Electrostatic eliminator for chemical safety
By designing a static eliminator with a movable track and a mobile box carrying an ion fan, the problem of limited coverage of static eliminators in large workshops was solved, achieving wider coverage and reduced energy consumption.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SICHUAN JIUHE SAFETY TECH CO LTD
- Filing Date
- 2025-06-27
- Publication Date
- 2026-07-24
Smart Images

Figure CN224555838U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of static electricity elimination technology in chemical safety, and in particular relates to a static electricity elimination device for chemical safety. Background Technology
[0002] In high-risk industries such as chemical and electronics, static electricity buildup can lead to fires or explosions. Ion fans are currently widely used static electricity elimination devices. Traditional ion fans generate positive and negative ions by ionizing air with high voltage, and then neutralize the static charge on object surfaces with the help of airflow. However, existing equipment is mostly fixed or limited oscillation type, with a small coverage area. In larger workshop environments, fixed fans have significant blind spots, requiring multiple devices to work together, which is not only costly, but also increases energy consumption due to the increased number of devices. Utility Model Content
[0003] The purpose of this invention is to provide a static electricity elimination device for chemical safety that can be dynamically moved to achieve a wider coverage area.
[0004] The electrostatic eliminator for chemical safety includes a track extending from front to back, a movable box moving along its length on the track, an ion fan mounted on the movable box, a slide rod with several support columns arranged sequentially from front to back fixed on the slide rod for support, a common slide rail fixed on all support columns, the slide rail being parallel to the slide rod, a slide seat fixed on the movable box for sliding cooperation with the slide rail, a drive wheel rolling along the slide rail mounted on the slide seat, a motor for rotating the drive wheel installed inside the movable box, a sliding sleeve fixed on the movable box for sliding cooperation with the slide rod, and openings in the sliding sleeve corresponding to the support columns.
[0005] Furthermore, the ion fan is installed inside the support column, and an exhaust port with internal and external communication is opened on the movable box corresponding to the air outlet of the ion fan, and the exhaust port is equipped with a honeycomb plate.
[0006] Furthermore, the slide block has a "door" shaped structure, the slide rail has a rectangular cross-section, the top of the slide rail is located inside the slide block, the drive wheel is installed on the inner top of the slide block and rolls freely along the top of the slide rail, and the output end of the motor is provided with through holes on both the movable box and the slide block, and the output end of the motor passes through the two through holes in turn and is connected to the center of the drive wheel.
[0007] Furthermore, pulleys that roll along the top of the slide rail are installed in the slide block on both the front and rear sides corresponding to the drive wheel.
[0008] Furthermore, the slide rail and the support column are connected by a connecting plate.
[0009] Furthermore, the inner wall of the sliding sleeve is provided with a number of ball bearings that can reduce friction between the sliding rod and the sliding sleeve.
[0010] Furthermore, the active box is equipped with a battery that provides power to the motor and ion fan.
[0011] Furthermore, the lower end of the support column is fixed with a mounting base for securing it to the ground.
[0012] Compared with the prior art, the present invention has the following beneficial effects: This invention uses a movable box to carry the ion fan back and forth along the length of the slide rail, allowing the ion fan to work while moving, thereby increasing the coverage area for static electricity elimination. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the structure of this utility model; Figure 2 for Figure 1 A schematic diagram of the right-side view structure; Figure 3 This is a three-dimensional structural diagram of the present invention; Figure 4 This is an exploded structural diagram of the present invention; The components in the diagram are named as follows: 1. Support column; 2. Slide block; 3. Slide rod; 4. Ball bearing; 5. Slide sleeve; 6. Movable box; 7. Ion fan; 8. Honeycomb panel; 9. First partition; 10. Motor; 11. Second partition; 12. Battery; 13. Fixed base; 14. Connecting plate; 15. Slide rail; 16. Drive wheel; 17. Baffle; 18. Pulley. Detailed Implementation
[0014] The present invention will be further described below with reference to the accompanying drawings and specific embodiments, but this is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
[0015] Example This embodiment describes a static electricity elimination device for chemical safety, such as... Figures 1 to 4As shown, the device includes a track extending from front to back, on which a movable box 6 moves along its length (front and back). An ion fan 7 is mounted on the movable box 6, which is installed inside a support column 1. Corresponding to the air outlet of the ion fan 7, an exhaust port with internal and external communication is opened on the movable box 6, and a honeycomb panel 8 is provided at the exhaust port. The ion fan 7 is existing technology, and its main function is to eliminate static electricity and prevent static pollution and damage. It includes a mounting frame, a drive motor, fan blades, and electrode needles. In use, negative ions are generated by the electrode needles, and then the airflow driven by the fan blades disperses the negative ions. During installation, the mounting frame of the ion fan 7 is installed in the upper part of the interior of the movable box 6 and fixed to the inner side wall. The honeycomb panel 8 serves to both disperse negative ions and protect the fan blades.
