The present invention relates to a pump for providing fluid and particulate; and more particularly relates to a diaphragm pump having a manifold assembly for pumping viscous fluid having solids and particulates.
In view of this, there is a need in the industry for a pump that solves these shortcomings in the pumps that are known in art.
According to some embodiments, the present invention may include, or take the form of, a pump featuring a new and unique combination of upper and lower diaphragm pumping assemblies together with a manifold assembly.
The upper and lower diaphragm pumping assemblies may be configured for pumping fluid through the pump.
The manifold assembly may be configured or arranged between the upper and lower diaphragm pumping assemblies.
The manifold assembly may include or be configured with a combination of a manifold body, an inlet check valve assembly channel, upper and lower diaphragm pumping assembly orifices, an outlet check valve assembly channel and an outlet.
The manifold body may be configured with an inlet having at least one inlet port and an inlet chamber to receive the fluid from at least one fluid source.
The inlet check valve assembly channel may include an inlet duckbill check valve assembly arranged therein to receive the fluid from the at least one inlet port.
The upper and lower diaphragm pumping assembly orifices may include the upper and lower diaphragm pumping assemblies arranged therein to receive the fluid from the inlet duckbill check valve assembly via first upper and lower manifold conduits and provide the fluid from the upper and lower diaphragm pumping assemblies via second upper and lower manifold conduits.
The outlet check valve assembly channel may include an outlet duckbill check valve assembly arranged therein to receive the fluid from the upper and lower diaphragm pumping assemblies.
The outlet may include at least one outlet port and an outlet chamber to receive the fluid from the upper and lower diaphragm pumping assemblies and provide the fluid from the pump to at least one fluid outlet source.
The present invention may include one or more of the following features:
The at least one inlet port may include dual inlet ports configured to receive inlet port fitting connections, and the at least one outlet port may include dual outlet ports configured to receive outlet port fitting connections.
The inlet duckbill check valve assembly may include two duckbill check valves, and the outlet duckbill check valve assembly comprises two duckbill check valves.
The manifold assembly may include two manifold assembly covers or plates attached to upper and lower surfaces of the manifold body and configured with the first and second upper and lower manifold conduits for providing fluid from the inlet check valve assembly channel to the outlet check valve assembly channel.
The manifold body may include, or take the form of, a plastic injection molded integral structure.
The dual inlet ports may be configured or oriented orthogonal to one another; and the dual outlet ports are configured or oriented orthogonal to one another.
The dual inlet ports and the inlet chamber may be configured to receive the fluid from two fluid sources for mixing together in the inlet chamber; and the dual outlet ports and the outlet chamber may be configured to provide a mixed fluid to the at least one fluid outlet source, including where the at least one fluid outlet source includes two fluid outlet sources.
The inlet duckbill check valve assembly and the outlet duckbill check valve assembly may be configured to process a particle medium having up to 4 millimeters (mm) in diameter.
Either the dual inlet ports, or the dual outlet ports, or both the dual inlet ports and the dual outlet ports, may be configured to receive different port fitting connections, including where the different port fitting connections include a port fitting connection that allows the passage of the fluid either to or from the respective port, and a corresponding port fitting connection that does not allow the passage of the fluid either to or from the respective port.
Advantages of the present invention may include one or more of the following:
In effect, the pump having the aforementioned diaphragm pumping and manifold assemblies according to the present invention solves problems that have plagued the prior art pump shown in
The drawing, which are not necessarily drawn to scale, includes the following Figures:
Moreover,
The diaphragm pump may include a manifold assembly like elements 20 and 20′, e.g., as shown in
By way of example,
The diaphragm pump may include the upper and lower diaphragm pumping assemblies generally indicated as 12, 14 in combination with the manifold assembly 20, e.g., as shown in
In operation, the upper and lower diaphragm pumping assemblies 12, 14 may be configured for pumping fluid through the dual diaphragm pump 10. By way of example, the upper diaphragm pumping assembly 12 may be configured to draw the fluid from the inlet chamber 20a into the manifold assembly 20, through the upper input duckbill valve 30, through the upper output duckbill valve 40, to the outlet chamber 20b and from the manifold assembly 20; and the lower diaphragm pumping assembly 14 may be configured to draw the fluid from the inlet chamber 20a into the manifold assembly 20, through the lower input duckbill valve 32, through the lower output duckbill valve 42, to the outlet chamber 20b and from the manifold assembly 20, e.g., consistent with that shown in
The manifold assembly 20 may be configured or arranged between the upper and lower diaphragm pumping assemblies 12, 14 and have components configured to operate as follows:
As best shown in
The inlet 20a may be configured with dual inlet ports generally indicated as 20a (1), 20a (2) to receive the fluid from at least one fluid source (not shown). The dual inlet ports 20a (1), 20a (2) may be configured with inlet port channels 20a (3), 20a (4) to slidably receive inlet fitting couplers 20a (5), 20a (6) that couple inlet fittings 20a (7), 20a (8) to the dual inlet ports 20a (1), 20a (2) of the manifold assembly 20.
