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1.
苏北榴辉岩中金红石的微量元素地球化学特征   总被引:5,自引:7,他引:5  
本文利用电子探针分析了苏北地区三类榴辉岩中金红石的Nb、Cr和Zr含量,在Zaek et al.(2002)的金红石Nb-Cr图解中,三类榴辉岩的原岩均为镁铁质岩,但它们具有不同的地球化学特征,即(1)小焦G类金红石榴辉岩中金红石的Nb含量最低,平均值为68ppm,而其它两类榴辉岩中金红石的Nb含量较高,平均值介于192~255ppm;(2)蓝晶石榴辉岩具有极高Cr含量,均值6106ppm,而许沟P类榴辉岩中金红石的Cr含量也较高,均值1233ppm,金红石榴辉岩中金红石Cr含量最低,均值为183ppm。利用Zaek et al.(2004)提出的金红石地质温度计,计算得出许沟P类榴辉岩的金红石形成温度介于600~751℃,平均温度689℃;演马厂M类榴辉岩的金红石温度介于507~641℃,平均温度557℃;小焦G类金红石榴辉岩金红石的形成温度介于541~673℃,平均温度613℃;新扬昌G类蓝晶石榴辉岩的金红石形成温度介于541~655℃,平均温度603℃。一种可能的解释是,榴辉岩在拆返过程中退变质作用明显,流体活动强烈,导致金红石中Zr扩散丢失,金红石中Zr含量不同程度地受到角闪岩相退变质过程中再平衡作用的影响,致使计算的温度偏低。  相似文献   

2.
金红石是榴辉岩中的主要含钛副矿物。中国大陆科学钻探工程主孔100-2000m岩心样品中,金红石榴辉岩、多硅白云母榴辉岩和蓝晶石榴辉岩中都程度不等地含有金红石。金红石既可以与其它矿物一起包裹在主要变质矿物中,也可以呈粒间矿物,但在榴辉岩经受角闪岩相退变质作用过程中,金红石亦会退变为榍石。本文利用电子探针除了分析了金红石的主要元素外,还仔细测量了Nb、Cr、Zr含量。结果显示,Nb平均含量为147ppm,最高含量为670ppm,Cr的平均含量为614ppm,最高含量为3630ppm,低Nb特征(<1000ppm)显示榴辉岩原岩为镁铁质岩石;此外,三类榴辉岩也具有不同的金红石Nb、Cr地球化学特征,即金红石榴辉岩中的金红石表现为低Cr(<500ppm)、Nb变化大(0-670ppm)的特征,多硅白云母榴辉岩中的金红石以中等Cr含量(500-1200ppm)、Nb变化较大(0-480ppm)为特征,而蓝晶石榴辉岩中的金红石显著富Cr(2000-3630ppm),而Nb则非常贫乏(<140ppm)。在总共289个金红石Zr含量数据中,大部分Zr含量分布在150-240ppm之间,均值约为200ppm;利用Zacketal.(2004)提出的金红石温度计,计算得到金红石的形成温度介于690℃和7870℃之间。研究结果表明,金红石的微量元素分析是研究榴辉岩原岩特征及其钛成矿作用的实用方法之一。  相似文献   

