A water film cooling and shaping device for stone plastic box boards
Through the water film cooling and shaping device of the stone plastic box plate, dynamic water film distribution is formed using ultrasonic atomizer and air knife, which solves the problem of inefficiency of traditional cooling methods, and achieves rapid and uniform cooling and high-quality molding of the stone plastic box plate.
Patent Information
- Application Number
- CN202411162754.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-23
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2044-08-23
AI Technical Summary
The traditional stone plastic box plate cooling method is inefficient, resulting in uneven surface temperature of the board and affecting product quality.
The stone plastic box board water film cooling and setting device is used. The device generates water film through an ultrasonic atomizer, and uses the synergy of the air knife, sliding scraper and fixed scraper to form a dynamic water film distribution to achieve continuous heat exchange.
The device accelerates the cooling process through dynamic water film distribution, ensuring uniform distribution of water film, avoiding local drying or water accumulation, improving molding quality, and preventing the sheet from deforming due to uneven cooling.
Smart Images

Figure CN119078060B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of plastic material cooling and forming, and particularly relates to a water film cooling and shaping device for stone plastic box boards. Background Art
[0002] Stone plastic box boards are box board materials processed by mixing plastics with marble powder or other stone powders and going through complex processes such as high temperature, extrusion, and cooling. They not only retain the processing convenience and toughness of plastics but also incorporate the texture and stability of stones, having an appearance and certain physical properties similar to stones. They are often used to replace traditional cardboard boxes, especially in the packaging of seafood or frozen and refrigerated foods, where they can better resist humid environments and keep the freshness of the contents.
[0003] During the production process of stone plastic box boards, in order to ensure the flatness and quality of the boards, it is necessary to cool the hot-formed boards. Traditional cooling methods usually rely on natural heat dissipation or simple blowing cooling. Such methods are not only inefficient but also easily cause uneven surface temperature of the boards, affecting product quality.
[0004] Based on the above situation, the present invention proposes a water film cooling and shaping device for stone plastic box boards. Summary of the Invention
[0005] In order to overcome the defect that uneven surface temperature leads to a decrease in the surface quality of the formed product, the present invention provides a water film cooling and shaping device for stone plastic box boards.
[0006] A water film cooling and shaping device for stone plastic box boards includes an ultrasonic atomizer. The ultrasonic atomizer is fixedly connected to a shaping frame. The ultrasonic atomizer is fixedly connected to a high-pressure blower. The high-pressure blower is communicated with an air duct. The shaping frame is rotatably connected with a plurality of air knives. The shaping frame is fixedly connected with guiding frames symmetrically distributed along the shaping frame. The shaping frame is horizontally slidably connected with a drying frame. The drying frame is fixedly connected with sliding plates symmetrically distributed along the shaping frame. The sliding plates are slidably connected with the adjacent guiding frames. Rotating copper pipes are rotatably connected between the opposite sliding plates at equal intervals. The shaping frame is fixedly connected with electric slide rails symmetrically distributed along the shaping frame. Sliders are slidably connected in the electric slide rails. The sliders are fixedly connected with the drying frame and are used to drive the drying frame to move horizontally. A sliding scraper is slidably connected to the drying frame. The drying frame is fixedly connected with a fixed scraper. Both the fixed scraper and the sliding scraper are arranged as triangular pyramids.
[0007] Optionally, it further includes a number of rotating blocks equal to the number of the air knives. The rotating blocks are fixedly connected to the corresponding air knives. A sliding frame is horizontally slidably connected to one side of the shaping frame close to the rotating blocks. The sliding frame is movably connected with the rotating blocks. The drying frame can come into contact with the sliding frame when it moves.
[0008] Optionally, it further includes a plurality of magnetic blocks, half of the number of the magnetic blocks are fixedly connected to the sliding frame, and the other half of the number of the magnetic blocks are fixedly connected to the shaping frame. The magnetic blocks on the sliding frame are magnetically coupled with the adjacent magnetic blocks on the shaping frame.
[0009] Optionally, it further includes rotating plates symmetrically distributed along the air drying frame. The rotating plates are rotatably connected to the air drying frame. A torsion spring is fixedly connected between the rotating plates and the air drying frame. The rotating plates are fixedly connected with pulling frames symmetrically distributed along the rotating plates. The air drying frame is slidably connected with extrusion blocks symmetrically distributed along the air drying frame. The pulling frames are in extrusion cooperation with the adjacent extrusion blocks.
