Static electricity and dust removal device
By using electrostatic dust removal devices in automated production lines, including feeding mechanisms, electrostatic eliminators and dust collectors, the problems of static electricity and dust during the conveying process of workpieces are solved, ensuring the charge stability and surface cleaning of the workpieces are reduced, and the defect rate is improved, and production efficiency is improved.
Patent Information
- Application Number
- CN202422443361.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-09
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2034-10-09
AI Technical Summary
During the transportation process of workpieces in automated production lines, static electricity and dust are easily generated during the transportation process, which affects the product detection value and leads to an increase in the defect rate.
The electrostatic dust removal device is adopted, including a feeding mechanism, an electrostatic eliminator and a dust collector. The workpiece is moved to the electrostatic eliminator and a dust collector through the moving mechanism. The electrostatic eliminator is used to eliminate static electricity, and the dust collector removes dust to ensure stable charge of the workpiece and clean surface.
Effectively remove static electricity and dust from workpieces, reduce the impact of static electricity and dust on detection values, and improve product quality and production efficiency.
Smart Images

Figure CN223213133U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of automation devices, and in particular to a destaticizing and dust removing device. Background Art
[0002] Workpieces in automated production lines are prone to generating static electricity through collision and friction, especially when silicone products collide and rub against each other. Static electricity is an excess or deficiency of electrical charge on the workpiece surface. Static electricity can damage the workpiece through discharge. It can also attract dust, affecting the final product inspection value and increasing the defect rate. Therefore, static electricity and dust control must be implemented throughout the entire production line, addressing the static electricity and dust carried by workpieces during transportation. Utility Model Content
[0003] The present application provides a destaticizing and dust removing device that can solve the problem of workpieces carrying static electricity and dust during transportation on a production line.
[0004] To solve the above technical problems, the present application provides a destaticizing and dust removal device, comprising a feeding mechanism, an eliminator, a dust collector, and a first moving mechanism. The feeding mechanism has a feeding station, which is used to drive a workpiece in the feeding mechanism to move to the feeding station; the first moving mechanism is used to drive the workpiece in the loading station to the eliminator and dust collector, where the eliminator can eliminate static electricity on the workpiece; and the dust collector can remove dust on the workpiece.
[0005] In one embodiment, the static eliminator and the dust collector are arranged opposite to each other, and there is a gap between the static eliminator and the dust collector to form a processing station in the gap between the static eliminator and the dust collector; the first moving mechanism is used to drive the workpiece at the loading station to move to the processing station; the static eliminator is used to eliminate static electricity on the workpiece at the processing station; the dust collector is used to remove dust on the workpiece at the processing station.
[0006] In one embodiment, the first moving mechanism includes a fixed seat, a first driving member, a rotating member and a first clamping member. The rotating member is rotatably connected to the fixed seat, the first clamping member is installed on the rotating member, and the first clamping member is used to clamp the workpiece; the first driving member is used to drive the rotating member to rotate relative to the fixed seat, so that the rotating member can drive the first clamping member to rotate from the loading station to the processing station.
[0007] In one embodiment, the static eliminator and the dust collector are arranged opposite to each other in the horizontal direction, the processing station and the loading station are arranged opposite to each other in the vertical direction, and the rotating part is arranged between the processing station and the loading station. The rotating part can drive the first clamping part to flip 180 degrees from the loading station to the processing station in the vertical plane.
[0008] In one embodiment, the destaticizing and dust removing device also includes a second moving mechanism and a conveying mechanism. The second moving mechanism is used to move the workpiece to the conveying mechanism after the workpiece is free of static electricity and dust is removed, and place the workpiece on the conveying mechanism; the conveying mechanism is used to convey the workpiece to the next process.
[0009] In one embodiment, the second moving mechanism includes a mounting frame, a second driving member, a third driving member, a first rotating arm, a second rotating arm and a second clamping member, the first rotating arm is rotatably connected to the mounting frame, the second rotating arm is rotatably connected to the first rotating arm, the second clamping member is installed on the second rotating arm, and the second clamping member is used to clamp the workpiece; the second driving member is used to drive the first rotating arm to rotate relative to the mounting frame, and the third driving member is used to drive the second rotating arm to rotate relative to the first rotating arm.
[0010] In one embodiment, the static eliminator includes an electron emitter, which is used to emit electrons toward the workpiece to eliminate static electricity on the surface of the workpiece.
