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   66162篇
  免费   1121篇
  国内免费   493篇
测绘学   1634篇
大气科学   5272篇
地球物理   13722篇
地质学   21401篇
海洋学   5715篇
天文学   15214篇
综合类   133篇
自然地理   4685篇
  2020年   473篇
  2019年   495篇
  2018年   933篇
  2017年   916篇
  2016年   1362篇
  2015年   1011篇
  2014年   1413篇
  2013年   3235篇
  2012年   1488篇
  2011年   2271篇
  2010年   1938篇
  2009年   2917篇
  2008年   2657篇
  2007年   2390篇
  2006年   2455篇
  2005年   2131篇
  2004年   2234篇
  2003年   2059篇
  2002年   1963篇
  2001年   1774篇
  2000年   1746篇
  1999年   1504篇
  1998年   1490篇
  1997年   1481篇
  1996年   1272篇
  1995年   1209篇
  1994年   1090篇
  1993年   994篇
  1992年   943篇
  1991年   799篇
  1990年   1008篇
  1989年   848篇
  1988年   752篇
  1987年   926篇
  1986年   816篇
  1985年   1019篇
  1984年   1181篇
  1983年   1123篇
  1982年   1016篇
  1981年   976篇
  1980年   833篇
  1979年   815篇
  1978年   867篇
  1977年   787篇
  1976年   749篇
  1975年   695篇
  1974年   703篇
  1973年   708篇
  1972年   440篇
  1971年   384篇
排序方式: 共有10000条查询结果,搜索用时 15 毫秒
851.
852.
853.
854.
855.
856.
Although collision in eastern Indonesia is now accreting the Australian continent to Southeast Asia, the small North and South Banda oceanic basins within the suture zone are interpreted as Late Cenozoic extensional features. Stratigraphic columns from the surrounding islands conform to one of three generalised patterns, two of which can be related to the margins of SE Asia (Sundaland) and the Australian continent, respectively. The third system, which is dominant in the outer Banda Arc and eastern Sulawesi, is associated with a microcontinent that was rifted from Australia in the Jurassic, drifted northwards ahead of Australia in the Cretaceous and collided with the Sundaland Margin in the Paleogene. Subsequent collapse of the resulting collision orogen led to rapid extension and the formation of the Banda Sea behind the Outer Banda Arc thrust belt. Eastern Indonesia thus duplicates a pattern familiar in the Mediterranean. The Tertiary compressional structures of the region cannot be explained solely in terms of the most recent collision, which began only in the Pliocene.  相似文献   
857.
858.
Theoretical stability relations have been derived between the phases cordierite (Cd), garnet (Ga), hypersthene (Hy), olivine (Ol), sapphirine (Sa), spinel (Sp), sillimanite (Si) and quartz (Qz) in the system MgO-FeO-Al2O3-SiO2. Natural rock data and experimental evidence suggest that the Mg/Mg+Fe2+ ratio (X) of coexisting ferromagnesian phases decreases as follows: X Cd>X Sa>X Hy>X Ol>X Sp>X Ga. By use of this information four stable invariant points are proposed involving the phases: Cd, Hy, Sa, Ga, Si, Qz; Cd, Sa, Ga, Sp, Si, Qz; Cd, Hy, Sa, Ga, Sp, Qz; Cd, Ga, Hy, Ol, Sp, Qz. All univariant curves in the system are nonterminal, representing the breakdown of a join rather than the stability limit of an individual phase. A detailed treatment of divariant equilibria involving two and three ferromagnesian solid solutions illustrates the potential of these equilibria as Pressure-Temperature indicators. Interactions between solid-solid reactions and dehydration reactions involving biotite in the system MgO-FeO-Al2O3-SiO2-K2O-H2O have been graphically analysed. The addition of biotite to anhydrous divariant assemblages does not affect the composition of coexisting phases at constant P and T but can affect their relative proportions.  相似文献   
859.
860.
We analytically relate hydrostatic stress to strain in a random dense pack of identical spheres cemented at their contacts. The spheres are elastic and the cement is perfectly plastic. This solution for the sphere pack is based on a solution for the normal interaction of two cemented spheres. Initially, the two spheres touch each other at a point. We show that, as loading increases and cement becomes plastic, a finite (Hertzian) direct-contact area between the spheres necessarily has to develop and progress. The stress-strain behavior of the pack depends on the cement's yield limit and on the amount of cement. At the same hydrostatic stress, the deformation of the cemented aggregate is smaller than that of the uncemented one. This difference becomes large as the yield limit increases. We calculate the bulk modulus of an aggregate from the stress-strain curve. In the plasticity domain, the bulk modulus of the cemented aggregate is smaller than that of the uncemented one. The difference between the two may easily reach 50%. Of course, as the cement's yield limit decreases, the aggregate's stress-strain curve and the bulk modulus approach those of the uncemented sphere pack. This theoretical conclusion is qualitatively supported by experiments on epoxy-cemented glass beads. The maximum contact stress in the cemented aggregate may be less than a half of that in the uncemented one. This result explains an experiment where an uncemented glass bead sample failed at a hydrostatic stress of 50 MPa, whereas an epoxy-cemented sample stayed intact.  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