Dental waterway monitoring terminal application device

By designing a dental water system monitoring terminal application device and adopting automated data acquisition and detection technology, the problems of incomplete disinfection of dental water systems and the labor-intensive nature of traditional testing have been solved. This enables timely and accurate monitoring and detection of water quality, reduces the risk of cross-infection, and extends the service life of the equipment.

CN224203176UActive Publication Date: 2026-05-05SHENZHEN QIANHAI EXUBERANT MEDICAL TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN QIANHAI EXUBERANT MEDICAL TECH CO LTD
Filing Date
2025-04-27
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

Existing disinfection methods for dental water systems are insufficient to completely eliminate biofilm. Traditional testing methods are labor-intensive and have a low testing frequency, making it impossible to detect changes in water quality in a timely manner, which increases the risk of iatrogenic cross-infection.

Method used

A dental water system monitoring terminal application device was designed, including a collection tank, a filter tank, a detection module, and a control and data module. It achieves automated water quality collection and detection through a small electric push rod and an eccentric rotating plate, and performs accurate detection after filtering impurities.

Benefits of technology

It enables automated and regular monitoring of dental water quality, reducing the risk of iatrogenic cross-infection and improving the accuracy of testing and the lifespan of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of dental waterway monitoring, and discloses a dental waterway monitoring terminal application device which comprises a filtering tank, an acquisition device consisting of an acquisition tank, a small-sized electric push rod, a pressure extraction piece, an eccentric rotating plate and a forward rotating plate, and a detection device consisting of a detection module and a control and data module, a main body of the collecting device is a collecting tank, a filtering tank is arranged on the outer side of the collecting tank and communicated with the collecting tank through a liquid conveying pipeline, a detecting device is arranged at the shaft end of the side, away from the collecting tank, of the filtering tank, a detecting module is arranged on the side, corresponding to the filtering tank, of the detecting device, and the detecting module is connected with the filtering tank through a liquid conveying pipeline. The dental waterway monitoring terminal application device has the advantages that the dental waterway monitoring terminal application device is simple and practical in structure, the collection device with efficient collection effect and sealing performance is arranged in the dental waterway monitoring terminal application device, and the accuracy and convenience of solution collection can be greatly improved.
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Description

Technical Field

[0001] This utility model relates to the field of dental water system monitoring technology, specifically a dental water system monitoring terminal application device. Background Technology

[0002] In modern dental treatment, the dental enlargement unit is an indispensable core piece of equipment. Its water system undertakes key tasks such as cleaning dental instruments, rinsing the patient's mouth, and cooling the equipment. However, the hygiene of dental water systems has always faced serious challenges.

[0003] Currently, conventional water system disinfection methods, such as chlorine disinfection and ozone disinfection, can inhibit the growth of microorganisms to a certain extent, but they are difficult to completely eradicate biofilms. Moreover, the monitoring methods for water systems are relatively limited. Traditional periodic manual testing is not only labor-intensive and time-consuming, but also has a low testing frequency, making it impossible to detect dynamic changes in water quality in a timely manner. Once the water quality deteriorates between two testing intervals, medical staff may unknowingly use contaminated water to treat patients, greatly increasing the risk of cross-infection. Especially during the epidemic of respiratory infectious diseases, contaminated medical water has become a major hidden danger of iatrogenic cross-infection for patients and medical staff. To address this, we propose a dental water system monitoring terminal application device. Utility Model Content

[0004] (a) Technical problems to be solved

[0005] To address the shortcomings of existing technologies, this invention provides a dental water system monitoring terminal application device, which solves the aforementioned problems.

[0006] (II) Technical Solution

[0007] To achieve the above-mentioned objectives, this utility model provides the following technical solution: a dental water system monitoring terminal application device, comprising a filter tank, a collection device consisting of a collection tank, a small electric push rod, a suction component, an eccentric rotating plate, and a forward rotating plate, and a detection device consisting of a detection module and a control and data module. The main body of the collection device is the collection tank, and a filter tank is provided on the outside of the collection tank. The filter tank and the collection tank are connected through an infusion pipeline, and a detection device is provided on the axial end of the filter tank away from the collection tank. A detection module is provided on the side of the detection device corresponding to the filter tank. The detection module is connected to the filter tank through an infusion pipeline, and the control and data module is located on the side wall of the detection module away from the filter tank.

