Manufacturing industry production traceability device based on Internet of Things
By using cleaning rollers and self-cleaning components in the manufacturing production traceability device to clean the injection surface, the problem of the impact of stains and impurities during the injection process is solved, and more efficient injection and traceability effects are achieved.
Patent Information
- Application Number
- CN202510139864.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-08
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2045-02-08
AI Technical Summary
The prior art fails to effectively clean up stains or impurities on the packaging during the inkjet coding process, resulting in incomplete inkjet coding coverage and affecting the traceability effect.
A manufacturing traceability device based on the Internet of Things was designed, and the injection surface of the produced product was cleaned using cleaning rollers and self-cleaning components, and the driving components were combined to achieve the expansion of the cleaning range and the improvement of the self-cleaning effect.
The cleaning roller effectively removes stains and impurities on the injection coding surface, improves the integrity and traceability of the injection coding, and achieves more efficient self-cleaning and cleaning effects through the coordination of self-cleaning components and cleaning components.
Smart Images

Figure CN119953086A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of manufacturing production, and relates to a production tracing device, in particular to a manufacturing production tracing device based on the Internet of Things. Background Art
[0002] With the deepening of the concept of intelligent manufacturing, manufacturing enterprises are rapidly moving towards digitalization, networking and intelligence. In this process, it is particularly important for discrete manufacturing enterprises to accurately record the information and processing status of products in each process. This not only helps to ensure the accurate execution of product processes, but also provides an effective means to accurately count the information of production factors such as personnel, materials, and equipment. At the same time, these records provide important evidence support for subsequent tracking and investigation of defective product issues.
[0003] After searching, for example, a Chinese patent document discloses a food traceability production inkjet device [Application No.: 201921823224.7; Publication No.: CN211684149U]. A food traceability production inkjet device, relating to the field of food traceability, comprises a rectangular frame, the four corners of the bottom of the rectangular frame are fixedly connected with support legs, the middle positions of the inner sides of the four support legs are connected to a bottom plate, both ends of the inner side of the rectangular frame are rotatably connected with rollers, and a conveyor belt is rotatably connected between the two groups of rollers, and side panels are fixed on both sides of one end of the top of the rectangular frame. The utility model is provided with structures such as side plates, a first cylinder, a limit plate and an infrared distance measuring sensor. The infrared distance measuring sensor measures the distance between the limit plate and the object, and drives the limit plate to move through the cylinder, so that the distance between the two sets of limit plates can be adjusted according to the width of the food, so that the food can be kept in the middle position of the conveyor belt for transportation. When the food moves to the bottom of the support seat, the inkjet printer head is just above the food, and the inkjet printer is not prone to deviation.
[0004] Although the inkjet printer head of this patent is located right above the food and is not prone to code deviation, the application directly codes the raw product during the coding process, so that stains or impurities on the surface of the bagged or boxed product are not cleaned. At this time, the code coverage will cause incomplete coding, which will affect the overall traceability effect. Summary of the invention
[0005] The purpose of the present invention is to address the above-mentioned problems in the existing technology and to propose a manufacturing production traceability device based on the Internet of Things. The technical problem to be solved by the invention is: how to clean up packaging stains or impurities, reduce the occurrence of incomplete coding when coding is covered, and improve the overall traceability effect.
[0006] The purpose of the present invention can be achieved by the following technical solutions: A manufacturing production tracing device based on the Internet of Things comprises a tracing frame and a transmission slot provided on the tracing frame, a conveyor belt is fixed on the transmission slot, and the tracing frame is slidably connected to a support arm, a cleaning frame is fixed on the support arm, the cleaning frame is slidably connected to a mounting frame, a cleaning roller is rotatably connected to the mounting frame, a pair of cleaning sponge layers are fixed on the roller surface of the cleaning roller, a self-cleaning component for self-cleaning the cleaning sponge layer is arranged in the cleaning roller, a driving component for controlling the mounting frame to move is arranged in the cleaning frame, a transmission component for driving the cleaning roller to rotate by its own movement is arranged in the mounting frame, a cleaning component is arranged in the cleaning frame, a collecting frame is arranged on the tracing frame, a splash-proof box is fixed on the collecting frame, the splash-proof box is located below the cleaning roller, and a supporting frame is arranged on the tracing frame, a regulating frame is slidably connected to the supporting frame, a mounting seat is slidably connected to the regulating frame, a printer head is fixed on the mounting seat, and a camera is fixed on the printer head.
[0007] The working principle of the present invention is as follows: the raw products can be transported by a conveyor belt, and during the transportation process, the coding surface of the raw products is cleaned by a cleaning roller to prevent stains and impurities from remaining on the coding surface, affecting the effect of subsequent coding, thereby improving the overall production traceability effect, and the driving component drives the cleaning roller to move as a whole to achieve an increase in the cleaning range, and after the cleaning is completed by the cleaning roller, the cleaning roller can be docked with a splash-proof box, and at this time, during the overall movement of the cleaning roller, the self-cleaning component will drive the impurities on the cleaning roller to clean, and cooperate with the cleaning component to improve the self-cleaning effect.
[0008] The driving assembly includes a guide slot opened in the cleaning frame, a reciprocating screw rotatably connected in the guide slot, and a servo motor 1 fixedly connected in the cleaning frame. The output shaft of the servo motor 1 is coaxially fixedly connected to the reciprocating screw, a movable sleeve is threadedly connected to the reciprocating screw, and the movable sleeve is fixedly connected to the mounting frame.
[0009] With the above structure, the servo motor can drive the reciprocating screw to rotate, and the reciprocating screw will drive the movable sleeve to move after rotating, and the movable sleeve will drive the mounting frame to move, thereby further realizing the overall movement of the cleaning roller, thereby increasing the cleaning range.
