An inkjet coding device and method for manufacturing computer components

By designing a coding device for computer components manufacturing, the parts are clamped by the rotation and adjustment functions of the stable output components, the instability of the parts on the conveyor belt is solved and the stability and quality of the coding is improved.

CN119239143BActive Publication Date: 2025-06-10陕西尚吉正科技有限公司
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Patent Information

Application Number
CN202411560915.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-04
Publication Date
2025-06-10
Estimated Expiration
2044-11-04

AI Technical Summary

Technical Problem

During the manufacturing process, computer components are instability on the transport conveyor belt due to irregular shapes, which in turn causes distortion or tear of the inkjet pattern, reducing the inkjet quality.

Method used

A injection coding device for manufacturing computer parts is designed, including a plurality of symmetrical first brackets, a transport conveyor belt, a control terminal, a injection terminal, an infrared detection sensor and a stable output assembly. The stable output assembly is adjusted according to the shape of the computer components by rotating and connecting to the first positioning plate to achieve clamping and stable movement of the components.

Benefits of technology

It effectively prevents computer components from shaking during transmission, reduces the risk of errors during the inkjet coding process, and improves the inkjet quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses an inkjet coding device and method for manufacturing computer components, belonging to the technical field of inkjet coding. Among them, an inkjet coding device for manufacturing computer components includes a plurality of symmetrically arranged first brackets. A transport conveyor belt is arranged inside the first brackets. A control terminal is arranged on one side of the first brackets. One side of one of the first brackets is fixedly connected with a first support rod. An inkjet head is installed on one side of the first support rod. The inkjet head is connected to the control terminal through a wire. An infrared detection sensor is arranged on one side of the inkjet head. A second bracket is installed above the first brackets. A telescopic member is installed inside the second bracket. One side of the telescopic member is connected with a first positioning plate. A stable conveying assembly is slidably connected to the outer surface of the first positioning plate. As the contact area between the stable output assembly and the components increases, it can be adjusted according to the shape of the components to ensure their stable movement on the conveyor belt.
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Description

Technical Field

[0001] The present invention belongs to the technical field of inkjet coding, and particularly relates to an inkjet coding device and method for manufacturing computer components. Background Art

[0002] An inkjet coding device is a device controlled by software. It marks products in a non-contact manner. This device changes the flight path of ink dots by charging and deflecting the ink. It makes the ink dots deviate from the normal trajectory and shoot towards the surface of the target object. By charging the ink droplets, the position of each ink droplet is precisely controlled. Usually, this control only affects the vertical direction of the ink droplets. In order to form the required printing information, relative movement between the object to be marked and the nozzle must be allowed.

[0003] During the manufacturing process of computer components, due to the usually irregular shapes of computer components, when computer components are placed on the surface of a transport conveyor belt, the computer components are often unstable. This instability causes the computer components to shake during the inkjet coding operation, which in turn causes the inkjet pattern to be distorted or torn, significantly reducing the quality of the inkjet coding. Summary of the Invention

[0004] Aiming at the problems existing in the prior art, the present invention provides an inkjet coding device and method for manufacturing computer components, which have the advantage of being able to clamp computer components with irregular shapes, and solve the problems existing in the prior art.

[0005] The present invention is implemented as follows. An inkjet coding device for manufacturing computer components includes a plurality of symmetric first brackets. A transport conveyor belt is provided inside the first brackets. A control terminal is provided on one side of the first brackets. One side of one of the first brackets is fixedly connected to a first support rod. A nozzle head is installed on one side of the first support rod. The nozzle head is connected to the control terminal through a wire. An infrared detection sensor is provided on one side of the nozzle head. A second bracket is installed above the first brackets;

[0006] A telescopic member is installed inside the second bracket. One side of the telescopic member is connected to a first positioning plate;

[0007] A stable conveying assembly is slidably connected to the outer surface of the first positioning plate.

