How to Minimize Scaling in Water Filtration Systems

The countertop water filtration system addresses water waste and scaling issues in POU systems by employing a closed-loop design with a pump and check valves to minimize water usage and prevent calcium buildup, enhancing system efficiency and longevity.

JP7822945B2Active Publication Date: 2026-03-03AQUA TRU LLC
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-02-04
Publication Date
2026-03-03

AI Technical Summary

Technical Problem

Point-of-use reverse osmosis (POU) water filtration systems waste significant water due to continuous flow and are prone to scaling when not properly maintained, especially in homes with high mineral content water supplies.

Method used

A countertop water filtration system with a closed-loop design using a pump, filters, and check valves to minimize water waste and prevent scaling by periodically reversing water flow through the system to agitate and remove calcium buildup.

Benefits of technology

Reduces water waste and effectively prevents scaling by maintaining system hygiene without external connections, ensuring efficient operation and longevity of the filtration components.

✦ Generated by Eureka AI based on patent content.

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Abstract

A method for water filtration that reduces scaling is disclosed herein. The method includes determining that a pump has been inactive for a threshold period of time. The method also includes closing a first valve to a filtered drinking water tank and opening a second valve to a source water tank based on determining that the pump has been inactive for the threshold period of time. The method further includes operating the pump for a period of time based on the first valve being closed and the second valve being open to circulate water from the source water tank through a filter system and back to the source water tank.
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Description

[Technical Field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to and the benefit of U.S. Patent Application No. 16 / 842,845, filed April 8, 2020, which is incorporated herein by reference in its entirety. [Background technology]

[0002] Water filtration has become popular in many homes due to increased levels of toxicity caused by chemicals found in water supplies. Point-of-use (POU) water treatment devices are designed to treat small amounts of drinking water for home use. These devices can be placed on a counter, attached to a faucet, or installed under a sink. They differ from point-of-entry (POE) devices, which are installed on the water pipe that enters the home and treats all water within the building.

[0003] Many modern homes are equipped with reverse osmosis (RO) units. RO units are typically installed under the sink, with the tap water connection plumbed directly into the sink's cold water supply line and the wastewater drain line connected directly to the sink's p-trap. These units use membranes that screen out chemicals such as chlorides and sulfates, as well as most other contaminants found in water supplies today. RO systems can remove particles down to one angstrom in size. However, POU RO systems can waste as much as three to four gallons of water for every gallon treated. This is due to the continuous flow of water that must cross the membrane surface to remove contaminants and prevent the membrane from clogging.

[0004] Additionally, if a POU RO system is not properly maintained, scaling can occur. Scaling occurs when the water contains high levels of minerals, such as calcium carbonate, which can build up on surfaces and within the filter. [Brief explanation of the drawings]

[0005] The detailed description is set forth with reference to the accompanying drawings. The use of the same reference numbers may indicate similar or identical items. Various embodiments may utilize elements and / or components other than those shown in the drawings, and some elements and / or components may not be present in various embodiments. Elements and / or components in the drawings are not necessarily drawn to scale. Throughout this disclosure, the terms singular and plural may be used interchangeably where appropriate.

[0006] [Figure 1] 1 illustrates a schematic diagram of a water filtration system according to one or more embodiments of the present disclosure. [Figure 2] FIG. 1 is a flow diagram illustrating an exemplary method for filtering water, according to one or more embodiments of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0007] FIG. 1 schematically illustrates a water filtration system 100 (and individual components of the water filtration system 100) in accordance with one or more embodiments of the present disclosure. In some examples, the water filtration system 100 may include a countertop reverse osmosis water filtration system. That is, the water filtration system 100 may be sized and shaped to fit on a countertop and / or inside a refrigerator. The water filtration system 100 may be of any suitable size and shape. The water filtration system 100 may operate independently from any water source and / or drain. That is, the water filtration system 100 may have no external connections. Furthermore, the water filtration system 100 may produce little or no wastewater. One exemplary countertop water filtration system is disclosed in U.S. Pat. No. 9,517,958.

[0008] As shown in FIG. 1 , the water filtration system 100 may include a first receptacle 104 that may be removably placed on a support base or the like. The first receptacle 104 may be configured to store source water therein. For example, a user may pour water (e.g., tap water) into the first receptacle 104, or the user may remove the first receptacle 104 from the support base 102 and fill it with water (e.g., tap water). The first receptacle 104 may include an outlet port 130 and an inlet port 132. In some examples, water may exit the first receptacle 104 through the outlet port 130. Water may also enter the first receptacle 104 via the inlet port 132.

