Water softening unit
The water softening device enhances conductivity and stabilizes electrolyzed water production by mixing raw and regenerated water, addressing electrode wear issues in conventional systems without chemical additives.
Patent Information
- Application Number
- JP2022049197
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-03-25
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2042-03-25
AI Technical Summary
Conventional water softeners face issues with electrode wear due to high voltage when low conductivity water is used, necessitating chemical additives to increase conductivity, which introduces additional problems.
A water softening device that includes a mixing section to combine raw and regenerated water, enhancing conductivity without chemicals, using electrolytic cells to generate acidic and alkaline electrolyzed water for resin regeneration, and a capture unit to remove precipitates, thereby stabilizing electrolyzed water production.
The device maintains stable electrolyzed water production by increasing water conductivity and reducing electrode wear, eliminating the need for chemical additives.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a water softening device. [Background technology]
[0002] In conventional water softeners, a method for regenerating cation exchange resins without using salt is known in which the cation exchange resins are regenerated using acidic electrolyzed water (see, for example, Patent Document 1). Weakly acidic cation exchange resins have protons at the terminals of their functional groups, and soften the raw water by exchanging hardness components (e.g., calcium ions, magnesium ions) in the raw water for hydrogen ions. The raw water softened by the weakly acidic cation exchange resin contains hydrogen ions and is acidic. The hydrogen ions in the softened water are adsorbed by a weakly basic anion exchange resin, thereby neutralizing the softened raw water. In conventional water softeners, a method for regenerating weakly basic anion exchange resins using alkaline electrolyzed water (see, for example, Patent Document 2) is known in which the weakly basic anion exchange resins are regenerated using alkaline electrolyzed water (see, for example, Patent Document 2). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2011-30973 [Patent Document 2] Japanese Patent Application Laid-Open No. 2010-142674 Summary of the Invention [Problem to be solved by the invention]
[0004] In such conventional water softeners, raw water is generally used for electrolysis, but when raw water with low conductivity is used, the voltage applied between the electrodes in the electrolytic cell becomes high, which causes the electrodes in the electrolytic cell to wear out in a short period of time, making it difficult to stably supply acidic electrolyzed water and alkaline electrolyzed water for a long period of time.
[0005] One possible way to prevent this is to add chemicals such as sodium sulfate to the raw water to increase its conductivity, but this creates the problem of needing to supply chemicals.
[0006] The present invention is devised to solve the above-mentioned problems, and aims to provide a water softening device that can increase the conductivity of water supplied to an electrolytic cell without adding chemicals and suppress an increase in the voltage applied to the electrodes. [Means for solving the problem]
[0007] To achieve this object, the water softening device according to the present invention comprises a water softening tank which is used in a water softening process to soften raw water containing hardness components with a weakly acidic cation exchange resin, an electrolytic tank which is used in a regeneration process to generate acidic electrolyzed water which regenerates the weakly acidic cation exchange resin in the water softening tank, and an electrolytic tank which generates acidic electrolyzed water which regenerates the weakly acidic cation exchange resin in the regeneration process. is released a mixing section for mixing the hardness component-containing water with the regenerated water to produce mixed water; a raw water inlet flow path that supplies raw water to the mixing section; and a regenerated water inlet flow path that supplies regenerated water to the mixing section. Equipped with do. The electrolytic cell generates acidic electrolyzed water from the mixed water. The mixing section mixes the raw water and regenerated water by merging the raw water and regenerated water introduction channels. This will achieve the intended purpose. [Effects of the Invention]
[0008] According to the present invention, it is possible to provide a water softening device that can increase the conductivity of water supplied to an electrolytic cell without adding chemicals and can suppress an increase in the voltage applied to the electrodes. [Brief explanation of the drawings]
[0009] [Figure 1] FIG. 1 is a conceptual diagram showing the configuration of a water softening device according to the first embodiment. [Figure 2] FIG. 2 is a configuration diagram showing a water softening flow path of the water softening device according to the first embodiment. [Figure 3] FIG. 3 is a configuration diagram showing the softened water tank regeneration / circulation flow path and the neutralization tank regeneration / circulation flow path of the water softening device according to the first embodiment. [Figure 4]FIG. 4 is a configuration diagram showing a water storage flow path of the water softening device according to the first embodiment. [Figure 5] FIG. 5 is a diagram showing the regeneration channel cleaning channel of the water softening device according to the first embodiment. [Figure 6] FIG. 6 is a conceptual diagram showing an electrolytic cell cleaning flow path of the water softening device according to the first embodiment. [Figure 7] FIG. 7 is a configuration diagram showing the capture section cleaning flow path of the water softening device according to the first embodiment. [Figure 8] FIG. 8 is a configuration diagram showing a raw water introduction flow path and a supply flow path of the water softening device according to the first embodiment. [Figure 9] FIG. 9 is a configuration diagram showing a control method for the water softening device according to the first embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0010] Hereinafter, embodiments of the present invention will be described with reference to the drawings. Note that the following embodiments are examples of specific embodiments of the present invention and do not limit the technical scope of the present invention. Furthermore, each drawing used in the embodiments is a schematic drawing, and the ratios of the sizes and thicknesses of the components in each drawing do not necessarily reflect the actual dimensional ratios.
[0011] (Embodiment 1) A water softening device 1 according to a first embodiment of the present invention will be described with reference to Fig. 1. Fig. 1 is a conceptual diagram showing the configuration of the water softening device 1 according to the first embodiment of the present invention. Note that Fig. 1 conceptually shows each element of the water softening device 1.
[0012] <Overall structure> The water softening device 1 is a device that produces neutral soft water from raw water that contains hardness components and is supplied from the outside. The raw water is water (water to be treated) that is introduced into the device through an inlet 2, and is, for example, city water or well water. The raw water contains hardness components (for example, calcium ions or magnesium ions). By performing a water softening treatment using the water softening device 1, neutral soft water with reduced hardness is obtained, making it possible to use soft water even in areas where the raw water has high hardness.
[0013] Specifically, as shown in FIG. 1, the water softening device 1 includes an inlet 2, a water softening tank 3, a neutralization tank 4, a water intake 7, a regeneration device 8, a control unit 15, and a mixing unit 60.
[0014] The water softening device 1 also includes a drain outlet 13, a plurality of on-off valves (on-off valve 18, on-off valve 19, on-off valve 20, on-off valve 21, on-off valve 22, on-off valve 23, and on-off valve 63), and a plurality of flow path switching valves (flow path switching valves 24 to 27). These will be described in detail later.
[0015] <Inlet and intake> The inlet 2 is connected to a source of raw water and is an opening through which raw water is introduced into the water softening device 1.
[0016] The water intake 7 is an opening that flows through the water softening device 1 and supplies softened water to the outside of the device. The water softening device 1 can extract softened water from the water intake 7 by the pressure of the raw water flowing in from the inlet 2.
[0017] In the water softening device 1, in the softening process for performing a water softening treatment, raw water supplied from outside flows in the following order: inlet 2, flow path 28, first softening tank 3a, flow path 29, first neutralization tank 4a, flow path 30, second softening tank 3b, flow path 31, second neutralization tank 4b, flow path 32, and water intake 7, and is discharged as neutral soft water.
[0018] <Soft water tank> The water softener tank 3 softens raw water containing hardness components through the action of weakly acidic cation exchange resin 33 filled inside. Specifically, the water softener tank 3 exchanges cations (calcium ions, magnesium ions) that are hardness components contained in the flowing water (raw water) with hydrogen ions, thereby reducing the hardness of the raw water and softening the raw water. In the water softener 1 of the first embodiment, a first softener tank 3a and a second softener tank 3b are provided as the water softener tanks 3.
[0019] The first softening tank 3a softens the raw water that flows in from the inlet 2 by the action of the first weakly acidic cation exchange resin 33a filled inside. The first softening tank 3a is equipped with a flow path switching valve 24. Details of the flow path switching valve will be described later.
[0020] The second soft water tank 3b softens the water that has passed through the first neutralization tank 4a (described later) by the action of the second weakly acidic cation exchange resin 33b filled inside. The second soft water tank 3b is equipped with a flow path switching valve 26.
[0021] In the following description, the first weakly acidic cation exchange resin 33a and the second weakly acidic cation exchange resin 33b will be referred to as the weakly acidic cation exchange resin 33 unless there is a particular need to distinguish between them.
[0022] The weakly acidic cation exchange resin 33 is an ion exchange resin having hydrogen ions at the ends of its functional groups. The weakly acidic cation exchange resin 33 adsorbs cations (calcium ions, magnesium ions) that are hardness components contained in the raw water passed through it and releases hydrogen ions. The soft water treated with the weakly acidic cation exchange resin 33 contains many hydrogen ions that have been exchanged for hardness components. In other words, the soft water flowing out of the first soft water tank 3a and the second soft water tank 3b is acidic soft water (acidic soft water) that contains many hydrogen ions.
[0023] Since the terminal functional group of the weakly acidic cation exchange resin 33 is a hydrogen ion, the weakly acidic cation exchange resin 33 can be regenerated using acidic electrolyzed water in the regeneration process described below. At this time, the weakly acidic cation exchange resin 33 releases cations, which are hardness components that were captured during the water softening process.
[0024] There are no particular limitations on the weakly acidic cation exchange resin 33, and a general-purpose one can be used, such as one that uses a carboxyl group (-COOH) as the exchange group. Furthermore, the hydrogen ion (H+), which is the counter ion of the carboxyl group, may be replaced with a cation such as a metal ion or an ammonium ion (NH4+).
[0025] <Neutralization tank> The neutralization tank 4 neutralizes the pH of the softened water (acidified softened water) containing hydrogen ions that comes out of the softened water tank 3 by the action of the weakly basic anion exchange resin 34 filled inside, to produce neutral softened water. Specifically, the neutralization tank 4 adsorbs the hydrogen ions contained in the softened water from the softened water tank 3 together with anions (negative ions), thereby increasing the pH of the softened water and making it neutral softened water. In the water softening device 1 of the first embodiment, a first neutralization tank 4a and a second neutralization tank 4b are provided as the neutralization tanks 4.
[0026] The first neutralization tank 4a neutralizes the acidic softened water that has flowed through the first softened water tank 3a by the action of the first weakly basic anion exchange resin 34a filled inside. The first neutralization tank 4a is equipped with a flow path switching valve 25.
[0027] The second neutralization tank 4b neutralizes the acidic softened water that has flowed through the second softened water tank 3b by the action of the second weakly basic anion exchange resin 34b filled inside. The second neutralization tank 4b is equipped with a flow path switching valve 27.
[0028] In the following description, the first weakly basic anion exchange resin 34a and the second weakly basic anion exchange resin 34b will be referred to as the weakly basic anion exchange resin 34 unless there is a particular need to distinguish between them.
[0029] The weakly basic anion exchange resin 34 neutralizes hydrogen ions contained in the water passing through it to produce neutral water. The weakly basic anion exchange resin 34 can be regenerated using alkaline electrolyzed water in the regeneration process described below.
[0030] There are no particular limitations on the weakly basic anion exchange resin 34, and any general-purpose resin can be used, such as a free base type resin.
