Anti-seismic detection device for liner of blister packaging box

By designing a blister box lining detection device for clamping, vibration and support components, the problem of lining slipping during the detection process is solved, and the stability and accuracy of the detection are achieved.

CN223243892UActive Publication Date: 2025-08-19SUZHOU IND PARK KAIDA ELECTRONIC MATERIAL CO LTD
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Patent Information

Application Number
CN202422620332.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-29
Publication Date
2025-08-19
Estimated Expiration
2034-10-29

AI Technical Summary

Technical Problem

The existing blister box lining lacks a clamping structure during the inspection process, which causes the lining to move or fall off when the equipment vibrates, affecting the accuracy of the detection results.

Method used

A shock-resistant detection device for blister packaging box lining is designed, including a clamping assembly, a vibration motor, a support assembly and a vibration assembly. The lining is clamped by a cylinder and a clamping plate. The vibration motor drives the detection table to vibrate, and maintains the stability and multi-angle vibration of the equipment through the support assembly and the vibration assembly.

Benefits of technology

It effectively avoids the slippage of the lining during the detection process, ensures the stability and accuracy of the detection, and improves the detection effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an anti-seismic detection device for a liner of a blister packaging box, which belongs to the field of blister packaging boxes and comprises a base, support plates are fixedly mounted on two sides of the base, through holes are formed in the surfaces of the support plates, a bottom plate is mounted above the base in a sliding manner, a detection table is arranged above the bottom plate, and the detection table is connected with the bottom plate in a sliding manner. Stand columns are fixedly installed at the four corners of the top end of the detection table, a clamping assembly is arranged at the bottom of the detection table, installation blocks are fixedly installed on the sides of the opposite angles of the four stand columns, scanners are fixedly installed on the sides, away from the stand columns on the same sides, of the installation blocks, and a supporting assembly is arranged between the detection table and the bottom plate. And a vibration motor is arranged at the bottom end of the detection table. According to the utility model, through the arrangement of the clamping assembly and the cooperation of the air cylinder and the clamping plate, the effect of clamping and stabilizing the lining is achieved, the stability of the lining during detection can be maintained, and the accuracy of the detection result of the equipment can be maintained.
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Description

Technical Field

[0001] The utility model relates to the field of blister packaging boxes, and more particularly to a seismic detection device for the inner lining of a blister packaging box. Background Art

[0002] A common type of packaging is to produce plastic products using the blister process and use corresponding equipment to package the products. The blister packaging box sheet is heated at high temperature, vacuum-sucked, and cooled to form a plastic box shape. The raw materials of the blister packaging box mainly include: PVC, PS, PP, PET, PETG, as well as flocking, antistatic, conductive and other materials. The specific production process involves mold making and processing. After the mold is completely dried, it is softened. Subsequently, the softened plastic sheet and the wooden cabinet are placed in a vacuum chamber. The suction switch is turned on to suck out the air in the vacuum chamber. After the plastic sheet cools down, a concave packaging or process mold identical to the mold is obtained. Lining is usually used inside the blister packaging box to support and stabilize the packaging box. The lining needs to have a certain shock resistance effect. Therefore, after the lining processing is completed, the lining needs to be tested for shock resistance.

[0003] Some existing anti-vibration devices for blister packaging liners lack a clamping structure above them. When the equipment vibrates, the liner located on top of the device may move or even fall, affecting subsequent testing results. Therefore, to address this issue, we have proposed a seismic testing device for blister packaging liners. Utility Model Content

[0004] In order to solve the above problems, the utility model provides a seismic detection device for the lining of a blister packaging box, which adopts the following technical solutions:

[0005] A seismic detection device for the lining of a blister packaging box comprises a base, support plates are fixedly installed on both sides of the base, through holes are provided on the surfaces of the support plates, a bottom plate is slidably installed above the base, a detection platform is provided above the bottom plate, columns are fixedly installed at the four corners of the top of the detection platform, a clamping assembly is provided at the bottom of the detection platform, mounting blocks are fixedly installed on one diagonal side of the four columns, a scanner is fixedly installed on the side of the mounting block away from the column on the same side, a support assembly is provided between the detection platform and the bottom plate, a vibration motor is provided at the bottom end of the detection platform, a mounting slot is provided at the top of the base, and a vibration assembly is provided at the bottom end of the bottom plate.

