Claims
- 1. An inside-to-outside flow filter tube of improved burst strength, which filter tube comprises:
- (a) a plurality of randomly disposed, nonwoven glass fibers having a diameter of from about 0.001 to 10 microns, and having interstices therebetween, the fibers bonded together into a self-supporting filter tube by a bonding agent at the junction of the fiber crossover points to form a filter tube wall, and
- (b) an open scrim sheet material embedded within said filter tube wall, with no scrim material extending to the external filter tube wall, the scrim material extending generally the length of the filter tube and at least about one and one-half revolutions about the tube diameter, the scrim material formed into a generally noncontacting helical scroll with a layer of glass fibers of selected depth separating each convoluted layer of scrim material, the glass fibers bonded cooperatively with and through the scrim material by the bonding agent, to form a continuous, integrally bonded filter tube wall means of the glass fibers, said filter tube having an average burst strength of greater than about 52 P.S.I.
- 2. The filter tube of claim 1 wherein the glass fibers are borosilicate glass fibers.
- 3. The filter tube of claim 1 wherein the diameter of the glass fibers ranges from about 0.03 to 8 microns.
- 4. The filter tube of claim 1 wherein the ends of the filter tube, on axial compression, form a self-sealing gasket against a surface at each end.
- 5. The filter tube of claim 1 wherein the bonding agent is a hardened resin material.
- 6. The filter tube of claim 5 wherein the bonding agent is a thermosetting phenol-formaldehyde resin, an epoxy resin or a silicone resin.
- 7. The filter tube of claim 5 wherein the bonding agent is silica or quaternary ammonium silicate.
- 8. The filter tube of claim 1 wherein the filter tube wall thickness ranges from about 0.1 to 0.2 inches and the tube has a fiber density of about 0.15 to 0.25 grams/cc.
- 9. The filter tube of claim 1 wherein the scrim material extends up to about five revolutions about the tube diameter.
- 10. The filter tube of claim 9 wherein the scrim material extends from about three to five revolutions about the tube diameter.
- 11. The filter tube of claim 1 wherein the scrim material extends generally uniformly throughout the filter tube wall thickness.
- 12. The filter tube of claim 1 wherein the scrim material extends concentrically about and is integrally bonded to the internal wall surface of the filter tube.
- 13. The filter tube of claim 1 wherein the scrim material has regular and generally uniform openings of from about 1/4 to 1 inch in size.
- 14. The filter tube of claim 1 wherein the scrim material comprises a glass-fiber scrim material.
- 15. The filter tube of claim 1 which includes a peripheral layer adjacent the internal wall surface of the filter tube of a pretreatment material for the fluid to be filtered by the filter tube.
- 16. The filter tube of claim 15 wherein the pretreatment material comprises a layer of glass fibers.
- 17. The filter tube of claim 15 which includes an internal, perforated, tubular material centrally positioned within the filter tube, the pretreatment material retained between the internal surface of the filter tube and the external surface of the mandrel.
- 18. The filter tube of claim 17 which includes a helically would mat of coarse glass fibers wound about the mandrel as the pretreatment prefilter material, the helical mat and mandrel snugly fitted within the interior of the filter tube.
- 19. The filter tube of claim 18 which includes cap means at each end of the filter tube between the internal surface of the filter tube and the external surface of the mandrel to seal and retain the pretreatment material.
- 20. The filter tube of claim 1 wherein the filter tube includes an outer peripheral sleeve, about the external wall surface of the filter tube, of porous material as a coalescing filter.
