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   1027篇
  免费   195篇
  国内免费   358篇
测绘学   3篇
大气科学   4篇
地球物理   321篇
地质学   995篇
海洋学   62篇
天文学   1篇
综合类   18篇
自然地理   176篇
  2024年   5篇
  2023年   21篇
  2022年   47篇
  2021年   63篇
  2020年   58篇
  2019年   56篇
  2018年   68篇
  2017年   60篇
  2016年   49篇
  2015年   56篇
  2014年   39篇
  2013年   58篇
  2012年   76篇
  2011年   40篇
  2010年   45篇
  2009年   63篇
  2008年   52篇
  2007年   79篇
  2006年   69篇
  2005年   52篇
  2004年   71篇
  2003年   57篇
  2002年   47篇
  2001年   38篇
  2000年   38篇
  1999年   33篇
  1998年   30篇
  1997年   35篇
  1996年   35篇
  1995年   24篇
  1994年   23篇
  1993年   25篇
  1992年   18篇
  1991年   10篇
  1990年   9篇
  1989年   9篇
  1988年   15篇
  1987年   1篇
  1986年   5篇
  1983年   1篇
排序方式: 共有1580条查询结果,搜索用时 31 毫秒
71.
张修政  董永胜  李才  解超明  王明  邓明荣  张乐 《岩石学报》2014,30(10):2821-2834
羌塘中部晚三叠世低温/高压变质带是目前青藏高原内部延伸规模最大的高压变质带,但大量关键高压变质岩石出露地区地球化学资料匮乏,严重制约了对高压变质带原岩建造以及构造演化的全面认识。本文以羌塘中西部地区尚无地球化学资料的果干加年山榴辉岩和红脊山蓝片岩为研究对象,进行了系统的地球化学以及原岩恢复工作。研究表明,果干加年山榴辉岩呈透镜状产于围岩石榴石多硅白云母片岩和少量大理岩中,其原岩为亚碱性玄武岩,具有较低的稀土总量(∑REE=51.19×10-6~59.43×10-6)和轻稀土亏损的特征[(La/Yb)N=0.59~0.70],不具有Nb、Ta、Ti的亏损,与典型的N-MORB特征一致,暗示其原岩可能来源于亏损的地幔源区,形成于洋中脊环境。红脊山地区基性蓝片岩的原岩为碱性玄武岩-亚碱性玄武岩,具有高的TiO2(2.97%~4.14%)和P2O5(0.29%~0.48%)含量,富集轻稀土元素[(La/Yb)N=6.10~11.6]和高场强元素,地球化学特征类似于OIB。但是这些基性蓝片岩与大量的陆源碎屑岩伴生产出,且具有明显的硅铝质上地壳物质混染的特征,与南羌塘地区二叠纪大陆板内基性岩墙的产出特征以及地壳混染特征一致,可能是其俯冲消减的产物。通过本文研究结果并结合区域内已识别出的E-MORB型洋壳和洋岛/海山物质深俯冲的证据,我们认为羌塘中部晚三叠世高压变质带以洋壳物质深俯冲为主,同时亦保留了部分陆壳物质俯冲的证据,暗示大洋向北俯冲消减结束之后,又牵引至少一部分南羌塘北缘陆壳物质经历了随后的俯冲过程。  相似文献   
72.
