Shredding recyclable material containing information
10086380 ยท 2018-10-02
Assignee
Inventors
- David Yamamoto (Paris, CA)
- Justin Johns (South Yarra, AU)
- Constantin Vasilescu (Kitchener, CA)
- Derek Pepino (Cambridge, CA)
- Brent Allen (Sheffield, CA)
Cpc classification
B02C18/0007
PERFORMING OPERATIONS; TRANSPORTING
B02C2018/188
PERFORMING OPERATIONS; TRANSPORTING
B02C21/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A shredder system and methods for shredding recyclable material including a primary shredder that shreds recyclable material into a first larger shred size and a secondary shredder that shreds recyclable material into a second smaller shred size material. The secondary shredder includes a rotor and a knife that meshes with the rotor to cause all of the first larger shred size material to be further shredded to the second smaller shred size material. The secondary shredder may also include a diverter mechanism capable of diverting the first larger shred size material. Either the diverter mechanism or the knife can move relative to the rotor to create an opening that allows the first larger shred size material to avoid being further shredded into the second smaller shred size material. The shredder system may be disposed in a motor vehicle.
Claims
1. An apparatus for shredding paper, comprising: a primary shredder configured to shred paper into a first larger shred size material, the primary shredder including: at least two counter rotating shafts configured to receive paper and shred paper to the first larger shred size material, each of the two counter rotating shafts having a plurality of knife tips, and a finger mechanism configured to prevent a build-up of the first larger shred size material between the primary shredder and the secondary shredder, the finger mechanism comprising a plurality of fingers with rounded edges that protrude beyond the plurality of knife tips on each of the two counter rotating shafts; and a secondary shredder configured to further shred the first larger shred size material into a second smaller shred size material, the secondary shredder including: a rotor comprising a plurality of rotor knives, each rotor knife including a plurality of knife hooks located around a periphery thereof and a hub attached thereto, wherein the hub comprises a disc including a plurality of hub hooks located around a periphery thereof, and the hub hooks are shaped to facilitate ejection of the second smaller shred size material from the secondary shredder, and a knife configured to mesh with the rotor to cause all of the first larger shred size material to be further shredded to the second smaller shred size material in a single pass, wherein the apparatus for shredding paper is disposed in a motor vehicle.
2. The apparatus for shredding paper of claim 1, wherein the first larger shred size material is larger than 0.5 square inches, and wherein the second smaller shred size material is smaller than 0.5 square inches.
3. The apparatus for shredding paper of claim 1, wherein the primary shredder is fixed over and mounted to the secondary shredder such that the paper continuously flows from the primary shredder to the secondary shredder.
4. The apparatus for shredding paper of claim 1, wherein the knife is positioned at an acute angle to a plane tangent to the rotor.
5. The apparatus for shredding paper of claim 1, further comprising a housing configured to enclose the primary shredder and ensure all of the paper is shredded to the first larger shred size material.
6. The apparatus for shredding paper of claim 1, further comprising an auger including: a first shaft; and a second shaft, wherein the first shaft and the second shaft are driven by a drive unit and a chain drive mechanism configured to rotate the first shaft in a first direction and the second shaft in a second direction opposite to the first direction in order to mix and distribute the shredded paper.
7. The apparatus for shredding paper of claim 1, wherein the motor vehicle comprises: a shredding compartment configured to receive and shred paper; a collection compartment for storing shredded paper; and an unloading device configured to unload shredded paper from the collection compartment.
8. An apparatus for shredding paper, comprising: a primary shredder configured to shred paper into a first larger shred size material, the primary shredder including: at least two counter rotating shafts configured to receive paper and shred paper to the first larger shred size material, each of the two counter rotating shafts having a plurality of knife tips, and a finger mechanism configured to prevent a build-up of the first larger shred size material between the primary shredder and the secondary shredder, the finger mechanism comprising a plurality of fingers with rounded edges that protrude beyond the plurality of knife tips on each of the two counter rotating shafts; an enclosure; and a secondary shredder within the enclosure and configured to further shred the first larger shred size material into a second smaller shred size material, the secondary shredder including: a rotor, and a knife configured to mesh with the rotor to cause all of the first larger shred size material to be further shredded to the second smaller shred size material in a single pass; wherein: a diverter mechanism is configured to divert the first larger shred size material and is configured to move relative to the rotor to create a diverter opening between the rotor and the diverter mechanism, the diverter opening being configured to allow the first larger shred size material to move between the rotor and the diverter mechanism without being further shredded into the second smaller shred size material, or the knife is configured to move relative to the rotor to create a knife opening between the rotor and the knife, the knife opening being configured to allow the first larger shred size material to move between the rotor and the knife without being further shredded into the second smaller shred size material.
