Embedded solid lubrication sliding block

By designing inlaid solid lubricating slides linked by clamping and lubrication mechanisms, the problem of not being able to quickly adapt to different sizes of slide rails in the prior art is solved, rapid clamping and uniform lubrication are achieved, workers' workload and production costs are reduced, and equipment efficiency and reliability are improved.

CN223257920UActive Publication Date: 2025-08-22HANGZHOU ANLAN MACHINERY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422298702.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2025-08-22
Estimated Expiration
2034-09-20

AI Technical Summary

Technical Problem

Most of the existing inlaid solid lubricating slides can only adapt to single-size slides, and cannot quickly adapt to different sizes of slides, which increases the workload and production costs of workers.

Method used

A solid lubricating slider inlaid with a clamping mechanism and a lubrication mechanism is designed. The clamping mechanism achieves rapid clamping and positioning through the linkage of grooves, rotating grooves, assisting rods, threaded shafts, sliding sleeves, threaded sleeves and clamps; the lubricating mechanism achieves uniform lubrication through the linkage of the material storage box, spray heads, fan blades and motors, and reduces friction.

Benefits of technology

It achieves rapid adaptation to different size slide rails, reduces workload, improves production efficiency, and extends the service life and reliability of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the related technical field of sliding blocks, in particular to an embedded solid lubrication sliding block which comprises a main body block and a clamping mechanism, the clamping mechanism is arranged on one side of the surface of the main body block, and a lubrication mechanism is arranged at one end of the main body block. According to the lubricating sliding block embedded with the solid, through the arrangement of the groove, the rotating groove, the communicating groove, the power assisting rod, a threaded shaft, a sliding sleeve, a threaded sleeve, a handle, a connecting plate and a clamping plate, when the lubricating sliding block embedded with the solid is used, a main body block is firstly placed on a sliding rail, then the handle is screwed, and the rotating handle drives the threaded shaft to rotate; rotation of the threaded shaft enables the threaded sleeve in threaded connection with the threaded shaft to slide in the axial direction of the threaded shaft, sliding of the threaded sleeve drives the connecting plate to move, the connecting plate drives the sliding sleeve to move synchronously, and finally the sliding sleeve and the threaded sleeve drive the clamping plate to conduct clamping.
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Description

Technical Field

[0001] The utility model relates to the technical field related to sliders, in particular to an inlaid solid lubricating slider. Background Art

[0002] A slider is a mechanical component that usually moves linearly along a guide rail or slideway to transmit motion or adjust position. Sliders are often used in various mechanical equipment to achieve smooth and precise sliding motion, reduce friction and provide support. It can be made of metal, plastic or composite materials and is often used in conjunction with guide rails or sleeves. During the use of the slider, the slider and the slide rail usually need to be lubricated. Therefore, there is a special need for a slider with embedded solid lubrication.

[0003] However, most of the existing solid-inlaid lubricating sliders can only adapt to slide rails of a single size. When encountering slide rails of different sizes, the existing mechanism cannot quickly adapt to the slide rails, thereby increasing the workload of workers and raising production costs. Utility Model Content

[0004] The purpose of the present utility model is to provide an inlaid solid lubricating slider to solve the problem proposed in the above background technology that most of the existing inlaid solid lubricating sliders can only adapt to slide rails of a single size. When encountering slide rails of different sizes, the existing mechanism cannot quickly adapt to the slide rails, thereby increasing the workload of workers and raising production costs.

[0005] To achieve the above-mentioned object, the present invention provides the following technical solution: an inlaid solid lubricating slider, comprising a main body block and a clamping mechanism, wherein a clamping mechanism is provided on one side of the surface of the main body block, and a lubricating mechanism is provided on one end of the main body block;

[0006] The clamping mechanism includes a groove, a rotating groove, a connecting groove, an auxiliary rod, a threaded shaft, a sliding sleeve, a threaded sleeve, a handle, a connecting plate and a splint. A groove is provided on one side of the surface of the main body block, a rotating groove is provided on both sides of the groove, a connecting groove is provided at one end of the groove, an auxiliary rod is fixedly connected to one end of the groove, a threaded shaft is embedded in the interior of the rotating groove, a sliding sleeve is embedded on the surface of the auxiliary rod, a threaded sleeve is threadedly connected to the surface of the threaded shaft, a handle is connected to one side of the threaded shaft, one end of the sliding sleeve is connected to the connecting plate, and one side of the surface of the sliding sleeve is connected to the splint.

[0007] Preferably, the main body of the connecting plate is embedded in the communicating groove, and the other side of the connecting plate is connected to the threaded sleeve.

