Flame-retardant artificial board manufacturing and processing equipment and processing method thereof

By designing a multi-mechanical synergistic processing equipment for flame-retardant artificial plate manufacturing, the problems of low manual laying efficiency and poor uniformity are solved, uniform laying of mesh fiber materials and wood raw materials and effective gas discharge, and the strength and quality of the plate are improved.

CN119928032AActive Publication Date: 2025-05-06ZHEJIANG KANGNUO DECORATION MATERIAL CO LTD
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Patent Information

Application Number
CN202510155619.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-12
Publication Date
2025-05-06
Estimated Expiration
2045-02-12

AI Technical Summary

Technical Problem

Manually laid mesh fiber materials are inefficient in the production of flame-retardant artificial plates and cannot achieve accurate uniformity, resulting in gases being unable to be effectively discharged during hot pressing, affecting the strength and quality of the plates.

Method used

A flame-retardant artificial board manufacturing and processing equipment is designed, including a slat, a uniform mechanism, a driving mechanism and a shaking mechanism. Through the synergistic effect of these mechanisms, uniform laying and gas discharge of mesh fiber materials and wood raw materials is achieved.

Benefits of technology

It improves the laying efficiency and uniformity of mesh fiber materials, ensures effective gas discharge, and enhances the strength and quality of flame-retardant plates.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of flame-retardant artificial panels, and discloses flame-retardant artificial panel manufacturing and processing equipment and a processing method thereof.The flame-retardant artificial panel manufacturing and processing equipment comprises a [-shaped frame, a rectangular sliding rod is fixedly installed in the [-shaped frame, the rectangular sliding rod is slidably sleeved with a movable box, and a T-shaped cavity is formed in the movable box; the uniformizing mechanism comprises a plurality of rectangular leakage grooves formed in the inner wall of the bottom of the movable box, a rectangular groove is formed in the movable box, and a plurality of uniformizing springs are fixedly installed on the inner wall of the right side of the rectangular groove. According to the device, after the net-shaped fiber material is laid, the material storage groove containing the wood raw materials can also face the T-shaped cavity, the corresponding material storage groove containing the wood raw materials can be opened under the action of the contact plate, the wood raw materials fall onto the laid net-shaped fiber material, it is guaranteed that the wood raw materials and the net-shaped fiber material can be evenly laid, and the quality of the wood raw materials is improved. The strength of the flame-retardant plate is improved, and gas is effectively discharged.
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Description

Technical Field

[0001] The present invention relates to the technical field of flame-retardant artificial board equipment, and particularly relates to a flame-retardant artificial board manufacturing and processing equipment and its processing method. Background Art

[0002] Artificial board is made by using the waste materials generated during the processing of wood and adding chemical adhesives. There are many types of artificial boards, and the commonly used ones include particle board, medium density fiberboard, blockboard, plywood, and decorative artificial boards such as fireproof board.

[0003] During the production of flame-retardant artificial boards, it is necessary to add reticulated fiber materials to improve the strength of the boards. Most reticulated fiber materials are laid manually. Manual laying not only has low work efficiency, but also cannot achieve precise uniformity, resulting in ineffective gas discharge during the hot pressing process. Moreover, uneven laying will also affect the strength and quality of the boards. Summary of the Invention

[0004] The purpose of the present invention is to provide a flame-retardant artificial board manufacturing and processing equipment and its processing method to solve the problems that manual laying not only has low work efficiency, but also cannot achieve precise uniformity, resulting in ineffective gas discharge during the hot pressing process, and uneven laying will also affect the strength and quality of the boards.

[0005] To solve the above technical problems, the present invention is realized through the following technical solutions:

[0006] The present invention is a flame-retardant artificial board manufacturing and processing equipment, including a U-shaped frame. A rectangular sliding rod is fixedly installed inside the U-shaped frame. An activity box is slidably sleeved on the rectangular sliding rod. A T-shaped cavity is opened on the activity box. It further includes:

[0007] A uniform mechanism. The uniform mechanism includes a plurality of rectangular leakage grooves opened on the inner wall of the bottom of the activity box. A rectangular groove is opened inside the activity box. A plurality of uniform springs are fixedly installed on the right inner wall of the rectangular groove. The left ends of the plurality of uniform springs are fixedly installed with a grooved closing plate. The back of the grooved closing plate extends outside the rectangular groove. The grooves on the grooved closing plate are staggered with the plurality of rectangular leakage grooves. A compression spring is sleeved on the rectangular sliding rod. The right end of the compression spring is fixedly connected with the activity box. The left end of the compression spring is fixedly connected with the U-shaped frame.

