Modelo matemático para la estimación de contaminantes de vehículos categoría m1 en etapas de funcionamiento en frío y caliente en la ciudad de cuenca

Translated title of the contribution: Mathematical model for the estimation of pollutants from category m1 vehicles in cold and hot operation stages in the city of cuenca

Edisson Cabrera, Daniel Patiño

Research output: Contribution to journalArticlepeer-review

1 Scopus citations

Abstract

This research shows the development of a mathematical model applied to the estimation of pollutant indices in two different phases of operation of the internal combustion engine (ICM) by means of artificial neural networks (ANN). For data collection road and idle tests are performed which are recorded by the freematics one+ programmable device and the gas analyzer itself which are used to train the neural networks and generate a database with which it is possible to determine in which operating condition M1 category vehicles produce the highest pollution rates. The ANN results show a high similarity index in relation to the behavior of vehicles, obtaining an effective model that fits the characteristics of the city’s vehicle fleet. In addition, it is determined that during the first twelve minutes the levels of polluting gases reach extremely high values.

Translated title of the contributionMathematical model for the estimation of pollutants from category m1 vehicles in cold and hot operation stages in the city of cuenca
Original languageSpanish
Pages (from-to)366-375
Number of pages10
JournalRISTI - Revista Iberica de Sistemas e Tecnologias de Informacao
Volume2020
Issue numberE30
StatePublished - Jun 2020
Externally publishedYes

Bibliographical note

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© 2020, Associacao Iberica de Sistemas e Tecnologias de Informacao. All rights reserved.

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