9. The apparatus for shredding paper of claim 8, wherein the first larger shred size material is larger than 0.5 square inches, and wherein the second smaller shred size material is smaller than 0.5 square inches.
10. The apparatus for shredding paper of claim 8, wherein the primary shredder is fixed over and mounted to the secondary shredder such that the paper continuously flows from the primary shredder to the secondary shredder.
11. The apparatus for shredding paper of claim 8, wherein the knife is positioned at an acute angle to a plane tangent to the rotor.
12. The apparatus for shredding paper of claim 8, further comprising a housing configured to enclose the primary shredder and ensure all of the paper is shredded to the first larger shred size material.
13. The apparatus for shredding paper of claim 8, further comprising a control system that rotates the rotor of the secondary shredder in a first direction, towards the knife, when the first larger shred size material is further shredded to the second smaller shred size material, and rotates the rotor of the secondary shredder in a second direction opposite to the first direction, towards the diverter opening or the knife opening when the first larger shred size material avoids being further shredded into the second smaller shred size material.
14. The apparatus for shredding paper of claim 8, further comprising an auger including: a first shaft; and a second shaft, wherein the first shaft and the second shaft are driven by a drive unit and a chain drive mechanism configured to rotate the first shaft in a first direction and the second shaft in a second direction opposite to the first direction in order to mix and distribute the shredded paper.
15. The apparatus for shredding paper of claim 8, further comprising a motor vehicle that houses the primary shredder and the secondary shredder.
16. The apparatus for shredding paper of claim 15, wherein the motor vehicle comprises: a shredding compartment configured to receive and shred paper; a collection compartment for storing shredded paper; and an unloading device configured to unload shredded paper from the collection compartment.
17. A method for shredding paper, comprising: disposing a primary shredder and a secondary shredder in a motor vehicle; shredding paper into a first larger shred size material with the primary shredder, the primary shredder including at least two counter rotating shafts configured to receive paper and shred paper to the first larger shred size material, each of the two counter rotating shafts having a plurality of knife tips, and a finger mechanism configured to prevent a build-up of the first larger shred size material between the primary shredder and the secondary shredder, the finger mechanism comprising a plurality of fingers with rounded edges that protrude beyond the plurality of knife tips on each of the two counter rotating shafts; lifting the first larger shred size material from between the knife tips of the primary shredder; and further shredding the first larger shred size material into a second smaller shred size material in a single pass with the secondary shredder, the secondary shredder including a rotor and a knife, the rotor comprising a plurality of rotor knives, each rotor knife including a plurality of knife hooks located around a periphery thereof and a hub attached thereto, wherein the hub comprises a disc including a plurality of hub hooks located around a periphery thereof, and the hub hooks are shaped to facilitate ejection of the second smaller shred size material from the secondary shredder, wherein the knife is configured to mesh with the rotor to cause all of the first larger shred size material to be further shredded to the second smaller shred size material.
18. The method for shredding paper of claim 17, further comprising continuously providing the secondary shredder with the first larger shred size material by mounting the primary shredder over the secondary shredder.
19. The method for shredding paper of claim 17, further comprising: receiving and shredding paper in a shredding compartment of the motor vehicle; storing shredded paper in a collection compartment of the motor vehicle; and unloading shredded paper from the collection compartment of the motor vehicle.
20. A method for shredding paper, comprising: shredding paper into a first larger shred size material with a primary shredder; receiving the first larger shred size material in an enclosure, the enclosure housing a secondary shredder configured to further shred the first larger shred size material into a second smaller shred size material, the secondary shredder including: a rotor, and a knife configured to mesh with the rotor to cause all of the first larger shred size material to be further shredded to the second smaller shred size material; and after receiving the first larger shred size material in the enclosure disposing at least one of a diverter mechanism and the knife in a first position relative to the rotor to cause the secondary shredder to further shred the first larger shred size material into the second smaller shred size material in a single pass when the at least one of the diverter mechanism and the knife is in a first position relative to the rotor; and disposing the at least one of the diverter mechanism and the knife to a second position relative to the rotor to create an opening that is between the rotor and the at least one of the diverter mechanism and the knife, the opening being configured to allow the first larger shred size material to move between the rotor and the at least one of the diverter mechanism and the knife without being further shredded into the second smaller shred size material.
