Quartzite plate processing and distributing device

By designing an automated quartz stone slab processing fabric device, the problem of low manual laying efficiency of fiber mesh cloth is solved, rapid laying of fiber mesh cloth and efficient production of quartz stone slabs are achieved, and the physical properties of quartz stone slabs are enhanced.

CN223186813UActive Publication Date: 2025-08-05LIANYUNGANG JIUNENG QUARTZ TECH CO LTD
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Patent Information

Application Number
CN202422498837.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-08-05
Estimated Expiration
2034-10-15

AI Technical Summary

Technical Problem

During the processing of existing quartz slabs, the laying of fiber mesh cloth requires manual operation, resulting in low production efficiency.

Method used

A quartz stone slab processing fabric device is designed, including a conveyor table, a quartz fabric mold, a quartz fabric machine, a mesh structure and a press structure. The screw rod and a cutter are driven by a motor to automatically lay and cut the fiber mesh cloth, eliminating manual operation.

Benefits of technology

The rapid laying of fiber mesh cloth is achieved, the processing efficiency of quartz stone slabs is improved, and the physical properties of the formed quartz stone slabs are enhanced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a distributing device for quartz plate processing, which belongs to the technical field of quartz plate processing equipment and comprises a conveying table for conveying materials and a quartz distributing mold movably mounted on the conveying table and used for placing raw materials of quartz plates. According to the utility model, in the process of distributing quartz raw materials on the quartz distributing mould by using the quartz distributing machine, a fiber mesh cloth roll can be pulled out and covered on the quartz distributing mould by starting the motor, and then the covered fiber mesh cloth roll is cut off by using the cutter; then the quartz cloth mold on which the fiber mesh cloth is laid is taken out, a layer of quartz raw material is laid again, the physical performance of the formed quartz stone plate can be enhanced by adding the fiber mesh cloth into the quartz raw material, and the step of manual operation of workers is omitted in the process of laying the fiber mesh cloth; rapid laying of fiber mesh cloth can be achieved, and the processing efficiency of quartz stone plates is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of quartz plate processing equipment, in particular to a quartz stone plate processing distribution device. Background Art

[0002] The quartz slab placing machine is a placing device specially used in the production process of quartz slabs. Its main function is to evenly and accurately place raw materials such as quartz sand and resin in the mold to form quartz slabs with specific patterns or textures.

[0003] During the curing process, the raw materials of quartz slabs may produce cracks due to internal stress or the influence of the external environment. The presence of fiber mesh can effectively disperse these stresses and prevent the generation and expansion of cracks. At the same time, the combination of quartz raw materials and fiber mesh can form a stronger composite layer, thereby improving the bearing capacity and impact resistance of the slab.

[0004] In the prior art, in order to improve the strength and stability of the finished quartz slabs, it is usually necessary to lay a layer of fiber mesh on the mold during the laying of the quartz raw materials, and then lay the secondary materials so that the fiber mesh is located in the middle of the raw materials. However, the existing laying machine requires workers to manually lay the fiber mesh and flatten it, which consumes more time and manpower, resulting in reduced production efficiency. Utility Model Content

[0005] In view of the above-mentioned technical deficiencies, the purpose of the present invention is to provide a quartz stone slab processing distribution device to solve some or all of the problems in the above-mentioned background technology.

[0006] In order to solve the above technical problems, the present invention adopts the following technical solutions:

[0007] A quartz slab processing and distributing device, comprising:

[0008] Conveyor platform, used for conveying materials;

[0009] Quartz cloth mold, movably installed on the conveyor table, used to place the raw materials of quartz stone slabs;

[0010] A quartz distribution machine is arranged on the conveying platform and is used in conjunction with the quartz distribution mold to distribute the raw materials of the quartz stone slabs on the quartz distribution mold;

[0011] The mesh structure is arranged on the conveying platform and corresponds to the quartz cloth mold, and is used to lay the fiber mesh above the quartz cloth mold;

[0012] The mesh structure includes a support structure for placing the fiber mesh, a stretching structure for pulling the fiber mesh and spreading it out, and a cutting structure for cutting the fiber mesh.

