Elevated temperature performance of reinforced concrete beams containing waste polypropylene fibers

Fire is reflected as one of the most serious possible risks for buildings and constructions. The main objective of this research is to investigate the effect on the performance of beams reinforced concrete under and without fire conditions by adding waste polypropylene fibers (WPPF) with two variabl...

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Main Authors: Zainab M.R. Abdul Rasoul, Mushtaq Sadiq Radhi, Aymen J. Alsaad, Haider Muhannad
Format: Article
Language:English
Published: Elsevier 2020-10-01
Series:Case Studies in Thermal Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X19303776
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spelling doaj-f7600ef6232642cfab81d1c2bb51d67b2020-11-25T03:51:32ZengElsevierCase Studies in Thermal Engineering2214-157X2020-10-0121100705Elevated temperature performance of reinforced concrete beams containing waste polypropylene fibersZainab M.R. Abdul Rasoul0Mushtaq Sadiq Radhi1Aymen J. Alsaad2Haider Muhannad3Department of Civil Engineering, College of Engineering, University of Kerbala, 56001, Karbala, IraqDepartment of Civil Engineering, College of Engineering, University of Kerbala, 56001, Karbala, IraqCorresponding author.; Department of Civil Engineering, College of Engineering, University of Kerbala, 56001, Karbala, IraqDepartment of Civil Engineering, College of Engineering, University of Kerbala, 56001, Karbala, IraqFire is reflected as one of the most serious possible risks for buildings and constructions. The main objective of this research is to investigate the effect on the performance of beams reinforced concrete under and without fire conditions by adding waste polypropylene fibers (WPPF) with two variable values of volume fraction. Six beams with different volume fraction of WPPF ratio were tested to study the behavior of the beams when exposed and not exposed to fire conditions. Three of these beams were prepared with volume fraction of WPPF ratios 0%, 0.5%, and 1% to test under two-point loads without exposure to fire, while the other beams were prepared with same conditions to test after exposure to fire. The results showed that the reinforced concrete beams without fibers suffered significant reduction in overall performance and mechanical properties, when subjected to fire for enough time to reach elevated temperatures (400 C0). Both 0.5% and 1% of WPPF ratios didn't affect the flexural capacity before the fire, however, reduction in compressive strength occurred. On the other hand, the fiber improved the tensile strength and the first cracking load, and also reduced the loss in compression strength after the fire. Finally, the recommended optimal ratio of WPPF is not more than 0.5%.http://www.sciencedirect.com/science/article/pii/S2214157X19303776Waste fiberPolypropyleneFireBeamsFlexural failurePlastic
collection DOAJ
language English
format Article
sources DOAJ
author Zainab M.R. Abdul Rasoul
Mushtaq Sadiq Radhi
Aymen J. Alsaad
Haider Muhannad
spellingShingle Zainab M.R. Abdul Rasoul
Mushtaq Sadiq Radhi
Aymen J. Alsaad
Haider Muhannad
Elevated temperature performance of reinforced concrete beams containing waste polypropylene fibers
Case Studies in Thermal Engineering
Waste fiber
Polypropylene
Fire
Beams
Flexural failure
Plastic
author_facet Zainab M.R. Abdul Rasoul
Mushtaq Sadiq Radhi
Aymen J. Alsaad
Haider Muhannad
author_sort Zainab M.R. Abdul Rasoul
title Elevated temperature performance of reinforced concrete beams containing waste polypropylene fibers
title_short Elevated temperature performance of reinforced concrete beams containing waste polypropylene fibers
title_full Elevated temperature performance of reinforced concrete beams containing waste polypropylene fibers
title_fullStr Elevated temperature performance of reinforced concrete beams containing waste polypropylene fibers
title_full_unstemmed Elevated temperature performance of reinforced concrete beams containing waste polypropylene fibers
title_sort elevated temperature performance of reinforced concrete beams containing waste polypropylene fibers
publisher Elsevier
series Case Studies in Thermal Engineering
issn 2214-157X
publishDate 2020-10-01
description Fire is reflected as one of the most serious possible risks for buildings and constructions. The main objective of this research is to investigate the effect on the performance of beams reinforced concrete under and without fire conditions by adding waste polypropylene fibers (WPPF) with two variable values of volume fraction. Six beams with different volume fraction of WPPF ratio were tested to study the behavior of the beams when exposed and not exposed to fire conditions. Three of these beams were prepared with volume fraction of WPPF ratios 0%, 0.5%, and 1% to test under two-point loads without exposure to fire, while the other beams were prepared with same conditions to test after exposure to fire. The results showed that the reinforced concrete beams without fibers suffered significant reduction in overall performance and mechanical properties, when subjected to fire for enough time to reach elevated temperatures (400 C0). Both 0.5% and 1% of WPPF ratios didn't affect the flexural capacity before the fire, however, reduction in compressive strength occurred. On the other hand, the fiber improved the tensile strength and the first cracking load, and also reduced the loss in compression strength after the fire. Finally, the recommended optimal ratio of WPPF is not more than 0.5%.
topic Waste fiber
Polypropylene
Fire
Beams
Flexural failure
Plastic
url http://www.sciencedirect.com/science/article/pii/S2214157X19303776
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AT haidermuhannad elevatedtemperatureperformanceofreinforcedconcretebeamscontainingwastepolypropylenefibers
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