[0008] Preferably, the stable conveying assembly includes a first airbag. The first airbag is located above the transport conveyor belt. The back of the first airbag is slidably connected to the first positioning plate;

[0009] A plurality of first baffles are fixedly connected inside the first airbag. A plurality of first round holes are opened on each of the first baffles;

[0010] One side of each of the first baffles is fixedly connected to a second baffle.

[0011] Preferably in the present invention, a second positioning plate is installed on the other side of the first positioning plate, and a second airbag is slidably connected to the outer surface of the second positioning plate.

[0012] Preferably in the present invention, a protective layer is provided on the outer surfaces of the first airbag and the second airbag.

[0013] Preferably in the present invention, a pump body is respectively connected to one side of the first airbag and the second airbag.

[0014] Preferably in the present invention, the telescopic member includes a first telescopic rod, and one end of the first telescopic rod is located inside the second bracket;

[0015] A fixed seat is fixedly connected to the upper side of the first positioning plate, and the other end of the first telescopic rod is fixedly connected inside the fixed seat;

[0016] A first spring is fixedly connected to the outer surface of the first telescopic rod.

[0017] Preferably in the present invention, a first rotating shaft and a second rotating shaft are respectively rotatably connected to the first bracket. A driving gear is fixedly connected to the outer surface of the first rotating shaft, and a driven gear is fixedly connected to the outer surface of the second rotating shaft. A toothed ring is fixedly connected to the inner wall of the transport conveyor belt, and both the driving gear and the driven gear are meshed with the toothed ring.

[0018] Preferably in the present invention, a first motor is provided on one side of the first rotating shaft, and the output end of the first motor is fixedly connected to the first rotating shaft.

[0019] A method for inkjet coding in the manufacture of computer components, using the inkjet coding device for the manufacture of computer components as described above, includes the following steps:

[0020] Step S1, the computer components are transported from the previous production process to the transport conveyor belt;

[0021] Step S2, the transport conveyor belt rotates to drive the computer components to move to one side of the stable output component;

[0022] Step S3, the stable output component rotates before contacting the computer components;

[0023] Step S4, the stable output component is connected to the first positioning plate and moves along the first positioning plate;

[0024] Step S5, the contact area between the stable output component and the computer components increases and is adjusted according to the shape of the components;

[0025] Step S6: The stable output component holds the computer component to ensure its stable movement on the conveyor belt.

[0026] Step S7: When the component reaches below the infrared detection sensor, the sensor detects its shape and transmits the data.

[0027] Step S8: The control terminal receives the data and controls the inkjet head through a wire.

[0028] Step S9: The inkjet head performs inkjet coding according to the control signal.

[0029] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0030] In the production process of computer components, after the components are transported from the previous link to the conveyor belt, with the continuous movement of the conveyor belt, the components will gradually move near the stable output component and come into contact with it. Before contacting the component, the stable output component rotates and is connected to the first positioning plate and moves along it. The first positioning plate plays a role of guiding and fixing. As the contact area between the stable output component and the component increases, it can adjust according to the shape of the component to achieve clamping of the component and ensure its stable movement on the conveyor belt.

[0031] When the component moves below the infrared detection sensor, the sensor detects its shape and transmits the information to the control terminal. The control terminal sends instructions to the inkjet head through a wire for inkjet coding operation. The adjustment and clamping function of the stable output component effectively prevents the component from shaking during transportation, thereby reducing the risk of errors during the inkjet coding process. Description of the Drawings

[0032] Figure 1 is the first perspective three-dimensional structural schematic diagram of the inkjet coding device for manufacturing computer components provided by the embodiment of the present invention;

[0033] Figure 2 is the Figure 1 partial enlarged three-dimensional structural schematic diagram of part A in the inkjet coding device for manufacturing computer components provided by the embodiment of the present invention;

[0034] Figure 3 is the Figure 1 partial enlarged three-dimensional structural schematic diagram of part B in the inkjet coding device for manufacturing computer components provided by the embodiment of the present invention;

