ORGANIC WASTE SEPARATOR FOR UNDER A SINK
20200018053 ยท 2020-01-16
Assignee
Inventors
Cpc classification
B02C23/08
PERFORMING OPERATIONS; TRANSPORTING
B02C18/00
PERFORMING OPERATIONS; TRANSPORTING
B02C2201/06
PERFORMING OPERATIONS; TRANSPORTING
E03C1/2665
FIXED CONSTRUCTIONS
International classification
E03C1/266
FIXED CONSTRUCTIONS
B02C23/08
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A waste separator for attachment to a sink drain pipe is provided, the waste separator comprising: a transverse pipe, the transverse pipe including a proximal end, a distal end, a sidewall therebetween, a solid waste outlet at the distal end and a magnetic flange on the sidewall, the transverse pipe defining a transverse bore, the transverse bore housing a motor-driven auger and a cylindrical filter between the motor-driven auger and the transverse pipe sidewall; a sink wastewater inlet in a vicinity of the proximal end, the sink wastewater inlet normal to the transverse bore and in fluid communication with the transverse bore; a normally-closed solenoid valve, the normally-closed solenoid valve in a vicinity of the distal end of the transverse pipe; a lower vessel, the lower vessel including a waste water outlet, the lower vessel defining an interior, the interior in fluid communication with the transverse bore proximate the proximal end; and a microprocessor, the microprocessor in electronic communication with the normally-closed solenoid valve.
Claims
1. A waste separator for attachment to a sink drain pipe, the waste separator comprising: a transverse pipe, the transverse pipe including a proximal end, a distal end, a sidewall therebetween, a solid waste outlet at the distal end and a magnetic flange on the sidewall, the transverse pipe defining a transverse bore, the transverse bore housing a motor-driven, non-cutting urging mechanism and a cylindrical filter between the motor-driven, non-cutting urging mechanism and the transverse pipe sidewall; a sink wastewater inlet in a vicinity of the proximal end, the sink wastewater inlet normal to the transverse bore and in fluid communication with the transverse bore; a normally-closed solenoid valve, the normally-closed solenoid valve in a vicinity of the distal end of the transverse pipe; a lower vessel, the lower vessel including a waste water outlet, the lower vessel defining an interior, the interior in fluid communication with the transverse bore proximate the proximal end; and a microprocessor, the microprocessor in electronic communication with the normally-closed solenoid valve.
2. The waste separator of claim 1, further comprising an upper pipe, the upper pipe disposed between the sink wastewater inlet and the transverse pipe, the upper pipe defining an upper bore, the upper bore in fluid communication with the sink wastewater inlet and the transverse bore.
3. The waste separator of claim 2, wherein the lower vessel is a lower pipe and the interior is a lower bore, the lower bore vertically aligned with the upper bore to provide a flow-through bore.
4. The waste separator of claim 3, further comprising a solenoid latch set on the normally-closed solenoid flap valve and the distal end, the solenoid latch set in electronic communication with the microprocessor.
5. The waste separator of claim 4, further comprising a gasket between the distal end and the normally-closed solenoid valve.
6. The waste separator of claim 5, wherein the non-cutting urging mechanism is a piston.
7. The waste separator of claim 5, wherein non-cutting urging mechanism is a non-cutting auger.
8. A waste separator and collector system for use under a sink, the waste separator comprising: a transverse pipe, the transverse pipe including a proximal end, a distal end, a sidewall therebetween, a solid waste outlet at the distal end and a magnetic flange on the sidewall, the transverse pipe defining a transverse bore, the transverse bore housing a non-cutting motor-driven urging mechanism and a cylindrical filter between the non-cutting motor-driven urging mechanism and the transverse pipe sidewall; a sink wastewater inlet in a vicinity of the proximal end, the sink wastewater inlet normal to the transverse bore and in fluid communication with the transverse bore; a normally-closed solenoid valve, the normally-closed solenoid valve in a vicinity of the distal end of the transverse pipe; a lower vessel, the lower vessel including a waste water outlet, the lower vessel defining an interior, the interior in fluid communication with the transverse bore proximate the proximal end; and a microprocessor, the microprocessor in electronic communication with the normally-closed solenoid valve, and the collector comprising: a front; a back; the back defining an aperture; a movable seal which covers the aperture; sides; a top, the top including a lid; and a bottom, to define an interior, at least the distal end of the transverse pipe extending into the interior through the aperture such that the magnetic flange abuts the back of the collector and magnetically, releasably seals the transverse pipe to the back.
