Safe anti-explosion anti-static workbench

By employing dual anti-static measures such as an anti-static work surface and ionizer bars, along with a gas filtration system, the problems of static electricity accumulation and harmful gas treatment are solved, achieving a safe and healthy working environment.

CN223763167UActive Publication Date: 2026-01-06SICHUAN KEXING INTELLIGENT EQUIPMENT MANUFACTURING CO LTD
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Patent Information

Application Number
CN202520310668.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-26
Publication Date
2026-01-06
Estimated Expiration
2035-02-26

AI Technical Summary

Technical Problem

During the handling of electronic components, static electricity buildup can lead to electrical sparks and explosion hazards, and traditional workbenches cannot effectively purify harmful gases, affecting the health and safety of workers.

Method used

It employs dual anti-static measures, including an anti-static work surface and ionizing air bars to release ions, combined with a gas filtration system, to reduce static electricity accumulation and purify the air in the work area.

Benefits of technology

It reduces the risk of explosions caused by static electricity, provides a safe working environment, improves air quality, and protects the health of electronic components and workers.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of safety production, and particularly relates to a safe anti-explosion anti-static workbench which comprises an anti-static table top, a plurality of supporting table legs are fixedly connected to the lower side of the anti-static table top, the upper surface of the anti-static table top is sequentially divided into a plurality of working areas from left to right, and an ion wind bar is further fixedly connected to the anti-static table top. And a plurality of ion release mechanisms are fixedly connected to the ion wind bar and are used for releasing ions to the plurality of working areas. According to the utility model, through the dual anti-static measures that the anti-static table top and the ion wind bar release ions, static accumulation is reduced, so that electric sparks caused by electrostatic discharge are avoided, the possibility of explosion on the anti-static table top and in the surrounding space of the anti-static table top is reduced, a relatively safe working environment can be provided for working personnel, and the working efficiency is improved. Explosion accidents caused by static electricity and damage to electronic component products are prevented.
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Description

Technical Field

[0001] This utility model belongs to the field of safety production technology, specifically relating to a safe explosion-proof and anti-static workbench. Background Technology

[0002] Static electricity (SEE) is a significant concern during the assembly and processing of electronic components. With the rapid development of electronic technology, electronic components are becoming increasingly sophisticated, placing higher demands on the working environment. When handling electronic components on a standard workbench, the frequent friction, contact, and separation between objects easily generate static electricity. Rapid accumulation of static electricity can not only cause irreversible damage to electronic components by releasing sparks, leading to decreased product yield and increased production costs, but also, in flammable and explosive environments, can trigger explosions due to electrical sparks, seriously threatening the lives of workers and the company's production facilities.

[0003] Meanwhile, the processing and assembly of electronic components often generate various harmful gases, such as flux volatiles from soldering and odors emitted from plastic parts. If these harmful gases accumulate in the work area for extended periods, they can not only cause discomfort and affect work efficiency, but long-term inhalation may also damage health. Traditional workbenches lack effective gas treatment devices and cannot purify the air in the work area in a timely manner. Utility Model Content

[0004] The purpose of this invention is to provide a safe, explosion-proof, and anti-static workbench. Through the dual anti-static measures of the anti-static work surface and the ion release bar, static electricity accumulation is reduced, thereby avoiding electric sparks caused by electrostatic discharge. This reduces the possibility of explosions on and around the anti-static work surface, providing a relatively safe working environment for workers and preventing explosions caused by static electricity and damage to electronic components.

[0005] The specific technical solution adopted by this utility model is as follows:

[0006] A safe, explosion-proof, and antistatic workbench includes an antistatic work surface, with multiple supporting legs fixedly connected to the underside of the antistatic work surface. The upper surface of the antistatic work surface is divided into multiple working areas from left to right. An ion air bar is also fixedly connected to the antistatic work surface, and multiple ion release mechanisms are fixedly connected to the ion air bar. The multiple ion release mechanisms are used to release ions into the multiple working areas.

