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   327582篇
  免费   1375篇
  国内免费   693篇
化学   135487篇
晶体学   4232篇
力学   20995篇
综合类   7篇
数学   71035篇
物理学   97894篇
  2020年   1954篇
  2019年   2435篇
  2018年   18896篇
  2017年   19339篇
  2016年   12491篇
  2015年   3360篇
  2014年   4125篇
  2013年   7807篇
  2012年   12331篇
  2011年   25426篇
  2010年   16031篇
  2009年   16672篇
  2008年   20701篇
  2007年   25346篇
  2006年   6300篇
  2005年   11677篇
  2004年   8987篇
  2003年   9204篇
  2002年   6825篇
  2001年   5420篇
  2000年   4335篇
  1999年   3081篇
  1998年   2883篇
  1997年   2652篇
  1996年   2630篇
  1995年   2287篇
  1994年   2196篇
  1993年   2241篇
  1992年   2220篇
  1991年   2528篇
  1990年   2432篇
  1989年   2526篇
  1988年   2413篇
  1987年   2437篇
  1986年   2260篇
  1985年   2802篇
  1984年   2821篇
  1983年   2467篇
  1982年   2509篇
  1981年   2409篇
  1980年   2212篇
  1979年   2542篇
  1978年   2704篇
  1977年   2699篇
  1976年   2814篇
  1975年   2608篇
  1974年   2526篇
  1973年   2746篇
  1972年   2211篇
  1971年   2009篇
排序方式: 共有10000条查询结果,搜索用时 15 毫秒
81.
82.
83.
84.
85.
A model of the explosive fragmentation of a thin ring is developed which takes into account the statistical dispersion of the relative fracture deformation along the length of the ring. A formula is proposed for calculating the velocity of the boundary of the region near a plastic rupture in which the plastic flow of the ring material ceases. Methods for the numerical and analytical calculation of the average number of fragments of the ring are developed. The calculation results are compared with available experimental data.  相似文献   
86.
In this paper, we have significantly modified an existing model for calculating the zeta potential and streaming potential coefficient of porous media and tested it with a large, recently published, high-quality experimental dataset. The newly modified model does not require the imposition of a zeta potential offset but derives its high salinity zeta potential behaviour from Stern plane saturation considerations. The newly modified model has been implemented as a function of temperature, salinity, pH, and rock microstructure both for facies-specific aggregations of the new data and for individual samples. Since the experimental data include measurements on samples of both detrital and authigenic overgrowth sandstones, it was possible to model and test the effect of widely varying microstructural properties while keeping lithology constant. The results show that the theoretical model represents the experimental data very well when applied to model data for a particular lithofacies over the whole salinity, from 10?5 to 6.3 mol/dm3, and extremely well when modelling individual samples and taking individual sample microstructure into account. The new model reproduces and explains the extreme sensitivity of zeta and streaming potential coefficient to pore fluid pH. The low salinity control of streaming potential coefficient by rock microstructure is described well by the modified model. The model also behaves at high salinities, showing that the constant zeta potential observed at high salinities arises from the development of a maximum charge density in the diffuse layer as it is compressed to the thickness of one hydrated metal ion.  相似文献   
87.
Lithuanian Mathematical Journal - For sequences of d + 1 signs + and ? beginning with a + and having exactly two variations of sign, we give some sufficient conditions for the (non)existence...  相似文献   
88.
89.
90.
In this work, the effect of various properties of materials on vacuum breakdown initiated by laser radiation is considered. Estimating calculations are performed which show that the material of the target electrode distinctly affects the minimum energy of laser radiation needed for igniting a vacuum spark. The experimental studies carried out confirm the estimating calculations, and a number of materials are revealed which can be arranged in order of increase in the energy needed for the formation of breakdown in vacuum by the impact of a laser pulse.  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