Patent · US11278913B1 · B1 · US
Systems for separating copper from shredder residue
- (11) Publication number
- US11278913B1
- (21) Application number
- 17/374,495
- (22) Filing date
- 2021-07-13
- (30) Priority date
- 2021-07-13
- (43) Publication date
- 2022-03-22
- (45) Date of grant
- 2022-03-22
- (51) IPC
- B03B 5/48; B03B 9/06
- (52) CPC
- B03B Separating solid materials using liquids or using pneumatic tables or jigs: 5/48, 2009/068, 9/06, 9/061
- B07B Separating solids from solids by sieving, screening, sifting or by using gas currents; separating by other dry methods applicable to bulk material, e.g. loose articles fit to be handled like bulk material: 13/00
- Y02P Climate change mitigation technologies in the production or processing of goods: 10/20
- Y02W Climate change mitigation technologies related to wastewater treatment or waste management: 30/52, 30/62
- (73) Assignee
- RECYCLING LLC SA
- (72) Inventors
- Mike Adams; George Adams; Clifford Glen Newby; Alex Meza
- (54) Title
- Systems for separating copper from shredder residue
- (57) Abstract
Systems and methods for separating materials and recovery of valuable copper from shredded end-of-life vehicles and appliances are disclosed. Shredded matter, or ASR, is sent through a series of sorters before reaching a system that separates out copper bits. The system utilizes a pair of conveyor belts; one for de-watering and removing most of the plastic and glass particles and a second below the first for separating the copper bits. The second conveyor belt has a belt with a particular tooth pattern and material softness, and is set at a slight uphill incline angle. Water is delivered from the top down the slope and the belt successfully transports mostly just copper up and over a top edge to a collection bin. A cascading series of pairs of conveyors may be used to ensure nearly complete recovery of the copper.
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Claims (18)
- A separator system for separating copper from shredded waste, comprising: a macro separator configured to perform an initial segregation of lighter material from heavier material in a stream of shredded waste; at least two copper recovery conveyors disposed below the macro separator, each copper recovery conveyor including a recovery conveyor belt inclined at an upward angle of between 0-15°, the recovery conveyor belt being formed of an elastomeric material having a series of distributed cleats thereon that carry heavier material including copper over an upper end of the recovery conveyor belt, and at least one water jet being aimed at an upper end of the recovery conveyor belt to cause a downward flow of water over the top of the recovery conveyor belt so as to wash lighter material over a lower end of the recovery conveyor belt, wherein there is one macro separator associated with and placed above each copper recovery conveyor in the system and positioned to drop heavier material onto a mid-point of the associated copper recovery conveyor, and each copper recovery conveyor is positioned over a next lower macro separator to drop lighter material onto a mid-point of the next lower macro separator.
- The system of claim 1, wherein the cleats comprise wedge-shaped elements that extend upward from a planar base of the recovery conveyor belt, the wedge-shaped elements having a tall leading end tapering downward to a trailing end at the level of the planar base.
- The system of claim 2, wherein the cleats are arranged in linear rows extending laterally across the recovery conveyor belt, and wherein cleats in any one row are laterally offset from cleats in adjacent rows.
- The system of claim 3, wherein the elastomeric material of the conveyor belt is 2-ply PVC with a durometer of 50 as measured on the A-scale.
- The system of claim 1, wherein the elastomeric material of the conveyor belt is 2-ply PVC with a durometer of 50 as measured on the A-scale.
- The system of claim 1, wherein each copper recovery conveyor is adjustably mounted such that the upward angle is adjustable.
- The system of claim 1, wherein each pair of one macro separator and one copper recovery conveyor is mounted in a framework to form a modular unit, and wherein a plurality of modular units are stacked on top of each other.
- The system of claim 7, wherein the stacked plurality of modular units has a series of connected waste chutes for transporting away lighter material from each of the macro separators to a common waste receptacle, and a series of connected recovery chutes for transporting away heavier material from each of the copper recovery conveyors to a common recovery receptacle.
- The system of claim 7, wherein the stacked plurality of modular units has a network of connected water pipes to supply water to each of the water jets for the respective copper recovery conveyors, and one common water inlet.
