A strontium-rich mineral spring raw water high-efficiency mineralization reactor

CN224768594UActive Publication Date: 2026-09-18HUIZHOU FULANG HEALTH CARE IND DEVELOPMENT CO LTD
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Patent Information

Application Number
CN202522265734.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-27
Publication Date
2026-09-18
Estimated Expiration
2035-10-27

AI Technical Summary

Technical Problem

[0005]本实用新型提供了一种富锶矿泉水原水高效矿化反应器,旨在解决了现有技术中提到的“由于高锶矿石的间隙大小存在差异,导致原水与矿石的接触不够充分,矿化效率较低”的问题

Benefits of technology

1.本实用新型中,通过驱动机构的设计,可驱动滤筒在卡环的内圈转动,通过滤筒的转动可以使其内部的高锶矿石与原水动态接触,从而可以打破缝隙中的固定流道,使水流被迫不断地与不同部位、不同间隙的矿石进行接触,使原水实现更充分、更均匀的矿化反应,从而可以使原水矿化更加高效。

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Abstract

The utility model relates to strontium-rich mineral water mineralization technical field discloses a kind of strontium-rich mineral water raw water high-efficiency mineralization reactor, including shell, the inner wall of shell is fixedly connected with reaction cylinder, the inner wall of reaction cylinder is fixedly connected with snap ring, the inner wall of the top of reaction cylinder is clamped with cylinder cover, the inner wall of cylinder cover is provided with positioning mechanism, the shell is fixedly connected with liquid outlet pipe and liquid inlet pipe from top to bottom;Filter cartridge, the outer wall of filter cartridge is fixedly connected with limit ring.In the utility model, through the design of driving mechanism, filter cartridge can be driven to rotate in the inner ring of snap ring, the high strontium ore in the inside of filter cartridge can be contacted with raw water dynamically by the rotation of filter cartridge, so as to break the fixed flow channel in gap, make water flow be forced to contact with ore of different parts, different gap constantly, make raw water realize more sufficient, more uniform mineralization reaction, so as to make raw water mineralization more efficient.
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Description

Technical Field

[0001] This utility model relates to the field of strontium-rich mineral water mineralization technology, and in particular to a high-efficiency mineralization reactor for strontium-rich mineral water raw water. Background Technology

[0002] Strontium-rich mineral water mineralization is a key step in improving the quality of mineral water. Its core is to use specific processes to reasonably increase the content of minerals such as strontium in the raw water in order to meet the standard requirements for strontium-rich mineral water.

[0003] The core working mechanism of a mineralization reactor is to create conditions for full contact between raw water and mineral materials, so that the beneficial components in the mineral materials, especially strontium, can be effectively dissolved into the raw water, thereby achieving the purpose of raw water mineralization.

[0004] Most mineralization reactors on the market currently use embedded high-strontium ore to bring raw water into contact with it for mineralization. However, due to the varying gap sizes in the high-strontium ore, when raw water flows within the reactor, the larger gaps cause the water flow rate to increase, resulting in most of the water continuously flowing through these fixed paths. This leads to insufficient utilization of the ore in other areas, resulting in low mineralization efficiency. Summary of the Invention

[0005] This invention provides a high-efficiency mineralization reactor for strontium-rich mineral water, which aims to solve the problem mentioned in the prior art that "due to the difference in the gap size of high-strontium ore, the contact between raw water and ore is not sufficient, resulting in low mineralization efficiency".

