A high efficiency disinfection box for denture maintenance
By introducing purification components and ultraviolet germicidal lamps into the denture maintenance and disinfection box, the problem of ozone pollution caused by undecomposed ozone has been solved, achieving efficient disinfection and purification and protecting the environment and human health.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WUXI CHUANGYI DENTURE PREPARATION CO LTD
- Filing Date
- 2025-06-18
- Publication Date
- 2026-06-19
Smart Images

Figure CN224370269U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of denture maintenance, specifically a high-efficiency disinfection box for denture maintenance. Background Technology
[0002] In medicine, dentures are a general term for restorations made after partial or complete loss of the upper and lower jaw teeth. Dentures can be divided into two types: removable and fixed. Denture care kits are specially used to store removable dentures to facilitate disinfection and maintenance.
[0003] According to Chinese Patent No. CN219782802U, a denture maintenance and disinfection box is disclosed. This utility model uses an ultraviolet disinfection lamp in the lamp holder for sterilization, and an ozone generator outside the box to draw air from the box and generate ozone to disinfect the dentures and the box. Since there are many dentures that need to be cleaned in the hospital, people can stick their names on the placement board on the placement column to disinfect them together.
[0004] Regarding the aforementioned patent content, since ozone is generated to disinfect the dentures inside the box, the ozone will remain inside the box after disinfection. If the ozone is not decomposed and is directly discharged from the box, it will affect the health of nearby staff who inhale the ozone, and will also pollute the surrounding environment, thereby reducing the effectiveness of the disinfection box and the ozone treatment effect. Utility Model Content
[0005] Therefore, the purpose of this utility model is to provide a highly efficient disinfection box for denture maintenance, so as to solve the technical problem that if the ozone inside the box is discharged directly without decomposition treatment, it will cause pollution to the surrounding environment.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a high-efficiency disinfection box for denture maintenance, comprising a shell, a purification component on one side of the shell, and the purification component comprising an air inlet installed on the upper side of one side of the shell and an exhaust pipe installed on the lower side of one side of the shell, a fan installed inside the exhaust pipe, a first mesh installed on the inner side of the exhaust pipe, an exhaust pipe threadedly connected to the outer wall of the exhaust pipe, a second mesh installed on the inner side of the exhaust pipe, and MnO2 particles disposed inside the exhaust pipe, an air inlet pipe threadedly connected to one end of the air inlet, a second solenoid valve installed on the air inlet, and a first solenoid valve installed on the exhaust pipe.
[0007] By adopting the above technical solution, when the ozone gas inside the shell enters the exhaust pipe, the ozone gas will enter the exhaust pipe and come into contact with the MnO2 particles, thereby decomposing the ozone into oxygen and effectively purifying the ozone.
[0008] Furthermore, the interior of the air intake pipe is equipped with an activated carbon layer and a HEPA filter.
[0009] By adopting the above technical solution, the HEPA filter can filter the incoming air, while the activated carbon layer can adsorb and purify the incoming air.
[0010] Furthermore, a mesh tray is installed inside the lower part of the housing.
[0011] By adopting the above technical solution, staff can place dentures on a placement tray for sterilization and disinfection.
[0012] Furthermore, ultraviolet germicidal lamps are installed on both sides and the top of the interior of the housing.
[0013] By adopting the above technical solution, ultraviolet germicidal lamps can be used to sterilize and disinfect dentures.
[0014] Furthermore, an ozone generator is installed on the other side of the housing, and the output end of the ozone generator is connected to an outlet pipe extending into the interior of the housing.
[0015] By adopting the above technical solution, the ozone generator produces ozone to disinfect the denture and its shell.
[0016] Furthermore, sealing rings are provided between the air intake cylinder and the air intake pipe, and between the exhaust pipe and the exhaust cylinder.
[0017] By adopting the above technical solution, the sealing ring can improve the sealing performance between the air intake cylinder and the air intake pipe, and between the exhaust pipe and the exhaust cylinder.
[0018] Furthermore, one end of the exhaust pipe is threaded with a sealing cap, and the MnO2 particles are located between the first and second partitions.
[0019] By adopting the above technical solution, the first and second partitions are set up to store MnO2 particles.
