Patent · US9970430B2 · B2 · US
Multi-port metering pump assembly and related methods
- (11) Publication number
- US9970430B2
- (21) Application number
- 15/430,280
- (22) Filing date
- 2017-02-10
- (30) Priority date
- 2014-03-19
- (43) Publication date
- 2018-05-15
- (45) Date of grant
- 2018-05-15
- (51) IPC
- B05B 7/14; B05C 5/02; B65G 53/28; F04B 13/00; F04B 43/067; F04B 49/06; F04B 49/22; F04B 53/10; F04B 53/16
- (52) CPC
- F04B Positive-displacement machines for liquids; pumps: 43/067, 13/00, 49/06, 49/065, 49/22, 53/10, 53/16, 7/0038, 7/02
- B05B Spraying apparatus; atomising apparatus; nozzles: 7/1459
- B05C Apparatus for applying fluent materials to surfaces, in general: 5/0279
- B65G Transport or storage devices, e.g. conveyors for loading or tipping, shop conveyor systems or pneumatic tube conveyors: 53/28
- F05B Indexing scheme relating to wind, spring, weight, inertia or like motors, to machines or engines for liquids covered by subclasses F03B, F03D and F03G: 2210/11
- Y10S Technical subjects covered by former uspc cross-reference art collections [xracs] and digests: 417/00
- Y10T Technical subjects covered by former us classification: 29/49002
- (73) Assignee
- White Knight Fluid Handling Inc
- (72) Inventors
- Kenji Allen Kingsford; Tom M. Simmons; Ervin Andy Hutchinson; Courtney Parsons
- (54) Title
- Multi-port metering pump assembly and related methods
- (57) Abstract
A multi-port metering pump assembly includes a manifold coupled to a metering pump. The manifold defines a central passage in fluid communication with a plurality of intermediate passages defined in the manifold. The manifold includes a plurality of outer passages. Each intermediate passage provides fluid communication between the central passage and a corresponding outer passage. A plurality of valves is coupled to the manifold. Each valve of the plurality of valves is located between an intermediate passage and a corresponding outer passage, and is configured to enable or prevent passage of fluid between a corresponding intermediate passage of the plurality of intermediate passages and a corresponding outer passage. The multi-port metering pump assembly also includes an electronic controller coupled to the plurality of valves, the electronic controller having an associated electronic interface and being programmable to selectively and independently open and close the valves of the plurality of valves.
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Claims (20)
- A multiport metering pump assembly, comprising: a metering pump; an elongated manifold coupled to the metering pump, the elongated manifold having a longitudinal axis and comprising: a first longitudinal end; a second longitudinal end; a first surface on a first side of the elongated manifold between the first longitudinal end and the second longitudinal end; a second surface on a second side of the elongated manifold between the first longitudinal end and the second longitudinal end; an elongated linear central passage extending longitudinally through the elongated manifold; intermediate passages extending linearly through the elongated manifold from the first surface to the elongated linear central passage, the intermediate passages extending at an angle to the elongated linear central passage; and outer passages extending linearly from the first surface to the second surface, each outer passage respectively corresponding to one of the intermediate passages; and a plurality of valves coupled to the elongated manifold, each valve of the plurality of valves being located at the first surface of the elongated manifold and between an intermediate passage and a corresponding outer passage, each valve configured to enable and prevent passage of fluid pressurized by the metering pump between corresponding intermediate and outer passages.
- The multiport metering pump assembly of claim 1, wherein the metering pump further comprises an inlet and a pressurizing chamber in fluid communication with the inlet, the pressurizing chamber configured to pressurize fluid therein.
- The multiport metering pump assembly of claim 2, wherein: the metering pump comprises a rolling-diaphragm metering pump including a pneumatically controlled pump piston; and a volume of the pressurized fluid is directed from the pressurizing chamber to the elongated manifold through the inlet.