3.
中国大陆科学钻探主孔100~2000米超高压变质岩中的钛矿化   总被引:14,自引:12,他引:14  
中国大陆科学钻探工程100~2000m的岩心、矿心的观察、编录揭示主要有经济价值的舍钛相是金红石.其次是钛磁铁矿。主要含矿岩石是普通金红石榴辉岩和石英金红石榴辉岩,其次有多硅白云母金红石榴辉岩,蓝晶石金红石榴辉岩,金红石黑云绿帘纤闪石岩(退变的石榴辉石岩)和金红石-含钒钛磁铁矿榴辉岩。划分了四个矿化层位。金红石在矿层中的含量一般为2%~5%(体积),多高达8%~10%。金红石的TiO2含量在95%(重量)以上,多产于石英榴辉岩、多硅白云母榴辉岩中。钛磁铁矿的TiO2含量在49%~55%(重量),钛磁铁矿多见于黄铁矿-金红石-钛磁铁矿榴辉岩(546~608m岩性段)中,含钛磁铁矿5%~25%,石榴单辉橄榄岩(608~683m岩性段),含钛磁铁矿达5%~10%和第三含矿层中局部黑云绿帘角闪岩夹层内,舍钛磁铁矿可达6%。30个榴辉岩和超铁镁质岩中8种主要造岩矿物148个点的电子探针分析结果揭示:榴辉岩可分为壳源和幔源两大类,钛磁铁矿富含V、Ni、Cr说明来自幔源,大部分金红石则来自壳源榴辉岩,它们的原岩是曾经居留地表的基性火成岩,在深俯冲的过程中经超高压变质成为含柯石英的榴辉岩。岩石薄片中金红石和柯石英的假像共存于同一石榴石或绿辉石晶粒中,也见金红石粒内有“柯石英”假象,这清楚说明金红石结晶于超高压的峰期变质阶段,在后继的变质地体隆升过程中,钛磁铁矿和金红石都有退变质成为钛铁矿和榍石的种种岩石记录,因此,退变质作用势必导致钛矿品位的降低。  相似文献   

4.
吕伟 《地质与勘探》2023,59(6):1260-1270
为研究黑河地区金红石微量元素特征及榴辉岩型金红石矿床的成矿地质条件,本文选取滇西澜沧黑河地区榴辉岩、石榴多硅白云母片岩中的金红石进行LA-ICP-MS微量元素分析。结果表明金红石微量元素呈现阶梯式三级分布特征,最富集Nb、Ta,其次是Zr、Hf,含量较少的元素有Ba、Rb、Sr、Th、REE;榴辉岩、榴闪岩类原岩属于变质基性岩类,含蓝晶石榴闪岩原岩属于玄武质凝灰岩类,石榴多硅白云母片岩类原岩属于泥质岩类;榴辉岩中金红石Nb/Ta比值均要高于其全岩Nb/Ta比值,金红石Nb、Ta含量与变质作用过程中元素在各矿物间的分配系数有关;采用金红石Zr含量温度计获得黑河地区榴辉岩的峰期变质阶段金红石形成温度为578~605℃,峰期变质作用后的退变质流体会造成金红石中Zr的再平衡。此外,黑河地区具备榴辉岩型金红石矿床形成的成矿物源、成矿作用的物理化学条件以及成矿的物质基础,有一定的找矿潜力。  相似文献   

5.
常用于测定榴辉岩形成温度的有石榴石-绿辉石Fe-Mg配分温度计和石英-矿物对氧同位素温度计。最近的自然观察和实验测定发现,金红石中的Zr含量与温度之间存在线性关系,因此能够用于变质岩测温。本文首次将这三种温度计用于同一产地榴辉岩及其中的石英脉。对大别造山带黄镇低温超高压榴辉岩中金红石Zr含量的温度计算得到,产于矿物内部金红石Zr含量温度明显地高于粒间金红石Zr含量温度,产于矿物石榴石、绿辉石和黝帘石内部金红石Zr含量温度主要集中在528~589℃之间,而产于粒间金红石的温度主要集中在465~528℃之间。榴辉岩中金红石Zr含量最高的产于石榴石中,但是所计算的温度503~589℃仍然不同程度地低于榴辉岩形成温度670℃。石英脉中金红石Zr含量温度主要集中在465~528℃之间。石英-耐熔矿物对氧同位素温度主要集中在650~695℃之间,表明耐熔矿物石榴石、锆石和蓝晶石在该区榴辉岩中相对其它矿物来说保存最好,退变质作用最弱,因此其氧同位素温度与峰期超高压榴辉岩相变质奈件基本一致。而石英.易熔矿物对温度主要集中在450~510℃之间,与易熔矿物绿辉石、钠云母、斜黝帘石/黝帘石在榴辉岩中蚀变强烈一致,反映了角闪岩相退变质阶段的流体活动。石榴石-单斜辉石Fe-Mg配分温度结果分为三组:795~863℃、629~679℃和468~572℃,其中后两组与金红石Zr含量和石英-矿物对氧同位素测温结果具有可比较性,指示了榴辉岩相变质和角闪岩相退变质过程中的Fe-Mg交换平衡,而第一组温度明显高于已知的榴辉岩相变质温度,表明绿辉石后成合晶导致了部分石榴石与单斜辉石之间的Fe-Mg不平衡。榴辉岩折返过程中的流体活动可能是导致矿物之间元素和同位素扩散交换再平衡或不平衡的基本原因。粒内金红石Zr含量温度仍然不同程度地低于榴辉岩形成温度,可能说明其在进变质过程中形成后相对“孤立”,即使在峰期榴辉岩相条件下也不能与锆石之间达到Zr配分再平衡。粒间金红石Zr含量降低可能与金红石重结晶有关,结果导致它们与锆石之间的Zr配分平衡遭到破坏。  相似文献   

