Adsorption unit and method of installation positioning

By setting positioning holes and rotating holes on the electrodes, and utilizing the positioning mechanism of the conductive mounting parts, the electrodes can achieve rapid conductive connection and electrical insulation, solving the problem of assembly precision between the discharge electrode and the adsorption electrode, improving the purification effect and reducing costs.

CN122141857APending Publication Date: 2026-06-05SHANGHAI BIXIUFU ENTERPRISE MANAGEMENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
SHANGHAI BIXIUFU ENTERPRISE MANAGEMENT CO LTD
Filing Date
2024-03-22
Publication Date
2026-06-05

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Abstract

The application discloses an adsorption unit and a mounting and positioning method. The adsorption unit comprises a plurality of electrodes, a conductive mounting piece, the electrode is provided with a positioning hole, the positioning hole comprises a first hole and a second hole which are communicated with each other and have a certain angle, and a rotating hole which is arranged between the first hole and the second hole, the conductive mounting piece is provided with a plurality of positioning mechanisms, the conductive mounting piece is inserted into the positioning hole of the electrode, the positioning mechanisms of the conductive mounting piece are corresponded to the positioning hole of the electrode, the positioning mechanisms of the conductive mounting piece are inserted into the first hole of the positioning hole and are clamped into the second hole after being rotated along the rotating hole, and the plurality of electrodes are conductively connected into an integrated body.
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Description

Technical Field

[0001] This invention relates to the field of electric field technology, specifically to an adsorption unit and an installation and positioning method. Background Technology

[0002] As people become increasingly environmentally conscious, their understanding of and demand for purification of air pollutants (including but not limited to smoke, dust, VOCs, and engine exhaust) are constantly rising. Consequently, more and better purification technologies are being installed and used in vehicles, factories, and homes. Among these technologies, electrostatic precipitator technology is widely used. The principle of electrostatic precipitator technology is that gas is ionized when it passes through an electrostatic field. Particulate matter in the gas combines with charged ions and tends to move towards the electrode with the opposite polarity of the charged ions, thus depositing. Therefore, the particulate matter removal rate is related to the charge efficiency of the particulate matter. The core electrostatic field is mostly composed of an adsorption plate and a cathode wire (discharge electrode) set in the adsorption plate. Therefore, the technology of the adsorption plate and the discharge electrode has become key to improving the particulate matter removal rate.

[0003] Existing technologies still suffer from the problem of difficulty in controlling the assembly precision of the discharge electrode and the adsorption electrode. This not only results in high manufacturing costs but also leads to arcing due to low assembly precision, as well as poor particulate matter removal rate and purification effect. Summary of the Invention

[0004] The purpose of this invention is to provide an adsorption unit and an installation and positioning method to solve the problems existing in the prior art.

[0005] To address the above problems, according to a first aspect of the present invention, an adsorption unit is provided, comprising:

[0006] Multiple electrodes, conductive mounting components;

[0007] The electrode is provided with positioning holes, which include a first hole and a second hole that are interconnected and have a certain angle, and a rotating hole disposed between the first hole and the second hole. The conductive mounting component is provided with multiple positioning mechanisms.

[0008] The conductive mounting component is inserted into the positioning hole of the electrode, so that the positioning mechanism of the conductive mounting component corresponds to the positioning hole of the electrode. The positioning mechanism of the conductive mounting component is inserted into the first hole of the positioning hole and rotated along the rotating hole before being inserted into the second hole, thereby electrically connecting multiple electrodes into one unit.

[0009] Preferably, the positioning mechanism includes a pair of positioning grooves symmetrically arranged on both sides of the conductive mounting member. The positioning mechanism is inserted into the first hole, and with one of the positioning grooves as the rotation center, the other positioning groove rotates along the rotating hole, thereby causing the pair of positioning grooves to engage with the second hole.

[0010] Preferably, the positioning groove has a Y-shaped structure and includes a V-shaped opening and a groove body, wherein the V-shaped opening is disposed on the side of the conductive mounting member, and the V-shaped opening extends into the interior of the conductive mounting member to form the groove body.

[0011] Preferably, the rotating hole has a fan-shaped structure, with one end connected to the first hole and the other end connected to the second hole.

[0012] Preferably, the first hole and the second hole are at a certain angle to each other and form an approximately V-shaped structure, and the rotating hole is fan-shaped and located at the angle between the first hole and the second hole.

