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International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056
Volume: 06 Issue: 06 | June 2019 www.irjet.net p-ISSN: 2395-0072
© 2019, IRJET | Impact Factor value: 7.211 | ISO 9001:2008 Certified Journal | Page 133
“EXPERIMENTAL AND ANALYTICAL INVESTIGATION OF FIBER
REINFORCED POLYMER (FRP) BRIDGE DECK STRUCTURES”: A GENERAL
REVIEW
Ashish S. Dahatre1, Shrinivas R. Suryawanshi2
1 PG Research Scholar, Civil Engineering Department, JSPM’s ICOER Wagholi, Pune, Maharashtra, India
2 Assistant Professor, Civil Engineering Department, JSPM’s ICOER, Wagholi, Pune, Maharashtra, India
---------------------------------------------------------------------***---------------------------------------------------------------------
Abstract – FRP (Fiber Reinforced Polymer) bridge deck
structure has more significance when they are compared with
the conventional bridge structures. When these structures are
compared with the conventional bridge structures it is found
that FRP Structures perform better in various functions such
as light weight, high durability, strength, highstiffnessand can
be easily install. As far as loading criteria is concerned, FRP
bridge deck structures undergo two types of loading namely
static and dynamic loading. The construction of FRP bridges
are on large scale nowadays in various countries, therefore it
is necessary to construct such bridges in India. Although the
initial cost of FRP bridges is high but their technical
parameters are more beneficial as compared to conventional
bridges. This paper deals with the wide application of Fibre
Reinforced Polymer (FRP) in construction of bridges.
Key Words: - Fibre Reinforced Polymer (FRP), bridge deck
panel, design considerations, advantages, applications.
1. INTRODUCTION
The application of fibre reinforced polymers in
bridge construction has firstly started for strengthening of
existing concrete bridges (carbon fibre reinforced polymer
lamellas). Subsequently, FRP reinforcing bars were
employed in production of ‘steel free’ concrete decks in
order to avoid corrosion problems. The following move was
to deliver connect decks made completely of fibre
strengthened polymer composites. The essential reason of
FRP materials being advantageous for use in pedestrian
decks has the qualities of light weight and high strength to
protect it from corrosion. A major number of walker spans
have been worked as 'every composite' connect where all
the bridge segments are made of FRP materials. While the in
all likelihood utilization of FRP materials in street spans is
FRP decks over for the most part steel braces. These days,
various street spansarenamedfundamentallyinsufficientor
practically out of date due to disintegrated basic partsorlow
load carrying capacity. Generally the fundamental load
carrying capacity of individualsfromthese bridgesisingreat
condition while the deck framework is deteriorated.
Deterioration of bridges decks, which regularly are made of
reinforced concrete, is for the most part brought about by
corrosion of the support steel because of saltsdeposition. By
and large, decay of concrete bridges happens before these
bridges achieve their plan design service life.
2. RESEARCH AND EDUCATION OF FRP IN INDIA
AND CHINA
India and its neighbour China are the two major
rising and creating economies. While they began utilizing
composites at the same time about over 30 years back, the
advancement made by China is somewhat shocking. Fiber
strengthened polymer (FRP)inIndia hascometoprogress in
1960s with a single resin manufacturer and a lone source of
fibre glass. Throughouttheyears,theindustryhasdeveloped
consistently, yet at a slower pace. FRP materialsweregrown
essentially for aviation and resistance enterprisesduring the
1940s and are broadly utilized in numerous ventures today,
including aerodynamic, marine, car and electrical building.
With the proceeding with cost decrease in superior FRP
materials and the developing requirementfornewmaterials
to revamp common foundations,FRPmaterialsarepresently
finding more extensive acknowledgment among structural
engineers. Research on FRP in development in the territory
of China might be followed back to the finish of 1950s when
China was hard to find of steel. Developmentisa noteworthy
piece of improvement plan of creating nations including
India. To satisfy the vast need for foundation advancement,
upkeep and life upgrade of existing structures are very
important.