[0008] Preferably, two groups of grooves are provided, and the sliding sleeves and threaded sleeves are respectively embedded in the corresponding grooves.

[0009] Preferably, the threaded sleeves are provided in two groups, and the threaded sleeves form a mutually sliding structure through the handle and the threaded shaft.

[0010] Preferably, the sliding sleeve realizes synchronous movement with the threaded sleeve through the connecting plate, and the sliding sleeve and the auxiliary rod form a mutual sliding structure through the connecting plate and the threaded sleeve.

[0011] Preferably, the lubrication mechanism includes a material storage box, a feed port, a threaded hole, a mounting groove, a protective cover, a nozzle, a mother rod, fan blades, a belt and a motor. A material storage box is provided inside the main body block, a feed port is provided on one side of the main body block, a threaded hole is provided on the other side of the main body block, a mounting groove is provided at one end of the main body block, a protective cover is threadedly connected to the surface of the feed port, a nozzle is threadedly connected to the inside of the threaded hole, a mother rod is embedded in the inside of the mounting groove, fan blades are fixedly connected to the surface of the mother rod, a belt is embedded on one side of the surface of the mother rod, and a motor is embedded on the other side of the belt.

[0012] Preferably, the surface of the nozzle passes through the connecting groove, and the threaded holes are distributed at equal intervals on the main body block.

[0013] Preferably, the fan blades are provided in a total of six groups, and the fan blades are provided in three groups on a single group of mother rods and are distributed at equal intervals.

[0014] Compared with the prior art, the beneficial effects of the present invention are as follows: the solid-embedded lubricating slider, through the setting of the clamping mechanism and the lubricating mechanism, the clamping mechanism and the lubricating mechanism work together to achieve smooth clamping operation, precise positioning and long-term stable operation; the lubricating mechanism effectively reduces friction, extends the service life of the clamping mechanism, and improves the efficiency and reliability of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is a side view of the structure of the utility model;

[0016] Figure 2 This is a partial cross-sectional exploded structural diagram of the clamping mechanism of the present invention;

[0017] Figure 3 This is a schematic diagram of the partial sectional exploded structure of the lubrication mechanism of the utility model;

[0018] Figure 4 For this utility model Figure 2 A in the middle is an enlarged structural diagram;

[0019] Figure 5 For this utility model Figure 3 Enlarged structural diagram at point B in the middle.

[0020] In the figure: 1. Main block; 2. Clamping mechanism; 201. Groove; 202. Rotating groove; 203. Connecting groove; 204. Auxiliary rod; 205. Threaded shaft; 206. Sliding sleeve; 207. Threaded sleeve; 208. Handle; 209. Connecting plate; 210. Clamp; 3. Lubricating mechanism; 301. Storage box; 302. Feed port; 303. Threaded hole; 304. Mounting groove; 305. Protective cover; 306. Nozzle; 307. Mother rod; 308. Fan blade; 309. Belt; 310. Motor. DETAILED DESCRIPTION

[0021] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0022] See also Figure 1-5 The utility model provides a technical solution: an inlaid solid lubricating slider, comprising a main body block 1 and a clamping mechanism 2, wherein the clamping mechanism 2 is provided on one side of the surface of the main body block 1, and a lubricating mechanism 3 is provided on one end of the main body block 1;

[0023] The clamping mechanism 2 includes a groove 201, a rotating groove 202, a connecting groove 203, an auxiliary rod 204, a threaded shaft 205, a sliding sleeve 206, a threaded sleeve 207, a handle 208, a connecting plate 209 and a clamping plate 210. A groove 201 is provided on one side of the surface of the main body block 1, a rotating groove 202 is provided on both sides of the groove 201, a connecting groove 203 is provided at one end of the groove 201, an auxiliary rod 204 is fixedly connected to one end of the groove 201, a threaded shaft 205 is embedded in the interior of the rotating groove 202, a sliding sleeve 206 is embedded on the surface of the auxiliary rod 204, a threaded sleeve 207 is threadedly connected to the surface of the threaded shaft 205, a handle 208 is connected to one side of the threaded shaft 205, and one end of the sliding sleeve 206 is connected to the connecting plate 209. A splint 210 is connected to one side of the surface of the sliding sleeve 206. Through the arrangement of the groove 201, the rotating groove 202, the connecting groove 203, the auxiliary rod 204, the threaded shaft 205, the sliding sleeve 206, the threaded sleeve 207, the handle 208, the connecting plate 209 and the splint 210, when in use, the main body 1 is first placed on the slide rail, and then the handle 208 is twisted. The rotating handle 208 drives the threaded shaft 205 to rotate. The rotation of the threaded shaft 205 causes the threaded sleeve 207 threadedly connected thereto to slide axially along the threaded shaft 205. At the same time, the sliding of the threaded sleeve 207 drives the connecting plate 209 to move, and the connecting plate 209 drives the sliding sleeve 206 to move synchronously, and finally the splint 210 is driven by the sliding sleeve 206 and the threaded sleeve 207 to clamp.

