Electronic component anti-static packaging tube
By using components such as inflatable protective sleeves, magnetic blocks, electromagnets, sealing bladders, and rubber bladders in the packaging tube, the problems of collisions and static electricity caused by shaking during transportation are solved, achieving effective protection and cleaning of electronic components.
Patent Information
- Application Number
- CN202510139007.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-08
- Publication Date
- 2025-12-05
- Estimated Expiration
- 2045-02-08
AI Technical Summary
Existing packaging tubes are prone to damage to electronic components due to shaking during transportation, and may also generate static electricity.
The packaging tube body with a butterfly-shaped protective sleeve is used. The protective sleeve is expanded and contracted by an air pump. Dust is cleaned and protected by magnetic blocks and electromagnets. Sealing and fixing are achieved using sealing bladders and rubber bladders. Heat generated by lime powder and water is used to melt the glue for removal. Dust removal is achieved by combining an elastic membrane and an air duct.
It effectively prevents static electricity, cleans dust, avoids damage and falling of electronic components, and improves protection during transportation.
Smart Images

Figure CN119873138B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of packaging tube technology, specifically an antistatic packaging tube for electronic components. Background Technology
[0002] During transportation, electronic components may rub against each other due to shaking. This friction can cause static electricity to be generated in the electronic components. Therefore, packaging tubes are needed to package them to prevent static electricity from being generated by friction between electronic components.
[0003] Currently, existing packaging tubes are still prone to shaking during transportation. During this shaking, the packaging tubes may collide, and the resulting impact force may damage the electronic components inside the packaging tube. Therefore, this invention provides an anti-static packaging tube for electronic components. Summary of the Invention
[0004] In order to overcome the shortcomings of the prior art, at least one technical problem raised in the background art is solved.
[0005] The technical solution adopted by this invention to solve its technical problem is as follows: An anti-static packaging tube for electronic components, comprising a packaging tube body; a butterfly-shaped protective sleeve is fixedly installed on the outer wall of the packaging tube body; the protective sleeve is hollow and made of rubber; an air pump is connected to the protective sleeve through a pipe; a vent pipe is connected to one side of the protective sleeve; a vent valve is fixedly installed on the vent pipe. Electronic components are placed inside the packaging tube body for protection, and then the packaging tube body is placed in a packaging box. The air pump (a miniature air pump) is then started to inflate the protective sleeve, causing it to expand and contract to protect the packaging tube body. Simultaneously, because the protective sleeve is made of rubber, it further prevents static electricity generation. Furthermore, during the expansion and contraction of the protective sleeve, dust on the surface of the packaging tube body can be pushed away for cleaning. After the protective sleeve has expanded to the appropriate position, the air pump is turned off. When it is necessary to vent the protective sleeve, the vent valve is opened, and the air inside the protective sleeve is discharged from the vent pipe, allowing the protective sleeve to return to its original position.
[0006] Preferably, a magnetic block is fixedly connected to the telescopic end of the protective sleeve, and an electromagnet attracted by the magnetic block is slidably connected to the inner wall of the packaging tube body. Before the electronic components are placed into the packaging tube body, the electromagnet is activated, and the magnetic block moves when the protective sleeve telescopically extends. At this time, because the magnetic block and the electromagnet are attracted, the magnetic block drives the electromagnet to push away the dust in the packaging tube body for cleaning. Then, the air in the protective sleeve is deflated and restored, causing the magnetic block to drive the electromagnet to return to its original position. Then, the electromagnet is turned off, and the electronic components are placed into the packaging tube body. The protective sleeve then telescopically protects the packaging tube body. When it is necessary to remove the electronic components from the packaging tube body, the electromagnet can be activated, causing the electromagnet to attract the magnetic block. Then, when the protective sleeve telescopically extends, the magnetic block drives the electromagnet to push out the electronic components from the protective sleeve.