- The multiport metering pump assembly of claim 2, wherein the elongated manifold further comprises an integral unitary body, wherein: the integral unitary body defines the elongated linear central passage having a first end thereof in fluid communication with the pressurizing chamber of the metering pump to receive the pressurized fluid and a second end thereof terminating within the integral unitary body; the integral unitary body defines a first set of intermediate passages of the intermediate passages distributed between the first and second ends of the elongated linear central passage and extending away therefrom in a first direction and a second set of intermediate passages of the intermediate passages distributed between the first and second ends of the elongated linear central passage and extending away therefrom in a second, different direction; and each intermediate passage establishes fluid communication between the elongated linear central passage and a corresponding outer passage of the integral unitary body.
- The multiport metering pump assembly of claim 4, wherein the metering pump is connected to a single outer passage of the outer passages, such that the pressurized fluid discharged from the metering pump enters the elongated linear central passage through a corresponding intermediate passage of the single outer passage and is thereafter dispersed from the elongated linear central passage to remaining intermediate passages.
- The multiport metering pump assembly of claim 1, wherein the first surface of the elongated manifold comprises: a first canted portion including a first set of three or more valves of the plurality of valves; and a second canted portion including a second set of three or more valves of the plurality of valves.
- The multiport metering pump assembly of claim 1, wherein the elongated manifold further comprises a plurality of outlet stems coupled to the elongated manifold, each outlet stem of the plurality of outlet stems being located on the second surface of the elongated manifold and located adjacent a corresponding outer passage.
- The multiport metering pump assembly of claim 1, further comprising an electronic controller having an associated electronic interface, wherein the electronic controller is in communication with the plurality of valves, the electronic controller being programmable to selectively and independently control operation of each valve of the plurality of valves.
- The multiport metering pump assembly of claim 8, wherein the electronic controller is programmable to operate each valve of the plurality of valves simultaneously or in sequence.
- A method of manufacturing a multiport metering pump assembly, comprising: forming an elongated manifold, comprising: providing an integral unitary body having a first longitudinal end, a second longitudinal end, a first surface on a first side of the integral unitary body between the first longitudinal end and the second longitudinal end, and a second surface on a second side of the integral unitary body between the first longitudinal end and the second longitudinal end; machining an elongated linear central passage extending longitudinally through the integral unitary body; machining intermediate passages extending linearly through the integral unitary body from the first surface to the elongated linear central passage, the intermediate passages extending at an angle to the elongated linear central passage; and machining outer passages extending linearly from the first surface to the second surface, each outer passage respectively corresponding to one of the intermediate passages; attaching valves to the elongated manifold, each valve located at the first surface of the integral unitary body and between corresponding intermediate and outer passages, each valve configured to enable and prevent passage of fluid pressurized by a metering pump between corresponding intermediate and outer passages; and coupling the elongated manifold to the metering pump.
- The method of claim 10, further comprising providing outlet stems, each outlet stem located on the second surface of the elongated manifold adjacent a corresponding outer passage.
- The method of claim 10, wherein forming the elongated manifold comprises forming the elongated manifold by at least one of an injection molding process, an extrusion process, or a casting process.
- The method of claim 10, further comprising forming at least portions of inner surfaces of the elongated linear central passage, the intermediate passages, and the outer passages to comprise polytetrafluoroethylene, perfluoroalkoxy, fluoropolymer, or a combination thereof.
- The method of claim 10, wherein machining the intermediate passages comprises: forming a first set of intermediate passages of the intermediate passages between a first end and a second, opposite end of the elongated linear central passage and extending away therefrom in a first direction; forming a second set of intermediate passages of the intermediate passages between the first and second ends of the elongated linear central passage and extending away therefrom in a second, different direction; and each intermediate passage providing fluid communication between the elongated linear central passage and a corresponding outer passage.
- The method of claim 14, wherein coupling the elongated manifold to the metering pump further comprises providing a pressurizing chamber of the metering pump in fluid communication with the first end of the elongated linear central passage through an inlet.
- The method of claim 10, wherein coupling the elongated manifold to the metering pump comprises coupling the metering pump to a single outer passage of the outer passages of the elongated manifold, such that a pressurizing chamber of the metering pump is in fluid communication with the elongated linear central passage through the single outer passage of the elongated manifold.
- The method of claim 10, wherein attaching the valves to the elongated manifold further comprises locating a first set of valves on a first canted portion of the first surface of the elongated manifold and locating a second set of valves on a second canted portion of the first surface of the elongated manifold.