After numerous long stretches of utilization, a
current structure frequently should be fixed or updated in
comparison with a significantnumberofreasonslikedamage
because of consumption or increasedloaddemandandsoon.
There are a few techniques for retrofitting of structures like-
guinting, post tensioning,externallybondedsteelplates,steel
or concrete jackets etc. Epoxy injection and recently created
strategies like propelled systems for erosion influenced RCC
and techniques foralteringbasicpropertiesutilizingdynamic
or uninvolved mass damper for tall structures are
additionally there. The strategy of remotely holding FRP to
reinforced concrete (RC) structures was brought into China
in 1997.
In India, field utilization of FRP for basic
strengthening could be followed as ahead of schedule as in
1999. Be that as it may, FRP is being utilized for new
International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056
Volume: 06 Issue: 06 | June 2019 www.irjet.net p-ISSN: 2395-0072
© 2019, IRJET | Impact Factor value: 7.211 | ISO 9001:2008 Certified Journal | Page 134
development additionally in numerous nations; none could
be followed in India. The material is as yet considered
moderately new in this piece of the world. China is working
away at utilization of FRP in new development in numerous
headings like FRP spans, GFRP embankment, FRP space
structure, concrete filled FRP tube sections. There exist
numerous FRP footbridges in China.
3. FRP IN BRIDGE CONSTRUCTION
Generally, the recovery and development of
ordinary short and medium range spans includes cast in
place concrete. While this developmentsystemisreasonable
for development of bridges in open development zoneswith
no or extremely restricted traffic stream, they probably
won't be a reasonable decision fordevelopmentof bridgesin
urban zones. Cast in-situ concrete includes a gigantic
utilization of labor and significant site exercises for
development of formworks, position of support and casting
of the concrete. These broad site exercises increment the
danger of mishaps risking the wellbeing of specialists and
street clients, impact the portability, incrementairandother
contamination and produce a great deal of waste nearby.
Likewise, these exercises require a great deal of existence in
the building site, causing consequently traffic aggravations,
expanded traffic the board and street client costs and
expanded green-house gas emission and energy use. To
defeat these issues, modern ideas of quickened connect
development that utilization pre-assembled connect
components have begun to pull in expanding consideration
both in research and in field application in the previous
twenty years. The utilization of pre-assembled connect
components for development of bridges offers a few
advantages, for example,
1. Diminished construction time.
2. Improved constructability in obliged territories.
3. Diminished unfavorable social impact out on
people and the encompassing network.
4. More secure workplace, improved user safety and
reduce traffic accidents.
5. Diminished user delay costs.
6. Improved natural effects.
4. MATERIALS
Fibre reinforced polymer material is a combination
of polymer resins, acting as a binder, with strong and stiff
fibres which act as a reinforcement. Usually, fillers are also
added to the resin to alter or enhance the material
characteristics, such as to improve fire or ultraviolet (UV)
resistance of the composite material. Typical fibre
reinforcement materials used for civil engineering
applications are glass, carbon, aramid or basalt fibres, while
typical thermoset polymer resins are polyesters,vinyl esters
and epoxies. The price of various materialsusuallyincreases
with increased mechanical properties. Carbon fibres have
the highest stiffness compared to all the other fibres, but the
price of carbon fibres is more than 50 times compared with
glass fibres. Regarding the resin types, epoxy resins exhibit
better structural and environmental resistance and they are
comparatively more expensive. As it can be noted the
properties of the composite materials are in between the
fibre and resin properties, where the fibres contribute most
to the stiffness and the strength of the composite material in
the direction of the fibres, while the resin is used to transfer
the loads to the fibres and protect the fibres.
5. DESIGN CONSIDERATIONS
One of the troubles related with the structure of
bridges with FRP decksisthe absenceofconfigurationcodes.
There exist structure rules for the plan of FRP passerby
bridges and street spans ((AASHTO) 2008; Agency et al.