[0007] Preferably, the protective sleeve has a set of connecting tubes connected inside, and the other end of the set of connecting tubes is connected to a hollow sealing bladder. The sealing bladder is made of rubber. A first control valve is fixedly installed on the connecting tube. A set of fixing plates is fixedly connected to the inner walls of both ends of the packaging tube body. Double-sided tape is adhered to the side of each fixing plate that is close to the other. When the packaging tube body is placed in the transport packaging box and the protective sleeve has been expanded and contracted, the sealing bladder can be adhered to the double-sided tape of the fixing plate. Then, the first control valve is opened, and the air pump continues to inflate the protective sleeve. At this time, the gas in the protective sleeve will enter the sealing bladder from the connecting tube, causing the sealing bladder to expand and seal the port of the packaging tube body, thereby sealing the electronic components inside the packaging tube body and preventing the electronic components from falling out of the packaging tube body during transportation.
[0008] Preferably, a guide block is connected to one side of the sealing bladder, and a conduit is connected inside the guide block. The other end of the conduit is connected to a hollow rubber bladder. The rubber bladder is semi-circular and contains adhesive. Shrinkage holes are evenly distributed on the curved surface of the rubber bladder. A second control valve is fixedly installed on the conduit. After the sealing bladder seals the port of the packaging tube body, the rubber bladder contacts the bottom surface of the packaging box. Then, the second control valve is opened, and the air pump continues to inflate the protective sleeve, allowing the gas from the sealing bladder to enter the rubber bladder through the conduit. The rubber bladder expands, ensuring full contact with the bottom surface of the packaging box. When the air pressure in the rubber bladder reaches a certain level, all the shrinkage holes on the rubber bladder open, allowing the adhesive inside the rubber bladder to flow from the shrinkage holes onto the packaging box. The rubber bladder then adheres to the packaging box with the help of the adhesive, further securing the protective sleeve inside the packaging box. This prevents static electricity from friction between the protective sleeve and the packaging box, and also prevents the packaging tube body from impacting the packaging box due to transportation shaking, thus further protecting the electronic components inside the packaging tube body.
[0009] Preferably, the rubber bladder contains a sealing ring, the inner wall of which is fixedly connected to a partition. A circular tube is fixedly connected inside the partition, and a third control valve is fixedly connected to the circular tube. A water inlet pipe and a powder inlet pipe are connected inside the sealing ring. A water inlet check valve and a powder inlet check valve are fixedly installed on the water inlet pipe and the powder inlet pipe, respectively. An outlet pipe is connected inside the sealing ring, and an outlet check valve is fixedly installed on the outlet pipe. The water inlet check valve and the powder inlet check valve are opened, allowing lime powder to enter the sealing ring from the powder inlet pipe for storage. The lime powder storage height is one-third of the partition. Then, the powder inlet check valve is closed, and water is poured into the sealing ring from the water inlet pipe. Once the container is full, close the inlet check valve. After the rubber bladder is glued to the transport box, and the packaging tube needs to be removed from the transport box, open the third control valve. At this time, the water in the sealing ring will enter the lime powder through the round pipe, causing the water and lime powder to mix and generate heat. This heat will be transferred to the rubber bladder, melting the glue and making it easier to remove the packaging tube from the transport box. The glue is a hot melt adhesive, and the heat generated can also melt the glue in the shrinkage hole on the rubber bladder, preventing the shrinkage hole from being stuck by the glue and unable to open. After removal, open the outlet check valve on the outlet pipe, and then continue to inject water into the sealing ring through the inlet pipe, so that the mixed lime and water in the sealing ring are discharged from the outlet pipe.
[0010] Preferably, a connecting block is fixedly connected to the inner wall of the cavity formed by the water inlet pipe and the sealing ring near the partition. The connecting block is made of a material that expands when heated. When heat is generated inside the sealing ring, the connecting block will expand when heated, causing the connecting block to push the water inside the connecting ring, thereby pushing all the water inside the connecting ring from the round pipe to mix with the lime powder, thus improving the mixing effect of water and lime powder.
