Generator device and purification device
By improving the structural design of the anode and cathode sheets and adopting bending settings and conductive screw locking, the problems of large power loss and heat generation caused by the small bonding area are solved, and efficient conductivity and stable connection are achieved.
Patent Information
- Application Number
- CN202410466380.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-04-18
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2044-04-18
AI Technical Summary
The existing anode and cathode plates have a small joint area, which results in large power loss and easy heat generation.
The structural design of the anode assembly and cathode assembly includes bent anode conductive segments and cathode conductive segments, which are locked to the mounting frame by conductive screws and alternately distributed in the buckle slot frame, with a large bonding area, improving conductive efficiency and reducing local heat.
It improves the conductive efficiency, reduces the power loss, enhances the stability of the structure and the consistency of assembly, and avoids the leakage problem.
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Figure CN118387990B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of food processing, and in particular to a generator device and a purification device. Background Art
[0002] Existing food purification equipment is equipped with a generator device that is immersed in water. The cathode and anode plates of the generator device generate hydroxyl factors under the action of high current and high voltage output by the control box device. The hydroxyl factors can decompose viruses, bacteria and pesticide residues in fruits and vegetables. However, due to the large number of cathode and anode plates, each cathode and anode plate needs to be powered. For example, Chinese public document CN 115259293 A discloses a water hydroxyl generator and its production process, which not only discloses the structure of the water hydroxyl generator, but also discloses the structure and materials of the anode and cathode plates.
[0003] Existing anode and cathode plates are connected to metal bars via thin-walled plates to form a conductive connection. Due to the small bonding area between the thin-walled plates and the metal bars, high voltage and high current can easily cause the joint to heat up significantly, leading to significant power loss and a need for improvement. Summary of the Invention
[0004] In order to overcome the problems existing in the related art, an embodiment of the present invention provides a generator device and a purification device to solve the technical problems of small coupling area and large power loss.
[0005] According to a first aspect of an embodiment of the present invention, a generator device is provided, the generator device comprising:
[0006] A hollow shell is provided with a generating cavity and a plurality of fluid holes penetrating into the generating cavity;
[0007] An anode assembly includes an anode mounting frame and a plurality of anode sheets. The anode mounting frame is provided with a plurality of anode slots spaced apart from each other. The anode sheets are bent to form anode conductive segments and anode trigger segments. The anode conductive segments of two adjacent anode sheets are partially overlapped and locked to the anode mounting frame via conductive screws. The anode trigger segments are snapped into corresponding anode slots.
[0008] The cathode assembly includes a cathode mounting frame and a plurality of cathode sheets. The cathode mounting frame is provided with a plurality of cathode slots distributed at intervals. The cathode sheets are bent to form cathode conductive segments and cathode trigger segments. The cathode conductive segments of two adjacent cathode sheets are partially overlapped and locked to the cathode mounting frame by conductive screws. The cathode trigger segments are buckled into corresponding cathode slots.
[0009] A buckle slot frame is provided with a waterproof slot formed by a surface depression, a plurality of anode slots and cathode slots connected to the waterproof slot, the opening positions of the anode slots correspond one-to-one with the opening positions of the anode clamping slots, the anode triggering segments buckle into the corresponding anode slots, the opening positions of the cathode slots correspond one-to-one with the opening positions of the cathode clamping slots, the cathode triggering segments buckle into the corresponding cathode slots, and the anode triggering segments and the cathode triggering segments are alternately distributed and located in the generating chamber;
[0010] The waterproof groove is filled with waterproof glue, and the portions of the anode assembly and the cathode assembly located in the waterproof groove are covered by the waterproof glue; the opening of the buckle groove frame is buckled into the surface of the shell and is locked to the shell by mounting screws;
[0011] The conductive cables are respectively connected to any anode piece and any cathode piece.