[0008] Furthermore, a discharging rack is arranged inside the U-shaped frame. A T-shaped round rod is slidably installed on the discharging rack. The T-shaped round rod penetrates through the discharging rack. A discharging spring is sleeved on the T-shaped round rod. The right end of the discharging spring is fixedly connected with the T-shaped round rod. The left end of the discharging spring is fixedly connected with the discharging rack.

[0009] Further, a driving mechanism is provided on the U-shaped frame. The driving mechanism includes a threaded rod rotatably installed on the U-shaped frame. The left end of the threaded rod extends outside the U-shaped frame. A driving motor is fixedly installed on the right side of the U-shaped frame. The output shaft of the driving motor is fixedly connected to the threaded rod. An internally threaded block is sleeved on the threaded rod. The top end of the internally threaded block extends into the U-shaped frame and is slidably connected to the U-shaped frame. The bottom of the internally threaded block is fixedly installed with a U-shaped block. The bottom of the U-shaped block is fixedly connected to the discharge rack.

[0010] Further, two storage grooves are formed on the U-shaped block. Two rectangular installation grooves are formed in the U-shaped block. One ends of two telescopic springs are respectively fixedly installed on the sides of the two rectangular installation grooves away from each other. One ends of the two telescopic springs close to each other are respectively fixedly installed with trapezoidal closing blocks. Through grooves are respectively formed on the bottom inner walls of the two storage grooves. The bottom ends of the two through grooves respectively extend outside the U-shaped block. The bottom of the U-shaped block communicates with the discharge rack. Contact plates are respectively fixedly installed on the backs of the two trapezoidal closing blocks.

[0011] Further, an L-shaped fixing plate is fixedly installed on the back of the U-shaped frame. Two adapting springs are sleeved on the threaded rod. One ends of the two adapting springs away from each other are both fixedly connected to the U-shaped frame. One ends of the two adapting springs close to each other are respectively fixedly installed with adapting rings. Two rotating rods are fixedly installed on the threaded rod. A Z-shaped isosceles trapezoidal panel is slidably installed on the left side of the U-shaped frame. The left end of the Z-shaped isosceles trapezoidal panel extends into the U-shaped frame. The right end of the Z-shaped isosceles trapezoidal panel is fixedly connected to the movable box.

[0012] Further, a shaking mechanism is provided in the U-shaped frame. The shaking mechanism includes a rectangular limiting frame fixedly installed in the U-shaped frame. A forming box is slidably installed in the rectangular limiting frame. A shaking spring is fixedly installed on the left inner wall of the U-shaped frame. The right end of the shaking spring is fixedly connected to the forming box. An exhaust plate is slidably installed in the forming box.

[0013] Further, a connecting plate is fixedly installed on the right side of the forming box. A U-shaped limiting plate is fixedly installed on the right inner wall of the U-shaped frame. An L-shaped trapezoidal panel is slidably sleeved on the U-shaped limiting plate. A transmission plate is hingedly installed on the connecting plate. The top end of the transmission plate is hingedly connected to the L-shaped trapezoidal panel.

[0014] Further, a method for manufacturing and processing a flame-retardant artificial board is as follows:

[0015] S1: Place a quantitative amount of net-shaped fiber material;

[0016] S2: Evenly distribute the wood raw materials;

[0017] S3: Shake the net-shaped fiber material evenly;

[0018] S4: Flexibly lay the wood raw materials and the net-shaped fiber materials in layers.

