Water purification system
By optimizing the pipeline structure and filter components of the water purification system, the system can efficiently output both ambient and hot water, solving the problems of complex structure and low water intake efficiency in existing water purification systems, and improving the system's service life and water quality.
Patent Information
- Application Number
- CN202422901854.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-27
- Publication Date
- 2026-02-06
- Estimated Expiration
- 2034-11-27
AI Technical Summary
Existing water purification systems have complex structures and cumbersome pipeline layouts, resulting in low water extraction efficiency, especially for ambient and hot water.
By using parallel-connected ambient temperature water pipes and hot water pipes, combined with reverse osmosis filtration components, pre-filters and post-filters, and by optimizing the pipeline structure through booster pumps, heating pipes and flow meters, it achieves efficient output of ambient temperature water and hot water, and flushes the reverse osmosis filter through a backwash water path, simplifying the overall structure.
It improves the water intake efficiency of the water purification system, extends its service life, ensures clear water with good taste, and simplifies the pipeline layout and space occupation.
Smart Images

Figure CN223879502U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a water purification system belongs to the technical field of kitchen appliances. BACKGROUND
[0002] The water purification system of the household is one of the water treatment equipment commonly seen in modern families, mainly used for removing impurities and harmful substances in tap water, improving water quality and ensuring the safety and health of drinking water.
[0003] At present, the core component of the water purification system for water purification treatment is a reverse osmosis filter assembly, which adopts reverse osmosis membrane technology and can effectively remove almost all impurities such as bacteria, viruses, heavy metal ions and dissolved salts in water. UTILITY MODEL CONTENTS
[0004] The technical problem to be solved by the utility model is to provide a water purification system, optimize the overall structure and improve the water taking efficiency.
[0005] The utility model is realized through the following technical schemes.
[0006] A water purification system comprises:
[0007] A reverse osmosis filter assembly;
[0008] An original water pipe for inputting original water to an original water inlet of the reverse osmosis filter assembly, wherein the original water pipe is provided with an original water inlet valve and a booster pump;
[0009] A concentrated water pipe for discharging concentrated water output by a concentrated water outlet of the reverse osmosis filter assembly, wherein the concentrated water pipe is provided with a concentrated water outlet valve;
[0010] A normal temperature water pipe and a hot water pipe arranged in parallel for discharging pure water output by a pure water outlet of the reverse osmosis filter assembly, wherein the normal temperature water pipe is provided with a normal temperature outlet valve, and the hot water pipe is provided with a flow control pump and a heating pipe.
[0011] As a further improvement of the utility model, it further comprises:
[0012] A pre-filter element for pre-filtering the original water in the original water pipe;
[0013] A pure water pipe for outputting the pure water generated by the reverse osmosis filter assembly;
[0014] A post-filter element for post-filtering the pure water of the pure water pipe and conveying the post-filtered pure water to the normal temperature water pipe and the hot water pipe.
[0015] As a further improvement of the utility model, the front filter element and the rear filter element are combined into a composite filter element.
[0016] As a further improvement of the utility model, a pressure sensor is arranged on the pure water pipe for detecting the pure water outlet water pressure of the reverse osmosis filter assembly.
[0017] As a further improvement of the utility model, the hot water pipe is provided with a flow meter for detecting the hot water output of the hot water pipe.
[0018] As a further improvement of the utility model, the reverse osmosis filter assembly comprises a filter container with a raw water inlet, a pure water outlet and a concentrated water outlet, the filter container is formed with a raw water passage connected with the raw water inlet, a pure water passage connected with the pure water outlet and a concentrated water passage connected with the concentrated water outlet; the raw water passage is provided with a reverse osmosis filter element, so that the raw water flows to the pure water passage to generate pure water and flows to the concentrated water passage to generate concentrated water in the reverse osmosis filter element.
[0019] As a further improvement of the utility model, the volume of the pure water passage is variable and is proportional to the pure water pressure in the pure water passage.
[0020] The variable volume of the pure water passage is used to increase the pure water amount stored in the pure water passage when the raw water inlet valve, the booster pump and the concentrated water outlet valve are opened and the constant temperature outlet valve, the flow control pump and the heating pipe are closed.
[0021] The variable volume of the pure water passage is used to supply the pure water stored in the pure water passage to the hot water pipe when the raw water inlet valve, the booster pump, the concentrated water outlet valve and the constant temperature water inlet valve are closed and the flow control pump and the heating pipe are opened.
[0022] As a further improvement of the utility model, the pure water passage and the raw water passage are connected with a backflushing water passage which can be blocked or communicated, the backflushing water passage is communicated to allow the pure water in the pure water passage to flow into the raw water passage and flush the reverse osmosis filter element.
