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   8504篇
  免费   113篇
公路运输   1955篇
综合类   666篇
水路运输   2659篇
铁路运输   796篇
综合运输   2541篇
  2022年   117篇
  2021年   64篇
  2020年   51篇
  2019年   89篇
  2018年   205篇
  2017年   129篇
  2016年   183篇
  2015年   98篇
  2014年   252篇
  2013年   1277篇
  2012年   352篇
  2011年   442篇
  2010年   301篇
  2009年   378篇
  2008年   347篇
  2007年   296篇
  2006年   235篇
  2005年   285篇
  2004年   307篇
  2003年   212篇
  2002年   205篇
  2001年   165篇
  2000年   151篇
  1999年   103篇
  1998年   132篇
  1997年   117篇
  1996年   141篇
  1995年   149篇
  1994年   87篇
  1993年   193篇
  1992年   163篇
  1991年   78篇
  1990年   84篇
  1989年   58篇
  1988年   74篇
  1987年   67篇
  1986年   59篇
  1985年   79篇
  1984年   73篇
  1983年   75篇
  1982年   74篇
  1981年   95篇
  1980年   69篇
  1979年   92篇
  1978年   58篇
  1977年   69篇
  1976年   53篇
  1975年   68篇
  1974年   50篇
  1973年   47篇
排序方式: 共有8617条查询结果,搜索用时 15 毫秒
81.
人类仿真技术在铁路系统中的应用   总被引:1,自引:0,他引:1  
摘要:对应用于铁路人机工程学的人类仿真方法进行了总结,即一种仿真器是采用虚拟现实技术来模拟环境,例如驾驶仿真器、乘坐舒适度仿真器、铁路车站仿真器等。另一类仿真器则采用计算机仿真技术来评价列车司机工作时承受的精神负担、列车碰撞引起的旅客运动方式及损伤等。  相似文献   
82.
Research purposes: The vertical deformation of high-speed railway (HSR) bridge will cause the track irregularity, which threatens the safe and efficient operation of the HSR. Taking the 32 m simple supported beam bridge as the research object, based on the existing mapping analytical model for bridge vertical deformation and rail geometry, the influence of the track regularity of the CRTS Ⅰ slab ballastless track structure caused by the key parameters such as the bridge vertical deformation amplitude, the hanging length of the beam end and the vertical stiffness of mortar layer were studied, and the corresponding measures to control the rail deformation were proposed, to provide theoretical reference for comprehensive treatment of rail deformation of HSR bridge. Research conclusions:(1) The pier settlement, the vertical rotation of the beam end and the beam fault will cause the rail to follow the beam deformation, and "up-warping" of the rail on the vertical deformation boundary will appear. (2) The rail deformation is directly proportional to the vertical deformation amplitude of the bridge and the key to control the rail deformation is to reduce the vertical deformation of the bridge. (3) The rail deformation can be controlled by reducing the hanging length of beam and vertical stiffness of mortar layer. (4) The research results can provide a theoretical reference for controlling the vertical rail deformation of high-speed railway bridges. © 2018, Editorial Department of Journal of Railway Engineering Society. All right reserved.  相似文献   
83.
Research purposes: In order to further study the reinforcement of prestressed anchor frame beam in the deep cutting slope under three dimensional strong earthquake, a model of the deep cutting slope is built through FLAC 3D simulation software, the seismic wave to the model from three directions of x,y and z is input, and the dynamic response of the slope is analyzed. Then, the prestressed anchor frame beam reinforcement measures are applied to the model, and this paper analyzes the reinforcement effect of the prestressed anchor frame beam to the deep cutting slope under three dimensional strong earthquake. Research conclusions:(1) The prestressed anchor frame beam has a good effect on restraining the horizontal displacement of the deep cutting slope. (2) Under the three dimensional strong earthquake, the prestressed anchor frame beam has a good effect on the horizontal acceleration and horizontal velocity of the deep cutting slope, which reduces the peak of horizontal acceleration and horizontal velocity. (3) Through the comparison of the response before and after the reinforcement of the prestressed anchor frame beam is given under the 9 degrees three dimensional strong earthquake, it can be concluded that the prestressed anchor frame beam can provide good reinforcement effect to the deep cutting slope. (4) This research can be used for reference to the earthquake resistance of the slope engineering. © 2018, Editorial Department of Journal of Railway Engineering Society. All right reserved.  相似文献   
84.
