Yusheng Zheng, Yunhong Che
Monitoring the internal temperature of lithium-ion batteries is essential to their safe operation, as thermal gradients develop naturally within the cell during usage. Since the internal temperature is less accessible than surface temperature, there is an urgent need to develop accurate and real-time estimation algorithms for better thermal management and safety. This work presents a novel framework for resource-efficient and scalable development of accurate, robust, and adaptive internal temperature estimation algorithms by blending physics-based modeling with machine learning to address the key challenges in data collection, model parameterization, and estimator design that traditionally hinder both approaches. In this framework, a physics-based model is leveraged to generate simulation data that includes different operating scenarios by sweeping the model parameters and input profiles. Such a cheap simulation dataset can be used to pre-train the machine learning algorithm to capture the underlying mapping relationship. To bridge the simulation-to-reality gap resulting from imperfect modeling, transfer learning with unsupervised domain adaptation is applied to fine-tune the pre-trained machine learning model, by using limited operational data (without internal temperature values) from target batteries.
@article{7b713248-4348-4ba9-81e9-754576720d99,
title={Merging Physics-Based Synthetic Data and Machine Learning for},
author={Yusheng Zheng and Yunhong Che},
year={2024},
language={English}
}TY - JOUR TI - Merging Physics-Based Synthetic Data and Machine Learning for AU - Yusheng Zheng AU - Yunhong Che PY - 2024 LA - English ER -
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