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   4175篇
  免费   1319篇
  国内免费   2046篇
测绘学   71篇
大气科学   2668篇
地球物理   817篇
地质学   2314篇
海洋学   299篇
天文学   21篇
综合类   226篇
自然地理   1124篇
  2024年   13篇
  2023年   88篇
  2022年   201篇
  2021年   262篇
  2020年   252篇
  2019年   293篇
  2018年   242篇
  2017年   225篇
  2016年   219篇
  2015年   255篇
  2014年   318篇
  2013年   338篇
  2012年   325篇
  2011年   290篇
  2010年   283篇
  2009年   365篇
  2008年   362篇
  2007年   392篇
  2006年   415篇
  2005年   324篇
  2004年   269篇
  2003年   243篇
  2002年   239篇
  2001年   252篇
  2000年   219篇
  1999年   174篇
  1998年   137篇
  1997年   115篇
  1996年   104篇
  1995年   65篇
  1994年   54篇
  1993年   56篇
  1992年   32篇
  1991年   43篇
  1990年   25篇
  1989年   17篇
  1988年   8篇
  1987年   4篇
  1986年   3篇
  1985年   4篇
  1984年   1篇
  1983年   2篇
  1982年   1篇
  1981年   1篇
  1980年   2篇
  1978年   1篇
  1977年   3篇
  1954年   4篇
排序方式: 共有7540条查询结果,搜索用时 125 毫秒
81.
青藏高原西部阿汝冰芯记录的近100 a气温变化研究   总被引:2,自引:2,他引:0  
以2017年9月钻取自青藏高原西部阿汝冰崩区长度55.29 m的阿汝冰芯为研究对象,通过冰芯δ18O记录与Nye模型重建了冰芯上部17.87 m的时间序列是1917—2016年。结合冰芯邻近的改则、狮泉河气象站1973—2016年夏季平均气温数据,通过相关性分析及线性回归法、Mann-Kendall(M-K)检验分析,发现冰芯与气象站记录的过去44年气温显著升高;根据M-K突变检验得出,20世纪80年代是气温变化由高—低—高的转折时期,且阿汝冰芯记录的突变年份1981年前后气温上升约1.97 ℃。同样地,采用线性回归法、M-K检验分析阿汝冰芯与邻近的古里雅冰芯共同记录的1917—1991年气温变化情况,发现两支冰芯记录的75年间气温变化总体呈上升趋势;根据M-K突变检验得出,升温始于20世纪30年代中后期并于50年代达到显著升温的趋势,且阿汝冰芯记录的突变年份1949年前后气温上升了约1.1 ℃。阿汝冰芯与气象站和古里雅冰芯记录的气温变化具有一致的升温趋势,但阿汝冰芯记录的增温幅度比气象站记录高,同时比古里雅冰芯记录的增温幅度小。  相似文献   
82.
宋艾  杨久成  丁文娜  刘佳 《冰川冻土》2021,43(3):786-797
近年来,随着DNA测序技术的发展,青藏高原及周边地区的生物地理学研究取得重大成果,从生物演化方面着手探讨了青藏高原隆升历史及其气候效应。综合近年来地质学、古生物学与生物地理学研究进展,我们发现高原及周边地区高寒生物类群的起源和分化时间以及多样性演化过程表明早在渐新世青藏高原部分地区就已经存在高寒生态系统,晚中新世以来青藏高原不同组成部分的地貌与气候格局发生重大改变,高寒生物的祖先类群不断迁入正在生长的高原或在高原上就地演化出适应高寒生境的新物种。晚上新世高寒区物种分化速率快速升高,多样性增加,可能是高原巨大山系和水系以及冰川作用造成地理隔离的结果。同时,生物地理学研究发现青藏高原及周边地区的高寒区与北半球高纬度地区存在密切联系,在第四纪冰期期间并未形成覆盖整个青藏高原的大冰盖,高原面上仍存在很多生物避难所。地质学、古生物学与生物地理学等进行的多学科交叉研究对全方位理解青藏高原隆升历史及其气候效应具有重要意义。  相似文献   
83.
陇中盆地及周边地区是青藏高原向北东方向扩展的最前缘部位,其地貌演化过程的研究对于深入理解高原的隆升与扩展过程具有重要意义。鉴于夷平面在探讨高原隆升年代、幅度和过程方面的可靠性,首先总结陇中盆地及周边地区夷平面相关研究的前期成果,并结合最新年代数据,确定了不同区域主夷平面的发育和解体年代;再利用古河道拟合等方法定量评估了相关夷平面的隆升量;最后探讨了主夷平面的性质及其隆升过程。研究发现,陇中盆地及周边的地区的高海拔低起伏地貌面是被抬高的先存夷平面;不同区域主夷平面的发育与解体时间整体同步,它们自晚渐新世开始发育,并于晚中新世8~6 Ma左右解体;模拟结果表明,美武高原主夷平面自晚中新世以来相对陇中盆地隆升了约1 400~1 600 m,并且早更新世以来的隆升速率明显大于晚中新世-早更新世时期。  相似文献   
84.