[0019] The present invention has the following beneficial effects:

[0020] (1) For a manufacturing and processing device for flame-retardant artificial boards of the present invention, during the process of the U-shaped block moving towards the driving motor, the U-shaped block will drive the discharge rack to move, the discharge rack will drive the T-shaped round rod to contact the L-shaped contact plate, and the L-shaped contact plate will move towards the driving motor under the push of the T-shaped round rod. The L-shaped contact plate drives the grooved closing plate to move. At this time, the uniform spring undergoes a compressive deformation, and the grooves on the grooved closing plate will align with several rectangular leakage grooves. Since the movable box is constantly shaking, the net-shaped fiber materials in the movable box will fall onto the laid wood raw materials. Since the elastic force of the discharge spring is greater than that of the uniform spring, the uniform spring will always be in a compressed state under the extrusion of the T-shaped round rod. At this time, the discharge spring will also be compressed. When the movable box moves to the right, the compression of the discharge spring will decrease, and when the movable box moves to the left, the compression of the discharge spring will increase, ensuring the normal laying of the net-shaped fiber materials. After the net-shaped fiber materials are laid, the storage tank containing the wood raw materials will also be exactly opposite to the T-shaped cavity. Correspondingly, the storage tank containing the wood raw materials will be opened under the action of the contact plate, so that the wood raw materials fall above the laid net-shaped fiber materials, ensuring that the wood raw materials and the net-shaped fiber materials can be evenly laid, improving the strength of the flame-retardant board and the effective discharge of gas;

[0021] (2) For a manufacturing and processing device for flame-retardant artificial boards of the present invention, after laying the first layer of wood raw materials, start the driving motor. The driving motor drives the threaded rod to rotate, and the threaded rod drives the internally threaded block to move away from the driving motor. The internally threaded block drives the U-shaped block to move, and the U-shaped block drives the trapezoidal closing block to move. The trapezoidal closing block drives the contact plate to approach the L-shaped fixing plate. After the L-shaped fixing plate contacts the contact plate, the contact plate drives the trapezoidal closing block to move towards the driving motor. At this time, the telescopic spring undergoes a compressive deformation, and the through groove will open. The net-shaped fiber materials in the U-shaped block will fall into the movable box from the through groove. When the amount of net-shaped fiber materials falling into the movable box is sufficient, reverse the driving motor. At this time, the internally threaded block will drive the U-shaped block to approach the driving motor. Correspondingly, the through groove at the bottom of the storage tank containing the net-shaped fiber materials will close, and at this time, the storage tank containing the wood raw materials will also approach the driving motor at the same time;

[0022] (3) In the manufacturing and processing equipment for a flame-retardant artificial board of the present invention, during the process of the C-shaped block approaching the driving motor, it will contact the L-shaped stepped panel. Under the action of its inclined surface, the L-shaped stepped panel will descend. The L-shaped stepped panel drives the transmission plate to descend, and the transmission plate drives the connecting plate to move away from the driving motor. The connecting plate pushes the forming box to move. At this time, the shaking spring undergoes tensile deformation. When laying the net-shaped fiber material next time, the C-shaped block will leave the L-shaped stepped panel, and the forming box will suddenly approach the driving motor under the elastic force of the connecting plate. During this process, the forming box will undergo elastic shaking. The left and right shaking of the forming box will make the wood raw materials in the forming box shake more evenly and flatly, improving the thickness uniformity of the laying of the wood raw materials and effectively improving the quality of the flame-retardant board;

[0023] (4) In the manufacturing and processing equipment for a flame-retardant artificial board of the present invention, during the rotation of the threaded rod, it drives the rotating rod to rotate. During the rotation process, the rotating rod will contact the Z-shaped isosceles stepped panel. Under the action of its inclined surface, the Z-shaped isosceles stepped panel will move towards the driving motor. The Z-shaped isosceles stepped panel drives the movable box to move towards the driving motor. At this time, the compression spring undergoes tensile deformation. When the rotating rod leaves the Z-shaped isosceles stepped panel, the movable box will reset under the elastic action of the compression spring. During the continuous rotation of the rotating rod, the movable box will continuously shake left and right, making the net-shaped fiber material in the movable box evenly distributed in the movable box, facilitating the net-shaped fiber material to completely fall onto the wood raw materials when laying the net-shaped fiber material.

