A micro-current stabilized static eliminator
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-19
- Publication Date
- 2026-08-14
AI Technical Summary
然而,传统的静电消除器在实际使用中存在诸多问题
[0010]本实用新型中,所述的一种微电流稳定型静电消除器,通过设置有固定组件,拉动拉环,带动移动板克服弹簧四的弹力移动,斜杆从静电感应头两侧抽出,即可将静电感应头从连接座中取出;安装时,将静电感应头放入连接座,松开拉环,在弹簧四作用下,斜杆插入静电感应头两侧,完成固定,采用简单的拉动拉环和松开拉环的操作方式,即可轻松完成静电感应头的拆卸与安装,使得感应头能够及时得到更换和更新,保持设备始终处于良好的工作状态,从而延长了静电消除器的整体使用寿命;
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Figure CN224638236U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of static eliminator technology, and in particular to a micro-current stable static eliminator. Background Technology
[0002] In numerous fields such as electronics manufacturing, chemical engineering, and printing, static electricity can severely impact production processes and product quality, such as attracting dust, damaging precision electronic components, and triggering explosions of flammable and explosive gases. Therefore, the application of static eliminators is crucial. However, traditional static eliminators present several problems in practical use. Firstly, the static induction head installation structure of traditional static eliminators is complex, often requiring multiple tools and cumbersome procedures for disassembly and installation. This not only leads to significant time and effort wasted by staff when replacing or maintaining the static induction head but also risks damaging the equipment due to improper operation. Secondly, the data transmission and charging interfaces of traditional static eliminators have relatively weak protection measures. Some devices use only a simple, single fixed protective cover, which is prone to loosening due to external vibrations and impacts during long-term use. This allows dust, moisture, and other impurities to enter the interface, causing oxidation, short circuits, or poor contact, affecting the device's data transmission and charging functions and reducing its stability and reliability. Furthermore, the inconvenience of installing and removing some protective covers reduces work efficiency in scenarios with frequent interface use, failing to meet the demands of modern high-efficiency production. Therefore, we propose a micro-current stable static eliminator to address this problem. Utility Model Content
[0003] The purpose of this invention is to provide a micro-current stable electrostatic eliminator to solve the problems mentioned in the background art.
[0004] To achieve the above objectives, the present invention adopts the following technical solution: A micro-current stabilized static eliminator includes: a static eliminator body, with a data transmission interface and a charging interface respectively disposed inside one side of the static eliminator body; protective covers are disposed on the outer sides of both the data transmission interface and the charging interface; one end of each of the two sets of protective covers is movably inserted into the interior of the static eliminator body; two sets of placement slots and sliding grooves are formed on one side of the static eliminator body; fixing components are disposed inside the placement slots and sliding grooves located on the same side; the fixing components include: a sliding frame, with a sliding plate slidably mounted inside the sliding frame; and inserts are fixedly mounted at both ends of the sliding plate. The device includes a plate and a pull rod. The plate is movably inserted into the interior of the static eliminator body. A connecting plate is fixedly installed at the bottom of the sliding frame. A square plate is fixedly installed at the bottom of the connecting plate. An insert block is fixedly installed on one side of the square plate. The insert block is movably inserted into the interior of one end of the protective cover. Multiple sets of connecting seats are fixedly installed on the top of the static eliminator body. Each set of connecting seats contains a static induction head. A device connection port is fixedly installed on one side of the static eliminator body. A hanging rope is hinged inside the other side of the static eliminator body. An operation display screen is provided on the front of the static eliminator body.
[0005] Preferably, each of the multiple sets of connecting seats has two sets of rectangular slots inside. The two sets of rectangular slots on the same side are provided with a buckling assembly. The buckling assembly includes: two sets of movable plates. The interior of each set of movable plates is movably abutted against a diagonal rod. The two sets of diagonal rods are respectively movably inserted into the interior of both sides of the electrostatic induction head. A short block is fixedly installed at one end of each set of movable plates. The same set of pull rings is fixedly installed on the outer side of each set of short blocks.
[0006] Preferably, the two sets of sliding frames are slidably installed inside the corresponding placement slots, and each set of sliding frames is provided with a spring. The two ends of the two sets of springs are respectively fixedly connected to the inner wall of one side of the corresponding slide plate and the sliding frame. The two sets of pull rods slide through to one side of the corresponding sliding frame, and a pull plate is fixedly installed at one end of each set of pull rods.
