Equidistant electrode self-water-accumulating beneficial substance generating device and array having the device
By using an isometric electrode self-accumulating beneficial substance generation device in the electrostatic atomization device, the problems of restricted electrode structure and excessive harmful substances in the prior art are solved, and the effect of efficiently generating beneficial substances is achieved.
Patent Information
- Application Number
- CN202011002907.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2020-09-22
- Publication Date
- 2025-05-27
- Estimated Expiration
- 2040-09-22
AI Technical Summary
In the existing electrostatic atomization device, the electrode structure with self-destruct function is limited, the use range is limited, and it is easy to produce harmful substances that exceed the standard, and it is impossible to effectively generate beneficial substances.
An equidistant electrode self-accumulating beneficial substance generation device is adopted, including a first electrode block, a second electrode block and a refrigeration end surface. The first electrode block is opposite to the second electrode block, and water molecules in the air are collected through the refrigeration end surface to increase the amount of beneficial substance generation.
Through the isometric electrode design, tip discharge is avoided, electric field strength is enhanced, the amount of beneficial substances is increased, the cost of use and maintenance is reduced, and the bacteriostatic effect is achieved.
Smart Images

Figure CN114247575B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of purification devices, and particularly to an equidistant electrode self-pooling beneficial substance generating device and an array having the device. Background Art
[0002] Among the existing electrostatic atomization devices and discharge devices on the market, the electrodes with the self-dewing function are all needle-shaped and spherical electrodes, hole-shaped electrodes, and cylindrical electrodes. However, due to the influence of their structures, the application ranges of such electrodes are limited, and it is also extremely easy to cause the excessive standard of harmful substances. In the traditional electrostatic atomization devices that adopt parallel electrodes, the self-dewing method is not adopted, which limits the generation amount of beneficial substances. Summary of the Invention
[0003] The purpose of the present invention is to provide an equidistant electrode self-pooling beneficial substance generating device and an array having the device, so as to solve the above technical problems.
[0004] To achieve the above purpose, the technical solution of the present invention is: to provide an equidistant electrode self-pooling beneficial substance generating device, including a first electrode block, a second electrode block, and a refrigerating end face. The first electrode block and the second electrode block have opposite polarities. The first electrode block includes a first electrode main body and a first electrode substrate connected to the periphery of the first electrode main body. The second electrode block includes a second electrode main body and a second electrode substrate connected to the periphery of the second electrode main body. The first electrode main body and the second electrode main body are parallel to each other, and the first electrode substrate and the second electrode substrate are parallel to each other. The refrigerating end face is installed on the outer end face of the first electrode block or the second electrode block.
[0005] The first electrode main body is flat and smoothly connected to the first electrode substrate, and the second electrode main body is flat and smoothly connected to the second electrode substrate.
[0006] The equidistant electrode self-pooling beneficial substance generating device further includes a dielectric block disposed between the first electrode block and the second electrode block. The dielectric block includes a flat dielectric block main body and a dielectric block substrate smoothly connected to the periphery of the dielectric block main body. The dielectric block main body is parallel to the first electrode main body and the second electrode main body, and the dielectric block substrate is parallel to the first electrode substrate and the second electrode substrate.
[0007] The first electrode main body is convex in a hemispherical shape away from the second electrode main body, and the second electrode main body is convex in a hemispherical shape close to the first electrode main body. The radius of the second electrode main body is smaller than the radius of the first electrode main body.
[0008] The distance electrode from the beneficial substance generating device for water molecules further includes a dielectric block disposed between the first electrode block and the second electrode block. The dielectric block includes a hemispherical dielectric block main body protruding toward the first electrode main body and a dielectric block substrate connected to the periphery of the dielectric block main body. The dielectric block main body is parallel to the first electrode main body and the second electrode main body, and the dielectric block substrate is parallel to the first electrode substrate and the second electrode substrate.
[0009] A first central hole is provided at the center of the first electrode main body, and a second central hole is provided at the center of the second electrode main body.