[0006] To achieve the above objectives, this utility model adopts the following technical solution: a high-efficiency mineralization reactor for strontium-rich mineral water raw water, comprising: The shell has a reaction cylinder fixedly connected to its inner wall, a retaining ring fixedly connected to the inner wall of the reaction cylinder, a cylinder cover snapped onto the top inner wall of the reaction cylinder, a positioning mechanism provided on the inner wall of the cylinder cover, and an outlet pipe and an inlet pipe fixedly connected to the shell from top to bottom. A filter cartridge, wherein a limit ring is fixedly connected to the outer wall of the filter cartridge; The driving mechanism includes a motor, which is fixedly connected to the top of the reaction cylinder. A rotating shaft is fixedly connected to the output end of the motor, and a gear is fixedly connected to the bottom end of the rotating shaft. An internal gear ring is rotatably connected to the inner wall of the reaction cylinder, and a protrusion is fixedly connected to the bottom of the internal gear ring. A through hole is provided on the protrusion. A handle is fixedly connected to the upper surface of the limiting ring. An L-rod is slidably connected through the inner wall of the handle, and a return spring is fixedly connected between the outer wall of the L-rod and the inner wall of the handle.

[0007] As a further description of the above technical solution: The positioning mechanism includes a slider that is slidably connected to the inner wall of the cylinder cover, and a rod is fixedly connected to the side wall of the slider.

[0008] As a further description of the above technical solution: The inner wall of the reaction cylinder is provided with an annular groove.

[0009] As a further description of the above technical solution: A limiting spring is fixedly connected between the side wall of the slider and the inner wall of the cylinder cover, and the insertion rod is located inside the limiting spring.

[0010] As a further description of the above technical solution: The insertion rod passes through and is slidably connected to the inner wall of the cylinder cover, with the end of the insertion rod away from the slider abutting against the inner wall of the annular groove.

[0011] As a further description of the above technical solution: The rotating shaft passes through and is rotatably connected to the top of the reaction cylinder, and the gear meshes with the internal gear ring.

[0012] As a further description of the above technical solution: The end of the L-bar furthest from the handle is inserted into the through hole.

[0013] As a further description of the above technical solution: The inner diameter of the retaining ring is equal to the outer diameter of the filter cartridge, the outer diameter of the limiting ring is equal to the outer diameter of the cartridge cover, and the lower surface of the limiting ring is in contact with the top of the retaining ring. As a further description of the above technical solution: The left ends of both the inlet pipe and the outlet pipe are fixedly connected to the outer wall of the reaction cylinder and communicate with the interior of the reaction cylinder.

[0014] As a further description of the above technical solution: The top of the housing is an open structure, and a cover plate is hinged inside the opening.

[0015] This utility model has the following beneficial effects: 1. In this utility model, the design of the drive mechanism can drive the filter cartridge to rotate in the inner ring of the retaining ring. The rotation of the filter cartridge can make the high strontium ore inside it come into dynamic contact with the raw water, thereby breaking the fixed flow channel in the gap and forcing the water flow to continuously come into contact with the ore in different parts and gaps, so that the raw water can achieve a more complete and uniform mineralization reaction, thereby making the raw water mineralization more efficient.

[0016] 2. In this utility model, the positioning mechanism allows for quick disassembly and assembly of the cylinder cover, enabling the filter cartridge to be disassembled and reassembled to replace the high-strontium ore inside, making subsequent maintenance of the reactor more efficient and convenient. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a cross-sectional structural diagram of the shell of this utility model; Figure 3 This is a schematic diagram of the overall structure of the filter cartridge of this utility model; Figure 4 This is a schematic diagram of the overall structure of the internal gear ring of this utility model; Figure 5 This is a partial cross-sectional structural diagram of the reaction cylinder of this utility model; Figure 6 This utility model Figure 2 A magnified structural diagram at point A.

[0018] Legend: 1. Shell; 2. Filter cartridge; 3. Drive mechanism; 31. Motor; 32. Rotating shaft; 33. Gear; 34. Internal gear ring; 35. Protrusion; 36. Through hole; 37. Handle; 38. L-rod; 39. Return spring; 4. Positioning mechanism; 41. Slider; 42. Insert rod; 43. Annular groove; 44. Limiting spring; 5. Reaction cylinder; 6. Snap ring; 7. Cylinder cover; 8. Liquid outlet pipe; 9. Liquid inlet pipe; 10. Limiting ring; 11. Cover plate. Detailed Implementation