[0012] In one embodiment, the buckle slot frame includes a connecting crossbeam, an anode longitudinal beam and a cathode longitudinal beam intersecting the connecting crossbeam, the waterproof groove is a continuous groove extending along the anode longitudinal beam, the connecting crossbeam and the cathode longitudinal beam, the conductive cable extends from the connecting crossbeam toward the anode longitudinal beam and the cathode longitudinal beam respectively, the anode assembly is installed on the anode longitudinal beam, and the cathode assembly is installed on the cathode longitudinal beam.
[0013] In one embodiment, the buckle slot frame is provided with a plurality of mounting countersunk holes, the mounting screws are locked to the housing through the mounting countersunk holes, and waterproof glue is injected into the mounting countersunk holes to cover the ends of the mounting screws.
[0014] In one embodiment, the mounting screws are made of stainless steel screws or titanium screws.
[0015] In one embodiment, sealant is provided at the joint between the buckle slot frame and the shell.
[0016] In one embodiment, the anode conductive segment includes a first step portion, a second step portion, and a connecting portion connecting the first step portion and the second step portion, and the first step portion and the second step portion are both provided with mounting holes, wherein, of the two overlapping anode conductive segments, the first step portion of one is affixed to the second step portion of the other, and a conductive screw passes through the mounting hole and affixes and locks the two anode conductive segments.
[0017] In one embodiment, the ratio of the combined area of the two overlapping anode conductive segments to the cross-sectional area of the anode sheet is K, wherein 5≤K≤100.
[0018] In one embodiment, a height difference between the first step portion and the second step portion is equal to a thickness of the anode sheet.
[0019] In one embodiment, the housing is provided with a plurality of positioning ribs, and a positioning groove is formed between two corresponding positioning ribs, and the positioning groove is used to correspondingly engage the anode trigger segment or the cathode trigger segment.
[0020] According to a second aspect of an embodiment of the present invention, a purification device is provided, comprising a control box device, wherein the purification device further comprises the generator device as described above, and the conductive cable is electrically connected to the control box device.
[0021] The technical solutions provided by embodiments of the present invention can include the following beneficial effects: the structures of the anode and cathode assemblies are substantially identical, ensuring consistent assembly and conductive performance. The multiple anode sheets of the anode assembly are sequentially pressed together and conductively connected via the anode conductive terminals, resulting in a large bonding area, thereby improving conductive efficiency and reducing localized heat generation. Conductive screws tightly lock two adjacent anode conductive terminals to the anode mounting frame, providing auxiliary conduction while controlling the assembly tightness of the two anode sheets, resulting in a good conductive effect.
[0022] It is to be understood that the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the invention and, together with the description, serve to explain the principles of the invention.
[0024] Figure 1 is a schematic structural diagram of a generator device according to an exemplary embodiment.
[0025] Figure 2 is a schematic diagram of an explosion structure of a generator device according to an exemplary embodiment.
[0026] Figure 3 The figure is a schematic structural diagram of a generator device when the top cover is not assembled according to an exemplary embodiment.
[0027] Figure 4 is a schematic cross-sectional structural diagram of a generator device according to an exemplary embodiment.
[0028] Figure 5 It is a structural schematic diagram of a buckle slot frame according to an exemplary embodiment.
[0029] Figure 6 is a schematic structural diagram of an anode assembly according to an exemplary embodiment.
[0030] Figure 7 FIG. 1 is a schematic structural diagram of an anode sheet according to an exemplary embodiment.
[0031] Figure 8 FIG2 is a schematic diagram of a water tank type purification device according to an exemplary embodiment.
[0032] Figure 9 is a schematic diagram of a wall-mounted purification device according to an exemplary embodiment.