[0009] The water filtration system 100 may include a second receptacle 134. The second receptacle 134 may be removably positioned on a support base. The second receptacle 134 may be configured to store a supply of water (e.g., filtered drinking water) therein. The second receptacle 134 may include an inlet port 150.

[0010] The water filtration system 100 may include a filter system 154. The filter system 154 may include an inlet port 158, a first outlet port 160, and a second outlet port 162. In some examples, when the first receptacle 104 and the second receptacle 134 are mounted on a support, the outlet port 130 of the first receptacle 104 may be disposed in fluid communication with the inlet port 158 ​​of the filter system 154. Furthermore, the first outlet port 160 of the filter system 154 may be disposed in fluid communication with the inlet port 132 of the first receptacle 104. Additionally, the second outlet port 162 of the filter system 154 may be disposed in fluid communication with the inlet port 150 of the second receptacle 134.

[0011] In certain embodiments, filter system 154 may include a first filter 164, a second filter 166, and a third filter 168. Additional or fewer filters may be used. First filter 164 may be configured and arranged to receive and filter water from inlet port 158 ​​of filter system 154 and deliver the first filtered water to second filter 166. In some examples, first filter 164 may be a sediment filter or a combination of a sediment filter and a carbon filter. First filter 164 may include any suitable filter. In some examples, additional filters may be disposed upstream of first filter 164.

[0012] The second filter 166 may be configured and arranged to receive the first filtrate from the first filter 164 and deliver a first portion of the first filtrate to the first outlet port 160 of the filter system 154. In this manner, the first portion of the first filtrate may comprise the wastewater 170 that is sent back to the first receptacle 104. Additionally, the second filter 166 may be configured to filter and deliver a second portion of the first filtrate to the third filter 168. The second portion of the first filtrate may comprise the second filtrate. In some examples, the second filter 166 may be a reverse osmosis membrane-type filter. The second filter 166 may be any suitable filter.

[0013] The third filter 168 may be configured and arranged to receive and filter the second filtered water from the second filter 166 and deliver the third filtered water to the second outlet port 162 of the filter system 154. In this manner, the third filtered water may comprise the feed water 172 delivered to the second receptacle 134. In some examples, the third filter 168 may be a carbon filter. The third filter 168 may be any suitable filter. In other examples, the third filter 168 may be omitted. In such examples, the second filter 166 may be configured to filter a second portion of the first filtered water and deliver it to the second receptacle 134. In still other examples, an additional filter may be positioned downstream of the third filter 168 before the second receptacle 134.

[0014] In one particular embodiment, approximately 100% of the water entering the first filter 164 may transfer to the second filter 166. In another embodiment, less than 100% of the water entering the second filter 166 may transfer to the third filter 168. For example, between about 1% and about 30% of the water entering the second filter 166 may transfer to the third filter 168, with the remaining water comprising the wastewater 170 that is sent back to the first receptacle 104. In yet another embodiment, approximately 100% of the water entering the third filter 168 may transfer to the second receptacle 134. This process is repeated as necessary.

[0015] The water filtration system 100 may include a flow restrictor 174. The flow restrictor 174 may be disposed between and in fluid communication with the first outlet port 160 of the filter system 154 and the inlet port 132 of the first receptacle 104. The flow restrictor 174 may be configured to create backpressure within the second filter 166 (e.g., on the reverse osmosis membrane). The backpressure may cause a second portion of the first filtered water to pass through the reverse osmosis membrane to produce a second filtered water. Additionally, a return check valve 176 may be disposed between and in fluid communication with the flow restrictor 174 and the inlet port 132 of the first receptacle 104. The return check valve 176 may be configured to prevent water from flowing from the first receptacle 104 to the filter system 154.

[0016] In certain embodiments, a forward check valve 178 may be disposed between and in fluid communication with the second outlet port 162 of the filter system 154 and the inlet port 150 of the second receptacle 134. The forward check valve 178 may be configured to prevent the flow of water from the second receptacle 134 to the filter system 154.

[0017] Water filtration system 100 may include pump 180 disposed between and in fluid communication with outlet port 130 of first receptacle 104 and inlet port 158 ​​of filter system 154. In some examples, pump 180 may be automatically primed by fluid flow from outlet port 130 of first receptacle 104. For example, the water supplied to pump 180 may be gravity-fed from outlet port 130 of first receptacle 104. Pump 180 may be the sole source for generating water pressure that facilitates fluid flow from first receptacle 104, through filter system 154, and to second receptacle 134. In some examples, pump 180 may facilitate fluid flow from first receptacle 104, through only a portion of filter system 154, and back to first receptacle 104 via flow restrictor 174.

