Splicing extrusion positioning device based on marble splicing treatment

By designing a splicing extrusion positioning device including slide rails, movable angle adjustment assembly and extrusion assembly, the problems of inflexible adjustment of the angle of the clamping structure and slow polishing operation during the marble splicing process in the prior art are solved, and a more efficient and flexible splicing process is achieved.

CN120190726AInactive Publication Date: 2025-06-24SHAN XI XUAN GUANG WEI LAI DIAN ZI KE JI YOU XIAN GONG SI
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Patent Information

Application Number
CN202510415865.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-03
Publication Date
2025-06-24
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing splicing and extrusion positioning devices for marble splicing treatment cannot adjust the angle of the clamping structure according to the horizontal and vertical states of the marble splicing surface, resulting in inflexible use status, poor applicability, and the inability to polish and glue different splicing surfaces at the same time. The operation process is slow and the efficiency and uniformity are not high.

Method used

A splicing extrusion positioning device including a slide rail, a movable angle adjusting assembly and an extrusion assembly is designed. The movable angle adjustment component can adjust the angle of the clamping structure through the rotating structure and the motor drive; the extrusion component includes a motor-driven bidirectional push rod and clamp, which can achieve horizontal or vertical clamping of marble; at the same time, the grinding shaft and the glue conveying component are used in conjunction with each other to achieve rapid grinding and glueing of different splicing surfaces.

Benefits of technology

The use status of the extrusion positioning device is adjusted according to the state of the marble splicing surface, which improves the applicability and efficiency of the device; it can grind and glue different splicing surfaces at the same time, which improves the splicing efficiency and uniformity.

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Abstract

The invention discloses a marble splicing processing-based splicing extrusion positioning device, which comprises a slide rail, a movable angle adjusting assembly and an extrusion assembly, the movable angle adjusting assembly is arranged on the slide rail, the movable angle adjusting assembly comprises two rotating structures symmetrically arranged on the slide rail, each rotating structure comprises a slide block arranged in the slide rail in a penetrating manner, and the extrusion assembly is arranged on the slide rail. A rotating cylinder is fixedly arranged on the side wall of the sliding block, a first motor and a rotating disc are arranged in the rotating cylinder, the rotating disc is fixedly connected with an output shaft of the first motor, and a transverse plate is fixedly arranged on the side wall of the rotating disc. Through use of the movable angle adjusting assembly, the extrusion assembly, a third motor, a grinding shaft, a glue conveying assembly and a glue spraying hole, the use state of the extrusion clamping structure can be adjusted in a larger range according to the transverse and vertical states of marbles, and the marbles in different transverse and vertical states can be conveniently clamped, extruded and fixed; and meanwhile, different splicing surfaces on the marble can be quickly polished and glued, so that the marble splicing efficiency can be improved, and the marble splicing device is convenient to use.
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Description

Technical Field

[0001] The present invention relates to the technical field of equipment for marble splicing, and particularly relates to a splicing extrusion positioning device based on marble splicing processing. Background Art

[0002] Marble is a metamorphic rock. Marble is rich in calcium carbonate. At the same time, marble also contains components such as magnesium carbonate, silicon dioxide, and iron oxide, and these components can affect the color and physical properties of marble. The formation process of marble is that limestone and dolomite undergo metamorphism under high temperature and high pressure conditions and are recrystallized to form. Therefore, some marbles are relatively large in volume and need to be cut before use. Then, during the use process, marble needs to be spliced. Due to the heavy weight of marble, in order to improve the reliability of marble splicing, a splicing extrusion positioning device for marble splicing processing is required during the splicing process.

