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1

Causey, F. E. Concrete repair materials: A progress report. Concrete and Structural Branch, Division of Research and Laboratory Services, Engineering and Research Center, U.S. Dept. of the Interior, Bureau of Reclamation, 1985.

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2

Campbell-Allen, Denison. Concrete structures: Materials, maintenance and repair. Longman Scientific & Technical, 1991.

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3

Campbell-Allen, D. Concrete structures: Materials, maintenance, and repair. Longman Scientific & Technical, 1991.

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4

K, Dhir Ravindra, Jones M. Roderick, and Zheng Li, eds. Repair and renovation of concrete structures. Thomas Telford, 2005.

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5

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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6

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

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7

Institution of Civil Engineers (Great Britain), ed. Concrete reinforcement corrosion: From assessment to repair decisions. Thomas Telford, 2002.

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8

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

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9

Liu, Rongtang. Development and evaluation of cement-based patching materials for repair of corrosion-damaged reinforced concrete slabs. Purdue University Dept. of Civil Engineering, 2001.

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10

McGhee, Kenneth H. Portland cement concrete resurfacing. National Academy Press, 1994.

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11

Repair of concrete structures to EN 1504: A guide for renovation of concrete structures; repair materials and systems according to the EN 1504 series. Elsevier, 2004.

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12

Dam, Thomas John Van. Guidelines for detection, analysis, and treatment of materials-related distress in concrete pavements. Federal Highway Administration, Turner-Fairbank Highway Research Center, 2002.

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13

Ozolin, Brett. Rapid pavement construction tools, materials and methods. Washington State Dept. of Transportation, 2007.

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14

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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15

Vaysburd, Alexander M. An evaluation of equipment and procedures for tensile bond testing of concrete repairs. U.S. Army Engineer Waterways Experiment Station, 1999.

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16

Breysse, D. Non-Destructive Assessment of Concrete Structures: Reliability and Limits of Single and Combined Techniques: State-of-the-Art Report of the RILEM Technical Committee 207-INR. Springer Netherlands, 2012.

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17

Godart, Bruno. Guide to Diagnosis and Appraisal of AAR Damage to Concrete in Structures: Part 1 Diagnosis (AAR 6.1). Springer Netherlands, 2013.

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18

Alexander, Mark. Performance of Cement-Based Materials in Aggressive Aqueous Environments: State-of-the-Art Report, RILEM TC 211 - PAE. Springer Netherlands, 2013.

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19

Barksdale, Richard D. Fabrics in asphalt overlays and pavement maintenance. Transportation Research Board, National Research Council, 1991.

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20

Thomas, M. D. A. Alkali-aggregate reactivity (AAR) facts book. [Federal Highway Administration, Office of Pavement Technology], 2013.

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21

Berlin, Marcus. Asphalt concrete patching material evaluation: Interim report. Oregon Dept. of Transportation, Research Group, 2001.

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22

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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23

Lampropoulos, Andreas, ed. Case Studies on Conservation and Seismic Strengthening/Retrofitting of Existing Structures. International Association for Bridge and Structural Engineering (IABSE), 2020. http://dx.doi.org/10.2749/cs002.

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<p>Recent earthquakes have demonstrated that despite the continuous developments of novel materials and new strengthening techniques, the majority of the existing structures are still unprotected and at high seismic risk. The repair and strengthening framework is a complex process and there are often barriers in the preventative upgrade of the existing structures related to the cost of the applications and the limited expertise of the engineers. The engineers need to consider various options thoroughly and the selection of the appropriate strategy is a crucial parameter for the success o
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24

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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25

Moseley, V. J. "Jon", Andreas Lampropoulos, Eftychia Apostolidi, and Christos Giarlelis. Characteristic Seismic Failures of Buildings. Edited by Stephanos E. Dritsos. International Association for Bridge and Structural Engineering (IABSE), 2019. http://dx.doi.org/10.2749/sed016.

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<p>Earthquakes can cause considerable fatalities, injuries and financial loss. The forces of nature cannot be blamed, as the problem lies with the structures in seismic regions that may not have been designed or constructed to a sufficient degree to resist earthquake actions or they may have design flaws. This Structural Engineering Document (SED) concerns reinforced concrete and masonry buildings together with geotechnical aspects and presents in a concise and practical way the state of the art of current understanding of building failures due to earthquakes. It classifies the different
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26

Vaysburd, A. M. Concrete Repair: Structure, Technology, Materials. Spon Press, 2006.

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27

Concrete Ground Floors: Materials, Specification, Construction and Repair. Taylor & Francis, 2001.