[0010] The transmission assembly includes a contact opening on the mounting frame, a meshing gear rotatably connected in the contact opening, a rack 1 is fixed at the notch of the guide slide groove, the rack 1 meshes with the meshing gear, and a transmission bevel gear 1 is rotatably connected in the mounting frame, the transmission bevel gear 1 is coaxially fixedly connected with the meshing gear, and a transmission bevel gear 2 is rotatably connected in the mounting frame, a transmission bevel gear 3 is rotatably connected in the mounting frame, a transmission bevel gear 4 is rotatably connected in the mounting frame, the transmission bevel gear 3 is coaxially fixedly connected with the transmission bevel gear 2, the transmission bevel gear 3 meshes with the transmission bevel gear 4, and the transmission bevel gear 4 is coaxially fixedly connected to the cleaning roller.
[0011] By adopting the above structure, during the overall movement of the mounting frame, the meshing gear can drive the meshing gear to rotate by meshing with the rack one. After the meshing gear rotates, it will drive the transmission bevel gear one to rotate. After the transmission bevel gear one rotates, it will drive the transmission bevel gear two to rotate. After the transmission bevel gear two rotates, it will drive the transmission bevel gear three to rotate. After the transmission bevel gear three rotates, it will drive the transmission bevel gear four to rotate. After the transmission bevel gear four rotates, it will drive the cleaning roller to rotate. In this way, the cleaning roller will rotate as a whole during the movement, and the inkjet surface of the product will be automatically polished and cleaned, thereby improving the cleaning effect.
[0012] The self-cleaning component includes a self-cleaning ring sleeved on the cleaning roller, a driving screw 1 rotatably connected to the cleaning roller, a guide block is threadedly connected to the driving screw 1, the guide block is fixedly connected to the self-cleaning ring, a transmission gear is provided on the cleaning roller, the transmission gear is coaxially fixedly connected to the driving screw 1, and a rack 2 is fixed at the box opening of the splash-proof box, the rack 2 is meshed with the transmission gear, and the self-cleaning ring is extruded and matched with the two cleaning sponge layers.
[0013] By adopting the above structure, the cleaning roller can be docked with the splash-proof box so that the transmission gear and the rack two are meshed. In this way, when the cleaning roller moves as a whole, the transmission gear will be driven by the rack two to rotate. After the transmission gear rotates, it will drive the driving screw one to rotate. After the driving screw one rotates, it will drive the guide block to move. The movement of the guide block will drive the self-cleaning ring to move. During the movement, the self-cleaning ring will achieve the action of scrubbing the cleaning sponge layer through the extrusion cooperation between the two cleaning sponge layers, thereby improving the self-cleaning effect.
[0014] The cleaning component includes a water flow trough opened on the bottom surface of the cleaning frame, a pair of parallel guide rods fixedly connected in the water flow trough, the upper sliding connection of the two parallel guide rods is connected with the water flow frame, the water flow frame is fixedly connected with the movable sleeve, the interior of the water flow frame is hollow, and the bottom surface of the water flow frame is fixed with a plurality of water outlets connected with the interior of the water flow frame, the top surface of the cleaning frame is fixed with a water source external interface, the output end of the water source external interface is fixed with a water supply hose, and the bottom end of the water supply hose is connected with the interior of the water flow frame.
[0015] By adopting the above structure, an external water pipe can be connected through the water source external interface, so that the water source flows into the water flow rack through the water source external interface and is sprayed on the cleaning roller through the water outlet, thereby realizing the cleaning ability. Moreover, since the water flow rack is fixed to the movable sleeve, the water flow rack and the cleaning roller can move synchronously, thereby improving the cleaning effect.
[0016] A recovery channel is provided in the collection rack, an external water outlet is fixed on the collection rack, a plurality of water holes are provided at the bottom of the splash-proof box, one end of the recovery channel is connected to the plurality of water holes, and the other end of the recovery channel is connected to the external water outlet.
[0017] By adopting the above structure, the contaminated water after cleaning can be received through the water hole and transported to the external water outlet. The external water outlet is connected to the external recovery pipe to recover the water, thereby improving the cleanliness of the countertop and the resource recovery capacity.
[0018] A servo motor 2 is fixed in the support frame, and a regulating screw 1 is rotatably connected in the support frame. The regulating screw 1 is threadedly connected to the regulating frame, and the output shaft of the servo motor 2 is coaxially fixedly connected to the regulating screw 1. A servo motor 3 is fixed in the regulating frame, and a regulating screw 2 is rotatably connected in the regulating frame. The output shaft of the servo motor 3 is coaxially fixedly connected to the regulating screw 2, and the mounting seat is threadedly connected to the regulating screw 2.
[0019] By adopting the above structure, the regulating screw 1 can be driven to rotate by the servo motor 2, and the regulating screw 1 will drive the regulating frame to move after rotating, and the regulating screw 2 can be driven to rotate by the servo motor 3, and the regulating screw 2 will drive the mounting seat to move, thereby improving the adjustment performance of the height and position of the inkjet printer head, improving the inkjet printing effect, and adapting to products of different sizes.
[0020] A servo motor four is fixed in the traceability frame, a regulating screw three is rotatably connected in the traceability frame, the regulating screw three is threadedly connected to the support arm, and a driving motor is fixed in the collection frame, and the output shaft of the driving motor is fixedly connected to the traceability frame.
[0021] By adopting the above structure, the servo motor four can drive the regulating screw three to rotate, and the regulating screw three can drive the support arm to move up and down, so that the cleaning roller can come into contact with the coding surface of the product, and the collecting frame can be driven by the driving motor to rotate as a whole, and the up and down movement of the support arm can be coordinated to achieve the contact between the cleaning roller and the splash-proof box, thereby improving the overall operability.
[0022] The splash-proof box is slidably connected to a connecting frame, a splash-proof cover wrapping a cleaning roller is fixed on the connecting frame, a guide opening for sealingly cooperating with the bottom of the splash-proof box is opened at the bottom of the splash-proof cover, and a winding wheel is rotatably connected in the splash-proof box, a winding spring is fixed at the rotating shaft of the winding wheel, and one end of a connecting rope is fixed on the winding wheel, and the other end of the connecting rope is fixedly connected to the connecting frame.
