Books on the topic 'Concrete bridges Bridges Bridges Composite materials'

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1

Kachlakev, Damian I. Strengthening bridges using composite materials. Oregon Dept. of Transportation, Research Unit, 1998.

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2

Kachlakev, Damian I. Behavior of concrete specimens reinforced with composite materials: Laboratory study. Oregon Dept. of Transportation, Research Group, 2000.

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3

US-Canada-Europe Workshop on Bridge Engineering (1997 Zurich, Switzerland). Recent advances in bridge engineering: Advanced rehabilitation, durable materials, nondestructive evaluation, and management : proceedigns of the US-Canada-Europe Workshop on Bridge Engineering, Zurich, Switzerland, july 14-15, 1997. Columbia University, 1997.

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4

Soltesz, Steven M. Cementitious materials for thin patches. Oregon Dept. of Transportation, Research Group, 2001.

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5

Highway Innovative Technology Evaluation Center (U.S.). Guidelines for structural and durability evaluation of FRP composite column wrap systems for seismic retrofit of columns. American Society of Civil Engineers, 2003.

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6

Steel-concrete composite bridges. Thomas Telford, 2005.

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7

Institution, British Standards. Steel, concrete and composite bridges. BSI, 1988.

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8

Design guide for composite highway bridges. Spon Press, 2002.

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9

Keller, Thomas. Use of fibre reinforced polymers in bridge construction. International Association for Bridge and Structural Engineering (IABSE), 2003. http://dx.doi.org/10.2749/sed007.

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<p>The aim of the present Structural Engineering Document, a state-of-the-art report, is to review the progress made worldwide in the use of fibre rein­forced polymers as structural components in bridges until the end of the year 2000.<p> Due to their advantageous material properties such as high specific strength, a large tolerance for frost and de-icing salts and, furthermore, short installation times with minimum traffic interference, fibre reinforced polymers have matured to become valuable alternative building materials for bridge structures. Today, fibre reinforced polymers a
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10

LaFraugh, Robert W. Concrete overlays for bridges. Washington State Dept. of Transportation in cooperation with U.S. Dept. of Transportation, Federal Highway Administration, 1986.

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11

Grace, Nabil F. Environmental/durability evaluation of FRP composite strengthened bridges. Lawrence Technological University, Civil Engineering Dept., 2003.

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12

Hughes, G. Longitudinal shear in composite concrete bridge beams. Transport and Road Research Laboratory, 1986.

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13

Hughes, G. Longitudinal shear in composite concrete bridge beams. Transport and Road Research Laboratory, 1987.

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14

Osegueda, Roberto Alejandro. Positive moment tests for precast concrete panel-decked composite bridges. Texas Transportation Institute, Texas A&M University, 1987.

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15

P, Johnson R., ed. Designers' guide to EN 1994-2 Eurocode 4: Design of composite steel and concrete structures. Thomas Telford, 2006.

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16

Guthrie, W. Spencer. Performance of concrete bridge deck surface treatments: Final report. Utah Department of Transportation, Research Division, 2005.

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17

Guthrie, W. Spencer. Performance of concrete bridge deck surface treatments: Final report. Utah Department of Transportation, Research Division, 2005.

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18

Whiting, D. Silica fume concrete for bridge decks. National Academy Press, 1998.

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19

Thompson, N. G. Optimization of concretes and repair materials for corrosioin resistance. U.S. Dept. of Transportation, Federal Highway Administration, Research, Development, and Technology, Turner-Fairbank Highway Research Center, 1999.

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20

Khayat, Kamal. Self-consolidating concrete for precast, prestressed concrete bridge elements. Transportation Research Board, 2009.

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21

Peterman, Robert J. Evaluation of strand transfer and development lengths in pretensioned girders with semi-lightweight concrete. Purdue University, [Joint Transportation Research Program, 1999.

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22

James, Charles P. Microsilica modified concrete for bridge deck overlays: Final report. Research Unit, Oregon Dept. of Transportation, 1997.

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23

SAMPE-ACCE-DOE Advanced Materials Conference (1999 Detroit, Mich.). SAMPE-ACCE-DOE Advanced Materials Conference: Planes, trains, automobiles-- and bridges, too : Cobo Center, Detroit, Michigan, September 27-28, 1999. SAMPE, 1999.

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24

Miller, Nathan J. Use of salvaged utility poles in roadway bridges: Time-dependent behavior of composite wood-concrete beams. Mountain-Plains Consortium, 2009.