[0013] Preferably, the plurality of electrodes are plate-shaped, or the plurality of electrodes are hollow tubes with different diameters.

[0014] According to a second aspect of the present invention, an adsorption unit is provided, comprising:

[0015] Multiple first electrodes, multiple second electrodes, a first conductive mounting component, and a second conductive mounting component;

[0016] Both the second electrode and the first electrode are plate-shaped, and the first electrode and the second electrode are arranged in parallel and staggered; or, both the second electrode and the first electrode are hollow tubes with different diameters, and the first electrode and the second electrode are coaxially mounted and arranged in a staggered manner from the axis to the outer periphery.

[0017] Both the first electrode and the second electrode are provided with positioning holes and clearance holes. The positioning holes include a first hole and a second hole that are interconnected and have a certain angle, as well as a rotating hole disposed between the first hole and the second hole. Both the first conductive mounting component and the second conductive mounting component are provided with multiple positioning mechanisms.

[0018] The first conductive mounting member is passed through the clearance hole of the second electrode and inserted into the positioning hole of the first electrode, so that the positioning mechanism of the first conductive mounting member corresponds to the positioning hole of the first electrode. The positioning mechanism of the first conductive mounting member is inserted into the first hole and rotated along the rotating hole before being engaged into the second hole, thereby conductively connecting multiple first electrodes into one unit; and

[0019] The second conductive mounting member is passed through the clearance hole of the first electrode and inserted into the positioning hole of the second electrode, so that the positioning mechanism of the second conductive mounting member corresponds to the positioning hole of the second electrode. The positioning mechanism of the second conductive mounting member is inserted into the first hole and rotated along the rotating hole before being snapped into the second hole, thereby electrically connecting multiple second electrodes into one unit.

[0020] Preferably, the positioning mechanism includes a pair of positioning grooves symmetrically arranged on both sides of the first conductive mounting member and the second conductive mounting member. The positioning mechanism is inserted into the first hole, and the other positioning groove is rotated along the rotating hole with one of the positioning grooves as the rotation center, so that the pair of positioning grooves are engaged in the second hole.

[0021] Preferably, the positioning groove has a Y-shaped structure and includes a V-shaped opening and a groove body, wherein the V-shaped opening is disposed on the side of the first conductive mounting member or the second conductive mounting member, and the V-shaped opening extends into the interior of the first conductive mounting member or the second conductive mounting member to form the groove body.

[0022] Preferably, the rotating hole has a fan-shaped structure, with one end connected to the first hole and the other end connected to the second hole.

[0023] Preferably, the first hole and the second hole are at a certain angle to each other and form an approximately V-shaped structure, and the rotating hole is fan-shaped and located at the angle between the first hole and the second hole.

[0024] Preferably, at least one spacer is provided between the first electrode and the second electrode to maintain the distance between the first electrode and the second electrode.

[0025] Preferably, the distance between adjacent positioning mechanisms is a first preset distance X, and the distance between the second electrode and the first electrode is X / 2.

[0026] Preferably, the distance between the first conductive mounting member and the clearance hole of the second electrode is greater than the distance between the first electrode and the second electrode, and the distance between the second conductive mounting member and the clearance hole of the first electrode is greater than the distance between the first electrode and the second electrode.

[0027] According to a third aspect of the present invention, a method for mounting and positioning multiple electrodes is provided, the method comprising:

[0028] S11: A positioning hole is provided on each electrode, wherein,

[0029] The positioning hole includes a first hole and a second hole that are interconnected and have a certain angle, and a rotating hole disposed between the first hole and the second hole;

[0030] S12: Multiple positioning mechanisms are provided on the conductive mounting component;

[0031] S13: Insert the conductive mounting member into the positioning holes of the plurality of electrodes, so that the positioning mechanism of the conductive mounting member corresponds to the positioning hole of the electrode;

[0032] S14: Insert the positioning mechanism of the conductive mounting component into the first hole and rotate it along the rotating hole before locking it into the second hole, so that the multiple electrodes are electrically connected as one unit.

[0033] Preferably, in step S14,

[0034] The positioning mechanism includes a pair of positioning grooves symmetrically arranged on both sides of the conductive mounting component. The positioning mechanism is inserted into the first hole, and with one of the positioning grooves as the rotation center, the other positioning groove symmetrically arranged rotates along the rotating hole, thereby causing the pair of symmetrically arranged positioning grooves to engage with the second hole to complete the positioning.

