Lamination equipment and assembly line

By designing a dust collecting device in the laminated equipment to adsorb the debris generated during the laminated work, the problem of difficult adsorption of debris in the prior art is solved, and the yield rate of the product is improved.

CN222939771UActive Publication Date: 2025-06-03XINWEI ELECTRONIC TECH (YIYANG) CO LTD
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Patent Information

Application Number
CN202421446591.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-21
Publication Date
2025-06-03
Estimated Expiration
2034-06-21

AI Technical Summary

Technical Problem

The debris generated by existing MLCC stacking equipment during stacking operation are difficult to adsorb in time, resulting in impurities inside the product and affecting the yield rate.

Method used

A laminated device is designed, including a base, a power plant, a laminated head and a dust collecting device. The laminated head is provided with an adsorption hole, and the power device is in communication with the adsorption hole, for adsorbing and/or blowing materials; the dust collecting device ring is arranged around the base platform to adsorb debris generated during material stacking.

Benefits of technology

Through the design of the dust collecting device, debris generated during the working of the stacking equipment can be timely absorbed, preventing them from falling on the surface of the material, and improving the yield rate of processed products.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the utility model relates to the technical field of semiconductor lamination, and particularly discloses lamination equipment and an assembly line, and the lamination equipment comprises a base station which is used for containing stacked materials; a power device; the laminating head is provided with a plurality of adsorption holes, the power device is communicated with the adsorption holes, and the adsorption holes are used for adsorbing and / or blowing the materials; and the dust collecting device is annularly arranged on the periphery of the base table and used for adsorbing chippings generated in the material stacking process. By means of the mode, chippings generated in the stacking process of the stacking equipment under the driving effect of the power device can be adsorbed by the dust collecting device in time, the situation that follow-up machining of stacked materials is affected by splashing of the chippings is avoided, internal defects of machined products are reduced, and therefore the yield of the machined products is improved.
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Description

Technical Field

[0001] The embodiments of the present utility model relate to the technical field of laminating equipment, and particularly to a laminating equipment and a production line. Background Art

[0002] MLCC (Multi-layer Ceramic Capacitors) is an essential basic component in the electronics industry and is called "the rice of the electronics industry". When it comes to the laminating operation process in the preparation of MLCC, the dielectric film printed with a conductive layer needs to be preliminarily cut and then stacked by a laminating equipment according to the required number of layers for subsequent cutting and production of finished products.

[0003] The inventor of the present utility model found in the process of implementing the present utility model that currently, the existing MLCC laminating equipment includes a laminating head and a base. Among them, the laminating head is arranged on the top of the machine table, and a number of air blowing holes are arranged on the bottom surface of the laminating head facing the base. When a new layer of dielectric film is stacked, a number of air blowing holes blow out a slight air flow to lay the new dielectric film flat on the previous dielectric film. However, due to the existing back cutting process, a large number of microscopic burrs appear at the edge position of the dielectric film. These burrs are easily detached and splashed into the surrounding environment of the dielectric film under the action of the air flow carried by the air blowing holes and the shaking of the laminating head during the laminating process. Inevitably, they will fall onto the already laminated dielectric film or be mixed in the air, affecting the next laminating work, and thus causing impurities in the product, resulting in defects in the product and affecting the yield of the product. Summary of the Utility Model

[0004] The main technical problem to be solved by the embodiments of the present utility model is to provide a laminating equipment and a production line that can timely adsorb the debris generated during the laminating work of the laminating equipment.

[0005] To solve the above technical problem, a technical solution adopted by the present utility model is: to provide a laminating equipment, including a base for holding stacked materials; a power device; a laminating head provided with a number of adsorption holes, the power device being communicated with the number of adsorption holes, and the adsorption holes being used for adsorbing and / or blowing the materials; and a dust collection device disposed around the base for adsorbing the debris generated during the stacking process of the materials.

[0006] Optionally, the dust collection device includes a dust collection head and a dust suction component, the dust collection head being disposed around the base; the dust suction component is communicated with the dust collection head and is used for sucking the debris through the dust collection head.

