Continuous stamping device for colored steel seals

By designing a continuous stamping device for colored steel stamps, combined with a drive motor and heating module, a convenient switching function between steel stamping and colored stamping is realized in the office, solving the problems of insufficient adaptability and functionality of existing equipment in the office, and providing a comprehensive solution for embossed anti-counterfeiting and colored presentation.

CN121552818APending Publication Date: 2026-02-24YINCHUAN XIXIA PRINTING CO LTD
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Patent Information

Application Number
CN202511778345.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-28
Publication Date
2026-02-24

AI Technical Summary

Technical Problem

Existing colored stamping or steel stamping equipment has problems such as limited scene adaptability, incomplete functions, and limited usage conditions in office environments, making it difficult to simultaneously meet the comprehensive needs of miniaturization, convenient operation, colored presentation, and embossed anti-counterfeiting.

Method used

A continuous stamping device for colored steel stamps was designed, comprising a housing mechanism, a stamping assembly, a steel stamp assembly, a heat stamping assembly, and a conveying assembly. Through the coordinated operation of a drive motor and a heating module, the device enables the switching between steel stamping and colored stamping functions. Furthermore, through the adaptive adjustment of guide wheels and support blocks, the device ensures stable transmission of the colored ribbon and effective stamping.

Benefits of technology

This device is suitable for use in ordinary offices, enabling convenient continuous stamping. It features embossed anti-counterfeiting characteristics and color display effects, adapts to the space constraints of office spaces, produces no significant noise, is economical in terms of consumables, and meets the anti-counterfeiting authentication needs of office documents.

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Abstract

The invention relates to the technical field of steel seal stamping, and discloses a continuous stamping device for colored steel seals, which comprises a shell mechanism, the shell mechanism comprises a shell, a base is clamped and mounted at one end of the shell, and a bearing steel sheet positioned on one side of the shell is clamped and mounted on one side, close to the shell, of the base; a stamping assembly and a steel seal assembly which are located on one side of the bearing steel sheet are sequentially arranged on one side of the shell, the steel seal assembly comprises a mounting piece, a connecting piece is mounted on the side, close to the bearing steel sheet, of the mounting piece in a clamped mode, and a moving piece is arranged on the side, away from the mounting piece, of the connecting piece; according to the device, under the cooperation of the first driving motor and the second driving motor, the function switching of the steel seal and the colored seal can be achieved, the inconvenience in use of large-scale equipment and small-scale function-limited equipment in the prior art is effectively distinguished, and the device can be fused and matched with a continuous stamping device daily used in a common office, so that the production efficiency is improved. And the device is convenient for long-term development of offices.
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Description

Technical Field

[0001] This invention belongs to the field of steel stamping technology, and specifically relates to a continuous stamping device for colored steel stamps. Background Technology

[0002] In office settings, the demand for document authentication, certificate verification, and data anti-counterfeiting is becoming increasingly prominent. This requires steel stamps to have the anti-counterfeiting recognition provided by traditional embossed textures, while also needing to achieve classified management through color differentiation. Therefore, stamping equipment that combines color with the embossed characteristics of steel stamps has become a practical requirement in the office field.

[0003] However, existing stamping technologies have limitations that make them unsuitable for general office use, failing to simultaneously meet the comprehensive requirements of miniaturization, ease of operation, color printing, and embossed anti-counterfeiting. Manual ribbon coding machines, while utilizing heat transfer ribbons for color application, are primarily designed for batch coding in packaging workshops. Their structural design does not consider the space and frequency of use in office environments, and they can only achieve flat ribbon transfer, lacking the embossed texture of traditional steel stamps and failing to achieve the unique physical embossed anti-counterfeiting function of steel stamps, thus failing to meet the anti-counterfeiting authentication requirements of office documents. Colored embossed steel stamps are mainly used in gift customization and metal part marking, and their operation relies on liquid... Press-driven stamps are noisy during operation and are bulky, making them unsuitable for desktop offices. Furthermore, this type of stamp uses anodizing for coloring, resulting in designs that are mostly custom-made for one-time use, limiting continuous stamping operations and flexibility, and making it difficult to meet the diverse and frequent stamping needs of offices. Laser-printed stamps are mostly used in mass production in factories, but they also suffer from high noise levels and are not suitable for office environments. They achieve coloring through laser and ink, leading to high material costs and stringent safety requirements for laser operation, further restricting their widespread application in ordinary offices.