[0035] According to a fourth aspect of the present invention, a method for installing and positioning an adsorption unit is provided, the adsorption unit comprising a plurality of second electrodes and a plurality of second electrodes, wherein both the second electrodes and the first electrodes are plate-shaped, and the first electrodes and the second electrodes are arranged in parallel and staggered configurations; or, both the second electrodes and the first electrodes are hollow tubes of different diameters, the first electrodes and the second electrodes are coaxially mounted and arranged in a staggered configuration from the axis outwards, characterized in that...

[0036] S21: A positioning hole is provided on each of the first electrode and each of the second electrodes, wherein

[0037] The positioning hole includes a first hole and a second hole that are interconnected and have a certain angle, and a rotating hole disposed between the first hole and the second hole;

[0038] S22: Multiple positioning mechanisms are provided on the first conductive mounting component and the second conductive mounting component;

[0039] S23: A clearance hole is provided on each of the first electrode and the second electrode;

[0040] S24: The first conductive mounting member is passed through the clearance holes of the plurality of second electrodes and inserted into the positioning holes of the plurality of first electrodes, so that the positioning mechanism of the first conductive mounting member corresponds to the positioning hole of the first electrode. The positioning mechanism of the first conductive mounting member is inserted into the first hole and rotated along the rotating hole before being engaged in the second hole, thereby electrically connecting the plurality of first electrodes into one unit. The second conductive mounting member is passed through the clearance holes of the plurality of first electrodes and inserted into the positioning holes of the plurality of second electrodes, so that the positioning mechanism of the second conductive mounting member corresponds to the positioning hole of the second electrode. The positioning mechanism of the second conductive mounting member is inserted into the first hole and rotated along the rotating hole before being engaged in the second hole, thereby electrically connecting the plurality of second electrodes into one unit.

[0041] Preferably, in step S24,

[0042] The positioning mechanism includes a pair of positioning grooves symmetrically arranged on both sides of the first conductive mounting member and the second conductive mounting member. The positioning mechanism is inserted into the first hole, and with one of the positioning grooves as the rotation center, the other positioning groove symmetrically arranged rotates along the rotating hole, thereby causing the pair of symmetrically arranged positioning grooves to engage with the second hole to complete the positioning.

[0043] Preferably, the method further includes:

[0044] S25: At least one spacer is provided between the first electrode and the second electrode to maintain the distance between the first electrode and the second electrode.

[0045] The beneficial effects of the present invention are as follows: the adsorption unit of the present invention can quickly and electrically connect multiple first electrodes or multiple second electrodes into one unit, and the first electrodes and second electrodes are electrically insulated from each other. Attached Figure Description

[0046] Figure 1 This is a three-dimensional schematic diagram of the assembly of the adsorption unit involved in one embodiment of the present invention;

[0047] Figure 2 yes Figure 1 A three-dimensional schematic diagram of the second electrode of the adsorption unit;

[0048] Figure 3 yes Figure 1 A three-dimensional schematic diagram of the first guide mounting component. Detailed Implementation

[0049] The preferred embodiments of the present invention will be described in detail below with reference to the accompanying drawings, so as to better understand the purpose, features and advantages of the present invention. It should be understood that the embodiments shown in the drawings are not intended to limit the scope of the present invention, but are only for illustrating the essential spirit of the technical solution of the present invention.

[0050] In the following description, certain specific details are set forth for the purpose of illustrating various disclosed embodiments in order to provide a thorough understanding of the various disclosed embodiments. However, those skilled in the art will recognize that embodiments may be practiced without one or more of these specific details. In other instances, well-known apparatuses, structures, and techniques associated with this application may not have been shown or described in detail to avoid unnecessarily obscuring the description of the embodiments.

[0051] Throughout this specification, references to "an embodiment" or "an embodiment" indicate that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment. Therefore, the appearance of "in an embodiment" or "an embodiment" in various places throughout the specification does not necessarily refer to the same embodiment. Furthermore, a particular feature, structure, or characteristic may be combined in any manner in one or more embodiments.

[0052] In the following description, in order to clearly demonstrate the structure and working method of the present invention, a number of directional terms will be used. However, terms such as "front", "back", "left", "right", "outside", "inside", "outward", "inward", "up", and "down" should be understood as convenient terms and not as limiting terms.

[0053] Furthermore, terms such as "horizontal," "vertical," and "sag" do not imply that components must be absolutely horizontal or suspended, but rather that they can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal relative to "vertical," and does not mean that the structure must be completely horizontal, but can be slightly tilted.

