End Forces on Crossframes in Horizontally Curved Steel I-Girder Bridges

被引:2
|
作者
Liu, Dajin [1 ]
Magliola, Robert [1 ]
机构
[1] Parsons, 10 South Riverside, Chicago, IL 60606 USA
关键词
Crossframes; V-load method; Curved I-girder bridges;
D O I
10.1061/(ASCE)SC.1943-5576.0000018
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Crossframes in horizontally curved steel I-girder bridges are primary members. They must be designed for strength and fatigue. Curved girder analysis computer programs typically compute crossframe member forces only due to curvature effect; they do not calculate the crossframe forces due to wind and centrifugal forces. These forces must be calculated separately and combined with the curvature-effect forces using appropriate group combination load factors. If the crossframe forces from computer programs are suspicious, engineers can use hand procedures such as V-load method to verify these results. Also per current AASHTO Guide Specifications for Horizontally Curved Steel Girder Highway Bridges, when the girders are allowed to be analyzed neglecting curvature, the crossframe forces may be determined using the V-load method or other rational means. Using V-load method to find crossframe forces can be time consuming and mistakes are easily made. In this paper, a general solution to determine the end shears and end moments on crossframes in horizontally curved steel multi I-girder bridges is developed by V-load method. In addition, the end shears and end moments on crossframes are tabulated for 2-girder through 8-girder system. A design example for a 5-girder system is selected for demonstration.
引用
收藏
页码:21 / 26
页数:6
相关论文
共 50 条
  • [11] Effect of thermal loading on the performance of horizontally curved I-girder bridges
    William, G. W.
    Shoukry, S. N.
    McBride, K. C.
    RISK-BASED BRIDGE ENGINEERING, 2019, : 179 - 194
  • [12] Probabilistic Vulnerability Scenarios for Horizontally Curved Steel I-Girder Bridges Under Earthquake Loads
    Seo, Junwon
    Linzell, Daniel G.
    TRANSPORTATION RESEARCH RECORD, 2010, (2202) : 206 - 211
  • [13] Free vibration analysis of horizontally curved composite concrete-steel I-girder bridges
    Wodzinowski, Radek
    Sennah, Khaled
    Afefy, Hamdy M.
    JOURNAL OF CONSTRUCTIONAL STEEL RESEARCH, 2018, 140 : 47 - 61
  • [14] Effect of Temporary Shoring Location on Horizontally Curved Steel I-Girder Bridges during Construction
    Sharafbayani, M.
    Linzell, D. G.
    JOURNAL OF BRIDGE ENGINEERING, 2012, 17 (03) : 537 - 546
  • [15] Curved steel I-girder bridges: experimental and analytical studies
    Zureick, A
    Linzell, D
    Leon, RT
    Burrell, J
    ENGINEERING STRUCTURES, 2000, 22 (02) : 180 - 190
  • [16] Instrumentation of a Horizontally Curved Steel I-Girder Bridge during Construction
    Fasl, Jeremiah D.
    Stith, Jason C.
    Helwig, Todd A.
    Schuh, Andrew
    Farris, Jamie
    Engelhardt, Michael D.
    Williamson, Eric B.
    Frank, Karl H.
    JOURNAL OF STRUCTURAL ENGINEERING, 2015, 141 (01)
  • [17] Lateral Load Distribution in Curved Steel I-Girder Bridges
    Zhang, Hailing
    Huang, Dongzhou
    Wang, Ton-Lo
    JOURNAL OF BRIDGE ENGINEERING, 2005, 10 (03) : 281 - 290
  • [18] Stability of Curved Steel I-Girder Bridges During Construction
    Sanchez, T. Andres
    White, Donald W.
    TRANSPORTATION RESEARCH RECORD, 2012, (2268) : 122 - 129
  • [19] Cross-frame spacing and parametric effects in horizontally curved I-girder bridges
    Davidson, JS
    Keller, MA
    Yoo, CH
    JOURNAL OF STRUCTURAL ENGINEERING-ASCE, 1996, 122 (09): : 1089 - 1096
  • [20] An assessment of modeling strategies for composite curved steel I-girder bridges
    Chang, Ching-Jen
    White, Donald W.
    ENGINEERING STRUCTURES, 2008, 30 (11) : 2991 - 3002