[0006] By adopting the above technical solution, when the equipment is used, the staff places the base at the installation site, and then fixes it to the installation site through the existing bolts through the through slots opened at the top of the support plate on the same side. Then, the staff places the lining on the top of the inspection table. A clamping assembly is provided on the top of the inspection table to clamp and fix the lining. When the lining is clamped and fixed, the vibration motor drives the inspection table to vibrate, thereby vibrating the lining to achieve the inspection effect. A support assembly is provided between the inspection table and the base plate, which can support and stabilize the inspection table, which is beneficial to maintaining the stability of the vibration of the inspection table. Then, the vibration assembly can be used to drive the base plate, inspection table and lining to vibrate synchronously, which is beneficial to maintaining the inspection effect of the equipment. When the lining vibrates, the lining is scanned and inspected by four scanners to collect data, which makes it easier to view the seismic resistance results of the lining.

[0007] Furthermore, the clamping assembly includes four mounting plates fixedly mounted on the top of the detection platform, cylinders are fixedly mounted on the inner sides of the four mounting plates, clamps are fixedly mounted on the ends of the four cylinder piston shafts, and rubber pads are fixedly mounted on the side of the four clamps away from the mounting plates on the same side.

[0008] By adopting the above technical solution, the staff places the lining above the test table, and then drives the same-side clamps to move through the cylinder. The lining is clamped and fixed by the four clamps, which can play the role of positioning and stabilizing the lining, and help prevent the lining from slipping off the test table during the inspection process.

[0009] Furthermore, the support assembly includes pillars fixedly installed at the four corners of the top of the base plate, and the tops of the four pillars are each provided with a movable groove, and support rods are slidably installed in the movable grooves. A second spring is fixedly installed between the bottom end of the support rod and the inner wall of the bottom end of the movable groove in the same group, and the top ends of the four support rods are fixedly connected to the bottom end of the detection platform.

[0010] By adopting the above technical solution, when the testing platform vibrates, the testing platform pushes the support rod to slide in the movable groove on the same side, and the support rod pushes the second spring on the same side to contract. The second spring gives the support rod on the same side a rebound force, thereby playing a buffering role. Through the cooperation of the pillar, the second spring and the support rod, the testing platform is supported and stabilized, and the testing platform can be facilitated to stably lift and vibrate with the lining.

[0011] Furthermore, two symmetrically distributed limit blocks are fixedly mounted on the side walls of the bottom ends of the four support rods, and the inner wall of the movable groove is provided with a limit groove matching the limit blocks on the same side.

[0012] By adopting the above technical solution, when the support rod slides in the movable groove on the same side, the support rod slides in the limit groove on the same side with the limit block. The cooperation between the limit block and the limit groove is conducive to maintaining the stability of the support rod lifting and lowering, and helps to prevent the support rod from escaping from the movable groove on the same side.

[0013] Furthermore, the vibration component includes a stopper fixedly installed on the bottom end of the base plate, a reduction motor on the inner wall of the bottom end of the installation groove, a cam is provided on the fixed sleeve of the side wall of the output shaft of the reduction motor, and two symmetrically distributed movable grooves are opened at the top of the base, support rods are fixedly installed in the two movable grooves, and support blocks are slidably sleeved on the side walls of the two support rods. The top ends of the two support blocks are fixedly connected to the bottom end of the base plate, and the side walls of the two support rods are sleeved with two symmetrically distributed first springs, and the support block is located between the two first springs on the same side.

[0014] By adopting the above technical solution, the cam is driven to rotate by the reduction motor, and the cam pushes the block installed on the base plate when it rotates. The block pushes the base plate to slide above the base, and the base plate slides in the moving groove on the same side with the support block, and the support block slides on the support rod on the same side, which is beneficial to maintaining the stability of the sliding of the base plate, and when the support block slides on the support rod on the same side, the support block pushes the first spring on the same side to contract, and when the cam is out of contact with the block, the first spring gives the support block on the same side an elastic force, thereby causing the support block to slide synchronously with the base plate, thereby causing the inner lining to shake, achieving a further vibration effect, and through the cooperation of the vibration motor, the inner lining is vibrated at multiple angles, which is beneficial to improving the detection effect of the equipment.

[0015] Furthermore, stabilizing blocks are fixedly installed on both sides of the two support blocks, and stabilizing grooves matching the stabilizing blocks on the same side are opened on the inner walls of the two movable grooves.

[0016] By adopting the above technical solution, when the support block slides in the movable groove on the same side, the support block slides with the stabilizing block in the stabilizing groove on the same side. The cooperation between the stabilizing block and the stabilizing groove is conducive to maintaining the stability of the sliding of the support block, and thus helps to maintain the stability of the sliding of the base plate.

[0017] Furthermore, two symmetrically distributed sliding grooves are provided at the top of the base, and sliders are slidably installed in the two sliding grooves, and the top ends of the two sliders are fixedly connected to the bottom end of the base plate.