[0033] In the figure, the shell 10; the fluid hole 11; the top cover 12; the base 13; the positioning rib 14; the positioning groove 15; the buckle slot frame 20; the connecting beam 21; the anode longitudinal beam 22; the cathode longitudinal beam 23; the waterproof groove 24; the mounting countersunk hole 25; the mounting boss 26; the positioning protrusion 27; the anode through-slot 28; the anode assembly 30; the anode mounting frame 31; the frame portion 311; the locking portion 312; the anode slot 313; the anode sheet 32; the anode conductive segment 321; the first step portion 3211; the second step portion 3212; the connecting portion 3213; the mounting hole 3214; the anode trigger segment 322; the cathode assembly 40; the cathode mounting frame 41; the cathode sheet 42; the cathode trigger segment 421; the conductive cable 50; the generator device 100; the equipment body 200; and the control box device 300. DETAILED DESCRIPTION
[0034] Among them, the drawings are only used for illustrative purposes and represent only schematic diagrams rather than actual pictures, and should not be understood as limiting this patent; in order to better illustrate the embodiments of the present invention, some parts of the drawings may be omitted, enlarged or reduced, and do not represent the size of the actual product; for those skilled in the art, it is understandable that some well-known structures and their descriptions in the drawings may be omitted.
[0035] The same or similar numbers in the drawings of the embodiments of the present invention correspond to the same or similar parts; in the description of the present invention, it should be understood that if the terms "upper", "lower", "left", "right", "inside", "outside" and the like indicate an orientation or position relationship based on the orientation or position relationship shown in the drawings, it is only for the convenience of describing the present invention and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operate in a specific orientation. Therefore, the terms describing the position relationship in the drawings are only used for illustrative purposes and cannot be understood as limiting this patent. For ordinary technicians in this field, the specific meanings of the above terms can be understood according to specific circumstances.
[0036] In the description of the present invention, unless otherwise expressly specified or limited, when the term "connection" or the like appears to indicate a connection relationship between components, such term should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium; it can be internal communication between two components or an interaction between two components. For those skilled in the art, the specific meanings of the above terms in the present invention can be understood in specific circumstances.
[0037] like Figures 1 to 6 As shown, the present invention provides a generator device, the generator device 100 includes a hollow shell 10, an anode assembly 30, a cathode assembly 40, a buckle slot frame 20 and a conductive cable 50, the conductive cable 50 is connected to a power source and transmits high voltage and current to the anode assembly 30 and the cathode assembly 40, and a hydroxyl factor is generated between the anode assembly 30 and the cathode assembly 40.
[0038] The shell 10 is a hollow shell structure processed from a thin-walled structure. Preferably, the shell 10 is made of plastic material to reduce the overall weight and insulation performance. The shell 10 is provided with a generating chamber and a plurality of fluid holes 11 penetrating into the generating chamber, and liquids such as water enter the generating chamber along the fluid holes 11. Preferably, the shell 10 includes a base 13 and a top cover 12 that are closed and matched. The base 13 is provided with a grid-shaped fluid hole 11, and the top cover 12 is provided with a plurality of parallel long strip fluid holes 11. Preferably, the base 13 and the top cover 12 are configured as a rectangular shell structure, and arc corners are provided at the corners of the shell 10. Optionally, the length dimension of the shell 10 can be set to 100mm~400mm, such as, the length dimension is set to 100mm, 150mm, 200mm, 250mm, 300mm, 350mm, 400mm; the width dimension can be set to 50mm~300mm, such as, the width dimension is set to 50mm, 100mm, 150mm, 200mm, 250mm, 300mm.
[0039] The buckle slot frame 20 is provided with a waterproof slot 24 formed by a depression on the surface, a plurality of anode slots 28 and cathode slots connected to the waterproof slot 24, the buckle slot frame 20 and the base 13 are buckled together, and a hollow channel-shaped space with closed ends is formed between the waterproof slot 24 and the base 13. The connection terminal of the anode assembly 30 is located in the channel-shaped space and is electrically connected to the positive pole of the conductive cable 50, and the connection terminal of the cathode assembly 40 is located in the channel-shaped space and is electrically connected to the negative pole of the conductive cable 50.
[0040] Specifically, the anode assembly 30 includes an anode mounting frame 31 and a plurality of anode sheets 32. The anode sheets 32 are formed by bending thin metal sheets. Specifically, the anode sheets 32 are bent to form anode conductive segments 321 and anode trigger segments 322, which together form a roughly L-shaped structure.