21. The method for shredding paper of claim 20, further comprising: rotating the rotor of the secondary shredder in a first direction, towards the knife, when the first larger shred size material is further shredded to the second smaller shred size material; and rotating the rotor of the secondary shredder in a second direction opposite to the first direction, towards the opening created between the rotor and the at least one of the diverter mechanism and the knife, when the first larger shred size material avoids being further shredded into the second smaller shred size material.
22. The method for shredding paper of claim 20, further comprising continuously providing the secondary shredder with the first larger shred size material by mounting the primary shredder over the secondary shredder.
23. The method for shredding paper of claim 20, further comprising disposing the primary shredder and the secondary shredder in a motor vehicle.
24. The method for shredding paper of claim 23, further comprising: receiving and shredding paper in a shredding compartment of the motor vehicle; storing shredded paper in a collection compartment of the motor vehicle; and unloading shredded paper from the collection compartment of the motor vehicle.
25. The apparatus for shredding paper of claim 1, wherein a diverter mechanism is configured to divert the first larger shred size material and is configured to move relative to the rotor to create a diverter opening between the rotor and the diverter mechanism, the diverter opening being configured to allow the first larger shred size material to move between the rotor and the diverter mechanism without being further shredded into the second smaller shred size material, or the knife is configured to move relative to the rotor to create a knife opening between the rotor and the knife, the knife opening being configured to allow the first larger shred size material to move between the rotor and the knife without being further shredded into the second smaller shred size material.
26. The apparatus for shredding paper of claim 8, wherein the diverter mechanism is configured to move relative to the rotor to create the rotor opening between the rotor and the diverter mechanism, the diverter opening being configured to allow the first larger shred size material to move between the rotor and the diverter mechanism without being further shredded into the second smaller shred size material.
27. The apparatus of claim 8, wherein the knife is configured to move relative to the rotor to create the knife opening between the rotor and the knife, the knife opening being configured to allow the first larger shred size material to move between the rotor and the knife without being further shredded into the second smaller shred size material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) These and other features, aspects and advantages of the disclosed embodiments will become apparent from the following description and the accompanying exemplary embodiments shown in the drawings, which are briefly described below.
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DETAILED DESCRIPTION OF THE EMBODIMENTS
(31) Presently preferred embodiments are illustrated in the drawings. An effort has been made to use the same or like reference numbers throughout the drawings to refer to the same or like parts. Although the specification refers primarily to shredding material in a motor vehicle, it should be understood that the subject matter described herein is applicable to being shredded in other environments, such as for example a warehouse or other worksite. The material to be shredded often will contain information and will be recyclable, but the invention can be applied to other materials that do not contain information and/or are not recyclable.
(32) Description of Shred Size
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(34) The shredder system can be configured to shred the recyclable material to a standard shred size and a high security shred size. The high security shred size is smaller than the standard shred size. The standard shred size can vary based on factors such as the type of shredder used. For example, the standard shred size may be larger than 0.5 inches.sup.2. More preferably, the standard shred size may be inch by 2.5 inch, inch by 1.5 inch, 0.5 inch by 2 inch, smaller than 2 inch round or square hole when a screen is used or smaller than inch round or square hole when a screen is used. It, of course, could be a larger shred size. The smaller shred size may be, for example, 0.5 inches.sup.2. It, of course, could be a smaller shred size.
(35) Overview of Shredder System
(36) As shown in
(37) Primary Shredder
(38) The primary shredder 350 preferably includes two counter rotating shafts 353, 354 (
(39) For example, in one embodiment, the primary shredder 350 may be a Shred-Tech ST15. The ST-15 shredder includes a 110 HP hydraulic drive system driven by a power take-off mounted on the truck chassis. Each of the two counter rotating shafts is a machined hex shaft designed to maximize disc knife placement options and allow for easy disc knife removal and machine maintenance. Preferably, the distance between the counter rotating shafts is 5. In a preferred embodiment, there are thirty-two disc knives, with a disc knife thickness of and a disc knife diameter of 6. The shredder body of the ST-15 can be made from cast aluminum, while the fingers are made from cast-in steel. The cutting chamber preferably is 1321. While the ST-15 is provided as an example, this does not limit the type of shredder that can be used as the primary shredder 350. As previously mentioned, other standard low shaft speed, high torque shredder with two counter rotating shafts can be used, if modified to include the finger mechanism 355 and bulkhead wall 356 described below.