[0054] In the description of this application, it should also be noted that, unless otherwise expressly specified and limited, the terms "set up," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0055] The first embodiment of the present invention provides an adsorption unit. Figure 1 This is a three-dimensional schematic diagram of the adsorption unit assembly in this embodiment. Figure 2 yes Figure 1This is a three-dimensional schematic diagram of the second electrode of the adsorption unit. However, the structures of the first and second electrodes are identical except for the positions of the positioning holes and clearance holes. This embodiment only uses the second electrode as an example for illustration. Figure 3 yes Figure 1 A three-dimensional schematic diagram of the first guide mounting component is provided, but the structure of the first guide mounting component is the same as that of the second guide mounting component; the first guide mounting component is used as an example for illustration. The adsorption unit includes electrodes and conductive mounting components. The electrodes include a first electrode 612 and a second electrode 611, and the conductive mounting components include a first conductive mounting component 62 and a second conductive mounting component 63. Specifically, the positioning hole 613 of the first electrode 612 corresponds to the clearance hole 614 of the second electrode 611, and the clearance hole 614 of the first electrode 612 corresponds to the positioning hole 613 of the second electrode 611.

[0056] Both the first electrode 612 and the second electrode 611 are provided with positioning holes 613 and clearance holes 614. The positioning holes 613 include a first hole 6131 and a second hole 6132 that are perpendicularly connected to each other, and a rotating hole 6133 disposed between the first hole 6131 and the second hole 6132. Both the first conductive mounting member 62 and the second conductive mounting member 63 are provided with multiple positioning mechanisms 64. The distance between the positioning mechanisms 64 is a first preset distance X. The first conductive mounting member 62 passes through the clearance hole 614 of the second electrode 611 and is inserted into the positioning hole 613 of the first electrode 612, so that the positioning mechanism 64 of the first conductive mounting member 62 corresponds to the positioning hole 613 of the first electrode 612, thus positioning the first conductive mounting member 62. The first electrode 612 is electrically connected as a whole by inserting the first hole 6131 of the positioning hole 613 and rotating 90° along the rotating hole 6133. The second conductive mounting member 63 is inserted through the clearance hole 614 of the first electrode 612 and into the positioning hole 613 of the second electrode 611, so that the positioning mechanism 64 of the second conductive mounting member 63 corresponds to the positioning hole 613 of the second electrode 611. The positioning mechanism 64 of the second conductive mounting member 63 is inserted into the first hole 6131 and rotated 90° along the rotating hole 6133 before being inserted into the second hole 6132, thus electrically connecting the multiple second electrodes 612 as a whole. The distance between the second electrode 611 and the first electrode 612 is X / 2.

[0057] This design allows for the rapid conductive connection and installation of multiple first electrodes or multiple second electrodes into a single unit, while also ensuring electrical insulation between the first and second electrodes.

[0058] In one embodiment of the present invention, the positioning hole 613 includes a first hole 6131 and a second hole 6132 that are interconnected and have a certain angle. That is, the angle between the first hole 6131 and the second hole 6132 can be 30°, 45°, 60°, 90°, etc. Furthermore, the angle by which the positioning mechanism 64 of the first conductive mounting member 62 is inserted into the first hole 6131 of the positioning hole 613 and rotated along the rotating hole 6133 is the "angle between the first hole 6131 and the second hole 6232". In other words, if the angle between the first hole 6131 and the second hole 6232 is 60°, then the rotation angle is 60°.

[0059] In one embodiment of the present invention, reference is made to Figure 1 The second electrode 611 and the first electrode 612 can both be hollow tubes with different diameters. The first electrode 612 and the second electrode 611 are coaxially mounted and arranged alternately from the axis to the outer periphery. The distance between the first electrode 612 and the second electrode 611 is the same; a gas flow channel is formed between the first electrode 612 and the second electrode 611 to allow the gas to pass through for electric field treatment.

[0060] Specifically, the cross-section of the hollow tube can be polygonal or circular, preferably hexagonal.

[0061] In one embodiment of the present invention, both the second electrode and the first electrode are plate-shaped, and the first electrode and the second electrode are arranged in parallel and staggered; the distance between the first electrode and the second electrode is the same, and a gas flow channel is formed between the first electrode and the second electrode to allow the gas to pass through and to perform electric field treatment.

[0062] Preferably, the plate can be a flat plate or a curved plate. If it is a curved plate, the electrode spacing between the first electrode and the second electrode should be kept the same everywhere.

