A seismic limiting filling carrier belt

By introducing reinforcing ribs, buffer layers, and magnetic push-in/push-out mechanisms into the carrier tape, the problems of insufficient carrier tape positioning and structural strength are solved, enabling stable transportation and protection of electronic components.

CN224512018UActive Publication Date: 2026-07-17KUNSHAN XUANNUO ELECTRONICS PACKAGING MATERIAL CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
KUNSHAN XUANNUO ELECTRONICS PACKAGING MATERIAL CO LTD
Filing Date
2025-07-11
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

Existing carrier tapes lack sufficient restraint for electronic components, and are deficient in cushioning and structural strength, making components prone to loosening and collision damage during transportation. They also have structural design flaws, poor fatigue resistance, and reduced service life.

Method used

It adopts a belt design, including a base belt, reinforcing ribs and reinforcing strips, combined with a polyurethane foam buffer layer, protective pads and magnetic push-in and push-out mechanism to enhance the limiting and buffering performance. It uses glass fiber and carbon fiber reinforcement materials to improve structural strength and is equipped with wear-resistant and anti-static coating.

Benefits of technology

It achieves precise positioning and stable transmission of electronic components, reduces the risk of vibration damage, improves the structural strength and service life of the carrier belt, enhances shock resistance, and prevents deformation and wear.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses an anti-vibration limiting filling carrier tape, relating to the field of carrier tape technology. It includes a tape body comprising a base tape, with connecting edges fixedly connected to the sidewalls of the base tape. Multiple positioning holes are formed on the surface of the connecting edges, and multiple receiving grooves are formed on the surface of the base tape. The positioning holes and receiving grooves are positioned correspondingly. A first reinforcing rib and a second reinforcing rib are fixedly connected to the cavities at both ends of the base tape, respectively. Multiple reinforcing strips are fixedly connected to the cavities of the base tape. The tape body provided by this utility model, while limiting electronic components to avoid collisions, simultaneously enhances buffering and structural strength, thereby solving the problems of insufficient limiting performance for electronic components and lack of buffering and structural strength in existing carrier tapes.
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Description

Technical Field

[0001] This utility model relates to the field of carrier belt technology, specifically to an anti-vibration limiting filling carrier belt. Background Technology

[0002] Carrier tape is a strip-shaped product used for the packaging, transportation and storage of electronic components. It typically has a groove to hold electronic components, positioning holes for precise positioning and a variety of functional structures that can protect the components and adapt to automated production.

[0003] According to the public announcement (CN116280699A), the subject is "Carrier Tape". It includes a carrier tape body and several recessed cavities for placing components along its length. When packaging electronic products, the carrier tape body of the present invention can ensure the stability of the packaging, improve the strength of the carrier tape body, and will not affect the flatness of the bottom surface of the cavity, thus avoiding scratches and deformation caused by unstable packaging of electronic components.

[0004] The above technical solution has the following shortcomings;

[0005] The above-mentioned solution has insufficient limiting performance for electronic components in actual use. The hole design is simple and lacks a precise limiting structure. During transportation and vibration, the components are prone to collision with the hole wall, resulting in damage such as pin bending and loose solder joints. In addition, the structural strength is lacking and the material strength is insufficient. It is easy to deform under pressure and impact, and critical parts such as holes and positioning holes are damaged. The structural design has defects. The key areas are too thin and lack reinforcement structure. The fatigue resistance is poor. After cyclic stress, cracks and wear are prone to occur, affecting the service life and protection effect. Utility Model Content

[0006] In view of the problems existing in the current earthquake-resistant limiting filling carrier belt, this utility model is proposed.

[0007] Therefore, the purpose of this utility model is to provide a shock-resistant limiting filler carrier tape, which solves the problems of insufficient limiting performance of existing carrier tapes for electronic components, lack of buffering and insufficient structural strength.