2005), however there is no all-around acknowledged
standard code for FRP decks for use in street spans. Most
current plans of street spans with FRP decks are done by
following the details given by the FRP deck makers, which
have been legitimized by verification tests. Nonetheless,
standard examination and plan methodology for FRP
connect decks are yet to be created.
FRP composite bridges decks should meet similar
plan necessities as regular scaffold decks by following the
contemporary methodologies of auxiliary structure of
burden bearing frameworks which depend on the utmost
state ideas. Generally speaking, basic investigation is
portrayed to satisfy these points of confinement states for
various burden cases characterized in the Euro codes. In the
accompanying, the contemplationswhichhavebeentakenin
the plan of bridges with FRP decks are outlined.
6. APPLICATIONS OF FRP DECKS FOR BRIDGES.
Numerous pedestrian and road bridges have been
build or rehabilitated with FRP decks up to now, mostly in
the United States, Korea and Europe. The focus in this thesis
is given to road bridges. FRP decks have been implemented
in various bridge projects, where most of them have been
deck replacement projects, and they can be distinguished as
follows:
1. Deck replacement projects for deteriorated decks or
bridges with traffic load restrictions, where the
reduction in dead load could benefit an increase in live
load ratings
2. Deck widening projects without imposing additional
loads on the substructure.
3. Rehabilitation projects for historical bridges, avoiding
the replacement of the bridge due to the cultural values.
4. Deck replacements for bascule bridges, benefiting from
the lightweight of the deck to have simple mechanical
systems for lifting or swinging and fast construction.
One example in Europe is the Grasshopper bridge in
Denmark, where the badly rotted timber deck whose
International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056
Volume: 06 Issue: 06 | June 2019 www.irjet.net p-ISSN: 2395-0072
© 2019, IRJET | Impact Factor value: 7.211 | ISO 9001:2008 Certified Journal | Page 135
planking had to be replaced about every five years was
replaced with an FRP deck in 2011.
5. Superstructure replacement projects due to
deterioration (Turner et al. 2004). One example is West
Mill bridge, which is the first all-composite road bridges
in Europe, and it was installed in 2002, in England
(Canning 2012).
6. New bridges where accelerated construction is needed
to reduce the cost of maintenance and protection of
traffic and reduce traffic congestions (Knippers et al.
2010; Lee et al. 2010).
7. FRP decks have been commonlyusedonsteel structures
with spacing between girders smaller than 3 meters.
The spans of the superstructures have been relatively
short (<14m), but in some projects FRP decks are
applied for larger spans (Knippers et al. 2010).
7. CONCLUSION
The application of FRP in bridge construction had
been reviewed. Experimental and analytical investigation
has been carried out for finding out furtherbehaviourofFRP
panels with conventional panels but not discussed for the
sake of brevity. Only little information about the FRP along
with some literature has been discussed.
REFERENCES
[1] M P Muthuraj and K Nithyapriya, (Dec. 2017).
“Experimental studies on multicellular GFRP bridge
deck panels under static and fatigue loading”, Indian
Academy of Sciences, Vol. 42, No. 12, pp. 2171–2181
[2] Artur Zyjewski, Jacek Chróścielewski, and Łukasz
Pyrzowski, (Jan 2017). “The use of fibre-reinforced
polymers (FRP) in bridges as a favorablesolutionforthe
environment”, E3S Web of Conferences, DOI:
10.1051/e3 sconf/ 20171700102.
[3] R. Kalfat, R. Al-Mahaidi,(August2016).“Improvementof
FRP-to-concrete bond performance using bidirectional
fiber patch anchors combined with FRP spike anchors”
Elsevier Composite Structures 155, pp. 89–98.
[4] Tushar Kanti Dey, Tanmoy Mukhopadhyay, Anupam
Chakrabarti, Umesh Kumar Sharma (May 2015)
“Efficient lightweight design of FRP bridge deck” ICE
Publishing Volume 168 Issue SB10.
