Claims
- 1. A process for separating particles of selected relative density from an aggregated mass of particles of selected size having different densities, comprising the steps of:
- disposing the aggregated mass of particles upon a supporting surface to form a particle bed;
- agitating the supporting surface with a gyratory motion having a circularly eccentric motion component and an oscillatory vertical component sufficient to fluidize said bed and thereby substantially reduce the resistance of the particle bed to translational movement of particles therewithin;
- contacting the particles in said bed with vertical reaction surfaces movable with the supporting surface and defining at least two annular regions within the bed, one of said regions forming a zone for the retention of particles of relatively greater density said supporting and reaction surfaces providing areas of contact with said bed sufficient to impart to the particles forces causing them to move in paths having a net radial direction component;
- providing a restricted area of communication through at least one vertical reaction surface between adjacent annular regions so as to permit particles in said fluidized bed to move across at least a portion of the boundary between said annular regions, whereby particles of greater relative density move through said restricted area of communication into one of said annular regions for collection, particles of less relative density being displaceable from said collection region into an adjacent annular region.
- 2. The particle separation process of claim 1, further comprising the step of:
- extracting from the fluidized bed at least a portion of the less dense particles at a given location within said adjacent region.
- 3. The particle separation process of claim 1, further comprising:
- adding particles to said fluidized bed in one annular region while
- extracting less dense particles from said fluidized bed in a different annular region.
- 4. The particle separation process of claim 1, wherein said adjacent region surrounds said collection region, the process further comprising:
- adding particles to said fluidized bed in one of said annular regions, and
- extracting less dense particles from the bed in another of said annular regions, whereby particles of greater relative density collect in the fluidized bed in said collection region while particles of lesser relative density tend to be displaced outwardly from said collection region into said other annular region for extraction.
- 5. The particle separation process of claim 1, further comprising:
- adding particles to said fluidized bed whereby added particles of greater relative density tend to migrate into said collection region while particles of lesser relative density tend to be displaced therefrom by the particles of greater relative density and move into other annular regions, and
- extracting particles of less relative density from one of said other annular regions.
- 6. The particle separation process of claim 1, further comprising:
- adding particles to the fluidized bed in an adjacent region while extracting particles from said collection region.
- 7. The process of claim 1, wherein said collection region is located generally in the center of gyratory motion of the fluidized particle bed.
- 8. The particle separation process of claim 7, further comprising:
- extracting particles of lesser relative density from said fluidized bed at a radial location remote from said collection region.
- 9. The particle separation process of claim 8, wherein:
- said extraction occurs at the periphery of the fluidized bed.
- 10. The particle separation process of claim 1, wherein said collection region surrounds said adjacent region, the process further comprising:
- extracting relatively less dense particles from said fluidized bed at a location in an adjacent region displaced inwardly from said collection region.
- 11. The particle separation process of claim 1, wherein:
- the reaction surface containing the restricted area of communication comprises an annular wall substantially surrounding at least a portion of said fluidized bed.
- 12. The particle separation process of claim 11, further comprising:
- extracting at least some of the more dense particles from said collection region at a vertical level approximating the top of the fluidized bed.
- 13. The particle separation process of claim 11, wherein:
- said restricted area of communication comprises a relatively narrow vertical opening extending through said annular wall.
- 14. The particle separation process of claim 11, wherein:
- said restricted area of communication comprises a narrow horizontally extending opening at a level beneath the surface of the particle bed.
- 15. The particle separation process of claim 1, wherein:
- said vertical reaction surfaces define a plurality of annular regions, each reaction surface between adjacent annular regions being provided with a limited area of communication for the movement of particles within the bed from one annular region to another.
- 16. The particle separation process of claim 15, wherein:
- each limited area of communication is circumferentially displaced from the limited areas of communication in adjacent vertical reaction surfaces.
- 17. The particle separation process of claim 15, wherein:
- the radial dimensions of said adjacent annular regions progressively increases in the radial direction toward said collection region.