[0011] Preferably, the partition is rotatably connected to the inner wall of the cavity formed by the water inlet pipe and the sealing ring. A first magnetic plate is fixedly connected to the surface of the rotating shaft. An elastic rope is fixedly connected to the side of the first magnetic plate away from the partition. The other end of the elastic rope is fixedly connected to the inner wall of the sealing ring. The connecting block is hollow inside. A second magnetic plate that attracts the first magnetic plate is fixedly connected to the side of the connecting block near the partition. When the connecting block expands, the height of the second magnetic plate will rise. At this time, the second magnetic plate will drive the first magnetic plate to rotate, thereby stirring the lime powder and further mixing the lime powder with water, generating more heat. Afterwards, when the height of the second magnetic plate reaches the point where it can no longer attract the first magnetic plate, the elastic rope will pull the first magnetic plate, causing the first magnetic plate to stir and mix the lime powder and water again.
[0012] Preferably, a hollow block is fixedly connected to the inner wall of the end of the packaging tube away from the magnetic block. An air outlet is uniformly connected to the side of the hollow block closest to the magnetic block. An elastic membrane is fixedly connected to the inner wall of the air outlet, and contraction holes are uniformly formed on the elastic membrane. A venting pipe is connected to the side of the hollow block away from the air outlet, and a connector is connected to the other end of the venting pipe. The connector is fixedly connected to the inner wall of the venting pipe. When the venting pipe releases air from the protective sleeve, the released gas enters the hollow block through the venting pipe. When the air pressure inside the hollow block reaches a certain level, all the contraction holes on the elastic membrane open, allowing the gas inside the hollow block to be evenly blown into the packaging tube body from the air outlet. Simultaneously, the gas can also be blown onto the electronic components, thereby achieving the effect of dust removal from the packaging tube body and the electronic components.
[0013] The beneficial effects of this invention are as follows:
[0014] 1. The electronic components are protected by placing them inside the packaging tube. The packaging tube is then placed in a box. The air pump (a miniature air pump) is then activated to inflate the protective sleeve. The protective sleeve expands and contracts to protect the packaging tube. Because the protective sleeve is made of rubber, it further prevents static electricity. Additionally, the expansion and contraction of the protective sleeve helps to remove dust from the surface of the packaging tube for cleaning.
[0015] 2. Before the electronic components are placed into the packaging tube, the electromagnet is activated. As the protective sleeve extends and retracts, it moves the magnetic block. Because the magnetic block attracts the electromagnet, it pushes away dust from inside the packaging tube for cleaning. Then, the air inside the protective sleeve is deflated, causing the magnetic block to move the electromagnet back to its original position. The electromagnet is then deactivated. The electronic components are then placed into the packaging tube. The protective sleeve extends and retracts to protect the packaging tube. When it is necessary to remove the electronic components from the packaging tube, the electromagnet is activated again, attracting the magnetic block. As the protective sleeve extends and retracts, the magnetic block moves the electromagnet to push the electronic components out of the protective sleeve. Attached Figure Description
[0016] The invention will now be further described with reference to the accompanying drawings.
[0017] Figure 1 This is a perspective view of the present invention;
[0018] Figure 2 yes Figure 1 Rear view;
[0019] Figure 3 This is a three-dimensional structural diagram of the sealing bladder in this invention;
[0020] Figure 4 yes Figure 3 Rear view;
[0021] Figure 5 This is a cross-sectional view of the rubber bladder of the present invention;
[0022] Figure 6 This is a 3D structural diagram of the connector;
[0023] Figure 7 It is a schematic diagram of the three-dimensional structure of a hollow block;
[0024] In the diagram: 1. Packaging tube body; 2. Protective sleeve; 3. Vent pipe; 4. Vent valve; 5. Air pump; 6. Magnetic block; 7. Electromagnet; 8. Connecting pipe; 9. First control valve; 10. Sealing bladder; 11. Fixing plate; 13. Guide tube; 14. Second control valve; 15. Rubber bladder; 16. Sealing ring; 17. Partition plate; 18. Round tube; 19. Third control valve; 20. Water inlet pipe; 21. Powder inlet pipe; 22. Water outlet pipe; 23. Connecting block; 24. First magnetic plate; 25. Second magnetic plate; 26. Rotating shaft; 27. Elastic rope; 28. Guide block; 29. Hollow block; 30. Air guide pipe; 31. Connector; 32. Air outlet; 33. Elastic membrane. Detailed Implementation
[0025] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.
