Generator of hydrogen-oxygen all-in-one machine
By designing a hydrogen-oxygen integrated generator structure that allows for easy removal of the electrolytic cell, the problem of cleaning the electrolytic cell is solved, electrolysis efficiency and device flexibility are improved, and gas leakage is prevented.
Patent Information
- Application Number
- CN202423105837.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-17
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2034-12-17
AI Technical Summary
The electrolytic cell in traditional hydrogen-oxygen integrated generators is difficult to clean. Scale buildup leads to increased resistance, reduced electrolysis efficiency, and uneven corrosion of the electrode materials.
The design includes a cabinet, an electrolytic cell, a partition, and a positioning component. The electrolytic cell can be easily removed through sliding connections and limiting components. A sealing component prevents gas leakage, a movable component facilitates device movement, and a fixed component ensures a stable connection.
It enables convenient cleaning of the electrolytic cell, avoids scale buildup, improves electrolysis efficiency, reduces limitations, prevents gas leakage, and enhances the flexibility and stability of the device.
Smart Images

Figure CN223522682U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to hydrogen oxygen production technical field, concretely is hydrogen oxygen all -in -one generator. BACKGROUND
[0002] Hydrogen oxygen is generally hydrogen and oxygen, they are two most basic chemical element molecular form combination, and hydrogen oxygen all -in -one generator is a kind of equipment that water is decomposed into hydrogen and oxygen by technical means, usually adopts the principle of electrolysis of water.
[0003] In the traditional hydrogen oxygen all -in -one generator, there is the problem that the electrolytic cell is not convenient to take out for cleaning, if ordinary tap water or water that is not fully purified is used in the electrolysis process, the mineral substances (such as calcium, magnesium, silicate, etc.) contained therein will evaporate or precipitate with water during electrolysis, and deposit on the wall of the electrolytic cell or the surface of the electrode, thereby forming scale, and during the electrolysis process, especially at the anode, some side reactions may occur, for example, if dissolved carbonate or bicarbonate is present in the water, they may combine with calcium ions to form calcium carbonate precipitate, and over time, these precipitates gradually accumulate to form a layer of scale, and the deposited scale covers the surface of the electrode, increases the resistance and reduces the electrolysis efficiency, resulting in reduced gas (hydrogen and oxygen) production, and after the scale adheres to the surface of the electrode, it may also cause uneven corrosion of the electrode material. CONTENT OF THE UTILITY MODEL
[0004] The utility model aims at providing hydrogen oxygen all -in -one generator to solve the problem that the electrolytic cell is not convenient to take out for cleaning in the background art.
[0005] To achieve the above-mentioned purpose, the utility model provides the following technical scheme:
[0006] Hydrogen oxygen all -in -one generator, including:
[0007] Place cabinet;
[0008] Electrolytic cell;The electrolytic cell is slidably connected in the inside of place cabinet;
[0009] Partition;The partition is fixedly connected in the inside of electrolytic cell;
[0010] Two exhaust pipes;Two the exhaust pipe all is located in place cabinet top portion;
[0011] The utility model also includes the positioning assembly for electrolytic cell positioning, the positioning assembly includes a plurality of sliding slots, a plurality of the sliding slots are all set up on both ends of both sides in the inside of placing cabinet, the electrolytic cell all is equipped with the sliding block around, and the sliding block all is connected in slidingly in the inside of sliding slot, the placing cabinet is equipped with the limiting component for electrolytic cell limiting on, the placing cabinet top is equipped with the sealing assembly for electrolytic cell sealing, the placing cabinet top is also equipped with the fixed component for exhaust pipe fixing, the placing cabinet bottom is equipped with the moving assembly for placing cabinet moving.
[0012] On the basis of the above technical scheme, the utility model also provides the following optional technical scheme:
[0013] In an optional scheme: the limiting component includes cabinet door, the cabinet door rotation is connected on placing cabinet one side, the cabinet door is equipped with the buckle on both ends of the side away from electrolytic cell, the placing cabinet is equipped with the lock block on both ends of the side away from electrolytic cell.
[0014] In an optional scheme: the sealing assembly includes two first electric push rods, two the first electric push rod all is equipped with the limiting frame on the output end, the limiting frame is connected in slidingly in the inside of placing cabinet top, the limiting frame is equipped with the sealing pad on the side close to electrolytic cell.