[0008] Preferably, the outside of the collection device is a collection tank, the top of the inside of the collection tank is provided with a small electric push rod, and the bottom of the small electric push rod output push rod end is welded with a pressure-drawing component. The bottom end of the pressure-drawing component is provided with an eccentric rotating plate, and the bottom of the inside of the collection tank is provided with a forward rotating plate.

[0009] Preferably, the top end of the collection tank is provided with a power chamber, and a small electric push rod body is placed inside the power chamber. The bottom end of the power chamber is provided with a mating hole to cooperate with the output push rod of the small electric push rod. The bottom of the collection tank is a hollow cylindrical tube, and the inner wall of the cylindrical tube inside the collection tank is provided with an infusion port. The infusion port is connected to the filter tank through an external infusion pipe. The bottom end of the collection tank is provided with an inner ring.

[0010] Preferably, the inner ring is circular, with an upper half-ring block on one side of the top end of the inner wall of the inner ring, and angle limiting blocks on both symmetrical arc ends of the upper half-ring block. A lower half-ring block is provided on the bottom end of the inner wall of the inner ring away from the upper half-ring block. A connecting rod is welded inside the inner ring, which is perpendicular to the axial direction of the inner ring and is rotatably connected to the rotating plate. The lower half-ring block and the upper half-ring block are symmetrical about the origin around the connecting rod.

[0011] Preferably, the pressure-drawing component has a hollow cylindrical structure, and a top plate is provided at the top end of the pressure-drawing component. The center of the top end of the top plate is welded to the shaft end of the output push rod of the small electric push rod. A sliding ring is provided at the bottom end of the pressure-drawing component, and a set of support rods distributed in a ring array are welded between the top plate and the sliding ring.

[0012] Preferably, the upper half ring block is provided at the top end of the inner wall of the sliding ring, and the lower half ring block is provided at the bottom end of the inner wall of the sliding ring away from the upper half ring block. An angle limiting block is provided at both axially symmetrical arc ends of the lower half ring block. A connecting rod is welded to the inner wall of the sliding ring. The connecting rod is eccentrically positioned and is connected to the rotating hole inside the eccentric rotating plate.

[0013] (III) Beneficial Effects

[0014] Compared with the prior art, this utility model provides a dental water system monitoring terminal application device, which has the following beneficial effects:

[0015] 1. This dental water system monitoring terminal device enables automated and regular monitoring of dental water quality. Traditional manual testing requires a lot of manpower and time, and the testing frequency is low, making it difficult to detect changes in water quality in a timely manner. However, under the control and data module regulation, this device can automatically start the collection program at a preset time with a small electric actuator, eliminating the need for frequent manual operation. For example, water samples can be collected and tested at regular intervals every day. Medical staff can obtain water quality data in real time and promptly detect water quality deterioration. During the epidemic of respiratory infectious diseases, it greatly reduces the risk of nosocomial cross-infection caused by water pollution, effectively protecting the safety of patients and medical staff.

[0016] 2. This dental water system monitoring terminal application device effectively improves the accuracy of dental water system monitoring and extends the service life of the equipment. On the one hand, the filter can remove larger impurities in the collected solution, preventing them from entering the detection module and avoiding the detection device from being affected by impurities clogging or damage, thus improving detection accuracy. On the other hand, the device's collection and detection process is scientifically designed, enabling accurate detection of indicators such as microorganisms and impurities in the dental water system. For example, when detecting microbial content, it avoids interference from impurities, making the detection results more accurate. Accurate detection results help medical staff accurately judge the hygiene status of the water system and take timely disinfection measures, thus extending the service life of the entire dental water system. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the dental water system monitoring terminal application device of this utility model;

[0018] Figure 2 This is a cross-sectional schematic diagram of the dental waterway monitoring terminal application device of this utility model;

[0019] Figure 3 This is a cross-sectional view of the collection tank of this utility model;

[0020] Figure 4 This is a schematic diagram of the pressure-drawing component of this utility model;

[0021] Figure 5 This is a schematic diagram of the eccentric rotating plate of this utility model.

