CN119319720B - Full-automatic printing system - Google Patents
Full-automatic printing system Download PDFInfo
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- CN119319720B CN119319720B CN202411879907.XA CN202411879907A CN119319720B CN 119319720 B CN119319720 B CN 119319720B CN 202411879907 A CN202411879907 A CN 202411879907A CN 119319720 B CN119319720 B CN 119319720B
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- automatic printing
- printing
- screw rod
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- 238000007639 printing Methods 0.000 title claims abstract description 138
- 238000007493 shaping process Methods 0.000 claims abstract description 35
- 230000005540 biological transmission Effects 0.000 claims description 26
- 230000000712 assembly Effects 0.000 claims description 13
- 238000000429 assembly Methods 0.000 claims description 13
- 230000001360 synchronised effect Effects 0.000 claims description 11
- 238000001816 cooling Methods 0.000 claims description 7
- 238000013461 design Methods 0.000 claims description 7
- 238000003860 storage Methods 0.000 claims description 7
- 238000009434 installation Methods 0.000 claims description 3
- 230000010354 integration Effects 0.000 claims description 2
- 238000007605 air drying Methods 0.000 abstract description 2
- 238000006748 scratching Methods 0.000 abstract 1
- 230000002393 scratching effect Effects 0.000 abstract 1
- 239000000047 product Substances 0.000 description 65
- 238000007664 blowing Methods 0.000 description 4
- 230000000694 effects Effects 0.000 description 4
- 238000010276 construction Methods 0.000 description 3
- 238000003854 Surface Print Methods 0.000 description 2
- 238000001035 drying Methods 0.000 description 2
- 238000004519 manufacturing process Methods 0.000 description 2
- 238000012545 processing Methods 0.000 description 2
- 230000001502 supplementing effect Effects 0.000 description 2
- 241000883990 Flabellum Species 0.000 description 1
- 230000009286 beneficial effect Effects 0.000 description 1
- 238000005422 blasting Methods 0.000 description 1
- 238000004891 communication Methods 0.000 description 1
- 238000010586 diagram Methods 0.000 description 1
- 238000009826 distribution Methods 0.000 description 1
- 238000004880 explosion Methods 0.000 description 1
- 238000010030 laminating Methods 0.000 description 1
- 239000000463 material Substances 0.000 description 1
- 238000000034 method Methods 0.000 description 1
- 238000007790 scraping Methods 0.000 description 1
- 238000004513 sizing Methods 0.000 description 1
- 239000007787 solid Substances 0.000 description 1
- 239000013589 supplement Substances 0.000 description 1
- 238000012546 transfer Methods 0.000 description 1
Classifications
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B41—PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
- B41F—PRINTING MACHINES OR PRESSES
- B41F17/00—Printing apparatus or machines of special types or for particular purposes, not otherwise provided for
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B41—PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
- B41F—PRINTING MACHINES OR PRESSES
- B41F23/00—Devices for treating the surfaces of sheets, webs, or other articles in connection with printing
- B41F23/04—Devices for treating the surfaces of sheets, webs, or other articles in connection with printing by heat drying, by cooling, by applying powders
- B41F23/0476—Cooling
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B41—PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
- B41F—PRINTING MACHINES OR PRESSES
- B41F31/00—Inking arrangements or devices
- B41F31/02—Ducts, containers, supply or metering devices
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B41—PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
- B41P—INDEXING SCHEME RELATING TO PRINTING, LINING MACHINES, TYPEWRITERS, AND TO STAMPS
- B41P2217/00—Printing machines of special types or for particular purposes
- B41P2217/10—Printing machines of special types or for particular purposes characterised by their constructional features
Landscapes
- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Rotary Presses (AREA)
Abstract
The invention discloses a full-automatic printing system, relates to the technical field of automatic printing, and solves the problem that printing ink on the surface of a printed matter is easy to scratch, smear and even wear. Meanwhile, the problem of low printing efficiency of the product is solved. The full-automatic printing system comprises a case, an upper frame, an automatic printing component and an integrated conveying and shaping mechanism, wherein the upper frame is installed at the top of the case, the automatic printing component installed at the edge of the top of the case is arranged on the inner side of the upper frame, the automatic printing component performs automatic printing operation on products, and the integrated conveying and shaping mechanism is installed at the center of the top of the case. According to the invention, the automatic air-drying shaping pretreatment is carried out on the product which is printed and moved, so that the printing ink printed on the surface of the product can be firmly bonded with the product, the problems of scratching, smearing, even wearing and the like caused by the vibration force and friction force of the operation can be avoided, and the quality of the product after the printing is finished can be effectively improved.
Description
Technical Field
The invention relates to the technical field of automatic printing, in particular to a full-automatic printing system.
Background
An automatic printing machine (automatic printing system) is a machine for automatically printing characters and images, which is used to firstly make characters and images to be printed into printing plates, then put the printing plates on the printing machine, then apply ink on the places where the characters and images are on the printing plates by manpower or the printing machine, and then directly or indirectly transfer the printing plates onto paper or other printing materials, so as to reproduce the same printed matter as the printing plates.