[0018] By adopting the above technical solution, when the bottom plate slides above the base, the bottom plate slides with the slider in the same side slide groove. The cooperation of the slider and the slide groove is conducive to maintaining the stability of the bottom plate moving with the lining.

[0019] In summary, the present invention has the following beneficial technical effects:

[0020] (1) In the present invention, by setting the clamping assembly and cooperating with the cylinder and the clamping plate, the lining is clamped and stabilized, which is beneficial to maintaining the stability of the lining during detection, and further beneficial to maintaining the accuracy of the detection results of the equipment.

[0021] (2) In the present invention, the vibration motor drives the detection table to vibrate, thereby vibrating the lining to achieve the detection effect, and the vibration component drives the bottom plate to slide synchronously with the detection table and the lining to further vibrate the lining, which is beneficial to improving the detection effect of the equipment.

[0022] (3) In the present invention, the support assembly is arranged between the test platform and the base plate to support and stabilize the test platform. When the test platform vibrates, the test platform pushes the support rod to slide in the movable groove on the same side, and the support rod pushes the second spring on the same side to contract. The second spring gives a rebound force to the support rod on the same side, achieving a buffering effect, and then can play a role in pushing the test platform to rebound and rise and fall, achieving the effect of causing vibration. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 A schematic structural diagram of the utility model;

[0024] Figure 2 It is a cross-sectional view of the base and the support in the utility model;

[0025] Figure 3 For this utility model Figure 2 A magnified view of middle A;

[0026] Figure 4 It is a cross-sectional view of the base and bottom plate in the utility model;

[0027] Figure 5 For this utility model Figure 4 Magnified view of B.

[0028] Description of the numbers in the figure:

[0029] 1. Base; 2. Slide; 3. Moving slot; 4. Bottom plate; 5. Pillar; 6. Support rod; 7. Inspection table; 8. Column; 9. Mounting block; 10. Scanner; 11. Mounting plate; 12. Clamp; 13. Cylinder; 14. Support plate; 15. Vibration motor; 16. First spring; 17. Support block; 18. Support rod; 19. Second spring; 20. Movable slot; 21. Mounting slot; 22. Slider; 23. Stopper; 24. Cam; 25. Reducer motor. DETAILED DESCRIPTION

[0030] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention; it is obvious that the described embodiments are only 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 ordinary technicians in this field without making creative work are within the scope of protection of the present invention.

[0031] In the description of this utility model, it should be noted that the terms "upper," "lower," "inner," "outer," "top / bottom," and the like, indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely to facilitate the description of this utility model and simplify the description. They are not intended to indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on this utility model. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0032] In the description of this utility model, it should be noted that, unless otherwise expressly specified or limited, the terms "installed," "provided with," "mounted / connected," and "connected" should be understood in a broad sense. For example, "connected" can mean a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, or it can be internal communication between two components. For those skilled in the art, the specific meanings of the above terms in this utility model can be understood according to the specific circumstances.

[0033] The following is combined with Figure 1-5 The utility model is described in further detail.

[0034] See also Figure 1-5A seismic detection device for the inner lining of a blister packaging box includes a base 1, with support plates 14 fixedly installed on both sides of the base 1, and through holes are opened on the surface of the support plates 14. A bottom plate 4 is slidably installed above the base 1, and a detection platform 7 is provided above the bottom plate 4. Columns 8 are fixedly installed at the four corners of the top of the detection platform 7. A clamping assembly is provided at the bottom of the detection platform 7. The clamping assembly includes four mounting plates 11 fixedly installed on the top of the detection platform 7. Cylinders 13 are fixedly installed on the inner sides of the four mounting plates 11. Clamps are fixedly installed on the ends of the piston shafts of the four cylinders 13. 12. The four clamping plates 12 are fixedly installed with rubber pads on the side away from the mounting plate 11 on the same side. When the equipment is used, the staff places the base 1 at the installation location, and then fixes it to the installation location through the existing bolts through the through slots opened at the top of the support plate 14 on the same side. Then, the staff places the lining on the top of the inspection table 7, and then drives the clamping plate 12 on the same side to move through the cylinder 13. The lining is clamped and fixed by the four clamping plates 12, which can play a role in positioning and stabilizing the lining, and helps to prevent the lining from slipping off the inspection table 7 during the inspection process.