[0035] Figure 4 is the Figure 1 partial enlarged three-dimensional structural schematic diagram of part C in the inkjet coding device for manufacturing computer components provided by the embodiment of the present invention;

[0036] Figure 5It is a second - perspective three - dimensional structure schematic diagram of the ink - jet coding device for computer component manufacturing provided by the embodiment of the present invention;

[0037] Figure 6 is the ink - jet coding device for computer component manufacturing provided by the embodiment of the present invention Figure 5 partial enlarged three - dimensional structure schematic diagram of part D therein;

[0038] Figure 7 is the internal structure schematic diagram of the first airbag of the ink - jet coding device for computer component manufacturing provided by the embodiment of the present invention;

[0039] Figure 8 is the internal sectional three - dimensional structure schematic diagram of the ink - jet coding device for computer component manufacturing provided by the embodiment of the present invention;

[0040] Figure 9 is the ink - jet coding device for computer component manufacturing provided by the embodiment of the present invention Figure 8 partial enlarged three - dimensional structure schematic diagram of part E therein;

[0041] Figure 10 is the internal sectional plane structure schematic diagram from a top - view perspective of the ink - jet coding device for computer component manufacturing provided by the embodiment of the present invention;

[0042] Figure 11 is the ink - jet coding device for computer component manufacturing provided by the embodiment of the present invention Figure 10 partial enlarged plane structure schematic diagram of part E therein.

[0043] In the figure: 1. First bracket; 2. Transport conveyor belt; 3. Control terminal; 4. First support rod; 5. Ink - jet head; 6. Infrared detection sensor; 7. Second bracket; 8. First positioning plate; 9. First airbag; 10. First baffle; 11. First round hole; 12. Second baffle; 13. Second positioning plate; 14. Second airbag; 15. First telescopic rod; 16. Fixed seat; 17. First spring; 18. First rotating shaft; 19. Second rotating shaft; 20. Driving gear; 21. Driven gear; 22. Tooth ring; 23. Motor. Detailed implementation manners

[0044] To further understand the content, features and effects of the present invention, the following embodiments are exemplified and described in detail in conjunction with the accompanying drawings.

[0045] The structure of the present invention will be described in detail below with reference to the accompanying drawings.

[0046] Please refer to Figures 1 to 11, an inkjet coding device for manufacturing computer components provided by an embodiment of the present invention includes a plurality of symmetric first brackets 1. A transport conveyor belt 2 is arranged inside the first bracket 1. A control terminal 3 is arranged on one side of the first bracket 1. A first support rod 4 is fixedly connected to one side of one of the first brackets 1. An inkjet head 5 is installed on one side of the first support rod 4. The inkjet head 5 is connected to the control terminal 3 through a wire. An infrared detection sensor 6 is arranged on one side of the inkjet head 5. A second bracket 7 is installed above the first bracket 1; a telescopic member is installed inside the second bracket 7, and one side of the telescopic member is connected to a first positioning plate 8; a stable conveying component is slidably connected to the outer surface of the first positioning plate 8.

[0047] With the above solution: When in use, when it is necessary to perform inkjet coding on computer components, first, after the computer components are transported from the previous production process, they will reach the transport conveyor belt 2. As the transport conveyor belt 2 continues to rotate, the transport conveyor belt 2 will drive the computer components to gradually move to one side of the stable output component and come into contact with the stable output component. Before the stable output component comes into contact with the computer components, the stable output component will rotate. At this time, since the stable output component is connected to the first positioning plate 8, the stable output component will move on the first positioning plate 8, and the first positioning plate 8 will play a role of guiding and fixing. As the contact area between the stable output component and the computer components gradually increases, the stable output component can be adjusted according to the shape of the computer components, and then the computer components can be clamped, so that the computer components can move stably on the transport conveyor belt 2.