(40) Finger Mechanism of Primary Shredder
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(42) Bulkhead Wall of Primary Shredder
(43) The bulkhead wall 356 (
(44) Position of Primary Shredder Relative to Secondary Shredder
(45) As seen in
(46) Secondary Shredder
(47) The secondary shredder 360 preferably includes one rotor 361 (
(48) Rotor Knives
(49) The rotor 361 includes a drive shaft 369 and rotor knives 363 that are attached or mounted to the drive shaft 369 (
(50) In a preferred embodiment shown in
(51) As shown in
(52) Fixed Knife
(53) The fixed knife 364 is fixed to a knife mount 467 (
(54) The fixed knife 364 includes teeth 370. The teeth 370 may be any suitable shape. For example, the teeth may be block shaped (
(55) The fixed knife 364 may also include a groove 463 (
(56) Interaction of Rotor with Fixed Knife
(57) As seen in
(58) As seen in
(59) The throughput capacity of the recyclable material can be optimized by controlling the clearance between the tips of the rotor knives 363 and the door 501, which forms part of the back wall (
(60) Diverter Mechanism
(61) The secondary shredder 360 may include the diverter mechanism 365 (
(62) When the diverter mechanism 365 is in the engaged position to allow the recyclable material to be further shredded by the secondary shredder 360, the diverter fingers 465 intermesh with the rotor 361 of the secondary shredder 360 so that the recyclable material is caused to be further shredded by the secondary shredder 360. Furthermore, when the diverter mechanism 365 is in the engaged position, the rotor 361 rotates in a first direction (e.g. clockwise in
(63) When the diverter mechanism 365 is moved to the disengaged position to allow the recyclable material to pass to the auger 380, the diverter fingers 465 of the diverter mechanism 365 do not intermesh with the rotor 361 of the secondary shredder 360, creating an opening between the diverter mechanism 365 and the rotor 361. Furthermore, when the diverter mechanism 365 is in the disengaged position, the rotor 361 rotates in a direction towards the opening between the diverter mechanism 365 and the rotor 361. In the embodiment illustrated in
(64) The diverter mechanism 365 may be driven by any suitable drive mechanism. For example, the drive mechanism may be driven by the illustrated hydraulic cylinder 481 (
(65) In another embodiment of the shredder system 450, other components within the housing of the secondary shredder 360 may be moved. For example, if the diverter mechanism 365 is fixed to the mounting structure 390, so there is no significant opening between the diverter mechanism 365 and the rotor 361, the fixed knife 364 may be moveable by a drive mechanism (not shown) to create an opening so that the recyclable material may pass from the primary shredder 350 to the auger 380 without being shredded by the secondary shredder 360. For example, the fixed knife 364 may be moved between an engaged position, in which it causes the recyclable material to be further shredded by the secondary shredder 360, and a disengaged position, in which it allows the recyclable material to pass through the opening to the auger 380. The drive mechanism in this embodiment will perform in the same way as the drive mechanism used to drive the diverter mechanism 365 in the previously described embodiment.
(66) In this configuration, when the fixed knife 364 is in the engaged position, the fixed knife 364 interacts with the rotor 361 so that the recyclable material will be further shredded by the secondary shredder 360. Furthermore, when the fixed knife 364 is in the engaged position, the rotor 361 runs in a direction (e.g. clockwise) towards the fixed knife 364 to further shred the recyclable material.
(67) When the fixed knife 364 is in the disengaged position to allow the recyclable material to pass to the auger 380 without being shredded by the secondary shredder 360, the fixed knife 364 does not interact with the rotor 361, creating an opening between the fixed knife 364 and the rotor 361. Furthermore, when the fixed knife 364 is in the disengaged position, the rotor 361 continues to run in the first direction (e.g. clockwise) toward the opening between the fixed knife 364 and the rotor 361. The rotation of the rotor 361 in the first direction, towards the opening, helps guide the recyclable material to the auger 380. As seen in
(68) Auger
(69) The auger 380 (
(70) Chain Drive Mechanism of Auger
(71) As seen in
(72) The chain drive mechanism 391 is configured to rotate the first auger shaft 381 in a first direction and the second auger shaft 382 in a second direction where the first direction is opposite to the second direction. The interaction between the chain drive mechanism 391, the drive unit 388, the first auger shaft 381 and the second auger shaft 382 causes the first auger shaft 381 to rotate in the first direction and the second auger shaft 382 to rotate in the second direction. Because the first direction is opposite to the second direction, if the first direction is clockwise, the second direction is counterclockwise. Preferably, the first auger shaft 381 rotates counterclockwise and the second auger shaft 382 rotates clockwise. The counter rotating auger shafts 381, 382 thoroughly mix the shredded recyclable material, split the shredded recyclable material stream and distribute the shredded recyclable material stream. Thus, because of the thorough mixing that results from the counter rotating auger shafts 381, 382, the probability of finding shreds that were adjacent prior to entering the shredder system 450 is decreased because the population and location of shreds that must be examined to find adjacent shreds, increases when the shredded recyclable material exits the shredder system 450. For example, when the first auger shaft 381 rotates counterclockwise and the second auger shaft 382 rotates clockwise, the shredded recyclable material is pushed perpendicular to the bottom portion of the helical flight and towards the outside of shredder system 450.