[0013] The conveying platform is also provided with a pressing structure for pressing the fiber mesh cloth tightly onto the quartz stone plate raw material in the quartz cloth mold.

[0014] Preferably, the support structure comprises:

[0015] Fiber mesh rolls;

[0016] A winding roller is arranged on the fiber mesh roll and is used to wind up the fiber mesh roll;

[0017] The support seat is arranged on the conveying platform, and the winding roller is rotatably installed on the support seat and is used to support the winding roller.

[0018] Preferably, the tensile structure comprises:

[0019] The mounting base is arranged on the conveying platform;

[0020] The screw rod is rotatably mounted on the mounting base;

[0021] The motor has an output end arranged on the screw and is used to drive the screw to rotate;

[0022] A sliding seat is slidably mounted on the conveying platform, and the sliding seat is threadedly mounted on the screw rod;

[0023] A material placing plate is arranged on the conveying table and has a plurality of grooves;

[0024] A clamping assembly is arranged on the sliding seat;

[0025] Among them, one end of the screw rod is rotatably mounted on the support seat, and a plurality of protrusions adapted to the grooves of the material loading plate are arranged on the sliding seat. The clamping assembly is used in conjunction with the sliding seat to clamp one end of the fiber mesh roll.

[0026] Preferably, the clamping assemblies are arranged in multiple groups, and each group of clamping assemblies includes:

[0027] L-shaped support frame, arranged on the sliding seat;

[0028] Clamp the electric push rod and place it on the L-shaped support frame;

[0029] A clamping plate is located above the material placement plate and contacts the fiber mesh roll;

[0030] Among them, the output end of the clamping electric push rod passes through the L-shaped support frame and is installed above the clamping plate to control the lifting and lowering of the clamping plate.

[0031] Preferably, the cutting structure comprises:

[0032] Cut off the electric push rod and place it above the material placement plate;

[0033] A connecting frame is arranged on the output end of the cut-off electric push rod;

[0034] The cutter is arranged below the connecting frame.

[0035] Preferably, the pressing structure includes:

[0036] U-shaped frame, arranged on the conveyor table;

[0037] U-shaped slide, slidably mounted on the U-shaped frame;

[0038] A guide rod is arranged on the U-shaped frame and slidably mounted on the U-shaped slide bar, and is used to guide the movement of the U-shaped slide bar;

[0039] An auxiliary spring is slidably sleeved on the guide rod, and the two ends of the auxiliary spring are respectively connected to the U-shaped slide and the U-shaped frame, and is used to reset the movement of the U-shaped slide;

[0040] The pressure roller frame is arranged on the U-shaped slide;

[0041] The squeezing roller is rotatably mounted on the inner wall of the pressing roller frame;

[0042] The linkage assembly is arranged on the U-shaped slide and the sliding seat, and is used to control the lifting and lowering of the U-shaped slide according to the moving position of the sliding seat.

[0043] Preferably, the linkage component includes:

[0044] The linkage block is arranged on the U-shaped slide;

[0045] An extrusion block is arranged on the sliding seat and is used in conjunction with the linkage block to squeeze the linkage block;

[0046] Wherein, the linkage block and the extrusion block are both provided with inclined surfaces with the same angle.

[0047] The beneficial effects of the present invention are:

[0048] The utility model can, in the process of laying quartz raw materials on the quartz cloth mold by using the quartz cloth feeding machine, pull out the fiber mesh cloth roll and cover the quartz cloth mold by turning on the motor, and then cut the covered fiber mesh cloth roll with the cutter, and then take out the quartz cloth mold with the fiber mesh cloth laid and lay a layer of quartz raw materials again. By adding the fiber mesh cloth to the quartz raw material, the physical properties of the formed quartz stone plate can be enhanced, and the manual operation steps of the staff are omitted in the process of laying the fiber mesh cloth, so that the fiber mesh cloth can be quickly laid, and the processing efficiency of the quartz stone plate can be improved.

