Exterior Wall Composite Insulation Board Production Pressing Equipment

By designing a press-fit equipment for the production and compression of the exterior wall composite insulation board with moving parts and clamping parts, the problem of difficulty in removing the internal bubbles of the insulation board in traditional equipment is solved, and the uniformity of the insulation effect and processing efficiency are improved.

CN119458921BActive Publication Date: 2025-05-27ZHONGCHEN INT CONSTR ENG CO LTD +1
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Patent Information

Application Number
CN202510056348.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-14
Publication Date
2025-05-27
Estimated Expiration
2045-01-14

AI Technical Summary

Technical Problem

The traditional exterior wall composite insulation board production pressing equipment is difficult to completely remove internal bubbles during the pressing process, resulting in uneven insulation effect. At the same time, the insulation board takes several minutes to more than ten minutes to cool and solidify after pressing, affecting the subsequent processing efficiency.

Method used

A pressing device including moving parts and clamping parts is designed, and the movement of the arc-shaped heating plate and the scraping of liquid is achieved by driving the screw rod and the moving seat by a motor, and the tight clamping rod and clamping plate are used to achieve tight clamping and heating of the insulation plate to ensure that the sealant is fully filled and solidified.

Benefits of technology

The bubbles inside the insulation board are effectively removed, ensuring uniformity of the insulation effect, and the cooling and curing time of the insulation board is shortened by the design of the clamping parts, improving the efficiency of subsequent processing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of pressing equipment, and discloses a pressing equipment for the production of exterior wall composite insulation boards, including a moving component and a clamping component. An outer shell is fixedly assembled on the outer wall of the moving component, and a data display device is fixedly assembled on the outer wall of the outer shell. A sliding shaft is fixedly assembled on the top of the moving component, and a pressing component is slidably sleeved on the outer wall of the sliding shaft. A top control component is fixedly assembled on the top of the sliding shaft. The lead screw two drives the arc-shaped heating plate to move along the direction of the lead screw two through the moving seat, the telescopic outer shell and the fixed block, so that while the arc-shaped heating plate further heats the joint between the two groups of insulation boards, it also scrapes the liquid overflowing from the joint between the two groups of insulation boards. At the same time, the sealant is discharged by the coating pipe to fill the sealant at the joint between the two groups of insulation boards, so that the two groups of insulation boards are sealed by the sealant, thereby avoiding the problem of cracking of the two groups of insulation boards.
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Description

Technical Field

[0001] The present invention relates to the technical field of pressing equipment, specifically to the pressing equipment for the production of exterior wall composite insulation boards. Background Art

[0002] The insulation board is made of polystyrene resin as the raw material, and then other raw materials are added and mixed together and heated, and a catalyst is injected and extruded to form an exterior wall insulation board, which can be used as a material for building exterior wall insulation and is composed of multi-layer material pressing treatment during the production process.

[0003] Before the insulation board is pressed, the opposite surfaces between two groups of insulation boards are heated and melted by a heating device, and then side pressing is carried out between the two groups of insulation boards, and the bonding between the two groups of insulation boards is realized by using the melted flowing liquid between the two groups of insulation boards;

[0004] The insulation boards are pressed together by upper and lower side pressing. When the traditional pressing equipment presses the insulation boards, by keeping the upper and lower sides of the insulation boards in a balanced state and then driving the insulation boards to fit together, this method will cause bubbles to remain inside the insulation boards. During the pressing process, the parts with a relatively sparse material distribution may not be pressed tightly enough, so the insulation effect of the entire insulation board will be uneven. At the same time, after pressing the insulation boards, it takes several minutes to more than ten minutes for the pressed insulation boards to complete cooling and solidification. During this period, the pressed insulation boards need to be placed on the press, which affects the processing efficiency of the subsequent insulation boards. Summary of the Invention

[0005] The present invention provides a pressing equipment for the production of exterior wall composite insulation boards, which solves the problems raised in the above background art.

[0006] The present invention provides the following technical solution: A pressing equipment for the production of exterior wall composite insulation boards, including a moving component and a clamping component. The outer wall of the moving component is fixedly assembled with an outer housing, the outer wall of the outer housing is fixedly assembled with a data display device, the top of the moving component is fixedly assembled with a sliding shaft, the outer wall of the sliding shaft is slidably sleeved with a pressing component, and the top of the sliding shaft is fixedly assembled with a top control component;

[0007] The clamping component is arranged between the pressing component and the moving component.

