Claims
- 1. In an eductor for mixing water and a liquid cleaning concentrate to form a mixture, the eductor including a long axis, an air gap, a water supply nozzle upstream of the air gap, a flow guide downstream of the air gap, a venturi tube for receiving the water from the flow guide, a channel lateral to the long axis for flowing the concentrate into the venturi tube and an outlet port for discharging the mixture, the improvement comprising:
- an elongate guide passage in the flow guide and having upstream and downstream ends;
- an annular overflow chamber isolated from the air gap by an imperforate wall; and
- an aperture formed solely in the flow guide below the imperforate wall and extending between the guide passage and the overflow chamber, thereby permitting a quantity of the water to bypass the venturi tube and flow only outwardly to the outlet port;
- and wherein:
- the venturi tube is the sole venturi tube in the eductor and includes a conduit therein, the conduit having an upstream end and an inverted-cone interior surface having a downstream end terminating above the lateral channel;
- the flow guide includes a lower end contacting the venturi tube;
- the guide passage and the conduit form an uninterrupted flow path therethrough;
- the uninterrupted flow path extends with a continually-decreasing cross-sectional area from the upstream end of the guide passage to the downstream end of the inverted-cone interior surface;
- the supply nozzle, the flow guide, the venturi tube and the outlet port are concentric with the long axis;
- the outlet port forms the sole liquid flow path out of the eductor;
- the flow guide and venturi tube include a pocket connection therebetween, are in sealing thread-free engagement with one another and abut at a shoulder extending radially outwardly from the long axis;
- the flow guide and venturi tube form an essentially smooth, uninterrupted axial flow passage at said pocket connection, the uninterrupted axial flow passage being between the guide passage and the conduit.
- 2. The eductor of claim 1 wherein:
- the aperture is bounded by an edge defining a first area;
- the flow guide includes a collector passage having a minimum flow area; and
- the first area is at least twice the minimum flow area.
- 3. The eductor of claim 2 wherein the first area is at least three times the minimum flow area.
- 4. The eductor of claim 1 wherein:
- the aperture is a first aperture and the eductor includes a second aperture formed in the flow guide and extending between the guide passage and the overflow chamber.
- 5. The eductor of claim 4 wherein:
- each of the apertures has an edge and each of the edges defines a first area;
- the collector passage has a minimum flow area; and
- the total of the first areas is at least 1.5 times the minimum flow area.
- 6. The eductor of claim 5 wherein the total of the first areas is in the range of 1.5 to 2.5 times the minimum flow area.
- 7. The eductor of claim 4 wherein:
- the first and second apertures are in registry with a lateral axis generally normal to the long axis.
- 8. The eductor of claim 4 wherein:
- the flow guide lower end is spaced from the air gap;
- the lower end has an interior dimension measured generally normal to the long axis; and
- each of the apertures is spaced above the lower end by a spacing dimension at least equal to the interior dimension.
- 9. The eductor of claim 8 wherein each of the apertures is spaced above the lower end by a spacing dimension which is between 1.0 and 6.0 times the interior dimension.
- 10. The eductor of claim 1 wherein:
- the guide passage has a minimum flow area at the lower end of the flow guide;
- the venturi tube has an inlet mouth defining a mouth area; and
- the mouth area is at least equal to the minimum flow area.
- 11. The eductor of claim 10 wherein the minimum flow area and the mouth area are circular and concentric.
- 12. The eductor of claim 1 wherein:
- the flow guide has a first portion and a second portion below the first portion;
- the first portion and the second portion each have a length measured along the long axis; and
- the length of the second portion is at least equal to the length of the first portion.
- 13. The eductor of claim 12 wherein the length of the second portion is between 1.0 and 4.0 times the length of the first portion.
- 14. The eductor of claim 1 wherein the flow guide includes:
- a first portion converging in a downstream direction at a first angle; and
- a second portion extending from the first portion and converging in a downstream direction at a second angle.
- 15. The eductor of claim 14 wherein the first angle is between about 40.degree. and 80.degree..
- 16. The eductor of claim 15 wherein the second angle is between about 5.degree. and 15.degree..
- 17. The eductor of claim 1 including an attachment portion for introducing the water into the eductor and a smoothing apparatus between the attachment portion and the flow guide for smoothing the flow of water therethrough, and wherein the smoothing apparatus includes:
- a body fixed in the eductor; and
- a plurality of downwardly-converging passages formed in the body for flowing the water therethrough.
- 18. The eductor of claim 17 wherein the passages are in overlapping relationship, thereby forming plural upstream-pointing sharp edges.
- 19. The eductor of claim 18 wherein the smoothing apparatus is a primary apparatus and the eductor includes a secondary smoothing apparatus downstream of the venturi tube for enhancing laminarity.
- 20. The eductor of claim 1 including a plurality of channels in flow communication with the venturi tube, thereby configuring the eductor for mixing the cleaning concentrate and a third liquid with the water.
- 21. The eductor of claim 20 wherein:
- the supply nozzle has an axial length and an opening having a diameter; and
- the ratio of the diameter of the supply nozzle opening to the axial length of the supply nozzle is between about 10:1 and about 21:1.
- 22. A method for mixing water and a liquid chemical product including providing an eductor comprising:
- (a) an inlet end, (b) a backflow-preventing airgap downstream of the inlet end, (c) a flow guide in downstream relationship to the air gap and having an inlet collector passage, an exhaust end, a guide passage between the collector passage and the exhaust end, and an aperture formed solely in the flow guide between the collector passage and the exhaust end, (d) a venturi tube contacting the exhaust end, (e) a single outlet port downstream of the venturi tube, (f) a channel connecting the venturi tube to a container of the chemical product, and (g) a long axis having the inlet end, the flow guide, the venturi tube and the outlet port concentric therewith and the channel lateral thereto;
- and wherein:
- the venturi tube is the sole venturi tube in the eductor and includes a conduit having an upstream end and an inverted-cone interior surface having a downstream end terminating above the lateral channel;
- the guide passage has upstream and downstream ends;
- the guide passage and the conduit form an uninterrupted flow path therethrough, such uninterrupted flow path extending with a continually-decreasing cross-sectional area from the upstream end of the guide passage to the downstream end of the inverted-cone interior surface;
- and wherein the eductor further comprises:
- a pocket connection between the flow guide and venturi tube, the flow guide and venturi tube thereby being in sealing thread-free engagement with one anther and abutting
- an essentially smooth, uninterrupted flow passage is formed at the pocket connection by the flow guide and the venturi tube, such uninterrupted axial flow passage being between the guide passage and the conduit;
- and wherein the method further include:
- flowing water into the inlet end, past the air gap, through the collector passage and into the guide passage;
- bypassing a first portion of the water only outwardly through the aperture into an overflow chamber which is flow-isolated from the air gap;
- passing the remaining second portion of the water through the venturi tube, thereby drawing the chemical product through the channel to form a mixture of the water and the chemical product; and
- flowing all of the first portion of the water and all of the mixture through the single outlet port.
- 23. The method of claim 22 wherein the bypassing step includes bypassing at least a part of the first portion of the water against an imperforate wall, thereby preventing the first portion from reaching the air gap.
RELATED APPLICATION
This application is a continuation-in-part of application Ser. No. 08/634,639 filed on Apr. 18, 1996, and now abandoned.
US Referenced Citations (23)
Foreign Referenced Citations (2)
Number |
Date |
Country |
WO9116138 |
Oct 1991 |
WOX |
WO9534778 |
Dec 1995 |
WOX |
Continuation in Parts (1)
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Number |
Date |
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Parent |
634639 |
Apr 1996 |
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