条件分析,总结出影响摩擦桩基桩土间极限摩阻力取值的一般问题以及解决问题的方法和措施。  相似文献   

12.
从榴辉岩与围岩的关系论苏鲁榴辉岩的形成与折返   总被引:4,自引:1,他引:4       下载免费PDF全文
位于华北和扬子两板块碰撞带中的苏鲁榴辉岩形成的温压条件不但是超高压,而且是高温。榴辉岩的PTt轨迹表明其为陆-陆磁撞俯冲带的产物。榴辉岩的区域性围岩花岗质片麻岩为新元古代同碰撞期花岗岩,榴辉岩及其他直接围岩皆呈包体存在于其中,并见新元古代花岗岩呈脉状侵入榴辉岩包体中。区域性围岩新元古代花岗岩的锆石中发现有柯石英、绿辉石等包裹体,表明新元古代花岗岩的组成物质也经受过超高压变质作用,且榴辉岩与围岩新元古代花岗岩的锆石U-Pb体系同位素年龄基本相同。但新元古代花岗岩所记录的变质作用和变形作用期次(或阶段)却少于榴辉岩。椐上述可得如下推断:超高压榴辉岩与新元古代花岗岩岩浆是同时在碰撞带底部(俯冲板块前部)形成的;榴辉岩的第一折返阶段是由新元古代花岗岩岩浆携带上升的,其第二折返阶段是和新元古代花岗岩一起由逆冲及区域性隆起而上升,遭受剥蚀。  相似文献   

13.
In order to characterise the influence of the heavyrains on the observed landslides during the 1996–1997hydrological cycle, rainfall records for the last 100years are analysed from 104 stations in easternAndalusia. Regarding the amounts of rain recordedbetween October 1996 and March 1997 in the 104stations studied, 31 presented new all-time records;15 presented values that were 80–100% of thepre-1995 record; 49 stations, 80–50%; and 9stations, < 50%. A map has been devised of thesusceptibility of the materials through which thesouth-eastern Andalusian road network crosses,together with an inventory of the damage caused byinstability phenomena on banks and cuttings of theroad network during the winter of 1996–1997. Therelationships between the rainfall during the studyperiod, the damage caused to the road network and thesusceptibility of the materials affected are analysed.The results indicate that there is a clearcorrespondence between the rainfall recorded and thesusceptibility of the materials with the inventorieddamage. It is concluded that the widespread seriousdamage caused in early 1997 to the roads andsurrounding areas in the Alpujarra region and thecoast of the Province of Granada was mainly caused bythe extraordinarily heavy rains. However, considerablyless damage was observed where the susceptibility ofthe terrain is low, thus highlighting the extremeusefulness of terrain-susceptibility maps for riskprevention and territorial planning.  相似文献   

14.
某高速公路下伏煤矿采空区稳定性分析   总被引:10,自引:0,他引:10  
在论述某高速公路下伏砦脖煤矿采空区地质、采矿和工程地质特征的基础上, 进行了稳定性数值模拟分析, 定性与定量地分析与评价了该煤矿采空区的地表变形特征及稳定性。研究结果表明: 该煤矿采空区的变形尚未完成, 对拟建的高速公路将产生很大的危害, 必须采取相应的工程治理措施。   相似文献   

15.
混凝剂处理钻井废泥浆液的研究   总被引:4,自引:0,他引:4  
通过烧杯搅拌实验对混凝剂处理钻井废泥浆液进行研究,从混凝剂适应p H值范围、混凝效果、沉降速度三方面研究比较,找出一种较为理想的混凝剂,并分析了影响混凝剂性能的主要因素,确定了混凝剂的最佳投放剂量。   相似文献   

16.
黄河源区水环境变化及黄河出现冬季断流的原因   总被引:12,自引:0,他引:12  
自1954年有水文观测资料以来,黄河曾在青海省玛多县黄河沿水文站发生过3次断流。本文在分析黄河源区水环境特征及其影响因素的基础上指出,鄂陵湖、扎陵湖的环湖融区调节能力低,当遇到连续干旱、冬季其调节水量不足以维系黄河径流时便会发生断流,这是断流的主因。湖水位降低、开采沙金、过度放牧等自然和人为因素也会对黄河发生断流产生影响。鄂陵湖口附近黄河上修建的水电站开始蓄水,提高了两湖及环湖融区的调节能力,今后黄河冬季出现断流的可能性将大为降低。  相似文献   