McIntosh  K.  Akbar  F.  Calderon  C.  Stoffa  P.  Operto  S.  Christeson  G.  Nakamura  Y.  Shipley  T.  Flueh  E.  Stavenhagen  A.  Leandro  G. 《Marine Geophysical Researches》2000,21(5):451-474
In March and April 1995 a cooperative German, Costa Rican, and United States research team recorded onshore-offshore seismic data sets along the Pacific margin of Costa Rica using the R/V Ewing. Off the Nicoya Peninsula we used a linear array of ocean bottom seismometers and hydrophones (OBS/H) with onshore seismometers extending across much of the isthmus. In the central area we deployed an OBS/H areal array consisting of 30 instruments over a 9 km by 35-km area and had land stations on the Nicoya Peninsula adjacent to this marine array and also extending northeast on the main Costa Rican landmass. Our goal in these experiments was to determine the crustal velocity structure along different portions of this convergent margin and to use the dense instrument deployments to create migrated reflection images of the plate boundary zone and the subducting Cocos Plate. Our specific goal in the central area was to determine whether a subducted seamount is present at the location of the 1990, M 7 earthquake off the Nicoya Peninsula and can thus be linked to its nucleation. Subsequently we have processed the data to improve reflection signals, used the data to calculate crustal velocity models, and developed several wide-aperture migration techniques, based on a Kirchhoff algorithm, to produce reflection images. Along the northern transect we used the ocean bottom data to construct a detailed crustal velocity model, but reflections from the plate boundary and top and bottom of the subducting Cocos plate are difficult to identify and have so far produced poor images. In contrast, the land stations along this same transect recorded clear reflections from the top of the subducting plate or plate boundary, within the seismogenic zone, and we have constructed a clear image from this reflector beneath the Nicoya shelf. Data from the 3-D seismic experiment suffer from high-amplitude, coherent noise (arrivals other than reflections), and we have tried many techniques to enhance the signal to noise ratio of reflected arrivals. Due to the noise, an apparent lack of strong reflections from the plate boundary zone, and probable structural complexity, the resulting 3-D images only poorly resolve the top of the subducting Cocos Plate. The images are not able to provide compelling evidence of whether there is a subducting seamount at the 1990 earthquake hypocenter. Our results do show that OBS surveys are capable of creating images of the plate boundary zone and the subducting plate well into the seismogenic zone if coherent reflections are recorded at 1.8 km instrument spacing (2-D) and 5 km inline by 1 km crossline spacing for 3-D acquisition. However, due to typical high amplitude coherent noise, imaging results may be poorer than expected, especially in unfavorable geologic settings such as our 3-D survey area. More effective noise reduction in acquisition, possibly with the use of vertical hydrophone arrays, and in processing, with advanced multiple removal and possibly depth filtering, is required to achieve the desired detailed images of the seismogenic plate boundary zone.  相似文献   
73.
大地震在哪里发生是地震预报首先要解决的问题.利用反演GNSS观测数据得到的2011年日本东北9级大地震前7年(2004-2010年)断层上的应力变化,我们发现了这次地震断层的孕震区.为了进一步研究该孕震区的演化过程,本文继续反演这次大地震在1997-2003年间的断层应力变化过程.通过这两期的反演工作,我们看到,在这1...  相似文献   
74.
克拉通是地球上最古老的大陆地块。克拉通之所以能够长期稳定存在,主要是因为它具有巨厚、刚性的岩石圈地幔。古老克拉通岩石圈地幔具有高度难熔(富Mg、贫Fe)的特点,其密度较下伏软流圈小,能够“漂浮”在软流圈之上而长期存在。古老克拉通岩石圈地幔是在地球早期壳幔分异之后形成的,其形成可能与大洋板块的俯冲作用密切相关。典型的克拉通没有大规模的火山活动和大地震,因此,传统理论认为克拉通是稳定的。然而,越来越多的研究表明,克拉通并非一成不变,它会被改造和破坏,从而失去稳定性。造成克拉通破坏的原因是大洋板块的俯冲作用。在大洋板块俯冲触发的地球深部动力学过程中,克拉通赖以稳定存在的刚性岩石圈地幔遭受改造和破坏,岩石圈地幔的物质组成和物理化学性质发生转变,进而导致克拉通的破坏。  相似文献   
75.