[0004] In summary, existing colored stamping or steel stamping equipment suffers from limitations such as limited application scenarios, incomplete functionality, and restricted usage conditions. There is a lack of a continuous stamping device that can combine the anti-counterfeiting features of steel stamps with the effect of colored stamping, while also being compact, easy to operate, noiseless, economical in consumables, and suitable for daily use in ordinary offices. Therefore, developing a continuous colored steel stamping device that meets the above requirements has significant practical application value. Summary of the Invention

[0005] The purpose of this invention is to address the shortcomings of existing technologies by providing a continuous stamping device for colored steel stamps.

[0006] To achieve the above objectives, the present invention adopts the following technical solution: a continuous stamping device for colored steel stamps, comprising a housing mechanism, the housing mechanism comprising a housing, a base being snapped onto one end of the housing, and a bearing steel plate located on one side of the housing being snapped onto the side of the base near the housing, and a stamping component and a steel stamping component located on one side of the bearing steel plate being sequentially arranged on one side of the housing.

[0007] The stamping assembly includes an mounting component, and a connector is snapped onto the side of the mounting component near the supporting steel sheet. A movable component is provided on the side of the connector away from the mounting component, and a pressure steel sheet is snapped onto the side of the movable component away from the connector.

[0008] A heat-printing assembly is provided on the inner side of the housing, and the heat-printing assembly is located on one side of the movable part. The heat-printing assembly includes a contact pressure plate, a central rod is snapped onto the inner side of the contact pressure plate, and one end of the central rod extends through to the inner side of the movable part and is snapped onto the movable part. A heating module is snapped onto the side of the contact pressure plate near the base.

[0009] Preferably, the stamping assembly includes a drive motor, which is mounted to the end of the housing away from the base via a mounting bracket. The output end of the drive motor is fixedly sleeved with a disc component via a coupling. A mounting rod is mounted on the side of the disc component away from the drive motor, and a connecting plate is sleeved on the surface of the mounting rod. An adaptation plate is rotatably connected to the end of the connecting plate away from the mounting rod.

[0010] Preferably, a movable plate is rotatably connected to the end of the adapting plate away from the connecting plate, and a guide kit is slidably sleeved on the surface of the movable plate, and the guide kit is snap-fitted to the housing. The end of the movable plate away from the adapting plate is snap-fitted to the mounting component.

[0011] Preferably, a conveying assembly is provided on the inner side of the housing. The conveying assembly includes a driving wheel and a driven wheel arranged horizontally, and two guide wheels are provided between the driving wheel and the driven wheel near the contact pressure plate. A colored ribbon is wound around the driving wheel, the driven wheel and the guide wheels, and the colored ribbon is wound around the side of the heating module near the base.

[0012] Preferably, the ends of the two guide wheels away from the moving part are rotatably connected to a support block, and a support member is slidably sleeved on the surface of the support block. A guide rod is snapped into the inner side of the support member and passes through the support block, and the guide rod slides in cooperation with the support block.

[0013] Preferably, the surface of the guide rod is fitted with an elastic element located on one side of the support block, and the support and the support block are snapped together with the elastic element. One side of the support is snapped together with the inner side of the housing with a vertical rod, and the ends of the two vertical rods away from the support are respectively rotatably connected to one end of the driving wheel and the driven wheel.

[0014] Preferably, a movable component is provided between the two support members. The movable component includes an end rod, which is snapped onto the end of the middle rod away from the movable component. A rack is snapped onto the surface of the end rod, and a gear is meshed on the surface of the rack. A rotating rod is fixedly inserted into the inner shaft of the gear. A second drive motor is provided at one end of the rotating rod, and the output end of the second drive motor is fixedly sleeved to one end of the rotating rod through a coupling.

[0015] Preferably, a guide assembly is provided between the two support members on the outside of the end rod. The guide assembly includes two symmetrically arranged side-shifting plates on the outside of the end rod, and one end of each side-shifting plate is sleeved on the surface of the rotating rod and rotatably connected to the rotating rod. The side-shifting plate located on one side of the second drive motor is connected to the second drive motor by a mounting bracket.

[0016] Preferably, both sides of the end rod are fitted with symmetrically arranged sliders, and both sides of the end rod are fitted with stabilizing rods that are fitted with the inner side of the housing. The opposite surfaces of the two stabilizing rods are provided with sliding grooves, and the sliding grooves are used in sliding cooperation with the sliders. One side of the two side shift plates is provided with a crossbar, and the two ends of the crossbar are fitted with two support members.