[0041] The anode mounting frame 31 is a rigid, strip-shaped structural member that can be inserted and assembled into the snap-in frame 20. The anode mounting frame 31 is provided with a plurality of spaced-apart anode slots 313. The anode conductive segments 321 of two adjacent anode sheets 32 are partially overlapped and locked to the anode mounting frame 31 via conductive screws. The anode trigger segments 322 snap into corresponding anode slots 313. The anode slots 313 are recessed from one side of the anode mounting frame 31 to form a lateral notch. The position of the anode slots 313 matches the installation position of the anode sheets 32, thereby positioning and defining the anode sheets 32, improving the installation position of the anode sheets 32 and ensuring uniform distribution.
[0042] Optionally, the anode mounting frame 31 includes a plate-shaped frame portion 311 and a locking portion 312 partially protruding from one side of the frame portion 311. The anode mounting frame 31 is provided with a locking hole extending from the frame portion 311 to the locking portion 312. A conductive screw passes through the two stacked anode conductive segments 321 and is locked into the locking hole to improve the locking effect.
[0043] The structure and principles of the cathode assembly 40 are essentially the same as those of the anode assembly 30. This can be understood by referring to the principles and assembly structure of the anode assembly 30 and will not be further elaborated here. The cathode assembly 40 comprises a cathode mounting frame 41 and a plurality of cathode plates 42. The cathode mounting frame 41 is provided with a plurality of spaced cathode slots. The cathode plates 42 are bent to form cathode conductive segments and cathode triggering segments 421. The cathode conductive segments of two adjacent cathode plates 42 partially overlap and are locked to the cathode mounting frame 41 via conductive screws. The cathode triggering segments 421 snap into corresponding cathode slots.
[0044] The conductive cables 50 are connected to any anode sheet 32 and any cathode sheet 42, respectively. That is, the positive electrode of the conductive cable 50 is connected to the anode sheet 32, and the negative electrode of the conductive cable 50 is connected to the cathode sheet 42. Preferably, the conductive cables 50 are connected to the anode sheet 32 at the end of the anode assembly 30, and to the cathode sheet 42 at the end of the cathode assembly 40. When multiple anode sheets 32 are stacked in sequence, connecting the conductive cable 50 to the anode sheet 32 at the end can make all anode sheets 32 conductive. Similarly, connecting the conductive cable 50 to the cathode sheet 42 at the end can make all cathode sheets 42 conductive.
[0045] The opening positions of the anode slots 28 correspond to the opening positions of the anode clamping slots 313. After all anode sheets 32 are locked and connected to the anode mounting frame 31, the anode trigger segments 322 snap into their corresponding anode slots 28. The anode mounting frame 31 and the walls of the anode clamping slots 313 are spaced apart so that the anode slots 28 and the anode clamping slots 313 jointly define the extension position of the anode trigger segments 322. The anode trigger segments 322 extend linearly out of the clamping slot frame 20. Based on the same principle, the opening positions of the cathode slots correspond to the opening positions of the cathode clamping slots, and the cathode trigger segments 421 snap into their corresponding cathode slots.
[0046] The anode triggering segments 322 and cathode triggering segments 421 are thin-walled, plate-like structures that extend into the generator chamber. They are arranged alternately within the generator chamber. They are positioned opposite each other, with a cathode triggering segment 421 positioned between adjacent anode triggering segments 322. Similarly, a cathode triggering segment 421 is positioned between adjacent cathode triggering segments 421. A space is formed between the anode triggering segments 322 and cathode triggering segments 421, through which the generated hydroxyl factor enters the liquid.
[0047] In a preferred embodiment, the housing 10 is provided with a plurality of positioning ribs 14, with a positioning groove 15 formed between two corresponding positioning ribs 14. The positioning groove 15 is used to engage with the anode trigger segment 322 or the cathode trigger segment 421. The positioning ribs 14 protrude from the surface of the base 13 to form a rib structure. The positioning grooves 15 are provided in the extension direction of the anode and cathode locking grooves 313 and 421, respectively. This effectively positions and supports the anode and cathode trigger segments 322 and 421.
