Integral abutment bridges: Current practice in United States and Canada

被引:1
|
作者
Kunin, Jonathan [1 ]
Alampalli, Sreenivas [2 ]
机构
[1] Transp. Res. and Devel. Bureau, New York State Dept. of Transp., 1220 Washington Ave., Albany, NY 12232, United States
[2] Struct. Res., Transp. Res. and Devel. Bureau, New York State Dept. of Transp., 1220 Washington Ave., Albany, NY, United States
关键词
Joints (structural components) - Maintenance - Piles - Reliability - Soils - Standards - Thermodynamics;
D O I
10.1061/(ASCE)0887-3828(2000)14:3(104)
中图分类号
学科分类号
摘要
Integral abutment bridges have been gaining popularity among bridge owners as cost-effective alternatives to bridges with conventional joints. They reduce initial construction costs and long-term maintenance expenses, improve seismic resistance, and extend long-term serviceability. New York has been building them since the late 1970s, with a wide variety of details, and they have been performing well. For further improvement of New York's design practice, a comparative survey was undertaken across North America, focusing on design and construction of both substructures and superstructures. In all, 39 states and Canadian provinces responded, including 8 who said they had no experience with these bridges. Responses are analyzed and summarized in this paper. Overall, integral abutment bridges are performing as well as, if not better than, conventional bridges, but no uniform national standards exist for their design. Design practices and assumptions concerning limits of thermal movement, soil pressure, and pile design vary considerably among responding agencies. These decisions are based largely on past experience. Validity of these assumptions needs investigation by testing and analysis to ensure efficient and reliable design.
引用
下载
收藏
页码:104 / 111
相关论文
共 50 条
  • [31] Numerical Simulations and Field Monitoring of Integral Abutment Bridges
    LaFave, James
    Fahnestock, Larry
    Jarrett, Matthew
    Wright, Beth
    Riddle, Joseph
    Svatora, Jeffrey
    Structures Congress 2015, 2015, : 561 - 572
  • [32] Parametric Study for Understanding the Behavior of Integral Abutment Bridges
    Kirupakaran, Karrthik
    Muraleetharan, Kanthasamy K.
    GEOTECHNICAL FRONTIERS 2017: FOUNDATIONS, 2017, (279): : 164 - 173
  • [33] Effectiveness of displacement compensation units for integral abutment bridges
    Zulkefli, Muhammad Umar
    Ferreira, Pedro
    EUROPEAN JOURNAL OF ENVIRONMENTAL AND CIVIL ENGINEERING, 2024, : 3542 - 3566
  • [34] Simplified Modeling of Integral Abutment Bridges for Seismic Analysis
    Abbasi, Diako
    Maleki, Shervin
    TRANSPORTATION INFRASTRUCTURE GEOTECHNOLOGY, 2024, 11 (01) : 171 - 196
  • [35] A short history of frame bridges in Germany - from steel frame bridges to integral abutment bridges
    Pak, Daniel
    Seidl, Guenter
    STAHLBAU, 2020, 89 (03) : 240 - 249
  • [36] Load Rating Highway Bridges in the United States: The State of Practice
    Gao, Lubin
    STRUCTURAL ENGINEERING INTERNATIONAL, 2013, 23 (03) : 327 - 331
  • [37] An innovative steel-concrete joint for integral abutment bridges
    Bruno Briseghella
    Tobia Zordan
    Journal of Traffic and Transportation Engineering(English Edition), 2015, 2 (04) : 209 - 222
  • [38] Fatigue Crack Initiation and Propagation in Piles of Integral Abutment Bridges
    Razmi, Jafar
    Ladani, Leila
    Aggour, M. Sherif
    COMPUTER-AIDED CIVIL AND INFRASTRUCTURE ENGINEERING, 2013, 28 (05) : 389 - 402
  • [39] Performance-based seismic design of integral abutment bridges
    Paolo Franchin
    Paolo Emilio Pinto
    Bulletin of Earthquake Engineering, 2014, 12 : 939 - 960
  • [40] An innovative steel-concrete joint for integral abutment bridges
    Briseghella, Bruno
    Zordan, Tobia
    JOURNAL OF TRAFFIC AND TRANSPORTATION ENGINEERING-ENGLISH EDITION, 2015, 2 (04) : 209 - 222