[0007] Preferably, the two sets of square plates are slidably installed inside the corresponding slide grooves, and each set of slide grooves is provided with a spring three, the two ends of the two sets of spring three being fixedly connected to the top inner wall of the corresponding square plate and the slide groove, respectively.
[0008] Preferably, each of the two sets of placement slots is provided with a second spring, and the two ends of the two sets of second springs are respectively fixedly connected to the corresponding sliding frame and the top inner wall of the placement slot.
[0009] Preferably, each of the multiple sets of rectangular grooves is provided with a spring four inside, and the two ends of the multiple sets of spring four are respectively fixedly connected to the corresponding movable plate and the top inner wall of the rectangular groove. Each of the multiple sets of movable plates is slidably installed with a guide rod inside, and one end of the multiple sets of guide rods is respectively fixedly connected to the top inner wall of the corresponding rectangular groove.
[0010] In this utility model, a micro-current stable static eliminator is provided with a fixing component. Pulling the pull ring causes the moving plate to move against the elastic force of the spring four, and the inclined rod is pulled out from both sides of the static induction head, so that the static induction head can be removed from the connecting seat. During installation, the static induction head is placed into the connecting seat, the pull ring is released, and under the action of the spring four, the inclined rod is inserted into both sides of the static induction head to complete the fixation. The simple operation of pulling and releasing the pull ring can easily complete the disassembly and installation of the static induction head, so that the induction head can be replaced and updated in a timely manner, keeping the equipment in good working condition, thereby extending the overall service life of the static eliminator. In this utility model, a micro-current stable static eliminator is provided with a snap-fit assembly. First, the pull plate is pulled horizontally to the right, causing the pull plate to move the pull rod and the sliding plate. The sliding plate causes the insert plate to detach from the inside of the static eliminator body while squeezing spring one. At this time, the pull plate is pulled horizontally upward, and the sliding frame squeezes spring two, causing the sliding frame to move the connecting plate and the square plate. The square plate causes the insert block to detach from the inside of one end of the protective cover while squeezing spring three. At this time, the protective cover can be opened. This structure is simple and easy to operate, and it is convenient to quickly install and remove the protective cover. It also achieves double fixation to form a tight protective barrier. Compared with a single fixation method, it can better resist interference from external factors, so that the protective cover can effectively isolate dust, moisture and other external impurities, and prevent the interface from being oxidized, short-circuited or having poor contact due to the intrusion of impurities. Attached Figure Description
[0011] Figure 1 This is a three-dimensional structural diagram of a micro-current stabilized static eliminator proposed in this utility model; Figure 2 This is a cross-sectional view of a micro-current stabilized static eliminator proposed in this utility model; Figure 3 for Figure 2 A magnified view of part A in the middle; Figure 4 for Figure 2 A magnified view of part B in the middle section.
[0012] In the diagram: 1. Static eliminator body; 2. Data transmission interface; 3. Charging interface; 4. Protective cover; 5. Fixing assembly; 501. Sliding frame; 502. Pull rod; 503. Slide plate; 504. Insert plate; 505. Connecting plate; 506. Square plate; 507. Insert block; 508. Spring 1; 509. Spring 2; 510. Spring 3; 6. Connecting seat; 7. Static induction head; 8. Buckle assembly; 801. Pull ring; 802. Short block; 803. Moving plate; 804. Diagonal rod; 805. Spring 4; 806. Guide rod; 9. Operation display screen; 10. Equipment connection port; 11. Hanging rope. Detailed Implementation
[0013] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0014] Reference Figure 1-4 A micro-current stable static eliminator includes: a static eliminator body 1, with a data transmission interface 2 and a charging interface 3 respectively disposed inside one side of the static eliminator body 1; protective covers 4 disposed outside both the data transmission interface 2 and the charging interface 3; one end of each set of protective covers 4 being movably inserted into the interior of the static eliminator body 1; two sets of placement slots and sliding grooves are provided on one side of the static eliminator body 1; fixing components 5 are disposed inside the placement slots and sliding grooves on the same side; the fixing components 5 include: a sliding frame 501; a sliding plate 503 is slidably installed inside the sliding frame 501; and insert plates 504 and pull rods are respectively fixedly installed at both ends of the sliding plate 503. 502, the insert plate 504 is movably inserted into the interior of the static eliminator body 1. The bottom of the slide frame 501 is fixedly installed with a connecting plate 505. The bottom of the connecting plate 505 is fixedly installed with a square plate 506. The side of the square plate 506 is fixedly installed with an insert block 507. The insert block 507 is movably inserted into the interior of one end of the protective cover 4. The top of the static eliminator body 1 is fixedly installed with multiple sets of connecting seats 6. Each set of connecting seats 6 is equipped with a static induction head 7. The side of the static eliminator body 1 is fixedly installed with a device connection port 10. The other side of the static eliminator body 1 is hinged with a hanging rope 11. The front of the static eliminator body 1 is equipped with an operation display screen 9.