[0048] The waterproof groove 24 is filled with waterproof glue, and the portions of the anode assembly 30 and cathode assembly 40 located within the waterproof groove 24 are coated with the waterproof glue. The opening of the snap-on bracket 20 snaps onto the surface of the housing 10 and is locked to the housing 10 via mounting screws. Furthermore, the locking portions 312 are spaced apart, protruding columns. After the waterproof glue fills the waterproof groove 24, the locking portions 312 enhance and position the anode mounting bracket 31, ensuring strong connection and high structural stability.
[0049] The anode assembly 30 and cathode assembly 40 are essentially identical in structure, ensuring consistent assembly and electrical conductivity. The multiple anode sheets 32 of the anode assembly 30 are electrically connected by sequentially pressing together the anode conductive terminals, creating a large bonding area, thereby improving electrical conductivity and reducing localized heat generation. Conductive screws securely lock two adjacent anode conductive terminals to the anode mounting frame 31, providing both auxiliary electrical conduction and controlling the tightness of the assembly of the two anode sheets 32, resulting in excellent electrical conductivity.
[0050] In one embodiment, the buckle slot frame 20 includes a connecting crossbeam 21, an anode longitudinal beam 22 and a cathode longitudinal beam 23 intersecting the connecting crossbeam 21, wherein the anode longitudinal beam 22 and the cathode longitudinal beam 23 are arranged relatively parallel to each other, and the anode trigger segment 322 and the cathode trigger segment 421 are located in the area between the anode longitudinal beam 22 and the cathode longitudinal beam 23. Preferably, the buckle slot frame 20 has a structure approximately in the shape of a "U" or a "mouth". Preferably, the anode longitudinal beam 22 and the cathode longitudinal beam 23 are each provided with a plurality of positioning protrusions 27, and the plurality of positioning protrusions 27 form a limiting groove. The limiting groove of the anode longitudinal beam 22 is used to define the frame portion 311 of the anode mounting frame 31, and the limiting groove of the cathode longitudinal beam 23 is used to define the frame portion 311 of the cathode mounting frame 41. The limiting groove can improve the installation precision of the anode assembly 30 and the cathode assembly 40, and improve the assembly accuracy and consistency.
[0051] The waterproof groove 24 forms a continuous groove extending along the anode longitudinal beam 22, the connecting crossbeam 21, and the cathode longitudinal beam 23. The conductive cable 50 extends from the connecting crossbeam 21 toward the anode longitudinal beam 22 and the cathode longitudinal beam 23, respectively. The anode assembly 30 is mounted on the anode longitudinal beam 22, and the cathode assembly 40 is mounted on the cathode longitudinal beam 23. The waterproof groove 24 extends along the buckle frame 20, partially housing the cables, thereby preventing exposure and preventing electrical leakage. It is worth noting that the waterproof adhesive can contain an insulating component to encase the cables, the anode conductive end, and the cathode conductive end, thereby preventing electrical leakage.
[0052] Furthermore, the buckle frame 20 is provided with multiple mounting countersunk holes 25, through which mounting screws are locked to the housing 10. The mounting countersunk holes 25 are injected with waterproof glue, covering the ends of the mounting screws. The anode longitudinal beam 22 and the cathode longitudinal beam 23 are provided with protruding mounting bosses 26 on the sides, and the mounting countersunk holes 25 are located on the mounting bosses 26. The mounting screws are covered with waterproof glue, which not only prevents the mounting screws from corroding in a hydroxyl environment, but also prevents them from being affected by liquid exposure and affecting the liquid composition. Preferably, the mounting screws are stainless steel screws or titanium screws to reduce costs.
[0053] In a preferred embodiment, sealant is provided at the joint position between the buckle slot frame 20 and the housing 10 , so that the buckle slot frame 20 and the housing 10 form an integrated structure, thereby improving the tightness of the assembly.