[0010] The first electrode main body is in the shape of a frustum protruding in a direction away from the second electrode main body. The diameter of the end of the side wall of the first electrode main body away from the first electrode substrate is smaller than the diameter of the end of the side wall of the first electrode main body close to the first electrode substrate. The second electrode main body is in the shape of a frustum protruding in a direction close to the first electrode main body. The diameter of the end of the side wall of the second electrode main body away from the second electrode substrate is smaller than the diameter of the end of the side wall of the second electrode main body close to the second electrode substrate. The diameter of the end face of the second electrode main body away from the second electrode substrate is smaller than the diameter of the end face of the first electrode main body away from the first electrode substrate. The end face of the second electrode main body away from the second electrode substrate is parallel to the end face of the first electrode main body away from the first electrode substrate. The side wall of the first electrode main body is parallel to the side wall of the second electrode main body. A first central hole is provided at the center of the first electrode main body, and a second central hole is provided at the center of the second electrode main body.
[0011] The equidistant electrode from the beneficial substance generating device for water also includes a dielectric block disposed between the first electrode block and the second electrode block. The dielectric block includes a frustum-shaped dielectric block main body protruding toward the first electrode main body and a dielectric block substrate connected to the periphery of the dielectric block main body. The diameter of the end of the side wall of the dielectric block main body away from the dielectric block substrate is smaller than the diameter of the end of the side wall of the dielectric block main body close to the dielectric block substrate. The diameter of the end face of the dielectric block main body away from the dielectric block substrate is smaller than the diameter of the end face of the first electrode main body away from the first electrode substrate and larger than the diameter of the end face of the second electrode main body away from the second electrode substrate. The end face of the dielectric block main body away from the dielectric block substrate is parallel to the end face of the first electrode main body away from the first electrode substrate. The side wall of the dielectric block main body is parallel to the side wall of the first electrode main body. A dielectric block main body central hole is provided at the center of the dielectric block main body.
[0012] The first electrode body is in the shape of a frustum of a cone protruding in the direction close to the second electrode body. The diameter of the end of the side wall of the first electrode body far from the first electrode substrate is smaller than the diameter of the end of the side wall of the first electrode body close to the first electrode substrate. The second electrode body is in the shape of a frustum of a cone protruding in the direction close to the first electrode body. The diameter of the end of the side wall of the second electrode body far from the second electrode substrate is smaller than the diameter of the end of the side wall of the second electrode body close to the second electrode substrate. The end face of the second electrode body far from the second electrode substrate is parallel to the end face of the first electrode body far from the first electrode substrate. A first central hole is provided at the center of the first electrode body, and a second central hole is provided at the center of the second electrode body.
[0013] The present invention also provides an equidistant electrode self-pooling beneficial substance generating device array, which includes at least two equidistant electrode self-pooling beneficial substance generating devices as described above. At least two of the first electrode substrates are located on the same plane and are integrally connected to each other to form a first electrode main plate, and at least two of the second electrode substrates are located on the same plane and are integrally connected to each other to form a second electrode main plate.
[0014] Compared with the prior art, in the array electrostatic atomization device of the present invention with a sterilization function, a refrigerating end face is provided at the lower end of the first electrode, so that the first electrode collects water molecules in the air and achieves the effect of required moisture without adding water, thereby avoiding the situation that the air humidity rises greatly due to the installation of a spraying device and reducing the use and maintenance costs. At the same time, the second electrode is a conductor doped with an antibacterial copper polymer, and has a sterilization effect on the periphery of the electrode whether in the charged or powered-off state.
[0015] Through the following description and in conjunction with the drawings, the present invention will become clearer. These drawings are used to explain the embodiments of the present invention. Description of the Drawings
[0016] Figure 1 It is a structural diagram of the first embodiment of the equidistant electrode self-pooling beneficial substance generating device of the present invention.
[0017] Figure 2 It is a structural diagram of the second embodiment of the equidistant electrode self-pooling beneficial substance generating device of the present invention.
[0018] Figure 3 It is a structural diagram of the third embodiment of the equidistant electrode self-pooling beneficial substance generating device of the present invention.
[0019] Figure 4 It is a structural diagram of the fourth embodiment of the equidistant electrode self-pooling beneficial substance generating device of the present invention.
[0020] Figure 5It is a structural diagram of the fifth embodiment of the equidistant electrode self-ponding beneficial substance generating device of the present invention.
[0021] Figure 6 It is a structural diagram of the sixth embodiment of the equidistant electrode self-ponding beneficial substance generating device of the present invention.
[0022] Figure 7 It is a structural diagram of the seventh embodiment of the equidistant electrode self-ponding beneficial substance generating device of the present invention.