[0015] In this embodiment, each of the multiple sets of connecting seats 6 has two sets of rectangular slots inside. Each of the two sets of rectangular slots on the same side has a latching assembly 8 inside. The latching assembly 8 includes two sets of movable plates 803. Each set of movable plates 803 has a diagonal rod 804 movably abutting against it. The two diagonal rods 804 are respectively movably inserted into the interiors of both sides of the electrostatic induction head 7. A short block 802 is fixedly installed at one end of each set of movable plates 803. The same set of pull rings 801 are fixedly installed on the outer side of each set of short blocks 802, facilitating the movement of the electrostatic induction head 7. For quick installation, disassembly and replacement, two sets of sliding frames 501 are slidably installed inside the corresponding placement slots. Each set of sliding frames 501 is equipped with a spring 508. The two ends of the two sets of springs 508 are fixedly connected to the inner wall of the corresponding slide plate 503 and the inner wall of the sliding frame 501. Two sets of pull rods 502 slide through to the side of the corresponding sliding frame 501. One end of each set of pull rods 502 is fixedly installed with a pull plate, which facilitates the quick reset of the insert plate 504 and facilitates the double installation and fixation of the protective cover 4.
[0016] In this embodiment, two sets of square plates 506 are slidably installed inside corresponding slide grooves. Springs 3 510 are installed inside both sets of slide grooves. The two ends of the two sets of springs 3 510 are fixedly connected to the corresponding square plate 506 and the top inner wall of the slide groove, facilitating the quick reset of the insert block 507 and the quick installation and removal of the protective cover 4. Springs 2 509 are installed inside both sets of placement slots. The two ends of the two sets of springs 2 509 are fixedly connected to the corresponding slide frame 501 and the top inner wall of the placement slot, facilitating the quick reset of the slide frame 501. Springs 4 805 are installed inside multiple sets of rectangular slots. The two ends of the multiple sets of springs 4 805 are fixedly connected to the corresponding moving plate 803 and the top inner wall of the rectangular slot, respectively. Guide rods 806 are slidably installed inside multiple sets of moving plates 803. One end of the multiple sets of guide rods 806 is fixedly connected to the top inner wall of the corresponding rectangular slot, facilitating the quick reset of the inclined rod 804 driven by the moving plate 803, and facilitating the quick installation and removal of the electrostatic induction head 7.
[0017] In this embodiment, during use, multiple sets of electrostatic induction heads 7 on the top of the static eliminator body 1 are mounted on the device via a connecting base 6. The snap-fit assembly 8 inside the connecting base 6 securely mounts the electrostatic induction heads 7. When static electricity exists in the surrounding environment, the electrostatic induction heads 7 detect the static signal, and the operation display screen 9 can display relevant static data in real time for operator monitoring. If installation, replacement, or maintenance of the electrostatic induction heads 7 is required, the snap-fit assembly 8 inside the connecting base 6 can be operated. Pulling the pull ring 801 causes the moving plate 803 to move against the elastic force of the spring 805, and the diagonal rod 804 is pulled out from both sides of the electrostatic induction head 7, allowing the electrostatic induction head 7 to be removed from the connecting seat 6. During installation, place the electrostatic induction head 7 into the connecting seat 6, release the pull ring 801, and under the action of the spring 805, the diagonal rod 804 inserts into both sides of the electrostatic induction head 7 to complete the fixation. The protective cover 4 on the outside of the data transmission interface 2 and the charging interface 3 prevents the interfaces from being contaminated with dust, moisture, etc. When the interface needs to be used, first pull the pull plate horizontally to the right, causing the pull plate to move the pull rod 502 and the sliding plate 503. This causes the sliding plate 503 to disengage the insertion plate 504 from the inside of the electrostatic eliminator body 1 while simultaneously squeezing the spring 805. 08. At this point, pulling the pull plate horizontally upward causes the sliding frame 501 to compress the second spring 509, which in turn moves the connecting plate 505 and the square plate 506. Simultaneously, the square plate 506 causes the insert block 507 to disengage from one end of the protective cover 4, compressing the third spring 510. This opens the protective cover 4. After use, releasing the pull plate allows the insert plate 504 to re-insert into the body of the static eliminator 1 under the resetting action of the first spring 508, the second spring 509, and the third spring 510. The insert block 507 then re-inserts into the protective cover 4, achieving double fixation. The hanging rope 11, hinged inside the other side of the static eliminator body 1, allows users to hang the device on their body or fix it in other locations for easy carrying and use. Furthermore, the device connection port 10 can connect to other related devices, enabling a wider range of applications.
