Automatic packaging equipment for insulation boards

By clamping the support and the clamping of the cutting knife, combined with the positioning and blowing of the film blowing mechanism, the deformation and separation of the packaging film during clamping and cutting is solved, and the packaging quality of the insulation board is improved.

CN120364189BActive Publication Date: 2025-08-29WINCELL INSULATION CO LTD
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Patent Information

Application Number
CN202510834584.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-06-20
Publication Date
2025-08-29
Estimated Expiration
2045-06-20

AI Technical Summary

Technical Problem

When clamping and cutting the packaging film, existing thermal insulation board packaging equipment can easily lead to deformation and separation of the film ends, affecting the packaging effect.

Method used

The packaging film is clamped with a support member and the first clamp with a cutting knife, and the end of the film is positioned and blown through the swing mechanism and the blowing mechanism to ensure stable winding of the film.

Benefits of technology

It reduces the pulling force of the packaging film, reduces the probability of separation between the film and the board, and improves the packaging effect.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN120364189B_ABST
    Figure CN120364189B_ABST
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Abstract

The present invention relates to the technical field of sheet material packaging, and in particular to an automated packaging device for thermal insulation sheets. The device comprises a processing bed, a fixed plate fixedly connected to the processing bed, a rotating ring rotatably connected to the fixed plate, a film roller mounted on the rotating ring, an electric push rod fixedly connected to the processing bed, a support member fixed to the telescopic end of the electric push rod, a first clamping plate rotatably connected to the telescopic end of the electric push rod, a cutting knife fixed to the first clamping plate, a control module mounted on the processing bed, a swing mechanism provided on the telescopic end of the electric push rod, and the swing mechanism used to drive the first clamping plate to move. The present invention clamps the packaging film by the support member and the first clamping plate, and cuts the packaging film by the cutting knife, so that the packaging film is no longer subjected to pulling force, thereby reducing the probability of the packaging film attached to the sheet material being separated from the sheet material, thereby ensuring the effectiveness of the packaging work.
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Description

Technical Field

[0001] The present invention relates to the technical field of plate packaging, and in particular to automated packaging equipment for thermal insulation plates. Background Art

[0002] Insulation boards are a type of material used for building thermal insulation. They are usually installed in structures such as exterior walls, roofs or floors to form an effective insulation layer to prevent heat loss through these parts. However, during transportation or handling, the insulation boards may be subject to bumps or friction, which may damage the insulation boards and reduce their own thermal insulation performance. Therefore, to avoid the above situation, the insulation boards are usually packaged after production is completed, and the surface of the boards is wrapped with plastic film to reduce the probability of damage to the boards.

[0003] In the operation of existing packaging equipment, when the sheet materials are packaged, the packaging film is clamped and intercepted by the telescopic part of the electric push rod, and then the telescopic part of the electric push rod is retracted. The packaging film is torn by the extension and retraction of the telescopic part of the electric push rod. However, during this process, the ends of the packaging film on the sheet materials will be deformed, causing the ends to gather together, and the packaging film will be separated from the sheet materials, thereby affecting the packaging film that has been wrapped. Summary of the Invention

[0004] In order to overcome the shortcomings mentioned in the above background technology, the present invention provides an automated packaging device for insulation boards.

[0005] The technical implementation scheme of the present invention is: an automated packaging equipment for insulation boards, including a processing bed, a fixed plate fixedly connected to the processing bed, a rotating ring rotatably connected to the fixed plate, a film roller installed on the rotating ring, a driving module installed on the processing bed, the driving module is used to drive the rotating ring to rotate, an electric push rod fixedly connected to the processing bed, the telescopic end of the electric push rod fixedly connected to a support, the telescopic end of the electric push rod rotatably connected to a first splint, and a torsion spring fixedly connected therebetween, a cutting knife fixedly connected to the first splint, a control module electrically connected to the driving module and the electric push rod is installed on the processing bed, and a swing mechanism is provided on the telescopic end of the electric push rod, and the swing mechanism is used to drive the first splint to move.

[0006] More preferably, a second clamping plate is fixedly connected to a side of the first clamping plate away from the cutting knife, and the second clamping plate is rotatably connected to the telescopic end of the electric push rod.