- A separator system for separating copper from shredded waste, comprising: a macro separator configured to perform an initial segregation of lighter material from heavier material in a stream of shredded waste, the macro separator comprising a rotating conveyor belt inclined at an upward angle and having at least one water jet being aimed at an upper end of the conveyor belt to cause a downward flow of water over the top of the conveyor belt; a copper recovery conveyor associated with and disposed below the macro separator and positioned to receive material dropped from an upper end of the macro separator, the copper recovery conveyor including a recovery conveyor belt inclined at an upward angle, the recovery conveyor belt being formed of an elastomeric material having a series of distributed wedge-shaped cleats thereon, the wedge-shaped elements having a tall leading end tapering downward to a trailing end at the level of the planar base, and at least one water jet being aimed at an upper end of the conveyor belt to cause a downward flow of water over the top of the recovery conveyor belt, wherein there are a plurality of macro separators each associated with and placed above a different associated copper recovery conveyor and positioned to drop heavier material onto a mid-point of the associated copper recovery conveyor, and each copper recovery conveyor is positioned over a next lower macro separator to drop lighter material onto a mid-point of the next lower macro separator.
- The system of claim 10, wherein the cleats are arranged in linear rows extending laterally across the recovery conveyor belt, and wherein cleats in any one row are laterally offset from cleats in adjacent rows.
- The system of claim 11, wherein the elastomeric material of the recovery conveyor belt is 2-ply PVC with a durometer of 50 as measured on the A-scale.
- The system of claim 10, wherein the elastomeric material of the recovery conveyor belt is 2-ply PVC with a durometer of 50 as measured on the A-scale.
- The system of claim 10, wherein the copper recovery conveyor is adjustably mounted such that the upward angle is adjustable.
- The system of claim 14, wherein the recovery conveyor is inclined between 0-15°, and the macro separator conveyor belt is inclined between 0-4°.
- The system of claim 10, wherein each pair of one macro separator and one copper recovery conveyor is mounted in a framework to form a modular unit, and wherein a plurality of modular units are stacked on top of each other.
- The system of claim 16, wherein the stacked plurality of modular units has a series of connected waste chutes for transporting away lighter material from each of the macro separators to a common waste receptacle, and a series of connected recovery chutes for transporting away heavier material from each of the copper recovery conveyors to a common recovery receptacle.
- The system of claim 16, wherein the stacked plurality of modular units has a network of connected water pipes to supply water to each of the water jets for the respective copper recovery conveyors, and one common water inlet.
Description
A portion of the disclosure of this patent document contains material which is subject to copyright protection. This patent document may show and/or describe matter which is or may become trade dress of the owner. The copyright and trade dress owner has no objection to the facsimile reproduction by anyone of the patent disclosure as it appears in the Patent and Trademark Office patent files or records, but otherwise reserves all copyright and trade dress rights whatsoever.
This disclosure relates to material separation, such as recovery of metals from end-of-life vehicles.
Approximately 12-15 million vehicles reach the end of their use each year in just the United States alone. For economic and ecological reasons, recovery of the metal and other materials contained in the scrap vehicles is becoming more important. About 65% of a typical car is made from steel, and the rest is made of other metals plus glass, rubber, foam and fiber.
The process of vehicle recycling typically first includes the pretreatment or de-pollution (e.g., removal of tires, battery, lubricants and fuel), shredding the vehicle using an industrial shredder (essentially a large hammer mill), and then sorting the shredded pieces to recover valuable material.
In the automobile recycling industry, when an industrial shredder processes an automobile, the output material is commonly known as automobile shredder residue, or ASR. For convenience, the output material from an industrial shredder will be called ASR, even if it is derived from articles other than automobiles.