[0035] A mounting block 9 is fixedly installed on one diagonal side of the four columns 8, and a scanner 10 is fixedly installed on the side of the mounting block 9 away from the column 8 on the same side. A support assembly is provided between the detection table 7 and the base plate 4, and the support assembly includes pillars 5 fixedly installed at the four corners of the top of the base plate 4. The tops of the four pillars 5 are provided with movable grooves 20, and support rods 6 are slidably installed in the movable grooves 20. A second spring 19 is fixedly installed between the bottom end of the support rod 6 and the inner wall of the bottom end of the movable groove 20 of the same group. The tops of the four support rods 6 are fixedly connected to the bottom end of the detection table 7. When the lining is clamped and fixed, the detection table 7 is driven by the vibration motor 15. Generate vibration, thereby playing the role of vibrating the lining. When the test platform 7 vibrates, the test platform 7 pushes the support rod 6 to slide in the movable groove 20 on the same side, and the support rod 6 pushes the second spring 19 on the same side to contract. The second spring 19 gives the support rod 6 on the same side a rebound force, thereby playing a buffering role. Through the cooperation of the pillar 5, the second spring 19 and the support rod 6, it plays the role of supporting and stabilizing the test platform 7, and can facilitate the stable lifting and vibration of the test platform 7 with the lining. When the lining vibrates, the lining is scanned and detected by four scanners 10, which plays the role of collecting data, thereby facilitating the viewing of the seismic resistance results of the lining.

[0036] Two symmetrically distributed limit blocks are fixedly installed on the side walls of the bottom ends of the four support rods 6. The inner wall of the movable groove 20 is provided with a limit groove that matches the limit block on the same side. When the support rod 6 slides in the movable groove 20 on the same side, the support rod 6 slides in the limit groove on the same side with the limit block. The cooperation between the limit block and the limit groove is conducive to maintaining the stability of the lifting of the support rod 6 and helps to prevent the support rod 6 from leaving the movable groove 20 on the same side.

[0037] A vibration motor 15 is provided at the bottom of the testing table 7, a mounting groove 21 is provided at the top of the base 1, and a vibration assembly is provided at the bottom of the base plate 4. The vibration assembly includes a stopper 23 fixedly mounted on the bottom end of the base plate 4, a reduction motor 25 on the inner wall of the bottom end of the mounting groove 21, and a cam 24 is fixed on the side wall of the output shaft of the reduction motor 25. Two symmetrically distributed movable grooves 3 are provided at the top of the base 1, and support rods 18 are fixedly installed in the two movable grooves 3. Support blocks 17 are slidably sleeved on the side walls of the two support rods 18. The tops of the two support blocks 17 are fixedly connected to the bottom end of the base plate 4, and the side walls of the two support rods 18 are sleeved with two symmetrically distributed first springs 16. The support block 17 is located between the two first springs 16 on the same side.

[0038] The cam 24 is driven to rotate by the reduction motor 25. When the cam 24 rotates, it pushes the block 23 installed on the base plate 4. The block 23 pushes the base plate 4 to slide above the base 1. The base plate 4 slides in the movable groove 3 on the same side with the support block 17. The support block 17 slides on the support rod 18 on the same side, which is beneficial to maintaining the stability of the sliding of the base plate 4. When the support block 17 slides on the support rod 18 on the same side, the support block 17 pushes the first spring 16 on the same side to contract. When the cam 24 disengages from the block 23, the first spring 16 gives the support block 17 on the same side an elastic force, thereby causing the support block 17 to slide synchronously with the base plate 4, thereby causing the inner lining to shake, achieving a further vibration effect, and through the cooperation of the vibration motor 15, the inner lining is vibrated at multiple angles, which is beneficial to improving the detection effect of the equipment.

[0039] Stabilizing blocks are fixedly installed on both sides of the two support blocks 17, and the inner walls of the two movable grooves 3 are provided with stabilizing grooves that match the stabilizing blocks on the same side. When the support block 17 slides in the movable groove 3 on the same side, the support block 17 slides in the stabilizing groove on the same side with the stabilizing block. The cooperation between the stabilizing block and the stabilizing groove is conducive to maintaining the stability of the sliding of the support block 17, and thus is conducive to maintaining the stability of the sliding of the base plate 4.

[0040] Two symmetrically distributed slide grooves 2 are provided at the top of the base 1, and sliders 22 are slidably installed in the two slide grooves 2. The top ends of the two sliders 22 are fixedly connected to the bottom end of the base plate 4. When the base plate 4 slides above the base 1, the base plate 4 slides with the sliders 22 in the slide grooves 2 on the same side. The cooperation between the sliders 22 and the slide grooves 2 is conducive to maintaining the stability of the movement of the base plate 4 with the lining.