[0031] <Playback device> The regeneration device 8 is a device that regenerates the weakly acidic cation exchange resin 33 filled in the first soft water tank 3a and the second soft water tank 3b, and also regenerates the weakly basic anion exchange resin 34 filled in the first neutralization tank 4a and the second neutralization tank 4b.
[0032] The regeneration device 8 is configured to include an electrolytic tank 9, a capture unit 10, a first water pump 11, and a second water pump 12. In the regeneration device 8, a first supply flow path 35, a second supply flow path 36, a first recovery flow path 37, and a second recovery flow path 38 are connected to the second softening tank 3b, the second neutralization tank 4b, the flow path 28, and the flow path 29, respectively. Details of each flow path will be described later. The first supply flow path 35, the second supply flow path 36, the first recovery flow path 37, the second recovery flow path 38, the neutralization tank bypass flow path 42, and the softening tank bypass flow path 44 form a softening tank regeneration circulation flow path 39 and a neutralization tank regeneration circulation flow path 40, which will be described later.
[0033] <<Electrolytic cell>> The electrolytic bath 9 generates and discharges acidic electrolyzed water and alkaline electrolyzed water by electrolyzing the water that has flowed in using a pair of electrodes 41 (electrode 41a and electrode 41b) installed inside. More specifically, hydrogen ions are generated by electrolysis at the electrode 41a, which serves as an anode during electrolysis in the regeneration process, to generate acidic electrolyzed water. Meanwhile, hydroxide ions are generated by electrolysis at the electrode 41b, which serves as a cathode during electrolysis in the regeneration process, to generate alkaline electrolyzed water. The electrolytic bath 9 supplies acidic electrolyzed water to the first soft water bath 3a and the second soft water bath 3b via the first supply flow path 35 and the neutralization bath bypass flow path 42, and supplies alkaline electrolyzed water to the first neutralization bath 4a and the second neutralization bath 4b via the second supply flow path 36 and the soft water bath bypass flow path 44. Although details will be described later, the acidic electrolyzed water produced by the electrolytic cell 9 is used to regenerate the weakly acidic cation exchange resin 33 in the first soft water tank 3a and the second soft water tank 3b, and the alkaline electrolyzed water produced by the electrolytic cell 9 is used to regenerate the weakly basic anion exchange resin 34 in the first neutralization tank 4a and the second neutralization tank 4b. The electrolytic cell 9 is configured so that the state of current flow to the pair of electrodes 41 can be controlled by the control unit 15, which will be described later.
[0034] <<Water pump>> The first water pump 11 is a device that circulates acidic electrolyzed water through the soft water tank regeneration circulation flow path 39 (see FIG. 3) during regeneration treatment by the regeneration device 8. The first water pump 11 is provided in the first recovery flow path 37 that communicates between the first soft water tank 3a and the electrolytic tank 9. The reason for this arrangement is that the first water pump 11 alone can easily circulate acidic electrolyzed water through the soft water tank regeneration circulation flow path 39.
[0035] The second water pump 12 is a device that circulates alkaline electrolyzed water through the neutralization tank regeneration / circulation flow path 40 (see Fig. 3). The second water pump 12 is provided in the second recovery flow path 38 that communicates between the first neutralization tank 4a and the electrolytic tank 9. The reason for this arrangement is that the alkaline electrolyzed water can be easily circulated through the neutralization tank regeneration / circulation flow path 40 by the second water pump 12 alone.
[0036] The first water pump 11 and the second water pump 12 are connected to a control unit 15 (described later) wirelessly or via wire so as to be able to communicate with each other.
[0037] <<Capturing section>> The capture unit 10 is provided in a second supply flow path 36 that connects the electrolytic bath 9 and the second neutralization bath 4b in communication with each other.
[0038] The capture unit 10 captures precipitates contained in the alkaline electrolyzed water delivered from the electrolytic bath 9. The precipitates are reaction products generated in the electrolytic bath 9 when the alkaline electrolyzed water reacts with the cations of hardness components released from the first soft water tank 3a and the second soft water tank 3b during the regeneration process. More specifically, while water is being electrolyzed in the electrolytic bath 9, hardness components (e.g., calcium ions, magnesium ions) released from the first soft water tank 3a and the second soft water tank 3b during the regeneration process move to the cathode (electrode 41b). Since alkaline electrolyzed water is generated on the cathode side, the hardness components react with the alkaline electrolyzed water to form precipitates. For example, when the hardness component is calcium ion, a reaction occurs in which calcium carbonate or calcium hydroxide is produced when calcium ion is mixed with alkaline electrolyzed water. The precipitates derived from the hardness components are captured as precipitates by the capture unit 10 provided in the second supply flow path 36. Furthermore, by capturing the precipitates derived from hardness components in the capture unit 10, it is possible to prevent the precipitates from flowing into and accumulating in the second neutralization tank 4b. Therefore, when the water softening process is resumed after the regeneration process is completed, it is possible to prevent an increase in the hardness of the softened water delivered from the second neutralization tank 4b, which would be caused by the precipitates accumulated in the second neutralization tank 4b reacting with the hydrogen ions released from the first softened water tank 3a and the second softened water tank 3b and ionizing them.
[0039] During the regeneration process, the alkaline electrolyzed water from which the precipitates derived from hardness components have passed through the capture unit 10 flows through the second neutralization tank 4b and the first neutralization tank 4a, and is then electrolyzed again in the electrolytic tank 9 to be converted back into alkaline electrolyzed water, which is then used to regenerate the weakly basic anion exchange resin 34. At this time, the acidic electrolyzed water contains fewer hard components than the water without the capture unit 10. That is, by capturing the precipitates in the capture unit 10, the hardness of the acidic electrolyzed water is reduced, and the amount of hard components flowing into the first soft water tank 3a and the second soft water tank 3b can be reduced, and the decrease in the regeneration efficiency of the weakly acidic cation exchange resin 33 can be suppressed.
[0040] The phrase "hardness components react" does not only mean that all of the hardness components react, but also includes a state in which unreacted components or components that do not exceed the solubility product are present.
[0041] The trapping unit 10 may take any form as long as it can separate the precipitates resulting from the reaction between the hardness components and the alkaline electrolyzed water, such as a cartridge-type filter, a filtration layer using a granular filter medium, a cyclone-type solid-liquid separator, or a hollow fiber membrane.
[0042] A cartridge-type filter is a commonly used form of the capture unit 10. Cartridge-type filters include depth filtration types such as thread-wound filters, surface filtration types such as pleated filters and membrane filters, and combinations of these.
[0043] The trap part 10 is provided with an on-off valve 22 and a trap part drain port 14 .
[0044] The on-off valve 22 is a valve provided at the bottom of the capture part 10 and controls the drainage of water from the capture part 10. By opening the on-off valve 22, the water in the capture part 10 can be drained out of the device through the capture part drain outlet 14.
[0045] The capture unit drain outlet 14 is an opening that drains water from the capture unit 10 to the outside of the device. By opening the on-off valve 22 provided upstream of the capture unit drain outlet 14, the water from the capture unit 10 can be drained to the outside of the device through the capture unit drain outlet 14.
[0046] <Water storage tank after regeneration> The regenerated water storage tank 64 is a tank that stores high-hardness water (regenerated water) remaining in the soft water tank regeneration circulation flow path 39 after the regeneration process. As will be described in detail later, the soft water tank regeneration circulation flow path 39 after the regeneration process contains regenerated water, which is water containing a large amount of hardness components released from the soft water tank 3. By storing this regenerated water and mixing it with raw water to make mixed water, the electrolytic tank 9 can be filled with mixed water with high electrical conductivity during the next regeneration process.
[0047] The regenerated water storage tank 64 is connected in communication with the mixer 60 via a regenerated water introduction channel 62 , and the regenerated water in the tank can be sent to the mixer 60 .
[0048] The regenerated water storage tank 64 can be installed anywhere within the softened water tank regeneration circulation flow path 39, but is preferably installed downstream of the electrolytic tank 9 and upstream of the second softened water tank 3b, with the electrolytic tank 9 being the starting point in the softened water tank regeneration circulation flow path 39. By installing it in this manner, the regenerated water can be stored while suppressing the impact of the regenerated water on the water softening process. Furthermore, since the acidic regenerated water can be stored, it is possible to prevent adsorption to the weakly acidic cation exchange resin 33 downstream and reduce the burden on the electrodes 41 during electrolysis compared to when neutral water is electrolyzed.
[0049] <Mixing section> The mixer 60 mixes the raw water with regenerated water produced during the regeneration process described below to produce mixed water. The mixer 60 produces mixed water with a higher electrical conductivity than the raw water. The resulting mixed water is supplied to the electrolytic cell 9 via the supply flow path 72.
[0050] The mixing section 60 is connected in communication with a regenerated water storage tank 64 via a regenerated water introduction channel 62 .
[0051] The mixing section 60 can be installed anywhere within the soft water tank regeneration circulation flow path 39, but it is preferable that it be installed downstream of the electrolytic cell 9 and upstream of the second soft water tank 3b, with the electrolytic cell 9 being the starting point in the soft water tank regeneration circulation flow path 39.
[0052] <On-off valves and flow path switching valves> A plurality of on-off valves (on-off valves 18 to 23 and on-off valve 63) are provided in each flow path, respectively, and switch each flow path between an "open" state and a "closed" state.
[0053] The plurality of on-off valves (on-off valve 18, on-off valve 19, on-off valve 21, on-off valve 23, and on-off valve 63) start or stop the flow of water to each flow path by opening or closing the valve.
[0054] The on-off valves 20 and 22 are opened during the regeneration flow path cleaning step, electrolytic cell cleaning step, and capture unit cleaning step described below, and the regenerated circulating water is discharged outside the device.
[0055] Multiple flow path switching valves (flow path switching valves 24 to 27) are provided in the first soft water tank 3a, the second soft water tank 3b, the first neutralization tank 4a, and the second neutralization tank 4b, respectively. Each of the multiple flow path switching valves has three openings: the first opening is an inlet / outlet through which water can flow in and out; the second opening is an inlet that functions as an inlet but not an outlet; and the third opening is an outlet that functions as an outlet but not an inlet. Each of the multiple flow path switching valves always has an inlet / outlet open. Depending on the water flow direction, when either the inlet or outlet is open, the other inlet or outlet is closed. By providing flow path switching valves 24 to 27, the number of on-off valves required for each flow path in the water softening device 1 can be reduced, thereby reducing the cost of the water softening device 1.
[0056] In addition, the multiple on-off valves (on-off valves 18 to 23 and on-off valve 63) and the multiple flow path switching valves (flow path switching valves 24 to 27) are each connected to the control unit 15 described later wirelessly or via wire so as to be able to communicate with each other.
[0057] <Drain port> The drain outlet 13 is an opening provided at the end of the drainage flow path 54, and is an opening for discharging water from the apparatus to the outside during the regeneration path cleaning process and the electrolytic cell cleaning process. An on-off valve 20 is provided upstream of the drain outlet 13, and water can be discharged from the drain outlet 13 by opening the on-off valve 20.
[0058] <Control unit> The control unit 15 controls the execution of each of the processes, namely, the water softening process, the mixing process, the regeneration process, the water storage process, the regeneration flow path cleaning process, the electrolytic cell cleaning process, and the capture unit cleaning process, and controls switching between the processes.