Citations (17)
- US2153046A
- US3817458A
- US5080291A
- US5485925A
- US6903294B1
- US20030141225A1
- US20090126238A1
- US20070187299A1
- US20080128333A1
- US20080257794A1
- US20110186660A1
- US8636148B2
- KR101227633B1
- CN203061283U
- US20190211419A1
- CN205074071U
- CN108576844A
Record as JSON
{
"publication_number": "US11278913B1",
"country": "US",
"kind": "B1",
"title": "Systems for separating copper from shredder residue",
"abstract": "Systems and methods for separating materials and recovery of valuable copper from shredded end-of-life vehicles and appliances are disclosed. Shredded matter, or ASR, is sent through a series of sorters before reaching a system that separates out copper bits. The system utilizes a pair of conveyor belts; one for de-watering and removing most of the plastic and glass particles and a second below the first for separating the copper bits. The second conveyor belt has a belt with a particular tooth pattern and material softness, and is set at a slight uphill incline angle. Water is delivered from the top down the slope and the belt successfully transports mostly just copper up and over a top edge to a collection bin. A cascading series of pairs of conveyors may be used to ensure nearly complete recovery of the copper.",
"claims": [
"1. A separator system for separating copper from shredded waste, comprising: a macro separator configured to perform an initial segregation of lighter material from heavier material in a stream of shredded waste; at least two copper recovery conveyors disposed below the macro separator, each copper recovery conveyor including a recovery conveyor belt inclined at an upward angle of between 0-15°, the recovery conveyor belt being formed of an elastomeric material having a series of distributed cleats thereon that carry heavier material including copper over an upper end of the recovery conveyor belt, and at least one water jet being aimed at an upper end of the recovery conveyor belt to cause a downward flow of water over the top of the recovery conveyor belt so as to wash lighter material over a lower end of the recovery conveyor belt, wherein there is one macro separator associated with and placed above each copper recovery conveyor in the system and positioned to drop heavier material onto a mid-point of the associated copper recovery conveyor, and each copper recovery conveyor is positioned over a next lower macro separator to drop lighter material onto a mid-point of the next lower macro separator.",
"2. The system of claim 1, wherein the cleats comprise wedge-shaped elements that extend upward from a planar base of the recovery conveyor belt, the wedge-shaped elements having a tall leading end tapering downward to a trailing end at the level of the planar base.",
"3. The system of claim 2, wherein the cleats are arranged in linear rows extending laterally across the recovery conveyor belt, and wherein cleats in any one row are laterally offset from cleats in adjacent rows.",
"4. The system of claim 3, wherein the elastomeric material of the conveyor belt is 2-ply PVC with a durometer of 50 as measured on the A-scale.",
"5. The system of claim 1, wherein the elastomeric material of the conveyor belt is 2-ply PVC with a durometer of 50 as measured on the A-scale.",
"6. The system of claim 1, wherein each copper recovery conveyor is adjustably mounted such that the upward angle is adjustable.",
"7. The system of claim 1, wherein each pair of one macro separator and one copper recovery conveyor is mounted in a framework to form a modular unit, and wherein a plurality of modular units are stacked on top of each other.",
"8. The system of claim 7, wherein the stacked plurality of modular units has a series of connected waste chutes for transporting away lighter material from each of the macro separators to a common waste receptacle, and a series of connected recovery chutes for transporting away heavier material from each of the copper recovery conveyors to a common recovery receptacle.",
"9. The system of claim 7, wherein the stacked plurality of modular units has a network of connected water pipes to supply water to each of the water jets for the respective copper recovery conveyors, and one common water inlet.",