[0008] As a preferred technical solution of the present invention: The moving component includes a bottom plate, the top of the bottom plate is fixedly assembled with a first slide rail and a second base, the inner wall of the second base is rotatably connected with a first lead screw, the top of the first slide rail is slidably sleeved with a slider, the top of the bottom plate is fixedly assembled with a detection grating and a first motor, the output shaft of the first motor is fixedly assembled with the first lead screw, the outer wall of the first lead screw is threadedly connected with a sliding seat, and the sliding seat is fixedly assembled with a support plate, and the support plate is fixedly assembled with the slider.

[0009] As a preferred technical solution of the present invention: a moving plate is slidably sleeved on the top of the support plate, a moving chute is opened at the bottom of the support plate, a moving rod is fixedly assembled at the bottom of the moving plate, a driving motor is fixedly assembled at the bottom of the support plate, turntables are fixedly assembled on both output shafts of the driving motor, a pull rod is rotatably connected to the outer wall of the turntable, and a placement groove is opened at the top of the moving plate;

[0010] The pull rod is rotatably connected to the middle shaft part of the moving rod, the moving rod is located at the inner wall of the moving chute, and the moving direction of the moving rod at the inner wall of the moving chute is the same as the moving direction of the moving plate and the support plate;

[0011] Fixing plates are fixedly assembled on both sides of the support plate, and telescopic rods are fixedly assembled on the outer walls of the fixing plates.

[0012] As a preferred technical solution of the present invention: the pressing component includes a lifting plate, a connecting plate is fixedly assembled on the top of the lifting plate, a hydraulic telescopic rod is fixedly assembled on the top of the connecting plate, a pressing plate is fixedly assembled at the bottom of the lifting plate, a groove body is opened at the bottom of the pressing plate, and sealing components are fixedly assembled around the top of the lifting plate;

[0013] The hydraulic telescopic rod is fixedly assembled with the top control component at the top, and the lifting plate is slidably sleeved with the sliding shaft.

[0014] As a preferred technical solution of the present invention: the sealing component includes a slide rail two and a mounting seat installed at the bottom of the lifting plate, a lead screw two is rotatably connected to the opposite surfaces of the two mounting seats, a moving seat is slidably sleeved on the outer wall of the slide rail two, a motor two fixedly assembled with the lifting plate is arranged at the end of the lead screw two, a telescopic seat is fixedly assembled on the top of the moving seat, a telescopic housing is slidably sleeved on the outer wall of the telescopic seat, a telescopic device is fixedly assembled on the outer wall of the telescopic seat, a fixing block is fixedly assembled on the top of the telescopic housing, a rotating frame is fixedly assembled on the side of the fixing block close to the pressing plate, a rotating plate one is rotatably connected to the inner wall of the rotating frame, an arc-shaped heating plate and a coating tube are respectively fixedly assembled on both sides of the end of the rotating plate one, and an electric telescopic rod is rotatably connected to the side of the fixing block close to the pressing plate.

[0015] As a preferred technical solution of the present invention: the telescopic end of the electric telescopic rod is rotatably connected to the rotating plate one, and the electric telescopic rod is located on the side away from the rotating frame, the lead screw two is threadedly connected with the moving seat, the output shaft of the motor two is fixedly assembled with the lead screw two, and the top telescopic end of the telescopic device is fixedly assembled with the telescopic housing.

[0016] As a preferred technical solution of the present invention: the top control component includes a top plate, and a pressure display, a power supply controller and a program controller are respectively fixedly assembled on the top of the top plate.

[0017] As a preferred technical solution of the present invention: the clamping component includes an upper clamping plate and a lower clamping plate. Clamping grooves one are formed at both ends of the upper clamping plate. Rotating plates two are rotatably connected to both ends of the lower clamping plate, and clamping grooves two adapted to the clamping grooves one are formed at the tops of the rotating plates two;

[0018] The lower clamping plate is located on the inner wall of the placement groove, and the upper clamping plate is located on the top of the heat preservation plate, and the lower clamping plate and the upper clamping plate are corresponding up and down.

