Abstract:
Lithium-ion (Li-ion) batteries suffer from substantial capacity and power degradation at low temperatures, severely deteriorating the performance of battery-based transpo...Show MoreMetadata
Abstract:
Lithium-ion (Li-ion) batteries suffer from substantial capacity and power degradation at low temperatures, severely deteriorating the performance of battery-based transportation electrification. To overcome this issue, different preheating techniques have been proposed to recover the performance of Li-ion batteries in cold climates. Among these, internal heating schemes are more promising than traditional conductive and convective approaches owing to their superiorities in terms of high efficiency, rapid speed, and uniform temperature distribution. This article reviews various internal heating methodologies developed in recent years for Li-ion batteries, including mutual pulse current heating, alternating current (ac) heating, compound heating, and all-climate-battery (ACB)-based heating. Specifically, the effects of low temperatures on Li-ion batteries are first outlined in terms of cell performance and electrochemical characteristics. Then, the heat generation mechanism during internal heating is briefly described, based on which the internal temperature monitoring methods are also investigated considering the temperature gradient. Next, a comprehensive literature survey on different internal heating schemes with their basic principles, benefits, and drawbacks is presented. Finally, future trends of internal heating methods to benefit automotive battery performance are discussed in terms of key technologies, promising opportunities, and challenges.
Published in: IEEE Transactions on Transportation Electrification ( Volume: 9, Issue: 4, December 2023)
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- IEEE Keywords
- Index Terms
- Cold Climate ,
- Internal Heat ,
- Temperature Gradient ,
- Electric Vehicles ,
- Temperature Distribution ,
- Alternating Current ,
- Current Pulse ,
- Internal Temperature ,
- Uniform Temperature ,
- Battery Performance ,
- Promising Opportunities ,
- Heating Method ,
- Effect Of Low Temperature ,
- Uniform Temperature Distribution ,
- Energy Consumption ,
- Optimal Control ,
- Electrochemical Impedance Spectroscopy ,
- Internal Resistance ,
- Current Frequency ,
- Equivalent Circuit Model ,
- Heating Speed ,
- Heating Efficiency ,
- Electrochemical Model ,
- Heat Consumption ,
- Physics-based Models ,
- External Heat ,
- Battery Temperature ,
- Heat Generation Rate ,
- Plug-in Hybrid Electric Vehicles ,
- Solid Electrolyte Interface
- Author Keywords
Keywords assist with retrieval of results and provide a means to discovering other relevant content. Learn more.
- IEEE Keywords
- Index Terms
- Cold Climate ,
- Internal Heat ,
- Temperature Gradient ,
- Electric Vehicles ,
- Temperature Distribution ,
- Alternating Current ,
- Current Pulse ,
- Internal Temperature ,
- Uniform Temperature ,
- Battery Performance ,
- Promising Opportunities ,
- Heating Method ,
- Effect Of Low Temperature ,
- Uniform Temperature Distribution ,
- Energy Consumption ,
- Optimal Control ,
- Electrochemical Impedance Spectroscopy ,
- Internal Resistance ,
- Current Frequency ,
- Equivalent Circuit Model ,
- Heating Speed ,
- Heating Efficiency ,
- Electrochemical Model ,
- Heat Consumption ,
- Physics-based Models ,
- External Heat ,
- Battery Temperature ,
- Heat Generation Rate ,
- Plug-in Hybrid Electric Vehicles ,
- Solid Electrolyte Interface
- Author Keywords