[0007] Furthermore, an anti-static bracket is fixedly connected to the anti-static table surface, and two connecting blocks are fixedly connected to the anti-static bracket. A lampshade is fixedly connected to the lower side of the two connecting blocks. Multiple explosion-proof lamps are electrically connected inside the lampshade. A first rectangular plate is fixedly connected to the anti-static bracket. A first mounting groove and a second mounting groove are opened on the first rectangular plate. The ionizing air bar is fixedly connected to the first mounting groove, and an insert plate is fixedly connected to the second mounting groove.

[0008] Furthermore, the ion release mechanism includes a third delivery pipe, one end of which is fixedly connected to one end of the ion air bar. An antistatic baffle is fixedly connected to the antistatic platform. A semi-circular shell is fixedly connected to one side of the antistatic baffle. A sphere is rotatably connected inside the semi-circular shell. The sphere has a hollow structure. The end of the third delivery pipe away from the ion air bar extends through the antistatic baffle into the interior of the sphere. Multiple circular holes are opened on one side of the sphere, and the circular holes are connected to the third delivery pipe. A second delivery pipe is fixedly connected to one side of the sphere and is connected to the interior of the sphere. A valve is fixedly connected to the side of the second delivery pipe away from the sphere. An angle locking assembly is fixedly connected to the outside of the second delivery pipe.

[0009] Furthermore, the angle locking assembly includes a second rectangular plate with a through hole. The second conveying pipe is inserted into the through hole and can rotate in multiple directions inside the through hole. Two telescopic support rods are fixedly connected to the second rectangular plate, and a magnet is fixedly connected to one end of each telescopic support rod near the antistatic baffle. The magnet is magnetically attracted to the antistatic baffle.

[0010] Furthermore, an antistatic partition is fixedly connected to one side of the antistatic bracket. The antistatic partition has a hollow structure and multiple slots are formed on it. Each slot is fixedly connected to an exhaust fan. A gas filter is fixedly connected to the antistatic partition and is located above the exhaust fan. Two first conveying pipes are fixedly connected to the antistatic partition, and the ends of the two first conveying pipes away from the antistatic partition extend to the outside of the antistatic bracket.

[0011] Furthermore, a perforated upper baffle is fixedly connected inside the antistatic bracket, and the perforated upper baffle has multiple perforations.

[0012] The technical effects achieved by this utility model are as follows:

[0013] This utility model discloses a safe explosion-proof and anti-static workbench. Through the dual anti-static measures of the anti-static work surface and the ion release bar, it reduces the accumulation of static electricity, thereby avoiding the generation of electric sparks due to electrostatic discharge. It reduces the possibility of explosion on the anti-static work surface and in the surrounding space, and can provide workers with a relatively safe working environment, preventing explosion accidents caused by static electricity and damage to electronic components. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the structure of this utility model;

[0015] Figure 2 This is a cross-sectional structural diagram of the present invention;

[0016] Figure 3 This is a schematic diagram of the ion release mechanism in the figure;

[0017] Figure 4 This is a front view structural schematic diagram of the present invention.

[0018] The attached diagram lists the components represented by each number as follows:

[0019] 1. Anti-static tabletop; 2. Support legs; 3. Anti-static bracket; 4. Connecting block; 5. Lampshade; 6. Anti-static partition; 7. First conveying pipe; 8. Perforated upper baffle; 9. First rectangular plate; 10. Ionizing air bar; 11. Anti-static baffle; 12. Semi-circular shell; 13. Sphere; 14. Second rectangular plate; 15. Valve; 16. Second conveying pipe; 17. Support rod; 18. Gas filter; 19. Exhaust fan; 20. Insert plate; 21. Third conveying pipe; 22. Round hole; 23. Magnet block. Detailed Implementation

[0020] To make the objectives and advantages of this utility model clearer, the following detailed description is provided in conjunction with embodiments. It should be understood that the following text is merely used to describe one or more specific embodiments of this utility model and does not strictly limit the scope of protection specifically claimed by this utility model.

