Nonlinear Model Inversion-Based Output Tracking Control for Battery Fast Charging
Artikel i vetenskaplig tidskrift, 2024

We propose a novel nonlinear control approach for fast charging of lithium-ion batteries, where health- and safety-related variables, or their time derivatives, are expressed in an input-polynomial form. By converting a constrained optimal control problem into an output tracking problem with multiple tracking references, the required control input, i.e., the charging current, is obtained by computing a series of candidate currents associated with different tracking references. Consequently, an optimization-free nonlinear model inversion-based control algorithm is derived for charging the batteries. We demonstrate the efficacy of our method using a spatially discretized high-fidelity pseudo-two-dimensional (P2D) model with thermal dynamics. Conventional methods require computationally demanding optimization to solve the corresponding fast charging problem for such a high-order system, leading to practical difficulties in achieving low-cost implementation. Results from comparative studies show that the proposed controller can achieve performance very close to nonlinear and linearized model predictive control but with much lower computational costs and minimal parameter tuning efforts.

Electrolytes

Computational modeling

Electrochemical–thermal model

Optimization

Electrodes

Resistance

inversion-based control

fast charging

Lithium-ion batteries

lithium plating (LiP)

lithium-ion batteries

Integrated circuit modeling

Författare

Yang Li

Chalmers, Elektroteknik, System- och reglerteknik

Torsten Wik

Chalmers, Elektroteknik, System- och reglerteknik

Yicun Huang

Chalmers, Elektroteknik, System- och reglerteknik

Changfu Zou

Chalmers, Elektroteknik, System- och reglerteknik

IEEE Transactions on Control Systems Technology

1063-6536 (ISSN) 15580865 (eISSN)

Vol. 32 1 225-240

Batteristyrning via adaptiv modellering och prediktiv reglering

Vetenskapsrådet (VR) (2019-04873), 2020-01-01 -- 2023-12-31.

Litiumjonbatterikontroll för snabbare laddning och längre livslängd

Europeiska kommissionen (EU) (EC/H2020/895337), 2020-11-01 -- 2022-10-31.

Drivkrafter

Hållbar utveckling

Styrkeområden

Transport

Energi

Ämneskategorier

Elektroteknik och elektronik

Reglerteknik

Annan elektroteknik och elektronik

DOI

10.1109/TCST.2023.3306240

Mer information

Senast uppdaterat

2024-01-25