[0048] When the component reaches below the infrared detection sensor 6, the infrared detection sensor 6 detects its shape and transmits it to the control terminal 3, and the control terminal 3 controls the inkjet head 5 to perform inkjet coding through the wire. By adjusting the clamping of the stable output component, the shaking of the component during the transmission process is effectively avoided, thereby reducing the risk of scrambled codes during inkjet coding.

[0049] It should be noted that: First, the infrared sensor can be replaced with a sensor of the same type according to actual needs, such as a laser sensor or a pyroelectric sensor. Second, how to drive the inkjet head 5 to perform inkjet coding or how to supply ink to the inkjet head 5 can adopt the existing technology.

[0050] Further, the stable conveying component includes a first airbag 9. The first airbag 9 is located above the transport conveyor belt 2. The back of the first airbag 9 is slidably connected to the first positioning plate 8; a plurality of first baffles 10 are fixedly connected inside the first airbag 9. A plurality of first round holes 11 are opened on each of the first baffles 10; a second baffle 12 is fixedly connected to one side of each of the first baffles 10.

[0051] Further, a second positioning plate 13 is installed on the other side of the first positioning plate 8, and a second airbag 14 is slidably connected to the outer surface of the second positioning plate 13.

[0052] Adopting the above solution: During use, when it is necessary to transport computer components to the lower side of the inkjet head 5 for inkjet coding, the transportation process is as follows by way of example:

[0053] When the computer components are transported from the previous production process to the next link, the computer components will be placed on the transport conveyor belt 2. As the transport conveyor belt 2 continues to rotate, the computer components will gradually come into contact with the first airbag 9 and be guided between the two first baffles 10. During this process, a certain amount of liquid has been pre-stored in the first airbag 9, and this liquid is located in the upper half of the first airbag 9. The first airbag 9 rotates on the first positioning plate 8, while the second airbag 14 moves on the second positioning plate 13.

[0054] When the computer components enter between the first airbag 9 and the second airbag 14 through the conveyor belt, the computer components will come into contact with the first airbag 9 and the second airbag 14. At this time, only one side of the computer components contacts the first airbag 9 between the first baffles 10. After the contact occurs, liquid will be injected into the first airbag 9 again, causing the upper half of the first airbag 9 to deform and squeeze the computer components. At the same time, the second airbag 14 will also be injected with gas, deforming and squeezing the other side of the components.

[0055] After the computer components are clamped, the inflation of the second airbag 14 is paused and it continues to rotate. At the same time, liquid is injected into the first airbag 9. Using the fluidity of the liquid, the liquid passes through the second baffle 12 and enters the lower half of the first airbag 9. Due to the different materials at the bottom of the first airbag 9, the flow direction of the liquid will be restricted. The lower half of the first airbag 9 deforms, and the continuous deformation of the first airbag 9 can cause the computer components to tilt towards the side of the second airbag 14. As the first airbag 9 further deforms, part of the first airbag 9 can penetrate under the computer components and come into contact with the surface of the transport conveyor belt 2. At this time, gas is transported into the second airbag 14 again, causing the second airbag 14 to deform and push the computer components back to the balanced state, thereby lifting the computer components, reducing the distance between the computer components and the inkjet head 5, effectively reducing the distance error between the computer components and the inkjet head 5, and ensuring the accuracy of the inkjet coding position.