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

[0020] 1. For this exterior wall composite heat preservation board production and pressing equipment, the motor two drives the lead screw two to rotate. Since the lead screw two is threadedly connected to the moving seat, the lead screw two drives the moving seat to move. And the top telescopic end of the telescopic device is fixedly assembled with the telescopic housing, and the telescopic housing is slidably sleeved with the telescopic seat, so that the telescopic device can drive the telescopic housing to move up and down. Furthermore, the telescopic housing drives the arc-shaped heating plate to move to the joint between the two heat preservation boards through the fixed block. And since the rotating plate one is rotatably connected to the rotating frame, the electric telescopic rod is used to push the rotating plate one, so that the rotating plate one rotates around the rotating frame as the axis, thereby driving the arc-shaped heating plate to contact the joint between the two heat preservation boards. The arc-shaped heating plate further heats the joint between the two heat preservation boards. At the same time, the lead screw two drives the arc-shaped heating plate to move along the direction of the lead screw two through the moving seat, the telescopic housing and the fixed block. While the arc-shaped heating plate further heats the joint between the two heat preservation boards, it scrapes off the liquid overflowing from the joint between the two heat preservation boards. At the same time, the sealing glue is discharged through the coating pipe to fill the sealing glue at the joint between the two heat preservation boards;

[0021] By filling the sealing glue at the joint between the two heat preservation boards, when the heat preservation boards are not pressed and the centers of the two heat preservation boards are deformed and cracked, the negative pressure formed in the inner cavity due to the deformation of the heat preservation boards can adsorb the sealing glue filled at the joint of the heat preservation boards between the two heat preservation boards. Furthermore, the two heat preservation boards are sealed through the sealing glue, thus avoiding the problem of cracking of the two heat preservation boards.

[0022] 2. The production and pressing equipment for the exterior wall composite insulation board. With the lower clamping plate and the upper clamping plate corresponding to each other vertically, when the pressing component presses the insulation board, the upper clamping plate is located on the inner wall of the trough. When the pressing is completed, the bottom of the pressing plate remains in contact with the top of the insulation board. At this time, the telescopic end of the telescopic rod rises, driving the second rotating plate to rotate towards the side of the first clamping groove around the axis of the second rotating plate and the lower clamping plate. Through the adaptation of the second clamping groove and the first clamping groove, the lower clamping plate and the upper clamping plate are clamped through the second clamping groove and the first clamping groove, so that the clamping component can clamp two groups of insulation boards. Furthermore, after the insulation board is separated from the pressing of the pressing component, the clamping component can still maintain the clamping and fixation of the pressing component, solving the problem that after pressing the insulation board, it takes several minutes to more than a dozen minutes for the pressed insulation board to complete cooling and curing. During this period, the pressed insulation board needs to be placed on the press, affecting the processing efficiency of the subsequent insulation boards. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 is a schematic three-dimensional structure diagram of the present invention;

[0024] Figure 2 is a schematic structure diagram of the sliding shaft of the present invention;

[0025] Figure 3 is a schematic structure diagram of the top control component of the present invention;

[0026] Figure 4 is a schematic structure diagram of the pressing component of the present invention;

[0027] Figure 5 is a schematic structure diagram of the moving component of the present invention;

[0028] Figure 6 is a schematic structure diagram of the placement groove of the present invention;

[0029] Figure 7 is a schematic structure diagram of the clamping component of the present invention;

[0030] Figure 8 is a schematic structure diagram of the trough body of the present invention;

[0031] Figure 9 is a schematic structure diagram of the arc heating plate of the present invention;

[0032] Figure 10 is a schematic structure diagram of the telescopic seat of the present invention;

[0033] Figure 11 is a schematic diagram of the position of the arc heating plate and the insulation board of the present invention.

