MULTI-FUNCTIONAL SUBMERSIBLE VACUUM
20200308858 ยท 2020-10-01
Inventors
Cpc classification
E04H4/1645
FIXED CONSTRUCTIONS
International classification
Abstract
A liquid-submersible vacuum system includes a housing canister enclosing a filtration element and a water pump. Power comes from a power converter that plugs into a standard AC power supply. The vacuum system further includes a diffuser cap and a discharge hose cap, with each providing the vacuum system with a discrete mode of operation
Claims
1. A liquid-submersible vacuum cleaner, comprising: a housing defining a chamber therein and having a rear end portion and a front end portion; a DC pump disposed within the chamber and configured to move water toward the rear end portion of the housing; a filter disposed within the housing, such that water moves through the filter during activation of the DC pump; and a power converter electrically connected to the DC pump for providing power to the DC pump, wherein the power converter is located remotely from the housing.
2. The liquid-submersible vacuum cleaner according to claim 1, wherein the DC pump is configured to be activated upon actuation of the power converter.
3. The liquid-submersible vacuum cleaner according to claim 1, further comprising a low voltage power cord directly coupling the power converter and the DC pump.
4. The liquid-submersible vacuum cleaner according to claim 3, wherein the low voltage power cord has a front end portion attached to the DC pump at a location within the housing.
5. The liquid-submersible vacuum cleaner according to claim 1, wherein the DC pump is configured to generate a flow rate of between about 40 gallons-per-minute (GPM) and about 65 GPM of water
6. The liquid-submersible vacuum cleaner according to claim 1, further comprising a diffuser cap configured to be coupled to the rear end portion of the housing.
7. The liquid-submersible vacuum cleaner according to claim 6, wherein the diffuser cap defines a plurality of slits therein to allow for the passage of water out of the housing.
8. The liquid-submersible vacuum cleaner according to claim 6, further comprising a discharge hose cap configured to be detachably coupled to the rear end portion of the housing, wherein the discharge hose cap is configured to be coupled to a hose to allow for the passage of water out of the housing.
9. The liquid-submersible vacuum cleaner according to claim 1, wherein the discharge hose cap and the diffuser cap are selectively exchangeable with one another, such that in a first operation mode, the discharge hose cap is coupled to the rear end portion of the housing, and in a second operation mode, the diffuser cap is coupled to the rear end portion of the housing.
10. The liquid-submersible vacuum cleaner according to claim 9, further comprising a nozzle attachment configured to be coupled to the housing when the vacuum cleaner is in the first operation mode and detached from the housing when the vacuum cleaner is in the second operation mode.
11. The liquid-submersible vacuum cleaner according to claim 1, further comprising a pair of clamps attached to the housing and being longitudinally spaced from one another, the pair of clamps configured to releasably couple the housing to a pool pole.
12. The liquid-submersible vacuum cleaner according to claim 1, further comprising a flexible intake hose, wherein the housing includes a port configured to provide fluid communication between the chamber of the housing and the flexible intake hose.
13. The liquid-submersible vacuum cleaner according to claim 1, further comprising an intake valve flap disposed within the housing for inhibiting debris from moving toward the front end portion of the housing.
14. The liquid-submersible vacuum cleaner according to claim 1, wherein the power converter includes a fuse protector.
15. The liquid-submersible vacuum cleaner according to claim 1, further comprising a filter access cover detachably coupled to the housing, wherein the housing and the filter access cover collectively house the filter therein.
16. A liquid-submersible vacuum cleaner, comprising: a housing having a front end portion and a rear end portion; a DC pump disposed within the housing and configured to move water into, through, and out of the housing; a filter disposed within the housing, such that water moves through the filter during activation of the DC pump; a diffuser cap and a discharge hose cap, wherein the discharge hose cap and the diffuser cap are selectively exchangeable with one another, such that in a first operation mode, the discharge hose cap is coupled to the rear end portion of the housing, and in a second operation mode, the diffuser cap is coupled to the rear end portion of the housing; a nozzle attachment configured to be coupled to the housing when the vacuum cleaner is in the first operation mode and detached from the housing when the vacuum cleaner is in the second operation mode.
17. The liquid-submersible vacuum cleaner according to claim 16, further comprising a power converter electrically connected to the DC pump for providing power to the DC pump.
18. The liquid-submersible vacuum cleaner according to claim 17, further comprising a low voltage power cord directly coupling the power converter and the DC pump.
19. The liquid-submersible vacuum cleaner according to claim 18, wherein the low voltage power cord has a front end portion attached to the DC pump at a location within the housing.
20. The liquid-submersible vacuum cleaner according to claim 17, wherein the power converter is located externally of the housing.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0054] With reference to the drawings, a new and improved swimming pool vacuum system embodying the principles and concepts of the present disclosure will be described.