[0003] The existing splicing extrusion positioning device for marble splicing can only support marble during use, and cannot adjust the angle of the clamping structure of the extrusion positioning device according to the horizontal and vertical states of the splicing surface of the marble to be spliced, and cannot adjust the use state of the extrusion positioning device to a greater extent. When it is necessary to perform pressure positioning on marbles in different horizontal and vertical states, it is easy to have the problem of constantly replacing different machines, which is not conducive to improving the applicability of the extrusion positioning device. At the same time, it cannot perform simultaneous grinding and gluing treatment on different splicing surfaces of marble, the operation process is slow, which is not conducive to improving the splicing efficiency, and is not conducive to improving the uniformity of grinding and polishing and gluing. Summary of the Invention

[0004] The purpose of the present invention is to provide a splicing extrusion positioning device based on marble splicing processing, which solves the problems that the existing extrusion positioning device cannot adjust the angle of the clamping structure of the extrusion positioning device according to the horizontal and vertical states of the splicing surface of the marble to be spliced during use, cannot adjust the use state of the extrusion positioning device to a greater extent, is not conducive to improving the applicability of the extrusion positioning device, and cannot perform simultaneous grinding and gluing treatment on different splicing surfaces of marble, the operation process is slow, which is not conducive to improving the splicing efficiency, and is not conducive to improving the uniformity of grinding and polishing and gluing.

[0005] The present invention solves the above technical problems through the following technical solutions. The present invention includes a slide rail, a movable angle-adjusting assembly, and a pressing assembly. The movable angle-adjusting assembly is installed on the slide rail. The movable angle-adjusting assembly includes two rotating structures symmetrically installed on the slide rail. The rotating structure includes a slider penetrating into the slide rail. A rotating cylinder is fixedly installed on the side wall of the slider. A first motor and a turntable are installed in the rotating cylinder. The turntable is fixedly connected to the output shaft of the first motor and a cross plate is fixedly installed on the side wall. The pressing assembly includes a double-acting push rod fixedly installed on the cross plate and two clamping structures symmetrically installed. The clamping structure includes a second motor fixedly connected to the telescopic end of the double-acting push rod. A clamping plate is fixedly installed on the output shaft of the second motor.

[0006] Preferably, two installation grooves are symmetrically formed on the clamping plate. A third motor and a grinding shaft are installed inside each installation groove. The grinding shaft is fixedly connected to the output shaft of the third motor.

[0007] Preferably, a glue-feeding assembly is installed on one side of the clamping plate. The glue-feeding assembly is used to convey glue to the grinding shaft.

[0008] Preferably, the glue-feeding assembly includes a box body, a pump body, a three-way joint, and two shunt structures symmetrically installed. The pump body is installed in the box body and fixedly connected to the three-way joint. The shunt structure includes a main pipe penetrating into the three-way joint. A branch pipe is fixedly installed on the main pipe. A sealing ring sleeved outside the grinding shaft is fixedly installed on the branch pipe. The sealing ring penetrates into the installation groove. Glue spraying holes are formed on the outer side wall of the grinding shaft.

[0009] Preferably, a distance-adjusting assembly is installed on one side of the slide rail. The distance-adjusting assembly is used to adjust the height and clamping distance of the movable angle-adjusting assembly.

[0010] Preferably, the distance-adjusting assembly includes two power structures symmetrically installed on one side of the slide rail. The power structure includes a first telescopic rod, a telescopic frame fixedly connected to the side wall of the slide rail, and a second telescopic rod sleeved on the top surface of the slider. The fixed end of the telescopic frame is fixedly installed above the telescopic end of the first telescopic rod. A third telescopic rod is installed inside the telescopic frame and a side plate is fixedly installed at the telescopic end. The fixed end of the second telescopic rod is sleeved above the side plate.

[0011] Preferably, a base is installed below the first telescopic rod and below the box body.

[0012] Preferably, two columns are symmetrically installed on the base.

[0013] Preferably, a sliding groove is formed on the column and sleeved outside the fixed ends of the first telescopic rod and the telescopic frame.

[0014] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. By the combined use of the movable angle-adjusting component and the extrusion component, it can achieve the effect of adjusting the use state of the extrusion and clamping structure in a larger range according to the vertical and horizontal states of the marble, facilitating the clamping, extrusion and fixation of marbles in different vertical and horizontal states, reducing the frequency of replacing mechanical equipment, and improving the applicability of the extrusion positioning device.

