Processing technology of nameplate
By combining hot melt machine and mechanical device, embossed lettering is quickly printed onto multiple metal plates, solving the problem of high nameplate processing costs in existing technologies and realizing efficient and low-cost mass production of nameplates.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- 王晓颖
- Filing Date
- 2023-12-08
- Publication Date
- 2026-04-17
AI Technical Summary
Existing technology cannot quickly print embossed lettering onto multiple metal plates, leading to increased nameplate processing costs.
The process involves using a hot melt machine to process metal raw materials into liquid metal, which is then processed through a mold. A telescopic rod is used to drive an extrusion plate to print information on multiple metal plates, followed by drilling and coating. Combined with various mechanical devices such as geared motors, transmission gears, and telescopic rods, batch processing can be achieved.
It enables rapid and low-cost printing of embossed lettering on multiple metal plates, improving the processing efficiency and quality of nameplates, and providing anti-corrosion and anti-rust functions.
Smart Images

Figure CN121870407A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of nameplate processing, and more specifically to a nameplate processing technology. Background Technology
[0002] Nameplate definition: After a product is launched on the market, a nameplate is affixed to the product to provide users with information such as manufacturer's trademark identification, brand differentiation, and product parameter markings. Nameplates are also called labels. They are mainly used to record technical data of the manufacturer and rated operating conditions to ensure correct use and prevent damage to the equipment. Most nameplates are made of metal. Nameplates can be divided into embossed nameplates and flat nameplates, but most are embossed nameplates because embossed lettering is easier to process. However, current technology cannot quickly print embossed lettering onto multiple metal plates, leading to increased processing costs for nameplates. Summary of the Invention
[0003] The purpose of this invention is to provide a nameplate processing technology that can quickly print recessed lettering onto multiple metal plates, thereby further reducing the cost of processing nameplates.
[0004] The objective of this invention is achieved through the following technical solution:
[0005] A nameplate manufacturing process, comprising the following steps:
[0006] Step 1: Add the metal raw material into the hot melt machine to complete the processing of liquid metal;
[0007] Step 2: Perform mold processing on the liquid metal to complete the processing of multiple metal plates;
[0008] Step 3: Add multiple metal plates into the collecting cavity;
[0009] Step 4: Collect the multiple metal plates from the horizontal cavity and drop them onto the horizontal support slide in sequence;
[0010] Step 5: Activate multiple telescopic rods to move the extrusion printing plate towards the metal plate, thus completing the printing of information onto multiple metal plates;
[0011] Step 6: Drill holes in the multiple metal plates with the printed information to complete the nameplate processing.
[0012] The liquid metal needs to be filtered before it can be processed into molds.
[0013] After drilling, the multiple metal plates are coated.
[0014] Multiple telescopic rods are evenly and fixedly connected to the extrusion plate. The multiple telescopic rods are fixedly connected to the side vertical plate. The side vertical plate is fixedly connected to the support table. A support frame plate is fixedly connected to the support table. A collection cavity is slidably connected to the support frame plate. A horizontal support slide plate is slidably connected to the support frame plate.
[0015] Preferably, a right-angle support plate is fixedly connected to the horizontal support plate, and a horizontal sliding cylinder is fixedly connected to the right-angle support plate. The horizontal sliding cylinder is slidably connected to the side vertical support plate.
[0016] Preferably, a bearing seat is fixedly connected to the extrusion plate, a linkage rotating plate is rotatably connected to the bearing seat, and a transmission gear I is fixedly connected to the linkage rotating plate.
[0017] Preferably, a reduction motor I is fixedly connected to the side vertical plate, and a transmission gear II is fixedly connected to the output shaft of the reduction motor I.
[0018] Preferably, two limiting straight plates are fixedly connected to the collecting cavity, both of which are slidably connected to the support frame plate. A horizontal connecting plate is fixedly connected to the two limiting straight plates, and a horizontal sliding screw is rotatably connected to the support frame plate. The horizontal sliding screw and the horizontal connecting plate are connected by a threaded transmission.