[0063] In one embodiment of the present invention, reference is made to Figure 1 , Figure 2 and Figure 3 The positioning mechanism 64 includes a pair of positioning grooves 641 symmetrically arranged on both sides of the first conductive mounting member 62 and the second conductive mounting member 63. The positioning mechanism 64 is inserted into the first hole 6131 and rotates the other positioning groove 641 90° along the rotating hole 6133 with one positioning groove 641 as the rotation center, so that the pair of positioning grooves 641 are engaged in the second hole 6132.

[0064] With this design, the positioning mechanism 64 can be positioned more quickly with the positioning hole 613 of the first electrode 612 or the second electrode 611, and the positioning mechanism 64 can be quickly inserted into the first hole 6131 and rotated 90° along the rotating hole 6133 before being inserted into the second hole 6132.

[0065] In one embodiment of the present invention, the positioning groove 641 has a Y-shaped structure and includes a V-shaped opening 6411 and a groove body 6412. The V-shaped opening 6411 is disposed on the side of the first conductive mounting member 62 or the second conductive mounting member 63, and the V-shaped opening 6411 extends into the interior of the first conductive mounting member 62 or the second conductive mounting member 63 to form the groove body 6412.

[0066] In one embodiment of the present invention, reference is made to Figure 1 , Figure 2 and Figure 3 The rotating hole 6133 has a fan-shaped structure, with one end of the rotating hole 6133 connected to the first hole 6131 and the other end connected to the second hole 6132.

[0067] Specifically, refer to Figure 1 , Figure 2 and Figure 3 The first hole 6131 and the second hole 6132 are at a certain angle to each other and form an approximate V-shape. The rotating hole 6133 is approximately fan-shaped and is located at the angle between the first hole 6131 and the second hole 6132.

[0068] Specifically, refer to Figure 1 , Figure 2 and Figure 3 The first hole 6131 and the second hole 6132 are perpendicular to each other and form an L-shape. The rotating hole 6133 is approximately 1 / 4 fan-shaped and is located at the angle between the first hole 6131 and the second hole 6132.

[0069] In one embodiment of the present invention, reference is made to Figure 1 , Figure 2 and Figure 3 The distance between the first conductive mounting member 62 and the clearance hole 614 of the second electrode 611 is greater than the distance between the first electrode 612 and the second electrode 611.

[0070] This design prevents the first conductive mounting component from discharging with the second electrode.

[0071] Specifically, refer to Figure 1 , Figure 2 and Figure 3 The distance between the first conductive mounting part 62 and the clearance hole 614 of the second electrode 611 is greater than X / 2.

[0072] In one embodiment of the present invention, reference is made to Figure 1 , Figure 2 and Figure 3 The distance between the second conductive mounting member 63 and the clearance hole 614 of the first electrode 612 is greater than the distance between the first electrode and the second electrode.

[0073] This design prevents the second conductive mounting component from discharging with the first electrode.

[0074] Specifically, refer to Figure 1 , Figure 2 and Figure 3 The distance between the second conductive mounting part 63 and the clearance hole 614 of the first electrode 612 is greater than X / 2.

[0075] In one embodiment of the present invention, reference is made to Figure 1 , Figure 2 and Figure 3 At least one spacer 65 is provided between the first electrode 612 and the second electrode 611 to maintain the distance between the first electrode 612 and the second electrode 611.

[0076] A second embodiment of the present invention provides a gas treatment device for adsorbing and purifying particulate matter in gas. The gas treatment device includes a discharge unit and an adsorption unit as described in the above embodiment. Along the gas flow direction, the discharge unit is located in front of the adsorption unit and is spaced apart from it. The discharge unit includes at least one discharge electrode connected to a DC high-voltage power supply. The adsorption unit includes at least one grounded second electrode and at least one first electrode that is either not energized or energized. For example, if the first electrode is not energized, it senses the high voltage of the discharge unit and forms an induced electric field with the second electrode; if the first electrode is energized, it forms an electrostatic field with the second electrode.

[0077] The third embodiment of the present invention also provides a method for installing and positioning the adsorption unit. Regarding the technical features and technical effects of the adsorption unit, the parts that are the same as those in the first and second embodiments will not be repeated in this embodiment. This embodiment only describes the different parts.