[5] W.M. Sebastian, J. Ross, T. Keller, S. Luke (Jan 2012),
“Load response due to local and global indeterminacies
of FRP-deck bridges” Sci Verse Science Direct, pp. 1727-
1738.
[6] Byung-Jik Son, Sang-Youl Lee, Hyo-Seon Ji (Sept. 2012),
“Long term performance of FRP slab bridge
superstructure field load test and ratings” Sci Verse
Science Direct, pp.644-656.
[7] Tushar Kanti Dey Ishan Srivastava, Ravi Prakash
Khandelwal, Umesh Kumar Sharma Anupam
Chakrabarti (Sept 2012), “Optimum design of FRP rib
core bridge deck” Sci Verse Science Direct, pp.930-938
[8] Dongsheng Li, Zhi Zhou, Jinping Ou, (Oct. 2012).
“Dynamic behavior monitoring and damage evaluation
for arc behavior monitoring and damage evaluation for
arch bridge suspender using GFRP optical fiber Bragg
grating sensors”, Sci Verse Science Direct, pp. 1031–
1038.
[9] B. Stankiewicz, (Sept. 2012) “Composite GFRP Deck for
Bridge Structures”, Sci Verse Science Direct, DOI:
10.1016, pp. 423 – 427.
[10] N. Pannirselvam, V. Nagaradjane,KChandramouli,(Nov.
2009). “Strength behaviour of fibre reinforced polymer
strengthened beam” ARPN Journal of Engineering and
Applied Sciences, Vol. 4, No. 9, ISSN 1819-6608.
[11] Ciprian Cozmanciuc, Ruxandra Oltean, Vlad Munteanu,
(Sept.2009) “Strengthening Techniques of RC columns
using Fibre Reinforced Polymeric Materials” University
of Technicals, Fasc 3.
[12] Yousef A. Al-Salloum, Hussein M. Elsanadedy, Aref A.
Abadel (June 2010), “BehaviorofFRP-confinedconcrete
after high temperature exposure” Sci Verse Science
Direct, pp. 838-850.
[13] Ravikant Shrivastava, Uttamasha Gupta , U B Choubey,
(May 2009). “FRP: Research, Education and Application
in India and China in Civil Engineering”, International
Journal of Recent Trends in Engineering, Vol. 1, No. 6.
[14] Arturo Gonzalez, Paraic Rattigan,Eugene J.OBrien,Colin
Caprani, (Dec. 2008) “Determination of bridge lifetime
dynamic amplification factor using finite element
analysis of critical loading scenarios”,ScienceDirect,pp.
2330–2337
[15] Yin Zhang, C.S. Cai (June 2007), “Load distribution and
dynamic response of multi-girder bridges with FRP
decks”, Science Direct, pp. 1676–1689.
[16] P. Alagusundaramoorthy, I. E. Harik, M.ASCE; and C. C.
Choo, (July 2006). “Structural Behavior of FRP
Composite Bridge Deck Panels”, Journal of Bridge
Engineering, DOI: 10.1061/ASCE1084-
0702200611:4384.
[17] Amr El-Ragaby, EhabEl-Salakawy,BrahimBenmokrane,
(April 2006). “Fatigue analysis of concrete bridge deck
slabs reinforcedwithE-glass/vinyl esterFRPreinforcing
bars” Science Direct Composite PartB38,pp.(703–711)
[18] Albert F. Daly, John R. Cuninghame, (April 2005).
“Performance of a fibre-reinforced polymer bridgedeck
under dynamic wheel loading”,ScienceDirect,pp.1180–
1188.
[19] Amjad J. Aref, Sreenivas Alampalli, (May 2001).
“Vibration Characteristics of Fibre Reinforced Polymer
bridge superstructure” Elsevier Composite Structures
52, pp. 467-474.
[20] Reinforced Concrete Code 456:2000 and Seismic Code
1893:2016.