[0034] In the figure: 1. Moving component; 2. Outer housing; 3. Data display device; 4. Sliding shaft; 5. Pressing component; 6. Top control component; 7. Clamping component;

[0035] 101. Bottom plate; 102. First slide rail; 103. Detection grating; 104. Second base; 105. First lead screw; 106. First motor; 107. Slide seat; 108. Slide block; 109. Support plate; 110. Moving chute; 111. Moving plate; 112. Moving rod; 113. Driving motor; 114. Turntable; 115. Pull rod; 116. Fixed plate; 117. Telescopic rod; 118. Placing groove

[0036] 501. Lifting plate; 502. Connecting plate; 503. Hydraulic telescopic rod; 504. Tank body; 505. Second slide rail; 506. Mounting seat; 507. Second lead screw; 508. Second motor; 509. Moving seat; 510. Telescopic seat; 511. Extender; 512. Telescopic housing; 513. Fixed block; 514. Rotating frame; 515. First rotating plate; 516. Electric telescopic rod; 517. Arc heating plate; 518. Coating pipe; 519. Pressure plate

[0037] 601. Top plate; 602. Pressure display; 603. Power controller; 604. Program controller

[0038] 701. Upper clamping plate; 702. First clamping groove; 703. Lower clamping plate; 704. Second rotating plate; 705. Second clamping groove Detailed implementation manners

[0039] 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

[0040] Please refer to Figures 1-11 , an external wall composite insulation board production pressing device, including a moving component 1 and a clamping component 7. An outer shell 2 is fixedly assembled on the outer wall of the moving component 1. A data display device 3 is fixedly assembled on the outer wall of the outer shell 2. A sliding shaft 4 is fixedly assembled on the top of the moving component 1. A pressing component 5 is slidably sleeved on the outer wall of the sliding shaft 4. A top control component 6 is fixedly assembled on the top of the sliding shaft 4

[0041] The clamping component 7 is arranged between the pressing component 5 and the moving component 1

[0042] In a preferred embodiment: The moving member 1 includes a bottom plate 101. A first slide rail 102 and a second base 104 are fixedly assembled on the top of the bottom plate 101. A first lead screw 105 is rotatably connected to the inner wall of the second base 104. A slider 108 is slidably sleeved on the top of the first slide rail 102. A detection grating 103 and a first motor 106 are fixedly assembled on the top of the bottom plate 101. The output shaft of the first motor 106 is fixedly assembled with the first lead screw 105. A slide seat 107 is threadedly connected to the outer wall of the first lead screw 105. The slide seat 107 is fixedly assembled with a support plate 109. The support plate 109 is fixedly assembled with the slider 108.

[0043] In the above structure, the first motor 106 drives the first lead screw 105. By using the threaded connection between the first lead screw 105 and the slide seat 107, and the sliding sleeve connection between the slider 108 and the first slide rail 102, the slide seat 107 drives the support plate 109 to move. After the insulating board is placed on the top of the support plate 109 through the sliding of the support plate 109, the insulating board can be moved to the bottom of the pressing member 5 by moving the support plate 109.

[0044] In a preferred embodiment: A moving plate 111 is slidably sleeved on the top of the support plate 109. A moving chute 110 is formed at the bottom of the support plate 109. A moving rod 112 is fixedly assembled at the bottom of the moving plate 111. A driving motor 113 is fixedly assembled at the bottom of the support plate 109. Rotary discs 114 are fixedly assembled on the output shafts on both sides of the driving motor 113. A pull rod 115 is rotatably connected to the outer wall of the rotary disc 114. A placement groove 118 is formed at the top of the moving plate 111;

[0045] The pull rod 115 is rotatably connected to the middle shaft portion of the moving rod 112. The moving rod 112 is located at the inner wall of the moving chute 110. The moving direction of the moving rod 112 located at the inner wall of the moving chute 110 is the same as the moving direction of the moving plate 111 and the support plate 109;

[0046] Fixed plates 116 are fixedly assembled on both sides of the support plate 109. Expansion rods 117 are fixedly assembled on the outer walls of the fixed plates 116.

[0047] In the above structure, by using the eccentric rotational connection between the pull rod 115 and the rotary disc 114, and the rotational connection between the other end of the pull rod 115 and the middle shaft portion of the moving rod 112, when the driving motor 113 drives the rotary disc 114, the rotary disc 114 drives the moving rod 112 to reciprocate at the inner wall of the moving chute 110 through the pull rod 115. And since the moving rod 112 is fixedly assembled with the moving plate 111, the moving rod 112 drives the moving plate 111 to reciprocate;

[0048] The stroke of the reciprocating movement between the moving plate 111 and the support plate 109 is changed by adjusting the distance between the pull rod 115 and the axis of the rotary disc 114;

