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1

Casarotti, Chiara. Adaptive pushover-based methods for seismic assessment and design of bridge structures. Pavia, Italy: IUSS Press, 2005.

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2

Borri, Claudio, and Claudio Mannini, eds. Aeroelastic Phenomena and Pedestrian-Structure Dynamic Interaction on Non-Conventional Bridges and Footbridges. Florence: Firenze University Press, 2010. http://dx.doi.org/10.36253/978-88-6453-202-8.

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Fluid-structure and pedestrian-structure interaction phenomena are extremely important for non-conventional bridges. The results presented in this volume concern: simplified formulas for flutter assessment; innovative structural solutions to increase the aeroelastic stability of long-span bridges; numerical simulations of the flow around a benchmark rectangular cylinder; examples of designs of large structures assisted by wind-tunnel tests; analytical, computational and experimental investigation of the synchronisation mechanisms between pedestrians and footbridge structures. The present book is addressed to a wide audience including professionals, doctoral students and researchers, aiming to increase their know-how in the field of wind engineering, bluff-body aerodynamics and bridge dynamics.
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3

Anderson, John E., Christian Bucher, Bruno Briseghella, Xin Ruan, and Tobia Zordan, eds. Sustainable Structural Engineering. Zurich, Switzerland: International Association for Bridge and Structural Engineering (IABSE), 2015. http://dx.doi.org/10.2749/sed014.

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<p>Sustainability is the defining challenge for engineers in the twenty-first century. In addition to safe, economic, and effi-cient structures, a new criterion, sustainable, must be met. Furthermore, this new design paradigm–addressing social, economic, and environmental aspects–requires prompt action. In particular, mitigation of climate change requires sustainable solutions for new as well as existing structures. Taking from both practice and research, this book provides engineers with applicable, timely, and innovative information on the state-of-the-art in sustainable structural design. <p>This Structural Engineering Document addresses safety and regulations, integration concepts, and a sustainable approach to structural design. Life-cycle assessment is presented as a critical tool to quantify design options, and the importance of existing structures–in particular cultural heritage structures–is critically reviewed. Consideration is also given to bridge design and maintenance, structural reassessment, and disaster risk reduction. Finally, the importance of environmentally friendly concrete is examined. Consequently, structural engineers are shown to have the technical proficiency, as well as ethical imperative, to lead in designing a sustainable future.
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4

Prototype bridge structures: Analysis and design. London: Thomas Telford, 1999.

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5

Civil engineering: Bridge structures review. Chicago, Ill: Kaplan Education, 2004.

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6

Marsh, M. Lee. Performance-based seismic bridge design. Washington, D.C: Transportation Research Board, 2013.

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7

Chamis, C. C. Probabilistic assessment of smart composite structures. [Washington, DC]: National Aeronautics and Space Administration, 1993.

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8

Wang, Naiyu. Condition assessment of existing bridge structures: Report of task [number]. Georgia: Georgia Institute of Technology School of Civil and Environmental Engineering, 2009.

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9

M, Doherty Katherine, ed. The Golden Gate Bridge. Woodbridge, Conn: Blackbirch Press, 1995.

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10

Golden Gate Bridge. Kennett Square, Pennsylvania]: Purple Toad Publishing, 2018.

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11

National Research Council (U.S.). Transportation Research Board, National Cooperative Highway Research Program, American Association of State Highway and Transportation Officials, and United States. Federal Highway Administration, eds. LRFD design and construction of shallow foundations for highway bridge structures. Washington, D.C: Transportation Research Board, 2010.

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12

Paikowsky, Samuel G., Mary C. Canniff, Kerstin Lesny, Aloys Kisse, Shailendra Amatya, and Robert Muganga. LRFD Design and Construction of Shallow Foundations for Highway Bridge Structures. Washington, D.C.: National Academies Press, 2010. http://dx.doi.org/10.17226/14381.

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13

Briaud, J. L. Settlement of bridge approaches: (the bump at the end of the bridge). Washington, D.C: National Academy Press, 1997.

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14

Centenary Year Bridge Conference (1994 Cardiff, Wales). Bridge assessment management and design: Proceedingsof the Centenary Year Bridge Conference, Cardiff, U.K., 26-30 September 1994. Amsterdam: Elsevier, 1994.

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15

Kent, Zachary. The story of the Brooklyn Bridge. Chicago: Childrens Press, 1988.

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16

Kent, Zachary. The story of the Brooklyn Bridge. Chicago: Childrens Press, 1988.

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17

B, Barr, Evans H. R, and Evans J. E, eds. Bridge assessment management and design: Proceedings of the Centenary Year Bridge Conference, Cardiff, U.K., 26-30 September 1994. Amsterdam: Elsevier, 1994.

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18

Petersen, D. Lee. Recommended design specifications for live load distribution to buried structures. Washington, D.C: Transportation Research Board, 2010.

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19

Zornberg, Jorge G., Amr M. Morsy, Behdad Mofarraj Kouchaki, Barry Christopher, Dov Leshchinsky, Jie Han, Burak F. Tanyu, Fitsum T. Gebremariam, Panpan Shen, and Yan Jiang. Proposed Refinements to Design Procedures for Geosynthetic Reinforced Soil (GRS) Structures in AASHTO LRFD Bridge Design Specifications. Washington, D.C.: Transportation Research Board, 2019. http://dx.doi.org/10.17226/25416.

