High-strontium natural mineral water purification system
Through the combination of filter screen and adsorbent, combined with the neutralization reaction of vitamin C, the problem of excessive nitrite in high-strontium natural mineral water is solved, and the effective reduction of nitrite and supplementation of vitamin C are achieved.
Patent Information
- Application Number
- CN202511083393.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-04
- Publication Date
- 2025-10-10
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The nitrite content in high-strontium natural mineral water exceeds the standard and cannot be drunk directly. Existing technology is difficult to effectively reduce its content.
A combination of a filter and an adsorbent is used. After the solid particles are filtered out through the filter, the adsorbent is used to adsorb nitrite, and then vitamin C is used to neutralize the unadsorbed nitrite to produce nitric oxide and water, further reducing the nitrite content.
Effectively reduce the nitrite content in mineral water to ensure drinking safety, while supplementing vitamin C and reducing the impact of gas emissions on the purification system.
Smart Images

Figure CN120757271A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of natural water impurity removal, and in particular to a high-strontium natural mineral water purification system. Background Art
[0002] Strontium is a silvery-white alkaline earth metal with a yellowish sheen. It is the second least abundant element among the alkaline earth metals, after beryllium. Strontium can be produced by electrolysis of molten strontium chloride. Strontium is a trace element found widely in soil and seawater, and has been shown to prevent arteriosclerosis and blood clots.
[0003] Some areas in northern my country have high-strontium natural mineral water, but the nitrite in the water source exceeds the national standard. Nitrite is very harmful to the human body. High doses of nitrite can cause esophageal cancer and gastric cancer, and can cause nitrite food poisoning. Therefore, this natural mineral water cannot be drunk directly. Summary of the Invention
[0004] In order to reduce the nitrite content in mineral water, the present application provides a high-strontium natural mineral water purification system.
[0005] The present application provides a high-strontium natural mineral water purification system that adopts the following technical solutions: A high-strontium natural mineral water purification system includes a reactor, wherein the reactor is provided with a liquid inlet pipe and a liquid outlet pipe, the liquid inlet pipe is installed with a filter assembly, the filter assembly includes a filter tube, a filter screen and an adsorbent, the filter tube is inserted into the liquid inlet pipe, the filter screen has two ends inserted into the filter tube in the thickness direction of the filter tube, the filter screen separates the liquid inlet pipe, the adsorbent is placed in the filter tube between the two filter screens, and the reactor is installed with a VC replenishment inlet.
[0006] By adopting the above technical solution, solid particles are filtered through a filter mesh, and then the nitrite in the mineral water is adsorbed by an adsorption element. However, adsorption can only remove a portion of the nitrite. By neutralizing the adsorbed mineral water with vitamin C, the unadsorbed nitrite can be neutralized, thereby further reducing the nitrite content in the mineral water.
[0007] Optionally, a pressure relief pipe is provided on the top of the reactor, and a one-way valve is provided on the pressure relief pipe, and the one-way valve limits the gas from entering the reactor.
[0008] Optionally, a baffle is provided in the reactor, and a gap between the baffle is provided at the connection between the pressure relief pipe and the reactor.
[0009] Optionally, an exhaust pipe is provided at the top of the liquid outlet pipe.
[0010] Optionally, an insertion rod is inserted into the exhaust pipe, and a plurality of bristles are fixed on one end of the insertion rod inserted into the liquid outlet pipe.
[0011] Optionally, a rotating rod is provided in the reactor, and a stirring blade is provided on the rotating rod.
[0012] Optionally, the liquid inlet pipe includes an output main pipe, a branch pipe and an input main pipe, the output main pipe is connected to the reactor, there are several branch pipes, and the several branch pipes are all connected to the output main pipe, the input main pipe is connected to the end of the branch pipe away from the output main pipe, all the branches are connected to the input main pipe at the end away from the output main pipe, and the input main pipe is connected to a water source at the end away from the branch pipe, there are several filter components, and the several filter components are respectively detachably installed on the several branch pipes, and the branch pipes are installed with an opening and closing valve, and the opening and closing valve is arranged at the end of the filter component facing the input main pipe.