[0017] Preferably, a slider two is snapped onto the side of the side-shifting plate near the crossbar, and a groove two is provided on the side of the crossbar near the side-shifting plate, with the slider two and the groove two slidingly engaged. A fixing plate is snapped onto the end of the side-shifting plate away from the rotating rod, and both ends of the fixing plate are provided with elastic elements two that are snapped onto the crossbar together. A guide rod two is provided at the inner axis of the elastic element two that is snapped onto the crossbar, and the end of the guide rod two away from the crossbar passes through to one side of the fixing plate and is slidably connected to the fixing plate.

[0018] In summary, the present invention has the following beneficial effects:

[0019] 1. With the coordinated operation of drive motor one and drive motor two, this device can switch between steel stamp and color stamp functions, effectively distinguishing it from the inconvenience of using large-scale equipment and small-scale equipment with limited functions in existing technologies. This device will be integrated and adapted to the continuous stamping device used in ordinary offices on a daily basis, and this device is conducive to the long-term development of the office.

[0020] 2. When the colored tape is being printed, as the heating module moves in position following the tape, it will simultaneously adjust the positions of the guide wheel and the support block. This allows the tape to adapt to changing positions while its ends remain fixed. The support block will move laterally within a slidingly fitted support component. The guide rod further guides the support block's movement. Meanwhile, the elastic component will deform elastically and store force as the support block moves. This ensures that after the heating module returns to its initial position, the support block and guide wheel can return to their initial positions under the elastic reset action of the elastic component, thus guaranteeing the stable operation of the guide wheel and the reliable transmission of the tape.

[0021] 3. When there is a need for movement between the drive motor 2 and the side-shifting plate, the side-shifting plate, the drive motor 2 and its drive end transmission structure, the same color strip and the vertical rod move together, and all form a stable longitudinal movement change under the sliding guidance of the slider 2 and the slide groove 2. This structure provides an adjustable movement margin and movement stability for the stamping link of the device. At the same time, when the side-shifting plate moves longitudinally, it will drive the fixed plate to slide along the guide rod 2, further providing guidance for the movement of the fixed plate and the side-shifting plate. Among them, the elastic element 2 undergoes elastic deformation during the movement, providing energy storage support for the return movement of the side-shifting plate after movement. Attached Figure Description

[0022] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0023] Figure 2 This is an enlarged schematic diagram of the shell removal mechanism of the present invention;

[0024] Figure 3 This is an enlarged schematic diagram of the conveying component and guiding component of the present invention;

[0025] Figure 4 This is an exploded and enlarged schematic diagram of the support member and support block of the present invention;

[0026] Figure 5 This is an enlarged schematic diagram of the pressure steel sheet and contact plate of the present invention;

[0027] Figure 6 This is an enlarged schematic diagram of the conveying component, moving component, and guiding component of the present invention;

[0028] Figure 7 This is an exploded and enlarged schematic diagram of the moving component and the guiding component of the present invention;

[0029] Figure 8 This is an enlarged schematic diagram of the stabilizer bar of the present invention.

[0030] Figure label:

[0031] 1. Outer shell mechanism; 101. Shell; 102. Base; 103. Bearing steel plate;

[0032] 2. Stamping assembly; 201. Drive motor one; 202. Disc component; 203. Mounting rod; 204. Connecting plate; 205. Adaptive plate; 206. Guide kit; 207. Moving plate;

[0033] 3. Stamped components; 301. Mounting parts; 302. Connecting parts; 303. Moving parts; 304. Pressure steel sheets;

[0034] 4. Heat-pressing assembly; 401. Contact pressure plate; 402. Middle rod; 403. Heating module;

[0035] 5. Conveying assembly; 501. Drive wheel; 502. Driven wheel; 503. Guide wheel; 504. Support component; 505. Support block; 506. Elastic component one; 507. Guide rod one; 508. Vertical rod;

[0036] 6. Moving component; 601. End rod; 602. Rack; 603. Gear; 604. Rotating rod; 605. Drive motor II;

[0037] 7. Guide assembly; 701. Side shift plate; 702. Slider one; 703. Crossbar; 704. Slider two; 705. Slide groove two; 706. Fixing plate; 707. Elastic element two; 708. Guide rod two;

[0038] 800. Stabilizer bar; 801. Slide 1. Detailed Implementation

[0039] To make the technical means, creative features, achieved objectives, and effects of this invention easier to understand, the invention is further described below with reference to specific embodiments and accompanying drawings. However, the following embodiments are merely preferred embodiments of this invention and not all embodiments. Other embodiments obtained by those skilled in the art based on the embodiments described herein without creative effort are all within the protection scope of this invention.