[0023] By adopting the above structure, the bottom of the cleaning roller can be wrapped by the splash guard, so that when water is injected for cleaning, the water accumulates in the splash guard, and the bottom of the cleaning roller is in the water accumulation place, thereby realizing the cleaning ability. In this way, there is no need to spray for cleaning all the time, which saves water resources and prevents water from splashing out during the cleaning process. When the guide opening passes through the water hole during movement, the water will flow out through the water hole, guiding the water recovery and improving the cleanliness of the equipment. The connecting rope is reeled in by the reeling wheel, so that the connecting rope pulls the splash guard to always be in the initial position without the driving of the cleaning roller.
[0024] The tracing frame is provided with a fixed frame, the fixed frame is slidably connected with a fixed arm, the fixed arm is slidably connected with a fixed block, the fixed block is provided with an adsorption disk, a servo motor five is fixed at the bottom end of the fixed frame, the output shaft of the servo motor five is fixedly connected to the tracing frame, and a servo motor six is fixed in the fixed frame, a regulating screw four is rotatably connected in the fixed frame, the regulating screw four is coaxially fixedly connected with the output shaft of the servo motor six, and the regulating screw four is threadedly connected to the fixed arm, a servo motor seven is fixed in the fixed arm, a regulating screw five is rotatably connected in the fixed arm, the regulating screw five is coaxially fixedly connected with the output shaft of the servo motor seven, the regulating screw five is threadedly connected to the fixed block, and a plurality of holes are provided on the bottom surface of the adsorption disk. Adsorption holes, a sealing gasket is fixed at the orifice of each adsorption hole, pistons are slidably connected in the multiple adsorption holes, a threaded sleeve is fixed on the top of each piston, multiple driving gears are rotatably connected in the adsorption disk, the bottom of each driving gear is coaxially fixedly connected to a driving screw, the bottom of each driving screw is threadedly connected to the corresponding threaded sleeve, and an inner gear ring is rotatably connected in the adsorption disk, the inner gear ring is meshed with multiple driving gears, and an outer gear ring is fixed on the inner gear ring, a servo motor eight is fixed in the adsorption disk, the output shaft of the servo motor eight is coaxially fixedly connected with a spur gear, the spur gear is meshed with the outer gear ring, a servo motor nine is fixed in the adsorption disk, and the output shaft of the servo motor nine is fixedly connected to a fixed block.
[0025] By adopting the above structure, the servo motor eight can be used to drive the spur gear to rotate, the spur gear drives the outer gear ring to rotate, the outer gear ring further drives the inner gear ring to rotate, and the inner gear ring rotates, which drives multiple drive gears to rotate, and the multiple drive gears rotate, which drives the corresponding drive screws to rotate synchronously, and the drive screws rotate, which are connected with the corresponding threaded sleeves to adjust the height of the piston. When the piston is lifted, air is sucked through the adsorption hole to form a negative pressure on the contact surface of the raw product, so as to achieve the ability of adsorption and fixation, and the servo motor five drives the fixed frame to rotate as a whole, the servo motor six drives the regulating screw four to rotate, the regulating screw four drives the fixed arm to move, and the servo motor seven drives the regulating screw five to rotate, and the regulating screw five drives the fixed block to move, so that the overall rotation of the fixed frame and the overall movement of the fixed arm and the fixed block can realize the adjustment of the adsorption position of the adsorption plate, improve the adsorption effect, and improve the overall work efficiency, and the adsorption and fixation of the raw product by the adsorption plate can realize the angle guidance during the conveying process of the raw product and the fixation during the cleaning process.
[0026] Compared with the existing technology, this manufacturing production traceability device based on the Internet of Things has the following advantages: 1. The raw products are transported by the conveyor belt. During the transportation process, the coding surface of the raw products is cleaned by the cleaning roller to prevent stains and impurities from remaining on the coding surface, which will affect the effect of subsequent coding and improve the overall production traceability effect.
[0027] 2. The cleaning roller is driven by the driving component to move as a whole to improve the cleaning range. After the cleaning is completed by the cleaning roller, the cleaning roller can be docked through the splash-proof box. At this time, the cleaning roller will drive the self-cleaning component to clean the impurities on the cleaning roller during the overall movement, and cooperate with the cleaning component to improve the self-cleaning effect.
[0028] 3. Through the overall rotation of the fixed frame, the overall movement of the fixed arm and the fixed block, the adsorption position of the adsorption plate can be adjusted to improve the adsorption effect and the overall work efficiency. The adsorption and fixation of the raw products by the adsorption plate can achieve angle guidance during the conveying process of the raw products and fixation during the cleaning process. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Figure 1 It is a structural schematic diagram of the present invention.
[0030] Figure 2 It is a three-dimensional structural schematic diagram of the splash-proof box in the present invention.
[0031] Figure 3 It is a schematic diagram of the structure inside the cleaning rack of the present invention.
[0032] Figure 4 It is a structural schematic diagram of the transmission component in the present invention.
[0033] Figure 5 It is a schematic diagram of the structure inside the collection rack of the present invention.
[0034] Figure 6 It is a schematic diagram of the structure inside the fixing frame of the present invention.
[0035] Figure 7 It is a schematic diagram of the structure of the driving component in the present invention.
[0036] Figure 8 It is a schematic diagram of the structure inside the cleaning roller of the present invention.
[0037] Fig. 9 It is a structural schematic diagram of the water flow rack in the present invention.
[0038] Fig.10 It is a schematic diagram of the internal structure of the traceability frame in the present invention.
[0039] Fig.11 It is a schematic diagram of the structure inside the adsorption disk of the present invention.
[0040] Fig.12 It is a schematic diagram of the structure inside the splash-proof box of the present invention.