- 18. The process of claim 1, wherein:
- the eccentric motion component of gyratory motion is so characterized that a net radial inward thrust is exerted thereby upon the particle mass, and
- said collection region is located radially inwardly of at least one adjacent annular region.
- 19. The particle separation process of claim 1, wherein:
- the eccentric motion component of gyratory motion is so characterized that a net radially outward thrust is exerted thereby upon the particle mass, and
- said collection region is located radially outwardly of at least one adjacent annular region.
- 20. The particle separation process of claim 1, wherein:
- the characteristic of gyratory motion and the dimensions of said reaction surfaces are such as to induce a circular translational motion of the particle mass in at least one of said annular regions at a greater rate than in an adjacent region, and wherein
- particles are induced to move radially in said fluidized bed from a region having a relatively low rate of circular particle motion to an adjacent annular region having a relatively high rate of circular motion, the particles of relatively greater density accumulating in said annular region having a relatively high rate of circular motion.
- 21. The particle separation process of claim 1, wherein:
- said vertical reaction surface having said limited area of communication laterally confines the fluidized particle bed in said adjacent annular region such that particles therewithin form a particle column, said limited area of communication being at a lower level of the bed, the process further comprising:
- extracting particles reaching a given vertical location in said column above said limited communication area.
- 22. The particle separation process of claim 21, wherein:
- said confining vertical reaction surface is dimensioned to induce a circular translational motion of the particles in said column.
- 23. The particle separation process of claim 21, wherein:
- said column is disposed generally at the center of gyratory motion and particles of selected relative density will migrate thereinto, while particles of different relative density remain outside of said column.
- 24. The particle separation process of claim 21, further comprising:
- providing a particle extraction passage in said column leading from a first level vertically above the bed supporting surface downwardly to a second level below said bed supporting surface; and
- permitting at least certain of the particles reaching said first level to enter and thereby be extracted from said bed through said extraction passage.
- 25. The particle separation process of claim 24, wherein:
- said extraction passage is disposed generally at the center of said particle column.
- 26. The particle separation process of claim 21, wherein:
- said area of communication comprises a gap between the bed supporting surface and the vertically extending surface.
- 27. The particle separation process of claim 1, wherein:
- the gyratory motion is of such nature and the vertical reaction surfaces are so dimensioned as to induce a circular translational motion of the particles in the fluidized bed within said collection region, whereby particles of relatively greater density are caused to move in a circular translational path within said collection region.
- 28. The particle separation process of claim 27, further comprising:
- extracting said particles of relatively greater density from the upper level of the fluidized bed in said collection region.
- 29. The particle separation process of claim 1, wherein the oscillatory vertical component of gyratory motion imparts to the particles of greater relative density an upward movement sufficient to enable them to accumulate at a level of the fluidized bed above the supporting surface.
- 30. The particle separation process of claim 29, further comprising:
- extracting said particles of greater relative density at the upper level of the fluidized bed.
- 31. The particle separation process of claim 1, wherein the supporting surface is substantially impervious to the passage therethrough of particles to be separated.
- 32. The particle separation process of claim 1, wherein:
- the fluidized particle bed is substantially dry.
- 33. The process of claim 1, wherein;
- individual particles in said fluidized bed tend to spin in the direction of said circular motion;
- said reaction surface includes portions having projection components normal to the bed supporting surface, and
- the particles at the bottom of the bed contact said portions so as to react with said spin tendency to cause said circular motion of the particle mass.
- 34. The process of claim 33, wherein;
- said surface portions comprise a plurality of concentric circular deformations normal to the plane of the supporting surface upon which the particle bed is disposed.
