A non-linear three-component model has been developed that can predict the strength and deformation of polymer geosynthetic reinforcement when subjected to arbitrary histories of strain, strain rate and temperature as encountered in the laboratory and in the field. An existing model framework assuming the elasto-viscoplastic property of material was modified to account for the effects of changes in ambient temperature on the load-strain relation. Tensile load-strain-time relations for typical geosynthetic reinforcement properties were obtained by direct simulations of long-term sustained loading (SL) tests at a fixed temperature as well as simulations of monotonic loading and sustained loading at different elevated temperatures in time-temperature superposition (TTS) and stepped isothermal method (SIM) tests. The procedures to obtain the master creep strain and modulus curves from the results of these three types of numerical analysis are presented and compared. Creep rupture curves constructed from the master curves obtained by direct simulations of long-term SL tests as well as the numerical TTS and SIM tests are compared. The creep rupture curves obtained by the three methods are similar for shorter creep rupture times, but they become different with an increase in the creep rupture time. The reasons for the difference are discussed. It is argued that the theoretical framework of the model is relevant and useful for analysing and interpreting results from TTS and SIM tests in a consistent manner.
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February 2007
Research Article|
February 01 2007
A theoretical framework to analyse the behaviour of polymer geosynthetic reinforcement in temperature-accelerated creep tests Available to Purchase
W. Kongkitkul;
W. Kongkitkul
Postdoctoral Fellow
1
Department of Civil Engineering, Tokyo University of Science
2641 Yamazaki, Noda, Chiba, 278-8510, Japan
Telephone: +81 4 7124 1501 (ext. 4074), Telefax: +81 4 7123 9766, E-mail: warat@rs.noda.tus.ac.jp
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F. Tatsuoka
F. Tatsuoka
Professor
2
Department of Civil Engineering, Tokyo University of Science
2641 Yamazaki, Noda, Chiba, 278-8510, Japan
Telephone: +81 4 7122 9819, Telefax: +81 4 7123 9766, E-mail: tatsuoka@rs.noda.tus.ac.jp
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Publisher: Emerald Publishing
Received:
May 08 2006
Revision Received:
October 06 2006
Accepted:
November 12 2006
Online ISSN: 1751-7613
Print ISSN: 1072-6349
© 2007 Thomas Telford Ltd
2007
Geosynthetics International (2007) 14 (1): 23–38.
Article history
Received:
May 08 2006
Revision Received:
October 06 2006
Accepted:
November 12 2006
Citation
Kongkitkul W, Tatsuoka F (2007), "A theoretical framework to analyse the behaviour of polymer geosynthetic reinforcement in temperature-accelerated creep tests". Geosynthetics International, Vol. 14 No. 1 pp. 23–38, doi: https://doi.org/10.1680/gein.2007.14.1.23
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