[0026] Example 1
[0027] like Figures 1 to 5 As shown in the embodiment of the present invention, an anti-static packaging tube for electronic components includes a packaging tube body 1; a butterfly-shaped protective sleeve 2 is fixedly installed on the outer wall of the packaging tube body 1, the protective sleeve 2 is hollow and made of rubber, an air pump 5 is connected to the protective sleeve 2 through a pipe, a vent pipe 3 is connected to one side of the protective sleeve 2, and a vent valve 4 is fixedly installed on the vent pipe 3. Electronic components are protected by placing them inside the packaging tube body 1, then placing the packaging tube body 1 in a packaging box, and then starting the air pump. Pump 5, or air pump 5, is a miniature air pump that inflates the protective sleeve 2. During this process, the protective sleeve 2 will extend and retract to protect the packaging tube body 1. Also, because the protective sleeve 2 is made of rubber, it can further prevent static electricity. Furthermore, when the protective sleeve 2 extends and retracts, it can push away and clean the dust on the surface of the packaging tube body 1. After the protective sleeve 2 extends and retracts to the appropriate position, the air pump 5 is turned off. When it is necessary to release the air from the protective sleeve 2, the air release valve 4 is opened. At this time, the air inside the protective sleeve 2 will be discharged from the air release pipe 3, allowing the protective sleeve 2 to return to its original position.
[0028] A magnetic block 6 is fixedly connected to the telescopic end of the protective sleeve 2. An electromagnet 7, attracted by the magnetic block 6, is slidably connected to the inner wall of the packaging tube body 1. Before the electronic components are placed into the packaging tube body 1, the electromagnet 7 is activated. When the protective sleeve 2 telescopically extends, it will drive the magnetic block 6 to move. At this time, because the magnetic block 6 and the electromagnet 7 are attracted, the magnetic block 6 drives the electromagnet 7 to push away the dust in the packaging tube body 1 for cleaning. Then, the air in the protective sleeve 2 is deflated and restored, so that the magnetic block 6 drives the electromagnet 7 to return to its original position. Then, the electromagnet 7 is turned off. After that, the electronic components are placed into the packaging tube body 1. Then, the protective sleeve 2 telescopically extends to protect the packaging tube body 1. When it is necessary to remove the electronic components from the packaging tube body 1, the electromagnet 7 can be activated, so that the electromagnet 7 and the magnetic block 6 are attracted. Then, when the protective sleeve 2 telescopically extends, the magnetic block 6 can drive the electromagnet 7 to push out the electronic components from the protective sleeve 2.
[0029] The protective sleeve 2 is connected to a set of connecting pipes 8. The other end of the set of connecting pipes 8 is connected to a hollow sealing bladder 10. The sealing bladder 10 is made of rubber. A first control valve 9 is fixedly installed on the connecting pipes 8. A set of fixing plates 11 are fixedly connected to the inner walls of both ends of the packaging tube body 1. Double-sided tape is adhered to the side of each fixing plate 11 that is close to each other. When the packaging tube body 1 is placed in the transport packaging box and the protective sleeve 2 has been expanded, the sealing bladder 10 can be adhered to the double-sided tape of the fixing plate 11. Then the first control valve 9 is opened, and the air pump 5 continues to inflate the protective sleeve 2. At this time, the gas in the protective sleeve 2 will enter the sealing bladder 10 from the connecting pipes 8, causing the sealing bladder 10 to expand and seal the port of the packaging tube body 1, thereby sealing the electronic components inside the packaging tube body 1 and preventing the electronic components from falling out of the packaging tube body 1 during transportation.
