Claims
- 1. A bypass circuit centrifuge which is constructed and arranged to be assembled within an outer cover assembly for separating particulate matter out of a circulating liquid, said centrifuge comprising:
- a centrifuge bowl constructed and arranged to rotate about an axis;
- a base plate assembled to said centrifuge bowl, said base plate including at least one tangential flow nozzle for creating an exit flow jet, said exit flow jet causing the centrifuge bowl to rotate;
- a hollow centertube designed and constructed to be positioned on a center support shaft and axially extending through said base plate and through said centrifuge bowl;
- flow-control means positioned adjacent a first end of said centertube for directing the flow of liquid;
- a support plate spaced-apart from said flow-control means and positioned adjacent said base plate; and
- a plurality of truncated cones positioned into a stacked array which is sandwiched between said flow-control means and said support plate, said plurality of cones being constructed and arranged so as to define a plurality of liquid flow paths from a first opening to a second opening which is located radially inward from said first opening, said liquid flow paths being in flow communication with said at least one tangential flow nozzle.
- 2. The bypass circuit centrifuge of claim 1 wherein said centrifuge bowl includes an inner surface which defines a plurality of ribs, said flow-control means being positioned adjacent said ribs and arranged therewith to define a plurality of liquid flow channels.
- 3. The bypass circuit centrifuge of claim 1 wherein said flow-control means includes a plurality of raised ribs, said flow-control means raised ribs being positioned adjacent an inner surface of said centrifuge bowl so as to define a plurality of liquid flow channels between said flow-control means and said inner surface.
- 4. The bypass circuit centrifuge of claim 1 wherein said flow-control means includes an annular plate which is positioned at one end of said plurality of truncated cones.
- 5. The bypass circuit centrifuge of claim 4 wherein said flow-control means having an annular body portion and an annular flange portion, said annular body portion defining a hollow interior and having an annular lip adjacent one end of said annular body portion, said annular lip being assembled into sealing relationship with an outer surface of said hollow centertube.
- 6. The bypass circuit centrifuge of claim 1 wherein said flow-control means includes a cone member, said cone member being positioned at one end of said plurality of truncated cones.
- 7. The bypass circuit centrifuge of claim 1 wherein said flow-control means, said support plate, and said plurality of truncated cones are arranged together into a replaceable module which is separable, intact, from within said centrifuge bowl.
- 8. A bypass circuit centrifuge which is constructed and arranged to be assembled within a cover assembly and onto an axial shaft and comprising:
- a centrifuge bowl having a partly closed first end defining a centrally positioned aperture therein and an open second end, said centrifuge bowl being constructed and arranged to rotate about an axis;
- a base plate assembled to said second end of said centrifuge bowl, said base plate including at least one tangential flow nozzle for creating an exit flow jet, said exit flow jet causing the centrifuge bowl to rotate;
- a flow tube extending axially through said base plate and through the aperture in said first end of said centrifuge bowl, said flow tube including a flow passageway;
- a spaced-apart pair of support plates including a first support plate positioned adjacent said aperture and a second support plate which is assembled into said base plate;
- a stacked array of particle separation cones positioned around said flow tube and axially extending between said pair of support plates; and
- alignment means for securing together said stacked array with said pair of support plates.
- 9. The bypass circuit centrifuge of claim 8 wherein said centrifuge bowl includes an inner surface which defines a plurality of ribs, said first support plate being positioned adjacent said ribs and arranged therewith to define a plurality of flow channels.
- 10. The bypass circuit centrifuge of claim 8 wherein each of said plurality of separation cones includes a plurality of stacked, radial ribs which define a cone-to-cone spacing in said stacked array.
- 11. The bypass circuit centrifuge of claim 8 wherein said first support plate having an annular body portion and an annular flange portion, said annular body portion defining a hollow interior and having an annular lip adjacent one end of said annular body portion, said annular lip being assembled into sealing relationship with an outer surface of said flow tube.
- 12. A cone-stack centrifuge for separating particulate matter out of a flowing liquid, said centrifuge being designed and constructed to be assembled onto a center support shaft and being disposed within an outlet cover assembly, said centrifuge comprising:
- a centrifuge bowl;
- a base plate assembled to said centrifuge bowl thereby defining an interior centrifuge space, said base plate including at least one tangential flow nozzle for creating an exit flow jet;
- a hollow centertube designed and constructed to be positioned on said center support shaft and axially extending through said base plate and through said centrifuge howl; and
- a replaceable, self-contained, cone-stack subassembly which includes a liner shell and attached to the liner shell a bottom plate, the liner shell and bottom plate defining an interior cone space, the cone-stack subassembly is mounted onto said hollow centertube within said interior centrifuge space, said cone-stack subassembly further including a plurality of separation cones arranged into a stacked array and positioned in said interior cone space, whereby sludge build-up is discarded with said plurality of separation cones when said cone-stack subassembly is replaced.
- 13. The centrifuge of claim 12 wherein said annular liner shell is a unitary member arranged with a flow-control first end and opposite thereto, an open second end.
- 14. The centrifuge of claim 13 wherein said flow-control first end includes a plurality of equally-spaced flow separation vanes and an alternating plurality of equally-spaced flow inlet apertures which admit said flowing liquid into said interior cone space.
