Optimal energy management for formula-E cars with regulatory limits and thermal constraints

Date

2020-09-13

Supervisor/s

Journal Title

Journal ISSN

Volume Title

Publisher

Elsevier

Department

Type

Article

ISSN

0306-2619

Format

Citation

Liu X, Fotouhi A, Auger DJ. (2020) Optimal energy management for formula-E cars with regulatory limits and thermal constraints. Applied Energy, Volume 279, December 2020, Article number 115805

Abstract

In this paper, novel solutions are proposed for energy and thermal management in Formula-E cars using optimal control theory. Optimal control techniques are used to optimize net energy consumption (accounting for loss-reductions from energy recovery from regenerative braking) to achieve minimal lap time which is a crucial element in developing a competitive race strategy in Formula E races. A thermal battery model is used to impose thermal constraints on the optimal energy management strategy in order to realistically capture working constraints during a race. The effects of energy and thermal constraints on the proposed strategy are then demonstrated and two different pedal lifting techniques were introduced. Both the current second generation and a concept third generation type of formula-E cars are studied and compared. While third generation is significantly more efficient with 10% to 30% less energy consumption, it potentially faces more critical thermal issues with more than 60% more heat generation.

Description

Software Description

Software Language

Github

Keywords

thermal management, energy management, lap time simulation, optimal control, Formula-E car

DOI

Rights

Attribution-NonCommercial-NoDerivatives 4.0 International

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