[0008] To achieve the above objectives, this utility model provides the following technical solution:

[0009] An anti-seismic limiting filling carrier belt includes a belt body, the belt body including a base belt, a connecting edge fixedly connected to the side wall of the base belt, a plurality of positioning holes formed on the surface of the connecting edge, a plurality of receiving grooves formed on the surface of the base belt, the positioning holes and receiving grooves being positioned correspondingly, a first reinforcing rib and a second reinforcing rib being fixedly connected to the cavities at both ends of the base belt, and a plurality of reinforcing rib strips being fixedly connected to the cavities of the base belt.

[0010] Each of the receiving slots has a slot on its sidewall. The first reinforcing rib has multiple push-in mechanisms, and the second reinforcing rib has multiple push-out mechanisms. A protective gasket is fixedly connected to the top of the cavity of each receiving slot. The baseband includes a polyurethane foam buffer layer, and a polycarbonate wear-resistant layer is fixedly connected to the surface of the polyurethane foam buffer layer.

[0011] Preferably, the insertion mechanism includes a first sliding opening, a first limiting slider, a positive magnetic block and a negative magnetic block for the insertion rod. The top of the first reinforcing rib and the baseband are provided with corresponding first sliding openings and are slidably connected to the first limiting slider. Multiple insertion rods are slidably connected inside the cavity of the first reinforcing rib. The top of each insertion rod is fixedly connected to the bottom of the first limiting slider. One end of the insertion rod passes through the side wall of the first reinforcing rib and extends into the receiving groove. The bottom of each insertion rod is fixedly connected to a positive magnetic block. Multiple negative magnetic blocks are fixedly connected to the bottom of the cavity of the first reinforcing rib. The positive magnetic blocks and the negative magnetic blocks are magnetically connected.

[0012] Preferably, the ejection mechanism includes a second sliding opening, a second limiting slider, and an ejection rod. The top of the second reinforcing rib and the base strip are provided with corresponding second sliding openings and are slidably connected to the second limiting slider. Multiple ejection rods are slidably connected inside the cavity of the second reinforcing rib. The top of each ejection rod is fixedly connected to the bottom of the second limiting slider. One end of the ejection rod passes through the side wall of the second reinforcing rib and extends into the receiving groove.

[0013] Preferably, the first and second reinforcing ribs are glass fiber reinforced polypropylene ribs, and the reinforcing ribs are made of carbon fiber reinforced composite material.

[0014] Preferably, the protective pad includes a silicone buffer layer, and the surface of the silicone buffer layer is provided with a polytetrafluoroethylene wear-resistant coating.

[0015] Furthermore, one end of both the push-in rod and the push-out rod is fixedly connected to a protective guide head, which is a nitrile rubber guide head and has an arc-shaped transition surface on its surface.

[0016] Preferably, the surface of the belt is provided with an epoxy resin insulating coating and a graphene-modified polyurethane antistatic coating.

[0017] The technical effects and advantages provided by this utility model in the above technical solution are as follows:

[0018] 1. This utility model utilizes the precise fit between the connecting edge and the positioning hole to achieve the transmission and positioning of the belt. By using the bayonet set on the side wall of the receiving groove in combination with the continuous pressing force of the top-in mechanism, a multi-directional limiting structure is formed, which effectively prevents electronic components from loosening, popping out or shifting during transportation or operation, solves the problem of insufficient limiting of existing carrier belts, and ensures the stable placement of electronic components.

[0019] 2. This utility model utilizes a polyurethane foam buffer layer on the baseband to absorb external vibration and impact. It also uses protective pads and a silicone buffer layer to prevent direct collision between electronic components and the top of the receiving tank. Furthermore, it employs nitrile rubber protective guides at the ends of the push-in rod and push-out rod to reduce contact damage. This multi-buffered structure significantly enhances the shock resistance protection of electronic components and reduces the risk of damage caused by vibration.