[0023] As a further improvement of the utility model, the backflushing water passage is provided with a one-way valve for limiting the flow from the pure water passage to the raw water passage, the one-way valve is provided with a pressure difference threshold, the one-way valve is opened when the water pressure difference between the pure water passage and the raw water passage reaches the pressure difference threshold, and the one-way valve is closed when the water pressure difference between the pure water passage and the raw water passage does not reach the pressure difference threshold.
[0024] The one-way valve is used to open under the condition that the raw water inlet valve, the booster pump, the normal-temperature water inlet valve, the flow control pump and the heating pipe are closed, and the concentrated water outlet valve is opened, so that the pure water of the pure water passage enters the raw water passage through the backwashing water path, and the reverse osmosis filter core is flushed.
[0025] As a further improvement of the utility model, the filter container comprises a filter bottle in which the reverse osmosis filter core is arranged, and a filter core seat arranged on the filter bottle; the raw water inlet, the pure water outlet and the concentrated water outlet are arranged on the filter core seat; the filter core seat is provided with a raw water pipeline, a pure water pipeline and a concentrated water pipeline;
[0026] The filter bottle is provided with a central pipe with a water passage hole, the reverse osmosis filter core is sleeved outside the central pipe, and a gap is formed between the reverse osmosis filter core and the inner wall of the filter bottle;
[0027] The raw water inlet, the raw water pipeline and the reverse osmosis filter core are communicated, and the raw water passage is formed;
[0028] The pure water outlet, the pure water pipeline and the central pipe are communicated, and the pure water passage is formed;
[0029] The concentrated water outlet, the concentrated water pipeline and the gap are communicated, and the concentrated water passage is formed.
[0030] The utility model has the advantages of:
[0031] The pipe structure, the valve structure arranged on the pipe, the booster pump and the heating pipe are arranged, so that the water purification system can efficiently and quickly output normal-temperature water and hot water, the structure of the whole water purification system is simplified, and the pipeline layout is optimized.
[0032] The pre-filter core can remove larger impurities in water, such as silt, rust, algae and other visible particulate matters, the pre-filtering can effectively protect the reverse osmosis filtering assembly from the influence of large-particle impurities, prolong the service life of the whole water purification system, the post-filter core is responsible for intercepting finer pollutants in pure water, including bacteria, viruses, heavy metal ions and other small molecular substances harmful to human body, in addition to further purifying water quality, the activated carbon or other special materials in the post-filter core can also remove color and odor in water, so that the purified water is clearer and tastes better.
[0033] The pre-filter core and the post-filter core are combined into a composite filter core, and the combination of the two into the composite filter core can simplify the overall structure, simplify the pipeline layout and optimize the space required by the water purification system. BRIEF DESCRIPTION OF DRAWINGS
[0034] The preferred embodiments of the present application will be described in detail below with reference to the drawings, which are intended to assist in understanding the objects and advantages of the present application, in which:
[0035] Figure 1 A schematic view of the reverse osmosis filtering assembly in Embodiment 1;
[0036] Figure 2 A schematic view of the filter cartridge seat in Embodiment 1;
[0037] Figure 3 A schematic view of the reverse osmosis filtering assembly provided with a water storage cavity in Embodiment 1;
[0038] Figure 4 A schematic view of the reverse osmosis filtering assembly provided with a partition in Embodiment 1;
[0039] Figure 5 A schematic view of the water purification system in Embodiment 2. DETAILED DESCRIPTION
[0040] The present application will be described in further detail below with reference to the drawings and embodiments.
[0041] In this specification, the orientation terms such as up, down, left, right, front, back, front face, back face, top, bottom, etc. mentioned or possibly mentioned are defined with respect to the configuration shown in the drawings, and the words "inner" and "outer" respectively refer to the directions toward or away from the geometric center of a particular component, which are relative concepts, and thus can change accordingly depending on the different positions, different use states, etc. Therefore, these or other orientation terms should not be interpreted as limiting terms.
[0042] Embodiment 1:
[0043] A reverse osmosis filtering assembly, with reference to Figures 1-4 , comprising a filtering container 1, the filtering container 1 having a raw water port h1, a pure water port h2 and a concentrated water port h3, and the filtering container 1 having a raw water passage r1, a pure water passage r2 and a concentrated water passage r3. Among them, the raw water passage r1 and the raw water port h1 are communicated, the raw water is input into the filtering container 1 through the raw water port h1, the raw water flows along the raw water passage r1, the pure water passage r2 and the pure water port h2 are communicated, the pure water in the filtering container 1 flows along the pure water passage r2, and the filtering container 1 is output by the pure water port h2, the concentrated water passage r3 and the pure water port h2 are communicated, the concentrated water in the filtering container 1 flows along the concentrated water passage r3, and the filtering container 1 is output by the concentrated water port h3.