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Experimental and Analytical Investigation of FRP Bridge Deck Structures

  • 1. International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056 Volume: 06 Issue: 06 | June 2019 www.irjet.net p-ISSN: 2395-0072 © 2019, IRJET | Impact Factor value: 7.211 | ISO 9001:2008 Certified Journal | Page 133 “EXPERIMENTAL AND ANALYTICAL INVESTIGATION OF FIBER REINFORCED POLYMER (FRP) BRIDGE DECK STRUCTURES”: A GENERAL REVIEW Ashish S. Dahatre1, Shrinivas R. Suryawanshi2 1 PG Research Scholar, Civil Engineering Department, JSPM’s ICOER Wagholi, Pune, Maharashtra, India 2 Assistant Professor, Civil Engineering Department, JSPM’s ICOER, Wagholi, Pune, Maharashtra, India ---------------------------------------------------------------------***--------------------------------------------------------------------- Abstract – FRP (Fiber Reinforced Polymer) bridge deck structure has more significance when they are compared with the conventional bridge structures. When these structures are compared with the conventional bridge structures it is found that FRP Structures perform better in various functions such as light weight, high durability, strength, highstiffnessand can be easily install. As far as loading criteria is concerned, FRP bridge deck structures undergo two types of loading namely static and dynamic loading. The construction of FRP bridges are on large scale nowadays in various countries, therefore it is necessary to construct such bridges in India. Although the initial cost of FRP bridges is high but their technical parameters are more beneficial as compared to conventional bridges. This paper deals with the wide application of Fibre Reinforced Polymer (FRP) in construction of bridges. Key Words: - Fibre Reinforced Polymer (FRP), bridge deck panel, design considerations, advantages, applications. 1. INTRODUCTION The application of fibre reinforced polymers in bridge construction has firstly started for strengthening of existing concrete bridges (carbon fibre reinforced polymer lamellas). Subsequently, FRP reinforcing bars were employed in production of ‘steel free’ concrete decks in order to avoid corrosion problems. The following move was to deliver connect decks made completely of fibre strengthened polymer composites. The essential reason of FRP materials being advantageous for use in pedestrian decks has the qualities of light weight and high strength to protect it from corrosion. A major number of walker spans have been worked as 'every composite' connect where all the bridge segments are made of FRP materials. While the in all likelihood utilization of FRP materials in street spans is FRP decks over for the most part steel braces. These days, various street spansarenamedfundamentallyinsufficientor practically out of date due to disintegrated basic partsorlow load carrying capacity. Generally the fundamental load carrying capacity of individualsfromthese bridgesisingreat condition while the deck framework is deteriorated. Deterioration of bridges decks, which regularly are made of reinforced concrete, is for the most part brought about by corrosion of the support steel because of saltsdeposition. By and large, decay of concrete bridges happens before these bridges achieve their plan design service life. 2. RESEARCH AND EDUCATION OF FRP IN INDIA AND CHINA India and its neighbour China are the two major rising and creating economies. While they began utilizing composites at the same time about over 30 years back, the advancement made by China is somewhat shocking. Fiber strengthened polymer (FRP)inIndia hascometoprogress in 1960s with a single resin manufacturer and a lone source of fibre glass. Throughouttheyears,theindustryhasdeveloped consistently, yet at a slower pace. FRP materialsweregrown essentially for aviation and resistance enterprisesduring the 1940s and are broadly utilized in numerous ventures today, including aerodynamic, marine, car and electrical building. With the proceeding with cost decrease in superior FRP materials and the developing requirementfornewmaterials to revamp common foundations,FRPmaterialsarepresently finding more extensive acknowledgment among structural engineers. Research on FRP in development in the territory of China might be followed back to the finish of 1950s when China was hard to find of steel. Developmentisa noteworthy piece of improvement plan of creating nations including India. To satisfy the vast need for foundation advancement, upkeep and