Water treatment equipment for oral diagnosis and treatment
By using multiple sets of transition pipes and U-shaped pipes connected to the purification unit in the dental treatment water equipment, combined with filtration equipment and detection system, the purification path is optimized, solving the problem of excessively long purification process, improving purification efficiency and extending equipment life.
Patent Information
- Application Number
- CN202511492932.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-20
- Publication Date
- 2025-12-12
AI Technical Summary
Existing dental treatment water equipment suffers from problems such as excessively long purification processes, leading to equipment wear and tear and low purification efficiency.
The purification unit, which uses multiple sets of parallel transition pipes and U-shaped pipes connected together, combined with filtration equipment and detection system, controls the water flow direction through the control system to achieve multi-stage purification and detection, and optimize the purification path.
It improves water purification efficiency, reduces unnecessary waste of purification resources, extends equipment lifespan, and lowers costs.
Smart Images

Figure CN121107499A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of medical water purification, in particular to a water treatment equipment for oral diagnosis and treatment. BACKGROUND
[0002] The water treatment equipment for oral diagnosis and treatment is used for purifying water for oral diagnosis and treatment to ensure that the water quality meets the medical standards.
[0003] The existing water equipment for oral diagnosis and treatment mostly adopts single membrane method (RO + sterilization device) which can remove 99% of the pollutants and bacteria in water. The pretreatment system can remove particulate matter, iron, manganese and the like in raw water, and is equipped with a double-wavelength ultraviolet digestion instrument and a chemical disinfection device to ensure the water quality. In the actual treatment process, no matter how polluted the water is, the treatment process and steps are consistent. In order to avoid the situation that the water purification is not sufficient, the purification pipeline is generally set to be long, so that the water purification process is long. In the actual purification process, the diagnosis and treatment water that has been purified and qualified still needs to pass through the subsequent purification steps before being introduced into the oral diagnosis and treatment room, which causes unnecessary damage to the purification equipment and affects the purification efficiency of the water. SUMMARY
[0004] The technical problem of the present application is to provide a water treatment equipment for oral diagnosis and treatment to improve the purification efficiency of water and reduce the damage to the purification equipment itself, and improve the service life of the equipment.
[0005] To achieve the above-mentioned purpose, the present application provides the following technical scheme: a water treatment equipment for oral diagnosis and treatment, comprising a water treatment box, two ends of the water treatment box are respectively fixedly provided with an inlet pipe and an outlet pipe, the inlet pipe and the outlet pipe are connected through a purification pipe group, and the purification pipe group comprises: a main conveying unit, the main conveying unit is directly connected between the inlet pipe and the outlet pipe, and diagnosis and treatment water can flow from the inlet pipe to the outlet pipe through the main conveying unit; a purification unit, the purification unit is provided with two groups, and the two groups of purification units are arranged on the two sides of the main conveying unit, the purification unit comprises a plurality of transition pipes, the plurality of transition pipes are arranged in parallel and equidistantly distributed, adjacent transition pipes are connected through U-shaped pipes, a confluence assembly is arranged between the U-shaped pipe and the main conveying unit, and a filter device is arranged at the upper end and the lower end inside each transition pipe; a control system is arranged in the water treatment box, and the control system can control the flow direction of the diagnosis and treatment water.
[0006] As a further scheme of the present application, the main conveying unit comprises a main connecting pipe, one end of the main connecting pipe is fixedly provided with an import ball, the other end is fixedly provided with an export ball, the lower end of the import pipe is fixedly connected with the import ball, the lower end of the export ball is fixedly connected with the export pipe, and the two ends of the main connecting pipe are fixedly provided with first control valves.
[0007] As a further scheme of the present application, the U-shaped pipe can connect multiple groups of transition pipes in series, one group of U-shaped pipes close to the import pipe is fixedly connected with the import ball through a side connecting pipe, and one group of U-shaped pipes close to the export pipe is fixedly connected with the export ball through a side connecting pipe, and the side connecting pipes are fixedly provided with second control valves.
