首页 | 本学科首页   官方微博 | 高级检索  
文章检索
  按 检索   检索词:      
出版年份:   被引次数:   他引次数: 提示:输入*表示无穷大
  收费全文   445篇
  免费   228篇
  国内免费   421篇
测绘学   7篇
地球物理   39篇
地质学   991篇
海洋学   35篇
综合类   12篇
自然地理   10篇
  2024年   2篇
  2023年   14篇
  2022年   42篇
  2021年   63篇
  2020年   73篇
  2019年   87篇
  2018年   54篇
  2017年   67篇
  2016年   100篇
  2015年   68篇
  2014年   79篇
  2013年   58篇
  2012年   85篇
  2011年   57篇
  2010年   41篇
  2009年   37篇
  2008年   14篇
  2007年   36篇
  2006年   21篇
  2005年   24篇
  2004年   8篇
  2003年   9篇
  2002年   8篇
  2001年   4篇
  2000年   5篇
  1999年   11篇
  1998年   3篇
  1997年   6篇
  1996年   4篇
  1995年   6篇
  1994年   3篇
  1993年   2篇
  1992年   2篇
  1991年   1篇
排序方式: 共有1094条查询结果,搜索用时 15 毫秒
961.
MIS 3晚期以来江苏中部海岸的层序地层   总被引:6,自引:0,他引:6  
夏非  殷勇  王强  张永战  刘敬圃 《地质学报》2012,86(10):1696-1712
通过对苏北岸外西洋潮流通道内钻孔和地震剖面的地层沉积学、年代地层学、地震地层学和层序地层学等多学科再研究,以及区域钻孔再对比,本文确定该海域约从35kaBP(14C惯用年龄)开始经历了滨岸砂坝、淡水湖沼、河流泛滥平原、滨岸沼泽、潮流沙脊和潮流通道一系列的环境演变,主要受控于MIS3晚期以来的海平面旋回以及古河流入海沉积物供给,而构造沉降是相对次要的,由此形成了五级层序地层中的末次冰期晚间冰阶准层序和冰后期准层序,以及前者的高水位体系域和强制海退楔体系域、后者的海侵体系域和高水位体系域。海域中潮流沙脊可能开始发育于冰后期海侵淹没本区(约9calkaBP)之后,但一直只是水下暗沙且处在不断调整之中,直到1128~1855AD间黄河夺淮从苏北入黄海,大量泥沙充填潮道,部分水下暗沙出露海面成为明沙。西洋潮流通道并非是晚全新世期间通过沙脊的蚀低而形成,而在全新世高海面前后就已具雏形并持续至1128AD,1128~1855AD和1855AD至今分别经历了充填淤浅与冲刷成型的过程,且今后具有进一步展宽刷深的趋势。  相似文献   
962.
现生铁角蕨Asplenium Linn.种类繁多,广布于热带—温带地区,以热带—亚热带为分布中心。确切的Asplenium Linn.化石最早出现于东亚和俄罗斯远东地区的下白垩统地层中,是西伯利亚—加拿大区白垩纪的新生分子。根据吉林延边地区下白垩统长财组发现的铁角蕨化石的营养羽片和生殖羽片标本,在原位孢子研究基础上,通过与现生铁角蕨植物繁殖器官的对比,确认当前材料属于Asplenium Linn.;并进一步与国内外相关属种进行比对,建立了一个新种——长财铁角蕨(新种)(Asplenium changcaium Sun et Liu, sp. nov.)。该新种原位孢子的研究为深入探讨铁角蕨属乃至铁角蕨科的系统演化奠定了基础。  相似文献   
963.
