PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 2, 2026Batteries0 citationsOpen Access

Thermally Aware Design of Large-Format Batteries Driven by an Equivalent Circuit Network-Based Electro-Thermal Model

View Full Paper
JNJunlong NiuHTHua TangHLHongwei Li

Key Points

  • To develop an advanced electro-thermal model for optimizing thermal management in large-format pouch cells.
  • Developed a high-fidelity electro-thermal model based on an equivalent circuit network.
  • Coupled three-dimensional ohmic conduction with equivalent circuit models in the cell stack.
  • Studied various design factors such as thermal management configurations and tab geometry via simulations.
  • Two-sided stack surface cooling achieved the lowest average temperature, reducing it by about 11 °C.
  • The standard deviation of temperature was minimized to 1.43 °C.
  • Core maximum temperature was decreased by more than 9 °C with optimal cooling, outperforming other configurations by 4 to 5 °C.

Abstract

Large-format pouch cells enable higher pack-level energy density and simplified system architecture, yet they pose significant thermal challenges due to long internal conduction paths, pronounced spatial gradients, and limited access to core temperature. This work develops a high-fidelity electro-thermal model for large-format cells based on an equivalent circuit network that mirrors the physical assembly of tabs, welds, and electrode stacks. The model couples three-dimensional ohmic conduction in tabs, welds, and current collectors with node-level equivalent circuit models in the stack, and uses measurement-anchored parameters. The model is used to study thermally critical design factors for a 44 Ah pouch cell, including thermal management configurations, tab width, tab thickness, and tab welding. Simulation results indicate that among four active cooling options, two-sided stack surface cooling achieves the lowest temperatures and the best uniformity, lowering the average temperature by about 11 °C relative to natural convection and reducing the temperature standard deviation to 1.43 °C. It also decreases the core maximum temperature by more than 9 °C, whereas other configurations provide only 4 to 5 °C core reductions. Changes to tab geometry and welding have minor effects except under one-sided tab cooling.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Niu et al. (2026) studied this question.

synapsesocial.com/papers/6980fe13c1c9540dea80fd1dhttps://doi.org/10.3390/batteries12020047
Ask AI
Helpful
Bookmark
Share
View Full Paper