A mounting slide rail for coal mine data processing equipment
By using a multi-layered fixed structure and combined vibration reduction methods for the installation slide rail, the problem of insufficient vibration reduction effect of coal mine equipment in a vibrating environment is solved, thereby achieving the stability and extended life of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TONGMEI DATANG TASHAN COAL MINE CO LTD
- Filing Date
- 2025-09-08
- Publication Date
- 2026-07-17
AI Technical Summary
Traditional coal mine data processing equipment installation structures have limited vibration damping effects when faced with mechanical vibrations and impact loads, leading to direct transmission of equipment vibrations or resonance, which affects equipment stability and lifespan.
The installation slide rail adopts a multi-layered fixed structure, including a combination of active guide rail, driven guide rail, slider, base, limit block, shock-absorbing spring assembly and damper. The equipment position is adjusted by the cooperation of the guide rail and slider, and the pressure plate and shoulder are used to prevent displacement. The shock-absorbing spring assembly and damper absorb vibration energy and improve the shock absorption effect.
It effectively reduces the impact of vibration in the complex underground coal mine environment on data processing equipment, prevents equipment loosening and resonance, extends equipment service life, and ensures stable equipment operation.
Smart Images

Figure CN224516376U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of installation tools for coal mine data processing equipment, and in particular to an installation slide rail for coal mine data processing equipment. Background Technology
[0002] In the coal mine operating environment, the stable operation of data processing equipment plays a crucial role in the safety and efficiency of coal mine production. However, the coal mine is subject to complex working conditions such as continuous mechanical vibration and impact loads, which places extremely high demands on the vibration reduction and protection of the equipment. Traditional equipment installation structures are clearly insufficient in this regard and cannot meet the equipment's requirements for a stable operating environment.
[0003] Coal mine data processing equipment often employs a single vibration damping structure, commonly relying solely on dampers or a single spring for vibration reduction. While dampers can suppress high-frequency vibrations through frictional energy dissipation, their buffering capacity for low-frequency, large-amplitude vibrations is limited. When the equipment experiences a significant impact, the damper struggles to absorb energy quickly, leading to direct transmission of vibration to the equipment and causing loosening or damage to internal components. Relying solely on a single spring for vibration damping, while allowing the spring to absorb vibration energy through elastic deformation, lacks an effective energy dissipation mechanism. The absorbed energy is released as a rebound, causing resonance in the equipment and potentially increasing the amplitude. Especially in continuous vibration environments, resonance exacerbates fatigue damage and shortens the equipment's lifespan. Therefore, these problems need to be addressed. Utility Model Content
[0004] The purpose of this utility model is to address the shortcomings of existing technologies by proposing an installation slide rail for coal mine data processing equipment.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: an installation slide rail for coal mine data processing equipment, comprising a base, an active guide rail installed on one side of the top surface of the base, a driven guide rail arranged parallel to one side of the active guide rail, and the driven guide rail installed on the other side of the base, four sliders evenly arranged on the active guide rail and the driven guide rail, a base provided on the top of the sliders, a limit block installed in the middle section of the top surface of the base, and a platform connected to the limit block.
[0006] Preferably, pressure plates of different sizes are installed on both sides of the base and both sides of the pedestal, and multiple screws are evenly distributed on the pressure plates. One pressure plate is fixed to both sides of the base by screws, and the other pressure plate is fixed to both sides of the pedestal by screws.
[0007] Preferably, the active guide rail has a shoulder on one side, and the other side of the active guide rail is close to one end of the pressure plate. Both the active guide rail and the driven guide rail have multiple positioning pins in the middle.
[0008] Preferably, a linear motor is installed at one end of the slider, and a cleaning brush extends from the other end of the slider, with the bristles of the cleaning brush abutting against the groove of the guide rail.
[0009] Preferably, the limiting block is provided with a shock-absorbing spring assembly, the movable end of the shock-absorbing spring assembly is fixedly connected to the platform, and dampers are evenly distributed at the four corners of the bottom surface of the platform, with one end of the damper fixedly connected to the base and the other end fixedly connected to the platform.
[0010] Preferably, a plurality of bolts for fixing are evenly distributed at the connection between the slider and the base.