[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0020] Reference Figure 1 - Figure 3 One embodiment of this utility model is a high-efficiency mineralization reactor for strontium-rich mineral water raw water, comprising a shell 1, a filter cylinder 2, and a drive mechanism 3. A reaction cylinder 5 is fixedly connected to the inner wall of the shell 1. The top of the shell 1 is an open structure, and a cover plate 11 is hinged inside the opening. The opening at the top of the shell 1 facilitates the maintenance of the reaction cylinder 5 in the later stage. The cover plate 11 can cover the opening at the top of the shell 1 when no maintenance is required. A retaining ring 6 is fixedly connected to the inner wall of the reaction cylinder 5. A cylinder cover 7 is snapped onto the inner wall at the top of the reaction cylinder 5. The cylinder cover 7 can cover the opening at the top of the reaction cylinder 5 to prevent impurities from entering the interior of the reaction cylinder 5. A positioning mechanism 4 is provided on the inner wall of the cylinder cover 7. An outlet pipe 8 and an inlet pipe 9 are fixedly connected to the shell 1 from top to bottom. The left ends of the inlet pipe 9 and the outlet pipe 8 are fixedly connected to the outer wall of the reaction cylinder 5 and communicate with the interior of the reaction cylinder 5. Raw water is injected into the interior of the reaction cylinder 5 through the inlet pipe 9. After mineralization, the raw water will be discharged from the reaction cylinder 5 through the outlet pipe 8. A limiting ring 10 is fixedly connected to the outer wall of the filter cartridge 2. The outer diameter of the limiting ring 10 is equal to the outer diameter of the cover 7. When the cover 7 is separated from the reaction cylinder 5, the limiting ring 10 can be moved out of the reaction cylinder 5 from the opening at the top of the reaction cylinder 5. The lower surface of the limiting ring 10 fits against the top of the retaining ring 6. The limiting ring 10 can limit the filter cartridge 2 axially. The inner diameter of the retaining ring 6 is equal to the outer diameter of the filter cartridge 2. The retaining ring 6 can limit the filter cartridge 2 radially. Reference Figure 3 , Figure 4 and Figure 6 The drive mechanism 3 includes a motor 31, which is fixedly connected to the top of the reaction cylinder 5. A rotating shaft 32 is fixedly connected to the output end of the motor 31, passing through and rotatably connected to the top of the reaction cylinder 5. A gear 33 is fixedly connected to the bottom end of the rotating shaft 32. Starting the motor 31 drives the rotating shaft 32 to rotate, which in turn drives the gear 33 to rotate synchronously. An internal gear ring 34 is rotatably connected to the inner wall of the reaction cylinder 5, meshing with the gear 33. As the gear 33 rotates, it drives the meshing internal gear ring 34 to rotate on the inner wall of the reaction cylinder 5. A protrusion 35 is fixedly connected to the bottom of the internal gear ring 34, and a through hole 36 is provided on the protrusion 35. As the internal gear ring 34 rotates, it drives the protrusion 35 to rotate. The filter cartridge 2 rotates around the central axis of the reaction cylinder 5. A handle 37 is fixedly connected to the upper surface of the limiting ring 10. An L-rod 38 is slidably connected through the inner wall of the handle 37. The end of the L-rod 38 away from the handle 37 is inserted into the through hole 36. While the protrusion 35 rotates around the central axis of the reaction cylinder 5, under the limiting action of the through hole 36, the protrusion 35 will push the L-rod 38, causing the L-rod 38 to push the handle 37. At this time, the handle 37 will push the limiting ring 10, causing the limiting ring 10 to drive the filter cartridge 2 to rotate on the inner wall of the retaining ring 6. A return spring 39 is fixedly connected between the outer wall of the L-rod 38 and the inner wall of the handle 37. The elasticity of the return spring 39 can keep the L-rod 38 in the insertion state with the through hole 36.