[0041] Fig.13 This is a schematic diagram of the three-dimensional connection structure between the cleaning rack and the splash-proof box in the present invention. In the figure, 1, traceability frame; 2, transmission slot; 3, transmission belt; 4, support arm; 5, cleaning frame; 6, mounting frame; 7, cleaning roller; 8, cleaning sponge layer; 9, collection frame; 10, splash box; 11, support frame; 12, control frame; 13, mounting seat; 14, inkjet printer head; 15, camera; 16, guide slide; 17, reciprocating screw; 18, servo motor 1; 19, moving sleeve; 20, contact opening; 21, meshing gear; 22, rack 1; 23, transmission bevel gear 1; 24, transmission bevel gear 2; 25, transmission bevel gear 3; 26, transmission bevel gear 4; 27, self-cleaning ring; 28, driving screw 1; 29, guide block; 30, transmission gear; 31, rack 2; 32, water flow trough; 33, parallel guide rod; 34, water flow frame; 35, water outlet; 36, water source external interface; 37, water delivery soft 1. The servo motor is a plurality of gears, each of which is a plurality of gears, each of which is a plurality of gears. The servo motor is a plurality of gears, each of which is a plurality of gears. The servo motor is a plurality of gears, each of which is a plurality of gears. The servo motor is a plurality of gears, each of which is a plurality of gears. The servo motor is a plurality of gears, each of which is a plurality of gears. DETAILED DESCRIPTION
[0042] The following are specific embodiments of the present invention and the accompanying drawings to further describe the technical solution of the present invention, but the present invention is not limited to these embodiments.
[0043] like Figure 1-Figure 13As shown, a manufacturing production traceability device based on the Internet of Things comprises a traceability frame 1, a transmission slot 2 provided on the traceability frame 1, a transmission belt 3 fixed on the transmission slot 2, and a support arm 4 slidably connected to the traceability frame 1, a cleaning frame 5 fixed to the support arm 4, a mounting frame 6 slidably connected to the cleaning frame 5, a cleaning roller 7 rotatably connected to the mounting frame 6, a pair of cleaning sponge layers 8 are fixed on the roller surface of the cleaning roller 7, and a self-cleaning component for self-cleaning the cleaning sponge layer 8 is arranged in the cleaning roller 7, and a control device for controlling the mounting frame 6 to move forward is arranged in the cleaning frame 5. A driving component for moving, a transmission component for driving the cleaning roller 7 to rotate by its own movement is arranged in the mounting frame 6, and a cleaning component is arranged in the cleaning frame 5, a collecting frame 9 is arranged on the tracing frame 1, a splash-proof box 10 is fixed on the collecting frame 9, the splash-proof box 10 is located below the cleaning roller 7, and a supporting frame 11 is arranged on the tracing frame 1, a regulating frame 12 is slidably connected to the supporting frame 11, a mounting seat 13 is slidably connected to the regulating frame 12, a printer head 14 is fixed on the mounting seat 13, and a camera 15 is fixed on the printer head 14.
[0044] The raw products can be transported by the conveyor belt 3. During the transportation process, the coding surface of the raw products is cleaned by the cleaning roller 7 to prevent stains and impurities from remaining on the coding surface, which will affect the effect of subsequent coding and improve the overall production traceability effect. The cleaning roller 7 is driven by the driving component to move as a whole to improve the cleaning range. After the cleaning is completed by the cleaning roller 7, the cleaning roller 7 can be docked with the splash-proof box 10. At this time, the cleaning roller 7 will drive the self-cleaning component to clean the impurities on the cleaning roller 7 during the overall movement, and cooperate with the cleaning component to improve the self-cleaning effect. The position of the product transported on the conveyor belt 3 can be determined by the camera 15, which is convenient for performing the corresponding process through the raw product transportation position, thereby improving the overall work efficiency and effect.
[0045] The driving assembly includes a guide groove 16 opened in the cleaning frame, a reciprocating screw 17 rotatably connected in the guide groove 16, and a servo motor 18 fixedly connected in the cleaning frame 5. The output shaft of the servo motor 18 is coaxially fixedly connected to the reciprocating screw 17. A movable sleeve 19 is threadedly connected to the reciprocating screw 17, and the movable sleeve 19 is fixedly connected to the mounting frame 6.
[0046] By adopting the above structure, the reciprocating screw 17 can be driven to rotate by the servo motor 18. After the reciprocating screw 17 rotates, it will drive the movable sleeve 19 to move. The movable sleeve 19 will drive the mounting frame 6 to move, thereby further realizing the overall movement of the cleaning roller 7, thereby increasing the cleaning range.
[0047] The transmission assembly includes a contact opening 20 opened on the mounting frame 6, and a meshing gear 21 rotatably connected in the contact opening 20, a rack 22 is fixed at the notch of the guide slide groove 16, the rack 22 meshes with the meshing gear 21, and a transmission bevel gear 23 is rotatably connected in the mounting frame 6, the transmission bevel gear 23 is coaxially fixedly connected with the meshing gear 21, and a transmission bevel gear 24 is rotatably connected in the mounting frame 6, a transmission bevel gear 3 25 is rotatably connected in the mounting frame 6, a transmission bevel gear 4 26 is rotatably connected in the mounting frame 6, the transmission bevel gear 3 25 is coaxially fixedly connected with the transmission bevel gear 2 24, and the transmission bevel gear 3 25 meshes with the transmission bevel gear 4 26, and the transmission bevel gear 4 26 is coaxially fixedly connected with the cleaning roller 7.
[0048] By adopting the above structure, during the overall movement of the mounting frame 6, the meshing gear 21 can drive the meshing gear 21 to rotate by meshing with the rack 1 22. After the meshing gear 21 rotates, it will drive the transmission bevel gear 1 23 to rotate. After the transmission bevel gear 1 23 rotates, it will drive the transmission bevel gear 2 24 to rotate. After the transmission bevel gear 2 24 rotates, it will drive the transmission bevel gear 3 25 to rotate. After the transmission bevel gear 3 25 rotates, it will drive the transmission bevel gear 4 26 to rotate. After the transmission bevel gear 4 26 rotates, it will drive the cleaning roller 7 to rotate. In this way, the cleaning roller 7 will rotate as a whole during the movement, and the inkjet surface of the product will be automatically polished and cleaned, thereby improving the cleaning effect.