中亚造山带是世界上最大的显生宙增生型造山带,是研究增生造山过程和大陆地壳生长的绝佳场所,其形成记录了新元古代—早中生代古亚洲洋发展演化历程,主要由一系列微陆块、岛弧、海山/大洋高原、增生杂岩及蛇绿混杂岩构成。中亚造山带西段蛇绿混杂岩物质组成基本一致,除了典型的蛇绿岩组分外,大多发育典型的海山岩石组合,即枕状玄武岩、火山角砾岩、礁灰岩、滑塌堆积岩、陆源碎屑岩。蛇绿混杂岩中基性岩在地球化学上可明显分为两类:一类为洋中脊玄武岩型,属于拉斑系列,显示俯冲带特征;另一类为洋岛玄武岩型,属于碱性玄武岩系列,形成于海山/大洋高原环境。中亚造山带西段蛇绿混杂岩和变质岩的时代、属性及空间分布,表明古亚洲洋俯冲起始时限不晚于新元古代早期,位置应在西伯利亚南缘,并逐渐向南发展。在古亚洲洋发育早期,地幔柱诱发俯冲起始占主导地位,后期可能由于海山/大洋高原阻塞俯冲通道,导致俯冲极性翻转和跃迁,从而发生俯冲起始。实际上,新俯冲带如何起始一直是地球科学领域的难点问题,主要原因是俯冲起始是一个极其短暂的过程,缺少直接的地质记录,并且现今地球上鲜有正在发生的俯冲起始案例。因此,需要地质学家共同努力去揭秘古亚洲洋的前世今生,破解板块俯冲起始的奥秘。  相似文献   
76.
东秦岭造山带总体上可划分为中元古代-古生代主要与裂谷、坳陷槽有关的海盆同生沉积成矿以及中生代与大规模陆内俯冲造山体制有关的后生热液成矿两大阶段,且中生代所形成的浅成和中深成两类热液矿床在横向上分带并呈相邻平行展布,成对共生,构成双成矿带,其形成机制是扬子地块及华北地块分别往秦岭发生陆内俯冲,使与挤压、转换挤压-变质变形、深成侵入-深源流体成矿系统有关的中深成热液型矿床形成于仰冲板片前缘的推覆-隆升带中;而使与伸展-高地热场(火山、浅成侵入)-地热流体成矿系统有关的浅成热液型矿床形成于推覆-隆升带后侧的同碰撞伸展带中.  相似文献   
77.
Continent subduction is one of the hot research problems in geoscience. New models presented here have been set up and two-dimensional numerical modeling research on the possibility of continental subduction has been made with the finite element software, ANSYS, based on documentary evidence and reasonable assumptions that the subduction of oceanic crust has occurred, the subduction of continental crust can take place and the process can be simplified to a discontinuous plane strain theory model. The modeling results show that it is completely possible for continental crust to be subducted to a depth of 120 km under certain circumstances and conditions. At the same time, the simulations of continental subduction under a single dynamical factor have also been made, including the pull force of the subducted oceanic lithosphere, the drag force connected with mantle convection and the push force of the mid-ocean ridge. These experiments show that the drag force connected with mantle convection is critical fo  相似文献   
78.
79.
80.
Sodic metapelites with jadeite, chloritoid, glaucophane and lawsonite form a coherent regional metamorphic sequence, several tens of square kilometres in size, and over a kilometre thick, in the Orhaneli region of northwest Turkey. The low‐variance mineral assemblage in the sodic metapelites is quartz + phengite + jadeite + glaucophane + chloritoid + lawsonite. The associated metabasites are characterized by sodic amphibole + lawsonite ± garnet paragenesis. The stable coexistence of jadeite + chloritoid + glaucophane + lawsonite, not reported before, indicates metamorphic pressures of 24 ± 3 kbar and temperatures of 430 ± 30 °C for the peak blueschist facies conditions. These P–T conditions correspond to a geotherm of 5 °C km?1, one of the lowest recorded in continental crustal rocks. The low geotherm, and the known rate of convergence during the Cretaceous subduction suggest low shear stresses at the top of the downgoing continental slab.  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