[0019] Preferably, a horizontal sliding plate is slidably connected to the support frame plate, the horizontal sliding plate is slidably connected to the collecting cavity, a plurality of horizontal limiting sliding posts are slidably connected to the horizontal sliding plate, each of the plurality of horizontal limiting sliding posts is fitted with a spring, a contact plate is fixedly connected to the plurality of horizontal limiting sliding posts, a reduction motor II is fixedly connected to the support frame plate, a pressing screw is fixedly connected to the output shaft of the reduction motor II, and the pressing screw is connected to the horizontal sliding plate through a threaded transmission.
[0020] Preferably, a friction wheel is rotatably connected between the two limiting straight plates. Attached Figure Description
[0021] The present invention will now be described in further detail with reference to the accompanying drawings and specific implementation methods.
[0022] Figure 1 This is a flowchart illustrating the manufacturing process of a nameplate.
[0023] Figure 2 This is a structural schematic diagram of an embodiment of nameplate processing;
[0024] Figure 3 This is a partial structural schematic diagram of an embodiment of nameplate processing;
[0025] Figure 4 This is a schematic diagram of an embodiment of printing intaglio characters onto a metal plate;
[0026] Figure 5This is a structural schematic diagram of an embodiment that provides storage space for multiple metal plates;
[0027] Figure 6 This is a structural schematic diagram of an embodiment for supporting and placing a metal plate;
[0028] Figure 7 This is a schematic diagram of an embodiment that drives multiple metal plates to be intermittently discharged.
[0029] Figure 8 This is a schematic diagram of a specific structure of an embodiment that drives multiple metal plates to be discharged intermittently;
[0030] Figure 9 This is a schematic diagram of an embodiment of storing and extruding multiple metal plates;
[0031] Figure 10 This is a structural schematic diagram of an embodiment for limiting the position of multiple metal plates;
[0032] Figure 11 This is a schematic diagram of an embodiment where multiple metal plates are extruded and discharged. Detailed Implementation
[0033] The following is in conjunction with the appendix Figure 1 The present invention will be described in further detail below.
[0034] The following is in conjunction with the appendix Figure 1 Detailed description of a nameplate manufacturing process, which includes the following steps:
[0035] Step 1: Add the metal raw material into the hot melt machine to complete the processing of liquid metal;
[0036] Step 2: Perform mold processing on the liquid metal to complete the processing of multiple metal plates;
[0037] Step 3: Add multiple metal plates into the collecting cavity 106;
[0038] Step 4: Collect multiple metal plates from the horizontal cavity 106 and drop them onto the horizontal support slide plate 107 in sequence;
[0039] Step 5: Activate multiple telescopic rods 102 to move the extrusion printing plate 101 toward the metal plate, thus completing the printing of information onto multiple metal plates.
[0040] Step 6: Drill holes in the multiple metal plates with the printed information to complete the nameplate processing.
[0041] The following is in conjunction with the appendix Figure 1 In detail, the liquid metal needs to be filtered before it is processed into a mold.
[0042] Furthermore, it is essential to ensure that there are no impurities remaining in the liquid metal, and that only liquid metal that meets the standards can be used for mold processing. If impurities enter the mold processing, it will affect the quality of the processed metal sheet. The benefit of filtration is that it can improve the quality of the nameplate produced. This nameplate can be used on the machine to print the machine's basic information and fix the nameplate on the machine so that people can easily know the machine's basic parameters.
[0043] After drilling, the multiple metal plates are coated.
[0044] Furthermore, the coated metal plates have better corrosion and rust prevention properties, ensuring the service life of the processed nameplates.
[0045] According to the instruction manual Figure 2-9 In detail with reference to section 11, multiple telescopic rods 102 are uniformly fixedly connected to the extrusion plate 101 via flange plates. The multiple telescopic rods 102 are fixedly connected to the side vertical plate 103 via flange plates. The side vertical plate 103 is fixedly connected to the support table 104 via welding. A support frame plate 105 is fixedly connected to the support table 104 via welding. A collection cross cavity 106 is slidably connected to the support frame plate 105 via a sliding groove. A cross slide plate 107 is slidably connected to the support frame plate 105 via a square opening.