The invention discloses a semiautomatic double-table-board printing machine, which comprises a machine base, wherein a first printing table, a second printing table, a platform moving mechanism, a printing device and a controller are arranged on the machine base, the first printing table and the second printing table are arranged on the machine base in a staggered mode, the platform moving mechanism is arranged on the machine base and is used for driving the first printing table and the second printing table to alternately move left and right on the machine base, the printing device comprises an upright post, the printing mechanism and a lifting mechanism, the controller comprises an electric distribution box and an operation panel, the first printing table is used for conveying a plate to be printed to the printing device for printing, meanwhile, the second printing table is moved to be far away from the printing device, an operator can take down the plate from the second printing table and place the plate, the plate on one printing table can be printed by the printing device at the same time, the plate can be taken and placed by the other printing table can be used for carrying out operations of taking and placing the plate, and the plate can be used for effectively improving production efficiency when the plate and the printing device are repeatedly printed.
However, this automatic printing machine has the following drawbacks in particular use:
1. After the printing of the product to be printed is finished, the existing automatic printing machine needs to carry out operations such as stacking, drying, detecting and the like on the printed product, so that the automatic production and processing operation of the printed product is realized. However, when stacking the printed products, the printed products on the upper layer are easy to cause the problems of scraping, smearing, even wearing and the like on the surface of the printed products on the lower layer, so that the quality of the printed products is poor. Meanwhile, the efficiency is low when the printed matter is printed, and the requirement for producing and processing the printed matter in batches in factories is not met;
2. When the existing automatic printer is used for printing products, the printing operation is generally completed by adopting a mode that ink is contacted with the products. However, the ink is consumed very quickly during multiple printing operations, and when the ink is replenished to the printing machine, a great deal of time is required for the operations such as ink application and stricken off, which affects the efficiency and effect of printing the product.
Disclosure of Invention
The present invention is directed to a fully automatic printing system, which solves the above-mentioned problems.
In order to achieve the aim of the invention, the invention adopts the following technical scheme:
The invention provides a full-automatic printing system, which comprises a case, an upper frame, an automatic printing component and an integrated conveying and shaping mechanism, wherein the top of the case is provided with the upper frame, the inner side of the upper frame is provided with the automatic printing component arranged at the edge of the top of the case, the center of the top of the case is provided with the integrated conveying and shaping mechanism, the integrated conveying and shaping mechanism is positioned on the side surface of the automatic printing component,
Wherein, integration is carried forming mechanism including:
The gear driving assembly is arranged at the top of the chassis, two sides of the bottom of the gear driving assembly are connected with two screw rod conveying assemblies, the screw rod conveying assemblies are arranged at the top of the chassis through screws, and automatic printing assemblies are arranged on the side surfaces of the screw rod conveying assemblies;
the air blast shaping assembly is arranged on the outer side of the top of the screw rod conveying assembly, the screw rod conveying assembly is connected with the gear driving assembly, and the air blast shaping assembly is positioned on the side face of the automatic printing assembly;
The gear driving assembly drives the first gear, the second gear, the rotating shaft, the first transmission belt, the main bevel gear, the auxiliary bevel gear, the horizontal rod and the second transmission belt to operate respectively through the internal direct-current shaft rod, so that the screw rod conveying assembly and the blast shaping assembly are driven to operate respectively.
As a preferable scheme of the invention, an elastic support is arranged at the included angle of the bottom of the case, a plurality of elastic supports are arranged,
The top of the case is provided with a pre-operation table, the pre-operation table is arranged between the two screw rod conveying assemblies, and the pre-operation table is far away from the gear driving assembly.
As a preferred embodiment of the present invention, the automated printing unit includes:
the base station is arranged at the edge of the top of the chassis through screws, two extension plates are arranged at the top of the base station, and a direct current motor is arranged on the side surface of one extension plate;
The main shaft is connected with the output end of the direct current motor, the main shaft is rotationally connected with the side surface of the extension plate, the side surface of the main shaft is provided with a first connecting arm,
The first connecting arm is movably arranged between the two extension plates;
The second connecting arm is rotatably connected to the eccentric part of the side surface of the first connecting arm, the second connecting arm is movably arranged between the two extending plates, and the side surface of the second connecting arm is rotatably connected with a vertical arm;
The connecting rod is arranged at one side of the bottom of the vertical arm, the connecting rod penetrates through the other extending plate, the bottom of the connecting rod is fixedly provided with a mounting arm, the mounting arm is movably arranged at the side face of the other extending plate,
The side face of the mounting arm is rotatably connected with a rotation positioning component.
As a preferred embodiment of the present invention, an ink grid module is mounted on the inner side of the other extension board, the side surface of the ink grid module is connected with an ink storage and transportation module through a pipeline, the ink storage and transportation module is mounted on the outer side of the other extension board,
Wherein the ink grid module is located on a side of the rotational positioning member.
As a preferred embodiment of the present invention, the rotation positioning part includes:
The connecting block is rotationally connected to the side face of the mounting arm, an operation plate is fixedly welded to the bottom of the connecting block, and an assembly seat is fixedly arranged at the center of the top of the operation plate;
the positioning shaft rod is rotationally connected with the assembly seat, the positioning shaft rod is slidingly connected with the inner side of the positioning guide cylinder, the positioning guide cylinder is rotationally connected with the side surface of the other extension plate,
Wherein the top of the operation plate is provided with a plurality of telescopic cylinders, the output ends of the telescopic cylinders penetrate through the operation plate, the bottoms of the telescopic cylinders are provided with printing modules,
The printing module performs printing operation on the product at the bottom.
