Finite Element-Based Numerical Simulations to Evaluate the Influence of Wollastonite Microfibers on the Dynamic Compressive Behavior of Cementitious Composites

This paper investigates the dynamic compressive behavior of wollastonite fiber-reinforced cementitious mortars using multiscale numerical simulations. The rate dependent behavior of the multiphase heterogeneous systems is captured in a multiscale framework that implements continuum damage towards ef...

Full description

Bibliographic Details
Main Authors: Gideon A. Lyngdoh, Sami Doner, Sumeru Nayak, Sumanta Das
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/14/16/4435
id doaj-b81836b20028422bb9c454622c3d19d2
record_format Article
spelling doaj-b81836b20028422bb9c454622c3d19d22021-08-26T14:00:31ZengMDPI AGMaterials1996-19442021-08-01144435443510.3390/ma14164435Finite Element-Based Numerical Simulations to Evaluate the Influence of Wollastonite Microfibers on the Dynamic Compressive Behavior of Cementitious CompositesGideon A. Lyngdoh0Sami Doner1Sumeru Nayak2Sumanta Das3Civil and Environmental Engineering, University of Rhode Island, Kingston, RI 02881, USACivil and Environmental Engineering, University of Rhode Island, Kingston, RI 02881, USACivil and Environmental Engineering, University of Rhode Island, Kingston, RI 02881, USACivil and Environmental Engineering, University of Rhode Island, Kingston, RI 02881, USAThis paper investigates the dynamic compressive behavior of wollastonite fiber-reinforced cementitious mortars using multiscale numerical simulations. The rate dependent behavior of the multiphase heterogeneous systems is captured in a multiscale framework that implements continuum damage towards effective property prediction. The influence of wollastonite fiber content (% by mass) as cement replacement on the dynamic compressive strength and energy absorption capacity is thereafter elucidated. An average compressive strength gain of 40% is obtained for mortars with 10% wollastonite fiber content as cement replacement, as compared to the control mortar at a strain rate of 200/s. The rate dependent constitutive responses enable the computation of energy absorption, which serves as a comparative measure for elucidating the material resistance to impact loads. Approximately a 45% increase in the dynamic energy absorption capacity is observed for the mixture containing 10% wollastonite fibers, as compared to the control case. Overall, the study establishes wollastonite fibers as a sustainable and dynamic performance-enhanced alternative for partial cement replacement. Moreover, the multiscale numerical simulation approach for performance prediction can provide an efficient means for the materials designers and engineers to optimize the size and dosage of wollastonite fibers for desired mechanical performance under dynamic loading conditions.https://www.mdpi.com/1996-1944/14/16/4435wollastonite microfiberscementitious compositesdynamic compressive behaviorfinite element analysiscontinuum micromechanics
collection DOAJ
language English
format Article
sources DOAJ
author Gideon A. Lyngdoh
Sami Doner
Sumeru Nayak
Sumanta Das
spellingShingle Gideon A. Lyngdoh
Sami Doner
Sumeru Nayak
Sumanta Das
Finite Element-Based Numerical Simulations to Evaluate the Influence of Wollastonite Microfibers on the Dynamic Compressive Behavior of Cementitious Composites
Materials
wollastonite microfibers
cementitious composites
dynamic compressive behavior
finite element analysis
continuum micromechanics
author_facet Gideon A. Lyngdoh
Sami Doner
Sumeru Nayak
Sumanta Das
author_sort Gideon A. Lyngdoh
title Finite Element-Based Numerical Simulations to Evaluate the Influence of Wollastonite Microfibers on the Dynamic Compressive Behavior of Cementitious Composites
title_short Finite Element-Based Numerical Simulations to Evaluate the Influence of Wollastonite Microfibers on the Dynamic Compressive Behavior of Cementitious Composites
title_full Finite Element-Based Numerical Simulations to Evaluate the Influence of Wollastonite Microfibers on the Dynamic Compressive Behavior of Cementitious Composites
title_fullStr Finite Element-Based Numerical Simulations to Evaluate the Influence of Wollastonite Microfibers on the Dynamic Compressive Behavior of Cementitious Composites
title_full_unstemmed Finite Element-Based Numerical Simulations to Evaluate the Influence of Wollastonite Microfibers on the Dynamic Compressive Behavior of Cementitious Composites
title_sort finite element-based numerical simulations to evaluate the influence of wollastonite microfibers on the dynamic compressive behavior of cementitious composites
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2021-08-01
description This paper investigates the dynamic compressive behavior of wollastonite fiber-reinforced cementitious mortars using multiscale numerical simulations. The rate dependent behavior of the multiphase heterogeneous systems is captured in a multiscale framework that implements continuum damage towards effective property prediction. The influence of wollastonite fiber content (% by mass) as cement replacement on the dynamic compressive strength and energy absorption capacity is thereafter elucidated. An average compressive strength gain of 40% is obtained for mortars with 10% wollastonite fiber content as cement replacement, as compared to the control mortar at a strain rate of 200/s. The rate dependent constitutive responses enable the computation of energy absorption, which serves as a comparative measure for elucidating the material resistance to impact loads. Approximately a 45% increase in the dynamic energy absorption capacity is observed for the mixture containing 10% wollastonite fibers, as compared to the control case. Overall, the study establishes wollastonite fibers as a sustainable and dynamic performance-enhanced alternative for partial cement replacement. Moreover, the multiscale numerical simulation approach for performance prediction can provide an efficient means for the materials designers and engineers to optimize the size and dosage of wollastonite fibers for desired mechanical performance under dynamic loading conditions.
topic wollastonite microfibers
cementitious composites
dynamic compressive behavior
finite element analysis
continuum micromechanics
url https://www.mdpi.com/1996-1944/14/16/4435
work_keys_str_mv AT gideonalyngdoh finiteelementbasednumericalsimulationstoevaluatetheinfluenceofwollastonitemicrofibersonthedynamiccompressivebehaviorofcementitiouscomposites
AT samidoner finiteelementbasednumericalsimulationstoevaluatetheinfluenceofwollastonitemicrofibersonthedynamiccompressivebehaviorofcementitiouscomposites
AT sumerunayak finiteelementbasednumericalsimulationstoevaluatetheinfluenceofwollastonitemicrofibersonthedynamiccompressivebehaviorofcementitiouscomposites
AT sumantadas finiteelementbasednumericalsimulationstoevaluatetheinfluenceofwollastonitemicrofibersonthedynamiccompressivebehaviorofcementitiouscomposites
_version_ 1721191975828324352