- 35. A process for separating particles of selected density from an aggregated mass of classified particles having different densities, comprising the steps of:
- disposing the aggregated mass of particles upon a supporting surface to form a particle bed;
- agitating the supporting surface with a gyratory motion having a circularly eccentric motion component and an oscillatory vertical component sufficient to fluidize the particle bed and thereby to substantially reduce the resistance of the particle bed to translational movement of particles therewithin;
- contacting the particles in said fluidized bed with a plurality of vertical reaction surfaces movable with the said supporting surface and defining (a) an innermost collection region and (b) at least one annular region surrounding said collection region, said supporting and reaction surfaces, in combination with said gyratory motion, having a surface area of frictional contact with said bed sufficient to impart to the particles a net circular and radially inward movement toward said collection region;
- providing restricted areas of communication between adjacent regions so as to permit particles of greater relative density in said fluidized bed to move through said restricted areas of communication, whereby particles of greater relative density move into and accumulate in said collection region and whereby particles of lesser relative density may be displaced from said collection region into the said surrounding region.
- 36. The particle separation process of claim 35, further comprising:
- extracting particles of lesser relative density from one of said surrounding annular regions.
- 37. The process for separating particles of selected relative density from an aggregated mass of classified particles having different densities, comprising the steps of:
- disposing the aggregated mass of particles upon a supporting surface to form a particle bed;
- agitating the supporting surface with a gyratory motion having a circularly eccentric motion component and an oscillatory vertical component sufficient to fluidize said bed and thereby substantially reduce the resistance of the particle bed to translational movement of particles therewithin;
- contacting the particles in said bed with vertical reaction surfaces associated with the supporting surface and defining a plurality of annular regions in said fluidized bed, said supporting and reaction surfaces, in combination with said gyratory motion, energizing the particles in said annular regions to cause particles of relatively greater density to move in paths having a net circular direction component and a net radial direction component;
- providing restricted areas of communication between adjacent annular regions so as to permit particles to move through said restricted areas from one annular region to an adjacent annular region; and
- permitting particles of greater relative density to move in said paths of motion through said restricted areas of communication into one of said regions for collection, while permitting particles of relatively less density to move into another of said annular regions.
- 38. The particle separation process of claim 37, further comprising:
- adding particles to said fluidized bed in one annular region and
- extracting relatively less dense particles from a different annular region.
- 39. The process of claim 37, wherein:
- the particle bed is maintained at a height at least as great as said vertical reaction surfaces, thereby to enable relatively less dense particles to move from one annular region to the next over the tops of said vertical reaction surfaces.
- 40. The process of claim 39, wherein said particles of greater relative density move in paths having a net inward direction component, the collection region being the innermost annular region, and relatively less dense particles are displaced outwardly, at least some of said relatively less dense particles being displaced outwardly over the tops of said vertical reaction surfaces.
- 41. A process for the separation of particles of selected density from an aggregated mass of classified particles having different densities, comprising:
- disposing the aggregated mass of particles upon a supporting surface to form a particle bed;
- laterally confining the particles in the bed with vertical reaction surfaces so as to establish a plurality of annular channels for the fluidized particles;
- providing restricted areas of communication between adjacent channels;
- agitating the supporting and reaction surfaces with a gyratory motion having a circularly eccentric component and an oscillatory vertical component, said motion being such as to fluidize the particle bed and thereby reduce the resistance of the particle bed to translational movement of the particles therewithin, and to induce a net radial and lateral movement within the annular channels of particles of selected density; and
- permitting said particles of selected relative density to pass through said restricted areas of communication by virtue of said radial and lateral movement so as to accumulate in a collection zone defined by one of said channels.
- 42. The particle separation process of claim 41, wherein:
- said collection zone is disposed at the center of motion of the supporting surface, and
- the net radial movement of the particles of selected density is inward.
- 43. The particle separation process of claim 41, further comprising:
- extracting from one of said annular channels particles having a density predominantly different from the selected density.
- 44. The particle separation process of claim 41, wherein:
- particles are extracted from an annular channel separated from the collection zone by at least one intermediate annular channel.