As a preferred embodiment of the present invention, the gear driving assembly includes:
The side stop block is arranged at the top of the case, the side surface of the side stop block is provided with a direct current motor, the output end of the direct current motor is connected with a direct current shaft lever,
The direct-current shaft rod penetrates through the transverse plate, and the transverse plate is arranged between the two screw rod conveying assemblies;
The first gear is arranged on the outer side of the direct-current shaft rod, the first gear is rotationally connected to the side face of the transverse plate, the left side and the right side of the first gear are in meshed connection with the second gear, and the second gear is rotationally connected to the side face of the transverse plate;
The rotating shaft is connected with the second gear, the rotating shaft penetrates through the transverse plate, the outer side of the rotating shaft is connected with a first transmission belt through a synchronous wheel connected with a key, the first transmission belt is movably connected to the side face of the transverse plate,
The inner side of the first transmission belt is connected with a screw rod conveying assembly through a synchronous wheel key.
As a preferable scheme of the invention, the outer side of the direct current shaft lever is also provided with a main bevel gear, the main bevel gear is positioned on the side surface of the first gear, the main bevel gear is rotationally connected with the inner side of a triangle seat, the triangle seat is arranged at the top of the chassis,
Wherein the left side and the right side of the main bevel gear are connected with the auxiliary bevel gears in a meshed manner, the auxiliary bevel gears are rotationally connected with the inner side of the triangular base, the side surfaces of the auxiliary bevel gears are connected with horizontal rods which are rotationally connected with the side surfaces of the screw rod conveying assembly,
The horizontal rod is connected with a second driving belt through a synchronous wheel connected with an outer side key, and the inner side of the second driving belt is connected with an air blast shaping assembly through a synchronous wheel key.
As a preferred scheme of the present invention, the screw rod conveying assembly includes:
one end of the reciprocating screw rod is connected with the first transmission belt through a synchronizing wheel connected with a key, the reciprocating screw rod is rotationally connected in the horizontal frame, and the horizontal frame is arranged at the top of the case through a screw;
The reciprocating sliding seat is connected to the outer side of the reciprocating screw rod through a ball, the reciprocating sliding seat is connected with the horizontal frame in a sliding mode, and an upper supporting seat is arranged at the top of the reciprocating sliding seat through a screw.
As the preferable scheme of the invention, the top of the upper supporting seat is fixedly provided with a product positioning die holder, the inner top of the product positioning die holder is supported and positioned with a product,
The product positioning die holder is characterized in that a plurality of air openings are formed in the product positioning die holder, and the air openings are located below the product.
As a preferred embodiment of the present invention, the air blast shaping assembly includes:
the upper shaft rod is connected to the inner side of the second transmission belt through a synchronous wheel connected with a key, and is rotatably connected to the top of a concave frame, and the concave frame is arranged on the outer side of the horizontal frame;
the conical gear set consists of two gears which are connected in a meshed manner, one gear is arranged on the outer side of the upper shaft rod, the coaxial end of the other gear is connected with a transmission gear,
Wherein a plurality of transmission gears are arranged, the plurality of transmission gears are rotationally connected to the inner top of the concave frame, the coaxial end of each transmission gear is connected with a blast fan blade, the blast fan blade carries out cooling shaping treatment on a printing product,
The blowing fan blades are provided with a plurality of driving gears which are in meshed connection.
Compared with the prior art, the above technical scheme has the following beneficial effects:
1. In the full-automatic printing system, when the product is transported and conveyed to move to finish the printing operation of the product, the reciprocating screw rod is driven to rotate, so that the plurality of blowing fan blades can be synchronously driven to rotate, the product which is printed and moved is automatically air-dried and shaped to be pretreated, and the printing ink printed on the surface of the product can be firmly bonded with the product. And then when carrying, stacking, drying or cooling the printed matter, the printed ink can not scratch, smear or even wear due to the vibration force and friction force of the operation, and the quality of the printed matter is effectively improved. Meanwhile, when the operation is actually operated, the two reciprocating screw rods can drive two products to carry out printing operation, and at the moment, when one product is moved to the lower part of the automatic printing assembly, the printed product can be synchronously driven to move to the lower part of the blower fan blade, so that the efficiency of printing the product and intervening the printing ink air is improved.
2. In a full-automatic printing system, when a product is subjected to automatic printing operation through a printing module, the printing module for printing can drive a connecting rod structure to operate through a direct current motor to drive the printing module to freely rotate by 90 degrees, so that 90-degree rotation and ink replenishment operation can be realized when the ink quantity on the printing module is insufficient, on one hand, the time for replenishing ink can be reduced, the printing efficiency of the product can be improved, on the other hand, the ink replenishment operation can be automatically carried out, and the quality of the product after the ink is printed can be improved more timely, more quickly and more uniformly when the ink is replenished;
3. In full-automatic printing system, when carrying out the printing operation of printing ink and product, carry out 90 degrees pivoted printing module, the mode that a plurality of flexible cylinders carried out the operation carries out horizontal or vertical orientation and removes, guarantees that printing module can be inseparable conflict and laminating in the side and the inside of product, product location die holder and printing ink net module, realizes the automation and prints the product and carry out the operation of supplementing to printing ink. The design of the telescopic cylinders can ensure that the printing module only moves in the vertical or horizontal direction when moving, so that the phenomenon that part of ink is not adhered when the ink is replenished is avoided, and the phenomenon of missing printing when the product is printed is avoided;
4. In full-automatic printing system, when carrying out preliminary blast air cooling design to the product of transportation and removal in-process (after accomplishing the printing), can drive a plurality of solid flabellums through the meshing connection of a plurality of drive gears and rotate the operation, promote the wind-force size that the blast air produced on the one hand, promote the efficiency and the effect of air-drying design to product surface printing ink, on the other hand can promote the path length of design to product surface printing ink, realize the better printing ink design operation of effect.
