Large-caliber double-wall corrugated pipe laser ink-jet printer

By designing a large-diameter double-wall corrugated pipe laser inkjet printer and utilizing components such as slideways, sliding seats, and servo motors, high-precision marking and efficient marking of the corrugated pipe surface are achieved, solving the problems of insufficient marking clarity and efficiency in existing technologies.

CN223368483UActive Publication Date: 2025-09-23ZHANGJIAGANG KINGMILAN DELONG MASCH CO LTD
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Patent Information

Application Number
CN202422608088.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-28
Publication Date
2025-09-23
Estimated Expiration
2034-10-28

AI Technical Summary

Technical Problem

Existing laser inkjet printers for corrugated pipes have deficiencies in marking clarity and efficiency, especially when the surface of the corrugated pipe is constantly undulating, making it difficult to achieve fine marking and efficient marking.

Method used

A large-diameter double-wall corrugated tube laser inkjet printer was designed, which includes components such as a slide, a sliding seat, a drive motor, a ring guide rail and a servo motor. The precise movement of the sliding seat is achieved through the cooperation of the slide and the latch gear. The inkjet printer is installed on the ring guide rail, and the servo motor is used to drive the inkjet printer to move along the ring. The controller is used to accurately control the inkjet position.

Benefits of technology

It realizes high-precision marking on the surface of the corrugated pipe and improves marking efficiency. It has strong adaptability and can realize clear small marking and rapid marking on the surface of the corrugated pipe.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a laser ink-jet printer for a large-diameter double-wall corrugated pipe. A slide block is clamped and slidably mounted at the upper part of a slide way; the upper part of the slider is connected with a sliding seat; a driving motor is vertically fixed at the front end of the sliding seat; a main ring body is vertically mounted at the upper part of the sliding seat; the left side of the feeding port is in butt joint with a material guide cylinder; a supporting convex ring is mounted on the right side of the center of the main ring body; a supporting block is arranged between the supporting convex ring and the sliding seat; an annular guide rail is mounted on the right side edge of the supporting convex ring; an inductor is further arranged on the surface of the supporting convex ring; a sliding block is slidably mounted on the annular guide rail; a servo motor is mounted at the upper end of the mounting frame; the output end of the servo motor rubs with the side face of the annular guide rail through the driving wheel so as to push the sliding block to integrally generate annular motion. A code sprayer is mounted in the middle of the mounting frame; the large-caliber double-wall corrugated pipe laser ink-jet printer provided by the utility model is convenient to adjust and control, clear in ink-jet identification and high in working efficiency.
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Description

Technical Field

[0001] The utility model belongs to the technical field of equipment related to inkjet printers, and in particular relates to a large-caliber double-wall corrugated pipe laser inkjet printer. Background Art

[0002] Bellows laser inkjet printers are advanced marking equipment widely used in applications such as bellows manufacturing. This device uses a laser as a light source, focusing the laser beam onto the workpiece surface through a nozzle to achieve marking or labeling. Bellows laser inkjet printers offer advantages such as high precision, high speed, and strong adaptability, making them a standard feature of modern marking equipment. However, existing bellows laser inkjet printers have several limitations that limit their performance and application. Specifically, the following are some of the challenges currently faced by bellows laser inkjet printers: Clear marking is difficult. Despite the high energy density and high focusability of lasers, their application in bellows laser inkjet printers is still limited by the constantly undulating surface of the bellows. For example, when marking fine text or patterns, the size and shape of the laser beam hinder the required accuracy. Marking efficiency is also low. Although laser inkjet printers can move quickly and mark multiple workpieces, their efficiency remains relatively low. Therefore, research and improvements are needed in this area to enhance the performance and application of bellows laser inkjet printers. Utility Model Content

[0003] The utility model aims to provide a large-caliber double-wall corrugated pipe laser inkjet printer with convenient adjustment and control, clear inkjet marking and high working efficiency.

[0004] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: a large-caliber double-wall corrugated tube laser inkjet printer, comprising a frame, a slide, a clamping tooth, a slider, a sliding seat, a drive motor, a main ring body, a material guide cylinder, a supporting convex ring, a support block, an annular guide rail, a sensor, a sliding block, a servo motor, a mounting frame, and a printer; slides are symmetrically installed on the edges of both sides of the upper part of the frame; clamping teeth are fixed on the inner side walls of the slides; a slider is clamped and slidably installed on the upper part of the slide; a sliding seat is connected to the upper part of the slider; a drive motor is vertically fixed to the front end of the sliding seat; a drive gear is provided at the lower output end of the drive motor, and the drive gear and the clamping tooth are meshed with each other; the upper part of the sliding seat is vertically installed It is equipped with a main ring body; a feed port is opened in the center of the main ring body, and a material guide cylinder is installed on the left side of the feed port; a support protrusion is installed on the right side of the center of the main ring body; a support block is provided between the support protrusion and the sliding seat; an annular guide rail is installed on the right edge of the support protrusion; a sensor is also provided on the surface of the support protrusion; a sliding block is slidably installed on the annular guide rail; a mounting frame is provided on the sliding block; a servo motor is installed on the upper end of the mounting frame; the output end of the servo motor pushes the sliding block as a whole to produce a circular motion through the friction between the driving wheel and the side of the annular guide rail; an inkjet printer is installed in the middle of the mounting frame; the inkjet printer's inkjet port faces the circular center direction of the main ring body.

