A Novel Liquid Cooling Battery Thermal Management System With a Cooling Plate Based on Biomimetic Fractal ChannelsSource: Journal of Electrochemical Energy Conversion and Storage:;2023:;volume( 021 ):;issue: 004::page 41002-1DOI: 10.1115/1.4064095Publisher: The American Society of Mechanical Engineers (ASME)
Abstract: An effective battery thermal management system (BTMS) is necessary to quickly release the heat generated by power batteries under a high discharge rate and ensure the safe operation of electric vehicles. Inspired by the biomimetic structure in nature, a novel liquid cooling BTMS with a cooling plate based on biomimetic fractal structure was proposed. By developing the physical model of the BTMS, numerical calculations were conducted to analyze the impacts of the structural parameters of the cooling plate and the inlet velocity of the coolant on the thermal performance of the batteries. The results showed that the cooling plate can meet the heat dissipation requirements of high-temperature uniformity for the batteries under high discharge rates, especially under the extremely uniform channel distribution mode for the adjacent fractal branch at the same level. Moreover, the increase in the group number of fractal branches can improve the cooling capacity of the cooling plate and reduce the pressure drop of the coolant. The increase in the level number of channels, the length ratio, and the inlet velocity of the coolant can enhance the cooling capacity. However, these methods of enhancing heat transfer require more pump power consumption. When the group number of fractal branches is 4, the level number of channels is 3, the length ratio is 1, and the inlet velocity of the coolant is 0.5 m/s, the BTMS can control the maximum temperature and maximum temperature difference of the batteries under 4C-rate discharge within 31.68 °C and 4.15 °C, respectively. Finally, orthogonal test was conducted on four factors: the group number of fractal branches, the level number of channels, the length ratio, and the inlet velocity of the coolant. The results showed that the level number of branches is the most important structural parameter.
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contributor author | Tang, Zhiguo | |
contributor author | Xiang, Yi | |
contributor author | Li, Man | |
contributor author | Cheng, Jianping | |
date accessioned | 2024-12-24T19:04:21Z | |
date available | 2024-12-24T19:04:21Z | |
date copyright | 11/30/2023 12:00:00 AM | |
date issued | 2023 | |
identifier issn | 2381-6872 | |
identifier other | jeecs_21_4_041002.pdf | |
identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4303236 | |
description abstract | An effective battery thermal management system (BTMS) is necessary to quickly release the heat generated by power batteries under a high discharge rate and ensure the safe operation of electric vehicles. Inspired by the biomimetic structure in nature, a novel liquid cooling BTMS with a cooling plate based on biomimetic fractal structure was proposed. By developing the physical model of the BTMS, numerical calculations were conducted to analyze the impacts of the structural parameters of the cooling plate and the inlet velocity of the coolant on the thermal performance of the batteries. The results showed that the cooling plate can meet the heat dissipation requirements of high-temperature uniformity for the batteries under high discharge rates, especially under the extremely uniform channel distribution mode for the adjacent fractal branch at the same level. Moreover, the increase in the group number of fractal branches can improve the cooling capacity of the cooling plate and reduce the pressure drop of the coolant. The increase in the level number of channels, the length ratio, and the inlet velocity of the coolant can enhance the cooling capacity. However, these methods of enhancing heat transfer require more pump power consumption. When the group number of fractal branches is 4, the level number of channels is 3, the length ratio is 1, and the inlet velocity of the coolant is 0.5 m/s, the BTMS can control the maximum temperature and maximum temperature difference of the batteries under 4C-rate discharge within 31.68 °C and 4.15 °C, respectively. Finally, orthogonal test was conducted on four factors: the group number of fractal branches, the level number of channels, the length ratio, and the inlet velocity of the coolant. The results showed that the level number of branches is the most important structural parameter. | |
publisher | The American Society of Mechanical Engineers (ASME) | |
title | A Novel Liquid Cooling Battery Thermal Management System With a Cooling Plate Based on Biomimetic Fractal Channels | |
type | Journal Paper | |
journal volume | 21 | |
journal issue | 4 | |
journal title | Journal of Electrochemical Energy Conversion and Storage | |
identifier doi | 10.1115/1.4064095 | |
journal fristpage | 41002-1 | |
journal lastpage | 41002-12 | |
page | 12 | |
tree | Journal of Electrochemical Energy Conversion and Storage:;2023:;volume( 021 ):;issue: 004 | |
contenttype | Fulltext |