[0024] Of course, it is not necessary for any product implementing the present invention to simultaneously achieve all the above-mentioned advantages. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0026] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0027] Figure 2 It is a schematic diagram of the partially sectional structure of the back of the present invention;

[0028] Figure 3 It is a schematic diagram of the partially sectional structure of the movable box of the present invention;

[0029] Figure 4 For the present invention Figure 2 The enlarged structural diagram of A in;

[0030] Figure 5For the present invention Figure 2 Schematic enlarged structure diagram of B in the present invention;

[0031] Figure 6 Schematic cross-sectional structure diagram of the back part mechanism of the present invention;

[0032] Figure 7 For the present invention Figure 2 Schematic enlarged structure diagram of C in the present invention;

[0033] Figure 8 Schematic diagram of the method steps of the present invention.

[0034] In the attached drawings, the list of components represented by each reference numeral is as follows:

[0035] In the figure: 1, U-shaped frame; 2, rectangular sliding rod; 3, movable box; 4, T-shaped cavity; 5, uniform mechanism; 501, rectangular leakage groove; 502, rectangular groove; 503, uniform spring; 504, grooved closing plate; 505, L-shaped contact plate; 506, compression spring; 507, discharge rack; 508, T-shaped round rod; 509, discharge spring; 6, drive mechanism; 601, threaded rod; 602, drive motor; 603, internally threaded block; 604, U-shaped block; 605, storage tank; 606, rectangular installation groove; 607, telescopic spring; 608, trapezoidal closing block; 609, through groove; 610, contact plate; 611, L-shaped fixing plate; 612, adapting spring; 613, adapting ring; 614, rotating rod; 615, Z-shaped isosceles trapezoidal panel; 7, shaking mechanism; 701, rectangular limiting frame; 702, forming box; 703, shaking spring; 704, exhaust plate; 705, connecting plate; 706, U-shaped limiting plate; 707, L-shaped trapezoidal panel; 708, transmission plate. Detailed implementation manners

[0036] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0037] Please refer to Figure 1-Figure 8 As shown, the present invention is a manufacturing and processing device for flame-retardant artificial boards, including a U-shaped frame 1, a rectangular sliding rod 2 fixedly installed in the U-shaped frame 1, a movable box 3 slidably sleeved on the rectangular sliding rod 2, a T-shaped cavity 4 opened on the movable box 3, and further including:

[0038] The uniform mechanism 5 includes a plurality of rectangular leakage grooves 501 provided on the inner wall at the bottom of the movable box 3, a rectangular groove 502 is provided in the movable box 3, a plurality of uniform springs 503 are fixedly installed on the right inner wall of the rectangular groove 502, a grooved closing plate 504 is fixedly installed on the left end of the plurality of uniform springs 503, the back side of the grooved closing plate 504 extends outside the rectangular groove 502, the groove on the grooved closing plate 504 is staggered with the plurality of rectangular leakage grooves 501, a compression spring 506 is sleeved on the rectangular slide bar 2, the right end of the compression spring 506 is fixedly connected to the movable box 3, and the left end of the compression spring 506 is fixedly connected to the molded frame 1.

[0039] like Figure 4 and Figure 6 As shown, a discharge rack 507 is arranged inside the molded frame 1, and a T-shaped round rod 508 is slidably installed on the discharge rack 507. The T-shaped round rod 508 penetrates the discharge rack 507, and a discharge spring 509 is sleeved on the T-shaped round rod 508. The right end of the discharge spring 509 is fixedly connected to the T-shaped round rod 508, and the left end of the discharge spring 509 is fixedly connected to the discharge rack 507.

[0040] The mesh fiber material in the movable box 3 will fall onto the laid wood raw materials. Since the elastic force of the discharge spring 509 is greater than the elastic force of the uniform spring 503, the uniform spring 503 will be in a compressed state under the extrusion of the T-shaped round rod 508. At this time, the discharge spring 509 will also be compressed. When the movable box 3 moves to the right, the compression of the discharge spring 509 will become smaller, and when the movable box 3 moves to the left, the compression of the discharge spring 509 will become larger, thereby ensuring the normal laying of the mesh fiber material.

