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121.
新元古代末期震旦系陡山沱阶和早古生代早期寒武系梅树村阶是全球两大成磷时期。贵州瓮福磷矿含磷岩系—早震旦世陡山沱组磷矿a矿层与b矿层,是震旦系陡山沱阶成磷事件的典型代表。瓮福磷矿含磷岩系为在浅水陆棚地区沉积的一套与磷矿有成因联系的岩石组合,属于浅海台地相型;含磷岩系具备早期准备阶段、磷质富集阶段及晚期磷质贫化消失阶段的沉积特征,在纵向上呈三段式递变;以陡山沱组内三段(Z_1d~3)与四段(Z_1d~4)侵蚀间断面分隔,两次海侵旋回造成两次磷质的富集,经生物化学、机械破碎簸选及后期改造形成a、b两层工业磷矿体。瓮福磷矿陡山沱期构造位置位于上扬子陆块东南部,雪峰运动结束冒地槽沉积造就了黔中古陆以及东部半封闭的海湾浅滩。瓮福磷矿陡山沱期处于黔中古陆东缘,东临大海,整体地势西高东低;以黔中古陆为中心,从西到东、由陆向海形成古陆—滨岸—浅海—深海的古地理格局。黔中古陆在陡山沱期两次海侵旋回中,一方面其边缘海湾浅滩为磷质富集提供有利的沉积环境,另一方面其遭受剥蚀和夷平作用后为磷块岩矿床的形成提供含石英、长石、白云石、黏土等矿物的陆源碎屑。通过典型岩相剖面分析,黔中古陆边缘海湾浅滩的沉积环境及岩相直接控制了瓮福磷矿床的形成和分布,其具有重要的控矿意义。  相似文献   
122.
通过扫描电镜(SEM)观察,首次在红河断裂带内的花岗糜棱岩中发现类微生物状纳米颗粒。高分辨率平插能谱分析结果表明,该类微生物状纳米颗粒成分中的C元素平均含量约为10%,指示无机成因,并非某些菌类微生物,结合XRD分析结果表明该类纳米颗粒成分来自花岗糜棱岩的造岩矿物。通过对各种形貌特征的纳米颗粒观察、筛查和规律分析,探讨了类微生物状纳米颗粒的形成机理及构造意义,认为其形成过程可以分为岩石破裂形成球粒状纳米颗粒、球粒状纳米颗粒粘聚形成片状、片状纳米颗粒卷曲成管状以及管状纳米颗粒脱落聚集四个阶段,其中后三个阶段为纳米颗粒的后生构造变形阶段,指示红河断裂带构造环境的多期次变化。断裂带内球粒状纳米颗粒可能是在宏观构造应力场作用下的最小变形产物,其结构或变形特征蕴含丰富的宏观构造活动信息,是传统构造地质学研究方法之外的新思路和新手段。  相似文献   
123.
四川省拉拉铁氧化物-铜-金(IOCG)矿床位于扬子地块西南缘,磁铁矿是矿床中重要的矿石矿物及Fe质的主要载体之一。结合矿相学及电子探针研究方法,探讨矿床中气成-热液成矿期磁铁矿的成因特征及Fe质来源。矿相学研究表明,气成-热液成矿期磁铁矿呈自形晶,与黄铜矿共伴生产出。电子探针分析表明,气成-热液成矿期粗粒自形晶磁铁矿主要成分为TFeO,其余成分不超过1%,为典型磁铁矿。①气成-热液成矿期粗粒自形晶磁铁矿为热液成因,Fe质来自岩浆热液;②高氧逸度的岩浆/热液有利于Cu-Au的迁移聚集,磁铁矿的结晶作用过程中伴随着氧化态硫酸盐(SO 2-4)向还原态硫(H 2 S)转化的还原作用,降低成矿系统的氧化还原势,从而推进后续Cu-Au硫化物的沉淀成矿;③研究结果还补充了林师整(1982)建立的磁铁矿成因判别图解空白部分。  相似文献   
124.
九户林陶瓷土(瓷石)矿床为碱长花岗岩脉型矿床,矿体赋存在晚白垩世碱长花岗岩体中,严格受张性断裂构造控制,矿体两侧具钾长石化带-纳长石化带-云英岩化带等蚀变分带,矿体与岩体、断裂构造组成了三位一体的成矿条件,属岩浆期后结晶分异作用形成的热液型矿床,成矿条件独特,晚白垩世碱长花岗岩(κργK2)岩体中,是该区瓷土(瓷石)找矿的有利靶区。  相似文献   
125.