[0013] Optionally, a reinforcing clamp is provided at the connection between the filter tube and the branch pipe, and the reinforcing clamp includes a base plate, a driving block and a clamping ring. The base plate is fixed to the branch pipe at the top of the filter tube, the driving block is rotatably set on the base plate, and the clamping ring is fixed on the driving block. When the filter tube is installed on the branch pipe, the base plate abuts against the top of the filter tube, the driving block is rotatably embedded in the base plate, and the clamping ring is clamped at the connection between the branch pipe and the filter tube.
[0014] Optionally, a pressing plate is provided at one end of the clamping ring away from the driving block, and the pressing plate is arranged in a direction away from the filter tube.
[0015] Optionally, the pressing plate is rotatably disposed on the clamping ring, and the pressing plate abuts against the filter screen by rotating to restrict the filter screen from separating from the filter tube.
[0016] In summary, this application includes at least one of the following beneficial technical effects: 1. The reactor is equipped with a VC replenishing inlet, on which a cover is hingedly provided. One end of the cover is hinged to the VC replenishing inlet, and the other end is detachably provided on the VC replenishing inlet by a bolt. The VC replenishing inlet is opened by rotating the cover, and vitamin C powder can be injected into the reactor through the VC replenishing inlet. Mineral water is introduced into the reactor from the liquid inlet pipe. When the mineral water passes through the filter, the filter blocks the particulate matter and debris in the mineral water. Then the mineral water passes through the adsorption component, which adsorbs part of the nitrite in the mineral water. Then the mineral water enters the reactor. After the mineral water dissolves the vitamin C powder, the vitamin C in the reactor is mixed with the mineral water. The remaining nitrite in the water reacts to produce nitric oxide and water, thereby neutralizing the remaining nitrite. In this embodiment, the amount of vitamin C added can be slightly excess to the amount required for the reaction of the remaining nitrite. The excess vitamin C can ensure the reaction of the nitrite and also supplement vitamin C in the mineral water. The solid particles are filtered through the filter, and then the nitrite in the mineral water is adsorbed by the adsorption element. However, adsorption can only remove a portion of the nitrite. The vitamin C neutralizes the adsorbed mineral water and can neutralize the unadsorbed nitrite, thereby further reducing the nitrite content in the mineral water. 2. Vitamin C reacts with nitrite to produce gas. The presence of gas will increase the pressure in the reactor and occupy a large amount of space in the reactor. When the pressure in the reactor increases, the gas will open the one-way pressure valve and be discharged from the reactor through the pressure relief pipe. 3. The baffle is set at the connection port where the pressure relief pipe enters the reactor through the gap of the support rod. When the gas is discharged, it is easy to carry water droplets. The water droplets carried out by the gas will affect the total amount of mineral water and the subsequent treatment of the exhaust gas. By setting the baffle, when the gas is discharged, the gas can first hit the baffle, thereby knocking off the water droplets in the gas, and the gas enters the pressure relief pipe from the circumference of the baffle and is discharged, thereby reducing the content of water droplets in the gas, ensuring the total amount of mineral water and reducing the complexity of the exhaust gas treatment. 4. Nitrite in the mineral water will produce gas after reacting with vitamin C in the reactor. A small amount of gas will form bubbles in the mineral water, which will be discharged together with the mineral water through the liquid outlet pipe. The setting of the bristles can block the bubbles, absorb the bubbles and puncture the bubbles. After the bubbles are punctured, the gas inside the bubbles is discharged through the exhaust pipe, thereby reducing the content of gas generated by the reaction of nitrite and vitamin C in the mineral water; 5. The setting of multiple branch pipes can divide mineral water into multiple parts and filter them separately to improve the filtration efficiency. After the filter assembly has been used for a period of time, the debris and solid particles blocked by the filter will cover the filter and block the branch pipe. At the same time, the nitrite adsorbed on the surface of the adsorbent will gradually reach the maximum adsorption value after long-term use, resulting in the adsorption capacity of the adsorbent decreasing until it fails. By turning off the corresponding branch pipe by the on-off switch, the corresponding branch pipe can be temporarily deactivated. After that, the filter assembly can be removed from the branch pipe to reduce the probability of mineral water leaking after the filter assembly is removed. After the filter assembly is removed, the filter net and the adsorbent are cleaned and the branch pipe is cleared of impurities. After the branch pipe is cleaned, a new filter assembly is replaced to ensure the filtration effect of the filter assembly. 6. The reinforcement clamp is used to clamp and reinforce the branch pipe and the filter pipe. The bottom plate in the reinforcement clamp can be used to connect the branch pipe and also plays a positioning role when the filter pipe is installed, so that the filter pipe can be aligned with the branch pipe, reducing the probability of mineral water leakage. At the same time, the bottom plate is set on the top of the branch pipe. When the branch pipe is removed after the filter pipe is removed, the bottom plate can reduce the obstruction of debris when the branch pipe is drained, facilitating the drainage of debris from the branch pipe. 7. By applying pressure to the pressing plate, the clamping ring can be driven to rotate, thereby driving the driving block to drive the filter tube to separate from the branch pipe, which facilitates the disassembly of the filter tube. The pressing plate is rotatably set on the clamping ring. By rotating the pressing plate, the pressing plate is abutted against the filter tube, reducing the probability of accidental touch causing the clamping ring to rotate. The pressing plate abuts against the filter screen by rotation, limiting the filter screen from separating from the filter tube. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic diagram of the overall structure of an embodiment of the present application.