[0020] 3. This utility model utilizes the glass fiber reinforced polypropylene material of the first and second reinforcing ribs and the carbon fiber reinforced composite material of the reinforcing ribs to synergistically enhance the overall rigidity of the base belt. It also utilizes the polycarbonate wear-resistant layer to improve surface wear resistance and the epoxy resin insulating coating and graphene modified polyurethane antistatic coating to extend service life and expand protective functions. This solves the problems of insufficient strength and easy deformation of existing carrier belt structures, and improves the load-bearing capacity and service life of the carrier belt. Attached Figure Description

[0021] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings.

[0022] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0023] Figure 2 This is a partial top sectional view of the present invention;

[0024] Figure 3 This is a partial front sectional view of the present invention;

[0025] Figure 4 This is a side sectional view of the present invention;

[0026] Figure 5 This is a three-dimensional sectional view of the baseband of this utility model.

[0027] Explanation of reference numerals in the attached figures:

[0028] 1. Belt body; 2. Base belt; 3. Connecting edge; 4. Positioning hole; 5. Receiving groove; 6. First reinforcing rib; 7. Second reinforcing rib; 8. Reinforcing rib strip; 9. Bayonet; 10. Protective pad; 11. Polyurethane foam buffer layer; 12. Polycarbonate wear-resistant layer; 13. First sliding opening; 14. First limiting slider; 15. Push-in rod; 16. Positive magnetic block; 17. Negative magnetic block; 18. Second sliding opening; 19. Second limiting slider; 20. Push-out rod; 21. Silicone buffer layer; 22. Protective guide head. Detailed Implementation

[0029] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings.

[0030] This utility model discloses an anti-seismic limiting filling carrier belt.

[0031] This utility model provides, for example Figure 1-5 The seismic limiting filling carrier belt shown includes a belt body 1, the belt body 1 includes a base belt 2, the side wall of the base belt 2 is fixedly connected to a connecting edge 3, the surface of the connecting edge 3 is provided with a plurality of positioning holes 4, the surface of the base belt 2 is provided with a plurality of receiving grooves 5, the positioning holes 4 and the receiving grooves 5 are positioned correspondingly, a first reinforcing rib 6 and a second reinforcing rib 7 are fixedly connected to the cavities at both ends of the base belt 2 respectively, and a plurality of reinforcing rib strips 8 are fixedly connected to the cavity of the base belt 2.

[0032] Each receiving slot 5 has a bayonet 9 on its side wall. The first reinforcing rib 6 has multiple insertion mechanisms, and the second reinforcing rib 7 has multiple ejection mechanisms. A protective gasket 10 is fixedly connected to the top of each receiving slot 5. The baseband 2 includes a polyurethane foam buffer layer 11, and a polycarbonate wear-resistant layer 12 is fixedly connected to the surface of the polyurethane foam buffer layer 11. The connection edge 3 and positioning hole 4 facilitate precise positioning of the belt 1 during transmission. The receiving slots 5 are used to place electronic components, providing them with storage space. The first reinforcing rib 6, second reinforcing rib 7, and reinforcing ribs 8 significantly enhance the structural strength of the baseband 2, preventing deformation and twisting of the belt 1 under stress during use, and improving... The overall load-bearing capacity and service life of the carrier tape are improved by using the bayonet 9 to limit the electronic components in the receiving slot 5 and prevent them from popping out. The push-in and push-out mechanisms facilitate the insertion and removal of electronic components and enhance the limiting effect on electronic components. The protective pad 10 prevents electronic components from directly colliding with the top of the receiving slot 5, providing a buffer protection effect. The polyurethane foam buffer layer 11 has good buffering performance and can reduce the impact of external vibration on electronic components. The polycarbonate wear-resistant layer 12 can improve the surface wear resistance of the base tape 2 and extend the service life of the carrier tape, thereby solving the problems of insufficient limiting performance of existing carrier tapes for electronic components, lack of buffering and insufficient structural strength.

