Transfer printing feeding structure
The transfer feeding structure, composed of components such as cylinders, electric push rods, and guide rails, enables automated feeding, positioning, and unloading of hollow circular parts. This solves the problems of high labor intensity and low production efficiency caused by manual operation, and improves transfer quality and production efficiency.
Patent Information
- Application Number
- CN202522462774.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-20
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2035-11-20
AI Technical Summary
In the existing technology, the transfer process of hollow circular parts relies on manual operation, which results in high labor intensity, low production efficiency and inconsistent printing quality, making it difficult to meet the high efficiency and precision requirements of modern production.
The transfer feeding structure, composed of components such as cylinders, electric push rods, and guide rails, enables automated feeding, positioning, and unloading of hollow circular parts, ensuring that the printing roller accurately acts on the outer surface of the hollow circular parts for transfer printing.
It improved the quality of transfer printing, reduced manual intervention, lowered labor intensity, achieved uninterrupted and efficient production, and improved the consistency of production efficiency and printing quality.
Smart Images

Figure CN223792392U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of transfer printing feeding technology, and specifically relates to a transfer printing feeding structure. Background Technology
[0002] Heat transfer printing is a printing technique that uses heat and pressure to transfer patterns or text from a transfer medium to the surface of a target material. Currently, the process of transferring heat to the outer surface of hollow circular parts generally uses a relatively traditional manual operation mode. Specifically, the operator must first manually place each hollow circular part onto a horizontally fixed rod. This process requires the operator to maintain a certain level of concentration and precision to ensure that the hollow circular parts are stable and correctly positioned. Subsequently, the printing roller located above moves slowly downward under the drive of a mechanical device, pressing the pattern onto the outer surface of the hollow circular part to achieve close contact.
[0003] At this time, the printing wheel starts to rotate under the drive of the motor, and transfers the pattern or color to the hollow circular part through contact. Due to the friction, the hollow circular part also rotates on the fixed rod. This rotation is the key to the continuous printing process. The staff needs to observe closely to ensure that the hollow circular part rotates completely once so that all areas of its outer surface can receive the pattern or color evenly, thereby completing the entire printing process.
[0004] After the printing operation is completed, the printing roller needs to be moved upward again under the action of the mechanical device to break away from the contact state with the hollow circular part, in preparation for the next round of operation. Then, the staff needs to manually remove the printed hollow circular part from the fixed rod and replace it with a new part to be printed, and so on.
[0005] However, this manual operation method not only significantly increases the physical burden on workers, especially in high-intensity, continuous production environments, but also easily leads to operator fatigue, which in turn affects the consistency of printing quality. At the same time, frequent manual changes also limit the degree of automation in the production process, reduce overall production efficiency, and make it difficult to meet the demands of modern production for high efficiency and precision. Utility Model Content
[0006] The purpose of this invention is to provide a transfer feeding structure to solve the problems existing in the background art.
[0007] To achieve the above-mentioned technical objectives, the technical solution adopted by this utility model is as follows:
[0008] A transfer feeding structure includes a base plate, a first cylinder disposed on the middle side of the base plate, an output shaft extending upward from the first cylinder connected to a receiving component, an arc-shaped groove disposed on the middle side of the receiving component, a feeding guide rail disposed on one side of the arc-shaped groove, a discharge plate disposed on the side of the arc-shaped groove away from the feeding guide rail, a mounting plate and a fixing component slidably mounted on the side of the base plate near the discharge plate, an electric push rod disposed on the side of the mounting plate away from the fixing component, a pushing component disposed on the output shaft of the electric push rod passing through the mounting plate, and a support rod disposed opposite to the pushing component on the fixing component, with a discharge component sleeved on the outer surface of the support rod.
[0009] The base plate is provided with guide rails on both the front and rear sides. Sliding components are slidably mounted on the upper side of each of the two guide rails. The mounting plate and the fixing component are provided with stabilizing plates connected to the sliding components on the lower side. The two sliding components are connected to a drive assembly.
[0010] The drive assembly includes a connector that is connected to two sliding members, and a second cylinder that is connected to the connector is provided on the upper side of the base plate.
[0011] The sliding component has horizontal grooves on both the front and rear sides, and the stabilizing plate has vertical grooves on both the left and right sides that match the horizontal grooves. The stabilizing plate has screws at each of its four corners that pass through the vertical and horizontal grooves, and the screws are threaded with nuts on their undersides.
[0012] The outer surface of the unloading component is connected to a support plate, and the outer side of the fixing component is provided with a third cylinder connected to the support plate.
[0013] The base plate has a baffle on the side near the mounting plate.
[0014] The receiving component is equipped with a guide on the side near the unloading plate.
[0015] This utility model has the following technical advantages compared with the prior art:
[0016] 1. The hollow circular parts are guided sequentially into the feeding guide rail by the vibrating feeding plate. Then, with the help of the receiving part and the first cylinder, the hollow circular parts are orderly entered into the arc groove. Subsequently, the mounting plate, fixing part, pushing part and support rod work together to accurately position the hollow circular parts directly under the printing wheel, ensuring that the printing wheel accurately acts on the outer surface of the hollow circular parts for transfer printing, effectively improving the transfer quality of the product.