[0049] The moving rod 112 drives the moving plate 111 to reciprocate. When a heat preservation plate is placed on the top of the moving plate 111, when the pressing component 5 moves downward to extrude the heat preservation plate, the moving rod 112 drives the moving plate 111 to reciprocate, so that the moving plate 111 drives a group of heat preservation plates attached to the moving plate 111 to move relative to another group of heat preservation plates close to the pressing component 5;

[0050] When the opposite surfaces of the two groups of heat preservation plates are in a liquid state after being heated and melted, and then the moving plate 111 is used to make the two groups of heat preservation plates move relatively, the melted liquid between the two groups of heat preservation plates can be made to flow faster, so that the liquid is accelerated to spread between the two groups of heat preservation plates, solving the problem that the liquid flow between the two groups of heat preservation plates is uneven, resulting in incomplete bonding of some parts of the two groups of heat preservation plates.

[0051] In a preferred embodiment: The pressing component 5 includes a lifting plate 501. A connecting plate 502 is fixedly assembled on the top of the lifting plate 501. A hydraulic telescopic rod 503 is fixedly assembled on the top of the connecting plate 502. A pressing plate 519 is fixedly assembled on the bottom of the lifting plate 501. A groove body 504 is opened on the bottom of the pressing plate 519. Sealing components are fixedly assembled around the top of the lifting plate 501;

[0052] The hydraulic telescopic rod 503 is fixedly assembled with the top of the top control component 6, and the lifting plate 501 is slidably sleeved with the sliding shaft 4.

[0053] In the above structure, the hydraulic telescopic rod 503 drives the connecting plate 502 to expand and contract, so that the hydraulic telescopic rod 503 drives the lifting plate 501 to move up and down through the connecting plate 502, and further enables the pressing plate 519 to perform the pressing operation on the heat preservation plate located on the top of the moving plate 111.

[0054] In a preferred embodiment: The sealing component includes a slide rail two 505 and a mounting seat 506 installed at the bottom of the lifting plate 501. A lead screw two 507 is rotatably connected to the opposite surfaces of the two groups of mounting seats 506. A moving seat 509 is slidably sleeved on the outer wall of the slide rail two 505. A motor two 508 fixedly assembled with the lifting plate 501 is arranged at the end of the lead screw two 507. A telescopic seat 510 is fixedly assembled on the top of the moving seat 509. A telescopic housing 512 is slidably sleeved on the outer wall of the telescopic seat 510. A telescopic device 511 is fixedly assembled on the outer wall of the telescopic seat 510. A fixed block 513 is fixedly assembled on the top of the telescopic housing 512. A rotating frame 514 is fixedly assembled on the side of the fixed block 513 close to the pressing plate 519. A rotating plate one 515 is rotatably connected to the inner wall of the rotating frame 514. Arc-shaped heating plates 517 and coating pipes 518 are respectively fixedly assembled on both sides of the end of the rotating plate one 515. An electric telescopic rod 516 is rotatably connected to the side of the fixed block 513 close to the pressing plate 519.

[0055] In a preferred embodiment: The telescopic end of the electric telescopic rod 516 is rotatably connected to the first rotating plate 515, and the electric telescopic rod 516 is located on the side away from the rotating frame 514. The second lead screw 507 is threadedly connected to the moving seat 509, the output shaft of the second motor 508 is fixedly assembled with the second lead screw 507, and the top telescopic end of the telescopic device 511 is fixedly assembled with the telescopic housing 512.

[0056] In the above structure, the second motor 508 drives the second lead screw 507 to rotate. By using the threaded connection between the second lead screw 507 and the moving seat 509, the second lead screw 507 drives the moving seat 509 to move. Since the top telescopic end of the telescopic device 511 is fixedly assembled with the telescopic housing 512, and the telescopic housing 512 is slidably sleeved with the telescopic seat 510, the telescopic device 511 can drive the telescopic housing 512 to move up and down. Thus, the telescopic housing 512 drives the arc-shaped heating plate 517 to move to the joint between the two insulating panels through the fixing block 513. Since the first rotating plate 515 is rotatably connected to the rotating frame 514, the electric telescopic rod 516 is used to push the first rotating plate 515, so that the first rotating plate 515 rotates around the rotating frame 514 as the axis. Thereby, the first rotating plate 515 drives the arc-shaped heating plate 517 to contact the joint between the two insulating panels. The arc-shaped heating plate 517 further heats the joint between the two insulating panels. At the same time, the second lead screw 507 drives the arc-shaped heating plate 517 to move along the direction of the second lead screw 507 through the moving seat 509, the telescopic housing 512, and the fixing block 513. While the arc-shaped heating plate 517 further heats the joint between the two insulating panels, it scrapes off the liquid overflowing from the joint between the two insulating panels. At the same time, the sealing glue is discharged through the coating tube 518 to fill the sealing glue at the joint between the two insulating panels;