[0024] Furthermore, the main body of the connecting plate 209 is embedded in the inside of the connecting groove 203, and the other side of the connecting plate 209 is connected to the threaded sleeve 207. Through the setting of the connecting plate 209, one side of the connecting plate 209 is connected to the threaded sleeve 207 and the other side is connected to the sliding sleeve 206. The threaded sleeve 207 is connected to the threaded shaft 205 through a thread, and the threaded sleeve 207 realizes axial sliding. When the threaded shaft 205 rotates, the threaded sleeve 207 moves along the threaded shaft 205, and the connecting plate 209 transmits this movement to the sliding sleeve 206, so that the sliding sleeve 206 moves with the threaded sleeve 207. At the same time, the connecting plate 209 realizes the synchronous movement of the two by connecting the threaded sleeve 207 and the sliding sleeve 206. In this way, when the threaded shaft 205 rotates, the sliding sleeve 206 and the threaded sleeve 207 can slide on the auxiliary rod 204 at the same time, driving the clamping plate 210 to move forward or backward to achieve the effect of clamping or loosening. Finally, the connecting plate 209 is embedded in the connecting groove 203, which can effectively ensure that the movement trajectories of the threaded sleeve 207 and the sliding sleeve 206 are consistent, avoiding unstable movement or jamming during the clamping process, and ensuring that the clamping mechanism 2 works more smoothly.

[0025] Furthermore, two groups of grooves 201 are provided, and the sliding sleeves 206 and the threaded sleeves 207 are respectively embedded in the corresponding grooves 201. Through the setting of the grooves 201, the grooves 201 are opened on one side of the surface of the main block 1, and are used to accommodate multiple key components of the clamping mechanism 2, such as the auxiliary rod 204, the sliding sleeve 206 and the threaded sleeve 207. These components slide or embed in the grooves 201, thereby realizing the normal operation of the clamping mechanism 2. The two sides of the groove 201 provide sliding space for the movement of these components by embedding the sliding sleeves 206 and the threaded sleeves 207. The shape and size design of the grooves 201 ensure that the sliding sleeves 206 and the threaded sleeves 207 can slide smoothly therein without getting off the track.

[0026] Furthermore, two groups of threaded sleeves 207 are provided. The threaded sleeves 207 form a mutually sliding structure with the threaded shaft 205 through the handle 208. Through the setting of the threaded sleeves 207, the threaded sleeves 207 are threadedly connected to the threaded shaft 205. When the threaded shaft 205 rotates, the threaded sleeves 207 move along the threaded shaft 205, thereby converting the rotational motion into linear motion. This conversion is the key to the clamping mechanism 2 to achieve clamping and loosening operations. The threaded sleeves 207 are connected to the sliding sleeves 206 through the connecting plate 209. When the threaded sleeves 207 move along the threaded shaft 205, the sliding sleeves 206 will be driven to move synchronously. This linkage mechanism enables the sliding sleeves 206 to slide smoothly along the auxiliary rod 204, thereby allowing the splint 210 connected thereto to clamp or release the clamped object.

[0027] Furthermore, the sliding sleeve 206 is moved synchronously with the threaded sleeve 207 through the connecting plate 209. The sliding sleeve 206 forms a mutual sliding structure with the auxiliary rod 204 through the connecting plate 209 and the threaded sleeve 207. Through the setting of the sliding sleeve 206, the sliding sleeve 206 is embedded in the outer surface of the auxiliary rod 204 and can slide along the auxiliary rod 204. The main function of the sliding sleeve 206 is to realize the linear movement of the clamping mechanism 2, so that the parts connected thereto (such as the clamping plate 210) can move forward or backward, thereby achieving clamping or loosening of the object. The sliding sleeve 206 is connected to the threaded sleeve 207 through the connecting plate 209. When the threaded shaft 205 rotates, the threaded sleeve 207 moves along the threaded shaft 205, and the sliding sleeve 206 moves synchronously therewith. The sliding sleeve 206 therefore plays the role of clamping the threaded sleeve 20 The movement of 7 is transmitted to the splint 210, so that the splint 210 can move with the sleeve 206. The splint 210 is fixed on one side of the sleeve 206. The movement of the sleeve 206 directly determines the position change of the splint 210. Therefore, the sleeve 206 serves as the movement support structure of the splint 210, ensuring that the splint 210 can move smoothly with the sleeve 206 to complete the clamping operation. The sleeve 206 moves synchronously with the threaded sleeve 207, and because they are jointly embedded in the groove 201, the movement trajectory of the sleeve 206 is consistent with the threaded sleeve 207, thereby realizing the coordinated operation of the entire clamping mechanism 2. The threaded sleeve 207 moves by rotating the threaded shaft 205, and the sleeve 206 transmits this movement to the object to be clamped through the splint 210.