- 21. An inside-to-outside flow filter tube of improved burst strength, which filter tube comprises:
- (a) a plurality of randomly disposed, nonwoven glass fibers having a diameter of from about 0.01 to 8 microns, and having interstices therebetween, the fibers bonded together into a self-supporting filter tube by a hardened resin bonding agent at the junction of the fiber crossover points to form a filter tube wall; and
- (b) an open scrim sheet material of glass fibers having openings of about 1/4 to 1 inch and embedded within said filter tube wall, with no scrim material extending to the external filter tube wall, the scrim material extending generally the length of the filter tube and from about one and one-half to five revolutions about the tube diameter, the scrim material formed into a generally noncontaining helical scroll, with a layer of glass fibers of selected depth separating each convoluted layer of scrim material, the glass fibers bonded cooperatively with and through the scrim material by the bonding agent, to form a continuous, integrally bonded filter tube wall of the glass fibers, said filter tube having an average burst strength of greater than about 52 P.S.I.
- 22. A method of filtering a fluid stream, which method comprises:
- (a) introducing the fluid stream to be filtered into the interior of an inside-to-outside flow filter tube, which filter tube comprises:
- (i) a plurality of randomly disposed, nonwoven glass fibers having a diameter of from about 0.001 to 10 microns, and having interstices therebetween, the fibers bonded together into a self-supporting filter tube by a bonding agent at the junction of the fiber crossover points to form a filter tube wall, and
- (ii) an open scrim sheet material embedded within said filter tube wall, with no scrim material extending to the external filter tube wall, the scrim material extending generally the length of the filter tube and at least about one and one-half revolutions about the tube diameter, the scrim material formed into a generally noncontacting helical scroll, with a layer of glass fibers of selected depth separating each convoluted layer of scrim material, the glass fibers bonded cooperatively with and through the scrim material by the bonding agent, to form a continuous, integrally bonded, filter tube wall means of the glass fibers; and
- (b) filtering the fluid stream by passage through the porous filter tube wall of the filter tube, said filter tube having an average burst strength of greater than 52 P.S.I.
- 23. The method of claim 22 wherein the fluid stream is a compressed air stream containing oil vapor to be removed by the filter.
- 24. The method of claim 22 wherein the fluid stream is an exhaust gas stream of an engine.
- 25. The method of claim 22 wherein the fluid stream is a liquid stream containing an immiscible, dispersed, liquid phase therein to be removed by the filter.
- 26. The method of claim 22 which includes:
- (a) flowing the fluid to be filtered through a layer of coarse glass fibers forming a layer on the inside of the filter tube; and
- (b) after passing through the filter tube wall through a layer of porous coalescing material, surrounding the external surface of the filter tube.
- 27. The method of claim 22 wherein the filter tube includes prefilter material dispersed in the interior of the filter tube, and which method includes passing the fluid stream from the inside to the outside through the prefilter material prior to filtration by the filter tube wall.
- 28. A method of filtering a fluid stream, which method comprises:
- (a) introducing the fluid stream to be filtered into the interior of an inside-to-outside flow filter tube, which filter tube comprises:
- (i) a plurality of randomly disposed, nonwoven glass fibers having a diameter of from about 0.01 to 8 microns, and having interstices therebetween, the fibers bonded together into a self-supporting filter tube by a hardened resin-bonding agent at the junction of the fiber crossover points to form a filter tube wall, and
- (ii) an open scrim sheet material of glass fibers having openings of about 1/4 to 1 inch and embedded within said filter tube wall, with no scrim material extending to the external filter tube wall, the scrim material extending generally the length of the filter tube and from about one and one-half to five revolutions about the tube diameter, the scrim material formed into a generally noncontacting helical scroll, with a layer of glass fibers of selected depth separating each convoluted layer of scrim material, the glass fibers bonded cooperatively with and through the scrim material by the bonding agent, to form a continuous, integrally bonded, filter tube wall of the glass fibers; and
- (b) filtering the fluid stream by passage through the porous filter tube wall of the filter tube, said filter tube having an average burst strength of greater than 52 P.S.I.
Parent Case Info
This is a continuation of application Ser. No. 679,569, filed Apr. 23, 1976 (now abandoned).
US Referenced Citations (4)
Continuations (1)
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Number |
Date |
Country |
Parent |
679569 |
Apr 1976 |
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