[0021] like Figure 1 As shown, a safe explosion-proof and anti-static workbench includes an anti-static work surface 1, multiple support legs 2 fixedly connected to the lower side of the anti-static work surface 1, multiple working areas divided from left to right on the upper surface of the anti-static work surface 1, an ion air bar 10 fixedly connected to the anti-static work surface 1, and multiple ion release mechanisms fixedly connected to the ion air bar 10, which are used to release ions into the multiple working areas.

[0022] During use, when electronic components are placed in the work area, static electricity is mainly generated due to friction, contact, and separation between objects. When static electricity accumulates on the anti-static table 1, the anti-static table 1 allows the static electricity to be released slowly, preventing rapid accumulation and potential static electricity hazards. Simultaneously, the ion bar 10 is activated. The positive and negative ions generated by the ion bar 10 are blown into the ion release mechanism by a fan inside the ion bar 10, and then blown onto the surface of the electronic components and the work area. After these ions are released into the work area, they interact with the statically charged electronic components in the work area, discharging the static electricity from the components. If an electronic component carries positive static electricity, negative ions will combine with it, neutralizing the static electricity. Conversely, if an object carries negative static electricity, positive ions will combine with it, thus eliminating static electricity and reducing the damage to electronic components caused by static electricity during assembly. At the same time, the dual anti-static measures of the anti-static table 1 and the ion bar 10 reduce the accumulation of static electricity, thereby avoiding the generation of electric sparks due to electrostatic discharge and reducing the possibility of explosions on and around the anti-static table 1. This provides a relatively safe working environment for workers, preventing explosions caused by static electricity and damage to electronic components.

[0023] The ion fan bar 10 includes a housing, an ion emitter, a high-voltage power supply, a high-voltage generator, and a fan.

[0024] like Figure 1 As shown, an anti-static bracket 3 is fixedly connected to the anti-static work surface 1. Two connecting blocks 4 are fixedly connected to the anti-static bracket 3. A lampshade 5 is fixedly connected to the lower side of the two connecting blocks 4. Multiple explosion-proof lamps are electrically connected inside the lampshade 5. A first rectangular plate 9 is fixedly connected to the anti-static bracket 3. The first rectangular plate 9 has a first mounting slot and a second mounting slot. An ion air bar 10 is fixedly connected to the first mounting slot. An insert plate 20 is fixedly connected to the second mounting slot. In use, the explosion-proof lamps can better illuminate each working area. The insert plate 20 can be used as an expansion interface to connect other anti-static or auxiliary equipment, such as small static electricity monitoring instruments and air purifiers, increasing the practicality, safety, and functionality of the entire workbench.

[0025] like Figure 1As shown, the ion release mechanism includes a third delivery pipe 21, one end of which is fixedly connected to one end of the ion air bar 10. An anti-static baffle 11 is fixedly connected to the anti-static platform 1. A semi-circular shell 12 is fixedly connected to one side of the anti-static baffle 11. A sphere 13 is rotatably connected inside the semi-circular shell 12. The sphere 13 has a hollow structure. The end of the third delivery pipe 21 away from the ion air bar 10 extends through the anti-static baffle 11 into the interior of the sphere 13. Multiple circular holes 22 are opened on one side of the sphere 13, and the circular holes 22 are connected to the third delivery pipe 21. A second delivery pipe 16 is fixedly connected to one side of the sphere 13, and the second delivery pipe 16 is connected to the interior of the sphere 13. The second delivery pipe 16 is located away from the sphere. A valve 15 is fixedly connected to one side of the sphere 13, and an angle locking assembly is fixedly connected to the outside of the second conveying pipe 16. When in use, the ions generated and ionized by the ion bar 10 will be conveyed into the sphere 13 through the third conveying pipe 21. At the same time, the user manually rotates the sphere 13 to change the angle of the second conveying pipe 16. When the angle is appropriate, the angle locking assembly is activated to lock the angle of the second conveying pipe 16. Then, the valve 15 is opened, allowing the ions in the sphere 13 to be blown through the second conveying pipe 16 to the working area and the surface of the electronic components, thereby neutralizing the ions with the working area and the electronic components, increasing the flexibility and adaptability of the ion release mechanism, and achieving electrostatic neutralization of the electronic components and the working area.