[0011] In one embodiment, the dust collector includes a dust collector or a blower. The dust collector can suck the dust on the workpiece into the dust collector by sucking air; the blower can blow away the dust on the workpiece.
[0012] In one embodiment, the loading mechanism includes a vibration plate loading mechanism having a loading station. The vibration plate loading mechanism can vibrate to vibrate the workpiece in the vibration plate to the loading station.
[0013] In one embodiment, the vibration plate loading mechanism includes a vibration plate body, a spiral track and a horizontal discharge track. The front end of the spiral track is connected to the vibration plate body, and the rear end of the spiral track is connected to the front end of the horizontal discharge track. The rear end of the horizontal discharge track has a loading station; the vibration plate body is used to place the workpiece, and the vibration plate body can shake vertically so that the workpiece can spirally rise along the spiral track to the loading station of the horizontal discharge track.
[0014] The present application provides a destaticizing and dust-removing device, comprising a feeding mechanism, an electrostatic eliminator, a dust collector, and a first moving mechanism. The feeding mechanism has a feeding station, and the feeding mechanism is used to drive the workpiece in the feeding mechanism to move to the feeding station; the first moving mechanism is used to drive the workpiece in the loading station to move to the electrostatic eliminator and the dust collector, and the electrostatic eliminator can eliminate static electricity on the workpiece; the dust collector can remove dust on the workpiece. The destaticizing and dust-removing device of the present application eliminates the static electricity of the workpiece by using an electrostatic eliminator, thereby ensuring the stability of the charge of the workpiece, and removes dust from the workpiece by using a dust collector, thereby reducing the situation where the workpiece detection value is affected by dust on the workpiece surface. Moreover, the present application drives the workpiece to move to the electrostatic eliminator and the dust collector through the first moving mechanism, so that the electrostatic eliminator and the dust collector can more accurately process the surface of a certain workpiece to remove static electricity and dust from the workpiece. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 A schematic diagram of the structure of a destaticizing and dust removal device provided in one embodiment of the present application;
[0016] Figure 2 A schematic structural diagram of an electrostatic eliminator, a dust collector, and a first moving mechanism provided in one embodiment of the present application;
[0017] Figure 3 A schematic structural diagram of a second moving mechanism provided in one embodiment of the present application;
[0018] Figure 4 A schematic structural diagram of a feeding mechanism provided in one embodiment of the present application.
[0019] Description of the drawings: loading mechanism 10, loading station 11, vibration disk body 111, spiral track 112, horizontal discharging track 113, static eliminator 20, dust collector 30, first moving mechanism 40, fixed seat 41, rotating part 42, first clamping part 43, processing station 50, second moving mechanism 60, mounting frame 61, first rotating arm 62, second rotating arm 63, second clamping part 64. DETAILED DESCRIPTION
[0020] The present application is further described in detail below by means of specific embodiments in conjunction with the accompanying drawings. Similar elements in different embodiments are numbered with associated similar elements. In the following embodiments, many detailed descriptions are provided to enable the present application to be better understood. However, those skilled in the art will readily appreciate that some of the features may be omitted in different circumstances, or may be replaced by other elements, materials, or methods. In some cases, some operations related to the present application are not shown or described in the specification. This is to avoid the core portion of the present application being overwhelmed by excessive descriptions. For those skilled in the art, it is not necessary to describe these related operations in detail. They can fully understand the related operations based on the description in the specification and the general technical knowledge in the art.
[0021] In addition, the features, operations, or characteristics described in the specification may be combined in any appropriate manner to form various implementations, and the operational steps involved in each embodiment may be interchanged or adjusted in a manner that is obvious to those skilled in the art. Therefore, the specification and drawings are only for the purpose of clearly describing a particular embodiment and do not imply a required composition and / or sequence.
[0022] The serial numbers assigned to components herein, such as "first," "second," etc., are used solely to distinguish the objects being described and do not convey any sequential or technical meaning. References to "connection" and "coupling" herein, unless otherwise specified, include both direct and indirect connections (couplings).