[0015] 2. By the combined use of the motor three, the grinding shaft, the glue feeding component and the glue spraying holes, it can achieve the effect of quickly grinding and applying glue to different splicing surfaces on the marble, enabling the grinding, polishing and glue application on different surfaces to be carried out simultaneously, and greatly improving the efficiency of marble splicing. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is the front view structural schematic diagram of the present invention; Figure 2 is the exploded structural schematic diagram of the movable angle-adjusting component of the present invention; Figure 3 is the sectional structural schematic diagram of the extrusion component of the present invention; Figure 4 is the exploded structural schematic diagram of the extrusion component of the present invention; Figure 5 is the right view structural schematic diagram of the distance-adjusting component of the present invention; Figure 6 is the rear view structural schematic diagram of the present invention.

[0017] The numbers in the figures represent: 1. Slide rail; 2. Movable angle-adjusting component; 201. Slide block; 202. Rotating cylinder; 203. Motor one; 204. Turntable; 205. Horizontal plate; 3. Extrusion component; 301. Bi-directional push rod; 302. Motor two; 303. Clamping plate; 4. Installation groove; 5. Motor three; 6. Grinding shaft; 7. Glue feeding component; 701. Box body; 702. Pump body; 703. Three-way joint; 704. Main pipe; 705. Branch pipe; 706. Sealing ring; 8. Glue spraying hole; 9. Distance-adjusting component; 901. First telescopic rod; 902. Telescopic frame; 903. Second telescopic rod; 904. Third telescopic rod; 905. Side plate; 10. Base; 11. Support pillar; 12. Chute. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0018] The following further describes in detail the above-mentioned and other technical features and advantages of the present invention with reference to the accompanying drawings.

[0019] Embodiment 1 The present invention provides a technical solution: A splicing extrusion positioning device based on marble splicing processing, asFigure 1-6 As shown in the figure, it includes a slide rail 1, a movable angle-adjusting component 2, and a squeezing component 3. The movable angle-adjusting component 2 is installed on the slide rail 1. The movable angle-adjusting component 2 includes two rotating structures symmetrically installed on the slide rail 1. The rotating structure includes a slider 201 inserted into the slide rail 1. The slider 201 can support and limit the rotating cylinder 202. A rotating cylinder 202 is fixedly installed on the side wall of the slider 201. The rotating cylinder 202 can limit and support the first motor 203 and the turntable 204. The first motor 203 and the turntable 204 are installed in the rotating cylinder 202. The first motor 203 can drive the turntable 204 to rotate. The turntable 204 can support the cross plate 205. The turntable 204 is fixedly connected to the output shaft of the first motor 203 and a cross plate 205 is fixedly installed on its side wall. The cross plate 205 can facilitate the fixation of the fixed end of the double-headed push rod 301. The squeezing component 3 includes a double-headed push rod 301 fixedly installed on the cross plate 205 and two clamping structures symmetrically installed. The clamping structure includes a second motor 302 fixedly connected to the telescopic end of the double-headed push rod 301. The double-headed push rod 301 can drive the second motor 302 to move. The second motor 302 can drive the clamping plate 303 to rotate. A clamping plate 303 is fixedly installed on the output shaft of the second motor 302. The clamping plate 303 can clamp the marble.

[0020] The slider 201 can fix the rotating cylinder 202, and the rotating cylinder 202 can limit the turntable 204, which can improve the stability of the turntable 204. When three vertically placed marbles are placed side by side and need to be spliced and fixed, place the two clamping plates 303 on the same double-headed push rod 301 on both sides of the three marbles. The three side-by-side marbles are located between the two clamping plates 303 on the same side. By starting the double-headed push rod 301, it can drive the two second motors 302 on both sides to move. The two second motors 302 on both sides can drive the two clamping plates 303 on both sides to move simultaneously. The two clamping plates 303 on both sides approach both sides of the marble at the same time. The clamping plate 303 can clamp the vertically placed marble from the side and can squeeze the marble. When two marbles are placed horizontally and side by side and suspended, by starting the first motor 203 to drive the turntable 204 to rotate, the turntable 204 can drive the cross plate 205 to rotate. When the cross plate 205 rotates 90 degrees, it can drive the double-headed push rod 301 to rotate 90 degrees. The cross plate 205 can rotate 90 degrees around the output shaft of the first motor 203. The rotation of the cross plate 205 can drive the second motor 302 to rotate, and the second motor 302 can drive the clamping plate 303 to rotate, enabling the clamping plate 303 to rotate into a vertical state. At this time, the double-headed push rod 301 is located below the horizontally placed marble, and the two clamping plates 303 on both sides are located on both sides of the two horizontally placed marbles. By starting the double-headed push rod 301 to drive the second motor 302 to move, the second motor 302 can drive the two clamping plates 303 on both sides to approach both sides of the marble. The clamping plate 303 can clamp from the lower sides of the two marbles on both sides and can squeeze and fix the marble.