(73) Tensioner
(74) The chain drive mechanism 391 may also contact a tensioner 384 that is configured to self-tension the chain drive mechanism 391. For example, the chain drive mechanism 391 may contact an upper portion of the drive unit 388, an upper portion of the first auger shaft 381, bottom and side portions of the second auger shaft 382 and a side portion of the tensioner 384. The tensioner 384 is designed to balance imposed forces from chain drive mechanism 391.
(75) The tensioner 384 includes a mechanism 386 that is configured to increase or decrease the tension in the chain drive mechanism 391. The mechanism 386 may include a plurality of washers 387, such as Belleville spring washers, that provide spring loaded tension to accommodate for wear of the chain drive mechanism 391. Additionally, the mechanism 386 may accommodate for wear of the chain sprockets and components of the tensioner 384 itself. Although the tensioner 384 is a self tensioner, the mechanism 386 may also include a nut 389 and no springs. The nut 389 may be loosened or tightened to manually alter the tension in the chain drive mechanism 391.
(76) Control System
(77) As seen in
(78) Motor Vehicle
(79) Preferably the shredder system 450 is disposed in a motor vehicle 300. Though the disclosed motor vehicle 300 is a truck, other types of vehicles could be used. As seen in
(80) Shredding and Collection Compartments of Motor Vehicle
(81) The compartment 303 may include one or more sub-compartments for receiving the recyclable material. The motor vehicle 300 also may include additional compartments that serve different purposes. For example, as seen in
(82) The shredding compartment 331 may include auxiliary equipment for collecting and shredding the recyclable material. As seen in
(83) When the shredder system 450 is disposed on the motor vehicle 300, the smaller diameter of the first auger shaft 381 and the second auger shaft 382 helps keep the shredder system 450 compact, allowing the shredder system 450 to fit within the motor vehicle 300 without also having to modify other equipment in the motor vehicle 300 (e.g. the bin lifting device 312, the hopper 311 and the compartment 303). Because the first auger shaft 381 rotates in a direction opposite to the second auger shaft 382, the shredded recyclable material is evenly distributed within the collection compartment 332. For example, when the first auger shaft 381 rotates counterclockwise and the second auger shaft 382 rotates clockwise, the shredded recyclable material is pushed perpendicular to the bottom portion of the helical flight and toward the outside of the storage compartment 332.
Alternative Embodiments
(84) In alternative embodiments of the shredder system, more than two shredders could be used to shred the recyclable material. Such an embodiment may include shredders that are bypassed or shredders swinging or sliding in modules. Moreover, in an alternative embodiment, the geometrical shape, size, materials used, heat treatment and surface finish of the knives could be modified.
(85) Yet in another embodiment, a stand alone shredder system could be used. The shredder system could be supported on a higher stand and a discharge conveyor could be integrated under the secondary shredder to carry shredded recyclable material to other processing equipment such as a baler. The infeed hopper to the primary shredder could be designed to receive material from a feed conveyor. The primary shredder could be separated from the secondary shredder to facilitate the addition of material handling conveyors and magnetic separation equipment to remove metal contaminants after the primary shred operation to protect the secondary shredder from damage. Without the physical constraints of the current mobile design, additional alternative configurations of the secondary shredder are possible.
(86) One versed in the art would appreciate that there may be other embodiments and modifications within the scope and spirit of the disclosure. Accordingly, all modifications attainable by one versed in the art from the present disclosure, within its scope and spirit, are to be included as further embodiments of the present disclosure.