[0015] In an optional scheme: the fixed component includes a plurality of limiting slots, a plurality of the limiting slots are all set up on the top of placing cabinet, the limiting block is connected in slidingly in the inside of limiting slot, the limiting block top is equipped with the clamping ring, the clamping ring both sides are equipped with a plurality of support blocks, the limiting rod is fixedly connected in the inside of the support block on the upper part and the middle lower part of one clamping ring, and the limiting rod other end is connected in slidingly in the inside of the support block on the upper part and the middle lower part of another clamping ring, the support block in the middle of one clamping ring is rotatably connected with locking screw, and the threaded end of the locking screw is threadedly connected in the inside of the support block in the middle of another clamping ring.
[0016] In an optional scheme: the moving assembly includes the bottom plate, the bottom plate is fixedly connected in the bottom of placing cabinet, the second electric push rod is equipped with on the top of the bottom plate around, the second electric push rod output end is equipped with universal wheel, the bottom plate inside is equipped with the receiving groove around.
[0017] In an optional scheme: the one end in the inside of electrolytic cell is equipped with anode electrode sheet, the other end in the inside of electrolytic cell is equipped with cathode electrode sheet.
[0018] In an optional scheme: the limiting frame is day-shaped, and the sealing pad is compatible with the shape specification of limiting frame.
[0019] In an alternative: the two ends of the top of the placing cabinet are also provided with water injection pipes, and the water injection pipes are each provided with a one-way valve.
[0020] Compared with the prior art, the utility model has the beneficial effects as follows:
[0021] 1、The utility model discloses cancel the limiting of electrolytic cell to limiting component, then pull electrolytic cell, reached the effect that electrolytic cell can be taken out, thereby can clean its inside, thereby avoid the scale attachment on electrolytic cell, increase the resistance, reduce the electrolysis efficiency's condition.
[0022] 2、The utility model discloses moving component, reached the effect that placing cabinet is moved, make it can move according to actual use place, thereby reduced the limitation, and simple operation is used flexibly.
[0023] 3、The utility model discloses the joint of the storage tank or the interface of other equipment in exhaust pipe, then through fixing component, reached its fixed effect, prevent hydrogen and oxygen from leaking in the process of conveying. DRAWINGS
[0024] Figure 1 It is the structure schematic diagram of the utility model.
[0025] Figure 2 It is the structure cutaway view of the utility model.
[0026] Figure 3 It is the electrolytic cell structure schematic diagram of the utility model.
[0027] Figure 4 It is the structure schematic diagram of the utility model A.
[0028] Figure 5 It is the bottom plate structure cutaway view of the utility model.
[0029] Among them: 100, placing cabinet;200, electrolytic cell;300, baffle;400, exhaust pipe;501, sliding groove;502, sliding block;503, cabinet door;504, buckle;505, lock block;601, first electric push rod;602, limiting frame;603, sealing gasket;701, limiting groove;702, limiting block;703, clamping ring;704, supporting block;705, limiting rod;706, locking screw;801, bottom plate;802, second electric push rod;803, universal wheel. DETAILED DESCRIPTION
[0030] In order to make the purpose, technical scheme and advantages of the utility model more clearly, the following is combined with the drawings and examples, and the utility model is further described in detail.
[0031] In one embodiment, such as - Figure 5 As shown, the integrated hydrogen-oxygen generator includes: a placement cabinet 100, an electrolytic cell 200, a partition 300, two exhaust pipes 400, and a positioning assembly; the electrolytic cell 200 is slidably connected to the inside of the placement cabinet 100; the partition 300 is fixedly connected to the inside of the electrolytic cell 200; both exhaust pipes 400 are located at the top of the placement cabinet 100; the positioning assembly includes several sliding grooves 501, which are all located at both ends of the two sides inside the placement cabinet 100; sliders 502 are provided around the perimeter of the electrolytic cell 200, and... The sliders 502 are all slidably connected inside the slide grooves 501. The placement cabinet 100 is provided with a limiting component to limit the electrolytic cell 200. The top of the placement cabinet 100 is provided with a sealing component to seal the electrolytic cell 200. The top of the placement cabinet 100 is also provided with a fixing component to fix the exhaust pipe 400. The bottom of the placement cabinet 100 is provided with a moving component to move the placement cabinet 100. By placing the sliders 502 inside the slide grooves 501, the electrolytic cell 200 is then pushed to reach the inside of the placement cabinet 100.
[0032] In one embodiment, such as Figure 1 As shown, the limiting component includes a cabinet door 503, which is rotatably connected to one side of the placement cabinet 100. The cabinet door 503 has buckles 504 on both ends of the side away from the electrolytic cell 200, and the placement cabinet 100 has locking blocks 505 on both ends of the side away from the electrolytic cell 200. By pulling the buckles 504, they are brought close to the locking blocks 505, thereby limiting the cabinet door 503, and the cabinet door 503 limits and fixes the electrolytic cell 200.