[0021] Example Two As Figure 1 , Figure 4 and Figure 6 shown, two mounting grooves 4 are symmetrically formed on the clamping plate 303. The mounting grooves 4 facilitate the installation of the third motor 5 and the grinding shaft 6. The third motor 5 and the grinding shaft 6 are respectively installed inside each mounting groove 4. The third motor 5 can drive the grinding shaft 6 to rotate, and the grinding shaft 6 can grind the splicing surface of the marble. The grinding shaft 6 is fixedly connected to the output shaft of the third motor 5.

[0022] When three marbles are placed side by side and need to be spliced, the clamping plate 303 is clamped on both sides of the middle marble. By starting the third motor 5 to drive the grinding shaft 6 to rotate, the grinding shaft 6 can grind and polish the two splicing surfaces of the middle marble. When the two ends of the two marbles are aligned and spliced, by starting each second motor 302 to drive the clamping plate 303 to rotate, as Figure 1 shown, the two clamping plates 303 on the left - hand side double - acting push rod 301 rotate counter - clockwise by 90 degrees at the same time. The left - hand clamping plate 303 rotates clockwise by 90 degrees, and the right - hand clamping plate 303 rotates counter - clockwise by 90 degrees. The clamping plates 303 on the right - hand side double - acting push rod 301 rotate by 90 degrees at the same time. The left - hand clamping plate 303 on the right - hand side double - acting push rod 301 rotates counter - clockwise by 90 degrees, and the right - hand clamping plate 303 rotates clockwise by 90 degrees. The clamping plates 303 on the two double - acting push rods 301 are arranged back - to - back. The four clamping plates 303 on the two double - acting push rods 301 are all located between the two ends of the two marbles. The two clamping plates 303 on one double - acting push rod 301 face the splicing surface at one end of one marble, and the two clamping plates 303 on the other double - acting push rod 301 face the splicing surface at one end of the other marble. At the same time, start each third motor 5. The third motor 5 can drive the grinding shaft 6 to rotate, and the grinding shaft 6 can grind the splicing surfaces on both sides.

[0023] As Figure 1 and Figure 6As shown, a glue delivery assembly 7 is installed on one side of the clamping plate 303. The glue delivery assembly 7 is used to deliver glue to the grinding shaft 6. The glue delivery assembly 7 includes a box body 701, a pump body 702, a three-way joint 703, and symmetrically installed flow splitting structures. The box body 701 can conveniently store glue. The pump body 702 can conveniently deliver glue. The three-way joint 703 can drive the connection between the pump body 702 and the main pipes 704 on both sides. The pump body 702 is installed in the box body 701 and fixedly connected to the three-way joint 703. The flow splitting structure includes a main pipe 704 passing through the three-way joint 703. The main pipe 704 can deliver glue to the branch pipes 705. The branch pipes 705 are fixedly installed on the main pipe 704. The branch pipes 705 can deliver glue to the sealing rings 706. The branch pipes 705 are fixedly installed with sealing rings 706 sleeved outside the grinding shaft 6. The sealing rings 706 can drive the connection between the branch pipes 705 and the grinding shaft 6. The sealing rings 706 are arranged in the installation groove 4. Spray glue holes 8 are formed on the outer side wall of the grinding shaft 6. The spray glue holes 8 can spray glue.