[0030] One side of the sealing bladder 10 is connected to a guide block 28, and the guide block 28 is connected to a conduit 13. The other end of the conduit 13 is connected to a hollow rubber bladder 15. The rubber bladder 15 is semi-circular and contains glue. Shrinkage holes are evenly distributed on the arc-shaped surface of the rubber bladder 15. A second control valve 14 is fixedly installed on the conduit 13. After the sealing bladder 10 seals the port of the packaging tube body 1, the rubber bladder 15 contacts the bottom surface of the packaging box. Then, the second control valve 14 is opened. At this time, the air pump 5 continues to inflate the protective sleeve 2, allowing the gas from the sealing bladder 10 to enter through the conduit 13. Inside the rubber bladder 15, the bladder 15 will expand, allowing it to fully contact the bottom of the packaging box. When the air pressure in the rubber bladder 15 reaches a certain level, all the shrinkage holes on the bladder 15 will open, allowing the glue inside the bladder 15 to flow from the shrinkage holes onto the packaging box. At this point, the rubber bladder 15 will adhere to the packaging box with the help of the glue, thereby further securing the protective sleeve 2 inside the packaging box. This prevents the protective sleeve 2 from generating static electricity due to friction with the packaging box, and also prevents the packaging tube body 1 from colliding with the packaging box due to shaking during transportation, thus further protecting the electronic components inside the packaging tube body 1.
[0031] A sealing ring 16 is enclosed within the rubber bladder 15. A partition 17 is fixedly connected to the inner wall of the sealing ring 16. A circular tube 18 is fixedly connected within the partition 17. A third control valve 19 is fixedly connected to the circular tube 18. A water inlet pipe 20 and a powder inlet pipe 21 are connected within the sealing ring 16. A water inlet check valve is fixedly installed on the water inlet pipe 20, and a powder inlet check valve is fixedly installed on the powder inlet pipe 21. A water outlet pipe 22 is connected within the sealing ring 16, and a water outlet check valve is fixedly installed on the water outlet pipe 22. The water inlet check valves on the water inlet pipe 20 and the powder inlet check valve on the powder inlet pipe 21 are opened, allowing lime powder to enter the sealing ring 16 from the powder inlet pipe 21 for storage. The height of the lime powder storage is one-third of the height of the partition 17. Then, the powder inlet check valves are closed, and water is then introduced from the water inlet pipe 20. Pour water into the sealing ring 16 until it is full, then close the inlet check valve. After the rubber bladder 15 is glued to the transport box, and when it is necessary to remove the packaging tube body 1 from the transport box, open the third control valve 19. At this time, the water in the sealing ring 16 will enter the lime powder through the round pipe 18, so that the water and lime powder mix and generate heat. This heat will be transferred to the rubber bladder 15, so that the glue melts and the packaging tube body 1 can be easily removed from the transport box. The glue is a hot melt glue, and the heat generated can melt the glue in the shrink hole on the rubber bladder 15, preventing the shrink hole from being stuck by the glue and unable to be opened. After removal, open the outlet check valve on the outlet pipe 22, and then continuously inject water into the sealing ring 16 through the inlet pipe 20, so that the mixed lime and water in the sealing ring 16 are discharged from the outlet pipe 22.
[0032] A connecting block 23 is fixedly connected to the inner wall of the cavity formed by the water inlet pipe 20 and the sealing ring 16 near the partition 17. The connecting block 23 is made of a material that expands when heated. When heat is generated in the sealing ring 16, the connecting block 23 will expand when heated, causing the connecting block 23 to push the water in the connecting ring, thereby pushing all the water in the connecting ring from the round pipe 18 to mix with the lime powder, thus improving the mixing effect of water and lime powder.