[0011] Compared with the prior art, the beneficial effects of this utility model are as follows: In this utility model, the cooperation between the guide rail and the slider can drive the base and the equipment above to move, realize the position adjustment of the equipment, and make the cleaning brush move with it to clean the groove of the guide rail; the cooperation between the pressure plate and the shoulder can prevent it from shifting laterally when under force, and the pressure plate further enhances the stability of the active guide rail installation; the setting of the shock-absorbing spring group can absorb the vibration energy transmitted to the platform, reduce the vibration impact on the equipment, and improve the shock absorption effect in conjunction with the damper, thus solving the problem that the existing single shock absorption structure has limited effect and cannot effectively reduce the impact of vibration on the equipment. Attached Figure Description
[0012] The accompanying drawings, which are included to provide a further understanding of the present invention and form part of this application, illustrate exemplary embodiments of the present invention and, together with the description thereof, serve to explain the present invention and do not constitute an undue limitation thereof. In the drawings:
[0013] Figure 1 This is a schematic diagram of the overall first-view structure proposed in this utility model;
[0014] Figure 2 This is a schematic diagram of the internal second-view structure proposed in this utility model;
[0015] Figure 3 This is a schematic diagram of the structure of some parts proposed in this utility model;
[0016] Figure 4 This is a schematic diagram of the internal structure of the shock-absorbing spring assembly proposed in this utility model.
[0017] The numbers in the diagram are: 1. Active guide rail; 2. Base; 3. Driven guide rail; 4. Pressure plate; 5. Shoulder; 6. Slider; 7. Positioning pin; 8. Screw; 9. Platform; 10. Limit block; 11. Cleaning brush; 12. Shock-absorbing spring assembly; 13. Damper; 14. Base. Detailed Implementation
[0018] 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.
[0019] Example: See Figures 1 to 4 This utility model discloses an installation slide rail for coal mine data processing equipment, comprising a base 2. An active guide rail 1 is installed on one side of the top surface of the base 2, facilitating cooperation with a driven guide rail 3 to ensure stable linear sliding of a slider 6, providing precise guidance for the movement of the coal mine data processing equipment. A driven guide rail 3 is parallel to the active guide rail 1 on one side, forming symmetrical support with the active guide rail 1 to share the weight of the slider 6 and the equipment, preventing excessive deformation of a single guide rail and improving the smoothness of the slider 6's sliding. The driven guide rail 3 is installed on the other side of the base 2, while the active guide rail... Four sliders 6 are evenly arranged on the driven guide rail 3. The position of the equipment can be adjusted by the sliders 6. The cleaning brush 11 moves with the sliders to clean the grooves of the guide rail. The top of the slider 6 is provided with a base 14. The base 14 facilitates the transmission of the movement of the slider 6 to the platform 9 and provides installation positions for components such as the limit block 10 and the damper 13, so as to realize the coordinated work of the components. The limit block 10 is installed in the middle of the top surface of the base 14. The limit block 10 helps to prevent the equipment from falling off due to excessive vibration. At the same time, the internal shock-absorbing spring group 12 provides buffering and shock absorption for the platform 9. The platform 9 is connected to the limit block 10.
[0020] In this invention, pressure plates 4 of different sizes are installed on both sides of the base 2 and both sides of the base 14. Multiple screws 8 are evenly distributed on the pressure plates 4. One pressure plate 4 is fixed to both sides of the base 2 by screws 8, and the other pressure plate 4 is fixed to both sides of the base 14 by screws 8. The pressure plates 4 facilitate the firm fixing of the active guide rail 1 and the driven guide rail 3 to the base 2, while simultaneously ensuring the base 14 is stably fixed to the slider 6, preventing the components from loosening or shifting during equipment movement or operation. A shoulder 5 is provided on one side of the active guide rail 1, and the other side of the active guide rail 1 is tightly attached to one end of the pressure plate 4. Multiple positioning pins 7 are provided in the middle of both the active guide rail 1 and the driven guide rail 3. The shoulder 5 facilitates the restriction of the position of the active guide rail 1 from the side, preventing lateral displacement under force. One end of the slider 6 is equipped with... A linear motor is provided, and a cleaning brush 11 extends from the other end of the slider 6. The brush end of the cleaning brush 11 abuts against the groove of the guide rail. The cleaning brush 11 facilitates the real-time removal of dust, debris and other impurities from the groove of the guide rail, preventing impurities from affecting the sliding of the slider 6 and reducing wear on the guide rail and slider 6. A shock-absorbing spring assembly 12 is provided inside the limit block 10. The movable end of the shock-absorbing spring assembly 12 is fixed to the platform 9. Dampers 13 are evenly distributed at the four corners of the bottom surface of the platform 9. One end of the damper 13 is fixed to the base 14 and the other end is fixed to the platform 9. The shock-absorbing spring assembly 12 facilitates the absorption of vibration energy transmitted to the platform 9, reducing the vibration impact on the equipment. It works with the dampers 13 to improve the shock absorption effect. Multiple bolts for fixing are evenly distributed at the connection between the slider 6 and the base 14.