[0024] By starting the pump body 702, the pump body 702 can extract the glue inside the box body 701 and enter the three-way joint 703. The glue inside the three-way joint 703 can enter the main pipes 704 on both sides. The main pipes 704 can deliver glue to the branch pipes 705. The branch pipes 705 can deliver glue to the grinding shaft 6 through the sealing rings 706. The glue inside the grinding shaft 6 sprays out from the spray glue holes 8, and the glue can be sprayed onto the splicing surface.

[0025] As Figure 1 and Figure 5-6 shown, an adjustable distance assembly 9 is installed on one side of the slide rail 1. The adjustable distance assembly 9 is used to adjust the height and clamping distance of the movable angle-adjustable assembly 2. The adjustable distance assembly 9 includes two power structures symmetrically installed on one side of the slide rail 1. The power structure includes a first telescopic rod 901, a telescopic frame 902 fixedly connected to the side wall of the slide rail 1, and a second telescopic rod 903 sleeved on the top surface of the slider 201. The first telescopic rod 901 can drive the telescopic frame 902 to lift and lower. The telescopic frame 902 can support the slide rail 1. The second telescopic rod 903 can push the slider 201 to move. The fixed end of the telescopic frame 902 is fixedly installed above the telescopic end of the first telescopic rod 901. A third telescopic rod 904 is installed inside the telescopic frame 902 and the telescopic end is fixedly installed with a side plate 905. The third telescopic rod 904 can conveniently drive the telescopic frame 902 to expand and contract. The side plate 905 can support the fixed end of the second telescopic rod 903. The fixed end of the second telescopic rod 903 is sleeved above the side plate 905.

[0026] The side plate 905 can support the fixed end of the second telescopic rod 903. By activating the second telescopic rod 903, the slider 201 is pushed. The slider 201 can slide inside the slide rail 1. The two sliders 201 move simultaneously and approach each other. The movement of the slider 201 can drive the moving of the rotating cylinder 202. The rotating cylinder 202 can drive the moving of the first motor 203 and the turntable 204. The turntable 204 can drive the moving of the cross plate 205. The cross plate 205 can drive the moving of the double-headed push rod 301. The double-headed push rod 301 can drive the moving of the second motor 302. The second motor 302 can drive the moving of the clamping plate 303. The distance between the clamping plates 303 on the two double-headed push rods 301 can be adjusted, which is convenient for clamping marbles at different distances. By activating the first telescopic rod 901, the telescopic frame 902 is driven to rise and fall. The telescopic frame 902 can drive the side plate 905 and the slide rail 1 to rise and fall. The slide rail 1 can drive the slider 201 to rise and fall. The slider 201 can drive the rotating cylinder 202 to rise and fall. The rotating cylinder 202 can drive the first motor 203 and the turntable 204 to rise and fall. The turntable 204 can drive the cross plate 205 to rise and fall. The cross plate 205 can drive the double-headed push rod 301 to rise and fall. The double-headed push rod 301 can drive the second motor 302 to rise and fall. The second motor 302 can drive the clamping plate 303 to rise and fall, which can adjust the height of the clamping plate 303 and is convenient for clamping and squeezing marbles at different heights. By activating the third telescopic rod 904, the telescopic frame 902 is driven to expand and contract. The telescopic frame 902 can drive the slide rail 1 to move. The slide rail 1 can drive the slider 201 to move. According to the above steps of the movement of the slider 201, the distance between the clamping plate 303 and the marble can be adjusted.

[0027] As Figure 1 and Figure 6 shown, a base 10 is installed below the first telescopic rod 901 and is located below the box body 701. The base 10 can support the support column 11 and the box body 701.

[0028] As Figure 1 and Figure 5-6 shown, two support columns 11 are symmetrically installed on the base 10, and chutes 12 are conveniently opened on the support columns 11.

[0029] As Figure 1 and Figure 5 shown, chutes 12 are opened on the support columns 11 and are sleeved outside the fixed ends of the first telescopic rod 901 and the telescopic frame 902. The chutes 12 can install the first telescopic rod 901, and at the same time, the chutes 12 can limit the fixed ends of the telescopic frame 902.

[0030] The above is only the preferred embodiment of the present invention, which is illustrative rather than restrictive to the present invention. Those skilled in the art understand that many changes, modifications, and even equivalents can be made within the spirit and scope defined by the claims of the present invention, but all will fall within the protection scope of the present invention.