[0007] Optionally, the dust collection head includes a first dust collection pipe, a second dust collection pipe, a third dust collection pipe, and a fourth dust collection pipe. The first dust collection pipe, the second dust collection pipe, the third dust collection pipe, and the fourth dust collection pipe are connected end to end and communicate with each other in sequence. A first dust collection port is provided at an edge of the first dust collection pipe close to the top surface of the base. A second dust collection port is provided at an edge of the second dust collection pipe close to the top surface of the base. A third dust collection port is provided at an edge of the third dust collection pipe close to the top surface of the base. A fourth dust collection port is provided at an edge of the fourth dust collection pipe close to the top surface of the base. The shapes of the first dust collection port, the second dust collection port, the third dust collection port, and the fourth dust collection port are all strip-shaped, and the first dust collection port, the second dust collection port, the third dust collection port, and the fourth dust collection port are connected end to end in sequence.

[0008] Optionally, the inner walls of the first dust collection pipe, the second dust collection pipe, the third dust collection pipe, and the fourth dust collection pipe are all coated with an anti-static coating.

[0009] Optionally, the dust collection head further includes a first shunt pipe, a second shunt pipe, a third shunt pipe, a fourth shunt pipe, a fifth shunt pipe, a sixth shunt pipe, a seventh shunt pipe, and an eighth shunt pipe. Among them, the first shunt pipe and the second shunt pipe are uniformly distributed at the bottom of the first dust collection pipe along the stacking direction of the stacking head. The third shunt pipe and the fourth shunt pipe are uniformly distributed at the bottom of the second dust collection pipe along the stacking direction of the stacking head. The fifth shunt pipe and the sixth shunt pipe are uniformly distributed at the bottom of the third dust collection pipe along the stacking direction of the stacking head. The seventh shunt pipe and the eighth shunt pipe are uniformly distributed at the bottom of the fourth dust collection pipe along the stacking direction of the stacking head. One ends of the first shunt pipe and the second shunt pipe are both connected to the first dust collection pipe, and the other ends of the first shunt pipe and the second shunt pipe are both connected to the dust suction assembly. One ends of the third shunt pipe and the fourth shunt pipe are both connected to the second dust collection pipe, and the other ends of the third shunt pipe and the fourth shunt pipe are both connected to the dust suction assembly. One ends of the fifth shunt pipe and the sixth shunt pipe are both connected to the third dust collection pipe, and the other ends of the fifth shunt pipe and the sixth shunt pipe are both connected to the dust suction assembly. One ends of the seventh shunt pipe and the eighth shunt pipe are both connected to the fourth dust collection pipe, and the other ends of the seventh shunt pipe and the eighth shunt pipe are both connected to the dust suction assembly.

[0010] Optionally, the dust collection device further includes a distributor disposed between the first shunt pipe, the second shunt pipe, the third shunt pipe, the fourth shunt pipe, the fifth shunt pipe, the sixth shunt pipe, the seventh shunt pipe, the eighth shunt pipe and the dust suction assembly. The first shunt pipe, the second shunt pipe, the third shunt pipe, the fourth shunt pipe, the fifth shunt pipe, the sixth shunt pipe, the seventh shunt pipe and the eighth shunt pipe are aggregated to the dust suction assembly through the distributor.

[0011] Optionally, the dust collection head further includes at least two first fixing parts and at least four second fixing parts. At least two of the first fixing parts are disposed at the bottom of the first dust collection pipe along the stacking direction of the stacked head and near both sides of the base, and at least four of the second fixing parts are evenly distributed at the bottom of the third dust collection pipe along the stacking direction of the stacked head. The first fixing part and the second fixing part are respectively provided with a first fixing hole and a second fixing hole; the stacking device further includes a plurality of screws; the base is provided with at least two first screw holes and at least four second screw holes corresponding to the first fixing hole and the second fixing hole; wherein, one screw passes through one first fixing hole and is screwed to one first screw hole, and one screw passes through one second fixing hole and is screwed to one second screw hole.

[0012] Optionally, when the first dust collection pipe, the second dust collection pipe, the third dust collection pipe, the fourth dust collection pipe, the first shunt pipe, the second shunt pipe, the third shunt pipe, the fourth shunt pipe, the fifth shunt pipe, the sixth shunt pipe, the seventh shunt pipe and the eighth shunt pipe of the dust collection head are all made of conductive materials, the surface resistance ranges of the first dust collection pipe, the second dust collection pipe, the third dust collection pipe, the fourth dust collection pipe, the first shunt pipe, the second shunt pipe, the third shunt pipe, the fourth shunt pipe, the fifth shunt pipe, the sixth shunt pipe, the seventh shunt pipe and the eighth shunt pipe are all 10 6 to 10 9 ohms.