[0017] 2. The entire feeding, positioning, transfer and unloading process is automatically controlled by multiple cylinders (first cylinder, second cylinder, third cylinder) and electric push rods. This automated operation reduces manual intervention and labor intensity, while enabling rapid and continuous completion of work cycles, achieving uninterrupted production and significantly improving overall production efficiency.
[0018] 3. The design employs a connection method using horizontal grooves, vertical grooves, screws, and nuts. This design ensures the stability of the mounting plate and fasteners during the sliding process, making the entire transfer feeding structure more stable and reliable during operation, and reducing malfunctions and errors caused by structural instability. Attached Figure Description
[0019] This utility model can be further illustrated by the non-limiting embodiments given in the accompanying drawings.
[0020] Figure 1 This is a schematic diagram of the structure of the present invention. Figure 1 ;
[0021] Figure 2 This is a schematic diagram of the structure of the present invention. Figure 2 ;
[0022] Figure 3 This is a partial structural diagram of the present invention. Figure 1 ;
[0023] Figure 4 This is a partial structural diagram of the present invention. Figure 2 .
[0024] The symbols for the main components are explained below:
[0025] Base plate 1, first cylinder 11, receiving part 12, arc groove 13, feeding guide rail 14, unloading plate 15, mounting plate 2, fixing part 21, electric push rod 22, pushing part 23, support rod 24, unloading part 25, guide rail 3, sliding part 31, stabilizing plate 32, connecting part 321, second cylinder 33, horizontal groove 34, vertical groove 35, screw 36, nut 37, support plate 41, third cylinder 42, baffle 43, guide part 44. Detailed Implementation
[0026] To enable those skilled in the art to better understand this utility model, the technical solution of this utility model will be further described below in conjunction with the accompanying drawings and embodiments.
[0027] like Figure 1-4 As shown, a transfer feeding structure of this utility model includes a base plate 1. A first cylinder 11 is provided in the middle of the base plate 1. The output shaft of the first cylinder 11 extends upward and is connected to a receiving component 12. An arc-shaped groove 13 is provided in the middle of the receiving component 12. A feeding guide rail 14 is provided on one side of the arc-shaped groove 13. A discharge plate 15 is provided on the side of the arc-shaped groove 13 away from the feeding guide rail 14. A mounting plate 2 and a fixing component 21 are slidably mounted on the side of the base plate 1 near the discharge plate 15. An electric push rod 22 is provided on the side of the mounting plate 2 away from the fixing component 21. A pushing component 23 is mounted on the output shaft of the electric push rod 22 through the mounting plate 2. A support rod 24 is provided on the fixing component 21 opposite to the pushing component 23. A discharge component 25 is sleeved on the outer surface of the support rod 24.
[0028] When a transfer printing is required on the outer surface of a hollow circular part, the operator guides the hollow circular parts sequentially into the feeding guide rail 14 using a vibrating feeding disc. The hollow circular parts accumulate in the feeding guide rail 14. When the first cylinder 11 retracts, the hollow circular part closest to the receiving part 12 rolls into the arc-shaped groove 13. Then, the first cylinder 11 extends, causing the receiving part 12 to move upwards. The outer surface of the receiving part 12 blocks the end face of the feeding guide rail 14. At this time, the mounting plate 2 and the fixing part 21 simultaneously move to the side corresponding to the position of the arc-shaped groove 13 of the receiving part 12. At this point, the support rod 24 and the pushing part 23 are aligned with the position of the hollow circular part. When matched, the electric actuator 22 begins to extend, driving the pusher 23 to move towards the support rod 24, thus pushing the hollow circular part to be sleeved on the outer surface of the support rod 24, while keeping the pusher 23 blocking one side of the hollow circular part, keeping the hollow circular part sleeved on the outer surface of the support rod 24. At the same time, the mounting plate 21 and the fixing member 21 move away from the receiving member 12 until the hollow circular part is moved directly below the printing wheel, while keeping the hollow circular part on the upper side of the unloading plate 15. At the same time, the first cylinder 11 retracts, driving the receiving member 12 to move downward, so that the new hollow circular part can roll from the feeding guide rail 14 into the arc groove 13.
[0029] As the printing wheel moves downwards, it contacts the outer surface of the circular part. Once the printing wheel starts rotating, it can transfer the printing process onto the outer surface of the hollow circular part. After completion, the printing wheel moves upwards and stops contacting the outer surface of the hollow circular part. At this time, the electric push rod 22 begins to retract, driving the pusher 23 to move away from the support rod 24 until the pusher 23 stops obstructing one side of the hollow circular part. Then, the unloading part 25 begins to slide, pushing the hollow circular part off the outer surface of the support rod 24. After the transfer is completed, the hollow circular part separates from the support rod 24. After the hollow circular part is unloaded, the unloading part 25 resets, and the mounting plate 2 and the fixing part 21 slide back to their original positions to clamp and transport the new hollow circular part.
