Hexagonal ozone discharge body
Patent Information
- Application Number
- CN202521539289.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-23
- Publication Date
- 2026-08-18
- Estimated Expiration
- 2035-07-23
AI Technical Summary
[0003]在实验室内部,常会使用电解的方式进行臭氧制作,但是在不同需求下,存在对臭氧浓度需求不同的情况,针对这种情况来说,通常采用的方式是进一步提升电压以提升电解程度的方式来进行,但是电压的调控存在难度大、危险性大的缺陷,难以满足安全实验操作的需求
[0019] 1. Compared with existing technologies, this hexagonal ozone discharge body utilizes an external oxygen supply pipe to introduce oxygen into the housing through the air inlet. Part of the oxygen is electrolyzed by the ionization component inside the electrolysis chamber to produce ozone. The ozone gas is then discharged through the air outlet under the transport action, resulting in ozone gas of a certain concentration. When it is necessary to increase the ozone concentration, several housings can be assembled in series using splicing and combination components. During assembly, a connecting pipe is inserted into the connecting groove to connect the air inlet and the air outlet. Then, a telescopic plate is inserted into the first mounting groove and locked with the top pin to achieve the effect of combining and installing two adjacent housings. By using a continuous multiple electrolysis method, the requirement for efficiently and safely increasing the ozone preparation concentration can be met.
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Figure CN224646689U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of ozone preparation technology, and more specifically to a hexagonal ozone discharge body. Background Technology
[0002] An ozone generator can produce a very strong dielectric barrier discharge under high voltage using a quartz glass dielectric and a micro-gap discharge structure, under specific oxygen mass, dew point, pressure, and temperature conditions. When oxygen-containing gas passes through the discharge gap between two electrodes, some oxygen molecules are converted into ozone, thus achieving ozone production. Specifically, when a high voltage is applied to the electrodes, the discharge gap between the electrodes discharges, decomposing oxygen molecules into free oxygen atoms. Some of these free oxygen atoms recombine with undecomposed oxygen molecules to generate ozone.
[0003] In the laboratory, ozone is often produced by electrolysis. However, different needs require different ozone concentrations. In such cases, the usual approach is to increase the voltage to enhance the degree of electrolysis. However, voltage control is difficult and dangerous, making it hard to meet the requirements for safe experimental operation.
[0004] In view of this, the present invention proposes a hexagonal ozone discharge body to solve this problem. Utility Model Content
[0005] In order to overcome the above-mentioned defects of the prior art, the present invention provides a hexagonal ozone discharge body to solve the problems existing in the background art.
[0006] This utility model provides the following technical solution: a hexagonal ozone discharge body, including a box body, a box cover on the top of the box body, the cross-section of the box body is a regular hexagon, an electrolysis chamber is opened inside the box body, an ionization component is provided on the side wall of the box body, an air inlet and an air outlet are symmetrically opened on the side wall of the box body, the air inlet and the air outlet are connected to the electrolysis chamber, and a splicing assembly is provided on the outer wall of the box body;
[0007] The assembly includes a connecting pipe fixedly installed on the outside of the box, with the connecting pipe corresponding to the air inlet. The outer wall of the box has a connecting groove corresponding to the air outlet, and the connecting pipe is adapted to the connecting groove. The outer wall of the box has a first mounting groove and a second mounting groove respectively below the air inlet and air outlet. The inner wall of the first mounting groove is slidably connected to a top pin, and the inner wall of the second mounting groove is slidably connected to a telescopic plate. The telescopic plate is adapted to be inserted into the interior of the first mounting groove and engages with the top pin.
[0008] Furthermore, the ionization assembly includes a fixed base that is fixedly installed on the surface of the housing. Two electrode rods are embedded in the surface of the fixed base. Two clamping screws are provided on the surface of the fixed base corresponding to the two electrode rods. The two electrode rods extend into the interior of the electrolysis chamber, and a discharge gap is reserved between the two electrode rods.
[0009] As a further description of the above technical solution: When using the ionization component, the external power line is screwed into the two clamping screws respectively, and then the two electrode rods are energized to achieve the purpose of electrolyzing oxygen molecules to produce ozone.
[0010] Furthermore, a silicone sealing ring is adhered to the outer wall of the connecting pipe, and the silicone sealing ring is adapted to the inner diameter of the connecting groove.
[0011] As a further description of the above technical solution: by setting a silicone sealing ring, the sealing performance when the connecting pipe and the connecting groove are engaged can be improved.