[0044] The raw water passage r1 is provided with a reverse osmosis filter core 13, which is also called an RO reverse osmosis pure water machine filter core. The reverse osmosis filter core 13 utilizes the principle of reverse osmosis technology. When water passes through a reverse osmosis membrane under the action of a certain pressure, water molecules can pass through, while most of the dissolved solids, inorganic salts, organic matter, colloids, bacteria, viruses and other larger molecules and particles cannot pass through and are blocked and discharged with concentrated water. Therefore, the reverse osmosis filter core 13 can filter raw water to form pure water and concentrated water. In the present embodiment, the raw water passes through the reverse osmosis filter core 13 to generate pure water entering the pure water passage r2 and concentrated water entering the concentrated water passage r3. In the filter container 1, the pure water passage r2 and the concentrated water passage r3 are connected in parallel to the raw water passage r1.
[0045] In the present embodiment, the volume of the pure water passage r2 can vary and is proportional to the water pressure of the pure water in the pure water passage r2. Therefore, the pure water passage r2 of the present embodiment can store pure water by increasing the water pressure of the pure water in the pure water passage r2. The most direct effect is that the instantaneous water pressure can be increased when pure water is released, so that the user can obtain a more objective water output at the moment of taking water.
[0046] In the present embodiment, the pure water passage r2 and the raw water passage r1 are connected with a backflushing water passage r4. The backflushing water passage r4 can be blocked or connected. When the backflushing water passage r4 is blocked, the flow of pure water in the pure water passage r2 and the flow of raw water in the raw water passage r1 do not interfere with each other. When the backflushing water passage r4 is connected, the pure water in the pure water passage r2 is allowed to flow into the raw water passage r1 through the backflushing water passage r4, and the reverse osmosis filter core 13 in the raw water passage r1 is flushed. The flushing action can completely flush and replace the concentrated water in the reverse osmosis filter core 13, so that the reverse osmosis filter core 13 does not contain larger molecules and particles such as solids, inorganic salts, organic matter, colloids, bacteria and viruses, thereby greatly reducing the TDS value of the first cup of water when the user takes water.
[0047] In the embodiment, the backwash water path r4 is connected to the raw water path r1 upstream of the reverse osmosis filter core 13. When backwashing is needed, the backwash water path is connected, and the pure water in the pure water path r2 flows into the raw water path r1 upstream of the reverse osmosis filter core 13 through the backwash water path r4, so that the pure water can flow into the reverse osmosis filter core 13 from the water inlet end and flow out from the water outlet end, thereby being able to completely cover the reverse osmosis filter core 13 for flushing, improving the cleanliness of the flushing of the reverse osmosis filter core 13, and avoiding the presence of macromolecules and particles in the reverse osmosis filter core 13. In addition, in the prior art, backwashing is performed by returning pure water to the reverse osmosis filter core 13. The reverse osmosis filter core 13 is structurally composed of multiple layers of reverse osmosis membranes. Whether it is raw water filtration or pure water return, water is filtered by permeating through multiple layers of reverse osmosis membranes. A large water pressure difference is needed to make the raw water permeate through the membranes during filtration, but it is difficult to provide a large water pressure difference during backwashing, so that the permeation of pure water into the reverse osmosis filter core 13 is relatively low. Due to the high difficulty of permeation, a large amount of pure water is consumed for reverse osmosis. In the embodiment, since the pure water is not returned to the reverse osmosis filter core 13, but is introduced into the upstream of the reverse osmosis filter core 13 through the backwash water path r4, the pure water flushes the reverse osmosis filter core 13 along the original flow direction of the raw water, so that the flow resistance of the pure water during backwashing is greatly reduced compared to the prior art. Not only is the flushing efficiency improved, but the reverse osmosis filter core 13 can also be completely flushed, and the consumption of pure water is also greatly reduced compared to the prior art.
[0048] In the embodiment, the backwash water path r4 is provided with a one-way valve 16, which limits the flow from the pure water path r2 to the raw water path r1. The one-way valve 16 is set with a pressure difference threshold. When the water pressure difference between the pure water path r2 and the raw water path r1 reaches the pressure difference threshold, the one-way valve 16 opens. When the water pressure difference between the pure water path r2 and the raw water path r1 does not reach the pressure difference threshold, the one-way valve 16 closes. Normally, when the raw water inlet h1 stops inputting raw water, the pure water outlet h2 stops outputting pure water, and the concentrated water outlet h3 maintains outputting concentrated water, the water pressure difference between the pure water path r2 and the raw water path r1 can reach the pressure difference threshold, so that the one-way valve 16 opens to enter the backwashing state. It should be noted that the pure water path r2 in the water storage state not only can reach the pressure difference threshold to open the one-way valve 16, but also can provide sufficient pure water to flow into the raw water path r1 through the backwash water path r4 to flush the reverse osmosis filter core 13, thereby further optimizing the effect and efficiency of backwashing.