The North China Craton (NCC) has been considered to be part of the supercontinent Columbia. The nature of the NCC western boundary, however, remains strongly disputed. A key question in this regard is whether or not the Alxa Block is a part of the NCC. It is located in the vicinity of the inferred boundary, and therefore could potentially resolve the issue of the NCC's relationship to the Columbia supercontinent. Some previous studies based on the Alxa Block's geological evolution and detrital zircon ages suggested that it is likely not a part of the NCC. The lack of evidence from key igneous rock units, however, requires further constraints on the tectonic affinity of the western NCC and Alxa Block and on the timing of their amalgamation.In this study, new zircon U–Pb age and Hf–O isotopes and whole-rock geochemical and Sr–Nd–Pb isotopic data for the Paleozoic granitoids in or near the eastern Alxa Block were used to constrain the petrogenesis of these rocks and the relationship between the Alxa Block and NCC. Secondary ion mass spectrometry (SIMS) U–Pb zircon dating indicates that the Bayanbulage, Hetun, Diebusige and South Diebusige granitoids were formed at ca. 423 Ma, 345 Ma, 345 Ma and 337 Ma, respectively. The Late Silurian (Bayanbulage) quartz diorites have variable SiO2 (58.0–67.9 wt.%), and low Sr/Y (20–24) values, while the Early Carboniferous (Hetun, Diebusige and South Diebusige) monzogranites have high SiO2 (71.5–76.7 wt.%) and Sr/Y (40–94) values. The Late Silurian quartz diorites display relatively homogeneous and high zircon δ18O (8.5–9.1‰) and εHf(t) (− 8.6 to − 5.3) values, high whole-rock εNd(t) values (− 9.2 to − 7.6) and highly radiogenic Pb isotopes (206Pb/204Pb = 18.13–18.25), whereas the Early Carboniferous monzogranites exhibit relatively low and variable zircon δ18O (5.7–7.2‰) and εHf(t) (− 23.1 to − 7.4) values, low whole-rock initial 87Sr/86Sr (0.7043–0.7070) and εNd(t) (− 19.1 to − 13.5) values and variable Pb isotopes (206Pb/204Pb = 16.06–18.22). The differences in whole rock Nd model ages and Pb isotope compositions of the Paleoproterozoic–Permian rocks in either side of the west fault of the Bayanwulashan–Diebusige complexes suggest that the Alxa Block is not a part of the NCC, and that the western boundary of the NCC is probably located on this fault. Furthermore, the linear distribution of the Early Paleozoic–Early Carboniferous granitoids, the high zircon δ18O values of the Late Silurian quartz diorites, the Early Devonian metamorphism and the foreland basin system formed during the collision between the Alxa Block and the NCC indicate that a Paleozoic cryptic suture zone likely existed in this area and records the amalgamation of the Alxa Block and North China Craton. Together with detrital zircon data, the initial collision was considered to have possibly occurred in Late Ordovician.  相似文献   
964.
New geological, geochronological and isotopic data reveal a previously unknown arc system that evolved south of the Kyrgyz Middle Tianshan (MTS) microcontinent during the Middle and Late Ordovician, 467–444 Ma ago. The two fragments of this magmatic arc are located within the Bozbutau Mountains and the northern Atbashi Range, and a marginal part of the arc, with mixed volcanic and sedimentary rocks, extends north to the Semizsai metamorphic unit of the southern Chatkal Range. A continental basement of the arc, indicated by predominantly felsic volcanic rocks in Bozbutau and Atbashi, is supported by whole-rock Nd- and Hf-in-zircon isotopic data. εNd(t) of + 0.9 to − 2.6 and εHf(t) of + 1.8 to − 6.0 imply melting of Neo- to Mesoproterozoic continental sources with Nd model ages of ca. 0.9 to 1.2 Ga and Hf crustal model ages of ca. 1.2 to 1.7 Ga. In the north, the arc was separated from the MTS microcontinent by an oceanic back-arc basin, represented by the Karaterek ophiolite belt. Our inference of a long-lived Early Palaeozoic arc in the southwestern MTS suggests an oceanic domain between the MTS microcontinent and the Tarim craton in the Middle Ordovician.The time of arc-continent collision is constrained as Late Ordovician at ca. 450 Ma, based on cessation of sedimentation on the MTS microcontinent, the age of an angular unconformity within the Karaterek suture zone, and the age of syncollisional metamorphism and magmatism in the Kassan Metamorphic Complex of the southern Chatkal Range. High-grade amphibolite-facies metamorphism and associated crustal melting in the Kassan Metamorphic Complex restricts the main tectonic activity in the collisional belt to ca. 450 Ma. This interpretation is based on the age of a synkinematic amphibolite-facies granite, intruded into paragneiss during peak metamorphism. A second episode of greenschist- to kyanite–staurolite-facies metamorphism is dated between 450 and 420 Ma, based on the ages of granitoid rocks, subsequently affected or not affected by this metamorphism. The latest episode is recorded by greenschist-facies metamorphism in Silurian sandstones and granodiorites and by retrogression of the older, higher-grade rocks. This may have occurred at the Silurian to Devonian transition and reflects reorganization of a Middle Palaeozoic convergent margin.Late Ordovician collision was followed by initiation of a new continental arc in the southern MTS. This arc was active in the Early Silurian, latest Silurian to Middle Devonian, and Late Carboniferous, whereas during the Givetian through Mississippian (ca. 385–325 Ma) this area was a passive continental margin. These arcs, previously well constrained west of the Talas-Ferghana Fault, continued eastwards into the Naryn and Atbashi areas and probably extended into the Chinese Central Tianshan. The disappearance of a major crustal block with transitional facies on the continental margin and too short a distance between the arc and accretionary complex suggest that plate convergence in the Atbashi sector of the MTS was accompanied by subduction erosion in the Devonian or Early Pennsylvanian. This led to a minimum of 50–70 km of crustal loss and removal of the Ordovician arc as well as the Silurian and Devonian forearcs in the areas east of the Talas-Ferghana Fault.  相似文献   
965.