[0013] Optionally, the dust suction assembly further includes a vacuum pump and a filter. The vacuum pump is communicated with the distributor, and the filter is disposed between the vacuum pump and the distributor. The filter is used to filter the debris.

[0014] To solve the above technical problems, another technical solution adopted by the present invention is: to provide an assembly line including the above-mentioned stacking device.

[0015] The beneficial effects of the embodiments of the present utility model are as follows: Different from the prior art, the embodiments of the present utility model provide a stacking device including a base for holding stacked materials, a power device, a stacking head provided with a plurality of adsorption holes, the power device communicating with the plurality of adsorption holes, the adsorption holes being used for adsorbing and / or blowing the materials, and a dust collection device disposed around the base for adsorbing debris generated during the stacking of the materials. Through the above structure, in the working process of the stacking device, the embodiments of the present utility model can timely adsorb the debris generated by shaking or blowing during the stacking of the materials, prevent it from falling onto the surface of the materials, affecting the subsequent stacking work, resulting in defects inside the processed finished products, and improving the yield rate of the processed products. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the following will briefly introduce the drawings required to be used in the embodiments of the present utility model. Obviously, the following described drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained according to the drawings.

[0017] Figure 1 is an exploded structural schematic diagram of the stacking device provided by the embodiments of the present utility model;

[0018] Figure 2 is an assembled structural schematic diagram of the stacking device provided by the embodiments of the present utility model;

[0019] Figure 3 is a bottom view schematic diagram of the stacking head provided by the embodiments of the present utility model;

[0020] Figure 4 is a three-dimensional structural schematic diagram of an enlarged view of a dust collection head provided by the embodiments of the present utility model from one perspective;

[0021] Figure 5 is a three-dimensional structural schematic diagram of an enlarged view of the dust collection head provided by the embodiments of the present utility model from another perspective.

[0022] REFERENCE SIGNS:

[0023] 1000, stacking device;

[0024] 1, stacking head; 11, adsorption hole;

[0025] 2, base;

[0026] 3. Dust collection device; 31. Dust collection head; 311. First dust collection pipe; 3111. First dust collection port; 312. Second dust collection pipe; 3121. Second dust collection port; 313. Third dust collection pipe; 3131. Third dust collection port; 314. Fourth dust collection pipe; 3141. Fourth dust collection port; 315a. First shunt pipe; 315b. Second shunt pipe; 315c. Third shunt pipe; 315d. Fourth shunt pipe; 315e. Fifth shunt pipe; 315f. Sixth shunt pipe; 315g. Seventh shunt pipe; 315h. Eighth shunt pipe; 316a. First fixing part; 316a1. First fixing hole; 316b. Second fixing part; 316b1. Second fixing hole; 32. Dust suction assembly; 321. Vacuum pump; 322. Filter; 33. Distributor. Detailed implementation manners

[0027] For the convenience of understanding the present utility model, the present utility model will be described in more detail below in conjunction with the accompanying drawings and specific embodiments. It should be noted that when an element is expressed as "fixed to" another element, it can be directly on the other element, or there can be one or more intermediate elements therebetween. When an element is expressed as "connected" to another element, it can be directly connected to the other element, or there can be one or more intermediate elements therebetween. The terms "vertical", "horizontal", "left", "right" and similar expressions used in this specification are only for the purpose of illustration.

[0028] Unless otherwise defined, all technical and scientific terms used in this specification have the same meaning as commonly understood by those skilled in the technical field to which the present utility model belongs. The terms used in this specification in the description of the present utility model are only for the purpose of describing specific embodiments, and are not used to limit the present utility model. The term "and / or" used in this specification includes any and all combinations of one or more of the related listed items.