[0049] For the specific structural composition of the filter container 1, in the present embodiment, the filter container 1 comprises a filter bottle 11 and a filter core seat 12. The filter bottle 11 is a structure with an opening and a hollow interior, a reverse osmosis filter core 13 is arranged in the filter bottle 11, and the filter core seat 12 is arranged at the opening of the filter bottle 11, thereby forming a sealed structure with the filter bottle 11. The raw water port h1, the pure water port h2, and the concentrated water port h3 are all arranged on the filter core seat 12. The filter core seat 12 is provided with a raw water pipeline 121, a pure water pipeline 122, and a concentrated water pipeline 123. The raw water pipeline 121 is in communication with the raw water port h1 and constitutes part of a raw water passage r1, and the other part of the raw water passage r1 is located in the filter bottle 11. The pure water pipeline 122 is in communication with the pure water port h2 and constitutes part of a pure water passage r2, and the other part of the pure water passage r2 is located in the filter bottle 11. The concentrated water pipeline 123 is in communication with the concentrated water port h3 and constitutes part of a concentrated water passage r3, and the other part of the concentrated water passage r3 is located in the filter bottle 11.
[0050] In the present embodiment, a backflushing water passage r4 is arranged in the filter core seat 12 and connects the pure water pipeline 122 and the raw water pipeline 121, and the reverse osmosis filter core 13 is arranged in the filter bottle 11, so that the pure water of the backflushing water passage r4 flows into the upstream of the reverse osmosis filter core 13, thereby enabling the pure water to flush the reverse osmosis filter core 13.
[0051] In the present embodiment, a central pipe 14 is arranged in the filter bottle 11, the central pipe 14 is located at the center of the filter bottle 11, the pipe wall of the central pipe 14 has a plurality of water passing holes 141, which enable water to flow from the periphery of the central pipe 14 into the central pipe 14 through the water passing holes 141, the central pipe 14 constitutes the other part of the pure water passage r2 and is in communication with the pure water pipeline 122, so the central pipe 14 and the pure water pipeline 122 constitute a complete pure water passage r2. The reverse osmosis filter core 13 is annularly arranged outside the central pipe 14, the reverse osmosis filter core 13 constitutes the other part of the raw water passage r1 and is in communication with the raw water pipeline 121, so the reverse osmosis filter core 13 and the raw water pipeline 121 constitute a complete raw water passage r1. The gap 15 between the reverse osmosis filter core 13 and the inner wall of the filter bottle 11 is annular and constitutes the other part of the concentrated water passage r3 and is in communication with the concentrated water pipeline 123, so the annular gap 15 and the concentrated water pipeline 123 constitute a complete concentrated water passage r3.
[0052] In the embodiment, the filter core seat 12 is arranged at the top end of the filter bottle 11, the central tube 14 is arranged vertically, raw water enters from the raw water port h1 and flows downward along the raw water pipeline 121 into the reverse osmosis filter core 13, part of the raw water in the reverse osmosis filter core 13 is subjected to reverse osmosis inward, the pure water subjected to reverse osmosis flows into the central tube 14 through the water passage hole 141, flows upward along the central tube 14 and flows into the pure water pipeline 122, and is finally output from the pure water port h2, the other part of the raw water in the reverse osmosis filter core 13 forms concentrated water after flowing through the reverse osmosis filter core 13, flows upward along the gap 15 and flows into the concentrated water pipeline 123, and is finally output from the concentrated water port h3.
[0053] The volume of the pure water passage r2 can be changed, and the volume of the pure water passage r2 is changed in a manner that the volume of the pure water passage r2 is increased when the water pressure is increased. Figure 3 In an embodiment, the filter bottle 11 is provided with a water storage cavity 17, the water storage cavity 17 is communicated with the central tube 14, the volume of the water storage cavity 17 can be changed and is proportional to the water pressure of the pure water in the water storage cavity 17, the volume of the pure water passage r2 is changed by arranging the water storage cavity 17 with variable volume, and the water storage cavity 17 is gradually increased when the water pressure is increased, so as to increase the volume of the pure water passage and store water.
[0054] More specifically, in the embodiment, the cavity wall of the water storage cavity 17 is of rigid structure, an elastic diaphragm 171 is arranged in the water storage cavity 17, the elastic diaphragm 171 divides the space of the water storage cavity 17 into two parts, one part is communicated with the central tube 14, the pure water pipeline 122 and the pure water port h2, and this part can change the pure water volume of the water storage cavity 17, and the other part has compressible medium, the compressible medium is arranged as gaseous medium, and the gaseous medium can be arranged as air or inert gas such as nitrogen, and the nitrogen is the best choice, the nitrogen is a gas with very stable chemical properties and is not easy to react with other substances, and has good stability in the compression process.
[0055] In the embodiment, the water storage cavity 17 is communicated with the bottom end of the central tube 14, that is, the water storage cavity 17 is communicated with the end of the central tube 14 far away from the filter core seat 12 and the pure water port h2.
