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What is the Advantage and Disadvantage of Liquid Cooling System for Batteries

Author: Monica

Aug. 25, 2025

Advantages and disadvantages of liquid cooling

Liquid cooling refers to reducing the temperature of the battery by taking away the heat generated by the battery in operation through the cooling pipe inside the battery pack and the cooling liquid of the cooling plate. Its advantages are high heat transfer coefficient, large thermal energy, fast cooling efficiency, and remarkable battery consistency. The disadvantage is that the liquid exists inside, so the safety performance in a sealed space is relatively high. Compared with air cooling and natural cooling, the cost is also relatively low.

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The complexity of the production process of the liquid-cooling plate is much higher than that of the air-cooled radiator. The water-cooled plate process mainly includes the main processes of raw material stamping - cleaning - brazing flux - riveting - brazing - testing - sealing, etc. The general production technology processes of water-cooled plate include buried pipe process, profile+welding, machining+welding, die casting+welding. At present, the main types of liquid cooling plate in the new energy vehicle market are harmonica tube type liquid cooling plate, stamping type liquid cooling plate, blowing type liquid cooling plate, parallel flow tube type liquid cooling belt, profile plus friction stir welding liquid cooling plate. Only manufacturers with strong technical precipitation can provide reliable technical support.

Trumony Aluminum has a complete set of well-equipped production lines from mold development, stamping, processing, welding and a complete set of advanced testing equipment for research and development, providing high-quality guarantee for the product quality and independent research and development of Trumony Aluminum.

What are the differences between liquid-cooled and air-cooled ...

Choosing the right battery cooling system can be a daunting task. Misunderstanding the differences might lead to inefficient thermal management and reduced battery life. Let’s uncover the key distinctions to help you make an informed decision.

As batteries become more integral to modern technology—from electric vehicles to renewable energy storage—the need for effective thermal management has never been greater. Cooling systems are essential to maintain optimal battery performance and ensure safety.

Battery cooling systems prevent overheating, which can degrade battery life, reduce efficiency, and pose safety risks. Two primary methods dominate the industry: liquid cooling and air cooling. Each has its unique mechanisms, advantages, and drawbacks.

As an engineer, buyer, researcher or others, understanding the fundamental differences between liquid-cooled and air-cooled systems is crucial. Each system offers unique advantages depending on your application’s demands.

Liquid cooling circulates coolant to absorb and dissipate heat efficiently, suitable for need efficient heat dissipation under heavy loads, high ambient temperatures, high-power devices,concentrated heat sources , or tight space constraints scenarios. Air cooling relies on airflow(either forced by fans or natural convection) over the battery surface, ideal for less intensive applications due to its simplicity and lower layout and maintenance costs.

In liquid-cooled systems, a coolant flows through channels in the battery cooling plate, absorbing heat directly from the battery cells. This method ensures uniform temperature distribution, essential for electric vehicles (EVs), energy storage systems(ESSs) with high energy output. Air-cooled systems, conversely, use fans or natural convection to move air across the battery, which is sufficient for applications like small energy storage systems but may not handle high thermal loads effectively.

Battery plates are critical components in cooling systems, serving as interfaces between the battery cells and the cooling medium. Let’s examine how liquid-cooled and air-cooled battery plates function.

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Liquid-Cooled Battery Plates: Typically made of conductive metals like aluminum or copper, these plates feature embedded channels or microchannels for coolant flows. The liquid coolant, often a mixture of water and glycol, flows through these channels,absorbing excess heat from the battery cells and carries it to a radiator or heat exchanger for dissipation. And the total liquid cooling system may include pumps, valves, and sensors to regulate flow and temperature.

Air-Cooled Battery Plates: These plates often have fins or increased surface areas to facilitate heat dissipation into the surrounding air. Fans or natural convection circulate air over the plates, removing heat from the battery cells.

Air-cooled batteries are better for cost-sensitive, low to moderate power applications due to their simplicity, such as consumer electronics, small-scale energy storage, homes uninterruptible power supply(UPS), electric forklifts (light-duty). Liquid-cooled batteries excel in high-power, performance-critical environments despite higher costs.

Air cooling is generally more cost-effective upfront due to fewer components and simpler design. Liquid cooling involves higher initial costs but may offer savings through enhanced battery performance and lifespan.

Liquid-cooled systems require pumps, coolant, tubing, and more complex battery cooling plates, increasing manufacturing and maintenance expenses. However, for applications where battery efficiency and longevity are paramount, these costs can be justified. Air-cooled systems, with their minimal components, reduce initial investment and are easier to maintain, benefiting projects with tight budgets or where high performance is not critical.

Air-cooled systems often involve mounting fans and ensuring proper airflow pathways, which is straightforward and less time-consuming. Liquid-cooled systems require sealing, coolant management, and pump installations, increasing the complexity. Maintenance for liquid systems includes checking for leaks and coolant replacement, while air systems primarily involve cleaning or replacing filters and fans.

For BESS with moderate energy densities, air cooling may be sufficient and cost-effective. Liquid cooling is preferable for high-density systems where precise thermal management is necessary.

In large-scale BESS installations, like those used for grid energy storage, thermal management becomes more challenging due to the sheer volume of batteries. Air cooling might not evenly distribute cooling, leading to hotspots. Liquid cooling ensures uniform temperature control, which can enhance system reliability and lifespan. However, smaller or less-demanding BESS applications may benefit from the simplicity and cost-effectiveness of air cooling.

In high ambient temperatures, air-cooled systems struggle to dissipate heat as the temperature gradient between the battery and the air decreases. Liquid-cooled systems can regulate temperatures more precisely, making them suitable for regions with extreme climates. This adaptability ensures that batteries operate efficiently regardless of external conditions, which is crucial for applications like EVs used worldwide.

In conclusion, the choice between liquid-cooled and air-cooled battery plates hinges on specific application needs, cost considerations, and environmental factors. Understanding these differences empowers engineers and buyers to select the most suitable cooling system for optimal battery performance and longevity.

Contact us to discuss your requirements of Liquid Cooling System for Batteries. Our experienced sales team can help you identify the options that best suit your needs.

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