[0055] The vacuuming system generally includes a cylindrical housing, a direct current (DC) underwater pump, a 120 volt AC to 24 volt DC converter, a filter, an underwater low voltage cord, and a clamp system to attach to a universal pool telescoping pole. The cylindrical housing is attached via clamps parallel with a universal/standard pool telescoping pole and any vacuum head appropriate for the pool surface. A short length of 1.5 inch corrugated vacuum hose attaches to vacuum head and suction side of a cleaner. A DC volt pump enclosed in the housing (6-8 inches in diameter) produces 40-65 GPM of water suction, pulling water through a filter cartridge, bag, or screen. The water discharges out of the other end of the housing through a diffuser cap back into the pool. In addition to or in the alternative, the diffuser hose cap may be used to discharge the water to waste.
[0056] This multi-purpose wet vacuum may be a 10-volt powered fully submersible multi-port discharge design system. The unit is designed to draw water through an inlet at the base of the unit by means of suction which is created by a centrifuge pump located in the general housing mechanism and is powered by an electric motor. The suction created pulls water to a filter housing which contains a reusable-cleanable wet particle filter that has a long life expectancy. The water passes through the filter and can be discharged to its point of origin or it can be discharged to a point which is not part of the origin supply. The result is water containing suspended particulate in the origin supply will be filtered as it passes through the filter and the result is cleaner water being discharged out of the unit.
[0057] Water can also be passed to a different location by replacing the diffuser cap with the discharge hose cap. The unit can discharge water from a location (A) to a completely different location (B) through use of interchangeable caps connecting to the housing mechanism. The unit has the mobility of a vacuum and the ability to continually discharge water for extended periods of time.
[0058] As described herein,
[0059] As shown in
[0060] The housing mechanism 9 is engaged by plugging male plug 1 into a standard 110/120 electric outlet via an outdoor extension cord. The housing mechanism 9 is clamped onto the pool pole and the flex intake hose 16 is connected to the vacuum head and an intake fitting 14, wherein the complete vacuum, pole and vacuum head are placed in the pool. The 10-100 foot underwater rubber insulated low voltage cord 4 is clamped onto the vacuum pole with the pole clamp 24 which is connected to the converter 3, and the converter 3 is turned on to start vacuuming.
[0061] The pump 18 may be a 24 DC volt underwater pump capable of moving 40-65 GPM. Water suction is created in the intake fitting 14 and water begins its journey through the housing mechanism 9. The intake valve flap 13 opens to allow water to run through the filter 11 or 12. The filter may be a filter bag 11, a fine or coarse mesh bag filter, a fine metal screen filter, or a pleated cartridge filter 12. After the water is filtered through the vacuum housing 9, it passes through a debris blocking grid 10 to protect the impeller of pump 18 from damage. The water passes through the pump 18 and is released through a diffuser cap 5 into the pool. An O-ring seal 19 creates a water/air tight seal between the discharge hose cap 20 and/or diffuser cap 5.
[0062] The discharge hose cap 20 may be used to replace the diffuser cap 5 for the option to vacuum water and debris out of pool completely (vacuum to waste), using a waste hose connected to the discharge hose cap 20. The discharge hose cap 20 is used for the second application of removing pooling water from point A to point B. A floor vacuum nozzle attachment 23 is connected to the intake fitting 24 for this second application of the vacuum system 100.
[0063] The vacuum system 100 easily assembles and has many advantages in function. For example, the intake valve flap 13 stops debris from re-entering the pool when housing mechanism 9 is removed from the pool. A filter access cover 8 provides easy access and cleaning of the filter. For further ease of use, there is a full filter bag indicator 7 to notify a user when to clean the filter bag 11. The underwater rubber insulated low voltage cord 4 has a connector fitting 6 that protects the cord 4 from being disconnected from the pump 18. The two vacuum pole clamps 15 attach to the housing mechanism 9. The intake fitting 14 is a standard 1.5 inch fitting to accept large debris without clogging. The 24 DC volt converter 3 is a continuous power source, such that the vacuum system 100 does not require the charging of batteries. The vacuum system 100 does not require any battery replacement and the vacuum pump never loses power due to the use of a direct external power source.
[0064] Persons skilled in the art will understand that the devices and methods specifically described herein and illustrated in the accompanying drawings are non-limiting exemplary aspects. It is envisioned that the elements and features illustrated or described in connection with one exemplary aspect may be combined with the elements and features of another without departing from the scope of the present disclosure. As well, one skilled in the art will appreciate further features and advantages of the disclosure based on the above-described aspects. Accordingly, the disclosure is not to be limited by what has been particularly shown and described, except as indicated by the appended claims.