[0018] Figure 2 It is a cross-sectional view of the overall structure of the embodiment of the present application.
[0019] Figure 3 yes Figure 2 Magnified view of part A in the middle.
[0020] Figure 4 yes Figure 2 Magnified view of part B in the middle.
[0021] Figure 5 It is a partial cross-sectional view from another perspective of the overall structure of the embodiment of the present application.
[0022] Figure 6 yes Figure 5 Magnified view of middle C.
[0023] In the figure, 1. reactor; 2. liquid inlet pipe; 21. output main pipe; 22. branch pipe; 23. input main pipe; 3. liquid outlet pipe; 4. filter assembly; 41. filter tube; 42. filter screen; 43. adsorbent; 5. VC supply inlet; 6. cover plate; 7. pressure relief pipe; 8. one-way valve; 9. baffle; 10. exhaust pipe; 11. plug rod; 12. brush; 13. rotating rod; 14. stirring blade; 15. power motor; 16. opening and closing valve; 17. reinforcement clamping part; 171. bottom plate; 172. drive block; 173. clamping ring; 18. pressing plate; 19. elastic sealing ring; 20. gripping part. DETAILED DESCRIPTION
[0024] The following is combined with Figure 1-6 The present application is further described with reference to the following specific examples: First of all, it should be noted that in the description of this application, if the terms "center", "up", "down", "left", "right", "vertical", "horizontal", "inside", "outside" and other directional words appear, the orientation or position relationship indicated is based on the orientation or position relationship shown in the accompanying drawings, which is only for the convenience of description, and does not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation of this application; in addition, if the terms "first", "second", "third" and other numerical quantifiers appear, they are only used for descriptive purposes and cannot be understood as indicating or implying relative importance. In addition, in this application, unless otherwise clearly specified and limited, if the terms "installed", "connected", and "connected" appear, they should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, an interference fit, a transition fit and other limited connection, or an integral connection; it can be directly connected or indirectly connected through an intermediate medium; therefore, for ordinary technicians in this field, the specific meanings of the above terms in this application can be understood according to the specific circumstances.