[0026] like Figure 1 As shown, the angle locking assembly includes a second rectangular plate 14 with a through hole. A second conveying pipe 16 is inserted into the through hole and can rotate in multiple directions within it. Two telescopic support rods 17 are fixedly connected to the second rectangular plate 14. A magnet 23 is fixedly connected to one end of each telescopic support rod 17 near the anti-static baffle 11. The magnet 23 is magnetically attracted to the anti-static baffle 11. In use, when it is necessary to adjust the angle of the ball 13 and the second conveying pipe 16, the length of the telescopic support rod 17 can be changed to push the second conveying pipe 16 and the ball 13 to rotate to a suitable angle. For example, this can be used when adjusting the angle of electronic components in different areas of the workbench. During operation, depending on the layout of the components and the static electricity generated, the operator can manually adjust the telescopic support rod 17 to rotate the second delivery tube 16 and the sphere 13, thereby adjusting the ion release direction. At the same time, the magnet 23 is tightly attracted to the anti-static baffle 11 by magnetic attraction. The fixing force generated by the magnet 23 locks the rotation angle of the second delivery tube 16, thus fixing the angle of the sphere 13. In subsequent work, even if there is slight external interference or vibration, the sphere 13 and the second delivery tube 16 can maintain the set angle, ensuring that the ions are always released stably in the predetermined direction, thus ensuring the stability of the ion release mechanism after angle adjustment.

[0027] like Figure 1As shown, an antistatic partition 6 is fixedly connected to one side of the antistatic bracket 3. The antistatic partition 6 has a hollow structure and multiple slots are opened on it. Each slot is fixedly connected to an exhaust fan 19. A gas filter 18 is fixedly connected inside the antistatic partition 6 and is located above the exhaust fan 19. Two first conveying pipes 7 are fixedly connected to the antistatic partition 6. The ends of the two first conveying pipes 7 away from the antistatic partition 6 extend to the outside of the antistatic bracket 3. When in use, the exhaust fan 19 is started, and the exhaust fan 19 will draw harmful gases generated by electronic components in the work area into the antistatic partition 6. Then, the gas is filtered by the gas filter 18 inside the antistatic partition 6. The filtered gas is discharged through the first conveying pipes 7, which improves the air quality in the work area and creates a more comfortable and safe working environment for the staff.

[0028] The gas filter element 18 includes filter media made of polyester fiber and glass fiber.

[0029] like Figure 1 As shown, a perforated upper baffle 8 is fixedly connected inside the antistatic bracket 3. The perforated upper baffle 8 has multiple perforations. During use, air can flow through these perforations, making the airflow more uniform inside the antistatic bracket 3, promoting air exchange throughout the working area, increasing the suitability of the working area's environmental conditions, and avoiding adverse effects on electronic components due to local temperature and humidity differences.

[0030] The working principle of this utility model is as follows: During use, when electronic components are placed in the work area for operation, static electricity is mainly generated due to friction, contact, and separation between objects. When static electricity accumulates on the anti-static tabletop 1, the anti-static tabletop 1 allows for slow release of static electricity, preventing rapid accumulation and potential static hazards. Simultaneously, the ion bar 10 is activated. The positive and negative ions generated by the ion bar 10 are blown into the ion release mechanism by a fan inside the ion bar 10, and then blown onto the surface of the electronic components and the work area. After these ions are released into the work area, they interact with the statically charged electronic components in the work area, thus discharging static electricity. If electronic components in the work area carry positive static electricity, negative ions will combine with them to neutralize the static electricity. Conversely, if an object carries negative static electricity, positive ions will combine with it to eliminate static electricity and reduce damage to electronic components during assembly. At the same time, the dual anti-static measures of the anti-static table 1 and the ion bar 10 reduce static electricity accumulation, thereby avoiding electric sparks caused by electrostatic discharge and reducing the possibility of explosions on and around the anti-static table 1. This provides a relatively safe working environment for workers and prevents explosions caused by static electricity and damage to electronic components.