[0020] Furthermore, a sealing door is installed on the outer surface of the housing via a hinge, and a control panel is installed above the outer surface of the housing. The control panel is electrically connected to the ultraviolet germicidal lamp, the ozone generator, the fan, the first solenoid valve, and the second solenoid valve.
[0021] By adopting the above technical solution, the ultraviolet germicidal lamp, ozone generator, fan, first solenoid valve and second solenoid valve can be started or stopped via the control panel.
[0022] Furthermore, the intake pipe is detachably connected to the intake cylinder, and the exhaust pipe is detachably connected to the exhaust cylinder.
[0023] By adopting the above technical solution, the intake pipe can be removed from the intake manifold, and the exhaust pipe can be removed from the exhaust manifold at the same time.
[0024] Furthermore, the outer walls of the intake pipe, the exhaust pipe, and the sealing cap are all provided with anti-slip textures.
[0025] By adopting the above technical solution, the anti-slip texture makes it easier for staff to rotate the air intake pipe, exhaust pipe, and sealing cap.
[0026] In summary, the present invention has the following main advantages:
[0027] 1. This utility model, by incorporating a purification component, allows for the treatment of ozone inside the casing. Operators can first rotate the sealing cover to unscrew it from the exhaust pipe, then open the first and second solenoid valves and start the fan. The fan draws ozone gas from the casing into the exhaust pipe, where it comes into contact with MnO2 particles. The catalytic action of the MnO2 particles promotes the decomposition of ozone into oxygen, effectively purifying the ozone and preventing unpurified ozone from being directly discharged and polluting the surrounding environment. This also improves the efficiency of ozone purification.
[0028] 2. This utility model is provided with a first partition and a second partition, which can confine MnO2 particles between the two and prevent MnO2 particles from entering the exhaust pipe. The sealing ring is provided to improve the sealing between the air inlet and the air inlet pipe and between the exhaust pipe and the exhaust pipe.
[0029] 3. This utility model is equipped with a HEPA filter and an activated carbon layer. The HEPA filter can filter the incoming air, while the activated carbon layer can adsorb and purify the incoming air, preventing impurities in the air from entering the housing through the air intake pipe and contaminating the dentures inside the housing. Attached Figure Description
[0030] Figure 1 This is a schematic diagram of the overall three-dimensional structure of this utility model;
[0031] Figure 2 This is a schematic diagram of the mesh tray placement structure of this utility model;
[0032] Figure 3 This is a schematic diagram of the overall orthographic structure of this utility model;
[0033] Figure 4 This is a schematic diagram of the exhaust pipe structure of this utility model;
[0034] Figure 5 This is a schematic diagram of the air intake pipe structure of this utility model.
[0035] In the diagram: 1. Shell; 2. Ultraviolet germicidal lamp; 3. Placement tray; 4. Ozone generator; 5. Exhaust pipe; 6. Sealing door; 7. Control panel; 8. Purification components; 801. Exhaust pipe; 802. Fan; 803. First solenoid valve; 804. First partition; 805. MnO2 particles; 806. Second partition; 807. Sealing cover; 808. Inlet pipe; 809. Second solenoid valve; 810. Inlet pipe; 811. Activated carbon layer; 812. HEPA filter; 813. Exhaust pipe; 814. Sealing ring. Detailed Implementation
[0036] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.
[0037] The embodiments of this utility model will be described below based on its overall structure.
[0038] Example 1:
[0039] A highly efficient sterilization box for denture maintenance, such as Figures 1-5 As shown, the device includes a housing 1. A purification component 8 is provided on one side of the housing 1. A placement tray 3 is installed inside the lower part of the housing 1 so that staff can place dentures on the placement tray 3 for sterilization and disinfection. An ozone generator 4 is installed on the other side of the housing 1, and the output end of the ozone generator 4 is connected to an exhaust pipe 5 extending into the interior of the housing 1. The ozone generator 4 generates ozone to disinfect the dentures and the interior of the housing 1.
