Segmentation device of stone curtain wall
By setting a horizontal sliding beam and a vertical sliding head on the stone curtain wall cutting device, the stone chips and powder can be accurately collected, solving the problem of powder scattering during stone curtain wall cutting and improving cleaning efficiency and operational safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANDONG YUANLONG CONSTR ENG CO LTD
- Filing Date
- 2025-04-03
- Publication Date
- 2026-05-08
AI Technical Summary
Existing stone curtain wall cutting equipment generates stone chips and powder during cutting, which easily scatters into the surrounding environment, increasing the difficulty of cleaning and posing a threat to the health of operators.
A stone curtain wall segmentation device was designed. By setting a horizontally sliding beam and a vertically sliding head on the cutting table, a cutting saw blade is connected to the head, and a collection box is slidably connected to the bottom of the cutting table. A thin rod on the head passes through the cutting groove and connects to the collection box, so as to achieve accurate collection of stone chips and powder and avoid powder splashing into the surrounding environment.
It effectively prevents stone chips and powder from splashing under the cutting table, reduces cleaning difficulty, minimizes the impact on the environment and operator health, and improves the ease of use of the device.
Smart Images

Figure CN224210217U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of stone curtain wall construction, specifically a segmentation device for stone curtain walls. Background Technology
[0002] When constructing stone curtain walls, the stone panels need to be cut according to the actual building dimensions. Existing cutting equipment easily generates excessive stone dust when cutting stone panels. This dust is easily scattered in the surrounding environment, making the cutting and processing environment dirty and messy, which may pose a potential threat to the health of operators. Furthermore, it is difficult for operators to reach the stone dust that falls under the cutting table, greatly increasing the difficulty and workload of subsequent cleaning. Utility Model Content
[0003] The purpose of this invention is to provide a segmentation device for stone curtain walls, which can solve the impact of powder generated during cutting on the environment and the health of operators. By moving the cutting head, the collection box moves with it, so that the stone chips and powder generated during cutting fall accurately into the collection box below, avoiding the stone chips and powder from splashing into the surrounding environment, reducing the impact on the environment and the health of operators, and reducing the difficulty of subsequent cleaning.
[0004] To achieve the above objectives, this utility model employs the following technical solution:
[0005] A segmentation device for a stone curtain wall includes a cutting table, a horizontal beam slidably connected to the cutting table along its horizontal direction, a machine head slidably connected to the horizontal beam along its longitudinal direction, a cutting saw blade rotatably connected to the machine head, a plurality of cutting grooves for use with the cutting saw blade on the cutting table, a thin rod at one end of the machine head, a plurality of collection boxes for use with the cutting grooves slidably connected to the bottom of the cutting table, a feed inlet at the top of the collection box, a connecting groove at one end of the collection box, the thin rod passing through the cutting groove and extending into the interior of the connecting groove, and a push rod slidably connected to the bottom of the cutting table, the push rod simultaneously contacting one end of the plurality of collection boxes.
[0006] Furthermore, the machine head is equipped with a protective cover, the cutting saw blade is rotatably connected inside the protective cover, and the thin rod is fixedly connected to the protective cover.
[0007] Furthermore, a slide block is slidably connected to the machine head along the vertical direction, and a lifting rod is provided on the machine head to drive the slide block to slide vertically. The protective cover is fixed on the slide block, and the top of the connecting groove is open. The thin rod passes through the top of the connecting groove and extends into the interior of the connecting groove.
[0008] Furthermore, the bottom of the cutting table is symmetrically provided with slide rails, and the two sides of the collection box are symmetrically provided with sliders, which are slidably connected to the slide rails.
[0009] Furthermore, the width of the feed inlet is greater than the width of the cutting groove.
[0010] Furthermore, drive chains are symmetrically arranged on both sides of the cutting table, and fixing blocks are symmetrically arranged on the crossbeam, with the fixing blocks fixed to the drive chains.
[0011] Furthermore, the bottom of the cutting table is provided with a sliding rod and a rotating screw, the screw passing through the push rod and threadedly connected to it, and the sliding rod passing through the push rod and slidably connected to it.