[0057] By filling the sealing glue at the joint between the two insulating panels, when the insulating panels are not pressed and the center of the two insulating panels is deformed and cracked, the negative pressure formed in the inner cavity due to the deformation of the insulating panels can adsorb the sealing glue filled at the joint of the insulating panels between the two insulating panels. Thus, the two insulating panels are sealed by the sealing glue, thereby avoiding the problem of cracking of the two insulating panels.

[0058] In a preferred embodiment: The top control component 6 includes a top plate 601, and a pressure display 602, a power supply controller 603, and a program controller 604 are fixedly assembled on the top of the top plate 601 respectively.

[0059] In the above structure, the program controller 604 is used to control the operation of the device, the power supply controller 603 is used to control the power transmission of the device, and the pressure display 602 is used to display the pressure exerted by the hydraulic telescopic rod 503 driving the pressing plate 519 to press the insulating panel through the connecting plate 502.

[0060] In a preferred embodiment: The clamping member 7 includes an upper clamping plate 701 and a lower clamping plate 703. At both ends of the upper clamping plate 701, first clamping grooves 702 are provided. At both ends of the lower clamping plate 703, second rotating plates 704 are rotatably connected. At the top of the second rotating plate 704, second clamping grooves 705 adapted to the first clamping grooves 702 are provided.

[0061] The lower clamping plate 703 is located on the inner wall of the placement groove 118, and the upper clamping plate 701 is located on the top of the heat preservation plate, and the lower clamping plate 703 and the upper clamping plate 701 are vertically corresponding.

[0062] In the above structure, through the vertical correspondence of the lower clamping plate 703 and the upper clamping plate 701, when the pressing member 5 presses the heat preservation plate, the upper clamping plate 701 is located on the inner wall of the groove body 504. When the pressing is completed, the bottom of the pressing plate 519 remains in contact with the top of the heat preservation plate. At this time, the telescopic end of the telescopic rod 117 rises to drive the second rotating plate 704 to rotate toward the first clamping groove 702 side around the axis of the second rotating plate 704 and the lower clamping plate 703. Through the adaptation of the second clamping groove 705 and the first clamping groove 702, the lower clamping plate 703 and the upper clamping plate 701 are clamped through the second clamping groove 705 and the first clamping groove 702, so that the clamping member 7 realizes the clamping of two groups of heat preservation plates. Furthermore, after the heat preservation plate is separated from the pressing of the pressing member 5, the clamping member 7 can still maintain the clamping and fixing of the pressing member 5.

[0063] Working principle: The hydraulic telescopic rod 503 drives the connecting plate 502 to expand and contract, so that the hydraulic telescopic rod 503 drives the lifting plate 501 to move up and down through the connecting plate 502, and further enables the pressing plate 519 to perform the pressing operation on the heat preservation plate located on the top of the moving plate 111.

[0064] The pull rod 115 is eccentrically rotatably connected to the turntable 114, and the other end of the pull rod 115 is rotatably connected to the middle shaft part of the moving rod 112. When the driving motor 113 drives the turntable 114, the turntable 114 drives the moving rod 112 to reciprocate inside the moving chute 110 through the pull rod 115. And through the fixed assembly of the moving rod 112 and the moving plate 111, the moving rod 112 drives the moving plate 111 to reciprocate.

[0065] By driving the moving plate 111 to reciprocate through the moving rod 112, relative movement is realized between the moving plate 111 and a group of heat preservation plates attached to the moving plate 111 and another group of heat preservation plates close to the pressing member 5, which can accelerate the flow of the liquid melted between the two groups of heat preservation plates, so that the liquid is accelerated and spread evenly between the two groups of heat preservation plates, solving the problem that the liquid flow between the two groups of heat preservation plates is uneven, resulting in incomplete bonding of some parts of the two groups of heat preservation plates.