[0056] It should be noted that: first, the side where the first airbag 9 is connected to the first positioning plate 8 is made of hard material, and the material setting on the second airbag 14 is the same as above. Second, the side where the bottom of the first airbag 9 contacts the first baffle 10 is made of hard material. Since the left side, right side and upper side of the lower half of the first airbag 9 are restricted by the material, the liquid will naturally flow to the side without restriction. Third, how to drive the first airbag 9 and the second airbag 14 to rotate, the driving method can adopt the existing technology. Fourth, a circular groove can be opened on the second baffle 12, so that the liquid enters the lower half of the first airbag 9 through the circular groove, and a one-way valve can be installed in the circular groove to control the flow of the liquid. Fifth, a one-way valve can also be installed in the first circular hole 11. When another computer component needs to be clamped, the other computer component is also located between the two first baffles 10. At this time, the one-way valve is opened, and the liquid will flow from one cavity to the other cavity, and the cavity is formed by the two first baffles 10. Sixth, after the first airbag 9 and the second airbag 14 rotate one circle from the preset position, the liquid or gas inside can be pumped out in the reverse direction by using the pump body. Of course, other methods can also be used to pump out the liquid or gas.

[0057] Furthermore, a protective layer is provided on the outer surfaces of the first airbag 9 and the second airbag 14 .

[0058] With the above solution, when in use, when the outer surfaces of the first airbag 9 and the second airbag 14 come into contact with computer components respectively, the protective layer on the outer surfaces of the first airbag 9 and the second airbag 14 can protect the first airbag 9 and the second airbag 14 .

[0059] It should be noted that: first, the protective layer on the first airbag 9 and the second airbag 14 is a rubber layer. Second, the thickness of the rubber layer can be adjusted according to actual needs. Third, if the surface of the newly produced computer parts is hot, a heat-resistant material can be applied to the surface of the rubber layer.

[0060] Furthermore, one side of the first airbag 9 and one side of the second airbag 14 are respectively connected to a pump body.

[0061] Adopting the above scheme: during use, when liquid is needed in the first airbag 9 again, one of the pump bodies can transport the liquid to the first airbag 9 through the flexible hose, and if gas is needed in the second airbag 14, the other pump body can transport gas to the second airbag 14 through another flexible hose.

[0062] It should be noted that: First, the delivery methods of the liquid and gas in the first airbag 9 and the second airbag 14 can adopt the existing technologies. Second, when the first airbag 9 and the second airbag 14 are connected to the pump body through a flexible hose, since the first airbag 9 and the second airbag 14 are in a rotating state, in order to avoid the entanglement of the flexible hose, a hose with a rotary joint can be used, or it is ensured that the flexible hose has appropriate fixing and guiding mechanisms at the connection points, which can be specifically adjusted according to the actual needs.

[0063] Further, the telescopic member includes a first telescopic rod 15, and one end of the first telescopic rod 15 is located inside the second bracket 7; a fixed seat 16 is fixedly connected to the upper side of the first positioning plate 8, and the other end of the first telescopic rod 15 is fixedly connected inside the fixed seat 16; a first spring 17 is fixedly connected to the outer surface of the first telescopic rod 15.

[0064] With the above solution: During use, when the first positioning plate 8 expands, it will compress the first telescopic rod 15, causing it to contract, and drive the first positioning plate 8 to contract synchronously through the fixed seat 16, thereby compressing the first spring 17, so as to increase the distance between the first airbag 9 and the second airbag 14, providing a stable clamping space for computer components, so as to adapt to computer components of different sizes, ensuring that the computer components are firmly clamped in the predetermined position, and effectively preventing the components from shaking and being damaged during transportation or installation.

[0065] Further, a first rotating shaft 18 and a second rotating shaft 19 are respectively rotatably connected to the first bracket 1. A driving gear 20 is fixedly connected to the outer surface of the first rotating shaft 18, a driven gear 21 is fixedly connected to the outer surface of the second rotating shaft 19, a toothed ring 22 is fixedly connected to the inner wall of the transport conveyor belt 2, and both the driving gear 20 and the driven gear 21 are meshed with the toothed ring 22.

[0066] With the above solution: During use, when the transport conveyor belt 2 needs to rotate, at this time the first rotating shaft 18 rotates inside the first bracket 1. When the first rotating shaft 18 rotates, it drives the driving gear 20 to rotate synchronously. The driving gear 20 is meshed with the toothed ring 22, thereby driving the toothed ring 22 to rotate. The rotation of the toothed ring 22 further drives the driven gear 21 and the second rotating shaft 19 connected thereto to rotate, and finally drives the transport conveyor belt 2 to rotate.