[0007] More preferably, the swing mechanism comprises:

[0008] An arc-shaped sleeve, fixedly connected to the telescopic end of the electric push rod;

[0009] an arc-shaped sliding rod, slidably connected to the arc-shaped sleeve and fixedly connected to a side of the second clamping plate away from the support member;

[0010] An elastic bag is installed in the arc sleeve and is used to push the arc slide bar to move. An air supply module electrically connected to the control module is installed on the processing bed, and the air supply module is used to pump gas into the elastic bag.

[0011] More preferably, a plurality of convex strips are fixedly connected to opposite sides of the first clamping plate and the second clamping plate.

[0012] More preferably, the cutting blade is provided with a plurality of grooves.

[0013] More preferably, it further comprises:

[0014] The film blowing mechanism is provided on the arc-shaped sleeve and is used to blow the packaging film. The film blowing mechanism includes:

[0015] A supporting sleeve, fixedly connected to the arc-shaped sleeve, wherein the supporting sleeve is provided with a first transition cavity;

[0016] a first tube, fixedly connected to the supporting sleeve and communicating with the first transition chamber;

[0017] a first exhaust member, fixedly connected to and in communication with a side of the first pipe away from the first transition chamber, the first exhaust member being fixedly connected to the processing bed;

[0018] A connecting component is provided on the arc-shaped sliding rod and is used for injecting gas into the first transition cavity.

[0019] More preferably, the connecting component includes a connecting rod, the connecting rod is fixed to the arc-shaped sliding rod, the connecting rod is fixed to a transition shell, the air supply module is used to pump gas into the transition shell, the transition shell is connected to a sliding shell, the sliding shell is located in the support sleeve and slides, when the sliding shell is aligned with the first transition chamber, the sliding shell and the first transition chamber are in a connected state.

[0020] More preferably, it further comprises:

[0021] a second tube fixedly connected to the support sleeve, wherein a second transition cavity is provided in the support sleeve, the second transition cavity is communicated with the second tube, and when the sliding shell is aligned with the second transition cavity, the sliding shell is communicated with the second transition cavity;

[0022] The second exhaust member is connected to the second pipe, and the second exhaust member is fixedly connected to the processing bed.

[0023] More preferably, it further comprises:

[0024] A stabilizing mechanism is provided on the processing bed and is used to press the plate. The stabilizing mechanism includes:

[0025] The fixed columns are symmetrically distributed and fixed to the processing bed;

[0026] The first pressing members are symmetrically distributed and rotatably connected to the adjacent fixing posts, and a first elastic member is fixedly connected between the fixing posts and the adjacent first pressing members;

[0027] The sliding member is arranged on the processing bed. The sliding member is rotatably connected to the second pressing member, and a second elastic member is fixedly connected between the sliding member and the second pressing member.

[0028] More preferably, it further comprises:

[0029] The driving member is fixedly connected to the processing bed near the second pressing member. The control module of the processing bed is electrically connected to the driving member. The driving end of the driving member is fixedly connected to the second pressing member. The sliding member is slidably connected to the processing bed.

[0030] Compared with the prior art, the present invention has the following advantages: the present invention clamps the packaging film by the support member and the first clamping plate, and cuts the packaging film by the cutting knife, so that the packaging film is no longer subjected to pulling force, thereby reducing the probability of separation of the packaging film adhered to the plate and the plate, and ensuring the effect of the packaging work.

[0031] The present invention squeezes the packaging film by means of the convex strips, thereby reducing the probability of the packaging film being dislocated and moving, and ensuring the clamping effect of the first and second clamping plates and the support member on the packaging film; and utilizing the grooves on the cutting blade of the cutting knife to reduce the contact area between the cutting knife and the packaging film, thereby facilitating puncturing of the packaging film.

[0032] The present invention uses the first exhaust member and the second exhaust member to blow the two ends of the cut packaging film together to position the ends of the packaging film, thereby facilitating full fitting between the packaging films and ensuring the effect of plate packaging. BRIEF DESCRIPTION OF THE DRAWINGS

[0033] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;

[0034] Figure 2 It is a three-dimensional structural cross-sectional view of the processing bed of the present invention;

[0035] Figure 3 Schematic diagram of the three-dimensional structure of the fixed plate, rotating ring and film roller of the present invention;

[0036] Figure 4 Schematic diagram of the three-dimensional structure of the film roller and the electric push rod of the present invention;

[0037] Figure 5 It is a schematic diagram of the three-dimensional structure of the support member and the first splint of the present invention;

[0038] Figure 6 A schematic diagram of the three-dimensional structure of the cutting knife and the second clamping plate of the present invention;