- The method of claim 10, wherein attaching the valves to the elongated manifold comprises attaching valve assemblies to the elongated manifold, each valve assembly comprising a pump piston configured to be actuated by pneumatic force.
- The method of claim 10, further comprising operably coupling an electronic controller having an associated electronic interface to each valve, the electronic controller programmable to selectively and independently control individual operation of each valve.
- The method of claim 19, wherein operably coupling the electronic controller to each valve comprises the electronic controller being programmable to vary the duration in which each valve is open to dispense varying volumes of fluid through each outer passage.
Description
Embodiments of the present disclosure relate generally to metering pump assemblies that have multiple output ports, and to methods of fabricating such multi-port metering pump assemblies.
Metering pumps are used in numerous types of fluid delivery systems where precise volumes of fluid, including water, chemicals, solutions, or other fluids, must be delivered on demand. Metering pumps typically discharge a known volume of fluid with every pump cycle or revolution. Accordingly, by controlling the number of cycles or revolutions of the metering pump, the volume of fluid dispensed from the metering pump may also be controlled. Additionally, by controlling the cycle speed or revolution speed of the metering pump, the flow rate of the metering pump may also be controlled. If the cycle speed or revolution speed of a metering pump is constant, the flow rate is generally constant as well. Metering pumps are often configured as piston pumps, diaphragm pumps, gear pumps, or peristaltic pumps. Applications that utilize the precise volumetric output dispensed by metering pumps include those in the semiconductor industry, the medical field, water treatment, chemical processing, instrumentation and laboratory dispensing. In some applications, metering pumps may be required to dispense ultra-high purity fluids.
In some embodiments, a multi-port metering pump assembly may include a metering pump and a manifold coupled to the metering pump. The manifold may define a central passage in fluid communication with a plurality of intermediate passages defined in the manifold.
Citations (11)
- US5088515A
- TW381300B
- US20050129584A1
- US6729364B2
- US7997878B2
- US20070258837A1
- US20060060611A1
- US7537437B2
- US7770760B2
- US20110052811A1
- US9605669B2
Record as JSON
{
"publication_number": "US9970430B2",
"country": "US",
"kind": "B2",
"title": "Multi-port metering pump assembly and related methods",
"abstract": "A multi-port metering pump assembly includes a manifold coupled to a metering pump. The manifold defines a central passage in fluid communication with a plurality of intermediate passages defined in the manifold. The manifold includes a plurality of outer passages. Each intermediate passage provides fluid communication between the central passage and a corresponding outer passage. A plurality of valves is coupled to the manifold. Each valve of the plurality of valves is located between an intermediate passage and a corresponding outer passage, and is configured to enable or prevent passage of fluid between a corresponding intermediate passage of the plurality of intermediate passages and a corresponding outer passage. The multi-port metering pump assembly also includes an electronic controller coupled to the plurality of valves, the electronic controller having an associated electronic interface and being programmable to selectively and independently open and close the valves of the plurality of valves.",
"claims": [
"1. A multiport metering pump assembly, comprising: a metering pump; an elongated manifold coupled to the metering pump, the elongated manifold having a longitudinal axis and comprising: a first longitudinal end; a second longitudinal end; a first surface on a first side of the elongated manifold between the first longitudinal end and the second longitudinal end; a second surface on a second side of the elongated manifold between the first longitudinal end and the second longitudinal end; an elongated linear central passage extending longitudinally through the elongated manifold; intermediate passages extending linearly through the elongated manifold from the first surface to the elongated linear central passage, the intermediate passages extending at an angle to the elongated linear central passage; and outer passages extending linearly from the first surface to the second surface, each outer passage respectively corresponding to one of the intermediate passages; and a plurality of valves coupled to the elongated manifold, each valve of the plurality of valves being located at the first surface of the elongated manifold and between an intermediate passage and a corresponding outer passage, each valve configured to enable and prevent passage of fluid pressurized by the metering pump between corresponding intermediate and outer passages.",
