Integrated circuit chip production plastic packaging machine with waste recovery structure

By introducing a blower mechanism, a cutting mechanism and a pushing mechanism into a chip production laminator, the problem of inconvenient waste collection is solved, automated waste processing is achieved, and production efficiency and quality are improved.

CN120637281APending Publication Date: 2025-09-12贺洪安
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202510778832.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-11
Publication Date
2025-09-12

AI Technical Summary

Technical Problem

Existing chip production laminators have difficulties in collecting waste, leading to accumulation and low efficiency.

Method used

A laminator with a waste recycling structure is designed, which includes a blower mechanism, a cutting mechanism, a bidirectional threaded rod and a pushing mechanism. The blower mechanism blows the waste into a collection box, the cutting mechanism automatically identifies and cuts off the waste, and the pushing mechanism prevents accumulation, thereby realizing automatic waste collection.

Benefits of technology

It improves waste collection efficiency, reduces manual intervention, reduces production costs, and ensures production continuity and efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120637281A_ABST
    Figure CN120637281A_ABST
Patent Text Reader

Abstract

The invention discloses an integrated circuit chip production plastic packaging machine with a waste recovery structure, and relates to the field of chip production, the integrated circuit chip production plastic packaging machine comprises a machine main body, the machine main body is internally connected with a bottom plastic packaging plate, the machine main body close to the bottom plastic packaging plate is internally connected with a top plastic packaging plate, the surface of a bidirectional threaded rod is in threaded connection with a threaded block, and the surface of the bidirectional threaded rod is in threaded connection with a bottom plastic packaging plate. And the threaded block slides in the guide groove in a penetrating mode, a movable block is fixed to the top of the threaded block, and an air blowing mechanism for recycling waste is arranged on the upper surface of the connecting base. According to the integrated circuit chip production plastic packaging machine with the waste recovery structure, conveyed gas is shunted and sprayed out through the flow blowing plate, waste on the surface of the connecting base and the surface of the plastic packaging plate can be blown away, the blown-away waste can fall into the collecting box through the through groove to be collected, recovery of the waste of the plastic packaging machine is achieved, and the production efficiency of the integrated circuit chip is improved. And an extrusion rod can be extruded through an extrusion block, direction adjustment of a blowing plate is achieved, and the cleaning effect is better.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of chip production, in particular to an integrated circuit chip production laminating machine provided with a waste material recycling structure. Background Art

[0002] A chip is an integrated circuit chip that is used to process and store data. Chip production refers to the process of manufacturing integrated circuit chips. Chip production requires the use of a plastic sealing machine, which is a device used to package chips to ensure that the chip will not be affected by the external environment during use. It is mainly used to protect the chip.

[0003] At present, chip production laminators still have certain shortcomings, such as the inability to flatten and air-dry the chips that have just been injected, which reduces the quality of chip plastic sealing: In order to overcome the low detection efficiency, a Chinese patent of the prior art (publication number: CN218631919U) discloses a laminator for chip production. The laminator table is located on the auxiliary table at the front side, which is convenient for placing several chips on the laminator table. The laminator table is moved to the inside of the laminator frame by a push cylinder. The electric push rod extends to drive the pressure plate to contact the top surface of the laminator table, thereby pressing the laminator table firmly, ensuring the stability of the laminator table, and improving the quality of the chips during laminating. The Chinese patent of the prior art (publication number: CN220290760U) discloses a plastic sealing press with a cleaning function. During the stroke in which the supporting plate is driven upward by a hydraulic rod to slide back and forth, the driving member drives the cleaning plate to slide back and forth, thereby improving the working efficiency of the plastic sealing press and saving costs. There is no need to set up a separate driving member to drive the cleaning plate to slide. However, the chip production laminating machines currently in use still have certain shortcomings. In the above-mentioned document, the chip is easily in contact with the cleaning object during cleaning, which can easily cause scratches, and the cleaning brush needs to be replaced regularly, which is rather troublesome. Secondly, the plastic waste after cleaning is inconvenient to collect, and the manual collection efficiency is relatively low, which will affect the efficiency of chip production. Finally, some boxes for collecting waste are prone to accumulation on one side and emptiness on the other side, resulting in insufficient collection effect. Therefore, the existing structure needs to be improved. Summary of the Invention

[0004] The purpose of the present invention is to provide an integrated circuit chip production laminating machine equipped with a waste recycling structure to solve the problems raised in the above background technology that the laminating machine is inconvenient to collect and process the waste generated by the laminating, and that the waste will accumulate after collection and requires frequent unloading.