[0049] The self-cleaning component includes a self-cleaning ring 27 sleeved on the cleaning roller 7, a driving screw 28 rotatably connected to the cleaning roller 7, a guide block 29 threadedly connected to the driving screw 28, the guide block 29 is fixedly connected to the self-cleaning ring 27, a transmission gear 30 is provided on the cleaning roller 7, the transmission gear 30 is coaxially fixedly connected to the driving screw 28, and a rack 21 is fixed at the box opening of the splash-proof box 10, the rack 21 is meshed with the transmission gear 30, and the self-cleaning ring 27 is extruded and matched with the two cleaning sponge layers 8.
[0050] By adopting the above structure, the cleaning roller 7 can be docked with the splash-proof box 10, so that the transmission gear 30 is meshed with the rack 2 31. In this way, when the cleaning roller 7 moves as a whole, the transmission gear 30 will be driven to rotate by the rack 2 31. After the transmission gear 30 rotates, it will drive the driving screw 1 28 to rotate. After the driving screw 1 28 rotates, it will drive the guide block 29 to move. The movement of the guide block 29 will drive the self-cleaning ring 27 to move. During the movement, the self-cleaning ring 27 will achieve the action of scrubbing the cleaning sponge layer 8 through the extrusion cooperation between the two cleaning sponge layers 8, thereby improving the self-cleaning effect.
[0051] The cleaning assembly includes a water flow trough 32 opened on the bottom surface of the cleaning frame 5, a pair of parallel guide rods 33 fixedly connected in the water flow trough 32, a water flow frame 34 is slidably connected to the upper part of the two parallel guide rods 33, the water flow frame 34 is fixedly connected to the movable sleeve 19, the interior of the water flow frame 34 is hollow, and the bottom surface of the water flow frame 34 is fixed with a plurality of water outlets 35 connected to the interior of the water flow frame 34, a water source external interface 36 is fixed on the top surface of the cleaning frame 5, a water supply hose 37 is fixed to the output end of the water source external interface 36, and the bottom end of the water supply hose 37 is connected to the interior of the water flow frame 34.
[0052] By adopting the above structure, an external water pipe can be connected through the water source external interface 36, so that the water source flows into the water flow rack 34 through the water source external interface 36, and is sprayed on the cleaning roller 7 through the water outlet 35, thereby achieving the cleaning ability. Moreover, since the water flow rack 34 is fixed to the movable sleeve 19, the synchronous movement of the water flow rack 34 and the cleaning roller 7 is achieved, thereby improving the cleaning effect.
[0053] A recovery channel 38 is opened in the collection rack 9, an external water outlet 39 is fixed on the collection rack 9, and a plurality of water holes 40 are opened at the bottom of the splash-proof box 10, and one end of the recovery channel 38 is connected to the plurality of water holes 40, and the other end of the recovery channel 38 is connected to the external water outlet 39.
[0054] By adopting the above structure, the contaminated water after cleaning can be received through the water hole 40 and transported to the external water outlet 39. The external water outlet 39 is connected to an external recovery pipe to recover the water, thereby improving the cleanliness of the countertop and the resource recovery capacity.
[0055] A servo motor 2 41 is fixed in the support frame 11, and a regulating screw 1 42 is rotatably connected in the support frame 11. The regulating screw 1 42 is threadedly connected to the regulating frame 12, and the output shaft of the servo motor 2 41 is coaxially fixedly connected to the regulating screw 1 42. A servo motor 3 43 is fixed in the regulating frame 12, and a regulating screw 2 44 is rotatably connected in the regulating frame 12. The output shaft of the servo motor 3 43 is coaxially fixedly connected to the regulating screw 2 44, and the mounting seat 13 is threadedly connected to the regulating screw 2 44.
[0056] By adopting the above structure, the regulating screw 1 42 can be driven to rotate by the servo motor 2 41. After the regulating screw 1 42 rotates, it will drive the regulating frame 12 to move, and the regulating screw 2 44 can be driven to rotate by the servo motor 3 43, and the regulating screw 2 44 will drive the mounting seat 13 to move, thereby improving the adjustment performance of the height and position of the inkjet printer head 14, improving the inkjet printing effect, and adapting to products of different sizes.
[0057] A servo motor 45 is fixed in the traceability frame 1, and a regulating screw 3 46 is rotatably connected in the traceability frame 1. The regulating screw 3 46 is threadedly connected to the support arm 4, and a drive motor 47 is fixed in the collection frame 9, and the output shaft of the drive motor 47 is fixedly connected to the traceability frame 1.
[0058] By adopting the above structure, the servo motor four 45 can drive the regulating screw three 46 to rotate, and the regulating screw three 46 can drive the support arm 4 to move up and down, so that the cleaning roller 7 can be brought into contact with the coding surface of the product, and the collecting frame 9 can be driven by the driving motor 47 to rotate as a whole, and the up and down movement of the support arm 4 can be coordinated to achieve the contact between the cleaning roller 7 and the splash-proof box 10, thereby improving the overall operability.
[0059] A connecting frame 48 is slidably connected to the splash-proof box 10, a splash-proof cover 49 wrapping the cleaning roller 7 is fixed on the connecting frame 48, a guide opening 50 for sealingly cooperating with the bottom of the splash-proof box 10 is opened at the bottom of the splash-proof cover 49, and a winding wheel 52 is rotatably connected to the splash-proof box 10, a winding spring is fixed at the rotating shaft of the winding wheel 52, and one end of a connecting rope 53 is fixed on the winding wheel 52, and the other end of the connecting rope 53 is fixedly connected to the connecting frame 48.
[0060] By adopting the above structure, the bottom of the cleaning roller 7 can be wrapped by the splash guard 49, so that when water is injected for cleaning, the water accumulates in the splash guard 49, and the bottom of the cleaning roller 7 is at the water accumulation place, thereby realizing the cleaning capability. In this way, there is no need to spray for cleaning all the time, thus saving water resources, and when the guide opening 50 passes through the water hole 40 during the movement, the water will flow out through the water hole 40, guiding the water recovery and improving the cleanliness of the equipment. The connecting rope 53 is reeled in by the reeling wheel 52, so that the connecting rope 53 pulls the splash guard 49 and is always in the initial position without the driving of the cleaning roller 7.