[0033] In one embodiment, such as Figure 1 and Figure 2 As shown, the sealing assembly includes two first electric push rods 601, both of which are located on the top of the placement cabinet 100. Each of the output ends of the first electric push rods 601 is provided with a limiting frame 602. The limiting frame 602 is slidably connected to the top of the placement cabinet 100. A sealing gasket 603 is provided on the side of the limiting frame 602 near the electrolytic cell 200. By activating the first electric push rods 601, the limiting frame 602 and the sealing gasket 603 are moved up and down, thereby bringing the sealing gasket 603 closer to the top of the electrolytic cell 200 and sealing it.
[0034] In one embodiment, such as Figure 1 , Figure 2 and Figure 4As shown, the fixing assembly comprises a plurality of limiting grooves 701, the limiting grooves 701 are arranged on the top of the placing cabinet 100, the limiting grooves 701 are slidably connected with limiting blocks 702, the limiting blocks 702 are provided with clamping rings 703, the clamping rings 703 are provided with a plurality of supporting blocks 704, the supporting blocks 704 on the upper and lower middle parts of one clamping ring 703 are fixedly connected with limiting rods 705, and the other ends of the limiting rods 705 are slidably connected with the supporting blocks 704 on the upper and lower middle parts of the other clamping ring 703, the supporting blocks 704 on the middle part of one clamping ring 703 are rotatably connected with locking screws 706, and the threaded ends of the locking screws 706 are threadedly connected with the supporting blocks 704 on the middle part of the other clamping ring 703, by sliding the two clamping rings 703, the two clamping rings 703 are close to each other, then the locking screws 706 are rotated to fix the two clamping rings 703, and the limiting rods 705 limit the two clamping rings 703.
[0035] In one embodiment, as shown in Figure 1 and Figure 5 The moving assembly comprises a bottom plate 801, the bottom plate 801 is fixedly connected to the bottom of the placing cabinet 100, the second electric push rod 802 is arranged on the top of the bottom plate 801, the output end of the second electric push rod 802 is provided with a universal wheel 803, and the bottom plate 801 is internally provided with a receiving groove, by starting the second electric push rod 802, the universal wheel 803 is driven to ascend and descend, when the universal wheel 803 reaches the bottom of the bottom plate 801, the bottom plate 801 can be driven to move.
[0036] In one embodiment, as shown in Figure 3 The electrolytic cell 200 is provided with an anode electrode sheet at one end, and a cathode electrode sheet at the other end, the anode electrode sheet generates positive electricity, so that water molecules lose electrons to form oxygen, and the cathode electrode sheet generates negative electricity, so that water molecules obtain electrons to form hydrogen.
[0037] In one embodiment, as shown in Figure 2 The limiting frame 602 is in the shape of a day, and the sealing gasket 603 is matched with the shape and size of the limiting frame 602, so that the sealing gasket 603 can completely seal the electrolytic cell 200.
[0038] In one embodiment, as shown in Figure 1 and Figure 2 The placing cabinet 100 is further provided with a water injection pipe at both ends, and the water injection pipe is provided with a one-way valve, the water injection pipe can add water or liquid to be decomposed into the electrolytic cell 200, and the one-way valve can prevent the gas generated by electrolysis from flowing out.
[0039] The above embodiment discloses a hydrogen and oxygen integrated generator, wherein the buckle 504 is pulled away from the lock block 505, so that the cabinet door 503 can be opened, then the sliding block 502 is placed in the sliding groove 501, then the electrolytic cell 200 is pushed to be placed in the placing cabinet 100, then the cabinet door 503 is pushed to be close to the electrolytic cell 200, then the buckle 504 is pulled again to be close to the lock block 505, so that the cabinet door 503 is limited, and the cabinet door 503 limits and fixes the electrolytic cell 200, then the water or liquid to be decomposed is added to the electrolytic cell 200 through the water injection pipe, then the first electric push rod 601 is started to drive the limiting frame 602 and the sealing gasket 603 to rise and fall, so that the sealing gasket 603 is close to the top of the electrolytic cell 200, so as to seal it, then the joint of the storage tank or the interface of other equipment is placed in the exhaust pipe 400, then the two clamping rings 703 are slid to be close to each other, then the locking screw 706 is rotated to fix the two clamping rings 703, so as to prevent the exhaust pipe 400 from leaking, then the anode electrode sheet generates positive electricity, so that the water molecules lose electrons to form oxygen, and the cathode electrode sheet generates negative electricity, so that the water molecules obtain electrons to form hydrogen, when the placing cabinet 100 needs to be moved, the second electric push rod 802 is started to drive the universal wheel 803 to rise and fall, when the universal wheel 803 reaches the bottom of the bottom plate 801, the bottom plate 801 can be moved, when it is not needed to be moved, the second electric push rod 802 is started again to drive the universal wheel 803 to reach the storage slot, so that the bottom plate 801 can be supported, when the electrolytic cell 200 needs to be cleaned, the first electric push rod 601 is started again to drive the sealing gasket 603 away from the electrolytic cell 200, then the buckle 504 is pulled away from the lock block 505, so that the cabinet door 503 can be opened, so that the electrolytic cell 200 can be taken out from the placing cabinet 100.
