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鄂尔多斯盆地与能源矿产有关的一些地球化学研究
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摘要
鄂尔多斯盆地是我国的一个巨型能源矿产聚集盆地,不同时代、不同类型的多种能源矿产同盆共存,为地质工作者从事科学研究提供了一个内容丰富的大型试验场。开展该盆地能源矿产地球化学及相关流体研究,不仅对丰富成藏(矿)理论本身具有重要作用,而且对寻找能源矿产新基地、扩大能源战略储备都有十分重要的意义。本文以国家973项目《多种能源矿产共存成藏(矿)机理与富集分布规律》(2003CB214600)为依托,通过对鄂尔多斯盆地能源矿产地球化学特征的研究获得了以下新的认识。
     1、鄂尔多斯盆地地表元素地球化学场特征与深部构造特征中存在深部流体活动信息和能源矿产成藏(矿)信息。地表元素地球化学分区与能源矿产分布特征密切相关;盆地内壳内高导层和深大断裂为深部流体活动提供了基本条件,中生代以来的构造活动与地表元素地球化学场特征反映了深部流体仍在继续活动;基底断裂控制了多种能源矿产和地球化学场的分布特征;元素地球化学场特征在某种程度上反映出深部流体参与了盆地能源矿产成藏(矿)作用。
     2、基底断裂带和构造活动强的区域,原油中元素组合复杂,并含有深源物质;元素地球化学特征和同位素特征反映部分能源矿产中含有深部流体成分;盆地内油气藏伴生水的物质来源较为复杂,具有多源性;元素地球化学特征显示东胜铀矿的铀源主要来自上地壳,灰白色高岭土化泥质粉砂岩及灰绿色粗砂岩对铀矿的形成具有重要的意义,灰色粗砂岩具有良好的找矿潜力;元素地球化学特征还表明,黑岱沟煤及煤层夹矸中微量元素来源于上地壳。
     3、对能源矿产伴生氯仿沥青A的地球化学特征研究表明,石油沥青与石油具有相似的元素组合特征,反映它们在来源上具有某种程度上的同源性,但是石油沥青中所含的深部流体组分相对较高,且较石油经历了更复杂的后期演化;东胜含铀砂岩沥青主要属外来流体,与含铀砂岩所含的物质组分不具同源性,表明铀源并非由沥青等有机流体提供;各能源矿产中伴生沥青的来源和成因均有差异,表明盆地的流体活动具有多期性,是盆地演化不同阶段的产物:激光拉曼光谱特征显示,氯仿沥青中广泛存在还原性气体C_2H_2,C_2H_6,CH_4,C_2H_4等,其含量与氧化性气体CO_2具有互为消长关系,显示了氯仿沥青的后期改造和氧化-还原条件的变化特征。
     4、能源矿产伴生流体的Q型聚类分析结果反映出石油的贼存层位以及所赋存的构造位置是影响其元素地球化学特征的主要因素:石油伴生水与石油有一定成因联系;陈家山煤层石油可能是石炭二叠系与侏罗系延安组煤成油的混合产物;侏罗系延安组石油和直罗组石油具有相似的流体活动特征和物质来源;侏罗系延安组煤和直罗组煤具有相似的沉积环境和后期演化特征;延安组石油沥青对铀的活化、迁移、富集具有重要作用;天然气伴生水与石油相关性较弱,但与石油沥青和煤沥青具有一定相关关系。
     5、根据地球化学研究成果,提出了一套多种能源矿产成藏成矿标志,并据此标志圈出石油、天然气和煤的共生富集远景区2个,天然气和煤的共生富集远景区2个,石油与煤的共生富集远景区1个,铀矿富集区3个。
Ordos Basin is one of the greatest Energy Mineral Diposits Gathering basins in China. Different epoch and most kinds of Energy Mineral Diposits are concurrent in this one basin, so Ordos Basin becomes a rich large-scale Experimental Site for geologic research activity. Geochemical analysis of the Energy Minerals and the relative fluid research in Ordos Basin becomes very important, not only for enhancing reservoir formation and mineralization theory, but for finding new Energy Minerals base and enlarging energy margin.This thesis depends on the National 973 Projects— "The formational mechanism, accumulation and distributionPatterns for multi-energy mineral deposits coexisting in the same basin(2003CB214605)" , in which, the geochemical characters of Energy Mineral Diposits has been analyzed. It is said:1、 Both of the nature of the geochemical field of surface elements and the feature of the deep structure suggest that there are deep fluid action and energy mineral reservoir formation and mineralization in Ordosie Basin. There is close relationship between the geochemical division and the energy mineral distribution. The intracrustal high conductive layer and the deep great fractures supply the basic condition for deep fluid action in this basin. The nature of the tectogenesis after Mesozoic era and the geochemical field of surface elements suggests that the deep fluid is still moving. The distribution of the Multi-energy Mineral Diposits and the geochemical field is controlled by the basement faults in the basin. In some way, the nature of the geochemical field shows that the deep fluid took part in the energy mineral reservoir formation and mineralization.2、 In zones with the strong tectonic activity and basement faults, the elements combination of petroleum is complex and the material from deep resource can be found in which. The character of elements geochemical and carbon isotope all show that there are deep fluid components in some Energy Minerals. The material source of the water accompanying with petroleum reservoir is complex, and which with multi-sources. The character of elements geochemical shows that the uranium of Dongsheng uran ore comes from the upper crust, the greyish-green gritstone and hoary kaolinised argillaceous siltstone is important for the formation of uranium deposits,and the grey gritstone is great potential to surveying uranium deposits . Which also shows that the trace elements in Heidaigou coal and its dirt are from the upper crust.3、 The geochemistry of Chloroform bitumen "A" accompanying with Energy Mineral Deposits has been studied, and the result said: elements combination of the asphalt is same as the one of petroleum, and the asphalt and the petroleum are with same sources
    in some way, but the deep fluid component in asphalt is relatively high, and even higher than the evolution degree of petroleum undergone in anaphase. Most of the asphalt in Dongsheng sandstone with uranium belongs to foreign fluid, whose source is different from the one of Dongsheng sandstone with uranium, and all of these show that the uranium resource is not this kind of fluid like asphalt. The difference in source and origin of the associated asphalt in energy mineral diposits suggests that the multistage action fluid in Ordosie Basin is the outcome of different stage evolution. The feature of laser Raman spectroscopy hints: The reducibility gas such as C2H2. C2H6, CH?, C2H4 can be found in chloroform asphalt extensively, whose content is growth and decline with the one of oxygenization gas CO2, and all of these show the feather about later reformation and redox condition for the chloroform asphalt.4> The result of Q-clustering analysis on the fluid accompanying with Energy Mineral Diposits says that the formation and the tectonic site the petroleum lying in mainly impact on its element geochemistry. There is some relation between petroleum and its associated water on origin. The petroleum in Chengjiashan coalbed maybe one kind of mixture mixed by the oil coming from the coal of Carbonic-Permian and Jurassic Yanan group. The Yanan group petroleum is with the same fluid activity character and material source as the one of Zhiluo group. Jurassic Yanan group and Zhiluo group are with the similar deposit environment and final evolving feature. The asphalt from Yanan group oil mainly affects on the activation, transportation and beneficiation of the uranium. The associated water with gas is with little dependence on the petroleum, but it correlate with the oil asphalt and the coal asphalt.5> Base on the result of geochemistry study, a set of identification of reservoir formation and mineralization for Multi-energy Mineral Diposits has been brought forward, and base on which, two possible oil-gas-coal intergrowth zones, two gas-coal intergrowth zones, one oil-coal intergrowth zone and three uranium enrichment zones are been marked out.
引文
鲍征宇,李方林,贾先巧.地球化学场时-空结构分析的方法体系[J].中国地质大学学报,1999,24(3):282-286.
    鲍征宇,李金跃,苏江玉等,地球化学场分析方法与油气化探[J].石油勘探与开发,1997,24(6):39-41.
    曹荣龙.地幔流体的前缘研究[J].地学前缘,1996,3(3,4):161-171.
    曹寅.核磁共振氢波谱法研究石油沥青质结构[J].地质实验室,1991.7(2):100-104.
    长春地质学院地球化学教研室.地球化学[M].长春:长春地质学院印刷厂.1981.
    陈俊,王鹤年.地球化学[M].北京:科学出版社.2004.
    陈安定.鄂尔多斯盆地中部混合气的实质[J].石油勘探与开发,2002,29(2):33-38.
    陈安定.陕甘宁盆地中部气田奥陶系天然气的成因及运移[J].石油学报,1994,15(2):1-10.
    陈冰如,钱琴芳,杨亦男等.我国一0七个煤矿样中微量元素的浓度分布[J].科学通报,1985.(1):27-29.
    陈德潜,陈刚.实用稀土元素地球化学[M].北京:冶金工业出版社.1990.
    陈发景,孙家振,王波明.鄂尔多斯西缘褶皱-逆冲断层带的构造特征和找气前景[J].现代地质,1987,1(1):103-112.
    陈法正.鄂尔多斯盆地北部古水文地质条件与铀成矿前景分析[J].铀矿地质,2002,18(5):287-294.
    陈法正.砂岩型铀矿的成矿地质条件与战略选区[J].铀矿地质,2002,18(3):138-143.
    陈沪生.积极开展无机成因油气领域的调查[J].石油实验地质,1998,20(1):1-4.
    陈建平,张爱云,丁同福.鄂尔多斯盆地中西部马家沟组碳酸盐岩不同沉积相有机地球化学特征[J].新疆石油学院学报,2003,15(3):1-4
    陈建渝,朱芒征.含油气系统与有机地球化学的关系[J].石油与天然气地质,1999,20(3):246-249.
    陈骏,王鹤年.地球化学[M].北京:科学出版社.2004.
    陈晓东,王先彬.压力对有机质成熟和油气生成的影响[J].地球科学进展,1999.14(1):31-36.
    陈荫祥.从深部地质结构着眼,开发塔里木油气资源[J].石油与天然气地质,1985,6(增刊):34-355.