[0029] Please refer to Figures 1 to 3 , the laminating device 1000 includes a laminating head 1, a base 2, a dust collection device 3 and a power device (not shown in the figure); the base 2 is used for holding stacked materials, and the surface of the base 2 is a flat and non-inclined surface to prevent the inclination from affecting the flatness of material stacking; the power device is the power source of the laminating device 1000 and is used to provide power support for laminating, adsorbing materials or blowing materials of the laminating device 1000, wherein the power device includes but is not limited to: a steering assembly, a vacuum assembly, a moving assembly and combinations of the above components. The laminating head 1 is provided with a plurality of adsorption holes 11, the laminating head 1 is located directly above the base 2, the power device is communicated with the plurality of adsorption holes 11, and the adsorption holes 11 are used for adsorbing and / or blowing materials; the dust collection device 3 is disposed around the base 2 and is used for adsorbing debris generated during the material stacking process.

[0030] It can be understood that several adsorption holes 11 of the above-mentioned lamination head 1 can be used for both adsorbing materials and blowing out gas. Specifically, when the lamination head 1 needs to transfer materials, the power device makes the adsorption holes 11 in a negative pressure state, so as to use the adsorption holes 11 to adsorb the materials. Then, the power device drives the lamination head 1 to move to transfer the materials to the base 2. Then, the power device conveys air flow to the adsorption holes 11 to blow the surface of the materials, remove the possible impurities on the surface of the materials and use the air flow to smooth the surface of the materials, making the materials fit more closely to each other.

[0031] However, during the process of blowing the materials, after the air flow is blocked by the materials, it will evenly diffuse to the surrounding of the materials. At this time, the diffused air flow will tear and blow away the burrs at the edges of the materials, and the movement of the lamination head 1 may also cause the burrs to fall off. These burrs and the possible impurities in the air are collectively called debris. The debris floats in the surrounding environment of the materials, thus affecting the next material stacking. Therefore, a dust collection device 3 is provided to adsorb the above-mentioned debris.

[0032] For the above-mentioned dust collection device 3, please refer to Figure 1 , the dust collection device 3 includes a dust collection head 31 and a dust suction component 32. The dust collection head 31 is arranged around the base 2 in a ring shape, and the dust collection head 31 is closely arranged along the side wall around the base 2, and the top surface of the dust collection head 31 is flush with the top surface of the base 2; the dust suction component 32 is communicated with the dust collection head 31 and is used to suck the debris through the dust collection head 31.

[0033] For the above-mentioned dust collection head 31, please refer to Figure 4 and Figure 5 , the dust collection head 31 includes a first dust collection pipe 311, a second dust collection pipe 312, a third dust collection pipe 313 and a fourth dust collection pipe 314. The first dust collection pipe 311, the second dust collection pipe 312, the third dust collection pipe 313 and the fourth dust collection pipe 314 are connected end to end and communicated in sequence. The first dust collection pipe 311 is provided with a first dust collection port 3111 near the edge of the top surface of the base 2, the second dust collection pipe 312 is provided with a second dust collection port 3121 near the edge of the top surface of the base 2, the third dust collection pipe 313 is provided with a third dust collection port 3131 near the edge of the top surface of the base 2, the fourth dust collection pipe 314 is provided with a fourth dust collection port 3141 near the edge of the top surface of the base 2. The shapes of the first dust collection port 3111, the second dust collection port 3121, the third dust collection port 3131 and the fourth dust collection port 3141 are all strip-shaped, and the first dust collection port 3111, the second dust collection port 3121, the third dust collection port 3131 and the fourth dust collection port 3141 are connected end to end in sequence.

[0034] It can be understood that the long strip-shaped dust collection port is used to reduce the air volume passing through per unit area under the condition that the power of the dust collection component 32 remains unchanged, so as to improve the adsorption capacity of the dust collection port. The shape of the dust collection port includes but is not limited to intermittent long strips, spaced round holes, spaced ellipses, spaced runways, long strips, round holes, runways, etc. As long as the adsorption function of the dust collection port is not affected, the adsorption capacity of the dust collection port can be improved as much as possible.

[0035] In some embodiments, the inner walls of the first dust collection pipe 311, the second dust collection pipe 312, the third dust collection pipe 313 and the fourth dust collection pipe 314 are all coated with an antistatic coating. The antistatic coating is used to prevent the first dust collection pipe 311, the second dust collection pipe 312, the third dust collection pipe 313 and the fourth dust collection pipe 314 from generating static electricity during long-term operation, so as to gather and accumulate the debris adsorbed and collected in the pipeline under the action of static electricity, resulting in blockage in the dust collection head 31.

