Claims
- 1. A vent panel adapted to shield against electromagnetic interference (EMI) comprising:
a dielectric panel having a thickness defined by a first side and a second side, and defining a plurality of apertures; and a first electrically conductive layer applied to the dielectric panel, wherein the conductively coated dielectric panel attenuates a transfer of electromagnetic energy from the first side to the second side of the substrate.
- 2. The vent panel of claim 1, wherein the dielectric panel is a polymer.
- 3. The vent panel of claim 1, wherein the dielectric panel is selected from the group consisting of polycarbonate, polypropylene, acrylonitrile-butadiene-styrene (ABS), polyethylene, polyvinyl chloride (PVC), carbon, fiberglass, paper and combinations thereof.
- 4. The vent panel of claim 1, wherein the dielectric panel comprises a plurality of tubes bonded together.
- 5. The vent panel of claim 1, wherein the dielectric panel comprises a plurality of tubes co-extruded together.
- 6. The vent panel of claim 1, wherein the dielectric panel is produced using an injection molding process.
- 7. The vent panel of claim 1, wherein the dielectric panel comprises a plurality of corrugated dielectric sheets bonded together, wherein the bonded corrugated dielectric sheets define the plurality of apertures.
- 8. The vent panel of claim 1, wherein the electrically conductive layer is selected from the group consisting of copper, nickel, tin, aluminum, silver, gold, graphite, lead, palladium, cadmium, zinc and combinations thereof.
- 9. The vent panel of claim 1, further comprising a second electrically conductive layer in electrical communication with the first electrically conductive layer.
- 10. The vent panel of claim 1, wherein the plurality of apertures are configured as a two-dimensional array of like apertures.
- 11. The vent panel of claim 10, wherein a cross-sectional shape of each of the like apertures is selected from the group consisting of circular, elliptical, hexagonal, square, rectangular, triangular, rhomboidal, and combinations thereof.
- 12. The vent panel of claim 1, wherein a cross-sectional diameter of each of the like apertures is selected to be between about 0.06 inches and 1 inch.
- 13. The vent panel of claim 1, wherein the dielectric panel is selected to have a density of between about 2 lb/ft3 and about 20 lb/ft3.
- 14. The vent panel of claim 1, wherein the vent panel provides at least about 20 dB of attenuation to EMI at 109 Hz.
- 15. The vent panel of claim 1, further comprising a conductive edge extending substantially about the perimeter of the vent panel, for placing the vent panel into electrical communication with the chassis.
- 16. The vent panel of claim 15, wherein the conductive edge comprises a compressible material.
- 17. The vent panel of claim 16, wherein the compressible material is selected from the group comprising conductive elastomer, conductive fabrics, conductive fabric wrapped elastomers, and combinations thereof.
- 18. The vent panel of claim 15, wherein the conductive edge is adapted for mechanically securing the vent panel within an aperture defined by an electrically conducting chassis.
- 19. The vent panel of claim 15, wherein the conductive edge comprises a plurality of partial apertures.
- 20. The vent panel of claim 15, wherein the conductive edge is fastened to the vent panel.
- 21. The vent panel of claim 20, wherein the conductive edge is fastened to the vent panel using an adhesive.
- 22. The vent panel of claim 15, wherein the conductive edge comprises an electrically conducting strip in electrical communication with a perimeter of the vent panel, the conductive strip comprising a plurality of conductive protrusions extending outward from the perimeter.
- 23. The cooling vent panel of claim 22, wherein each of the plurality of conductive protrusions are selected form the group consisting of resilient spring fingers, dimples, and combinations thereof.
- 24. A method for manufacturing a vent panel adapted to shield against electromagnetic interference (EMI) comprising:
providing a dielectric panel having a thickness defined by a first side and a second side, and defining a plurality of apertures, each aperture extending from the first side to the second side; and applying a first electrically conductive layer to the dielectric panel, wherein the conductively coated dielectric panel attenuates the transfer of electromagnetic energy from the first side to the second side of the substrate.
- 25. The method of claim 24, wherein applying comprises at least one of electroless plating, radio-frequency sputtering, direct-current sputtering, evaporation, electrolytic plating chemical vapor deposition or physical deposition.
- 26. The method of claim 24, further comprising applying a second electrically conductive layer.
- 27. The method of claim 26, wherein applying the second electrically conductive layer comprises at least one of electroless plating, radio-frequency sputtering, direct-current sputtering, or physical deposition.
- 28. The method of claim 24, wherein providing a dielectric panel comprises providing a plurality of tubes bonded together.
- 29. The method of claim 24, wherein providing a dielectric panel comprises providing a plurality of tubes co-extruded together.
- 30. The method of claim 24, wherein providing a dielectric panel comprises injection molding.
- 31. The method of claim 24, wherein providing a dielectric panel comprises:
providing a plurality of corrugated dielectric sheets; and bonding the corrugated dielectric sheets together, wherein the bonded corrugated dielectric sheets define the plurality of apertures.
- 32. A method of using a dielectric vent panel adapted to shield against electromagnetic interference (EMI) comprising:
inserting into an aperture defined by a chassis a metallized dielectric vent panel defining a perimeter having a conductive edge extending substantially about the entire perimeter, the conductive edge being adapted for mechanically securing the vent panel to the aperture, and for placing the vent panel into electrical communication with the chassis; and securing to the chassis the conductive edge.
- 33. The method of claim 32, wherein inserting into an aperture comprises sliding the dielectric cooling vent panel into a predefined channel adapted for accepting the vent panel.
- 34. The method of claim 32, wherein securing to the chassis comprises compressing the conductive edge of the dielectric vent panel.
- 35. A vent panel apparatus adapted to shield against electromagnetic interference (EMI) comprising:
means for providing a dielectric panel having a thickness defined by a first side and a second side, and defining a plurality of apertures, each aperture extending from the first side to the second side; and means for applying a first electrically conductive layer to the dielectric panel, wherein the conductively coated dielectric panel attenuates the transfer of electromagnetic energy from the first side to the second side of the substrate.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims the benefits of U.S. Provisional Application Serial No. 60/336,609, filed on Dec. 4, 2001, and U.S. Provisional Application Serial No. 60/378,886, filed on May 8, 2002, the disclosures of which are incorporated herein by reference in their entireties.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60336609 |
Dec 2001 |
US |
|
60378886 |
May 2002 |
US |