[0066] The second motor 508 drives the second lead screw 507 to rotate. Since the second lead screw 507 is threadedly connected to the moving seat 509, the second lead screw 507 drives the moving seat 509 to move. The top telescopic end of the telescopic device 511 is fixedly assembled with the telescopic housing 512, and the telescopic housing 512 is slidably sleeved with the telescopic seat 510, enabling the telescopic device 511 to drive the telescopic housing 512 to move up and down. Thus, the telescopic housing 512 drives the arc-shaped heating plate 517 to move to the joint between the two heat preservation plates through the fixing block 513. The first rotating plate 515 is rotationally connected to the rotating frame 514. The electric telescopic rod 516 is used to push the first rotating plate 515, causing the first rotating plate 515 to rotate around the rotating frame 514 as the axis. Consequently, the first rotating plate 515 drives the arc-shaped heating plate 517 to contact the joint between the two heat preservation plates. The arc-shaped heating plate 517 further heats the joint between the two heat preservation plates. Meanwhile, the second lead screw 507 drives the arc-shaped heating plate 517 to move along the direction of the second lead screw 507 through the moving seat 509, the telescopic housing 512, and the fixing block 513. While the arc-shaped heating plate 517 further heats the joint between the two heat preservation plates, it also scrapes off the liquid overflowing from the joint between the two heat preservation plates. At the same time, the sealing glue is filled into the joint between the two heat preservation plates by using the coating pipe 518;

[0067] When the lower clamping plate 703 and the upper clamping plate 701 are corresponding up and down, when the pressing component 5 presses the heat preservation plates, the upper clamping plate 701 is located on the inner wall of the groove body 504. When the pressing is completed, the bottom of the pressing plate 519 remains in contact with the top of the heat preservation plate. At this time, the telescopic end of the telescopic rod 117 rises, driving the second rotating plate 704 to rotate towards the first clamping groove 702 side around the axis of the second rotating plate 704 and the lower clamping plate 703. Since the second clamping groove 705 is adapted to the first clamping groove 702, the lower clamping plate 703 and the upper clamping plate 701 are clamped through the second clamping groove 705 and the first clamping groove 702. Thus, the clamping component 7 clamps the two heat preservation plates. Furthermore, after the heat preservation plates are separated from the pressing of the pressing component 5, the clamping component 7 can still maintain the clamping and fixing of the pressing component 5, solving the problem that after pressing the heat preservation plates, it takes several minutes to more than ten minutes for the pressed heat preservation plates to complete cooling and solidification. During this period, the pressed heat preservation plates need to be placed on the press, affecting the processing efficiency of the subsequent heat preservation plates.

[0068] It should be noted that in this text, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variation thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device.

[0069] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An equipment for producing and pressing composite insulation boards for exterior walls, comprising a moving part (1) and a clamping part (7), characterized in that: The outer wall of the moving component (1) is fixedly mounted with an outer shell (2), the outer wall of the outer shell (2) is fixedly mounted with a data display device (3), the top of the moving component (1) is fixedly mounted with a sliding shaft (4), the outer wall of the sliding shaft (4) is slidably sleeved with a pressing component (5), and the top of the sliding shaft (4) is fixedly mounted with a top control component (6); The clamping component (7) is arranged between the pressing component (5) and the moving component (1); The moving component (1) comprises a bottom plate (101), the top of the bottom plate (101) is fixedly equipped with a slide rail 1 (102) and a base 2 (104), the inner wall of the base 2 (104) is rotatably connected with a screw rod 1 (105), the top of the slide rail 1 (102) is slidably sleeved with a slider (108), the top of the bottom plate (101) is fixedly equipped with a detection grating (103) and a motor 1 (106), the output shaft of the motor 1 (106) and the screw rod 1 (105) are fixedly assembled, the outer wall of the screw rod 1 (105) is threadedly connected with a slide seat (107), the slide seat (107) is fixedly equipped with a support plate (109), and the support plate (109) and the slider (108) are fixedly assembled; The pressing component (5) comprises a sealing component; The sealing component comprises a second slide rail (505) and a mounting seat (506) mounted on the bottom of the lifting plate (501); the opposing surfaces of the two groups of mounting seats (506) are rotatably connected with a second screw rod (507); the outer wall of the second slide rail (505) is slidably sleeved with a moving seat (509); the end of the second screw rod (507) is provided with a second motor (508) fixedly assembled with the lifting plate (501); the top of the moving seat (509) is fixedly assembled with a telescopic seat (510); the outer wall of the telescopic seat (510) is slidably sleeved with a telescopic shell (512); The outer wall of the telescopic seat (510) is fixedly equipped with a telescope (511), the top of the telescopic shell (512) is fixedly equipped with a fixed block (513), the fixed block (513) is fixedly equipped with a rotating frame (514) on the side close to the pressure plate (519), the inner wall of the rotating frame (514) is rotatably connected to a rotating plate 1 (515), the ends of the rotating plate 1 (515) are respectively fixedly equipped with an arc heating plate (517) and a coating tube (518), and the fixed block (513) is rotatably connected to an electric lifting and retracting rod (516) on the side close to the pressure plate (519).