[0059] Specifically, the control unit 15 controls switching from the water softening process to the mixing process, switching from the mixing process to the regeneration process, switching from the regeneration process to the water storage process, switching from the water storage process to the regeneration flow path cleaning process, switching from the regeneration flow path cleaning process to the electrolytic cell cleaning process, switching from the electrolytic cell cleaning process to the capture unit cleaning process, and switching from the capture unit cleaning process to the water softening process.
[0060] Furthermore, the control unit 15 controls the on-off valve 20 and the on-off valve 22 to control the drainage during the regeneration flow path cleaning step, the electrolytic cell cleaning step, and the capture unit cleaning step.
[0061] The control unit 15 also controls the flow path switching valves 24 to 27, the on-off valve 18, the on-off valve 19, the on-off valve 21, the on-off valve 23, and the on-off valve 63 to switch the flow paths.
[0062] <Each channel> <<Flow path>> Flow path 53 is a flow path that connects inlet 2 and water intake 7, and is provided with an on-off valve 18. Through flow path 53, users of water softening device 1 can obtain raw water from water intake 7 even when any of the regeneration process, regeneration flow path cleaning process, electrolytic cell cleaning process, and capture unit cleaning process is being performed.
[0063] <<Regenerated water intake channel>> The regenerated water introduction flow path 62 is a flow path that supplies the regenerated water to the regenerated water storage tank 64 after the regeneration step is completed, and supplies the regenerated water to the mixing section 60 during the mixing step described below.
[0064] The regenerated water introduction flow path 62 is a flow path that communicates between the mixing section 60, which is connected to the first supply flow path 35, and the regenerated water storage tank 64, and is provided with an on-off valve 63 on the flow path. After the regeneration process is completed, the regenerated water introduction flow path 62 introduces the regenerated water remaining in the soft water tank regeneration circulation flow path 39, particularly the first supply flow path 35, into the regenerated water storage tank 64 as the on-off valve 63 is opened. During the mixing process, the regenerated water introduction flow path 62 introduces the regenerated water stored in the regenerated water storage tank 64 into the mixing section 60 as the on-off valve 63 is opened.
[0065] <<Water softening channel>> 2, the following describes the water softening flow path 43 formed during the water softening process of the water softening device 1. FIG. 2 is a configuration diagram showing the water softening flow path 43 of the water softening device 1.
[0066] The water softening flow path 43 (hatched arrow in FIG. 2) is a flow path that softens the raw water, and the raw water that flows through the water softening flow path 43 becomes neutral soft water and is discharged from the water intake 7 to the outside of the device.
[0067] The water softening flow path 43 is formed by the inlet 2, flow path 28, first water softening tank 3a, flow path 29, first neutralization tank 4a, flow path 30, second water softening tank 3b, flow path 31, second neutralization tank 4b, flow path 32, and water intake 7.
[0068] The flow path 28 is a flow path that connects the inlet 2 to the first soft water tank 3a. In other words, the flow path 28 is a flow path that guides raw water containing hardness components from the inlet 2 to the first soft water tank 3a.
[0069] Flow path 29 is a flow path that connects first softened water tank 3a to first neutralization tank 4a. In other words, flow path 29 is a flow path that guides water softened in first softened water tank 3a to first neutralization tank 4a.
[0070] The flow path 30 is a flow path that connects the first neutralization tank 4a to the second soft water tank 3b. In other words, the flow path 30 is a flow path that guides the water neutralized in the first neutralization tank 4a to the second soft water tank 3b.
[0071] The flow path 31 is a flow path that connects the second water softening tank 3b to the second neutralization tank 4b. In other words, the flow path 31 is a flow path that guides water softened in the second water softening tank 3b to the second neutralization tank 4b.
[0072] The flow path 32 is a flow path that connects the second neutralization tank to the water intake 7. In other words, the flow path 32 is a flow path that guides the softened raw water from the second neutralization tank 4b to the water intake 7.
[0073] As shown in Fig. 2, an on-off valve 19 is installed on flow path 28 downstream of inlet 2 and upstream of first softened water tank 3a. An on-off valve 18 is installed in flow path 53, which will be described later. By closing on-off valve 18 and opening on-off valve 19, the first softened water tank 3a and inlet 2 are connected in communication. Furthermore, flow path switching valve 24 is switched to connect the first softened water tank 3a to the first neutralization tank 4a, flow path switching valve 25 is switched to connect the second softened water tank 3b to the second neutralization tank 4b, flow path switching valve 26 is switched to connect the first neutralization tank 4a to the second softened water tank 3b, and flow path switching valve 27 is switched to connect the second softened water tank 3b to the second neutralization tank 4b. This forms a water softening flow path 43 that connects the inlet 2 to the flow path 28, the first softening tank 3a, the flow path 29, the first neutralization tank 4a, the flow path 30, the second softening tank 3b, the flow path 31, the second neutralization tank 4b, the flow path 32, and the water intake 7. At this time, the on-off valves 20, 21, and 23 are closed.
[0074] <<Regenerated circulation flow path>> Next, with reference to Fig. 3, a description will be given of the softened water tank regeneration circulation flow path 39 and the neutralization tank regeneration circulation flow path 40 formed during the regeneration process of the water softening device 1. Fig. 3 is a configuration diagram showing the softened water tank regeneration circulation flow path 39 and the neutralization tank regeneration circulation flow path 40 of the water softening device 1.
[0075] First, the soft water tank regeneration circulation flow path 39 will be described.
[0076] The soft water tank regeneration circulation flow path 39 is a flow path through which acidic electrolyzed water flows during the regeneration process to regenerate the first soft water tank 3a and the second soft water tank 3b. As shown in Figure 3 (white arrow), this is the flow path through which water pumped by the first water supply pump 11 flows through the electrolytic tank 9, the second soft water tank 3b, and the first soft water tank 3a, and then circulates back to the electrolytic tank 9.
[0077] Specifically, the soft water tank regeneration circulation flow path 39 is composed of the electrolytic tank 9, the second soft water tank 3b, the first soft water tank 3a, the first supply flow path 35 connecting the first water supply pump 11, the neutralization tank bypass flow path 42, and the first recovery flow path 37.
[0078] The first supply flow path 35 is a flow path that connects the downstream side of the electrolytic cell 9 to the downstream side of the second soft water tank 3b, and is a flow path that supplies acidic electrolyzed water from the electrolytic cell 9 to the second soft water tank 3b.
[0079] The neutralization tank bypass flow path 42 is a flow path that bypasses the first neutralization tank 4a and connects the upstream side of the second soft water tank 3b to the downstream side of the first soft water tank 3a, and is a flow path that supplies acidic electrolyzed water from the second soft water tank 3b to the first soft water tank 3a.
[0080] The first recovery flow path 37 is a flow path that connects the upstream side of the first soft water tank 3a to the electrolytic tank 9, and is a flow path that recovers the acidic electrolyzed water containing hardness components that has passed through the first soft water tank 3a and the second soft water tank 3b to the electrolytic tank 9. A first water pump 11 is provided in the first recovery flow path 37.
[0081] The soft water tank regeneration circulation flow path 39 is a flow path that introduces the acidic electrolyzed water sent from the electrolytic tank 9 into the first soft water tank 3a and the second soft water tank 3b from the downstream side of the first soft water tank 3a and the second soft water tank 3b, and causes the acidic electrolyzed water to flow out from the upstream side where the amount of adsorption of hardness components is greater than that of the downstream side of the water softening tank. Note that the downstream side refers to the downstream side of the flow path during the water softening treatment.
[0082] Next, the neutralization tank regeneration / circulation flow path 40 will be described.
[0083] The neutralization tank regeneration circulation flow path 40 is a flow path through which alkaline electrolyzed water flows during the regeneration process to regenerate the first neutralization tank 4a and the second neutralization tank 4b. As shown in Figure 3 (black arrow), this is the flow path through which water pumped by the second water supply pump 12 flows through the electrolytic tank 9, the second neutralization tank 4b, and the first neutralization tank 4a, and then returns to the electrolytic tank 9 for circulation.
[0084] Specifically, the neutralization tank regeneration circulation flow path 40 is composed of the electrolytic tank 9, the second neutralization tank 4b, the first neutralization tank 4a, the second supply flow path 36 connecting the second water supply pump 12, the soft water tank bypass flow path 44, and the second recovery flow path 38.
[0085] The second supply flow path 36 is a flow path that connects the downstream side of the electrolytic cell 9 to the downstream side of the second neutralization cell 4b, and is a flow path that supplies alkaline electrolyzed water from the electrolytic cell 9 to the second neutralization cell 4b. The second supply flow path 36 is provided with a capture unit 10, an on-off valve 21, and an on-off valve 23.
[0086] The soft water tank bypass flow path 44 is a flow path that bypasses the second soft water tank 3b and connects the upstream side of the second neutralization tank 4b to the downstream side of the first neutralization tank 4a, and is a flow path that supplies alkaline electrolyzed water from the second neutralization tank 4b to the first neutralization tank 4a.
[0087] The second recovery flow path 38 is a flow path that connects the upstream side of the first neutralization tank 4a to the electrolytic tank 9, and recovers the alkaline electrolyzed water that has passed through the first neutralization tank 4a and the second neutralization tank 4b to the electrolytic tank 9. A second water pump 12 is provided in the second recovery flow path 38.
[0088] <<Storage channel>> Next, the water storage flow path 66 formed during the water storage step of the water softening device 1 will be described with reference to Fig. 4. Fig. 4 is a configuration diagram showing the water storage flow path 66 of the water softening device 1.
[0089] The water storage flow path 66 is a flow path for sending the reclaimed water, which is high-hardness water remaining in the flow path, to the reclaimed water storage tank 64 during a water storage step described later.
[0090] As shown in Figure 4 (black arrow), the water storage flow path 66 is a flow path that transports the regenerated water in the first supply flow path 35, the second soft water tank 3b, the neutralization tank bypass flow path 42, the first soft water tank 3a, the first recovery flow path 37, the first water supply pump 11, the electrolytic tank 9, the first supply flow path 35, and the mixing section 60 to the regenerated water storage tank 64 via the regenerated water introduction flow path 62.
[0091] <<Regenerated flow path cleaning flow path>> Next, a description will be given of a regeneration flow path cleaning flow path 45 formed during the regeneration flow path cleaning step of the water softening device 1 with reference to Fig. 5. Fig. 5 is a configuration diagram showing the regeneration flow path cleaning flow path 45 of the water softening device 1.
[0092] The regeneration flow path cleaning flow path 45 is a flow path that discharges high-hardness water remaining in the flow path to the outside of the device during a regeneration flow path cleaning step described below without allowing it to flow into the first neutralization tank 4a and the second neutralization tank 4b. The regeneration flow path cleaning flow path 45 is configured to include a first drainage flow path 46 and a second drainage flow path 47.
[0093] 5 (white arrow), the first drainage flow path 46 is made up of flow paths that connect the inlet 2 to the first water supply pump 11, the electrolytic cell 9, the on-off valve 20, and the drain outlet 13. Specifically, the first drainage flow path 46 is a flow path that circulates the raw water that flows in from the inlet 2 through the flow path 28, the first recovery flow path 37, the first water supply pump 11, the electrolytic cell 9, the drainage flow path 54, the on-off valve 20, and the drain outlet 13 in this order.