青藏高原气候变化若干前沿科学问题   总被引:9,自引:2,他引:7  
在全球变化的背景下,青藏高原冰冻圈和大气圈正在发生快速变化,对“亚洲水塔”和“第三极”的生态环境带来深刻影响。研究并梳理了近年来青藏高原气候变化的若干前沿科学问题的研究进展,如高原极端气候事件变化及其与大气环流的关系;高原变暖放大效应及海拔依赖型变暖的物理机制;再分析资料在高原气候变化应用的适用性;气候模式在高原资料稀缺地区的模拟偏差特征及不确定性;以及不同升温阈值下高原气候变化的预估及其风险等。同时展望了高原气候变化研究的前沿问题和科学难点。认清高原气候变化研究的前沿科学问题,可为“一带一路”倡议顺利实施提供科学依据。  相似文献   
85.
曹瑜  游庆龙  蔡子怡 《冰川冻土》2021,43(5):1290-1300
采用一元线性回归、合成分析等方法对1961—2019年青藏高原中东部71个站点夏季强降水与大尺度环流进行了分析,研究结果表明,近年来青藏高原中东部强降水呈增加趋势。在强降水高值年时,青藏高原中东部水汽辐合加强,中纬度西风和热带地区东风带向极移动加强,高层辐散流场、水汽输送以及上升运动条件,共同作用导致了强降水的产生。在强降水低值年时,青藏高原中东部大部水汽异常辐散,区域内的季风水汽输送减弱,西风带和东风带均向赤道移动减弱,高层为气旋式环流异常。通过风暴轴、波作用通量和E-P通量进一步分析发现,当北大西洋地区风暴轴偏强(偏弱)时,瞬变扰动作用加强(减弱),使得北大西洋地区高纬度西风加速(减弱),急流出口区的不稳定能量激发了欧洲西北部的异常反气旋(异常气旋),并通过Rossby波列调控季风输送,导致了青藏高原中东部地区强降水的变化。  相似文献   
86.
青藏高原多年冻土区冻融循环过程对地表能量及其分配的影响研究相对较少,青藏高原唐古拉站多年冻土的实测资料,依据10 cm土壤温度划分浅层土壤冻融循环的各个阶段并结合能量闭合率、地表能量各通量等数据探讨浅层土壤冻融循环过程与地气间水热交换过程之间的影响。结果表明:浅层土壤冻融循环过程各阶段均受气候变化的影响,其融化过程起始时间提前同时冻结过程起始时间推后,完全融化阶段持续时间增加,且逐渐接近完全冻结阶段持续时间;在浅层土壤不同冻融状态下,能量闭合率差值较大,其中完全融化阶段能量闭合状况普遍好于完全冻结阶段;净辐射值在完全融化阶段高于完全冻结阶段,净辐射在完全冻结阶段主要转化为感热通量,在完全融化阶段主要转化为潜热通量,地表土壤热通量在完全融化阶段为正值,在完全冻结阶段为负值。  相似文献   
87.
花海断裂位于河西走廊西段花海盆地内,总体走向NNW-SSE,长约38 km,为一条隐伏断裂,研究其空间展布、运动性质和活动历史对于理解青藏高原北缘的构造变形和扩展方式有重要意义.基于卫片解译、野外实地和槽探,结合光释光测年和地球物理资料,发现沿双泉子、大泉至小泉一带,发育一段长约8 km的地形陡坎,代表断裂控制下褶皱作用的地形表现.沿陡坎走向向南,断裂一直隐伏延伸至宽滩山和黑山以北.现有资料分析表明,断裂经历了早白垩世的正断、晚白垩的逆冲运动.新生代以来,断裂继承了之前的逆冲运动并一直持续至全新世中晚期.高原北缘的侧向扩展,使得作为三危山与阿尔金断裂之间块体边界的三危山、干峡山、宽滩山和塔尔湾-登登山-池家刺窝断裂发生以左旋走滑为主兼有逆冲的变形,导致了边界断裂控制山体的隆升,而内部的块体受压剪作用向北东运动.花海断裂的逆冲运动即是该次构造活动事件的响应.   相似文献   
88.