    陈远荣,戴塔根,贾国相,等.金属矿床有机烃气常见异常模式和成因机理研究[J].中国地质,2001,28(4):32-37
    陈中凯,金玺励.天然固体沥青的有机岩石学特征[J].煤田地质与勘探,1995,23(4):18-22.
    储雪蕾.地幔的碳同位素[J].地球科学进展,1996,11(5):447-452.
    崔永强,李莉,陈卫军.松辽盆地无机成因烃类气藏的幔源贡献[J].大庆石油地质与开发,2001,20(4):6-8.
    代世峰,煤中伴生元素的地质地球化学习性与富集模式[D].北京:中国矿业大学.2002.
    戴春森,宋岩,戴金星.中国两类无机成因CO_2组合 脱气模型及构造专属性[J].石油勘探与开发,1996,23(2):1-5
    戴春森,宋岩等.黄骅坳陷多成因CO_2的判识及混合模型[J].石油勘探与开发,1994,21(4):23-29.
    戴金星,宋岩,戴春森等.中国东部无机成因气及其气藏形成条件[M].北京:科学出版社.1995.
    戴金星,夏新宇,秦胜飞等.中国有机烷烃气碳同位素系列倒转的成因[J].石油与天然气地质,2003,24(1):1-6.
    戴金星.概论有机烷烃气碳同位素系列倒转的成因问题[J].天然气工业,1990,10(6):15-20.
    邓军,陈学明,饶轶群等.南岭地区两种类型盆地的压实流体系统及其矿化作用[J].现代地质,2004,18(1):1-7.
    邓平.微量元素在油气勘探中的应用[J].石油勘探与开发,1993,20(1):27-32.
    邓起东,刘百篪,张培震.活动断裂工程安全评价和位错量的定量评估[A].见:国家地震局地质研究所编.活动断裂 研究(2)[A].北京:地震出版社.1992.236-246.
    狄永强.试论鄂尔多斯北部中新生代盆地砂岩型铀矿找矿前景[J].铀矿地质,2002,18(6):340-347.
    邸领军,张东阳,王宏科.鄂尔多斯盆地喜山期构造运动与油气成藏[J].石油学报,2003,24(2):34-37.
    丁巍伟,侯路.鄂尔多斯盆地上古生界天然气是否有幔源气[J].天然气工业,2005,25(2):6-9.
    丁燕云,李占奎.中国北部深层构造之我见[J],物探与化探,2002,24(1):17-22.
    丁燕云.鄂尔多斯盆地北部航磁反映的构造特征[J].物探与化探,2002,24(3):197-202.
    丁振举,姚书振,刘丛强等.东沟坝多金属矿床喷流沉积成矿特征的稀土元素地球化学示踪[J].岩石学报,2003,19(04):792-798.
    董申保.地壳物质组分的共生组合法则[J].地学前缘,1998,5(3):59-66.
    窦廷焕 肖达先 董雅琴,等.神府东胜矿区煤中微量元素初步研究[J],煤田地质与勘探,1998,26(3):11-15.
    杜佰伟,谭富文,王剑.羌塘盆地最大规模沥青脉的发现及其意义[J].沉积与特提斯地质,2003.4(1):69-74.
    杜建国,刘连柱,康春丽.地震活动中地壳深部流体的作用研究进展[J].地球科学进展,1997,12(5):416-421.
    杜乐天.盆地矿套[J].国外铀金地质,2002,19(3):140-146.
    杜乐天.烃碱流体地球化学原理—重论热液作用与岩浆作用[M].北京:科学出版社.1996.
    杜乐天主编.地幔流体与软流层(体)地球化学[M].北京:科学出版社.1996.
    段菁春,庄新国,何谋春.不同变质程度煤的激光拉曼光谱特征[J].地质科技情报 2002,21(2):65-68.
    方国庆,王多云,林锡祥等.陕甘宁盆地中部东西向构造带的确定及其聚气意义[J].石油与天然气地质.1999,20(3):195-202.
    冯福凯,王庭斌,张士亚,等.中国天然气地质[M].北京:地质出版社,1995.
    符晓.开展深源成油油气藏的研究[J].石油实验地质,1988,10(2):102-105.
    付锁堂,冯乔,张文正.鄂尔多斯盆地苏里格庙与靖边天然气单体碳同位素特征及其成因[J].2003,21(3):528-533.
    傅家谟,贾荣芬,刘德汉等.碳酸盐有机地球化学在石油、天然气、煤和层控矿床成因及评价中的应用[M].北京:科学出版社.1989.
    傅家谟.碳酸岩有机地球化学[M].北京:科学出版社.1989.
    高波,陶明信,王万春,深部热流体对油气成藏的影响[J].矿物岩石地球化学通报,2001,20(1):30-34.
    高峰,王岳军,刘顺生.利用磷灰石裂变径迹研究鄂尔多斯盆地西缘热历史[J].大地构造与成矿学,2000,24(1):87-91.
    高山,金振民.下地壳拆沉作用及大陆地壳演化[J].高校地质学报,1998,4(3):241-247.
    高志农,胡华中.高压对天然沥青结构组成演变的影响[J].沉积学报,2002,20(3):499-504.
    高志农.天然沥青的结构组成、成因类型及开采[D].武汉:武汉大学:1999.
    葛碧如,滕吉文,郑新江,等.热红外遥感鄂尔多斯高原隐伏地质构造[J].地球物理学进展,1996,11(2):16-34.
    龚庆杰,向运川,张荣华.地球化学场分形维数的计算方法及其C++函数实现[J].矿床地质,2002,21(增刊)1136-1139.
    顾雪祥,王乾,付绍洪等.分散元素超常富集的资源与环境效应:研究现状与发展趋势[J].成都理工大学学报.2004,31(1):15-21.
    关德师,张文正,裴戈.鄂尔多斯盆地天然气源与富集的主要控制因素初探[J].石油与天然气地质,1993,14(3):191-199.
    郭德方,叶和飞.油气资源遥感[M].杭州:浙江大学出版社,1995.
    郭汝泰,肖贤明,王建宝.塔里木盆地轮南下奥陶统沥青的发现及其意义[J].新疆石油地质,2002,23(1):21-24.
    郭占谦,王先彬.松辽盆地非生物成因气的探讨[J].中国科学(B),1994,24(3):303-305.
    郭占谦,杨步增,李星军.松辽盆地无机成因气藏模式[J].天然气工业,2000.20(6):30-33.
    郭占谦.火山活动与油气资源[J].新疆地质,2003,24(2):176-179.
    马丽芳等.中国地质图集,地质出版社,2002
    马杏垣主编.中国岩石圈动力学地图集[M].北京:中国地图出版社.1989.
    国家地震局地学断面编委会.上海奉贤至内蒙古阿拉善左旗地学断面[M].北京:地震出版社.1992.
    国家地震局地质研究所,国家地震局兰州地震研究所.祁连山-河西走廊活动断裂系[M].北京:地震出版社.1993.
    国家地震局鄂尔多斯活动断裂系课题组.鄂尔多斯活动断裂系[M].北京:地震出版社.1988.
    国家地震局兰州地震研究所.陕甘宁青四省(区)强地震目录(公元1177-1982)[M].西安:陕西科学技术出版社.1985.
    何厚强.论区域地球化学场的结构性及其在异常评价中的意义[J].有色金属矿产与勘查,1997,6(增刊):49-51.
    何谋春,吕新彪,王群英.有机包裹体的拉曼光谱测定[J].石油实验地质,2002,24(2):181-186.
    何自新,付金华.苏里格大气田成藏地质特征[J].石油与天然气地质,2003.24(2):6-12.
    赫英,王定一,冯有良等.胜利油田火山岩中的流体包裹体成分及其意义[J].地球化学,1996,25(5):469-474.
    赫英,王定一,廖胜利.胜利油田火山岩类、盆地演化及其CO_2-Au成藏效应[J].地质科学,2001b,36(4):454-464.
    赫英,王定一,祝总祺等.胜利油田非气藏区火山岩的含金性及其意义[J].矿床地质,1995,14(3):291-292.
    赫英,张战军,毛景文等.初论郯庐断裂的成藏成矿效应[J].大地构造与成矿学,2002,26(1):10-15.
    赫英.1999.胜利油田边缘及外围找寻不同类型深部天然气的可能性[J].地质论评,45(1):32-36.
    赫英.比较矿床学导论[M],西安,西北工业大学出版社,1996,1-30.
    侯启军,杨玉峰.松辽盆地无机成因天然气及勘探方向探讨[J].天然气工业,2002,22(3):5-10.
    胡瑞忠,李朝阳,倪师军,等.华南花岗岩型铀矿床成矿热液中ΣCO_2来源研究.中国科学(B),1993,23(2):189-196.
    黄福堂.油田地层水中微量金属元素的组成与分布特征研究[J].国外油田油田工程,1998,6:19-21.
    黄汲清.鄂尔多斯盆地西沿的大地构造轮廓和寻找石油的方向[J].地质学报,1955,35(1):23-39.
    黄汲清等,中国大地构造及其演化[M],北京:科学出版社,1980.
    黄籍中,冉隆辉.四川盆地震旦系灯影灰岩黑色沥青与油气勘探[J].石油学报,1989,10(1):27-36.
    黄志龙,高岗,庞雄奇等,鄂尔多斯盆地北部盒8段古含气范围的地球化学特征[J].现代地质,2004,18(4):272-577.
    贾进斗,何国琦,李茂松等.鄂尔多斯盆地基底结构特征及其对古生界天然气的控制[J].高校地质学报,1997,3(2):144-153.
    贾荣芬,刘德汉,丁祖国.我国沥青中的稀土元素分布及其环境意义[J].地球化学,1994,23(2):146-153.
    江娃利,肖振敏,谢新生.鄂尔多斯块体周边正倾滑活动断裂历史强震地表破裂分段[J].地震学报,2000,22(5):517-526.
    姜峰,杜建国,王万春等.高温高压模拟实验研究(Ⅰ):温压条件对有机质成熟作用的影响[J].沉积学报,1998,16(3):153-155,160.