2. The production and pressing equipment for exterior wall composite thermal insulation board according to claim 1 is characterized in that: The top of the support plate (109) is slidably sleeved with a movable plate (111), the bottom of the support plate (109) is provided with a movable slide groove (110), the bottom of the movable plate (111) is fixedly equipped with a movable rod (112), the bottom of the support plate (109) is fixedly equipped with a driving motor (113), the output shafts on both sides of the driving motor (113) are fixedly equipped with rotating disks (114), the outer wall of the rotating disk (114) is rotatably connected with a pull rod (115), and the top of the movable plate (111) is provided with a placement groove (118); The pull rod (115) is rotatably connected to the middle shaft of the moving rod (112); the moving rod (112) is located at the inner wall of the moving slide groove (110); the moving direction of the moving rod (112) located at the inner wall of the moving slide groove (110) is consistent with the moving direction of the moving plate (111) and the supporting plate (109); Fixed plates (116) are fixedly mounted on both sides of the support plate (109), and telescopic rods (117) are fixedly mounted on the outer walls of the fixed plates (116).

3. The production and pressing equipment for exterior wall composite thermal insulation board according to claim 1 is characterized in that: The pressing component (5) comprises a lifting plate (501), a connecting plate (502) is fixedly mounted on the top of the lifting plate (501), a hydraulic lifting and retracting rod (503) is fixedly mounted on the top of the connecting plate (502), a pressing plate (519) is fixedly mounted on the bottom of the lifting plate (501), a groove (504) is provided at the bottom of the pressing plate (519), and sealing components are fixedly mounted on all four sides of the top of the lifting plate (501); The hydraulic lifting and retracting rod (503) and the top of the top control component (6) are fixedly assembled, and the lifting plate (501) and the sliding shaft (4) are slidably sleeved.

4. The production and pressing equipment for composite insulation boards for exterior walls according to claim 3 is characterized in that: The telescopic end of the electric telescopic rod (516) is rotatably connected to the rotating plate 1 (515), and the electric telescopic rod (516) is located on the side away from the rotating frame (514), the second screw rod (507) is threadedly connected to the movable seat (509), the output shaft of the second motor (508) and the second screw rod (507) are fixedly assembled, and the top telescopic end of the telescope (511) and the telescopic shell (512) are fixedly assembled.

5. The production and pressing equipment for exterior wall composite thermal insulation board according to claim 1 is characterized in that: The top control component (6) comprises a top plate (601), and a pressure display (602), a power controller (603) and a program controller (604) are respectively fixedly mounted on the top of the top plate (601).

6. The production and pressing equipment for exterior wall composite thermal insulation board according to claim 1 is characterized in that: The clamping component (7) comprises an upper clamping plate (701) and a lower clamping plate (703), both ends of the upper clamping plate (701) are provided with a first clamping groove (702), both ends of the lower clamping plate (703) are rotatably connected to a second rotating plate (704), and the top of the second rotating plate (704) is provided with a second clamping groove (705) adapted to the first clamping groove (702); The lower clamping plate (703) is located on the inner wall of the placement groove (118), and the upper clamping plate (701) is located on the top of the insulation plate, and the lower clamping plate (703) and the upper clamping plate (701) correspond to each other up and down.

Citation Information

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