[0031] The above description is merely a preferred embodiment of this utility model. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principle of this utility model, and these improvements and modifications should also be considered within the scope of protection of this utility model. Structures, devices, and operating methods not specifically described or explained in this utility model, unless otherwise specified or limited, shall be implemented using conventional methods in the field.

Claims

1. A safe, explosion-proof, anti-static workbench, characterized in that: The utility model provides an anti -static platform, including anti -static platform (1), a plurality of support legs (2) are fixedly connected to the lower side of anti -static platform (1), the upper surface of anti -static platform (1) is divided into a plurality of work areas from left to right in proper order, and an ion wind stick (10) is further fixedly connected to the upper surface of anti -static platform (1), a plurality of ion release mechanisms are fixedly connected to the ion wind stick (10), and the ion release mechanisms are used to release ions to a plurality of work areas; The ion release mechanism includes a third conveying pipe (21), one end of the third conveying pipe (21) is fixedly connected with one end of the ion wind stick (10), an anti-static baffle (11) is fixedly connected to the anti-static platform (1), one side of the anti-static baffle (11) is fixedly connected with a semicircular shell (12), a spherical ball (13) is rotatably connected in the semicircular shell (12), the spherical ball (13) is hollow, one end of the third conveying pipe (21) away from the ion wind stick (10) extends through the anti-static baffle (11) to the inside of the spherical ball (13), a plurality of round holes (22) are formed in one side of the spherical ball (13), the round holes (22) are in communication with the third conveying pipe (21), a second conveying pipe (16) is fixedly connected to one side of the spherical ball (13), the second conveying pipe (16) is in communication with the inside of the spherical ball (13), a valve (15) is fixedly connected to one side of the second conveying pipe (16) away from the spherical ball (13), and an angle locking group is fixedly connected to the outside of the second conveying pipe (16).

2. The safe, explosion-proof, anti-static workbench of claim 1, wherein: The anti-static platform (1) is fixedly connected with an anti-static support (3), two connecting blocks (4) are fixedly connected to the anti-static support (3), a lampshade (5) is fixedly connected to the lower side of the two connecting blocks (4), a plurality of explosion-proof lamps are electrically connected in the lampshade (5), a first rectangular plate (9) is fixedly connected to the anti-static support (3), a first mounting groove and a second mounting groove are formed in the first rectangular plate (9), the ion wind stick (10) is fixedly connected in the first mounting groove, and a plugboard (20) is fixedly connected in the second mounting groove.

3. The safe, explosion-proof, anti-static workbench of claim 1, wherein: The angle locking group includes a second rectangular plate (14), a through hole is formed in the second rectangular plate (14), the second conveying pipe (16) is inserted into the through hole, the second conveying pipe (16) can rotate in multiple directions in the through hole, two telescopic supporting rods (17) are fixedly connected to the second rectangular plate (14), a magnet block (23) is fixedly connected to one end of each of the two telescopic supporting rods (17) close to the anti-static baffle (11), and the magnet block (23) is magnetically attracted to the anti-static baffle (11).

4. The safe, explosion-proof, anti-static workbench of claim 2, wherein: The anti-static support (3) is fixedly connected with an anti-static partition plate (6) on one side, the anti-static partition plate (6) is in a hollow structure, a plurality of groove bodies are formed in the anti-static partition plate (6), an exhaust fan (19) is fixedly connected in each groove body, a gas filter (18) is fixedly connected in the anti-static partition plate (6), the gas filter (18) is located on the upper side of the exhaust fan (19), two first conveying pipes (7) are fixedly connected to the anti-static partition plate (6), and the two first conveying pipes (7) extend to the outer side of the anti-static support (3) away from the anti-static partition plate (6).

5. The safe, explosion-proof, anti-static workbench of claim 2, wherein: The anti-static support (3) is fixedly connected with a punched upper baffle (8), and a plurality of punching holes are formed in the punched upper baffle (8).