[0061] A fixed frame 54 is provided on the traceability frame 1, and a fixed arm 55 is slidably connected to the fixed frame 54, and a fixed block 56 is slidably connected to the fixed arm 55, and an adsorption disk 57 is provided on the fixed block 56. A servo motor 58 is fixed to the bottom end of the fixed frame 54, and the output shaft of the servo motor 58 is fixedly connected to the traceability frame 1, and a servo motor 6 is fixed in the fixed frame 54, and a regulating screw 4 60 is rotatably connected in the fixed frame 54, and the regulating screw 4 60 is coaxially fixedly connected with the output shaft of the servo motor 6 59, and the regulating screw 4 60 is threadedly connected to the fixed arm 55, and a servo motor 7 61 is fixed in the fixed arm 55, and a regulating screw 5 62 is rotatably connected in the fixed arm 55, and the regulating screw 5 62 is coaxially fixedly connected with the output shaft of the servo motor 7 61, and the regulating screw 5 62 is threadedly connected to the fixed block 56, and a plurality of adsorption disks are provided on the bottom surface of the adsorption disk 57. Hole 63, a sealing gasket 64 is fixed at the orifice of each adsorption hole 63, pistons 65 are slidably connected in the multiple adsorption holes 63, a threaded sleeve 66 is fixed on the top of each piston 65, multiple driving gears 67 are rotatably connected in the adsorption disk 57, the bottom of each driving gear 67 is coaxially fixedly connected with a driving screw 68, the bottom of each driving screw 68 is threadedly connected with the corresponding threaded sleeve 66, and an inner gear ring 69 is rotatably connected in the adsorption disk 57, the inner gear ring 69 is meshed with the multiple driving gears 67, and an outer gear ring 70 is fixed on the inner gear ring 69, a servo motor eight 71 is fixed in the adsorption disk 57, the output shaft of the servo motor eight 71 is coaxially fixedly connected with a spur gear 72, the spur gear 72 is meshed with the outer gear ring 70, a servo motor nine 73 is fixed in the adsorption disk 57, and the output shaft of the servo motor nine 73 is fixedly connected to the fixed block 56.
[0062] With the above structure, the servo motor 8 71 can drive the spur gear 72 to rotate, the spur gear 72 drives the outer gear ring 70 to rotate, the outer gear ring 70 further drives the inner gear ring 69 to rotate, and the rotation of the inner gear ring 69 will drive the multiple driving gears 67 to rotate, and the rotation of the multiple driving gears 67 will drive the corresponding driving screws 68 to rotate synchronously, and the driving screws 68 will be connected with the corresponding threaded sleeves 66 through the threaded connection after the rotation, so as to adjust the height of the piston 65. When the piston 65 is lifted, air will be sucked through the adsorption hole 63 to form a negative pressure with the contact surface of the product, so as to achieve the ability of adsorption and fixation. The servo motor five 58 drives the fixed frame 54 to rotate as a whole, the servo motor six 59 drives the regulating screw four 60 to rotate, the regulating screw four 60 drives the fixed arm 55 to move, and the servo motor seven 61 drives the regulating screw five 62 to rotate, and the regulating screw five 62 drives the fixed block 56 to move. In this way, the adjustment of the adsorption position of the adsorption plate 57 is achieved through the overall rotation of the fixed frame 54 and the overall movement of the fixed arm 55 and the fixed block 56, thereby improving the adsorption effect and the overall work efficiency. The adsorption and fixation of the raw products by the adsorption plate 57 can achieve angle guidance during the conveying process of the raw products and fixation during the cleaning process.
[0063] The working principle of the present invention is as follows: the servo motor eight 71 drives the spur gear 72 to rotate, the spur gear 72 drives the outer gear ring 70 to rotate, the outer gear ring 70 further drives the inner gear ring 69 to rotate, and the rotation of the inner gear ring 69 drives multiple driving gears 67 to rotate, and the rotation of multiple driving gears 67 drives the corresponding driving screws 68 to rotate synchronously, and the rotation of the driving screws 68 is connected with the corresponding threaded sleeves 66 to adjust the height of the piston 65. When the piston 65 is lifted, air is sucked through the adsorption hole 63 to form a negative pressure with the contact surface of the product, so as to achieve the ability of adsorption and fixation, and the servo motor five 58 drives the fixing frame 54 to rotate as a whole, and the servo motor six 59 drives the regulating screw four 60 to rotate. The servo motor 7 drives the regulating screw 5 62 to rotate, and the regulating screw 5 62 drives the fixed block 56 to move, so that the overall rotation of the fixed frame 54 and the overall movement of the fixed arm 55 and the fixed block 56 can realize the adjustment of the adsorption position of the adsorption disk 57, improve the adsorption effect, improve the overall work efficiency, and fix the raw product through the adsorption disk 57 to achieve the angle guidance of the raw product during the conveying process and the fixation during the cleaning process. The servo motor 4 45 drives the regulating screw 3 46 to rotate, and the regulating screw 3 46 drives the support arm 4 to move up and down, so that the cleaning roller 7 contacts with the coding surface of the raw product. At this time, the servo motor 1 18 drives the adjusting screw 3 46 to rotate, and the adjusting screw 3 46 drives the support arm 4 to move up and down. The reciprocating screw 17 rotates, and the reciprocating screw 17 rotates, which drives the movable sleeve 19 to move. The movable sleeve 19 drives the mounting frame 6 to move, thereby further realizing the overall movement of the cleaning roller 7, thereby improving the cleaning range. During the overall movement of the mounting frame 6, the driving gear 67 engages with the rack 1 22 to drive the driving gear 67 to rotate. When the driving gear 67 rotates, it drives the transmission bevel gear 1 23 to rotate. When the transmission bevel gear 1 23 rotates, it drives the transmission bevel gear 2 24 to rotate. When the transmission bevel gear 2 24 rotates, it drives the transmission bevel gear 3 25 to rotate. When the transmission bevel gear 3 25 rotates, it drives the transmission bevel gear 4 26 to rotate. When the transmission bevel gear 4 26 rotates, the cleaning roller 7 is driven. The cleaning roller 7 rotates, so that the cleaning roller 7 rotates as a whole during the movement, and the coding surface of the raw product is automatically polished and cleaned to improve the cleaning effect. After the coding surface of the raw product is cleaned, it will be transported to the bottom of the coding machine head 14, and the coding work will be carried out through the coding machine head 14, which is convenient for subsequent information entry and improves the product traceability capability. The cleaning roller 7 is docked with the splash-proof box 10 so that the transmission gear 30 is meshed with the rack 2 31. In this way, when the cleaning roller 7 moves as a whole, the transmission gear 30 will be driven to rotate by the rack 2 31. After the transmission gear 30 rotates, it will drive the driving screw 1 28 to rotate. After the driving screw 1 28 rotates, it will drive the guide block 29 to move. The movement of the guide block 29 will drive the self-cleaning ring 27 to move.During the movement, the self-cleaning ring 27 will achieve the action of scrubbing the cleaning sponge layer 8 by squeezing and cooperating with the two cleaning sponge layers 8, thereby improving the self-cleaning effect. The external water pipe is connected through the water source external interface 36, so that the water source flows into the water flow rack 34 through the water source external interface 36, and is sprayed on the cleaning roller 7 through the water outlet 35, thereby achieving the cleaning ability. In addition, since the water flow rack 34 is fixed to the movable sleeve 19, the synchronous movement of the water flow rack 34 and the cleaning roller 7 is achieved, thereby improving the cleaning effect. The contaminated water source after cleaning is received through the water hole 40 and transported to the external water outlet 39, and the external recovery pipe is connected through the external water outlet 39 to recover the water source, thereby improving the cleanliness of the countertop and the resource recovery ability.