    姜峰,杜建国,王万春等.高温高压模拟实验研究(Ⅱ):高温高压下烷烃产物的演化特征[J].沉积学报,1998,16(4):145-149.
    蒋涛,陈浙春.烃类垂向微渗漏及其地表异常显示[J].物探与化探,2003,27(2):93-96.
    解光新.2003.陕西彬县大佛寺D4钻孔勘察地球化学研究[J],煤田地质与勘探,31(4):5-9.
    解国爱,张庆龙,郭令智.鄂尔多斯盆地西缘和南缘古生代前陆盆地及中央古隆起成因与油气分布[J].石油学报,2003,24(2):18-23,29.
    解习农.中国东部中新生代盆地形成演化与深部的耦合关系[J].地学前缘,1998,5(增刊):162-163.
    金奎励,陈中凯.我国某些天然固体沥青的岩石学研究[C].见:第四届全国有机地球化学会议论文集[A].北京:石油工业出版社.1991.38-96.
    金之钧,杨雷,曾溅辉等.东营凹陷深部流体活动及其生烃效应初探[J].石油勘探与开发,2002,25(2):42-44.
    金之钧,张刘平,杨雷等.沉积盆地深部油气流体的地球化学特征及成藏效应初探[J].地球科学,2002,27(5):659-665.
    康南昌,贾进斗.大同-环县大型韧性剪切带之构造特征及其与油气的关系[J].石油地震地质,1991,9(2).
    赖晓玲,李松林,张先康等.玛沁-兰州-靖边剖面壳幔复杂性的研究[J].地球物理学进展.2001,16(2):65-72.
    黎绍杰.油气地球化学场中的吸附相态汞特征及其应用价值[J].矿产与地质,1988(4):281-286.
    黎彤.地球和地壳的化学元素丰度[M].北京:地质出版社,1990.
    黎彤.中国陆壳及其沉积层和上陆壳的化学元素丰度[J].地球化学,1994,23(2):140-145.
    李怀渊,张守鹏,李海明.铀-油相伴性探讨[J].地质论评,2000,46(1):355-361.
    李慧莉,邱楠生,金之钧等.塔里木盆地克拉2气田储层流体包裹体与油气成藏研究[J].沉积学报,2003,21(4):648-653.
    李家熙.吴功建.中国生态环境地球化学图集[M].北京.地质出版社,1999.
    李景贵,张谦,崔明中等.鄂尔多斯盆地中部气田马五段气源岩地球化学特征[J].天然气工业,1998,18(5):17-21.
    李隆滟,何千里,俞惠隆.鄂尔多斯盆地马家沟组储气层的裂缝发育特征[J].江汉石油学院学报,1995,17(1):17-24.
    李明诚.地壳中的热流体活动与油气运移[J].地学前缘,1995,2(3-4):155-162.
    李清河,郭守年,吕德徽,鄂尔多斯西缘与西南缘深部结构与构造[M].北京:地震出版社 1999.12-213.
    李清林,张文玉,张晓普,张瑞敏.鄂尔多斯及其周缘的地热分布特征[J].山西地震,1997,(1-2):122-123.
    李荣西.九十年代煤系烃源岩研究新进展[J].地质科技情报,2000,19(4):55-59.
    李胜荣,高振敏.湘黔地区牛蹄塘组黑色岩系稀土特征—兼论海相热水沉积岩稀土模式[J].矿物学报,1995.15(2):225-229
    李思田.沉积盆地的动力学分析—盆地研究领域的主要趋向[J].地学前缘,1991,2(3-4):1-8.
    李松林,张先康,张成科等.玛沁-兰州-靖边地震测深剖面地壳速度结构的初步研究[J].地球物理学报.2002,45(2):211-217.
    李贤庆,侯读杰,柳常青等.鄂尔多斯中部气田下古生界水化学特征及天然气藏富集区判识[J].天然气工业,2002,22(4):10-14.
    李贤庆,侯读杰,张爱云等.鄂尔多斯中部奥陶系水溶烃的分子地球化学特征[J].2002,20(4):710-715.
    李贤庆,胡国艺,李剑等.鄂尔多斯盆地中部气田天然气混源的地球化学标志与评价[J].地球化学,2003,32(3):282-290
    李志宏.油气田上微量金属元素异常的相关分析[J].郑州大学学报,1994,26(4):45-48.
    李智民,赵文科,苏玉芳等.鄂尔多斯盆侏罗纪坳陷湖泊的淤浅机制和聚煤作用[M],北京:地质出版社,1992.
    梁恕信,鄂尔多斯及周缘深部构造特征[R],兰州地震研究所,1989.
    林峰,王廷栋,代鸿鸣等.四川盆地碳酸盐岩储层中固体运移沥青的性质和成因[J].矿物岩石地球化学通报,1998,17(3):174-178.
    林中洋.中国地学大断面Ⅳ号断面深地震测深剖面的编制说明[J].地震出版社,1989.
    刘宝宪,张军,章贵松等.鄂尔多斯盆地中东部奥陶系裂缝体系特征[J].天然气工业,2002,22(6):35-38.
    刘池洋,谭成仟,孙卫等.多种能源矿产共存成藏(矿)机理与富集分布规律研究[A].盆地多种能源矿产共存富集成藏(矿)研究现状[C].2005:1-16
    刘池洋,赵重远,杨兴科.活动性强、深部作用活跃-中国沉积盆地的两个重要特点[J].石油与天然气地质,2000,21(1):1-6,23.
    刘大锰,金奎励,王凌志.塔里木盆地志留系沥青砂岩的特性及其成因[J].现代地质,1999.13(2):169-175.
    刘大锰,毛鹤龄,金奎励.前油沥青的成因类型及其形成机理[J].中国矿业大学学报,1996,25(1):66-72.
    刘德汉,林茂福.碳沥青中几种钒、镍矿物的发现和成因讨论[J].中国科学(B),1983.(4):935-939.
    刘德汉.碳酸盐生油岩中沥青变质程度和沥青热变质实验[J].地球化学,1982.42(3):237-243.
    刘德汉.碳酸盐中的沥青在研究油气生成演化和金属矿床成因中的应用[A].见:有机地球化学论文集[C].北京:科学出版社.1986.133-138.
    刘桂建,彭子成,杨萍玥等.煤中微量元素富集的主要因素分析[J].煤田地质与勘探,2001,29(4):1-4.
    刘桂建,王桂梁,张威.煤中微量元素的环境地球化学研究[M].徐州:中国矿业大学出版社,1999.
    刘和甫,陆伟文,王玉新.鄂尔多斯西缘冲断褶皱带形成与形变[A].杨俊杰主编.鄂尔多斯盆地西缘逆冲带构造与油气[C].兰州:甘肃科学技术出版社.1990,54-75.
    刘建明,赵善仁,刘伟.成矿地质流体体系的主要类型[J].地球科学进展,1998,13(2):161-165.
    刘洛夫,方家虎,王鸿燕.塔里木盆地志留系沥青砂岩岩石学特征及其意义[J].西安石油学院学报,2001,16(1):16-22.
    刘洛夫,赵建章,张水昌等.塔里木盆地志留系沉积构造及沥青砂岩的特征[J].石油学报,2001,22(6):11-18.
    刘少峰,杨士恭.鄂尔多斯盆地西缘南北差异及其形成机制[J].地质科学,1997,32(3):397~408.
    刘文汇,张殿伟,高波等.天然气来源的多种途径及其意义[J].石油与天然气地质,2005,26(4):393-401.
    刘文汇.过渡带成烃地球化学场分析-以济阳坳陷生物2热催化过渡带气为例[J].石油实验地质,2001,23(3):272-277
    刘文汇.试论成烃的地球化学场[J].石油实验地质,2000,22(1):1-8.
    刘小薇,程克明.微量元素在煤成烃研究中的应用[J].石油勘探与开发,1995,22(5):40-44.
    卢新卫,雒昆利,王丽珍,.陕西渭北聚煤区原煤的微量元素组成特征[J].吉林大学学报,2003,33(2):178-182.
    罗立强,孙青,詹秀春.中国大陆科学钻探主孔0-2000米流体剖面及流体地球化学研究[J].岩石学报,2004,20(1):185-191.
    罗志立.地裂运动与中国油气分布[M].北京:石油工业出版社.1992.
    马润勇,彭建兵,门玉明.确定地震破裂带长度的新方法[J].西北大学学报,2005,35(3):339-341.
    马杏垣,刘昌铨,刘国栋,江苏响水至内蒙古满都拉地学断面[J].地质学报,1991,(3):199-215
    马宗晋,陈鑫连,叶叔华,等.中国大陆现今地壳运动的GPS研究[J].科学通报,2001,46(13):1118-1120.
    毛景文,李荫清.河北省东坪碲化物金矿床流体包裹体研究:地幔流体与成矿关系[J].矿床地质,2001,20(1):24-36.
    梅建庭.风化煤对电镀废水中Pb~(2+) Cu~(2+) Ni~(2+) Zn~(2+)的吸附与解吸[J].材料保护,2000,33(6):15-16.
    孟元林,肖丽华,殷秀兰等.渤海湾盆地文安斜坡高温热流体活动与油气藏形成.岩石学报[J],2003,19(2):337-347.
    内蒙地矿局,内蒙古自治区区域地质志[M].北京:地质出版社.1991.
    宁夏地矿局,宁夏区域地质志[M].北京:地质出版社,1990.
    牛树银,罗殿文,叶东虎,等.幔枝构造及其成矿规律[M].北京:地质出版社,1996.
    潘爱芳,赫英,黎荣剑.鄂尔多斯盆基底断裂与能源矿产成藏成矿的关系[J].大地构造与成矿学,2005,29(4):459-464.
    潘爱芳,赫英,马润勇.沥青的研究现状及其在多种能源矿产共存研究中的意义[A].盆地多种能源矿产共存富集成藏(矿)研究现状.2005:152-163.
    潘爱芳,赫英,马润勇.鄂尔多斯盆地地表元素地球化学场与能源矿产关系初探[J].石油与天然气地质,2004,25(6):629-633.
    潘爱芳,赫英,马润勇.鄂尔多斯盆地基底断裂及其对水土流失的控制作用[J].水土保持研究,2006(待刊).
