Claims
- 1. A battery separator comprising at least one fibrous layer and at least one support layer, wherein said support layer is formed of an acid-resistant material and comprises a plurality of macroscopic openings.
- 2. A battery separator according to claim 1, wherein the fibrous layer has an average pore size of 3 to 15 μm.
- 3. A battery separator according to claim 1, wherein the fibrous layers essentially consist of glass fibers.
- 4. A battery separator according to claim 3, wherein the fibrous layers comprise 20 to 40% by weight of glass microfibers having an average diameter of less than 1 μm and 60 to 80% by weight of coarse glass fibers having an average diameter of about 3 μm.
- 5. A battery separator according to claim 1, wherein the fibrous layers essentially consist of polymeric fibers.
- 6. A battery separator according to claim 5, wherein the fibrous layers comprise polymeric fibers having a diameter of 0.1 to 10 μm.
- 7. A battery separator according to claim 6, wherein at least 10% by weight of the polymeric fibers of the fibrous layers have diameters of less than 1 μm and at least 60% by weight of the polymeric fibers have diameters of less than 5 μm.
- 8. A battery separator according to claim 7, wherein at least 15% by weight of the polymeric fibers have diameters of less than 1 μm.
- 9. A battery separator according to claim 8, wherein the fibrous layers comprise 20 to 40% by weight of polymeric microfibers having an average diameter of less than 1 μm.
- 10. A battery separator according to claim 6, wherein the polymeric fibers have diameters ranging from 0.1 to 5 μm.
- 11. A battery separator according to claim 5, wherein the polymeric fibers are polyolefin fibers.
- 12. A battery separator according to claim 11, wherein the polyolefin is polyethylene and/or polypropylene.
- 13. A battery separator according to claim 1, wherein the fibrous layers comprise a mixture of glass fibers and polymeric fibers.
- 14. A battery separator according to claim 13, wherein the fibrous layers comprise glass fibers having a diameter of 0.1 to 10 μm.
- 15. A battery separator according to claim 14, wherein the glass fibers have diameters ranging from 0.1 to 5 μm.
- 16. A battery separator according to claim 13, wherein the fibrous layers comprise polymeric fibers having a diameter of 0.1 to 10 μm.
- 17. A battery separator according to claim 16, wherein the polymeric fibers have diameters ranging from 0.1 to 5 μm.
- 18. A battery separator according to claim 13, wherein the polymeric fibers are polyolefin fibers.
- 19. A battery separator according to claim 18, wherein the polyolefin is polyethylene and/or polypropylene.
- 20. A battery separator according to claim 1, wherein the fibrous layer has a thickness of 0.2 mm to 3.6 mm.
- 21. A battery separator according to claim 1, wherein the openings of the support layer cover more than 60% of the surface of the support layer.
- 22. A battery separator according to claim 21, wherein the openings of the support layer cover more than 70% of the surface of the support layer.
- 23. A battery separator according to claim 22, wherein the openings of the support layer cover more than 80% of the surface of the support layer.
- 24. A battery separator according to claim 23, wherein the openings of the support layer cover more than 90% of the surface of the support layer.
- 25. A battery separator according to claim 1, wherein the openings are spaced apart 0.01 to 5 mm.
- 26. A battery separator according to claim 1, wherein the support layer basically consists of a filled or unfilled polymer.
- 27. A battery separator according to claim 26, wherein the polymer is a thermoplastic polymer.
- 28. A battery separator according to claim 26, wherein the polymer is a polyolefin.
- 29. A battery separator according to claim 28, wherein the polyolefin has a molecular weight of at least 600,000, a standard load melt index of substantially 0, and a viscosity number of not less than 600 ml/g.
- 30. A battery separator according to claim 28, wherein the polyolefin is polyethylene.
- 31. A battery separator according to claim 26, wherein the support layer is a microporous polymer layer with an average pore size of less than 1 μm.
- 32. A battery separator according to claim 31, wherein more than 50% of the micropores of the microporous polymer layer are 0.5 μm or less in diameter.
- 33. A battery separator according to claim 1, wherein at least two opposing edge regions of the support layer are not covered by the fibrous layer to provide edges for sealing.
- 34. A battery separator according to claim 1, wherein the openings of the support layer have a greatest possible diameter of more than 1 mm.
- 35. A battery separator according to claim 1, wherein the openings of the support layer have the form of slots or long holes.
- 36. A battery separator according to claim 1, wherein the support layer basically consists of a glass fiber fabric.
- 37. A battery separator according to claim 1, wherein the support layer basically consists of a polymer fiber fabric.
- 38. A battery separator according to claim 1, wherein the support layer basically consists of a polymer fiber fleece layer.
- 39. A battery separator according to claim 1, wherein the support layer basically consists of a fleece layer containing polymer fibers and glass fibers.
- 40. A battery separator according to claim 1, wherein the support layer has a thickness of 0.01 to 1 mm.
- 41. A battery separator according to claim 1, wherein the separator has the form of a pocket with an open top, a closed bottom and closed sides.
- 42. A valve-regulated lead-acid battery comprising at least two oppositely charged electrodes in a closed case, a body of an electrolyte and a separator between adjacent ones of said electrodes, wherein said separator is a separator according to claim 1.
Parent Case Info
[0001] This Application is a Continuation-In-Part of U.S. patent application Ser. No. 09/957,602 filed on Sep. 20, 2001.
Continuation in Parts (1)
|
Number |
Date |
Country |
| Parent |
09957602 |
Sep 2001 |
US |
| Child |
10075167 |
Feb 2002 |
US |