[0022] In the diagram: 1. Collection tank; 2. Filter tank; 3. Detection module; 4. Control and data module; 5. Small electric push rod; 6. Pressure extraction component; 7. Eccentric rotating plate; 8. Forward rotating plate; 9. Power chamber; 10. Inner ring; 11. Lower half ring block one; 12. Connecting rod one; 13. Upper half ring block one; 14. Angle limiting block one; 15. Infusion port; 16. Top plate; 17. Support rod; 18. Sliding ring; 19. Lower half ring block; 20. Angle limiting block two; 21. Connecting rod two; 22. Upper half ring block two; 23. Rotation hole. Detailed Implementation

[0023] 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.

[0024] Please see Figure 1-5A dental water system monitoring terminal application device includes a filter tank 2, a data acquisition device consisting of a data acquisition tank 1, a small electric push rod 5, a suction component 6, an eccentric rotating plate 7, and a forward rotating plate 8, and a detection device consisting of a detection module 3 and a control and data module 4. The main body of the data acquisition device is the data acquisition tank 1, and the filter tank 2 is located on the outside of the data acquisition tank 1. The filter tank 2 and the data acquisition tank 1 are connected through an infusion pipeline, and a detection device is set on the shaft end of the filter tank 2 away from the data acquisition tank 1. The detection module 3 is located on the side of the detection device corresponding to the filter tank 2. The detection module 3 is connected to the filter tank 2 through an infusion pipeline, and the control and data module 4 is located on the side wall of the detection module 3 away from the filter tank 2.

[0025] Furthermore, the external part of the collection device is a collection tank 1. Inside the collection tank 1, at the top, is a small electric push rod 5. A pressure-drawing component 6 is welded to the bottom output push rod end of the small electric push rod 5. An eccentric rotating plate 7 is located at the bottom end of the pressure-drawing component 6, and a positive rotating plate 8 is located at the bottom inside the collection tank 1. The collection device is controlled by a control and data module 4 to raise and lower the small electric push rod 5 to collect the solution. Specifically, collection can be performed periodically. During collection, the output push rod of the small electric push rod 5 pushes the pressure-drawing component 6 downwards. When the output push rod of the small electric push rod 5 retracts, a negative pressure is generated in the cylindrical cavity between the pressure-drawing component 6 and the positive rotating plate 8. At this time, the positive rotating plate 8 rotates around the connecting rod 12. Due to the unique structure of the eccentric rotating plate 7, it does not rotate. The solution inside the external pipeline to be tested is drawn into the cylindrical cavity by the corresponding negative pressure. When the small electric push rod 5 outputs the push rod to push the suction component 6 downward, the cylinder between the suction component 6 and the positive rotating plate 8 is drawn in with the collected solution, causing the positive rotating plate 8 to rotate horizontally. At this time, the eccentric rotating plate 7 deflects due to its unique eccentric structure, causing the collected solution to rise into the suction component 6. Finally, it enters the filter tank 2 through the infusion port 15. After filtering out larger impurities, it is detected by the detection device.

[0026] Furthermore, the top end of the collection tank 1 is provided with a power chamber 9, and the main body of the small electric push rod 5 is placed inside the power chamber 9. The bottom end of the power chamber 9 is provided with a mating hole to cooperate with the output push rod of the small electric push rod 5. The bottom of the collection tank 1 is a hollow cylindrical tube. The inner wall of the cylindrical tube inside the collection tank 1 is provided with a liquid inlet 15. The liquid inlet 15 is connected to the filter tank 2 through an external liquid inlet pipe. The bottom end of the collection tank 1 is provided with an inner ring 10. The filter tank 2 can ensure that there are no large impurities in the collection solution that could damage or block the detection device again, thereby improving the service life of the overall structure.