    潘爱芳,赫英,徐宝亮,黎荣剑.鄂尔多斯盆基底断裂地球化学特征研究[J].西北大学学报(自然科学版),2005b,35(4):440-444
    潘长春,肖中尧.沥青质脱附烃地球化学特征及其意义[J].中国科学(D辑),1997,27(5):453-456.
    彭建兵,毛彦龙,范文,等.区域稳定性动力学研究[M].北京:科学出版社,2001.
    钱丽君,白清昭等.陕西北部侏罗纪含煤地层及聚煤特征[J].西安:西北大学出版社,1987:128-167.
    屈健鹏.鄂尔多斯块体西缘及西南缘深部电性结构与该区地质构造的关系[J].内陆地震,1998,12(4)312-319.
    任德贻,许德伟,赵峰华等.沈北煤田第三纪褐煤中微量元素分布特征[J].中国矿业大学学报,1999a,28(1):5-81.
    任德贻,赵峰华,张军营等.煤中有害微量元素富集的成因类型初探[J].地学前缘,1999b,6(增刊):17-221.
    任文军,张庆龙,张进,等.鄂尔多斯盆地中央古隆起板块构造成因初步研究[J].大地构造与矿,1999,23(2):191-196.
    任战利.利用磷灰石裂变径迹法研究鄂尔多斯盆地地热史[J].地球化学学报,1995,38(3):339-349.
    任战利.中国北方沉积盆地构造热演化史研究[M].北京:石油工业出版社.1999.
    山西地矿局,山西省区域地质志[M].北京:地质出版社,1989.
    陕西地矿局,陕西省区域地质志[M].北京:地质出版社,1989.
    尚慧云.有机地球化学和荧光显微镜技术[M].北京:石油工业出版社.1990.
    施继锡,余孝颖,王华云.古油藏、沥青及沥青包裹体在金属成矿研究中的应用[J].矿物学报,1995.15(2):117-122.
    宋党育,秦勇,王文峰.电厂燃煤中有害微量元素的燃烧迁移行为研究[J],中国矿业大学学报,2003,32(3):316-320
    孙长青,赵克斌,陈昕华.勘查鄂尔多斯盆地中部油气聚集区带地球化学特征研究[J].地质与勘探,2003,9(6):46-48
    孙丰月,石准立.胶东金矿地质及幔源C-H-O流体分异的成岩成矿[M],吉林人民出版社.1995.
    孙明良,陶明信,徐永昌等.中国含油气盆地天然气中氦同位素分布的构造地球化学特征[A].中国科学院兰州地质研究所气体地球化学国家重点实验室研究年报(1990-1992)[C].兰州:甘肃科学技术出版社,1993:199-206.
    孙樯,谢鸿森,郭捷.地球深部流体与油气生成及运移浅析[J].地球科学进展,2000,15(3):283-288.
    孙少华,李小明,龚革联等.鄂尔多斯盆地构造热事件研究[J].科学通报,1997,42(3):306-309.
    孙永传,陈红汉,李意生等.莺-琼盆地YAB-1气田热流体活动与有机/无机成岩响应[J].地球科学,1995,20(3):276-282.
    孙占学.相山铀矿田铀源的地球化学证据[J],矿物学报,2004.24(1):19-24
    汤锡元,郭忠铭,等.陕甘宁盆地西缘逆冲推覆构造及油气勘探[M].西安:西北大学出版社,1992.1-156.
    汤锡元,郭忠铭,王定一.鄂尔多斯盆地西部逆冲推覆构造特征及其演化与油气勘探[J].石油与天然气地质,1988,9(1):1-10.
    汤锡元,徐黎明,卢金城等.陕甘宁盆地及其周缘地区结晶基底及深部地质研究[J].长庆石油勘探局,1993.
    汤显明,惠斌耀.鄂尔多斯盆地中央古隆起与油气聚集[J].石油与天然气地质,1993,14(1):64-71.
    汤玉平,丁相玉,吴向华等.中国主要含油气盆地区域地球化学场参数特征及其成因研究[J].石油勘探与开发,2001,28(3):1-4.
    唐修义,黄文辉等.中国煤中微量元素[M].北京:商务图书馆.2004.
    陶明信,沈平,徐永昌等.苏北盆地幅源氦气藏的特征与形成条件[J].天然气地球科学,1997,8(3):1-8.
    腾格尔,刘文汇,徐永昌等.缺氧环境及地球化学判识标志的探讨[J].沉积学报 2004,22(2):365-372
    田在艺.鄂尔多斯盆地西缘地质构造与油气前景[A].鄂尔多斯盆地西缘掩冲带构造与油气[M].兰州:甘肃科学出版社,1990.31-39.
    涂光炽.成煤、成油、成气、成盐和成金属矿之间的关系[J].有色金属矿产与勘查,1994,3(1):1-3.
    涂光炽.地学走向何方[J].铀矿地质,1995,11(6):321-326.
    万丛礼,付金华,杨华等.鄂尔多斯盆地上古生界天然气成因新探索[J].天然气工业,2004,24(8):1-3.
    王凤国.鄂尔多斯盆地杭锦旗地区油气化探特征及含油气远景评价[J].物探与化探,2003,27(2):104-114.
    王家映编,地球物理学[M],中国地质大学出版社.1988.
    王丽君,徐九华,谢玉玲.地幔岩流体包裹体的稀土元素初步研究[J].矿物岩石地球化学通报,2002,21(4):268-271.
    王守德,郑冰,荣立国.中国南方古油藏与油气评价[J].海相油气地质,1997,2(1):44-50.
    王嗣敏,金之钧,解启来.塔里木盆地塔中45井区碳酸盐岩储层的深部流体改造作用[J].地质论评,2004,50(5):543-547.
    王庭斌.近纪以来中国构造演化特征与天然气田的分布格局[J].地学前缘.2004,11(4):403-415.
    王同和.华北克拉通中腰位向构造带的特征及演化[J].山西地质.1992,7(3):301-312.
    王同和.晋陕地区地质构造演化与油气聚集[J].华北地质矿产杂志.1995,10(3):283-398.
    王先彬.地球深部来源的天然气[J].科学通报,1982,27(17):1067-1071.
    王一刚,刘志坚,文应初.川东石炭系储层有机包裹体、储层沥青与烃类运聚关系[J].沉积学报,1996,14(4):77-83.
    王屿涛.准噶尔盆地西北绿五-八区油气分布规律及成因[J].石油学报,1994,15(4):40-48.
    王云鹏,耿安松,刘德汉.鄂尔多斯盆地地表烃类的遥感探测研究[J].天然气工业.1999,19(6):17-20.
    王云鹏,耿安松,刘德汉..尔多斯盆地晚白垩世以后是否存在构造热事件[J].海相油气地质.2000,5(1):167-171.
    王运泉,莫洁云,任德贻.梅田矿区岩浆热变煤中微量元素分布特征[J].地球化学,1999,28(3):289-296.
    王震亮,陈荷立,王飞燕等.鄂尔多斯盆地中部上古生界天然气运移特征分析[J].石油勘探与开发,1998,25(6):1-4.
    王震亮,陈荷立.鄂尔多斯盆地中部上古生界古流体动力分析[J].沉积学报,1998,12(4):105-108.
    王震亮,张立宽,孙明亮,等.鄂尔多斯盆地神木)榆林地区上石盒子组0石千峰组天然气成藏机理[J].石油学报.2004,25(3):37-43.
    王震亮,张立宽,孙明亮等.鄂尔多斯盆地神木-榆林地区上石盒子组 石千峰组天然气成藏机理[J].石油学报,2004,25(3):37-43
    王子军,梁文杰,阙国和等.钉离子催化氧化研究胜利减压渣油组分的化学结构[J].石油学报(石油加工),1997,13(4):1-9.
    魏东岩,刘振敏,邓小林等,鄂尔多斯盆地奥陶纪蒸发岩系有机地球化学研究[J].化工矿产地质,2000,22(3):129-138
    魏菊英,王关玉.周位素地球化学[M].北京:地质出版社,1988.
    魏永佩王毅鄂尔多斯盆地多种能源矿产富集规律的比较[J].石油与天然气地质,2004,25(4):385-392.
    文百红,林蓓,刘显阳.油气微渗漏组分的赋存形态及其油气指示性[J].石油勘探与开发,2001,28(1):43-47.
    文志刚,张爱云.鄂尔多斯盆地奥陶系碳酸盐岩沥青A和沥青C的生物标志物特征现代地质[J],1997,11(2):197-202.
    吴根耀.盆地研究的活动论构造观[J].石油实验地质,1998,20(4):309-318.
    吴士清,冯加良.浙西康山可燃有机岩矿脉的实质与成因[J].海相油气地质,1997,2(2):52-59.
    吴征,杨元初,王新红.鄂尔多斯盆地下奥陶统原生-同层沥青分析[J].天然气工业,1999:19(6):14-17.
    武汉地质学院地球化学教研室.地球化学[M].北京:地质出版社.1979.
    席胜利,郑聪斌,李振宏.鄂尔多斯盆地西缘奥陶系地球化学特征及其沉积环境意义[J].古地理学报,2004,6(2):196-205
    夏新宇,洪峰,赵林.鄂尔多斯盆地下奥陶统碳酸盐岩有机相类型及生烃潜力[J].沉积学报,1999,17(4):638-643.
    夏新宇.碳酸盐岩生烃与长庆气田气源[M].北京:石油工业出版社.2000.
    肖金凯.固体沥青的微波介电特性研究[J].地球化学,1983.(1):24-31.
    肖贤明,刘德汉,傅家漠.沥青反射率作为烃源岩成熟度指标的意义[J].沉积学报,1991,9(增刊):138-146.
    肖贤明,刘德汉,傅家漠等应用沥青反射率推算油气生成与运移的地质时间[J].科学通报,2000a,45(19):2123-2127.
    肖贤明,刘祖发,刘德汉等.含油气盆地成烃史恢复新方法:地质地球化学剖面法[J].科学通报,2000b,45(增刊):2725-2730.