[0033] In order to insert the electronic components into the bayonet 9, such as Figure 1-4 As shown, the insertion mechanism includes a first sliding opening 13, a first limiting slider 14, insertion rods 15, a positive magnetic block 16, and a negative magnetic block 17. The tops of the first reinforcing rib 6 and the baseband 2 are provided with corresponding first sliding openings 13, and are slidably connected to the first limiting slider 14. Multiple insertion rods 15 are slidably connected within the cavity of the first reinforcing rib 6. The top of each insertion rod 15 is fixedly connected to the bottom of the first limiting slider 14. One end of each insertion rod 15 passes through the side wall of the first reinforcing rib 6 and extends into the receiving groove 5. The bottom of each insertion rod 15 is fixed. A positive magnetic block 16 is connected to the cavity bottom of the first reinforcing rib 6, and multiple negative magnetic blocks 17 are fixedly connected to it. The positive magnetic block 16 and the negative magnetic block 17 are magnetically connected. The first limiting slider 14 can drive the push rod 15 to slide in the first sliding opening 13, so that the push rod 15 extends into the receiving groove 5 to press and limit the electronic components. The magnetic connection between the positive magnetic block 16 and the negative magnetic block 17 can provide a continuous pressing force for the push rod 15, ensuring the stability of the push-in limit and preventing the electronic components from loosening or shifting during transportation or use.

[0034] In order to push the electronic components out of the bayonet 9, such as Figure 1-4As shown, the ejection mechanism includes a second sliding opening 18, a second limiting slider 19, and an ejection rod 20. The top of the second reinforcing rib 7 and the base strip 2 are provided with corresponding second sliding openings 18, and the second limiting slider 19 is slidably connected to them. Multiple ejection rods 20 are slidably connected inside the cavity of the second reinforcing rib 7. The top of each ejection rod 20 is fixedly connected to the bottom of the second limiting slider 19. One end of the ejection rod 20 passes through the side wall of the second reinforcing rib 7 and extends into the receiving groove 5. The second limiting slider 19 can be used to drive the ejection rod 20 to slide in the second sliding opening 18, so that the ejection rod 20 extends into the receiving groove 5 to eject the electronic components. The operation is simple and convenient, making it easy to quickly retrieve electronic components and improve work efficiency.

[0035] To prevent the carrier belt from deforming, twisting, or breaking during use, such as Figure 2-4 As shown, the first reinforcing rib 6 and the second reinforcing rib 7 are glass fiber reinforced polypropylene ribs, and the reinforcing rib 8 is made of carbon fiber reinforced composite material. The glass fiber reinforced polypropylene ribs have high strength and rigidity, and are lightweight, which can effectively enhance the structural stability of both ends of the base belt 2. The carbon fiber reinforced composite material has high strength, high modulus and corrosion resistance. The use of this material for the reinforcing rib 8 can significantly improve the overall structural strength and impact resistance of the base belt 2, and prevent the carrier belt from deforming, twisting or breaking during use.

[0036] To provide basic buffer protection for electronic components, such as Figure 2-4 As shown, the protective pad 10 includes a silicone buffer layer 21. The surface of the silicone buffer layer 21 is provided with a polytetrafluoroethylene wear-resistant coating. The silicone buffer layer 21 has good elasticity and cushioning performance, which can reduce the collision and vibration between the electronic components and the top of the receiving groove 5. The polytetrafluoroethylene wear-resistant coating has an extremely low coefficient of friction and good wear resistance, which can prevent the surface of the electronic components from being worn due to friction with the protective pad 10, thus protecting the appearance and performance of the electronic components.

[0037] To provide cushioning and protection when in contact with electronic components, such as Figure 2-4 As shown, a protective guide head 22 is fixedly connected to one end of both the push-in rod 15 and the push-out rod 20. The protective guide head 22 is made of nitrile rubber and has an arc-shaped transition surface. The nitrile rubber has good elasticity and wear resistance. The protective guide head 22 can prevent the push-in rod 15 and the push-out rod 20 from directly and rigidly contacting the electronic components, thus playing a buffering and protective role. The arc-shaped transition surface can prevent the surface of the electronic components from being scratched during the push-in and push-out process, further protecting the electronic components.