[0054] like Figures 2 to 7 As shown, the conductive connection methods of the anode assembly 30 and the cathode assembly 40 are basically the same. The conductive connection method of the anode conductive segment 321 in the anode assembly 30 is used as an example for illustrative description. The cathode assembly 40 can be understood by reference and will not be repeated here.
[0055] The anode conductive segment 321 includes a first step portion 3211, a second step portion 3212, and a connecting portion 3213 connecting the first step portion 3211 and the second step portion 3212. The first step portion 3211 and the second step portion 3212 are both provided with mounting holes 3214. Among the two overlapping anode conductive segments 321, the first step portion 3211 of one fits against the second step portion 3212 of the other, and the conductive screw passes through the mounting hole 3214 and fits and locks the two anode conductive segments 321 together. The anode conductive segment 321 is configured as a step-bending structure, and the anode conductive segments 321 of two adjacent anode sheets 32 complement each other to form an overlapping structure with consistent overlapping heights. The anode sheets 32 achieve a large bonding area and a good fitting effect through the complementary step structure. The conductive screw locks the overlapping anode conductive segments 321, and the locking conductive effect is good.
[0056] In one embodiment, the ratio of the combined area of the two overlapping anode conductive segments 321 to the cross-sectional area of the anode sheet 32 is K, where 5≤K≤100. The overlapping portions of the anode conductive segments 321 are rectangular fitting surfaces to expand the contact conductive area, thereby improving the conductive efficiency and conductive effect. In this embodiment, the combined area of the two overlapping anode conductive segments 321 is large, and all the anode sheets 32 are approximately integrated, which can be easily assembled and provide excellent current and voltage output effects during the assembly of the generator device 100 and the generation of hydroxyl factors. Optionally, the ratio K can be set to 5, 10, 20, 30, 45, 50, 60, 80, 100, etc.
[0057] Further preferably, the height difference between the first step portion 3211 and the second step portion 3212 is equal to the thickness of the anode sheet 32, so that the two overlapping anode conductive segments 321 are basically in the same plane, thereby improving the smoothness of the assembly and the consistency of the waterproof glue inclusion.
[0058] like Figure 8 and Figure 9 As shown, the generator device 100 disclosed in the above embodiment is applied to a purification device, wherein the purification device includes a control box device 300 and the generator device 100, and the conductive cable 50 is electrically connected to the control box device 300. Optionally, the control box device 300 can be installed on the equipment body 200. For example, if the equipment body 200 is configured as a cleaning device equipped with a water tank, the generator device 100 is installed at the bottom of the water tank.
[0059] Optionally, the control box device 300 is independently provided and connected to the generator device 100 via a conductive cable 50, so that the generator device 100 can be used flexibly to adapt to different application scenarios and application locations. For example, the control box device 300 is the control portion connected to the power supply. The control box device 300 is provided with a control circuit module, which is electrically connected to the power supply circuit and can supply a suitable operating voltage and current to the generator device 100. For example, the control box device 300 is connected to the mains power supply, and the boost unit of the control circuit module is used to boost the voltage to output a high voltage and current that meets the requirements for the operation of the generator device 100.
[0060] Optionally, the conductive cable 50 may be a single cable in an integral S-shaped configuration to improve the stability of power transmission. Optionally, the conductive cable 50 may be composed of two or more cables, with adjacent cables connected by connectors to improve the convenience of assembly and disassembly and independent wiring.
[0061] Other embodiments of the present invention will readily occur to those skilled in the art after considering the specification and practicing the disclosure herein. This application is intended to cover any variations, uses, or adaptations of the present invention that follow the general principles of the invention and include common knowledge or customary techniques in the art not disclosed herein. The description and examples are to be considered as exemplary only, with the true scope and spirit of the invention being indicated by the following claims.
[0062] It should be understood that the present invention is not limited to the exact construction described above and shown in the drawings, and that various modifications and changes may be made without departing from the scope thereof. The scope of the present invention is limited only by the appended claims.