[0012] Furthermore, a fixing bolt is inserted at the corner of the top of the box cover, and a threaded hole is opened on the top of the box body for the fixing bolt to be screwed in. The box cover can be detachably installed and removed from the box body through the fixing bolt and the threaded hole.
[0013] As a further description of the above technical solution: by setting fixing bolts and threaded holes, it is possible to achieve a firm installation between the cover and the body, and it is convenient to remove the cover to perform maintenance operations on the inside of the electrolysis chamber.
[0014] Furthermore, the inner wall of the first mounting groove is provided with a tension spring for driving the top pin to move upward, and the bottom end of the top pin extends to the bottom of the box and has a finger groove.
[0015] As a further description of the above technical solution: by setting a tension spring, the top pin can be driven to lock with the telescopic plate, and the top pin can be pushed down by the finger groove to cancel the locking effect between the top pin and the telescopic plate, thus completing the disassembly action, which is flexible in use.
[0016] Furthermore, the bottom end of the telescopic plate extends to the bottom of the box and is fixedly installed with a lever. A magnet is fixedly installed on the inner wall of the second mounting groove. An iron sheet is embedded on the surface of the telescopic plate. The magnet and the iron sheet are magnetically attracted to each other. When the magnet and the iron sheet are close to each other, the telescopic plate is located inside the second mounting groove.
[0017] As a further description of the above technical solution: by setting a lever, a magnet and an iron plate, the telescopic plate can be stored inside the second mounting slot when not assembled and combined. The magnetic force between the magnet and the iron plate is used to position the telescopic plate, thereby achieving the effect of storing the telescopic plate.
[0018] The technical effects and advantages of this utility model are as follows:
[0019] 1. Compared with existing technologies, this hexagonal ozone discharge body utilizes an external oxygen supply pipe to introduce oxygen into the housing through the air inlet. Part of the oxygen is electrolyzed by the ionization component inside the electrolysis chamber to produce ozone. The ozone gas is then discharged through the air outlet under the transport action, resulting in ozone gas of a certain concentration. When it is necessary to increase the ozone concentration, several housings can be assembled in series using splicing and combination components. During assembly, a connecting pipe is inserted into the connecting groove to connect the air inlet and the air outlet. Then, a telescopic plate is inserted into the first mounting groove and locked with the top pin to achieve the effect of combining and installing two adjacent housings. By using a continuous multiple electrolysis method, the requirement for efficiently and safely increasing the ozone preparation concentration can be met.
[0020] 2. Compared with existing technologies, this hexagonal ozone discharge body, when using the ionization component, involves tightening the external power lines to two clamping screws, and then energizing the two electrode rods to electrolyze oxygen molecules to produce ozone. The addition of a silicone sealing ring improves the sealing performance when the connecting pipe and connecting groove are engaged. The use of fixing bolts and threaded holes ensures a secure installation between the cover and the body, and facilitates maintenance of the electrolysis chamber after the cover is removed. A tension spring drives the top pin to engage with the telescopic plate, and the top pin can be pushed downwards using a finger groove to cancel the engagement, allowing for easy disassembly. Furthermore, the inclusion of a handle, magnet, and iron plate allows the telescopic plate to be stored in the second mounting slot when not assembled, utilizing the magnetic force between the magnet and the iron plate to position the telescopic plate and achieve effective storage. Attached Figure Description
[0021] Figure 1 This is a three-dimensional structural schematic diagram of the present invention from one perspective;
[0022] Figure 2 This is a two-dimensional structural schematic diagram of the present invention from a different perspective;
[0023] Figure 3 A top-view 3D structural diagram of the box body after the lid has been removed;
[0024] Figure 4 This is a schematic diagram of the orthographic section of the present invention;
[0025] Figure 5 for Figure 4 Enlarged structural diagram at point A in the middle;
[0026] Figure 6 for Figure 4 Enlarged structural diagram at point B.
[0027] The attached diagram is labeled as follows: 1. Box body; 2. Box cover; 3. Electrolysis chamber; 4. Air inlet; 5. Air outlet; 6. Connecting pipe; 7. Connecting groove; 8. Top pin; 9. Telescopic plate; 10. Fixing base; 11. Electrode rod; 12. Clamping screw; 13. Silicone sealing ring; 14. Fixing bolt; 15. Threaded hole; 16. Tension spring; 17. Finger groove; 18. Handle; 19. Magnet; 20. Iron sheet. Detailed Implementation
[0028] The technical solution of this utility model will be clearly and completely described below with reference to the accompanying drawings. In addition, the forms of the various structures described in the following embodiments are merely illustrative. The hexagonal ozone discharge body involved in this utility model is not limited to the structures described in the following embodiments. All other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.