[0023] The terms "parallel" and "perpendicular" are defined in terms of the current state of the art, rather than being absolutely strict definitions in a mathematical sense. A small amount of deviation is allowed, and being approximately parallel or approximately perpendicular is acceptable. For example, A and B are parallel, which means that A and B are parallel or approximately parallel, and the angle between A and B can be between 0° and 10°. For example, A and B are perpendicular, which means that A and B are perpendicular or approximately perpendicular, and the angle between A and B can be between 80° and 100°. The directional terms mentioned in the embodiments of the present application, such as "upper", "inner", "outer", "side", etc., are only directions with reference to the accompanying drawings. Therefore, the directional terms used are for better and clearer explanation and understanding of the embodiments of the present application, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as limitations on the embodiments of the present application.
[0024] Please refer to Figure 1 and Figure 2 This application provides a destaticizing and dust removal device. Preferably, the destaticizing and dust removal device is used in a production line for silicone products, which are more susceptible to friction-induced static electricity and dust absorption during transportation. The destaticizing and dust removal device includes a loading mechanism 10, an eliminator 20, a dust collector 30, and a first moving mechanism 40.
[0025] Among them, the loading mechanism 10 has a loading station 11, and the loading mechanism 10 is used to drive the workpiece in the loading mechanism 10 to move to the loading station 11. Specifically, the loading station 11 can be, for example, the end position of the conveying track, and a detector can be set at the loading station 11, for example, an infrared detector can be set to detect whether there is a workpiece at the loading station 11. When the detector detects that there is a workpiece at the loading station 11, the controller can control the first moving mechanism 40 to work. The first moving mechanism 40 is used to drive the workpiece at the loading station 11 to move to the electrostatic eliminator 20 and the dust collector 30, wherein the first moving mechanism 40 can move to the loading station 11 and fix the workpiece at the loading station 11 on the first moving mechanism 40, and the first moving mechanism 40 then drives the workpiece at the loading station 11 to move to the electrostatic eliminator 20 and the dust collector 30.
[0026] When the first moving mechanism 40 drives the workpiece to move to the static eliminator 20 and the dust collector 30, the static eliminator 20 can eliminate static electricity on the workpiece, and the dust collector 30 can remove dust on the workpiece. Similarly, detectors can be installed at the static eliminator 20 and the dust collector 30. When the detectors detect that there are workpieces at the static eliminator 20 and the dust collector 30, the controller controls the static eliminator 20 and the dust collector 30 to operate. The first moving mechanism 40 drives the workpiece to move to the static eliminator 20 and the dust collector 30, which generally means that the first moving mechanism 40 drives the workpiece to move to the working range of the static eliminator 20 and the working range of the dust collector 30, for example, the first moving mechanism 40 drives the workpiece to move to the position where the electron beam emitted by the static eliminator 20 flows, and the first moving mechanism 40 drives the workpiece to move to a position opposite to the dust removal port of the dust collector 30. The first moving mechanism 40 drives the workpiece to move by translation, rotation, or a combination of the two.
[0027] The static elimination and dust removal device of the present application utilizes an eliminator 20 to eliminate static electricity from the workpiece, ensuring a stable charge on the workpiece. It also utilizes a dust remover 30 to remove dust from the workpiece, reducing the impact of dust on the workpiece's surface on workpiece detection values. Furthermore, the present application utilizes a first moving mechanism 40 to move the workpiece to the eliminator 20 and dust remover 30, enabling the eliminator 20 and dust remover 30 to more precisely process a specific workpiece surface to remove static electricity and dust from the workpiece.
[0028] The static eliminator 20 may include an electron emitter configured to emit electrons toward the workpiece to eliminate static electricity on the workpiece surface. The dust collector 30 may include a vacuum cleaner or a blower. The vacuum cleaner draws air near the workpiece to remove dust from the workpiece, while the blower removes dust from the workpiece. In other embodiments, the static eliminator 20 and the dust collector 30 are not limited to the above-described embodiments and may also be other devices capable of achieving both static and dust removal.
[0029] In one embodiment, if Figure 2As shown, the static eliminator 20 and the dust collector 30 are arranged opposite each other, and a gap is formed between the static eliminator 20 and the dust collector 30, so that a processing station 50 is formed in the gap between the static eliminator 20 and the dust collector 30. The first moving mechanism 40 is used to move the workpiece from the loading station 11 to the processing station 50. The static eliminator 20 is used to eliminate static electricity on the workpiece at the processing station 50, and the dust collector 30 is used to remove dust on the workpiece at the processing station 50. In this embodiment, by arranging the static eliminator 20 and the dust collector 30 opposite each other, the first moving mechanism 40 only needs to move the workpiece to a position between the static eliminator 20 and the dust collector 30. That is, the static eliminator 20 and the dust collector 30 can process the workpiece in sequence or simultaneously. There is no need to use a moving mechanism to move the workpiece to the static eliminator 20 for processing first and then to the dust collector 30 for processing. This can simplify the processing process, save process time, and improve the efficiency of processing workpieces.