[0094] The drainage flow path 54 is a flow path that is connected at one end to the first supply flow path 35 and at the other end to the drain outlet 13. An on-off valve 20 is provided in the drainage flow path 54, and by opening the on-off valve 20, water in the flow path can be drained outside the device, and by closing the on-off valve 20, drainage from the drain outlet 13 can be stopped.
[0095] 5 (black arrow), the second drainage flow path 47 is made up of flow paths that connect the inlet 2 to the first softened water tank 3a, the second softened water tank 3b, the on-off valve 20, and the drain outlet 13. Specifically, the second drainage flow path 47 is a flow path that circulates raw water that flows in from the inlet 2 through the flow path 28, the first softened water tank 3a, the neutralization tank bypass flow path 42, the second softened water tank 3b, the first supply flow path 35, the on-off valve 20, and the drain outlet 13 in this order.
[0096] It is preferable to control the flow rate of water flowing through the second drainage flow path 47 so that it is greater than the flow rate of water flowing through the first drainage flow path. This allows high-hardness water in the second drainage flow path, which is a flow path including a soft water tank used during the water softening process, to be preferentially replaced with raw water. Therefore, the impact of high-hardness water when the water softening process begins can be suppressed.
[0097] <<Electrolytic bath cleaning flow path>> Next, an electrolytic cell cleaning flow path 49 formed during the electrolytic cell cleaning step of the water softening device 1 will be described with reference to Fig. 6. Fig. 6 is a configuration diagram showing the electrolytic cell cleaning flow path 49 of the water softening device 1.
[0098] The electrolytic bath cleaning flow path 49 is a flow path that removes deposits resulting from hardness components in the electrolytic bath 9 and the neutralization bath regeneration circulation flow path 40 during the electrolytic bath cleaning process described below. The electrolytic bath cleaning flow path 49 is configured to include a first drainage flow path 46 and a third drainage flow path 50.
[0099] As shown in FIG. 6 (black arrow), the third drainage flow path 50 is composed of flow paths that connect the inlet 2 to the first soft water tank 3a, the second water pump 12, the electrolytic cell 9, the on-off valve 21, the capture unit 10, the on-off valve 22, and the capture unit drain outlet 14. Specifically, the third drainage flow path 50 passes raw water flowing in from the inlet 2 through the flow path 28, the first soft water tank 3a, the second recovery flow path 38, the second water pump 12, the electrolytic cell 9, the second supply flow path 36, the on-off valve 21, the capture unit 10, and the on-off valve 22, in that order, and then discharges the raw water from the capture unit drain outlet 14 to the outside of the device. More specifically, in the third drainage flow path 50, the raw water flowing in from the inlet 2 flows through the flow path 28 into the first soft water tank 3a, where it is converted into acidic soft water. The acidic soft water thus generated flows into the electrolytic cell 9 via the second recovery flow path 38 and the second water pump 12. The acidic soft water is then circulated through the second supply flow path 36, in the order of on-off valve 21, capture unit 10, and on-off valve 22, to dissolve the precipitate in capture unit 10 and discharge it outside the device through the capture unit drain outlet 14.
[0100] <<Capture cleaning channel>> Next, the capture part cleaning flow path 51 formed during the capture part cleaning step of the water softening device 1 will be described with reference to Fig. 7. Fig. 7 is a configuration diagram showing the capture part cleaning flow path 51 of the water softening device 1.
[0101] The capture part cleaning flow path 51 is a flow path that removes deposits derived from hardness components that have deposited in the capture part 10 during a capture part cleaning step described below. The capture part cleaning flow path 51 is configured to include a fourth drainage flow path 52.
[0102] 7, capture unit cleaning flow path 51 is composed of flow paths that connect inlet 2 to first softened water tank 3a, first neutralization tank 4a, second softened water tank 3b, second neutralization tank 4b, capture unit 10, and capture unit drain outlet 14. Specifically, capture unit cleaning flow path 51 is a flow path that circulates raw water that flows in from inlet 2 through flow path 28, first softened water tank 3a, flow path 29, first neutralization tank 4a, flow path 30, second softened water tank 3b, flow path 31, second neutralization tank 4b, second supply flow path 36, on-off valve 23, capture unit 10, and on-off valve 22 in that order, and then discharges it to the outside of the device through capture unit drain outlet 14.
[0103] <<Raw water intake channel and supply channel>> Next, the raw water introduction channel 70 and the supply channel 72 formed during the mixing step described below will be described with reference to Fig. 8. Fig. 8 is a configuration diagram showing the raw water introduction channel 70 and the supply channel 72 of the water softening device 1.
[0104] First, a description will be given of the raw water introduction flow path 70. The raw water introduction flow path 70 is a flow path that supplies raw water to the mixing section 60 during the mixing step, which will be described later.
[0105] As shown in Figure 8 (white arrow), the raw water introduction flow path 70 is a flow path that connects the inlet 2 to the mixing section 60. Specifically, in embodiment 1, this is a flow path that circulates the raw water that flows in from the inlet 2 through the flow path 28, the first recovery flow path 37, the first water supply pump 11, the electrolytic cell 9, and the first supply flow path 35 in that order, and then flows into the mixing section 60.
[0106] The supply flow path 72 is a flow path that supplies the mixed water produced by the mixer 60 to the electrolytic cell 9 during the mixing step described below.
[0107] As shown in Figure 8 (black arrow), the supply flow path 72 is a flow path that connects the mixing section 60 and the electrolytic cell 9, and specifically, in embodiment 1, it is a flow path that circulates the mixed water produced by the mixing section 60 through the first supply flow path 35, the second soft water tank 3b, the neutralization tank bypass flow path 42, the first soft water tank 3a, the first recovery flow path 37, and the first water supply pump 11 in that order, and then flows into the electrolytic cell 9.
[0108] The water softening device 1 has the above configuration.
[0109] Next, the operation of the water softening device 1 will be described.
[0110] <Water softening process, mixing process, regeneration process, water storage process, regeneration flow path cleaning process, electrolytic cell cleaning process, and capture unit cleaning process> Next, the water softening process, mixing process, regeneration process, water storage process, regeneration flow path cleaning process, electrolytic cell cleaning process, and capture unit cleaning process of the water softening device 1 will be described with reference to Fig. 9. Fig. 9 is a diagram showing the state during operation of the water softening device 1. Note that, hereinafter, the series of steps of the water softening process, mixing process, regeneration process, water storage process, regeneration flow path cleaning process, electrolytic cell cleaning process, and capture unit cleaning process may be referred to as a softening regeneration process.
[0111] In the water softening process, mixing process, regeneration process, water storage process, regeneration flow path cleaning process, electrolytic cell cleaning process, and capture unit cleaning process, the control unit 15 controls the on-off valves 18 to 23, on-off valve 63, flow path switching valves 24 to 27, electrode 41 of electrolytic cell 9, first water pump 11, and second water pump 12 to switch and achieve the respective flow states, as shown in Figure 9.
[0112] 9 indicates that the corresponding on-off valve is "open," the electrode 41 is energized, and the corresponding water pump is operating. Blank spaces indicate that the corresponding on-off valve is "closed," the electrode 41 is not energized, and the corresponding water pump is stopped.
[0113] 9, "from (element number) to (element number)" indicates that the corresponding flow path switching valve connects the flow path in the direction in which water is sent from the corresponding element to the corresponding element. For example, flow path switching valve 24 in the water softening process connects the flow paths so that water can be sent from flow path 28 to flow path 29.
[0114] 9 indicates that the flow path switching valve is connected to a flow path in a direction that may lead to water being sent to the relevant component. In this case, although the flow path is connected, the environment is such that it is difficult for water to flow in or out of the softening tank or neutralization tank where the flow path switching valve is installed, so it is extremely unlikely that water will be sent from the flow path switching valve.
[0115] <<Water softening process>> First, the operation of the water softening device 1 during the water softening process will be described with reference to FIG. 2 and the column "During water softening" in FIG.
[0116] As shown in FIG. 9 , in the water softening process, the on-off valve 18 is closed and the on-off valve 19 provided in the flow path 28 is opened. This allows raw water containing hardness components to flow in from the outside. The inflowing raw water flows through the first softening tank 3a, the first neutralization tank 4a, the second softening tank 3b, and the second neutralization tank 4b in this order, allowing the water softener 1 to extract softened water (neutral soft water) from the water intake 7. At this time, the flow path switching valve 24 is connected to allow water to be sent from the flow path 28 to the flow path 29, the flow path switching valve 25 is connected to allow water to be sent from the flow path 29 to the flow path 30, the flow path switching valve 26 is connected to allow water to be sent from the flow path 30 to the flow path 31, and the flow path switching valve 27 is connected to allow water to be sent from the flow path 31 to the flow path 32. The on-off valves 20 to 23 are all closed. Furthermore, the electrodes 41 of the electrolytic cell 9, the first water pump 11, and the second water pump 12 are also stopped.
[0117] Specifically, as shown in FIG. 1 , in the water softening process, raw water is supplied from an inlet 2 through a flow path 28 to a first softening tank 3a by the pressure of the raw water flowing in from the outside. The raw water then flows through a weakly acidic cation exchange resin 33 provided in the first softening tank 3a. The cations in the raw water, which are hardness components, are adsorbed by the weakly acidic cation exchange resin 33, and hydrogen ions are released (ion exchange occurs). The raw water is softened by removing the cations from the raw water. The softened water contains many hydrogen ions that have been exchanged with hardness components and released, resulting in acidic water (first softened water) with a low pH. Here, water containing many permanent hardness components (e.g., sulfates such as calcium sulfate or chlorides such as magnesium chloride) is more likely to have a lower pH during softening than water containing many temporary hardness components (e.g., carbonates such as calcium carbonate). Since water softening does not proceed easily when the pH is low, the water that has passed through the first softening tank 3a is passed through the first neutralization tank 4a where it is neutralized.
[0118] The softened water flows through flow path 29 via flow path switching valve 24 provided in first water softening tank 3a and into first neutralization tank 4a. In first neutralization tank 4a, hydrogen ions contained in the softened water are adsorbed by weakly basic anion exchange resin 34. In other words, hydrogen ions are removed from the water softened in first water softening tank 3a, and the lowered pH is increased and neutralized. Therefore, the water softening process in second water softening tank 3b proceeds more easily than when water softened in first water softening tank 3a is directly softened in second water softening tank 3b.
[0119] The water neutralized in the first neutralization tank 4a (neutralized first soft water) flows through a flow path 30 via a flow path switching valve 25 provided in the first neutralization tank 4a and into the second soft water tank 3b. In the second soft water tank 3b, cations, which are hardness components, are adsorbed and hydrogen ions are released by the action of a weakly acidic cation exchange resin 33. In the second soft water tank 3b, hardness components that could not be removed in the first soft water tank 3a are exchanged with hydrogen ions possessed by the weakly acidic cation exchange resin 33. In other words, the water that has flowed into the second soft water tank 3b is further softened and becomes soft water (second soft water).