[0029] Reference Figures 1 to 6 This utility model provides a hexagonal ozone discharge body, including a box body 1, a box cover 2 on the top of the box body 1, the cross-section of the box body 1 is a regular hexagon, or it can be other polygonal structures, an electrolysis chamber 3 is opened inside the box body 1, an ionization component is provided on the side wall of the box body 1, and an air inlet 4 and an air outlet 5 are symmetrically opened on the side wall of the box body 1, and the air inlet 4 and the air outlet 5 are both connected to the electrolysis chamber 3.
[0030] The ionization assembly includes a mounting base 10 fixedly installed on the surface of the housing 1. Two electrode rods 11 are embedded in the surface of the mounting base 10. Two clamping screws 12 are provided on the surface of the mounting base 10 corresponding to the two electrode rods 11. The two electrode rods 11 extend into the interior of the electrolysis chamber 3, and a discharge gap is reserved between the two electrode rods 11.
[0031] When using the ionization assembly, the external power line is tightened to the two clamping screws 12 respectively, and then the two electrode rods 11 are energized to achieve the purpose of electrolyzing oxygen molecules to produce ozone.
[0032] The hexagonal ozone discharge body uses an external oxygen supply pipe to input oxygen into the box 1 through the air inlet 4. Part of the oxygen is electrolyzed by the ionization component inside the electrolysis chamber 3 to produce ozone. The ozone gas is then discharged through the air outlet 5 under the action of airflow, thus obtaining ozone gas of a certain concentration and achieving the effect of ozone preparation.
[0033] A fixing bolt 14 is inserted at the corner of the top of the box cover 2, and a threaded hole 15 is opened on the top of the box body 1 for the fixing bolt 14 to be screwed in. The box cover 2 can be detachably installed and removed from the box body 1 through the fixing bolt 14 and the threaded hole 15.
[0034] By setting the fixing bolts 14 and threaded holes 15, the cover 2 and the body 1 can be firmly installed together, and the cover 2 can be easily removed to perform maintenance operations on the inside of the electrolysis chamber 3.
[0035] The outer wall of box 1 is equipped with splicing and assembly components.
[0036] The assembly includes a connecting pipe 6 fixedly installed on the outside of the box 1. The connecting pipe 6 corresponds to the position of the air inlet 4. The outer wall of the box 1 is provided with a connecting groove 7 corresponding to the air outlet 5. The connecting pipe 6 is adapted to the connecting groove 7. The outer wall of the box 1 is provided with a first mounting groove and a second mounting groove below the air inlet 4 and the air outlet 5, respectively. The inner wall of the first mounting groove is slidably connected with a top pin 8. The inner wall of the second mounting groove is slidably connected with a telescopic plate 9. The telescopic plate 9 is adapted to be inserted into the interior of the first mounting groove and is engaged with the top pin 8.
[0037] It is worth noting that when it is necessary to increase the ozone concentration, several boxes 1 can be assembled in series using splicing and combination components. When assembling two boxes 1, the connecting pipe 6 is inserted into the connecting groove 7 to connect the air inlet 4 and the air outlet 5. Then, the telescopic plate 9 is inserted into the first mounting groove and locked with the top pin 8 to achieve the effect of combining and installing two adjacent boxes 1. After installation, multiple electrolysis operations can be performed by multiple ionization components inside multiple boxes 1 during the airflow process. By adopting a continuous multiple electrolysis method, the requirement of efficiently and safely increasing the ozone preparation concentration can be met.
[0038] A silicone sealing ring 13 is attached to the outer wall of the connecting pipe 6, and the silicone sealing ring 13 is adapted to the inner diameter of the connecting groove 7.
[0039] It is worth noting that by setting the silicone sealing ring 13, the sealing performance when the connecting pipe 6 and the connecting groove 7 are engaged can be improved.
[0040] The inner wall of the first mounting slot is provided with a tension spring 16 that drives the top pin 8 to move upward. The bottom end of the top pin 8 extends to the bottom of the box body 1 and is provided with a finger groove 17.