"2. The multiport metering pump assembly of claim 1, wherein the metering pump further comprises an inlet and a pressurizing chamber in fluid communication with the inlet, the pressurizing chamber configured to pressurize fluid therein.",
"3. The multiport metering pump assembly of claim 2, wherein: the metering pump comprises a rolling-diaphragm metering pump including a pneumatically controlled pump piston; and a volume of the pressurized fluid is directed from the pressurizing chamber to the elongated manifold through the inlet.",
"4. The multiport metering pump assembly of claim 2, wherein the elongated manifold further comprises an integral unitary body, wherein: the integral unitary body defines the elongated linear central passage having a first end thereof in fluid communication with the pressurizing chamber of the metering pump to receive the pressurized fluid and a second end thereof terminating within the integral unitary body; the integral unitary body defines a first set of intermediate passages of the intermediate passages distributed between the first and second ends of the elongated linear central passage and extending away therefrom in a first direction and a second set of intermediate passages of the intermediate passages distributed between the first and second ends of the elongated linear central passage and extending away therefrom in a second, different direction; and each intermediate passage establishes fluid communication between the elongated linear central passage and a corresponding outer passage of the integral unitary body.",
"5. The multiport metering pump assembly of claim 4, wherein the metering pump is connected to a single outer passage of the outer passages, such that the pressurized fluid discharged from the metering pump enters the elongated linear central passage through a corresponding intermediate passage of the single outer passage and is thereafter dispersed from the elongated linear central passage to remaining intermediate passages.",
"6. The multiport metering pump assembly of claim 1, wherein the first surface of the elongated manifold comprises: a first canted portion including a first set of three or more valves of the plurality of valves; and a second canted portion including a second set of three or more valves of the plurality of valves.",
"7. The multiport metering pump assembly of claim 1, wherein the elongated manifold further comprises a plurality of outlet stems coupled to the elongated manifold, each outlet stem of the plurality of outlet stems being located on the second surface of the elongated manifold and located adjacent a corresponding outer passage.",
"8. The multiport metering pump assembly of claim 1, further comprising an electronic controller having an associated electronic interface, wherein the electronic controller is in communication with the plurality of valves, the electronic controller being programmable to selectively and independently control operation of each valve of the plurality of valves.",
"9. The multiport metering pump assembly of claim 8, wherein the electronic controller is programmable to operate each valve of the plurality of valves simultaneously or in sequence.",
"10. A method of manufacturing a multiport metering pump assembly, comprising: forming an elongated manifold, comprising: providing an integral unitary body having a first longitudinal end, a second longitudinal end, a first surface on a first side of the integral unitary body between the first longitudinal end and the second longitudinal end, and a second surface on a second side of the integral unitary body between the first longitudinal end and the second longitudinal end; machining an elongated linear central passage extending longitudinally through the integral unitary body; machining intermediate passages extending linearly through the integral unitary body from the first surface to the elongated linear central passage, the intermediate passages extending at an angle to the elongated linear central passage; and machining outer passages extending linearly from the first surface to the second surface, each outer passage respectively corresponding to one of the intermediate passages; attaching valves to the elongated manifold, each valve located at the first surface of the integral unitary body and between corresponding intermediate and outer passages, each valve configured to enable and prevent passage of fluid pressurized by a metering pump between corresponding intermediate and outer passages; and coupling the elongated manifold to the metering pump.",
"11. The method of claim 10, further comprising providing outlet stems, each outlet stem located on the second surface of the elongated manifold adjacent a corresponding outer passage.",
"12. The method of claim 10, wherein forming the elongated manifold comprises forming the elongated manifold by at least one of an injection molding process, an extrusion process, or a casting process.",
"13. The method of claim 10, further comprising forming at least portions of inner surfaces of the elongated linear central passage, the intermediate passages, and the outer passages to comprise polytetrafluoroethylene, perfluoroalkoxy, fluoropolymer, or a combination thereof.",