[0025] The present application embodiment discloses a high strontium natural mineral water purification system, referring to Figure 1 、 Figure 2 and Figure 3, including a reactor 1 mounted on the ground. The reactor 1 in this embodiment is a horizontally placed metal tank. A liquid inlet pipe 2 is connected and communicated with the middle of one end in the length direction of the reactor 1. A liquid outlet pipe 3 is connected and communicated with the other end near the bottom in the length direction of the reactor 1. A filter assembly 4 is installed on the liquid inlet pipe 2. The filter assembly 4 includes a filter tube 41, a filter screen 42 and an adsorbent 43. The filter tube 41 is inserted into the liquid inlet pipe 2. The filter screen 42 has two ends respectively inserted into the filter tube 41 in the thickness direction. The filter screen 42 separates The liquid inlet pipe 2 and the adsorption member 43 are placed in the filter pipe 41 between the two filter screens 42. The adsorption member 43 can be selected from molecular plug activated carbon, etc. In this embodiment, the adsorption member 43 is selected from activated carbon. The reactor 1 is equipped with a VC replenishing inlet 5. The VC replenishing inlet 5 is hingedly provided with a cover plate 6. One end of the cover plate 6 is hinged to the VC replenishing inlet 5, and the other end is detachably provided on the VC replenishing inlet 5 by a bolt. By rotating the cover plate 6 to open the VC replenishing inlet 5, vitamin C powder can be injected into the reactor 1 through the VC replenishing inlet 5, and mineral water is passed through the liquid inlet pipe 2. The mineral water enters the reactor 1. When the mineral water passes through the filter 42, the filter 42 blocks the particulate matter and debris in the mineral water. Then the mineral water passes through the adsorption element 43. The adsorption element 43 adsorbs part of the nitrite in the mineral water. Then the mineral water enters the reactor 1. After the mineral water dissolves the vitamin C powder, the vitamin C reacts with the remaining nitrite in the mineral water in the reactor 1 to produce nitric oxide and water, thereby neutralizing the remaining nitrite. After that, the purified mineral water is discharged from the liquid outlet pipe 3 and sent to the storage tank storage pool and other mineral water collection areas. In the embodiment, the amount of vitamin C added can be slightly more than the amount required for the reaction of the remaining nitrite. The excess vitamin C can ensure the reaction of the nitrite and can also supplement vitamin C in the mineral water. The solid particles are filtered through the filter 42, and then the nitrite in the mineral water is adsorbed by the adsorption element 43. However, adsorption can only remove a part of the nitrite. The adsorbed mineral water is neutralized by vitamin C, and the unadsorbed nitrite can be neutralized, thereby further reducing the nitrite content in the mineral water.
[0026] Reference Figure 1 and Figure 2, the top of the reactor 1 is connected and connected to a pressure relief pipe 7, and a one-way valve 8 is provided on the pressure relief pipe 7. The one-way valve 8 limits the reactor 1 from allowing gas to enter the reactor 1. In this embodiment, the one-way valve 8 is a one-way pressure valve. Vitamin C reacts with nitrite to produce gas. The presence of gas will increase the pressure in the reactor 1 and occupy a large amount of space in the reactor 1. When the pressure in the reactor 1 increases, the gas will open the one-way pressure valve and be discharged from the reactor 1 through the pressure relief pipe 7. In this embodiment, the pressure relief pipe 7 is connected to the tail gas treatment device at one end away from the reactor 1, which is used to treat the gas produced by the reaction. Carry out harmless treatment; a baffle 9 is installed in the reactor 1, and the baffle 9 is arranged at the connection port where the pressure relief pipe 7 enters the reactor 1 through the gap of the support rod. When the gas is discharged, it is easy to carry water droplets. The water droplets are carried out by the gas, which will affect the total amount of mineral water and the subsequent treatment of the exhaust gas. By setting the baffle 9, when the gas is discharged, the gas can first hit the baffle 9, thereby knocking off the water droplets in the gas, and making the gas enter the pressure relief pipe 7 from the circumference of the baffle 9 and be discharged, thereby reducing the content of water droplets in the gas, which not only ensures the total amount of mineral water, but also reduces the complexity of the exhaust gas treatment.
[0027] Reference Figure 1 、 Figure 2 and Figure 4 , an exhaust pipe 10 is provided on the top of the liquid outlet pipe 3, and a rod 11 is inserted in the exhaust pipe 10. A number of bristles 12 are fixed on one end of the rod 11 inserted into the liquid outlet pipe 3. The rod 11 is installed in the exhaust pipe 10 away from the end of the liquid outlet pipe 3 through a ring sleeve. A check valve is connected to the ring sleeve. The nitrite in the mineral water will produce gas after reacting with vitamin C in the reactor 1. A small amount of gas will form bubbles in the mineral water, which will be discharged together with the mineral water from the liquid outlet pipe 3. The setting of the bristles 12 can block the bubbles, absorb the bubbles and puncture the bubbles. After the bubbles are punctured, the gas in the bubbles is discharged through the exhaust pipe 10, thereby reducing the content of the gas generated by the reaction of nitrite and vitamin C in the mineral water. The setting of the check valve can reduce the probability of external debris entering the liquid outlet pipe 3, and can also limit the probability of exhaust gas backflow.