[0040] Specific embodiments of the present invention are described below with reference to the accompanying drawings:

[0041] Example:

[0042] refer to Figures 1-8 A continuous stamping device for colored steel stamps includes a housing mechanism 1, which includes a housing 101. A base 102 is snapped onto one end of the housing 101, and a supporting steel plate 103 located on one side of the housing 101 is snapped onto the side of the base 102 near the housing 101. A stamping component 2 and a steel stamping component 3 are sequentially arranged on one side of the housing 101, located on the side of the supporting steel plate 103.

[0043] The stamping assembly 3 includes a mounting part 301, and a connector 302 is snapped onto the side of the mounting part 301 near the bearing steel sheet 103. A movable part 303 is provided on the side of the connector 302 away from the mounting part 301, and a pressure steel sheet 304 is snapped onto the side of the movable part 303 away from the connector 302.

[0044] A heat-printing assembly 4 is provided on the inner side of the housing 101, and the heat-printing assembly 4 is located on one side of the movable part 303. The heat-printing assembly 4 includes a contact pressure plate 401. A central rod 402 is snapped onto the inner side of the contact pressure plate 401, and one end of the central rod 402 passes through the inner side of the movable part 303 and is snapped onto the movable part 303. A heating module 403 is snapped onto the side of the contact pressure plate 401 near the base 102.

[0045] The stamping assembly 2 includes a drive motor 201. The drive motor 201 is mounted to the end of the housing 101 away from the base 102 via a mounting bracket. The output end of the drive motor 201 is fixedly sleeved with a disc component 202 via a coupling. A mounting rod 203 is mounted on the side of the disc component 202 away from the drive motor 201. A connecting plate 204 is fitted onto the surface of the mounting rod 203. An adaptation plate 205 is rotatably connected to the end of the connecting plate 204 away from the mounting rod 203. A movable plate 207 is rotatably connected to the end of the adaptation plate 205 away from the connecting plate 204. A guide kit 206 is slidably fitted onto the surface of the movable plate 207. The guide kit 206 is fitted onto the housing 101. The end of the movable plate 207 away from the adaptation plate 205 is fitted onto the mounting component 301.

[0046] Specifically, when the drive motor 201 is running, it will drive the disc component 202 to rotate synchronously. The mounting rod 203, which is eccentrically arranged on one side of the disc component 202, will move in a circular motion around the center of the disc component 202. At the same time, the mounting rod 203 will drive the connecting plate 204 and the adapting plate 205 to move synchronously, and finally transmit the motion to the moving plate 207. During the movement of the connecting plate 204, the connection between it and the mounting rod 203 is a rotatable connection. Under the adaptive adjustment of the angle of the adapting plate 205, the moving component 303 will eventually form a purely longitudinal movement trend.

[0047] During the movement of the movable component 303, the guide kit 206 that slides on its surface provides precise guidance for the movement trajectory, effectively preventing it from deviating from the trajectory during the preset movement stroke. Furthermore, the longitudinal movement of the movable component 303 will synchronously drive the mounting component 301 to undergo longitudinal displacement changes.

[0048] A conveying assembly 5 is provided inside the housing 101. The conveying assembly 5 includes a horizontally arranged driving wheel 501 and driven wheel 502. Two guide wheels 503 are arranged between the driving wheel 501 and the driven wheel 502, close to the contact pressure plate 401. A colored ribbon is wound around the driving wheel 501, driven wheel 502 and guide wheels 503. The colored ribbon is wound around the side of the heating module 403 near the base 102. The ends of the two guide wheels 503 away from the moving part 303 are rotatably connected to a support block 505. A support member 5 is slidably fitted on the surface of the support block 505. 04. A guide rod 507 that passes through the support block 505 is snapped onto the inner side of the support member 504, and the guide rod 507 is slidably engaged with the support block 505. An elastic element 506 located on one side of the support block 505 is sleeved on the surface of the guide rod 507, and the support member 504 and the support block 505 are snapped together with the elastic element 506. A vertical rod 508 is snapped together on one side of the support member 504 and the inner side of the housing 101, and the ends of the two vertical rods 508 away from the support member 504 are rotatably connected to one end of the driving wheel 501 and the driven wheel 502, respectively.

