EV Battery Pack EPTFE Vent Weldable Waterproof Breathable Pressure Balance
Product Details
| Color: | White | Thickness: | 0.10 – 0.50 Mm |
|---|---|---|---|
| Air Permeability: | Gurley:3 – 30 S/100ml @ 300 Ml | Water Entry Pressure: | ≥ 400 KPa |
| Waterproof Rating: | IP68 | Moisture Vapor Transmission Rate: | 8,000 – 18,000 G/m²·24h |
| Oleophobicity Grade: | ≥ 7 | 90° Peel Strength: | ≥ 15 N/25mm |
| Operating Temperature: | -40°C To +150°C | Size: | Customizable |
| Material Compliance: | PFAS Free | Chemical Resistance: | Corrosion-resistant,Acid-resistant |
| Highlight |
EV Battery Pack Eptfe Vent,Breathable Pressure Equalization Vent,Battery Enclosure Protection Vent |
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Product Description
EV Battery Pack Vent Weldable EPTFE Waterproof Breathable Pressure Balance
Product Overview
The EV battery pack vent is a high-flow, high-reliability pressure equalization solution purpose-engineered for the unique and demanding requirements of electric vehicle traction battery enclosures. It integrates a large-area, high-airflow ePTFE waterproof breathable membrane with a rugged, weldable thermoplastic carrier designed for direct integration into the battery pack housing. This vent manages the extreme pressure differentials caused by rapid altitude changes during mountain driving, the intense thermal cycling from high-power charging and discharging, and the large internal air volume of the sealed battery enclosure. It provides continuous, bidirectional airflow to prevent the pressure buildup that would stress and fatigue the battery housing seals, while maintaining an absolute barrier against water, road salt, dust, and debris that could cause catastrophic internal short circuits. The vent supports the battery pack's IP67/IP6K9K sealing requirements and, critically, can be engineered with emergency degassing functionality to safely vent cell thermal runaway gases, protecting the vehicle structure and its occupants.
Cause
EV traction battery packs are large, sealed aluminum or composite enclosures containing hundreds or thousands of individual cells, bus bars, cooling plates, and battery management electronics. The internal air volume is substantial—50 to 200+ liters depending on the vehicle. During fast DC charging at 150-350 kW, the cells and bus bars generate significant heat, warming the internal air rapidly. Driving up a mountain pass reduces external atmospheric pressure while the internal pressure remains higher, creating a strong positive differential. Conversely, a sudden cold rain after highway driving creates a sharp internal vacuum. These pressure cycles—often exceeding 10-20 kPa in magnitude—act like a slow bellows, repeatedly flexing the large flat panels of the battery enclosure and stressing the perimeter gasket seal. Over thousands of pressure cycles, the gasket can develop compression set and slow leaks, compromising the enclosure's waterproof integrity. Water ingress into a high-voltage battery pack is catastrophic: it can cause electrolysis, hydrogen gas generation, short circuits, and thermal runaway. Furthermore, in the rare event of a cell entering thermal runaway, the enclosure must safely vent the rapidly expanding hot gases. A simple open vent would solve pressure management but fail the waterproofing requirement. A fully sealed enclosure would solve waterproofing but fail pressure management.
Solution
The weldable EV battery pack vent provides a balanced, multi-functional solution. The vent's large-format ePTFE membrane offers high airflow capacity—typically 5-20+ liters per minute—to rapidly equalize the large internal volume of the battery pack during altitude changes and thermal cycling. The membrane is completely waterproof, with a typical water entry pressure exceeding 120 kPa, ensuring the battery pack remains dry even during water fording or high-pressure underbody wash. The weldable carrier is material-matched to the battery housing—aluminum, polyamide, or composite—and is integrated through a proven welding process to create a permanent, leak-tight bond. For thermal runaway protection, the vent can be designed with an emergency degassing function: a defined burst pressure or an active valve mechanism that opens a larger flow path to safely release hot gases and particulate matter, preventing explosive enclosure rupture. This multi-layered protection makes the vent a critical safety component in the battery pack design.