[0030] In one embodiment, if Figure 1-2 As shown, the first moving mechanism 40 is capable of driving the first clamping member 43 to rotate from the loading station 11 to the processing station 50. Specifically, the first moving mechanism 40 includes a fixed seat 41, a first driving member, a rotating member 42 and a first clamping member 43. The rotating member 42 is rotatably connected to the fixed seat 41, and the first clamping member 43 is installed on the rotating member 42. The first clamping member 43 is used to clamp the workpiece. The first driving member is used to drive the rotating member 42 to rotate relative to the fixed seat 41, so that the rotating member 42 can drive the first clamping member 43 to rotate from the loading station 11 to the processing station 50. Specifically, the first driving member can be, for example, a driving member such as a motor or a cylinder. The first clamping member 43 can, for example, include a first clamping jaw and a second clamping jaw. The first moving mechanism 40 can also include a fourth driving member, which drives the first clamping member 43 to clamp and release the workpiece. The fourth driving member can clamp and release the workpiece by driving the first clamping jaw and the second clamping jaw to move closer and farther away from each other. In other embodiments, the first moving mechanism 40 can also drive the first clamping member 43 to move horizontally from the loading station 11 to the processing station 50, or, in other embodiments, the first moving mechanism 40 can drive the first clamping member 43 to rotate and move horizontally from the loading station 11 to the processing station 50.
[0031] Furthermore, the static eliminator 20 and the dust collector 30 are arranged horizontally opposite each other, the processing station 50 and the loading station 11 are arranged vertically opposite each other, and the rotating member 42 is arranged between the processing station 50 and the loading station 11. The rotating member 42 can drive the first clamping member 43 to rotate 180 degrees in the vertical plane from the loading station 11 to the processing station 50. Preferably, the loading station 11 is arranged below the processing station 50, and the rotation axis of the rotating member 42 is parallel to the horizontal plane. The rotating member 42 drives the first clamping member 43 to rotate 180 degrees from the bottom of the loading station 11 to the processing station 50. By using the rotating member 42 to drive the first clamping member 43 to flip upward 180 degrees, the workpiece clamped by the first clamping member 43 can be quickly moved from the loading station 11 to the processing station 50. The moving distance of the workpiece is short, which can improve the working efficiency of the destaticizing dust removal device and effectively utilize the vertical space, providing a more reasonable distribution structure of the various mechanisms of the destaticizing dust removal device.
[0032] In one embodiment, if Figure 1 and Figure 3 As shown, the destaticizing and dust removing device also includes a second moving mechanism 60 and a conveying mechanism (not shown). The second moving mechanism 60 is used to drive the workpiece to the conveying mechanism after the workpiece is destaticized and dusted, and place the workpiece on the conveying mechanism. The conveying mechanism is used to convey the workpiece to the next process. Specifically, the second moving mechanism 60 can move to the processing station 50, and fix the workpiece of the processing station 50 on the second moving mechanism 60, and then drive the workpiece to the next process. The second moving mechanism 60 can fix the workpiece by clamping, magnetic attraction, etc., for example. The conveying mechanism can be, for example, a conveyor belt.
[0033] It should be noted that when the anti-static dust removal device includes a first moving mechanism 40 and a second moving mechanism 60, the processing sequence can be: the first moving mechanism 40 drives the workpiece to move to the processing station 50, the static eliminator 20 eliminates static electricity on the workpiece at the processing station 50, the second moving mechanism 60 clamps or magnetically attracts the workpiece, at this time the workpiece is still on the processing station 50 (i.e., in the gap between the static eliminator 20 and the dust collector 30), the dust collector 30 removes dust from the workpiece, and the second moving mechanism 60 then drives the workpiece to the conveying mechanism. Of course, it is also possible that the first moving mechanism 40 drives the workpiece to move to the processing station 50, the second moving mechanism 60 clamps or magnetically attracts the workpiece, then the static eliminator 20 and the dust collector 30 are turned on to process the workpiece, and the second moving mechanism 60 then drives the workpiece to the conveying mechanism. It is also possible that the first moving mechanism 40 drives the workpiece to move to the processing station 50, the static eliminator 20 and the dust collector 30 process the workpiece, and then the second moving mechanism 60 clamps or magnetically attracts the workpiece and drives the workpiece to move to the conveying mechanism.
