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Estimation of road profile variability from measured vehicle responses
Authors:W Fauriat  C Mattrand  N Gayton  A Beakou  T Cembrzynski
Institution:1. Renault, Technocentre Renault, Guyancourt, France;2. IFMA, Institut Pascal, UMR 6602 UBP/CNRS/IFMA, Clermont-Ferrand, France;3. IFMA, Institut Pascal, UMR 6602 UBP/CNRS/IFMA, Clermont-Ferrand, France
Abstract:When assessing the statistical variability of fatigue loads acting throughout the life of a vehicle, the question of the variability of road roughness naturally arises, as both quantities are strongly related. For car manufacturers, gathering information on the environment in which vehicles evolve is a long and costly but necessary process to adapt their products to durability requirements. In the present paper, a data processing algorithm is proposed in order to estimate the road profiles covered by a given vehicle, from the dynamic responses measured on this vehicle. The algorithm based on Kalman filtering theory aims at solving a so-called inverse problem, in a stochastic framework. It is validated using experimental data obtained from simulations and real measurements. The proposed method is subsequently applied to extract valuable statistical information on road roughness from an existing load characterisation campaign carried out by Renault within one of its markets.
Keywords:Road roughness  inverse problems  Kalman filtering  load variability  durability
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