Axial and lateral stiffness of spherical self-balancing fiber reinforced rubber pipes under internal pressure

Fiber reinforced rubber pipes are widely used to transport fluid at locations requiring flexible connections in pipeline systems. The spherical self-balancing fiber reinforced rubber pipes with low stiffness are drawing attention because of their vibration suppression performance under high internal...

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Main Authors: Xu Guo-min, Shuai Chang-geng
Format: Article
Language:English
Published: De Gruyter 2021-03-01
Series:Science and Engineering of Composite Materials
Subjects:
Online Access:https://doi.org/10.1515/secm-2021-0009
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spelling doaj-3bd2b7d0914e4b6faf2e296787256b242021-10-03T07:42:43ZengDe GruyterScience and Engineering of Composite Materials0792-12332191-03592021-03-012819610610.1515/secm-2021-0009Axial and lateral stiffness of spherical self-balancing fiber reinforced rubber pipes under internal pressureXu Guo-min0Shuai Chang-geng1Institute of Noise & Vibration, Naval University of Engineering, Wuhan430033, China; National Key Laboratory on Ship Vibration & Noise, Wuhan430033, ChinaInstitute of Noise & Vibration, Naval University of Engineering, Wuhan430033, China; National Key Laboratory on Ship Vibration & Noise, Wuhan430033, ChinaFiber reinforced rubber pipes are widely used to transport fluid at locations requiring flexible connections in pipeline systems. The spherical self-balancing fiber reinforced rubber pipes with low stiffness are drawing attention because of their vibration suppression performance under high internal pressure. In this paper, a theoretical model is proposed to calculate the axial stiffness and lateral stiffness of spherical self-balancing fiber reinforced rubber pipes. The inhomogeneous anisotropy of the reinforced layer and the nonlinear stress-strain relationship of the reinforced fiber are considered in the model. The accuracy of the model is verified by experimental results. Theoretical calculation finds that both the axial and lateral stiffness are influenced significantly by the key structural parameters of the pipe (the axial length, the circumferential radius at the end, the meridional radius, and the initial winding angle). The stiffness can be reduced remarkably with optimal meridional radius and initial winding angle, without any side effect on the self-balance of the pipe. The investigation methods and results presented in this paper will provide guidance for design of fiber reinforced rubber pipes in the future.https://doi.org/10.1515/secm-2021-0009fiber reinforced rubber pipeaxial stiffnesslateral stiffnesscomposite membranetimoshenko beamwinding angle
collection DOAJ
language English
format Article
sources DOAJ
author Xu Guo-min
Shuai Chang-geng
spellingShingle Xu Guo-min
Shuai Chang-geng
Axial and lateral stiffness of spherical self-balancing fiber reinforced rubber pipes under internal pressure
Science and Engineering of Composite Materials
fiber reinforced rubber pipe
axial stiffness
lateral stiffness
composite membrane
timoshenko beam
winding angle
author_facet Xu Guo-min
Shuai Chang-geng
author_sort Xu Guo-min
title Axial and lateral stiffness of spherical self-balancing fiber reinforced rubber pipes under internal pressure
title_short Axial and lateral stiffness of spherical self-balancing fiber reinforced rubber pipes under internal pressure
title_full Axial and lateral stiffness of spherical self-balancing fiber reinforced rubber pipes under internal pressure
title_fullStr Axial and lateral stiffness of spherical self-balancing fiber reinforced rubber pipes under internal pressure
title_full_unstemmed Axial and lateral stiffness of spherical self-balancing fiber reinforced rubber pipes under internal pressure
title_sort axial and lateral stiffness of spherical self-balancing fiber reinforced rubber pipes under internal pressure
publisher De Gruyter
series Science and Engineering of Composite Materials
issn 0792-1233
2191-0359
publishDate 2021-03-01
description Fiber reinforced rubber pipes are widely used to transport fluid at locations requiring flexible connections in pipeline systems. The spherical self-balancing fiber reinforced rubber pipes with low stiffness are drawing attention because of their vibration suppression performance under high internal pressure. In this paper, a theoretical model is proposed to calculate the axial stiffness and lateral stiffness of spherical self-balancing fiber reinforced rubber pipes. The inhomogeneous anisotropy of the reinforced layer and the nonlinear stress-strain relationship of the reinforced fiber are considered in the model. The accuracy of the model is verified by experimental results. Theoretical calculation finds that both the axial and lateral stiffness are influenced significantly by the key structural parameters of the pipe (the axial length, the circumferential radius at the end, the meridional radius, and the initial winding angle). The stiffness can be reduced remarkably with optimal meridional radius and initial winding angle, without any side effect on the self-balance of the pipe. The investigation methods and results presented in this paper will provide guidance for design of fiber reinforced rubber pipes in the future.
topic fiber reinforced rubber pipe
axial stiffness
lateral stiffness
composite membrane
timoshenko beam
winding angle
url https://doi.org/10.1515/secm-2021-0009
work_keys_str_mv AT xuguomin axialandlateralstiffnessofsphericalselfbalancingfiberreinforcedrubberpipesunderinternalpressure
AT shuaichanggeng axialandlateralstiffnessofsphericalselfbalancingfiberreinforcedrubberpipesunderinternalpressure
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