[0012] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0013] 1. The structure of this utility model features a horizontally movable crossbeam on the cutting table. A machine head is slidably connected to the crossbeam along the longitudinal direction. A cutting saw blade is rotatably connected to the machine head. When cutting a stone panel, the cutting saw blade passes through the stone panel and extends into the cutting groove to achieve a complete cut of the stone panel. Multiple collection boxes that work with the cutting groove are slidably connected to the bottom of the cutting table. The top of the collection box has a feed inlet, and one end of the collection box has a connecting groove. A thin rod on the machine head passes through the cutting groove and extends into the connecting groove. With this structure, when the cutting saw blade moves along the crossbeam to cut the stone panel, the thin rod on the machine head connects to the collection box by extending into the connecting groove, so that the collection box moves with the machine head. This ensures that the stone chips and powder generated during cutting pass through the cutting groove and enter the collection box from the feed inlet, effectively preventing the stone chips and powder from falling below the cutting table, greatly reducing the difficulty of cleaning, reducing the impact on the environment and the health of operators, and reducing the workload of subsequent cleaning.
[0014] 2. A push rod is slidably connected to the bottom of the cutting table. The push rod simultaneously contacts one end of multiple collection boxes. With this structure, when the collection box moves to one end with the machine head, the push rod can slide to reset the collection box. This allows the thin rod on the machine head to pass through the cutting groove and connect with the connecting groove at the end of the collection box when cutting again at this location. This prepares the machine for subsequent cutting and ensures accurate collection of stone chips and powder during subsequent cutting. It eliminates the need for manual operation of the collection box position, greatly improving the convenience of the device in actual use. Attached Figure Description
[0015] Appendix Figure 1 This is a three-dimensional structural diagram of the present invention.
[0016] Appendix Figure 2 This is a front view of the present invention.
[0017] Appendix Figure 3 This is an appendix to this utility model. Figure 2 A cross-sectional view along the AA direction.
[0018] Appendix Figure 4 This is an appendix to this utility model. Figure 3 Cross-sectional view along the BB direction.
[0019] Appendix Figure 5 This is an appendix to this utility model. Figure 4 A cross-sectional view along the CC direction.
[0020] Appendix Figure 6 This is an appendix to this utility model. Figure 2 A cross-sectional view along the DD direction.
[0021] The labels shown in the attached diagram:
[0022] 1. Cutting table; 2. Crossbeam; 3. Machine head; 4. Cutting saw blade; 5. Cutting groove; 6. Thin rod; 7. Collection box; 8. Feed inlet; 9. Connecting groove; 10. Push rod; 11. Protective cover; 12. Slide; 13. Lifting rod; 14. Slide rail; 15. Slider; 16. Drive chain; 17. Fixing block; 18. Slide rod; 19. Screw. Detailed Implementation
[0023] The present invention will be further illustrated below with reference to specific embodiments. It should be understood that these embodiments are for illustrative purposes only and are not intended to limit the scope of the present invention. Furthermore, it should be understood that after reading the teachings of this invention, those skilled in the art can make various alterations or modifications to the present invention, and these equivalent forms also fall within the scope defined in this application.
