Stress-strain state of the "combined tower-reinforced concrete foundation-foundation soil" system for high-rise structures

The aim of the work was to evaluate the effectiveness of the "combined tower-reinforced concrete foundation-foundation soil" system for high-rise structures on the example of a wind power plant (wind turbine) with a capacity of 1.5-2.0 MW using computer modeling in the PC "Ansys"...

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Main Authors: Mailyan Levon, Yaziev Serdar, Sabitov Linar, Konoplev Yuriy, Radaykin Oleg
Format: Article
Language:English
Published: EDP Sciences 2020-01-01
Series:E3S Web of Conferences
Online Access:https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/24/e3sconf_tpacee2020_02035.pdf
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spelling doaj-4d721959c99b4884843d32637e0c8bc82021-04-02T14:24:17ZengEDP SciencesE3S Web of Conferences2267-12422020-01-011640203510.1051/e3sconf/202016402035e3sconf_tpacee2020_02035Stress-strain state of the "combined tower-reinforced concrete foundation-foundation soil" system for high-rise structuresMailyan Levon0Yaziev Serdar1Sabitov Linar2Konoplev Yuriy3Radaykin Oleg4Don State Technical UniversityDon State Technical UniversityKazan (Volga region) Federal UniversityKazan (Volga region) Federal UniversityKazan state university of architecture and civil engineeringThe aim of the work was to evaluate the effectiveness of the "combined tower-reinforced concrete foundation-foundation soil" system for high-rise structures on the example of a wind power plant (wind turbine) with a capacity of 1.5-2.0 MW using computer modeling in the PC "Ansys". Thus, under the combined tower the article refers to a high-rise building, consisting of two parts: the lower composite, the upper – in the form of a thin-walled core-shell closed profile. In both cases, the shell is a pipe with a weak taper. As an analogue, the VEU considered in foreign literature is adopted: the radius of the rotor is R=41 m, the height to the axis of the wind wheel is zhub =80 m, the shell is made of high-strength C355 steel and unlike the analog in this work the cavity of the tower lower part to a height of 20 m was filled with B60 class concrete. The modeling took into account the spatial work of the elements of the structural system and the physical nonlinearity of the materials from which they are made. At the same time, the Mises strength theory was used for steel, the Williams – Varnake theory - for concrete, and the Drukker – Prager theory - for the foundation soil. Comparison of the calculation results with the analogue showed that the destructive load of the tower increased by 37% due to filling the lower part of it with concrete, which indicates the effectiveness of the proposed solution. In this case, the destruction of the tower with a concrete core and without it occurred from the loss of steel shell local stability at the level of the tower junction with the foundation (with a compressed zone).https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/24/e3sconf_tpacee2020_02035.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Mailyan Levon
Yaziev Serdar
Sabitov Linar
Konoplev Yuriy
Radaykin Oleg
spellingShingle Mailyan Levon
Yaziev Serdar
Sabitov Linar
Konoplev Yuriy
Radaykin Oleg
Stress-strain state of the "combined tower-reinforced concrete foundation-foundation soil" system for high-rise structures
E3S Web of Conferences
author_facet Mailyan Levon
Yaziev Serdar
Sabitov Linar
Konoplev Yuriy
Radaykin Oleg
author_sort Mailyan Levon
title Stress-strain state of the "combined tower-reinforced concrete foundation-foundation soil" system for high-rise structures
title_short Stress-strain state of the "combined tower-reinforced concrete foundation-foundation soil" system for high-rise structures
title_full Stress-strain state of the "combined tower-reinforced concrete foundation-foundation soil" system for high-rise structures
title_fullStr Stress-strain state of the "combined tower-reinforced concrete foundation-foundation soil" system for high-rise structures
title_full_unstemmed Stress-strain state of the "combined tower-reinforced concrete foundation-foundation soil" system for high-rise structures
title_sort stress-strain state of the "combined tower-reinforced concrete foundation-foundation soil" system for high-rise structures
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2020-01-01
description The aim of the work was to evaluate the effectiveness of the "combined tower-reinforced concrete foundation-foundation soil" system for high-rise structures on the example of a wind power plant (wind turbine) with a capacity of 1.5-2.0 MW using computer modeling in the PC "Ansys". Thus, under the combined tower the article refers to a high-rise building, consisting of two parts: the lower composite, the upper – in the form of a thin-walled core-shell closed profile. In both cases, the shell is a pipe with a weak taper. As an analogue, the VEU considered in foreign literature is adopted: the radius of the rotor is R=41 m, the height to the axis of the wind wheel is zhub =80 m, the shell is made of high-strength C355 steel and unlike the analog in this work the cavity of the tower lower part to a height of 20 m was filled with B60 class concrete. The modeling took into account the spatial work of the elements of the structural system and the physical nonlinearity of the materials from which they are made. At the same time, the Mises strength theory was used for steel, the Williams – Varnake theory - for concrete, and the Drukker – Prager theory - for the foundation soil. Comparison of the calculation results with the analogue showed that the destructive load of the tower increased by 37% due to filling the lower part of it with concrete, which indicates the effectiveness of the proposed solution. In this case, the destruction of the tower with a concrete core and without it occurred from the loss of steel shell local stability at the level of the tower junction with the foundation (with a compressed zone).
url https://www.e3s-conferences.org/articles/e3sconf/pdf/2020/24/e3sconf_tpacee2020_02035.pdf
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