[0078] A method for installing and positioning an adsorption unit is provided. The adsorption unit includes multiple first electrodes and multiple second electrodes, wherein both the second electrodes and the first electrodes are plate-shaped and are arranged in parallel and staggered configurations; or, both the second electrodes and the first electrodes are hollow tubes of different diameters, and the first electrodes and the second electrodes are coaxially mounted and arranged in a staggered configuration from the center outwards. The method includes:

[0079] S21: A positioning hole is provided on each first electrode and each second electrode, wherein the positioning hole includes a first hole and a second hole that are interconnected and have a certain angle, and a rotating hole disposed between the first hole and the second hole;

[0080] S22: Multiple positioning mechanisms are provided on the first conductive mounting component and the second conductive mounting component;

[0081] S23: A clearance hole is provided on each of the first and second electrodes;

[0082] S24: Pass the first conductive mounting component through the clearance holes of the multiple second electrodes and insert it into the positioning holes of the multiple first electrodes, so that the positioning mechanism of the first conductive mounting component corresponds to the positioning hole of the first electrode. Insert the positioning mechanism of the first conductive mounting component into the first hole and rotate it along the rotating hole to lock it into the second hole, thereby electrically connecting the multiple first electrodes into one unit. Pass the second conductive mounting component through the clearance holes of the multiple first electrodes and insert it into the positioning holes of the multiple second electrodes, so that the positioning mechanism of the second conductive mounting component corresponds to the positioning hole of the second electrode. Insert the positioning mechanism of the second conductive mounting component into the first hole and rotate it along the rotating hole to lock it into the second hole, thereby electrically connecting the multiple second electrodes into one unit.

[0083] This design allows for the rapid conductive connection and installation of multiple first electrodes or multiple second electrodes into a single unit, while also ensuring electrical insulation between the first and second electrodes.

[0084] In one embodiment of the present invention, in step S24, the positioning mechanism includes a pair of positioning grooves symmetrically arranged on both sides of the first conductive mounting member and the second conductive mounting member. The positioning mechanism is inserted into the first hole, and the other positioning groove symmetrically arranged is rotated along the rotating hole with one positioning groove as the rotation center, so that the pair of symmetrically arranged positioning grooves are engaged in the second hole to complete the positioning.

[0085] In one embodiment of the present invention, in step S21, the rotating hole has a fan-shaped structure, with one end of the rotating hole connected to the first hole and the other end connected to the second hole.

[0086] Specifically, the first hole and the second hole are perpendicular to each other and form an L-shape, and the rotating hole is approximately a quarter fan-shaped and located at the angle between the first hole and the second hole.

[0087] In one embodiment of the present invention, the distance between the first conductive mounting member and the clearance hole of the second electrode is greater than X / 2.

[0088] Specifically, the distance between the first conductive mounting member and the clearance hole of the second electrode is greater than the distance between the first electrode and the second electrode.

[0089] This design prevents the first conductive mounting component from discharging with the second electrode.

[0090] In one embodiment of the present invention, the distance between the second conductive mounting member and the clearance hole of the first electrode is greater than X / 2.

[0091] Specifically, the distance between the second conductive mounting component and the clearance hole of the first electrode is greater than the distance between the first electrode and the second electrode.

[0092] This design prevents the second conductive mounting component from discharging with the first electrode.

[0093] In one embodiment of the present invention, the method further includes:

[0094] S25: At least one spacer is provided between the first electrode and the second electrode to maintain the distance between the first electrode and the second electrode.

[0095] The fourth embodiment of the present invention also provides a method for installing and positioning the adsorption unit. Regarding the technical features and technical effects of the adsorption unit, the parts that are the same as those in the first to third embodiments will not be repeated in this embodiment. This embodiment only describes the different parts.

[0096] This embodiment provides a method for installing and positioning multiple electrodes, the method including...

[0097] S11: A positioning hole is provided on each electrode, wherein,

[0098] The positioning hole includes a first hole and a second hole that are interconnected and have a certain angle, and a rotating hole disposed between the first hole and the second hole;

[0099] S12: Multiple positioning mechanisms are provided on the conductive mounting component;

[0100] S13: Insert the conductive mounting component into the positioning holes of multiple electrodes, so that the positioning mechanism of the conductive mounting component corresponds to the positioning hole of the electrode.

[0101] S14: Insert the positioning mechanism of the conductive mounting part into the first hole and rotate it along the rotating hole before locking it into the second hole, so that multiple electrodes are electrically connected into one piece.