[0120] The second softened water flows through a flow path 31 via a flow path switching valve 26 provided in the second softened water tank 3b and into the second neutralization tank 4b. In the second neutralization tank 4b, hydrogen ions contained in the second softened water that has flowed in are adsorbed by the action of a weakly basic anion exchange resin 34. In other words, as the hydrogen ions are removed from the second softened water, the lowered pH increases, and the water becomes neutral softened water (neutralized second softened water) that can be used as domestic water. The neutralized second softened water flows through a flow path 32 via a flow path switching valve 27 provided in the second neutralization tank 4b and can be taken out from the water intake 7.
[0121] In other words, during the water softening process, raw water flows through the first softening tank 3a, the first neutralization tank 4a, the second softening tank 3b, and the second neutralization tank 4b in this order. This allows raw water containing hardness components to exit the first softening tank 3a before the pH of the raw water decreases during the softening process in the first softening tank 3a. The raw water is neutralized in the first neutralization tank 4a, softened in the second softening tank 3b, and neutralized in the second neutralization tank 4b. This prevents the pH of the water flowing through the softening tank from decreasing, i.e., becoming acidic, compared to when the softening tank and the neutralization tank are configured separately. This facilitates exchange of hardness components with hydrogen ions held by the weakly acidic cation exchange resin 33 in the softening tank (particularly the second softening tank 5). This improves water softening performance.
[0122] In the water softening device 1, when a time period specified by the control unit 15 is reached or when the amount of water treated in the water softening process exceeds a certain amount, the water softening process is terminated and the mixing process is carried out.
[0123] <<Mixing process>> Next, the operation of the water softening device 1 during the mixing process will be described with reference to the "during mixing" section of FIGS.
[0124] In the water softening device 1, the cation exchange capacity of the first soft water tank 3a and the second soft water tank 3b filled with the weakly acidic cation exchange resin 33 decreases or disappears with continued use. Therefore, it becomes necessary to regenerate the soft water tank 3 and the neutralization tank 4 by a regeneration process described below.
[0125] In the regeneration process, water is electrolyzed in the electrolytic cell 9, and regeneration is performed using the resulting acidic electrolyzed water and alkaline electrolyzed water. However, when water with low conductivity such as raw water is used during electrolysis, the resistance generated when the same current value is applied increases compared to when water with high conductivity is electrolyzed, and the voltage applied between the electrodes 41 of the electrolytic cell 9 increases, causing the electrodes 41 to wear out in a short period of time. This shortens the life of the electrolytic cell 9, making it difficult to stably supply acidic electrolyzed water and alkaline electrolyzed water for a long period of time. To prevent this, adding chemicals such as sodium sulfate to the raw water to increase its conductivity is considered, but this requires the supply of chemicals.
[0126] Therefore, in the present embodiment 1, a mixing step is carried out to prepare water having a higher conductivity than the raw water. In the mixing step, regenerated water produced in the previous regeneration step is used.
[0127] During the regeneration process, as the regeneration process of the weakly acidic cation exchange resin and the weakly basic anion exchange resin progresses, the hardness of the acidic electrolyzed water increases due to hardness components (e.g., calcium ions and magnesium ions) released from the soft water tank. Therefore, in a system in which acidic electrolyzed water with increased hardness is re-electrolyzed and reused in the regeneration process, the hardness of the acidic electrolyzed water increases over time from the start of the regeneration process, resulting in high-hardness water. The concentration of hardness components in the high-hardness water (regenerated water) after the regeneration process is, for example, approximately 1500 to 2000 ppm. In other words, since the regenerated water contains a large amount of hardness components, which are electrolytes, its conductivity can be increased by mixing it with raw water. Therefore, by using the regenerated water, the conductivity of the liquid supplied to the electrolytic tank 9 can be increased without adding chemicals such as sodium sulfate, and an increase in the voltage applied to the electrode 41 can be suppressed.
[0128] Furthermore, if the water softening process is started while the high-hardness water generated in the regeneration process remains in the device, water with a higher hardness than the raw water will be discharged from the water intake 7 in the early stages of the process, and the entire amount of regenerated water must be discharged. However, if the regenerated water is used in the mixing process, the amount of regenerated water discharged can be reduced.
[0129] Specifically, in the mixing step, high-hardness water (regenerated water), which is water produced in the previous regeneration step and contains hardness components and has a higher conductivity than the raw water, is mixed with the raw water to produce mixed water. In other words, the regenerated water produced in the nth regeneration step is mixed with the raw water in the (n+1)th mixing step to produce mixed water. Here, n is an integer of 1 or greater.
[0130] More specifically, as shown in Fig. 9, the on-off valve 18 and the on-off valves 20 to 23 are closed, and the on-off valve 19 is opened. As a result, a raw water introduction flow path 70 is formed as shown in Fig. 8.
[0131] In the mixing step, the on-off valve 19 is opened to allow raw water to flow into the raw water inlet channel 70 from the outside.
[0132] In raw water inlet flow path 70, the pressure of the incoming raw water causes the water to flow through flow path 28, first recovery flow path 37, first water supply pump 11, electrolytic cell 9, and first supply flow path 35 in that order, before flowing into mixing section 60. In addition, because on-off valve 63 is open, regenerated water stored in regenerated water storage tank 64 flows into mixing section 60 via regenerated water inlet flow path 62. Therefore, in mixing section 60, raw water and regenerated water are mixed, producing mixed water having a higher conductivity than raw water.
[0133] The conductivity of raw water varies depending on the source and quality of the water, but is generally between 30 and 600 μs / cm, while the conductivity of regenerated water is between 1000 and 3000 μs / cm.
[0134] Here, the flow path switching valve 24 is in a connected state allowing water to be sent from the neutralization tank bypass flow path 42 to the first recovery flow path 37, and the flow path switching valve 25 is in a connected state allowing water to be sent from flow path 29 to the softened water tank bypass flow path 44. The flow path switching valve 26 is in a connected state allowing water to be sent from the first supply flow path 35 to the neutralization tank bypass flow path 42, and the flow path switching valve 27 is in a connected state allowing water to be sent from the softened water tank bypass flow path 44 to the second supply flow path 36. In other words, the first softened water tank 3a and the second softened water tank 3b are in a connected state. As a result, a supply flow path 72 is formed, as shown in FIG. 8. At this time, the electrode 41, the first water pump 11, and the second water pump 12 are stopped.
[0135] Therefore, the produced mixed water is released from the mixing section 60, flows through the first supply flow path 35, the second soft water tank 3b, the neutralization tank bypass flow path 42, the first soft water tank 3a, the first recovery flow path 37, the first water supply pump 11, and flows into the electrolytic cell 9.
[0136] In this way, the mixing step allows the raw water to be mixed with the regenerated water to generate mixed water, and the generated mixed water can be supplied to the electrolytic cell 9. Therefore, the voltage applied to the electrolytic cell 9 can be reduced during the regeneration step described below, and wear on the electrodes 41 can be suppressed.
[0137] The proportion of regenerated water in the mixed water is preferably 15% or more; in other words, the proportion of raw water in the mixed water is preferably 85% or less. This increases the ion concentration in the mixed water, thereby increasing the conductivity of the mixed water to 1000 μs / cm or more. This therefore makes it possible to suppress an increase in the voltage applied to electrode 41 during electrolysis in the regeneration process.
[0138] Furthermore, it is preferable that the proportion of regenerated water in the mixed water is 25% or less; in other words, it is preferable that the proportion of raw water in the mixed water is 75% or more. By doing so, it is possible to prevent a significant increase in the concentration of hardness components in the mixed water. Therefore, it is possible to prevent the occurrence of a state in which solids such as calcium carbonate are likely to precipitate due to the mixed water becoming highly hard. In this case, it is preferable that the conductivity of the mixed water is 3000 μs / cm or less.
[0139] In other words, by making the proportion of regenerated water in the mixed water 15% or more and 25% or less, the conductivity of the mixed water can be made 1000 to 3000 μs / cm, which can suppress an increase in the voltage applied to electrode 41 during electrolysis in the regeneration process and can prevent the regenerated water from becoming highly hard and prone to precipitating solids such as calcium carbonate.
[0140] Then, in the water softening device 1, when the time period specified by the control unit 15 is reached or when the duration of the mixing process exceeds a certain period of time (for example, 5 minutes), the mixing process is terminated and the regeneration process is carried out.
[0141] <<Regeneration process>> Next, the operation of the regeneration device 8 of the water softening device 1 during the regeneration process will be described in order with reference to the "regeneration" section of FIG. 3 and FIG.
[0142] In the water softening apparatus 1, the first softening tank 3a and the second softening tank 3b filled with the weakly acidic cation exchange resin 33 lose or lose their cation exchange capacity with continued use. That is, once all of the hydrogen ions, which are functional groups of the cation exchange resin, have been exchanged with calcium ions or magnesium ions, which are hardness components, ion exchange becomes impossible. Even before all of the hydrogen ions are exchanged with hardness components, the ion exchange reaction becomes less likely as the hydrogen ions decrease, resulting in a decrease in water softening performance. In this state, hardness components begin to be contained in the treated water. For this reason, the water softening apparatus 1 requires a regeneration process for the first softening tank 3a, the second softening tank 3b, the first neutralization tank 4a, and the second neutralization tank 4b using the regeneration device 8.
[0143] During the regeneration process, on-off valves 19, 20, and 22 are closed, and on-off valves 18, 21, and 23 are opened, flow path switching valve 24 is in a connected state allowing water to be sent from neutralization tank bypass flow path 42 to first recovery flow path 37, flow path switching valve 25 is in a connected state allowing water to be sent from softener tank bypass flow path 44 to second recovery flow path 38, flow path switching valve 26 is in a connected state allowing water to be sent from first supply flow path 35 to neutralization tank bypass flow path 42, and flow path switching valve 27 is in a connected state allowing water to be sent from second supply flow path 36 to softener tank bypass flow path 44. In other words, the first softener tank 3a and the second softener tank 3b are in a connected state, the first neutralization tank 4a and the second neutralization tank 4b are in a connected state, and drainage from drain port 13 and capture unit drain port 14 is stopped. As a result, a softener tank regeneration circulation flow path 39 and a neutralization tank regeneration circulation flow path 40 are formed, as shown in FIG. 3 .
[0144] Then, when the first water pump 11 and the second water pump 12 are operated, the acidic electrolyzed water and alkaline electrolyzed water in the electrolytic bath 9 circulate through the soft water bath regeneration circulation flow path 39 and the neutralization bath regeneration circulation flow path 40, respectively.
[0145] The electrolytic cell 9 is energized so that the anode has a higher potential than the cathode (positive electrolysis). As a result, during electrolysis, hydrogen ions are generated at the anode, and acidic electrolyzed water is produced near the anode. On the other hand, hydroxide ions are generated at the cathode, and alkaline electrolyzed water is produced near the cathode.
[0146] The acidic electrolyzed water produced in the electrolytic bath 9 flows through the first supply flow path 35 and is sent to the second soft water bath 3b via the flow path switching valve 26, where it flows through the weakly acidic cation exchange resin 33. The acidic electrolyzed water that has flowed through the second soft water bath 3b flows through the neutralization bath bypass flow path 42 and is sent to the first soft water bath 3a via the flow path switching valve 24, where it flows through the weakly acidic cation exchange resin 33. That is, by passing the acidic electrolyzed water through the weakly acidic cation exchange resin 33, the cations (hardness components) adsorbed on the weakly acidic cation exchange resin 33 undergo an ion exchange reaction with the hydrogen ions contained in the acidic electrolyzed water, whereby the weakly acidic cation exchange resin 33 is regenerated.