[0028] Reference Figure 1 and Figure 2 A rotating rod 13 is provided in the reactor 1, and a stirring blade 14 is provided on the rotating rod 13. The rotating rod 13 is driven to rotate on the reactor 1 by a power member. In this embodiment, the power member is a power motor 15. The rotating rod 13 is driven by the motor to drive the rotating rod 13, so that the rotating rod 13 drives the stirring blade 14 in the reactor 1 to rotate, thereby accelerating the dissolution speed of vitamin C powder in mineral water, thereby improving the efficiency of the reaction between vitamin C and nitrite. At the same time, the stirring of the stirring blade 14 can also puncture the bubbles in the mineral water and reduce the gas content in the water.
[0029] Reference Figure 1 、 Figure 2 and Figure 3 The liquid inlet pipe 2 includes an output main pipe 21, a branch pipe 22 and an input main pipe 23. The output main pipe 21 is connected to and communicated with the reactor 1. There are several branch pipes 22. In this embodiment, three branch pipes 22 are provided. Several branch pipes 22 are connected to and communicated with the output main pipe 21. The input main pipe 23 is connected to the end of the branch pipe 22 away from the output main pipe 21. The ends of the branch pipes 22 away from the output main pipe 21 are all connected to the input main pipe 23. The end of the input main pipe 23 away from the branch pipe 22 is connected to the water source. There are several filter components 4. In the embodiment, three groups of filter components 4 are provided. The three groups of filter components 4 are detachably mounted on three branch pipes 22. The branch pipes 22 are provided with an opening and closing valve 16. The opening and closing valve 16 is provided at one end of the filter component 4 facing the input main pipe 23. By providing multiple branch pipes 22, the mineral water can be divided into multiple parts for filtering respectively, thereby improving the filtering efficiency. After the filter component 4 has been used for a period of time, the debris and solid particles blocked by the filter screen 42 will cover the filter screen 42, thereby blocking the branch pipe 22 and adsorbing the water. After long-term use, the nitrite adsorbed on the surface of the component 43 will gradually reach the maximum adsorption capacity, thereby causing the adsorption capacity of the adsorption component 43 to decrease until it fails. The corresponding branch pipe 22 can be temporarily deactivated by closing the corresponding branch pipe 22 through the on-off switch. Then, the filter component 4 is removed from the branch pipe 22 to reduce the probability of mineral water leaking out after the filter component 4 is removed. After the filter component 4 is removed, the filter screen 42 is cleaned and the adsorption component 43 is replaced, and the branch pipe 22 is cleaned. After the branch pipe 22 is cleaned, a new filter component 4 is replaced to ensure the filtering effect of the filter component 4. Elastic sealing rings 19 are provided at both ends of the filter tube 41 in the thickness direction. The sealing rings are made of elastic rubber. When the filter tube 41 is installed in the branch pipe 22, the elastic sealing ring 19 is squeezed to seal the connection between the branch pipe 22 and the filter tube 41 to reduce the probability of water leakage. The filter tube 41 is also embedded with an elastic sealing ring 19 at the place where the filter screen 42 is inserted, thereby reducing the probability of water leakage at the installation place of the filter screen 42.
[0030] Reference Figure 5 and Figure 6, a reinforcement clamping piece 17 is provided at the connection between the filter tube 41 and the branch pipe 22. The reinforcement clamping piece 17 includes a bottom plate 171, a driving block 172 and a clamping ring 173. The bottom plate 171 is fixed to the branch pipe 22 at the top of the filter tube 41. Since the installation of the device causes the branch pipe 22 to be cut off, the setting of the bottom plate 171 can be used to connect the branch pipe 22. It can also play a positioning role when the filter tube 41 is installed, so that the filter tube 41 can be aligned with the branch pipe 22 to reduce the probability of mineral water leakage. At the same time, the bottom plate 171 is set at the top of the branch pipe 22. After the filter tube 41 is disassembled, the branch pipe 22 can reduce the obstruction of the bottom plate 171 to debris when the branch pipe 22 is discharged, which facilitates the discharge of debris from the branch pipe 22. One end in the length direction is rotatably set on the bottom plate 171, and an embedding groove is opened on the bottom plate 171. The driving block 172 is embedded in the embedding groove or extends out of the embedding groove by rotation. The clamping ring 173 is fixed to the driving block 172 and rotatably set at one end of the bottom plate 171. When the filter tube 41 is installed on the branch pipe 22, the bottom plate 171 abuts against the top of the filter tube 41, and the filter tube 41 abuts against the driving block 172 and rotates to make the driving block 172 embedded in the embedding groove. At this time, the clamping ring 173 clamps the connection between the filter tube 41 and the branch pipe 22, clamps and reinforces the branch pipe 22 and the filter tube 41, and can also drive the filter tube 41 to align with the branch pipe 22, thereby reducing the probability of mineral water leakage due to installation deviation of the filter tube 41.