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20

Williams, Alan. Civil engineering: Bridge structures : review for the breadth/depth exam in civil engineering. Austin, TX: Engineering Press, 2000.

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21

Weiner, Vicki. The Brooklyn Bridge: New York City's graceful connection. New York: Children's Press, 2003.

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22

McIntosh, Beverly Childs. Biological assessment for San Francisco-Oakland Bay Bridge seismic retrofit, San Francisco and Alameda Counties, California. [Oakland, Calif.?]: Caltrans, 1996.

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23

Hubbard, Ian. Crossings: Three centuries from ferry boats to the New Baldwin bridge. Lyme, Conn: Greenwich Pub. Group, 1993.

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24

ill, Hinderliter John, ed. Where is the Brooklyn Bridge? New York: Penguin Publishing Group, 2016.

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25

Cole, Richard. Seaureaugh Bridge, Cornwall: Archaeological assessment : a report for the Design and Maintenance Consultancy, Cornwall County Council. Truro: Cornwall County Council, Historic Environment Service, 2004.

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26

Cole, Richard. Laneast Bridge, Cornwall: Archaeological assessment : a report for the Design and Maintenance Consultancy, Cornwall County Council. Truro: Cornwall County Council, Historic Environment Service, 2004.

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27

The building of the Golden Gate Bridge. Mankato, MN: Child's World, 2017.

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28

Robert Peccia & Associates. Environmental assessment and draft section 4(f) evaluation, Big Hole River bridges - SE of Glen, BR 9001 (20)- West Bridge, BR 9029 (9) - East Bridge Beaverhead & Madison Counties, Montana. Helena, Mont: Robert Peccia & Associates, 1999.

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29

Carden, Lyle P. Investigation of flange failures in falsework cap and sill beams: Recommendations for the design of beams and posts in bridge falsework. Sacramento, CA: California Dept. of Transportation, Division of Research and Innovation, 2008.

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30

Dietrich-Smith, Deborah. Cultural landscape report, North Bridge Unit, Minute Man National Historical Park. Brookline, Mass: Olmsted Center for Landscape Preservation, 2004.

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31

Carter & Burgess. Environmental assessment for State Project CM 8199 (27) City of Missoula, California street pedestrian/bicycle bridge, control no. 3040 in Missoula County. Missoula, MT: Carter & Burgess, Inc., 1997.

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32

Montana. Dept. of Transportation. Highways Division-Engineering. Finding of no significant impact on the environmental assessment for CM 8199(27), California street pedestrian/bicycle bridge, Missoula County, P.M.S. control #3040. Helena?], MT: The Dept., 1997.

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33

Associates, Robert Peccia &. Finding of no significant impact on the environmental assessment and final section 4(f) evaluation, Big Hole River Bridges - SE of Glen, BR 9001 (20) - West Bridge, BR 9029 (9) - East Bridge, Beaverhead & Madison Counties, Montana. Helena, MT: Robert Peccia & Associates, 1999.

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34

Design of Bridge Structures. Prentice-Hall of India Pvt.Ltd, 2004.

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35

Sustainable Bridge Structures. Taylor & Francis Group, 2015.

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36

Frangopol, Dan M., Airong Chen, and Xin Ruan. Bridge Design, Assessment and Monitoring. Taylor & Francis Group, 2018.

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37

Chen, Airong, Dan M. Frangopol, and Xin Ruan, eds. Bridge Design, Assessment and Monitoring. Routledge, 2018. http://dx.doi.org/10.1201/9781351208796.

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38

Frangopol, Dan M., Airong Chen, and Xin Ruan. Bridge Design Assessment and Monitoring. Taylor & Francis Group, 2020.

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39

Design Manual for Roads and Bridges: Structural Assessment Methods. The Stationery Office Books (Agencies), 1996.

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40

Prototype Bridge Structures: Analysis and Design. Thomas Telford Ltd, 1999. http://dx.doi.org/10.1680/pbsaad.27787.

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41

Wang, Shuqing, and Chung C. Fu. Computational Analysis and Design of Bridge Structures. Taylor & Francis Group, 2017.

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42

Computational Analysis and Design of Bridge Structures. Taylor & Francis Group, 2014.

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43

Williams, Alan. Civil Engineering: Bridge Structures Review. Kaplan Publishing, 2007.

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44

Williams, Alan. Civil Engineering: Bridge Structures Review. Kaplan AEC Education, 2004.

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45

H, Abumeri Galib, Chamis C. C, and United States. National Aeronautics and Space Administration., eds. Probabilistic assessment of composite structures. [Washington, DC]: National Aeronautics and Space Administration, 1993.

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46

Mahmoud, Khaled. Safety and Reliability of Bridge Structures. Taylor & Francis Group, 2009.

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47

Mahmoud, Khaled. Safety and Reliability of Bridge Structures. Taylor & Francis Group, 2009.

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48

Mahmoud, Khaled. Safety and Reliability of Bridge Structures. Taylor & Francis Group, 2009.

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49

Mahmoud, Khaled. Safety and Reliability of Bridge Structures. Taylor & Francis Group, 2009.

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50

Safety And Reliability Of Bridge Structures. CRC Press, 2009.

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