[0024] Reference Figure 1 and Figure 2This utility model describes a segmentation device for stone curtain walls. The main structure includes a cutting table 1, on which stone panels are placed for segmentation. A horizontal beam 2 is slidably connected to the cutting table 1. Driven by any existing power structure, the horizontal beam 2 moves along the cutting table 1 to achieve cutting operations at different positions of the stone panels. A machine head 3 is slidably connected to the horizontal beam 2 longitudinally, with the sliding direction of the machine head 3 perpendicular to the sliding direction of the horizontal beam 2. A cutting saw blade 4 is rotatably connected to the machine head 3. Specifically, a cutting motor is fixed to the machine head 3 by welding or bolts. A rotating shaft is fixed to the output shaft of the cutting motor by welding or bolts, and the cutting saw blade 4 is detachably fixed to the rotating shaft. This structure utilizes a cutting motor to drive the cutting process. The saw blade 4 rotates to achieve rotary cutting of the stone panel. The cutting table 1 is equipped with multiple cutting grooves 5 that work with the saw blade 4. The cutting grooves 5 extend vertically through the cutting table 1, allowing the saw blade 4 to pass through the stone panel and extend into the cutting grooves 5, achieving a complete cut of the stone panel. One end of the machine head 3 is fixed with a thin rod 6 by welding or bolts. Multiple collection boxes 7 that work with the cutting grooves 5 are slidably connected to the bottom of the cutting table 1. The collection boxes 7 slide along the length of the cutting grooves 5. The top of the collection box 7 is equipped with a feed inlet 8, which is located directly below the cutting grooves 5. This structure allows the stone chips and powder generated by the saw blade 4 to pass through the cutting grooves 5 and fall into the collection box 7 through the feed inlet 8, preventing the stone chips from being damaged. The stone dust falls to the bottom of the cutting table 1, greatly improving the convenience of collecting stone dust, reducing the threat to the environment and the health of operators, and significantly reducing the difficulty of subsequent cleaning. One end of the collection box 7 is provided with a connecting groove 9. The thin rod 6 passes through the cutting groove 5 and extends into the connecting groove 9, meaning the thin rod 6 is movably inserted into the connecting groove 9 after passing through the cutting groove 5. The cross-sectional width of the thin rod 6 is no greater than the thickness of the cutting saw blade 4, allowing the thin rod 6 to accurately pass through the gaps created after cutting the stone panel. This structure allows the machine head 3 to achieve synchronous movement between the collection box 7 and the machine head 3 through the insertion and cooperation of the thin rod 6 and the connecting groove 9. Therefore, when the cutting saw blade 4 on the machine head 3 moves and cuts the stone panel, the collection box 7 at the bottom can move accordingly. The movement of the collection box 7 ensures that it is always in the cutting position, improving the accuracy of collecting stone chips and powder generated during cutting and greatly reducing the amount of stone chips and powder spilled into the surrounding environment. The bottom of the cutting table 1 is slidably connected to a push rod 10, which simultaneously contacts one end of multiple collection boxes 7. With this structure, after the collection box 7 moves to one end of the cutting table 1 with the machine head 3, the thin rod 6 on the machine head 3 can separate from the connecting groove 9 and move with the machine head 3 to another cutting groove 5. The push rod 10 then pushes the collection box 7 back to its original position by moving, thus preparing it for subsequent cutting in the cutting groove 5 position. There is no need to manually reset or move the collection box 7, which greatly improves the convenience of actual use of the device.
[0025] Preferably, a protective cover 11 is fixed to the machine head 3 by welding or bolts. The longitudinal section of the protective cover 11 is arc-shaped. The cutting saw blade 4 is rotatably connected to the inside of the protective cover 11 through a bearing. The thin rod 6 is fixed to the protective cover 11 by welding or bolts. This structure uses the protective cover 11 to block the stone chips and powder generated during cutting, causing them to fall down along the protective cover 11 into the cutting groove 5, preventing the stone chips and powder from splashing into the external environment and reducing the amount of stone chips and powder that spills into the surrounding environment. The thin rod 6 is fixed to the protective cover 11 of the machine head 3, so that the thin rod 6 can accurately pass through the cutting groove 5 and connect to the collection box 7.