[0067] It should be noted that: The rotation of the transport conveyor belt 2 can be achieved by other means, such as chain drive, which can be specifically adjusted according to the actual needs.

[0068] Further, a first motor 23 is provided on one side of the first rotating shaft 18, and the output end of the first motor 23 is fixedly connected to the first rotating shaft 18.

[0069] Adopting the above solution: When in use, when the first rotating shaft 18 needs to rotate, the first motor 23 is started at this time. The output end of the first motor 23 rotates, thereby driving the first rotating shaft 18 to rotate synchronously.

[0070] A coding method for computer component manufacturing, using the described coding device for computer component manufacturing, includes the following steps:

[0071] Step S1, the computer components are transported from the previous production process to the transport conveyor belt 2;

[0072] Step S2, the transport conveyor belt 2 rotates, driving the computer components to move to one side of the stable output component;

[0073] Step S3, the stable output component rotates before contacting the computer components;

[0074] Step S4, the stable output component is connected to the first positioning plate 8 and moves along the first positioning plate 8;

[0075] Step S5, the contact area between the stable output component and the computer components increases and is adjusted according to the shape of the components;

[0076] Step S6, the stable output component clamps the computer components to ensure their stable movement on the conveyor belt;

[0077] Step S7, the components reach below the infrared detection sensor 6, and the sensor detects the shape and transmits the data;

[0078] Step S8, the control terminal 3 receives the data and controls the coding head 5 through a wire;

[0079] Step S9, the coding head 5 codes according to the control signal.

[0080] The working principle of the present invention:

[0081] During the production process of computer components, once the components are transported from the previous link to the transport conveyor belt 2, they start to move along the conveyor belt until they approach the stable output component. Before contacting the components, the stable output component rotates continuously and is connected to the first positioning plate 8 and moves along it. The first positioning plate 8 is responsible for guiding and fixing the components to ensure their stability. As the contact area between the stable output component and the components increases, it can be adjusted according to the shape of the components to achieve precise clamping of the components and ensure their stable movement on the conveyor belt 2.

[0082] When the component moves under the infrared detection sensor 6, the sensor detects its shape and sends the information to the control terminal 3. After receiving the data, the control terminal 3 issues an instruction to the inkjet head 5 through a wire for inkjet coding operation. Due to the adjustment and clamping function of the stable output component, the shaking of the component during the transmission process is effectively controlled, which greatly reduces the risk of errors during the inkjet coding process. Finally, the component with the number continues its process.

[0083] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements includes not only those elements, but also other elements not expressly listed, or elements inherent to such process, method, article or device.