[0038] To achieve insulation and anti-static protection, such as Figure 1-4As shown, the surface of the tape 1 is provided with an epoxy resin insulating coating and a graphene-modified polyurethane antistatic coating. The epoxy resin insulating coating can effectively block current and prevent electronic components from being damaged by leakage. The graphene-modified polyurethane antistatic coating has excellent antistatic properties and can prevent the accumulation of static electricity on the surface of the carrier tape, thereby avoiding damage to electronic components by static electricity and ensuring the quality and performance of electronic components.

[0039] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. An anti-shock limit filling carrier tape comprising a tape body (1), characterized in that, The belt body (1) includes a base belt (2), a connecting edge (3) is fixedly connected to the side wall of the base belt (2), a plurality of positioning holes (4) are opened on the surface of the connecting edge (3), a plurality of receiving grooves (5) are opened on the surface of the base belt (2), the positioning holes (4) and the receiving grooves (5) are in corresponding positions, a first reinforcing rib (6) and a second reinforcing rib (7) are fixedly connected to the cavities at both ends of the base belt (2), and a plurality of reinforcing ribs (8) are fixedly connected to the cavity of the base belt (2); Each of the receiving slots (5) has a slot (9) on its sidewall. The first reinforcing rib (6) has multiple push-in mechanisms, and the second reinforcing rib (7) has multiple push-out mechanisms. A protective gasket (10) is fixedly connected to the top of the cavity of each of the receiving slots (5). The baseband (2) includes a polyurethane foam buffer layer (11), and a polycarbonate wear-resistant layer (12) is fixedly connected to the surface of the polyurethane foam buffer layer (11).

2. The shock limiting filled carrier tape of claim 1, wherein, The insertion mechanism includes a first sliding opening (13), a first limiting slider (14), an insertion rod (15), a positive magnetic block (16), and a negative magnetic block (17). The first reinforcing rib (6) and the baseband (2) are provided with corresponding first sliding openings (13) and are slidably connected to the first limiting slider (14). Multiple insertion rods (15) are slidably connected inside the cavity of the first reinforcing rib (6). The top of each insertion rod (15) is fixedly connected to the bottom of the first limiting slider (14). One end of the insertion rod (15) passes through the side wall of the first reinforcing rib (6) and extends into the receiving groove (5). The bottom of each insertion rod (15) is fixedly connected to the positive magnetic block (16). Multiple negative magnetic blocks (17) are fixedly connected to the bottom of the cavity of the first reinforcing rib (6). The positive magnetic block (16) and the negative magnetic block (17) are magnetically connected.

3. The shock limiting filled carrier tape of claim 1, wherein, The ejection mechanism includes a second sliding opening (18), a second limiting slider (19), and an ejection rod (20). The top of the second reinforcing rib (7) and the base strip (2) are provided with corresponding second sliding openings (18) and are slidably connected to the second limiting slider (19). Multiple ejection rods (20) are slidably connected inside the cavity of the second reinforcing rib (7). The top of each ejection rod (20) is fixedly connected to the bottom of the second limiting slider (19). One end of the ejection rod (20) passes through the side wall of the second reinforcing rib (7) and extends into the receiving groove (5).

4. The shock limiting filled carrier tape of claim 1, wherein, The first reinforcing rib (6) and the second reinforcing rib (7) are glass fiber reinforced polypropylene ribs, and the reinforcing rib (8) is made of carbon fiber reinforced composite material.

5. The shock limiting filled carrier tape of claim 1, wherein, The protective pad (10) includes a silicone buffer layer (21), and the surface of the silicone buffer layer (21) is provided with a polytetrafluoroethylene wear-resistant coating.

6. The shock and position limiting filled carrier tape of claim 2, wherein, One end of the push-in rod (15) and the push-out rod (20) is fixedly connected to a protective guide head (22). The protective guide head (22) is a nitrile rubber guide head, and the surface of the protective guide head (22) is provided with an arc-shaped transition surface.

7. The shock and position limiting filled carrier tape of claim 1, wherein, The surface of the belt body (1) is provided with an epoxy resin insulating coating and a graphene modified polyurethane antistatic coating.