[0023] Figure 8 It is a structural diagram of the eighth embodiment of the equidistant electrode self-ponding beneficial substance generating device of the present invention.
[0024] Figure 9 It is a structural diagram of the ninth embodiment of the equidistant electrode self-ponding beneficial substance generating device of the present invention.
[0025] Figure 10 It is a structural diagram of the tenth embodiment of the equidistant electrode self-ponding beneficial substance generating device of the present invention.
[0026] Figure 11 It is a structural diagram of the eleventh embodiment of the equidistant electrode self-ponding beneficial substance generating device of the present invention.
[0027] Figure 12 It is a structural diagram of the first implementation manner of the first electrode main board or the second electrode main board of the equidistant electrode self-ponding beneficial substance generating device array of the present invention.
[0028] Figure 13 It is a structural diagram of the second implementation manner of the first electrode main board or the second electrode main board of the equidistant electrode self-ponding beneficial substance generating device array of the present invention.
[0029] Figure 14 It is a structural diagram of the third implementation manner of the first electrode main board or the second electrode main board of the equidistant electrode self-ponding beneficial substance generating device array of the present invention.
[0030] Figure 15 It is a structural diagram of the fourth implementation manner of the first electrode main board or the second electrode main board of the equidistant electrode self-ponding beneficial substance generating device array of the present invention.
[0031] Figure 16 It is a structural diagram of the fifth implementation manner of the first electrode main board or the second electrode main board of the equidistant electrode self-ponding beneficial substance generating device array of the present invention.
[0032] Figure 17 It is a structural diagram of the sixth implementation manner of the first electrode main board or the second electrode main board of the equidistant electrode self-ponding beneficial substance generating device array of the present invention.
[0033] Figure 18This is a structural diagram of the seventh embodiment of the first electrode main plate or the second electrode main plate of the equidistant electrode self-ponding beneficial substance generating device array of the present invention.
[0034] Figure 19 This is an application embodiment of the equidistant electrode self-ponding beneficial substance generating device array of the present invention. Specific embodiments
[0035] Reference Figure 1 , the equidistant electrode self-ponding beneficial substance generating device of the present invention includes a first electrode block 10, a second electrode block 20, and a refrigerating end face 30. The first electrode block 10 and the second electrode block 20 have opposite polarities. The first electrode block 10 includes a first electrode main body 11 and a first electrode substrate 12 connected to the periphery of the first electrode main body 11. The second electrode block 20 includes a second electrode main body 21 and a second electrode substrate 22 connected to the periphery of the second electrode main body 21. The first electrode main body 11 and the second electrode main body 21 are parallel to each other, the first electrode substrate 12 and the second electrode substrate 22 are parallel to each other, and the refrigerating end face is installed on the outer end face of the first electrode block 10 or the second electrode block 20.
[0036] In this embodiment, the first electrode main body 11 is in a flat plate shape and is smoothly connected to the first electrode substrate 12. The second electrode main body 21 is in a flat plate shape and is smoothly connected to the second electrode substrate 22. The refrigerating end face is installed on the outer end face of the second electrode block 20.
[0037] Reference Figure 2 , different from the first embodiment, a first boss 113 protrudes in the direction of the second electrode main body 21 at one end of the first electrode main body 11 close to the second electrode main body 21. A second boss 213 protrudes in the direction of the first electrode main body 21 at one end of the second electrode main body 21 close to the first electrode main body 11. The shapes of the first boss 113 and the second boss 213 are circular or elliptical or other shapes.
[0038] Reference Figure 3 , different from the second embodiment, a first pressure groove 114 is formed on one end face of the first electrode main body 11 away from the second electrode main body 21. The first pressure groove 114 is located inside the first boss 113. A second pressure groove 214 is formed on one end face of the second electrode main body 21 away from the first electrode main body 11. The second pressure groove 214 is located inside the second boss 213. The shapes of the first pressure groove 114 and the second pressure groove 214 respectively match the shapes of the first boss 113 and the second boss 213, and are circular or elliptical or other shapes.
[0039] ReferenceFigure 4 , different from the second embodiment, a first central hole 115 penetrating through the first boss 113 is formed in the first electrode body 11, and a second central hole 215 penetrating through the second boss 213 is formed in the second electrode body 21.
