SYSTEM AND METHOD FOR SEPARATION OF ORGANICS AND LIQUIDS FROM WASTE MATERIAL
20200398321 ยท 2020-12-24
Inventors
Cpc classification
B01D29/60
PERFORMING OPERATIONS; TRANSPORTING
B09B3/20
PERFORMING OPERATIONS; TRANSPORTING
B09B5/00
PERFORMING OPERATIONS; TRANSPORTING
B30B9/14
PERFORMING OPERATIONS; TRANSPORTING
B30B9/18
PERFORMING OPERATIONS; TRANSPORTING
B07B1/00
PERFORMING OPERATIONS; TRANSPORTING
B01D29/885
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A waste processing system and method for improving compaction and/or separating organics and liquids from waste material. An elongated extrusion screw and/or an adjustable compression gate may be provided to improve the compression of waste material. An improved extraction tube may also be provided to facilitate separation and removal of organics and other liquids from the compressed material. At least one sensor may be provided for sensing an increasing accumulation of waste material awaiting to be processed. An exemplary embodiment may also be adapted to add dry fraction to a waste load that is wet with organics or other liquids to improve compressibility. A system and method may also be adapted to automatically adjust to improve compression of the material and facilitate more efficient production.
Claims
1. A system for separation of organics and liquids from waste material, said system comprising: a processing chamber adapted to receive material to be processed; a cantilevered screw having a proximal portion and a distal portion, said proximal portion situated within said processing chamber, said cantilevered screw adapted to process the material; and an extraction tube adapted to receive the material processed by said cantilevered screw, said extraction tube connected to said processing chamber such that said distal portion of said cantilevered screw extends into said extraction tube for a distance that is at least 1 time an inner diameter at an entry of said extraction tube.
2. The system of claim 1 wherein said distal portion of said cantilevered screw extends into said extraction tube for a distance that is between 1 and 1.5 times said inner diameter at said entry of said extraction tube.
3. The system of claim 1 wherein said extraction tube is adapted to facilitate compression of the material such that organics and liquids are separated from the material.
4. The system of claim 3 wherein said extraction tube is perforated with at least one hole such that organics and other liquids are adapted to drain or be expelled from said extraction tube when the material therein is compressed.
5. The system of claim 4 further comprising a compression gate adapted to influence a flow of the material through said extraction tube to a desired degree such that said compression gate is adapted to increase or decrease compression of the material in said extraction tube to a desired degree.
6. The system of claim 5 wherein said compression gate is adapted to be automatically adjusted to influence the flow of the material through said extraction tube in response to a level of material awaiting to be processed by said cantilevered screw.
7. The system of claim 6 further comprising: a hopper adapted to direct material into said processing chamber to be processed; and a level sensor positioned to determine a level of the material in said hopper; wherein said system is adapted to automatically adjust said compression gate in response to the level of the material in said hopper.
8. The system of claim 5 wherein said system is adapted to automatically adjust said compression gate in response to an amount of organics and liquid in the material.
9. The system of claim 5 wherein: said system is adapted to automatically adjust said compression gate to increase compression of the material; and said system is adapted to automatically adjust said compression gate to decrease compression of the material.
10. The system of claim 4 further comprising a collection tank associated with said extraction tube such that said collection tank is adapted to collect organics and liquids that drain or are expelled from said extraction tube when the material therein is compressed.
11. A system for adding dry fraction to a waste infeed, said system comprising: an extraction system adapted to receive, compress, and separate organics and liquids from a waste infeed such that a dry fraction results; and a recirculating loop configured to receive the dry fraction from said extraction system, said recirculating loop comprising a storage bunker adapted to collect the dry fraction, and said recirculating loop adapted to automatically transfer the dry fraction from said storage bunker to said extraction system to be added to the waste infeed to improve compressibility.
12. The system of claim 11 wherein said recirculating loop comprises a screening section adapted to screen fine particles off the dry fraction prior to the dry fraction being collected in said storage bunker.
13. The system of claim 12 wherein said recirculating loop comprises at least one conveyor adapted to transfer the dry fraction from said screening section to said storage bunker.
14. The system of claim 13 wherein said at least one conveyor comprises a bi-directional conveyor adapted to transfer the dry fraction to said storage bunker as needed or until said storage bunker is full, and said bi-directional conveyor further adapted to transfer the dry fraction to another location when the dry fraction is not needed or said storage bunker is full.
15. The system of claim 11 wherein said recirculating loop comprises at least one conveyor adapted to transfer the dry fraction from said extraction system to said storage bunker.
16. The system of claim 15 wherein said at least one conveyor comprises a bi-directional conveyor adapted to transfer the dry fraction to said storage bunker as needed or until said storage bunker is full, and said bi-directional conveyor further adapted to transfer the dry fraction to another location when the dry fraction is not needed or said storage bunker is full.
17. The system of claim 11 wherein said recirculating loop comprises a dry fraction return system comprising at least one conveyor adapted to automatically transfer the dry fraction from said storage bunker to said extraction system to be added to the waste infeed to improve compressibility.