[0010] Optionally, it further includes pushing frames symmetrically distributed along the shaping frame. The pushing frames are fixedly connected to the shaping frame. The extrusion blocks move into contact with the pushing frames.
[0011] Optionally, the extrusion blocks are arranged in a V shape.
[0012] Optionally, it further includes a sliding frame. The sliding frame is slidably connected to one side of the shaping frame. The bottom of the sliding frame is curved. One side of the sliding frame is in contact with the sliding scraper. The sliding scraper is fixedly connected with electromagnetic frames symmetrically distributed along the sliding scraper. The sliding scraper is slidably connected with clamping frames symmetrically distributed along the sliding scraper for fixing the sliding scraper on the shaping frame. A magnetic strip is fixedly connected to one side of the clamping frame close to the electromagnetic frame. The magnetic strip is magnetically coupled with the adjacent electromagnetic frame.
[0013] Optionally, the electromagnetic frame pushes the magnetic strip through repulsive magnetic force.
[0014] Optionally, it further includes springs symmetrically distributed along the magnetic strip. The two ends of the springs are respectively fixedly connected to the clamping frame and the sliding scraper.
[0015] Optionally, the air drying frame is provided with card slots symmetrically distributed along the air drying frame. The card slots are in limit cooperation with the adjacent clamping frames.
[0016] The beneficial effects of the present invention are as follows: Through the combined action of the air knife spraying water to form a water film and the sliding scraper and the fixed scraper scraping the water film, a dynamic water film distribution is formed, which helps to continuously exchange heat, thereby accelerating the cooling process. It can also ensure that the water film is evenly distributed on the surface of the stone plastic box board, avoiding local drying or water accumulation, being beneficial to the overall temperature balance, preventing the stone plastic box board from deforming due to uneven cooling, and improving the forming quality.
[0017] The copper tube of the present invention not only plays a boosting role when pushing the stone plastic box board, but also contacts with the lower surface of the stone plastic box board when moving back and forth with the air-drying rack, thereby conducting heat and cooling the stone plastic box board, thereby further enhancing the effect of cooling and shaping the stone plastic box board.
[0018] The sliding scraper and the fixed scraper of the present invention can not only scrape off the heat-absorbing water film when moving forward and backward, but also smooth the surface of the stone plastic box board to enhance the shaping effect.
[0019] The present invention automatically realizes intermittent reversing of the wind knife through the cooperation of the air drying rack and the sliding frame, so that the blowing surface of the wind knife can cover the surface of the stone plastic box board more evenly, avoiding the wind knife being fixed downward and causing certain areas to cool down too quickly or too slowly, ensuring overall cooling uniformity, and at the same time reducing internal stress concentration and reducing the risk of deformation and cracking of the stone plastic box board.
[0020] The present invention cooperates with the pushing frames on the front and rear sides through the extrusion block, so that when the air-drying frame drives the sliding scraper and the fixed scraper to change from one side to the other side to scrape off the water film, the baffle on one side automatically switches to the closed mode and the baffle on the other side automatically switches to the open mode, thereby avoiding the problem of absorbing the water film that has just been scraped and sprayed as much as possible.
[0021] The present invention cooperates with the stone plastic box plate and a slide frame with a spherical bottom, and can automatically adjust the distance between the sliding scraper and the fixed scraper according to the stone plastic box plate, so that the sliding scraper and the fixed scraper can adapt to close to stone plastic box plates of various thicknesses, thereby improving the film scraping effect.
[0022] The present invention fixes the sliding scraper on the air-drying rack by limiting the position of the clamping frame through the clamping groove, thereby preventing the sliding scraper from shaking up and down at will when scraping off the water film. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention.
[0024] Figure 2 It is a three-dimensional structural schematic diagram of components such as the ultrasonic atomizer and the high-pressure blower of the present invention.
[0025] Figure 3 It is a schematic diagram of the three-dimensional structure of the guide frame, slide plate, copper tube and other components of the present invention.
[0026] Figure 4 It is a schematic diagram of the structure of the electric slide rail, slider, air-drying rack and other components of the present invention.