The spinicaudatan Neodiestheria Chen is an important component of the diverse Early Cretaceous Yanjiestheria fauna in eastern Asia. Examination under a scanning electron microscope of newly collected and well-preserved specimens of Neodiestheria dalaziensis Chen from the Albian Dalazi Formation of Zhixin, Jilin Province, north-eastern China, has revealed morphological features of the carapace not recognized previously, namely that puncta are not only evenly distributed on growth bands near the umbo and gradually merge into a punctate fine reticulation and dense radial lirae on each growth band in the upper-middle part of the carapace, but also occur on growth lines and within the lumina of a fine reticulum, and between radial lirae on growth bands in the middle and lower parts of the carapace. Growth bands in anteroventral, ventral and posteroventral parts of the carapace are also ornamented with transversely elongate large pits (depressions) surrounded by swellings, appearing as a large reticulum superimposed over fine reticulation and radial lirae. These ontogenetically developing morphological patterns on the growth bands of the juvenile stage of the carapace indicate that Neodiestheria is closely related phylogenetically to Triglypta Wang.  相似文献   
966.
周庵铜镍铂族矿床位于南秦岭构造带北缘,商丹断裂带南侧。岩体隐伏于新生代沉积物和中元古代大雀山组地层之下,主要由二辉橄榄岩组成,见有少量纯橄榄岩、角闪岩、辉长岩,岩体大部分经受了蛇纹石化、次闪石化、绿泥石化等蚀变作用,矿体主要赋存于周庵岩体与大雀山组地层的内接触带。对辉长岩的LA-ICP-MS锆石U-Pb测年表明周庵岩体形成于621±1.5Ma,形成时代为新元古代晚期。Sr-Nd同位素测试得到的Sm-Nd等时线年龄为622±59Ma,与锆石U-Pb年龄一致。(~(87)Sr/~(86)Sr)_t=0.705726~0.706655,(~(147)Nd/~(144)Nd)_t=0.511730~0.511863,ε_(Nd)(t)=-2.05~0.55,显示弱富集的特征。超基性岩主量元素含量显示岩体m/f值为4.47~4.99,为铁质超基性岩,Cu、Ni含量与烧失量之间没有相关关系。矿石和不含矿岩体具相同的稀土元素配分模式,显示轻稀土富集,具弱的正Eu异常。微量元素特征显示Rb、Pb强烈富集,Nb、Ta相对亏损,说明岩浆受到了地壳物质的混染。综合分析认为周庵岩体形成与新元古代晚期,岩浆来源于软流圈地幔,代表Rodinia超大陆裂解事件在南秦岭的地质记录。岩浆侵位时受到了地壳物质的强烈混染,利用Nd同位素估算得混染程度为18.57%,这可能是促发岩浆体系达到硫饱和而发生金属硫化物熔离的主要因素。  相似文献   
967.