[0056] In the embodiment, the water storage cavity 17 is expanded outwardly from the central tube 14 to form a larger cross-sectional area, so that the cross-sectional area of the water storage cavity 17 is larger than that of the central tube 14, and the water storage capacity of the water storage cavity 17 is increased without increasing the size of the filter bottle 11.
[0057] The volume of the pure water passage r2 can be changed, and the volume of the pure water passage r2 is changed in a manner that the volume of the pure water passage r2 is increased when the water pressure is increased. Figure 4In another embodiment, the center tube 14 is provided with a partition 18, the edge of the partition 18 is attached to the inner wall of the center tube 14, and the space of the center tube 14 is divided into two parts, one part is communicated with the pure water pipe 122 and the pure water outlet h2, and the other part is not communicated with the pure water pipe 122 and the pure water outlet h2, and is an independent space. The partition 18 can slide along the center tube 14 and be elastically supported, and the proportion of the two parts divided by the partition 18 can be changed, so that the volume of the pure water in the center tube 14 can be changed, and the elastically supported partition 18 can make the volume of the center tube 14 and the pure water pressure in the pure water passage r2 be proportional. Both of the two embodiments can realize that the volume of the pure water passage r2 can be changed and is proportional to the pure water pressure in the pure water passage r2.
[0058] In the embodiment, the bottom end of the center tube 14 is a closed structure, and the space of the center tube 14 divided by the partition 18 and not communicated with the pure water outlet h2 is provided with at least one elastic member 181, and the two ends of the elastic member 181 are respectively supported on the partition 18 and the bottom end of the center tube 14 which is closed. The elastic member 181 can be a compression spring, and if a plurality of elastic members 181 are provided, the positions of the plurality of elastic members 181 supported on the partition 18 are symmetrically arranged about the center of the partition 18, so that the elastic support of the partition 18 remains balanced, thereby ensuring that the up-and-down sliding of the partition 18 is more stable and reliable.
[0059] In the embodiment, the inner wall of the center tube 14 is provided with a plurality of guide structures which are not shown in the figure, the guide structures are circumferentially spaced apart from each other and extend along the length direction of the center tube 14, and the outer periphery of the partition 18 is slidably connected with the guide structures. The guide structure can be specifically provided as a vertically extending slide bar, and the outer periphery of the partition 18 is provided with a clamping groove at the corresponding slide bar and is slidably clamped on the slide bar, so that the slide connection is realized; or the inner wall of the center tube 14 is provided with a clamping groove, and the outer periphery of the partition 18 is provided with a slide bar, and the guide structure can make the up-and-down sliding of the partition 18 smooth and avoid the situation that the partition 18 is stuck, and also can avoid that the partition 18 is inclined to cause the sealing failure of the partition 18.
[0060] Embodiment 2:
[0061] A water purification system, referring to Figure 5 and combining Figures 1-4, including a reverse osmosis filtration assembly 1, a raw water pipe t1, a concentrated water pipe t2, a normal temperature water pipe t3, and a hot water pipe t4. The reverse osmosis filtration assembly 1 is as shown in the embodiment 1, the raw water pipe t1 is used to input raw water to the raw water inlet h1 of the reverse osmosis filtration assembly 1, and the raw water pipe t1 is provided with a raw water inlet valve v1 and a booster pump p1; the concentrated water pipe t2 is used to discharge the concentrated water output by the concentrated water outlet h3 of the reverse osmosis filtration assembly 1, and the concentrated water pipe t2 is provided with a concentrated water outlet valve v2; the normal temperature water pipe t3 and the hot water pipe t4 are connected in parallel and used to discharge the pure water output by the pure water outlet h2 of the reverse osmosis filtration assembly 1, the normal temperature water pipe t3 is provided with a normal temperature outlet valve v3, and the hot water pipe t4 is provided with a flow control pump p2 and a heating pipe c1.
[0062] By setting the above pipe structure, the valve structure arranged on the pipe, and the booster pump p1, the heating pipe c1 and other functional structures, the water purification system can efficiently and quickly output normal temperature water and hot water. In addition, the structure of the whole water purification system is simplified, and the pipeline layout is optimized.
[0063] The water purification system of the embodiment further includes a pre-filter core f1, a post-filter core f2, and a pure water pipe t5. The pre-filter core f1 is arranged on the raw water pipe t1 and used to pre-filter the raw water in the raw water pipe t1, and the pre-filtered raw water is then conveyed to the reverse osmosis filtration assembly 1 for filtration. The pure water pipe t5 connects the reverse osmosis filtration assembly 1 and the post-filter core f2, and conveys the pure water output by the reverse osmosis filtration assembly 1 to the post-filter core f2. The post-filter core f2 post-filters the pure water, and the normal temperature water pipe t3 and the hot water pipe t4 are connected in parallel to the post-filter core f2. The normal temperature water or the hot water is output according to the user's selection.