[0040] Reference Figure 5 , different from the first embodiment, the equidistant electrode self-water-accumulating beneficial substance generating device further includes a dielectric block 40 disposed between the first electrode block 10 and the second electrode block 20. The dielectric block 40 includes a flat dielectric block body 41 and a dielectric block substrate 42 smoothly connected to the periphery of the dielectric block body 41. The dielectric block body 41 is parallel to the first electrode body 11 and the second electrode body 21, and the dielectric block substrate 42 is parallel to the first electrode substrate 12 and the second electrode substrate 22.
[0041] Reference Figure 6 , different from the first embodiment, the first electrode body 11 is in a hemispherical shape protruding in a direction away from the second electrode body 21, the second electrode body 21 is in a hemispherical shape protruding in a direction close to the first electrode body 11, and the radius of the second electrode body 21 is smaller than the radius of the first electrode body 11.
[0042] Reference Figure 7 , different from the sixth embodiment, the distance electrode self-water molecule beneficial substance generating device further includes a dielectric block 50 disposed between the first electrode block 10 and the second electrode block 20. The dielectric block 50 includes a hemispherical dielectric block body 51 protruding toward the first electrode body 121 and a dielectric block substrate 52 connected to the periphery of the dielectric block body 51. The dielectric block body 51 is parallel to the first electrode body 11 and the second electrode body 21, and the dielectric block substrate 52 is parallel to the first electrode substrate 12 and the second electrode substrate 22.
[0043] Reference Figure 8 , different from the sixth embodiment, a first central hole 111 is formed at the center of the first electrode body 11, and a second central hole 211 is formed at the center of the second electrode body 21.
[0044] Reference Figure 9, different from the first embodiment, the first electrode body 11 is in the shape of a frustum protruding in a direction away from the second electrode body 21. The diameter of the end of the side wall of the first electrode body 11 away from the first electrode substrate 12 is smaller than the diameter of the end of the side wall of the first electrode body 11 close to the first electrode substrate 12. The second electrode body 21 is in the shape of a frustum protruding in a direction close to the first electrode body 11. The diameter of the end of the side wall of the second electrode body 21 away from the second electrode substrate 22 is smaller than the diameter of the end of the side wall of the second electrode body 21 close to the second electrode substrate 21. The diameter of the end face of the second electrode body 21 away from the second electrode substrate 22 is smaller than the diameter of the end face of the first electrode body 11 away from the first electrode substrate 12, and the end face of the second electrode body 21 away from the second electrode substrate 22 is parallel to the end face of the first electrode body 11 away from the first electrode substrate 12. The side wall of the first electrode body 11 is parallel to the side wall of the second electrode body 21. A first central hole 112 is provided at the center of the first electrode body 11, and a second central hole 212 is provided at the center of the second electrode body 21.
[0045] Different from the ninth embodiment, the equidistant electrode self-water beneficial substance generating device further includes a dielectric block 60 disposed between the first electrode block 10 and the second electrode block 20. The dielectric block 60 includes a dielectric block main body 61 in the shape of a frustum protruding toward the first electrode body 11 and a dielectric block substrate 62 connected to the periphery of the dielectric block main body 61. The diameter of the end of the side wall of the dielectric block main body 61 away from the dielectric block substrate 62 is smaller than the diameter of the end of the side wall of the dielectric block main body 62 close to the dielectric block substrate 62. The diameter of the end face of the dielectric block main body 61 away from the dielectric block substrate 62 is smaller than the diameter of the end face of the first electrode body 11 away from the first electrode substrate 12 and larger than the diameter of the end face of the second electrode body 21 away from the second electrode substrate 22. The end face of the dielectric block main body 61 away from the dielectric block substrate 62 is parallel to the end face of the first electrode body 11 away from the first electrode substrate 12, the side wall of the dielectric block main body 61 is parallel to the side wall of the first electrode body 11, and a dielectric block main body central hole 611 is provided at the center of the dielectric block main body 61.
[0046] Reference Figure 11, different from the first embodiment, the first electrode body 11 is in the shape of a frustum of a cone protruding in the direction close to the second electrode body 21, and the diameter of the end of the side wall of the first electrode body 11 far from the first electrode substrate 12 is smaller than the diameter of the end of the side wall of the first electrode body 11 close to the first electrode substrate 12. The second electrode body 21 is in the shape of a frustum of a cone protruding in the direction close to the first electrode body 11, and the diameter of the end of the side wall of the second electrode body 21 far from the second electrode substrate 22 is smaller than the diameter of the end of the side wall of the second electrode body 21 close to the second electrode substrate 22. The end face of the second electrode body 21 far from the second electrode substrate 22 is parallel to the end face of the first electrode body 11 far from the first electrode substrate 12. A first central hole 711 is provided at the center of the first electrode body 11, and a second central hole 811 is provided at the center of the second electrode body 21.