[0041] like Figure 1 As shown, a driving mechanism 6 is arranged on the mold frame 1, and the driving mechanism 6 includes a threaded rod 601 rotatably mounted on the mold frame 1, the left end of the threaded rod 601 extends to the outside of the mold frame 1, and a driving motor 602 is fixedly mounted on the right side of the mold frame 1, and the output shaft of the driving motor 602 is fixedly connected to the threaded rod 601, and an internal thread block 603 is threadedly sleeved on the threaded rod 601, and the top end of the internal thread block 603 extends into the mold frame 1 and is slidably connected to the mold frame 1, and a mold block 604 is fixedly mounted on the bottom of the internal thread block 603, and the bottom of the mold block 604 is fixedly connected to the discharge rack 507.

[0042] The driving motor 602 drives the threaded rod 601 to rotate, the threaded rod 601 drives the internal thread block 603 to move away from the driving motor 602, and the internal thread block 603 drives the shaped block 604 to move.

[0043] like Figure 5As shown, two storage grooves 605 are formed in the C-shaped block 604, two rectangular installation grooves 606 are formed in the C-shaped block 604, telescopic springs 607 are fixedly installed on one sides of the two rectangular installation grooves 606 away from each other respectively, trapezoidal closing blocks 608 are fixedly installed on one ends of the two telescopic springs 607 close to each other respectively, through grooves 609 are formed on the bottom inner walls of the two storage grooves 605 respectively, the bottom ends of the two through grooves 609 extend outside the C-shaped block 604 respectively, the bottom of the C-shaped block 604 communicates with the discharge rack 507, and contact plates 610 are fixedly installed on the backs of the two trapezoidal closing blocks 608 respectively.

[0044] The through groove 609 will open, and the net-shaped fiber material in the C-shaped block 604 will fall from the through groove 609 into the movable box 3. When the amount of the net-shaped fiber material falling into the movable box 3 is sufficient, reverse the driving motor 602. At this time, the internally threaded block 603 will drive the C-shaped block 604 to approach the driving motor 602. Correspondingly, the through groove 609 at the bottom of the storage groove 605 filled with the net-shaped fiber material will close, and at this time, the storage groove 605 filled with the wood raw material will approach the driving motor 602 at the same time.

[0045] As Figure 1 and Figure 2 As shown, an L-shaped fixing plate 611 is fixedly installed on the back of the C-shaped frame 1. Two adapting springs 612 are sleeved on the threaded rod 601. One ends of the two adapting springs 612 away from each other are fixedly connected to the C-shaped frame 1 respectively. Adapting rings 613 are fixedly installed on one ends of the two adapting springs 612 close to each other respectively. Two rotating rods 614 are fixedly installed on the threaded rod 601. A Z-shaped isosceles trapezoidal plate 615 is slidably installed on the left side of the C-shaped frame 1. The left end of the Z-shaped isosceles trapezoidal plate 615 extends into the C-shaped frame 1, and the right end of the Z-shaped isosceles trapezoidal plate 615 is fixedly connected to the movable box 3.

[0046] During the rotation of the threaded rod 601, the rotating rod 614 will be driven to rotate. The rotating rod 614 will contact the Z-shaped isosceles trapezoidal plate 615 during the rotation. The Z-shaped isosceles trapezoidal plate 615 will move in the direction close to the driving motor 602 under the action of its inclined surface. The Z-shaped isosceles trapezoidal plate 615 will drive the movable box 3 to move in the direction close to the driving motor 602. At this time, the compression spring 506 undergoes a tensile deformation. When the rotating rod 614 leaves the Z-shaped isosceles trapezoidal plate 615, the movable box 3 will reset under the elastic action of the compression spring 506. During the continuous rotation of the rotating rod 614, the movable box 3 will continuously swing left and right so that the net-shaped fiber material in the movable box 3 is evenly distributed in the movable box 3, which is convenient for the net-shaped fiber material to completely fall onto the wood raw material when laying the net-shaped fiber material.