6.
对中国大陆科学钻探(CCSD)主孔200~1005m范围内8件榴辉岩样品的金红石进行了LA-ICPMS原位微区微量元素分析,结合前人已发表的全岩和金红石分析数据,研究结果发现:在不同类型榴辉岩中,金红石的微量元素与其全岩成分具有不同的相关关系。金红石中的Nb和Ta元素含量不同程度地受控于全岩Nb和Ta含量。在高钛和低镁钛榴辉岩中,金红石的Cr与全岩Cr/TiO2正相关;在富镁榴辉岩中,金红石的Cr含量受全岩MgO含量的控制;在高钛和富镁榴辉岩中,全岩成分明显影响着金红石的Zr含量,金红石Zr温度计可能不适用。低镁钛榴辉岩的金红石的平衡温度普遍低于榴辉岩峰期变质温度,可能是变质流体参与下的扩散作用和退变质作用所致;多数情况下,单个样品中大部分金红石颗粒的Zr含量是均匀的,金红石Zr温度计所给出的温度可能代表着退变质再平衡的温度;CCSD榴辉岩的全岩Nb/Ta比值普遍低于其中金红石的Nb/Ta比值,不支持金红石榴辉岩可能是地球上超球粒陨石Nb/Ta比值储库的观点。  相似文献   

7.
松多榴辉岩出露于拉萨地块的石英片岩中,主要由较为基性的金红石榴辉岩和较为酸性的石英榴辉岩组成。榴辉岩相矿物组合为石榴子石 绿辉石 绿帘石±多硅白云母±石英±金红石。岩石发生了较强烈的退变质作用,退变质矿物有角闪石、绿帘石、石英、钠长石及绿泥石。石榴子石变斑晶具有生长环带结构,变斑晶和基质石榴子石主要落入C类榴辉岩区,少数石榴子石变斑晶边部和基质石榴子石落入B类榴辉岩区;单斜辉石主要为绿辉石,少数Ⅰ世代和Ⅲ世代为普通辉石;角闪石均为钙质角闪石。根据石榴子石-绿辉石-多硅白云母矿物温压计计算,获得的温压范围为630~777℃和2.58~2.70GPa,峰期变质条件接近于石英-柯石英转变线。榴辉岩的原岩经历了从高绿片岩相、角闪岩相、榴辉岩相、角闪岩相到高绿片岩相的变质过程,这反映了与古特提斯洋闭合有关的俯冲进变质作用和随后的折返退变质作用。  相似文献   

8.
苏鲁超高压变质带南部的东海地区有富Fe—Ti的钛铁矿榴辉岩和富Ti的金红石榴辉岩。富Fe—Ti榴辉岩的次要矿物主要由钛铁矿和钛磁铁矿组成,可舍少量金红石,具有很低的Si02(38.0%-42.3%)、Na20+K20(0.48%~2.13%)和Zr、Nb、Ta、Ba、1Kb、REE含量,很高的FeO(18.24%-25.33%)、V和Co含量,并具有不同程度的LREE亏损、明显的正Eu异常;富Ti金红石榴辉岩舍有丰富的金红石和磷灰石,SiO2含量范围(38.0%-54.8%)较宽,FeO含量较低,P2O5含量较高(可达4.1%),而X-TiO2与P205含量具正相关性。相对于原始地慢岩.富Ti金红石榴辉岩具有Rb、Th、K、Nb、Pr、Nd、Eu、Ti、Lu的负异常和Ba、Sr、Zr的正异常.并具相对较高的IKEE含量,LREE富集和HREE亏损的1KEE分配型式。岩石学和地球化学特征揭示,Fe—Ti榴辉岩的原岩是变质的Fe—Ti辉长岩,是基性岩浆强烈分离结晶作用形成的超基性-基性-中酸性层状侵入体的特征组成部分。  相似文献   