Drawings
The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and together with the description serve to explain the invention.
Furthermore, the terms "install," "set," "provided," "connected," and "sleeved" are to be construed broadly. For example, they may be fixedly connected, detachably connected, or of unitary construction, they may be mechanically or electrically connected, they may be directly connected, or they may be indirectly connected through intermediaries, or they may be in internal communication between two devices, elements or components. The specific meaning of the above terms in the present application can be understood by those of ordinary skill in the art according to the specific circumstances.
FIG. 1 is a schematic view of the overall structure of the present invention;
FIG. 2 is a schematic view of the structure of the upper frame of the present invention in front view;
FIG. 3 is a schematic diagram of the overall front view of the present invention;
FIG. 4 is a schematic view of the overall top view of the upper frame of the present invention after disassembly;
FIG. 5 is a schematic view of the structure of an automated printing assembly of the present invention;
FIG. 6 is a schematic view of the connection of the DC motor and the rotary positioning member of the present invention;
FIG. 7 is a schematic view of the structure of the explosion of the connection of the DC motor and the work plate of the present invention;
FIG. 8 is a schematic view of an exploded construction of the rotational positioning member of the present invention;
FIG. 9 is a schematic structural view of an integrated conveying and shaping mechanism of the present invention;
FIG. 10 is a schematic view of the structure of the localized integrated delivery sizing mechanism of the present invention;
FIG. 11 is a schematic view of an exploded construction of the lead screw delivery assembly of the present invention;
FIG. 12 is a schematic view of the connection of the gear drive assembly and the blower setting assembly of the present invention;
In the figure:
10. The device comprises a case, 101, an elastic support, 102, a pre-operation table, 20, an upper frame;
30. An automated printing assembly 301, a base station 302, an extension board 3021, an ink grid module 3022, an ink storage and delivery module 303, a direct current motor 304, a main shaft 305, a first connecting arm 306, a second connecting arm 3061, a vertical arm 307, a connecting shaft 308, an installation arm 309, a rotational positioning component 3091, a connecting block 3092, a work board 3093, an assembly seat 3094, a positioning shaft 3095, a positioning guide cylinder 3096, a telescopic cylinder 3097, and a printing module;
40. an integrated conveying and shaping mechanism;
50. Gear driving component 501, side stop block 502, DC motor 503, DC shaft lever 5031, main bevel gear 50311, triangle seat 5032, secondary bevel gear 5033, horizontal rod 5034, second driving belt 504, transverse plate 505, first gear 506, second gear 507, rotation shaft 508, first driving belt;
60. Screw rod conveying components, 601, reciprocating screw rods, 602, horizontal frames, 603, reciprocating sliding seats, 604, upper supporting seats, 605, product positioning die holders, 6051 and air ports;
70. The air blast shaping assembly comprises 701, an upper shaft rod, 702, a concave frame, 703, a conical gear set, 704, a transmission gear, 705 and a blast fan blade.
Detailed Description
In order that those skilled in the art will better understand the present application, a technical solution in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings in which it is apparent that the described embodiments are only some embodiments of the present application, not all embodiments. All other embodiments, which can be made by those skilled in the art based on the embodiments of the present application without making any inventive effort, shall fall within the scope of the present application.
Referring to fig. 1-12, the full-automatic printing system comprises a chassis 10, an upper frame 20, an automatic printing component 30 and an integrated conveying and shaping mechanism 40, wherein the upper frame 20 is installed at the top of the chassis 10, the automatic printing component 30 installed at the top edge of the chassis 10 is arranged at the inner side of the upper frame 20, the integrated conveying and shaping mechanism 40 is installed at the center of the top of the chassis 10, the integrated conveying and shaping mechanism 40 is located at the side of the automatic printing component 30, the integrated conveying and shaping mechanism 40 comprises a gear driving component 50, the gear driving component 50 is installed at the top of the chassis 10, two lead screw conveying components 60 are connected to two sides of the bottom of the gear driving component 50, the lead screw conveying components 60 are installed at the top of the chassis 10 through screws, the side of the lead screw conveying components 60 are provided with the automatic printing component 30, the air blowing and shaping component 70 is installed at the outer side of the top of the lead screw conveying components 60, the lead screw conveying components 60 are connected with the gear driving component 50, the air blowing and shaping component 70 is located at the side of the automatic printing component 30, the gear driving component 50 drives a first gear 505, a second gear 506, a rotating shaft 506 and a first bevel gear 508, a second gear 508, a horizontal gear 5032 and a conical shaft 5032 are respectively, and a first conical shaft 5032 are respectively driven by the gear 5032.
The above working principle is that when the product is printed, the product is firstly placed and positioned on the top of the screw rod conveying assembly 60, the screw rod conveying assembly 60 is driven to operate by the gear driving assembly 50, the product is driven to move to the lower part of the automatic printing assembly 30, and the printing operation of the product is automatically completed by the automatic printing assembly 30. Meanwhile, when the gear driving assembly 50 is operated, the air blast shaping assembly 70 is driven to operate, the printed product which is printed and conveyed is driven to perform air blast type cooling shaping treatment, the printed ink is pretreated, so that the adhesiveness between the product and the ink is stronger, the ink on the printed product can not be scratched, smeared or even worn when the printed product is stacked later, and the quality of the printed product is high.