9. The system of claim 8, wherein the waste separator further comprises an upper pipe, the upper pipe disposed between the sink wastewater inlet and the transverse pipe, the upper pipe defining an upper bore, the upper bore in fluid communication with the sink wastewater inlet and the transverse bore.
10. The system of claim 9, wherein the movable seal is a pair of flaps that cover the aperture.
11. The system of claim 10, wherein system includes an alarm and the collector includes a sensor which senses when the collector is full, the alarm and the sensor in electronic communication with the microprocessor.
12. The system of claim 11 wherein the waste separator further comprises a solenoid latch set on the normally-closed solenoid valve and the distal end, the solenoid latch set in electronic communication with the microprocessor.
13. The system of claim 12, wherein the waste separator further comprises a gasket between the distal end and the normally-closed solenoid flap valve.
14. The system of claim 13, further comprising a Bluetooth transceiver in electronic communication with the microprocessor.
15. The system of claim 14 further comprising a computing device, the computing device in radio communication with the Bluetooth transceiver.
16. The system of claim 15, further comprising an application on the computing device and a weigh scale in the collector, the weigh scale in electronic communication with the Bluetooth transceiver, the application for tracking a weight of organic waste.
17. The system of claim 16, wherein the computing device is a handheld, mobile device.
18. The system of claim 17, wherein the non-cutting, motor-driven urging mechanism is a non-cutting, motor-driven auger.
19. The system of claim 17, wherein the non-cutting, motor driven urging mechanism is a piston.
20. A method of separating organic, solid waste in waste water from liquid waste and collecting the organic solid waste using a system plumbed into a drain pipe for a sink, the system including a bin, a waste separator which is releasably, magnetically connected to the bin at a connection, the connection isolating the bin and the waste separator from the ambient, the waste separator including a solid waste outlet, the solid waste outlet including a normally-closed solenoid valve, the method comprising: a user actuating the waste separator as waste water flows into the system; the system opening the normally-closed solenoid valve; the waste separator urging the organic solid waste into the bin; and the liquid waste exiting the system into the drain pipe.
21. The method of claim 19, further comprising: the user inactivating the waste separator; and the system closing the normally-closed solenoid valve.
22. The method of claim 20, further comprising the system reporting a full bin.
Description
FIGURES
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DESCRIPTION
[0040] Except as otherwise expressly provided, the following rules of interpretation apply to this specification (written description and claims): (a) all words used herein shall be construed to be of such gender or number (singular or plural) as the circumstances require; (b) the singular terms a, an, and the, as used in the specification and the appended claims include plural references unless the context clearly dictates otherwise; (c) the antecedent term about applied to a recited range or value denotes an approximation within the deviation in the range or value known or expected in the art from the measurements method; (d) the words herein, hereby, hereof, hereto, hereinbefore, and hereinafter, and words of similar import, refer to this specification in its entirety and not to any particular paragraph, claim or other subdivision, unless otherwise specified; (e) descriptive headings are for convenience only and shall not control or affect the meaning or construction of any part of the specification; and (f) or and any are not exclusive and include and including are not limiting. Further, the terms comprising, having, including, and containing are to be construed as open ended terms (i.e., meaning including, but not limited to,) unless otherwise noted.
