Mathematical Analysis of the Electromotive Induced Force in a Magnetically Damped Suspension

This study explores the advanced mathematical modeling of electromagnetic energy harvesting in vehicle suspension systems, addressing the pressing need for sustainable transportation and improved energy efficiency. We focus on the complex challenge posed by the non-linear behavior of magnetic flux i...

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Main Authors: Susana Aberturas, Juan Diego Aguilera, José Luis Olazagoitia, Miguel Ángel García, Antonio Hernando
Format: Article
Language:English
Published: MDPI AG 2024-03-01
Series:Mathematics
Subjects:
Online Access:https://www.mdpi.com/2227-7390/12/7/1004
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author Susana Aberturas
Juan Diego Aguilera
José Luis Olazagoitia
Miguel Ángel García
Antonio Hernando
author_facet Susana Aberturas
Juan Diego Aguilera
José Luis Olazagoitia
Miguel Ángel García
Antonio Hernando
author_sort Susana Aberturas
collection DOAJ
description This study explores the advanced mathematical modeling of electromagnetic energy harvesting in vehicle suspension systems, addressing the pressing need for sustainable transportation and improved energy efficiency. We focus on the complex challenge posed by the non-linear behavior of magnetic flux in relation to displacement, a critical aspect often overlooked in conventional approaches. Utilizing Taylor expansion and Fourier analysis, we dissect the intricate relationship between oscillation and electromagnetic damping, crucial for optimizing energy recovery. Our rigorous mathematical methodology enables the precise calculation of the average power per cycle and unit mass, providing a robust metric for evaluating the effectiveness of energy harvesting. Further, the study extends to the practical application in a combined system of passive and electromagnetic suspension, demonstrating the real-world viability of our theoretical findings. This research not only offers a comprehensive solution for enhancing vehicle efficiency through advanced suspension systems but also sets a precedent for the integration of complex mathematical techniques in solving real-world engineering challenges, contributing significantly to the future of energy-efficient automotive technologies. The cases reviewed in this article and listed as references are those commonly found in the literature.
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spelling doaj.art-e1a3e6fd5f914a09926f91ae2e170d072024-04-12T13:22:36ZengMDPI AGMathematics2227-73902024-03-01127100410.3390/math12071004Mathematical Analysis of the Electromotive Induced Force in a Magnetically Damped SuspensionSusana Aberturas0Juan Diego Aguilera1José Luis Olazagoitia2Miguel Ángel García3Antonio Hernando4Micromag 2000 SL, Avenida de Arroyomolinos, 3 y 5, P.L. Ventorro del Cano, 28925 Alcorcón, SpainInstituto de Magnetismo Aplicado (IMA), Universidad Complutense de Madrid-Administrador de Infraestructuras Ferroviarias (UCM-ADIF), 28230 Las Rozas, SpainFaculty of Design, Innovation and Technology, University of Design, Innovation and Technology (UDIT), Av. Alfonso XIII, 97, 28016 Madrid, SpainInstituto de Cerámica y Vidrio, Campus de Cantoblanco, Consejo Superior de Investigaciones Científicas (CSIC), 28049 Madrid, SpainInstituto de Magnetismo Aplicado (IMA), Universidad Complutense de Madrid-Administrador de Infraestructuras Ferroviarias (UCM-ADIF), 28230 Las Rozas, SpainThis study explores the advanced mathematical modeling of electromagnetic energy harvesting in vehicle suspension systems, addressing the pressing need for sustainable transportation and improved energy efficiency. We focus on the complex challenge posed by the non-linear behavior of magnetic flux in relation to displacement, a critical aspect often overlooked in conventional approaches. Utilizing Taylor expansion and Fourier analysis, we dissect the intricate relationship between oscillation and electromagnetic damping, crucial for optimizing energy recovery. Our rigorous mathematical methodology enables the precise calculation of the average power per cycle and unit mass, providing a robust metric for evaluating the effectiveness of energy harvesting. Further, the study extends to the practical application in a combined system of passive and electromagnetic suspension, demonstrating the real-world viability of our theoretical findings. This research not only offers a comprehensive solution for enhancing vehicle efficiency through advanced suspension systems but also sets a precedent for the integration of complex mathematical techniques in solving real-world engineering challenges, contributing significantly to the future of energy-efficient automotive technologies. The cases reviewed in this article and listed as references are those commonly found in the literature.https://www.mdpi.com/2227-7390/12/7/1004electromagnetic dampingEnergy Harvesting Shock Absorbers (EHSAs)induced electromotive forcenon-lineal magnetic fluxpowermathematical description
spellingShingle Susana Aberturas
Juan Diego Aguilera
José Luis Olazagoitia
Miguel Ángel García
Antonio Hernando
Mathematical Analysis of the Electromotive Induced Force in a Magnetically Damped Suspension
Mathematics
electromagnetic damping
Energy Harvesting Shock Absorbers (EHSAs)
induced electromotive force
non-lineal magnetic flux
power
mathematical description
title Mathematical Analysis of the Electromotive Induced Force in a Magnetically Damped Suspension
title_full Mathematical Analysis of the Electromotive Induced Force in a Magnetically Damped Suspension
title_fullStr Mathematical Analysis of the Electromotive Induced Force in a Magnetically Damped Suspension
title_full_unstemmed Mathematical Analysis of the Electromotive Induced Force in a Magnetically Damped Suspension
title_short Mathematical Analysis of the Electromotive Induced Force in a Magnetically Damped Suspension
title_sort mathematical analysis of the electromotive induced force in a magnetically damped suspension
topic electromagnetic damping
Energy Harvesting Shock Absorbers (EHSAs)
induced electromotive force
non-lineal magnetic flux
power
mathematical description
url https://www.mdpi.com/2227-7390/12/7/1004
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