Numerical Study of Soil-Thawing Effect of Composite Piles Using GMsFEM
During construction works, it is advisable to prevent strong thawing and an increase in the moisture content of the foundations of engineering structures in the summer. Since the density of water and ice differ, due to the difference bulging of the foundation sections can occur when it freezes back...
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doaj-23ce0efccec64e7e9955b170871fb4772021-07-23T13:48:24ZengMDPI AGJournal of Composites Science2504-477X2021-06-01516716710.3390/jcs5070167Numerical Study of Soil-Thawing Effect of Composite Piles Using GMsFEMPetr V. Sivtsev0Piotr Smarzewski1Sergey P. Stepanov2Department of Computational Technologies, Institute of Mathematics and Information Science, Ammosov North-Eastern Federal University, 58 Belinskogo, 677000 Yakutsk, RussiaDepartment of Structural Engineering, Faculty of Civil Engineering and Architecture, Lublin University of Technology, 20-618 Lublin, PolandDepartment of Computational Technologies, Institute of Mathematics and Information Science, Ammosov North-Eastern Federal University, 58 Belinskogo, 677000 Yakutsk, RussiaDuring construction works, it is advisable to prevent strong thawing and an increase in the moisture content of the foundations of engineering structures in the summer. Since the density of water and ice differ, due to the difference bulging of the foundation sections can occur when it freezes back in winter. In this work, the effect of fiber-reinforced piles on the thermal field of the surrounding soil is investigated numerically; that is, the study of the influence of aggregates with high and low thermal-physical properties on the temperature of frozen soils is conducted. Basalt and steel fiber reinforcement are compared. The difficulty of this work is that the inclusions inside piles are too small compared to the pile itself. Therefore, to solve the Stefan problem, a generalized multiscale finite element method (GMsFEM) was used. In the GMsFEM, the usual conforming partition of the domain into a coarse grid was used. It allowed reducing problem size and, consequently, accelerating the calculations. Results of the multiscale solution were compared with fine-scale solution, the accuracy of GMsFEM was investigated, and the optimal solution parameters were defined. Therefore, GMsFEM was shown to be well suited for the designated task. Collation of basalt and steel fiber reinforcement showed a beneficial effect of high thermal conductive material inclusion on freezing of piles in winter.https://www.mdpi.com/2504-477X/5/7/167Stefan problemmultiscalegeneralized multiscale finite element methodcomposite pilethermal conduction |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Petr V. Sivtsev Piotr Smarzewski Sergey P. Stepanov |
spellingShingle |
Petr V. Sivtsev Piotr Smarzewski Sergey P. Stepanov Numerical Study of Soil-Thawing Effect of Composite Piles Using GMsFEM Journal of Composites Science Stefan problem multiscale generalized multiscale finite element method composite pile thermal conduction |
author_facet |
Petr V. Sivtsev Piotr Smarzewski Sergey P. Stepanov |
author_sort |
Petr V. Sivtsev |
title |
Numerical Study of Soil-Thawing Effect of Composite Piles Using GMsFEM |
title_short |
Numerical Study of Soil-Thawing Effect of Composite Piles Using GMsFEM |
title_full |
Numerical Study of Soil-Thawing Effect of Composite Piles Using GMsFEM |
title_fullStr |
Numerical Study of Soil-Thawing Effect of Composite Piles Using GMsFEM |
title_full_unstemmed |
Numerical Study of Soil-Thawing Effect of Composite Piles Using GMsFEM |
title_sort |
numerical study of soil-thawing effect of composite piles using gmsfem |
publisher |
MDPI AG |
series |
Journal of Composites Science |
issn |
2504-477X |
publishDate |
2021-06-01 |
description |
During construction works, it is advisable to prevent strong thawing and an increase in the moisture content of the foundations of engineering structures in the summer. Since the density of water and ice differ, due to the difference bulging of the foundation sections can occur when it freezes back in winter. In this work, the effect of fiber-reinforced piles on the thermal field of the surrounding soil is investigated numerically; that is, the study of the influence of aggregates with high and low thermal-physical properties on the temperature of frozen soils is conducted. Basalt and steel fiber reinforcement are compared. The difficulty of this work is that the inclusions inside piles are too small compared to the pile itself. Therefore, to solve the Stefan problem, a generalized multiscale finite element method (GMsFEM) was used. In the GMsFEM, the usual conforming partition of the domain into a coarse grid was used. It allowed reducing problem size and, consequently, accelerating the calculations. Results of the multiscale solution were compared with fine-scale solution, the accuracy of GMsFEM was investigated, and the optimal solution parameters were defined. Therefore, GMsFEM was shown to be well suited for the designated task. Collation of basalt and steel fiber reinforcement showed a beneficial effect of high thermal conductive material inclusion on freezing of piles in winter. |
topic |
Stefan problem multiscale generalized multiscale finite element method composite pile thermal conduction |
url |
https://www.mdpi.com/2504-477X/5/7/167 |
work_keys_str_mv |
AT petrvsivtsev numericalstudyofsoilthawingeffectofcompositepilesusinggmsfem AT piotrsmarzewski numericalstudyofsoilthawingeffectofcompositepilesusinggmsfem AT sergeypstepanov numericalstudyofsoilthawingeffectofcompositepilesusinggmsfem |
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