[0064] The pre-filter core f1 can remove larger impurities such as silt, rust, algae and other visible particulate matter in the water, and pre-filtering can effectively protect the reverse osmosis filtration assembly 1 from the influence of large particle impurities, thereby prolonging the service life of the whole water purification system. The post-filter core f2 is responsible for intercepting finer pollutants in the pure water, including bacteria, viruses, heavy metal ions and other small molecular substances harmful to the human body. In addition to further purifying the water quality, the activated carbon or other special materials in the post-filter core f2 can also remove the color and odor in the water, so that the purified water is clearer and tastes better.
[0065] In the embodiment, the pre-filter core f1 and the post-filter core f2 are combined into a composite filter core f. Combining the two into a composite filter core f can simplify the overall structure, simplify the pipeline layout and optimize the space required by the water purification system.
[0066] In the embodiment, a pressure sensor g is arranged on the pure water pipe t5 to detect the pure water outlet pressure of the reverse osmosis filtering assembly 1, so that the water purification system can determine whether the pure water passage r2 of the reverse osmosis filtering assembly 1 needs to store pure water according to the pure water outlet pressure.
[0067] In the embodiment, the hot water pipe t4 is provided with a flow meter c2, which can be arranged between the flow control pump p2 and the heating pipe c1. The flow meter c2 can detect the flow of the hot water in the hot water pipe t4, and the flow control pump p2 can cooperate with the flow meter c2 to accurately control the hot water outlet amount of the hot water pipe t4.
[0068] Embodiment 3:
[0069] A control method based on the water purification system shown in Embodiment 2.
[0070] The control method of the embodiment is described with reference to Figure 5 and in combination with Figures 1-4 , which includes a normal temperature water taking mode, a water storage mode, a hot water taking mode and a backwashing mode.
[0071] In the normal temperature water taking mode of the embodiment, the flow control pump p2 and the heating pipe c1 are closed, and the raw water inlet valve v1, the booster pump p1, the concentrated water outlet valve v2 and the normal temperature water outlet valve v3 are opened. When the raw water inlet valve v1 and the booster pump p1 are opened, the raw water pipe t1 delivers raw water, the raw water passes through the pre-filter of the composite filter core f, enters the reverse osmosis filtering assembly 1 to generate pure water and concentrated water, when the concentrated water outlet valve v2 is opened, the concentrated water is discharged from the concentrated water pipe t2, and when the normal temperature water outlet valve v3 is opened, the pure water is delivered to the composite filter core f for post-filtering through the pure water pipe t5. The pure water after post-filtering is output by the normal temperature water pipe t3. In the normal temperature water taking mode, the volume of the pure water passage r2 is in a low state, and the volume of the two pure water passages r2 can be changed. In the first embodiment, the part of the space volume of the central pipe 14 in the water storage cavity 17 is small, and the part of the space volume filled with compressible medium is large. In another embodiment, the partition plate 18 is at a high level, so that the part of the space volume of the central pipe 14 connected to the pure water outlet h2 is small, and the part of the space volume not connected to the pure water outlet h2 is large.
[0072] In the water storage mode of the present embodiment, the water pressure of the pure water outlet of the reverse osmosis filtration assembly 1 is detected, and when the water pressure of the pure water outlet is lower than the first threshold value, the water storage mode is started, and in the water storage mode, the normal-temperature water outlet valve v3, the flow control pump p2 and the heating pipe c1 are closed, and the raw water inlet valve v1, the booster pump p1 and the concentrated water outlet valve v2 are opened, so that the volume of the pure water passage r2 gradually increases until the water pressure of the pure water outlet of the reverse osmosis filtration assembly 1 reaches the second threshold value. The water pressure of the pure water outlet is detected by the pressure sensor g, and when the pressure state is detected, since the normal-temperature water outlet valve v3 and the flow control pump p2 are closed, the pure water cannot be output, and in the case where the raw water inlet valve v1, the booster pump p1 and the concentrated water outlet valve v2 are opened, the raw water is continuously input into the reverse osmosis filtration assembly 1, the raw water passage r1 maintains a high-pressure state, so that the pure water can be continuously input into the pure water passage r2, thereby gradually increasing the volume of the pure water passage r2. In the water storage mode, the water storage capacity of the pure water passage r2 can be improved, so that the user can maintain a large water output in the initial stage of water taking whether it is normal-temperature water taking or hot water taking, so that the user's use experience is better. In the water storage taking mode, the volume of the pure water passage r2 is in a higher state, and the volume of the pure water passage r2 can be set in two ways, in the first embodiment, the part of the space volume of the central pipe 14 in the water storage cavity 17 is large, and the part of the space volume filled with compressible medium is small. In another embodiment, the partition plate 18 is at a lower level, so that the part of the space volume of the central pipe 14 connected to the pure water outlet h2 is large, and the part of the space volume not connected to the pure water outlet h2 is small.
