Reinforcing Efficiency of Micro and Macro Continuous Polypropylene Fibers in Cementitious Composites

The effect of the microstructure of hydrophilic polypropylene (PP) fibers in the distribution of cracking associated with the strengthening and toughening mechanism of cement-based composites under tensile loading was studied. Using a filament winding system, continuous cement-based PP fiber composi...

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Main Authors: Barzin Mobasher, Vikram Dey, Jacob Bauchmoyer, Himai Mehere, Steve Schaef
Format: Article
Language:English
Published: MDPI AG 2019-05-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/9/11/2189
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spelling doaj-d8abd2f0cd214774b29550a8066717612020-11-25T02:10:47ZengMDPI AGApplied Sciences2076-34172019-05-01911218910.3390/app9112189app9112189Reinforcing Efficiency of Micro and Macro Continuous Polypropylene Fibers in Cementitious CompositesBarzin Mobasher0Vikram Dey1Jacob Bauchmoyer2Himai Mehere3Steve Schaef4School of Sustainable Engineering and the Built Environment, Arizona State University, Tempe, AZ 85287, USAStructural Designer, PK Associates Structural Engineers, Scottsdale, AZ 85250, USAStructural Engineer, CDM Smith, Phoenix, AZ 85028, USASchool of Sustainable Engineering and the Built Environment, Arizona State University, Tempe, AZ 85287, USAMaterials Engineer, Development Admixture Systems, Beachwood, OH 44133, USAThe effect of the microstructure of hydrophilic polypropylene (PP) fibers in the distribution of cracking associated with the strengthening and toughening mechanism of cement-based composites under tensile loading was studied. Using a filament winding system, continuous cement-based PP fiber composites were manufactured. The automated manufacturing system allows alignment of the fiber yarns in the longitudinal direction at various fiber contents. Composites with surface-modified hydrophilic macro-synthetic continuous polypropylene fibers and monofilament yarns with different diameters and surface structures were used. Samples were characterized using the tensile first cracking strength, post-crack stiffness, ultimate strength, and strain capacity. A range of volume fractions of 1−4% by volume of fibers was used, resulting in tensile first cracking strength in the range of 1−7 MPa, an ultimate strength of up to 22 MPa, and a strain capacity of 6%. The reinforcing efficiency based on crack spacing and width was documented as a function of the applied strain using digital image correlation (DIC). Quantitative analysis of crack width and spacing showed the sequential formation and gradual intermittent opening of several active and passive cracks as the key parameters in the toughening mechanism. Results are correlated with the tensile response and stiffness degradation. The mechanical properties, as well as crack spacing and composite stiffness, were significantly affected by the microstructure and dosage of continuous fibers.https://www.mdpi.com/2076-3417/9/11/2189fiber-reinforced concretecrack spacingfibermicro-fibertensile strengthtoughness
collection DOAJ
language English
format Article
sources DOAJ
author Barzin Mobasher
Vikram Dey
Jacob Bauchmoyer
Himai Mehere
Steve Schaef
spellingShingle Barzin Mobasher
Vikram Dey
Jacob Bauchmoyer
Himai Mehere
Steve Schaef
Reinforcing Efficiency of Micro and Macro Continuous Polypropylene Fibers in Cementitious Composites
Applied Sciences
fiber-reinforced concrete
crack spacing
fiber
micro-fiber
tensile strength
toughness
author_facet Barzin Mobasher
Vikram Dey
Jacob Bauchmoyer
Himai Mehere
Steve Schaef
author_sort Barzin Mobasher
title Reinforcing Efficiency of Micro and Macro Continuous Polypropylene Fibers in Cementitious Composites
title_short Reinforcing Efficiency of Micro and Macro Continuous Polypropylene Fibers in Cementitious Composites
title_full Reinforcing Efficiency of Micro and Macro Continuous Polypropylene Fibers in Cementitious Composites
title_fullStr Reinforcing Efficiency of Micro and Macro Continuous Polypropylene Fibers in Cementitious Composites
title_full_unstemmed Reinforcing Efficiency of Micro and Macro Continuous Polypropylene Fibers in Cementitious Composites
title_sort reinforcing efficiency of micro and macro continuous polypropylene fibers in cementitious composites
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2019-05-01
description The effect of the microstructure of hydrophilic polypropylene (PP) fibers in the distribution of cracking associated with the strengthening and toughening mechanism of cement-based composites under tensile loading was studied. Using a filament winding system, continuous cement-based PP fiber composites were manufactured. The automated manufacturing system allows alignment of the fiber yarns in the longitudinal direction at various fiber contents. Composites with surface-modified hydrophilic macro-synthetic continuous polypropylene fibers and monofilament yarns with different diameters and surface structures were used. Samples were characterized using the tensile first cracking strength, post-crack stiffness, ultimate strength, and strain capacity. A range of volume fractions of 1−4% by volume of fibers was used, resulting in tensile first cracking strength in the range of 1−7 MPa, an ultimate strength of up to 22 MPa, and a strain capacity of 6%. The reinforcing efficiency based on crack spacing and width was documented as a function of the applied strain using digital image correlation (DIC). Quantitative analysis of crack width and spacing showed the sequential formation and gradual intermittent opening of several active and passive cracks as the key parameters in the toughening mechanism. Results are correlated with the tensile response and stiffness degradation. The mechanical properties, as well as crack spacing and composite stiffness, were significantly affected by the microstructure and dosage of continuous fibers.
topic fiber-reinforced concrete
crack spacing
fiber
micro-fiber
tensile strength
toughness
url https://www.mdpi.com/2076-3417/9/11/2189
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