[0016] The track includes a slide rod 3, on which several support columns 1 are fixed, arranged sequentially from front to back, for supporting the slide rod 3. Each support column 1 has a fixing seat 13 at its lower end for securing it to the ground. The fixing seat 13 has four rectangular bolt holes. During installation, the slide rod 3 can be installed on the ground next to a wall in a workshop or certain rooms, distributed along the wall.
[0017] All support columns 1 are fixed with the same slide rail 15, and the slide rail 15 is connected to the support column 1 through a connecting plate 14.
[0018] The slide rail 15 and the slide rod 3 are parallel to each other. The movable box 6 is fixed with a slide block 2 for sliding back and forth with the slide rail 15. The connecting plate 14 is fixed to the lower half of the slide rail 15, leaving the upper half of the slide rail 15 open to cooperate with the slide block 2.
[0019] A drive wheel 16 that rolls along a slide rail 15 is mounted on the slide block 2, and a motor 10 that rotates the drive wheel 16 is installed inside the movable box 6. The slide block 2 has a "door" shaped structure, and the slide rail 15 has a rectangular cross-section. The top of the slide rail 15 is located inside the slide block 2. The drive wheel 16 is mounted on the inner top of the slide block 2 and rolls freely along the top of the slide rail 15. Corresponding to the output end of the motor 10, through holes are opened on both the movable box 6 and the slide block 2. The output end of the motor 10 passes through the two through holes in sequence and connects to the center of the drive wheel 16.
[0020] like Figure 1 As shown, the slide block 2 has a "door" shaped structure, and the slide rail 15 has a rectangular cross-section. The left inner side wall of the slide block 2 is attached to the left side wall of the slide rail 15, and the right inner side wall of the slide block 2 is attached to the right side plate of the slide rail 15. Due to the constraint, the slide block 2 can only move along the length of the slide rail 15.
[0021] The drive wheel 16 is located in the middle of the slide block 2. In use, the drive wheel 16 is driven to rotate by the motor 10. The drive wheel 16 rolls along the top of the slide rail 15, which in turn moves the movable box 6. A positioning hole is provided on the left inner side wall of the slide block 2. The output end of the motor 10 passes through the drive wheel 16 and is positioned in the positioning hole to improve the stability of the structure.
[0022] Corresponding to the front and rear sides of the drive wheel 16, pulleys 18 are installed in the slide block 2, rolling along the top of the slide rail 15. A central shaft is inserted into the central hole of the pulley 18, and the left and right ends of the central shaft are fixed to the slide block 2. The slide block 2 has fixing holes for fixing the central shaft. The pulleys 18 are designed to make the front and rear ends of the slide block 2 more stable.
[0023] A sliding sleeve 5 is fixed on the movable box 6, which slides in conjunction with the sliding rod 3. An opening is provided on the sliding sleeve 5 corresponding to the support column 1. The sliding sleeve 5 moves along the length of the sliding rod 3, and through its cooperation with the sliding seat 2, the movable box 6 moves smoothly. During production, it is difficult to support the movable box 6 and make it move if only the sliding seat 2 and the slide rail 15 are used.
[0024] As the sliding sleeve 5 slides along the length of the sliding rod 3, it needs to pass over several support columns 1. To avoid collision between the sliding sleeve 5 and the support columns 1, an opening is provided. The size of the opening is larger than the diameter of the support column 1, and the diameter of the opening is smaller than the diameter of the sliding rod 3. This allows the sliding sleeve 5 to pass over the support columns 1 without detaching from the sliding rod 3. Several ball bearings 4 are provided on the inner wall of the sliding sleeve 5 to reduce friction between the sliding rod 3 and the sliding sleeve 5. For each ball bearing 4, a ball groove is provided on the inner wall of the sliding sleeve 5. During production, the ball bearing 4 is placed in the ball groove and rolls only within it. When the sliding sleeve 5 rolls along the sliding rod 3, the ball bearing 4 effectively reduces friction between the two, making the movement of the movable box 6 more stable.