[0049] Specifically, during the operation of the driving wheel 501 and the driven wheel 502, the driving wheel 501 is connected to the external drive device, and the two ends of the ribbon are wound around the driving wheel 501 and the driven wheel 502 respectively. The guide wheel 503 guides and supports the ribbon. Finally, with the rotation of the driving wheel 501 and the coordinated cooperation of the driven wheel 502 and the guide wheel 503, the ribbon is stably transmitted. At the same time, the support block 505 and the support member 504 provide rotational support for the guide wheel 503, and the vertical rod 508 provides rotational support for the driving wheel 501 and the driven wheel 502.

[0050] When the heating module 403 moves in position following the ribbon, it will synchronously drive the guide wheel 503 and the support block 505 to adjust their positions, so that the ribbon can achieve an adaptive movement effect while its two ends remain fixed. The support block 505 will move laterally within the support member 504 that is slidably fitted to it. The guide rod 507 further provides movement guidance for the support block 505. At the same time, the elastic member 506 will undergo elastic deformation and store force as the support block 505 moves, so as to ensure that after the heating module 403 returns to its initial position, the support block 505 and the guide wheel 503 can return to their initial positions under the elastic reset action of the elastic member 506, thus ensuring the stable operation of the guide wheel 503 and the reliable transmission of the ribbon.

[0051] A movable component 6 is provided between the two support members 504. The movable component 6 includes an end rod 601, which is snapped into the end of the middle rod 402 away from the movable component 303. A rack 602 is snapped into the surface of the end rod 601, and a gear 603 meshes with the surface of the rack 602. A rotating rod 604 is fixedly inserted into the inner shaft of the gear 603. A second drive motor 605 is provided at one end of the rotating rod 604, and the output end of the second drive motor 605 is fixedly sleeved with one end of the rotating rod 604 through a coupling.

[0052] Specifically, when the drive motor 605 is running, it will drive the rotating rod 604 to rotate synchronously. At this time, the rotating rod 604 drives the gear 603 coaxially mounted on its surface to rotate synchronously. Under the meshing transmission of the teeth, the drive rack 602 will generate a lateral movement tendency. Finally, the rack 602 will drive the end rod 601 to move, and through the installation structure, it will synchronously drive the middle rod 402 to achieve the preset movement change.

[0053] A guide assembly 7 is provided between the two support members 504, located outside the end rod 601. The guide assembly 7 includes two symmetrically arranged side-shifting plates 701 on the outside of the end rod 601, with one end of each side-shifting plate 701 sleeved on the surface of the rotating rod 604 and rotatably connected to the rotating rod 604. The side-shifting plate 701 located on one side of the second drive motor 605 is snapped onto the second drive motor 605 via a mounting bracket. Two symmetrically arranged sliders 702 are snapped onto both sides of the end rod 601, and two stabilizing rods 800 are provided on both sides of the end rod 601, snapped onto the inner side of the housing 101. The opposing surfaces of the two stabilizing rods 800 are provided with sliding grooves 801, and the sliding grooves 801 are slidably engaged with the sliders 702. The two side-shifting plates 701 A crossbar 703 is provided on one side of the crossbar 703, and both ends of the crossbar 703 are snapped into two support members 504. A slider 704 is snapped into the side of the side plate 701 near the crossbar 703. A groove 705 is provided on the side of the crossbar 703 near the side plate 701, and the slider 704 and the groove 705 are slidably engaged. A fixing plate 706 is snapped into the end of the side plate 701 away from the rotating rod 604. Both ends of the fixing plate 706 are provided with elastic members 707 that are snapped into the crossbar 703. A guide rod 708 is provided at the inner axis of the elastic member 707 that is snapped into the crossbar 703. The end of the guide rod 708 away from the crossbar 703 passes through to the side of the fixing plate 706 and is slidably connected to the fixing plate 706.