[0005] As a further improvement of the present invention, an annular wire is provided between the annular guide rail and the side wall of the main ring body; the annular wire introduces an external power supply and control circuit through a cable and connects to the line inlet of the servo motor.

[0006] As a further improvement of the present invention, a controller is installed on the front side wall of the frame via a swing arm, and the swing arm adopts a retractable mechanical arm; the drive motor, sensor and servo motor are all connected to the controller via cables.

[0007] As a further improvement of the present invention, a main engine cable is provided at the rear of the frame, and the main engine cable inputs an external power supply and connects it to the drive motor and the sensor. The outside of the main engine cable is wrapped with a foldable and bendable crawler structure.

[0008] As a further improvement of the present invention, limit plates are installed at both end edges of the frame; the height of the limit plates is greater than the height of the sliding seat.

[0009] As a further improvement of the present invention, supports are symmetrically installed on the bottom of the frame, and adjustable feet are installed on the supports through threaded connections.

[0010] Compared with the existing technology, the beneficial effects of the present invention are as follows: the present technical solution provides a slideway that can slide left and right, and a sliding seat is slidably installed on its upper part, which has the beneficial technical effect of conveniently moving and adjusting the sliding seat and the mechanism equipment on the upper part; the present technical solution also provides a latching tooth on the inner side wall of the slideway, and a driving motor is installed on the sliding seat, which has the beneficial technical effect of conveniently and accurately controlling the movement and adjustment of the sliding seat through the controller to provide a guarantee for precise control of the subsequent coding position; the present technical solution also provides a ring guide rail on the main ring body, and installs relevant coding equipment on the guide rail, which has the beneficial technical effect of conveniently realizing ring coding operations on corrugated pipes. BRIEF DESCRIPTION OF THE DRAWINGS

[0011] Figure 1 It is a schematic diagram of the overall structure of the utility model.

[0012] In the figure: 1. Frame; 2. Slide; 3. Gear; 4. Slider; 5. Sliding seat; 6. Drive motor; 7. Main ring body; 8. Guide cylinder; 9. Support convex ring; 10. Support block; 11. Annular guide rail; 12. Sensor; 13. Sliding block; 14. Servo motor; 15. Mounting frame; 16. Inkjet printer; 17. Annular line; 18. Swing arm; 19. Controller; 20. Main machine line; 21. Limit plate; 22. Support; 23. Adjustment foot. DETAILED DESCRIPTION

[0013] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0014] See also Figure 1The utility model provides a technical solution: a large-caliber double-wall corrugated pipe laser inkjet printer, including a frame 1, a slide 2, a clamping tooth 3, a slider 4, a sliding seat 5, a drive motor 6, a main ring body 7, a guide cylinder 8, a supporting convex ring 9, a support block 10, an annular guide rail 11, a sensor 12, a sliding block 13, a servo motor 14, a mounting frame 15, and a printer 16; the slides 2 are symmetrically mounted on both sides of the upper edge of the frame 1; the inner side wall of the slide 2 is fixed with a clamping tooth 3; the upper part of the slide 2 is clamped and slidably mounted with a slider 4; the upper part of the slider 4 is connected to the sliding seat 5; the front end of the sliding seat 5 is vertically fixed with a drive The driving motor 6 is provided with a driving gear at the lower output end of the driving motor 6, and the driving gear is meshed with the latch gear 3; a main ring body 7 is vertically installed on the upper part of the sliding seat 5; a feed port is provided in the center of the main ring body 7, and a material guide cylinder 8 is installed on the left side of the feed port; a supporting convex ring 9 is installed on the right side of the center of the main ring body 7; a supporting block 10 is provided between the supporting convex ring 9 and the sliding seat 5; an annular guide rail 11 is installed on the right edge of the supporting convex ring 9; a sensor 12 is also provided on the surface of the supporting convex ring 9; a sliding block 13 is slidably installed on the annular guide rail 11; a mounting bracket 15 is provided on the sliding block 13.