[0064] In summary, the raw products are transported by the conveyor belt 3. During the transportation process, the coding surface of the raw products is cleaned by the cleaning roller 7 to prevent stains and impurities from remaining on the coding surface, which affects the effect of subsequent coding and improves the overall production traceability effect. The driving component drives the cleaning roller 7 to move as a whole to improve the cleaning range. After the cleaning is completed by the cleaning roller 7, the cleaning roller 7 can be docked with the splash-proof box 10. At this time, the cleaning roller 7 will drive the self-cleaning component to clean the impurities on the cleaning roller 7 during the overall movement, and cooperate with the cleaning component to improve the self-cleaning effect.
[0065] The specific embodiments described herein are merely examples of the spirit of the present invention. Those skilled in the art may make various modifications or additions to the specific embodiments described or replace them in similar ways, but they will not deviate from the spirit of the present invention or exceed the scope defined by the appended claims.
Claims
1. A manufacturing production traceability device based on the Internet of Things, comprising a traceability frame (1) and a transmission slot (2) provided on the traceability frame (1), characterized in that: A conveyor belt (3) is fixed on the conveying trough (2), and a support arm (4) is slidably connected to the tracing frame (1), a cleaning frame (5) is fixed on the support arm (4), a mounting frame (6) is slidably connected to the cleaning frame (5), a cleaning roller (7) is rotatably connected to the mounting frame (6), a pair of cleaning sponge layers (8) are fixed on the roller surface of the cleaning roller (7), and a self-cleaning component for self-cleaning the cleaning sponge layer (8) is arranged in the cleaning roller (7), and a driving component for controlling the mounting frame (6) to move is arranged in the cleaning frame (5), and a self-cleaning component for self-cleaning the cleaning sponge layer (8) is arranged in the mounting frame (6). A transmission component is moved to drive the cleaning roller (7) to rotate, and a cleaning component is arranged in the cleaning frame (5), a collecting frame (9) is arranged on the tracing frame (1), a splash-proof box (10) is fixed on the collecting frame (9), the splash-proof box (10) is located below the cleaning roller (7), and a supporting frame (11) is arranged on the tracing frame (1), a regulating frame (12) is slidably connected to the supporting frame (11), a mounting seat (13) is slidably connected to the regulating frame (12), a printer head (14) is fixed on the mounting seat (13), and a camera (15) is fixed on the printer head (14).
2. According to the IoT-based manufacturing production traceability device of claim 1, it is characterized in that: The driving assembly comprises a guide slot (16) provided in the cleaning frame, a reciprocating screw (17) rotatably connected in the guide slot (16), and a servo motor (18) fixedly connected in the cleaning frame (5); the output shaft of the servo motor (18) is coaxially fixedly connected to the reciprocating screw (17); a movable sleeve (19) is threadedly connected to the reciprocating screw (17); and the movable sleeve (19) is fixedly connected to the mounting frame (6).
3. According to the IoT-based manufacturing production traceability device of claim 2, it is characterized in that: The transmission assembly comprises a contact opening (20) provided on the mounting frame (6), a meshing gear (21) rotatably connected in the contact opening (20), a rack (22) fixed at the notch of the guide slide groove (16), the rack (22) meshing with the meshing gear (21), a transmission bevel gear (23) rotatably connected in the mounting frame (6), the transmission bevel gear (23) and the meshing gear (21) being coaxially fixedly connected, a transmission bevel gear (24) rotatably connected in the mounting frame (6), a transmission bevel gear (3) rotatably connected in the mounting frame (6), a transmission bevel gear (4) rotatably connected in the mounting frame (6), a transmission bevel gear (3) rotatably connected in the mounting frame (6), a transmission bevel gear (4) rotatably connected in the mounting frame (6), the transmission bevel gear (3) rotatably connected in the mounting frame (6), the transmission bevel gear (3) rotatably connected in the mounting frame (6), the transmission bevel gear (4) rotatably connected in the mounting frame (6), the transmission bevel gear (3) rotatably connected in the mounting frame (6), the transmission bevel gear (3) rotatably connected in the mounting frame (6), the transmission bevel gear (3) rotatably connected in the mounting frame (6), the transmission bevel gear (3) rotatably connected in the mounting frame (6), the transmission bevel gear (25) and the transmission bevel gear (24) being coaxially fixedly connected, the transmission bevel gear (25) meshing with the transmission bevel gear (26), the transmission bevel gear (4) rotatably connected in the cleaning roller (7).
