CONVERTIBLE RECYCLING APPARATUS FOR SYNTHETIC RESIN MATERIALS
20170304839 · 2017-10-26
Inventors
Cpc classification
Y02W30/62
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B02C18/086
PERFORMING OPERATIONS; TRANSPORTING
B29B2017/0484
PERFORMING OPERATIONS; TRANSPORTING
B29B17/04
PERFORMING OPERATIONS; TRANSPORTING
B02C2018/188
PERFORMING OPERATIONS; TRANSPORTING
B02C23/12
PERFORMING OPERATIONS; TRANSPORTING
International classification
B02C23/10
PERFORMING OPERATIONS; TRANSPORTING
B02C23/20
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An apparatus for recycling synthetic thermoplastic waste material combining heretofore multiple stage processing steps in a single stage shredder grinder pulverizer device. The apparatus has multiple interchangeable material processing blade sets on respective effacing engageable rotating and fixed blade mounts within a cooled material infeed and blade containment enclosure with multiple vacuum outlet ports and communicating vacuum ducts to draw off and transport processed material therefrom for separation and classification, as required. Each replaceable interchangeable processing blade set includes registerable shredding and grinding blades and annular pulverizing blade sets on fixed and movable mediums for progressive processing of waste material into uniform recyclable material.
Claims
1. A convertible plastics processor apparatus for recycling material comprises, a single stage shredder, grinder, pulverizer having a housing defining an enclosure, a first multi-blade set on a rotating support disk in said enclosure in communication with a drive motor, a second fixed multi-blade bed set mounted in said enclosure effacing said first blade set, a top material inlet portal and dual oppositely disposed ducted vacuum top material outlet openings in said enclosure, a centrifugal separator in communication with said ducted vacuum outlets and a source of vacuum, a classifier in communication with said centrifugal separator, cooling means on said enclosure and a remote source of cooling media in communication therewith, said single stage shredder, grinder, pulverizer and said drive motor movable from a first vertical infeed position to a second horizontal product infeed position.
2. The convertible plastic processor apparatus set forth in claim 1 wherein said first and second multi-blade sets include respectively, a continuous perimeter segmented annular blade band defining a central infeed area, primary linear shredding and grinding defined blades within said infeed area aligned for progressive intermeshing with said second fixed bed blade sets.
3. The convertible plastic processor apparatus set forth in claim 1 wherein said second fixed multi-blade bed set is secured to a removable closure lid on said enclosure housing.
4. The convertible plastic processing apparatus set forth in claim 1 wherein said source of vacuum comprises, a blower in communication with said centrifugal separator.
5. The convertible plastic processor apparatus set forth in claim 1 wherein said classifier includes, multiple screens in aligned spaced orientation with one another and of varying screen mesh dimensions.
6. The convertible plastic processor apparatus set forth in claim 1 wherein said drive motor is secured to a mounting frame having aligned pivots for vertical to horizontal motor orientation.
7. The convertible plastic processor apparatus set forth in claim 1 wherein said cooling means on said blade enclosure comprises, a cooling coil around said blade enclosure, fluid chiller in communication with said cooling coil.
8. The convertible plastic processor apparatus set forth in claim 2 wherein said continuous perimeter edge segments annular blade band segments define wedging slots there between, locking wedge bars registerable within said slots.
9. The convertible plastic processing apparatus set forth in claim 2 wherein said perimeter annular blade band segments have a plurality of spaced parallel radial tapered milled blade edges.
10. The convertible plastic processing apparatus set forth in claim 2 wherein said linear shredding grinding blades have saw tooth knife edges.
11. The convertible plastic processor apparatus set forth in claim 6 wherein said drive motor and said single stage shredder grinder pulverizer in horizontal infeed product position further comprises, a horizontal product infeed assembly having a guide and material transfer means in communication therewith.
12. A first and second effacing blade sets for a convertible plastic recycling processor apparatus, said first blade set comprises, an annular blade band having multiple interchangeable blade segments on a rotating support disk and a multiple of elongated upstanding blades having replaceable multiple teeth inserts, said second blade set comprising a fixed annular blade having multiple arcuate interchangeable blade segment and an elongated upstanding blade having replaceable teeth inserts thereon.
13. The first and second effacing blade sets set forth in claim 12 wherein said first and second blade sets annular blade bands interchangeable arcuate blade sections have multiple spaced parallel upstanding radial knife edges extending therefrom.
14. The first and second effacing blade sets for a convertible plastic recycling processor set forth in claim 12 wherein said first and second blade sets elongated upstanding blades multiple teeth inserts are of a saw tooth knife edge configuration and in aligned effacing progressive mesh orientation with one another.
Description
DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0024] Referring to
[0025] A material processing infeed and outflow blade housing 18 is secured to the drive motor 17 via a riser 19. The blade housing 18 has a contoured upstanding sidewall 20 extending from a corresponding contoured support base 21.