[0033] The partition 17 is rotatably connected to the inner wall of the cavity formed by the water inlet pipe 20 and the sealing ring 16. A first magnetic plate 24 is fixedly connected to the surface of the rotating shaft 26. An elastic rope 27 is fixedly connected to the side of the first magnetic plate 24 away from the partition 17. The other end of the elastic rope 27 is fixedly connected to the inner wall of the sealing ring 16. The connecting block 23 is hollow inside. A second magnetic plate 25 that attracts the first magnetic plate 24 is fixedly connected to the side of the connecting block 23 near the partition 17. When the connecting block 23 expands, the height of the second magnetic plate 25 will rise. At this time, the second magnetic plate 25 will drive the first magnetic plate 24 to rotate, thereby stirring the lime powder and further mixing the lime powder with water, generating more heat. Afterwards, when the height of the second magnetic plate 25 reaches the point where it can no longer attract the first magnetic plate 24, the elastic rope 27 will pull the first magnetic plate 24, causing the first magnetic plate 24 to stir and mix the lime powder and water again.
[0034] Example 2
[0035] like Figures 6 to 7 As shown in the comparative embodiment one, another embodiment of the present invention is as follows: a hollow block 29 is fixedly connected to the inner wall of the end of the packaging tube body 1 away from the magnetic block 6. An air outlet 32 is uniformly connected to the side of the hollow block 29 near the magnetic block 6. An elastic membrane 33 is fixedly connected to the inner wall of the air outlet 32. Shrinkage holes are uniformly opened on the elastic membrane 33. A duct 30 is connected to the side of the hollow block 29 away from the air outlet 32. A connector 31 is connected to the other end of the duct 30. The connector 31 is fixedly connected to the inner wall of the vent pipe 3. When the vent pipe 3 vents the protective sleeve 2, the vented gas will enter the hollow block 29 from the duct pipe 30. Afterwards, when the air pressure in the hollow block 29 reaches a certain level, all the shrinkage holes on the elastic membrane 33 will open, so that the gas in the hollow block 29 is evenly blown into the packaging tube body 1 from the air outlet 32. At the same time, it can also be blown onto the electronic components, thereby achieving the effect of dust removal for the packaging tube body 1 and the electronic components.
[0036] Working principle: Electronic components are placed inside the packaging tube body 1 for protection. The packaging tube body 1 is then placed in a packaging box. Air pump 5 (a miniature air pump) is then activated to inflate the protective sleeve 2. During this process, the protective sleeve 2 expands and contracts to protect the packaging tube body 1. Because the protective sleeve 2 is made of rubber, it further prevents static electricity. Furthermore, the expansion and contraction of the protective sleeve 2 helps to remove dust from the surface of the packaging tube body 1 for cleaning. Once the protective sleeve 2 has expanded to the appropriate position, air pump 5 is turned off. To release air from the protective sleeve 2, the vent valve 4 is opened, allowing the air inside the protective sleeve 2 to escape through the vent pipe 3, thus restoring the protective sleeve 2 to its original shape. Electromagnet 7, and then when the protective sleeve 2 extends and retracts, it will drive the magnetic block 6 to move. At this time, because the magnetic block 6 and the electromagnet 7 are attracted to each other, the magnetic block 6 drives the electromagnet 7 to push away the dust in the packaging tube body 1 for cleaning. Then the air in the protective sleeve 2 is deflated and restored, so that the magnetic block 6 drives the electromagnet 7 to restore. Then the electromagnet 7 is turned off. Then the electronic components are placed in the packaging tube body 1. Then the protective sleeve 2 extends and retracts to protect the packaging tube body 1. When it is necessary to remove the electronic components in the packaging tube body 1, the electromagnet 7 can be activated, so that the electromagnet 7 and the magnetic block 6 are attracted to each other. Then when the protective sleeve 2 extends and retracts, the magnetic block 6 can drive the electromagnet 7 to push out the electronic components in the protective sleeve 2. When the packaging tube body 1 is placed inside the transport box and the protective sleeve 2 has been expanded, the sealing bladder 10 can be attached to the double-sided tape of the fixing plate 11. Then, the first control valve 9 is opened, and the air pump 5 continues to inflate the protective sleeve 2. At this time, the gas inside the protective sleeve 2 will enter the sealing bladder 10 through the connecting pipe 8, causing the sealing bladder 10 to