[0039] Figure 7 Schematic diagram of the three-dimensional structure of the ridges and grooves of the present invention;

[0040] Figure 8 A three-dimensional structural cross-sectional view of the support member, the first clamping plate and the cutting knife of the present invention;

[0041] Figure 9 Schematic diagram of the three-dimensional structure of the arc sleeve and the support sleeve of the present invention;

[0042] Figure 10 Schematic diagram of the three-dimensional structure of the arc-shaped sleeve and the arc-shaped sliding rod of the present invention;

[0043] Figure 11 It is a schematic diagram of the three-dimensional structure of the support sleeve and the first transition cavity of the present invention;

[0044] Figure 12 It is a schematic diagram of the three-dimensional structure of the fixing column and the first pressing member of the present invention.

[0045] Figure markings: 1. processing bed, 2. fixed plate, 3. rotating ring, 4. film roller, 5. driving module, 6. electric push rod, 7. supporting member, 8. first splint, 9. cutting knife, 21. second splint, 31. arc sleeve, 32. arc slide bar, 33. elastic bag, 34. air supply module, 41. ridge, 51. groove, 61. supporting sleeve, 62. first transition chamber, 63. first tube, 64. first exhaust member, 71. connecting rod, 72. transition shell, 73. sliding shell, 81. second tube, 82. second transition chamber, 83. second exhaust member, 91. fixed column, 92. first pressing member, 93. sliding member, 94. second pressing member, 95. driving member. DETAILED DESCRIPTION

[0046] The following is a clear and complete description of the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention. Example 1

[0047] This embodiment discloses an automated packaging device for thermal insulation panels, which is used to package the thermal insulation panels and has the function of cutting packaging film.

[0048] Combine Figures 1-8 As shown, it includes a processing bed 1, a fixed plate 2 is fixedly connected to the middle of the processing bed 1, a rotating ring 3 is rotatably connected to the fixed plate 2, and five circumferentially distributed rotating wheels are rotatably connected to the right side of the fixed plate 2, all of which are used to limit the rotating ring 3 to improve the stability of the rotation of the rotating ring 3, a film roller 4 is installed on the right side of the rotating ring 3, and a packaging film is wrapped around the film roller 4. The film roller 4 is an existing structure, and the specific internal composition is not described in detail. The processing bed 1 is installed with a driving module 5, and the driving module 5 is used to drive the rotating ring 3 to rotate. In this embodiment, the driving module 5 is composed of a servo motor, a gear and a gear ring, wherein the servo motor is fixed to the lower side of the processing bed 1, the gear is fixed to the output shaft of the servo motor, the gear ring is fixed to the rotating ring 3, and the processing bed 1 is fixed with an electric push rod 6, and the telescopic end of the electric push rod 6 is fixed to a support member 7, which is composed of three round rods and a triangular plate. The support member 7 is used to support the packaging film, which is convenient for cutting the packaging film. The telescopic end of the electric push rod 6 is rotatably connected to the first splint 8, and a torsion spring is fixed between the two. The cross-section of the first splint 8 is arc-shaped, which is convenient for fitting with the packaging film. A cutting knife 9 is fixed on the first splint 8, and the cutting knife 9 is used to cut the packaging film. This method replaces the traditional pulling and separating method, avoids the packaging film from being subjected to pulling force, thereby preventing the packaging film from being deformed, and reducing the probability of separation of the packaging film and the sheet material adhered to the sheet material, thereby ensuring the effect of packaging the sheet material. A control module electrically connected to the drive module 5 and the electric push rod 6 is installed on the processing bed 1, and a swing mechanism is provided on the telescopic end of the electric push rod 6, which is used to drive the first splint 8 to move; two belt conveyors are installed on the processing bed 1, and are respectively located on both sides of the fixed plate 2, for driving the sheet material to move from right to left.

[0049] Combine Figure 4-Figure 6 and Figure 8 As shown, a second splint 21 is fixedly connected to the side of the first splint 8 away from the cutting knife 9. The second splint 21 is rotatably connected to the telescopic end of the electric push rod 6. The support member 7 is located between the first splint 8 and the second splint 21. The structure and function of the second splint 21 are consistent with those of the first splint 8, and the two are symmetrically distributed. The first splint 8, the second splint 21 and the support member 7 jointly clamp the packaging film, and the packaging film is located between the first splint 8, the second splint 21 and the support member 7.

