Neural Network Assisted Numerical Simulation Benchmarking for Electric Vehicle Thermal Management System

Ekin Alp Bicer, Pascal Schirmer, Peter Schreivogel, Gabriele Schrag

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

Abstract

Thermal Management System (TMS) in Electric Vehicles (EVs) is tasked with providing optimal thermal conditions for the EV components while keeping the passengers comfortable. An accurate TMS model prevents overengineered components during the early design phase, but high-fidelity models like CFD or FEM become computationally infeasible when simulating the whole system. Neural Networks (NNs) provide accuracy without heavy computational loads, however, their extrapolation capabilities can be limited when predicting coolant temperatures for EVs in the design phase. To solve this, the authors introduce an NN-based TMS simulation approach using analytical equations and dedicated look-up tables. The results show that the proposed approach outperforms the baseline approach only utilizing neural networks up to 11.5% during dynamic driving.

Original languageEnglish
Title of host publicationInternational Exhibition and Conference for Power Electronics, Intelligent Motion, Renewable Energy and Energy Management, PCIM Europe 2024
PublisherMesago PCIM GmbH
Pages40-48
Number of pages9
ISBN (Electronic)9783800762620
DOIs
StatePublished - 2024
Event2024 International Exhibition and Conference for Power Electronics, Intelligent Motion, Renewable Energy and Energy Management, PCIM Europe 2024 - Nuremberg, Germany
Duration: 11 Jun 202413 Jun 2024

Publication series

NamePCIM Europe Conference Proceedings
Volume2024-June
ISSN (Electronic)2191-3358

Conference

Conference2024 International Exhibition and Conference for Power Electronics, Intelligent Motion, Renewable Energy and Energy Management, PCIM Europe 2024
Country/TerritoryGermany
CityNuremberg
Period11/06/2413/06/24

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