[0047] As Figure 6As shown in the figure, a shaking mechanism 7 is arranged inside the C-shaped frame 1. The shaking mechanism 7 includes a rectangular limiting frame 701 fixedly installed inside the C-shaped frame 1. A forming box 702 is slidably installed inside the rectangular limiting frame 701. A shaking spring 703 is fixedly installed on the left inner wall of the C-shaped frame 1. The right end of the shaking spring 703 is fixedly connected to the forming box 702. An exhaust plate 704 is slidably installed inside the forming box 702.

[0048] The left and right shaking of the forming box 702 will make the wood raw materials inside the forming box 702 shake more evenly and flatly, improve the thickness uniformity of the laying of the wood raw materials, and effectively improve the quality of the flame-retardant board.

[0049] As Figure 6 and Figure 7 As shown in the figure, a connecting plate 705 is fixedly installed on the right side of the forming box 702. A C-shaped limiting plate 706 is fixedly installed on the right inner wall of the C-shaped frame 1. An L-shaped stepped panel 707 is slidably sleeved on the C-shaped limiting plate 706. A transmission plate 708 is hingedly installed on the connecting plate 705. The top end of the transmission plate 708 is hinged to the L-shaped stepped panel 707.

[0050] During the process of the C-shaped block 604 approaching the driving motor 602, it will contact the L-shaped stepped panel 707. The L-shaped stepped panel 707 will descend under the action of its inclined surface. The L-shaped stepped panel 707 drives the transmission plate 708 to descend. The transmission plate 708 will drive the connecting plate 705 to move in a direction away from the driving motor 602. The connecting plate 705 will push the forming box 702 to move.

[0051] As Figure 1-Figure 8 As shown in the figure, a method for manufacturing and processing a flame-retardant artificial board is as follows:

[0052] S1: Place a quantitative amount of net-shaped fiber material;

[0053] S2: Evenly distribute the wood raw materials;

[0054] S3: Evenly shake the net-shaped fiber material;

[0055] S4: Flexibly lay the wood raw materials and the net-shaped fiber material in layers.

[0056] During the process of the U-shaped block 604 moving towards the driving motor 602, the U-shaped block 604 drives the discharge rack 507 to move. The discharge rack 507 drives the T-shaped round rod 508 to contact the L-shaped contact plate 505. The L-shaped contact plate 505 moves towards the driving motor 602 under the push of the T-shaped round rod 508. The L-shaped contact plate 505 drives the grooved closing plate 504 to move. At this time, the uniform spring 503 undergoes a compressive deformation. The groove on the grooved closing plate 504 aligns with several rectangular leakage grooves 501. Due to the continuous shaking of the movable box 3, the net-like fiber material in the movable box 3 will fall onto the laid wood raw materials. Since the elastic force of the discharge spring 509 is greater than that of the uniform spring 503, the uniform spring 503 will always be in a compressed state under the extrusion of the T-shaped round rod 508. At this time, the discharge spring 509 will also be compressed. When the movable box 3 moves to the right, the compression of the discharge spring 509 will decrease. When the movable box 3 moves to the left, the compression of the discharge spring 509 will increase, ensuring the normal laying of the net-like fiber material. When the laying of the net-like fiber material is completed, the storage tank 605 containing the wood raw materials will also be directly opposite the T-shaped cavity 4. Correspondingly, the storage tank 605 containing the wood raw materials will be opened under the action of the contact plate 610, allowing the wood raw materials to fall above the laid net-like fiber material, ensuring that the wood raw materials and the net-like fiber material can be evenly laid, improving the strength and quality of the flame-retardant board; After laying the first layer of wood raw materials, start the driving motor 602. The driving motor 602 drives the threaded rod 601 to rotate. The threaded rod 601 drives the internally threaded block 603 to move away from the driving motor 602. The internally threaded block 603 drives the U-shaped block 604 to move. The U-shaped block 604 drives the trapezoidal closing block 608 to move. The trapezoidal closing block 608 drives the contact plate 610 to approach the L-shaped fixing plate 611. After the L-shaped fixing plate 611 contacts the contact plate 610, the contact plate 610 drives the trapezoidal closing block 608 to move towards the driving motor 602. At this time, the telescopic spring 607 undergoes a compressive deformation, and the through groove 609 will open. The net-like fiber material in the U-shaped block 604 will fall into the movable box 3 from the through groove 609. When the amount of the net-like fiber material falling into the movable box 3 is sufficient, reverse the driving motor 602. At this time, the internally threaded block 603 drives the U-shaped block 604 to approach the driving motor 602. Correspondingly, the through groove 609 at the bottom of the storage tank 605 containing the net-like fiber material will close. At this time, the storage tank 605 containing the wood raw materials will also approach the driving motor 602 simultaneously;