[0030] The base plate 1 has guide rails 3 on both the front and rear sides. Sliding parts 31 are slidably mounted on the upper side of the two guide rails 3. The mounting plate 2 and the fixing part 21 are both provided with stabilizing plates 32 connected to the sliding parts 31. The two sliding parts 31 are connected to the drive components.
[0031] The drive assembly is connected to two sliding members 31, so the drive assembly can drive the two sliding members 31 to slide left and right. Since the sliding members 31 are connected to the stabilizing plate 32, and the two stabilizing plates 32 are respectively connected to the mounting plate 2 and the fixing member 21, the mounting plate 2 and the fixing member 21 can be driven to slide left and right.
[0032] The drive assembly includes a connector 321 connected to two sliding members 31, and a second cylinder 33 connected to the connector 321 is provided on the upper side of the base plate 1. When the second cylinder 33 extends and retracts, it can drive the connector 321 to slide left and right. Since the connector 321 is in contact with the two sliding members 31, it can drive the two sliding members 31 to slide left and right.
[0033] The sliding member 31 has horizontal grooves 34 on both the front and rear sides, and the stabilizing plate 32 has vertical grooves 35 on both the left and right sides that match the horizontal grooves 34. The stabilizing plate 32 has screws 36 at each of its four corners that pass through the vertical grooves 35 and the horizontal grooves 34. Nuts 37 are threadedly connected to the underside of the screws 36.
[0034] After passing through the vertical groove 35 and the horizontal groove 34, the screw 36 is threaded to the nut 37, thus achieving a stable connection between the stabilizing plate 32 and the sliding member 31.
[0035] The outer surface of the unloading component 25 is connected to a support plate 41, and the outer side of the fixing component 21 is provided with a third cylinder 42 connected to the support plate 41.
[0036] When the third cylinder 42 extends, it can drive the unloading component 25 to slide through the support plate 41, pushing the hollow circular component off the outer surface of the support rod 24. When the third cylinder 42 retracts, it can drive the unloading component 25 to reset.
[0037] A baffle 43 is provided on the side of the base plate 1 near the mounting plate 2. The design of the baffle 43 can prevent the hollow circular part from falling from the side of the arc groove 13 toward the support rod 24.
[0038] The receiving part 12 is provided with a guide 44 on the side near the unloading plate 15. The guide 44 is designed so that there is no gap between the receiving part 12 and the unloading plate 15.
[0039] The above embodiments are merely illustrative of the principles and effects of this utility model and are not intended to limit the scope of this utility model. Any person skilled in the art can modify or alter the above embodiments without departing from the spirit and scope of this utility model. Therefore, all equivalent modifications or alterations made by those skilled in the art without departing from the spirit and technical concept disclosed in this utility model should still be covered by the claims of this utility model.
Claims
1. A transfer feed structure comprising a backing plate, characterized by: The first air cylinder is arranged in the middle of the bottom plate, the output shaft of the first air cylinder extending upwards is connected with a material receiving piece, an arc-shaped groove is arranged in the middle of the material receiving piece, a feeding guide rail is arranged on one side of the arc-shaped groove, a discharging plate is arranged on the side of the arc-shaped groove away from the feeding guide rail, the side of the bottom plate close to the discharging plate is slidably assembled with oppositely arranged mounting plates and fixing pieces, the side of the mounting plate away from the fixing piece is provided with an electric push rod, the output shaft of the electric push rod is assembled with a pushing piece through the mounting plate, the fixing piece is provided with a support rod oppositely arranged with the pushing piece, and the outer surface of the support rod is sleeved with a discharging piece.
2. A transfer feed structure according to claim 1, wherein: The bottom plate is provided with guide rails on the front and rear sides, and the upper sides of the two guide rails are slidably assembled with sliding pieces, and the lower sides of the mounting plates and the fixing pieces are provided with stabilizing plates connected with the sliding pieces.
3. A transfer feed structure according to claim 2, wherein: The driving assembly comprises connecting pieces connected with the two sliding pieces, and the upper side of the bottom plate is provided with a second air cylinder connected with the connecting pieces.
4. A transfer feed structure according to claim 2, wherein: The front and rear sides of the sliding piece are provided with horizontal grooves, the left and right sides of the stabilizing plate are provided with vertical grooves matched with the horizontal grooves, the four corners of the stabilizing plate are provided with screws penetrating through the vertical grooves and the horizontal grooves, and the lower sides of the screws are threadedly connected with nuts.
5. A transfer feed structure according to claim 1, wherein: The outer surface of the discharging piece is connected with a support plate, and the outer side of the fixing piece is provided with a third air cylinder connected with the support plate.
6. A transfer feed structure according to claim 1, wherein: The side of the bottom plate close to the mounting plate is provided with a baffle.
7. A transfer feed structure according to claim 1 wherein: The side of the material receiving piece close to the discharging plate is provided with a guide piece.