[0073] In the present embodiment, the first threshold value is set to 0.03-0.07 mTa, and the optimal value is set to 0.05 mTa, and the second threshold value is set to 0.2-0.6 mTa, and the optimal value is set to 0.4 mTa.
[0074] In the hot water taking mode of the embodiment, the raw water inlet valve v1, the booster pump p1, the concentrated water outlet valve v2 and the normal temperature water inlet valve are closed, and the flow control pump p2 and the heating pipe c1 are opened. In the hot water taking mode, since the raw water inlet valve v1, the booster pump p1, the concentrated water outlet valve v2 and the normal temperature water inlet valve are all in the closed state, the raw water stops being input to the reverse osmosis filtration assembly 1, and the concentrated water stops being discharged. The reverse osmosis filtration assembly 1 outputs the pure water stored in the pure water passage r2, and the pure water is output by the hot water pipe t4 under the control of the flow control pump p2 after being filtered by the rear filter of the composite filter core f. The pure water is heated by the heating pipe c1 to form hot water and then output. In most use scenarios, the user takes a small amount of hot water, and only the pure water stored in the reverse osmosis filtration assembly 1 can meet the use demand without inputting raw water. In addition, compared with the prior art, since the volume of the pure water passage r2 can be changed in the embodiment, the flow of the heated water can be regulated without pure water backflow, the control logic is simplified, and water waste is avoided.
[0075] It should be noted that in the embodiment, if the user needs to take a large amount of hot water, the pure water output pressure of the reverse osmosis filtration assembly 1 will continuously decrease and reach the first threshold value. Therefore, when the pressure value detected by the pressure sensor g is less than the first threshold value, the water storage mode is started again to increase the amount of pure water in the reverse osmosis filtration assembly 1 and the outlet water pressure of the pure water, so that the user can continuously take hot water.
[0076] The backwashing mode of the embodiment has two starting conditions, one is to stop the normal temperature water taking mode to drive the backwashing mode, and the other is to drive the backwashing mode when the pure water outlet water pressure of the reverse osmosis filtration assembly 1 reaches the second threshold value.
[0077] In the backwash mode of the embodiment, the raw water inlet valve v1, the booster pump p1, the normal temperature water inlet valve, the flow control pump p2 and the heating pipe c1 are closed, the concentrated water outlet valve v2 is opened for 2 seconds and the backwash water path r4 is connected, so that the pure water in the pure water path r2 flows into the raw water path r1, and the reverse osmosis filter element 13 is flushed. The raw water inlet valve v1 and the booster pump p1 are in the closed state, the concentrated water outlet valve v2 is in the open state, and because the raw water path r1 and the pure water path r2 in the reverse osmosis filter element 13 assembly are directly connected, the reverse osmosis filter assembly 1 is in a state of not inputting raw water but continuously outputting concentrated water, so that the water pressure in the raw water path r1 is in a low pressure state, and because the normal temperature water inlet valve and the flow control pump p2 are in the closed state, the reverse osmosis filter assembly 1 is in a state of not outputting pure water, so that the water pressure in the pure water path r2 is kept in a high pressure state, so that the water pressure in the pure water path r2 is greater than the water pressure in the raw water path r1, and the water pressure difference between the two reaches the pressure difference threshold, the pure water in the pure water path r2 flows into the raw water path r1 through the backwash water path r4, and the reverse osmosis filter element 13 is flushed, so that the large particles contained in the concentrated water are completely discharged out of the reverse osmosis filter assembly 1, and the purification effect is achieved.
[0078] In the embodiment, the time for opening the concentrated water outlet valve v2 in the backwash mode is 3-10 seconds, that is, all the large particles in the reverse osmosis filter assembly 1 can be completely discharged and purified.
[0079] Finally, it should be noted that: the above embodiments are only used to illustrate the technical solutions of the present application, and not to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that they can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement for part of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present application.
Claims
1. A water purification system, characterized by, include: Reverse osmosis filtration components; The raw water pipe (t1) is used to input raw water into the raw water inlet (h1) of the reverse osmosis filter assembly. The raw water pipe (t1) is equipped with a raw water inlet valve (v1) and a booster pump (p1). The concentrate pipe (t2) is used to discharge the concentrate output from the concentrate outlet (h3) of the reverse osmosis filter assembly. The concentrate pipe (t2) is equipped with a concentrate outlet valve (v2). The parallel-connected ambient temperature water pipe (t3) and hot water pipe (t4) are used to discharge the pure water output from the pure water outlet (h2) of the reverse osmosis filter component. The ambient temperature water pipe (t3) is equipped with an ambient temperature outlet valve (v3), and the hot water pipe (t4) is equipped with a flow control pump (p2) and a heating pipe (c1).