[0027] Furthermore, the inner ring 10 is circular. An upper half-ring block 13 is provided on one side of the top end of the inner wall of the inner ring 10, and angle limiting blocks 14 are provided on both axially symmetrical arc ends of the upper half-ring block 13. A lower half-ring block 11 is provided on the bottom end of the inner wall of the inner ring 10 away from the upper half-ring block 13. A connecting rod 12 is welded inside the inner ring 10. The connecting rod 12 is perpendicular to the axis of the inner ring 10 and is rotatably connected to the rotating plate 8. The lower half-ring block 11 and the upper half-ring block 13 are symmetrical about the origin of the connecting rod 12. Both the angle limiting block 14 and the angle limiting block 20 play the role of angle limitation, which facilitates the subsequent return of the rotating plate 8 and the eccentric rotating plate 7.

[0028] Furthermore, the pressure-drawing component 6 has a hollow cylindrical structure, and the top end of the pressure-drawing component 6 is provided with a top plate 16. The center of the top end of the top plate 16 is welded to the output push rod shaft end of the small electric push rod 5. The bottom end of the pressure-drawing component 6 is provided with a sliding ring 18. A set of support rods 17 distributed in a ring array are welded between the top plate 16 and the sliding ring 18.

[0029] Furthermore, the top end of the inner wall of the sliding ring 18 is provided with an upper half ring block 22, and the bottom end of the inner wall of the sliding ring 18 is provided with a lower half ring block 19 opposite to the upper half ring block 22. The two axially symmetrical arc ends of the lower half ring block 19 are provided with angle limiting blocks 20. A connecting rod 21 is welded to the inner wall of the sliding ring 18. The connecting rod 21 is in an eccentric position and is connected to the rotating hole 23 inside the eccentric rotating plate 7.

[0030] Structural Description:

[0031] Collection container 1: Collection container 1 is the main body of the collection device. It is a hollow cylinder with a power chamber 9 at the top for mounting a small electric push rod 5. The bottom is hollow and the inner wall has an infusion port 15 for collecting dental water circuit test solutions.

[0032] Filter tank 2: Filter tank 2 is located outside the collection tank 1. The two are connected by a liquid delivery pipeline. It can filter out larger impurities in the collection solution and prevent them from damaging the detection device.

[0033] Detection module 3: Detection module 3 is installed on the side of filter tank 2 away from collection tank 1 and is connected to filter tank 2 by a liquid delivery pipeline. It is responsible for detecting water quality indicators of the filtered solution.

[0034] Control and Data Module 4: Located on the side wall of Detection Module 3, Control and Data Module 4 is used to control the operation of the small electric push rod 5 and to store, analyze, and display the detection data.

[0035] Small electric actuator 5: The small electric actuator 5 is placed in the power chamber 9 at the top of the collection tank 1. The output actuator is welded to the pressure pump 6 and is controlled by the control and data module 4 to realize solution collection.

[0036] Pumping component 6: Pumping component 6 is a hollow cylindrical structure. The top plate 16 is welded to the output shaft of the small electric push rod 5, and the bottom is equipped with a sliding ring 18 for pumping and collecting solution.

[0037] Eccentric rotating plate 7: The eccentric rotating plate 7 is connected to the inner wall of the sliding ring 18 through the connecting rod 21. The structure is eccentric, which realizes the lifting of the solution during solution collection.

[0038] Forward Rotating Plate 8: The forward rotating plate 8 is rotatably connected to the inner ring 10 through the connecting rod 12, and controls the entry and exit of the solution under the action of negative pressure and the gravity of the solution;

[0039] Power chamber 9: The power chamber 9 is located inside the top end of the collection tank 1 and is used to house the main body of the small electric push rod 5. The bottom has a mating hole for the output push rod to pass through.

[0040] Inner Ring 10: The inner ring 10 is circular and is installed at the bottom of the inside of the collection tank 1. It is used to install components such as the forward rotating plate 8 to assist in solution collection.