[0028] Furthermore, the lubrication mechanism 3 includes a storage box 301, a feed port 302, a threaded hole 303, a mounting groove 304, a protective cover 305, a nozzle 306, a mother rod 307, a fan blade 308, a belt 309 and a motor 310. The main body block 1 is provided with a storage box 301, a feed port 302 is provided on one side of the main body block 1, a threaded hole 303 is provided on the other side of the main body block 1, and a mounting groove 304 is provided at one end of the main body block 1. The surface of the feed port 302 is threadedly connected to the protective cover 305, the inside of the threaded hole 303 is threadedly connected to the nozzle 306, the inside of the mounting groove 304 is embedded with the mother rod 307, the surface of the mother rod 307 is fixedly connected to the fan blade 308, one side of the surface of the mother rod 307 is embedded with the belt 309, and the other side of the belt 309 is embedded with the There is a motor 310, which is arranged through the storage box 301, the feed port 302, the threaded hole 303, the installation slot 304, the protective cover 305, the nozzle 306, the mother rod 307, the fan blade 308, the belt 309 and the motor 310. After the clamping mechanism 2 clamps the slide rail, first, according to the relative position of the two sets of clamps 210, the corresponding threaded hole 303 is rotated, and the nozzle 306 is installed in the threaded hole 303. Thereafter, the lubricant is added to the storage box 301 through the feed port 302, and then the motor 310 is started. The motor 310 drives the belt 309 to rotate, and the rotation of the belt 309 causes the mother rod 307 to rotate. Finally, the mother rod 307 drives the fan blade 308 to rotate, and the lubricating liquid in the storage box 301 is stirred evenly to ensure the stability and continuity of the lubricating liquid.

[0029] Furthermore, the surface of the nozzle 306 passes through the connecting groove 203, and the threaded holes 303 are evenly spaced on the main block 1. Through the arrangement of the threaded holes 303 and the nozzle 306, the threaded holes 303 are tightly connected to the nozzle 306 through the threads, ensuring that the nozzle 306 is fixed in the correct position of the main block 1 and will not loosen or shift due to vibration or other external forces. This provides the necessary conditions for the stable injection of the nozzle 306. The threaded holes 303 are not only used to fix the nozzle 306, but also serve as a channel for the lubricating material. The lubricating material flows into the nozzle 306 through the threaded holes 303 and is further injected into the various components of the clamping mechanism 2. The number and distribution of threaded holes 303 determine the coverage of the lubricating material, ensuring that all key components are fully lubricated. The nozzle 306 transports the lubricating material from the storage box 301 through the connection with the threaded hole 303. The design of the nozzle 306 ensures that the lubricating material can be sprayed evenly and appropriately to the parts that need lubrication, reducing friction and ensuring a smooth sliding process. The nozzle 306 is usually installed in a designated position. Through directional spraying, the lubricating material is concentrated on the area that needs lubrication, which ensures the accuracy of lubrication, does not waste materials, and can also avoid wear or jamming of components caused by uneven lubrication.

[0030] Furthermore, there are six groups of fan blades 308, and three groups of fan blades 308 are arranged on a single group of mother rods 307, and are distributed at equal intervals. Through the arrangement of the fan blades 308, the fan blades 308 are installed on the mother rod 307. As the mother rod 307 rotates, the fan blades 308 also rotate. The rotation of the fan blades 308 can form a certain air flow or pressure inside the storage box 301 to help push the lubricating material from the storage box 301 to the threaded hole 303, and finally be sprayed out through the nozzle 306. The rotation of the fan blades 308 can effectively stir the lubricating material in the storage box 301, so that the material is evenly distributed and prevent material deposition, thereby ensuring that the lubricating material can continuously and evenly flow to the nozzle 306. This stirring and pushing action can improve the output efficiency of the lubricating material, make the lubrication process smoother, and avoid the problem of uneven spraying due to material accumulation.