[0049] The utility model can use the squeezing roller to press the fiber mesh into the quartz raw material laid out in the quartz cloth mold while laying the fiber mesh, thereby preventing the fiber mesh from being offset when the quartz raw material is laid out for the second time, and at the same time, can compact the quartz raw material in the quartz cloth mold to improve its density and strength. BRIEF DESCRIPTION OF THE DRAWINGS

[0050] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0051] Figure 1 A schematic structural diagram of a quartz slab processing and distributing device provided in an embodiment of the present utility model;

[0052] Figure 2 A schematic diagram of the partial structure of a quartz slab processing and distributing device provided by an embodiment of the utility model;

[0053] Figure 3 A schematic diagram of the structure of a sliding seat of a quartz slab processing and distributing device provided by an embodiment of the utility model;

[0054] Figure 4 A schematic diagram of the cutter structure of a quartz slab processing and distributing device provided by an embodiment of the utility model;

[0055] Figure 5 A schematic diagram of a U-shaped frame structure of a quartz slab processing and distributing device provided by an embodiment of the utility model;

[0056] Figure 6 This is a schematic structural diagram of a pressure roller frame of a quartz slab processing and distributing device provided in an embodiment of the utility model.

[0057] Description of reference numerals:

[0058] 1. Conveyor platform; 2. Quartz cloth mold; 3. Quartz cloth machine; 4. Fiber mesh roll; 401. Winding roller; 402. Support seat; 5. Mounting seat; 501. Screw; 502. Motor; 503. Sliding seat; 504. L-shaped support frame; 505. Clamping electric push rod; 506. Clamping plate; 6. Material placement plate; 7. Cutting electric push rod; 701. Connecting frame; 702. Cutter; 8. U-shaped frame; 801. U-shaped slide; 802. Guide rod; 803. Auxiliary spring; 804. Press roller frame; 805. Squeeze roller; 806. Linkage block; 807. Squeeze block. DETAILED DESCRIPTION

[0059] 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.

[0060] Example 1:

[0061] like Figures 1 to 6 As shown, the utility model provides a quartz stone processing and distributing device, comprising: a conveying platform 1 for conveying materials, a quartz distributing mold 2 movably mounted on the conveying platform 1 for placing raw materials of the quartz stone slabs, and a quartz distributing machine 3 arranged on the conveying platform 1 and used in conjunction with the quartz distributing mold 2 to distribute and lay the raw materials of the quartz stone slabs on the quartz distributing mold 2.

[0062] In order to quickly cover the quartz cloth mold 2 with the raw materials laid out with the fiber mesh, eliminate the manual covering steps of the staff, and improve the processing efficiency, a mesh structure corresponding to the quartz cloth mold 2 and used to lay the fiber mesh above the quartz cloth mold 2 is arranged on the conveyor table 1. The mesh structure includes a supporting structure for placing the fiber mesh, a stretching structure for pulling the fiber mesh and spreading it out, and a cutting structure for cutting the fiber mesh.

[0063] Among them, the supporting structure includes a fiber mesh roll 4, a winding roller 401 arranged on the fiber mesh roll 4 for winding the fiber mesh roll 4, and a support seat 402 arranged on the conveyor platform 1 for supporting the winding roller 401. The winding roller 401 is rotatably installed on the support seat 402. By pulling one end of the fiber mesh roll 4, it can be released from the winding roller 401. During the process, the winding roller 401 will rotate on the support seat 402.

[0064] The cam 503 is connected to the support frame 501 by the screw rod 501, and the cam 503 is connected to the support frame 501 by the screw rod 501.