[0005] To achieve the above-mentioned object, the present invention provides the following technical solution: an integrated circuit chip production laminating machine equipped with a waste material recycling structure, comprising a machine body, a bottom laminating plate connected to the interior of the machine body, and a top laminating plate connected to the interior of the machine body adjacent to the bottom laminating plate; The right side of the machine body is connected to a base, the upper surface of the base is connected to a connecting seat, and a cutting mechanism is installed on the upper surface of the base near the connecting seat. The cutting mechanism includes a slide rail mechanism, a cutting mechanism and a visual recognition device. A guide groove is provided on the upper surface of the connecting seat, and a bidirectional threaded rod is connected to the inside of the guide groove through rotation of a motor. A threaded block is threadedly connected to the surface of the bidirectional threaded rod, and the threaded block slides through the inside of the guide groove. A movable block is fixed on the top of the threaded block, and a blower mechanism for recycling waste is provided on the upper surface of the connecting seat; A rotating block is rotated through the movable block, a blow plate is fixed to the end of the rotating block, and a direction adjustment mechanism is provided inside the movable block to improve the recovery effect of the blower mechanism; The connection seat is internally connected to a collection box, and the collection box is internally provided with a pushing mechanism for preventing waste from accumulating.

[0006] Furthermore, the hair blowing mechanism includes a blow plate, which rotates on the side of the movable block. A bevel gear is fixed on the surface of the bidirectional threaded rod near the motor. A double-headed bevel gear rod is meshed and connected to the bottom of the bevel gear. The double-headed bevel gear rod passes through and rotates inside the connecting seat. A hand pump is installed on the upper surface of the base near the connecting seat.

[0007] Furthermore, a rotating rod is fixed to the fan blade output end inside the hand air pump, and the rotating rod passes through and rotates inside the hand air pump. A first bevel gear rod is fixed to the end of the rotating rod, and the first bevel gear rod is meshed and connected to the bottom of the double-headed bevel gear rod. A connecting block is fixed to the side of the connecting seat near the hand air pump, and a rotating wheel is rotatably connected to the inside of the connecting block.

[0008] Furthermore, a connecting pipe is connected to the surface of the rotating wheel, the bottom end of the connecting pipe is connected to the air outlet of the hand pump, and the top end of the connecting pipe is connected to the back of the blowing plate.

[0009] Furthermore, the adjustment mechanism includes a friction ring, which is connected to the surface of the rotating block. The friction ring and the movable block are extrusion-fitted. A gear ring is fixed on the surface of the rotating block close to the friction ring. An extrusion rod slides through the inside of the movable block through the guide block.

[0010] Furthermore, the extrusion rods are symmetrically distributed about the center of the rotating block, a first tooth plate is connected to the inner side of the extrusion rod, the first tooth plate is meshed and connected to the side of the gear ring, the rotating block, the gear ring, the extrusion rod and the first tooth plate are transmission connected, and the two extrusion rods run in opposite directions, an extrusion block is fixed on the upper surface of the connecting seat, and the extrusion blocks are symmetrically distributed about the connecting seat.

[0011] Furthermore, the pushing mechanism includes a through groove, which is opened on the inner side of the connecting seat, and the through groove is connected to the collection box in a through-connection manner. The inner side of the collection box is symmetrically connected to an extension rotating plate, and a spring is connected between the extension rotating plate and the collection box. The bottom of the extension rotating plate is rotatably connected to a connecting rotating block, and a slider is fixed to the bottom of the connecting rotating block.

[0012] Furthermore, there are two groups of sliders symmetrically about the center of the connecting rotating block. The sliders slide through the inner surface of the collection box. A cam is rotatably connected to the inner side of the collection box. A second bevel gear rod is fixed to one side of the cam. The second bevel gear rod rotates through the inside of the collection box.

[0013] Furthermore, the side surface of the second bevel gear rod is meshedly connected with the third bevel gear rod, and the third bevel gear rod rotates inside the collection box. A circular gear is fixed to the bottom end of the third bevel gear rod, and the side surface of the circular gear is meshedly connected with the second tooth plate, and the second tooth plate is embedded in the inner side of the connecting seat.