life upgrade of existing structures are very important. After numerous long stretches of utilization, a current structure frequently should be fixed or updated in comparison with a significantnumberofreasonslikedamage because of consumption or increasedloaddemandandsoon. There are a few techniques for retrofitting of structures like- guinting, post tensioning,externallybondedsteelplates,steel or concrete jackets etc. Epoxy injection and recently created strategies like propelled systems for erosion influenced RCC and techniques foralteringbasicpropertiesutilizingdynamic or uninvolved mass damper for tall structures are additionally there. The strategy of remotely holding FRP to reinforced concrete (RC) structures was brought into China in 1997. In India, field utilization of FRP for basic strengthening could be followed as ahead of schedule as in 1999. Be that as it may, FRP is being utilized for new
  • 2. International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056 Volume: 06 Issue: 06 | June 2019 www.irjet.net p-ISSN: 2395-0072 © 2019, IRJET | Impact Factor value: 7.211 | ISO 9001:2008 Certified Journal | Page 134 development additionally in numerous nations; none could be followed in India. The material is as yet considered moderately new in this piece of the world. China is working away at utilization of FRP in new development in numerous headings like FRP spans, GFRP embankment, FRP space structure, concrete filled FRP tube sections. There exist numerous FRP footbridges in China. 3. FRP IN BRIDGE CONSTRUCTION Generally, the recovery and development of ordinary short and medium range spans includes cast in place concrete. While this developmentsystemisreasonable for development of bridges in open development zoneswith no or extremely restricted traffic stream, they probably won't be a reasonable decision fordevelopmentof bridgesin urban zones. Cast in-situ concrete includes a gigantic utilization of labor and significant site exercises for development of formworks, position of support and casting of the concrete. These broad site exercises increment the danger of mishaps risking the wellbeing of specialists and street clients, impact the portability, incrementairandother contamination and produce a great deal of waste nearby. Likewise, these exercises require a great deal of existence in the building site, causing consequently traffic aggravations, expanded traffic the board and street client costs and expanded green-house gas emission and energy use. To defeat these issues, modern ideas of quickened connect development that utilization pre-assembled connect components have begun to pull in expanding consideration both in research and in field application in the previous twenty years. The utilization of pre-assembled connect components for development of bridges offers a few advantages, for example, 1. Diminished construction time. 2. Improved constructability in obliged territories. 3. Diminished unfavorable social impact out on people and the encompassing network. 4. More secure workplace, improved user safety and reduce traffic accidents. 5. Diminished user delay costs. 6. Improved natural effects. 4. MATERIALS Fibre reinforced polymer material is a combination of polymer resins, acting as a binder, with strong and stiff fibres which act as a reinforcement. Usually, fillers are also added to the resin to alter or enhance the material characteristics, such as to improve fire or ultraviolet (UV) resistance of the composite material. Typical fibre reinforcement materials used for civil engineering applications are glass, carbon, aramid or basalt fibres, while typical thermoset polymer resins are polyesters,vinyl esters and epoxies. The price of various materialsusuallyincreases with increased mechanical properties. Carbon fibres have the highest stiffness compared to all the other fibres, but the price of carbon fibres is more than 50 times compared with glass fibres. Regarding the resin types, epoxy resins exhibit better structural and environmental resistance and they are comparatively more expensive. As it can be noted the properties of the composite materials are in between the fibre and resin properties, where the fibres contribute most to the stiffness and the strength of the composite material in the direction of the fibres, while the resin is used to transfer the loads to the fibres and protect the fibres. 