expand and seal the port of the packaging tube body 1, thereby sealing the electronic components inside the packaging tube body 1 and preventing the electronic components from falling out of the packaging tube body 1 during transportation. After the sealing bladder 10 seals the port of the packaging tube body 1, the rubber bladder 15 is brought into contact with the bottom of the packaging box. Then, the second control valve 14 is opened, and the air pump... 5. Continue to inflate the protective sleeve 2, so that the gas in the sealing bladder 10 enters the rubber bladder 15 through the conduit 13. At this time, the rubber bladder 15 will expand, so that the rubber bladder 15 is in full contact with the bottom surface of the packaging box. When the air pressure of the rubber bladder 15 reaches a certain level, the shrinkage holes on the rubber bladder 15 will open completely, so that the glue in the rubber bladder 15 flows from the shrinkage holes to the packaging box. At this time, the rubber bladder 15 will stick to the packaging box with the help of the glue, thereby further fixing the protective sleeve 2 inside the packaging box, preventing the protective sleeve 2 from generating static electricity due to friction with the packaging box, and also preventing the packaging tube body 1 from colliding with the packaging box due to shaking during transportation, thus achieving the effect of further protecting the electronic components inside the packaging tube body 1.Open the water inlet check valve on the water inlet pipe 20 and the powder inlet check valve on the powder inlet pipe 21. Then, let the lime powder enter the sealing ring 16 from the powder inlet pipe 21 for storage. The height of the lime powder storage should be one-third of the height of the partition 17. Then, close the powder inlet check valve. Next, pour water from the water inlet pipe 20 into the sealing ring 16 until it is full. Then, close the water inlet check valve. After the rubber bladder 15 is glued to the transport box, and it is necessary to remove the transport box from the packaging tube body 1, open the third control valve 19. At this time, the water in the sealing ring 16 will enter from the round pipe 18. The mixture is poured onto the lime powder, causing the water and lime powder to mix and generate heat. This heat is then transferred to the rubber bladder 15, melting the adhesive and facilitating the removal of the packaging tube 1 from the transport box. The adhesive is a hot melt adhesive, and the heat generated also melts the adhesive inside the shrinkage hole on the rubber bladder 15, preventing the shrinkage hole from being stuck and unable to open. After removal, the one-way valve on the water outlet pipe 22 is opened, and then water is continuously injected into the sealing ring 16 through the water inlet pipe 20, causing the mixed lime and water inside the sealing ring 16 to be discharged from the water outlet pipe 22. When the sealing ring 16 is filled with lime and water... When heat is generated, the connecting block 23 expands, pushing the water in the connecting ring. This pushes all the water in the connecting ring from the circular pipe 18 to mix with the lime powder, improving the mixing effect of water and lime powder. When the connecting block 23 expands, the height of the second magnetic plate 25 increases. At this time, the second magnetic plate 25 drives the first magnetic plate 24 to rotate, causing the first magnetic plate 24 to stir the lime powder, further mixing the lime powder and water, generating more heat. Then, when the height of the second magnetic plate 25 reaches a point where it can no longer magnetically attract the first magnetic plate 24... When the elastic rope 27 pulls the first magnetic plate 24, it stirs and mixes the lime powder and water again. When the vent pipe 3 releases air from the protective sleeve 2, the released gas enters the hollow block 29 through the vent pipe 30. After the air pressure inside the hollow block 29 reaches a certain level, all the contraction holes on the elastic membrane 33 open, allowing the gas inside the hollow block 29 to be evenly blown into the packaging tube body 1 from the vent 32. Simultaneously, it can also be blown onto the electronic components, thus achieving the effect of dust removal from the packaging tube body 1 and the electronic components.
[0037] The terms "front," "back," "left," "right," "top," and "bottom" all refer to the figures in the accompanying drawings. Figure 1 Based on the perspective of the observer, the side of the device facing the observer is defined as the front, the left side of the observer is defined as the left, and so on.
[0038] In the description of this invention, it should be understood that the terms "center", "longitudinal", "lateral", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting the scope of protection of this invention.