[0034] Specifically, the second moving mechanism 60 includes a second clamping member 64, which is located above the processing station 50. Since the first clamping member 43 is located below the processing station 50, the second clamping member 64 is disposed above the processing station 50 so that the second clamping member 64 can clamp the workpiece from the first clamping member 43. Specifically, the second moving mechanism 60 includes a mounting frame 61, a second driving member, a third driving member, a first rotating arm 62, a second rotating arm 63, and a second clamping member 64. The first rotating arm 62 is rotatably connected to the mounting frame 61, the second rotating arm 63 is rotatably connected to the first rotating arm 62, the second clamping member 64 is mounted on the second rotating arm 63, the second clamping member 64 is used to clamp the workpiece, the second driving member is used to drive the first rotating arm 62 to rotate relative to the mounting frame 61, and the third driving member is used to drive the second rotating arm 63 to rotate relative to the first rotating arm 62. The second driving member and the third driving member can be driving members such as motors and cylinders.
[0035] Specifically, the rotation axis between the first rotating arm 62 and the mounting frame 61, and the rotation axis between the second rotating arm 63 and the first rotating arm 62, can both be parallel to the vertical direction. In one embodiment, the second clamping member 64 can reciprocate vertically relative to the second rotating arm 63, allowing the second clamping member 64 to move downward to clamp the workpiece at the processing station 50 and move the workpiece upward away from the processing station 50. The second clamping member 64 can also rotate relative to the second rotating arm 63 about the vertical axis to rotate the workpiece to a suitable angle before placing it on the conveyor mechanism. The second clamping member 64 can include a third clamping jaw and a fourth clamping jaw, which can clamp and release the workpiece by moving them closer and farther apart. By providing the first rotating arm 62 and the second rotating arm 63, the second moving mechanism 60 can have a larger range of movement, facilitating the movement of completed workpieces to a more distant conveyor mechanism or the next process.
[0036] In one embodiment, if Figure 1-4 As shown, the feeding mechanism 10 includes a vibrating plate feeding mechanism 10, which has a feeding station 11. The vibrating plate feeding mechanism 10 can vibrate to vibrate the workpiece in the vibrating plate to the feeding station 11. The vibrating plate feeding mechanism 10 can transport materials in an orderly manner, eliminating the time loss caused by manual feeding, effectively improving production efficiency, and reducing personnel cost investment.
[0037] In one embodiment, the vibration disk loading mechanism 10 includes a vibration disk body 111, a spiral track 112, and a horizontal discharge track 113. Specifically, the front end of the spiral track 112 is connected to the vibration disk body 111, the rear end of the spiral track 112 is connected to the front end of the horizontal discharge track 113, and the rear end of the horizontal discharge track 113 has a loading station 11. Among them, the front end of the spiral track 112 is the feeding end of the spiral track 112, the rear end of the spiral track 112 is the discharging end of the spiral track 112, the front end of the horizontal discharge track 113 is the feeding end of the horizontal discharge track 113, and the rear end of the horizontal discharge track 113 is the discharging end of the horizontal discharge track 113. The vibration disk body 111 is used to place the workpiece, and the vibration disk body 111 can vibrate so that the workpiece spirally rises along the spiral track 112 to the loading station 11 of the horizontal discharge track 113. Specifically, there is a workpiece placement groove in the vibration disk body 111, which is used to accommodate the workpiece. The front end of the horizontal discharge track 113 extends into the bottom of the accommodating groove, and the rear end of the horizontal discharge track 113 extends out of the accommodating groove, that is, the horizontal discharge track 113 can guide the workpiece in the workpiece placement groove to the outside of the vibration disk body 111.
[0038] Specifically, the vibration disk feeding mechanism 10 may further include a base, a vibrator and an elastic member. The vibrator may include a vibration coil and an iron core. The vibration coil is wound on the iron core, and the vibration coil is electrically connected to the power supply. The vibrator is mounted on the base, an elastic member is provided on the base, and the vibration disk body 111 is provided on the elastic member. When the vibrator is started, the pulsating DC drives the vibration coil, so that the vibration coil and the iron core form a strong magnetic force together, so that the vibration disk body 111 can vibrate in the vertical direction, thereby allowing the workpiece placed in the vibration disk body 111 to be transported from the bottom of the vibration disk body 111 to the top along the spiral track 112.