[0015] A servo motor 14 is mounted on the top of the mounting frame 15. The output of the servo motor 14, through friction between the drive wheel and the side of the annular guide rail 11, drives the sliding block 13 to produce circular motion. A printer 16 is mounted in the middle of the mounting frame 15, with the printer port of the printer 16 facing the circular center of the main ring body 7. A circular cable 17 is provided between the annular guide rail 11 and the sidewall of the main ring body 7. This cable connects the external power supply and control circuits to the input terminal of the servo motor 14.

[0016] A controller 19 is mounted on the front sidewall of the frame 1 via a retractable swing arm 18. The drive motor 6, sensor 12, and servo motor 14 are all connected to the controller 19 via cables. A main power cable 20 is located at the rear of the frame 1. This cable inputs external power and connects it to the drive motor 6 and sensor 12. The cable is wrapped in a foldable, bendable crawler structure.

[0017] The frame 1 has limit plates 21 installed at both ends of the edge. The limit plates 21 are larger than the height of the sliding seat. The bottom of the frame 1 is symmetrically mounted with supports 22, and the supports 22 are threadedly mounted with adjustable feet 23.

[0018] The working principle of this equipment: When this equipment needs to be used, the controller adjusts the drive motor to move the sliding seat to the left end of the frame, and then the corrugated tube to be coded is inserted from the material guide barrel above the frame. At this time, the inkjet printer is turned on and the servo motor is controlled to make the inkjet printer rotate one circle along the annular guide rail to complete the marking coding operation at that position on the outer surface of the corrugated tube. Then the drive motor is controlled to move the left end of the sliding seat for a distance, and the inkjet printer is turned on again to repeat the above-mentioned coding operation until the coding of the entire corrugated tube is completed.

Claims

1. A large-caliber double-wall corrugated pipe laser inkjet printer, characterized by: The invention comprises a frame (1), a slideway (2), a latching tooth (3), a slider (4), a sliding seat (5), a driving motor (6), a main ring body (7), a material guide cylinder (8), a supporting protruding ring (9), a supporting block (10), an annular guide rail (11), a sensor (12), a sliding block (13), a servo motor (14), a mounting frame (15), and an inkjet printer (16); slideways (2) are symmetrically mounted on both sides of the upper edge of the frame (1); latching teeth (3) are fixed on the inner side wall of the slideway (2); a slider (4) is mounted on the upper part of the slideway (2); the upper part of the slider (4) is connected to the sliding seat (5); a driving motor (6) is vertically fixed to the front end of the sliding seat (5); a driving gear is provided at the lower output end of the driving motor (6), and the driving gear and the latching tooth (3) are meshed and connected with each other; a main ring body (7) is vertically mounted on the upper part of the sliding seat (5); the main ring body (7) A feed port is provided in the center, and a guide cylinder (8) is installed on the left side of the feed port; a support convex ring (9) is installed on the right side of the center of the main ring body (7); a support block (10) is provided between the support convex ring (9) and the sliding seat (5); an annular guide rail (11) is installed on the right edge of the support convex ring (9); a sensor (12) is also provided on the surface of the support convex ring (9); a sliding block (13) is slidably installed on the annular guide rail (11); a mounting frame (15) is provided on the sliding block (13); a servo motor (14) is installed on the upper end of the mounting frame (15); the output end of the servo motor (14) rubs against the side of the annular guide rail (11) through the driving wheel and thus pushes the sliding block (13) as a whole to generate an annular motion; a code printer (16) is installed in the middle of the mounting frame (15); the code printing port of the code printer (16) faces the circular center direction of the main ring body (7).

2. The large-caliber double-wall corrugated pipe laser inkjet printer according to claim 1, characterized in that: An annular wire (17) is provided between the annular guide rail (11) and the side wall of the main ring body (7); the annular wire (17) introduces an external power supply and a control circuit through a cable and connects to the inlet terminal of the servo motor (14).

3. The large-caliber double-wall corrugated pipe laser inkjet printer according to claim 1, characterized in that: A controller (19) is installed on the front side wall of the frame (1) via a swing arm (18), and the swing arm (18) is a retractable mechanical arm; the drive motor (6), the sensor (12), and the servo motor (14) are all connected to the controller (19) via cables.

4. The large-caliber double-wall corrugated pipe laser inkjet printer according to claim 1, characterized in that: A main engine cable (20) is provided at the rear of the frame (1), and the main engine cable (20) inputs an external power supply and connects it to the drive motor (6) and the sensor (12). The outside of the main engine cable (20) is wrapped with a foldable and bendable crawler structure.

5. The large-caliber double-wall corrugated pipe laser inkjet printer according to claim 1, characterized in that: Limiting plates (21) are installed at both end edges of the frame (1); the height of the limiting plates (21) is greater than the height of the sliding seat.

6. The large-caliber double-wall corrugated pipe laser inkjet printer according to claim 1, characterized in that: A support (22) is symmetrically mounted on the bottom of the frame (1), and an adjustable foot (23) is mounted on the support (22) via a threaded connection.