[0039] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.
Claims
1. An electronic component anti-static packaging tube, characterized by: Including the package tube body (1), the outer side wall of the package tube body (1) is fixedly installed with the butterfly-shaped protective sleeve (2), the inside of the protective sleeve (2) is hollow, and the protective sleeve (2) is made of rubber, a gas pump (5) is connected in the protective sleeve (2) through a pipeline, a gas release pipe (3) is communicated on one side of the protective sleeve (2), and a gas release valve (4) is fixedly installed on the gas release pipe (3). A group of connecting pipes (8) are communicated in the protective sleeve (2), and hollow sealing capsules (10) are communicated at the other ends of the connecting pipes (8). A guide block (28) is communicated on one side of the sealing capsule (10), a guide pipe (13) is communicated in the guide block (28), a hollow rubber capsule (15) is communicated at the other end of the guide pipe (13), the rubber capsule (15) is semicircular, glue is stored in the rubber capsule (15), and contraction holes are uniformly formed in the arc surfaces of the rubber capsule (15), and a second control valve (14) is fixedly installed on the guide pipe (13). A sealing ring (16) is wrapped in the rubber capsule (15), an inner wall of the sealing ring (16) is fixedly connected with a partition plate (17), the partition plate (17) is fixedly connected with a circular pipe (18), the circular pipe (18) is fixedly connected with a third control valve (19), a water inlet pipe (20) and a powder inlet pipe (21) are communicated in the sealing ring (16), a water inlet one-way valve is fixedly installed on the water inlet pipe (20), and a powder inlet one-way valve is fixedly installed on the powder inlet pipe (21). An inner wall of a cavity formed by the partition plate (17) and the sealing ring (16) near the water inlet pipe (20) is fixedly connected with a connecting block (23) made of heat-expanding material.
2. The anti-static packaging tube for electronic components according to claim 1, wherein: A magnetic block (6) is fixedly connected to the telescopic end of the protective sleeve (2), and an electromagnet (7) attracted to the magnetic block (6) is slidably connected to the inner wall of the package tube body (1).
3. The anti-static packaging tube for electronic components according to claim 2, wherein: The sealing capsule (10) is made of rubber, a first control valve (9) is fixedly installed on the connecting pipe (8), and a group of fixed plates (11) are fixedly connected to the inner walls of both ends of the package tube body (1), double-sided adhesive tapes are adhered to the sides, close to each other, of a group of the fixed plates (11).
4. The anti-static packaging tube for electronic components according to claim 3, wherein: A rotating shaft (26) is rotatably connected to the inner wall of a cavity formed by the partition plate (17) and the sealing ring (16) near the water inlet pipe (20), a first magnetic plate (24) is fixedly connected to the surface of the rotating shaft (26), an elastic rope (27) is fixedly connected to the side, away from the partition plate (17), of the first magnetic plate (24), the other end of the elastic rope (27) is fixedly connected to the inner wall of the sealing ring (16), the connecting block (23) is hollow, and a second magnetic plate (25) attracted to the first magnetic plate (24) is fixedly connected to the side, close to the partition plate (17), of the connecting block (23).
5. The anti-static packaging tube for electronic components according to claim 4, wherein: The inner wall of one end of the packing tube body (1) away from the magnetic block (6) is fixedly connected with a hollow block (29), the side close to the magnetic block (6) of the hollow block (29) is uniformly communicated with a gas outlet (32), the inner wall of the gas outlet (32) is fixedly connected with an elastic film (33), the elastic film (33) is uniformly provided with a shrinkage hole, the side away from the gas outlet (32) of the hollow block (29) is communicated with a gas guide pipe (30), the other end of the gas guide pipe (30) is communicated with a connecting head (31), and the connecting head (31) is fixedly connected with the inner wall of the air release pipe (3).
Citation Information
Patent Citations
Anti-static packaging tube for electronic components
CN115817997A
Novel multi -functional electronic product packaging pipe
CN208265012U
Electronic component packaging tube with long service life
CN218173041U