[0031] Reference Figure 5 and Figure 6 The clamping ring 173 is provided with a pressing plate 18 at one end away from the driving block 172. The pressing plate 18 is arranged in a direction away from the filter tube 41. By applying pressure to the pressing plate 18, the clamping ring 173 can be driven to rotate, thereby driving the driving block 172 to drive the filter tube 41 out of the branch pipe 22, thereby facilitating the removal of the filter tube 41. The pressing plate 18 is rotatably arranged on the clamping ring 173. By rotating the pressing plate 18, the pressing plate 18 is abutted against the filter tube 41, reducing the risk of accidental touch. The probability of the clamping ring 173 rotating, the pressing plate 18 abuts against the filter screen 42 by rotating, limiting the filter screen 42 from separating from the filter tube 41, and a gripping portion 20 is fixed on the filter screen 42. The gripping portion 20 is a plate body fixed on the filter screen 42. The setting of the gripping portion 20 facilitates the extraction and installation of the filter screen 42 from the filter tube 41. A card slot is opened on the corresponding pressing fastener on the gripping portion 20. After the pressing plate 18 rotates, it is clamped in the card slot to limit the filter screen 42 from falling off the filter tube 41.
[0032] The implementation principle of the embodiment of the present application is as follows: the reactor 1 is set up on a flat ground, and filter components 4 are installed on multiple branch pipes 22, connected to a natural mineral water source through the liquid inlet pipe 2, and connected to the mineral water collection area through the liquid outlet pipe 3, and the natural mineral water is passed into the reactor 1 through the liquid inlet pipe 2. During this period, when the natural mineral water passes through the filter screen 42, the solid particles and debris in the natural mineral water will be blocked by the filter screen 42, and part of the nitrite in the natural mineral water will be adsorbed and filtered by the adsorbent 43. At the same time, the VC supplement inlet 5 is opened to supplement the vitamin C powder in the reactor 1. In this embodiment, a timed and quantitative automatic dosing device can be set at the VC supplement inlet 5, and a flow meter is installed on the output main pipe 21 or the input main pipe 23 of the liquid inlet pipe 2. The computer processing end receives the value of the flow meter and feeds it back to the automatic dosing device to control the automatic dosing. The device is used to add and replenish vitamin C powder; after the vitamin C powder is added, the power motor 15 drives the rotating rod 13 to rotate, and the rotating rod 13 drives the stirring blade 14 to stir the mineral water to accelerate the dissolution of the vitamin C powder. After the vitamin C powder is dissolved, it reacts with the remaining nitrite in the mineral water to neutralize the remaining nitrite and is then sent to the mineral water collection area through the liquid outlet pipe 3 for storage and packaging and other subsequent processes to complete the purification of the mineral water. When the mineral water is transported in the liquid outlet pipe 3, it passes through the brush bristles 12, and the bubbles in the mineral water will be adhered to and punctured by the brush bristles 12, and the gas in the bubbles is discharged through the exhaust pipe 10; when the filter component 4 needs to be replaced after being used for a long time, the corresponding branch pipe 22 is cut off by the opening and closing valve 16, and then the filter component 4 is replaced. After the replacement is completed, the opening and closing valve 16 is opened to continue filtering the mineral water.
[0033] It should be noted that the above embodiments are only used to illustrate the present application and are not intended to limit the technical solutions described in the present application. Although this specification has described the present application in detail with reference to the above embodiments, ordinary technicians in this field should understand that technicians in the relevant technical field can still modify or replace the present application with equivalents, and all technical solutions and improvements that do not depart from the spirit and scope of the present application should be included in the scope of the claims of the present application.
