Variable venturi device with adjustable valve stem
10596530 ยท 2020-03-24
Assignee
Inventors
Cpc classification
B05B12/1418
PERFORMING OPERATIONS; TRANSPORTING
F16K19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F25/312512
PERFORMING OPERATIONS; TRANSPORTING
F16K1/385
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F25/316
PERFORMING OPERATIONS; TRANSPORTING
F16K1/487
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F2101/04
PERFORMING OPERATIONS; TRANSPORTING
B01F2025/9191
PERFORMING OPERATIONS; TRANSPORTING
B05B7/0408
PERFORMING OPERATIONS; TRANSPORTING
B01F25/31243
PERFORMING OPERATIONS; TRANSPORTING
B01F25/312
PERFORMING OPERATIONS; TRANSPORTING
F16K31/50
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B7/2443
PERFORMING OPERATIONS; TRANSPORTING
International classification
F16K1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B7/24
PERFORMING OPERATIONS; TRANSPORTING
F16K1/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B12/14
PERFORMING OPERATIONS; TRANSPORTING
F16K1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K1/48
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A fluid injection device includes a housing and a valve stem. The housing includes an inlet arm having an inlet orifice for receiving a feeder fluid. An outlet arm has an outlet orifice to discharge a mixed fluid. A venturi tube is between the inlet and outlet arms. The inlet arm, veturi tube and outlet arm define a nonlinear fluid pathway where the venturi tube redefines a portion of the nonlinear fluid pathway as a constricted fluid pathway. A diverter port is used to divert a portion of the feeder fluid from the inlet arm into the container and an injection port is used to receive product from the container. A valve arm is collinearly aligned with the venturi tube and the valve stem is positioned within the valve arm and adjusts the volume of the constricted fluid pathway.
Claims
1. A fluid injection device configured for use with a container holding a product to be dispersed, the fluid injection device comprising: a) a housing including: i) an inlet arm defining an inlet tube having an inlet orifice configured to receive a feeder fluid; ii) an outlet arm defining an outlet tube having an outlet orifice configured to discharge a mixed fluid comprising the product and feeder fluid; iii) a venturi tube portion between the inlet tube and the outlet tube, wherein the inlet tube is arranged orthogonal to the venturi tube portion and outlet tube so as to define a nonlinear fluid pathway between the inlet orifice and the outlet orifice, and wherein the venturi tube portion redefines at least a portion of the nonlinear fluid pathway as a constricted fluid pathway; iv) a diverter port located on the inlet arm and in fluid communication with the inlet tube and configured to divert a portion of the feeder fluid from the inlet arm into the container; and v) an injection port between the constricted fluid pathway and the outlet orifice, the injection port in fluid communication with the outlet tube and configured to receive the product from the container; vi) a valve arm collinearly aligned with the venturi tube portion and the outlet arm; and b) a valve stem having proximal and distal ends, the valve stem positioned within the valve arm and selectively movable to adjust an open volume of the constricted fluid pathway.
2. The fluid injection device of claim 1 wherein the valve stem includes a solid valve rod threadably mounted within the valve arm wherein the proximal end resides within at least of portion of the venturi tube portion and the distal end includes a knob to selectively position the proximal end within the venturi tube portion.
3. The fluid injection device of claim 1 wherein the venturi tube portion includes a tapered inlet wall portion and the proximal end of the valve stem terminates in a valve head configured to reside within at least a portion of the tapered inlet wall portion.
4. The fluid injection device of claim 3 wherein the valve head includes a plurality of outwardly extending vanes spaced apart from one another, each vane configured to contact the tapered inlet wall portion while also maintaining an open fluid pathway between adjacent spaced vanes to direct the feeder fluid from the inlet tube to the outlet tube when the valve stem is in a fully inward travel position.
5. A fluid injection system comprising: a. a container holding a product to be dispersed; b. a fluid injection device removably coupled to the container, the fluid injection device comprising: i) a housing including: a) an inlet arm defining an inlet tube having an inlet orifice configured to receive a feeder fluid; b) an outlet arm defining an outlet tube having an outlet orifice configured to discharge a mixed fluid comprising the product and feeder fluid; c) a venturi tube portion between the inlet tube and the outlet tube, wherein the inlet tube is arranged orthogonal to the venturi tube portion and outlet tube so as to a nonlinear fluid pathway between the inlet orifice and the outlet orifice, and wherein the venturi tube portion redefines at least a portion of the nonlinear fluid pathway as a constricted fluid pathway; d) a diverter port located on the inlet arm and in fluid communication with the inlet tube and configured to divert a portion of the feeder fluid from the inlet arm into the container; e) an injection port between the constricted fluid pathway and the outlet orifice, the injection port in fluid communication with the outlet tube and configured to receive the product from the container; f) a valve arm collinearly aligned with the venturi tube portion and the outlet arm; ii) a diverter tube coupled to the diverter injection port at a first end and to the container at a second end whereby a portion of the feeder fluid is diverted from the inlet tube to the container, the diverted feeder fluid configured to layer atop the product within the container; iii) an injection tube coupled to the injection port at a first end and in fluid communication with the product at a second end whereby the product is drawn from the container and injected into the outlet tube to produce the mixed fluid before being discharged through the outlet orifice; and iv) a valve stem having proximal and distal ends, the valve stem positioned within the valve arm and selectively movable to adjust an open volume of the constricted fluid pathway.