[0021] Reference Figure 5 - Figure 6The positioning mechanism 4 includes a slider 41, which is slidably connected to the inner wall of the cover 7. A rod 42 is fixedly connected to the side wall of the slider 41. By pushing the slider 41 to slide on the inner wall of the cover 7, the rod 42 can be moved out from the inside of the annular groove 43. The rod 42 passes through and is slidably connected to the inner wall of the cover 7. The inner wall of the reaction cylinder 5 is provided with an annular groove 43. The end of the rod 42 away from the slider 41 is attached to the inner wall of the annular groove 43. The rod 42 and the annular groove 43 can be used to limit the axial movement of the cover 7, thereby fixing the cover 7 axially inside the reaction cylinder 5. A limiting spring 44 is fixedly connected between the side wall of the slider 41 and the inner wall of the cover 7. The rod 42 is located inside the limiting spring 44. The elasticity of the limiting spring 44 can cause the slider 41 to drive the rod 42 to press against the inside of the annular groove 43.

[0022] Working principle: The interior of filter cylinder 2 is used to store high-strontium ore. Raw water is injected into the interior of reaction cylinder 5 through inlet pipe 9, gradually filling the area below retaining ring 6. At the same time, the raw water seeps into the interior of filter cylinder 2 through the holes on its surface. At this time, the high-strontium ore stored inside filter cylinder 2 can mineralize the raw water. As the raw water is continuously injected, the liquid level inside reaction cylinder 5 continues to rise. At this time, the mineralized raw water will gradually fill the area above retaining ring 6. When the liquid level reaches outlet pipe 8, the mineralized raw water will be discharged from reaction cylinder 5 through outlet pipe 8. This is how the raw water is mineralized.

[0023] During the mineralization process, the motor 31 drives the rotating shaft 32 to rotate. The rotating shaft 32 drives the gear 33 to rotate synchronously. The rotating gear 33 drives the internal gear ring 34, which meshes with it, to rotate on the inner wall of the reaction cylinder 5. As the internal gear ring 34 rotates, it drives the protrusion 35 to make a circular motion around the central axis of the reaction cylinder 5. At this time, under the limiting action of the through hole 36, the protrusion 35 pushes the L rod 38, which pushes the handle 37. The handle 37 then pushes the limiting ring 10, which drives the filter cylinder 2 to rotate on the inner wall of the retaining ring 6. The rotation of the filter cylinder 2 allows the high strontium ore inside to come into dynamic contact with the raw water, thereby breaking the fixed flow channel in the gap and enabling the raw water to achieve a more complete and uniform mineralization reaction, thus making the raw water mineralization more efficient.

[0024] When it is necessary to replace the high-strontium ore inside the filter cartridge 2, first rotate and open the cover plate 11, then push the slider 41 to slide on the inner wall of the cover 7 and stretch the limiting spring 44. At the same time, the slider 41 will drive the insertion rod 42 to move out from the inside of the annular groove 43, thereby releasing the limiting of the cover 7. Then, remove the cover 7 from the inside of the reaction cylinder 5, and push the L rod 38 to slide on the inner wall of the handle 37 and compress the reset spring 39 until the L rod 38 is pulled out from the inside of the through hole 36. Then, lift the handle 37 to remove the limiting ring 10, i.e., the filter cartridge 2, from the inside of the reaction cylinder 5 so that the high-strontium ore inside the filter cartridge 2 can be replaced.

[0025] After the high-strontium ore inside the filter cartridge 2 is replaced, push the L-rod 38 to slide it into the handle 37. Then, lift the handle 37 to insert the limiting ring 10 and the filter cartridge 2 into the reaction cylinder 5, so that the filter cartridge 2 is located in the inner ring of the retaining ring 6 and the bottom of the limiting ring 10 is in contact with the upper surface of the retaining ring 6. Rotate the handle 37 to align the L-rod 38 with the through hole 36, and then push the L-rod 38 to insert it into the through hole 36. At this time, the L-rod 38 can be used to axially limit the handle 37, thereby limiting the movement. The ring 10 is axially limited to the filter cartridge 2; then the slider 41 is pushed to make the insertion rod 42 slide into the inside of the cover 7, and the cover 7 is inserted into the opening at the top of the reaction cylinder 5. Then the slider 41 is released. At this time, the elasticity of the limiting spring 44 can drive the slider 41 to slide and reset on the inner wall of the cover 7. At this time, the slider 41 will drive the insertion rod 42 to insert into the inside of the annular groove 43. At this time, the insertion rod 42 and the annular groove 43 can be used to axially limit the cover 7. Then the cover plate 11 is rotated to close the top of the shell 1.