5. DESIGN CONSIDERATIONS One of the troubles related with the structure of bridges with FRP decksisthe absenceofconfigurationcodes. There exist structure rules for the plan of FRP passerby bridges and street spans ((AASHTO) 2008; Agency et al. 2005), however there is no all-around acknowledged standard code for FRP decks for use in street spans. Most current plans of street spans with FRP decks are done by following the details given by the FRP deck makers, which have been legitimized by verification tests. Nonetheless, standard examination and plan methodology for FRP connect decks are yet to be created. FRP composite bridges decks should meet similar plan necessities as regular scaffold decks by following the contemporary methodologies of auxiliary structure of burden bearing frameworks which depend on the utmost state ideas. Generally speaking, basic investigation is portrayed to satisfy these points of confinement states for various burden cases characterized in the Euro codes. In the accompanying, the contemplationswhichhavebeentakenin the plan of bridges with FRP decks are outlined. 6. APPLICATIONS OF FRP DECKS FOR BRIDGES. Numerous pedestrian and road bridges have been build or rehabilitated with FRP decks up to now, mostly in the United States, Korea and Europe. The focus in this thesis is given to road bridges. FRP decks have been implemented in various bridge projects, where most of them have been deck replacement projects, and they can be distinguished as follows: 1. Deck replacement projects for deteriorated decks or bridges with traffic load restrictions, where the reduction in dead load could benefit an increase in live load ratings 2. Deck widening projects without imposing additional loads on the substructure. 3. Rehabilitation projects for historical bridges, avoiding the replacement of the bridge due to the cultural values. 4. Deck replacements for bascule bridges, benefiting from the lightweight of the deck to have simple mechanical systems for lifting or swinging and fast construction. One example in Europe is the Grasshopper bridge in Denmark, where the badly rotted timber deck whose
  • 3. International Research Journal of Engineering and Technology (IRJET) e-ISSN: 2395-0056 Volume: 06 Issue: 06 | June 2019 www.irjet.net p-ISSN: 2395-0072 © 2019, IRJET | Impact Factor value: 7.211 | ISO 9001:2008 Certified Journal | Page 135 planking had to be replaced about every five years was replaced with an FRP deck in 2011. 5. Superstructure replacement projects due to deterioration (Turner et al. 2004). One example is West Mill bridge, which is the first all-composite road bridges in Europe, and it was installed in 2002, in England (Canning 2012). 6. New bridges where accelerated construction is needed to reduce the cost of maintenance and protection of traffic and reduce traffic congestions (Knippers et al. 2010; Lee et al. 2010). 7. FRP decks have been commonlyusedonsteel structures with spacing between girders smaller than 3 meters. The spans of the superstructures have been relatively short (<14m), but in some projects FRP decks are applied for larger spans (Knippers et al. 2010). 7. CONCLUSION The application of FRP in bridge construction had been reviewed. Experimental and analytical investigation has been carried out for finding out furtherbehaviourofFRP panels with conventional panels but not discussed for the sake of brevity. Only little information about the FRP along with some literature has been discussed. REFERENCES [1] M P Muthuraj and K Nithyapriya, (Dec. 2017). “Experimental studies on multicellular GFRP bridge deck panels under static and fatigue loading”, Indian Academy of Sciences, Vol. 42, No. 12, pp. 2171–2181 [2] Artur Zyjewski, Jacek Chróścielewski, and Łukasz Pyrzowski, (Jan 2017). “The use of fibre-reinforced polymers (FRP) in bridges as a favorablesolutionforthe environment”, E3S Web of Conferences, DOI: 10.1051/e3 sconf/ 20171700102. [3] R. Kalfat, R. 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[17] Amr El-Ragaby, EhabEl-Salakawy,BrahimBenmokrane, (April 2006). “Fatigue analysis of concrete bridge deck slabs reinforcedwithE-glass/vinyl esterFRPreinforcing bars” Science Direct Composite PartB38,pp.(703–711) [18] Albert F. Daly, John R. Cuninghame, (April 2005). “Performance of a fibre-reinforced polymer bridgedeck under dynamic wheel loading”,ScienceDirect,pp.1180– 1188. [19] Amjad J. Aref, Sreenivas Alampalli, (May 2001). “Vibration Characteristics of Fibre Reinforced Polymer bridge superstructure” Elsevier Composite Structures 52, pp. 467-474. [20] Reinforced Concrete Code 456:2000 and Seismic Code 1893:2016.