[0018] In certain embodiments, water filtration system 100 may include a source of electrical power 182, an electronic controller 184, a first sensor 186 positioned and configured to sense the water level in first receptacle 104, and a second sensor 188 positioned and configured to sense the water level in second receptacle 134. Electronic controller 184 may be disposed in signal communication with source of electrical power 182, first sensor 186, second sensor 188, and pump 180. In some examples, electronic controller 184 may be configured to sense, via first sensor 186, that the water level in first receptacle 104 is sufficient to enable operation of pump 180. Electrical controller 184 may also be configured to sense, via second sensor 188, that the water level in second receptacle 134 is insufficient to enable operation of pump 180. Additionally, the electrical controller 184 may be configured to activate or deactivate the pump 180 according to the respective water levels in the first receptacle 104 and the second receptacle 134. In other examples, the electrical output 182 and / or the electrical controller 184 may be in communication with one or more of the filter system 154, the flow restrictor 174, the return check valve 176, and / or the forward check valve 178.

[0019] The power source 182 may include an electrical cord connectable to an alternating current (AC) line voltage. In some examples, the AC line voltage may be 120 VAC. In other examples, the power source 182 may include at least one direct current (DC) battery. The at least one DC battery may be configured to provide 12 VDC or 24 VDC. The power source 182 may include an electrical input port configured to receive the DC voltage.

[0020] 2 shows a flow diagram illustrating an exemplary method 200 for filtering water, according to one or more embodiments of the present disclosure. Method 200 may be implemented by one or more controllers, such as, for example, electronic controller 184.

[0021] Method 200 may facilitate reducing scaling in water filtration system 100. In block 202, the method may determine that pump 180 has been inactive for a threshold period of time. In some examples, the threshold period is approximately 60 minutes. The threshold period may be any suitable time. For example, the threshold period may be 1, 2, 5, 10, 15, 20, 30, 60, and / or 120 minutes, or any suitable time therebetween. In other examples, the threshold period may be half a day, once a day, once a week, once a month, etc. If it is determined that pump 180 has been inactive for the threshold period of time, method 200 may include, in step 204, closing forward check valve 178 to filtered potable water tank 134. Similarly, in step 206, method 200 may include opening return check valve 176 to source water tank 104 based on determining that pump 180 has been inactive for the threshold period of time.

[0022] If, in step 208, it is determined that the forward check valve 178 is closed or has been closed and the return check valve 176 is open or has been opened, the pump 180 may be operated for a period of time to circulate water from the source water tank 104, through the filter system 154, and back to the source water tank 104. In some examples, the period of time is approximately 2 minutes. The period of time may be any suitable time. For example, the period of time may be 1, 2, 5, 10, 15, 20, 30, 60, and / or 120 seconds, or any suitable time therebetween. In other examples, the period of time may be 1, 2, 5, 10, 15, 20, 30, 60, and / or 120 minutes, or any suitable time therebetween.

[0023] In some examples, the pump 180 may be operated in bursts to create pressure and water flow changes within at least a portion of the loop formed by the pump 180, the filter system 154, and the source water tank 104. In some examples, the pump 180 may be turned on and off in equal temporal and interval increments. In other examples, the time between turning on and turning off the pump 180 may vary. For example, the pump 180 may be periodically turned on and off in bursts with progressively shorter increments between the bursts. Each burst may be the same or may vary. That is, alternatively, the pump 180 may be periodically turned on and off in bursts of various durations with progressively shorter or longer increments between the bursts. In some examples, the pump 180 may be periodically turned on and off in bursts first with progressively shorter increments between the bursts, then with progressively longer increments between the bursts, or vice versa.

[0024] In one example embodiment, after every 60 minutes of inactivity of pump 180, pump 180 may be turned on for 2 minutes with forward check valve 178 closed and return check valve 176 open. This configuration may allow system 100 to flow water from source water tank 104, through pump 180 and the RO membrane of filter system 154, and back into source water tank 104, which may provide agitation of the water to discourage calcium buildup and scaling on the various filters of filter system 154 and within pump 180, as well as within the interior surfaces of the piping connecting all of these components in a closed loop. Tackle obtain.