云南师宗县高良码头公路西侧古滑坡为一中型推移式土质滑坡,滑坡体规模30.8万m3。该古滑坡曾造成南盘江短期堵塞,之后古滑坡堆积体处在临界稳定状态。由于修建的省道S207公路从滑坡下部通过,古滑坡堆积体开始蠕动,2013年8月滑坡堆积体加剧蠕动变形,后缘弧状拉张裂缝及错台变形强烈。通过多次实地调查,激发古滑坡堆积体蠕动因素有降水、地震、动荷载等,目前古滑坡堆积体处于不稳定状态,建议一是采用抗滑桩及滑体外围设置排水沟等工程治理,二是搬迁避让,确保生命和财产安全。  相似文献   
126.
大数据驱动的研究范式正在引起地学领域的革命,而海量大数据的有效管理和共享是数据高效利用的前提。英国地质调查局作为最早成立的国家地质调查局,拥有海量的地学数据资源,通过近年来对数字化工作的全面推进,在数据的开放共享方面走在了世界各国的最前沿。文章对英国地质调查局的数据资源管理和数据共享方式进行了分析调研,详细介绍了他们的一站式管理平台——开放地学的主体组成,以及他们与同行合作建设的数据库。开放地学全面汇总了地调局内的数据资源,并通过一系列数据共享将所有数据集有机链接,通过数据和模型的巧妙结合,在满足用户数据需求的同时,对数据的应用进行了全方位的拓展,是地球系统科学研究框架下地球科学数字化工作的良好典范。  相似文献   
127.
大量前人成果和1:5万区调钻孔资料证实,五大连池第四纪火山地层属于水平岩层.因此,该地区第四纪火山地层的划分,是在地表岩石层序与钻孔岩石层序充分划分与对比的基础上进行的.从沉积角度看,五大连池火山地层属于松嫩盆地连续沉积过程中的第四纪短暂幕式火山喷发所形成的水平岩层.本文结合K-Ar同位素测年新资料,将该区第四纪岩石地层重新划分为11个组级地层单位.其中的火山岩石地层可以自下而上划分为:下更新统焦得布玄武岩(1.214—1.113 Ma);中更新统尾山玄武岩(0.62—0.285 Ma);中更新统笔架山玄武岩(0.24—0.132 Ma)和全新统老黑山玄武岩(距今290~288 a),对夹于其间的正常沉积地层也进行了相应的划分.对层状火山岩层序的层位划分和空间分布研究对于理解五大连池火山群的构造背景和生态环境具有特别重要的意义,五大连池火山群处于中国大陆内部的大同—大兴安岭火山岩带的最北东端,是地幔流体向北东方向流动的最前缘;这类富钾的碱性玄武岩的火山喷发活动对东北富饶的黑土地的形成具有重要贡献,火山岩在嫩江平原上塑造的台地和火山锥地形地貌对生态多样性和优质地下水的生态要素具有重要影响.  相似文献   
128.
《China Geology》2021,4(2):215-229
Two Neoarchean alkaline feldspar-rich granites sourced from partially melted granulite-facies granodioritic orthogneiss have been here recognised in the eastern part of the North China Block (NCB). These poorly foliated granites have previously been assumed to be Mesozoic in age and never dated, and so their significance has not been recognised until now. The first granite (AG1) is a porphyritic syenogranite with megacrystic K-feldspar, and the second (AG2) is a quartz syenite with perthitic megacryst. Zircons from the granites yield LA-ICP-MS U-Pb ages of 2499 ± 10 Ma (AG1), and 2492 ± 28 Ma (AG2), which are slightly younger than the granodioritic orthogneiss that they intrude with a crystallisation U-Pb age of 2537 ± 34 Ma. The younger granites have higher assays for SiO2 (71.91% for AG1 and 73.22% for AG2) and K2O (7.52% for AG1 and 8.37% for AG2), and much lower assays for their other major element than the granodioritic orthogneiss. All of the granodioritic orthogneiss and granite samples have similar trace element patterns, with depletion in Th, U, Nb, and Ti and enrichment in Rb, Ba, K, La, Ce, and P. This indicates that the granites are derived from the orthogneiss as partial melts. Although they exhibit a similar REE pattern, the granites have much lower total REE contents (30.97×10−6 for AG1, and 25.93×10−6 for AG2), but pronounced positive Eu anomalies (Eu/Eu* = 8.57 for AG1 and 27.04 for AG2). The granodioritic orthogneiss has an initial 87Sr/86Sr ratio of 0.70144, εNd(t) value of 3.5, and εHf(t) values ranging from −3.2 to +2.9. The orthogneiss is a product of fractional crystallisation from a dioritic magma, which was derived from a mantle source contaminated by melts derived from a felsic slab. By contrast, the AG1 sample has an initial 87Sr/86Sr ratio of 0.6926 that is considered too low in value, εNd(t) value of 0.3, and εHf(t) values between +0.57 and +3.82; whereas the AG2 sample has an initial 87Sr/86Sr ratio of 0.70152, εNd(t) value of 1.3, and εHf(t) values between +0.5 and +14.08. These assays indicate that a Sr-Nd-Hf isotopic disequilibrium exists between the granite and granodioritic orthogneiss. The elevated εHf(t) values of the granites can be explained by the involvement of Hf-bearing minerals, such as orthopyroxene, amphibole, and biotite, in anatectic reactions in the granodioritic orthogneiss. Based on the transitional relationship between the granites and granodioritic orthogneiss and the geochemical characteristics mentioned above, it is concluded that the granites are the product of rapid partial-melting of the granodioritic orthogneiss after granulite-facies metamorphism, and their crystallisation age of about 2500 Ma provides the minimum age of the metamorphism. This about 2500 Ma tectonic-metamorphic event in NCB is similar to the other cratons in India, Antarctica, northern and southern Australia, indicating a possible connection between these cratons during the Neoarchean.  相似文献   