[0027] Figure 5 It is a three-dimensional structural schematic diagram of the air-drying rack, the sliding scraper, the fixed scraper and other components of the present invention.
[0028] Figure 6 It is a schematic diagram of the three-dimensional structure of the sliding scraper and the fixed scraper of the present invention.
[0029] Figure 7 This is a sectional view of the three-dimensional structure of the air-drying rack, sliding scraper and fixed scraper of the present invention.
[0030] Figure 8 This is a schematic diagram of the three-dimensional structure of components such as the rotating block, sliding frame and magnetic block of the present invention.
[0031] Figure 9 This is a schematic diagram of the three-dimensional structure of components such as the rotating plate, torsion spring and pulling frame of the present invention.
[0032] Figure 10 This is a schematic diagram of the three-dimensional structure of components such as the torsion spring, pulling frame and extrusion block of the present invention.
[0033] Figure 11 This is a schematic diagram of the three-dimensional structure of components such as the air-drying rack, sliding scraper and sliding frame of the present invention.
[0034] Figure 12 This is a schematic diagram of the three-dimensional structure of components such as the electromagnetic frame, magnetic strip and clamping frame of the present invention.
[0035] Figure 13 This is a schematic diagram of the three-dimensional structure of components such as the magnetic strip, clamping frame and spring of the present invention.
[0036] Explanation of reference numerals: 1_ultrasonic atomizer, 2_shaping frame, 3_high-pressure blower, 4_air duct, 5_air knife, 6_guide frame, 7_sliding plate, 8_copper pipe, 9_electric slide rail, 10_slider, 11_air-drying rack, 12_sliding scraper, 13_fixed scraper, 14_rotating block, 15_sliding frame, 16_magnetic block, 17_pushing frame, 18_rotating plate, 19_torsion spring, 20_pulling frame, 21_extrusion block, 22_sliding frame, 23_electromagnetic frame, 24_magnetic strip, 25_clamping frame, 26_spring, 27_card slot. Detailed implementation manners
[0037] The following is only a preferred embodiment of the present invention, and does not limit the protection scope of the present invention accordingly.
[0038] Embodiment 1: A water film cooling and shaping device for stone plastic box boards, in combination with the attached Figure 1 to the attached Figure 7, including an ultrasonic atomizer 1, a shaping frame 2 is fixedly connected to the top of the ultrasonic atomizer 1, the right side of the shaping frame 2 is supported on the ground, a high-pressure fan 3 is fixedly connected to the front side of the top of the ultrasonic atomizer 1, the high-pressure fan 3 is connected to the air duct 4, the tiny water droplets generated by the ultrasonic atomizer 1 are guided to the wind knife 5 by the high-pressure fan 3 through the air duct 4, the upper part of the shaping frame 2 is connected to three equally spaced wind knives 5 rotating from front to back, the upper part of the shaping frame 2 is fixedly connected to a guide frame 6 symmetrically distributed along the left and right sides of the shaping frame 2, the shaping frame 2 is slidably connected to an air drying frame 11 along the front and rear directions, and the front and rear sides of the air drying frame 11 are fixedly connected to the left and right sides of the shaping frame 2. The sliding plates 7 are symmetrically distributed, and the sliding plates 7 are slidably connected to the adjacent guide frames 6. The left and right opposite sliding plates 7 are rotatably connected with copper tubes 8 distributed at equal intervals from front to back, and the copper tubes 8 are in contact with the bottom of the stone plastic box board. The upper part of the shaping frame 2 is fixedly connected to the electric slide rails 9 symmetrically distributed along the left and right shaping frame 2. The electric slide rails 9 are slidably connected with sliders 10. The bottom of the slider 10 is fixedly connected to the air-drying frame 11 for driving the air-drying frame 11 to move in the front and rear directions. The upper part of the air-drying frame 11 is slidably connected with a sliding scraper 12 in the up and down directions, and the lower part of the air-drying frame 11 is fixedly connected with a fixed scraper 13. The fixed scraper 13 and the sliding scraper 12 are both set as triangular pyramids.
