Mechanical properties of ultra-high-performance hybrid polyethylene-steel fiber reinforced concrete

The effects of combined fibers on the various characteristics and behaviors of Ultra High Performance Fiber Reinforced Concrete (UHPFRC) were investigated. Polyethylene (PE) and steel fibers were used. In producing the specimens, the volume content of polyethylene was varied from 0.0% to 1.0% (wit...

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Main Author: Liao, Se Wei
Other Authors: Tan Kang Hai
Format: Final Year Project
Language:English
Published: 2017
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Online Access:http://hdl.handle.net/10356/70954
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-709542023-03-03T17:21:54Z Mechanical properties of ultra-high-performance hybrid polyethylene-steel fiber reinforced concrete Liao, Se Wei Tan Kang Hai School of Civil and Environmental Engineering DRNTU::Engineering::Civil engineering The effects of combined fibers on the various characteristics and behaviors of Ultra High Performance Fiber Reinforced Concrete (UHPFRC) were investigated. Polyethylene (PE) and steel fibers were used. In producing the specimens, the volume content of polyethylene was varied from 0.0% to 1.0% (with an interval of 0.5%) and the volume content of steel fibers was varied from 0.0% to 2.0% (with an interval of 1.0%). The addition of polyethylene result in a slight reduction of compressive strength. The presence of steel fibers did not reduce the compressive strength. The combination of the two types of fiber favorably affects the flexural behavior of UHPC compared to the mix design with only one type of the fibers. UHPFRC with 0.5% polyethylene and 2.0% steel fibers exhibited the best overall performance considering the compressive, tensile and flexural properties. In addition, crucial mix proportion parameters i.e. the water to binder ratio and aggregate size were studied. The flexural behavior was also studied under elevated temperature. A slight increase in aggregate size from 0.6 mm to 2.3 mm has a positive influence on the mechanical properties of UHPFRC. On the contrary, the increase in water content will negatively affect the mechanical properties of concrete. The UHPFRC spalled even at a very low heating rate, which proves PE fibers cannot help to prevent spalling. However, for the specimens did not spall, the elevated temperature enhanced the flexural property. Bachelor of Engineering (Civil) 2017-05-12T05:03:37Z 2017-05-12T05:03:37Z 2017 Final Year Project (FYP) http://hdl.handle.net/10356/70954 en Nanyang Technological University 37 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Civil engineering
spellingShingle DRNTU::Engineering::Civil engineering
Liao, Se Wei
Mechanical properties of ultra-high-performance hybrid polyethylene-steel fiber reinforced concrete
description The effects of combined fibers on the various characteristics and behaviors of Ultra High Performance Fiber Reinforced Concrete (UHPFRC) were investigated. Polyethylene (PE) and steel fibers were used. In producing the specimens, the volume content of polyethylene was varied from 0.0% to 1.0% (with an interval of 0.5%) and the volume content of steel fibers was varied from 0.0% to 2.0% (with an interval of 1.0%). The addition of polyethylene result in a slight reduction of compressive strength. The presence of steel fibers did not reduce the compressive strength. The combination of the two types of fiber favorably affects the flexural behavior of UHPC compared to the mix design with only one type of the fibers. UHPFRC with 0.5% polyethylene and 2.0% steel fibers exhibited the best overall performance considering the compressive, tensile and flexural properties. In addition, crucial mix proportion parameters i.e. the water to binder ratio and aggregate size were studied. The flexural behavior was also studied under elevated temperature. A slight increase in aggregate size from 0.6 mm to 2.3 mm has a positive influence on the mechanical properties of UHPFRC. On the contrary, the increase in water content will negatively affect the mechanical properties of concrete. The UHPFRC spalled even at a very low heating rate, which proves PE fibers cannot help to prevent spalling. However, for the specimens did not spall, the elevated temperature enhanced the flexural property.
author2 Tan Kang Hai
author_facet Tan Kang Hai
Liao, Se Wei
format Final Year Project
author Liao, Se Wei
author_sort Liao, Se Wei
title Mechanical properties of ultra-high-performance hybrid polyethylene-steel fiber reinforced concrete
title_short Mechanical properties of ultra-high-performance hybrid polyethylene-steel fiber reinforced concrete
title_full Mechanical properties of ultra-high-performance hybrid polyethylene-steel fiber reinforced concrete
title_fullStr Mechanical properties of ultra-high-performance hybrid polyethylene-steel fiber reinforced concrete
title_full_unstemmed Mechanical properties of ultra-high-performance hybrid polyethylene-steel fiber reinforced concrete
title_sort mechanical properties of ultra-high-performance hybrid polyethylene-steel fiber reinforced concrete
publishDate 2017
url http://hdl.handle.net/10356/70954
_version_ 1759855583009177600