[0050] Initially, the first clamping plate 8 and the second clamping plate 21 are in a vertical state (eg Figure 5 ), after clamping the packaging film, the first clamping plate 8 and the second clamping plate 21 are in a horizontal state (such as Figure 8 ).

[0051] Combine Figure 3-Figure 6 、 Figure 9 and Figure 10As shown, the swing mechanism includes: an arc sleeve 31, which is fixed to the telescopic end of the electric push rod 6; an arc slide bar 32, which is slidably connected to the arc sleeve 31 and fixed to the left side of the second splint 21. The arc slide bar 32 is used to drive the second splint 21 to swing, so that the second splint 21 is converted from a vertical state to a horizontal state. The center of the circle where the arc sleeve 31 is located and the center of the circle where the arc slide bar 32 is located both coincide with the rotation point of the second splint 21; an elastic bag 33, which is installed in the arc sleeve 31. After gas is injected into the elastic bag 33, the elastic bag 33 will gradually expand and push the arc slide bar 32 to move. An air supply module 34 electrically connected to the control module thereon is installed on the processing bed 1. The air supply module 34 is an existing air pump, which is only schematically shown in the figure and its internal structure is not described in detail. The air supply module 34 is used to pump gas into the elastic bag 33.

[0052] The specific working principle of this embodiment is as follows:

[0053] When using this device to pack the plates, first place the stacked plates in sequence in the belt conveyor equipment on the right side of the processing bed 1, then the control module starts the two belt conveyors, and the belt conveyor equipment on the right drives the plates to move to the left until the left part of the plates moves into the rotating ring 3, and the end of the packing film on the film roller 4 is fitted with the plates, then the control module starts the driving module 5, and the driving module 5 drives the rotating ring 3 to rotate, and the rotating ring 3 drives the film roller 4 thereon to rotate, so that the packing film is wrapped around the left part of the plates. During this process, the plates continue to move slowly to the left, and the packing film gradually wraps the plates, and then the packed part of the plates contacts the belt conveyor equipment on the left, and the two belt conveyors jointly drive the plates to move to the left.

[0054] When the right part of the plate moves into the rotating ring 3 and the rotating ring 3 drives the film roller 4 to rotate to the predetermined position (the predetermined position refers to the film roller 4 being located on the upper part of the fixed plate 2), the control module turns off the two belt conveyors and turns on the electric push rod 6. The telescopic end of the electric push rod 6 drives the support member 7 to move to the left and extends to the lower part of the plate. The telescopic end of the electric push rod 6 synchronously drives the arc sleeve 31 and the parts thereon to move to the left. As the film roller 4 rotates, the packaging film gradually wraps around and wraps the support member 7 inside until the film roller 4 moves to the front (such as Figure 1 As shown), the control module turns off the driving module 5.

[0055] After the driving module 5 stops working, the control module turns on the air supply module 34, and the air supply module 34 pumps gas into the elastic bag 33. The air pressure in the elastic bag 33 increases and gradually expands. The elastic bag 33 pushes the arc slide bar 32, and the arc slide bar 32 gradually extends out of the arc sleeve 31. The arc sleeve 31 drives the second splint 21 to move, and the second splint 21 drives the first splint 8 to move, so that the first splint 8 and the second splint 21 rotate clockwise around the telescopic end of the electric push rod 6 (the torsion spring on the first splint 8 stores force), until the arc slide bar 32 is fully extended, and the first splint 8 and the second splint 21 rotate to the bottom of the support member 7 (as shown in FIG. Figure 8 As shown), they are all fitted with the packaging film. At this time, the first plywood 8, the second plywood 21 and the support member 7 jointly clamp the packaging film, and the first plywood 8 and the second plywood 21 are in a horizontal state.

[0056] During the rotation of the first clamping plate 8, the first clamping plate 8 drives the cutting knife 9 to rotate synchronously. As the first clamping plate 8 gradually contacts the packaging film, the cutting knife 9 also gradually contacts the packaging film. The cutting knife 9 squeezes the packaging film and cuts the packaging film. At this time, the sheet packaging operation is completed, and the second clamping plate 21 and the support member 7 clamp the new end of the packaging film.