Claims
1. A high-strontium natural mineral water purification system, comprising a reactor (1), wherein the reactor (1) is provided with a liquid inlet pipe (2) and a liquid outlet pipe (3), characterized in that: A filter assembly (4) is installed on the liquid inlet pipe (2), and the filter assembly (4) includes a filter pipe (41), a filter screen (42) and an adsorption member (43). The filter pipe (41) is inserted into the liquid inlet pipe (2), and the filter screen (42) has two inserted into the filter pipe (41) at both ends in the thickness direction of the filter pipe (41). The filter screen (42) separates the liquid inlet pipe (2), and the adsorption member (43) is placed in the filter pipe (41) between the two filter screens (42). A VC replenishment inlet (5) is installed on the reactor (1).
2. The high-strontium natural mineral water purification system according to claim 1, characterized in that: A pressure relief pipe (7) is provided on the top of the reactor (1), and a one-way valve (8) is provided on the pressure relief pipe (7). The one-way valve (8) limits the reactor (1) from allowing gas to enter the reactor (1).
3. The high-strontium natural mineral water purification system according to claim 2, characterized in that: A baffle (9) is provided in the reactor (1), and a gap in the baffle (9) is provided at the connection between the pressure relief pipe (7) and the reactor (1).
4. The high-strontium natural mineral water purification system according to claim 1, characterized in that: An exhaust pipe (10) is provided at the top of the liquid outlet pipe (3).
5. The high-strontium natural mineral water purification system according to claim 4, characterized in that: An insertion rod (11) is inserted into the exhaust pipe (10), and a plurality of bristles (12) are fixed to one end of the insertion rod (11) inserted into the liquid outlet pipe (3).
6. The high-strontium natural mineral water purification system according to claim 1, characterized in that: A rotating rod (13) is provided in the reactor (1), and a stirring blade (14) is provided on the rotating rod (13).
7. The high-strontium natural mineral water purification system according to claim 1, characterized in that: The liquid inlet pipe (2) comprises an output main pipe (21), a branch pipe (22) and an input main pipe (23). The output main pipe (21) is connected to the reactor (1). There are a plurality of branch pipes (22), and the plurality of branch pipes (22) are connected to the output main pipe (21). The input main pipe (23) is connected to one end of the branch pipe (22) away from the output main pipe (21). The ends of all the branch pipes (22) away from the output main pipe (21) are connected to the input main pipe (23). The end of the input main pipe (23) away from the branch pipe (22) is connected to a water source. There are a plurality of filter assemblies (4), and the plurality of filter assemblies (4) are detachably mounted on the plurality of branch pipes (22). An opening and closing valve (16) is mounted on the branch pipe (22), and the opening and closing valve (16) is arranged at one end of the filter assembly (4) facing the input main pipe (23).
8. The high-strontium natural mineral water purification system according to claim 7, characterized in that: A reinforcing clamping member (17) is provided at the connection between the filter tube (41) and the branch tube (22). The reinforcing clamping member (17) comprises a bottom plate (171), a driving block (172) and a clamping ring (173). The bottom plate (171) is fixed to the branch tube (22) at the top of the filter tube (41). The driving block (172) is rotatably arranged on the bottom plate (171). The clamping ring (173) is fixed on the driving block (172). When the filter tube (41) is installed on the branch tube (22), the bottom plate (171) abuts against the top of the filter tube (41), the driving block (172) is rotatably embedded in the bottom plate (171), and the clamping ring (173) is clamped at the connection between the branch tube (22) and the filter tube (41).
9. The high-strontium natural mineral water purification system according to claim 8, characterized in that: A pressing plate (18) is provided at one end of the clamping ring (173) away from the driving block (172), and the pressing plate (18) is arranged in a direction away from the filter tube (41).
10. The high-strontium natural mineral water purification system according to claim 9, characterized in that: The pressing plate (18) is rotatably disposed on the clamping ring (173), and the pressing plate (18) abuts against the filter screen (42) by rotating, thereby restricting the filter screen (42) from separating from the filter tube (41).