- 15. The centrifuge of claim 14 wherein said bottom plate having an annular outer wall which is attached to said open second end with a sealed interface so as to close said open second end and sealingly enclose said interior cone space.
- 16. The centrifuge of claim 15 wherein each separation cone of said plurality of separation cones has a frustoconical shape with a center opening and outwardly spaced from said center opening a plurality of flow apertures.
- 17. The centrifuge of claim 16 wherein said center opening includes substantially circular edge portions designed to fit closely to said hollow centertube and a plurality of enlarged edge portions which provide flow clearance for flow of liquid between said cones and said centertube.
- 18. The centrifuge of claim 12 wherein each separation cone of said plurality of separation cones has a frustoconical shape with a center opening and outwardly spaced from said center opening a plurality of flow apertures.
- 19. The centrifuge of claim 18 wherein said center opening includes substantially circular edge portions designed to fit closely to said hollow centertube and a plurality of enlarged edge portions which provide flow clearance for flow of liquid between said cones and said centertube.
- 20. The centrifuge of claim 19 wherein said annular liner shell is a unitary member arranged with a flow-control first end and opposite thereto, an open second end.
- 21. A cone-stack centrifuge which is constructed and arranged to be assembled onto a center support shaft, said cone-stack centrifuge comprising:
- a centrifuge bowl;
- a base member assembled to said centrifuge bowl and defining therewith a hollow interior;
- a centertube constructed and arranged to be positioned on said center support shaft and extending through said base member into said hollow interior; and
- a plurality of centrifuge cones each of which defines a centertube clearance aperture, said plurality of centrifuge cones being arranged into an axially-extending stacked array which is positioned in said hollow interior with said centertube extending through the shaft clearance aperture of each centrifuge cone of said plurality of centrifuge cones, each centrifuge cone of said plurality of centrifuge cones including a circumferentially aligned combination of a protruding V-shaped rib and a recessed V-shaped groove, said V-shaped rib and said V-shaped groove providing an alignment feature for the centrifuge cones of said stacked array by positioning the V-shaped rib of one centrifuge cone into the V-shaped groove of an adjacent centrifuge cone.
- 22. The cone-stack centrifuge of claim 21 wherein there is a plurality of V-shaped ribs and a plurality of V-shaped grooves disposed as part of each centrifuge cone, said plurality of V-shaped ribs being substantially equally spaced around each centrifuge cone and said plurality of V-shaped grooves being substantially equally spaced around each centrifuge cone.
- 23. The cone-stack centrifuge of claim 21 wherein each centrifuge cone of said plurality of centrifuge cones includes a substantially conical sidewall portion and a substantially flat top wall portion, said top wall portion having a first surface and opposite thereto a second surface, said V-shaped rib being disposed in one of said first and second surfaces and said V-shaped groove being disposed in the other of said first and second surfaces.
- 24. The cone-stack centrifuge of claim 23 wherein there is a total of six V-shaped ribs and a total of six V-shaped grooves disposed as part of the top wall portion of each centrifuge cone, said six V-shaped ribs being substantially equally spaced around said top wall portion and said six v-shaped grooves being substantially equally spaced around said top wall portion.
- 25. The cone-stack centrifuge of claim 24 wherein each V-shaped rib and V-shaped groove combination of each centrifuge cone extends in a substantially straight radial direction from said shaft clearance aperture outwardly across said top wall portion.
- 26. The cone-stack centrifuge of claim 25 wherein each centrifuge cone further includes six sidewall ribs which are substantially equally spaced apart and which partition said centrifuge cone into six sections, each section having a substantially identical configuration such that cone-to-cone alignment between adjacent centrifuge cones can be achieved by rotating one cone about the hollow centertube a distance less than 60 degrees.
- 27. The cone-stack centrifuge of claim 26 wherein each centrifuge cone is a unitary, molded member.
- 28. The cone-stack centrifuge of claim 24 wherein each centrifuge cone further includes six sidewall ribs which are substantially equally spaced apart and which partition said centrifuge cone into six sections, each section having a substantially identical configuration such that cone-to-cone circumferential alignment between adjacent centrifuge cones can be achieved by rotating one cone about the centertube a distance less than 60 degrees.
- 29. The cone-stack centrifuge of claim 28 wherein each centrifuge cone is a unitary, molded member.
- 30. The cone-stack centrifuge of claim 21 wherein each centrifuge cone is a unitary, molded member.
Parent Case Info
The present application is a Continuation-in-Part application of U.S. Ser. No. 08/378,197, filed Jan. 25, 1995, entitled "Self-Driven, Cone-Stack Type Centrifuge" now U.S. Pat. No. 5,575,912.
US Referenced Citations (34)
Foreign Referenced Citations (1)
Number |
Date |
Country |
444256 |
Jan 1949 |
ITX |
Non-Patent Literature Citations (3)
Entry |
Theodore De Ioggio and Alan Letki, "New Directions in Centrifuging", Chemical Engineering, pp. 70-76 Jan. 1994. |
Spinner II, product brochure, T. G. Hudgins, Incorporated 1985. |
"Theory of Separation", Alfa Laval Separation AB, pp. 1-8. |
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
378197 |
Jan 1995 |
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