[0057] After the packaging film is cut, the control module starts the electric push rod 6 again, the telescopic end of the electric push rod 6 is retracted, and all the parts on it (including the second clamping plate 21 and the support member 7 that clamp the end of the packaging film) are driven to reset to the right synchronously. At this time, the second clamping plate 21 and the support member 7 clamp the new end of the packaging film and move to the right. Then the control module starts the two belt conveyors. At the same time, the belt conveyor on the left drives the packaged sheet to continue to convey it to the left until the right part of the sheet contacts the belt conveyor on the left. The belt conveyor squeezes the free end of the packaging film left on the sheet after cutting, so that the free end fits the sheet. At this time, the left part of the second stack of sheets moves into the rotating ring 3.

[0058] After the left part of the second stack of plates moves into the rotating ring 3, the control module turns on the driving module 5, and the driving module 5 drives the film roller 4 to rotate through the rotating ring 3, and the film roller 4 wraps the packaging film on it onto the second stack of plates. Until the packaging film is wrapped once, the control module controls the air supply module 34 to perform the exhaust operation, and the gas in the elastic bag 33 is withdrawn. The first clamping plate 8 rotates in the opposite direction and resets under the action of the torsion spring thereon. The first clamping plate 8 drives the cutting knife 9 and the second clamping plate 21 to move synchronously, and the second clamping plate 21 drives the arc slide bar 32 to move in the opposite direction. Until the arc slide bar 32 completely enters the arc sleeve 31, the first clamping plate 8 and the second clamping plate 21 complete the reset and are in a vertical state. At this time, the second clamping plate 21 and the support member 7 lose the clamping of the new end of the packaging film. As the packaging film winding action continues, the packaging film wraps its new end into its interior, and then repeats the above operation to perform the packaging operation on the subsequent plates.

[0059] Example 2

[0060] This embodiment discloses an automated packaging device for thermal insulation panels, which, based on the first embodiment, further has the function of assisting in fixing the packaging film.

[0061] Combine Figure 6 and Figure 7 As shown, a plurality of ridges 41 are fixed to opposite sides of the first and second clamping plates 8, 21, for increasing the contact area between the first and second clamping plates 8, 21 and the packaging film, causing the packaging film to deform and ensuring the stability of the packaging film clamped by the first and second clamping plates 8, 21. The cross-section of the ridges 41 is semicircular to prevent the packaging film from being damaged due to concentrated force when the ridges 41 squeeze the packaging film.

[0062] Combine Figure 6 and Figure 7 As shown, the blade of the cutting knife 9 is provided with a plurality of grooves 51, which are used to reduce the contact area between the blade of the cutting knife 9 and the packaging film, so that the force on the packaging film is more concentrated when being cut, making it easier to pierce the packaging film and thus facilitate cutting the packaging film.

[0063] Example 3

[0064] This embodiment discloses an automated packaging device for thermal insulation boards. Based on the second embodiment, it also has the function of positioning the packaging film, so as to fit the free end of the packaging film remaining on the board after being cut with the packaging film on the board.

[0065] Combine Figure 3-Figure 5 and Figures 9-11As shown, it also includes: a film blowing mechanism, which is arranged on the arc sleeve 31 and is used to blow the packaging film. The film blowing mechanism includes: a support sleeve 61, which is fixed to the arc sleeve 31, the support sleeve 61 is arc-shaped, and a slide groove is provided on the rear side of the support sleeve 61, and a first transition chamber 62 is provided on the lower side of the support sleeve 61. The slide groove of the support sleeve 61 is connected to the first transition chamber 62; a first tube 63, which is fixed to the support sleeve 61 and is connected to the first transition chamber 62. The first tube 63 is a hose and has a sufficient length; a first exhaust member 64, which is fixed and connected to the side of the first tube 63 away from the first transition chamber 62, the first exhaust member 64 is fixed to the processing bed 1, and the cross-section of the first exhaust member 64 is trapezoidal, and the area of ​​its air outlet side is larger than the area of ​​its air inlet side; a connecting component, which is arranged on the arc slide rod 32 and is used to inject air into the first transition chamber 62.

[0066] Combine Figure 5 、 Figure 10 and Figure 11 As shown, the connecting component includes a connecting rod 71, which is fixed to the arc-shaped sliding rod 32. The connecting rod 71 is arc-shaped and is fixed to the transition shell 72. The air supply module 34 is used to pump gas into the transition shell 72. A hose is connected between the air outlet of the air supply module 34 and the transition shell 72 (the length in the figure is only for reference), and the hose has sufficient length to accommodate the movement of the transition shell 72. The transition shell 72 is connected to the sliding shell 73. The sliding shell 73 is arc-shaped. The sliding shell 73 slides in the sliding groove of the support sleeve 61. When the sliding shell 73 is aligned with the first transition cavity 62, the sliding shell 73 is in a connected state with the first transition cavity 62. The center of the circle where the support sleeve 61, the sliding groove of the support sleeve 61, the connecting rod 71 and the sliding shell 73 are located coincides with the rotation point of the second splint 21.

