Design of a Semiactive TMD for Lightweight Pedestrian Structures Considering Human–Structure–Actuator Interaction

Lightweight pedestrian structures constructed with high strength-to-weight ratio materials, such as fiber-reinforced polymers (FRP), may experience large accelerations due to their lightness, thus overcoming the serviceability limit state. Additionally, uncertainties associated with human–structure...

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Main Authors: Christian A. Barrera-Vargas, Javier Naranjo-Pérez, Iván M. Díaz, Jaime H. García-Palacios
Format: Article
Language:English
Published: MDPI AG 2022-03-01
Series:Actuators
Subjects:
Online Access:https://www.mdpi.com/2076-0825/11/4/101
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author Christian A. Barrera-Vargas
Javier Naranjo-Pérez
Iván M. Díaz
Jaime H. García-Palacios
author_facet Christian A. Barrera-Vargas
Javier Naranjo-Pérez
Iván M. Díaz
Jaime H. García-Palacios
author_sort Christian A. Barrera-Vargas
collection DOAJ
description Lightweight pedestrian structures constructed with high strength-to-weight ratio materials, such as fiber-reinforced polymers (FRP), may experience large accelerations due to their lightness, thus overcoming the serviceability limit state. Additionally, uncertainties associated with human–structure interaction phenomena become relevant. Under these circumstances, variations in pedestrian actions could modify the modal properties of the coupled human–structure system and classical approaches based on passive Tuned Mass Dampers (TMD) do not offer an effective solution. An alternative solution is to use a Semiactive TMD (STMD), which includes a semiactive damper that, when properly designed, may be effective for a relatively broad frequency band, offering a robust solution when significant uncertainties are present. Thus, this paper presents a design methodology for the design of STMDs applied to lightweight pedestrian structures including human–structure and actuator–structure interaction. A multiobjective optimization procedure has been proposed to simultaneously minimize structure acceleration, inertial mass, and maximum damper force. The methodology has been applied to a lightweight FRP footbridge. Realistic simulations, including system uncertainties, interaction phenomena, nonlinear damper model, noise-contaminated signals, and the practical elements (in-line digital filters) needed for the successful implementation of the control law, validate the methodology. As a conclusion, the STMD is more effective than its passive counterpart in both, canceling the response or achieving similar performance with significant lower inertial mass.
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spelling doaj.art-529a22133b8e4935a4305982ba17c8432023-12-01T00:21:16ZengMDPI AGActuators2076-08252022-03-0111410110.3390/act11040101Design of a Semiactive TMD for Lightweight Pedestrian Structures Considering Human–Structure–Actuator InteractionChristian A. Barrera-Vargas0Javier Naranjo-Pérez1Iván M. Díaz2Jaime H. García-Palacios3Department of Continuum Mechanics and Theory of Structures, ETS Ingenieros Caminos, Canales y Puertos, Universidad Politécnica de Madrid, 28040 Madrid, SpainDepartment of Continuum Mechanics and Theory of Structures, ETS Ingenieros Caminos, Canales y Puertos, Universidad Politécnica de Madrid, 28040 Madrid, SpainDepartment of Continuum Mechanics and Theory of Structures, ETS Ingenieros Caminos, Canales y Puertos, Universidad Politécnica de Madrid, 28040 Madrid, SpainDepartment of Hydraulics, Energy and Environmental Engineering, ETS Ingenieros Caminos, Canales y Puertos, Universidad Politécnica de Madrid, 28040 Madrid, SpainLightweight pedestrian structures constructed with high strength-to-weight ratio materials, such as fiber-reinforced polymers (FRP), may experience large accelerations due to their lightness, thus overcoming the serviceability limit state. Additionally, uncertainties associated with human–structure interaction phenomena become relevant. Under these circumstances, variations in pedestrian actions could modify the modal properties of the coupled human–structure system and classical approaches based on passive Tuned Mass Dampers (TMD) do not offer an effective solution. An alternative solution is to use a Semiactive TMD (STMD), which includes a semiactive damper that, when properly designed, may be effective for a relatively broad frequency band, offering a robust solution when significant uncertainties are present. Thus, this paper presents a design methodology for the design of STMDs applied to lightweight pedestrian structures including human–structure and actuator–structure interaction. A multiobjective optimization procedure has been proposed to simultaneously minimize structure acceleration, inertial mass, and maximum damper force. The methodology has been applied to a lightweight FRP footbridge. Realistic simulations, including system uncertainties, interaction phenomena, nonlinear damper model, noise-contaminated signals, and the practical elements (in-line digital filters) needed for the successful implementation of the control law, validate the methodology. As a conclusion, the STMD is more effective than its passive counterpart in both, canceling the response or achieving similar performance with significant lower inertial mass.https://www.mdpi.com/2076-0825/11/4/101human-induced vibrationssemiactive actuatorhuman–structure interactionlightweight structuresmagnetorheological damper
spellingShingle Christian A. Barrera-Vargas
Javier Naranjo-Pérez
Iván M. Díaz
Jaime H. García-Palacios
Design of a Semiactive TMD for Lightweight Pedestrian Structures Considering Human–Structure–Actuator Interaction
Actuators
human-induced vibrations
semiactive actuator
human–structure interaction
lightweight structures
magnetorheological damper
title Design of a Semiactive TMD for Lightweight Pedestrian Structures Considering Human–Structure–Actuator Interaction
title_full Design of a Semiactive TMD for Lightweight Pedestrian Structures Considering Human–Structure–Actuator Interaction
title_fullStr Design of a Semiactive TMD for Lightweight Pedestrian Structures Considering Human–Structure–Actuator Interaction
title_full_unstemmed Design of a Semiactive TMD for Lightweight Pedestrian Structures Considering Human–Structure–Actuator Interaction
title_short Design of a Semiactive TMD for Lightweight Pedestrian Structures Considering Human–Structure–Actuator Interaction
title_sort design of a semiactive tmd for lightweight pedestrian structures considering human structure actuator interaction
topic human-induced vibrations
semiactive actuator
human–structure interaction
lightweight structures
magnetorheological damper
url https://www.mdpi.com/2076-0825/11/4/101
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