    谢鸿森.地球深部物质科学导论[M].北京:科学出版社.1997.
    谢增业,胡国艺,李剑.鄂尔多斯盆地奥陶系烃源岩有效性判识[J].石油勘探与开发,2002,29(2):29-32.
    徐常芳.地壳内高导层成因、高温高压下卤水物态及其电导率(二)[J].地震学报,1996,18(3):252-357.
    徐常芳.壳内流体演化及地震成因[J].地震学报,1997,19(2):139-144.
    徐常芳.深部流体在地震孕育和发生过程中的作用[J].华南地震,2002,22(3):1-10.
    徐常芳.中国大陆岩石圈结构、盆地构造和油气运移探讨[J].地学前缘,2003,10(3):115-127.
    徐冠军,张大江,王培荣.用沥青质中生物标志化合物判识生物降解油的油源[J].科学通报,2003,48(4):400-404.
    徐克定,金梅春,周光拥.浙西古油藏成藏条件与演化特征[A].见:石宝珩主编,扬子海相地质与油气[C].北京:石油工业出版社.1993.277-285.
    徐伟民.下扬子地区海相中、古生界热演化和油气前景[J].石油勘探与开发,1991,18(2):25-32.
    徐永昌,沈平,刘文汇等.东部油气区天然气中幔源挥发份的地球化学-Ⅱ.幔源挥发份发份中的氦、氩及碳化合物[J].中国科学(B),1996,26(2):187-192.
    徐永昌.天然气中的幔源稀有气体[J].地学前缘,1996,3(3-4):63-71.
    许志琴.中国大陆科学钻探工程主孔研究的初步进展.国家973基础科研项目《大陆板块会聚边界的地幔动力学与现代地壳作用》简报,2004,(1).1-4
    鄢明才,迟清华,顾铁新.中国东部地壳元素丰度与岩石平均化学组成研究[J].物探与化探,1997,21(6):451-459.
    杨斌,陈克迅.塔里木盆地主要生油层系评价及生油期研究初探[A].见:中国含油气盆地烃源岩评价[C].北京:石 油工业出版社.1989.55-160.
    杨殿忠,于漫.铀有机地球化学研究进展[J].地质与资源,2001,(04):48-52.
    杨金中,沈远超,赵玉灵.初论深部流体与成矿作用[J].黄金科学技术,1998,6(4):1-7.
    杨俊杰,张伯荣.鄂尔多斯盆地西缘掩冲构造带的基本特征[A].见:杨俊杰主编.鄂尔多斯盆地西缘逆冲带构造与油气[M].兰州:甘肃科学技术出版社,1990,91~105.
    杨俊杰.鄂尔多斯盆地构造演化与油气分布规律[M].北京:石油工业出版社,2002.
    杨雷,金之钧.深部流体中氢的油气成藏效应初探[J].地学前缘,2001,8(4):337-341.
    姚志温,汾渭盆地含氦天然气成因探讨[C],石油地质文集(6)[A],1982.62-65.
    姚志温.汾渭盆地含氦天然气成因探讨[A].石油地质文集编辑委员会,石油地质文集(6)[C].北京:地质出版社.1982:62-65.
    姚宗惠,张明山.鄂尔多斯盆地北部断裂分析[J].石油勘探与开发,2003,30(2):20-23.
    叶德胜,刘树辉.塔里木盆地东北地区古油藏及其石油地质意义[A].塔里木盆地北部油气地质研究(二[C]).武汉:中国地质大学出版社.1991.317-326.
    叶加仁,赵鹏大,陆明德.鄂尔多斯盆地下古生界热史与油气生成动力学研究[J].天然气工业,1997,17(5):3-7.
    叶军,王亮国,岳东明.从新场沥青地化特征看川西天然气资源前景[J].天然气工业,1999.19(3):18-22.
    应维华.湘西北慈利-保靖深大断裂的演化及煤化沥青产出的地质意义[J].石油勘探与开发,1991,18(1):7-13.
    于炳松,乐昌硕.沉积岩物质成分所蕴含的地球深部信息[J].地学前缘,1998,5(3):105-112.
    於崇文,岑况,鲍征宇等.成矿作用动力学[M].北京:地质出版社.1998.
    岳伏生,张景廉,杜乐天.济阳坳陷深部热液活动与成藏成矿[J].石油勘探与开发,2003,30(4):29-31.
    云金表,殷进垠,金之钧.松辽盆地深部地质特征及其盆地动力学演化[J].地震地质,2003,25(4):595-608.
    曾凡桂.神府大柳塔2~(-2)煤层煤岩学特征[J].煤田地质与勘探,2000(2):25-28.
    曾溅辉.东营凹陷热流体活动及其对水-岩相互作用的影响[J].中国地质大学学报,2000,25(2):133-142.
    曾联波,郑聪斌.陕甘宁盆地延长统区域裂缝的形成及其油气地质意义[J].中国区域地质,1999,18(4):391-396.
    翟光明主编.中国石油地质志(卷十二)-长庆油田[M].北京:石油工业出版社.1992.
    张百灵,朱怀平,王汝勇.塔里木盆地北部深层烃气垂向微运移特征[J].天然气工业,1998,18(1):25-28.
    张臣,陈亚平.大同-集宁地区太古代变质基性岩墙群的基本特征[J].河北地质学院学报,1992,15(5):479-487.
    张臣,陈亚平.大同-天镇地区中元古代辉绿岩岩墙群的基本特征及构造意义[J].山西地质,1993,8(2):131-140.
    张臣侯贵廷.吕梁-晋北地区晚前寒武纪镁铁质岩墙群侵位方式的磁组构证据[J].地质论评,1994,(3):245-251.
    张福礼.鄂尔多斯盆地天然气地质[M].北京:地质出版社,1994.47-59.
    张汉武,张立桅,林冰等.废水处理系结结垢现象的研究[J].化工生产与技术 1995,7:24-28.
    张泓,白清昭,张笑微等.鄂尔多斯聚煤盆地形成与演化[M].西安:陕西科学技术出版社,1995,1-165.
    张进,马宗晋,任文军.鄂尔多斯西缘逆冲褶皱带构造特征及其南北差异的形成机制[J].地质学报.2004,78(5):600-611.
    张进,张庆龙,任文军.断层相关褶皱——鄂尔多斯盆地中的新构造样式[J].石油实验地质,1999,2l(1):61-65.
    张景廉,金之钧,杨雷等.塔里木盆地深部地质流体与油气藏的关系[J].新疆石油地质.2001,22(5):371-375.
    张景廉,朱炳泉,陈义贤.辽河断陷石油无机成因的地球化学证据[J].石油与天然气地质,1999,20(3):192-194.
    张景廉,朱炳泉,张平中.塔里木盆地北部沥青、干酪根Pb-Sr-Nd同位素体系及成因演化[J].地质科学,1998,33(3):311-317
    张景廉,朱炳泉,张平中等.克拉玛依乌尔禾沥青脉Pb-Sr-Nd同位素地球化学[J].中国科学(D),1997,27(4):325-330.
    张军营,任德贻,许德伟等.煤中微量元素赋存状态研究方法[J].煤炭转化,1998,21(4):12-171.
    张恺著.板块构造与油气成因二元论[M].北京:石油工业出版社.1997.
    张恺著.中国大陆板块构造与含油气盆地评价[M].北京:石油工业出版社.1995.
    张抗.鄂尔多斯断块构造和资源[M].西安:陕西科学技术出版社,1989,1-394.
    张敏,蔡春芳,张俊.油气藏中沥青垫的研究进展[J].地质科技情报,1997,16(1):81-84.
    张敏.油藏地球化学的基础与展望[J].地质科技情报,1995,14(3):73-78.
    张铭杰,王先彬,李立武.地幔流体组成[J].地学前缘,2000,7(2):401-412.
    张庆龙,解国爱,任文军等.鄂尔多斯盆地西缘南北向断裂的发育及其地质意义[J].石油实验地质.2002,24(2):119-125.
    张如良.鄂尔多斯深盆气与铀矿化关系初探[J].铀矿地质,2004,20(4):213-218.
    张士亚.鄂尔多斯盆地天然气气源及勘探方向[J].天然气工业,1994,14(3):1-4.
    张水昌.鄂尔多斯盆地天然气气源及勘探方向[J].天然气工业,1994,14(3):1-4.
    张晓宝,徐永昌,孙明良等.黄骅坳陷含油储层包裹体中慢源氦的发现及其地质意义[J].中国科学(D辑),2003,33(7):473-478.
    张学民,刁桂苓,束沛镒.鄂尔多斯块体及其东南缘剪切波速度结构与波速比研究[J],中国地震.2004,20(1):53-63.
    张学玉,李国建.中国南方天然沥青、油气苗分布与找油气关系[J].西南石油学院学报,1999,21(2),36-41.
    张子祥.鄂尔多斯盆地天环向斜盐矿床地质特征[J].中国煤田地质 2001,13(2):22-23,118.
    张祖还.铀地球化学[M].北京:原子能出版社,1984.
    赵国泽,汤吉,詹艳等.青藏高原东北缘地壳电性结构和地块变形关系的研究[J].中国科学(D),2004,34(10):908-918.
    赵克斌,孙长青.中国主要含油气盆地地球化学场特[J].石油与天然气地质,2005,26(4):427-432.
    赵孟军,黄第藩,廖志勤.原油中微量元素地球化学特征[J].石油勘探与开发,1996,23(3):19-23.
    赵孟为 汉斯·阿伦特 克劳斯·魏玛.鄂尔多斯盆地伊利石K-Ar等时线图解与年龄[J].沉积学报.1997,15(4):148-151.
    赵孟为,Behr H J.鄂尔多斯盆地三叠系镜质体反射率与地热史[J].石油学报,1996,13(4):1-9.
    赵瑞全.微生物和有机质在512层间氧化带砂岩型铀矿中的作用[J].铀矿地质,1998,14(6):339-340.
    赵文津,黄立言,熊嘉育.喜马拉雅和青藏高原深剖面研究的进展[J].地球物理学报,1997,40(增刊):140-151.