[0039] First, connect the pipe opening of the air drying rack 11 with the hose of the external vacuum heat absorption system, then put the stone plastic box board to be cooled and shaped between the copper tubes 8 on the rear side, and push the stone plastic box board from the back to the front, so that the stone plastic box board moves along the copper tube 8 rolling on the rear side, and passes between the sliding scraper 12 and the fixed scraper 13 until the front end of the stone plastic box board is pushed onto the copper tube 8 on the front side, then stop pushing the stone plastic box board, and start turning on the ultrasonic atomizer 1, the high-pressure fan 3 and the electric slide rail 9;
[0040] After starting up, the tiny water droplets generated by the ultrasonic atomizer 1 are guided to the wind knife 5 by the high-pressure fan 3 through the air duct 4, and then blown evenly to the surface of the stone plastic box board by the wind knife 5, forming a layer of fine water film. This layer of water film quickly takes away a large amount of heat from the surface of the stone plastic box board through the latent heat of evaporation, realizing rapid and uniform cooling, which is conducive to the rapid molding of the stone plastic box board;
[0041] The electric slide rail 9 drives the slider 10 to slide back and forth, thereby driving the air-drying rack 11 to move back and forth. The air-drying rack 11 drives the slide plate 7, the copper tube 8, the sliding scraper 12 and the fixed scraper 13 to move back and forth synchronously. In this way, the moving sliding scraper 12 and the fixed scraper 13 scrape the upper and lower surfaces of the stone plastic box board to the upper surface of the sliding scraper 12 and the lower surface of the fixed scraper 13 respectively. The vacuum heat absorption system acts on the scraped water film through the air-drying rack 11, and absorbs it together with the heat, thereby achieving a continuous cooling effect.
[0042] After the stone plastic box board completes the cooling and shaping of this part, continue to push the stone plastic box board forward to move the next part to the cooling and shaping area, and repeat this process until the cooling and shaping of the entire stone plastic box board is completed, and then the machine can be turned off.
[0043] In summary, the present invention forms a dynamic water film distribution through the synergistic effect of spraying water by the wind knife 5 and scraping off the water film by the sliding scraper 12 and the fixed scraper 13, which helps to continuously exchange heat, thereby accelerating the cooling process. It can also ensure that the water film is evenly distributed on the surface of the stone plastic box board to avoid local drying or water accumulation, which is beneficial to the overall temperature balance and prevents the stone plastic box board from being deformed due to uneven cooling.
[0044] In the above process, the copper tube 8 not only plays a boosting role in pushing the stone plastic box board, but also contacts with the lower surface of the stone plastic box board when moving back and forth with the air-drying rack 11, thereby conducting heat and cooling the stone plastic box board, further enhancing the effect of cooling and shaping the stone plastic box board. In addition, the sliding scraper 12 and the fixed scraper 13 can not only scrape off the heat-absorbing water film when moving back and forth, but also smooth the surface of the stone plastic box board to enhance the shaping effect.
[0045] Embodiment 2: Based on embodiment 1, Figure 1 and attached Figure 8 , and also includes three rotating blocks 14, which are fixedly connected to the right side of the corresponding wind knife 5, and a sliding frame 15 is slidably connected to the side of the shaping frame 2 close to the rotating block 14 along the front and rear direction, and the sliding frame 15 is movably connected to the rotating block 14, and the air-drying rack 11 can move forward and backward to contact the sliding frame 15, and the front and rear parts of the right side of the shaping frame 2 are fixedly connected with magnetic blocks 16 symmetrically distributed up and down, and the front and rear sides of the sliding frame 15 are fixedly connected with magnetic blocks 16 symmetrically distributed up and down, and the magnetic blocks 16 on the sliding frame 15 are magnetically matched with the adjacent magnetic blocks 16 on the shaping frame 2.
[0046] When the air drying rack 11 moves forward to contact the front side of the sliding frame 15, the air drying rack 11 pushes the sliding frame 15 to slide forward, thereby toggling the wind knife 5 to deflect backward through the rotating block 14, so that the outlet of the wind knife 5 faces the rear side. At this time, the adjacent magnetic blocks 16 on the front side are magnetically attracted to each other to fix the sliding frame 15, thereby fixing the wind knife 5 that has completed the reversal;
[0047] When the air-drying rack 11 moves backward until it contacts the rear side of the sliding frame 15, the air-drying rack 11 pushes the sliding frame 15 to slide backward, so that the magnetic blocks 16 that are attracted are separated from each other. At the same time, the sliding frame 15 moves the wind knife 5 forward through the rotating block 14, so that the outlet of the wind knife 5 faces the front side. At this time, the adjacent magnetic blocks 16 on the rear side are attracted to each other, and the sliding frame 15 is fixed again, thereby fixing the wind knife 5 that has completed the reversal.