[0014] Compared with the prior art, the present invention has the following beneficial effects: 1. This integrated circuit chip production laminator is equipped with a waste recycling structure. The blowing plate splits and sprays the conveyed gas, which can blow away the waste on the surface of the connection seat and the surface of the laminating plate. The blown waste can fall into the collection box through the through groove and be collected, realizing the recycling of the laminator waste. The extrusion block can squeeze the extrusion rod, realizing the direction adjustment of the blowing plate and better cleaning effect. 2. Equipped with a cutting mechanism, the plastic sealing plate can automatically identify and cut off the waste when cutting through the cutting mechanism, which improves the efficiency and quality of waste cutting, reduces manual intervention, and makes production more convenient; 3. It is equipped with a bidirectional threaded rod. Through the structural characteristics of the bidirectional threaded rod, the blowing plate can be driven to move without changing the direction of motor rotation, and will not affect the airflow operation of the hand pump, making it more convenient and quick to use; 4. A hand air pump is provided. The hand air pump is not an electric device. When the motor drives the blow plate to move, the hand air pump will also be driven, which improves the use efficiency and reduces the production cost. 5. An extension rotating plate is provided, which can extend itself when rotating, and no gaps will appear due to rotation, thereby preventing waste from falling into difficult-to-clean locations and improving the convenience of cleaning. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is a schematic diagram of the overall front-view three-dimensional structure of the present invention; Figure 2 This is an enlarged three-dimensional structural diagram of the base of the present invention; Figure 3 This is an enlarged three-dimensional structural diagram of the cutting mechanism of the present invention; Figure 4 This is an enlarged three-dimensional structural diagram of a bidirectional threaded rod of the present invention; Figure 5 This is an enlarged three-dimensional structural diagram of the hand pump of the present invention; Figure 6 This is a schematic diagram of the cross-sectional three-dimensional structure of the movable block of the present invention; Figure 7 This is a schematic diagram of the cross-sectional three-dimensional structure of the connecting seat of the present invention; Figure 8 This is a schematic diagram of the cross-sectional three-dimensional structure of the collecting box of the present invention; Figure 9 It is a schematic diagram of the enlarged three-dimensional structure of the cam of the present invention.

[0016] Figure: 1, machine body; 2, bottom plastic cover plate; 3, top plastic cover plate; 101, base; 102, connecting seat; 103, cutting mechanism; 104, guide groove; 105, two-way threaded rod; 106, threaded block; 107, movable block; 108, blow plate; 109, bevel gear; 110, double-headed bevel gear rod; 111, hand pump; 112, rotating rod; 113, first bevel gear rod; 114, connecting block; 115, rotating wheel ; 116. Connecting pipe; 118. Rotating block; 119. Friction ring; 120. Gear ring; 121. Extrusion rod; 122. First tooth plate; 123. Extrusion block; 124. Through groove; 125. Collecting box; 126. Extended rotating plate; 127. Connecting rotating block; 128. Slider; 129. Cam; 130. Second bevel gear rod; 131. Third bevel gear rod; 132. Circular gear; 133. Second tooth plate; 134. Spring. DETAILED DESCRIPTION

[0017] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention. Example 1:

[0018] like Figure 1-Figure 5The technical solution shown in the figure, the present invention provides the following technical solution: In order to solve the problem that the laminating machine is inconvenient to collect and process the waste generated by the laminating, which affects the chip production efficiency and production quality, a blower mechanism is disclosed: The machine body 1 includes a bottom plastic sealing plate 2 connected to the inside of the machine body 1, a top plastic sealing plate 3 connected to the inside of the machine body 1 near the bottom plastic sealing plate 2, a base 101 connected to the right side of the machine body 1, a connecting seat 102 connected to the upper surface of the base 101, a cutting mechanism 103 installed on the upper surface of the base 101 near the connecting seat 102, the cutting mechanism 103 includes a slide mechanism, a cutting mechanism and a visual recognition device, a guide groove 104 is opened on the upper surface of the connecting seat 102, and a bidirectional thread is connected to the guide groove 104 through the rotation of the motor. Rod 105, the surface of the bidirectional threaded rod 105 is threadedly connected with a threaded block 106, the threaded block 106 penetrates and slides inside the guide groove 104, a movable block 107 is fixed on the top of the threaded block 106, and a blower mechanism for recycling waste is provided on the upper surface of the connecting seat 102. A rotating block 118 is rotated through the inside of the movable block 107, and a blow plate 108 is fixed at the end of the rotating block 118. A direction adjustment mechanism for improving the recycling effect of the blower mechanism is provided inside the movable block 107. A collection box 125 is connected to the inside of the connecting seat 102. The box 125 is provided with a pushing mechanism to prevent waste accumulation. The blower mechanism includes a blow plate 108, which rotates on the side of the movable block 107. A bevel gear 109 is fixed on the surface of the bidirectional threaded rod 105 near the motor. The bottom of the bevel gear 109 is engaged with a double-headed bevel gear rod 110, which rotates through the inside of the connecting seat 102. A hand air pump 111 is installed on the upper surface of the base 101 near the connecting seat 102. A rotating rod 112 is fixed to the fan blade output end of the hand air pump 111. The rotating rod 112 rotates through the inside of the hand pump 111. A first bevel gear rod 113 is fixed to the end of the rotating rod 112. The first bevel gear rod 113 is meshed and connected to the bottom of the double-headed bevel gear rod 110. A connecting block 114 is fixed to the side of the connecting seat 102 near the hand pump 111. A rotating wheel 115 is rotatably connected to the inside of the connecting block 114. A connecting pipe 116 is connected to the surface of the rotating wheel 115. The bottom end of the connecting pipe 116 is connected to the air outlet of the hand pump 111, and the top end of the connecting pipe 116 is connected to the back of the blowing plate 108. When the laminator is in use, the chips to be sealed are placed in the grooves inside the bottom plastic sealing plate 2, and the top plastic sealing plate 3 is used to fit and seal them. Then, the groove cavities of the top plastic sealing plate 3 and the bottom plastic sealing plate 2 are sealed. After the sealing is completed, there may be overflowing plastic sealing waste. The sealed plate needs to be placed on the surface of the connecting seat 102. At this time, the cutting mechanism 103 detects the chip material through the visual recognition device, and then moves to the designated position through the slide mechanism. Finally, the excess waste is cut by the cutting mechanism. When the laminator cuts the plastic sealing waste, the waste will fall on the connecting seat 102 and the surface of the plastic sealing plate. The output end of the starting motor can drive the bidirectional threaded rod 105 to rotate, and the bidirectional threaded rod 105 can drive the threaded block 106 to slide when the bidirectional threaded rod 105 rotates. When the threaded block 106 slides, it can drive the movable block 107 to move. When the movable block 107 moves, it can drive the blow plate 108 to move. At the same time, when the bidirectional threaded rod 105 rotates, it can drive the bevel gear 109 to rotate. When the bevel gear 109 rotates, it can drive the double-headed bevel gear rod 110 to engage and rotate. When the double-headed bevel gear rod 110 engages and rotates, it can rotate through the support of the connecting seat 102. When the double-headed bevel gear rod 110 rotates, it can drive the first bevel gear rod 113 meshes and rotates, and the first bevel gear rod 113 meshes and rotates, which can drive the rotating rod 112 to rotate. When the rotating rod 112 rotates, it can drive the fan blades inside the hand air pump 111 to rotate. When the fan blades inside the hand air pump 111 rotate, centrifugal force can be generated. The external gas can be transported to the inside of the hand air pump 111 through the air inlet of the hand air pump 111 through the centrifugal force. The hand air pump 111 then transports the gas to the inside of the blowing plate 108 through the connecting pipe 116. The blowing plate 108 splits and ejects the transported gas. After the air flow is ejected, the waste on the surface of the connecting seat 102 and the surface of the plastic sealing plate can be blown away. The plate 108 can move under the drive of the movable block 107. When the blowing plate 108 moves, it can pull the connecting pipe 116 to extend, and the connecting pipe 116 is made of a hose material. When the connecting pipe 116 extends, the moving direction can be changed by the rotating wheel 115. The extension of the connecting pipe 116 will generate friction with the rotating wheel 115. Through the friction, the rotating wheel 115 can be rotated through the connecting block 114. The moving blowing plate 108 can blow the waste to roll, and the waste blown away can fall into the collection box 125 through the through groove 124 for collection, thereby realizing the recycling of waste from the laminator. Example 2:

[0019] like Figure 2 、 Figure 4 、 Figure 5 and Figure 6 The technical solution shown in the figure, the present invention provides the following technical solution: In order to solve the problem that the blowing range of the blower mechanism of the laminator is limited and blind spots are easily present, based on the first embodiment, a direction adjustment mechanism is disclosed: The direction adjustment mechanism includes a friction ring 119, which is connected to the surface of the rotating block 118. The friction ring 119 and the movable block 107 are extruded and fitted. A gear ring 120 is fixed to the surface of the rotating block 118 near the friction ring 119. An extrusion rod 121 is slid through the inside of the movable block 107 through a guide block. The extrusion rod 121 is symmetrically distributed about the center of the rotating block 118. A first tooth plate 122 is connected to the inside of the extrusion rod 121. The first tooth plate 122 is meshed and connected to the side of the gear ring 120. The rotating block 118, the gear ring 120, the extrusion rod 121 and the first tooth plate 122 are transmission connected, and the two extrusion rods 121 operate in a direction On the contrary, an extrusion block 123 is fixed on the upper surface of the connecting seat 102, and the extrusion blocks 123 are symmetrically distributed about the connecting seat 102. When the plastic sealing machine waste is recycled, the movable block 107 can drive the blowing plate 108 to move. When the movable block 107 moves, it can drive the extrusion rod 121 on the left to move. When the top of the extrusion rod 121 on the left moves to the inclined surface of the extrusion block 123 on the left, it can be extruded. When the extrusion rod 121 is extruded, it can slide downward inside the movable block 107 through the guide block. When the extrusion rod 121 slides downward, it can drive the first tooth plate 122 to move. When the first tooth plate 122 moves, it can drive the gear ring 120 to engage When the rotating block 118 rotates, the gear ring 120 can drive the rotating block 118 to rotate. When the rotating block 118 rotates, it can rotate through the movable block 107. When the rotating block 118 rotates, the gear ring 120 can drive the first tooth plate 122 on the other side to engage and rotate. When the first tooth plate 122 on the other side engages and rotates, it can drive another extrusion rod 121 to slide upward. At the same time, when the rotating block 118 rotates, it can drive the friction ring 119 and the blowing plate 108 to rotate. When the blowing plate 108 rotates, the direction of the jet can be adjusted. When the two extrusion rods 121 move up and down to the specified position, the blowing plate 108 can be rotated to the specified angle. At this time, the rotating block 1 18 The friction ring 119 can increase the friction between the movable block 107, and the friction force can realize the angular positioning of the blowing plate 108. After the blowing plate 108 is positioned, the motor can continue to drive the bidirectional threaded rod 105 to rotate. When the bidirectional threaded rod 105 rotates, the structural characteristics can drive the movable block 107 to reset in the reverse direction. When the movable block 107 is reset, the side blowing plate 108 can blow the cut waste in the reverse direction. When the waste is blown, it can fall into the inside of the collection box 125 from the through groove 124 on the other side, so that the waste can be cleaned and collected in a wider range and angle, further improving the effect of waste recycling of the laminator. Example 3:

[0020] like Figure 1 、 Figure 7 、 Figure 8 and Figure 9The technical solution shown in the figure, the present invention provides the following technical solution: In order to solve the problem that waste materials collected by the laminator will accumulate, requiring frequent unloading, and affecting the chip processing efficiency, a pushing mechanism is disclosed: The pushing mechanism includes a through slot 124, which is opened on the inner side of the connecting seat 102, and the through slot 124 is connected to the collection box 125. The inner side of the collection box 125 is symmetrically connected to the left and right rotation of an extension rotating plate 126, and a spring 134 is connected between the extension rotating plate 126 and the collection box 125. The bottom of the extension rotating plate 126 is rotatably connected to a connecting rotating block 127, and a slider 128 is fixed to the bottom of the connecting rotating block 127. There are two groups of sliders 128 symmetrical about the center of the connecting rotating block 127. The slider 128 slides through the inner surface of the collection box 125, and the inner side of the collection box 125 is rotatably connected to a cam 129. A second bevel gear rod 130 is fixed to one side of the cam 129. The second bevel gear rod 130 rotates through the inside of the collection box 125. The side of the second bevel gear rod 130 is meshed with the third bevel gear rod 131, and the third bevel gear rod 131 rotates through the collection box 125. The bottom end of the third bevel gear rod 131 is fixed with a circular gear 132, and the side of the circular gear 132 is meshed with the second tooth plate 133. The second tooth plate 133 is embedded in the inner side of the connecting seat 102, and the collected waste will fall on the side of the extended rotating plate 126 inside the collection box 125 through the through groove 124. After the waste is collected in the collection box 125 for a period of time, the staff needs to check whether the waste inside the collection box 125 needs to be cleaned up. When checking, put your hand inside the concave groove in the front of the collection box 125 and pull it outward. When the collection box 125 is pulled, it can drive the circular gear 132 to move, and the circular gear 132 can pass through the first The second tooth plate 133 is engaged and rotated, and the circular gear 132 is engaged and rotated to drive the third bevel gear rod 131 to rotate. When the third bevel gear rod 131 rotates, it can rotate through the collection box 125. When the third bevel gear rod 131 rotates, it can drive the second bevel gear rod 130 to engage and rotate. When the second bevel gear rod 130 engages and rotates, it also rotates through the collection box 125. When the second bevel gear rod 130 rotates, it can drive the cam 129 to rotate. When the cam 129 rotates, the bottom end can be rotated to the side of the extension rotating plate 126 for squeezing. When the extension rotating plate 126 is squeezed, it can rotate through the collection box 125. When the extension rotating plate 126 rotates, it can drive the connecting rotating block 127 to move. When the connecting rotating block 127 moves, it can drive the slider 128 to move. The slider 128 moves When the collecting box 125 is moved, it can slide through the inside of the collecting box 125, and when the connecting rotating block 127 slides, the bottom of the extending rotating plate 126 can be pulled, and when the extending rotating plate 126 is pulled, it can be extended, and when the extending rotating plate 126 is extended, it can pass through the collecting box 125 and the connecting rotating block 127 to rotate. When the extending rotating plate 126 rotates, the spring 134 can be stretched by the collecting box 125. At the same time, when the extending rotating plate 126 rotates to the side of the waste material, it can be squeezed, and the squeezed waste can be gathered in the middle of the collecting box 125. After gathering, it can prevent the side of the extending rotating plate 126 from accumulating. When the collecting box 125 slides to the specified position, the staff can observe the situation of the internal waste collection, and thus choose to take the collecting box 125 out of the connecting seat 102 to empty the material.Alternatively, the collection box 125 can be pushed back. After the collection box 125 is pushed back to its original position, the spring 134 can pull the extension rotating plate 126 to rotate and reset by its own elastic tension. After the extension rotating plate 126 is reset, the waste can be recycled again, which reduces the frequency of waste material discharge of the laminator and improves the convenience of use.

[0021] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. An integrated circuit chip production laminating machine with a waste recycling structure, comprising a machine body (1), a bottom laminating plate (2) being connected to the inside of the machine body (1), and a top laminating plate (3) being connected to the inside of the machine body (1) near the bottom laminating plate (2), characterized in that; The right side of the machine body (1) is connected to a base (101), the upper surface of the base (101) is connected to a connecting seat (102), and a cutting mechanism (103) is installed on the upper surface of the base (101) near the connecting seat (102), and the cutting mechanism (103) includes a slide rail mechanism, a cutting mechanism and a visual recognition device. A guide groove (104) is provided on the upper surface of the connecting seat (102), and a bidirectional threaded rod (105) is connected to the inside of the guide groove (104) through rotation of a motor, and a threaded block (106) is threadedly connected to the surface of the bidirectional threaded rod (105), and the threaded block (106) passes through and slides inside the guide groove (104). A movable block (107) is fixed on the top of the threaded block (106), and a blower mechanism for recycling waste is provided on the upper surface of the connecting seat (102); A rotating block (118) is provided inside the movable block (107) for rotation, a blow plate (108) is fixed to the end of the rotating block (118), and a direction adjustment mechanism for improving the recovery effect of the blower mechanism is provided inside the movable block (107); The connection seat (102) is internally connected to a collection box (125), and the collection box (125) is internally provided with a pushing mechanism for preventing waste accumulation.

