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   452114篇
  免费   3030篇
  国内免费   1060篇
化学   211558篇
晶体学   6962篇
力学   24693篇
综合类   7篇
数学   65581篇
物理学   147403篇
  2020年   3313篇
  2019年   3895篇
  2018年   11864篇
  2017年   12463篇
  2016年   10349篇
  2015年   4508篇
  2014年   7003篇
  2013年   16032篇
  2012年   15365篇
  2011年   24196篇
  2010年   16460篇
  2009年   16757篇
  2008年   21756篇
  2007年   24516篇
  2006年   12888篇
  2005年   16048篇
  2004年   13066篇
  2003年   12278篇
  2002年   10860篇
  2001年   11201篇
  2000年   8684篇
  1999年   6570篇
  1998年   5737篇
  1997年   5477篇
  1996年   5318篇
  1995年   4773篇
  1994年   4721篇
  1993年   4785篇
  1992年   4929篇
  1991年   5355篇
  1990年   5037篇
  1989年   5081篇
  1988年   4984篇
  1987年   4901篇
  1986年   4608篇
  1985年   6097篇
  1984年   6291篇
  1983年   5144篇
  1982年   5468篇
  1981年   5283篇
  1980年   5016篇
  1979年   5374篇
  1978年   5640篇
  1977年   5540篇
  1976年   5720篇
  1975年   5269篇
  1974年   5216篇
  1973年   5432篇
  1972年   4053篇
  1971年   3487篇
排序方式: 共有10000条查询结果,搜索用时 31 毫秒
91.
92.
93.
94.
Physics of Atomic Nuclei - We have studied the mechanisms influencing production of cumulative pions and protons in the fragmentation of the incident deuterons into cumulative pions and protons...  相似文献   
95.
96.
Journal of Solid State Electrochemistry - The “shuttle effect” of polysulfides is a serious issue, resulting in a decrease in the life-cycle of lithium-sulfur (Li-S) batteries. To...  相似文献   
97.
98.
Injection-moulding is one of the most common manufacturing processes used for polymers. In many applications, the mechanical properties of the product is of great importance. Injection-moulding of thin-walled polymer products tends to leave the polymer structure in a state where the mechanical properties are anisotropic, due to alignment of polymer chains along the melt flow direction. The anisotropic elastic-viscoplastic properties of low-density polyethylene, that has undergone an injection-moulding process, are therefore examined in the present work. Test specimens were punched out from injection-moulded plates and tested in uniaxial tension. Three in-plane material directions were investigated. Because of the small thickness of the plates, only the in-plane properties could be determined. Tensile tests with both monotonic and cyclic loading were performed, and the local strains on the surface of the test specimens were measured using image analysis. True stress vs. true strain diagrams were constructed, and the material response was evaluated using an elastic-viscoplasticity law. The components of the anisotropic compliance matrix were determined together with the direction-specific plastic hardening parameters.  相似文献   
99.
Erosion and sediments transport processes have a great impact on industrial structures and on water quality. Despite its limitations, the Saint‐Venant‐Exner system is still (and for sure for some years) widely used in industrial codes to model the bedload sediment transport. In practice, its numerical resolution is mostly handled by a splitting technique that allows a weak coupling between hydraulic and morphodynamic distinct softwares but may suffer from important stability issues. In recent works, many authors proposed alternative methods based on a strong coupling that cure this problem but are not so trivial to implement in an industrial context. In this work, we then pursue 2 objectives. First, we propose a very simple scheme based on an approximate Riemann solver, respecting the strong coupling framework, and we demonstrate its stability and accuracy through a number of numerical test cases. However, second, we reinterpret our scheme as a splitting technique and we extend the purpose to propose what should be the minimal coupling that ensures the stability of the global numerical process in industrial codes, at least, when dealing with collocated finite volume method. The resulting splitting method is, up to our knowledge, the only one for which stability properties are fully demonstrated.  相似文献   
100.
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