The inlet check valve assembly channel 20d may include an inlet duckbill check valve assembly arranged therein that may include the inlet duckbill check valve 30, 32, as well as one or more other inlet duckbill check valve assembly components like valve receiving members 30(1), 32(1), and internal supports (not shown) to prevent the valve from collapsing in applications that will generate higher back pressures during operation or when the pump is not running, e.g., consistent with that disclosed in U.S. Pat. Nos. 8,276,616 and 8,690,554.
By way of example, the manifold body 20c may include, or take the form of, a plastic injection molded integral structure, although embodiments are envisioned using other structures or configuration both now known and later developed in the future within the spirit on the underlying invention.
The upper diaphragm pumping assembly inlet orifice 20d (1) may be configured to be in fluidic communication with the upper diaphragm pumping assembly like element 12 arranged therein to receive the fluid from the inlet duckbill check valve 30, as well as one or more other inlet duckbill check valve assembly components like valve receiving members 30(1), provide (i.e. pump) the fluid via upper manifold conduits indicated by reference label 12b′, 12b″, 12′″, to the upper diaphragm pumping assembly orifice 20e (1). In operation, and as a person skilled in the art would appreciate, the motor shaft/diaphragm actuator assembly 15 together with the diaphragm 12a may be configured in order to provide the liquid from the upper manifold conduit 12b′, through the upper manifold conduits 12b″, and to the upper manifold conduit 12′″. The upper diaphragm pumping assembly outlet orifice 20e (1) may be configured to be in fluidic communication with the outlet check valve assembly channel 20e, for providing fluid to the outlet duckbill check valve 40, as well as one or more other outlet duckbill check valve assembly components like valve receiving members 40(1), and provide (i.e. pump) the fluid to the outlet 20b.
As a person skilled in the art would appreciate, the lower diaphragm pumping assembly 14 is configured to operate in a similar manner to the upper diaphragm pumping assembly 12.
The outlet 20b may be configured with dual outlet ports generally indicated as 20b (1), 20b (2) to provide the fluid the pump 10 to at least one fluid outlet source (not shown). The dual outlet ports 20b (1), 20b (2) may be configured with outlet port channels 20b (3), 20b (4) to slidably receive outlet fitting couplers 20b (5), 20b (6) that couple outlet fittings 20b (7), 20b (8) to the dual outlet ports 20b (1), 20b (2) of the manifold assembly 20.
As shown, the dual inlet ports 20a (1), 20a (2) may be configured or oriented orthogonal to one another; and the dual outlet ports 20b (1), 20b (2) are configured or oriented orthogonal to one another, although embodiments are envisioned using other types or kinds of geometric relationship between the dual inlet ports, the dual output ports, or both.
The dual inlet ports 20a (1), 20a (2) and the inlet chamber 20a may be configured to receive the fluid from two fluid sources (not shown) for mixing together in the inlet chamber 20a; and the dual outlet ports 20b (1), 20b (2) and the outlet chamber 20b are configured to provide a mixed fluid to at least one fluid outlet source (not shown).
The inlet duckbill check valve assembly 20d and the outlet duckbill check valve assembly 20e may be configured to process a particle medium having up to 4 millimeters (mm) in diameter.
Either the dual inlet ports 20a (1), 20a (2), or the dual outlet ports 20b (1), 20b (2), or both the dual inlet ports 20a (1), 20a (2) and the dual outlet ports 20b (1), 20b (2), may be configured to receive different port fitting connections.
It is noted that in
Controller 52—The electronics controller may include, or take the form of, an electronic PCBA 52, e.g., that may be internal to the pump, as shown in
Food and Beverage dispensing/processing, Fluid and chemical transfer and mixing, any application that may require moving liquid with high viscosity, particulates and/or solids.
Further still, the embodiments shown and described in detail herein are provided by way of example only; and the scope of the invention is not intended to be limited to the particular configurations, dimensionalities, and/or design details of these parts or elements included herein. In other words, a person skilled in the art would appreciate that design changes to these embodiments may be made and such that the resulting embodiments would be different than the embodiments disclosed herein, but would still be within the overall spirit of the present invention.
It should be understood that, unless stated otherwise herein, any of the features, characteristics, alternatives or modifications described regarding a particular embodiment herein may also be applied, used, or incorporated with any other embodiment described herein. Also, the drawings herein are not drawn to scale.
Although the invention has been described and illustrated with respect to exemplary embodiments thereof, the foregoing and various other additions and omissions may be made therein and thereto without departing from the spirit and scope of the present invention.
This application is a continuation application of, and claims benefit to, U.S. patent application Ser. No. 14/740,577, filed 16 Jun. 2015, which claims benefit to provisional patent application Ser. No. 62/012,526, filed 16 Jun. 2014, which are all hereby incorporated by reference in its entirety.