[0025] In certain embodiments, it may be determined via first sensor 186 that source water tank 104 is empty or below a threshold water level. In such an example, method 200 may terminate. That is, if source water tank 104 is determined to be empty or to contain an amount of water below a threshold, method 200 for facilitating the reduction of scaling in water filtration system 100 may not be initiated or may be abandoned if already in progress.

[0026] In step 210, in some examples, the method 200 may include periodically opening and closing the return check valve 176 in bursts while the pump 180 is operated to create changes in pressure and water flow within at least a portion of the loop formed by the pump 180, the filter system 154, and the source water tank 104. In some examples, the return check valve 176 may be opened and closed in equal temporal and interval increments. In other examples, the amount of time the return check valve 176 is open and the time between opening and closing of the return check valve 176 may vary. For example, the return check valve 176 may be periodically opened and closed in bursts with progressively shorter increments between bursts. Each burst may be the same or may vary. That is, alternatively, the return check valve 176 may be periodically opened and closed in bursts of various durations with progressively shorter or longer increments between bursts. In some examples, the return check valve 176 may be opened and closed periodically in bursts, first in progressively shorter increments between bursts, then thereafter in progressively longer increments between bursts, or vice versa.

[0027] In one example embodiment, after every 60 minutes of inactivity of pump 180, pump 180 may be turned on for two minutes with forward check valve 178 closed and return check valve 176 open. During the two minutes of pump 180 operation, return check valve 176 may be closed briefly to allow fluctuations in pressure and water flow to occur. In some instances, return check valve 176 may open and close sporadically to discourage calcium buildup and scaling on the various filters of filter system 154 and within pump 180, as well as within the interior surfaces of the piping connecting all of these components in a closed loop. Neck This can cause fluctuations in pressure and water flow to occur due to the return check valve 176 being open for 30 seconds, closed for 3 seconds, open for 27 seconds, closed for 3 seconds, open for 2 seconds, closed for 3 seconds, open for 2 seconds, closed for 3 seconds, open for 2 seconds, closed for 3 seconds, and open for 47 seconds. Such a sequence can allow water to flow from the source water tank 104, through the pump 180 and the RO membranes of the filter system 154, and back into the source water tank 104, which can cause agitation of the water and discourage calcium buildup and scaling on the various filters of the filter system 154 and in the pump 180, as well as within the interior surfaces of the piping connecting all of these components in a closed loop. Tackle Additionally, the opening and closing of the return check valve 176 can create a water hammer (a sudden change in water flow) that can shear calcium scale from various surfaces.

[0028] Although return check valve 176 is disclosed as being periodically opened and closed in bursts, forward check valve 178 may also be periodically opened and closed in bursts in a similar manner as described above with reference to return check valve 176.

[0029] In certain embodiments, the steps recited in blocks 202-210 of method 200 may be performed in any order. The steps recited in blocks 202-210 of method 200, however, are merely an example of some embodiments. For example, certain steps may be omitted, while other steps may be added.

[0030] In another embodiment, return check valve 176 may be omitted. In such an example, if forward check valve 178 is closed or is determined to be already closed, pump 180 may be activated and / or deactivated (e.g., in bursts) for a period of time to circulate water from source water tank 104 through filter system 154 and back to source water tank 104, as discussed above.

[0031] Although specific embodiments of the present disclosure have been described, numerous other modifications and alternative embodiments are within the scope of the present disclosure. For example, any of the functions described with respect to a particular device or component may be performed by another device or component. Moreover, while specific device characteristics are described, embodiments of the present disclosure may relate to characteristics of numerous other devices. Moreover, while embodiments are described in language specific to structural features and / or methodological acts, it should be understood that the disclosure is not necessarily limited to the specific features or acts described. Rather, the specific features and acts are disclosed as exemplary forms of implementing the embodiments. In particular, conditional language such as "can," "could," "might," or "may" is intended to generally convey that certain embodiments include certain features, elements, and / or steps, while other embodiments do not, unless expressly stated otherwise or understood otherwise within the context of use. Thus, such conditional language is not generally intended to imply that features, elements, and / or steps are necessarily required for one or more embodiments.

