Dust and particle separator with vortical action
11446705 ยท 2022-09-20
Inventors
Cpc classification
B04C5/14
PERFORMING OPERATIONS; TRANSPORTING
B04C2009/004
PERFORMING OPERATIONS; TRANSPORTING
B07B9/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
B07B9/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A particle separator is provided for separating small particles from large particles from material. The particle separator includes a conical shaped separator housing that forms a cyclonic separator enclosure, a cover attached at a top portion of the cyclonic separator enclosure, and an opening at a bottom portion of the cyclonic separator enclosure. The cyclonic separator enclosure has an inlet tube with a tangential entry opening along an inner wall of the cyclonic separator enclosure, where the inlet tube projects horizontally outward from an upper portion of the cyclonic separator enclosure. An outlet tube extends upward from a center of the cover with a vacuum unit connected to the outlet tube that creates a vortex in the cyclonic separator enclosure.
Claims
1. A particle separator for separating small particles from large particles from material comprising: a conical shaped separator housing that forms a cyclonic separator enclosure; a cover attached at a top portion of said cyclonic separator enclosure; an inlet tube with a tangential entry opening along an inner wall of said cyclonic separator enclosure, and where said inlet tube projects horizontally outward from an upper portion of said cyclonic separator enclosure; an outlet tube extending upward from a center of said cover; a vacuum unit connected to said outlet tube that creates a vortex in said cyclonic separator enclosure; and an opening at a bottom portion of said cyclonic separator enclosure, where said opening at the bottom portion of said cyclonic separator enclosure has a ledge that divides said opening in half and deflects the larger particulate downward into a collection funnel that feeds into a collection container or bin.
2. The separator of claim 1 further comprising a set of latches or clasps on said cyclonic separator enclosure configured to engage a corresponding set of loops on said cover to provide an airtight and secure connection between said cover and the said cyclonic separator enclosure.
3. The separator of claim 1 further comprising a mesh filter positioned above said tangential opening in said cyclonic separator enclosure.
4. The separator of claim 3 wherein said mesh filter has a mesh size such that the small particulate has a small particle dimension less than the mesh size so as to pass through said mesh and leaving the larger particulate with a large particulate dimension larger than the mesh size within said mesh.
5. The separator of claim 3 wherein said mesh filter has a disc shape.
6. The separator of claim 3 wherein said mesh screen is electrically isolated and carries an electrical charge to function as an electrostatic precipitator.
7. The separator of claim 1 further comprising a controller that adjusts operating parameters.
8. The separator of claim 7 wherein the operating parameters comprise intake flow rates, vacuum pressure, and feed rates.
9. The separator of claim 1 wherein said conical shaped separator housing is part or all transparent.
10. The separator of claim 1 wherein said conical shaped separator housing is formed from one or more of sheet metal, plastics, wood, and combinations thereof.
11. The separator of claim 1 wherein said conical shaped separator housing has a height between about 6 to about 24 inches.
12. The separator of claim 1 wherein said conical shaped separator housing has a height between about 12 to about 18 inches.
13. The separator of claim 1 wherein said conical shaped separator housing has a height between about 14 to about 16 inches.
14. The separator of claim 1 wherein a portion of said inlet tube that projects horizontally outward from the upper portion of the cyclonic separator enclosure is connected to a proximal end of an intake house and a distal end of the intake hose is positioned at a source of a material to be separated.
15. The separator of claim 1 wherein said vacuum unit is connected to said outlet tube via a hose.
16. A particle separator for separating small particles from large particles from material comprising: a conical shaped separator housing that forms a cyclonic separator enclosure; a cover attached at a top portion of said cyclonic separator enclosure; an inlet tube with a tangential entry opening along an inner wall of said cyclonic separator enclosure, and where said inlet tube projects horizontally outward from an upper portion of said cyclonic separator enclosure; an outlet tube extending upward from a center of said cover; a vacuum unit connected to said outlet tube that creates a vortex in said cyclonic separator enclosure; an opening at a bottom portion of said cyclonic separator enclosure; and a controller that adjusts operating parameters, where said controller operates an electric eye that determines a level of collected large particulate, and releases the large particulate from a collection funnel into a collection container or bin.
17. The separator of claim 16 further comprising a set of latches or clasps on said cyclonic separator enclosure configured to engage a corresponding set of loops on said cover to provide an airtight and secure connection between said cover and the said cyclonic separator enclosure.
18. The separator of claim 16 further comprising a mesh filter positioned above said tangential opening in said cyclonic separator enclosure.