[0041] Lower half-ring block 11: Lower half-ring block 11 is located at the bottom end of the inner wall of inner ring 10, and is symmetrical with upper half-ring block 13 around the origin of connecting rod 12, assisting in the installation of forward rotating plate 8;

[0042] Connecting rod 12: Connecting rod 12 is welded inside the inner ring 10, perpendicular to the axis of the inner ring 10, and rotatably connected to the rotating plate 8;

[0043] Upper half-ring block 13: Upper half-ring block 13 is located on one side of the top end of the inner wall of inner ring 10, and angle limiting block 14 is provided at the two axially symmetrical arc ends;

[0044] Angle limiting block 14: Angle limiting block 14 is located at the arc end of the upper half ring block 13, similar to angle limiting block 20, and limits the rotation angle of the forward rotating plate 8;

[0045] Infusion port 15: Infusion port 15 is located on the inner cylindrical wall of the collection tank 1 and is connected to the filter tank 2 through an external infusion pipe to deliver the collection solution;

[0046] Top plate 16: Top plate 16 is located on top of the pressure-drawing component 6, and its center is welded to the output push rod shaft end of the small electric push rod 5 to drive the pressure-drawing component 6 to move;

[0047] Support rod 17: A set of support rods 17 are welded in a ring array between the top plate 16 and the sliding ring 18 to support the structure of the pressure-reducing component 6;

[0048] Sliding ring 18: The sliding ring 18 is located at the bottom of the pressure-drawing component 6, and the inner wall is provided with components such as the upper half-ring block 22, which are used to install the eccentric rotating plate 7, etc.

[0049] Lower half ring block 19: The lower half ring block 19 is located at the bottom end of the inner wall of the sliding ring 18, and the two axially symmetrical arc ends are provided with angle limiting blocks 20;

[0050] Angle limiting block 20: Angle limiting block 20 is located at the arc end of the lower half ring block 19, similar to angle limiting block 14, and limits the rotation angle of the eccentric rotating plate 7.

[0051] Connecting rod 21: Connecting rod 21 is welded to the inner wall of sliding ring 18, and is eccentrically positioned to connect with the internal rotating hole 23 of eccentric rotating plate 7.

[0052] Upper half-ring block 22: Upper half-ring block 22 is located at the top end of the inner wall of sliding ring 18 and is set opposite to lower half-ring block 19;

[0053] Rotation hole 23: Rotation hole 23 is located inside the eccentric rotating plate 7 and cooperates with connecting rod 21 to realize the rotation of the eccentric rotating plate 7.

[0054] Working Principle: After correctly installing the dental water system monitoring terminal application device according to the diagram, once the device is started, the control and data module 4, based on a preset time or command, controls the acquisition device to begin operation. At this time, the small electric push rod 5 located in the power chamber 9 at the top of the acquisition tank 1 slowly pushes the bottom-welded suction component 6 downwards. When the small electric push rod 5 retracts, a negative pressure environment is formed in the cylindrical cavity between the suction component 6 and the positive rotating plate 8 at the bottom of the acquisition tank 1. The positive rotating plate 8 is rotatably connected to the inner ring 10 via connecting rod 12. Under the action of negative pressure, the positive rotating plate 8 rotates and opens around connecting rod 12, and the dental water system solution to be tested is sucked into the cylindrical cavity due to the negative pressure. Because the eccentric rotating plate 7 is connected to the sliding ring 18 via a unique eccentric structure connecting rod 21, the eccentric rotating plate 7 will not rotate at this time. When the small electric push rod 5 retracts, a negative pressure environment is formed in the cylindrical cavity between the suction component 6 and the positive rotating plate 8 at the bottom of the acquisition tank 1. When the push rod 5 outputs the push rod to push the suction component 6 downward again, the amount of solution already drawn into the cylindrical cavity increases. The forward rotating plate 8 rotates to a horizontal state under the influence of the solution's gravity, blocking the lower channel. At the same time, the eccentric rotating plate 7, due to the pressure of the solution, deflects around the connecting rod 21 due to its eccentric structure, lifting the drawn-in solution into the suction component 6. Subsequently, the solution flows into the filter tank 2 connected to it through the infusion port 15 on the suction component 6. In the filter tank 2, larger impurities in the solution are filtered out to avoid damage and blockage to subsequent detection devices. The filtered solution enters the detection module 3. The detection module 3 detects and analyzes various indicators in the solution, such as microbial content and impurity concentration. The detection results are transmitted to the control and data module 4 in real time. The control and data module 4 stores, analyzes, and displays the data so that medical staff can understand the water quality status of the dental water circuit in a timely manner.