[0008] As a further scheme of the present application, the main connecting pipe is fixedly connected with the other end of the flow converging pipe, the other end of the flow converging pipe is provided with a third control valve, and the flow converging pipe is connected with the middle position of the horizontal branch pipe.
[0009] As a further scheme of the present application, the filter device comprises a rotating member, the rotating member is an oval ball and is rotatably connected in the transition pipe, upper and lower sides of the rotating member are respectively provided with upper and lower filter members, the upper and lower filter members are fixedly connected with the inner wall of the transition pipe, and middle filter members are arranged at the gap positions between the upper and lower filter members and the inner wall of the transition pipe on both sides of the rotating member.
[0010] As a further scheme of the present application, the transition pipe is fixedly provided with side detection members at positions corresponding to the filter devices, the side detection members can detect impurities in water, and the transition pipe is provided with water seepage holes at positions corresponding to the side detection members, and the water for diagnosis and treatment can flow into the side detection members through the liquid accumulation grooves and the water seepage holes.
[0011] As a further scheme of the present application, the transition pipe is fixedly provided with a double-wavelength ultraviolet digester at a position corresponding to the filter devices, the middle filter member is arranged in a honeycomb type filter hole, when the liquid accumulation groove of the rotating member rotates to the upper and lower sides, the rotating member extrudes the middle filter member, so that the honeycomb type filter hole shrinks, and when the liquid accumulation groove of the rotating member rotates to the horizontal sides, the edge of the rotating member is away from the middle filter member, so that the honeycomb type filter hole expands.
[0012] As a further embodiment of the present invention, mounting plates are fixedly installed at both the upper and lower ends of the transition tube, and limit plates are also provided at both ends of the U-shaped tube. The limit plates and the mounting plates can be fixedly connected by bolts.
[0013] As a further embodiment of the present invention, a fourth control valve is fixedly installed on both the inlet pipe and the outlet pipe, and a water quality alarm device is provided inside the outlet ball and the inlet ball. The water quality alarm device can trigger an alarm when the water quality exceeds the standard.
[0014] As a further embodiment of the present invention, the control system includes a suction pump, an information processing module, and a control motherboard. The control motherboard is capable of controlling the opening and closing of a first control valve, a second control valve, a third control valve, and a fourth control valve. The information processing module is capable of receiving and analyzing the detection information of the side detection component. The suction pump is fixedly installed at the end of the outlet pipe.
[0015] Compared with the prior art, the beneficial effects of the present invention are: In this invention, water enters the water treatment tank through an inlet pipe, then enters the purification unit through the inlet pipe. The water then flows into multiple transition pipes within the purification unit, where filtration equipment purifies the water. Each filtration unit tests the water before purification; if the water passes the test, it flows through a manifold into the main delivery unit. The purified water then flows directly through the main delivery unit into the outlet pipe, thus shortening the purification path, simplifying the purification process, improving purification efficiency, and reducing unnecessary waste of purification resources.
[0016] In this invention, multiple sets of transition pipes are connected in parallel to form a multi-stage water purification device. The more sets of transition pipes the water enters, the higher the degree of purification. When the purification degree is the highest, the water enters the purification unit on one side through the inlet pipe. After the water completely passes through this purification unit, it enters the main conveying unit and moves away from the inlet pipe. Then it flows into the purification unit on the other side. After the water completes its flow through this purification unit, it enters the end of the main conveying unit near the inlet pipe and finally flows through the main conveying unit to the outlet pipe and is discharged. Attached Figure Description
[0017] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0018] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a cross-sectional view of the structure of the present invention; Figure 3 This is a schematic diagram of the internal structure of the water treatment tank of the present invention; Figure 4 This is a schematic diagram of the transition tube in this invention; Figure 5 This is a cross-sectional view of the transition tube in the present invention. Figure 1 ; Figure 6 This is a cross-sectional view of the transition tube in the present invention. Figure 2 ; Figure 7 This is a schematic diagram of the transition tube installation structure in this invention; Figure 8 This is a schematic diagram of the installation structure of the main connecting pipe in this invention; Figure 9 This is a schematic diagram of the filter structure in this invention; Figure 10 This is a cross-sectional view of the filtering structure in this invention.
[0019] In the attached diagram, the components represented by each number are as follows: 1. Water treatment tank; 2. Inlet pipe; 3. Outlet pipe; 4. Inlet ball; 5. Outlet ball; 6. Transition pipe; 601. Side inspection component; 602. Mounting plate; 7. U-shaped pipe; 8. Horizontal branch pipe; 9. Main connecting pipe; 10. Side connecting pipe; 11. Manifold; 12. Upper filter component; 13. Lower filter component; 14. Rotating component; 15. Liquid collection tank; 16. Intermediate filter component; 17. Seepage hole. Detailed Implementation
[0020] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0021] Please see Figures 1-10 This invention provides a technical solution: a water treatment device for oral diagnosis and treatment, comprising a water treatment tank 1, with an inlet pipe 2 and an outlet pipe 3 fixedly installed at both ends of the water treatment tank 1, and the outlet pipe 3 and the inlet pipe 2 connected by a purification pipe assembly, the purification pipe assembly comprising: The main delivery unit is directly connected between the inlet tube 2 and the outlet tube 3, allowing the diagnostic water to flow from the inlet tube 2 to the outlet tube 3 through the main delivery unit. The purification unit consists of two sets, which are located on both sides of the main delivery unit. The purification unit includes multiple sets of transition pipes 6, which are arranged in parallel and equidistantly. Adjacent transition pipes 6 are connected by U-shaped pipes 7. A flow-combining component is provided between the U-shaped pipes 7 and the main delivery unit. Filter devices are provided at both the upper and lower ends of the transition pipes 6. The filter devices are capable of testing the medical water. The water treatment tank 1 is equipped with a control system that can control the flow of medical water.
[0022] During operation, water enters the water treatment tank 1 through the inlet pipe 2, and then enters the purification unit through the inlet pipe 2. The water then enters multiple sets of transition pipes 6 within the purification unit, where the filtration equipment purifies the water. Each set of filtration equipment tests the water before purification. After passing the test, the water enters the main conveying unit through the confluence assembly. The purified water then directly enters the outlet pipe 3 through the main conveying unit, thereby shortening the water purification path, simplifying the water purification process, improving the water purification efficiency, and reducing unnecessary waste of purification resources. In this invention, multiple sets of transition pipes 6 are connected in parallel to form a multi-stage water purification device. The more sets of transition pipes 6 water enters, the higher the purification level. At the highest purification level, water enters one side of the purification unit through the inlet pipe 2. After completely passing through this purification unit, the water enters the main conveying unit, moving away from the inlet pipe 2, and then flows into the other side of the purification unit. After completing its flow through this unit, the water enters the main conveying unit near the inlet pipe 2, and finally flows through the main conveying unit to the outlet pipe 3 for discharge. The entire set of transition pipes 6 of the two purification units serves as the water purification system, enabling the purification of highly polluted water. In water purification, the more transition pipes 6 the water flows through during the actual purification process, and the greater the purification intensity. For low-pollution water bodies, based on the actual test results, after the water body reaches the purification standard, the water body is prevented from continuing to flow to subsequent transition pipes 6. Instead, it flows directly from the main delivery unit to the outlet pipe 3 through the manifold assembly. This avoids the filtration equipment in subsequent transition pipes 6 from ineffectively processing the already purified water body. The purification path length can be freely adjusted according to the purification effect to reduce purification efficiency and avoid ineffective damage to filtration equipment (permeable membranes, chemical agents, etc.), thereby increasing the service life of the purification equipment and reducing costs.
[0023] As a further embodiment of the present invention, the main conveying unit includes a main connecting pipe 9, one end of which is fixedly installed with an inlet ball 4 and the other end of which is fixedly installed with an outlet ball 5. The lower end of the inlet pipe 2 is fixedly connected to the inlet ball 4, and the lower end of the outlet ball 5 is fixedly connected to the outlet pipe 3. Both ends of the main connecting pipe 9 are fixedly installed with a first control valve.