[0047] The equal-distance electrode self-pooling beneficial substance generating device array of the present invention includes at least two equal-distance electrode self-pooling beneficial substance generating devices as described above. At least two of the first electrode substrates 12 are located on the same plane and are integrally connected to each other to form a first electrode main board 101. At least two of the second electrode substrates 22 are located on the same plane and are integrally connected to each other to form a second electrode main board 102. The first electrode main board 101 and the second electrode main board 102 can be in a grid shape, as Figures 12 to 16 shown; or the first electrode main board 101 and the second electrode main board 102 can also be in an irregular shape, as Figure 17 and Figure 18 shown. When in use, the first electrode main board 101 and the second electrode main board 102 can be flexibly combined. For example, Figure 19 , two first electrode main boards 101 are symmetrically joined to form a first electrode group. At least two first electrode groups are vertically and fixedly connected to the side wall of the first electrode support 80 at intervals from top to bottom. Two second electrode main boards 102 are symmetrically joined to form a second electrode group. The second electrode group is vertically fixedly connected to the side wall of the second electrode support 90, and the second electrode group extends between two adjacent first electrode groups. The two second electrode main boards 102 of the second electrode group are respectively combined with the first electrode main board 101 on the corresponding side to form an equal-distance electrode self-pooling beneficial substance generating device array.
[0048] The equal-distance electrode self-pooling beneficial substance generating device of the present invention avoids the situation of excessive discharge of harmful substances due to tip discharge. At the same time, by condensing water molecules from the refrigerating end face, the area and speed of water-accumulating molecules are increased, thereby increasing the generation of beneficial substances. In addition, the equal-distance electrodes can increase the intensity of the electric field, thereby increasing the power during product application. In addition, the contact area between the airflow to be processed and the electrodes can be increased, thereby increasing the processing capacity.
[0049] It should be noted that the heat conduction mode of the refrigerating end face can be Peltier of a semiconductor refrigeration sheet, or can be compression refrigeration, or can directly produce an endothermic effect on the refrigerating end face or indirectly produce an endothermic effect on the refrigerating end face or other refrigeration methods; in addition to setting the above-mentioned dielectric block between the first electrode block and the second electrode block, it can also be granular dielectric filling or working gas. When a sufficiently high AC voltage is applied between the two electrodes, the dielectric between the electrodes will be broken down to generate discharge, that is, dielectric barrier discharge occurs. The arrangement of the equidistant electrodes between the electrodes in the beneficial substance generating device array with self-accumulating water can be flexibly set.
[0050] The present invention has been described in conjunction with the best embodiments, but the present invention is not limited to the disclosed embodiments above, and should cover various modifications and equivalent combinations made according to the essence of this embodiment.
Claims
1. An equidistant electrode self-ponding beneficial substance generating device, characterized in that: It includes a first electrode block, a second electrode block and a refrigerating end face. The first electrode block and the second electrode block have opposite polarities. The first electrode block includes a first electrode main body and a first electrode substrate connected to the periphery of the first electrode main body. The second electrode block includes a second electrode main body and a second electrode substrate connected to the periphery of the second electrode main body. The first electrode main body and the second electrode main body are parallel to each other, the first electrode substrate and the second electrode substrate are parallel to each other, and the refrigerating end face is installed on the outer end face of the first electrode block or the second electrode block.
2. The equidistant electrode self-ponding beneficial substance generating device according to claim 1, characterized in that: The first electrode main body is flat and smoothly connected to the first electrode substrate, and the second electrode main body is flat and smoothly connected to the second electrode substrate.
3. The equidistant electrode self-ponding beneficial substance generating device according to claim 2, characterized in that: It further includes a dielectric block arranged between the first electrode block and the second electrode block. The dielectric block includes a flat dielectric block main body and a dielectric block substrate smoothly connected to the periphery of the dielectric block main body. The dielectric block main body is parallel to the first electrode main body and the second electrode main body, and the dielectric block substrate is parallel to the first electrode substrate and the second electrode substrate.