[0026] A primary material processing blade disk 22 assembly is mounted to an output drive shaft D of the motor 17 for high speed rotation thereon as seen in
[0027] The mounting flywheel 24 has a central opening at 24B with an upstanding perimeter edge flange 24C. Accordingly, the multiple arcuate blade sections 23 are positioned for use on the flywheel 24 abutting the upstanding perimeter edge flange 24C thereby forming an annular continuous blade band thereabout.
[0028] Each of the hereinbefore described form registration slots S have effacing tapered edges for receiving a locking wedge bar 24 therein as best seen in
[0029] The wedge bars 65 each have a number of aligned apertures A for fixation fasteners there through and have corresponding interface interference surfaces along respective longitudinal edges 65A and 65B. The wedging bars 65 are driven into the defined slots S achieving a friction fit there between wedgeably retaining the so engaged multiple blade sections 23 radially against one another retained by the flywheel's perimeter edge flange 24A as illustrated. An annular apertured retainment plate 66 is fitted in this example onto the center of the flywheel 24 thereby abutting against the respective inner edge surfaces 61 of the inserts 23 which along with fixation fasteners F in the wedge bars 65 complete the annular blade assembly.
[0030] Multiple opposing primary shredding and grinding blades 27 are removably secured upstanding from the mounting disk 24 extending in spaced relation from a center axis C to the edge surface 61 of the respective annular blade sections 23 in abutment thereto. The primary blades 27 are in angular offset linear alignment to provide initial infeed product engagement as will be described.
[0031] The primary shredding and grinding blades 27 each have a plurality of replaceable blade sets 28, best seen in
[0032] Referring now to
[0033] The fixed bed blade engagement assembly 30 has a corresponding multiple arcuate segmented fixed replaceable annular surface blade 33 extending inwardly from an upstanding perimeter support edge 34 on a mounting support disk 35 which in turn is secured in spaced relation to the hereinbefore described closure lid 31, as seen in
[0034] The segmented replaceable annular blade surfaces 33 have a plurality of radially aligned parallel upstanding knife edges 33A milled therein that correspond to the hereinbefore described rotating annular blade milled surfaces 25 so as to systematically and progressively engage shredded and ground recyclable plastic product for pulverization as required for product consistency and desired final product use level.
[0035] The segmented annular surface blade 33 is secured to the fixed mounting disk 34 by an identical wedging assembly 36 of that of the rotating arcuate blade mounting sections 23, hereinbefore described.
[0036] In this example, the fixed bed blade assembly 30 has single fixed shredding bed blade 37 which extend radially from an inner edge of the segmented annular blade surface 33 as best seen in
[0037] Referring now to
[0038] The cooling also enables better material transfer as the now processed material in loose form will accumulate in the defined outflow housing areas 18A and 18B directly under the vacuum outflow opening lid mounts 32A and 32B so as to be drawn outwardly by a dual vacuum tube assembly 43, best seen in
[0039] Selected waste material for reprocessing defined as raw product RP for product inflow is delivered to the processing housing 18 from a supply hopper 44 supported on the vertical and horizontal support rails 12 and 13 of the support frame 11. The supply hopper 44 provides for metered and control release of raw product RP through a rotary control feed valving 45 delivering the raw product RP to a pair of vibrating conveyor trays 46 and 47 which move and separate raw product RP for delivery to an upstanding central infeed housing 48 extending from the closure lid infeed opening 31A. The raw product RP is transferred into the housing 18 rotating and fixed bed blade engagement assemblies for blade engagement and reduction as hereinbefore described.
[0040] As noted, once the raw product RP has been processed by the multiple stage blade assembly expelled by centrifugal force collecting in the cut flow areas 18A and 18B, it is drawn out of the housing 18 by a dual vacuum transfer assembly 48 having a first and second vacuum transfer nozzle conduits 49A and 49B which combine upstream into a single vacuum transfer tube 50.
[0041] A force vacuum flow of material entrained airstream AS is achieved by a vacuum blower assembly 51 which draws the material up into a cyclonic particle separator 52 as seen graphically in broken lines in
[0042] The finished and classified product FP is transferred out of the classifier 53 through, in this example, a magnetic metal separator 55 which achieves a final separation of any possible entrained ferrous metallic material assuring that only usable synthetic resin thermoplastic material now fully processed is passed on for recycling use.
[0043] Referring now to
[0044] It will be seen therefore that with the adaptability of the present recycling processing apparatus 10 of the invention, that a single material processing installation can replace multiple processing staged equipment overall installation and associated inner transport cost to independent processors heretofore required.
[0045] It will thus be seen that a new and useful adaptable plastic recycling processing apparatus 10 has been illustrated and described and it will be apparent to those skilled in the art that various changes and modifications may be made therein without departing from the spirit of the invention, therefore I claim: