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Parametric study on partial replacement of conventional reinforcement by FRP reinforcements for sustainable design
Glass fibre reinforced polymer (GFRP) has proven to be a significant technical breakthrough in concrete reinforcing. Because current technical tools and materials are unable to reduce weight, increase spans, or create slim structures, the search for value composite materials is encouraged. Fiber-rei...
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description | Glass fibre reinforced polymer (GFRP) has proven to be a significant technical breakthrough in concrete reinforcing. Because current technical tools and materials are unable to reduce weight, increase spans, or create slim structures, the search for value composite materials is encouraged. Fiber-reinforced polymer (FRP) materials have risen to prominence as a substitute for steel reinforcing bars in concrete buildings. FRP reinforcing bars have an advantage over steel reinforcement in that they are noncorrosive and nonconductive in some cases. The use of FRP results in attractive performances in a variety of environments, including static, dynamic, and exciting ones. As approaches for using the full FRP strength, minimising brittleness, fire danger, and unintentional damage, reducing energy consumption and carbon emissions during manufacture, and lowering the high initial cost are developed, the acceptability and use of FRPs in reinforcing RC structures will expand. A life cycle cost analysis has been used recently to determine the cost effectiveness of FRP composites as compared with conventional materials. This paper presents simple methods for evaluating comparative life cycle costs for concrete structures made up of conventional and FRP rods. |
doi_str_mv | 10.1063/5.0173457 |
format | conference_proceeding |
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Because current technical tools and materials are unable to reduce weight, increase spans, or create slim structures, the search for value composite materials is encouraged. Fiber-reinforced polymer (FRP) materials have risen to prominence as a substitute for steel reinforcing bars in concrete buildings. FRP reinforcing bars have an advantage over steel reinforcement in that they are noncorrosive and nonconductive in some cases. The use of FRP results in attractive performances in a variety of environments, including static, dynamic, and exciting ones. As approaches for using the full FRP strength, minimising brittleness, fire danger, and unintentional damage, reducing energy consumption and carbon emissions during manufacture, and lowering the high initial cost are developed, the acceptability and use of FRPs in reinforcing RC structures will expand. 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Because current technical tools and materials are unable to reduce weight, increase spans, or create slim structures, the search for value composite materials is encouraged. Fiber-reinforced polymer (FRP) materials have risen to prominence as a substitute for steel reinforcing bars in concrete buildings. FRP reinforcing bars have an advantage over steel reinforcement in that they are noncorrosive and nonconductive in some cases. The use of FRP results in attractive performances in a variety of environments, including static, dynamic, and exciting ones. As approaches for using the full FRP strength, minimising brittleness, fire danger, and unintentional damage, reducing energy consumption and carbon emissions during manufacture, and lowering the high initial cost are developed, the acceptability and use of FRPs in reinforcing RC structures will expand. A life cycle cost analysis has been used recently to determine the cost effectiveness of FRP composites as compared with conventional materials. This paper presents simple methods for evaluating comparative life cycle costs for concrete structures made up of conventional and FRP rods.