Claims
- 1. A cartridge filter, which filter comprises in combination:
- a. a rigid, cylindrical, porous support core characterized by an axial flow passage therethrough, and further characterized by a plurality of flow passages on the cylindrical wall of the core, which flow passages provide communication between the axial flow passage and the outer wall of the support core;
- b. a semirigid, cylindrical, unitary, porous, filter tube, the tube composed of a plurality of overlapping nonwoven fibers having an average diameter of from about 0.001 to 10.0 microns, the fibers having interstices .[.thprebetween.]. .Iadd.therebetween .Iaddend.to define the porosity of the tube, the fibers containing at the junctions of the fiber crossovers a hardened material to provide a semirigid, self-supporting structure throughout the body of the filter tube, the filter tube disposed in a close-fitting relationship surrounding the support core, the fibers at the peripheral edge of each end of the filter tube adapted to be compressed together into a sealing relationship upon the application of an axial force; and
- c. end elements positioned at each end of the support core, the elements having outwardly extending flanges thereon extending outwardly from the .Iadd.external .Iaddend.surface of the core at least the thickness of the filter tube, the flanges each having a facing surface which .[.abutts.]. .Iadd.abuts .Iaddend.each edge of the ends of the filter tube, at least one of which end elements is adjusted in relationship with the support core for axial movement in relationship to the support core, and at least one of each end elements is adapted to be removed from the support core to permit the removal and replacement of a filter tube on the support tube, the fibers across the entire edge width of the filter tube and adjacent each facing surface compressed about the periphery by axial force due to the axial movement and position of the end elements, the fibers compressed together by being forced against the facing surface of each flange in the immediate peripheral region adjacent to the facing surface of each flange to provide a peripheral fluid-tight seal between the facing surfaces, and the body of the filter tube.
- 2. The cartridge filter of claim 1 wherein the semirigid filter tube is composed of a plurality of nonwoven resin reinforced glass fibers.
- 3. The cartridge filter of claim 1 wherein at least one facing surface of the flange is characterized by a smooth, flat, facing surface thereon adjacent and contacting the compressed edges of at least one end of the filter tube.
- 4. The cartridge filter of claim 1 wherein the facing surfaces are free of a gasket material, the fluid-tight seal between the facing surfaces and the edge of the filter tube being the sole seal.
- 5. The cartridge filter of claim 1 wherein the adjustable end element is threadably adjustable to the end of the support core.
- 6. The cartridge filter of claim 1 wherein each end element is threadably adjustable for axial movement to the respective ends of the support core, each end element also adapted to be threadably removable from the support core to permit the removal of the filter tube.
- 7. The cartridge filter of claim 1 wherein the hardened resin material comprises from about 3 to 45 percent by weight of the filter tube.
- 8. The cartridge filter of claim 1 wherein the fibers have an average diameter of from 0.1 to 5.0 microns.
- 9. The .[.cartrige.]. .Iadd.cartridge .Iaddend.filter of claim 1 wherein:
- a. the filter tube comprises glass fiber and from 3 to 45 percent by weight of a resin-hardened material;
- b. each of the end elements is threadably adjusted for axial movement to the support core and removable therefrom; and
- c. each of the facing surfaces of the flanges are flat and smooth, free of a gasket material between the edge of the filter tube and the facing surfaces, whereby the fluid-tight seal occurs solely by compression together at each end of the fibers of the filter tube.
- 10. A method of sealing a filter tube in a filter tube cartridge, the cartridge comprising:
- a. a support core characterized by an axial flow passage therethrough, and further characterized by a plurality of flow passages on the cylindrical wall of the core, which flow passages provide communication between the axial flow passage and the outer wall of the support core;
- b. a filter tube adapted to be placed onto the support core in a close-fitting relationship surrounding the .[.suppore.]. .Iadd.support .Iaddend.core; and
- c. end elements positioned at each end of the support core, the end elements having outwardly extending flanges thereon extending outwardly from the surface of the core at least the thickness of the filter tube, which method comprises:
- i. placing over the support core a semirigid, cylindrical, unitary, porous, filter tube composed of a plurality of overlapping nonwoven filters having interstices therebetween to define the porosity of the tube, the fibers containing at the junction of the fiber crossovers a hardened material to provide a semirigid, self-supporting structure throughout the body of the filter tube, the fibers having an average diameter of about 0.001 to 10.0 microns, the fibers at the region about the peripheral edge of each end of the tube adapted to be compressed together on the application of an axial force; and
- ii. applying an axial force against the fibers at the peripheral edges at each end of the filter tube by the axial movement of at least one of the end elements, so as to press the facing surfaces of the flanges against the edges of the filter tube and compress the fibers together at such edges and across the entire edge width of the fiber tube and adjacent the immediate region of the facing surfaces to provide a peripheral fluid-tight seal between the facing surfaces and the body of the filter tube.