    赵文智,胡素云,王泽成等.鄂尔多斯盆地基底断裂在上三叠统延长组石油聚集中的控制作用[J].石油勘探与开发.2003,30(5):1-5.
    赵振华.微量元素地球化学原理[M].北京:科学出版社.1997.
    赵重远,刘池洋.华北克拉通沉积盆地形成与演化及其油气赋存[M].西安:西北大学出版社.1990.
    赵重远.鄂尔多斯盆地西缘构造单位划分及构造展布格局和形成机制[A].杨俊杰主编.鄂尔多斯盆地西缘逆冲带构造与油气[C].兰州:甘肃科学技术出版社,1990,40-53.
    郑乐平,冯祖均,徐寿根等.起源于地球深部的济阳幼陷CO_2气藏[J].科学通报,1995,40(24):2264-2266.
    郑乐平,冯祖钧,廖永胜等.济阳拗陷非烃类气藏(CO_2、He)的成因探讨[J].南京大学学报,1997,33(1):76-80.
    支家生.康山古油藏质疑[J].海相油气地质,1997,2(1):42-43.
    中国煤田地质总局.鄂尔多斯盆地聚煤规律及煤炭资源评价[M].煤炭工业出版社,北京:1996.
    中华人民共和国地质矿产部.区域化探全国扫面工作方法若干规定.北京:地质出版社.1985.
    中华人民共和国地质矿产部航空物探总队(刘寿彭主编).中国及其毗邻海区航空磁力异常图.北京:中国地图出版社.1989.
    钟宁宁,秦勇.碳酸盐岩有机岩石学-显微组分特征、成因、演化及其与油气关系[M].北京:科学出版社,1998,156-168.
    钟宁宁、陈恭洋.煤系气油比分配控制因素及其与大中型气田的关系[M].北京:石油工业出版社.2002.
    周坤,冯思源.南方海相地层油气评价及勘探建议[J].海相油气地质,1997,2(1):6-10.
    周胜国,郭淑敏.煤储层吸附/解吸等温曲线测试技术[J].石油实验地质,1999,21(1):76-81.
    周子勇.石油层上方重金属元素的射流晕分布及其地电化学研究方法[J].地质科技情报,2001,20(4):37-40.
    朱弟成,朱利东,林丽,等.西成矿田泥盆系铅锌矿床中的有机成矿作用[J].地球科学,2003,28(2):201-208.
    朱桂清.胜利油田首次在浅海太古界发现高产油气流[J].石油钻探技术,2003.31(1):6.
    朱军,郭绍辉,徐冠军.原油沥青质中包裹体烃的研究[J].石油勘探与开发,2004,29(2):61-63.
    朱上庆,覃功炯,温春齐,等.金顶超大型陆相碎屑岩铅锌矿床[A].涂光炽.中国超大型矿床(Ⅰ)[C].北京:科学出版社,2000.65-87.
    朱西养,汪云亮,王志畅等.川北砂岩型铀矿稀土元素特征及铀成矿作用[J],铀矿地质,2004,20(2):71-79.
    朱西养,王方亮,王志畅等.东胜砂岩铀矿微量元素地球化学特征初探[J].地质地球化学,2002,31(2):39-45.
    朱炎铭,秦勇,范炳恒等.黄骅坳陷深层古生界烃源岩的生烃演化[J].地质科学,2001,36(4):435-443.
    朱英.壳深大断裂和油气储集[A].朱夏主编.中国中新生代盆地构造和演化[C].北京:科学出版社.1983.55-64.
    朱照宇,丁仲礼.中国黄土高原第四纪古气候与新构造演化[M].北京:地质出版社.1994.
    庄汉平,卢嘉烂.与有机质有成因联系的金属矿床[J].地质地球化学,1996,(4):6-11.
    庄军,吴景均,张群.鄂尔多斯盆地南部早中侏罗世聚煤特征与煤的综合利用[M].北京:地质出版社.北京.1996.
    庄新国,杨生科,曾荣树等.中国几个主要煤产地煤中微量元素特征[J].地质科技情报,1999,18(3):63-66.
    泰勒(Taylor R P)等著.李文达译.稀土元素在矿床研究中的应用[M].北京:地质出版社.1987.
    [英].Hugh R Rollison著,杨学明,杨晓勇译.岩石地球化学[M].安徽合肥:中国科学技术大学出版社.2000.
    [美]柯林斯 A G著,林文庄,王秉忱译,油田水地球化学[M].石油工业出版社.1984.
    [美]盖洛韦w E,霍布德D K著,顾晚忠等译,陈景出校.陆源碎屑沉积体系在石油、煤和铀勘探中的应用[M].北京:石油工业出版社,1989.
    [苏]别列雷曼,王集源泽,李德方校.地球的化学成分[M].1981.
    [苏]多布罗沃利斯基B B.朱颜明译.微量元素地理学[M].1987.
    [美]亨特(Hunt,J.M.)著.胡伯良译.石油地球化学和地质学[M].石油地质出版社.1986.
    Ronald w.著,张德厚译,生物地球化学在探测油气微渗漏中的潜在应用[J],国外油气勘探,1993,5(3):224-236.
    Acevedo S, Eacobar G.Ranaudo M N,et al. Obsevations about the structure and dispersion of petroleum asphaltenes aggregates obtained from dialysis fractionation and characterization[J].Energy & Fuels, 1997,11:774-778.
    Andreas.Uranium organic matter association at La Bajada[J].New Mexico Econ Geol, 1972,(47):41-54.
    Bakel A J,Dyer R M, Ruble T E, et al, Carbon isotopic composition of n-alkanes and isoprenoids in slightly biodegraded crude oils from the Philips town Field(Illinois Basin).Poster sessions from the 16th Intemational Meeting on Organic Geochemistry.1993.91-94.
    Bau M. Rare-earth element mobility during hydrothermal and metamorphic fluid-rock interaction and significance of the oxidation state of europiumfj]. Chemical Geology, 1991,93:219-230
    Bazhenova O K,Arefiev O A,Frolov E B.Oil of the Uzon Cardera,Kamchatka[J].Organic Geochemistry, 1998, 29:421-428.
    Behar F, Pelet R, Roucache J.Geochemistry of asphaltenes In: Shenk P A, et al. eds. Advances in Organic Geochemistry. Org Geochem. 1984,6:587-596.
    Bergman S.C. and Dubessy J.CO2-CO fluid inclusions in a composite peridotite xenolith:implications for upper mantle oxygen fugacity.Contributions to Mineralogy and Petrology,1984,85:1-13.
    Bergmann U,MulIins O,Cramer S P.X-ray Raman spectroscopy of carbon in asphaltene, light element character acterization with bulk sensitivltyAnal Chem,2000,72(11):2609-2612.
    Birger R.Fluorescent growth band in irradiated-bitumen nodules: evidence of episodic hydrocarbon migration AAPG.Fuel,1997,81(1):17-25.
    Borovec Z.Sorption of uranyl by humic acids[J].Chemical Geology, 1979,(27):39-46.
    Boucher R J,Standeu G, Eglinton G. Molecular characterization of Kerogcns by mild selective chemical degradation ruthenium peroxide[J] oxidation.Fuel, 1991,70:695-702.
    Bouska V.Geochemistry of Coal[M].Prague:Academia.l981.
    Boyd S R, Pillinger C T.A Modelling the growth of natural diamonds[J].Chemieal Geology, 1994,116:29-42.
    Brenan J M,Shaw H F,Phinney D L,et al.Mineralaqueous fluid partitioning of trace elements at 900D and 2.0GPa:constraints on the trace element chemistry of mantle and deep crustal fluids[J].Geochim Cosmochim Acta,1995,59:3331-3250.
    Calemma V,Rausa R.D Antona P,et al.Characterization of asphaltenes molecular structure[J]. Energy & Fuel, 1998,12(2): 422-428.
    Camfield P A,Gupta J C,Jones A G,et al.Electromagnetic sounding and crustal electrical conductivity structure in the region of the wopmay orogen.Northwest Territorries Canada Can[J].Earth Sci, 1989,26:2385-2395.
    Charles S.The roles of organic matter in the formation of uranium deposits in sedimentary rocks[J].Ore Geology Review,1996,(11):54-55.
    Chen L, Booker J R, Jones A G et al. Electrically conductive crust in southern Tibet from Indepth magnetotelluric surveying. Science, 1996,274:1694-1696.
    Christy A A,Dahl B,Kvalhejm O M. Structural features of resins .asphaltenes and kerogen studied by diffuse reflectance infrared spectroscopy [J]. Energy & Fuel,1989,68(4):430-435.
    Christy A A,Hopland A L,Barth T,et al, Quantitative determination of thermal maturity in sedimentary organic matter by diffuse reflectance infrared spectroscopy of asphaltenes[J].Org Geochem. 1989.14(1): 77-81.
    Clifton C G, Walters C C,Simoneit B R T.Hydrotermal petroleums from Yellowstone Park, Wyoming,USA[J]. Applied Geochemistry, 1990,(5): 169-191.
    Costa Neto C.The effect of pressure on geochemical maturation:theoretical considerations[J].Org Geochem, 1991,17(5): 579-584.
    Curiale J A.Origin of solid bitumen with emphasis on biological marker results[J].Org Geochem. 1986,10(1-3): 559-580.
    Czochanska Z,Sheppard C M,Weston R,et al.Organic geochemistry of sediments in New Zealand.Partl.A biomarker
     study of the petroleum seepageat the geothermal region of Waiyapu[J].Geochim.Cosmochim. Acta, 1986, 50:507- 515.
    Dalai S R,Mennon S K,Agrawal Y K. Infrared spectroscopic studies of EOM from Csmbay Basin[J] Indian Chem Soc,1996,73(6):247-253.
    Dieckmann V,Schenk H J,Horsfield B,et al, Kinetics of Petroleum generation and cracking by Programmed temperature closed-syslem pyrolysis ofToarcian Shales[J]. Energy & Fuel, 1998,77(1/2):23-31.
    Domine F.High pressure pyrolysisofh hexane,2-4-dimethylpentane and 1-phenylbutane.Is pressure an important geochemical parameter?[J].Org.Geochem, 1991,17:619-634.