17.
International unity is becoming ever stronger in this country owing to an increasing similarity in the development of the cultural environment. This comprises the provision of all the country's republics with a sufficient number of schools, theatres, and other institutions and cultural information media in accordance with the needs of the population. An important part is played by the rise in ‘the general educational level, as well as the level of professional qualifications and skills. Among all the Soviet nations and nationalities, this rise being more rapid among formerly backward peoples. Prominent among the factors of internationalization is the progressive development of the nationalities’ cultural resources, while professional culture is being increasingly brought within the reach of the masses.The implementation of the nationalities policy promotes the all-round development of all Soviet nations and nationalities, their drawing together, the upsurge of the individual capabilities of every Soviet citizen.  相似文献   

18.
正Artemia cysts are an extremely important component of aquaculture diets.It is well established that the cultivation of fish and shellfish derive substantial health and growth advantages when Artemia are included in the diets of the  相似文献   

19.
利用天山南坡科其喀尔冰川3号观测站2009年全年的气象观测资料,分析研究了科其喀尔冰川表碛区的小气候特征. 结果表明:总辐射和净辐射夏秋季较高、冬春季较低;反射辐射和地表反照率反之. 与其他地区不同,该区主要受积雪物理性质和下垫面状况的影响,冬春季地表反照率日变化表现为由大到小的变化过程,夏秋季表现为倒U型. 温度年变化表现为夏秋季高、冬春季低,最高月均值出现在8月,为9.4℃,最低月均值出现在1月,为-9.6℃. 受山谷风和冰川风的影响,全年的风向以西北风和西北偏西风为主,风向的日变化以11:00为界发生转向. 受降水和冰川消融等的影响,比湿夏秋季月均值较大,冬春季月均值较小.  相似文献   

20.
Climate: Is the past the key to the future?   总被引:2,自引:0,他引:2  
 The climate of the Holocene is not well suited to be the baseline for the climate of the planet. It is an interglacial, a state typical of only 10% of the past few million years. It is a time of relative sea-level stability after a rapid 130-m rise from the lowstand during the last glacial maximum. Physical geologic processes are operating at unusual rates and much of the geochemical system is not in a steady state. During most of the Phanerozoic there have been no continental ice sheets on the earth, and the planet’s meridional temperature gradient has been much less than it is presently. Major factors influencing climate are insolation, greenhouse gases, paleogeography, and vegetation; the first two are discussed in this paper. Changes in the earth’s orbital parameters affect the amount of radiation received from the sun at different latitudes over the course of the year. During the last climate cycle, the waxing and waning of the northern hemisphere continental ice sheets closely followed the changes in summer insolation at the latitude of the northern hemisphere polar circle. The overall intensity of insolation in the northern hemisphere is governed by the precession of the earth’s axis of rotation, and the precession and ellipticity of the earth’s orbit. At the polar circle a meridional minimum of summer insolation becomes alternately more and less pronounced as the obliquity of the earth’s axis of rotation changes. Feedback processes amplify the insolation signal. Greenhouse gases (H2O, CO2, CH4, CFCs) modulate the insolation-driven climate. The atmospheric content of CO2 during the last glacial maximum was approximately 30% less than during the present interglacial. A variety of possible causes for this change have been postulated. The present burning of fossil fuels, deforestation, and cement manufacture since the beginning of the industrial revolution have added CO2 to the atmosphere when its content due to glacial-interglacial variation was already at a maximum. Anthropogenic activity has increased the CO2 content of the atmosphere to 130% of its previous Holocene level, probably higher than at any time during the past few million years. During the Late Cretaceous the atmospheric CO2 content was probably about four times that of the present, the level to which it may rise at the end of the next century. The results of a Campanian (80 Ma) climate simulation suggest that the positive feedback between CO2 and another important greenhouse gas, H2O, raised the earth’s temperature to a level where latent heat transport became much more significant than it is presently, and operated efficiently at all latitudes. Atmospheric high- and low-pressure systems were as much the result of variations in the vapor content of the air as of temperature differences. In our present state of knowledge, future climate change is unpredictable because by adding CO2 to the atmosphere we are forcing the climate toward a “greenhouse” mode when it is accustomed to moving between the glacial–interglacial “icehouse” states that reflect the waxing and waning of ice sheets. At the same time we are replacing freely transpiring C3 plants with water-conserving C4 plants, producing a global vegetation complex that has no past analog. The past climates of the earth cannot be used as a direct guide to what may occur in the future. To understand what may happen in the future we must learn about the first principles of physics and chemistry related to the earth’s system. The fundamental mechanisms of the climate system are best explored in simulations of the earth’s ancient extreme climates. Received: 7 November 1996/Accepted: 23 January 1997  相似文献   

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