Claims
1. A generator device, characterized in that The generator set includes: A hollow shell is provided with a generating cavity and a plurality of fluid holes extending through the generating cavity; An anode assembly includes an anode mounting frame and a plurality of anode sheets. The anode mounting frame is provided with a plurality of anode slots spaced apart from each other. The anode sheets are bent to form anode conductive segments and anode trigger segments. The anode conductive segments of two adjacent anode sheets are partially overlapped and locked to the anode mounting frame via conductive screws. The anode trigger segments are snapped into corresponding anode slots. The cathode assembly includes a cathode mounting frame and a plurality of cathode sheets. The cathode mounting frame is provided with a plurality of cathode slots distributed at intervals. The cathode sheets are bent to form cathode conductive segments and cathode trigger segments. The cathode conductive segments of two adjacent cathode sheets are partially overlapped and locked to the cathode mounting frame by conductive screws. The cathode trigger segments are buckled into corresponding cathode slots. A buckle slot frame is provided with a waterproof slot formed by a surface depression, a plurality of anode slots and cathode slots connected to the waterproof slot, the opening positions of the anode slots correspond one-to-one with the opening positions of the anode clamping slots, the anode triggering segments buckle into the corresponding anode slots, the opening positions of the cathode slots correspond one-to-one with the opening positions of the cathode clamping slots, the cathode triggering segments buckle into the corresponding cathode slots, and the anode triggering segments and the cathode triggering segments are alternately distributed and located in the generating chamber; The waterproof groove is filled with waterproof glue, and the portions of the anode assembly and the cathode assembly located in the waterproof groove are covered by the waterproof glue; the opening of the buckle groove frame is buckled into the surface of the shell and is locked to the shell by mounting screws; The conductive cables are respectively connected to any anode piece and any cathode piece.
2. The generator device according to claim 1, characterized in that The buckle slot frame includes a connecting crossbeam, an anode longitudinal beam and a cathode longitudinal beam intersecting the connecting crossbeam, the waterproof groove is a continuous groove extending along the anode longitudinal beam, the connecting crossbeam and the cathode longitudinal beam, the conductive cable extends from the connecting crossbeam toward the anode longitudinal beam and the cathode longitudinal beam respectively, the anode assembly is installed on the anode longitudinal beam, and the cathode assembly is installed on the cathode longitudinal beam.
3. The generator device according to claim 1, characterized in that The buckle slot frame is provided with a plurality of mounting countersunk holes, and the mounting screws are locked to the shell through the mounting countersunk holes. Waterproof glue is injected into the mounting countersunk holes and covers the ends of the mounting screws.
4. The generator device according to claim 3, characterized in that The mounting screws are stainless steel screws or titanium screws.
5. The generator device according to claim 1, characterized in that Sealant is provided at the joint position between the buckle slot frame and the shell.
6. The generator device according to claim 1, characterized in that The anode conductive segment includes a first step portion, a second step portion, and a connecting portion connecting the first step portion and the second step portion. The first step portion and the second step portion are both provided with mounting holes. Among them, the first step portion of one of the two overlapping anode conductive segments is attached to the second step portion of the other, and a conductive screw passes through the mounting hole and locks the two anode conductive segments in place.
7. The generator device according to claim 6, characterized in that The ratio of the combined area of the two overlapping anode conductive segments to the cross-sectional area of the anode sheet is K, wherein 5≤K≤100.
8. The generator device according to claim 6, characterized in that A height difference between the first step portion and the second step portion is equal to a thickness of the anode sheet.
9. The generator device according to claim 1, characterized in that The housing is provided with a plurality of positioning ribs, and a positioning groove is formed between two corresponding positioning ribs. The positioning groove is used for correspondingly clamping the anode trigger segment or the cathode trigger segment.
10. A purification device, comprising a control box device, characterized in that: The purification device further comprises a generator device according to any one of claims 1 to 9, and the conductive cable is electrically connected to the control box device.
Citation Information
Patent Citations
Water hydroxyl generator and production process thereof
CN115259293A
Corrosion monitoring system for monitoring environment corrosiveness and material corrosion rate
CN110411937A
Electrolysis generator and purification water tank
CN208667190U