[0040] The above is only a specific embodiment of the present application, but the protection scope of the present application is not limited thereto, any person skilled in the art can easily think of changes or replacements within the technical range disclosed in the present application, which should be covered in the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. A hydrogen-oxygen integrated generator, comprising: a storage cabinet (100); an electrolytic cell (200); the electrolytic cell (200) is slidingly connected inside the storage cabinet (100); a partition (300); the partition (300) is fixedly connected inside the electrolytic cell (200); two exhaust pipes (400); both of the exhaust pipes (400) are arranged on the top of the storage cabinet (100); characterized in that it further comprises a positioning assembly for positioning the electrolytic cell (200), the positioning assembly comprises a plurality of sliding grooves (501), the sliding grooves (501) are arranged on both ends of the two sides inside the storage cabinet (100), the electrolytic cell (200) is provided with a sliding block (502) around the upper part, and the sliding block (502) is slidingly connected inside the sliding groove (501), the storage cabinet (100) is provided with a limiting assembly for limiting the electrolytic cell (200), the top of the storage cabinet (100) is provided with a sealing assembly for sealing the electrolytic cell (200), and the top of the storage cabinet (100) is further provided with a fixing assembly for fixing the exhaust pipe (400), and the bottom of the storage cabinet (100) is provided with a moving assembly for moving the storage cabinet (100).
2. The combined hydrogen and oxygen generator of claim 1, wherein The limiting assembly comprises a cabinet door (503), the cabinet door (503) is rotatably connected on one side of the storage cabinet (100), and the cabinet door (503) is provided with a buckle (504) on both ends away from the electrolytic cell (200), and the storage cabinet (100) is provided with a lock block (505) on both ends away from the electrolytic cell (200).
3. The combined hydrogen and oxygen generator of claim 1, wherein The sealing assembly comprises two first electric push rods (601), both of the first electric push rods (601) are arranged on the top of the storage cabinet (100), the output ends of the first electric push rods (601) are provided with a limiting frame (602), the limiting frame (602) is slidingly connected to the inner top of the storage cabinet (100), and the side close to the electrolytic cell (200) of the limiting frame (602) is provided with a sealing gasket (603).
4. The combined hydrogen and oxygen generator of claim 1, wherein The fixing assembly comprises a plurality of limiting grooves (701), the limiting grooves (701) are arranged on the top of the storage cabinet (100), the limiting grooves (701) are slidingly connected with a limiting block (702) inside, the limiting block (702) is provided with a clamping ring (703) on the top, the clamping ring (703) is provided with a plurality of supporting blocks (704) on both sides, the supporting blocks (704) inside the middle upper part and the middle lower part of one clamping ring (703) are fixedly connected with a limiting rod (705), and the other end of the limiting rod (705) is slidingly connected with the supporting blocks (704) inside the middle upper part and the middle lower part of the other clamping ring (703), and a locking screw (706) is rotatably connected in the supporting block (704) of the middle part of one clamping ring (703), and the threaded end of the locking screw (706) is threadedly connected inside the supporting block (704) of the middle part of the other clamping ring (703).
5. The combined hydrogen and oxygen generator of claim 1, wherein The mobile assembly includes a bottom plate (801) fixedly connected to the bottom of the placing cabinet (100), the periphery of the top of the bottom plate (801) is provided with a second electric push rod (802), the output end of the second electric push rod (802) is provided with a universal wheel (803), and the periphery of the inside of the bottom plate (801) is provided with a receiving groove.
6. The combined hydrogen and oxygen generator of claim 1, wherein One end of the inside of the electrolytic tank (200) is provided with an anode electrode sheet, and the other end of the inside of the electrolytic tank (200) is provided with a cathode electrode sheet.
7. The combined hydrogen and oxygen generator of claim 3, wherein The limiting frame (602) is in a sun shape, and the sealing gasket (603) is matched with the shape and size of the limiting frame (602).
8. The combined hydrogen and oxygen generator of claim 1, wherein The two ends of the top of the placing cabinet (100) are also provided with water injection pipes, and the water injection pipes are provided with one-way valves.