[0036] It can be understood that the antistatic coating includes but is not limited to: organic antistatic coating, inorganic antistatic coating, plant resin antistatic coating, polymer additive type antistatic coating and additive type antistatic coating, etc. Among them, the additive type antistatic coating refers to adding an antistatic agent to the resin.

[0037] In some embodiments, please refer to Figure 4 and Figure 5 , the dust collection head 31 further includes a first shunt pipe 315a, a second shunt pipe 315b, a third shunt pipe 315c, a fourth shunt pipe 315d, a fifth shunt pipe 315e, a sixth shunt pipe 315f, a seventh shunt pipe 315g and an eighth shunt pipe 315h; wherein, the first shunt pipe 315a and the second shunt pipe 315b are evenly distributed at the bottom of the first dust collection pipe 311 along the stacking direction of the stacked head 1; the third shunt pipe 315c and the fourth shunt pipe 315d are evenly distributed at the bottom of the second dust collection pipe 312 along the stacking direction of the stacked head 1; the fifth shunt pipe 315e and the sixth shunt pipe 315f are evenly distributed at the bottom of the third dust collection pipe 313 along the stacking direction of the stacked head 1; the seventh shunt pipe 315g and the eighth shunt pipe 315h are evenly distributed at the bottom of the fourth dust collection pipe 314 along the stacking direction of the stacked head 1;

[0038] One end of each of the first shunt pipe 315a and the second shunt pipe 315b is communicated with the first dust collecting pipe 311, and the other end of each of the first shunt pipe 315a and the second shunt pipe 315b is communicated with the dust suction assembly 32; one end of each of the third shunt pipe 315c and the fourth shunt pipe 315d is communicated with the second dust collecting pipe 312, and the other end of each of the third shunt pipe 315c and the fourth shunt pipe 315d is communicated with the dust suction assembly 32; one end of each of the fifth shunt pipe 315e and the sixth shunt pipe 315f is communicated with the third dust collecting pipe 313, and the other end of each of the fifth shunt pipe 315e and the sixth shunt pipe 315f is communicated with the dust suction assembly 32; one end of each of the seventh shunt pipe 315g and the eighth shunt pipe 315h is communicated with the fourth dust collecting pipe 314, and the other end of each of the seventh shunt pipe 315g and the eighth shunt pipe 315h is communicated with the dust suction assembly 32.

[0039] It can be understood that the above-mentioned uniformly distributed first shunt pipe 315a and second shunt pipe 315b, third shunt pipe 315c and fourth shunt pipe 315d, fifth shunt pipe 315e and sixth shunt pipe 315f, and seventh shunt pipe 315g and eighth shunt pipe 315h respectively make the gas negative pressure state distribution inside the first dust collecting pipe 311, the second dust collecting pipe 312, the third dust collecting pipe 313 and the fourth dust collecting pipe 314 relatively uniform, avoiding the inconsistent negative pressure states in some areas of the first dust collecting pipe 311, the second dust collecting pipe 312, the third dust collecting pipe 313 and the fourth dust collecting pipe 314, and further causing the suction force in a certain area of the first dust collecting pipe 311, the second dust collecting pipe 312, the third dust collecting pipe 313 and the fourth dust collecting pipe 314 to be too large or too small, thereby affecting the cleaning effect of the dust collecting device 3.

[0040] It should be noted that in some actual installation situations, due to the need to avoid relevant external devices, the first shunt pipe 315a and the second shunt pipe 315b, the third shunt pipe 315c and the fourth shunt pipe 315d, the fifth shunt pipe 315e and the sixth shunt pipe 315f, and the seventh shunt pipe 315g and the eighth shunt pipe 315h cannot be completely arranged in a uniformly distributed manner on the first dust collecting pipe 311, the second dust collecting pipe 312, the third dust collecting pipe 313 and the fourth dust collecting pipe 314. Therefore, the specific distribution situation needs to be combined with the actual situation and is not limited to a completely uniform distribution. As Figure 4 shown, the seventh shunt pipe 315g and the eighth shunt pipe 315h are respectively arranged at both ends of the fourth dust collecting pipe 314 in order to avoid the operation table. The above-mentioned external devices include but are not limited to: operation table, control panel, display panel, etc.