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28

Perry, S. H., and J. M. Holmyard. Scaling of Underwater Concrete Repair Materials (Offshore Technology Report). Health and Safety Executive (HSE), 1992.

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29

B, Leeming M., and Construction Industry Research and Information Association., eds. Standard tests for repair materials and coatings for concrete. CIRIA, 1993.

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30

546.3R-14: Guide to Materials Selection for Concrete Repair. American Concrete Institute, 2014. http://dx.doi.org/10.14359/51687279.

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31

Repair and Renovation of Concrete Structures. Thomas Telford, Ltd, 2005.

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32

Pedeferri, Pietro, and Rob B. Polder. Corrosion of Steel in Concrete: Prevention, Diagnosis, Repair. Wiley-VCH, 2004.

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33

Elsener, Bernhard, Rob B. Polder, Luca Bertolini, Pietro Pedeferri, and Elena Redaelli. Corrosion of Steel in Concrete: Prevention, Diagnosis, Repair. Wiley & Sons, Incorporated, John, 2013.

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34

Elsener, Bernhard, Rob B. Polder, Luca Bertolini, Pietro Pedeferri, and Elena Redaelli. Corrosion of Steel in Concrete: Prevention, Diagnosis, Repair. Wiley & Sons, Incorporated, John, 2013.

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35

Elsener, Bernhard, Rob B. Polder, Luca Bertolini, Pietro Pedeferri, and Elena Redaelli. Corrosion of Steel in Concrete: Prevention, Diagnosis, Repair. Wiley & Sons, Incorporated, John, 2013.

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36

Luca, Bertolini, ed. Corrosion of steel in concrete: Prevention, diagnosis, repair. Wiley-VCH, 2004.

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37

Elsener, Bernhard, Rob B. Polder, Luca Bertolini, and Pietro Pedeferri. Corrosion of Steel in Concrete: Prevention, Diagnosis, Repair. Wiley-VCH Verlag GmbH, 2005.

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38

Elsener, Bernhard, Rob B. Polder, Luca Bertolini, Pietro Pedeferri, and Elena Redaelli. Corrosion of Steel in Concrete: Prevention, Diagnosis, Repair. Wiley & Sons, Limited, John, 2013.

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39

Bertolini, Luca. Corrosion of Steel in Concrete: Prevention, Diagnosis, Repair. Wiley-VCH Verlag GmbH, 2013.

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40

Evaluation of Tests for Repair Materials Used in Concrete Pavements. Thomas Telford Ltd, 1998.

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41

Smith, Kelly L., Thomas P. Wilson, and Lynn D. Evans. Innovative Materials Development & Testing: Project Overview (Innovative Materials Development & Testing). Strategic Highway Research Program (Shrp), 1993.

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42

P, Wilson Thomas, Romine A. Russell, Strategic Highway Research Program (U.S.), and United States. Federal Highway Administration., eds. Innovative materials development and testing. Strategic Highway Research Program, National Research Council, 1993.

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43

D, Evans Lynn, and Strategic Highway Research Program (U.S.)., eds. Innovative materials development and testing. 1993.

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44

Perry, S. H., and J. M. Holmyard. Assessment of Materials for Repair of Damaged Concrete Underwater (Offshore Technology Report). Stationery Office Books, 1990.

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45

Center, Turner-Fairbank Highway Research, ed. LTPP pavement maintenance materials: PCC partial-depth spall repair experiment, final report. U.S. Dept. of Transportation, Federal Highway Administration, Research, Development, and Technology, Turner-Fairbank Highway Research Center, 1999.

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46

(Editor), Ravindra K. Dhir, Kevin A. Paine (Editor), and Mun Cheong Tang (Editor), eds. Role of Concrete in Nuclear Facilities. Thomas Telford, Ltd, 2005.

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47

LTPP pavement maintenance materials: SPS-4 supplemental joint seal experiment, final report. U.S. Dept. of Transportation, Federal Highway Administration, Research, Development, and Technology, Turner-Fairbank Highway Research Center, 1999.

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48

J, Carino Nicholas, Bissonette Benoît, and National Institute of Standards and Technology (U.S.), eds. Predicting the performance of concrete repair materials: Summary of a workshop, April 26 and 27, 1999, Durham, New Hampshire. U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 2000.

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49

J, Carino Nicholas, Bissonette Benoît, and National Institute of Standards and Technology (U.S.), eds. Predicting the performance of concrete repair materials: Summary of a workshop, April 26 and 27, 1999, Durham, New Hampshire. U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 2000.

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50

Predicting the performance of concrete repair materials: Summary of a workshop, April 26 and 27, 1999, Durham, New Hampshire. U.S. Dept. of Commerce, Technology Administration, National Institute of Standards and Technology, 2000.

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