Herein, a comprehensive investigation is performed to research the thermal runaway features of large-format power lithium-ion cells under various heating patterns (2 kW electric heating oven and 600 W electric heating plate) and capacities (60, 150, and 180 Ah). Although the electric heating plate induces the cell to encounter thermal runaway earlier in comparison with the electric heating oven, the combustion does not appear for the former case since the compact stacking of the electric heating plate restrains the heat release of the heater such that the surrounding temperature is too low to induce the ignition of the thermal runaway combustibles. Besides that, it is interesting to find that the color of the ejected products under the electric heating plate condition becomes shallower as the thermal runaway proceeds, which implies that the ejecta in the initial of thermal runaway is mixed with quantities of solid particles and the proportion would gradually decrease. With the increase of the cell capacity, thermal runaway emerges later as a result of the greater cell height which delays the cell temperature rise, when exposed to an electric heating oven. In addition, the cell with a larger capacity demonstrates a lower peak temperature, a lower maximum temperature rise rate, a shorter combustion, a lower flame temperature, and a weaker radiation heat strength during thermal runaway; that is, less heat is released due to its violent thermal runaway behaviour. Finally, the severe explosion risk for the larger-capacity cell should be especially noted considering the larger amount of explosive gases released.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10594080PMC
http://dx.doi.org/10.1039/d3ra06425eDOI Listing

Publication Analysis

Top Keywords

thermal runaway
36
electric heating
28
heating plate
16
heating oven
12
thermal
10
runaway features
8
features large-format
8
large-format power
8
power lithium-ion
8
lithium-ion cells
8

Similar Publications

Dataset of mechanically induced thermal runaway measurement and severity level on Li-ion batteries.

Data Brief

August 2024

Materials Science and Technology Division, Oak Ridge National Laboratory, Oak Ridge, TN, USA.

The deployment of Li-ion batteries covers a wide range of energy storage applications, from mobile phones, e-bikes, electric vehicles (EV) to stationary energy storage systems. However, safety issue such as thermal runaway is always one of the most important concerns preventing Li-ion batteries from further market penetration. A standardized single-side indentation test protocol was developed to mechanically induce an internal short-circuit.

View Article and Find Full Text PDF
Article Synopsis
  • The polypropylene (PP) separator in lithium-ion batteries is prone to thermal runaway, which limits its use in devices like electric vehicles and energy storage systems.
  • Researchers discovered that applying hydroxypropyl methylcellulose (HPMC) on the PP separator allows it to form a chiral nematic liquid crystal phase, enhancing battery safety by improving temperature distribution during operation.
  • The new HPMC-coated separator not only prevents thermal runaway during extreme testing but also demonstrates excellent cycling stability, allowing batteries to function effectively for over 1000 cycles, indicating a promising direction for future lithium-ion battery research.
View Article and Find Full Text PDF

A Pullulan polysaccharide-based flame-retardant polyelectrolyte hydrogel for high-safety flexible zinc ion capacitors.

Int J Biol Macromol

January 2025

Key Laboratory of Eco-functional Polymer Materials of the Ministry of Education, Key Laboratory of Eco-environmental Polymer Materials of Gansu Province, College of Chemistry and Chemical Engineering, Northwest Normal University, Lanzhou 730070, China. Electronic address:

Potential safety hazards such as leakage, flammability and thermal runaway of liquid electrolytes in conventional energy storage devices have seriously hindered their further development. In this work, a flame-retardant polyacrylamide/pullulan/phytic acid (PAM/PUL/PA) hydrogel electrolyte is prepared by using PA as flame-retardant additive, PAM as main polymer chain by one-step radical polymerization method. The PAM/PUL/PA hydrogel shows good flame-retardant properties with limiting oxygen index of up to 58 %, high mechanical performance with stretch up to 1535 % and 92 kPa tensile stress.

View Article and Find Full Text PDF
Article Synopsis
  • Lithium-ion batteries are becoming crucial in modern tech, but their high energy density raises safety issues with traditional electrolytes, which can lead to fires.
  • Polymer-based solid electrolytes, especially those using polyacrylonitrile (PAN), are being developed as safer alternatives, though they come with challenges in solvent removal during processing.
  • Research using femtosecond two-dimensional infrared spectroscopy reveals that the type and amount of solvent, like N,N-dimethylformamide (DMF), in PAN electrolytes significantly influence lithium ion structure and mobility, impacting ionic conductivity and the overall stability of the battery.
View Article and Find Full Text PDF

The impact of tube voltage on the erosion of rotating x-ray anodes.

Med Phys

November 2024

Particle Physics, Astrophysics and Medical Imaging Department, KTH Royal Institute of Technology, Stockholm, Sweden.

Background: The permitted input power density of rotating anode x-ray sources is limited by the performance of available target materials. The commonly used simplified formulas for the focal spot surface temperature ignore the tube voltage despite its variation in clinical practice. Improved modeling of electron transport and target erosion, as proposed in this work, improves the prediction of x-ray output degradation by target erosion, the absolute x-ray dose output and the quality of diagnostic imaging and orthovolt cancer therapy for a wide range of technique factors.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!