[0065] Specifically, there are multiple groups of clamping components, each group of clamping components includes an L-shaped support frame 504 arranged on the sliding seat 503, a clamping electric push rod 505 arranged on the L-shaped support frame 504, and a clamping plate 506 located above the material loading plate 6 and in contact with the fiber mesh roll 4. The output end of the clamping electric push rod 505 passes through the L-shaped support frame 504 and is installed above the clamping plate 506 to control the lifting and lowering of the clamping plate 506. When the corresponding clamping electric push rod 505 is turned on, the output end of the clamping electric push rod 505 can drive the clamping plate 506 to descend, so that the descending clamping plate 506 clamps one end of the fiber mesh roll 4 by cooperating with the sliding seat 503.

[0066] Among them, the cutting structure includes a cutting electric push rod 7 arranged above the material loading plate 6, a connecting frame 701 arranged on the output end of the cutting electric push rod 7, and a cutter 702 arranged below the connecting frame 701. Turning on the cutting electric push rod 7 can enable its output end to drive the connecting frame 701 and the cutter 702 to descend, so that the descending cutter 702 cuts the fiber mesh roll 4.

[0067] Example 2:

[0068] On the basis of Example 1, in order to compact the raw materials in the quartz cloth mold 2 and press the fiber mesh into the material in the quartz cloth mold 2 to prevent the fiber mesh from shifting, a pressing structure for pressing the fiber mesh tightly against the quartz stone slab raw materials in the quartz cloth mold 2 is arranged on the conveyor table 1.

[0069] The pressing structure includes a U-shaped frame 8 arranged on the conveying platform 1, a U-shaped slide 801 slidably mounted on the U-shaped frame 8, a guide rod 802 arranged on the U-shaped frame 8 and slidably mounted on the U-shaped slide 801 for guiding the movement of the U-shaped slide 801, an auxiliary spring 803 slidably sleeved on the guide rod 802 for resetting the movement of the U-shaped slide 801, the two ends of the auxiliary spring 803 are respectively connected to the U-shaped slide 801 and the U-shaped frame 8, a pressing roller frame 804 arranged on the U-shaped slide 801, an extrusion roller 805 rotatably mounted on the inner wall of the pressing roller frame 804, and a pressing roller 805 arranged on the U-shaped slide 801. The U-shaped slide 801 and the sliding seat 503 are used to control the U-shaped slide 801 to rise and fall according to the moving position of the sliding seat 503. During the contraction of the auxiliary spring 803, the U-shaped slide 801 will be pulled down, and then the U-shaped slide 801 will drive the pressure roller frame 804 and the squeezing roller 805 to fall, and finally the squeezing roller 805 will be pressed on the top of the spread fiber mesh cloth roll 4, and as the quartz cloth mold 2 and the fiber mesh cloth roll 4 move, the squeezing roller 805 can compact the material in the quartz cloth mold 2 and press the fiber mesh cloth roll 4 into the material of the quartz cloth mold 2.

[0070] Specifically, the linkage assembly includes a linkage block 806 arranged on the U-shaped slide 801, and an extrusion block 807 arranged on the sliding seat 503 for squeezing the linkage block 806. Both the linkage block 806 and the extrusion block 807 are provided with inclined surfaces with the same angle. The extrusion block 807 can squeeze the linkage block 806 and make the extrusion roller 805 rise during the movement. When the clamping electric push rod 505 is moved away from the bottom of the extrusion roller 805, the extrusion block 807 will also slowly disengage from the extrusion of the linkage block 806.

