REVERSE OSMOSIS DRINKING WATER SYSTEM WITH DEDICATED POWERED FAUCET
20210236991 · 2021-08-05
Inventors
- Tedd M. SCHNEIDEWEND (Glen Ellyn, IL, US)
- Bill LATHOURIS (Arlington Heights, IL, US)
- Christopher G. HARRIS (Chicago, IL, US)
- Chia H. KUNG (Buffalo Grove, IL, US)
- Adam Sloma (Arlington Heights, IL, US)
- David J. WEST (Chicago, IL, US)
Cpc classification
C02F2209/10
CHEMISTRY; METALLURGY
C02F2307/06
CHEMISTRY; METALLURGY
E03C1/021
FIXED CONSTRUCTIONS
B01D61/025
PERFORMING OPERATIONS; TRANSPORTING
B01D61/10
PERFORMING OPERATIONS; TRANSPORTING
C02F2209/008
CHEMISTRY; METALLURGY
B01D2311/04
PERFORMING OPERATIONS; TRANSPORTING
C02F1/003
CHEMISTRY; METALLURGY
E03C1/04
FIXED CONSTRUCTIONS
E03C2201/40
FIXED CONSTRUCTIONS
B01D2311/06
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01D61/10
PERFORMING OPERATIONS; TRANSPORTING
B01D61/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An air gap adapter for use with a water treatment faucet constructed and arranged for being mounted in a standard countertop faucet opening. The adapter includes an adapter base with an underside, defining a base throughbore for a standard faucet inlet nipple, having an RO retentate inlet port and a separate RO retentate outlet port. A cone insert has a platform covering at least a portion of the base, and a cone formation vertically projecting from the platform and being in fluid communication with the inlet port. An outlet opening is on the cone formation in fluid communication with the outlet port. An adapter cover disposed over the cone insert and the base includes a cone cover portion and a base cover portion, as well as a cover throughbore in registry with the throughbore. The adapter is constructed and arranged to be optionally mounted to a countertop with the faucet.
Claims
1. An air gap adapter for use with a water treatment faucet constructed and arranged for being mounted in a standard countertop faucet opening, said adapter comprising: an adapter base with an underside, defining a base throughbore for a standard faucet inlet nipple, having an RO retentate inlet port and a separate RO retentate outlet port; a cone insert having a platform covering at least a portion of said adapter base; a cone formation vertically projecting from said platform and being in fluid communication with said inlet port; an outlet opening on said cone formation in fluid communication with said RO retentate outlet port; and an adapter cover disposed over said cone formation and said base includes a cone cover portion and a base cover portion, as well as a cover throughbore in registry with said base throughbore; said adapter constructed and arranged to be optionally mounted to a countertop with said faucet.
2. The air gap adapter of claim 1, wherein said inlet port having an associated inlet flow channel, and said outlet port having an associated outlet flow channel in said adapter base.
3. The air gap adapter of claim 2, wherein said cone insert platform covers said inlet flow channel and said outlet flow channel.
4. The air gap adapter of claim 1, further including a flow directing formation on an exterior of said cone formation in fluid communication with an outlet opening in said cone formation and also with an outlet flow channel.
5. An air gap adapter for use with a water treatment faucet constructed and arranged for being mounted in a standard countertop faucet opening, said adapter comprising: an adapter base with an underside, defining a base throughbore for a standard faucet inlet nipple, having an RO retentate inlet port and a separate RO retentate outlet port; said inlet port having an associated inlet flow channel, and said outlet port having an associated outlet flow channel in said adapter base; a cone insert having a platform covering at least a portion of said adapter base including said inlet flow channel and said outlet flow channel; a cone formation vertically projecting from said platform and being in fluid communication with said inlet flow channel; a flow directing formation on an exterior of said cone formation in fluid communication with an outlet opening in said cone formation and also with said outlet flow channel; and an adapter cover including a cone cover portion and a base cover portion, as well as a cover throughbore in registry with said base throughbore.
6. The air gap adapter of claim 5, further including a seal configured for isolating said inlet flow channel from said outlet flow channel.
7. The air gap adapter of claim 5, further including a seal isolating said flow directing formation from said platform.
8. The air gap adapter of claim 5, wherein said adapter cover includes a depending skirt for enveloping a peripheral edge of said base.
9. The air gap adapter of claim 5, wherein said RO retentate inlet port has a shorter axial length than said RO retentate outlet port.
10. The air gap adapter of claim 5, wherein said inlet channel is adjacent said outlet flow channel in said base.
11. A water treatment faucet configured for use with a standard water faucet mounted in operational relationship to a sink and located on a countertop, said water treatment faucet comprising: a faucet base configured for mounting to the countertop, and having a first electrical connector connected to a remote power source, and a second electrical connector connected to a water treatment system located underneath the countertop; said first electrical connector being electrically connected to said second electrical connector.