In the invention, when the product is automatically printed, the automatic printing component 30 can automatically supplement the ink, thereby improving the efficiency when the large batch of products are printed.
Referring specifically to fig. 4, an elastic support 101 is installed at an included angle of the bottom of the case 10, and the elastic support 101 is provided in plurality, wherein a pre-operation table 102 is installed at the top of the case 10, the pre-operation table 102 is installed between the two screw feeding assemblies 60, and the pre-operation table 102 is disposed away from the gear driving assembly 50.
Referring specifically to fig. 5, 6 and 7, the automated printing assembly 30 includes a base 301, the base 301 being mounted at an edge of a top of the chassis 10 by screws, two extension plates 302 being mounted at the top of the base 301, a direct current motor 303 being mounted at a side of one extension plate 302, a spindle 304, the spindle 304 being connected to an output end of the direct current motor 303, the spindle 304 being rotatably connected to a side of the extension plate 302, a first connection arm 305 being mounted at a side of the spindle 304, wherein the first connection arm 305 is movably disposed between the two extension plates 302, a second connection arm 306 being rotatably connected to an eccentric portion of a side of the first connection arm 305, the second connection arm 306 being movably disposed between the two extension plates 302, a vertical arm 3061 being rotatably connected to a side of the second connection arm 306, a connection shaft 307 being mounted at a side of a bottom of the vertical arm 3061, a mounting arm 308 being fixedly mounted at a bottom of the connection shaft 307 being movably disposed at a side of the other extension plate 302, wherein the mounting arm 308 is rotatably mounted at a side of the rotating connection arm 309.
In the present embodiment, the ink mesh module 3021 is mounted on the inner side of the other extension board 302, and the side surface of the ink mesh module 3021 is provided on the outer side of the other extension board 302 through the pipe and the ink storage and delivery module 3022, wherein the ink mesh module 3021 is located on the side surface of the rotational positioning member 309.
In the above embodiment, the ink grid module 3021 blocks and adheres the ink through the internal grid unit, so that the printing module 3097 is guaranteed to be fully contacted with the printing module 3097 when moving to the inner side of the ink grid module 3021, and the ink is guaranteed to be more uniformly replenished. And a large amount of ink is stored in the ink storage and conveying module 3022, and the ink is automatically driven to be conveyed and moved to the inside of the ink grid module 3021, so that the ink feeding and conveying operation is completed.
In the fully automatic printing system of the present invention, when ink is required to be replenished, the dc motor 303 is started to operate, so as to drive the spindle 304 connected to the output end of the dc motor 303 to rotate, and further drive the first connecting arm 305 connected to the side of the spindle 304 to rotate. While the first connecting arm 305 is rotated, the second connecting arm 306, which is rotatably connected to the side eccentric portion, is operated, and the vertical arm 3061, which is rotatably connected to the side of the second connecting arm 306, is rotated (90 °). At this time, when the vertical arm 3061 rotates, the mounting arm 308 connected to the side surface of the vertical arm via the connecting rod 307 rotates (90 °), so as to drive the rotation positioning member 309 connected to the side surface of the mounting arm 308 to operate.
Referring to fig. 7 and 8, the rotary positioning member 309 includes a connecting block 3091, the connecting block 3091 is rotatably connected to a side of the mounting arm 308, a working plate 3092 is welded and fixed to a bottom of the connecting block 3091, an assembly seat 3093 is fixed and fixed to a top center of the working plate 3092, a positioning shaft 3094 is rotatably connected to the positioning shaft 3094 and the assembly seat 3093, the positioning shaft 3094 is slidably connected to an inner side of a positioning guide 3095, the positioning guide 3095 is rotatably connected to a side of another extending plate 302, a plurality of telescopic cylinders 3096 are mounted on a top of the working plate 3092, an output end of the telescopic cylinders 3096 is disposed through the working plate 3092, and a printing module 3097 is mounted on a bottom of the telescopic cylinders 3096, wherein the printing module 3097 performs a printing operation on a product on the bottom.
In the full-automatic printing system of the present invention, when the mounting arm 308 is rotated, the connection block 3091 and the work plate 3092, which are rotatably connected at the side thereof, can be rotated to realize a rotation operation in the 90 ° direction. When the work plate 3092 is in a vertical state, the printing module 3097 can be driven to move up and down through the operation of the telescopic cylinder 3096, so that automatic product printing operation is completed. When the working plate 3092 is in a horizontal state, the printing module 3097 can be driven to move horizontally through the operation of the telescopic cylinder 3096, and the ink supplementing operation is automatically completed. When the working plate 3092 rotates, the positioning shaft lever 3094 rotatably connected to the top of the working plate 3092 can slide in the positioning guide cylinder 3095, so that the rotation of the working plate 3092 is supported, and the stability of 90-degree rotation of the working plate 3092 is ensured.