[0055] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A dental water system monitoring terminal application device, comprising a filter tank (2), a data acquisition device consisting of a data acquisition tank (1), a small electric push rod (5), a suction component (6), an eccentric rotating plate (7), and a forward rotating plate (8), and a detection device consisting of a detection module (3) and a control and data module (4), characterized in that: The main body of the collection device is a collection tank (1). A filter tank (2) is provided on the outside of the collection tank (1). The filter tank (2) is connected to the collection tank (1) through an infusion pipeline. A detection device is provided on the shaft end of the filter tank (2) away from the collection tank (1). A detection module (3) is provided on the side of the detection device corresponding to the filter tank (2). The detection module (3) is connected to the filter tank (2) through an infusion pipeline. The side wall of the detection module (3) away from the filter tank (2) is a control and data module (4).

2. The dental waterway monitoring terminal application device according to claim 1, characterized in that: The outside of the collection device is a collection tank (1). The top of the collection tank (1) is equipped with a small electric push rod (5), and the bottom of the small electric push rod (5) is welded with a pressure-drawing component (6). The bottom of the pressure-drawing component (6) is equipped with an eccentric rotating plate (7), and the bottom of the collection tank (1) is equipped with a positive rotating plate (8).

3. The dental waterway monitoring terminal application device according to claim 2, characterized in that: The top end of the collection tank (1) is provided with a power chamber (9), and the main body of the small electric push rod (5) is placed inside the power chamber (9). The bottom end of the power chamber (9) is provided with a mating hole to cooperate with the output push rod of the small electric push rod (5). The bottom of the collection tank (1) is a hollow cylindrical tube. The inner wall of the cylindrical tube inside the collection tank (1) is provided with an infusion port (15). The infusion port (15) is connected to the filter tank (2) through an external infusion pipe. The bottom end of the collection tank (1) is provided with an inner ring (10).

4. The dental waterway monitoring terminal application device according to claim 3, characterized in that: The inner ring (10) is circular. An upper half ring block (13) is provided on one side of the top end of the inner wall of the inner ring (10). An angle limiting block (14) is provided on both axially symmetrical arc ends of the upper half ring block (13). A lower half ring block (11) is provided on the side of the bottom end of the inner wall of the inner ring (10) away from the upper half ring block (13). A connecting rod (12) is welded inside the inner ring (10). The connecting rod (12) is perpendicular to the axial direction of the inner ring (10). The connecting rod (12) is rotatably connected to the rotating plate (8). The positions of the lower half ring block (11) and the upper half ring block (13) are symmetrical about the origin of the connecting rod (12).

5. A dental waterway monitoring terminal application device according to claim 2, characterized in that: The pressure-drawing component (6) is a hollow cylindrical structure, and the top end of the pressure-drawing component (6) is provided with a top plate (16). The center of the top end of the top plate (16) is welded to the output push rod shaft end of the small electric push rod (5). The bottom end of the pressure-drawing component (6) is provided with a sliding ring (18). A set of support rods (17) arranged in a ring array are welded between the top plate (16) and the sliding ring (18).

6. The dental waterway monitoring terminal application device according to claim 5, characterized in that: The upper half ring block (22) is provided at the top end of the inner wall of the sliding ring (18), and the lower half ring block (19) is provided at the bottom end of the inner wall of the sliding ring (18) away from the upper half ring block (22). Angle limiting blocks (20) are provided at both axially symmetrical arc ends of the lower half ring block (19). A connecting rod (21) is welded to the inner wall of the sliding ring (18). The connecting rod (21) is in an eccentric position and is connected to the rotating hole (23) inside the eccentric rotating plate (7).