- 11. The method of claim 10 wherein the filter tube comprises glass fibers having an average diameter of from about 0.1 to 5.0 microns.
- 12. The method of claim 10 wherein the .[.resin.]. .Iadd.hardened .Iaddend.material comprises from about 3 to 45 percent by weight of the filter tube.
- 13. The method of claim 10 wherein at least one of the end elements is threadably adjustable on the support core to provide the desired axial movement, the end elements adapted to be removed from the support core for the insertion of the filter tube.
- 14. The method of claim 10 wherein each of the end elements is threadably adjustable on the support core, and an axial compressive force is applied to each end of the filter tube by inward turning of each end element.
- 15. The method of claim 10 wherein the facing surface of each flange is smooth and flat and free of a gasket material, the fluid-tight seal being solely effected by the axially compressed fibers of the filter tube. .Iadd. 16. A cartridge filter, which filter comprises in combination:
- a. a semirigid, cylindrical, porous filter tube, the tube composed of a plurality of overlapping nonwoven fibers having an average diameter of from about 0.001 to 10.0 microns, the fibers having interstices therebetween to define the porosity of the tube, the fibers containing at the junctions of the fiber crossovers a hardened material to provide a semirigid, self-supporting structure throughout the body of the filter tube, the fibers at the peripheral edge of each end of the filter tube adapted to be compressed together into a sealing relationship upon the application of an axial force;
- b. elements positioned at each end of the filter tube, the elements having flanges extending outwardly at least the thickness of the filter tube, at least one of said elements characterized by an aperture therein to permit a fluid to be introduced into or withdrawn from the interior of the filter tube, the flanges each having a facing surface which abuts each edge of the ends of the filter tube, at least one of which end elements is adjustable for axial movement in relationship to the filter tube, and at least one of each end elements is adapted to be removed to permit the removal and replacement of the filter tube, the fibers across the entire edge width of the filter tube and adjacent each facing surface compressible about the periphery by axial force due to the axial movement and position of the end elements, the fibers compressible together by being forced against the facing surface of each flange in the immediate peripheral region adjacent to the facing surface of each flange to provide a peripheral fluid-tight seal between the facing surfaces and the body of the filter tube; and
- c. means to move axially at least one of the end elements in relationship to at least one end of the filter tube, whereby an axial force may be applied to compress the fibers together into a fluid-tight seal to the end element. .Iaddend. .Iadd. 17. The cartridge filter of claim 16 wherein the semirigid filter tube is composed of a plurality of nonwoven resin-reinforced glass fibers. .Iaddend. .Iadd. 18. The cartridge filter of claim 16 wherein at least one facing surface of the flange is characterized by a smooth, flat, facing surface thereon adjacent and contacting the compressed edges of at least one end of the filter tube. .Iaddend. .Iadd. 19. The cartridge filter of claim 16 wherein the facing surfaces are free of a gasket material, the fluid-tight seal between the facing surfaces and the edge of the filter tube being the sole seal. .Iaddend. .Iadd. 20. The cartridge filter of claim 16 wherein the adjustable end element is threadably adjustable. .Iaddend. .Iadd. 21. The cartridge filter of claim 16 wherein each end element is threadably adjustable for axial movement, each end element also adapted to be removable to permit the removal of the filter tube. .Iaddend..Iadd.22. The cartridge filter of claim 16 wherein the hardened material comprises from about 3 to 45 percent by weight of the filter tube. .Iaddend. .Iadd. 23. The cartridge filter of claim 16 wherein the fibers have an average diameter of from 0.1 to 5.0 microns. .Iaddend. .Iadd. 24. The cartridge filter of claim 16 wherein:
- a. the filter tube comprises glass fibers having an average diameter of from about 0.1 to 5.0 microns, and contains from 3 to 45 percent by weight of a resin-hardened material; and