Number | Name | Date | Kind |
---|---|---|---|
2221071 | Barfod | Nov 1940 | A |
2764097 | Browne | Sep 1956 | A |
2922854 | Nielsen | Jan 1960 | A |
3775030 | Wanner | Nov 1973 | A |
4478560 | Rupp | Oct 1984 | A |
4583920 | Lindner | Apr 1986 | A |
4597721 | Santefort | Jul 1986 | A |
4605273 | Horton | Aug 1986 | A |
4936753 | Kozumplik, Jr. et al. | Jun 1990 | A |
5071370 | Kochan, Jr. | Dec 1991 | A |
5304073 | Golobay et al. | Apr 1994 | A |
5332372 | Reynolds | Jul 1994 | A |
5391060 | Kozumplik, Jr. | Feb 1995 | A |
5848878 | Conti et al. | Dec 1998 | A |
5902096 | Behringer et al. | May 1999 | A |
6234823 | Fuess | May 2001 | B1 |
6635183 | Gibson | Oct 2003 | B2 |
6863574 | Bosch | Mar 2005 | B1 |
7156614 | Racer et al. | Jan 2007 | B2 |
7287964 | Sanwald | Oct 2007 | B2 |
7390175 | Maki et al. | Jun 2008 | B2 |
7690342 | Gliniecki et al. | Apr 2010 | B2 |
8151885 | Bull et al. | Apr 2012 | B2 |
8414273 | Williams | Apr 2013 | B2 |
8556910 | Truckai et al. | Oct 2013 | B2 |
8596992 | DeDecker | Dec 2013 | B2 |
8690554 | Villagomez et al. | Apr 2014 | B2 |
20060159565 | Sanwald | Jul 2006 | A1 |
20060283320 | Lee | Dec 2006 | A1 |
20090092507 | Ramirez, Jr. | Apr 2009 | A1 |
20100133297 | Arett et al. | Jun 2010 | A1 |
20110002802 | Capone et al. | Jan 2011 | A1 |
20110139825 | Houghton | Jun 2011 | A1 |
20110171045 | Gilpatrick | Jul 2011 | A1 |
20120285540 | Morii et al. | Nov 2012 | A1 |
20130017110 | Villagomez | Jan 2013 | A1 |
20130094983 | Pelfrey | Apr 2013 | A1 |
20130184641 | Li | Jul 2013 | A1 |
20130331823 | Askem et al. | Dec 2013 | A1 |
20150217312 | Hines | Aug 2015 | A1 |
20150226192 | Hines | Aug 2015 | A1 |
Number | Date | Country |
---|---|---|
2140463 | Aug 1993 | CN |
1099103 | Feb 1995 | CN |
1227314 | Sep 1999 | CN |
1517548 | Aug 2004 | CN |
103244405 | Aug 2013 | CN |
0286404 | Jul 1991 | EP |
0524820 | Jan 1993 | EP |
0713009 | May 1996 | EP |
1437178 | Jul 2004 | EP |
1998054372 | Jun 1996 | JP |
2004210544 | Jul 2004 | JP |
2068118 | Oct 1996 | RU |
2101567 | Jan 1998 | RU |
Entry |
---|
“Another Pump Rebuild—Henderson Mk V Bilge/Diaphragm Pump” Apr. 9, 2014 http://middlebaysailing.wordpress.com/2014/04/09/another-pump-rebuild-hendersonmk- v-bilgediaphragm-pump/ Disclosing the parts supplied for cleaning & rebuilding a bilge pump, which must pass reasonable bits of flotsam/jetsam without adverse effect. See the description of the “joker” valve, or duck-beak valve on pp. 3-4. |
BPE Burt, “ARO Diaphragm Pumps-66605X-XXX” 1/2 Classic Style Non-Metallic Ball: 13 GPM (49.2 LPM) Duckbill: 10 GPM (37.9 LPM) http://www.aroexp.com/aro-diaphragm-compact-pumps/aro-1-2-classic-stylenon-metallic/aro-66605x-pumps.php#.U6HbGyiorqw Disclosing a treatise offering an explanation for lack of conventions, with a brief history and links to sources of adapters and “universal plug”. |
“Pump Control Circuit for Automatic Tank Emptying—Cynergy3” www.cynergy3.com/ . . . /How%20to%20create%20a%20pump%20control. http://www.cynergy3.com/blog/how-create-pump-control-circuit-automaticallyempty-tank Disclosing pump passing particles through duckbill valve (2nd page). |
English language Abstract of EP1437178. |
English language Abstract of CN2140463Y. |
English language Abstract of CN1517548A. |
English language Abstract of RU2068118C1. |
English language Abstract of RU2101567C1. |
English language Abstract of CN103244405A. |
English language Abstract of CN1227314A. |
English language Abstract of CN1099103A. |
English language Abstract and translation of JP2004210544A. |
Relevant document US5848878B in lieu of JP1998054372A. |
Number | Date | Country | |
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20200158105 A1 | May 2020 | US |
Number | Date | Country | |
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62012526 | Jun 2014 | US |
Number | Date | Country | |
---|---|---|---|
Parent | 14740577 | Jun 2015 | US |
Child | 16748166 | US |