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Extended Water Entry Pressure Test Guideline

Extended Water Entry Pressure Test Guideline

Technical Information, 821.41 KB

The guidelines are based on Gore’s best practices in eWEP (extended Water Entry Pressure) testing for GORE® Portable Electronic Vents. Please follow the guidelines to conduct the eWEP testing to minimize water leakage failures caused by test issues.

Various Protective Vents products

To ensure that our products deliver the performance and reliability that you expect, we conduct various tests and use key performance indicators during vent production.

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This application note provides data demonstrating high productivity, extended cycling durability performance of membrane-based GORE Protein Capture Devices with Protein A across two rapid Clean-in-Place methods bracketing caustic contact time and concentration. These data were then combined with results from a manufacturing-scale demonstration to extrapolate protein capture capabilities at a 2000 L batch bioreactor size across CIP methods.

It Pays to Compare: Extended Lifetime, Increased Profitability

GORE® Protective Vents vs. Common Venting Solutions

As the name says, Gore Protective Vents enable pressure equalization through venting with the key feature of ingress protection. Other venting technologies have limits to protecting against the ingress of dust and moisture.

 Gasket Dimensions (Flat Ring) ASME B16.21-2016

Dichtungsmaße geeignet für Flansche nach ASME B16.5  und Stahlflansche mit großen Durchmessern nach ASME B16.47 Series A.

Gasket Dimensions EN 1514-1

Dichtungsmaße gemäß EN 1514.1 : 1997

Installationsanleitungen, Technische Informationen

Dichtungsmaße geeignet für Flansche gemäß EN 1092-1 u. a.

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GORE® GR Dichtungsplatte: Dichtung mit Schraubenlöchern auf Stahlflansch ohne Dichtleiste. Um eine zuverlässige Abdichtung zu gewährleisten, muss beim Einbau die richtige Flächenpressung aufgebracht werden. Diese Tabelle enthält Drehmomentrichtwerte, die bei der Montage von Rohrleitungsflanschen verwendet werden sollten.

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GORE® Thermal Insulation has unique properties of low thickness (< 300 μm) with conductivity less than air (< 0.02 W/(m•K) ) and therefore presents challenges in characterization. A test methodology incorporating a modified heat flow method, ex-situ thickness method, and two thickness conductivity calculation is used to provide reliable and accurate thermal conductivity data. Conductivity results show the distribution of data falls below the conductivity specification of 0.02 W/(m•K).

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Reduce Condensation

Technical Information

As LED lighting proliferates in automotive applications, so does condensation. That’s because LED lamps’ heat source is at the rear of the assembly, making the lens area the cold spot where condensation forms most easily. Often with unpleasant results: foggy, cloudy or streaky lenses, and lamps that don’t shine as brightly as when they left the showroom. Condensation could also compromise integrated sensors or other electronic devices.