[0067] The specific working principle of this embodiment is as follows:

[0068] During the process of the arc-shaped sliding rod 32 gradually extending (based on the principle of Example 1), the arc-shaped sliding rod 32 drives the connecting rod 71 to move, and the connecting rod 71 drives the sliding shell 73 to move synchronously through the transition shell 72. The sliding shell 73 slides along the sliding groove of the support sleeve 61 until the arc-shaped sliding rod 32 is fully extended, and the sliding shell 73 is aligned with the first transition cavity 62, and the sliding shell 73 is connected to the first transition cavity 62.

[0069] After the packaging film is cut, the control module turns on the electric push rod 6 again, and the telescopic end of the electric push rod 6 is retracted. At the same time, the control module turns on the air supply module 34, and the air supply module 34 pumps gas into the transition shell 72. The gas flows through the transition shell 72, the sliding shell 73, the first transition cavity 62, and the first tube 63 in sequence, and is finally discharged from the first exhaust member 64. The discharged gas blows the free end of the packaging film located under the plate, so that the packaging film automatically moves upward, so that the free end of the packaging film is attached to the packaging film on the plate (the adhesive property of the packaging film itself is utilized here), thereby completing the packaging operation of the plate and ensuring the effect of plate packaging.

[0070] After the telescopic end of the electric push rod 6 is reset, the control module controls the air supply module 34 to extract the gas in the elastic bag 33 and stops the air supply module 34 from pumping gas into the transition shell 72 .

[0071] Example 4

[0072] This embodiment discloses an automated packaging device for thermal insulation panels. Based on the third embodiment, it further has the function of positioning the new end of the packaging film, so as to fit the new end of the packaging film with the portion wound on the film roller 4 .

[0073] Combine Figure 3-Figure 5 and Figures 9-11 As shown, it also includes: a second tube 81, which is fixed to the support sleeve 61, and the second tube 81 is a hose. A second transition chamber 82 is provided on the upper side of the support sleeve 61, and the slide groove of the support sleeve 61 is connected to the second transition chamber 82, and the second transition chamber 82 is connected to the second tube 81. When the sliding shell 73 is aligned with the second transition chamber 82, the sliding shell 73 is connected to the second transition chamber 82, and the sliding shell 73 is arc-shaped, thereby extending the time for the sliding shell 73 to be connected to the second transition chamber 82; a second exhaust member 83, which is connected to the second tube 81, and the second exhaust member 83 is fixed to the processing bed 1. The cross-section of the second exhaust member 83 is trapezoidal, and the area of ​​the air outlet side is larger than the area of ​​the air inlet side.

[0074] The specific working principle of this embodiment is as follows:

[0075] After the telescopic end of the electric push rod 6 is reset, the control module controls the air supply module 34 to extract the gas in the elastic bag 33, so that the second splint 21 and the support member 7 lose their clamping on the new end of the packaging film, and at the same time controls the air supply module 34 to pump gas into the transition shell 72. During the process, the connecting rod 71 drives the sliding shell 73 to move in the opposite direction through the transition shell 72. When the sliding shell 73 is aligned with the second transition cavity 82, the second transition cavity 82 is connected to the sliding shell 73, and the gas in the transition shell 72 enters the second transition cavity 82 through the sliding shell 73. The gas enters the second exhaust piece 83 through the second transition cavity 82 and the second tube 81, and then the gas is discharged through the second exhaust piece 83, and blows the new end of the packaging film to move upward, so that the new end of the packaging film fits with the plate, making it easier for the packaging film to wrap its end.

[0076] After the sliding shell 73 is no longer connected to the second transition chamber 82, the control module controls the air supply module 34 to stop pumping gas into the transition shell 72 and continues to extract gas from the elastic bag 33 until the arc-shaped sliding rod 32 is completely reset, and then the control module turns off the air supply module 34.