[0102] In one embodiment of the present invention, in step S14, the positioning mechanism includes a pair of positioning grooves symmetrically arranged on both sides of the conductive mounting member. The positioning mechanism is inserted into the first hole, and the other positioning groove symmetrically arranged is rotated along the rotating hole with one positioning groove as the rotation center, so that the pair of symmetrically arranged positioning grooves are engaged in the second hole to complete the positioning.

[0103] The preferred embodiments of the present invention have been described in detail above. However, it should be understood that after reading the above teachings, those skilled in the art can make various alterations or modifications to the present invention. These equivalent forms also fall within the scope defined by the appended claims.

Claims

1. An adsorption unit, characterized in that, include: Multiple electrodes, conductive mounting components; The electrode is provided with positioning holes, which include a first hole and a second hole that are interconnected and have a certain angle, and a rotating hole disposed between the first hole and the second hole. The conductive mounting component is provided with multiple positioning mechanisms. The conductive mounting component is inserted into the positioning hole of the electrode, so that the positioning mechanism of the conductive mounting component corresponds to the positioning hole of the electrode. The positioning mechanism of the conductive mounting component is inserted into the first hole of the positioning hole and rotated along the rotating hole before being inserted into the second hole, thereby electrically connecting multiple electrodes into one unit.

2. The adsorption unit according to claim 1, characterized in that, The positioning mechanism includes a pair of positioning grooves symmetrically arranged on both sides of the conductive mounting member. The positioning mechanism is inserted into the first hole and rotates the other positioning groove along the rotating hole with one of the positioning grooves as the rotation center, thereby causing the pair of positioning grooves to engage with the second hole.

3. The adsorption unit according to claim 2, characterized in that, The positioning groove has a Y-shaped structure and includes a V-shaped opening and a groove body. The V-shaped opening is located on the side of the conductive mounting component, and the V-shaped opening extends into the interior of the conductive mounting component to form the groove body.

4. The adsorption unit according to claim 1, characterized in that, The rotating hole has a fan-shaped structure, with one end connected to the first hole and the other end connected to the second hole. Optionally, the first hole and the second hole are at a certain angle to each other and form an approximately V-shaped structure, and the rotating hole is a fan-shaped structure and is located at the angle between the first hole and the second hole.

5. The adsorption unit according to claim 1, characterized in that, The electrodes are plate-shaped, or the electrodes are hollow tubes with different diameters.

6. An adsorption unit, characterized in that, include: Multiple first electrodes, multiple second electrodes, a first conductive mounting component, and a second conductive mounting component; Both the second electrode and the first electrode are plate-shaped, and the first electrode and the second electrode are arranged in parallel and staggered; or, both the second electrode and the first electrode are hollow tubes with different diameters, and the first electrode and the second electrode are coaxially mounted and arranged in a staggered manner from the axis to the outer periphery. Both the first electrode and the second electrode are provided with positioning holes and clearance holes. The positioning holes include a first hole and a second hole that are interconnected and have a certain angle, as well as a rotating hole disposed between the first hole and the second hole. Both the first conductive mounting component and the second conductive mounting component are provided with multiple positioning mechanisms. The first conductive mounting member is passed through the clearance hole of the second electrode and inserted into the positioning hole of the first electrode, so that the positioning mechanism of the first conductive mounting member corresponds to the positioning hole of the first electrode. The positioning mechanism of the first conductive mounting member is inserted into the first hole and rotated along the rotating hole before being engaged into the second hole, thereby conductively connecting multiple first electrodes into one unit; and The second conductive mounting member is passed through the clearance hole of the first electrode and inserted into the positioning hole of the second electrode, so that the positioning mechanism of the second conductive mounting member corresponds to the positioning hole of the second electrode. The positioning mechanism of the second conductive mounting member is inserted into the first hole and rotated along the rotating hole before being snapped into the second hole, thereby electrically connecting multiple second electrodes into one unit.

7. The adsorption unit according to claim 6, characterized in that, The positioning mechanism includes a pair of positioning grooves symmetrically arranged on both sides of the first conductive mounting member and the second conductive mounting member. The positioning mechanism is inserted into the first hole, and with one of the positioning grooves as the rotation center, the other positioning groove rotates along the rotating hole, thereby causing the pair of positioning grooves to engage with the second hole.

8. The adsorption unit according to claim 7, characterized in that, The positioning groove has a Y-shaped structure and includes a V-shaped opening and a groove body. The V-shaped opening is located on the side of the first conductive mounting member or the second conductive mounting member, and the V-shaped opening extends into the interior of the first conductive mounting member or the second conductive mounting member to form the groove body.