</description><subject>Composite materials</subject><subject>Concrete</subject><subject>Concrete structures</subject><subject>Cost analysis</subject><subject>Cost effectiveness</subject><subject>Emissions</subject><subject>Energy consumption</subject><subject>Fiber reinforced polymers</subject><subject>Fire damage</subject><subject>Glass fiber reinforced plastics</subject><subject>Life cycle analysis</subject><subject>Life cycle costs</subject><subject>Rebar</subject><subject>Reinforcing steels</subject><subject>Weight reduction</subject><issn>0094-243X</issn><issn>1551-7616</issn><fulltext>true</fulltext><rsrctype>conference_proceeding</rsrctype><creationdate>2023</creationdate><recordtype>conference_proceeding</recordtype><recordid>eNpVUEtLAzEYDKJgrR78BwFvwta8No-jFKtCwSIK3kI2yUrKNrsmWaH_3q324mmGmeHjmwHgGqMFRpze1QuEBWW1OAEzXNe4EhzzUzBDSLGKMPpxDi5y3iJElBByBtLGJLPzJQULcxndHvYRDiaVYDqY_NAZ63c-Fti30Pbxe6Khj79eiG2fjm6zh6vXzX8xw4nCPOZiQjRN56HzOXzGS3DWmi77qyPOwfvq4W35VK1fHp-X9-tqwJSWymJPpVLSEcudtBwpQRx3yrSONxh5SphFopnqKkW8wS2WTErla-4IaRmlc3Dzd3dI_dfoc9HbfkzT71kThRAjlDI5pW7_UtmGYg7l9JDCzqS9xkgfNtW1Pm5KfwDC3mp7</recordid><startdate>20231211</startdate><enddate>20231211</enddate><creator>Patel, Ritiksha</creator><creator>Thakur, Lalit S.</creator><general>American Institute of Physics</general><scope>8FD</scope><scope>H8D</scope><scope>L7M</scope></search><sort><creationdate>20231211</creationdate><title>Parametric study on partial replacement of conventional reinforcement by FRP reinforcements for sustainable design</title><author>Patel, Ritiksha ; Thakur, Lalit S.</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-p133t-c1e38998d2c6d8c60972d6d9afd6b10e324c07b017992ea1f184889e56d22f433</frbrgroupid><rsrctype>conference_proceedings</rsrctype><prefilter>conference_proceedings</prefilter><language>eng</language><creationdate>2023</creationdate><topic>Composite materials</topic><topic>Concrete</topic><topic>Concrete structures</topic><topic>Cost analysis</topic><topic>Cost effectiveness</topic><topic>Emissions</topic><topic>Energy consumption</topic><topic>Fiber reinforced polymers</topic><topic>Fire damage</topic><topic>Glass fiber reinforced plastics</topic><topic>Life cycle analysis</topic><topic>Life cycle costs</topic><topic>Rebar</topic><topic>Reinforcing steels</topic><topic>Weight reduction</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Patel, Ritiksha</creatorcontrib><creatorcontrib>Thakur, Lalit S.</creatorcontrib><collection>Technology Research Database</collection><collection>Aerospace Database</collection><collection>Advanced Technologies Database with Aerospace</collection></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Patel, Ritiksha</au><au>Thakur, Lalit S.</au><au>Vekariya, Vipul</au><au>Mishra, Richa</au><format>book</format><genre>proceeding</genre><ristype>CONF</ristype><atitle>Parametric study on partial replacement of conventional reinforcement by FRP reinforcements for sustainable design</atitle><btitle>AIP Conference Proceedings</btitle><date>2023-12-11</date><risdate>2023</risdate><volume>2855</volume><issue>1</issue><issn>0094-243X</issn><eissn>1551-7616</eissn><coden>APCPCS</coden><abstract>Glass fibre reinforced polymer (GFRP) has proven to be a significant technical breakthrough in concrete reinforcing. Because current technical tools and materials are unable to reduce weight, increase spans, or create slim structures, the search for value composite materials is encouraged. Fiber-reinforced polymer (FRP) materials have risen to prominence as a substitute for steel reinforcing bars in concrete buildings. FRP reinforcing bars have an advantage over steel reinforcement in that they are noncorrosive and nonconductive in some cases. The use of FRP results in attractive performances in a variety of environments, including static, dynamic, and exciting ones. As approaches for using the full FRP strength, minimising brittleness, fire danger, and unintentional damage, reducing energy consumption and carbon emissions during manufacture, and lowering the high initial cost are developed, the acceptability and use of FRPs in reinforcing RC structures will expand. 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source | American Institute of Physics:Jisc Collections:Transitional Journals Agreement 2021-23 (Reading list) |
subjects | Composite materials Concrete Concrete structures Cost analysis Cost effectiveness Emissions Energy consumption Fiber reinforced polymers Fire damage Glass fiber reinforced plastics Life cycle analysis Life cycle costs Rebar Reinforcing steels Weight reduction |
title | Parametric study on partial replacement of conventional reinforcement by FRP reinforcements for sustainable design |
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