In order to cooperate with 1∶ 50000 aeromagnetic survey work, master the rock magnetic characteristics and fill in the material blank of rock magnetic susceptibility data in southern Hotan Region in Xinjiang, we carried out regional rock magnetic susceptibility investigation work in the region from 2013 to 2015 years, completed properties measurement work of 331 points, obtained 10 256 effective volume magnetic susceptibility data and collected 270 pieces of rock samples. According to classified statistics in detail for the measured data and further analysis, we found that the magnetic susceptibility of this region rocks was mainly influenced by the mineral composition of rocks, structure and space-temporal distribution. The magnetic susceptibility of acid or medium-acid intrusive rocks was mainly decided by the content of the biotite in rocks, and the contribution of biotite to the magnetic susceptibility of acid or medium-acid intrusive rocks was higher than other super paramagnetic minerals. The magnetic susceptibility of the same lithology rocks was high along the distribution of deep fault, and was relatively low along the secondary fracture distribution. The magnetic susceptibility of acid or medium-acid intrusive rocks in early Paleozoic was higher than the magnetic susceptibility of acid or medium-acid intrusive rocks in the late Paleozoic. This research work can provide an important basis for the aeromagnetic data interpretation, geological prospecting and tectonic evolution research.  相似文献   
968.
中国与蒙古交界地区,早前寒武系—新生界分布广泛,地层划分系统差别较大。以区域岩石地层组合及构造演化特征为背景研究认为,从新疆阿尔泰段至蒙古戈壁-天山段,地层具有连续性,可统一划分对比;并以额尔齐斯-布尔根断裂、喀拉麦里断裂、Borzon断裂及东蒙古-迭布斯格断裂为界,由西向东将中蒙边界中西段地层划分为阿尔泰地层分区、准噶尔-戈壁阿尔泰地层分区和北山-戈壁天山地层分区,并对区内地层单元进行了统一划分与对比。  相似文献   
969.
为了限定白乃庙铜矿的成矿时代和成矿环境,对含矿中酸性岩类进行同位素年龄和岩石地球化学研究。获得的3个含矿花岗闪长岩样品的LA-MC-ICP-MS锆石U-Pb年龄分别为421.5±1.8Ma、438.6±3.4Ma和459.3±3.6Ma。含矿中酸性岩类属于过铝质钙碱性系列岩石,稀土元素曲线显示为轻稀土元素富集型,具有弱正Eu异常,微量元素曲线表现为明显的Ta、Nb亏损。综合含矿中酸性岩类时代、地球化学特征及区域构造背景,认为白乃庙铜矿总体形成于早古生代,具有多期成矿的特点,成矿作用与古蒙古洋早古生代俯冲消减事件有关。  相似文献   
970.
牛绍武  张鹏远  孙淑芬  刘永顺 《地质通报》2016,35(11):1753-1770
内蒙古白云鄂博地区具有世界上最大的稀有-稀土铁矿床,关于其时代归属尚存分歧。在都拉哈拉组(H3)与尖山组(H5)发现丰富的早寒武世微古植物化石,在尖山组(H5)硅质岩中发现早寒武世小壳化石,在哈拉霍疙特组(H8)确认了奥陶纪床板珊瑚的存在(包括块状群体与丛状群体),并首次发现大型古钵海绵化石与遗迹化石,在比鲁特组(H10)鲍玛序列中发现遗迹化石。初步确认,内蒙古商都地区三足化石(腕足类、头足类与腹足类)的层位可能为呼吉尔图组(或哈拉霍疙特组)。多门类化石的发现与确认,为重新认识白云鄂博超大型稀有-稀土铁矿床含矿地层时代提供了确凿的古生物化石证据,也为重新认识白云鄂博超大型稀有-稀土铁矿床的成矿地质背景开辟了新的研究思路,具有重要的地层学与大地构造学意义。根据多门类古生物化石组合与时代,将原白云鄂博群下部(H1~5)重新厘定为狭义的白云鄂博群,时代为早寒武世;原白云鄂博群上部(H6~15)重新命名为宽沟群,时代为早—中奥陶世,其间的假整合可能就是吉—黑地区的兴凯运动面。重新厘定的白云鄂博群与宽沟群一并划归天山-兴安地层区内蒙古草原地层分区,它是天山-兴安古生代海槽的一部分,并为海槽最南端的一个加里东褶皱带。  相似文献   
设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号