2. The water purification system of claim 1, wherein Also includes: The pre-filter (f1) is used to pre-filter the raw water in the raw water pipe (t1); The pure water pipe (t5) is used to output the pure water produced by the reverse osmosis filtration assembly; The post-filter (f2) is used to perform post-filtration of the pure water in the pure water pipe (t5) and to deliver the pure water after post-filtration to the ambient temperature water pipe (t3) and the hot water pipe (t4).
3. The water purification system of claim 2, wherein The pre-filter (f1) and the post-filter (f2) are combined to form a composite filter (f).
4. The water purification system of claim 2, wherein A pressure sensor (g) is installed on the pure water pipe (t5) to detect the pure water output pressure of the reverse osmosis filtration component.
5. The water purification system of claim 1, wherein The hot water pipe (t4) is equipped with a flow meter (c2) to detect the amount of hot water output by the hot water pipe (t4).
6. The water purification system according to any one of claims 1-5, characterized in that The reverse osmosis filtration assembly includes a filter container (1) having a raw water inlet (h1), a pure water inlet (h2), and a concentrate inlet (h3). The filter container (1) has a raw water passage (r1) connected to the raw water inlet (h1), a pure water passage (r2) connected to the pure water inlet (h2), and a concentrate passage (r3) connected to the concentrate inlet (h3). The raw water passage (r1) is provided with a reverse osmosis filter element (13), so that the raw water flows through the reverse osmosis filter element (13) to generate pure water that enters the pure water passage (r2), and flows through the raw water passage (r1) to generate concentrate that enters the concentrate passage (r3).
7. The water purification system of claim 6, wherein The volume of the pure water passage (r2) can vary and is directly proportional to the pure water pressure within the pure water passage (r2); The variable volume of the pure water passage (r2) is used to increase the amount of pure water stored in the pure water passage (r2) when the ambient temperature outlet valve (v3), the flow control pump (p2), and the heating tube (c1) are closed, and the raw water inlet valve (v1), the booster pump (p1), and the concentrated water outlet valve (v2) are open. The variable volume of the pure water passage (r2) is used to supply the pure water stored in the pure water passage (r2) to the hot water pipe (t4) when the raw water inlet valve (v1), the booster pump (p1), the concentrated water outlet valve (v2), and the ambient temperature outlet valve (v3) are closed, and the flow control pump (p2) and the heating pipe (c1) are open.
8. The water purification system of claim 6, wherein, The pure water passage (r2) and the raw water passage (r1) are connected with a backwashing water path (r4) which can be blocked or communicated, and when the backwashing water path (r4) is communicated, the pure water of the pure water passage (r2) is allowed to flow into the raw water passage (r1), and the reverse osmosis filter core (13) is washed.
9. The water purification system of claim 8, wherein, The backwashing water path (r4) is provided with a one-way valve (16) which limits the flow from the pure water passage (r2) to the raw water passage (r1), and the one-way valve (16) is provided with a pressure difference threshold value, and when the water pressure difference between the pure water passage (r2) and the raw water passage (r1) reaches the pressure difference threshold value, the one-way valve (16) is opened, and when the water pressure difference between the pure water passage (r2) and the raw water passage (r1) does not reach the pressure difference threshold value, the one-way valve (16) is closed; the one-way valve (16) is used to open when the raw water inlet valve (v1), the booster pump (p1), the normal temperature water outlet valve (v3), the flow control pump (p2) and the heating pipe (c1) are closed, and the concentrated water outlet valve (v2) is opened, so that the pure water of the pure water passage (r2) enters the raw water passage (r1) through the backwashing water path (r4), and the reverse osmosis filter core (13) is washed.
10. The water purification system of claim 6, wherein, The filter container (1) comprises a filter bottle (11) in which the reverse osmosis filter core (13) is arranged, and a filter core seat (12) arranged on the filter bottle (11); the raw water port (h1), the pure water port (h2) and the concentrated water port (h3) are arranged on the filter core seat (12); the filter core seat (12) is provided with a raw water pipeline (121), a pure water pipeline (122) and a concentrated water pipeline (123); The filter bottle (11) is provided with a center pipe (14) having a water passage hole (141), and the reverse osmosis filter core (13) is sleeved outside the center pipe (14), and the reverse osmosis filter core (13) and the inner wall of the filter bottle (11) have a gap (15); The raw water port (h1), the raw water pipeline (121) and the reverse osmosis filter core (13) are communicated, and form the raw water passage (r1); The pure water port (h2), the pure water pipeline (122) and the center pipe (14) are communicated, and form the pure water passage (r2); The concentrated water port (h3), the concentrated water pipeline (123) and the gap (15) are communicated, and form the concentrated water passage (r3).