[0041] In some embodiments, the dust collection device 3 further includes a distributor 33. The distributor 33 is disposed between the first shunt pipe 315a, the second shunt pipe 315b, the third shunt pipe 315c, the fourth shunt pipe 315d, the fifth shunt pipe 315e, the sixth shunt pipe 315f, the seventh shunt pipe 315g, the eighth shunt pipe 315h, and the dust suction assembly 32. The first shunt pipe 315a, the second shunt pipe 315b, the third shunt pipe 315c, the fourth shunt pipe 315d, the fifth shunt pipe 315e, the sixth shunt pipe 315f, the seventh shunt pipe 315g, and the eighth shunt pipe 315h are aggregated to the dust suction assembly 32 through the distributor 33. Through the arrangement of the distributor 33, the disassembly and assembly between the first shunt pipe 315a, the second shunt pipe 315b, the third shunt pipe 315c, the fourth shunt pipe 315d, the fifth shunt pipe 315e, the sixth shunt pipe 315f, the seventh shunt pipe 315g, the eighth shunt pipe 315h, and the dust suction assembly 32 are more convenient. At the same time, the number of components of the dust suction assembly 32 is simplified, such as the length of the connecting pipe and the number of interfaces of the dust collection device 3, which is more conducive to improving the integration of the device.

[0042] It is worth noting that since the distributor 33 is arranged as an aggregation end at the front end of the dust suction assembly 32, a certain coarse filtering device can be arranged on the distributor 33. The above-mentioned coarse filtering device includes but is not limited to a large-aperture filter net, etc., to preliminarily filter the airflow aggregated to the distributor 33 and extend the service life of the dust suction assembly 32.

[0043] In some embodiments, please refer to Figure 5 , the dust collection head 31 further includes at least two first fixing parts 316a and at least four second fixing parts 316b. At least two first fixing parts 316a are arranged at the bottom of the first dust collection pipe 311 along the stacking direction of the stacked head 1 and close to both sides of the base 2. At least four second fixing parts 316b are evenly distributed at the bottom of the third dust collection pipe 313 along the stacking direction of the stacked head 1. The first fixing parts 316a and the second fixing parts 316b are respectively provided with first fixing holes 316a1 and second fixing holes 316b1; the stacking device 1000 further includes a plurality of screws; the base 2 is provided with at least two first screw holes (not shown in the figure) and at least four second screw holes (not shown in the figure) corresponding to the first fixing holes 316a1 and the second fixing holes 316b1; wherein, a screw passes through a first fixing hole 316a1 and is screwed to a first screw hole, and a screw passes through a second fixing hole 316b1 and is screwed to a second screw hole.

[0044] It can be understood that the number of the first fixing parts 316a includes but is not limited to positive integers greater than or equal to two, and the number of the second fixing parts 316b includes but is not limited to positive integers greater than or equal to four. In some embodiments, the dust collecting head 31 is further provided with at least two third fixing parts and / or at least two fourth fixing parts. The at least two third fixing parts are evenly arranged at the bottom of the second dust collecting pipe 312, and the at least two fourth fixing parts are evenly arranged at the bottom of the fourth dust collecting pipe 314.

[0045] It is worth noting that the material of the dust collecting head 31 includes but is not limited to alloy pipes, composite pipes, plastic pipes, corrugated pipes, etc. In this embodiment, preferably, the dust collecting head 31 is made of alloy pipes. The inner wall of the alloy pipes is smooth, and the surface resistance of the selected alloy pipes is 10 6 to 10 9 ohms. The pipes with a relatively large surface resistance have excellent insulation performance, can effectively prevent the passage of current, reduce the risk of electric leakage and electric shock, and reduce the adsorption of static electricity to debris, ensuring the cleaning effect of the dust collecting device 3.

[0046] In some embodiments, the dust suction assembly 32 further includes a vacuum pump 321 and a filter 322. The vacuum pump 321 is communicated with the distributor 33, and the filter 322 is arranged between the vacuum pump 321 and the distributor 33. The filter 322 is used to filter debris.