Referring specifically to fig. 9, 10 and 12, the gear driving assembly 50 includes a side block 501, the side block 501 is mounted on the top of the chassis 10, a dc motor 502 is mounted on a side surface of the side block 501, an output end of the dc motor 502 is connected with a dc shaft 503, the dc shaft 503 penetrates through a transverse plate 504, the transverse plate 504 is mounted between two screw rod conveying assemblies 60, a first gear 505 is mounted on an outer side of the dc shaft 503, the first gear 505 is rotatably connected to a side surface of the transverse plate 504, two right and left sides of the first gear 505 are engaged with and connected with a second gear 506, the second gear 506 is rotatably connected to a side surface of the transverse plate 504, a rotating shaft 507 is connected to the second gear 506, the rotating shaft 507 penetrates through the transverse plate 504, a first driving belt 508 is movably connected to a side surface of the transverse plate 504 by a synchronizing wheel connected to the outer side of the rotating shaft 507, and the inner side of the first driving belt 508 is connected to the screw rod conveying assemblies 60 by a synchronizing wheel key.
In this embodiment, a main bevel gear 5031 is further installed on the outer side of the dc shaft 503, the main bevel gear 5031 is located on the side surface of the first gear 505, the main bevel gear 5031 is rotatably connected to the inner side of the triangle base 50311, the triangle base 50311 is installed on the top of the chassis 10, the left side and the right side of the main bevel gear 5031 are in meshed connection with a slave bevel gear 5032, the slave bevel gear 5032 is rotatably connected to the inner side of the triangle base 50311, the side surface of the bevel gear 5032 is connected with a horizontal rod 5033, the horizontal rod 5033 is rotatably connected to the side surface of the screw rod conveying assembly 60, the horizontal rod 5033 is connected with a second driving belt 5034 through a synchronous wheel connected with an outer side key, and the inner side of the second driving belt 5034 is connected with a blast shaping assembly 70 through a synchronous wheel key.
In the above embodiment, when the dc shaft 503 rotates, the main bevel gear 5031 mounted on the outside thereof rotates, and the slave bevel gears 5032 engaged and connected on the left and right sides of the main bevel gear 5031 rotate. When the bevel gear 5032 rotates, the horizontal rod 5033 connected to the side surface of the bevel gear 5032 rotates, so that the synchronous wheel and the second driving belt 5034 connected to the outer side of the horizontal rod 5033 are movable.
In the fully automatic printing system of the present invention, when the product is transported, the dc motor 502 is started to operate, and the dc shaft 503 connected to the output end of the dc motor 502 is driven to rotate. When the dc shaft 503 rotates, the first gear 505 connected to the outside thereof can rotate, so that the second gears 506 connected to the left and right sides of the first gear 505 in a meshing manner can rotate. At this time, when the second gear 506 rotates, the rotation shaft 507 connected to the side surface thereof rotates, so that the synchronizing wheel and the first driving belt 508 connected to the outer side of the rotation shaft 507 can operate.
Referring to fig. 9 and 11, the screw rod conveying assembly 60 includes a reciprocating screw rod 601, one end of the reciprocating screw rod 601 is connected with a first driving belt 508 through a synchronizing wheel connected with a key, the reciprocating screw rod 601 is rotatably connected inside a horizontal frame 602, the horizontal frame 602 is mounted on the top of the case 10 through a screw, a reciprocating sliding seat 603 is connected to the outer side of the reciprocating screw rod 601 through a ball, the reciprocating sliding seat 603 is slidably connected with the horizontal frame 602, and an upper supporting seat 604 is mounted on the top of the reciprocating sliding seat 603 through a screw.
In this embodiment, the top of the upper supporting seat 604 is fixedly provided with a product positioning die holder 605, and the inner top of the product positioning die holder 605 supports and positions a product, wherein a plurality of air openings 6051 are formed in the product positioning die holder 605, the air openings 6051 are located below the product, and the effect is better when the printed product is subjected to air blasting and shaping through the design of the air openings 6051.
In the full-automatic printing system of the present invention, when the first driving belt 508 is operated, the reciprocating screw 601, the inner side of which is connected through the synchronizing wheel key, can be rotated, so that the reciprocating slide 603, the outer side of which is connected through the ball, can be reciprocally moved. While the reciprocating slide 603 reciprocates, the product positioning die holder 605 mounted on the top of the reciprocating slide 603 via the upper support 604 can reciprocate, so as to realize the reciprocating operation of the product on the top of the product positioning die holder 605.
Referring specifically to fig. 12, the blast setting assembly 70 includes an upper shaft 701, the upper shaft 701 is connected to the inner side of the second driving belt 5034 by a synchronizing wheel connected by a key, the upper shaft 701 is rotatably connected to the top of the concave frame 702, the concave frame 702 is installed at the outer side of the horizontal frame 602, the tapered gear set 703 is composed of two gears connected in a meshed manner, one gear is installed at the outer side of the upper shaft 701, the coaxial end of the other gear is connected with a driving gear 704, wherein the driving gear 704 is provided with a plurality of gears, the rotation of the plurality of driving gears 704 is connected to the inner top of the concave frame 702, the coaxial end of the driving gear 704 is connected with blast fan blades 705, and the blast fan blades 705 perform a cooling setting treatment on the printed product, wherein the blast fan blades 705 are provided with a plurality of driving gears 704 in a meshed connection.
In the full-automatic printing system of the present invention, when the second driving belt 5034 is operated, the upper shaft 701, which is keyed on the inner side thereof by the synchronizing wheel, is rotated, so that the bevel gear set 703 installed on the outer side of the upper shaft 701 can be operated. And the conical gear set 703 is operated, the transmission gear 704 connected with the bottom of the conical gear set can rotate, so that the blower fan 705 connected with the bottom of the transmission gear 704 can rotate, and the printed product is subjected to preliminary cooling and shaping treatment, so that the ink can be firmly adhered to the surface of the product.