[0039] The above examples are used to illustrate the present invention, which is only used to help understand the present invention and is not intended to limit the present invention. For those skilled in the art of the present invention, some simple deductions, modifications or substitutions can be made based on the ideas of the present invention.
Claims
1. A destaticizing and dust removing device, characterized in that: include: A loading mechanism, the loading mechanism having a loading station, the loading mechanism being used to drive a workpiece in the loading mechanism to move to the loading station; Static eliminator; dust collector; And a first moving mechanism, which is used to drive the workpiece of the loading station to move to the static eliminator and the dust collector, the static eliminator can eliminate static electricity on the workpiece; the dust collector can remove dust on the workpiece.
2. The electrostatic dust removal device according to claim 1, characterized in that: The static eliminator and the dust collector are arranged opposite to each other, and there is a gap between the static eliminator and the dust collector, so as to form a processing station in the gap between the static eliminator and the dust collector; the first moving mechanism is used to drive the workpiece of the loading station to move to the processing station; the static eliminator is used to eliminate static electricity on the workpiece at the processing station; the dust collector is used to remove dust on the workpiece at the processing station.
3. The electrostatic dust removal device according to claim 2, characterized in that: The first moving mechanism includes a fixed seat, a first driving member, a rotating member and a first clamping member. The rotating member is rotatably connected to the fixed seat, and the first clamping member is installed on the rotating member. The first clamping member is used to clamp the workpiece; the first driving member is used to drive the rotating member to rotate relative to the fixed seat, so that the rotating member can drive the first clamping member to rotate from the loading station to the processing station.
4. The electrostatic dust removal device according to claim 3, characterized in that: The static eliminator and the dust collector are arranged opposite to each other in the horizontal direction, the processing station and the loading station are arranged opposite to each other in the vertical direction, and the rotating part is arranged between the processing station and the loading station. The rotating part can drive the first clamping part to flip 180 degrees from the loading station to the processing station in the vertical plane.
5. The electrostatic dust removal device according to claim 1, characterized in that: It also includes a second moving mechanism and a conveying mechanism. The second moving mechanism is used to drive the workpiece to move to the conveying mechanism after the workpiece eliminates static electricity and removes dust, and places the workpiece on the conveying mechanism; the conveying mechanism is used to convey the workpiece to the next process.
6. The electrostatic dust removal device according to claim 5, characterized in that: The second moving mechanism includes a mounting frame, a second driving member, a third driving member, a first rotating arm, a second rotating arm and a second clamping member. The first rotating arm is rotatably connected to the mounting frame, the second rotating arm is rotatably connected to the first rotating arm, the second clamping member is installed on the second rotating arm, and the second clamping member is used to clamp the workpiece; the second driving member is used to drive the first rotating arm to rotate relative to the mounting frame, and the third driving member is used to drive the second rotating arm to rotate relative to the first rotating arm.
7. The electrostatic dust removal device according to claim 1, characterized in that: The static eliminator includes an electron emitter, which is used to emit electrons toward the workpiece to eliminate static electricity on the surface of the workpiece.
8. The electrostatic dust removal device according to claim 1, characterized in that: The dust collector includes a dust collector or a blower, and the dust collector can suck the dust on the workpiece into the dust collector by sucking air; The blower can blow away dust on the workpiece.
9. The electrostatic dust removal device according to claim 1, characterized in that: The feeding mechanism includes a vibration plate feeding mechanism, the vibration plate feeding mechanism has the feeding station, and the vibration plate feeding mechanism can vibrate to vibrate the workpiece in the vibration plate to the feeding station.
10. The electrostatic dust removal device according to claim 9, characterized in that: The vibration plate loading mechanism includes a vibration plate body, a spiral track and a horizontal discharging track. The front end of the spiral track is connected to the vibration plate body, and the rear end of the spiral track is connected to the front end of the horizontal discharging track. The rear end of the horizontal discharging track has the loading station; the vibration plate body is used to place the workpiece, and the vibration plate body can shake vertically so that the workpiece can spirally rise along the spiral track to the loading station of the horizontal discharging track.