- b. each of the facing surfaces of the flanges are flat and smooth, free of a gasket material between the edge of the filter tube and the facing surfaces, whereby the fluid-tight seal occurs solely by compression together at each end of the fibers of the filter tube. .Iaddend. .Iadd. 25. The cartridge filter of claim 16 wherein the filter tube is composed of a plurality of nonwoven randomly disposed glass fibers, the glass fibers having diameters ranging from about 0.03 to 8.0 microns. .Iaddend. .Iadd. 26. The cartridge filter of claim 16 wherein at least one of the end elements is characterized by a circular, central aperture therein to permit the introduction into or withdrawal from a fluid from the interior of the filter tube. .Iaddend. .Iadd. 27. The cartridge filter of claim 16 wherein one of the end elements is characterized by a central aperture therein, the external face of each of the end elements about the aperture adapted to be placed in a sealing relationship within an external filter housing. .Iaddend. .Iadd. 28. A filter assembly which comprises:
- a. an external filter housing;
- b. the cartridge filter of claim 16 disposed within the housing to form a filter assembly;
- c. means to introduce a fluid to be filtered or to withdraw a filtered fluid from the external housing exterior of the filter cartridge;
- d. means to introduce a fluid to be filtered or to withdraw a filtered fluid from the interior of the filter cartridge; and
- e. means to place the aperture of at least one element in a fluid-tight manner within the external housing. .Iaddend. .Iadd. 29. A method of sealing a filter tube in a filter tube cartridge, the cartridge comprising:
- a. a filter tube;
- b. end elements positioned at each end of the filter tube, the end elements having flanges with facing surfaces extending outwardly from the surface of the core at least the thickness of the filter tube, which method comprises,
- i. providing a semirigid, cylindrical unitary, porous filter tube composed of a plurality of overlapping nonwoven fibers having interstices therebetween to define the porosity of the tube, the fibers containing at the junction of the fiber crossovers a hardened material to provide a semirigid, self-supporting structure throughout the body of the filter tube, the fibers having an average diameter of about 0.001 to 10.0 microns, the fibers at the region about the peripheral edge of each end of the tube adapted to be compressed together on the application of an axial force, and
- ii. applying an axial force against the fibers at the peripheral edges at each end of the filter tube by the axial movement of at least one of the end elements, so as to press the facing surfaces of the flanges against the edges of the filter tube and compress the fibers together at such edges and across the entire edge width of the fiber tube and adjacent the immediate region of the facing surfaces to provide a peripheral fluid-tight seal between the facing surfaces and the body of the filter tube; and
- c. means to move axially at least one of the end elements in relationship to at least one end of the filter tube, whereby an axial force may be applied to compress the fibers together into a fluid-tight seal to the end element. .Iaddend. .Iadd. 30. The method of claim 29 wherein the filter tube comprises glass fibers having an average diameter of from about 0.1 to 5.0 microns. .Iaddend. .Iadd. 31. The method of claim 29 wherein the hardened material comprises from about 3 to 45 percent by weight of the filter tube. .Iaddend. .Iadd. 32. The method of claim 29 wherein at least one of the end elements is threadably adjustable in threadable relationship to the means to move to provide the desired axial movement, the end elements adapted to be removed for the insertion of the filter tube. .Iaddend. .Iadd. 33. The method of claim 29 wherein the facing surface of each flange is smooth and flat and free of a gasket material, the fluid-tight seal being solely effected by the axially compressed fibers of the filter tube..Iaddend.
Priority Claims (1)
Number |
Date |
Country |
Kind |
30646/69 |
Jun 1969 |
UK |
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Parent Case Info
This is a division of application Ser. No. 46,343, filed June 15, 1970 (now U.S. Pat. No. 3,698,562, issued Oct. 17, 1972).
US Referenced Citations (4)
Number |
Name |
Date |
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3064820 |
Gillick, Jr. et al. |
Nov 1962 |
|
3327864 |
Ball et al. |
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3397794 |
Toth et al. |
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3543940 |
Schmidt, Jr. |
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Divisions (1)
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Number |
Date |
Country |
Parent |
46343 |
Jun 1970 |
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Reissues (1)
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Number |
Date |
Country |
Parent |
213833 |
Dec 1971 |
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