It should be understood that the present invention is not limited to the above embodiments, and any person skilled in the art, who is within the scope of the present invention, can apply to the present invention.
Claims (8)
1. The full-automatic printing system comprises a case (10), an upper frame (20), an automatic printing component (30) and an integrated conveying and shaping mechanism (40), and is characterized in that the upper frame (20) is arranged at the top of the case (10), the automatic printing component (30) arranged at the edge of the top of the case (10) is arranged at the inner side of the upper frame (20), the integrated conveying and shaping mechanism (40) is arranged at the center of the top of the case (10), the integrated conveying and shaping mechanism (40) is positioned at the side surface of the automatic printing component (30),
Wherein, integration transport design mechanism (40) is including:
The gear driving assembly (50), the gear driving assembly (50) is arranged at the top of the chassis (10), two sides of the bottom of the gear driving assembly (50) are connected with two screw rod conveying assemblies (60), the screw rod conveying assemblies (60) are arranged at the top of the chassis (10) through screws, and an automatic printing assembly (30) is arranged on the side face of each screw rod conveying assembly (60);
the air blast shaping assembly (70), the air blast shaping assembly (70) is arranged on the outer side of the top of the screw rod conveying assembly (60), the screw rod conveying assembly (60) is connected with the gear driving assembly (50), the air blast shaping assembly (70) is positioned on the side face of the automatic printing assembly (30),
The gear driving assembly (50) respectively drives the first gear (505), the second gear (506), the rotating shaft (507), the first transmission belt (508) and the main bevel gear (5031) through the internal direct-current shaft lever (503), the auxiliary bevel gear (5032), the horizontal rod (5033) and the second transmission belt (5034) to operate, thereby respectively driving the screw rod conveying assembly (60) and the blast shaping assembly (70) to operate,
Wherein the automated printing assembly (30) comprises:
The base station (301), the base station (301) is installed at the edge of the top of the chassis (10) through screws, two extension plates (302) are installed at the top of the base station (301), and a direct current motor (303) is installed on the side face of one extension plate (302);
The main shaft (304), the output end of the main shaft (304) is connected with the output end of the direct current motor (303), the main shaft (304) is rotationally connected to the side surface of the extension plate (302), the side surface of the main shaft (304) is provided with a first connecting arm (305),
Wherein the first connecting arm (305) is movably arranged between the two extension plates (302);
the second connecting arm (306), the second connecting arm (306) is rotatably connected to the eccentric part of the side surface of the first connecting arm (305), the second connecting arm (306) is movably arranged between the two extension plates (302), and the side surface of the second connecting arm (306) is rotatably connected with a vertical arm (3061);
The connecting rod (307), the connecting rod (307) is arranged at one side of the bottom of the vertical arm (3061), the connecting rod (307) penetrates through the other extending plate (302), the bottom of the connecting rod (307) is fixedly provided with an installation arm (308), the installation arm (308) is movably arranged at the side surface of the other extending plate (302),
Wherein the side surface of the mounting arm (308) is rotatably connected with a rotation positioning component (309),
Wherein the inner side of the other extension plate (302) is provided with an ink grid module (3021), the side surface of the ink grid module (3021) is provided with a pipeline and an ink storage and delivery module (3022), the ink storage and delivery module (3022) is arranged at the outer side of the other extension plate (302),
Wherein the ink grid module (3021) is located to the side of the rotational positioning member (309).
2. The full-automatic printing system according to claim 1, wherein an elastic support (101) is installed at an included angle at the bottom of the case (10), the elastic support (101) is provided with a plurality of elastic supports,
The top of the case (10) is provided with a pre-operation table (102), the pre-operation table (102) is arranged between the two screw rod conveying assemblies (60), and the pre-operation table (102) is far away from the gear driving assembly (50).
3. The fully automatic printing system according to claim 1, wherein the rotational positioning member (309) comprises:
The connecting block (3091), the connecting block (3091) is rotationally connected to the side face of the mounting arm (308), a working plate (3092) is fixedly welded at the bottom of the connecting block (3091), and an assembly seat (3093) is fixedly arranged at the center of the top of the working plate (3092);
The positioning shaft lever (3094) is rotationally connected with the assembly seat (3093), the positioning shaft lever (3094) is slidingly connected with the inner side of the positioning guide cylinder (3095), the positioning guide cylinder (3095) is rotationally connected with the side surface of the other extension plate (302),
Wherein a plurality of telescopic cylinders (3096) are arranged at the top of the operation plate (3092), the output ends of the telescopic cylinders (3096) penetrate through the operation plate (3092), printing modules (3097) are arranged at the bottoms of the telescopic cylinders (3096),
Wherein the printing module (3097) performs printing operation on the bottom product.
4. The fully automatic printing system according to claim 1, wherein the gear drive assembly (50) comprises:
the side stop block (501), the side stop block (501) is arranged at the top of the case (10), a direct current motor (502) is arranged on the side surface of the side stop block (501), the output end of the direct current motor (502) is connected with a direct current shaft lever (503),
Wherein the direct current shaft rod (503) penetrates through a transverse plate (504), and the transverse plate (504) is arranged between the two screw rod conveying assemblies (60);
The first gear (505), the first gear (505) is installed outside the direct current shaft lever (503), the first gear (505) is rotatably connected to the side surface of the transverse plate (504), the left side and the right side of the first gear (505) are in meshed connection with the second gear (506), and the second gear (506) is rotatably connected to the side surface of the transverse plate (504);
The rotating shaft (507) is connected with the second gear (506), the rotating shaft (507) penetrates through the transverse plate (504), a first transmission belt (508) is connected to the outer side of the rotating shaft (507) through a synchronous wheel connected with a key, the first transmission belt (508) is movably connected to the side face of the transverse plate (504),
The inner side of the first transmission belt (508) is connected with a screw rod conveying assembly (60) through a synchronous wheel key.