[0026] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A high-efficiency mineralization reactor for strontium-rich mineral water raw water, characterized in that: include: The shell (1) has a reaction cylinder (5) fixedly connected to its inner wall, a retaining ring (6) fixedly connected to its inner wall, a cylinder cover (7) snapped onto the top inner wall of the reaction cylinder (5), a positioning mechanism (4) provided on the inner wall of the cylinder cover (7), and an outlet pipe (8) and an inlet pipe (9) fixedly connected from top to bottom to the shell (1). A filter cartridge (2) is fixedly connected to the outer wall of the filter cartridge (2) with a limit ring (10); The driving mechanism (3) includes a motor (31), which is fixedly connected to the top of the reaction cylinder (5). The output end of the motor (31) is fixedly connected to a rotating shaft (32), and the bottom end of the rotating shaft (32) is fixedly connected to a gear (33). The inner wall of the reaction cylinder (5) is rotatably connected to an internal gear ring (34), and the bottom of the internal gear ring (34) is fixedly connected to a protrusion (35). A through hole (36) is provided on the protrusion (35). A handle (37) is fixedly connected to the upper surface of the limiting ring (10). An L rod (38) is slidably connected through the inner wall of the handle (37), and a return spring (39) is fixedly connected between the outer wall of the L rod (38) and the inner wall of the handle (37).

2. The high-efficiency mineralization reactor for strontium-rich mineral water as described in claim 1, characterized in that: The positioning mechanism (4) includes a slider (41), which is slidably connected to the inner wall of the cylinder cover (7), and a rod (42) is fixedly connected to the side wall of the slider (41).

3. The high-efficiency mineralization reactor for strontium-rich mineral water raw water according to claim 1, characterized in that: The inner wall of the reaction cylinder (5) is provided with an annular groove (43).

4. The high-efficiency mineralization reactor for strontium-rich mineral water raw water according to claim 2, characterized in that: A limiting spring (44) is fixedly connected between the side wall of the slider (41) and the inner wall of the cylinder cover (7), and the insertion rod (42) is located inside the limiting spring (44).

5. The high-efficiency mineralization reactor for strontium-rich mineral water as described in claim 2, characterized in that: The insert (42) passes through and is slidably connected to the inner wall of the cylinder cover (7), and the end of the insert (42) away from the slider (41) is attached to the inner wall of the annular groove (43).

6. The high-efficiency mineralization reactor for strontium-rich mineral water raw water according to claim 1, characterized in that: The rotating shaft (32) passes through and is rotatably connected to the top of the reaction cylinder (5), and the gear (33) meshes with the internal gear ring (34).

7. The high-efficiency mineralization reactor for strontium-rich mineral water raw water according to claim 1, characterized in that: The end of the L-bar (38) away from the handle (37) is inserted into the inside of the through hole (36).

8. The high-efficiency mineralization reactor for strontium-rich mineral water raw water according to claim 1, characterized in that: The inner diameter of the retaining ring (6) is equal to the outer diameter of the filter cartridge (2), the outer diameter of the limiting ring (10) is equal to the outer diameter of the cover (7), and the lower surface of the limiting ring (10) is in contact with the top of the retaining ring (6).

9. The high-efficiency mineralization reactor for strontium-rich mineral water raw water according to claim 1, characterized in that: The left ends of the inlet pipe (9) and the outlet pipe (8) are both fixedly connected to the outer wall of the reaction cylinder (5) and communicate with the interior of the reaction cylinder (5).

10. The high-efficiency mineralization reactor for strontium-rich mineral water raw water according to claim 1, characterized in that: The top of the housing (1) is an open structure, and a cover plate (11) is hinged inside the opening.