[0084] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A coding device for manufacturing computer parts, comprising a plurality of symmetrical first brackets (1), wherein a transport conveyor belt (2) is provided in the first bracket (1), a control terminal (3) is provided on one side of the first bracket (1), a first support rod (4) is fixedly connected to one side of one of the first brackets (1), a coding terminal (5) is installed on one side of the first support rod (4), the coding terminal (5) is connected to the control terminal (3) via a wire, and an infrared detection sensor (6) is provided on one side of the coding terminal (5), characterized in that: A second bracket (7) is mounted on the upper side of the first bracket (1); A telescopic member is installed in the second bracket (7), and a first positioning plate (8) is connected to one side of the telescopic member; The outer surface of the first positioning plate (8) is slidably connected to a stable conveying component; Wherein, the stable conveying component comprises a first airbag (9), the first airbag (9) is located on the upper side of the transport conveyor belt (2), and the back of the first airbag (9) is slidably connected to the first positioning plate (8); A plurality of first baffles (10) are fixedly connected inside the first airbag (9), and a plurality of first circular holes (11) are formed on each of the first baffles (10); One side of the first baffle (10) is fixedly connected to a second baffle (12); A second positioning plate (13) is installed on the other side of the first positioning plate (8), and a second air bag (14) is slidably connected to the outer surface of the second positioning plate (13); The outer surfaces of the first airbag (9) and the second airbag (14) are provided with a protective layer; One side of the first airbag (9) and the second airbag (14) are respectively connected to a pump body; When the computer components enter between the first airbag (9) and the second airbag (14) through the conveyor belt, the computer components will contact the first airbag (9) and the second airbag (14). At this time, one side of the computer components only contacts the first airbag (9) between the first baffle (10). After the contact occurs, liquid will be injected into the first airbag (9) again, causing the upper part of the first airbag (9) to deform and squeeze the computer components. At the same time, the second airbag (14) will also be injected with gas, deformed and squeeze the other side of the components. When the computer components are clamped, the inflation of the second airbag (14) is stopped and allowed to continue rotating, while liquid is injected into the first airbag (9). The fluidity of the liquid is used to allow the liquid to pass through the second baffle (12) and enter the lower part of the first airbag (9). Due to the different materials at the bottom of the first airbag (9), the flow direction of the liquid is restricted, and the lower part of the first airbag (9) is deformed. The continuous deformation of the first airbag (9) can cause the computer components to tilt toward one side of the second airbag (14). As the first airbag (14) further deforms, part of the first airbag (9) can penetrate into the bottom of the computer components and contact the surface of the transport conveyor belt (2). At this time, gas is transported into the second airbag (14) again, causing the second airbag (14) to deform and push the computer components to restore the balance state, thereby lifting the computer components, thereby reducing the distance between the computer components and the spray terminal (5).

2. A coding device for manufacturing computer parts as claimed in claim 1, characterized in that: The telescopic member comprises a first telescopic rod (15), one end of the first telescopic rod (15) being located inside the second bracket (7); A fixing seat (16) is fixedly connected to the upper side of the first positioning plate (8), and the other end of the first telescopic rod (15) is fixedly connected to the inside of the fixing seat (16); A first spring (17) is fixedly connected to the outer surface of the first telescopic rod (15).

3. A coding device for manufacturing computer parts as claimed in claim 1, characterized in that: The first bracket (1) is rotatably connected to a first rotating shaft (18) and a second rotating shaft (19), respectively; a driving gear (20) is fixedly connected to the outer surface of the first rotating shaft (18); a driven gear (21) is fixedly connected to the outer surface of the second rotating shaft (19); a gear ring (22) is fixedly connected to the inner wall of the transport conveyor belt (2); the driving gear (20) and the driven gear (21) are both meshed with the gear ring (22).

4. A coding device for manufacturing computer parts as claimed in claim 3, characterized in that: A first motor (23) is provided on one side of the first rotating shaft (18), and an output end of the first motor (23) is fixedly connected to the first rotating shaft (18).

5. A coding method for manufacturing computer parts, using a coding device for manufacturing computer parts according to any one of claims 1 to 4, characterized in that: The following steps are involved: Step S1, computer parts are transported from the previous production process to the transport conveyor belt (2); Step S2, the transport conveyor belt (2) rotates to drive the computer components to move to the side of the stable output assembly; Step S3, the stable output assembly rotates before contacting the computer components; Step S4, the stable output assembly is connected to the first positioning plate (8) and moves along the first positioning plate (8); Step S5, increasing the contact area between the stable output assembly and the computer components and adjusting it according to the shape of the components; Step S6, the stable output assembly clamps the computer parts to ensure their stable movement on the conveyor belt; Step S7, the component arrives below the infrared detection sensor (6), and the sensor detects the shape and transmits data; Step S8, the control terminal (3) receives the data and controls the spray terminal (5) through the wire; Step S9, the inkjet printer (5) performs inkjet printing according to the control signal.

Citation Information

Patent Citations

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