[0077] Example 5

[0078] This embodiment discloses an automated packaging device for thermal insulation boards, wherein the position and number of stabilizing mechanisms can be adjusted according to actual conditions. In the figure, there are two stabilizing mechanisms, which are located on the left and right sides of the fixed plate 2 respectively. The stabilizing mechanism on the right is used to press the boards to be packaged to ensure the stability of the boards during the packaging process; the stabilizing mechanism on the left is used to press the packaged boards to ensure that the packaging film is fully fitted to the boards.

[0079] Combine Figure 1 、 Figure 2 and Figure 12 As shown, it also includes: a stabilizing mechanism, which is arranged on the processing bed 1 and is used to press the plate. The stabilizing mechanism includes: two fixed columns 91, which are symmetrically distributed and are fixed to the processing bed 1; two first pressing members 92, which are symmetrically distributed and are rotatably connected to adjacent fixed columns 91. The first pressing member 92 and the second pressing member 94 are both composed of a mounting frame and a pressing roller. A rubber layer is provided on the outer side of the pressing roller to prevent hard squeezing of the packaging film, which causes damage to the packaging film, and a first elastic member is fixed between the fixed column 91 and the adjacent first pressing member 92; a sliding member 93 is provided on the processing bed 1, and a second pressing member 94 is rotatably connected to the sliding member 93, and a second elastic member is fixed between the two. The first elastic member and the second elastic member are both torsion springs, so that the first pressing member 92 and the second pressing member 94 always have an extrusion force on the passing plate.

[0080] The specific working principle of this embodiment is as follows:

[0081] When the plate moves from right to left, when the plate contacts the two first pressing pieces 92 on the right side, the plate squeezes the two, causing the two first pressing pieces 92 to rotate back to back, and the first elastic piece on the first pressing piece 92 gradually accumulates force. Under the action of the first elastic piece, the two first pressing pieces 92 apply a centered extrusion force to the plate, ensuring the stability of the plate during movement and reducing the probability of the plate deflecting. During this process, the plate synchronously squeezes the second pressing piece 94 on the right side, and the second elastic piece on the second pressing piece 94 twists and accumulates force, and the second pressing piece 94 presses the plate, ensuring the stability of the plate during packaging and reducing the probability of the plate swinging up and down under the drive of the packaging film.

[0082] As the plate moves to the left, when the plate squeezes the two first pressing members 92 on the left and the second pressing member 94 on the left, the first pressing members 92 and the second pressing members 94 jointly press the packaging film on the plate, so that the packaging film fits tightly to the plate, ensuring the packaging effect of the plate.

[0083] When the plate has completely passed through all the first pressing members 92 and the second pressing members 94 , the first pressing members 92 and the second pressing members 94 are respectively reset under the action of the adjacent first elastic members and the adjacent second elastic members.

[0084] Example 6

[0085] This embodiment discloses an automated packaging device for thermal insulation panels, which also has the function of adjusting the position of the second pressing member 94 .

[0086] Combine Figure 1 、 Figure 2 and Figure 12 As shown, it also includes: a driving member 95, which is fixed to the processing bed 1 near the second pressing member 94. The driving member 95 is an electric push rod. The control module of the processing bed 1 is electrically connected to the driving member 95. The driving end of the driving member 95 is fixed to the second pressing member 94. The sliding member 93 is slidably connected to the processing bed 1. According to the thickness of the plate, the extension length of the driving end of the driving member 95 is controlled, and the height of the second pressing member 94 is adjusted, so that the extrusion force of the second pressing member 94 on the plate tends to be constant, reducing the damage to the plate or packaging film caused by excessive extrusion of the plate by the second pressing member 94 due to excessive thickness of the plate.

[0087] Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention shall be included in the scope of protection of the present invention. Finally, it should be noted that the above description is only a preferred embodiment of the present invention and is not intended to limit the present invention.