4. According to the IoT-based manufacturing production traceability device of claim 1, it is characterized in that: The self-cleaning component comprises a self-cleaning ring (27) sleeved on a cleaning roller (7), a driving screw (28) rotatably connected to the cleaning roller (7), a guide block (29) being threadedly connected to the driving screw (28), the guide block (29) being fixedly connected to the self-cleaning ring (27), a transmission gear (30) being arranged on the cleaning roller (7), the transmission gear (30) being coaxially fixedly connected to the driving screw (28), a rack (31) being fixed at the box opening of the splash-proof box (10), the rack (31) being meshed with the transmission gear (30), and the self-cleaning ring (27) being extruded and matched with the two cleaning sponge layers (8).
5. According to the IoT-based manufacturing production traceability device of claim 2, it is characterized in that: The cleaning assembly comprises a water flow trough (32) provided on the bottom surface of the cleaning rack (5), a pair of parallel guide rods (33) fixedly connected in the water flow trough (32), a water flow rack (34) slidably connected to the upper part of the two parallel guide rods (33), the water flow rack (34) being fixedly connected to the movable sleeve (19), the interior of the water flow rack (34) being hollow, and a plurality of water outlets (35) connected to the interior of the water flow rack (34) being fixed on the bottom surface of the water flow rack (34), a water source external interface (36) being fixed on the top surface of the cleaning rack (5), a water supply hose (37) being fixed at the output end of the water source external interface (36), and the bottom end of the water supply hose (37) being connected to the interior of the water flow rack (34).
6. The manufacturing production traceability device based on the Internet of Things according to claim 1 is characterized in that: A recovery channel (38) is provided in the collection frame (9), an external water outlet (39) is fixed on the collection frame (9), a plurality of water holes (40) are provided on the bottom of the splash-proof box (10), one end of the recovery channel (38) is in communication with the plurality of water holes (40), and the other end of the recovery channel (38) is in communication with the external water outlet (39).
7. The manufacturing production traceability device based on the Internet of Things according to claim 1 is characterized in that: A servo motor 2 (41) is fixed in the support frame (11), a regulating screw 1 (42) is rotatably connected in the support frame (11), the regulating screw 1 (42) is threadedly connected to the regulating frame (12), and the output shaft of the servo motor 2 (41) is coaxially fixedly connected to the regulating screw 1 (42), a servo motor 3 (43) is fixed in the regulating frame (12), a regulating screw 2 (44) is rotatably connected in the regulating frame (12), the output shaft of the servo motor 3 (43) is coaxially fixedly connected to the regulating screw 2 (44), and the mounting seat (13) is threadedly connected to the regulating screw 2 (44).
8. The manufacturing production traceability device based on the Internet of Things according to claim 1 is characterized in that: A servo motor four (45) is fixed inside the traceability frame (1), a regulating screw three (46) is rotatably connected inside the traceability frame (1), the regulating screw three (46) is threadedly connected to the support arm (4), and a drive motor (47) is fixed inside the collection frame (9), and the output shaft of the drive motor (47) is fixedly connected to the traceability frame (1).
9. The manufacturing production traceability device based on the Internet of Things according to claim 1 is characterized in that: The splash-proof box (10) is slidably connected to a connecting frame (48), a splash-proof cover (49) wrapping a cleaning roller (7) is fixed to the connecting frame (48), a guide opening (50) for sealingly matching with the bottom of the splash-proof box (10) is provided at the bottom of the splash-proof cover (49), and a reel (52) is rotatably connected inside the splash-proof box (10), a coil spring is fixed to the rotating shaft of the reel (52), and one end of a connecting rope (53) is fixed to the reel (52), and the other end of the connecting rope (53) is fixedly connected to the connecting frame (48).
10. The manufacturing production traceability device based on the Internet of Things according to claim 1 is characterized in that: The tracing frame (1) is provided with a fixing frame (54), a fixing arm (55) is slidably connected to the fixing frame (54), a fixing block (56) is slidably connected to the fixing arm (55), an adsorption disk (57) is provided on the fixing block (56), a servo motor five (58) is fixed at the bottom end of the fixing frame (54), an output shaft of the servo motor five (58) is fixedly connected to the tracing frame (1), a servo motor six (59) is fixed inside the fixing frame (54), and a regulating screw four (69) is rotatably connected inside the fixing frame (54). 0), the regulating screw four (60) is coaxially fixedly connected with the output shaft of the servo motor six (59), and the regulating screw four (60) is threadedly connected with the fixed arm (55), the servo motor seven (61) is fixed in the fixed arm (55), the regulating screw five (62) is rotatably connected in the fixed arm (55), the regulating screw five (62) is coaxially fixedly connected with the output shaft of the servo motor seven (61), the regulating screw five (62) is threadedly connected with the fixed block (56), and the bottom surface of the adsorption plate (57) is provided with a plurality of Adsorption holes (63), each adsorption hole (63) is fixed with a sealing gasket (64) at its orifice, a plurality of adsorption holes (63) are slidably connected with pistons (65), a threaded sleeve (66) is fixed on the top of each piston (65), a plurality of driving gears (67) are rotatably connected in the adsorption plate (57), a driving screw (68) is coaxially fixedly connected to the bottom of each driving gear (67), the bottom of each driving screw (68) is threadedly connected to the corresponding threaded sleeve (66), and the adsorption plate (57) is rotatably connected to the adsorption plate (57). ) is rotatably connected to an inner ring gear (69), the inner ring gear (69) is meshed with a plurality of driving gears (67), and an outer ring gear (70) is fixed on the inner ring gear (69), a servo motor eight (71) is fixed in the adsorption disk (57), the output shaft of the servo motor eight (71) is coaxially fixedly connected to a spur gear (72), the spur gear (72) is meshed with the outer ring gear (70), a servo motor nine (73) is fixed in the adsorption disk (57), and the output shaft of the servo motor nine (73) is fixedly connected to the fixed block (56).
Citation Information
Patent Citations
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Laser engraving residual oil gas flushing process
CN112620221A
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CN118977511A
Continuous ink-jet printer based on Internet of Things technology
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Logistics traceability device
CN219130061U