9.
在对位于苏北榴辉岩分布区的中国大陆科学钻探工程5158m主孔岩芯进行编录、岩矿鉴定及测试的过程中,对主孔岩芯的钛矿化进行了研究。主要有经济价值的含钛相是金红石,其次是钛磁铁矿。主要含矿岩石是普通金红石榴辉岩,石英金红石榴辉岩,金红石/钛铁矿石榴辉石岩,其次有多硅白云母金红石榴辉岩,蓝晶石金红石榴辉岩,金红石黑云绿帘纤闪石岩(退变石榴辉石岩)。根据不同的矿化程度和岩性组合,将整个主孔大致分为三大岩性段: ① 0~2038m:为主孔各类榴辉岩主要产出、钛矿化最好、厚度最大的地段; ② 2038~3597m:为主孔钛矿化贫化、分布零散、厚度较薄的岩性段,含13层矿化视厚度4~37m不等的退变~强退变的榴辉岩,主要围岩是榍石钛铁矿钛磁铁矿黑云角闪长英质片麻岩以及含白钛矿钛磁铁矿二长片麻岩,构造糜棱岩化或碎裂~角砾岩带发育,其中常见大小不等、晶簇状生长的石英方解石脉体和晶洞; ③ 3597m~终孔:主要为糜棱岩化强弱不同的含钛磁铁矿黑云角闪长英质片麻岩和糜棱岩化角闪黑云二长片麻岩夹角闪黑云片岩,无榴辉岩。但在3577~5150m发现了大量富含稀土矿物的脉体。主孔岩石类型主要有6种: 榴辉岩类,榴辉岩质片麻岩,石榴单辉橄榄岩,二长片麻岩和长英质片麻岩,纤闪石化辉石岩,碎裂岩和糜棱岩类。含钛矿物有金红石,钛铁矿,榍石,钛斜硅镁石,白钛矿及少量锐钛矿,板钛矿。矿石类型可分为13类。文章阐述了含钛相矿物学、金红石化学成分及微量元素特征以及金红石的成矿地球化学特征;讨论了超高压变质成矿及钛物质来源于罗迪尼亚超大陆形成后的新元古代裂解事件中的地幔柱的成矿模式。  相似文献   

10.
金红石中锆含量温度计及其微量元素地球化学特征   总被引:1,自引:0,他引:1  
Zack et al.(2004a)、Watson et al.(2006)以及Tomkins et al.(2007)(在2GPa条件下)的金红石中锆含量温度计计算结果显示,徐淮地区中生代侵入杂岩所含榴辉岩类包体所经历的榴辉岩相变质的温度范围分别为776~1099℃(平均898℃)、663~923℃(平均750℃)和714~981℃(平均804℃),这些温度结果可能并非榴辉岩相峰期变质温度;其角闪岩相退变质作用过程中保存的温度范围分别为555~777℃(平均697℃)、541~663℃(平均6170C)和588~714℃(平均667℃),这些结果不能代表角闪岩相退变质再平衡后的温度,而只能代表角闪岩相退变质作用过程中某-阶段的温度.微量元素地球化学特征研究表明,榴辉岩类包体所含金红石中的某些微量元素(如Nb、Ta、Cr、Fe、V等)含量与其原岩有继承和对应关系,其原岩主要为镁铁质岩石;榴辉岩类包体与其寄主岩石中部分高价态/高场强元素(HFSE)呈相互消长的关系.榴辉岩的形成与扬子地块和华北地块之间的俯冲,碰撞作用有关.  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.
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   

14.
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   

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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