19. The separator of claim 16 wherein the operating parameters comprise intake flow rates, vacuum pressure, and feed rates.
20. The separator of claim 16 wherein said conical shaped separator housing is part or all transparent.
21. The separator of claim 16 wherein said conical shaped separator housing has a height between about 6 to about 24 inches.
22. The separator of claim 16 wherein a portion of said inlet tube that projects horizontally outward from the upper portion of the cyclonic separator enclosure is connected to a proximal end of an intake house and a distal end of the intake hose is positioned at a source of a material to be separated.
23. The separator of claim 16 wherein said vacuum unit is connected to said outlet tube via a hose.
24. A particle separator for separating small particles from large particles from material comprising: a conical shaped separator housing that forms a cyclonic separator enclosure; a cover attached at a top portion of said cyclonic separator enclosure; an inlet tube with a tangential entry opening along an inner wall of said cyclonic separator enclosure, and where said inlet tube projects horizontally outward from an upper portion of said cyclonic separator enclosure; an outlet tube extending upward from a center of said cover; a vacuum unit connected to said outlet tube that creates a vortex in said cyclonic separator enclosure; an opening at a bottom portion of said cyclonic separator enclosure; and a controller that adjusts operating parameters, where said controller operates a pad switch that releases the large particulate from a collection funnel into a collection container or bin.
25. The separator of claim 24 further comprising a set of latches or clasps on said cyclonic separator enclosure configured to engage a corresponding set of loops on said cover to provide an airtight and secure connection between said cover and the said cyclonic separator enclosure.
26. The separator of claim 24 further comprising a mesh filter positioned above said tangential opening in said cyclonic separator enclosure.
27. The separator of claim 24 wherein the operating parameters comprise intake flow rates, vacuum pressure, and feed rates.
28. The separator of claim 24 wherein said conical shaped separator housing is part or all transparent.
29. The separator of claim 24 wherein said conical shaped separator housing is formed from one or more of sheet metal, plastics, wood, and combinations thereof.
30. The separator of claim 24 wherein said conical shaped separator housing has a height between about 6 to about 24 inches.
31. The separator of claim 24 wherein a portion of said inlet tube that projects horizontally outward from the upper portion of the cyclonic separator enclosure is connected to a proximal end of an intake house and a distal end of the intake hose is positioned at a source of a material to be separated.
32. The separator of claim 24 wherein said vacuum unit is connected to said outlet tube via a hose.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The subject matter that is regarded as the invention is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other objects, features, and advantages of the invention are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
(2)
(3)
(4)
(5)
(6)
(7) The detailed description explains the preferred embodiments of the invention, together with advantages and features, by way of example with reference to the drawings.
DESCRIPTION OF THE INVENTION
(8) The present invention has utility as a separator of small particulate from large particulate from an intermixed material feed. The present invention finds particular utility in the field of separation of thermoplastic regrind particulate from intermixed debris which constitutes a smaller particulate relative to the thermoplastic regrind. Embodiments of the inventive separator use cyclonic separation and a mesh filter within the conical separation chamber to collect small particulate within the vacuum, while larger particles are collected in a bin. The use of the inventive separator prolongs the interval for a required change of a vacuum filter. It is noted that traditional fiber filters only function for two to four hours without clogging, whereas a vacuum system utilizing an inventive embodiment of the separator have processed more than 12000 lbs. of material without fail.
(9) Attributes particularly beneficial to the inventive separator include compact footprint and the ability to separate through the use of rotation and gravitational forces. In a specific inventive embodiment the mesh filter within the conical separation chamber may be electrically isolated and carries an electrical charge to function as an electrostatic precipitator. An electrostatic precipitator is a device that removes suspended dust particles from a gas or exhaust by applying a high-voltage electrostatic charge and collecting the particles on charged plates.
(10) With reference to the attached figures, and in particular
(11) As best shown in
(12)
(13) In operation a vacuum unit supplies suction through the outlet tube 18 that creates a vortex in the separator enclosure 12. Particulate material in sucked into the separator enclosure 12 via the inlet tube 16 where the vacuum created vortex within the separator enclosure 12 separates the particulate by size, with the larger particulate dropping into a collection canister or bin, and the smaller particulate proceeding upward through the mesh filter 40 and into the vacuum canister or bag.
(14) The foregoing description is illustrative of particular embodiments of the invention, but is not meant to be a limitation upon the practice thereof. The following claims, including all equivalents thereof, are intended to define the scope of the invention.