[0041] Recitation of ranges of values herein are merely intended to serve as a shorthand method of referring individually to each separate value falling within the range, unless otherwise indicated herein, and each separate value is incorporated into the specification as if it were individually recited herein. Where a specific range of values is provided, it is understood that each intervening value, to the tenth of the unit of the lower limit unless the context clearly dictates otherwise, between the upper and lower limit of that range and any other stated or intervening value in that stated range, is included therein. All smaller sub ranges are also included. The upper and lower limits of these smaller ranges are also included therein, subject to any specifically excluded limit in the stated range.
[0042] Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the relevant art. Although any methods and materials similar or equivalent to those described herein can also be used, the acceptable methods and materials are now described.
Definitions
[0043] Computing devicein the context of the present technology, a computing device is a cellular phone, a tablet, a laptop, desktop or purpose-built computing device. It has a memory and a processor.
[0044] Handheld, mobile devicein the context of the present technology, a handheld, mobile device is a cell phone, a tablet or a laptop.
[0045] Dishwasher wastewaterin the context of the present technology, dishwasher wastewater is a mixture of liquid waste and organic solids that is pumped out of the dishwasher and into the drain.
[0046] Sink wastewaterin the context of the present technology, sink wastewater is a mixture of liquid waste and organic solids that is released from the sink into the drain.
[0047] Filtered wastewaterin the context of the present technology, filtered wastewater is water that has passed through the filter in the waste separator and has a significantly reduced solid organic waste content.
[0048] Non-cutting urging mechanismin the context of the present technology, a non-cutting urging mechanism includes a non-cutting auger and a piston.
DETAILED DESCRIPTION
[0049] A waste separator and collector system, generally referred to as 10 is shown in
[0050] As shown in
[0051] In another embodiment, the non-cutting auger 62 is replaced with a piston or plunger 162. As for the auger, the transverse bore 50 houses the piston 162 that is attached to the motor 58 at the proximal end 64 of the transverse pipe 36. The piston 162 is 3 inches in diameter with a 3 inch pitch and is 8 inches long. The piston 62, as would be known to one skilled int the art, is non-cutting. This allows the piston to urge the food scraps to the solid waste outlet 24 without creating small particles that could clog the cylindrical filter 66. The cylindrical filter 66 is attached at both the proximal end 64 and the distal end 66 of the transverse pipe 36 and lies between the piston 162 and the inner surface 68 of the transverse pipe 36. As shown in
[0052] The liquid waste and solid organic waste enter the waste separator 12 through the dishwasher wastewater inlet 20 and the sink wastewater inlet 22. When they reach the transverse pipe 36, the auger 62 drives the organic solid waste towards the solid waste outlet 24 and the liquid waste continues to flow under the force of gravity through the filter 66 to the lower pipe 38 as filtered wastewater. The efficiency of the process is demonstrated in Example 1.
[0053] As shown in
[0054] As shown in
[0055] As shown in
[0056] As shown in
[0057] As shown in
Example 1
[0058] The waste separator and collector system 10 was run and the following data were obtained: [0059] Average food waste extracted: 95%. [0060] Average free liquids removed: 100%. [0061] Longest dimension of solids capable of being processed (not including soft organics e.g. banana peels, which can be much larger): 3 inches. [0062] Filter size (minimum food waste size): 5/32 inch (noting that smaller food particles may be augured by being entrapped within larger particles). [0063] Running time: 6 seconds minimum. [0064] Max power: 200 W.
[0065] While example embodiments have been described in connection with what is presently considered to be an example of a possible most practical and/or suitable embodiment, it is to be understood that the descriptions are not to be limited to the disclosed embodiments, but on the contrary, is intended to cover various modifications and equivalent arrangements included within the spirit and scope of the example embodiment. Those skilled in the art will recognize or be able to ascertain using no more than routine experimentation, many equivalents to the specific example embodiments specifically described herein. Such equivalents are intended to be encompassed in the scope of the claims, if appended hereto or subsequently filed.