4. The equidistant electrode self-ponding beneficial substance generating device according to claim 1, characterized in that: The first electrode main body is hemispherical and convex in a direction away from the second electrode main body, and the second electrode main body is hemispherical and convex in a direction close to the first electrode main body. The radius of the second electrode main body is smaller than the radius of the first electrode main body.
5. The equidistant electrode self-ponding beneficial substance generating device according to claim 4, characterized in that: It further includes a dielectric block arranged between the first electrode block and the second electrode block. The dielectric block includes a hemispherical dielectric block main body convex towards the first electrode main body and a dielectric block substrate connected to the periphery of the dielectric block main body. The dielectric block main body is parallel to the first electrode main body and the second electrode main body, and the dielectric block substrate is parallel to the first electrode substrate and the second electrode substrate.
6. The equidistant electrode self-ponding beneficial substance generating device according to claim 4, characterized in that: A first central hole is provided at the center of the first electrode main body, and a second central hole is provided at the center of the second electrode main body.
7. The equidistant electrode self-ponding beneficial substance generating device according to claim 1, characterized in that: The first electrode body is in the shape of a frustum of a cone protruding in a direction away from the second electrode body. The diameter of one end of the side wall of the first electrode body away from the first electrode substrate is smaller than the diameter of one end of the side wall of the first electrode body close to the first electrode substrate. The second electrode body is in the shape of a frustum of a cone protruding in a direction close to the first electrode body. The diameter of one end of the side wall of the second electrode body away from the second electrode substrate is smaller than the diameter of one end of the side wall of the second electrode body close to the second electrode substrate. The diameter of the end face of the second electrode body away from the second electrode substrate is smaller than the diameter of the end face of the first electrode body away from the first electrode substrate. The end face of the second electrode body away from the second electrode substrate is parallel to the end face of the first electrode body away from the first electrode substrate. The side wall of the first electrode body is parallel to the side wall of the second electrode body. A first central hole is provided at the center of the first electrode body, and a second central hole is provided at the center of the second electrode body.
8. The equidistant electrode self-ponding beneficial substance generating device according to claim 7, characterized in that: It further includes a dielectric block disposed between the first electrode block and the second electrode block. The dielectric block includes a dielectric block main body in the shape of a frustum of a cone protruding towards the first electrode body and a dielectric block substrate connected to the periphery of the dielectric block main body. The diameter of one end of the side wall of the dielectric block main body away from the dielectric block substrate is smaller than the diameter of one end of the side wall of the dielectric block main body close to the dielectric block substrate. The diameter of the end face of the dielectric block main body away from the dielectric block substrate is smaller than the diameter of the end face of the first electrode body away from the first electrode substrate and larger than the diameter of the end face of the second electrode body away from the second electrode substrate. The end face of the dielectric block main body away from the dielectric block substrate is parallel to the end face of the first electrode body away from the first electrode substrate. The side wall of the dielectric block main body is parallel to the side wall of the first electrode body. A dielectric block main body central hole is provided at the center of the dielectric block main body.
9. The equidistant electrode self-ponding beneficial substance generating device according to claim 1, characterized in that: The first electrode body is in the shape of a frustum of a cone protruding in a direction close to the second electrode body. The diameter of one end of the side wall of the first electrode body away from the first electrode substrate is smaller than the diameter of one end of the side wall of the first electrode body close to the first electrode substrate. The second electrode body is in the shape of a frustum of a cone protruding in a direction close to the first electrode body. The diameter of one end of the side wall of the second electrode body away from the second electrode substrate is smaller than the diameter of one end of the side wall of the second electrode body close to the second electrode substrate. The end face of the second electrode body away from the second electrode substrate is parallel to the end face of the first electrode body away from the first electrode substrate. A first central hole is provided at the center of the first electrode body, and a second central hole is provided at the center of the second electrode body.
10. An equidistant electrode self-ponding beneficial substance generating device array, characterized in that: it includes at least two equidistant electrode self-ponding beneficial substance generating devices as described in any one of claims 1 to 9. At least two of the first electrode substrates are located in the same plane and are integrally connected to each other to form a first electrode main plate, and at least two of the second electrode substrates are located in the same plane and are integrally connected to each other to form a second electrode main plate.
Citation Information
Patent Citations
Equidistant electrode self-water-accumulation beneficial substance generating device and array with same
CN212596501U