Numerical Analysis of a Two-Layer PCM Based Battery Thermal Management System for Different Material Properties DOI Open Access
Barış Kavasoğulları

Black Sea Journal of Engineering and Science, Journal Year: 2024, Volume and Issue: 7(6), P. 1246 - 1255

Published: Oct. 23, 2024

The design and numerical analysis of the two-layer PCM (Phase Change Material)-based thermal management system for a 18650-type lithium-ion battery have been performed. In relation to simulation, coefficient conductivity melting temperature first layer PCMs are varied. Other parameters made identical that next layer's in order generation two different layers can be attained: PCM-1 PCM-2. To obtain more realistic approach analysis, model was created COMSOL-MATLAB interface using experimental internal resistance data obtained 18650 type Li-ion batteries literature. While cheaper accessible material with 0.2 W/mK point 50 °C used PCM-2 layer, changed as 0.2, 1 5 30, 40 layer. this way, thickness (tpcm), optimized at discharge rates, 5C 7C. As result it determined optimum tpcm, kpcm,1 Tm values rate were 2 mm, °C, respectively; 7C 4 respectively.

Language: Английский

Active and hybrid battery thermal management system using microchannels, and phase change materials for efficient energy storage DOI
Mohammad Reza Shahmohammadi, Sadegh Seddighi,

Alireza Taklifi

et al.

Journal of Power Sources, Journal Year: 2024, Volume and Issue: 621, P. 235317 - 235317

Published: Aug. 26, 2024

Language: Английский

Citations

8

A Novel Hybrid Cooling System for a Lithium-ion Battery Pack Based on Forced Air and Fins Integrated with Phase Change Material. DOI Creative Commons

Mohanad F. Hassan,

Abdul Hadi N. Khalifa, Ahmed J. Hamad

et al.

Results in Engineering, Journal Year: 2025, Volume and Issue: unknown, P. 104136 - 104136

Published: Jan. 1, 2025

Language: Английский

Citations

0

CFD-ML Analysis of Finned Pipe Hybrid PCM Systems for Enhanced Cold Energy Storage DOI Creative Commons

K. G. Iyer,

Hasan Askari Malick,

Shruti Nair

et al.

Case Studies in Thermal Engineering, Journal Year: 2025, Volume and Issue: unknown, P. 106000 - 106000

Published: March 1, 2025

Language: Английский

Citations

0

Harnessing anisotropy of phase change composites for taming thermal runaway and fast charging of lithium-ion batteries DOI
Anirban Chakraborty, Joo‐Young Lee, Choongho Yu

et al.

Applied Energy, Journal Year: 2025, Volume and Issue: 389, P. 125802 - 125802

Published: March 26, 2025

Language: Английский

Citations

0

Carbon-Based Thermal Management Solutions and Innovations for Improved Battery Safety: A Review DOI Creative Commons
Benjamin Tawiah, Emmanuel Ofori, Daming Chen

et al.

Batteries, Journal Year: 2025, Volume and Issue: 11(4), P. 144 - 144

Published: April 7, 2025

The extensive use of lithium-ion batteries and other energy storage systems (ESS) in recent years has resulted a critical need for effective thermal management solutions that ensure safe reliable operations. Carbon-based materials (C-bMs) are promising candidate addressing the challenges ESS due to their unique thermal, electrical, structural properties. This article provides concise overview C-bM improved battery safety. key requirements failure modes associated with highlighted, underscoring importance (BTM). Various forms C-bMs, including graphite, graphene, carbon nanotubes, foams, nanodiamonds, graphdiyne, examined potential applications systems. innovations advancements solutions, such as phase change composites, heat pipes, interface materials, highlighted. Furthermore, latest research trends focus mainly on development hybrid carbon-based aerogels, complex structures tailored pathways optimized management. Most current still at laboratory scale; hence, future efforts will be focused developing integrated multi-functional sustainable scalable manufacturing techniques, self-healing C-bMs intelligent further explorations uncommon C-bMs. These bound enhance performance, sustainability, application-specific adaptations BTM. valuable insights researchers, stakeholders interested leveraging

Language: Английский

Citations

0

Enhanced helical fin designs with sugar Alcohol-Based hybrid NEPCM for improved melting and thermal safety in Lithium-Ion battery DOI Creative Commons
S. Justin Raj,

R. Harish

Energy Conversion and Management X, Journal Year: 2025, Volume and Issue: unknown, P. 101032 - 101032

Published: April 1, 2025

Language: Английский

Citations

0

Strategies for Passive Thermal Management of Lithium-Ion Batteries in Microgravity: Combining PCMs, Metal Foams, Fins, and Nanoparticles DOI Creative Commons
Hamid Reza Talesh Bahrami, Mahziyar Ghaedi

Case Studies in Thermal Engineering, Journal Year: 2025, Volume and Issue: unknown, P. 106247 - 106247

Published: May 1, 2025

Language: Английский

Citations

0

Simulation of solidification for saving energy with using nanomaterial involving conduction heat transfer DOI Creative Commons
Mashhour A. Alazwari, Ali Basem, Hussein A.Z. AL-bonsrulah

et al.

Case Studies in Thermal Engineering, Journal Year: 2024, Volume and Issue: 63, P. 105248 - 105248

Published: Oct. 5, 2024

Language: Английский

Citations

3

Analytical study on highway thermal runaway propagation and inter-electrode dynamics in lithium-ion battery applications: Insights into battery safety DOI

M.O. Lai,

Jianbin Lu,

Xiangyang Ge

et al.

Process Safety and Environmental Protection, Journal Year: 2024, Volume and Issue: 190, P. 688 - 707

Published: Aug. 8, 2024

Language: Английский

Citations

0

Numerical Analysis of a Two-Layer PCM Based Battery Thermal Management System for Different Material Properties DOI Open Access
Barış Kavasoğulları

Black Sea Journal of Engineering and Science, Journal Year: 2024, Volume and Issue: 7(6), P. 1246 - 1255

Published: Oct. 23, 2024

The design and numerical analysis of the two-layer PCM (Phase Change Material)-based thermal management system for a 18650-type lithium-ion battery have been performed. In relation to simulation, coefficient conductivity melting temperature first layer PCMs are varied. Other parameters made identical that next layer's in order generation two different layers can be attained: PCM-1 PCM-2. To obtain more realistic approach analysis, model was created COMSOL-MATLAB interface using experimental internal resistance data obtained 18650 type Li-ion batteries literature. While cheaper accessible material with 0.2 W/mK point 50 °C used PCM-2 layer, changed as 0.2, 1 5 30, 40 layer. this way, thickness (tpcm), optimized at discharge rates, 5C 7C. As result it determined optimum tpcm, kpcm,1 Tm values rate were 2 mm, °C, respectively; 7C 4 respectively.

Language: Английский

Citations

0