[0048] In this way, intermittent reversing of the wind knife 5 is achieved, so that the blowing surface of the wind knife 5 can cover the surface of the stone plastic box board more evenly, avoiding the wind knife 5 being fixed downward, causing some areas to cool too fast or too slow, ensuring overall cooling uniformity, while reducing internal stress concentration and reducing the risk of deformation and cracking of the stone plastic box board.
[0049] Combined with Figure 9 To Attachment Figure 10 , and also includes a pushing rack 17 symmetrically distributed along the front and back of the shaping rack 2. There are four pushing racks 17, which are fixedly connected to the upper and lower parts on the front and back sides of the shaping rack 2 respectively. The upper and lower sides of the air-drying rack 11 are rotatably connected with a rotating plate 18 symmetrically distributed along the front and back of the air-drying rack 11. A torsion spring 19 is fixedly connected between the rotating plate 18 and the air-drying rack 11. A pulling rack 20 symmetrically distributed along the left and right of the rotating plate 18 is fixedly connected in the middle of the rotating plate 18. The upper and lower sides of the air-drying rack 11 are slidably connected with extrusion blocks 21 symmetrically distributed along the left and right of the air-drying rack 11. The extrusion blocks 21 are set in a V-shape. The pulling rack 20 is extruded and matched with the adjacent extrusion blocks 21, and the extrusion blocks 21 move to contact the pushing rack 17.
[0050] In order to prevent the sliding scraper 12 and the fixed scraper 13 from absorbing the water film that has just been scraped and sprayed on the other side when moving toward one side to scrape off the water film that has absorbed heat, the air drying rack 11 needs to be shielded to a certain extent by a baffle, and the specific operation is as follows:
[0051] Initially, the air-drying rack 11 is in the middle position, and the rotating plate 18 is in an inclined state. Before preparing to scrape the film, the air-drying rack 11 is first controlled to move to the front side, and the air-drying rack 11 drives the rotating plate 18, the torsion spring 19, the pulling frame 20 and the squeezing block 21 thereon to move forward together, so that the front side of the squeezing block 21 contacts the front pushing frame 17, and the squeezing block 21 is squeezed by the front pushing frame 17, and moves backward, thereby squeezing the front pulling frame 20 to swing upward, and then drives the rotating plate 18 on the front side to swing downward, and the torsion spring 19 on the front side is deformed. In this way, when the air-drying rack 11 drives the sliding scraper 12 and the fixed scraper 13 to scrape the water film from front to back, the water film on the rear side of the air-drying rack 11 is mainly dried, and due to the shielding effect of the front rotating plate 18, the water film that has just been scraped and sprayed on the front side of the air-drying rack 11 can be avoided as much as possible.
[0052] Similarly, when the air drying rack 11 drives the rotating plate 18, torsion spring 19, pulling rack 20 and extrusion block 21 thereon to move backward together, the rear side of the extrusion block 21 will contact the rear pushing rack 17. Under the extrusion of the rear pushing rack 17, the extrusion block 21 moves forward, thereby squeezing the rear pulling rack 20 to swing upward, causing the rear rotating plate 18 to swing downward. At this time, the extrusion block 21 no longer squeezes the front pulling rack 20, and the front rotating plate 18 swings upward under the reset action of the front torsion spring 19. In this way, when the air drying rack 11 drives the sliding scraper 12 and the fixed scraper 13 to scrape the water film from back to front, the water film on the front side of the air drying rack 11 is mainly air-dried. Due to the blocking effect of the rear rotating plate 18, it is possible to avoid sucking dry the water film that has just been scraped and sprayed on the rear side of the air drying rack 11 as much as possible;
[0053] In summary, through the cooperative action of the extrusion block 21 and the front and rear pushing racks 17, when the air drying rack 11 drives the sliding scraper 12 and the fixed scraper 13 to scrape the water film from one side to the other side, the baffle on one side automatically switches to the closed mode, and the baffle on the other side automatically switches to the open mode, thereby avoiding the problem of sucking dry the water film that has just been scraped and sprayed as much as possible.