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25

Sharp, Stephen R. Evaluation of two corrosion inhibitors using two surface application methods for reinforced concrete structures. Virginia Transportation Research Council, 2004.

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26

Hofstetter, Günter, and Günther Meschke. Numerical modeling of concrete cracking. Springer, 2011.

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27

Steckel, G. L. The application of qualification testing, field testing, and accelerated testing for estimating long-term durability of composite materials for Caltrans applications. Engineering and Technology Group, The Aerospace Corporation, 2005.

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28

Babaei, Khossrow. Evaluation of concrete overlays for bridge applications: Final report, Research Project Y-3399, Task 2. Washington State Dept. of Transportation, Planning, Research and Public Transportation Division, Research Office, 1987.

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29

Karbhari, Vistasp M. Using composites in seismic retrofit applications. Engineering and Technology Group, the Aerospace Corporation, 2005.

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30

Ranzi, Gianluca, ed. Time-dependent behaviour and design of composite steel-concrete structures. International Association for Bridge and Structural Engineering (IABSE), 2021. http://dx.doi.org/10.2749/sed018.

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<p>Steel-concrete composite structures are widely used throughout the world for buildings and bridges. A distinguishing feature of this form of construction is the combination of concrete and steel components to achieve enhanced structural performance. <p>The time-dependent response of concrete and its infl uence on the service behaviour and design of composite structures are the main focus of this SED. For the fi rst time, a publication combines a state-of-the-art review of the research with the available design specifi cations of Europe, Australia and New Zealand, and USA. This p
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31

FRP Deck and Steel Girder Bridge Systems: Analysis and Design. Taylor & Francis Group, 2017.

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32

FRP Deck and Steel Girder Bridge Systems: Analysis and Design. Taylor & Francis Group, 2013.

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33

Collings, David. Steel Concrete Composite Bridges. Thomas Telford, Ltd., 2005.

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34

Collings, David. Steel-concrete Composite Bridges, 2nd ed. Thomas Telford Ltd, 2013. http://dx.doi.org/10.1680/scb.58101.

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35

Johnson, R. P., and R. J. Buckby. Composite Structures of Steel and Concrete: Bridges. Blackwell Science Ltd, 1987.

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36

Hirt, Manfred, and Jean-Paul Lebet. Steel Bridges: Conceptual and Structural Design of Steel and Steel-Concrete Composite Bridges. Taylor & Francis Group, 2013.

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37

Steel Bridges: Conceptual and Structural Design of Steel and Steel-Concrete Composite Bridges. Taylor & Francis Group, 2013.

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38

Vayas, Ioannis, and Aristidis Iliopoulos. Design of Steel-Concrete Composite Bridges to Eurocodes. Taylor & Francis Group, 2017.

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39

Vayas, Ioannis, and Aristidis Iliopoulos. Design of Steel-Concrete Composite Bridges to Eurocodes. CRC Press, 2013. http://dx.doi.org/10.1201/b15690.

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40

Advanced Composite Materials With Application to Bridges. Canadian Soc for Civil Engr, 1991.

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41

Design Of Steelconcrete Composite Bridges To Eurocodes. Taylor & Francis Inc, 2013.

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42

Johnson, R. P. Composite Bridges Designed for Eurocodes: Composite Structures of Steel and Concrete. 3rd ed. Blackwell Scientific Publications (BSP), 2007.

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43

E, Bonilla Francisco, Texas. State Dept. of Highways and Public Transportation., United States. Federal Highway Administration., and Texas Transportation Institute, eds. Composite action of precast panel bridge decks in negative moment regions. Texas Transportation Institute, Texas A&M University, 1987.

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44

Finite Element Analysis and Design of Steel and Steel-Concrete Composite Bridges. Elsevier Science & Technology Books, 2014.

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45

Inspection and monitoring techniques for bridges and civil structures (Woodhead Publishing in Materials). CRC, 2005.

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46

Finite Element Analysis and Design of Steel and Steel-Concrete Composite Bridges. Elsevier, 2014. http://dx.doi.org/10.1016/c2013-0-01336-9.

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47

Offices, American Association Of State Highway and Transportation. Effective Slab Width for Composite Steel Bridge Members. Transportation Research Board National Resear, 2005.

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48

Advanced composite materials with application to bridges: State-of-the-art report. Canadian Society for Civil Engineering, 1991.

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49

Zafer, Gürdal, Herakovich Carl T, and Langley Research Center, eds. Composite materials for rail transit systems. National Aeronautics and Space Administration, Langley Research Center, 1987.

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50

In-place performance of polymer concrete overlays. American Concrete Institute, 1997.

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