[0018] The present invention provides a detailed description of a micro-current stabilized electrostatic eliminator. Specific embodiments have been used to illustrate the principle and implementation of the present invention. These embodiments are merely illustrative and are intended to aid in understanding the method and core concept of the present invention. It should be noted that those skilled in the art can make various improvements and modifications to the present invention without departing from its principles, and these improvements and modifications also fall within the scope of protection of the claims of the present invention.
Claims
1. A micro-current stabilized static eliminator, characterized in that, include: The static eliminator body (1) has a data transmission interface (2) and a charging interface (3) respectively provided on one side of its interior. Protective covers (4) are provided on the outer sides of both the data transmission interface (2) and the charging interface (3). One end of each set of protective covers (4) is movably inserted into the interior of the static eliminator body (1). Two sets of placement slots and sliding grooves are provided on one side of the static eliminator body (1). Fixing components (5) are provided inside the placement slots and sliding grooves on the same side. The fixing components (5) include: a sliding frame (501), a sliding plate (503) slidably installed inside the sliding frame (501), and insert plates (504) and pull rods (502) fixedly installed at both ends of the sliding plate (503). The sliding frame (501) is movably inserted into the interior of the static eliminator body (1). A connecting plate (505) is fixedly installed at the bottom of the sliding frame (501). A square plate (506) is fixedly installed at the bottom of the connecting plate (505). A plug (507) is fixedly installed on one side of the square plate (506). The plug (507) is movably inserted into the interior of one end of the protective cover (4). Multiple sets of connecting seats (6) are fixedly installed on the top of the static eliminator body (1). Static induction heads (7) are provided inside the multiple sets of connecting seats (6). A device connection port (10) is fixedly installed on one side of the static eliminator body (1). A hanging rope (11) is hinged inside the other side of the static eliminator body (1). An operation display screen (9) is provided on the front side of the static eliminator body (1).
2. The micro-current stabilized static eliminator according to claim 1, characterized in that, Each of the multiple sets of connecting seats (6) has two sets of rectangular slots inside. Each of the two sets of rectangular slots on the same side is provided with a buckle assembly (8). The buckle assembly (8) includes: two sets of movable plates (803). Each of the two sets of movable plates (803) has a movable abutment with a diagonal rod (804). The two sets of diagonal rods (804) are respectively movably inserted into the two sides of the electrostatic induction head (7). A short block (802) is fixedly installed at one end of each of the two sets of movable plates (803). The same set of pull rings (801) is fixedly installed on the outside of each of the two sets of short blocks (802).
3. The micro-current stabilized electrostatic eliminator according to claim 1, characterized in that, The two sets of sliding frames (501) are slidably installed inside the corresponding placement slots. Each set of sliding frames (501) is provided with a spring (508). The two ends of the two sets of springs (508) are fixedly connected to the corresponding slide plate (503) and the inner wall of one side of the sliding frame (501). The two sets of pull rods (502) slide through to one side of the corresponding sliding frame (501). One end of each set of pull rods (502) is fixedly installed with a pull plate.
4. A micro-current stabilized electrostatic eliminator according to claim 1, characterized in that, The two sets of square plates (506) are slidably installed inside the corresponding slide grooves. The two sets of slide grooves are each provided with a spring three (510). The two ends of the two sets of spring three (510) are fixedly connected to the corresponding square plate (506) and the top inner wall of the slide groove, respectively.
5. A micro-current stabilized static eliminator according to claim 1, characterized in that, Both sets of placement slots are equipped with springs (509) inside, and the two ends of the springs (509) are fixedly connected to the corresponding sliding frame (501) and the top inner wall of the placement slot, respectively.
6. A micro-current stabilized electrostatic eliminator according to claim 2, characterized in that, Each of the multiple sets of rectangular grooves is provided with a spring four (805). The two ends of the multiple sets of spring four (805) are respectively fixedly connected to the corresponding movable plate (803) and the top inner wall of the rectangular groove. Each of the multiple sets of movable plates (803) is slidably installed with a guide rod (806). One end of the multiple sets of guide rods (806) is respectively fixedly connected to the top inner wall of the corresponding rectangular groove.