CA1069084A

Inclined, fluid suspendingly swept rotating drum refuse separator

Abstract

ABSTRACTA rotary drum air separation system separatesmixed solid materials into a light fraction and a heavyfraction with substantially no stagnation of material in theair drum. It further provides for processing high volumeurban solid waste without first size reducing the waste. Thesystem separates such waste into a light fraction, substan-tially free of glass and ready for composting or for use asa source of energy in the form of heat or combustible gasfrom pyrolysis, a heavy fraction, and a glass-rich fractionfrom the heavy fraction, all in a high volume operation.

Term

No projected expiry on record.

  1. Priority
  2. Filed
  3. Granted
  4. Today

26 claims: 26 independent, 0 dependent

  1. 1
    The embodiments in which an exclusive property or privilege is claimed are defined as follows:1. A method of processing refuse and separating its constituent materials into a low bulk density light fraction and a high bulk density heavy fraction comprising the steps of: charging the refuse directly into an inclined rotating air drum processor at a position intermediate the ends thereof without a previous size reduction of the refuse;lifting and dropping the refuse within said drum processor to expose the refuse materials to air separation;rotating said air drum processor to cause the heavy fraction materials in said refuse to undergo a sufficient number of lifting and dropping actions during their travel to the lower end of said drum for discharge as the heavy fraction to effect disentanglement of light fraction materials from the heavy fraction materials;flowing air through the rotating drum at a velocity to separate at least 50 percent by weight of the refuse materials by virtue of their area to mass ratio and aerodynamic shape as the light fraction at one end of said drum, and controlling the air velocity to provide an ever increasing air velocity in the upwardly inclined direction of said drum to prevent a substantial stagnation of material in said air drum processor by the provision of an internal surface of said drum that generally tapers to a smaller cross sectional area from the lower end of said drum to the upper end thereof to provide a decreasing air force to the downward travel of refuse materials toward the heavy fraction end of said drum and an increasing air force to the upward travel of refuse materials toward the light fraction end of said drum.
  2. 2
    A method of processing refuse in accordance with Claim 1 including the step of breaking open refuse and garbage bags within said processor to expose the contents of the bags to air separation.
  3. 3
    A method of processing refuse in accordance 26 with Claim 1 including the step of screening by size the heavy fraction to separate a smaller size glass-rich fraction from the remainder of the heavy fraction.
  4. 4
    A method of processing refuse in accordance with Claim 1 including the step of dropping said refuse within said drum and impacting said refuse at velocities substantially below an impact velocity which detonates dynamite.
  5. 5
    A method of processing refuse in accordance with Claim 1 including the steps of charging refuse at the rate of at least 50 tons per hour into said air drum processor and providing an air velocity of at least about 900 feet per minute through said air drum processor.
  6. 6
    A method of processing refuse in accordance with Claim 1 in which the step of charging the refuse further comprises conveying the material to a position located internally of said rotating air drum processor and located substantially longitudinally upwardly of the longitudinal middle of said rotating air drum processor.
  7. 7
    A method of processing refuse in accordance with Claim 1 including the additional step of shredding said light fraction after removal thereof from said air drum processor.
  8. 8
    A method of processing refuse in accordance with Claim 7 including the step of removing magnetic materials from the light fraction by magnetic attraction prior to shredding said light fraction.
  9. 9
    A method of processing refuse in accordance with Claim 1 including the additional steps of pyrolyzing said light fraction after removal thereof from said air drum processor and then sifting the residue to reclaim metallic materials in the light fraction.
  10. 10
    A method of processing refuse in accordance 27 with Claim 1 including the steps of removing magnetic materials from the light fraction by magnetic attraction after removal of the light fraction from said air drum processor, pyrolyzing the light fraction and then sifting the residue to reclaim aluminum materials in the light fraction.
  11. 11
    A method in accordance with Claim 3 wherein the heavy fraction from which the glass has been substantially removed is further processed by the step of size reducing this fraction after removal thereof from said air drum processor.
  12. 12
    A method of processing refuse in accordance with Claim 1 including the additional steps of controlling the rotational velocity of said drum and the charging flow of the refuse.
  13. 13
    A method of processing refuse and separating its constituent materials into a low bulk density substantially combustible light fraction and a high bulk density substantially incombustible heavy fraction comprising the steps of:charging the refuse directly into an inclined rotating air drum processor at a rate of at least 50 tons per hour at a position intermediate the ends thereof without a previous size reduction of the refuse;lifting and dropping the refuse within said drum processor to expose the refuse materials to air separation;rotating said drum to cause the heavy fraction materials in said refuse to undergo a sufficient number of lifting and dropping actions during their travel to the lower end of said drum for discharge as the heavy fraction to effect disentanglement of light fraction materials from the heavy fraction materials;inducing air flow through said rotating drum air processor at the charging location to separate at least 50 percent by weight of the charged refuse materials by virtue of their area to mass ratio and aerodynamic shape as the light fraction at the upper end of said 28 drum, and controlling the air flow to provide an ever increasing air velocity in the upwardly inclined direction and pulsating the air flow through said air drum processor to prevent stagnation of material having a critical velocity close to the velocity of air flow through said air drum processor.