    Duba A G.Shankland T J, Freecabon and electrical conductivity in the earth's mantle[J].Geophys Res Lett, 1982,9: 1271-1274.
    Durand B. Kerogen-lnsoluble Organic Matter from Sedimentary Rocks [M].Technip.Paris,1980.
    Ekweozor C M. Characterisation of the non-asphaltene products of mild chemical degradation of asphal- tenes[J].Org Geochem,1986,10:1053-1058.
    Ekweozor C M. Tricyclic terpenoid derivatives from chemical degradation reactions of asphaltenes[J]. Org Geochem, 1984. 6:51-61.
    Eldridge C S, Compston W, William I S,et al. Isotope evidence for the involvement of recycled sediments in diamond formation[J].Nature,1991,353:649-652.
    Finkelman R B.Trace and minor elements in coal[A].Engel M H,Macko S A.,Organic Geochemistry[C].New York: Plenum Press, 1993.593-607.
    Frey F A,and Green D H.The mineralogy,geochemistry and origin of lherzolite inclusions in Victorian basanities[J]. Geochimica et Comochimica Acta,1974,38(7):1023-1059.
    Frost B R, Fyfe W S, Tazaki K, et al. Grain-boundary graphite in rocks and implications for high electrical conductivity in the lower crust.Nature, 1989,340:134-136.
    Fyfe W S.Metamorphic fluids[J].Earthsci, 1992,32(1/2): 1-34.
    Galimov E M.The relation between formation conditions and variations in isotope composition of diamonds[J].Geochemical International, 1985,22( 1): 118-142.
    Ganz H,Kalkreuth W.APPlication of infrared Alberta copy to the classification of kerogen types and the evaluation If source rock and oil shale potentials[J].Fuel,1987.66(5):708-711.
    Gluskoter H J,Ruch R R,Miller W G,et al.Trace elements in coal occurrence and distribution[J].III,State Geol,Surv,Circ, 1977,499:154.
    Gold T,Soter S.The deep earth gas[J].Sci Am,1980,242(6):130-137.
    Gougt D I.Electromagnetic exploration for fluids in the Earth's crust[J].Earth Sci Rev,1992,32(1/2): 3-18.
    Govindaraju G.Compilation of working values and sample description for 383 geostandards[J].Geostandards News lett.1994, 18:1-158.
    Groves D I.The crustal continuum model for late-Archean lode-gold deposits of the Yilgarn Block,Western Australia[J], Mineral Deposits, 1993,28:366-374.
    Hass J R, Shock E L, Sassani D C. Rare earth elements in hydrothermal systems;Estimates of standard partial modal thermodynamic properties of aqueous complexes of the rare earth elements at high pressures and temperatures[J].
     Geochim. Cosmochim. Acta,1995,59(21):4329-4350
    Hoefs J.,Some peculiarities in the carbon isotope compositon of'juvenile carbon". Stable isotope in the earth science[J], DSIRBull,1978,220:181-184
    Hooper E C D.Fluid migration along growth fluids in compacting sediments[J].Joar.Pctro Geol,1991, 14(2): 161-180.
    Horita J.Bemdt M E.Abiogenic methane formation and isotopic fractionation under hydrothermal conditions[J], Science, 1999,285:1055-1057.
    Hsu C S,Qian K.,Robbins W K.Nitrogen speciation of polar petroleum compounds by compounds class separation and online liquid chromatography-mass spectrometry(LC-MS)[J].High Resolut Chromatogr, 1994,17(4): 271-276.
    Hutcheon I,Aberombie H J.Cartbon dioxide in clastic rocks and silicate hydrolysis Geology[J],1990, 18:541-544
    Hwang R J,Teerman S C ,Carlson R M.Geochemical comparison of reservoir solid bitumen with diverse origins[J].Org Geochem, 1998,29(1 -3):505-517.
    Hyndman R D,Vanyan L L.Marquis G,et al.The origin of electrically conductive lower continentalcrustsaline water or graphite?[J].Physics of Earth and planetary interiors, 1993,81:325-344.
    Ignasiak T, Kemp Jones A V, Strausz O P.The molecular structure of Athabasca asphaltene. Cleavage of the carbon-sulfur bonds by radical ion electron transfer reactions[J]. Journal of organic chemistry, 1977,42(2):312-320.
    Jacob H. Classification,structure,genesis and practical importance of natural solid oil bitumen[J].Int J Coal Geol,1989, 11(1): 65-79
    Jones A G.Electrical conductivity of the continental lower crust.In:Fountain D M,Arculus R,Kay R W,eds.Continental Lower Crust.Elsevier, 1992.81 -143
    Jones D M,Douglas A G,Connan J.Hydrous pyrolysis of asphaltenes and polar fractions of biodegraded oils[J].Organic Geochemistry, 1988.13:981 -993.
    Karlsen D,Larter S R. Analysis of petroleum fraction by TLC-FID:applications to petroleum reservoirs description[J]. Org.Geochem,1991.17:603-617.
    Klinkhammer G P, Elderfield, Edmond J M et al.Geochemical implications of rare earth element patterns in hydrothermal fluid from mid-ocean ridges. Geochim[J]. Cosmochim. Acta, 1994,58 (23):5105- 5113
    Koglin.Spectroscopic studies on the binding of uranium by brown coal[J].Appl.Spectrose,1978,(32): 486-488.
    Kutina J.The role of deep structure of the lithosphere in mettallogeny:investigating the role of transregional discontinuities[J]. 9th IAGOD,Abst,1994,1:12.
    Kvenvolden K A, Rapp J B, Hostettler F D,et al.Petroleum associated with polymetallic sulfide in sediment from Gorda Ridge[J].Science,1986,234:1231-1234.
    Kyser T. K.,Stable isotope variations in the mantle[J].Reciews in Mineralogy, 1986,16:491-559.
    Langmuir D.Langmuir D.Uranium solution-mineral equilibrium ai low temperatures with applications to sedimentary ore deposits[J].Geochim Cosmochim.Acta, 1978,42:547-569.
    Larter S R,Aplin A C.Reservoir geochemistry:methods application sand opportunities[A].In:Cubitt J M, England W A eds.The geochemistry of reservoirs[C].Geological Society Special Publication, 1995.86:5-32.
    Ledair A D.Crustal-scale auriferous shear zones in the Central Superior Province,Canada[J].Geology,1993, 21: 1298-1307.
    Levinson A A.lntroduction to exploration geochemistry[M].2nd ed.Chicago:Wilmette Applied Pub, 1976.
    Li Rui,Ritz G P.Studying individual macerals using IR micro-spectroscopy and implications on oil versus gas/condensate proneness and "low-rank" generation[J].Org Geochem,1993.20(6):695-706.
    Li Sitian,Yang Shigong,Tom Jerzykiewicz.Upper Triassic foreland sequences of the Ordos basin in China[C],In: Stratiigraphic Evolution of Foreland Basins[C].SEPM Special Publication, 1995 (52):233-241.
    Liu Shaofeng.The coupling mechanism of basin and orogen in the western Ordos Basin and adjacent regions of China[J].Joumal of Asian Earth Science, 1998,16(4):369-383.
    Macpherson C and Mattey D.Carbon isotope variations of CO2 in Central Lau Basin basalts and ferrobasalts[J]. Earth and Planetary Science Letters,1994,121:263-276.
    Manning L K,Frost C D,Branthaver J F. Aneodynium isotopic study of crude oils and source rocks:Potential applications for petroleum exploration[J].Chem Geol,1991,91:125-138
    Mansoori G A..Modeling of asphaltene and other heavy organic depositions[J].Journal of Petroleum Science and Engineering.l997,17:101-111.
    Masuda A, Nakamura N, Tanaka T. Fine structures of mutually normalized rareearth patterns of chondrites[J]. Geochim Cosmochim Acta,1973,37: 239-248
    Mctavish R A.The role of overpressure in the retardation of organic matter maturation[J].J Petrol Geol, 1998. 21(2): 153-186.
    Meunier. Experimental evidence of uraninite formation from diagensis of uranium-rich organic matter[J]. Geochim. Cosmochim. Acta,1990,(54):809-817.
    Meunier.Uranium and organic matter in a Paleodeltaic environment:The Coutras deposit[J].Econ Geol, 1989, (84): 1546-1549.
    Mills R, Elderfield H.Rare earth element geochemistry of hydmthermal deposits from the active TAG Mount, 26°N mid-Atlantic Ridge[J]. Geochim. Cosmochim. Acta, 1995,59(17):3511-3524
    Mitchell A H G,Garson M S.Mineral Deposits and Global Tectonic Setting[M].London:Academic Press, 1981.
    Mojelsky T W, Ignasiak T M, Frakman Z, et al.Structural features of alberta oil sand bitumen and heavy oil asphaltenes[J]. Energy & Fuels, 1992,6:83-96.
    Mujica V,Nieto P,Puerta L,et al. Caging of molecules by asphaltenes:a model for free radicl preservation in crude oils[J].Energy & Fuels,2000.14(3):632-639.
    Murgich J,Abanero J A,Strausz O P.Molecudar recognition in aggregates fomred by asphaltene and resin molecules from the Athabasca oils sand[J]. Energy & Fuels, 1999.13(2):278-286.
    Nadeau S, Philipot P, Pineau F. Fluid inclusions and mineral isotopic compositions (H-O-C) in eclogitic rocks as tracers of local fluid migration during high pressure metamorphism[J].Earth and planetary' Science Letters,1993, 114: 431-448.
    Nakachima S. Experimental study of machaniems of fixation and reduction of uranium by sedimentary' organic matter under diagenetic hydrothermal conditions[J].Geochim.Cosmohim,1984,(48):2321-2329.
    Michard A, Albarde F, Michard G et al. Rare-earth elements and uranium in high-temperature solutions from East acific Rise hydrothermal vent field(13 N) [J].Nature, 1983,303:795-797
    Navon O,Hutcheon I D,Rossman G R,et al.Mantle-derived fluids in diamond micro-inclusions[J] .Nature, 1988,335:784-789.