[0047] It can be understood that a corresponding filter element is arranged in the filter 322 to filter the air flow passing through the vacuum pump 321, ensuring that the gas discharged from the vacuum pump 321 to the external environment does not contain the above-mentioned debris, and avoiding secondary pollution to the working environment of the lamination device 1000. Moreover, the filter element of the filter 322 is made of a replaceable material, and the staff needs to replace or clean the filter element regularly to avoid blockage of the filter element, thereby affecting the cleaning effect of the dust collecting device 3.

[0048] It is worth noting that the filtration accuracy of the filter element should be selected with reference to the level of the cleanroom cleanliness management grade and the process standard of the cleanliness grade of the operations involved in the lamination device 1000 and the key processing. In this embodiment, it is generally recommended to use a filter element with a filtration accuracy of 0.3 microns and an H14 grade in the cleanroom. If the actual cleanroom is of a higher grade, a filter element of U15 or above can be used. The above H14 grade is specified according to the HEPA (High Efficiency Particulate Air) filter grade in the European en779 standard. In this embodiment, a filter element with a filtration grade of H14 is selected, and its filtration efficiency is 99.995%-99.999%, so as to ensure that the gas discharged from the filter meets the relevant processing process standards of the working environment of the lamination device.

[0049] In an embodiment of the present utility model, a stacking device 1000 includes a base 2 for holding stacked materials; a power device; a stacking head 1 provided with a plurality of adsorption holes 11, the power device being in communication with the plurality of adsorption holes 11, and the adsorption holes 11 being used for adsorbing and / or blowing the materials; and a dust collection device 3 disposed around the base 2 for adsorbing debris generated during the stacking of the materials. With the above structure, in the embodiment of the present utility model, it is possible to timely adsorb the debris generated due to shaking or blowing during the stacking of the materials in the stacking device 1000, prevent it from falling onto the surface of the materials, affect the subsequent stacking work, and cause defects inside the processed finished products, thereby improving the yield rate of the processed products.

[0050] The present utility model also provides an embodiment of an assembly line. The assembly line includes the above-mentioned stacking device 1000. For the structure and functions of the stacking device 1000, reference may be made to the above embodiment, and details will not be repeated here.

[0051] It should be noted that the description and drawings of the present utility model give preferred embodiments of the present utility model. However, the present utility model can be implemented in many different forms and is not limited to the embodiments described in this specification. These embodiments do not serve as additional limitations to the content of the present utility model. The purpose of providing these embodiments is to make the understanding of the disclosed content of the present utility model more thorough and comprehensive. Moreover, the above technical features continue to be combined with each other to form various embodiments not listed above, all of which are regarded as within the scope described in the description of the present utility model; further, for those of ordinary skill in the art, improvements or changes can be made according to the above description, and all such improvements and changes should fall within the protection scope of the appended claims of the present utility model.

Claims

1. A lamination device, characterized in that: include A base for holding stacked materials; Power plant; The laminating head is provided with a plurality of adsorption holes, the power device is connected with the plurality of adsorption holes, and the adsorption holes are used to adsorb and / or blow the material; The dust collecting device is arranged around the base platform and is used for absorbing the debris generated in the process of stacking the materials.

2. The lamination device according to claim 1, characterized in that: The dust collecting device comprises a dust collecting head and a dust suction assembly, wherein the dust collecting head is arranged around the base; The dust suction assembly is connected to the dust collecting head and is used for sucking the debris through the dust collecting head.

3. The lamination device according to claim 2, characterized in that: The dust collecting head includes a first dust collecting pipe, a second dust collecting pipe, a third dust collecting pipe and a fourth dust collecting pipe, which are connected end to end in sequence, a first dust collecting port is provided at an edge of the first dust collecting pipe close to the top surface of the base, a second dust collecting port is provided at an edge of the second dust collecting pipe close to the top surface of the base, a third dust collecting port is provided at an edge of the third dust collecting pipe close to the top surface of the base, and a fourth dust collecting port is provided at an edge of the fourth dust collecting pipe close to the top surface of the base, the first dust collecting port, the second dust collecting port, the third dust collecting port and the fourth dust collecting port are all in the shape of long strips, and the first dust collecting port, the second dust collecting port, the third dust collecting port and the fourth dust collecting port are connected end to end in sequence.

4. The stacking device according to claim 3, characterized in that The inner walls of the first dust collecting pipe, the second dust collecting pipe, the third dust collecting pipe and the fourth dust collecting pipe are all coated with an antistatic coating.