[0021] Working Principle: In the use of this utility model, firstly, each electrical component in this application is connected to the power supply. Then, the base 2 serves as the foundation of the entire slide rail. The active guide rail 1 and the driven guide rail 3 are fixed to the top surface by the pressure plates 4 on both sides and screws 8. The shoulder 5 on one side of the active guide rail 1 cooperates with the pressure plate 4 to restrict the position of the guide rail laterally and prevent deviation. The positioning pin 7 in the middle of the guide rail ensures the parallelism between the active guide rail 1 and the driven guide rail 3, avoiding the impact of installation deviation on sliding stability. This multi-layered fixing structure provides rigid support for the sliding of the slider 6, ensuring the overall structural strength of the slide rail and enabling it to withstand the weight of the coal mine data processing equipment and the vibration load during operation. Next, the slider 6 is evenly distributed on the active guide rail 1 and the driven guide rail 3. The linear motor installed at one end provides driving force, driving the slider 6 to slide along the guide rail groove. Then, through the base 14 connected to the top, it drives the platform 9 and the equipment to move synchronously, realizing the position adjustment of the equipment. The cleaning brush 11 extending from the other end of the slider 6 moves with the slider 6, and the brush end continuously abuts against the guide rail groove to clean the groove in real time. Dust, debris, and other impurities inside the slide are removed to prevent them from jamming the slider 6 or accelerating guide rail wear, ensuring smooth sliding. The parallel arrangement of the active guide rail 1 and the driven guide rail 3 forms symmetrical support, distributing the weight of the equipment and preventing deformation of a single guide rail under stress, thus improving the stability of the movement. Meanwhile, the platform 9, as the installation carrier of the equipment, is connected to the base 14 via the limiting block 10. The shock-absorbing spring assembly 12 inside the limiting block 10 provides elastic support for the platform 9. When subjected to vibration and impact, the spring assembly absorbs part of the vibration energy through deformation; simultaneously, the platform... The dampers 13 at the four corners of the bottom surface of the platform 9 are connected to the base 14 and the platform 9 respectively. They consume vibration energy and attenuate the vibration amplitude of the platform 9 by using damping. The synergistic effect of the damping spring group 12 and the dampers 13 forms a high-efficiency damping system, which can effectively reduce the impact of vibration in the complex environment of underground coal mine on data processing equipment and prevent equipment failure due to vibration. The limit block 10 can also limit the vertical movement range of the platform 9 to prevent excessive vibration from causing the equipment to fall off. This concludes the use of the installation slide rail for coal mine data processing equipment.
[0022] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A mounting slide rail for coal mine data processing equipment, comprising a base (2), characterized in that: An active guide rail (1) is installed on one side of the top surface of the base (2), and a driven guide rail (3) is arranged parallel to one side of the active guide rail (1). The driven guide rail (3) is installed on the other side of the base (2). Four sliders (6) are evenly arranged on the active guide rail (1) and the driven guide rail (3). A base (14) is provided on the top of the slider (6). A limit block (10) is installed in the middle section of the top surface of the base (14). A platform (9) is connected to the limit block (10). The limiting block (10) is provided with a shock-absorbing spring assembly (12). The movable end of the shock-absorbing spring assembly (12) is fixed to the platform (9). The four corners of the bottom surface of the platform (9) are evenly provided with dampers (13). One end of the damper (13) is fixed to the base (14) and the other end is fixed to the platform (9). The shock-absorbing spring assembly (12) facilitates the absorption of vibration energy transmitted to the platform (9), reducing the vibration impact on the equipment, and works in conjunction with the damper (13) to improve the shock absorption effect.
2. The mounting slide rail for coal mine data processing equipment according to claim 1, characterized in that: Different sized pressure plates (4) are installed on both sides of the base (2) and both sides of the base (14). Multiple screws (8) are evenly distributed on the pressure plates (4). One pressure plate (4) is fixed to both sides of the base (2) by screws (8), and the other pressure plate (4) is fixed to both sides of the base (14) by screws (8).
3. The mounting slide rail for coal mine data processing equipment according to claim 2, characterized in that: The active guide rail (1) has a shoulder (5) on one side and the other side of the active guide rail (1) is close to one end of the pressure plate (4). Both the active guide rail (1) and the driven guide rail (3) have multiple positioning pins (7) in the middle.
4. The mounting slide rail for coal mine data processing equipment according to claim 1, characterized in that: A linear motor is installed at one end of the slider (6), and a cleaning brush (11) extends from the other end of the slider (6), with the brush end of the cleaning brush (11) abutting against the groove of the guide rail.
5. The mounting slide rail for coal mine data processing equipment according to claim 4, characterized in that: Multiple bolts for fixing are evenly distributed at the connection between the slider (6) and the base (14).