Second-Life Batteries: A Review on Power Grid Applications, Degradation Mechanisms, and Power Electronics Interface Architectures

Author:

Hassan Ali1ORCID,Khan Shahid1ORCID,Li Rongheng1ORCID,Su Wencong1ORCID,Zhou Xuan1ORCID,Wang Mengqi1ORCID,Wang Bin2ORCID

Affiliation:

1. Department of Electrical and Computer Engineering, University of Michigan-Dearborn, Dearborn, MI 48126, USA

2. Sustainable Energy and Environmental Systems, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA

Abstract

The adoption of electric vehicles (EVs) is increasing due to governmental policies focused on curbing climate change. EV batteries are retired when they are no longer suitable for energy-intensive EV operations. A large number of EV batteries are expected to be retired in the next 5–10 years. These retired batteries have 70–80% average capacity left. Second-life use of these battery packs has the potential to address the increasing energy storage system (ESS) demand for the grid and also to create a circular economy for EV batteries. The needs of modern grids for frequency regulation, power smoothing, and peak shaving can be met using retired batteries. Moreover, these batteries can also be employed for revenue generation for energy arbitrage (EA). While there are articles reviewing the general applications of retired batteries, this paper presents a comprehensive review of the research work on applications of the second-life batteries (SLBs) specific to the power grid and SLB degradation. The power electronics interface and battery management systems for the SLB are also thoroughly reviewed.

Publisher

MDPI AG

Subject

Electrical and Electronic Engineering,Electrochemistry,Energy Engineering and Power Technology

Reference96 articles.

1. IEA (2023). Global EV Outlook 2023, IEA. Available online: https://www.iea.org/reports/global-ev-outlook-2023.

2. Engel, H., Hertzke, P., and Siccardo, G. (2019). Second-Life EV Batteries: The Newest Value Pool in Energy Storage, McKinsey & Company.

3. End-of-life or second-life options for retired electric vehicle batteries;Zhu;Cell Rep. Phys. Sci.,2021

4. IEA (2021). The Role of Critical Minerals in Clean Energy Transitions, IEA.

5. Recycling end-of-life electric vehicle lithium-ion batteries;Chen;Joule,2019

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