Claims

1. 1. A method for reducing scaling in a water filtration system, comprising: the water filtration system comprises a source water tank for storing source water, a drinking water tank for storing filtered drinking water, a filter system, a pump, a return check valve, and a forward check valve, wherein an outlet port of the source water tank is in fluid communication with an inlet port of the filter system, a first outlet port of the filter system is in fluid communication with an inlet port of the source water tank, the pump is disposed between the outlet port of the source water tank and the inlet port of the filter system and generates water pressure that urges fluid flow from the source water tank through the filter system to the drinking water tank, the return check valve is disposed between the first outlet port of the filter system and the inlet port of the source water tank and prevents water flow from the source water tank to the filter system, and the forward check valve is disposed between a second outlet port of the filter system and the inlet port of the drinking water tank and prevents water flow from the drinking water tank to the filter system; The method comprises: determining that the pump is inactive for a threshold period of time; determining that the forward check valve is closed based on determining that the pump has been inactive for the threshold period of time; determining that the return check valve is open based on determining that the pump has been inactive for the threshold period of time; and operating the pump for a period of time based on the forward check valve being closed and the return check valve being open to circulate water from the source water tank through the filter system and back to the source water tank; The method, wherein the period of time is 1, 2, 5, 10, 15, 20, 30 seconds, or any time in between, or 1, 2, 5, 10, 15, 20, 30, 60, 120 minutes, or any time in between.

2. 10. The method of claim 1, further comprising periodically opening and closing the return check valve while the pump is operated to create pressure and water flow variations within at least a portion of a loop formed by the pump, the filter system, and the source water tank.

3. 3. The method of claim 2, wherein cycling the return check valve open and closed comprises opening and closing the return check valve in progressively shorter increments.

4. The method of claim 1 , wherein the threshold period is greater than 60 minutes.

5. A water filtration system comprising: a source water tank for storing source water; a drinking water tank for storing filtered drinking water; a filter system; a pump; a return check valve; a forward check valve; and a controller; an outlet port of the source water tank in fluid communication with an inlet port of the filter system, a first outlet port of the filter system in fluid communication with an inlet port of the source water tank, the pump disposed between the outlet port of the source water tank and the inlet port of the filter system and generating water pressure that urges fluid flow from the source water tank through the filter system to the drinking water tank, the return check valve disposed between the first outlet port of the filter system and the inlet port of the source water tank to prevent water flow from the source water tank to the filter system, and the forward check valve disposed between the second outlet port of the filter system and the inlet port of the drinking water tank to prevent water flow from the drinking water tank to the filter system; The controller determining that the pump has been inactive for a threshold period of time; closing the forward check valve upon determining that the pump has been inactive for the threshold period of time; opening the return check valve upon determining that the pump has been inactive for the threshold period of time; operating the pump for a period of time based on the forward check valve being closed and the return check valve being open to circulate water from the source water tank through the filter system and back to the source water tank; It is structured as follows: The water filtration system, wherein the period of time is 1, 2, 5, 10, 15, 20, or 30 seconds, or any time in between, or 1, 2, 5, 10, 15, 20, 30, 60, or 120 minutes, or any time in between.

6. 6. The system of claim 5, further comprising periodically opening and closing the return check valve while the pump is operated to create pressure and water flow variations within at least a portion of a loop formed by the pump, the filter system, and the source water tank.

7. The system of claim 6 , wherein cycling the return check valve open and closed comprises opening and closing the return check valve in progressively shorter increments.

8. The system of claim 5 , wherein the threshold period is 60 minutes.

9. 1. A method for reducing scaling in a water filtration system, comprising: the water filtration system comprises a source water tank for storing source water, a drinking water tank for storing filtered drinking water, a filter system, a pump, and a forward check valve, wherein an outlet port of the source water tank is in fluid communication with an inlet port of the filter system, a first outlet port of the filter system is in fluid communication with an inlet port of the source water tank, the pump is disposed between the outlet port of the source water tank and the inlet port of the filter system and generates water pressure urging a fluid flow from the source water tank through the filter system to the drinking water tank, and the forward check valve is disposed between a second outlet port of the filter system and the inlet port of the drinking water tank and prevents water from flowing from the drinking water tank to the filter system; The method comprises: determining that the pump is inactive for a threshold period of time; determining that the forward check valve is closed based on determining that the pump has been inactive for the threshold period of time; and operating the pump for a period of time based on the forward check valve being closed to circulate water from the source water tank through the filter system and back to the source water tank; The method, wherein the period of time is 1, 2, 5, 10, 15, 20, 30 seconds, or any time in between, or 1, 2, 5, 10, 15, 20, 30, 60, 120 minutes, or any time in between.

10. 10. The method of claim 9, wherein the pump is periodically activated and deactivated.

11. 10. The method of claim 9, wherein the threshold period is greater than 60 minutes.

12. 11. The method of claim 10, wherein periodically activating and deactivating the pump comprises activating and deactivating the pump in progressively shorter increments.

Citation Information

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