[0054] Embodiment 3: On the basis of Embodiment 2, in combination with Attached Figure 11 to Attached Figure 13 , it further includes a sliding rack 22. The sliding rack 22 is slidably connected to the rear side of the shaping rack 2. The bottom of the sliding rack 22 is set as a curved surface. The front side of the sliding rack 22 contacts the sliding scraper 12. When the sliding rack 22 slides upward, it can lift the sliding scraper 12 upward. The upper part of the sliding scraper 12 is fixedly connected with electromagnetic racks 23 symmetrically distributed along the left and right of the sliding scraper 12. The lower part of the sliding scraper 12 is slidably connected with clamping racks 25 symmetrically distributed along the left and right of the sliding scraper 12 for fixing the sliding scraper 12 on the shaping rack 2. One side of the clamping rack 25 close to the electromagnetic rack 23 is fixedly connected with a magnetic strip 24. The magnetic strip 24 cooperates with the adjacent electromagnetic rack 23 through repulsive magnetic force. Springs 26 symmetrically distributed along the front and rear of the magnetic strip 24 are fixedly connected between the clamping rack 25 and the sliding scraper 12. The air drying rack 11 is provided with card slots 27 symmetrically distributed along the left and right of the air drying rack 11. The card slots 27 are in limit cooperation with the adjacent clamping racks 25.
[0055] Since the edge of the sliding squeegee 12 is arranged as a ridge line, it is impossible to directly push up the sliding squeegee 12 through the stone plastic box board, so that the distance between the sliding squeegee 12 and the fixed squeegee 13 cannot be automatically adjusted according to the stone plastic box board. Therefore, by using the carriage 22 with a curved bottom, the stone plastic box board to be shaped can squeeze the carriage 22 to slide upward according to its own thickness. The carriage 22 pushes the sliding squeegee 12 to move upward, and the sliding squeegee 12 drives the electromagnetic frame 23, the magnetic strip 24, the clamping frame 25 and the spring 26 to move up and down together. In this way, the distance between the sliding squeegee 12 and the fixed squeegee 13 can be automatically adjusted according to the stone plastic box board, so that the sliding squeegee 12 and the fixed squeegee 13 can adapt to and closely adhere to stone plastic box boards of various thicknesses, improving the film scraping effect;
[0056] When starting up, the electromagnetic frame 23 is powered on, and the magnetic strip 24 is pushed by the repulsive force, so that the magnetic strip 24 drives the clamping frame 25 to slide towards the side close to the clamping groove 27, and the spring 26 deforms until the clamping frame 25 is clamped into the clamping groove 27. In this way, through the limitation of the clamping frame 25 by the clamping groove 27, the sliding squeegee 12 is fixed on the air drying frame 11, preventing the sliding squeegee 12 from randomly shaking up and down when scraping the water film;
[0057] When shutting down, the electromagnetic frame 23 is powered off, the magnetic strip 24 loses the repulsive force, and the spring 26 resets to drive the clamping frame 25 to slide towards the side away from the clamping groove 27. In this way, the fixation of the sliding squeegee 12 is released. Therefore, when the stone plastic box board is removed, the carriage 22 slides downward and resets under the action of gravity, and the sliding squeegee 12 also slides downward and resets under the action of gravity.
[0058] The above are only the embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. Any equivalent structure or equivalent process transformation made by using the content of the specification of the present invention, or directly or indirectly applied to other related technical fields, shall be similarly included in the patent protection scope of the present invention.
