Evaluation of multilayer pavement viscoelastic properties from falling weight deflectometer using neural networks

dc.contributor
Universitat Politècnica de Catalunya. Departament de Resistència de Materials i Estructures a l'Enginyeria
dc.contributor
Centre Internacional de Mètodes Numèrics en Enginyeria
dc.contributor
Universitat Politècnica de Catalunya. (MC)2 - Grup de Mecànica Computacional en Medis Continus
dc.contributor.author
González Lopez, Jose Manuel
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Carbonell Puigbó, Josep Maria
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van Bijsterveld, Wouter
dc.date.issued
2014
dc.identifier
Gonzalez, J.; Carbonell, J.; van Bijsterveld, W. Evaluation of multilayer pavement viscoelastic properties from falling weight deflectometer using neural networks. A: Transport Research Arena. "TRA2014: Transport research arena 2014: transport solutions: from research to deployment - innovate mobility, mobilise inovation!". Paris: 2014.
dc.identifier
https://hdl.handle.net/2117/22923
dc.description.abstract
The measurements obtained with the falling weight deflectometer are typically used in a linear-static backcalculation procedure to determine the mechanical parameters of the asphalt pavement. The surface deflections caused by the FWD is a dynamic problem usually treated as a static problem. A dynamic solution of the backcalculation problem is proposed using a viscoelastic model, introducing a viscosity variable. The accuracy of the results is calculated taking the maximum deflection of every curve. The viscosity parameter allows simulate the whole deflection curve including its maximum value, the time interval between starting and finish of the deflection process, and the time delay between curves associated with geophones. The parameters of the model have been calibrated from experimental tests to create a database for different asphalt pavement sections. The backcalculation procedure is completed using an artificial neural network (ANN) to predict mechanical properties from a multilayered pavement for different configurations of the ANN.
dc.description.abstract
Postprint (published version)
dc.format
application/pdf
dc.language
eng
dc.rights
Restricted access - publisher's policy
dc.subject
Àrees temàtiques de la UPC::Enginyeria civil::Infraestructures i modelització dels transports::Transport per carretera
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Viscoelasticity--Measurement
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Asphalt pavements
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Backcalculation
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viscoelasticity
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Kelvin model
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falling weight deflectometer
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Neural network.
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Viscoelasticitat
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Paviments
dc.title
Evaluation of multilayer pavement viscoelastic properties from falling weight deflectometer using neural networks
dc.type
Conference lecture


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