[0040] Specifically, the purification component 8 includes an air inlet 808 installed on the upper side of one side of the housing 1 and an exhaust 801 installed on the lower side of one side of the housing 1. A fan 802 is installed inside the exhaust 801. A first mesh 804 is installed on one side of the interior of the exhaust 801. An exhaust pipe 813 is threadedly connected to the outer wall of the exhaust 801. A second mesh 806 is installed on one side of the interior of the exhaust pipe 813, and MnO2 particles 805 are disposed inside the exhaust pipe 813. An air inlet pipe 810 is threadedly connected to one end of the air inlet 808, and a second electric... A solenoid valve 809 is installed on the exhaust pipe 801. When ozone gas in the housing 1 enters the interior of the exhaust pipe 801, the ozone gas will enter the exhaust pipe 813. At this time, it will come into contact with MnO2 particles 805, thereby decomposing the ozone into oxygen, thus effectively purifying the ozone. A sealing ring 814 is provided between the air inlet pipe 808 and the air inlet pipe 810 and between the exhaust pipe 813 and the exhaust pipe 801. The setting of the sealing ring 814 can improve the sealing performance between the air inlet pipe 808 and the air inlet pipe 810 and between the exhaust pipe 813 and the exhaust pipe 801.
[0041] See Figure 1 , Figure 3 , Figure 4 and Figure 5 One end of the exhaust pipe 813 is threadedly connected to a sealing cap 807. MnO2 particles 805 are located between the first mesh 804 and the second mesh 806. The first mesh 804 and the second mesh 806 are arranged to store the MnO2 particles 805. A sealing door 6 is installed on the outer surface of the housing 1 via a hinge. A control panel 7 is installed above the outer surface of the housing 1. The control panel 7 is electrically connected to the ultraviolet germicidal lamp 2, the ozone generator 4, the fan 802, the first solenoid valve 803, and the second solenoid valve 809, so that the ultraviolet germicidal lamp can be started or stopped via the control panel 7. The device includes a germicidal lamp 2, an ozone generator 4, a fan 802, a first solenoid valve 803, and a second solenoid valve 809. The air inlet pipe 810 is detachably connected to the air inlet cylinder 808, and the exhaust pipe 813 is detachably connected to the exhaust cylinder 801, so that the air inlet pipe 810 can be removed from the air inlet cylinder 808 and the exhaust pipe 813 can be removed from the exhaust cylinder 801. The outer walls of the air inlet pipe 810, the exhaust pipe 813, and the sealing cover 807 are all provided with anti-slip textures, which facilitate the rotation of the air inlet pipe 810, the exhaust pipe 813, and the sealing cover 807 by the operator.
[0042] Example 2:
[0043] Based on the above embodiment one, in order to improve the sterilization and disinfection efficiency of dentures, the following structure will be set up.
[0044] Specifically, ultraviolet germicidal lamps 2 are installed on both sides and the top of the interior of the housing 1. The ultraviolet germicidal lamps 2 can sterilize and disinfect the dentures, thereby improving the disinfection efficiency of the dentures.
[0045] Example 3:
[0046] Based on the above embodiment 1, the following structure is provided to filter the air entering the intake pipe 810.
[0047] See Figure 2 and Figure 5 The air intake pipe 810 is equipped with an activated carbon layer 811 and a HEPA filter 812. The HEPA filter 812 can filter the incoming air, while the activated carbon layer 811 can adsorb and purify the incoming air.
[0048] The working principle of this utility model is as follows: First, when using it, the power is turned on. Then, the staff opens the sealing door 6 and puts the cleaned and dried dentures into the placement mesh tray 3 inside the housing 1 for disinfection. After placement, the staff closes the sealing door 6 and then turns on the ultraviolet germicidal lamp 2 and the ozone generator 4. The ozone generator 4 produces ozone, which enters the housing 1 through the exhaust pipe 5 to disinfect the dentures and the inside of the housing 1. At the same time, the ultraviolet germicidal lamp 2 disinfects the dentures for 30 minutes or more.
[0049] After disinfection, the ozone inside the housing 1 needs to be treated. At this time, turn off the ultraviolet germicidal lamp 2 and the ozone generator 4, and then unscrew the sealing cover 807 from the exhaust pipe 813. Next, open the first solenoid valve 803 and the second solenoid valve 809, and start the fan 802. The working fan 802 can draw the ozone gas inside the housing 1 into the exhaust pipe 801. The ozone gas will enter the exhaust pipe 813, where it will come into contact with the MnO2 particles 805. Then, through the catalytic effect of the MnO2 particles 805, the ozone will be decomposed into oxygen, thereby effectively purifying the ozone.