[0024] During operation, water enters the inlet ball 4 through the inlet pipe 2. When the first control valve is opened, the water in the inlet ball 4 flows into the outlet ball 5 through the main connecting pipe 9, and then enters the outlet pipe 3 through the outlet ball 5. When the first control valves at both ends of the main connecting pipe 9 are closed, the water in the inlet ball 4 enters the purification unit.
[0025] As a further embodiment of the present invention, the U-shaped tube 7 can connect multiple sets of transition tubes 6 in series. The set of U-shaped tubes 7 near the inlet tube 2 is fixedly connected to the inlet ball 4 through the side connecting tube 10, and the set of U-shaped tubes 7 near the outlet tube 3 is fixedly connected to the outlet ball 5 through the side connecting tube 10. A second control valve is fixedly installed on each of the side connecting tubes 10.
[0026] During operation, when the first control valve is closed, the second control valve is opened, and the water in the ball 4 enters the U-shaped pipe 7 through the side connecting pipe 10, and then enters the transition pipe 6 through the U-shaped pipe 7.
[0027] As a further embodiment of the present invention, the manifold assembly includes a horizontal branch pipe 8 and a manifold pipe 11. The horizontal branch pipe 8 is connected between the U-shaped pipes 7 symmetrically located on both sides of the main connecting pipe 9. A second control valve is provided at the connection points of the horizontal branch pipe 8 and the U-shaped pipes 7. The middle position of the horizontal branch pipe 8 is connected to one end of the manifold pipe 11. The other end of the manifold pipe 11 away from the horizontal branch pipe 8 is fixedly connected to the main connecting pipe 9. A third control valve is provided at the end of the manifold pipe 11 near the horizontal branch pipe 8.
[0028] During operation, after the filtration device in this invention detects that the water is qualified, it opens the second control valve, allowing the water to pass through the transverse branch pipe 8 on one side of the subsequent U-shaped pipe 7. Then, it opens the third control valve, allowing the water to enter the main connecting pipe 9 through the manifold 11 on the transverse branch pipe 8. This allows the water to enter the outlet ball 5 along with the main connecting pipe 9, thereby quickly exporting the purified water from the water treatment tank 1.
[0029] As a further embodiment of the present invention, the filtration device includes a rotating component 14, which is an ellipsoidal sphere and rotatably connected inside the transition tube 6. An upper filter element 12 and a lower filter element 13 are respectively provided on the upper and lower sides of the rotating component 14. Both the upper filter element 12 and the lower filter element 13 are fixedly connected to the inner wall of the transition tube 6. An intermediate filter element 16 is provided at the gap between the rotating component 14 and the inner wall of the transition tube 6. The intermediate filter element 16 is located between the upper filter element 12 and the lower filter element 13. A liquid accumulation groove 15 is symmetrically opened on the rotating component 14. An empty groove is provided in the middle position of the upper filter element 12 and the lower filter element 13.
[0030] During operation, the filtration device of this invention has two states: purification and detection. The rotating component 14 rotates continuously under the action of the motor. In the detection state, the rotating component 14 rotates until the two sets of liquid collection tanks 15 are on the upper and lower sides. After the water enters the transition pipe 6, some of the water accumulates in the liquid collection tanks 15. The water in the liquid collection tanks 15 enters the side detection component 601 through the seepage hole 17. The water is detected by the water detection device inside the side detection component 601. At this time, the rotating component 14 squeezes the intermediate filter component 16, causing the honeycomb filter of the intermediate filter component 16 to shrink and restrict the passage of water. In the purification state, the two sets of liquid collection tanks 15 of the rotating component 14 rotate closer to the intermediate filter component 16. The squeezing effect on the intermediate filter component 16 disappears, causing the honeycomb filter holes to expand. The water passes through the upper filter component 12, the intermediate filter component 16 and the lower filter component 13 in sequence, and the water is purified by the upper filter component 12, the intermediate filter component 16 and the lower filter component 13. As a further embodiment of the present invention, side detection components 601 are fixedly installed on the transition pipe 6 at the positions corresponding to the filtration equipment. The side detection components 601 can detect impurities in the water. Seepage holes 17 are opened on the side wall of the transition pipe 6 at the positions corresponding to the side detection components 601. The medical water can flow into the side detection components 601 through the liquid accumulation tank 15 and the seepage holes 17.