    Newton R C, Temperature, pressure and metamophic fluid regimes in the amphibolite facies transtion zones[A].ln: Tobi A C(Eds),The Deep Proterozoic Crust in the North Atlantic Provinces[C], D. Reidel, Dordrecht,Holland, 1985, 75-104.
    Omaljev V T.Definitions of the concepts of geochemical field,background,and noise[J].Geochem Intemat, 1987,24(2): 1-6
    Pankina R G.,Origin of CO2 in petroleum gases (from the isotopic composition of carbon) [J].International Geology Reviews, 1978,21:535-539.
    Pamell J,Geng A,Fu J,et al.Geology and Geochemistry of bitumen vein deposits at Ghost City.Junggar Basin, Northwest China[J].Geol,Mag,1994.131:181-190.
    Pasteris J D.Fluid inclusions in mantle xenoliths[A].Nixon.Mantle xenoliths[C].New York:A Wiley- Interscienece Publications, 1987.691 -707.
    Peng P,Fu J,Sheng G. Ruthenium-ions-catalyzed oxidation of an immature asphaltene:Structural features and biomarker Distribution[J]. Energy & Fuels, 1999a. 13:266-277.
    Peng P,Morals Lzquicrdo A,Lown E M,et al,Chemical structure and biomarker content of Jianghan asphaltenes and kerogens[J]. Energy & Fuels,1999b.l3:248-365.
    Philp R P,Bakel A,Calvez A,et al.A comparison of organosulphur compounds Produced by pyrolysis of asphaltenes and those present in related crude oils and tar sands[A]. In: Mattavelli L, Novelli L. eds. Advances in Organic Geochemistry Org Geochem[C], 1987.13:915-926.
    Price L C.Thermal stability of hydrocarbons innature:Limits,evidence,characteristics,and possible controls[J].Geochim. Cosmochim Acta,1993,57:3261-3280.
    Ren Deyi.Zhao Fenghua,Wang Yunquan,et al,Distribution of minor and trace elements in Chinese coals[J]. International Journal of Coal Geology,1999,40:109-118.
    Robert P.Organic Matumorphism and Geothermal History[M].Boston:D Reidel Publishing Company, 1988, 61-129.
    Roedder E Fluid inclusion analysis:prologue and epilogue[J].Geochim Cosmochim Acta, 1989,54:495-507.
    Rogers.Sigsliffcance Reservoir Bitumens Thermal Maturation Studjes.Western Canada Basin.AAPG, 1974, 58(9): 1806-1824.
    Rosso K M,Bodnar R J.Microthermometric and Raman spectroscopic detection limits of CO2 in fluid inclusions and the Raman spectroscopic characterization of CO2[J].Geochim Cosmochim Acta, 1995,59:3961-3975.
    Rubimstein I,Strausz O P.Physical properties of conventional and biodegraded oils[J].Am Chem Soc Div Fuel Chem, 1977.22(3):20-25.
    Rubinstein I,Spyckerelle C,Strausz O P.Pyrolysis of asphaltenes: a source of geochemical information[J]. Geochim Cosmochim Acta, 1979.43.1-6.
    Sajgo C S,McEvoy J,Wolff G A,et al. Influence of temperature and pressure on maturation processes I.Preliminary report[J].Org Geochem, 1986,10:331-337.
    Sarret Gonnan J,Kasral M. Chemical forms of sulfur in geological and archeological asphaltenes from Middle East, France and Spain determined by sulfur K-and L-edge X-ray absorption near edge structure spectroscopy[J]. Geochim Cosmochim Acta.1999.63(22):3767-3779.
    Scam M.Subduction of water inlo the mantle: History of Alpine peridotite[J].Geology, 1995,23: 459-4463.
    Schabron J F,Speight J G. The solubility and three-dimension structure of asphaltenes[J].Petroleum Science and
     Technology,1998.16:361-375.
    Serio M A, Bassilakis R,Solomon P R.Use of TG-FTIR analysis for the characterization of fuels and resources[J]. Prepr Pap-Am Chem Soc,Div Fuel Chem,1996,41(1):43-50.
    Shanbhag,P M.Binding of uranyl by humic acid[J].Nucl Chem, 1981,(43):41-54.
    Sherwood L B,Ward J A,Slater G F et al.Abiogenic formation alkanes in the Earths crust as a minor source for global hydrocarbon reservoirs[J].Nature,2002,416:522-524.
    Sheu K, Lavigne G.Sandhu H et al.Use of combined micro extractor SFC interface and micro Fourier transform infrared spectroscopy for characterization of the low molecular weight fractions of asphalt[J].Fuel Sci Technol Int,1992.10(4-6):825-834.
    Simoneit B R T.Petroieum generation, an easy and widespread-process in hydrothermal system :an overview [J] Applied Geochemistry, 1990,5(1 2): 17-28.
    Simoneit B R T.Hydrothermal petroleum:genesis, generation and deposition in Guaymas basin. Gulf of California Canadian[J]Journal of Earth Science, 1985,22:1919-1929.
    Skippen G. Studies of fluids in the crust[J].Geol Surv Can,1988,4:11.
    Speight J G. Asphaltenes in crude oil and bitumemstructure and dispersion[C].Adv Chem Ser,251, 1996: 377-401.
    Spera F J. Dynamics of translithospheric migration of metasomatic fluids and alkaline magma[A].M Menzies, Hawkesworth.ed Mantle Metasomatism[C].[sl]:Academic Press,1987:l-18.
    Stasiuk L D.The origin of pyrobitumens in Upper Devonian Leduc Formation gas Alberta Aco,Alberta, Canada:an optical and EDS study oil to gas transformation[J]. Marine Petrol Geol, 1997.14(7-8):915-929.
    Stille P,Gauthier-Lafaye F,Bros R.The neodymium isotope system as a tool for petroleum exploration[J]. Geochim Cos mochim Acta,1993,57(8):4521-4525
    Stock L M.Tsc K. Ruthenium tetroxide catalysed oxidation of Illinois No.6 coal and some representative hydrocarbons[J]. Fuel,1983.62:974-976.
    Strausz O P.Mojclsky T W,Lown E M.The molecular structure of asphaltene:An untfolding story[J].Fuel, 1992. 71: 1355-1363.
    Strausz O P, Mojelsky T W,lown E M,et al. Structural festures of Boscan and Duri asphaltenes[J], Energy & Fuel, 1999.13(2):228-247.
    Strausz O P,Mojelsky T W,Faraji F et al.Additional structural details on Athabasca asphaltene and their ramifications[J]. Energy & Fuel. 1999.13(2):207-227.
    Su Yan,Artok I.Murata S et al, Structural analysis of the asphaltene fraction of an Arabian mixture by a Ruthenium- Ion-Catalyzed oxidation reaction[J].Energy & Fuel, 1998.12(6): 1265-1271.
    Sugisaki R.Mimura K.Mantle hydrocarbons: Abiotic or biotic?[J].Geochim Cosmochim.Acta, 1994,58: 2527-2542.
    Sugisaki R,Mimura K.Reply to the comment by J F Kenney on "Mantle hydrocarbons: abiotic or biotic?"[J]. Geochim Cosmochim Acta,1995,59:3859-3861
    Sverjensky D A. Europium redox equilibria in aqueous solution[J]. Earth Planet Sci Lett, 1984,67:70-78.
    Taylor S R and Mclennan S M.The continental crust:lts composition ans evolution[M].London: Blackwell. 1985.
    Tiercelin J J, Thourin C, Kalala, et al. Discovery of sublacustrine hydrothermal activity and associated massive sulfide and hydrocarbons in the north Tanganyika trough[J]. East African Rift Geology, 1989, 17:1053-1056.
    Touret J. Fluid distribution in the continental lithosphere[J].Am Geophys Union, Geodynamics Series, 1987, 17: 27-33 Tracy N.T.and Green □ H.W.Carbon solubility in olivine:implications for upper mantle evolution[J]. Geology, 1987, 15: 324-326.
    Valkovik V.Trace Element in Coal[M].Florida:CRC Press, 1983.
    Wakita H.Salo Y.3He/4He ration in CH4 rich natural gases suggest magmatic origin[J].Nature, 1983,305: 792-785.
    Watson E B,Brenan J M.Fluids in the lithosphere:1.Experimentally determined wetting characteristics of CO2-H2O fluids and their implications for fluid transport, host-rock physi cal properties and fluid inclusion formation[J].Earth Planet SciLett,1987,85:497-515.
    Watson E B,Brenan J M.Fluids in the lithosphere: 1 .Experimentally determined wetting characteristics of CO2-H2O fluids and their implications for fluid transport, host-rock physi cal properties and fluid inclusion formation[J].Earth Planet Sci Lett,1987,85:497-515.
    Watson E B.Immobility of reduced carbon along grain boundary in dunite[J].Geophys Res Lett,1986, 13:529-532.
    Wenzel F,Sandmeier K J.Geophysical evidence for fluids in the crust beneath the Black Forest,SW Germany[J],Earth Sci Rev,1992,32:61-76.
    Wickham S M,Fluids in the deep crust-petrological and isotopic evidence, Continental lower crust. Amsterdam, The Netherland, Developments in Geotectonics 23, Elsevier Science Publishers B. V 1992,391-421
    wickman F E,The cycle of carbon and stable carbon isotopes[J].Geochimica et Cosmochimica Acta, 1956,9: 136-153.
    Wood S A.The role of humic substances in the transport and fixation of metals of economic interest(Au,Pt, U,V)[J].Ore Geology Review, 1996,( 11):26.
    Wright J.Seymour R S and Shaw H FREE and Nd isotopes in conodont apatite:Variations with geological age and depositional environment. Geological Society of America,SpeciaI Paper, 1984.:325-340
    Xiao X,liu D,Fu J. Multiple phases of hydrocarbon generation and migration in the Tazhong petroleum system[J].Org Geochem. 1996.25:191-197.
    Yu Qitai. Three increase ecurves for description and prediction of oilfield development indexes[J].China Offshore Oil and Gas(GeoIogy),1995,19(2): 141-148.

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