- 45. The particle separation process of claim 41, wherein:
- particles of selected relative density which accumulate in the collection zone are those of greater relative density.
- 46. The particle separation process of claim 41, wherein:
- the collection zone is constituted of the outermost annular channel and the net radial movement of particles of selected density is outward.
- 47. Apparatus for separating particles of selected relative density from an aggregate mass of classified particles having different densities, comprising:
- means providing a surface for supporting the aggregated mass of particles constituting a particle bed;
- means supporting said surface means for at least limited lateral and vertical motion;
- means for agitating said supporting surface with a gyratory motion having a circularly eccentric motion component in an oscillatory vertical motion component sufficient to fluidize the particle bed and thereby substantially reduce the resistance of the particle bed to translational movement of relatively more dense particles therewithin;
- reaction surface means associated with the supporting surface defining a plurality of annular channels, said reaction surface means and supporting means providing an area of frictional contact with the particle bed sufficient to energize the relatively more dense particles so as to cause them to move through the bed in paths having a net circular component and a net radial component;
- said reaction surface means providing restricted areas of communication between adjacent annular channels and being so configured to permit said relatively more dense particles to pass therethrough into an adjacent channel and there displace particles of relatively less density.
- 48. The apparatus of claim 47, wherein:
- said supporting surface means includes portions of the supporting surface having projection components in planes normal to the plane thereof and dimensioned to contact the particles.
- 49. The apparatus of claim 48, wherein:
- said surface portions comprise a plurality of concentric circular deformations normal to the plane of the supporting surface.
- 50. The apparatus of claim 47, wherein:
- said supporting surface is substantially impervious to the passage of particles therethrough.
- 51. The apparatus of claim 47, further comprising:
- means for continuously extracting particles reaching a predetermined location in one of said adjacent annular channels.
- 52. The apparatus of claim 47, wherein:
- said reaction surface means comprise a plurality of generally concentric rings extending upwardly from the particle-supporting surface.
- 53. The apparatus of claim 47, wherein:
- said restricted areas of communication are circumferentially displaced.
- 54. The apparatus of claim 47, wherein the reaction surface means includes:
- at least one particle-confining surface extending upwardly from the supporting surface at the boundary between adjacent annular channels to define a collection zone at a central region within said confining surface and having an opening therethrough for the movement of particles between regions interior and exterior thereof.
- 55. The apparatus of claim 54, further comprising:
- a second particle-confining surface radially spaced from said first confining surface so as to define therewith an annular particle flow channel whereby particles of relatively greater density are free to move circularly and radially within said annular channel and through said opening into the collection zone.
- 56. The apparatus of claim 54, wherein:
- said opening defines a generally horizontal gap of narrow dimension located adjacent the supporting surface, whereby particles may move through such gap into the annular region bounded by the particle-confining surface.
- 57. The apparatus of claim 47, further comprising:
- particle confining means extending upwardly from a level near the supporting surface in one of said annular channels and having an opening to permit particles to move radially therethrough into the region bounded thereby, whereby particles from the particle bed may enter such bounded region through said opening and flow vertically upwardly therein; and
- means for extracting particles from an upper level of said fluidized bed at the interior of said particle confining means.
RELATED APPLICATIONS
This application is a continuation-in-part of my earlier application Ser. No. 663,247, filed Mar. 2, 1976 and now abandoned, which in turn is a continuation-in-part of application Ser. No. 552,704, filed Feb. 24, 1975 and now abandoned, all three such applications having the same title.
US Referenced Citations (11)
Foreign Referenced Citations (1)
Number |
Date |
Country |
89529 |
Jul 1895 |
DE2 |
Non-Patent Literature Citations (2)
Entry |
"Sweco Vibro-Energy Separators", published by Sweco, Inc., (1973). |
Denver Equipment Index, 2nd ed., vol. 1, 1947, pp. 88-89. |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
663247 |
Mar 1976 |
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Parent |
552704 |
Feb 1975 |
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