[0031] During operation, after the water body passes the test and is deemed qualified, the water body passes through this side detection piece 601 and then directly opens the second and third control valves when passing through the next set of U-shaped pipes 7, so that the water body flows into the main connecting pipe 9.
[0032] As a further embodiment of the present invention, a dual-wavelength ultraviolet digester is fixedly installed in the transition tube 6 at the position between the two sets of filtration devices. The interior of the intermediate filter element 16 is configured with honeycomb-shaped filter holes. When the liquid accumulation tank 15 on the rotating element 14 rotates to the upper and lower sides, the rotating element 14 squeezes the intermediate filter element 16, causing the honeycomb-shaped filter holes to shrink. When the liquid accumulation tank 15 on the rotating element 14 rotates to the horizontal sides, the edge of the rotating element 14 moves away from the intermediate filter element 16, causing the honeycomb-shaped filter holes to expand.
[0033] During operation, both the upper filter element 12 and the lower filter element 13 in this invention are RO permeation membranes, and a filter membrane layer is also provided in the honeycomb filter pores. In each set of transition tubes 6, when the water is between the two sets of filtration devices, the water is further purified by a dual-wavelength ultraviolet digester.
[0034] As a further embodiment of the present invention, mounting plates 602 are fixedly installed at both the upper and lower ends of the transition tube 6, and limit plates are also provided at both ends of the U-shaped tube 7. The limit plates and the mounting plates 602 can be fixedly connected by bolts.
[0035] In operation, the transition tube 6 and the U-shaped tube are connected by the mounting plate 602 and the limiting plate in this invention.
[0036] As a further embodiment of the present invention, a fourth control valve is fixedly installed on both the inlet pipe 2 and the outlet pipe 3, and a water quality alarm device is installed inside the outlet ball 5 and the inlet ball 4. The water quality alarm device can trigger an alarm when the water quality exceeds the standard.
[0037] As a further embodiment of the present invention, the control system includes a suction pump, an information processing module, and a control motherboard. The control motherboard can control the opening and closing of the first control valve, the second control valve, the third control valve, and the fourth control valve. The information processing module can receive and analyze the detection information from the side detection component 601. The suction pump is fixedly installed at the end of the outlet pipe 3.
[0038] During operation, the control system of this invention manages the equipment. After receiving water quality detection information, the information processing module and the control motherboard control the opening and closing of the first control valve, the second control valve, the third control valve and the fourth control valve, thereby controlling the flow direction of the water.
[0039] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A water treatment device for oral diagnosis and treatment, comprising a water treatment tank (1), characterized in that: The water treatment tank (1) is fixedly installed with an inlet pipe (2) and an outlet pipe (3) at both ends, respectively. The outlet pipe (3) and the inlet pipe (2) are connected by a purification pipe assembly, which includes: The main delivery unit is directly connected between the inlet tube (2) and the outlet tube (3), and the diagnostic water can flow from the inlet tube (2) to the outlet tube (3) through the main delivery unit. The purification unit is provided in two sets, and the two sets of purification units are respectively located on both sides of the main delivery unit. The purification unit includes multiple sets of transition pipes (6). The multiple sets of transition pipes (6) are arranged in parallel and distributed at equal intervals. Adjacent transition pipes (6) are connected by U-shaped pipes (7). A flow-combining component is provided between the U-shaped pipe (7) and the main delivery unit. Filtering devices are provided at both the upper and lower ends of the transition pipe (6). The filtering devices are all capable of detecting the medical water. The water treatment tank (1) is equipped with a control system that can control the flow direction of the water used for diagnosis and treatment.
2. The oral treatment water treatment equipment according to claim 1, characterized in that: The main conveying unit includes a main connecting pipe (9), one end of which is fixedly installed with an inlet ball (4) and the other end of which is fixedly installed with an outlet ball (5). The lower end of the inlet pipe (2) is fixedly connected to the inlet ball (4), and the lower end of the outlet ball (5) is fixedly connected to the outlet pipe (3). Both ends of the main connecting pipe (9) are fixedly installed with a first control valve.