Claims
1. A water film cooling and shaping device for a stone plastic box board, comprising an ultrasonic atomizer (1), the ultrasonic atomizer (1) being fixedly connected to a shaping frame (2), the ultrasonic atomizer (1) being fixedly connected to a high-pressure fan (3), the high-pressure fan (3) being connected to an air duct (4), the shaping frame (2) being rotatably connected to a plurality of wind knives (5), characterized in that: The present invention also comprises guide frames (6) symmetrically distributed along the shaping frame (2), the guide frames (6) being fixedly connected to the shaping frame (2), the shaping frame (2) being horizontally slidably connected to an air-drying frame (11), the air-drying frame (11) being fixedly connected to a slide plate (7) symmetrically distributed along the shaping frame (2), the slide plate (7) being slidably connected to adjacent guide frames (6), copper tubes (8) distributed at equal intervals being rotatably connected between the opposing slide plates (7), the shaping frame (2) being horizontally slidably connected to an air-drying frame (11), the air-drying frame (11) being fixedly connected to a slide plate (7) symmetrically distributed along the shaping frame (2), the slide plate (7) being slidably connected to adjacent guide frames (6), the opposite slide plates (7) being rotatably connected to each other, An electric slide rail (9) symmetrically distributed along the shaping frame (2) is fixedly connected, a slider (10) is slidably connected inside the electric slide rail (9), the slider (10) is fixedly connected to the air-drying frame (11) and is used to drive the air-drying frame (11) to move horizontally, the air-drying frame (11) is slidably connected to a sliding scraper (12), the air-drying frame (11) is fixedly connected to a fixed scraper (13), and the fixed scraper (13) and the sliding scraper (12) are both configured as triangular pyramids; It also includes the same number of rotating blocks (14) as the wind knives (5), the rotating blocks (14) being fixedly connected to the corresponding wind knives (5), a sliding frame (15) being horizontally slidably connected to a side of the shaping frame (2) close to the rotating blocks (14), the sliding frame (15) being movably connected to the rotating blocks (14), and the air-drying frame (11) being movable so as to contact the sliding frame (15); It also includes a plurality of magnetic blocks (16), wherein half of the magnetic blocks (16) are fixedly connected to the sliding frame (15), and the other half of the magnetic blocks (16) are fixedly connected to the shaping frame (2), and the magnetic blocks (16) on the sliding frame (15) are magnetically matched with the magnetic blocks (16) on the adjacent side of the shaping frame (2); It also includes a rotating plate (18) symmetrically distributed along the air-drying rack (11), the rotating plate (18) is rotatably connected to the air-drying rack (11), a torsion spring (19) is fixedly connected between the rotating plate (18) and the air-drying rack (11), the rotating plate (18) is fixedly connected to a pulling frame (20) symmetrically distributed along the rotating plate (18), the air-drying rack (11) is slidably connected to an extrusion block (21) symmetrically distributed along the air-drying rack (11), and the pulling frame (20) is extruded and matched with the adjacent extrusion block (21); The invention also comprises a slide (22), wherein the slide (22) is slidably connected to one side of the shaping frame (2), the bottom of the slide (22) is arranged as a curved surface, one side of the slide (22) contacts the sliding scraper (12), the sliding scraper (12) is fixedly connected to an electromagnetic frame (23) symmetrically distributed along the sliding scraper (12), the sliding scraper (12) is slidably connected to a clamping frame (25) symmetrically distributed along the sliding scraper (12) for fixing the sliding scraper (12) on the shaping frame (2), and a magnetic strip (24) is fixedly connected to one side of the clamping frame (25) close to the electromagnetic frame (23), and the magnetic strip (24) cooperates with the adjacent electromagnetic frame (23) through magnetic force.
2. A water film cooling and shaping device for stone plastic box board according to claim 1, characterized in that: It also includes a push frame (17) symmetrically distributed along the shaping frame (2), the push frame (17) is fixedly connected to the shaping frame (2), and the extrusion block (21) moves to contact the push frame (17).
3. A water film cooling and shaping device for stone plastic box board according to claim 2, characterized in that: The extrusion block (21) is arranged in a V shape.
4. The water film cooling and shaping device for stone plastic box board according to claim 3 is characterized in that: The electromagnetic frame (23) pushes the magnetic strip (24) through repulsive magnetic forces.
5. The water film cooling and shaping device for stone plastic box board according to claim 4 is characterized in that: It also includes springs (26) symmetrically distributed along the magnetic strip (24), with two ends of the spring (26) being fixedly connected to the bracket (25) and the sliding scraper (12) respectively.
6. The water film cooling and shaping device for stone plastic box board according to claim 5 is characterized in that: The air-drying rack (11) is provided with card slots (27) symmetrically distributed along the air-drying rack (11), and the card slots (27) are limitedly matched with the adjacent card racks (25).
Citation Information
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