[0147] Then, the acidic electrolyzed water that has passed through the first soft water tank 3a contains cations and flows into the first recovery flow path 37. That is, the acidic electrolyzed water that has passed through the weakly acidic cation exchange resin 33 and contains cations is recovered into the electrolytic tank 9 via the first recovery flow path 37.
[0148] In this way, the soft water tank regeneration / circulation flow path 39 is configured to allow acidic electrolyzed water to flow from the downstream side of the second soft water tank 3b, which is the soft water tank located most downstream from the raw water inlet and has weakly acidic cation exchange resin 33 that adsorbs fewer hardness components than the upstream soft water tank, to the downstream side of the first soft water tank 3a, which is located upstream and has weakly acidic cation exchange resin 33 that adsorbs more hardness components than the second soft water tank 3b. In other words, the soft water tank regeneration / circulation flow path 39 is a flow path that allows acidic electrolyzed water delivered from the electrolytic cell 9 to flow through the second soft water tank 3b, then to be delivered to the first soft water tank 3a via the neutralization cell bypass flow path 42, flow through the first soft water tank 3a, and flow into the electrolytic cell 9 via the first recovery flow path 37. As a result, during the regeneration process, acidic electrolyzed water discharged from the electrolytic tank 9 flows into the second soft water tank 3b, which has a smaller adsorption amount of hardness components than the first soft water tank 3a, and the acidic electrolyzed water containing hardness components is discharged from the second soft water tank 3b to the first soft water tank 3a. Since less hydrogen ions are consumed in the second soft water tank 3b during regeneration of the weakly acidic cation exchange resin 33 than in the first soft water tank 3a, the decrease in hydrogen ion concentration can be suppressed compared to regeneration of the first soft water tank 3a. Therefore, the acidic electrolyzed water containing a large amount of hydrogen ions flows into the first soft water tank 3a, and the re-adsorption of hardness components in the first soft water tank 3a can be suppressed. This suppresses a decrease in regeneration efficiency and shortens the regeneration time.
[0149] On the other hand, alkaline electrolyzed water generated near the cathode of the electrolytic cell 9 flows through the second supply flow path 36 and the capture unit 10, and is sent to the second neutralization cell 4b via the flow path switching valve 27, and flows through the weakly basic anion exchange resin 34 therein. Then, the alkaline electrolyzed water that has flowed through the second neutralization cell 4b flows through the soft water cell bypass flow path 44, and is sent to the first neutralization cell 4a via the flow path switching valve 25, and flows through the weakly basic anion exchange resin 34 therein. That is, by passing alkaline electrolyzed water through the weakly basic anion exchange resin 34, anions adsorbed on the weakly basic anion exchange resin 34 undergo an ion exchange reaction with hydroxide ions contained in the alkaline electrolyzed water, and the weakly basic anion exchange resin 34 is regenerated.
[0150] Then, the alkaline electrolyzed water that has flowed through the first neutralization tank 4a contains anions and flows into the second recovery line 38. That is, the alkaline electrolyzed water that has flowed through the weakly basic anion exchange resin 34 and contains anions is recovered into the electrolytic tank 9 via the second recovery line 38.
[0151] In this way, the neutralization tank regeneration / circulation flow path 40 is configured to allow alkaline electrolyzed water to flow from the downstream side of the second neutralization tank 4b, which is the neutralization tank located most downstream from the inlet of raw water and has the weakly basic anion exchange resin 34 that adsorbs fewer anions than the upstream neutralization tank, to the downstream side of the first neutralization tank 4a, which is located upstream and has the weakly basic anion exchange resin 34 that adsorbs more anions than the second neutralization tank 4b. In other words, the neutralization tank regeneration / circulation flow path 40 is a flow path that allows alkaline electrolyzed water delivered from the electrolytic tank 9 to flow through the second neutralization tank 4b, then to be delivered to the first neutralization tank 4a via the soft water tank bypass flow path 44, to flow through the first neutralization tank 4a, and to be delivered to the electrolytic tank 9 via the second recovery flow path 38. As a result, during the regeneration process, alkaline electrolyzed water flows into the second neutralization tank 4b, which adsorbs fewer anions than the first neutralization tank 4a, and alkaline electrolyzed water containing anions is discharged from the second neutralization tank 4b to the first neutralization tank 4a. In the regeneration of the weakly basic anion exchange resin 34 in the second neutralization tank 4b, the consumption of hydroxide ions in alkaline electrolyzed water is smaller than in the first neutralization tank 4a, so the decrease in hydroxide ion concentration can be suppressed compared to the regeneration of the first neutralization tank 4a. Therefore, alkaline electrolyzed water containing a large amount of hydroxide ions can be prevented from flowing into the first neutralization tank 4a, and the re-adsorption of anions in the first neutralization tank 4a can be suppressed. Therefore, the decrease in regeneration efficiency can be suppressed, and the regeneration time can be shortened.
[0152] The neutralization tank regeneration circulation flow path 40 introduces alkaline electrolyzed water delivered from the electrolytic tank 9 into the first neutralization tank 4a and the second neutralization tank 4b from the downstream side of the first neutralization tank 4a and the second neutralization tank 4b, and discharges it from the upstream side where the amount of adsorbed anions is greater than that of the downstream side of each neutralization tank. This allows alkaline electrolyzed water to flow in from the downstream side where the amount of adsorbed anions is smaller, and regenerates the neutralization tank. During regeneration of the weakly basic anion exchange resin 34 at the downstream side, the consumption of hydroxide ions in alkaline electrolyzed water is smaller than that at the upstream side, so that the decrease in hydroxide ion concentration in alkaline electrolyzed water can be suppressed. Therefore, the re-adsorption of anions contained in alkaline electrolyzed water from the downstream side at the upstream side can be suppressed. Therefore, the decrease in regeneration efficiency of the neutralization tank can be suppressed, and the regeneration time can be shortened. The downstream side refers to the downstream side of the flow path during water softening treatment.
[0153] Then, in the water softening device 1, when the time period specified by the control unit 15 is reached or when the regeneration process has lasted for a certain period of time (for example, four hours), the regeneration process is terminated and the water storage process is carried out.
[0154] Furthermore, if a user wants to obtain water during the regeneration process, they can open a faucet (not shown) connected to the water softening device 1, and the raw water will pass through the inlet 2, the flow path 53, and flow out of the water intake 7, allowing them to use the raw water without waiting for the regeneration process to finish.
[0155] <<Water storage process>> Next, the operation of the water softening device 1 during the water storage process will be described in order with reference to the "water storage" section of FIG. 4 and FIG.
[0156] Between the regeneration process and the water softening process, the regeneration flow path cleaning process, the electrolytic tank cleaning process, and the capture unit cleaning process are carried out. In all of these processes, raw water is introduced into the soft water tank regeneration circulation flow path 39, and a water storage process is carried out to ensure post-regeneration water for the mixing process described above.
[0157] During the water storage process, on-off valves 19 to 23 are closed, on-off valve 63 is open, flow path switching valve 24 is connected to allow water to be sent from neutralization tank bypass flow path 42 to first recovery flow path 37, and flow path switching valve 25 is connected to allow water to be sent from flow path 29 to softened water tank bypass flow path 44. Also, flow path switching valve 26 is connected to allow water to be sent from first supply flow path 35 to neutralization tank bypass flow path 42, and flow path switching valve 27 is connected to allow water to be sent from softened water tank bypass flow path 44 to second supply flow path 36. This forms a water storage flow path 66, as indicated by the black arrow in Figure 4. At this time, the electrode 41, first water pump 11, and second water pump 12 are stopped.
[0158] Therefore, the regenerated water remaining in the soft water tank regeneration circulation flow path 39 flows through the soft water tank regeneration circulation flow path 39 and flows into the regenerated water storage tank 64 via the regenerated water introduction flow path 62.
[0159] In this way, the water storage step allows the regenerated water in the soft water tank regeneration circulation flow path 39 after the regeneration step to be stored in the regenerated water storage tank 64. Therefore, even if the flow path cleaning or the electrolytic tank 9 cleaning is performed between the regeneration step and the water softening step, the regenerated water can be used in the next mixing step.
[0160] In the water softening device 1, when the time period specified by the control unit 15 is reached, or when the water storage process exceeds a certain time (for example, 5 minutes), or when the amount of water stored in the regenerated water storage tank 64 exceeds a certain value, the water storage process is terminated and a regenerated flow path cleaning process is executed.
[0161] Furthermore, if a user wants to obtain water during the water storage process, they can open a faucet (not shown) connected to the water softening device 1, and the raw water will pass through the inlet 2, the flow path 53, and flow out of the water intake 7, so that the raw water can be used without waiting for the end of the water storage process.
[0162] <<Regeneration flow path cleaning process>> Next, the operation of the water softening device 1 during the regeneration flow path cleaning process will be described in order with reference to FIG. 5 and the section "During regeneration flow path cleaning" in FIG.
[0163] During the regeneration process in the water softener 1, hardness components are released from the first softened water tank 3a and the second softened water tank 3b into the acidic electrolyzed water, which circulates within the softened water tank regeneration circulation flow path 39 without being discharged. Therefore, after the regeneration process, the softened water tank regeneration circulation flow path 39 is filled with high-hardness water containing the hardness components released from the first softened water tank 3a and the second softened water tank 3b. The hardness of this high-hardness water is significantly higher than the hardness of the raw water (e.g., 450 ppm), and may reach, for example, approximately 2000 ppm. If the water softening process is started while this high-hardness water remains in the water softener 1, high-hardness water or a mixture of raw water and high-hardness water is discharged from the water intake 7. Therefore, if a user of the water softener 1 performs the water softening process after the regeneration process, the user may encounter a problem: not only will soft water not be obtained immediately after the start of the water softening process, but the user may end up with water that is harder than the raw water. To solve these problems, a regeneration flow path cleaning step is carried out to drain the high-hardness water from the soft water tank regeneration circulation flow path 39.
[0164] In addition, in the water storage process carried out before the regeneration flow path cleaning process, some of the regenerated water in the flow path flows into the regenerated water storage tank 64, but the regeneration flow path cleaning process is carried out to discharge the regenerated water remaining in the flow path even after the water storage process.
[0165] During the regeneration flow path cleaning process, on-off valves 21 to 23 are closed, on-off valves 18 to 20 are opened, flow path switching valve 24 is in a connected state allowing water to be sent from flow path 28 to neutralization tank bypass flow path 42, flow path switching valve 25 is in a connected state allowing water to be sent to soft water tank bypass flow path 44, flow path switching valve 26 is in a connected state allowing water to be sent from neutralization tank bypass flow path 42 to first supply flow path 35, and flow path switching valve 27 is in a connected state allowing water to be sent to second supply flow path 36. In other words, the first soft water tank 3a and the second soft water tank 3b are in a connected state, the second soft water tank 3b is in a connected state and drain port 13 is in a connected state, the electrolytic cell 9 is in a connected state and drain port 13 is in a connected state, and drainage from capture unit drain port 14 is stopped. As a result, a first drainage flow path 46 and a second drainage flow path 47 are formed, as shown in FIG. 5. At this time, the electrode 41, the first water pump 11, and the second water pump 12 are stopped.