[0031] Working principle: First, put the main block 1 on the slide rail, then turn the handle 208. The rotating handle 208 drives the threaded shaft 205 to rotate. The rotation of the threaded shaft 205 causes the threaded sleeve 207 connected thereto to slide along the axial direction of the threaded shaft 205. At the same time, the sliding of the threaded sleeve 207 drives the connecting plate 209 to move, and the connecting plate 209 drives the sliding sleeve 206 to move synchronously. Finally, the sliding sleeve 206 and the threaded sleeve 207 drive the clamping plate 210 to clamp, and the clamping mechanism 2 clamps the slide rail. Afterwards, first, according to the relative position of the two sets of splints 210, the corresponding threaded hole 303 is rotated, and the nozzle 306 is installed in the threaded hole 303. Thereafter, the lubricant is added to the storage box 301 through the feed port 302, and then the motor 310 is started. The motor 310 drives the belt 309 to rotate, and the rotation of the belt 309 causes the mother rod 307 to rotate. Finally, the mother rod 307 drives the fan blade 308 to rotate, and the lubricating liquid in the storage box 301 is stirred evenly to ensure the stability and continuity of the lubricating liquid.

[0032] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An inlaid solid lubricating slider, comprising a main block (1) and a clamping mechanism (2), characterized in that: A clamping mechanism (2) is provided on one side of the surface of the main body block (1), and a lubricating mechanism (3) is provided on one end of the main body block (1); The clamping mechanism (2) comprises a groove (201), a rotation groove (202), a connecting groove (203), an auxiliary rod (204), a threaded shaft (205), a sliding sleeve (206), a threaded sleeve (207), a handle (208), a connecting plate (209) and a clamping plate (210). A groove (201) is provided on one side of the surface of the main body block (1), rotation grooves (202) are provided on both sides of the groove (201), a connecting groove (203) is provided at one end of the groove (201), and the groove (201) is provided on the other side of the main body block (1). One end of the groove (201) is fixedly connected to an auxiliary rod (204), a threaded shaft (205) is embedded in the interior of the rotating groove (202), a sliding sleeve (206) is embedded on the surface of the auxiliary rod (204), a threaded sleeve (207) is threadedly connected to the surface of the threaded shaft (205), a handle (208) is connected to one side of the threaded shaft (205), one end of the sliding sleeve (206) is connected to a connecting plate (209), and one side of the surface of the sliding sleeve (206) is connected to a clamping plate (210).

2. The embedded solid lubricating slider according to claim 1, characterized in that: The main body of the connecting plate (209) is embedded in the interior of the communicating groove (203), and the other side of the connecting plate (209) is connected to the threaded sleeve (207).

3. The embedded solid lubricating slider according to claim 1, characterized in that: The grooves (201) are provided in two groups, and the sliding sleeves (206) and the threaded sleeves (207) are respectively embedded in the corresponding grooves (201).

4. The embedded solid lubricating slider according to claim 1, characterized in that: The threaded sleeves (207) are provided in two groups, and the threaded sleeves (207) form a mutually sliding structure with the threaded shaft (205) through the handle (208).

5. The embedded solid lubricating slider according to claim 1, characterized in that: The sliding sleeve (206) moves synchronously with the threaded sleeve (207) via the connecting plate (209), and the sliding sleeve (206) and the auxiliary rod (204) form a mutually sliding structure via the connecting plate (209) and the threaded sleeve (207).

6. The embedded solid lubricating slider according to claim 1, characterized in that: The lubricating mechanism (3) comprises a material storage box (301), a material feed port (302), a threaded hole (303), a mounting groove (304), a protective cover (305), a nozzle (306), a mother rod (307), a fan blade (308), a belt (309) and a motor (310). The material storage box (301) is provided inside the main body block (1), the material feed port (302) is provided on one side of the main body block (1), and the threaded hole (303) is provided on the other side of the main body block (1). One end of the block (1) is provided with a mounting groove (304), a protective cover (305) is threadedly connected to the surface of the feed port (302), a nozzle (306) is threadedly connected to the interior of the threaded hole (303), a mother rod (307) is embedded in the interior of the mounting groove (304), a fan blade (308) is fixedly connected to the surface of the mother rod (307), a belt (309) is embedded on one side of the surface of the mother rod (307), and a motor (310) is embedded on the other side of the belt (309).

7. The embedded solid lubricating slider according to claim 6, characterized in that: The surface of the nozzle (306) passes through the connecting groove (203), and the threaded holes (303) are distributed at equal intervals on the main body block (1).

8. The embedded solid lubricating slider according to claim 6, characterized in that: The fan blades (308) are provided in six groups in total, and three groups of the fan blades (308) are provided on a single group of mother rods (307) and are distributed at equal intervals.