[0050] Furthermore, the HEPA filter 812 can filter the air entering the air intake pipe 810, while the activated carbon layer 811 can adsorb and purify the incoming air, preventing impurities in the air from entering the housing 1 through the air intake pipe 810 and contaminating the dentures inside the housing 1.
[0051] When the HEPA filter 812 or activated carbon layer 811 needs to be replaced, simply rotate the intake pipe 810 to unscrew it from the intake cylinder 808, thus allowing the HEPA filter 812 or activated carbon layer 811 to be replaced. When the MnO2 particles 805 need to be replaced, simply rotate the exhaust pipe 813 to unscrew it from the exhaust cylinder 801, then the MnO2 particles 805 can be poured out for replacement.
[0052] Although embodiments of the present invention have been shown and described, these specific embodiments are merely explanations of the present invention and are not intended to limit the invention. The specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions, and variations to the embodiments as needed without departing from the principles and spirit of the present invention, provided that such modifications, substitutions, and variations are within the scope of the claims of the present invention and are protected by patent law.
Claims
1. A high-efficiency disinfection box for denture maintenance, comprising a shell (1), characterized in that: A purification component (8) is provided on one side of the housing (1), and the purification component (8) includes an air inlet (808) installed on the upper side of one side of the housing (1) and an exhaust pipe (801) installed on the lower side of one side of the housing (1). A fan (802) is installed inside the exhaust pipe (801). A first mesh (804) is installed on the inner side of the exhaust pipe (801). An exhaust pipe (813) is threadedly connected to the outer wall of the exhaust pipe (801). A second mesh (806) is installed on the inner side of the exhaust pipe (813). MnO2 particles (805) are provided inside the exhaust pipe (813). An air inlet pipe (810) is threadedly connected to one end of the air inlet (808). A second solenoid valve (809) is installed on the air inlet (808). A first solenoid valve (803) is installed on the exhaust pipe (801).
2. The high-efficiency disinfection box for denture maintenance according to claim 1, characterized in that: The air intake pipe (810) is equipped with an activated carbon layer (811) and a HEPA filter (812).
3. The high-efficiency disinfection box for denture maintenance according to claim 1, characterized in that: A mesh tray (3) is installed inside the lower part of the housing (1).
4. The high-efficiency disinfection box for denture maintenance according to claim 1, characterized in that: Ultraviolet germicidal lamps (2) are installed on both sides and the top of the interior of the housing (1).
5. A high-efficiency disinfection box for denture maintenance according to claim 1, characterized in that: An ozone generator (4) is installed on the other side of the housing (1), and the output end of the ozone generator (4) is connected to an outlet pipe (5) extending into the housing (1).
6. A high-efficiency disinfection box for denture maintenance according to claim 1, characterized in that: A sealing ring (814) is provided between the air intake cylinder (808) and the air intake pipe (810) and between the exhaust pipe (813) and the exhaust cylinder (801).
7. A high-efficiency disinfection box for denture maintenance according to claim 1, characterized in that: One end of the exhaust pipe (813) is threaded with a sealing cap (807), and the MnO2 particles (805) are located between the first partition (804) and the second partition (806).
8. A high-efficiency disinfection box for denture maintenance according to claim 1, characterized in that: A sealing door (6) is installed on the outer surface of the housing (1) via a hinge. A control panel (7) is installed above the outer surface of the housing (1), and the control panel (7) is electrically connected to the ultraviolet germicidal lamp (2), the ozone generator (4), the fan (802), the first solenoid valve (803), and the second solenoid valve (809).
9. A high-efficiency disinfection box for denture maintenance according to claim 1, characterized in that: The intake pipe (810) is detached from the intake cylinder (808), and the exhaust pipe (813) is detached from the exhaust cylinder (801).
10. A high-efficiency disinfection box for denture maintenance according to claim 7, characterized in that: The outer walls of the intake pipe (810), the exhaust pipe (813), and the sealing cap (807) are all provided with anti-slip textures.
Citation Information
Patent Citations
Denture maintenance disinfection box
CN219782802U