[0054] Specifically, when there is a need for movement between the drive motor 605 and the side-shifting plate 701, the side-shifting plate 701, the drive motor 605 and its drive end transmission structure, the same color strip and the vertical rod 508 move together, forming a stable longitudinal movement under the sliding guidance of the slider 704 and the slide groove 705. This structure provides adjustable movement margin and movement stability for the stamping process of the device. At the same time, when the side-shifting plate 701 moves longitudinally, it will drive the fixed plate 706 to slide along the guide rod 708, further providing guidance for the movement of the fixed plate 706 and the side-shifting plate 701. During this movement, the elastic element 707 undergoes elastic deformation, providing energy storage support for the return movement of the side-shifting plate 701 after movement.

[0055] When the end rod 601 moves between the two stabilizing rods 800, the end rod 601 will be guided to move through the sliding engagement of the slider 702 and the groove 801. In this state, the side plate 701 will not be offset in longitudinal position due to the movement of the end rod 601 under the support of the elastic element 707.

[0056] The working principle of this invention is as follows: When there is a need for stamping, the operator can place the material to be stamped on the surface of the supporting steel sheet 103 and then operate according to the stamping requirements; when the dual effect of stamping and coloring is required, the operator will first turn on the drive motor 201.

[0057] Under the operation of the drive motor 201, the disc component 202 will rotate synchronously, and the mounting rod 203, which is eccentrically arranged on one side of the disc component 202, will move in a circular motion around the center of the disc component 202. At the same time, the mounting rod 203 will drive the connecting plate 204 and the adapting plate 205 to move synchronously, and finally transmit the motion to the moving plate 207. During the movement of the connecting plate 204, the connection between it and the mounting rod 203 is a rotatable connection, and under the adaptive adjustment of the angle of the adapting plate 205, the moving component 303 will eventually form a purely longitudinal movement trend.

[0058] The movement of the movable part 303 will cause the pressure steel plate 304 to move closer to the bearing steel plate 103. Finally, under the synergistic action of the bearing steel plate 103 and the pressure steel plate 304, the material is stamped. After the bearing steel plate 103 returns to its initial state away from the pressure steel plate 304, the stamping process can begin. The operation of the drive motor 605 will drive the rotating rod 604 to rotate synchronously. At this time, the rotating rod 604 drives the gear 603 coaxially mounted on its surface to rotate synchronously. Under the meshing transmission of the teeth, the rack 602 is driven to move laterally. Finally, the rack 602 drives the end rod 601 to move, and through the mounting structure, it synchronously drives the middle rod 402 to achieve the preset movement change. As the middle rod 402 changes, the moving part 303 and the pressure steel plate 304 tend to move away from the housing 101. At this time, the heating module 403 is located on the side of the bearing steel plate 103, while the pressure steel plate 304 will be moved away from the upper part of the material under the movement of the middle rod 402.

[0059] Subsequently, with the re-operation of the drive motor 201, the contact plate 401 is re-contacted through the connector 302. Under the pressure of the contact plate 401 and the heating module 403, the colored ribbon comes into contact with the material, and finally achieves the effect of colored stamping through heat conduction.

[0060] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.

[0061] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of the present invention is defined by the appended claims and their equivalents.

Claims

1. A continuous stamping device for colored steel stamps, comprising a housing mechanism (1), the housing mechanism (1) comprising a housing (101), a base (102) being snapped onto one end of the housing (101), and a bearing steel plate (103) located on one side of the housing (101) being snapped onto the side of the base (102) near the housing (101), characterized in that: The housing (101) is provided with a stamping assembly (2) and a stamping assembly (3) located on the side of the supporting steel sheet (103). The stamping assembly (3) includes a mounting part (301), and a connector (302) is snapped onto the side of the mounting part (301) near the bearing steel sheet (103). A movable part (303) is provided on the side of the connector (302) away from the mounting part (301), and a pressure steel sheet (304) is snapped onto the side of the movable part (303) away from the connector (302). A heat-printing assembly (4) is provided on the inner side of the housing (101), and the heat-printing assembly (4) is located on one side of the moving part (303). The heat-printing assembly (4) includes a contact plate (401), and a central rod (402) is snapped onto the inner side of the contact plate (401). One end of the central rod (402) extends through to the inner side of the moving part (303) and is snapped onto the moving part (303). A heating module (403) is snapped onto the side of the contact plate (401) near the base (102).

2. The continuous stamping device for colored steel stamps according to claim 1, characterized in that: The stamping assembly (2) includes a drive motor (201). The drive motor (201) is mounted on the end of the housing (101) away from the base (102) by a mounting bracket. The output end of the drive motor (201) is fixedly sleeved with a disc component (202) by a coupling. The side of the disc component (202) away from the drive motor (201) is fitted with a mounting rod (203). A connecting plate (204) is fitted on the surface of the mounting rod (203). An adaptation plate (205) is rotatably connected to the end of the connecting plate (204) away from the mounting rod (203).

