A multiscale method to analyze the deterioration due to alkali silica reaction considering the effects of temperature and relative humidity

Publikation: Beitrag in Buch/Bericht/Sammelwerk/KonferenzbandAufsatz in KonferenzbandForschungPeer-Review

Autoren

Organisationseinheiten

Externe Organisationen

  • Bilkent University
Forschungs-netzwerk anzeigen

Details

OriginalspracheEnglisch
Titel des SammelwerksComputational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013
Seiten1094-1100
Seitenumfang7
PublikationsstatusVeröffentlicht - 1 Jan. 2013
Veranstaltung5th International Conference on Computational Methods for Coupled Problems in Science and Engineering, COUPLED PROBLEMS 2013 - Santa Eulalia, Ibiza Island, Spanien
Dauer: 17 Juni 201319 Juni 2013

Publikationsreihe

NameComputational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013

Abstract

This work presents a three-dimensional multiscale framework to investigate the deterioration resulting from alkali silica reaction (ASR) in the concrete. In this contribution, 3D micro-CT scan of hardened cement paste (HCP) and aggregates with a random distribution embedded in a homogenized cement paste matrix represent the microscale and mesoscale of the concrete respectively. A 3D hydro-chemo-thermo-mechanical model based on staggered method is developed at the mesoscale of the concrete, yet taking into account the deterioration at the microscale due to ASR.

ASJC Scopus Sachgebiete

Zitieren

A multiscale method to analyze the deterioration due to alkali silica reaction considering the effects of temperature and relative humidity. / Wu, Tao; Temizer, Ilker; Wriggers, Peter.
Computational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013. 2013. S. 1094-1100 (Computational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013).

Publikation: Beitrag in Buch/Bericht/Sammelwerk/KonferenzbandAufsatz in KonferenzbandForschungPeer-Review

Wu, T, Temizer, I & Wriggers, P 2013, A multiscale method to analyze the deterioration due to alkali silica reaction considering the effects of temperature and relative humidity. in Computational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013. Computational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013, S. 1094-1100, 5th International Conference on Computational Methods for Coupled Problems in Science and Engineering, COUPLED PROBLEMS 2013, Santa Eulalia, Ibiza Island, Spanien, 17 Juni 2013.
Wu, T., Temizer, I., & Wriggers, P. (2013). A multiscale method to analyze the deterioration due to alkali silica reaction considering the effects of temperature and relative humidity. In Computational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013 (S. 1094-1100). (Computational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013).
Wu T, Temizer I, Wriggers P. A multiscale method to analyze the deterioration due to alkali silica reaction considering the effects of temperature and relative humidity. in Computational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013. 2013. S. 1094-1100. (Computational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013).
Wu, Tao ; Temizer, Ilker ; Wriggers, Peter. / A multiscale method to analyze the deterioration due to alkali silica reaction considering the effects of temperature and relative humidity. Computational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013. 2013. S. 1094-1100 (Computational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013).
Download
@inproceedings{b466f6117786470fb79a0ed38cc77935,
title = "A multiscale method to analyze the deterioration due to alkali silica reaction considering the effects of temperature and relative humidity",
abstract = "This work presents a three-dimensional multiscale framework to investigate the deterioration resulting from alkali silica reaction (ASR) in the concrete. In this contribution, 3D micro-CT scan of hardened cement paste (HCP) and aggregates with a random distribution embedded in a homogenized cement paste matrix represent the microscale and mesoscale of the concrete respectively. A 3D hydro-chemo-thermo-mechanical model based on staggered method is developed at the mesoscale of the concrete, yet taking into account the deterioration at the microscale due to ASR.",
keywords = "Alkali silica reaction, Concrete, Coupling, Multiscale",
author = "Tao Wu and Ilker Temizer and Peter Wriggers",
year = "2013",
month = jan,
day = "1",
language = "English",
isbn = "9788494140761",
series = "Computational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013",
pages = "1094--1100",
booktitle = "Computational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013",
note = "5th International Conference on Computational Methods for Coupled Problems in Science and Engineering, COUPLED PROBLEMS 2013 ; Conference date: 17-06-2013 Through 19-06-2013",

}

Download

TY - GEN

T1 - A multiscale method to analyze the deterioration due to alkali silica reaction considering the effects of temperature and relative humidity

AU - Wu, Tao

AU - Temizer, Ilker

AU - Wriggers, Peter

PY - 2013/1/1

Y1 - 2013/1/1

N2 - This work presents a three-dimensional multiscale framework to investigate the deterioration resulting from alkali silica reaction (ASR) in the concrete. In this contribution, 3D micro-CT scan of hardened cement paste (HCP) and aggregates with a random distribution embedded in a homogenized cement paste matrix represent the microscale and mesoscale of the concrete respectively. A 3D hydro-chemo-thermo-mechanical model based on staggered method is developed at the mesoscale of the concrete, yet taking into account the deterioration at the microscale due to ASR.

AB - This work presents a three-dimensional multiscale framework to investigate the deterioration resulting from alkali silica reaction (ASR) in the concrete. In this contribution, 3D micro-CT scan of hardened cement paste (HCP) and aggregates with a random distribution embedded in a homogenized cement paste matrix represent the microscale and mesoscale of the concrete respectively. A 3D hydro-chemo-thermo-mechanical model based on staggered method is developed at the mesoscale of the concrete, yet taking into account the deterioration at the microscale due to ASR.

KW - Alkali silica reaction

KW - Concrete

KW - Coupling

KW - Multiscale

UR - http://www.scopus.com/inward/record.url?scp=84906853408&partnerID=8YFLogxK

M3 - Conference contribution

AN - SCOPUS:84906853408

SN - 9788494140761

T3 - Computational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013

SP - 1094

EP - 1100

BT - Computational Methods for Coupled Problems in Science and Engineering V - A Conference Celebrating the 60th Birthday of Eugenio Onate, COUPLED PROBLEMS 2013

T2 - 5th International Conference on Computational Methods for Coupled Problems in Science and Engineering, COUPLED PROBLEMS 2013

Y2 - 17 June 2013 through 19 June 2013

ER -

Von denselben Autoren