18. The system of claim 11 wherein said recirculating loop comprises: a screening section adapted to screen fine particles off the dry fraction prior to the dry fraction being collected in said storage bunker; a bi-directional transfer mechanism adapted to receive the dry fraction from said screening section, said bi-direction transfer mechanism adapted to transfer the dry fraction to said storage bunker as needed or until said storage bunker is full, and said bi-directional transfer mechanism further adapted to transfer the dry fraction to another location when the dry fraction is not needed or said storage bunker is full; and a dry fraction return system comprising at least one transfer device adapted to automatically transfer the dry fraction from said storage bunker to said extraction system to be added to the waste infeed to improve compressibility.
19. The system of claim 11 wherein said extraction system comprises a compression gate adapted to influence a flow of the waste infeed through said extraction system to a desired degree such that said compression gate is adapted to increase or decrease compression of the waste infeed in said extraction system to a desired degree.
20. The system of claim 11 wherein said extraction system is adapted to be automatically adjusted to influence a flow of the waste infeed through said extraction system in response to a level of waste infeed awaiting to be processed by said extraction system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENT(S)
[0020] Exemplary embodiments of the present invention are directed to systems and methods for compressing waste material and/or separating organics and other liquids from a waste load. As a result, exemplary embodiments may facilitate effective diversion of waste materials.
[0021]
[0022] In an exemplary embodiment, a compression section 24 comprises an extraction tube 26, wherein cantilevered screw 22 extends into extraction tube 26 for a distance that is at least 1 time (e.g., between 1 and 1.5 times) the inner diameter at the entry of the extraction tube 26. As a result, extraction tube 26 is connected to processing chamber 28 (which houses a proximal portion 22b of cantilevered screw 22) such that it receives material processed (i.e., extruded) by cantilevered screw 22, and the elongated length of cantilevered screw 22 improves the compressive force on the material in extraction tube 26 as compared to a system having a shorter screw. In an exemplary embodiment, extraction tube 26 allows for organics and other liquids to be separated from waste material such that a dryer fraction results (which will be collectively referred to as a dry fraction herein). For example, waste material may be compressed in extraction tube 26, and organics and other liquids may be removed from extraction tube 26. In an exemplary embodiment, organics and other liquids may drain out of or be expelled from extraction tube 26. For instance, extraction tube 26 may be perforated with at least one hole (e.g., at bottom 30 and/or along any other portion of extraction tube 26) such that organics and other liquids may drain or be expelled from extraction tube 26 when material therein is compressed. In an exemplary embodiment, compression section 24 may be connected or otherwise associated with a collection tank that may collect the organics and other liquids that are removed from extraction tube 26. Such organics and other liquids may subsequently be diverted to another purpose.
[0023] An exemplary embodiment of an extraction tube 26 may include features to assist with processing of the waste material. For instance, such as shown in
[0024] As shown in
[0025] For instance, an exemplary embodiment of a system 10 may also include a level sensor 50 that is adapted to detect a level of material that is awaiting to be processed by a cantilevered screw system 20. By detecting an abnormally high level of material awaiting to be processed, an exemplary embodiment of a level sensor 50 may help determine that processing of the material may be inhibited, such as may occur when there is an excessive amount of organics or other liquids in the waste that is inhibiting compaction. For example, such as shown in
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[0028] For instance, a dry fraction recirculating loop 210 of system 200 may be useful for wet loads such as those from a restaurant to improve compressibility. In an exemplary operation, system 200 may comprise an input delivery system 230 to deliver a waste load to hopper 60. In this example, input delivery system 230 comprises a conveyor 230a for receiving a waste load such as from a garbage truck, and a conveyor 230b that receives the waste load from conveyor 230a and transfers the waste load to hopper 60. In an exemplary embodiment, trash may also be sorted/picked from conveyor 230b prior to being deposited in hopper 60. While this example of input delivery system 230 comprises two conveyors, other exemplary embodiments of an input delivery system may comprise any suitable number of any suitable type of transfer device to transfer a waste load to an input hopper. The material is then compressed (e.g., such as by system 10, system 100, or the like), and organics and liquids are collected in collection tank 110. The remaining dry fraction proceeds into recirculating loop 210. Fine particles may be separated from the dry fraction in screening section 214. In this exemplary embodiment, the dry fraction is transferred by conveyor 214a to bi-directional transfer mechanism 216. Bi-directional transfer mechanism 216 may deposit dry fraction in storage bunker 212 (e.g., as needed or until full). If there is not a demand for dry fraction, bi-directional transfer mechanism 216 may transfer the dry fraction in another direction for another purpose (e.g., pile 218). In the event of a wet input load to hopper 60, dry fraction return system 220 may transfer dry fraction from storage bunker 212 to hopper 60. In an exemplary embodiment, the process of recirculating loop 210 may be repeated indefinitely and/or automatically in order to improve the processing of wet loads.
[0029] Any embodiment of the present invention may include any of the optional or preferred features of the other embodiments of the present invention. The exemplary embodiments herein disclosed are not intended to be exhaustive or to unnecessarily limit the scope of the invention. The exemplary embodiments were chosen and described in order to explain some of the principles of the present invention so that others skilled in the art may practice the invention. Having shown and described exemplary embodiments of the present invention, those skilled in the art will realize that many variations and modifications may be made to the described invention. Many of those variations and modifications will provide the same result and fall within the spirit of the claimed invention. It is the intention, therefore, to limit the invention only as indicated by the scope of the claims.