[0057] During the process of the C-shaped block 604 approaching the driving motor 602, it will contact the L-shaped ladder panel 707. The L-shaped ladder panel 707 will descend under the action of its inclined plane. The L-shaped ladder panel 707 drives the transmission plate 708 to descend. The transmission plate 708 drives the connecting plate 705 to move away from the driving motor 602. The connecting plate 705 pushes the forming box 702 to move. At this time, the shaking spring 703 undergoes tensile deformation. When laying the net-shaped fiber material next time, the C-shaped block 604 will leave the L-shaped ladder panel 707, and the forming box 702 will suddenly approach the driving motor 602 under the elastic force of the connecting plate 705. During this process, the forming box 702 will have elastic shaking. The left and right shaking of the forming box 702 will make the wood raw materials in the forming box 702 shake more evenly and flatly, improving the thickness uniformity of the wood raw material laying and effectively improving the quality of the flame-retardant board. During the rotation of the threaded rod 601, it drives the rotating rod 614 to rotate. The rotating rod 614 will contact the Z-shaped isosceles trapezoidal panel 615 during the rotation process. The Z-shaped isosceles trapezoidal panel 615 will move towards the driving motor 602 under the action of its inclined plane. The Z-shaped isosceles trapezoidal panel 615 drives the movable box 3 to move towards the driving motor 602. At this time, the compression spring 506 undergoes tensile deformation. When the rotating rod 614 leaves the Z-shaped isosceles trapezoidal panel 615, the movable box 3 will reset under the elastic action of the compression spring 506. During the continuous rotation of the rotating rod 614, the movable box 3 will continuously shake left and right, making the net-shaped fiber material in the movable box 3 evenly distributed in the movable box 3, facilitating the net-shaped fiber material to completely fall onto the wood raw materials when laying the net-shaped fiber material.

[0058] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific embodiments described. Obviously, many modifications and variations can be made according to the content of this specification. This specification selects and specifically describes these embodiments to better explain the principle and practical application of the present invention, so that those skilled in the relevant technical fields can understand and utilize the present invention well. The present invention is only limited by the claims and their full scope and equivalents.

Claims

1. A flame retardant artificial board manufacturing and processing equipment, comprising a profile frame (1), wherein a rectangular slide bar (2) is fixedly installed inside the profile frame (1), a movable box (3) is slidably sleeved on the rectangular slide bar (2), and a T-shaped cavity (4) is opened on the movable box (3), characterized in that: It further includes: A uniformity mechanism (5), the uniformity mechanism (5) includes a plurality of rectangular leakage grooves (501) opened on the inner wall of the bottom of the movable box (3), a rectangular groove (502) is opened in the movable box (3), and a plurality of uniform springs (503) are fixedly installed on the right inner wall of the rectangular groove (502). The left ends of the plurality of uniform springs (503) are fixedly installed with a grooved closing plate (504). The back surface of the grooved closing plate (504) extends outside the rectangular groove (502). The grooves on the grooved closing plate (504) are staggered with the plurality of rectangular leakage grooves (501). A compression spring (506) is sleeved on the rectangular sliding rod (2). The right end of the compression spring (506) is fixedly connected to the movable box (3), and the left end of the compression spring (506) is fixedly connected to the C-shaped frame (1).

2. The flame retardant artificial board manufacturing and processing equipment according to claim 1 is characterized in that: A discharge rack (507) is arranged in the C-shaped frame (1). A T-shaped round rod (508) is slidably installed on the discharge rack (507). The T-shaped round rod (508) penetrates through the discharge rack (507). A discharge spring (509) is sleeved on the T-shaped round rod (508). The right end of the discharge spring (509) is fixedly connected to the T-shaped round rod (508), and the left end of the discharge spring (509) is fixedly connected to the discharge rack (507).