[0041] The implementation principle of the embodiment of the present utility model is: when the equipment is used, the staff places the base 1 at the installation location, and then fixes it to the installation location through the existing bolts through the through groove opened at the top of the support plate 14 on the same side, and then the staff places the lining on the top of the detection table 7. The top of the detection table 7 is provided with a clamping assembly, which plays the role of clamping and fixing the lining. When the lining is clamped and fixed, the vibration motor 15 is used to drive the detection table 7 to vibrate, thereby playing the role of vibrating the lining to achieve the detection effect, and a support assembly is provided between the detection table 7 and the bottom plate 4, which can play the role of supporting and stabilizing the detection table 7, which is beneficial to maintaining the stability of the vibration of the detection table 7. Subsequently, the vibration assembly can drive the bottom plate 4, the detection table 7 and the lining to vibrate synchronously, which is beneficial to maintaining the detection effect of the equipment. When the lining vibrates, four scanners 10 are passed.

[0042] The above are all preferred embodiments of the present invention, and are not intended to limit the scope of protection of the present invention. Therefore, any equivalent changes made based on the structure, shape, and principle of the present invention should be included in the scope of protection of the present invention.

Claims

1. A seismic detection device for the inner lining of a blister packaging box, comprising a base (1), characterized in that: Support plates (14) are fixedly installed on both sides of the base (1), and through holes are provided on the surfaces of the support plates (14). A bottom plate (4) is slidably installed above the base (1), and a detection platform (7) is provided above the bottom plate (4). Columns (8) are fixedly installed at the four corners of the top of the detection platform (7). A clamping assembly is provided at the bottom of the detection platform (7). A mounting block (9) is fixedly installed on one side of the four diagonal columns (8), and a scanner (10) is fixedly installed on the side of the mounting block (9) away from the column (8) on the same side. A supporting assembly is provided between the detection platform (7) and the bottom plate (4), and a vibration motor (15) is provided at the bottom end of the detection platform (7). A mounting slot (21) is provided at the top of the base (1), and a vibration assembly is provided at the bottom end of the bottom plate (4).

2. The anti-seismic detection device for the liner of a blister packaging box according to claim 1, characterized in that: The clamping assembly comprises four mounting plates (11) fixedly mounted on the top of the detection platform (7), the inner sides of the four mounting plates (11) are all fixedly mounted with cylinders (13), the piston shaft ends of the four cylinders (13) are all fixedly mounted with clamping plates (12), and the four clamping plates (12) are all fixedly mounted with rubber pads on the side away from the mounting plates (11) on the same side.

3. The anti-seismic detection device for the liner of a blister packaging box according to claim 1, characterized in that: The support assembly comprises pillars (5) fixedly mounted on the four corners of the top of the base plate (4), the tops of the four pillars (5) are each provided with a movable groove (20), a support rod (6) is slidably mounted in the movable groove (20), a second spring (19) is fixedly mounted between the bottom end of the support rod (6) and the inner wall of the bottom end of the movable groove (20) in the same group, and the top ends of the four support rods (6) are each fixedly connected to the bottom end of the detection platform (7).

4. The anti-seismic detection device for the liner of a blister packaging box according to claim 3, characterized in that: Two symmetrically distributed limiting blocks are fixedly mounted on the side walls of the bottom ends of the four support rods (6), and the inner wall of the movable groove (20) is provided with a limiting groove that matches the limiting blocks on the same side.

5. The anti-seismic detection device for the liner of a blister packaging box according to claim 1, characterized in that: The vibration component includes a stopper (23) fixedly mounted on the bottom end of the base plate (4), a reduction motor (25) on the inner wall of the bottom end of the mounting groove (21), a cam (24) fixedly sleeved on the side wall of the output shaft of the reduction motor (25), two symmetrically distributed movable grooves (3) are provided at the top end of the base (1), support rods (18) are fixedly mounted in the two movable grooves (3), support blocks (17) are slidably sleeved on the side walls of the two support rods (18), the top ends of the two support blocks (17) are fixedly connected to the bottom end of the base plate (4), and two symmetrically distributed first springs (16) are sleeved on the side walls of the two support rods (18), and the support block (17) is located between the two first springs (16) on the same side.

6. The anti-seismic detection device for the liner of a blister packaging box according to claim 5, characterized in that: Stabilizing blocks are fixedly mounted on both sides of the two support blocks (17), and the inner walls of the two movable grooves (3) are provided with stabilizing grooves that match the stabilizing blocks on the same side.

7. The anti-seismic detection device for the liner of a blister packaging box according to claim 1, characterized in that: The top of the base (1) is provided with two symmetrically distributed slide grooves (2), and sliders (22) are slidably installed in the two slide grooves (2), and the tops of the two sliders (22) are fixedly connected to the bottom of the base plate (4).