2. The integrated circuit chip production laminating machine with a waste recycling structure according to claim 1, characterized in that: The blower mechanism includes a blow plate (108), the blow plate (108) rotates on the side of the movable block (107), a bevel gear (109) is fixed on the surface of the bidirectional threaded rod (105) close to the motor, a double-headed bevel gear rod (110) is meshed and connected at the bottom of the bevel gear (109), the double-headed bevel gear rod (110) passes through and rotates inside the connecting seat (102), and a hand air pump (111) is installed on the upper surface of the base (101) close to the connecting seat (102).

3. The integrated circuit chip production laminating machine with a waste recycling structure according to claim 2, characterized in that: A rotating rod (112) is fixed to the fan blade output end inside the hand air pump (111), and the rotating rod (112) passes through and rotates inside the hand air pump (111). A first bevel gear rod (113) is fixed to the end of the rotating rod (112), and the first bevel gear rod (113) is meshedly connected to the bottom of the double-headed bevel gear rod (110). A connecting block (114) is fixed to the side of the connecting seat (102) close to the hand air pump (111), and a rotating wheel (115) is rotatably connected to the inside of the connecting block (114).

4. The integrated circuit chip production laminating machine with a waste recycling structure according to claim 3, characterized in that: The surface of the rotating wheel (115) is connected to a connecting pipe (116), the bottom end of the connecting pipe (116) is connected to the air outlet of the hand pump (111), and the top end of the connecting pipe (116) is connected to the back of the blowing plate (108).

5. The integrated circuit chip production laminating machine with a waste recycling structure according to claim 1, characterized in that: The direction adjustment mechanism includes a friction ring (119), the friction ring (119) is connected to the surface of the rotating block (118), the friction ring (119) and the movable block (107) are connected by extrusion and fitting, a gear ring (120) is fixed on the surface of the rotating block (118) close to the friction ring (119), and an extrusion rod (121) is inserted and slidably penetrated by a guide block inside the movable block (107).

6. The integrated circuit chip production laminating machine with a waste recycling structure according to claim 5, characterized in that: The extrusion rods (121) are symmetrically distributed about the center of the rotating block (118). A first tooth plate (122) is connected to the inner side of the extrusion rods (121). The first tooth plate (122) is meshed and connected to the side of the gear ring (120). The rotating block (118), the gear ring (120), the extrusion rods (121) and the first tooth plate (122) are transmission-connected, and the two extrusion rods (121) run in opposite directions. An extrusion block (123) is fixed to the upper surface of the connecting seat (102). The extrusion block (123) is symmetrically distributed about the connecting seat (102).

7. The integrated circuit chip production laminating machine with a waste recycling structure according to claim 1, characterized in that: The pushing mechanism includes a through slot (124), the through slot (124) is provided on the inner side of the connecting seat (102), and the through slot (124) is in through connection with the collecting box (125), the inner side of the collecting box (125) is symmetrically connected to an extension rotating plate (126) for rotation, a spring (134) is connected between the extension rotating plate (126) and the collecting box (125), the bottom of the extension rotating plate (126) is rotatably connected to a connecting rotating block (127), and a slider (128) is fixed to the bottom of the connecting rotating block (127).

8. The integrated circuit chip production laminating machine with a waste recycling structure according to claim 7, characterized in that: The sliders (128) are symmetrically arranged in two groups about the center of the connecting rotating block (127). The sliders (128) slide through the inner surface of the collecting box (125). A cam (129) is rotatably connected to the inner side of the collecting box (125). A second bevel gear rod (130) is fixed to one side of the cam (129). The second bevel gear rod (130) rotates through the inside of the collecting box (125).

9. The integrated circuit chip production laminating machine with a waste recycling structure according to claim 8, characterized in that: The second bevel gear rod (130) is meshedly connected to a third bevel gear rod (131) on its side, and the third bevel gear rod (131) rotates through the inside of the collection box (125). A circular gear (132) is fixed to the bottom end of the third bevel gear rod (131), and the circular gear (132) is meshedly connected to a second tooth plate (133) on its side, and the second tooth plate (133) is embedded in the inner side of the connecting seat (102).

Citation Information

Patent Citations

  • Plastic packaging machine for chip production

    CN218631919U

  • Plastic packaging press with cleaning function

    CN220290760U