"10. A separator system for separating copper from shredded waste, comprising: a macro separator configured to perform an initial segregation of lighter material from heavier material in a stream of shredded waste, the macro separator comprising a rotating conveyor belt inclined at an upward angle and having at least one water jet being aimed at an upper end of the conveyor belt to cause a downward flow of water over the top of the conveyor belt; a copper recovery conveyor associated with and disposed below the macro separator and positioned to receive material dropped from an upper end of the macro separator, the copper recovery conveyor including a recovery conveyor belt inclined at an upward angle, the recovery conveyor belt being formed of an elastomeric material having a series of distributed wedge-shaped cleats thereon, the wedge-shaped elements having a tall leading end tapering downward to a trailing end at the level of the planar base, and at least one water jet being aimed at an upper end of the conveyor belt to cause a downward flow of water over the top of the recovery conveyor belt, wherein there are a plurality of macro separators each associated with and placed above a different associated copper recovery conveyor and positioned to drop heavier material onto a mid-point of the associated copper recovery conveyor, and each copper recovery conveyor is positioned over a next lower macro separator to drop lighter material onto a mid-point of the next lower macro separator.",
"11. The system of claim 10, wherein the cleats are arranged in linear rows extending laterally across the recovery conveyor belt, and wherein cleats in any one row are laterally offset from cleats in adjacent rows.",
"12. The system of claim 11, wherein the elastomeric material of the recovery conveyor belt is 2-ply PVC with a durometer of 50 as measured on the A-scale.",
"13. The system of claim 10, wherein the elastomeric material of the recovery conveyor belt is 2-ply PVC with a durometer of 50 as measured on the A-scale.",
"14. The system of claim 10, wherein the copper recovery conveyor is adjustably mounted such that the upward angle is adjustable.",
"15. The system of claim 14, wherein the recovery conveyor is inclined between 0-15°, and the macro separator conveyor belt is inclined between 0-4°.",
"16. The system of claim 10, wherein each pair of one macro separator and one copper recovery conveyor is mounted in a framework to form a modular unit, and wherein a plurality of modular units are stacked on top of each other.",
"17. The system of claim 16, wherein the stacked plurality of modular units has a series of connected waste chutes for transporting away lighter material from each of the macro separators to a common waste receptacle, and a series of connected recovery chutes for transporting away heavier material from each of the copper recovery conveyors to a common recovery receptacle.",
"18. The system of claim 16, wherein the stacked plurality of modular units has a network of connected water pipes to supply water to each of the water jets for the respective copper recovery conveyors, and one common water inlet."
],
"description_excerpt": "A portion of the disclosure of this patent document contains material which is subject to copyright protection. This patent document may show and/or describe matter which is or may become trade dress of the owner. The copyright and trade dress owner has no objection to the facsimile reproduction by anyone of the patent disclosure as it appears in the Patent and Trademark Office patent files or records, but otherwise reserves all copyright and trade dress rights whatsoever.\n\nThis disclosure relates to material separation, such as recovery of metals from end-of-life vehicles.\n\nApproximately 12-15 million vehicles reach the end of their use each year in just the United States alone. For economic and ecological reasons, recovery of the metal and other materials contained in the scrap vehicles is becoming more important. About 65% of a typical car is made from steel, and the rest is made of other metals plus glass, rubber, foam and fiber.\n\nThe process of vehicle recycling typically first includes the pretreatment or de-pollution (e.g., removal of tires, battery, lubricants and fuel), shredding the vehicle using an industrial shredder (essentially a large hammer mill), and then sorting the shredded pieces to recover valuable material.\n\nIn the automobile recycling industry, when an industrial shredder processes an automobile, the output material is commonly known as automobile shredder residue, or ASR. For convenience, the output material from an industrial shredder will be called ASR, even if it is derived from articles other than automobiles.",
"cpc": [
"B03B 5/48",
"B03B 2009/068",
"B03B 9/06",
"B03B 9/061",
"B07B 13/00",
"Y02P 10/20",
"Y02W 30/52",
"Y02W 30/62"
],
"ipc": [
"B03B 5/48",
"B03B 9/06"
],
"assignees": [
"RECYCLING LLC SA"
],
"inventors": [
"Mike Adams",
"George Adams",
"Clifford Glen Newby",
"Alex Meza"
],
"filing_date": "2021-07-13",
"publication_date": "2022-03-22",
"grant_date": "2022-03-22",
"priority_date": "2021-07-13",
"application_number": "US-202117374495-A",
"family_id": "80781860",
"cited_by_count": 4,
"citations": [
"US2153046A",
"US3817458A",
"US5080291A",
"US5485925A",
"US6903294B1",
"US20030141225A1",
"US20090126238A1",
"US20070187299A1",
"US20080128333A1",
"US20080257794A1",
"US20110186660A1",
"US8636148B2",
"KR101227633B1",
"CN203061283U",
"US20190211419A1",
"CN205074071U",
"CN108576844A"
]
}
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