[0071] Working principle: When in use, the conveyor platform 1 is used to convey the quartz cloth mold 2, so that the quartz cloth mold 2 passes through the discharge port of the quartz cloth machine 3. During the process, the quartz cloth machine 3 can mix the quartz sand, resin and other raw materials required for quartz slab processing and evenly lay them in the quartz cloth mold 2. When the quartz cloth mold 2 with the raw materials laid is moved out of the quartz cloth machine 3 under the transportation of the conveyor platform 1, the corresponding clamping electric push rod 505 can be turned on, and the output end of the clamping electric push rod 505 can drive the splint 506 to descend, so that the descending splint 506 can clamp one end of the fiber mesh roll 4 through the cooperation with the sliding seat 503, and then turn on the motor 502, and the output end of the motor 502 can drive the screw rod 501 to rotate on the mounting seat 5. During the rotation, the screw rod 501 can drive it to slide horizontally by cooperating with the thread of the sliding seat 503, so that the horizontally sliding sliding seat 503 drives the L-shaped support frame 504 and the clamping electric push rod 505 to move, and then drives the clamping plate 506 and one end of the clamped fiber mesh roll 4 to move, and release the fiber mesh roll 4 from the winding roller 401. During the process, the winding roller 401 can rotate on the support seat 402, and at the same time, it can unfold the fiber mesh roll 4 and cover the quartz cloth mold 2 as the quartz cloth mold 2 is moved out. Among them, the auxiliary spring 803 in the figure is in a stretched energy storage state, and can drive the squeezing blocks 807 on both sides to move when the sliding seat 503 moves. When the clamping electric push rod 505 is released from the squeezing roller 8 In the process of moving the lower part of 05 away, the squeezing block 807 will slowly disengage from squeezing the linkage block 806, so that the inclined surface of the squeezing block 807 contacts the inclined surface of the linkage block 806. During the process, the auxiliary spring 803 in the stretched state will contract. In the process of contraction of the auxiliary spring 803, the U-shaped slide 801 will be pulled down, thereby causing the U-shaped slide 801 to drive the linkage block 806 to descend. The moving U-shaped slide 801 will slide on the corresponding guide rod 802, thereby limiting the moving direction of the U-shaped slide 801 to prevent it from deflecting. The continuously descending U-shaped slide 801 will drive the pressure roller frame 804 and the squeezing roller 805 to descend, and finally the squeezing roller 805 will be pressed on the top of the spread fiber mesh roll 4, pressing the fiber mesh roll 4 On the quartz cloth mold 2 on which the material is laid, and as the quartz cloth mold 2 and the fiber mesh cloth roll 4 move, the squeezing roller 805 can compact the material in the quartz cloth mold 2, and at the same time press the fiber mesh cloth roll 4 into the material in the quartz cloth mold 2. After the fiber mesh cloth roll 4 is completely covered on the quartz cloth mold 2, the cutting electric push rod 7 can be turned on, so that its output end drives the connecting frame 701 to descend, and the descending connecting frame 701 can drive the cutter 702 to descend, so that the cutter 702 descends to cut the fiber mesh cloth roll 4, and the laying work of the fiber mesh cloth roll 4 is completed. After that, the quartz cloth mold 2 on which the fiber mesh cloth roll 4 is laid can be taken out, and it can be passed through the quartz cloth distributing machine 3 again to lay the second layer of material, and the distributing operation can be completed.The output end of the control motor 502 is then rotated in the opposite direction, causing the sliding seat 503 to move and reset. During this process, the squeezing block 807 is driven to re-squeeze the linkage block 806 and cause the squeezing roller 805 to rise. Simultaneously, the reset sliding seat 503 drives its protrusion to reinsert into the groove of the material placement plate 6, placing the protrusion below the fiber mesh roll 4. This allows the clamping plate 506 to re-grip one end of the fiber mesh roll 4, allowing the fiber mesh roll 4 to be stretched and laid again.

[0072] Obviously, those skilled in the art may make various modifications and variations to the present invention without departing from the spirit and scope of the present invention. Thus, if such modifications and variations fall within the scope of the claims of the present invention and their equivalents, the present invention is intended to include such modifications and variations.

Claims

1. A quartz stone slab processing and distributing device, characterized in that: include: Conveyor platform (1); A quartz cloth mold (2) is movably mounted on the conveyor platform (1) and is used to place the raw materials of the quartz stone slab; A quartz distribution machine (3) is arranged on the conveying platform (1) and is used in conjunction with the quartz distribution mold (2) to distribute and lay the raw materials of the quartz stone slabs on the quartz distribution mold (2); A mesh structure is arranged on the conveying platform (1) and corresponds to the quartz cloth mold (2), and is used to lay the fiber mesh above the quartz cloth mold (2); The mesh structure includes a supporting structure for placing the fiber mesh, a stretching structure for pulling the fiber mesh and spreading it out, and a cutting structure for cutting the fiber mesh.