[0166] In the regeneration flow path cleaning step, specifically, the on-off valve 19 is opened to allow raw water to flow into the first drainage flow path 46 and the second drainage flow path 47 from the outside.
[0167] In the first drainage flow path 46, the pressure of the raw water that has flowed in pushes away the high-hardness water in the flow path 28, the first recovery flow path 37, the first water supply pump 11, the electrolytic cell 9, and the first supply flow path 35, and the high-hardness water flows into the drainage flow path 54. The high-hardness water that has flowed into the drainage flow path 54 is discharged from the drain outlet 13 to the outside of the device.
[0168] In the second drainage flow path 47, the pressure of the inflowing raw water sweeps away the high-hardness water in the flow path 28, the first soft water tank 3a, the neutralization tank bypass flow path 42, the second soft water tank 3b, and the first supply flow path 35, and the high-hardness water flows into the drainage flow path 54. The high-hardness water that flows into the drainage flow path 54 is discharged from the drain outlet 13 to the outside of the device.
[0169] In this way, the regeneration flow path cleaning step can replace the high-hardness water in the first drainage flow path 46 and the second drainage flow path 47, which are the main remaining areas of high-hardness water after the regeneration step, with raw water while suppressing flow to the neutralization tank 4. Therefore, in the regeneration flow path cleaning step, adsorption of hydrogen ions to the weakly basic anion exchange resin 34 in the neutralization tank 4 can be suppressed, thereby suppressing consumption of the loaded hydroxide ions and maintaining neutralization performance. Therefore, it is possible to suppress a decrease in water softening performance caused by high-hardness water.
[0170] In the water softening device 1, when the time period specified by the control unit 15 is reached, or when the regeneration flow path cleaning process exceeds a certain time (for example, 1 minute), or when the amount of water flowing in the regeneration flow path cleaning process exceeds a certain value, the regeneration flow path cleaning process is terminated and the electrolytic cell cleaning process is carried out.
[0171] Furthermore, if a user wants to obtain water during the regeneration flow path cleaning process, they can open a faucet (not shown) connected to the water softening device 1, and the raw water will pass through the inlet 2, flow path 53, and flow out of the water intake 7, allowing them to use the raw water without waiting for the regeneration flow path cleaning process to be completed.
[0172] <<Electrolytic bath cleaning process>> Next, the operation of the water softening device 1 during the electrolytic cell cleaning step will be described in order with reference to FIG. 6 and the column "during electrolytic cell cleaning" in FIG.
[0173] During the regeneration process, when the electrolytic cell 9 is operating, hardness components in the water (calcium ions or magnesium ions) deposit as solids (scale) on the cathode. Because the deposits deposited on the cathode are non-conductors, they increase the operating voltage of the electrolytic cell 9, which in turn increases the power consumption during the regeneration process. Therefore, it is necessary to carry out an electrolytic cell cleaning process to remove the deposits deposited on the cathode.
[0174] In the electrolytic bath cleaning process, on-off valves 18 to 22 are opened, and on-off valve 23 is closed. Furthermore, flow path switching valve 24 is in a connected state that allows water to be sent from flow path 28 to flow path 29, flow path switching valve 25 is in a connected state that allows water to be sent to soft water tank bypass flow path 44, flow path switching valve 26 is in a connected state that allows water to be sent to first supply flow path 35, and flow path switching valve 27 is in a connected state that allows water to be sent to second supply flow path 36. In other words, the first soft water tank 3a and electrolytic bath 9 are in a connected state, the electrolytic bath 9 is in a connected state with drain outlet 13, and the electrolytic bath 9 is in a connected state with capture unit drain outlet 14. As a result, a first drain flow path 46 and a third drain flow path 50 are formed, as shown in FIG. 6 .
[0175] In the electrolytic cell cleaning step, specifically, the on-off valve 19 is opened to allow raw water to flow into the first drainage flow path 46 and the third drainage flow path 50 from the outside.
[0176] In the first drainage flow path 46 , the raw water flows through the flow path 28 , the first recovery flow path 37 , and the first water supply pump 11 , and then flows into the electrolytic cell 9 .
[0177] Meanwhile, in the third drainage flow path 50, the raw water flows through the flow path 28, the first soft water tank 3a, the second recovery flow path 38, and the second water pump 12, and then flows into the electrolytic cell 9.
[0178] In the electrolytic cell cleaning process, the control unit 15 applies electricity so that the cathode has a higher potential than the anode (reverse electrolysis). Therefore, the electrolytic cell 9 electrolyzes the raw water flowing into the electrolytic cell, and generates alkaline electrolyzed water near the anode and acidic electrolyzed water near the cathode.
[0179] At this time, the acidic electrolyzed water produced at the cathode can dissolve the deposits deposited on the cathode, thereby preventing a decrease in electrolysis performance due to the adhesion of deposits to the surface of the electrode 41.
[0180] The alkaline electrolyzed water produced at the anode flows through the first supply flow path 35, flows into the drainage flow path 54, and is discharged from the drain outlet 13 to the outside of the device.
[0181] Meanwhile, the acidic electrolyzed water produced at the cathode dissolves the deposits deposited on the cathode and flows through the second supply flow path 36 into the capture unit 10. The acidic electrolyzed water flowing into the capture unit 10 can dissolve the deposits adhering to the capture unit 10, thereby preliminarily cleaning the capture unit 10. This reduces the time required for the next step, the capture unit cleaning step. The acidic electrolyzed water is then discharged from the capture unit drain outlet 14 located at the bottom of the capture unit 10 to the outside of the device.
[0182] In other words, in the electrolytic cell cleaning process, the deposits in the electrolytic cell 9 and the deposits in the capture section 10 can be removed simultaneously, thereby shortening the time required from the end of the regeneration process to the start of the water softening process.
[0183] In the water softening device 1, when a time period specified by the control unit 15 is reached or when the electrolytic cell cleaning process exceeds a certain time period (for example, 5 minutes), the electrolytic cell cleaning process is terminated and the trapping unit cleaning process is carried out.
[0184] In the third drainage flow path 50, the raw water passes through the first soft water tank 3a, and the acidic water passes through the capture unit 10. As a result, the capture unit 10 becomes acidic, and the precipitates adhering to the capture unit 10 are dissolved by the acidic water. This allows the capture unit 10 to be preliminarily cleaned, thereby shortening the time required for the next step, the capture unit cleaning step. In other words, the precipitates in the electrolytic tank 9 and the capture unit 10 can be removed simultaneously, shortening the time required from the end of the regeneration step to the start of the water softening step.
[0185] If a user wants to obtain water during the electrolytic cell cleaning process, the user can open a faucet (not shown) connected to the water softening device 1, and the raw water will pass through the inlet 2, flow path 53, and flow out of the water intake 7, allowing the user to use the raw water without waiting for the electrolytic cell cleaning process to be completed.
[0186] <<Cleaning process for the capture unit>> Next, the operation of the water softening device 1 during the trap unit cleaning process will be described in order with reference to the section "During trap unit cleaning" in FIG. 7 and FIG.
[0187] During the regeneration process, high-hardness water containing hardness components released from the first soft water tank 3a and the second soft water tank 3b flows into the electrolytic tank 9. The hardness components migrate to the cathode during electrolysis and react with hydroxide ions generated at the cathode to form precipitates. A portion of the precipitate is contained in the alkaline electrolyzed water released from the electrolytic tank 9, flows through the second supply flow path 36, and is captured by the capture unit 10. Therefore, as the precipitate gradually accumulates in the capture unit 10 during the regeneration process, the pressure loss caused by the capture unit 10 gradually increases, and the flow rate of the alkaline electrolyzed water flowing through the neutralization tank regeneration circulation flow path 40 gradually decreases. Therefore, if the precipitate is left unattended, the time required to regenerate the weakly basic anion exchange resins 34 in the first neutralization tank 4a and the second neutralization tank 4b will be extended, and ultimately, the weakly basic anion exchange resins 34 may not be completely filled with hydroxide ions. Therefore, it is necessary to carry out a capture part cleaning step to remove deposits that have adhered to or deposited on the capture part 10.
[0188] In the capture unit cleaning process, on-off valves 18, 19, 22, and 23 are opened, and on-off valves 20 and 21 are closed. Furthermore, flow path switching valve 24 is connected to allow water to be sent from flow path 28 to flow path 29, flow path switching valve 25 is connected to allow water to be sent from flow path 29 to flow path 30, flow path switching valve 26 is connected to allow water to be sent from flow path 30 to flow path 31, and flow path switching valve 27 is connected to allow water to be sent from flow path 31 to second supply flow path 36. In other words, the first softened water tank 3a and the first neutralization tank 4a are connected in communication, the first neutralization tank 4a and the second softened water tank 3b are connected in communication, the second softened water tank 3b and the second neutralization tank 4b are connected in communication, and the second neutralization tank 4b and the capture unit drain port 14 are connected in communication. As a result, a fourth drainage flow path 52 is formed, as shown in FIG. 7 .
[0189] In the capture unit cleaning process, specifically, by opening the on-off valve 19, raw water is allowed to flow from the outside into the flow path 28. The raw water flows through the flow path 28, the first softening tank 3a, the flow path 29, the first neutralization tank 4a, the flow path 30, the second softening tank 3b, the flow path 31, the second neutralization tank 4b, and the second supply flow path 36, before flowing into the capture unit 10.
[0190] Neutral soft water flows into the capture unit 10 from the opposite side to the water flow direction in the regeneration process. In other words, the capture unit 10 is backwashed by the flowing neutral soft water. At this time, some of the deposits that had adhered to or deposited on the capture unit 10 in the electrolytic bath cleaning process have already dissolved, making it easy to clean the capture unit 10 with the neutral soft water. The neutral soft water containing the deposits is discharged outside the device from the capture unit drain outlet 14 located at the bottom of the capture unit 10.
[0191] In this way, the capture unit 10 can be backwashed, thereby removing any deposits remaining in the capture unit 10. This prevents clogging of the capture unit 10, and reduces the pressure loss caused by the capture unit 10 when the regeneration process is performed again. As a result, it is possible to prevent a decrease in the flow rate of the neutralization tank regeneration circulation flow path 40, which is the regeneration flow path including the capture unit 10, and the flow rate of alkaline electrolyzed water can be guaranteed, thereby ensuring regeneration performance.
[0192] Then, in the water softening device 1, when the time period specified by the control unit 15 arrives or when the capture unit cleaning process exceeds a certain time period (for example, 5 minutes), the capture unit cleaning process ends and the water softening process is carried out.
[0193] The flow path from the inlet 2 to the second neutralization tank 4b is the same as the flow path during the water softening process. In other words, by using the fourth drainage flow path 52, the second neutralization tank 4b, which is the final neutralization tank in the water softening process, is filled with softened water. Therefore, by performing the capture unit cleaning process using the fourth drainage flow path 52 and then the water softening process, users of the water softening device 1 can obtain softened water with reduced hardness from the water intake 7 immediately after the start of the water softening process.
[0194] Furthermore, if a user wants to obtain water during the capture unit cleaning process, they can open a faucet (not shown) connected to the water softening device 1, and the raw water will pass through the inlet 2, flow path 53, and flow out of the water intake 7, allowing them to use the raw water without waiting for the capture unit cleaning process to be completed.