"14. The method of claim 10, wherein machining the intermediate passages comprises: forming a first set of intermediate passages of the intermediate passages between a first end and a second, opposite end of the elongated linear central passage and extending away therefrom in a first direction; forming a second set of intermediate passages of the intermediate passages between the first and second ends of the elongated linear central passage and extending away therefrom in a second, different direction; and each intermediate passage providing fluid communication between the elongated linear central passage and a corresponding outer passage.",
"15. The method of claim 14, wherein coupling the elongated manifold to the metering pump further comprises providing a pressurizing chamber of the metering pump in fluid communication with the first end of the elongated linear central passage through an inlet.",
"16. The method of claim 10, wherein coupling the elongated manifold to the metering pump comprises coupling the metering pump to a single outer passage of the outer passages of the elongated manifold, such that a pressurizing chamber of the metering pump is in fluid communication with the elongated linear central passage through the single outer passage of the elongated manifold.",
"17. The method of claim 10, wherein attaching the valves to the elongated manifold further comprises locating a first set of valves on a first canted portion of the first surface of the elongated manifold and locating a second set of valves on a second canted portion of the first surface of the elongated manifold.",
"18. The method of claim 10, wherein attaching the valves to the elongated manifold comprises attaching valve assemblies to the elongated manifold, each valve assembly comprising a pump piston configured to be actuated by pneumatic force.",
"19. The method of claim 10, further comprising operably coupling an electronic controller having an associated electronic interface to each valve, the electronic controller programmable to selectively and independently control individual operation of each valve.",
"20. The method of claim 19, wherein operably coupling the electronic controller to each valve comprises the electronic controller being programmable to vary the duration in which each valve is open to dispense varying volumes of fluid through each outer passage."
],
"description_excerpt": "Embodiments of the present disclosure relate generally to metering pump assemblies that have multiple output ports, and to methods of fabricating such multi-port metering pump assemblies.\n\nMetering pumps are used in numerous types of fluid delivery systems where precise volumes of fluid, including water, chemicals, solutions, or other fluids, must be delivered on demand. Metering pumps typically discharge a known volume of fluid with every pump cycle or revolution. Accordingly, by controlling the number of cycles or revolutions of the metering pump, the volume of fluid dispensed from the metering pump may also be controlled. Additionally, by controlling the cycle speed or revolution speed of the metering pump, the flow rate of the metering pump may also be controlled. If the cycle speed or revolution speed of a metering pump is constant, the flow rate is generally constant as well. Metering pumps are often configured as piston pumps, diaphragm pumps, gear pumps, or peristaltic pumps. Applications that utilize the precise volumetric output dispensed by metering pumps include those in the semiconductor industry, the medical field, water treatment, chemical processing, instrumentation and laboratory dispensing. In some applications, metering pumps may be required to dispense ultra-high purity fluids.\n\nIn some embodiments, a multi-port metering pump assembly may include a metering pump and a manifold coupled to the metering pump. The manifold may define a central passage in fluid communication with a plurality of intermediate passages defined in the manifold.",
"cpc": [
"F04B 43/067",
"B05B 7/1459",
"B05C 5/0279",
"B65G 53/28",
"F04B 13/00",
"F04B 49/06",
"F04B 49/065",
"F04B 49/22",
"F04B 53/10",
"F04B 53/16",
"F04B 7/0038",
"F04B 7/02",
"F05B 2210/11",
"Y10S 417/00",
"Y10T 29/49002"
],
"ipc": [
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"B05C 5/02",
"B65G 53/28",
"F04B 13/00",
"F04B 43/067",
"F04B 49/06",
"F04B 49/22",
"F04B 53/10",
"F04B 53/16"
],
"assignees": [
"White Knight Fluid Handling Inc"
],
"inventors": [
"Kenji Allen Kingsford",
"Tom M. Simmons",
"Ervin Andy Hutchinson",
"Courtney Parsons"
],
"filing_date": "2017-02-10",
"publication_date": "2018-05-15",
"grant_date": "2018-05-15",
"priority_date": "2014-03-19",
"application_number": "US-201715430280-A",
"family_id": "54141662",
"cited_by_count": 0,
"citations": [
"US5088515A",
"TW381300B",
"US20050129584A1",
"US6729364B2",
"US7997878B2",
"US20070258837A1",
"US20060060611A1",
"US7537437B2",
"US7770760B2",
"US20110052811A1",
"US9605669B2"
]
}
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