2. A quartz stone slab processing and distributing device according to claim 1, characterized in that: The support structure comprises: Fiber mesh roll (4); A winding roller (401) is arranged on the fiber mesh roll (4) and is used to wind up the fiber mesh roll (4); The support seat (402) is arranged on the conveying platform (1), and the winding roller (401) is rotatably mounted on the support seat (402) for supporting the winding roller (401).

3. A quartz stone slab processing and distributing device according to claim 1, characterized in that: The tensile structure comprises: A mounting seat (5) is arranged on the conveying platform (1); A screw rod (501) is rotatably mounted on a mounting seat (5); A motor (502), the output end of which is arranged on the screw rod (501), and is used to drive the screw rod (501) to rotate; A sliding seat (503) is slidably mounted on the conveying platform (1), and the sliding seat (503) is threadedly mounted on the screw rod (501); A material placement plate (6) is arranged on the conveying platform (1), and a plurality of grooves are formed on the material placement plate (6); A clamping assembly is arranged on the sliding seat (503); One end of the screw rod (501) is rotatably mounted on the support seat (402), and a plurality of protrusions adapted to the grooves of the material placement plate (6) are arranged on the sliding seat (503). The clamping assembly is used in conjunction with the sliding seat (503) to clamp one end of the fiber mesh roll (4).

4. A quartz stone slab processing and distributing device as claimed in claim 3, characterized in that: The clamping components are arranged in multiple groups, and each group of clamping components includes: An L-shaped support frame (504) is arranged on the sliding seat (503); Clamping the electric push rod (505), arranged on the L-shaped support frame (504); A clamping plate (506) is located above the material placement plate (6) and is in contact with the fiber mesh roll (4); The output end of the clamping electric push rod (505) passes through the L-shaped support frame (504) and is installed above the clamping plate (506) for controlling the lifting of the clamping plate (506).

5. A quartz stone slab processing and distributing device according to claim 1, characterized in that: The cutting structure comprises: A cutting electric push rod (7) is arranged above the material placing plate (6); A connecting frame (701) is arranged on the output end of the cut-off electric push rod (7); The cutter (702) is arranged below the connecting frame (701).

6. A quartz stone slab processing and distributing device according to claim 1, characterized in that: The conveying platform (1) is also provided with a pressing structure for pressing the fiber mesh cloth onto the quartz stone plate raw material in the quartz cloth mold (2).

7. A quartz stone slab processing and distributing device as claimed in claim 6, characterized in that: The pressing structure comprises: A U-shaped frame (8) is arranged on the conveying platform (1); A U-shaped slide bar (801) is slidably mounted on the U-shaped frame (8); A guide rod (802) is arranged on the U-shaped frame (8) and slidably mounted on the U-shaped slide (801) for guiding the movement of the U-shaped slide (801); An auxiliary spring (803) is slidably sleeved on the guide rod (802), and the two ends of the auxiliary spring (803) are respectively connected to the U-shaped slide (801) and the U-shaped frame (8), and is used to reset the movement of the U-shaped slide (801); A pressure roller frame (804) is arranged on the U-shaped slide (801); A squeezing roller (805) is rotatably mounted on the inner wall of the pressing roller frame (804); The linkage assembly is arranged on the U-shaped slide bar (801) and the sliding seat (503) and is used to control the U-shaped slide bar (801) to rise and fall according to the moving position of the sliding seat (503).

8. A quartz stone plate processing and distributing device as claimed in claim 7, characterized in that: The linkage component includes: A linkage block (806) is arranged on the U-shaped slide bar (801); An extrusion block (807) is arranged on the sliding seat (503) and is used in conjunction with the linkage block (806) to extrude the linkage block (806); Wherein, the linkage block (806) and the extrusion block (807) are both provided with inclined surfaces with the same angle.