6. The fluid injection system of claim 5 wherein the valve stem includes a solid valve rod threadably mounted within the valve arm wherein the proximal end resides within at least of portion of the venturi tube portion and the distal end includes a knob to selectively position the proximal end within the venturi tube portion.
7. The fluid injection system of claim 5 wherein the venturi tube portion includes a tapered inlet wall portion and the proximal end of the valve stem terminates in a valve head configured to reside within at least a portion of the tapered inlet wall portion.
8. The fluid injection system of claim 7 wherein the valve head includes a plurality of outwardly extending vanes spaced apart from one another, each vane configured to contact the tapered inlet wall portion while also maintaining an open fluid pathway between adjacent spaced vanes to direct the feeder fluid from the inlet tube to the outlet tube when the valve stem is in a fully inward travel position.
9. The fluid injection system of claim 5 wherein the container includes a closure, the closure comprising: a) a lid having a top face and an opposing bottom face, wherein first and second nibs extend outwardly from the top face and a ring extends inwardly from the bottom face wherein the ring is in fluid communication with the second nib, the lid further including a circumferential groove; b) a seal configured to be received within the groove; the seal proportioned to seat against a mouth opening of the container to form an airtight seal therebetween; and c) a collar configured to overlap at least a portion of the lid, wherein the collar is mountable to the container to removably secure the lid to the container and facilitate the airtight seal.
10. The fluid injection system of claim 9 wherein the diverter tube is coupled to the first nib and the injection tube is coupled to the second nib, and wherein the lid further includes a product injection tube coupled to the ring at a first end, wherein the first end is fluidly connected to the injection tube, and configured to reside within the product at a second end.
11. The fluid injection system of claim 9 wherein the collar includes a set of collar threads and the container includes a corresponding set of container threads, wherein the collar threadably engages the container to secure the lid.
12. The fluid injection system of claim 11 wherein the collar is configured to selectively wind and unwind upon the container threads without causing the lid to rotate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(10) Referring now to
(11) Inlet arm 26 is configured to receive a feeder fluid 38, such as but not limited to water received from a hose, faucet or hose bibb, via inlet orifice 30. Feeder fluid 38 is then discharged through outlet orifice 36 as will be discussed in greater detail below. To that end and with reference to
(12) With continued reference to
(13) To meter the magnitude of the drop in pressure and resultant partial vacuum within venturi tube portion 64, housing 18 may further include a valve arm 84 collinearly aligned with venturi tube portion 64 and outlet tube 34. Valve stem 86 may reside within valve arm 84 such that proximal end 88 of valve stem 86 may extend toward and within a portion of venturi tube portion 64. Changing the position of proximal end 58 within tapered inlet wall portion 68 of venturi tube portion 64 selectively increases or decreases the velocity of feeder fluid 38 and the resultant pressure drop and partial vacuum within outlet tube 34 by variably controlling the open volume of constricted fluid pathway 70. In this manner, the volume of product 14 drawn through injection tube 74 may be selectively regulated and adjusted.
(14) In one aspect of the present invention, the valve stem may be directly threadably coupled within the valve arm. In a further aspect of the present invention, and as shown most clearly in
(15) Valve cap 100 and valve housing 90 may also include respective through bores 106, 108 proportioned to receive valve rod 110 therethrough. A seal, such as O-ring 112, may be configured to form a substantially watertight seal between valve housing 90 and valve rod 110. Proximal end 114 of valve housing 90 may include threads 116 configured to receive mating threads 118 on valve rod 110. Thus, rotation of valve rod 110 selectively positions proximal end 120 of valve rod 110 within venturi tube portion 64 as described above.
(16) With additional reference to
(17) In a further aspect of the present invention, cylindrical wall portion 122a of valve head 122 may include a plurality of longitudinally extending vanes 123 radially spaced apart from one another about the circumference of cylindrical wall portion 122a. Vanes 123 may engage tapered inlet wall portion 68 when valve rod 110 is fully advanced through inward travel 130. To that end, vanes 123 may include a tapered region 123a configured to coincide with truncated cone portion 122b at a straight angle as generally indicated by line L-L in
(18) In a further aspect of the present invention, distal end 128 of valve rod 110 may include a knob 132 to assist rotation of valve rod 110 within valve housing 90. Knob 132 may further include indicia 133 which indicate the relative position of proximal end 120 within constricted fluid pathway 70. In this manner, the open volume of venturi tube portion 64 (and therefore the volume of product 14 drawn into outlet tube 34) may be readily discerned and easily adjusted by the user.
(19) Upon drawing of product 14 through injection tube 74 as described above, container 12 will experience a negative internal pressure/partial vacuum. To that end, inlet arm 26 of housing 18 may include a diverter port 134 located between inlet orifice 30 and venturi tube portion 64 with diverter port 134 in fluid communication with inlet tube 28. A diverter tube 136 may then fluidly couple diverter port 134 (and inlet tube 28) with the interior headspace 138 of container 12 (see
(20) In a further aspect of the present invention, with reference to
(21) As shown most clearly in
(22) The foregoing description of the preferred embodiment of the invention has been presented for the purpose of illustration and description. It is not intended to be exhaustive nor is it intended to limit the invention to the precise form disclosed. It will be apparent to those skilled in the art that the disclosed embodiments may be modified in light of the above teachings. The embodiments described are chosen to provide an illustration of principles of the invention and its practical application to enable thereby one of ordinary skill in the art to utilize the invention in various embodiments and with various modifications as are suited to the particular use contemplated. Therefore, the foregoing description is to be considered exemplary, rather than limiting, and the true scope of the invention is that described in the following claims.