5. The full-automatic printing system according to claim 4, wherein a main bevel gear (5031) is further mounted on the outer side of the direct current shaft lever (503), the main bevel gear (5031) is located on the side face of the first gear (505), the main bevel gear (5031) is rotatably connected to the inner side of a triangle seat (50311), the triangle seat (50311) is mounted on the top of the chassis (10),
Wherein the left side and the right side of the main bevel gear (5031) are connected with a secondary bevel gear (5032) in a meshed manner, the secondary bevel gear (5032) is rotationally connected with the inner side of the triangular base (50311), the side surface of the secondary bevel gear (5032) is connected with a horizontal rod (5033), the horizontal rod (5033) is rotationally connected with the side surface of the screw rod conveying assembly (60),
The horizontal rod (5033) is connected with a second driving belt (5034) through a synchronizing wheel connected with an outer side key, and the inner side of the second driving belt (5034) is connected with an air blast shaping assembly (70) through a synchronizing wheel key.
6. The fully automatic printing system according to claim 5, wherein the lead screw transport assembly (60) comprises:
The reciprocating screw rod (601), one end of the reciprocating screw rod (601) is connected with the first transmission belt (508) through a synchronizing wheel connected with a key, the reciprocating screw rod (601) is rotationally connected inside a horizontal frame (602), and the horizontal frame (602) is arranged at the top of the case (10) through a screw;
The reciprocating sliding seat (603), the reciprocating sliding seat (603) is connected to the outer side of the reciprocating screw rod (601) through a ball, the reciprocating sliding seat (603) is connected with the horizontal frame (602) in a sliding mode, and an upper supporting seat (604) is arranged at the top of the reciprocating sliding seat (603) through a screw.
7. The full-automatic printing system according to claim 6, wherein a product positioning die holder (605) is fixedly arranged at the top of the upper supporting seat (604), a product is supported and positioned at the inner top of the product positioning die holder (605),
Wherein, a plurality of wind gaps (6051) are seted up in inside of product location die holder (605), and a plurality of wind gaps (6051) are located the below of product.
8. The fully automatic printing system according to claim 7, wherein said air blast setting assembly (70) comprises:
the upper shaft lever (701) is connected to the inner side of the second transmission belt (5034) through a synchronous wheel connected with a key, the upper shaft lever (701) is rotatably connected to the top of a concave frame (702), and the concave frame (702) is arranged on the outer side of the horizontal frame (602);
A conical gear set (703), wherein the conical gear set (703) consists of two gears which are connected in a meshed manner, one gear is arranged on the outer side of the upper shaft lever (701), the coaxial end of the other gear is connected with a transmission gear (704),
Wherein a plurality of transmission gears (704) are arranged, the rotation of the plurality of transmission gears (704) is connected with the inner top of the concave frame (702), the coaxial end of the transmission gears (704) is connected with a blower fan blade (705), the blower fan blade (705) carries out cooling shaping treatment on a printing product,
Wherein, the blower fan blade (705) is provided with a plurality of, a plurality of the transmission gears (704) are connected in a meshed manner.
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| Application Number | Priority Date | Filing Date | Title |
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| CN202411879907.XA CN119319720B (en) | 2024-12-19 | 2024-12-19 | Full-automatic printing system |
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| Application Number | Priority Date | Filing Date | Title |
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| CN202411879907.XA CN119319720B (en) | 2024-12-19 | 2024-12-19 | Full-automatic printing system |
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| CN119319720B true CN119319720B (en) | 2025-02-21 |
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Citations (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN105178537A (en) * | 2015-08-08 | 2015-12-23 | 山东信泰节能科技工程有限公司 | Fully-automatic and continuous production equipment for decorative insulation board |
| CN108340666A (en) * | 2018-04-24 | 2018-07-31 | 海宁酷彩数码科技有限公司 | A kind of printing device of food package film |
Family Cites Families (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US5184546A (en) * | 1992-02-07 | 1993-02-09 | Ming Sun Liao | Fully automatic curved surface printing machine |
| CN110626065A (en) * | 2019-10-29 | 2019-12-31 | 永康图仁印刷科技有限公司 | Full-automatic printing machine |
| CN116689200A (en) * | 2023-06-20 | 2023-09-05 | 深圳市捷图电器有限公司 | Plastic part 3D printing and spraying equipment in whole new energy vehicle |
| CN221457044U (en) * | 2023-12-07 | 2024-08-02 | 上海煊廷丝印设备有限公司 | Full-automatic AMB ceramic substrate printing machine |
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Patent Citations (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN105178537A (en) * | 2015-08-08 | 2015-12-23 | 山东信泰节能科技工程有限公司 | Fully-automatic and continuous production equipment for decorative insulation board |
| CN108340666A (en) * | 2018-04-24 | 2018-07-31 | 海宁酷彩数码科技有限公司 | A kind of printing device of food package film |
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