Derivation of complete stress-strain curve for SSTT-confined high-strength concrete in compression

For concrete structural behavior analysis, the complete axial stress-strain curves in compression can be determined by using a closed-loop servo-controlled hydraulic testing machine. The applied loading as well as the axial deformation reading of the loaded concrete specimen is recorded from the bui...

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Main Authors: Lee, Hong Pyo, Awang, Abdullah Zawawi, Omar, Wahid, Tiong, P. L. Y.
Format: Article
Published: ASTM International 2018
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Online Access:http://eprints.utm.my/id/eprint/85962/
http://dx.doi.org/10.1520/JTE20160195
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Institution: Universiti Teknologi Malaysia
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spelling my.utm.859622020-08-30T08:46:26Z http://eprints.utm.my/id/eprint/85962/ Derivation of complete stress-strain curve for SSTT-confined high-strength concrete in compression Lee, Hong Pyo Awang, Abdullah Zawawi Omar, Wahid Tiong, P. L. Y. TA Engineering (General). Civil engineering (General) For concrete structural behavior analysis, the complete axial stress-strain curves in compression can be determined by using a closed-loop servo-controlled hydraulic testing machine. The applied loading as well as the axial deformation reading of the loaded concrete specimen is recorded from the built-in displacement transducers or externally installed transducers placed between the machine platens. However, the recorded axial strain in the ascending branch is not purely concrete deformations but includes some additional deformation because of machine flexibility and specimen's end restraint. Strain gauges can be diametrically installed at the middle of specimen for a more precise deformation reading but additional costs are required for the gauges and data acquisition system. Moreover, the concrete stress-strain curve and ductility performance beyond its ultimate is difficult to be recorded without special strain measuring devices. Hence, a correction equation is needed to account for these effects to obtain the complete stress-strain curves for unconfined and confined concrete. In this paper, a total number of 84 unconfined and steel strapping tensioning techniques (SSTTs) confined high-strength concrete cylinders of compressive strength ranging from 62.48 MPa to 184.85 MPa were tested in compression in accordance with ASTM C39/C39M-11. The details for the testing setup, testing machine, strain measuring instruments, loading rate, loading patterns, etc. are described and at the same time a correction factor equation is proposed in this paper. ASTM International 2018 Article PeerReviewed Lee, Hong Pyo and Awang, Abdullah Zawawi and Omar, Wahid and Tiong, P. L. Y. (2018) Derivation of complete stress-strain curve for SSTT-confined high-strength concrete in compression. Journal of Testing and Evaluation, 46 (1). pp. 168-177. ISSN 0090-3973 http://dx.doi.org/10.1520/JTE20160195
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TA Engineering (General). Civil engineering (General)
spellingShingle TA Engineering (General). Civil engineering (General)
Lee, Hong Pyo
Awang, Abdullah Zawawi
Omar, Wahid
Tiong, P. L. Y.
Derivation of complete stress-strain curve for SSTT-confined high-strength concrete in compression
description For concrete structural behavior analysis, the complete axial stress-strain curves in compression can be determined by using a closed-loop servo-controlled hydraulic testing machine. The applied loading as well as the axial deformation reading of the loaded concrete specimen is recorded from the built-in displacement transducers or externally installed transducers placed between the machine platens. However, the recorded axial strain in the ascending branch is not purely concrete deformations but includes some additional deformation because of machine flexibility and specimen's end restraint. Strain gauges can be diametrically installed at the middle of specimen for a more precise deformation reading but additional costs are required for the gauges and data acquisition system. Moreover, the concrete stress-strain curve and ductility performance beyond its ultimate is difficult to be recorded without special strain measuring devices. Hence, a correction equation is needed to account for these effects to obtain the complete stress-strain curves for unconfined and confined concrete. In this paper, a total number of 84 unconfined and steel strapping tensioning techniques (SSTTs) confined high-strength concrete cylinders of compressive strength ranging from 62.48 MPa to 184.85 MPa were tested in compression in accordance with ASTM C39/C39M-11. The details for the testing setup, testing machine, strain measuring instruments, loading rate, loading patterns, etc. are described and at the same time a correction factor equation is proposed in this paper.
format Article
author Lee, Hong Pyo
Awang, Abdullah Zawawi
Omar, Wahid
Tiong, P. L. Y.
author_facet Lee, Hong Pyo
Awang, Abdullah Zawawi
Omar, Wahid
Tiong, P. L. Y.
author_sort Lee, Hong Pyo
title Derivation of complete stress-strain curve for SSTT-confined high-strength concrete in compression
title_short Derivation of complete stress-strain curve for SSTT-confined high-strength concrete in compression
title_full Derivation of complete stress-strain curve for SSTT-confined high-strength concrete in compression
title_fullStr Derivation of complete stress-strain curve for SSTT-confined high-strength concrete in compression
title_full_unstemmed Derivation of complete stress-strain curve for SSTT-confined high-strength concrete in compression
title_sort derivation of complete stress-strain curve for sstt-confined high-strength concrete in compression
publisher ASTM International
publishDate 2018
url http://eprints.utm.my/id/eprint/85962/
http://dx.doi.org/10.1520/JTE20160195
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