Claims

1. A splicing extrusion positioning device based on marble splicing processing, characterized in that: The invention comprises a slide rail (1), a movable angle adjustment component (2) and an extrusion component (3), wherein the movable angle adjustment component (2) is mounted on the slide rail (1), the movable angle adjustment component (2) comprises two rotating structures symmetrically mounted on the slide rail (1), the rotating structure comprises a slider (201) inserted into the slide rail (1), a rotating drum (202) is fixedly mounted on the side wall of the slider (201), a motor (203) and a rotating disk (204) are mounted in the rotating drum (202), and a rotating drum (202) is mounted in the rotating drum (202). 204), the turntable (204) is fixedly connected to the output shaft of the motor one (203) and a horizontal plate (205) is fixedly installed on the side wall, the extrusion assembly (3) includes a bidirectional push rod (301) fixedly installed on the horizontal plate (205) and two symmetrically installed clamping structures, the clamping structure includes a motor two (302) fixedly connected to the telescopic end of the bidirectional push rod (301), and a clamping plate (303) is fixedly installed on the output shaft of the motor two (302).

2. A splicing, extrusion and positioning device based on marble splicing processing as claimed in claim 1, characterized in that: Two installation slots (4) are symmetrically provided on the clamping plate (303), and each installation slot (4) is provided with a motor three (5) and a grinding shaft (6), and the grinding shaft (6) is fixedly connected to the output shaft of the motor three (5).

3. A splicing, extrusion and positioning device based on marble splicing processing as claimed in claim 2, characterized in that: A glue delivery component (7) is installed on one side of the clamping plate (303), and the glue delivery component (7) is used to deliver glue liquid to the grinding shaft (6).

4. A splicing, extrusion and positioning device based on marble splicing processing as claimed in claim 3, characterized in that: The glue delivery component (7) comprises a box body (701), a pump body (702), a three-way joint (703) and a symmetrically arranged flow distribution structure, wherein the pump body (702) is installed in the box body (701) and is fixedly connected to the three-way joint (703), and the flow distribution structure comprises a main pipe (704) passing through the three-way joint (703), a branch pipe (705) is fixedly installed on the main pipe (704), a sealing ring (706) sleeved on the outside of the grinding shaft (6) is fixedly installed on the branch pipe (705), and the sealing ring (706) is passed through the installation groove (4), and a glue injection hole (8) is opened on the outer side wall of the grinding shaft (6).

5. A splicing, extrusion and positioning device based on marble splicing processing as claimed in claim 4, characterized in that: A distance adjustment component (9) is installed on one side of the slide rail (1), and the distance adjustment component (9) is used to adjust the height and clamping distance of the movable angle adjustment component (2).

6. A splicing, extrusion and positioning device based on marble splicing processing as claimed in claim 5, characterized in that: The distance adjustment component (9) comprises two power structures symmetrically mounted on one side of the slide rail (1), the power structure comprising a telescopic rod 1 (901), a telescopic frame (902) fixedly connected to the side wall of the slide rail (1), and a telescopic rod 2 (903) sleeved on the top surface of the slider (201), the fixed end of the telescopic frame (902) is fixedly mounted above the telescopic end of the telescopic rod 1 (901), a telescopic rod 3 (904) is mounted inside the telescopic frame (902) and a side plate (905) is fixedly mounted on the telescopic end, and the fixed end of the telescopic rod 2 (903) is sleeved above the side plate (905).

7. A splicing, extrusion and positioning device based on marble splicing processing as claimed in claim 6, characterized in that: A base (10) located below the box body (701) is installed below the telescopic rod 1 (901).

8. A splicing, extrusion and positioning device based on marble splicing processing as claimed in claim 7, characterized in that: Two pillars (11) are symmetrically mounted on the base (10).

9. A splicing, extrusion and positioning device based on marble splicing processing as claimed in claim 8, characterized in that: The support column (11) is provided with a sliding groove (12) which is sleeved on the outside of the fixed ends of the telescopic rod (901) and the telescopic frame (902).