Dual dilution rate closed loop insert
10815117 ยท 2020-10-27
Assignee
Inventors
Cpc classification
B67D7/36
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A consistent water to chemical ratio in each of two described operating modes is achieved by implementing a closed loop insert comprising a single straw with a dual dilution rate. The closed loop insert is installed at the packaging level and is recessed into the neck of the container so that it does not interfere with the bottle cap or the dispensing unit to which it might be attached. The closed loop engages with a mating cap adapter or chemical dispenser that keys up to a closed insert to allow the dilution dispenser to draw chemical out of the container through the use of a vacuum pressure. The dual dilution rate closed loop insert of the invention has two different metering tip sizes that fit inside a single straw closed loop insert, selected based upon operating modes.
Claims
1. A dual dilution rate chemical bottle insert for dispensing chemical fluid stored in a bottle at multiple selected dilution rates, the insert comprising: an insert body; a tube extending out of the insert body; a metering poppet disposed in the insert body; a first larger fluid flow hole disposed in the metering poppet for dispensing a first greater volume of fluid through the tube; and a second smaller fluid flow hole disposed in the metering poppet for dispensing a second lesser volume of fluid through the tube, the metering poppet being movable between a first orientation wherein the first larger fluid flow hole is exposed for permitting chemical fluid flow therethrough and a second orientation wherein the second smaller fluid flow hole is exposed for permitting chemical fluid flow therethrough, the second smaller fluid flow hole being covered when the metering poppet is in the first orientation and the first larger fluid flow hole being covered when the metering poppet is in the second orientation, the metering poppet moving between the first and second orientations responsive to applied vacuum pressure levels; and a diaphragm disposed in the insert body which is movable with the metering poppet between the first and second orientations.
2. The dual dilution rate chemical bottle insert as recited in claim 1, and further comprising a poppet spring which is biased to return the metering poppet to a closed orientation when chemical dispensing is not desired.
3. The dual dilution rate chemical bottle insert as recited in claim 1, and further comprising a check valve in the insert.
4. The dual dilution rate chemical bottle insert as recited in claim 3, and further comprising a cap engageable with an opening in the bottle, wherein engagement of the cap with the bottle opening moves the check valve to an open orientation to permit flow of chemical from the bottle.
5. The dual dilution rate chemical bottle insert as recited in claim 4, and further comprising a piston having a piston outlet hole, wherein movement of the check valve to the open orientation by the cap opens the piston outlet hole to permit dispensing of the chemical.
6. The dual dilution rate chemical bottle insert as recited in claim 3, wherein the check valve comprises an umbrella valve.
7. The dual dilution rate chemical bottle insert as recited in claim 3, wherein the check valve comprises a ball valve.
8. The dual dilution rate chemical bottle insert as recited in claim 1, wherein a first applied vacuum pressure positions the diaphragm and the metering poppet to expose one of the two fluid flow holes and a second applied vacuum pressure positions the diaphragm and the metering poppet to expose the other of the two fluid flow holes.
9. The dual dilution rate chemical bottle insert as recited in claim 8, wherein the lower of the first and second applied vacuum pressures positions the metering poppet to expose the smaller of the two fluid flow holes, and the higher of the first and second applied vacuum pressures positions the metering poppet to expose the larger of the two fluid flow holes.
10. The dual dilution rate chemical bottle insert as recited in claim 1, wherein the first larger fluid flow hole permits a diluted fluid flow of about 3-4 gpm and the second smaller fluid flow hole permits a diluted fluid flow of about 1 gpm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(21) The closed loop insert system has been around for years and been proven to work effectively using vacuum to evacuate liquids from the container to the chemical dispensing equipment. However, the closed loop insert systems available in the market comprise a single straw and a single size metering tip. Most of the time, this single straw is utilized for both the low (bottle) flow fill rate (approximately 1 gpm) and for the high (bucket) flow fill rate (3-4 gpm), which, as discussed above, is a compromise resulting in inaccurate and inconsistent actual flow rates in each flow mode, with too much or too little chemical being used for the two different flow rates. This translates into poor results or a waste of chemical. As also discussed above, sometimes, where accurate flow rates in each flow mode are particularly important or desirable, a two straw system is employed, with a different metering tip in each of the two straws. This dual straw design requires specific chemical dilution dispensers to interface with the dual straw design. This requires the customer/user to change its whole chemical dispensing program, which can be very costly and complex.
(22) The present invention is unique and improved because it employs two differently sized metering tip holes in a single straw, allowing for chemical dilution dispensers to deliver the same chemical-to-water ratio for both identified flow rates. This works based on the application of a pressure differential on a rubber diaphragm, as will be described below. The metering tip holes are chosen based on the vacuum achieved by the selected flow rate, which activates a diaphragm that opens the particular metering tip hole for that selected flow rate. What makes the design unique is that the dual metering tip is designed into a single straw that is able to fit and interface with the majority of chemical dilution dispensers and mating caps used in the industry. This allows users to employ the inventive design without changing up their entire existing dispensing dilution program. The inventive dual dilution rate closed loop in a single straw design enables the user to obtain the correct flow rate of chemical and still be able to use their existing chemical dilution dispensers utilizing a single straw closed loop insert.
(23) The insert locks the chemical into the container to prevent leaks and spills throughout the product life cyclefrom shipping to storage to use to disposal. After the chemical is consumed, the bottle with the insert is discarded or recycled. This makes it the razor blade of the chemical proportioning market.
(24) Now, with more particular reference to the drawings, an exemplary embodiment of the present invention will be described in greater detail.
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(30) A second exemplary embodiment of the insert system 20 of the present invention is shown in
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(35) Although, as noted above, there are some relatively minor structural differences between the embodiments of
(36) Operationally, as in the first embodiment, the piston outlet hole 36 is closed (covered) by the ball-type check valve 26 when the insert is 20 in a closed position. This is the storage orientation for the bottle 10 with the insert installed therein.
(37) When the cap 18 is installed, it pushes the ball-type check valve 26 downwardly, thereby compressing the sliding valve spring 28, consequently exposing the outlet hole 36 of the piston. In this orientation, which is the default position or high flow position, a larger hole 46 on the poppet 30 is exposed for chemical to pass through. A second smaller hole 48 on the poppet 30 is covered in this orientation and not accessible to fluid flow.
(38) At a higher vacuum (e.g. 23 Hg and above), the diaphragm 34 and metering poppet 30 are pulled upwardly to an up position, thereby compressing the poppet spring and thus exposing the smaller poppet hole 48 for chemical to flow through and covering the larger poppet hole 46. Depending upon the applied vacuum pressure, the diaphragm and metering poppet move upwardly or downwardly to expose the proper metering hole 46, 48 for chemical flow-through. When dispensing of the chemical is completed, the poppet spring 33 is biased to push the diaphragm 34 and metering poppet 30 back to their default position.
(39) Accordingly, although an exemplary embodiment of the invention has been shown and described, it is to be understood that all the terms used herein are descriptive rather than limiting, and that many changes, modifications, and substitutions may be made by one having ordinary skill in the art without departing from the spirit and scope of the invention.