Study on the Liquid Cooling Method of Longitudinal Flow through Cell Gaps Applied to Cylindrical Close-Packed Battery
Abstract
:1. Introduction
- Improved energy density of cylindrical battery packs
- 2.
- Improved uniform temperature performance of cylindrical battery packs
2. Method and Experiment
2.1. Simulation
2.1.1. Longitudinal-Flow Geometry Model
2.1.2. Model Calculation Domain
2.1.3. Genetic Algorithm
2.1.4. Control Equation and Related Parameters
Heat Generation Mechanism of Battery
Flow and Heat Transfer Equation
2.1.5. Initial and Boundary Conditions
2.1.6. Grid Validity Verification
2.2. Experiment
2.2.1. TDC-Based Pack Principle
TDC Structure
Design of TDC Battery Pack and Liquid-Cooled Heat Exchange Structure
2.2.2. Test System and Method
Test System Composition
Test Procedure
- (1)
- Establish cooling water circulation to bring the flow rate up to the predetermined value.
- (2)
- Start the temperature acquisition system, observe, and wait for the coolant inlet and outlet temperatures to become essentially constant.
- (3)
- Import the predefined output voltage sequence into the programmable power supply.
- (4)
- Clear the temperature acquisition system’s historical data and start a new acquisition while starting the power supply output.
- (5)
- Wait for the programmable power supply to complete the voltage sequence output, and then end the temperature sampling and save the data.
3. Results
3.1. Analysis of Simulation Results
3.1.1. Comparison of Cooling Performance with Transverse-Flow Battery Pack
3.1.2. Effect of Flow Channel Parameters on Thermal Performance of Longitudinal Flow Battery Pack
3.1.3. Effect of Operating Parameters on the Thermal Performance of Longitudinal-Flow Battery Packs
- (1)
- Influence of coolant flow change on cooling effect
- (2)
- Influence of discharge rate on cooling effect of battery pack
3.1.4. Functional Verification in High-Temperature Environment
3.2. Analysis of Experimental Results
3.2.1. Test Results and Analysis under Constant Condition
- (1)
- The average temperature performance of a battery pack at a high discharge rate
- (2)
- Effect of coolant flow rate on heat dissipation performance of longitudinal-flow battery pack
3.2.2. Test Results and Analysis under NEDC Conditions
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Number | Conditions |
---|---|
1 | The initial temperature and reference temperature of the model and environment are set as 20 °C |
2 | The outer wall of the water jacket in contact with the air is set as an adiabatic surface |
3 | The heat convection between the two end surfaces of the cell and the heat conduction of the wires are set to a constant heat flux value |
4 | The contact thermal resistance of the battery sidewalls and coolant water jacket is ignored |
5 | The thermal property parameters of the materials used are treated as constant values |
6 | The coolant is set as water, the fluid is considered incompressible, and the gravity of water is ignored |
7 | The fluid inlet is set according to the normal inflow speed, and the outlet is set to zero pressure |
Condition | Value | Unit |
---|---|---|
Initial temperature | 20.0 | °C |
Equivalent heat flux of battery end face | 247.19 | W/(m2K) |
Radial thermal conductivity of battery | 2.37 | W/(mK) |
Axial thermal conductivity of battery | 28.27 | W/(mK) |
Battery capacity | 3.25 | Ah |
Specific heat capacity of battery at constant pressure | 2482.3 | J/(kgK) |
Battery density | 2841.60 | kg/m3 |
Condition | Grid 1 | Grid 2 | Grid 3 | Grid 4 | Grid 5 | Grid 6 |
---|---|---|---|---|---|---|
Predefined mode | Super coarsening | Relatively coarsening | Coarsening | Conventional | Refinement | Relative refinement |
Number of domain units | 42,756 | 73,005 | 123,990 | 229,310 | 612,397 | 1,310,894 |
Number of boundary elements | 8025 | 12,066 | 17,408 | 25,652 | 46,129 | 71,452 |
Number of side cells | 1314 | 1663 | 2081 | 2532 | 3673 | 4598 |
TDC No. | 1 | 2 | 3 | 4 | 5 | 6 | 7 |
---|---|---|---|---|---|---|---|
Resistance value/Ω | 14.74 | 14.84 | 14.32 | 14.87 | 14.60 | 14.53 | 14.86 |
Average value of resistance/Ω | 14.68 |
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Li, W.; Shi, W.; Xiong, S.; Huang, H.; Chen, G. Study on the Liquid Cooling Method of Longitudinal Flow through Cell Gaps Applied to Cylindrical Close-Packed Battery. Inventions 2023, 8, 100. https://doi.org/10.3390/inventions8040100
Li W, Shi W, Xiong S, Huang H, Chen G. Study on the Liquid Cooling Method of Longitudinal Flow through Cell Gaps Applied to Cylindrical Close-Packed Battery. Inventions. 2023; 8(4):100. https://doi.org/10.3390/inventions8040100
Chicago/Turabian StyleLi, Wei, Wei Shi, Shusheng Xiong, Hai Huang, and Guodong Chen. 2023. "Study on the Liquid Cooling Method of Longitudinal Flow through Cell Gaps Applied to Cylindrical Close-Packed Battery" Inventions 8, no. 4: 100. https://doi.org/10.3390/inventions8040100
APA StyleLi, W., Shi, W., Xiong, S., Huang, H., & Chen, G. (2023). Study on the Liquid Cooling Method of Longitudinal Flow through Cell Gaps Applied to Cylindrical Close-Packed Battery. Inventions, 8(4), 100. https://doi.org/10.3390/inventions8040100