12. The water treatment faucet of claim 11, wherein said first electrical connector is a primary induction coil; and said second electrical connector is a secondary induction coil located in operational proximity to said primary induction coil.
13. The water treatment faucet of claim 11, wherein said first electrical connector is directly electrically connected to said second electrical connector.
14. A water treatment system, including at least one prefilters, at least one RO membrane unit and a treated water storage tank, all of the above being connected by a water feed line, said system comprising: at least one solenoid valve being connected between an inlet and at least one of said at least one filters, said at least one RO membrane unit and said a storage tank for controlling flow in said water feed line.
15. The water treatment system of claim 14, wherein said at least one solenoid valve includes a first solenoid valve connected to said water feed line before said at least one prefilter.
16. The water treatment system of claim 14, wherein said at least one solenoid valve includes a second solenoid valve connected to said water feed line between said at least one prefilters and said at least one RO membrane unit.
17. The water treatment system of claim 16, wherein said second solenoid valve has an inlet connected to said water feed line between said at least on prefilter and said at least one RO membrane unit, and a solenoid valve outlet connected to said water feed line between said at least RO membrane unit and said RO storage tank.
18. The water treatment system of claim 17, further including a pretank filter connected to said water feed line between said at least one RO membrane unit and said second solenoid valve outlet.
19. The water treatment system of claim 14, wherein said at least one solenoid valve includes a third solenoid valve connected to a drain line connected to said at least one RO membrane unit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0032] Referring now to
[0033] Referring now to
[0034] As seen in
[0035] Returning now to
[0036] Regarding the cone insert 32, the platform 34 covers at least a portion of the adapter base 24 including the inlet flow channel 46 and the outlet flow channel 48. It will be seen in
[0037] On an apex of the vertically projecting, hollow cone formation 36, an opening 52 receives water from the inlet flow channel 46, which then drips down the formation until it reaches a flow directing formation 54 on an exterior 56 of the cone formation. In the preferred embodiment, the flow directing formation 54 is generally helically shaped, and directs the flow of water to an outlet opening 58 at a bottom of the cone formation 36 near the platform 38. The outlet opening 58 is in fluid communication with the outlet flow channel 48 and ultimately also in communication with the RO retentate outlet port 30.
[0038] Referring again to
[0039] Referring now to
[0040] Referring now to
[0041] Referring now to
[0042] Referring now to
[0043] Referring now to
[0044] A first TDS sensor 108 is optionally connected to the water feed line 96 to gauge the suspended particles in the incoming, untreated water. Next, the water feed line 96 is connected to a combined pre-filter and activated carbon filter 110. An optional flow sensor 112 is next connected to the water feed line 96. Between the flow sensor 112 and an RO unit 114 along the water feed line 96, is connected a permeate flush loop of conduit 116 controlled by a second solenoid valve 118. A second end 120 of the flush loop 116 is connected to the water feed line 96 downstream of a second TDS sensor 122, a pretank filter 124 and a check valve 126, each connected sequentially to the water feed line downstream of the RO unit 114. The second TDS sensor 122 is useful in monitoring the effectiveness of the RO unit in filtering the water.
[0045] Downstream of the second end 120 of the flush loop 116, the water feed line 96 passes to an RO storage tank 128 that stores water treated by the RO unit 114. A second pressure sensor 130 is connected to the water feed line 96 just upstream of the RO storage tank 128. A faucet feed line 132 is connected to the water feed line 96 between the second pressure sensor 130 and the second end 120 of the flush loop 116, and receives treated water from the RO storage tank 128. A second flow sensor 134 monitors flow to the faucet 74, 92. Also, a post filter 136 is connected to the faucet feed line 132 prior to a connection with the faucet 74, 92.
[0046] As is known in the art, the RO unit 114 removes particles from the incoming water through the use of an RO membrane 138. The collected retentate is sent to drain via a drain line 140. An optional fast flush loop 142 is connected to the drain line 140, and is under the control of a third solenoid valve 144. A capillary control valve 146 is placed in the drain line 140.
[0047] In the preferred embodiment, all of the solenoid valves 100, 118, 144 as well as the sensors 98, 108, 112, 122, 130 and 134 are connected to the control module 102, either by wired or wireless connection as is well known in the art. Depending on the programming of the processor 104 and the arrangement of the GUI 106, the system 90 is adjustable by the user to accommodate various base water quality characteristics, treated water demands, as well as desired water quality or water treatment system parameters.
[0048] While a particular embodiment of the present reverse osmosis drinking water system with dedicated powered faucet has been described herein, it will be appreciated by those skilled in the art that changes and modifications may be made thereto without departing from the invention in its broader aspects and as set forth in the following claims.