Rotary disc type diverter valve for bulk material handling
11549599 · 2023-01-10
Assignee
Inventors
Cpc classification
F16K25/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K11/074
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K27/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K11/074
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K25/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A diverter valve is provided for use in directing a flow of bulk material from a source to at least one receiver. Included in the present diverter valve is an inlet housing having an inlet port and partially defining a valve chamber, an outlet housing connected to the inlet housing, having at least one outlet port and defining an end of the valve chamber. A rotating disc is rotatably disposed in the chamber and constructed and arranged for selectively creating fluid communication between the inlet port and diverting the flow to a selected one of the at least one outlet port.
Claims
1. A diverter valve for use in directing a flow of particulate bulk material from a source to at least one receptacle, comprising: an inlet housing with a frusto-conical shape and having an inlet port and partially defining a valve chamber; a generally planar outlet housing connected to said inlet housing, having at least one outlet port and defining an end of said valve chamber, said at least one outlet port and said inlet port being generally aligned along a common horizontal axis; and a rotating planar disc rotatably disposed in said chamber closer to said at least one outlet port than to said inlet port and constructed and arranged for selectively creating fluid communication between said inlet port and diverting the flow of particulate material to a selected one of said at least one outlet port.
2. The diverter valve of claim 1 wherein said inlet housing is configured for receiving and retaining a portion of the flow so that the bulk material passes autogenously through said chamber.
3. The diverter valve of claim 1 further including at least one seal disposed in operational relationship to each said outlet port to prevent leakage of the material.
4. The diverter valve of claim 3 wherein each said at least one seal is located between said rotating disc and said outlet housing.
5. The diverter valve of claim 4 wherein said rotating disc has an inlet surface, an opposite outlet surface slidingly engaging an inner surface of said outlet housing, and each said at least one seal is located between said outlet surface and said inner surface for contacting said rotating disc.
6. The diverter valve of claim 1 further including one or more outlet pipes each connected to said outlet housing and having a first end connected to said outlet housing and an opposite second end connected to the at least one receptacle, said first end having a plurality of peripherally spaced lugs each constructed and arranged to engage a corresponding notch in said outlet housing.
7. The diverter valve of claim 1 further including one or more outlet pipes each connected to said outlet housing and having a first end connected to said outlet housing and an opposite second end connected to the at least one receptacle, said first end connected to said outlet housing to form a mating engagement.
8. The diverter valve of claim 7, wherein said mating engagement is achieved by providing a plurality of peripherally spaced lugs on one of said first end and said outlet housing, and a like plurality of peripherally spaced notches on the other of said first end and said outlet housing.
9. The diverter valve of claim 1, wherein said rotating disc has an inlet surface, an opposite outlet surface engaging an inner surface of said outlet housing and an opening allowing for the flow to pass through to a selected one of said at least one outlet ports, said opening being radially displaced between an axis of said disc and a peripheral edge of said disc, an inflatable seal being disposed between said opening and said outlet housing for controlling the flow to said one of at least one outlet ports.
10. The diverter valve of claim 9, wherein said rotating disc is provided with an axially projecting shaft extending from an outlet surface towards said outlet housing.
11. The diverter valve of claim 10, further including at least one bearing in said outlet housing constructed and arranged for rotatably accommodating said shaft.
12. The diverter valve of claim 1, wherein said valve chamber is defined in part by an inclined wall of said inlet housing that is constructed and arranged to receive a supply of the bulk material to coat an inner surface of said valve chamber, allowing for resistance to abrasive wear.
13. The diverter valve of claim 1, wherein said inlet port is generally horizontally aligned with said at least one outlet port.
14. The diverter valve of claim 1, wherein said inlet housing has a flange axially projecting from said housing for engaging a corresponding peripheral edge of said outlet housing.
15. The diverter valve of claim 1, further including a power source connected to said rotating disc for rotating said disc for selectively aligning an opening in said disc with a selected one of said outlet ports.