[0195] As described above, the water softening device 1 repeatedly executes the following steps in this order: water softening, mixing, regeneration, water storage, regeneration channel cleaning, electrolytic cell cleaning, and capture unit cleaning. By performing the capture unit cleaning step immediately before the water softening step, the neutralization tank, which is the final stage in the water softening step, is filled with softened water. Therefore, when a user of the water softening device 1 opens the faucet, the discharge of high-hardness water from the water intake 7 can be suppressed, and soft water with a stable hardness can be provided immediately after the start of the water softening step.
[0196] Furthermore, by carrying out the electrolytic cell cleaning step after the regeneration flow path cleaning step, the high hardness water has already been discharged outside the device at the time of polarity reversal in the electrolytic cell cleaning step, and the possibility of electrolyzing the high hardness water can be suppressed. Therefore, electrolysis of high hardness water can be suppressed, and the generation of a large amount of scale in the flow path through which alkaline electrolyzed water is sent at the time of polarity reversal can be suppressed.
[0197] As described above, the water softening device 1 according to the first embodiment can provide the following effects.
[0198] (1) The water softening device 1 includes a water softening tank 3 that uses a weakly acidic cation exchange resin 33 to soften raw water containing hardness components used in the water softening process, an electrolytic tank 9 that produces acidic electrolyzed water that is used in the regeneration process to regenerate the weakly acidic cation exchange resin 33 in the water softening tank 3, and a mixer 60 that mixes raw water with regenerated water containing hardness components precipitated from the weakly acidic cation exchange resin 33 during the regeneration process to produce mixed water. The electrolytic tank 9 produces acidic electrolyzed water from the mixed water.
[0199] With this configuration, electrolysis can be performed using mixed water with a higher conductivity than the raw water, thereby suppressing an increase in the voltage applied to the electrode 41. This suppresses wear on the electrode 41 and extends the service life of the electrolytic cell 9. Furthermore, since the conductivity of the raw water can be increased without adding chemicals or the like, there are advantages such as a smaller device size, reduced operating costs, and the avoidance of the hassle of adding chemicals. Furthermore, since water with a higher conductivity than the raw water can be prepared by effectively utilizing the liquid generated by the treatment of the water softening device 1 and discharged, the amount of discharged water can be reduced, and the amount of raw water newly introduced during the regeneration process can also be reduced.
[0200] (2) The water softening device 1 includes a supply flow path 72 that supplies the mixed water generated by the mixer 60 to the electrolytic cell 9. The supply flow path 72 supplies the mixed water to the electrolytic cell 9 at the start of the regeneration step.
[0201] With this configuration, mixed water is supplied to the electrolytic cell 9 from the start of the regeneration process, and mixed water having a higher conductivity than raw water can be electrolyzed. Therefore, an increase in the voltage applied to the electrode 41 can be suppressed, and wear of the electrode 41 can be suppressed.
[0202] (3) The water softening device 1 includes a soft water tank regeneration circulation flow path 39 that connects the electrolytic tank 9 and the soft water tank 3. The mixing section 60 is provided downstream of the electrolytic tank 9 and upstream of the soft water tank 3 in the soft water tank regeneration circulation flow path 39, starting from the electrolytic tank 9.
[0203] This configuration allows raw water and reclaimed water to be mixed while suppressing the impact of the raw water or reclaimed water on the water softening process. In addition, since the reclaimed water, which is acidic, can be stored, it is possible to prevent adsorption to the downstream weakly acidic cation exchange resin 33 and reduce the burden on the electrodes during electrolysis compared to when neutral water is electrolyzed.
[0204] (4) In the water softening device 1, the proportion of regenerated water in the mixed water is set to 15% or more.
[0205] This increases the ion concentration in the mixed water, thereby increasing the conductivity of the mixed water, and therefore suppressing the increase in the voltage applied to electrode 41 during electrolysis in the regeneration step.
[0206] (5) In the water softening device 1, the proportion of regenerated water in the mixed water is set to 25% or less.
[0207] This prevents the concentration of hardness components in the mixed water from increasing significantly, thereby preventing the occurrence of a situation in which solids such as calcium carbonate are likely to precipitate due to the high hardness of the mixed water.
[0208] (6) The water softening device 1 includes a raw water inlet flow path 70 that supplies raw water to the mixing section 60, a regenerated water inlet flow path 62 that supplies regenerated water to the mixing section 60, and a regenerated water storage tank 64 that stores the regenerated water. The mixing section 60 mixes the raw water supplied from the raw water inlet flow path 70 with the regenerated water supplied from the regenerated water storage tank 64 via the regenerated water inlet flow path 62.
[0209] With this configuration, regenerated water can be stored in the regenerated water storage tank 64. Therefore, even if liquid flows into the soft water tank regeneration circulation flow path 39 between regeneration steps, regenerated water with high conductivity can be supplied to the mixing section 60 during the mixing step. Furthermore, since acidic regenerated water can be stored, it is possible to prevent adsorption to the downstream weakly acidic cation exchange resin 33 and reduce the burden on the electrodes during electrolysis compared to when neutral water is electrolyzed.
[0210] (7) The water softening device 1 is equipped with a control unit that repeatedly executes a softening and regeneration process including a water softening process and a regeneration process multiple times, and the electrolytic cell 9 mixes the regenerated water produced during the nth softening and regeneration process with the raw water and uses the mixed water during the n+1th softening and regeneration process.
[0211] With this configuration, the regenerated water produced in the previous regeneration process can be mixed with the raw water in the next mixing process and used as the mixed water in the regeneration process. Therefore, electrolysis can be performed using mixed water with a higher conductivity than the raw water, which can suppress an increase in the voltage applied to the electrode 41.
[0212] The present invention has been described above based on the embodiments. These embodiments are merely examples, and it will be understood by those skilled in the art that various modifications are possible in the combination of each component or each treatment process, and that such modifications are also within the scope of the present invention.
[0213] In the water softening apparatus 1 according to the first embodiment, the regenerated water stored in the regenerated water storage tank 64 is mixed with raw water during the mixing step, but this is not limiting. For example, raw water may be introduced into the softener tank regeneration circulation flow path 39 and mixed with the regenerated water in the flow path. Even in this case, raw water flows in through the raw water inlet flow path 70, and the regenerated water flows through the regenerated water inlet flow path. However, in this case, the regenerated water inlet flow path is a flow path corresponding to the softener tank regeneration circulation flow path 39. When obtaining mixed water in this manner, if the regeneration flow path cleaning step, electrolytic cell cleaning step, and capture unit cleaning step are performed, the regenerated water or mixed water will be diluted with wastewater or raw water outside the apparatus, so it is preferable to repeat the three steps of the water softening step, mixing step, and regeneration step.
[0214] In the water softening device 1 according to the first embodiment, after the regeneration step is completed, the regeneration flow path cleaning step, the electrolytic cell cleaning step, and the capture unit cleaning step are performed in this order, but this is not a limitation. For example, the regeneration flow path cleaning step may be performed after the electrolytic cell cleaning step, or the capture unit cleaning step may be performed before the water softening step. Even when cleaning the interior of the device in this order, precipitates in the electrolytic cell 9 and the capture unit 10 can be removed, and softened water can be filled into the second neutralization tank 4b immediately before the water softening step. [Industrial Applicability]
[0215] The water softening device according to the present invention can be applied to a water purification device installed at the point of use (POU) or a water purification device installed at the building entrance (POE) or the like. [Explanation of symbols]
[0216] 1 Water softener 2 Inlet 3 Soft water tank 3a First soft water tank 3b Second soft water tank 4 Neutralization tank 4a First neutralization tank 4b Second neutralization tank 7 Water Intake 8 Playback device 9 Electrolytic cell 10. Capture unit 11 First water pump 12 Second water pump 13 Drain 14 Trap drainage port 15 Control Unit 18, 19, 20, 21, 22, 23, 63 On-off valves 24, 25, 26, 27 Flow path switching valve 28, 29, 30, 31, 32 Flow paths 33 Weakly acidic cation exchange resin 33a First weakly acidic cation exchange resin 33b Secondary weakly acidic cation exchange resin 34 Weakly basic anion exchange resin 34a First weakly basic anion exchange resin 34b Secondary weakly basic anion exchange resin 35 First supply channel 36 Second supply channel 37 First recovery channel 38 Second recovery channel 39 Soft water tank regeneration circulation flow path 40 Neutralization tank regeneration circulation flow path 41 electrode 41a electrode 41b Electrode 42 Neutralization tank bypass flow path 43 Water softening channel 44 Soft water tank bypass flow path 45 Regeneration flow path cleaning flow path 46 First drainage channel 47 Second drainage channel 49 Electrolytic bath cleaning flow path 50 Third drainage channel 51 Capture unit cleaning channel 52 Fourth drainage channel 53 Flow path 54 Drainage channel 60 Mixing section 62 Regenerated water inlet channel 64 Regeneration water storage tank 70 Raw water inlet channel 72 Supply channel
Claims
1. a water softening tank that uses a weakly acidic cation exchange resin to soften raw water containing hard components used in a water softening process; an electrolytic tank for generating acidic electrolyzed water used in a regeneration step to regenerate the weakly acidic cation exchange resin in the soft water tank; a mixing section that mixes the raw water with regenerated water containing the hardness components released by the weakly acidic cation exchange resin during the regeneration step to produce mixed water; a raw water inlet flow path for supplying the raw water to the mixing section; a regenerated water introduction flow path for supplying the regenerated water to the mixing section; Equipped with The electrolytic cell generates the acidic electrolyzed water from the mixed water, The mixing section mixes the raw water inlet flow path and the reclaimed water inlet flow path by merging them together. Water softener.
2. a supply flow path that supplies the mixed water generated by the mixing unit to the electrolytic cell; The water softening apparatus according to claim 1 , wherein the supply passage supplies the mixed water to the electrolytic cell at the start of the regeneration step.
3. a soft water tank regeneration flow path that connects the electrolytic tank and the soft water tank; 3. The water softening apparatus according to claim 1, wherein the mixing section is provided downstream of the electrolytic bath and upstream of the soft water bath in the soft water bath regeneration flow path, starting from the electrolytic bath.
4. 2. The water softening apparatus according to claim 1, wherein the proportion of the regenerated water in the mixed water is 15% or more.
5. 2. The water softening apparatus according to claim 1, wherein the proportion of the regenerated water in the mixed water is 25% or less.
6. a raw water inlet flow path for supplying the raw water to the mixing section; a regenerated water introduction flow path for supplying the regenerated water to the mixing section; a regenerated water storage tank for storing the regenerated water, The water softening apparatus according to claim 1 , wherein the mixing section mixes the raw water supplied from the raw water inlet flow path with the regenerated water supplied from a regenerated water storage tank via the regenerated water inlet flow path.
7. a control unit that repeatedly executes a water softening and regeneration process including the water softening step and the regeneration step a plurality of times; The electrolytic cell comprises: The water softening apparatus according to claim 1 , wherein the regenerated water produced during the nth softening regeneration treatment is mixed with the raw water and used as the mixed water during the (n+1)th softening regeneration treatment.
Citation Information
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