Claims

1. An automated packaging device for heat-insulating panels, comprising a processing bed (1), a fixed plate (2) fixedly connected to the processing bed (1), a rotating ring (3) rotatably connected to the fixed plate (2), a film roller (4) mounted on the rotating ring (3), a driving module (5) mounted on the processing bed (1), the driving module (5) being used to drive the rotating ring (3) to rotate, and characterized in that: The processing bed (1) is fixedly connected to an electric push rod (6), the telescopic end of the electric push rod (6) is fixedly connected to a support member (7), the telescopic end of the electric push rod (6) is rotatably connected to a first clamping plate (8), and a torsion spring is fixedly connected between the two, a cutting knife (9) is fixedly connected to the first clamping plate (8), a control module electrically connected to the driving module (5) and the electric push rod (6) is installed on the processing bed (1), and a swing mechanism is provided on the telescopic end of the electric push rod (6), and the swing mechanism is used to drive the first clamping plate (8) to move; A second clamping plate (21) is fixedly connected to a side of the first clamping plate (8) away from the cutting knife (9), and the second clamping plate (21) is rotatably connected to the telescopic end of the electric push rod (6); The swing mechanism comprises: An arc-shaped sleeve (31) is fixedly connected to the telescopic end of the electric push rod (6); an arc-shaped sliding rod (32) slidably connected to the arc-shaped sleeve (31) and fixedly connected to a side of the second clamping plate (21) away from the support member (7); An elastic bag (33) is installed in the arc-shaped sleeve (31) and is used to push the arc-shaped slide rod (32) to move. An air supply module (34) electrically connected to the control module on the processing bed (1) is installed on the processing bed (1). The air supply module (34) is used to pump gas into the elastic bag (33).

2. The automatic packaging equipment for thermal insulation boards according to claim 1 is characterized in that: A plurality of convex strips (41) are fixedly connected to opposite sides of the first clamping plate (8) and the second clamping plate (21).

3. The automatic packaging equipment for thermal insulation boards according to claim 2 is characterized in that: The cutting blade (9) is provided with a plurality of grooves (51).

4. The automatic packaging equipment for thermal insulation boards according to claim 3 is characterized in that include: A film blowing mechanism is provided on the arc-shaped sleeve (31) and is used for blowing the packaging film. The film blowing mechanism comprises: A supporting sleeve (61) is fixedly connected to the arc-shaped sleeve (31), and the supporting sleeve (61) is provided with a first transition cavity (62); a first tube (63) fixedly connected to the supporting sleeve (61) and communicating with the first transition chamber (62); a first exhaust member (64) fixedly connected to and in communication with a side of the first pipe (63) away from the first transition chamber (62), the first exhaust member (64) being fixedly connected to the processing bed (1); A connecting component is provided on the arc-shaped sliding rod (32) and is used for injecting gas into the first transition cavity (62).

5. The automatic packaging equipment for thermal insulation boards according to claim 4 is characterized in that: The connecting component includes a connecting rod (71), the connecting rod (71) is fixed to the arc-shaped sliding rod (32), the connecting rod (71) is fixed to a transition shell (72), the air supply module (34) is used to pump gas into the transition shell (72), the transition shell (72) is connected to a sliding shell (73), the sliding shell (73) is located in the support sleeve (61) and slides, and when the sliding shell (73) is aligned with the first transition chamber (62), the sliding shell (73) and the first transition chamber (62) are in a connected state.

6. The automatic packaging equipment for thermal insulation boards according to claim 5 is characterized in that include: a second tube (81) fixedly connected to the support sleeve (61), wherein a second transition cavity (82) is provided in the support sleeve (61), wherein the second transition cavity (82) is communicated with the second tube (81), and when the sliding shell (73) is aligned with the second transition cavity (82), the sliding shell (73) is communicated with the second transition cavity (82); The second exhaust member (83) is connected to the second pipe (81), and the second exhaust member (83) is fixedly connected to the processing bed (1).

7. The automatic packaging equipment for thermal insulation boards according to claim 6 is characterized in that include: A stabilizing mechanism is provided on the processing bed (1) and is used to press the plate. The stabilizing mechanism comprises: Fixed columns (91) are symmetrically distributed and are all fixed to the processing bed (1); The first pressing members (92) are symmetrically distributed and are rotatably connected to the adjacent fixing columns (91), and a first elastic member is fixedly connected between the fixing columns (91) and the adjacent first pressing members (92); A sliding member (93) is arranged on the processing bed (1); a second pressing member (94) is rotatably connected to the sliding member (93), and a second elastic member is fixedly connected between the sliding member (93).

8. The automatic packaging equipment for thermal insulation boards according to claim 7 is characterized in that include: The driving member (95) is fixedly connected to the processing bed (1) near the second pressing member (94), the control module of the processing bed (1) is electrically connected to the driving member (95), the driving end of the driving member (95) is fixedly connected to the second pressing member (94), and the sliding member (93) is slidably connected to the processing bed (1).

Citation Information

Patent Citations

  • Color steel plate trimming and packaging device and method

    CN117141826A