16. A diverter valve for use in directing a flow of particulate bulk material from a source to at least one receptacle, comprising: an inlet housing having an inlet port and partially defining a valve chamber; a generally planar outlet housing connected to said inlet housing, having a plurality of outlet ports and defining an end of said valve chamber; a rotating planar disc rotatably disposed in said chamber closer to said outlet ports than to said inlet ports and having a single aperture constructed and arranged for selectively creating fluid communication between said inlet port and diverting the flow of particulate material to a selected one of said plurality of outlet ports; said inlet port said at least one outlet port being generally aligned along a common horizontal axis; said rotating disc has an inlet surface, an opposite outlet surface engaging an inner surface of said outlet housing and an opening allowing for the flow to pass through to a selected one of said at least one outlet ports, said opening being radially displaced between an axis of said disc and a peripheral edge of said disc, an inflatable seal being disposed between said opening and said outlet housing for controlling the flow to said one of at least one outlet ports, said rotating disc has an inlet surface, an opposite outlet surface slidingly engaging an inner surface of said outlet housing, and each said seal is located between said outlet surface and said inner surface for contacting said rotating disc; said rotating disc has a single opening allowing for the flow to pass through to a selected one of said outlet ports; and said rotating disc is provided with an axially projecting shaft extending from an outlet surface towards said outlet housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
DETAILED DESCRIPTION
(12) Referring now to
(13) Diversion of the flow of the bulk material to the designated reservoir 18 is achieved using the present diverter valve, generally designated 20. The valve 20 is under the remote control of an operator (not shown), using a conventional control system, generally designated 22. As is well known in the art, the control system 22 is connected to a conventional power source, such as line voltage, or is wirelessly operated.
(14) Referring now to
(15) An outlet housing 36 is connected to the inlet housing 24, in the preferred embodiment being generally planar in shape and defining an end of the valve chamber 28. Included in the outlet housing is at least one, and preferably a plurality of outlet ports 38. While two outlet ports 38 are shown, it is contemplated that the number may vary to suit the application, and depends on the number of reservoirs 18 to which material may be transferred at a particular location.
(16) Sandwiched between the inlet housing 24 and the outlet housing 36 is a rotating disc 40 rotatably disposed in the valve chamber 28 and constructed and arranged for selectively creating fluid communication between the inlet port 26 and diverting the flow to a selected one of the outlet ports 38. More specifically, the rotating disc 40 preferably has an inlet surface 42, an opposite outlet surface 44 engaging an inner surface 46 of the outlet housing 36, and a peripheral edge 48. Also provided on the disc 40 is a flow opening 50 dimensioned to receive bulk material flow from the inlet port 26 and to transmit the flow to a designated one of the outlet ports 38, as needed, under the control of the control system 22, which rotates the disc 40 within the valve chamber 28 as described below.
(17) At least one outlet pipe 52 is connected to an outer surface 54 of the outlet housing 36, and each such pipe is in registry with a corresponding one of the outlet ports 38. Each outlet pipe 52 is provided with a first end 56 connected to the outlet housing 36 and an opposite, second end 58 connected to the at least one receptacle 18 through associated piping 60 (
(18) Also included on the first end 56 of the outlet pipe 52 is a resilient seal 70, secured within a diameter defined by the lugs 62 and the notches 64 so that once the pipe is secured to the outlet housing 36, specifically to the outlet port 38, the seal projects into the valve chamber 28 for contacting the disc 40. In the preferred embodiment, the seal 70 is annular or ring-shaped, however other shapes, or materials are contemplated, including but not limited to inflatable seals.
(19) An important feature of the present valve 20 is the prevention of the flow of material outside a designated or intended flow path. This feature is achieved by the use of seals 70 which preferably inflate once the disc 40 is in the desired position Inflation of the seal 70 creates an enclosed pathway between the disc 40 and the outlet housing 36 so that any flow of stray particles is significantly reduced. In the preferred embodiment, inflation of the seal 70 is achieved automatically, however it is also contemplated to be under operator control. A feature of the present valve 20 is that the location of the seal 70 between the rotating disc 40 and the inner surface 42 of the outlet housing 36 protects the internal valve components from the abrasive action of the flowing bulk material as the material is transferred from the valve chamber 28 to the outlet pipes 52.
(20) Referring again to the rotating disc 40, the opening 50 is preferably located on a radius between an axis of the disc and the peripheral edge 48. Also, the disc 40 is provided with an axially projecting shaft 74 extending from the outlet surface 44 towards the outlet housing 36. The shaft 74 has a length sufficient to enable the shaft to project through the outlet housing 36 and be engaged by a power source 76 (
(21) Referring now to
(22) Referring now to
(23) It will also be seen that the inlet port 26 is axially spaced from the outlet ports 38 by the valve chamber 28. In addition, as seen in
(24) While a particular embodiment of the present rotary disc type diverter valve for bulk material conveying has been described herein, it will be appreciated by those skilled in the art that changes and modifications may be made thereto without departing from the invention in its broader aspects and as set forth in the following claims.