[0026] Preferred, refer to Figure 4 and Figure 5 The machine head 3 is vertically slidably connected to a slide block 12. The machine head 3 is equipped with a lifting rod 13 that drives the slide block 12 to slide vertically. The protective cover 11 is fixed to the slide block 12. Specifically, the lifting rod 13 is a cylinder or hydraulic cylinder, fixed to the machine head 3 by welding or bolts. Its movable end is connected to the slide block 12 by welding or bolts, allowing the lifting rod 13 to drive the slide block 12 and the protective cover 11 to move up and down. This allows the cutting saw blade 4 inside the protective cover 11 to move from top to bottom into the cutting groove 5, ensuring complete cutting of the stone panel. The top of the connecting groove 9 is open. The thin rod 6 passes through the top of the connecting groove 9 and extends into the interior of the connecting groove 9. Specifically, the connecting groove 9 extends upwards into the cutting groove 5. When the lifting rod 13 drives the protective cover 11 and the internal cutting saw blade 4 to move downwards into the cutting groove 5... The thin rod 6 on the protective cover 11 also passes through the cutting groove 5 and extends into the connecting groove 9, achieving accurate connection between the thin rod 6 and the connecting groove 9. This structure makes the connection between the machine head 3 and the collection box 7 more convenient, eliminating the need for manual fixing and operation, greatly improving the convenience of connecting the machine head 3 and the collection box 7. Furthermore, when the machine head 3 needs to be moved to other positions of the cutting groove 5, the lifting rod 13 only needs to drive the slide 12 and the cutting saw blade 4 to move upward, causing the cutting saw blade 4 to disengage from the cutting groove 5. At the same time, the thin rod 6 also rises and disengages from the connecting groove 9, thereby enabling the independent movement of the cutting saw blade 4 on the machine head 3. This ensures that the collection box 7 does not interfere with the movement of the machine head 3, allowing the current collection box 7 to be used only with the corresponding cutting groove 5 without interfering with the positional movement of the existing cutting saw blade 4, thus improving the matching effect with the existing cutting device.
[0027] Preferred, refer to Figure 3The bottom of the cutting table 1 is symmetrically fixed with slide rails 14 by welding or bolts. The two sides of the collection box 7 are symmetrically fixed with sliders 15 by welding or bolts. The sliders 15 are slidably connected to the slide rails 14. The cooperation between the slide rails 14 and the sliders 15 makes the position of the collection box 7 more stable when it slides, and it is not easy to tilt or shake. This allows for accurate collection of stone chips and powder falling from the cutting position, reducing the amount of stone chips and powder that spills into the surrounding environment.
[0028] Preferably, the width of the feed inlet 8 is greater than the width of the cutting groove 5. This structure allows the stone chips to pass accurately through the feed inlet 8 and enter the collection box 7, preventing the stone chips from falling to the outside and improving the collection effect of the stone chips generated during cutting.
[0029] Preferred, refer to Figure 6 The cutting table 1 has symmetrical drive chains 16 on both sides. Specifically, drive motors are installed on both sides of the cutting table 1. Drive gears are fixed to the output shaft of the drive motors by welding or bolts. The drive chains 16 are meshed between the two drive gears. The drive motors and drive gears enable the operation of the drive chains 16. Fixing blocks 17 are symmetrically fixed to the crossbeam 2 by welding or bolts. The fixing blocks 17 are fixed to the drive chains 16 by welding or bolts. This structure allows the drive chains 16 to drive the fixing blocks 17 and the crossbeam 2 to move, thereby achieving accurate adjustment of the position of the crossbeam 2 and meeting the needs of rapid cutting of different positions of the stone panel.
[0030] Preferably, the bottom of the cutting table 1 is provided with a sliding rod 18 and a rotating screw 19. The sliding rod 18 is fixed to the bottom of the cutting table 1 by welding or bolting, and the screw 19 is rotatably connected to the bottom of the cutting table 1 by bearings. A moving motor is provided at the bottom of the cutting table 1. The output shaft of the moving motor is welded or bolted to one end of the screw 19 to realize the rotation drive of the screw 19. The screw 19 passes through the push rod 10 and is threadedly connected to it. The sliding rod 18 passes through the push rod 10 and is slidably connected to it. This structure can drive the push rod 10 and the sliding rod 18 threadedly connected to it to slide when the screw 19 rotates, realizing the sliding drive of the push rod 10, making the push rod 10 to push multiple collection boxes 7 more stable and accurate.
