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   1348562篇
  免费   30737篇
  国内免费   8938篇
化学   677834篇
晶体学   20322篇
力学   75164篇
综合类   181篇
数学   241686篇
物理学   373050篇
  2021年   13846篇
  2020年   16267篇
  2019年   16434篇
  2016年   27982篇
  2015年   21049篇
  2014年   30799篇
  2013年   74969篇
  2012年   38486篇
  2011年   35261篇
  2010年   37152篇
  2009年   39424篇
  2008年   34411篇
  2007年   29932篇
  2006年   36763篇
  2005年   28592篇
  2004年   30117篇
  2003年   28374篇
  2002年   29662篇
  2001年   29415篇
  2000年   25453篇
  1999年   22851篇
  1998年   21210篇
  1997年   21165篇
  1996年   21209篇
  1995年   19269篇
  1994年   18711篇
  1993年   18235篇
  1992年   18400篇
  1991年   18626篇
  1990年   17911篇
  1989年   17922篇
  1988年   17474篇
  1987年   17460篇
  1986年   16368篇
  1985年   22797篇
  1984年   23920篇
  1983年   20076篇
  1982年   21691篇
  1981年   20933篇
  1980年   20260篇
  1979年   20559篇
  1978年   21771篇
  1977年   21438篇
  1976年   21130篇
  1975年   19855篇
  1974年   19508篇
  1973年   19973篇
  1972年   14473篇
  1968年   12389篇
  1967年   12713篇
排序方式: 共有10000条查询结果,搜索用时 0 毫秒
141.
142.
143.
144.
145.
146.
147.
148.
The present work reports new experimental and numerical results of the combustion properties of hydrogen based mixtures diluted by nitrogen and steam. Spherical expanding flames have been studied in a spherical bomb over a large domain of equivalence ratios, initial temperatures and dilutions at an initial pressure of 100 kPa (Tini = 296, 363, 413 K; N2/O2 = 3.76, 5.67, 9; %Steam = 0, 20, 30). From these experiments, the laminar flame speed SL0, the Markstein length L’, the activation energy Ea and the Zel'dovich β number have been determined. These parameters were also simulated using COSILAB® in order to verify the validity of the Mével et al. [1] detailed kinetic mechanism. Other parameters as the laminar flame thickness δ and the effective Lewis number Leeff were also simulated. These new results aim at providing an extended database that will be very useful in the hydrogen combustion hazard assessment for nuclear reactor power plant new design.  相似文献   
149.
Following colonisation of South America by the Spanish, many new naturally occurring substances were sent to Europe. One of these was the silvery, unreactive metal, platinum, discovered in New Grenada in the mid-eighteenth century. It was often found in granular form, associated with gold, and the challenge to chemists was to refine it, produce it as wire or sheet, and determine its chemical properties. This interested the professor of chemistry at the University of Edinburgh, Joseph Black, who was able to obtain samples from London-based Spanish contacts, particularly Ignacio Luzuriaga. This paper examines how Black transmitted his knowledge of the metal to large numbers of students attending his annual course.  相似文献   
150.
Three‐dimensional (3D) nanometal films serving as current collectors have attracted much interest recently owing to their promising application in high‐performance supercapacitors. In the process of the electrochemical reaction, the 3D structure can provide a short diffusion path for fast ion transport, and the highly conductive nanometal may serve as a backbone for facile electron transfer. In this work, a novel polypyrrole (PPy) shell@3D‐Ni‐core composite is developed to enhance the electrochemical performance of conventional PPy. With the introduction of a Ni metal core, the as‐prepared material exhibits a high specific capacitance (726 F g?1 at a charge/discharge rate of 1 A g?1), good rate capability (a decay of 33 % in Csp with charge/discharge rates increasing from 1 to 20 A g?1), and high cycle stability (only a small decrease of 4.2 % in Csp after 1000 cycles at a scan rate of 100 mV s?1). Furthermore, an aqueous symmetric supercapacitor device is fabricated by using the as‐prepared composite as electrodes; the device demonstrates a high energy density (≈21.2 Wh kg?1) and superior long‐term cycle ability (only 4.4 % and 18.6 % loss in Csp after 2000 and 5000 cycles, respectively).  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