Specifications
| Parameter | Specification |
|---|---|
| Product Type | Weldable EV Battery Pack Vent |
| Carrier Material | Aluminum, PA, or composite (matched to pack housing) |
| Membrane Material | High-airflow ePTFE (oleophobic, thermally stable) |
| Standard Airflow | 5-20+ L/min @ 1 psi (sized to pack volume) |
| Emergency Degassing Flow | Custom engineered; > 500 L/min @ defined burst pressure |
| Water Entry Pressure | ≥ 120 kPa (standard), custom higher ratings available |
| Operating Temperature | -40°C to +120°C (normal), +200°C+ short-term (thermal event) |
| Installation | Ultrasonic welding, friction welding, or mechanical fastening with gasket |
| Ingress Protection | IP67, IP6K9K |
| Pack Volume Compatibility | 50L to 300L+ battery enclosures |
| Safety Function | Controlled emergency degassing capability |
Application
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EV traction battery pack enclosures (BEV, PHEV)
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Battery module sub-enclosures within the pack
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Battery disconnect unit and power distribution enclosures
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On-board charger and DC-DC converter enclosures
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Fuel cell stack enclosures (FCEV)
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Stationary energy storage system battery enclosures
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Heavy commercial vehicle and bus battery pack enclosures
How It Works
The vent is welded into a dedicated port on the battery pack housing, typically on a top or upper side face, away from road spray and underbody impact zones. During normal vehicle operation, the ePTFE membrane allows continuous bidirectional airflow. As the pack heats during charging or high-power discharge, expanding air exits through the membrane. As the pack cools or the vehicle descends from altitude, ambient air enters. This keeps the enclosure at near-ambient pressure, protecting the perimeter gasket and preventing the pressure pumping that would draw moisture inward. In the event of a cell thermal runaway, the rapid pressure rise activates the emergency degassing path—either through a burst membrane section, a spring-loaded valve, or a larger-area venting zone—allowing the hot, particle-laden gases to escape in a controlled direction and at a managed rate, preventing explosive enclosure rupture. After the event, the waterproof membrane remains intact to prevent external water ingress into the damaged pack.
How To Choose
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Calculate the battery pack's internal free air volume and determine the maximum altitude change and thermal cycling profile to size the standard breathing airflow.
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Define the required IP protection level: IP67 for temporary immersion, IP6K9K for high-pressure wash resistance.
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Determine the emergency degassing requirements: burst pressure, minimum flow rate, particle filtration needs, and venting direction.
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Match the vent carrier material and welding process to your battery pack housing design and manufacturing line.
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Conduct full-scale validation testing: altitude simulation, thermal cycling, water immersion, and worst-case thermal runaway venting tests per UN ECE R100 and GB 38031 standards.
FAQ
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Q: Does the vent need to be electrically isolated from the battery pack housing?
A: The ePTFE membrane is an electrical insulator. The carrier material can be specified as an insulating polymer or an isolated metal insert to prevent any galvanic or electrical conduction path.
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Q: How does the vent handle the condensation that forms inside a large battery enclosure?
A: Continuous pressure equalization allows the pack to "breathe" dry ambient air, helping to reduce accumulated internal humidity. For packs with active thermal management, the vent works alongside the cooling system's condensation management strategy.
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Q: Can the emergency degassing function be activated and then reseal, or is it a single-use feature?
A: Emergency degassing is typically a single-use function. After a thermal event, the entire battery pack would be serviced or replaced. Our design ensures the venting is controlled and directed for maximum safety during that single event.
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Q: Is the vent compatible with the lightweight composite battery enclosures increasingly used in EVs?
A: Yes, we can provide vent carriers compatible with composite materials, including those reinforced with carbon fiber, using specialized welding or adhesive bonding techniques validated for the specific composite.
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Q: How do you test the vent's long-term durability against the constant vibration and shock loads of an underbody-mounted battery pack?
A: We subject the vented pack assembly to accelerated vibration and shock testing per LV124/LV148 and equivalent OEM standards, verifying that the weld bond and membrane integrity are maintained through the vehicle's design life.
Product Highlights
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