[0025] The movable box 6 contains a battery 12 that provides power to the motor 10 and the ion fan 7. To ensure structural stability within the movable box 6, the motor 10 and the ion fan 7 are separated by a first partition 9, and the motor 10 and the battery 12 are separated by a second partition 11. The motor 10 is located between the first partition 9 and the second partition 11, the ion fan 7 is located on top of the first partition 9, and the battery 12 is located below the second partition 11 and fixed to the inner bottom of the movable box 6.
[0026] During production, infrared sensors are installed on the front and rear side walls of the movable box 6. The two infrared sensors are connected to the same controller through wires. The controller is directly connected to the motor 10 through wires. When an obstacle is encountered, the infrared sensor outputs an alarm, and the controller controls the motor 10 to switch the rotation direction, so that the movable box 6 avoids collision with the obstacle.
[0027] The front side wall of the movable box 6 is a removable baffle 17. During production or maintenance, the interior of the movable box 6 can be installed or maintained by removing the baffle 17.
[0028] In actual use, the motor 10 drives the drive wheel 16 to roll along the length of the slide rail 15, thereby driving the ion fan 7 to work while moving, eliminating static electricity, increasing the coverage of the ion fan 7, reducing the number of ion fans 7 used, saving usage costs, and at the same time reducing the number of ion fans 7, the power consumption of the ion fans 7 is reduced, thereby reducing energy consumption to a certain extent.
Claims
1. A static electricity elimination device for chemical safety, comprising a track extending from front to back, a movable box (6) moving along the length of the track, and an ion fan (7) mounted on the movable box (6), characterized in that: The track includes a slide rod (3), on which several support columns (1) are fixedly arranged from front to back for supporting it. All support columns (1) are fixed with the same slide rail (15). The slide rail (15) is parallel to the slide rod (3). The movable box (6) is fixed with a slide seat (2) for sliding with the slide rail (15). The slide seat (2) is equipped with a drive wheel (16) that rolls along the slide rail (15). The movable box (6) is equipped with a motor (10) that rotates the drive wheel (16). The movable box (6) is fixed with a sliding sleeve (5) that slides with the slide rod (3). The corresponding support column (1) has an opening on the sliding sleeve (5).
2. The static electricity elimination device for chemical safety according to claim 1, characterized in that: The ion fan (7) is installed inside the support column (1). The air outlet of the ion fan (7) is provided with an exhaust port that is connected to the inside and outside on the movable box (6). The exhaust port is provided with a honeycomb plate (8).
3. The static electricity elimination device for chemical safety according to claim 1, characterized in that: The slide block (2) has a "door" shaped structure. The slide rail (15) has a rectangular cross-section. The top of the slide rail (15) is located inside the slide block (2). The drive wheel (16) is installed on the inner top of the slide block (2) and rolls freely along the top of the slide rail (15). The output end of the motor (10) has through holes on both the movable box (6) and the slide block (2). The output end of the motor (10) passes through the two through holes and connects to the center of the drive wheel (16) in turn.
4. The static electricity elimination device for chemical safety according to claim 3, characterized in that: The front and rear sides of the drive wheel (16) are equipped with pulleys (18) that roll along the top of the slide rail (15) in the slide block (2).
5. The static electricity elimination device for chemical safety according to claim 1, characterized in that: The slide rail (15) is connected to the support column (1) by a connecting plate (14).
6. The static electricity elimination device for chemical safety according to claim 1, characterized in that: The inner wall of the sliding sleeve (5) is provided with a number of ball bearings (4) that can reduce friction between the sliding rod (3) and the sliding sleeve (5).
7. The static electricity elimination device for chemical safety according to claim 1, characterized in that: The active box (6) is equipped with a battery (12) that provides power to the motor (10) and the ion fan (7).
8. The static electricity elimination device for chemical safety according to claim 1, characterized in that: The lower end of the support column (1) is fixed with a fixing seat (13) for fixing it to the ground.