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Influence of the Acceleration Vector on Measured and Estimated Pollutant Emissions of Hybrid Vehicles, Focusing on Traction and Power Operating Parameters

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

In the city of Cuenca – Ecuador (2550 m.a.s.l), a significant introduction of HEVs in the automotive fleet is observed. These vehicles are adopted due to measures aimed at reducing fuel consumption and harmful emissions. Due to high-power cold start phenomena and deficiencies in catalytic converters, CO emissions show high increases compared to conventional vehicles at sea level. This necessitates the present analysis, which is based on data acquisition on “RDE” routes using data logger equipment to measure operational, positioning, and emission parameters. This analysis leverages machine learning skills linked to ANNs and Random Forest, aiming to estimate the pollutants of hybrids and demonstrate the influence of acceleration on each gas and calculated operational traction parameter (ICE-EM Powers, Aerodynamic Traction Force, SOC, etc.) in high-altitude cities. The results indicate a strong relationship of the longitudinal acceleration vector on CO2 and NOx gases, twice as high as CO and HC, corroborating related studies mentioning that emissions reduction principles are most closely related to acceleration in the present investigation.

Original languageEnglish
Title of host publicationSystems, Smart Technologies, and Innovation for Society - Proceedings of CITIS 2024
EditorsEsteban Mauricio Inga Ortega, Vladimir Espartaco Robles-Bykbaev, Nuria García Herranz, Eduardo Gallego Diaz
PublisherSpringer Science and Business Media Deutschland GmbH
Pages140-150
Number of pages11
ISBN (Print)9783031870644
DOIs
StatePublished - 2025
Event10th International Conference on Science, Technology and Innovation for Society, CITIS 2024 - Guayaquil, Ecuador
Duration: 18 Jul 202419 Jul 2024

Publication series

NameLecture Notes in Networks and Systems
Volume1331 LNNS
ISSN (Print)2367-3370
ISSN (Electronic)2367-3389

Conference

Conference10th International Conference on Science, Technology and Innovation for Society, CITIS 2024
Country/TerritoryEcuador
CityGuayaquil
Period18/07/2419/07/24

Bibliographical note

Publisher Copyright:
© The Author(s) 2025.

Keywords

  • ANNs
  • data-logger
  • EM
  • HEVs
  • ICE
  • Random Forest
  • SOC

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