3. The oral treatment water treatment equipment according to claim 2, characterized in that: The U-shaped tube (7) can connect multiple sets of transition tubes (6) in series. A set of U-shaped tubes (7) near the inlet tube (2) is fixedly connected to the inlet ball (4) through the side connecting tube (10). A set of U-shaped tubes (7) near the outlet tube (3) is fixedly connected to the outlet ball (5) through the side connecting tube (10). A second control valve is fixedly installed on each side connecting tube (10).
4. The oral treatment water treatment equipment according to claim 3, characterized in that: The manifold assembly includes a horizontal branch pipe (8) and a manifold pipe (11). The horizontal branch pipe (8) is connected between the U-shaped pipes (7) symmetrically located on both sides of the main connecting pipe (9). A second control valve is provided at the connection points of the horizontal branch pipe (8) and the U-shaped pipe (7). The middle position of the horizontal branch pipe (8) is connected to one end of the manifold pipe (11). The other end of the manifold pipe (11) away from the horizontal branch pipe (8) is fixedly connected to the main connecting pipe (9). A third control valve is provided at the end of the manifold pipe (11) close to the horizontal branch pipe (8).
5. The oral treatment water treatment equipment according to claim 4, characterized in that: The filtration device includes a rotating component (14), which is an ellipsoid and rotatably connected inside the transition tube (6). An upper filter element (12) and a lower filter element (13) are respectively provided on the upper and lower sides of the rotating component (14). The upper filter element (12) and the lower filter element (13) are both fixedly connected to the inner wall of the transition tube (6). An intermediate filter element (16) is provided at the gap between the rotating component (14) and the inner wall of the transition tube (6). The intermediate filter element (16) is located between the upper filter element (12) and the lower filter element (13). A liquid accumulation groove (15) is symmetrically opened on the rotating component (14). An empty groove is provided in the middle position of the upper filter element (12) and the lower filter element (13).
6. The oral treatment water treatment equipment according to claim 5, characterized in that: Side detection components (601) are fixedly installed on the transition pipe (6) at the position corresponding to the filtration device. The side detection components (601) can detect impurities in the water. The side wall of the transition pipe (6) is provided with seepage holes (17) at the position corresponding to the side detection components (601). The medical water can flow into the side detection components (601) through the liquid collection tank (15) and the seepage holes (17).
7. The oral treatment water treatment equipment according to claim 5, characterized in that: A dual-wavelength ultraviolet digester is fixedly installed in the transition tube (6) at the position between the two sets of filtration devices. The interior of the intermediate filter element (16) is set with honeycomb filter holes. When the liquid accumulation tank (15) on the rotating part (14) rotates to the upper and lower sides, the rotating part (14) squeezes the intermediate filter element (16), causing the honeycomb filter holes to shrink. When the liquid accumulation tank (15) on the rotating part (14) rotates to the horizontal sides, the edge of the rotating part (14) moves away from the intermediate filter element (16), causing the honeycomb filter holes to expand.
8. The oral treatment water treatment equipment according to claim 1, characterized in that: The transition tube (6) is fixedly installed with mounting plates (602) at both the upper and lower ends, and the U-shaped tube (7) is also provided with limit plates at both ends. The limit plates and the mounting plates (602) can be fixedly connected by bolts.
9. A dental treatment water treatment device according to claim 5, characterized in that: A fourth control valve is fixedly installed on both the inlet pipe (2) and the outlet pipe (3). A water quality alarm device is installed inside the outlet ball (5) and the inlet ball (4). The water quality alarm device can alarm when the water quality exceeds the standard.
10. A dental treatment water treatment device according to claim 9, characterized in that: The control system includes a suction pump, an information processing module and a control motherboard. The control motherboard can control the opening and closing of the first control valve, the second control valve, the third control valve and the fourth control valve. The information processing module can receive the detection information of the side detection component (601) and analyze it. The suction pump is fixedly installed at the end of the outlet pipe (3).