On-Coupling Mechanical, Electrical and Thermal Behavior of Submarine Power Phases

Floating offshore renewable energies (OREs), such as offshore floating wind turbines (wind energy) or wave power (wave and wave energy), are increasingly in demand. Submarine cables that transmit the energy produced from offshore farms all the way to onshore stations are critical structures that mus...

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Main Authors: Abdelghani MATINE, Monssef DRISSI-HABTI
Format: Article
Language:English
Published: MDPI AG 2019-03-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/12/6/1009
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spelling doaj-c8a9d3ce3ea247f6962aa69a689a3b312020-11-25T00:14:09ZengMDPI AGEnergies1996-10732019-03-01126100910.3390/en12061009en12061009On-Coupling Mechanical, Electrical and Thermal Behavior of Submarine Power PhasesAbdelghani MATINE0Monssef DRISSI-HABTI1PRES LUNAM IFSTTAR, CS4 Route Bouaye, 44344 Bouguenais, FrancePRES LUNAM IFSTTAR, CS4 Route Bouaye, 44344 Bouguenais, FranceFloating offshore renewable energies (OREs), such as offshore floating wind turbines (wind energy) or wave power (wave and wave energy), are increasingly in demand. Submarine cables that transmit the energy produced from offshore farms all the way to onshore stations are critical structures that must be able to work perfectly over 20 years without any maintenance. In order to reduce the significant costs associated with electrical cables, it is important to optimize the dimensioning of the components of these cables, or to develop structural monitoring techniques that target zero and/or minimum maintenance over their lifespan. In this paper, we FEM of the impact of damage mechanisms of the conductor part of a submarine power phase on its mechanical, electrical, and thermal behavior. The main damage mechanisms are local plasticity and wire failure. The first mechanical study made it possible to obtain the elasto-plastic behavior of the conductor. The electrical study took into consideration the deformed geometry of the conductor in the elasto-plastic domain, as well as the non-homogeneous distribution of the electrical conductivity of the conductor. Their influence on the electrical resistance of the conductor was then analyzed. Finally, we studied the impact of plasticity and conductor failure on the thermal behavior of the phase. The temperature differences obtained in the numerical analysis of this work may be used further to help preventive and curative maintenance of the cables, for example, by using an optical fiber as sensor for structural health monitoring.http://www.mdpi.com/1996-1073/12/6/1009finite element modelin (FEM)numerical modelingmechanical behaviorelectric behaviorthermal behaviormultiphysics modelingmarine renewable energies (MREs)submarine power cable
collection DOAJ
language English
format Article
sources DOAJ
author Abdelghani MATINE
Monssef DRISSI-HABTI
spellingShingle Abdelghani MATINE
Monssef DRISSI-HABTI
On-Coupling Mechanical, Electrical and Thermal Behavior of Submarine Power Phases
Energies
finite element modelin (FEM)
numerical modeling
mechanical behavior
electric behavior
thermal behavior
multiphysics modeling
marine renewable energies (MREs)
submarine power cable
author_facet Abdelghani MATINE
Monssef DRISSI-HABTI
author_sort Abdelghani MATINE
title On-Coupling Mechanical, Electrical and Thermal Behavior of Submarine Power Phases
title_short On-Coupling Mechanical, Electrical and Thermal Behavior of Submarine Power Phases
title_full On-Coupling Mechanical, Electrical and Thermal Behavior of Submarine Power Phases
title_fullStr On-Coupling Mechanical, Electrical and Thermal Behavior of Submarine Power Phases
title_full_unstemmed On-Coupling Mechanical, Electrical and Thermal Behavior of Submarine Power Phases
title_sort on-coupling mechanical, electrical and thermal behavior of submarine power phases
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2019-03-01
description Floating offshore renewable energies (OREs), such as offshore floating wind turbines (wind energy) or wave power (wave and wave energy), are increasingly in demand. Submarine cables that transmit the energy produced from offshore farms all the way to onshore stations are critical structures that must be able to work perfectly over 20 years without any maintenance. In order to reduce the significant costs associated with electrical cables, it is important to optimize the dimensioning of the components of these cables, or to develop structural monitoring techniques that target zero and/or minimum maintenance over their lifespan. In this paper, we FEM of the impact of damage mechanisms of the conductor part of a submarine power phase on its mechanical, electrical, and thermal behavior. The main damage mechanisms are local plasticity and wire failure. The first mechanical study made it possible to obtain the elasto-plastic behavior of the conductor. The electrical study took into consideration the deformed geometry of the conductor in the elasto-plastic domain, as well as the non-homogeneous distribution of the electrical conductivity of the conductor. Their influence on the electrical resistance of the conductor was then analyzed. Finally, we studied the impact of plasticity and conductor failure on the thermal behavior of the phase. The temperature differences obtained in the numerical analysis of this work may be used further to help preventive and curative maintenance of the cables, for example, by using an optical fiber as sensor for structural health monitoring.
topic finite element modelin (FEM)
numerical modeling
mechanical behavior
electric behavior
thermal behavior
multiphysics modeling
marine renewable energies (MREs)
submarine power cable
url http://www.mdpi.com/1996-1073/12/6/1009
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