Weldable Breathable Vent Membrane For ADAS / LiDAR Sensor Housings
Product Details
| Color: | White | Thickness: | 0.10 – 0.50 Mm |
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| 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 |
Weldable Breathable Vent Membrane ADAS,LiDAR Sensor Housing Vent,Waterproof Breather Vent |
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Product Description
Weldable Breathable Vent Membrane For ADAS & LiDAR Sensor Housings
The weldable breathable vent membrane for ADAS and LiDAR sensor housings is a high-reliability pressure equalization solution specifically engineered for the next generation of automotive perception systems. This vent features a premium ePTFE waterproof breathable membrane bonded to a weld-compatible thermoplastic carrier film, designed for direct ultrasonic or heat-stake welding into the plastic housings of cameras, radar sensors, and LiDAR units. It provides continuous, high-flow pressure equalization to manage the intense thermal cycling caused by sun exposure, electronics self-heating, and the rapid cooling from rain or car washes. The vent maintains an absolute barrier against water, dust, road salt, and optical surface contaminants, ensuring that ADAS sensors maintain their precise alignment, optical clarity, and functional reliability throughout the vehicle's life. By preventing internal fogging, condensation, and pressure-induced seal failure, this vent directly supports the safety-critical performance of autonomous and assisted driving systems.
ADAS and LiDAR sensors are positioned at the vehicle's extreme forward, rearward, and roofline positions—the most environmentally exposed locations on the entire automobile. A forward-facing camera or LiDAR unit in direct sunlight can see internal temperatures exceed 80°C within minutes. When the vehicle drives through a car wash or encounters heavy rain, cold water instantly quenches the housing exterior, causing the internal air to contract violently. This creates a powerful vacuum that draws moisture-laden air past housing seals. Repeated over thousands of thermal cycles, moisture accumulates inside, fogging camera lenses, condensing on LiDAR transmitter and receiver optics, and corroding high-speed data connectors. Even a slight optical degradation—a faint fog or dust spot—can impair the sensor's ability to detect pedestrians, lane markings, and obstacles at highway speeds. The industry's shift toward solid-state LiDAR and higher-resolution cameras with smaller pixels makes them even more sensitive to internal contamination. An unvented sensor housing is a liability that directly impacts functional safety ratings.
The weldable breathable vent membrane provides a permanent, integrated solution that becomes part of the sensor housing itself. The vent's thermoplastic carrier film is made from a material matched to the sensor housing—typically polycarbonate, polyamide, or PBT—ensuring a homogeneous, molecular-level weld that is as strong as the parent material. The ePTFE membrane provides a high-airflow ventilation path that instantly equalizes pressure during thermal cycling, eliminating the vacuum that draws moisture inward. The membrane's pore size (typically 0.2-0.5 microns) physically blocks liquid water, dust particles, and even salt spray aerosols from entering. Its oleophobic treatment resists the degradation and wetting effects of road film, diesel exhaust particulates, and de-icing chemicals. The weldable format enables fully automated assembly, with the vent positioned and welded by robot in seconds, achieving a zero-defect seal that requires no additional gaskets, adhesives, or mechanical fasteners.
| Parameter | Specification |
|---|---|
| Product Type | Weldable Breathable Vent Membrane |
| Carrier Film | Thermoplastic (PC, PA, PBT, PP – matched to housing) |
| Membrane Material | ePTFE (oleophobic, UV-stable when shielded) |
| Airflow | ≥ 200 ml/min @ 1 psi (customizable for housing volume) |
| Water Entry Pressure | ≥ 120 kPa |
| Dust Filtration | ≥ 99.5% for particles > 0.3μm |
| Operating Temperature | -40°C to +125°C (withstand 150°C short-term) |
| Installation | Ultrasonic welding, heat staking, or laser welding |
| Ingress Protection | Supports IP67, IP68, IP6K9K |
| Weld Strength | ≥ housing material tensile strength (homogeneous bond) |
| Optical Compatibility | No outgassing that would fog lenses |
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Forward-facing ADAS camera housings (mono, stereo, trifocal)
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Surround-view and rearview camera enclosures
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LiDAR sensor housings (mechanical, MEMS, solid-state, FMCW)
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Short-range and long-range radar sensor housings
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Driver monitoring system (DMS) camera enclosures
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Night vision and thermal imaging sensor housings
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Automated driving compute unit enclosures
The weldable vent is integrated into the sensor housing during the manufacturing process. Using ultrasonic or heat-stake welding, the vent's thermoplastic carrier film is fused directly to the housing material around a dedicated ventilation port. This creates a permanent, hermetic bond with no adhesive interface that could degrade over time. As the sensor's electronics and sun exposure heat the internal air, the expanding air passes through the ePTFE membrane's billions of nanopores and exits to the outside. When rain or a car wash rapidly cools the housing, ambient air is drawn back in through the same membrane, instantly preventing vacuum formation. The membrane's microporous structure physically blocks all liquid water ingress while allowing gas exchange. This continuous passive pressure management prevents the internal fogging and condensation that would degrade optical surfaces, and protects sensitive electronics and connectors from moisture-induced failure.
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Identify the sensor housing material (PC, PA, PBT, etc.) to select a compatible thermoplastic carrier film for optimal weld strength.
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Calculate the internal free air volume and the worst-case temperature swing expected in the sensor's mounting location.
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Determine the required ingress protection level: IP6K9K is often specified for externally mounted sensors subject to high-pressure wash.
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Evaluate the expected contaminant exposure: diesel exhaust, de-icing salts, and road oils require enhanced oleophobic membrane treatment.
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Provide a 3D model of the weld port area for custom vent design and to optimize the weld tooling nest geometry.
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Q: Will the welding process damage the ePTFE membrane?
A: No, the welding energy is directed into the thermoplastic carrier film at the weld zone, away from the breathable membrane area. The membrane is not affected by the welding process. -
Q: Can this vent prevent the internal fogging that affects camera lenses?
A: Yes, by equalizing pressure and preventing the vacuum that draws moist air in, the vent eliminates the primary mechanism that leads to internal condensation and lens fogging. -
Q: Is the vent compatible with the high-frequency vibrations and shocks in a vehicle grille or bumper mount?
A: Yes, the welded bond is rigid and durable. The ePTFE membrane is flexible and unaffected by vibration. The vent will not loosen, rattle, or degrade under vehicle vibration profiles. -
Q: Does the vent affect the thermal management of cooled LiDAR sensors?
A: The vent's primary function is pressure equalization, not thermal management. For actively cooled sensors, the vent is sized to ensure pressure balance without interfering with the cooling system's sealed gas environment. -
Q: Can the vent be applied to a curved housing surface?
A: The vent can be die-cut in shapes that conform to slight curvatures. For highly curved surfaces, a 3D-formed carrier geometry can be developed.
Product Highlights
Weldable Breathable Vent Membrane For ADAS & LiDAR Sensor Housings Product Overview The weldable breathable vent membrane for ADAS and LiDAR sensor housings is a high-reliability pressure equalization solution specifically engineered for the next generation of automotive perception systems. This ...
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