依据UIC510—3:1994规定的疲劳试验加载方法,基于有限元法研究了不同左右曲线变换次数取值时高速货车转向架焊接构架及摇枕疲劳关注部位累积损伤的变化程度及规律。仿真结果及综合分析表明,当左右曲线变换次数取值变化并不十分显著时,其对结构疲劳损伤影响很小,样机疲劳试验中可直接应用UIC规范中的建议值。  相似文献   
85.
对目前货车转向架装用的JC型双作用弹性旁承体进行了非线性有限元计算,分析了旁承体两侧翼橡胶层在安装及工作时的应力,给出了JC型双作用弹性旁承体在安装时的相关建议。  相似文献   
86.
介绍了出口马达加斯加米轨转向架的主要技术参数、结构特点及有关计算和试验情况.  相似文献   
87.
对主动导向转向架的半车模型进行了多体动力学计算,并进行了滚动台试验,计算结果和试验结果基本一致。将半车模型扩展为整车模型后,进行了计算分析,研究结果表明,主动导向转向架可以大大提高转向架的曲线通过性能。  相似文献   
88.
针对石家庄西变电所施工改造中,2008年3月发生的变电所母线和变压器换相连接问题,利用理论和测试的方法进行了分析,找出了原因。同时结合运行和施工中其他2例换相故障,提出了几项切实可行的措施。  相似文献   
89.
激光堆焊工艺在修造领域的应用现状及发展趋势   总被引:1,自引:0,他引:1  
本文详细阐述了激光堆焊工艺在工业修造领域的应用现状及发展趋势,介绍了激光束的能源、输送和聚焦系统、堆焊材料及激光设备。重点说明了其在修造领域的应用工艺。  相似文献   
90.
A simple formulation for predicting the ultimate strength of ships   总被引:11,自引:0,他引:11  
The aim of this study is to derive a simple analytical formula for predicting the ultimate collapse strength of a single- and double-hull ship under a vertical bending moment, and also to characterize the accuracy and applicability for earlier approximate formulations. It is known that a ship hull will reach the overall collapse state if both collapse of the compression flange and yielding of the tension flange occur. Side shells in the vicinity of the compression and the tension flanges will often fail also, but the material around the final neutral axis will remain in the elastic state. Based on this observation, a credible distribution of longitudinal stresses around the hull section at the overall collapse state is assumed, and an explicit analytical equation for calculating the hull ultimate strength is obtained. A comparison between the derived formula and existing expressions is made for largescale box girder models, a one-third-scale frigate hull model, and full-scale ship hulls.List of symbols A B total sectional area of outer bottom - A B total sectional area of inner bottom - A D total sectional area of deck - A S half-sectional area of all sides (including longitudinal bulkheads and inner sides) - a s sectional area of a longitudinal stiffener with effective plating - b breadth of plate between longitudinal stiffeners - D hull depth - D B height of double bottom - E Young's modulus - g neutral axis position above the base line in the sagging condition or below the deck in the hogging condition - H depth of hull section in linear elastic state - I s moment of inertia of a longitudinal stiffener with effective plating - l length of a longitudinal stiffener between transverse beams - M E elastic bending moment - M p fully plastic bending moment of hull section - M u ultimate bending moment capacity of hull section - M uh ,M us ultimate bending moment in hogging or sagging conditions - r radius of gyration of a longitudinal stiffener with effective plating [=(I s /a s )1/2] - t plate thickness - Z elastic section modulus at the compression flange - Z B ,Z D elastic section modulus at bottom or deck - slenderness ratio of plate between stiffeners [= (b/t)(y/E)1/2] - slenderness ratio of a longitudinal stiffener with effective plating [=(l/r)(y/E)1/2] - y yield strength of the material - yB , yB , yD yield strength of outer bottom, inner bottom - yS deck, or side - u ultimate buckling strength of the compression flange - uB , uB , uD ultimate buckling strength of outer bottom - uS inner bottom, deck, or side  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