EXPERIMENTAL AND NUMERICAL SIMULATION OF A NOVEL MAGNETIC POLE REPULSIVE PASSIVE DAMPER FOR VIBRATION CONTROL

This article presents a novel magnetic pole repulsive damper (MPRD) incorporating neodymium magnetic repulsive blocks and springs. The study explores the mechanical properties of the springs and magnetic blocks through numerical simulations using ANSYS and experimental evaluation. To gain deeper ins...

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Main Authors: Saran Sathish Kumar, Amudhan Vijayakumar, Daniel Cruze, Hemnath Kasaram
Format: Article
Language:English
Published: Josip Juraj Strossmayer University of Osijek, Faculty of Civil Engineering and Architecture Osijek, Croatia 2023-01-01
Series:Advances in Civil and Architectural Engineering
Subjects:
Online Access:https://hrcak.srce.hr/ojs/index.php/acae/article/view/26472/14422
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author Saran Sathish Kumar
Amudhan Vijayakumar
Daniel Cruze
Hemnath Kasaram
author_facet Saran Sathish Kumar
Amudhan Vijayakumar
Daniel Cruze
Hemnath Kasaram
author_sort Saran Sathish Kumar
collection DOAJ
description This article presents a novel magnetic pole repulsive damper (MPRD) incorporating neodymium magnetic repulsive blocks and springs. The study explores the mechanical properties of the springs and magnetic blocks through numerical simulations using ANSYS and experimental evaluation. To gain deeper insights into the behaviour of the MPRD, an accurate and high-fidelity finite element model was developed. The evaluation process involved a comprehensive comparison between the numerical simulations and experimental tests, explicitly focusing on cyclic compression–tension forces. The study encompassed the functioning, design implications, fabrication technique, mechanical performance, and numerical simulation for the cyclic compression–tension forces of the MPRD. The cyclic compression–tension tests revealed a gradual increase in force, with the MPRD achieving an ultimate force of 2,877 kN. The MPRD exhibited robust hysteresis behaviour in cyclic loading, showing its capacity to undergo and uphold the stability of the combination of its materials. The cyclic compression–tension results indicated the maximum force carrying capability of the damper. This resilience implies its full reusability in such scenarios. The comparison between cyclic compression–tension tests confirmed the alignment between the numerical simulation and experimental investigation.
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spelling doaj.art-466ca2137af945a39efc3e1089fcc8742024-01-05T15:27:17ZengJosip Juraj Strossmayer University of Osijek, Faculty of Civil Engineering and Architecture Osijek, CroatiaAdvances in Civil and Architectural Engineering2975-38482023-01-01142711413010.13167/2023.27.8466EXPERIMENTAL AND NUMERICAL SIMULATION OF A NOVEL MAGNETIC POLE REPULSIVE PASSIVE DAMPER FOR VIBRATION CONTROLSaran Sathish Kumar0Amudhan Vijayakumar1Daniel Cruze2Hemnath Kasaram3Hindustan Institute of Technology and Science, Department of Civil Engineering, Chennai, Tamil Nadu, IndiaHindustan Institute of Technology and Science, Department of Civil Engineering, Chennai, Tamil Nadu, IndiaHindustan Institute of Technology and Science, Department of Civil Engineering, Chennai, Tamil Nadu, IndiaHindustan Institute of Technology and Science, Department of Civil Engineering, Chennai, Tamil Nadu, IndiaThis article presents a novel magnetic pole repulsive damper (MPRD) incorporating neodymium magnetic repulsive blocks and springs. The study explores the mechanical properties of the springs and magnetic blocks through numerical simulations using ANSYS and experimental evaluation. To gain deeper insights into the behaviour of the MPRD, an accurate and high-fidelity finite element model was developed. The evaluation process involved a comprehensive comparison between the numerical simulations and experimental tests, explicitly focusing on cyclic compression–tension forces. The study encompassed the functioning, design implications, fabrication technique, mechanical performance, and numerical simulation for the cyclic compression–tension forces of the MPRD. The cyclic compression–tension tests revealed a gradual increase in force, with the MPRD achieving an ultimate force of 2,877 kN. The MPRD exhibited robust hysteresis behaviour in cyclic loading, showing its capacity to undergo and uphold the stability of the combination of its materials. The cyclic compression–tension results indicated the maximum force carrying capability of the damper. This resilience implies its full reusability in such scenarios. The comparison between cyclic compression–tension tests confirmed the alignment between the numerical simulation and experimental investigation.https://hrcak.srce.hr/ojs/index.php/acae/article/view/26472/14422magnetic pole repulsive damperpassive dampercyclic behaviourtime history analysis
spellingShingle Saran Sathish Kumar
Amudhan Vijayakumar
Daniel Cruze
Hemnath Kasaram
EXPERIMENTAL AND NUMERICAL SIMULATION OF A NOVEL MAGNETIC POLE REPULSIVE PASSIVE DAMPER FOR VIBRATION CONTROL
Advances in Civil and Architectural Engineering
magnetic pole repulsive damper
passive damper
cyclic behaviour
time history analysis
title EXPERIMENTAL AND NUMERICAL SIMULATION OF A NOVEL MAGNETIC POLE REPULSIVE PASSIVE DAMPER FOR VIBRATION CONTROL
title_full EXPERIMENTAL AND NUMERICAL SIMULATION OF A NOVEL MAGNETIC POLE REPULSIVE PASSIVE DAMPER FOR VIBRATION CONTROL
title_fullStr EXPERIMENTAL AND NUMERICAL SIMULATION OF A NOVEL MAGNETIC POLE REPULSIVE PASSIVE DAMPER FOR VIBRATION CONTROL
title_full_unstemmed EXPERIMENTAL AND NUMERICAL SIMULATION OF A NOVEL MAGNETIC POLE REPULSIVE PASSIVE DAMPER FOR VIBRATION CONTROL
title_short EXPERIMENTAL AND NUMERICAL SIMULATION OF A NOVEL MAGNETIC POLE REPULSIVE PASSIVE DAMPER FOR VIBRATION CONTROL
title_sort experimental and numerical simulation of a novel magnetic pole repulsive passive damper for vibration control
topic magnetic pole repulsive damper
passive damper
cyclic behaviour
time history analysis
url https://hrcak.srce.hr/ojs/index.php/acae/article/view/26472/14422
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AT amudhanvijayakumar experimentalandnumericalsimulationofanovelmagneticpolerepulsivepassivedamperforvibrationcontrol
AT danielcruze experimentalandnumericalsimulationofanovelmagneticpolerepulsivepassivedamperforvibrationcontrol
AT hemnathkasaram experimentalandnumericalsimulationofanovelmagneticpolerepulsivepassivedamperforvibrationcontrol