3. The continuous stamping device for colored steel stamps according to claim 2, characterized in that: The end of the adapting plate (205) away from the connecting plate (204) is rotatably connected to a movable plate (207). A guide kit (206) is slidably sleeved on the surface of the movable plate (207), and the guide kit (206) is snapped into the housing (101). The end of the movable plate (207) away from the adapting plate (205) is snapped into the mounting component (301).

4. The continuous stamping device for colored steel stamps according to claim 1, characterized in that: The inner side of the housing (101) is provided with a conveying assembly (5). The conveying assembly (5) includes a driving wheel (501) and a driven wheel (502) arranged horizontally. Two guide wheels (503) are arranged between the driving wheel (501) and the driven wheel (502) and are close to the contact pressure plate (401). A colored ribbon is wound around the driving wheel (501), the driven wheel (502) and the guide wheel (503), and the colored ribbon is wound around the side of the heating module (403) close to the base (102).

5. The continuous stamping device for colored steel stamps according to claim 4, characterized in that: The two guide wheels (503) are rotatably connected to a support block (505) at one end away from the moving part (303), and a support member (504) is slidably sleeved on the surface of the support block (505). A guide rod (507) that passes through the support block (505) is snapped onto the inner side of the support member (504), and the guide rod (507) slides and cooperates with the support block (505).

6. The continuous stamping device for colored steel stamps according to claim 5, characterized in that: The surface of the guide rod (507) is fitted with an elastic element (506) located on one side of the support block (505), and the support element (504) and the support block (505) are snapped together with the elastic element (506). One side of the support element (504) is snapped together with the inner side of the housing (101) with a vertical rod (508), and the ends of the two vertical rods (508) away from the support element (504) are rotatably connected to one end of the driving wheel (501) and the driven wheel (502), respectively.

7. The continuous stamping device for colored steel stamps according to claim 6, characterized in that: A movable component (6) is provided between the two support members (504). The movable component (6) includes an end rod (601), and the end rod (601) is snapped onto the end of the middle rod (402) away from the movable component (303). A rack (602) is snapped onto the surface of the end rod (601), and a gear (603) meshes with the surface of the rack (602). A rotating rod (604) is fixedly inserted into the inner shaft of the gear (603). A second drive motor (605) is provided at one end of the rotating rod (604), and the output end of the second drive motor (605) is fixedly sleeved with one end of the rotating rod (604) through a coupling.

8. The continuous stamping device for colored steel stamps according to claim 1, characterized in that: A guide assembly (7) located outside the end rod (601) is provided between the two support members (504). The guide assembly (7) includes two lateral plates (701) symmetrically arranged outside the end rod (601). One end of each lateral plate (701) is sleeved on the surface of the rotating rod (604) and rotatably connected to the rotating rod (604). The lateral plate (701) located on one side of the second drive motor (605) is connected to the second drive motor (605) by a mounting bracket.

9. A continuous stamping device for colored steel stamps according to claim 8, characterized in that: Both sides of the end rod (601) are fitted with symmetrically arranged sliders (702), and both sides of the end rod (601) are fitted with stabilizing rods (800) that are fitted with the inner side of the housing (101). The opposite surfaces of the two stabilizing rods (800) are provided with sliding grooves (801), and the sliding grooves (801) and sliders (702) are used in sliding cooperation. One side of the two side plates (701) is provided with a crossbar (703), and the two ends of the crossbar (703) are fitted with two support members (504).

10. A continuous stamping device for colored steel stamps according to claim 9, characterized in that: The side-shifting plate (701) is fitted with a slider two (704) on the side near the crossbar (703). The crossbar (703) is provided with a groove two (705) on the side near the side-shifting plate (701). The slider two (704) and the groove two (705) are slidably engaged. The side-shifting plate (701) is fitted with a fixing plate (706) at the end away from the rotating rod (604). Both ends of the fixing plate (706) are provided with elastic elements two (707) that are fitted together with the crossbar (703). The inner axis of the elastic element two (707) is provided with a guide rod two (708) that is fitted together with the crossbar (703). The end of the guide rod two (708) away from the crossbar (703) extends through to the side of the fixing plate (706) and is slidably connected to the fixing plate (706).