129.
《China Geology》2021,4(2):329-352
In the context of global climate change, geosciences provide an important geological solution to achieve the goal of carbon neutrality, China’s geosciences and geological technologies can play an important role in solving the problem of carbon neutrality. This paper discusses the main problems, opportunities, and challenges that can be solved by the participation of geosciences in carbon neutrality, as well as China’s response to them. The main scientific problems involved and the geological work carried out mainly fall into three categories: (1) Carbon emission reduction technology (natural gas hydrate, geothermal, hot dry rock, nuclear energy, hydropower, wind energy, solar energy, hydrogen energy); (2) carbon sequestration technology (carbon capture and storage, underground space utilization); (3) key minerals needed to support carbon neutralization (raw materials for energy transformation, carbon reduction technology). Therefore, geosciences and geological technologies are needed: First, actively participate in the development of green energy such as natural gas, geothermal energy, hydropower, hot dry rock, and key energy minerals, and develop exploration and exploitation technologies such as geothermal energy and natural gas; the second is to do a good job in geological support for new energy site selection, carry out an in-depth study on geotechnical feasibility and mitigation measures, and form the basis of relevant economic decisions to reduce costs and prevent geological disasters; the third is to develop and coordinate relevant departments of geosciences, organize and carry out strategic research on natural resources, carry out theoretical system research on global climate change and other issues under the guidance of earth system science theory, and coordinate frontier scientific information and advanced technological tools of various disciplines. The goal of carbon neutrality provides new opportunities and challenges for geosciences research. In the future, it is necessary to provide theoretical and technical support from various aspects, enhance the ability of climate adaptation, and support the realization of the goal of carbon peaking and carbon neutrality.  相似文献   
130.
《China Geology》2021,4(4):673-685
The widely-developed, mixed clastic-carbonate succession in the northern Qaidam Basin records the paleo-environment changes under the glacial activity during the Late Paleozoic icehouse period in the context of regional tectonic stability, however, the depositional environment and sequence stratigraphy characteristics of the mixed deposits is rarely reported and still not clear. Combined the latest drilling wells data, we analyzed the sedimentary and stratigraphic characterization of the mixed strata via detailed field outcrops and core observations and thin section microscopic observations and recognized three depositional systems, including progradational coastal system, incised valley system, and carbonate-dominated marine shelf system, and identified four third-order sequences, SQ1, SQ2, SQ3 and SQ4, consisting of LST, TST, and HST. The depositional environment is overall belonged to marine-continental transition context and shifted from marine to continental environment frequently, showing an evolutionary pattern from marine towards terrestrial-marine transition and then back into the marine environment again in the long-term, which was controlled by the regional tectonic subsidence and the high-frequency and large-amplitude sea-level changes due to the Late Paleozoic glacial activity. The result is of significance in understanding the evolution of the Qinghai-Tibet Plateau and the sedimentation-climate response.©2021 China Geology Editorial Office.  相似文献   
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