[0041] It is worth noting that by setting the tension spring 16, the top pin 8 can be driven to lock with the telescopic plate 9, and the top pin 8 can be pushed down by the finger groove 17, thereby canceling the locking effect between the top pin 8 and the telescopic plate 9, completing the disassembly action, making it flexible to use.
[0042] The bottom end of the telescopic plate 9 extends to the bottom of the box 1 and is fixedly installed with a lever 18. A magnet 19 is fixedly installed on the inner wall of the second mounting groove. An iron sheet 20 is embedded on the surface of the telescopic plate 9. The magnet 19 and the iron sheet 20 are magnetically attracted to each other. When the magnet 19 and the iron sheet 20 are close to each other, the telescopic plate 9 is located inside the second mounting groove.
[0043] Furthermore, by setting up a lever 18, a magnet 19, and an iron plate 20, the telescopic plate 9 can be stored inside the second mounting slot when not assembled and used. The magnetic force between the magnet 19 and the iron plate 20 is used to position the telescopic plate 9, thereby achieving the effect of storing the telescopic plate 9.
[0044] Finally, it should be noted that the accompanying drawings of the embodiments disclosed in this utility model only involve the structures involved in the embodiments disclosed in this utility model. Other structures can refer to the general design. In the absence of conflict, the same embodiment and different embodiments of this utility model can be combined with each other.
Claims
1. A hexagonal ozone discharge body comprising a box body (1), the top of the box body (1) is provided with a box cover (2), characterized in that: The box body (1) has a regular hexagonal cross section. An electrolysis chamber (3) is provided inside the box body (1). An ionization component is provided on the side wall of the box body (1). An air inlet (4) and an air outlet (5) are symmetrically provided on the side wall of the box body (1). Both the air inlet (4) and the air outlet (5) are connected to the electrolysis chamber (3). A splicing assembly is provided on the outer wall of the box body (1). The splicing assembly includes a connecting pipe (6) fixedly installed on the outside of the box body (1). The connecting pipe (6) is positioned corresponding to the air inlet (4). The outer wall of the box body (1) is provided with a connecting groove (7) corresponding to the air outlet (5). The connecting pipe (6) is adapted to the connecting groove (7). The outer wall of the box body (1) is provided with a first mounting groove and a second mounting groove below the air inlet (4) and the air outlet (5), respectively. The inner wall of the first mounting groove is slidably connected with a top pin (8). The inner wall of the second mounting groove is slidably connected with a telescopic plate (9). The telescopic plate (9) is adapted to be inserted into the interior of the first mounting groove and is engaged with the top pin (8).
2. The hexagonal ozone discharge body of claim 1, wherein: The ionization assembly includes a fixed base (10) fixedly installed on the surface of the box (1). Two electrode rods (11) are embedded on the surface of the fixed base (10). Two clamping screws (12) are provided on the surface of the fixed base (10) corresponding to the two electrode rods (11). The two electrode rods (11) extend into the interior of the electrolysis chamber (3), and a discharge gap is reserved between the two electrode rods (11).
3. The hexagonal ozone discharger according to claim 1, characterized in that: A silicone sealing ring (13) is attached to the outer wall of the connecting pipe (6), and the silicone sealing ring (13) is adapted to the inner diameter of the connecting groove (7).
4. The hexagonal ozone discharger according to claim 1, characterized in that: A fixing bolt (14) is inserted at the corner of the top of the cover (2), and a threaded hole (15) is opened on the top of the box body (1) for the fixing bolt (14) to be screwed in. The cover (2) can be detachably installed between the cover (2) and the box body (1) through the fixing bolt (14) and the threaded hole (15).
5. A hexagonal ozone discharge generator according to claim 1, characterized in that: The inner wall of the first mounting groove is provided with a tension spring (16) for driving the top pin (8) to move upward. The bottom end of the top pin (8) extends to the bottom of the box (1) and is provided with a finger groove (17).
6. The hexagonal ozone discharger according to claim 1, characterized in that: The bottom end of the telescopic plate (9) extends to the bottom of the box body (1) and is fixedly installed with a lever (18). A magnet (19) is fixedly installed on the inner wall of the second mounting groove. An iron sheet (20) is embedded on the surface of the telescopic plate (9). The magnet (19) and the iron sheet (20) are magnetically attracted. When the magnet (19) and the iron sheet (20) are close together, the telescopic plate (9) is located inside the second mounting groove.