[0031] Working Principle: This invention features a horizontally movable crossbeam 2 on a cutting table 1. A machine head 3 is slidably connected to the crossbeam 2 along its longitudinal direction. A cutting saw blade 4 is rotatably connected to the machine head 3. When cutting a stone panel, the cutting saw blade 4 passes through the stone panel and extends into the cutting groove 5, achieving a complete cut. Multiple collection boxes 7 are slidably connected to the bottom of the cutting table 1 to cooperate with the cutting groove 5. Each collection box 7 has a feed inlet 8 at its top and a connecting groove 9 at one end. A thin rod 6 on the machine head 3 passes through the cutting groove 5 and extends into the connecting groove 9. This structure allows the thin rod 6 on the machine head 3 to connect with the collection boxes 7 as the cutting saw blade 4 moves along the crossbeam 2 to cut the stone panel. The collection boxes 7 move with the machine head 3, ensuring that the stone chips and powder generated during cutting pass through the cutting groove. After 5, the material enters the collection box 7 through the feed inlet 8, effectively preventing stone chips and powder from falling below the cutting table 1, greatly reducing the difficulty of cleaning, minimizing the impact on the environment and the health of operators, and reducing the workload of subsequent cleaning. A push rod 10 is slidably connected to the bottom of the cutting table 1. The push rod 10 simultaneously contacts one end of multiple collection boxes. With this structure, when the collection box 7 moves to one end with the machine head 3, the push rod 10 can slide to reset the collection box 7. This allows the thin rod 6 on the machine head 3 to pass through the cutting groove 5 and connect to the connecting groove 9 at the end of the collection box 7 when cutting again at this location. This prepares the material for subsequent cutting and ensures accurate collection of stone chips and powder during subsequent cutting. It eliminates the need for manual operation of the collection box 7, greatly improving the convenience of actual use of the device.
Claims
1. A segmentation device for a stone curtain wall, comprising a cutting table (1), a horizontal beam (2) slidably connected to the cutting table (1) along the transverse direction, a machine head (3) slidably connected to the horizontal beam (2) along the longitudinal direction, a cutting saw blade (4) rotatably connected to the machine head (3), and a plurality of cutting grooves (5) for use with the cutting saw blade (4) on the cutting table (1), characterized in that: One end of the machine head (3) is provided with a thin rod (6), and the bottom of the cutting table (1) is slidably connected with a plurality of collection boxes (7) used in conjunction with the cutting groove (5). The top of the collection box (7) is provided with a feed inlet (8), and one end of the collection box (7) is provided with a connecting groove (9). The thin rod (6) passes through the cutting groove (5) and extends into the interior of the connecting groove (9). The bottom of the cutting table (1) is slidably connected with a push rod (10), and the push rod (10) simultaneously contacts one end of a plurality of collection boxes (7).
2. The segmentation device for a stone curtain wall according to claim 1, characterized in that: The head (3) is provided with a protective cover (11), the cutting saw blade (4) is rotatably connected inside the protective cover (11), and the thin rod (6) is fixedly connected to the protective cover (11).
3. The segmentation device for a stone curtain wall according to claim 2, characterized in that: The machine head (3) is vertically connected to a slide block (12), and the machine head (3) is provided with a lifting rod (13) that drives the slide block (12) to slide vertically. The protective cover (11) is fixed on the slide block (12). The top of the connecting groove (9) is open, and the thin rod (6) passes through the top of the connecting groove (9) and extends into the interior of the connecting groove (9).
4. The segmentation device for a stone curtain wall according to claim 1, characterized in that: The bottom of the cutting table (1) is symmetrically provided with slide rails (14), and the two sides of the collection box (7) are symmetrically provided with sliders (15), which are slidably connected to the slide rails (14).
5. The segmentation device for a stone curtain wall according to claim 1, characterized in that: The width of the feed inlet (8) is greater than the width of the cutting groove (5).
6. The segmentation device for a stone curtain wall according to claim 1, characterized in that: The cutting table (1) is symmetrically provided with drive chains (16) on both sides, and the crossbeam (2) is symmetrically provided with fixing blocks (17), which are fixed on the drive chains (16).
7. The segmentation device for a stone curtain wall according to claim 1, characterized in that: The bottom of the cutting table (1) is provided with a sliding rod (18) and a rotating screw (19). The screw (19) passes through the push rod (10) and is threadedly connected to it. The sliding rod (18) passes through the push rod (10) and is slidably connected to it.