3. The flame retardant artificial board manufacturing and processing equipment according to claim 2 is characterized in that: A driving mechanism (6) is arranged on the C-shaped frame (1). The driving mechanism (6) includes a threaded rod (601) rotatably installed on the C-shaped frame (1). The left end of the threaded rod (601) extends outside the C-shaped frame (1). A driving motor (602) is fixedly installed on the right side of the C-shaped frame (1). The output shaft of the driving motor (602) is fixedly connected to the threaded rod (601). An internally threaded block (603) is threadedly sleeved on the threaded rod (601). The top end of the internally threaded block (603) extends into the C-shaped frame (1) and is slidably connected to the C-shaped frame (1). The bottom of the internally threaded block (603) is fixedly installed with a C-shaped block (604). The bottom of the C-shaped block (604) is fixedly connected to the discharge rack (507).

4. The flame retardant artificial board manufacturing and processing equipment according to claim 3 is characterized by: Two storage grooves (605) are opened on the C-shaped block (604). Two rectangular installation grooves (606) are opened in the C-shaped block (604). One ends of two telescopic springs (607) are respectively fixedly installed on the sides of the two rectangular installation grooves (606) away from each other. One ends of the two telescopic springs (607) close to each other are respectively fixedly installed with trapezoidal closing blocks (608). Through grooves (609) are respectively opened on the bottom inner walls of the two storage grooves (605). The bottom ends of the two through grooves (609) respectively extend outside the C-shaped block (604). The bottom of the C-shaped block (604) is communicated with the discharge rack (507). Contact plates (610) are respectively fixedly installed on the backs of the two trapezoidal closing blocks (608).

5. The flame retardant artificial board manufacturing and processing equipment according to claim 4 is characterized in that: A U-shaped frame (1) has an L-shaped fixed plate (611) fixedly installed on its back. Two adaption springs (612) are sleeved on the threaded rod (601). One end of each of the two adaption springs (612) away from each other is fixedly connected to the U-shaped frame (1). One end of each of the two adaption springs (612) close to each other is fixedly installed with an adaption ring (613). Two rotating rods (614) are fixedly installed on the threaded rod (601). A Z-shaped isosceles trapezoidal panel (615) is slidably installed on the left side of the U-shaped frame (1). The left end of the Z-shaped isosceles trapezoidal panel (615) extends into the U-shaped frame (1), and the right end of the Z-shaped isosceles trapezoidal panel (615) is fixedly connected to the movable box (3).

6. The flame retardant artificial board manufacturing and processing equipment according to claim 5 is characterized in that: A shaking mechanism (7) is arranged in the U-shaped frame (1). The shaking mechanism (7) includes a rectangular limit frame (701) fixedly installed in the U-shaped frame (1). A forming box (702) is slidably installed in the rectangular limit frame (701). A shaking spring (703) is fixedly installed on the left inner wall of the U-shaped frame (1). The right end of the shaking spring (703) is fixedly connected to the forming box (702). An exhaust plate (704) is slidably installed in the forming box (702).

7. The flame retardant artificial board manufacturing and processing equipment according to claim 6 is characterized by: A connecting plate (705) is fixedly installed on the right side of the forming box (702). A U-shaped limit plate (706) is fixedly installed on the right inner wall of the U-shaped frame (1). An L-shaped trapezoidal panel (707) is slidably sleeved on the U-shaped limit plate (706). A transmission plate (708) is hingedly installed on the connecting plate (705). The top end of the transmission plate (708) is hinged to the L-shaped trapezoidal panel (707).

8. A method for using a flame retardant artificial board manufacturing and processing equipment, using the flame retardant artificial board manufacturing and processing equipment as claimed in claim 7, characterized in that: The method steps are as follows: S1: Place a quantitative amount of reticular fiber material; S2: Evenly distribute the wood raw materials; S3: Evenly shake the reticular fiber material; S4: Flexibly lay the wood raw materials and the reticular fiber material in layers.

Citation Information

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