5. The lamination device according to claim 3, characterized in that: The dust collecting head further comprises a first shunt pipe, a second shunt pipe, a third shunt pipe, a fourth shunt pipe, a fifth shunt pipe, a sixth shunt pipe, a seventh shunt pipe and an eighth shunt pipe; Wherein, the first shunt pipe and the second shunt pipe are evenly distributed at the bottom of the first dust collecting pipe along the stacking direction of the stacking head; the third shunt pipe and the fourth shunt pipe are evenly distributed at the bottom of the second dust collecting pipe along the stacking direction of the stacking head; the fifth shunt pipe and the sixth shunt pipe are evenly distributed at the bottom of the third dust collecting pipe along the stacking direction of the stacking head; the seventh shunt pipe and the eighth shunt pipe are evenly distributed at the bottom of the fourth dust collecting pipe along the stacking direction of the stacking head; One end of the first diverter pipe and the second diverter pipe are both connected to the first dust collecting pipe, and the other end of the first diverter pipe and the second diverter pipe are both connected to the dust collection assembly; one end of the third diverter pipe and the fourth diverter pipe are both connected to the second dust collecting pipe, and the other end of the third diverter pipe and the fourth diverter pipe are both connected to the dust collection assembly; one end of the fifth diverter pipe and the sixth diverter pipe are both connected to the third dust collecting pipe, and the other end of the fifth diverter pipe and the sixth diverter pipe are both connected to the dust collection assembly; one end of the seventh diverter pipe and the eighth diverter pipe are both connected to the fourth dust collecting pipe, and the other end of the seventh diverter pipe and the eighth diverter pipe are both connected to the dust collection assembly.

6. The lamination device according to claim 5, characterized in that: The dust collecting device also includes a distributor, which is arranged between the first diverter pipe, the second diverter pipe, the third diverter pipe, the fourth diverter pipe, the fifth diverter pipe, the sixth diverter pipe, the seventh diverter pipe and the eighth diverter pipe and the dust collection component. The first diverter pipe, the second diverter pipe, the third diverter pipe, the fourth diverter pipe, the fifth diverter pipe, the sixth diverter pipe, the seventh diverter pipe and the eighth diverter pipe are collected in the dust collection component through the distributor.

7. The lamination device according to any one of claims 3 to 6, characterized in that: The dust collecting head further comprises at least two first fixing parts and at least four second fixing parts, at least two of the first fixing parts are arranged at the bottom of the first dust collecting pipe along the stacking direction of the stacking head and close to the two sides of the base, at least four of the second fixing parts are evenly distributed at the bottom of the third dust collecting pipe along the stacking direction of the stacking head, and the first fixing part and the second fixing part are respectively provided with a first fixing hole and a second fixing hole; The lamination device also includes a plurality of screws; The base is provided with at least two first screw holes and at least one fourth second screw holes corresponding to the first fixing hole and the second fixing hole; Among them, one of the screws passes through one of the first fixing holes and is screwed into one of the first screw holes, and one of the screws passes through one of the second fixing holes and is screwed into one of the second screw holes.

8. The lamination device according to any one of claims 5 to 6, characterized in that: When the first dust collecting pipe, the second dust collecting pipe, the third dust collecting pipe, the fourth dust collecting pipe, the first shunt pipe, the second shunt pipe, the third shunt pipe, the fourth shunt pipe, the fifth shunt pipe, the sixth shunt pipe, the seventh shunt pipe and the eighth shunt pipe of the dust collecting head are all made of conductive materials, the surface resistance range of the first dust collecting pipe, the second dust collecting pipe, the third dust collecting pipe, the fourth dust collecting pipe, the first shunt pipe, the second shunt pipe, the third shunt pipe, the fourth shunt pipe, the fifth shunt pipe, the sixth shunt pipe, the seventh shunt pipe and the eighth shunt pipe is 10 6 to 10 9 ohm.

9. The lamination device according to claim 6, characterized in that: The dust collection assembly further includes a vacuum pump and a filter. The vacuum pump is connected to the distributor. The filter is arranged between the vacuum pump and the distributor, and is used to filter the debris.

10. A production line, characterized in that: Comprising a stacking device as claimed in any one of claims 1 to 9.