Claims
- 1. An elongate metallic spacer stock member to be folded into an insulated glass unit spacer comprised of a single continuous metal member; the metal member having a continuous bottom surface along substantially the full length of the metal member, opposed parallel sidewalls extending perpendicularly from the bottom surface and extending along substantially the full length of the metal member, the sidewalls having notches therein that extend the full height of the sidewall from an upper edge thereof downwardly to the bottom surface, the sidewall notches being disposed at, and defining, corner regions of the spacer when the spacer stock is folded, the sidewall notches being further defined in pairs whereby each sidewall defines substantially identical sidewall notches, inner wall members in parallel spaced-apart relationship to the bottom surface and extending substantially along the entire length of the metal member, the inner wall members being continuous along at least the corner regions thereby defining bridge members in the corner regions adjacent the sidewall notches whereby both the bottom surface and the spaced-apart inner wall members define continuous points of interconnection throughout the corner region and positioning a desiccant within the interior of the metallic spacer.
- 2. The elongate metallic spacer stock member of claim 1 wherein said desiccant is a hot melt desiccant.
- 3. The elongate metallic spacer stock member of claim 1 including means for locking the desiccant-containing material within the interior of the metallic spacer against any axial movement therein.
- 4. The elongate metallic spacer stock member of claim 3 in which the corner bridge members deflect inwardly into the interior of the stock member upon the folding of the stock member thereby defining said means for locking the desiccant-containing material within the interior of the metallic spacer against any axial movement therein.
- 5. The elongate metallic spacer stock member of claim 2 in which the spacer stock member is roll-formed from a flat piece of sheet material; the stock member including means for inserting the desiccant within the interior of the metallic spacer member as the spacer member is being roll-formed.
- 6. The elongate metallic spacer stock member of claim 5 in which the diameter of the desiccant-containing material is selected whereby the desiccant-containing material is maintained between the inner wall members and the bottom surface as the spacer member is being roll-formed.
- 7. The elongate metallic spacer stock of claim 5 wherein the means for inserting the desiccant includes a flow meter.
- 8. The elongated metallic stock member of claim 7 wherein the means for inserting the desiccant includes a nozzle.
- 9. A method of making a window spacer comprising the steps of roll-forming a flat piece of metallic sheet material to provide a spacer stock member comprising a continuous bottom surface along substantially the full length of the metal member, opposed parallel sidewalls extending perpendicularly from the bottom surface and extending along substantially the full length of the metal member, the sidewalls having notches therein that extend the full height of the sidewall from an upper edge thereof downwardly to the bottom surface, the sidewall notches being disposed at, and defining, corner regions of the spacer when the spacer stock is folded, the sidewall notches being further defined in pairs whereby each sidewall defines substantially identical sidewall notches, inner wall members in parallel spaced-apart relationship to the bottom surface and extending substantially along the entire length of the metal member, the inner wall members being continuous along at least the corner regions thereby defining bridge members in the corner regions adjacent the sidewall notches whereby both the bottom surface and the spaced-apart inner wall members define continuous points of interconnection throughout the corner region.
- 10. The method of claim 9 wherein said notches are triangular in shape.
- 11. The method of claim 9 including the step of positioning a desiccant into said spacer.
- 12. The method of claim 10 wherein the desiccant is positioned in said spacer prior to completing the roll-forming of said spacer.
- 13. The method of claim 12 wherein the desiccant is a hot melt desiccant.
- 14. The method of claim 13 wherein the desiccant is positioned in said spacer by a nozzle.
- 15. The method of claim 14 wherein the amount of desiccant positioned in said spacer is controlled by a flow meter.
- 16. An insulated glass unit comprising a folded metallic spacer stock member and glass sheets secured to said spacer, said metallic spacer stock member comprising a continuous bottom surface along substantially the full length of the metal member, opposed parallel sidewalls extending perpendicularly from the bottom surface and extending along substantially the full length of the metal member, the sidewalls having notches therein that extend the full height of the sidewall from an upper edge thereof downwardly to the bottom surface, the sidewall notches being disposed at, and defining, corner regions of the spacer when the spacer stock is folded, the sidewall notches being further defined in pairs whereby each sidewall defines substantially identical sidewall notches, inner wall members in parallel spaced-apart relationship to the bottom surface and extending substantially along the entire length of the metal member, the inner wall members being continuous along at least the corner regions thereby defining bridge members in the corner regions adjacent the sidewall notches whereby both the bottom surface and the spaced-apart inner wall members define continuous points of interconnection throughout the corner region.
- 17. An insulated glass unit of claim 16 wherein a desiccant is positioned within the interior of the metal spacer.
- 18. A method of making an insulated glass unit comprising the steps of roll-forming a metallic spacer stock member, said spacer comprising a continuous bottom surface along substantially the full length of the metal member, opposed parallel sidewalls extending perpendicularly from the bottom surface and extending along substantially the full length of the metal member, the sidewalls having notches therein that extend the full height of the sidewall from an upper edge thereof downwardly to the bottom surface, the sidewall notches being disposed at, and defining, corner regions of the spacer when the spacer stock is folded, the sidewall notches being further defined in pairs whereby each sidewall defines substantially identical sidewall notches, inner wall members in parallel spaced-apart relationship to the bottom surface and extending substantially along the entire length of the metal member, the inner wall members being continuous along at least the corner regions thereby defining bridge members in the corner regions adjacent the sidewall notches whereby both the bottom surface and the spaced-apart inner wall members define continuous points of interconnection throughout the corner region and securing glass sheets to said spacer.
- 19. The method of making an insulated glass unit of claim 18 comprising the step of positioning a desiccant in said spacer.
RELATED APPLICATION
[0001] This is a continuation-in-part of U.S. Ser. No. 08/604,372 filed Feb. 21, 1996, now U.S. Pat. No. ______.
Divisions (1)
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Number |
Date |
Country |
Parent |
09488544 |
Jan 2000 |
US |
Child |
09851166 |
May 2001 |
US |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
08604372 |
Feb 1996 |
US |
Child |
09488544 |
Jan 2000 |
US |