9. The adsorption unit according to claim 6, characterized in that, The rotating hole has a fan-shaped structure, with one end connected to the first hole and the other end connected to the second hole. Optionally, the first hole and the second hole are at a certain angle to each other and form an approximately V-shaped structure, and the rotating hole is a fan-shaped structure and is located at the angle between the first hole and the second hole.

10. The adsorption unit according to claim 6, characterized in that, At least one spacer is provided between the first electrode and the second electrode to maintain the distance between the first electrode and the second electrode.

11. The adsorption unit according to claim 6, characterized in that, The distance between adjacent positioning mechanisms is a first preset distance X, and the distance between the second electrode and the first electrode is X / 2.

12. The adsorption unit according to claim 6, characterized in that, The distance between the first conductive mounting member and the clearance hole of the second electrode is greater than the distance between the first electrode and the second electrode, and the distance between the second conductive mounting member and the clearance hole of the first electrode is greater than the distance between the first electrode and the second electrode.

13. A method for mounting and positioning multiple electrodes, characterized in that, The method includes S11: A positioning hole is provided on each electrode, wherein, The positioning hole includes a first hole and a second hole that are interconnected and have a certain angle, and a rotating hole disposed between the first hole and the second hole; S12: Multiple positioning mechanisms are provided on the conductive mounting component; S13: Insert the conductive mounting member into the positioning holes of the plurality of electrodes, so that the positioning mechanism of the conductive mounting member corresponds to the positioning hole of the electrode; S14: Insert the positioning mechanism of the conductive mounting component into the first hole and rotate it along the rotating hole before locking it into the second hole, so that the multiple electrodes are electrically connected as one unit.

14. The installation and positioning method according to claim 13, characterized in that, In step S14, The positioning mechanism includes a pair of positioning grooves symmetrically arranged on both sides of the conductive mounting component. The positioning mechanism is inserted into the first hole, and with one of the positioning grooves as the rotation center, the other positioning groove symmetrically arranged rotates along the rotating hole, thereby causing the pair of symmetrically arranged positioning grooves to engage with the second hole to complete the positioning.

15. A method for installing and positioning an adsorption unit, the adsorption unit comprising a plurality of second electrodes and a plurality of second electrodes, wherein, Both the second electrode and the first electrode are plate-shaped, and the first electrode and the second electrode are arranged in parallel and staggered configurations; or, both the second electrode and the first electrode are hollow tubes of different diameters, and the first electrode and the second electrode are coaxially mounted and arranged in a staggered configuration from the axis outwards, characterized in that... S21: A positioning hole is provided on each of the first electrode and each of the second electrodes, wherein The positioning hole includes a first hole and a second hole that are interconnected and have a certain angle, and a rotating hole disposed between the first hole and the second hole; S22: Multiple positioning mechanisms are provided on the first conductive mounting component and the second conductive mounting component; S23: A clearance hole is provided on each of the first electrode and the second electrode; S24: The first conductive mounting member is passed through the clearance holes of the plurality of second electrodes and inserted into the positioning holes of the plurality of first electrodes, so that the positioning mechanism of the first conductive mounting member corresponds to the positioning hole of the first electrode. The positioning mechanism of the first conductive mounting member is inserted into the first hole and rotated along the rotating hole before being engaged in the second hole, thereby electrically connecting the plurality of first electrodes into one unit. The second conductive mounting member is passed through the clearance holes of the plurality of first electrodes and inserted into the positioning holes of the plurality of second electrodes, so that the positioning mechanism of the second conductive mounting member corresponds to the positioning hole of the second electrode. The positioning mechanism of the second conductive mounting member is inserted into the first hole and rotated along the rotating hole before being engaged in the second hole, thereby electrically connecting the plurality of second electrodes into one unit.

16. The installation and positioning method according to claim 15, characterized in that, In step S24, The positioning mechanism includes a pair of positioning grooves symmetrically arranged on both sides of the first conductive mounting member and the second conductive mounting member. The positioning mechanism is inserted into the first hole, and with one of the positioning grooves as the rotation center, the other positioning groove symmetrically arranged rotates along the rotating hole, thereby causing the pair of symmetrically arranged positioning grooves to engage with the second hole to complete the positioning.

17. The installation and positioning method according to claim 15, characterized in that, The method further includes: S25: At least one spacer is provided between the first electrode and the second electrode to maintain the distance between the first electrode and the second electrode.