《China Geology》2021,4(1):147-177
The Qinghai-Tibet Plateau (also referred to as the Plateau) has long received much attention from the community of geoscience due to its unique geographical location and rich mineral resources. This paper reviews the aeromagnetic surveys in the Plateau in the past 60 years and summarizes relevant research achievements, which mainly include the followings. (1) The boundaries between the Plateau and its surrounding regions have been clarified. In detail, its western boundary is restricted by West Kunlun-Altyn Tagh arc-shaped magnetic anomaly zone forming due to the arc-shaped connection of the Altyn Tagh and Kangxiwa faults and its eastern boundary consists of the boundaries among different magnetic fields along the Longnan (Wudu)-Kangding Fault. Meanwhile, the fault on the northern margin of the Northern Qilian Mountains serves as its northern boundary. (2) The Plateau is mainly composed of four orogens that were stitched together, namely East Kunlun-Qilian, Hoh-Xil-Songpan, Chamdo-Southwestern Sanjiang (Nujiang, Lancang, and Jinsha rivers in southeastern China), and Gangdese-Himalaya orogens. (3) The basement of the Plateau is dominated by weakly magnetic Proterozoic metamorphic rocks and lacks strongly magnetic Archean crystalline basement of stable continents such as the Tarim and Sichuan blocks. Therefore, it exhibits the characteristics of unstable orogenic basement. (4) The Yarlung-Zangbo suture zone forming due to continent-continent collisions since the Cenozoic shows double aeromagnetic anomaly zones. Therefore, it can be inferred that the Yarlung-Zangbo suture zone formed from the Indian Plate subducting towards and colliding with the Eurasian Plate twice. (5) A huge negative aeromagnetic anomaly in nearly SN trending has been discovered in the middle part of the Plateau, indicating a giant deep thermal-tectonic zone. (6) A dual-layer magnetic structure has been revealed in the Plateau. It consists of shallow magnetic anomaly zones in nearly EW and NW trending and deep magnetic anomaly zones in nearly SN trending. They overlap vertically and cross horizontally, showing the flyover-type geological structure of the Plateau. (7) A group of NW-trending faults occur in eastern Tibet, which is intersected rather than connected by the nearly EW trending that develop in middle-west Tibet. (8) As for the central uplift zone that occurs through the Qiangtang Basin, its metamorphic basement tends to gradually descend from west to east, showing the form of steps. The Qiangtang Basin is divided into the northern and southern part by the central uplift zone in it. The basement in the Qiangtang Basin is deep in the north and west and shallow in the south and west. The basement in the northern Qiangtang Basin is deep and relatively stable and thus is more favorable for the generation and preservation of oil and gas. Up to now, 19 favorable tectonic regions of oil and gas have been determined in the Qiangtang Basin. (9) A total of 21 prospecting areas of mineral resources have been delineated and thousands of ore-bearing (or mineralization) anomalies have been discovered. Additionally, the formation and uplift mechanism of the Plateau are briefly discussed in this paper.©2021 China Geology Editorial Office.  相似文献   
89.
《China Geology》2021,4(1):77-94
The Chayu area is located at the southeastern margin of the Qinghai-Tibet Plateau. This region was considered to be in the southeastward extension of the Lhasa Block, bounded by Nujiang suture zone in the north and Yarlung Zangbo suture zone in the south. The Demala Group complex, a set of high-grade metamorphic gneisses widely distributed in the Chayu area, is known as the Precambrian metamorphic basement of the Lhasa Block in the area. According to field-based investigations and microstructure analysis, the Demala Group complex is considered to mainly consist of banded biotite plagiogneisses, biotite quartzofeldspathic gneiss, granitic gneiss, amphibolite, mica schist, and quartz schist, with many leucogranite veins. The zircon U-Pb ages of two granitic gneiss samples are 205 ± 1 Ma and 218 ± 1 Ma, respectively, representing the ages of their protoliths. The zircons from two biotite plagiogneisses samples show core-rim structures. The U-Pb ages of the cores are mainly 644 –446 Ma, 1213 –865 Ma, and 1780 –1400 Ma, reflecting the age characteristics of clastic zircons during sedimentation of the original rocks. The U-Pb ages of the rims are from 203 ± 2 Ma to 190 ± 1 Ma, which represent the age of metamorphism. The zircon U-Pb ages of one sample taken from the leucogranite veins that cut through granitic gneiss foliation range from 24 Ma to 22 Ma, interpreted as the age of the anatexis in the Demala Group complex. Biotite and muscovite separates were selected from the granitic gneiss, banded gneiss, and leucogranite veins for 40Ar/39Ar dating. The plateau ages of three muscovite samples are 16.56 ± 0.21 Ma, 16.90 ± 0.21 Ma, and 23.40 ± 0.31 Ma, and the plateau ages of four biotite samples are 16.70 ± 0.24 Ma, 16.14 ± 0.19 Ma, 15.88 ± 0.20 Ma, and 14.39 ± 0.20 Ma. The mica Ar-Ar ages can reveal the exhumation and cooling history of the Demala Group complex. Combined with the previous research results of the Demala Group complex, the authors refer that the Demala Group complex should be a set of metamorphic complex. The complex includes not only Precambrian basement metamorphic rock series, but also Paleozoic sedimentary rock and Mesozoic granitic rock. Based on the deformation characteristics, the authors concluded that two stages of the metamorphism and deformation can be revealed in the Demala Group complex since the Mesozoic, namely Late Triassic-Early Jurassic (203 –190 Ma) and Oligocene –Miocene (24 –14 Ma). The early stage of metamorphism (ranging from 203 –190 Ma) was related to the Late Triassic tectono-magmatism in the area. The anatexis and uplifting-exhumation of the later stage (24 –14 Ma) were related to the shearing of the Jiali strike-slip fault zone. The Miocene structures are response to the large-scale southeastward escape of crustal materials and block rotation in Southeast Tibet after India-Eurasia collision.©2021 China Geology Editorial Office.  相似文献   
90.
《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   
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