  14. 14
    A method of processing refuse in accordance with Claim 13 including the step of screening by size the heavy fraction to separate a smaller size glass-rich fraction from the remainder of the heavy fraction.
  15. 15
    An air drum processor for separating previously unprocessed refuse materials into a low bulk density light fraction of at least 50 percent by weight of the materials and into a high bulk density heavy fraction comprising:a rotatable drum having its axis of rotation inclined at a predetermined angle to the horizontal and being open at least at one end;means for rotating said drum about its axis;infeed conveyor means extending into an upper and rotating portion of said drum for charging the refuse materials into said drum while said drum is rotating;means in said drum for lifting and dropping the materials within said drum during rotation thereof to expose the materials to air separation;means for causing a stream of air to flow axially through said drum at a predetermined velocity to separate the materials by virtue of their area to mass ratio and aerodynamic shape as the light fraction at the upper end of said drum, said drum having a length from the materials charging position in said drum to the lower end thereof adequate to provide for the heavy fraction materials to undergo a sufficient number of lifting and dropping actions during their travel to the lower end of said drum for discharge at the lower end as the heavy fraction to effect separation of the 29 light fraction materials from their mixed condition with the heavy fraction materials;and means in said drum for controlling said air flow to provide an ever increasing air velocity in the upwardly inclined direction throughout a major portion of said drum to prevent stagnation of material having a critical velocity close to said predetermined velocity of air flow through said rotating air drum, said air flow controlling means including an internal surface of said drum that generally tapers to a smaller cross sectional area from the lower end of said drum to the upper end thereof to provide a decreasing air force to the downward travel of refuse materials toward the heavy fraction end of said drum and an increasing air force to the upward travel of refuse materials toward the light fraction end of said drum.
  16. 16
    A processor in accordance with Claim 15 wherein said means for lifting and dropping the materials within said drum during rotation thereof includes a plurality of peripherally attached lifter shelves directed generally inwardly toward the axis of rotation from the inner surface of said drum.
  17. 17
    A processor in accordance with Claim 15 wherein said means in said drum for lifting and dropping the materials includes an internal surface of said drum in cross section in the form of a polygon.
  18. 18
    A processor in accordance with Claim 15 wherein said means for causing a stream of air to flow axially through said drum at a predetermined velocity includes a large plenum in communication with the upper end of said drum providing a sudden drop in air velocity as the air is discharged from the drum, means providing a shunt path attached to said plenum for returning at least a portion of the discharged air to the lower end of said drum for recirculating therethrough, and means for substantially closing the shunt path and for opening the shunt path for pulsating the air flow through said drum.
  19. 19
    A processor in accordance with Claim 15 wherein said means for causing a stream of air to flow axially through said drum at a predetermined velocity includes means for pulsating the air flow through said drum.
  20. 20
    A processor in accordance with Claim 15 further comprising means for breaking open refuse and garbage bags within said drum during rotation thereof to expose the contents of the bags to air separation.
  21. 21
    A processor in accordance with Claim 15 including a trommel in the surface of said drum located inwardly of the lower end thereof for screening by size the heavy fraction to separate a smaller size glass-rich fraction from the remainder of the heavy fraction.
  22. 22
    A processor in accordance with Claim 15 wherein the internal surface of said drum generally tapers to a smaller cross-sectional area from the lower end of said drum to the upper end thereof and wherein this generally tapering inner surface includes a step intermediate the ends of said drum that increases the internal diameter of the drum at a point where a right sectional plane of the drum includes the inner end of said conveyor, said diameter increasing to an extent such that an area substantially equal to or less than the cross-sectional area of the conveyor is added to the internal cross-sectional area of the drum.
  23. 23
    A processor in accordance with Claim 15 wherein the angle of inclination of the axis of said drum to the horizontal is between 2° and 12°.
  24. 24
    A processor in accordance with Claim 20 wherein said means for breaking open refuse and garbage bags within said processor includes a plurality of peripherally attached, inwardly directed piercing elements.
  25. 25
    A processor in accordance with Claim 15 further comprising a shunt path recirculating at least a 31 portion of said flowing air back through said drum and means for controlling the amount of said flowing air being recirculated.
  26. 26
    A processor in accordance with Claim 15 in which the ratio of the length of said drum to internal diameter is at least 1.5. 32
Independent claims26