[0046] Furthermore, the extrusion plate 101 is printed with basic machine information in raised lettering. When the extrusion plate 101 contacts and presses against the metal plate, the raised lettering on the extrusion plate 101 is transferred onto the metal plate, thus completing the nameplate processing. Multiple telescopic rods 102 can be used to slide the extrusion plate 101 laterally, thereby completing the extrusion printing process on the metal plate. The side vertical fixing plate 103 provides a fixed space for the multiple telescopic rods 102, and is fixed to the support table 104. The support table 104 allows for the control of the entire assembly. The device is fixed in place to ensure it is placed stably on the ground. The support table 104 provides a fixed space for the support frame 105, which in turn provides a sliding space for the collecting cavity 106 and the horizontal support slide plate 107. The collecting cavity 106 provides storage space for multiple metal plates. When multiple metal plates are removed from the collecting cavity 106, they fall onto the horizontal support slide plate 107, where they are pressed and imprinted. The horizontal support slide plate 107 has a square opening through which the finished nameplate slides out.
[0047] Multiple metal plates are placed into the collecting cavity 106. Then, the metal plates inside the collecting cavity 106 are removed and allowed to fall onto the horizontal support slide 107. At this time, multiple telescopic rods 102 are activated, which move the extrusion plate 101 toward the metal plate, thus imprinting the text information on the extrusion plate 101 onto the metal plate, completing the nameplate processing. After processing, the multiple telescopic rods 102 return to their original positions. Then, the horizontal support slide 107 is slid, and the processed nameplate falls through the horizontal support slide 107. After the metal plate falls, the horizontal support slide 107 returns to its original position, and the metal plates inside the collecting cavity 106 are removed and placed onto the horizontal support slide 107. By repeating the above cyclic steps, the processing of multiple nameplates can be completed.
[0048] According to the instruction manual Figure 2-7 In detail, a right-angle support plate 201 is fixedly connected to the horizontal support plate 107 by welding, and a horizontal sliding cylinder 202 is fixedly connected to the right-angle support plate 201 by welding. The horizontal sliding cylinder 202 and the side vertical support plate 103 are slidably connected through a round hole.
[0049] Furthermore, the right-angle support plate 201 can drive the horizontal support slide plate 107 to slide left and right. A spring is sleeved on the horizontal sliding cylinder 202, located between the side vertical support plate 103 and the right-angle support plate 201. The elastic force generated by the spring acts on the right-angle support plate 201, keeping the horizontal support slide plate 107 in its original position. When the right-angle support plate 201 slides, it drives the horizontal support slide plate 107 to slide, exposing the square opening on the horizontal support slide plate 107, allowing the nameplate to be discharged. When the force on the right-angle support plate 201 weakens, the elastic force of the spring can drive the right-angle support plate 201 to slide to the right, allowing the horizontal support slide plate 107 to quickly return to its original position, providing space for the next metal plate to be placed and subjected to extrusion printing. This process is repeated to complete the processing of multiple metal plates.
[0050] According to the instruction manual Figure 2-6 In detail, a bearing seat 301 is fixedly connected to the extrusion plate 101 by welding. A linkage rotating plate 302 is rotatably connected to the bearing seat 301 by a shaft. A transmission gear I303 is fixedly connected to the linkage rotating plate 302 by a keyway and a snap ring.
[0051] Furthermore, the bearing housing 301 provides space for the linkage rotating plate 302 to rotate. When the linkage rotating plate 302 rotates, it can drive the right-angle support plate 201 to slide. The transmission gear I303 can drive the linkage rotating plate 302 to rotate. After the extrusion printing plate 101 finishes extruding and printing on the metal plate, the extrusion printing plate 101 will move to the left, thereby driving the bearing housing 301 and the linkage rotating plate 302 to move to the left. At this time, the linkage rotating plate 302 will contact the right-angle support plate 201. After the linkage rotating plate 302 contacts the right-angle support plate 201, the transmission gear I303 will rotate 180 degrees, thereby driving the right-angle support plate 201 to move to the left, and finally driving the horizontal support slide plate 107 to move to the left, completing the separation of the metal plate from the horizontal support slide plate 107. After the linkage rotating plate 302 and the right-angle support plate 201 are released from contact, the right-angle support plate 201 will return to its original position.
[0052] According to the instruction manual Figure 2-4 In detail, a geared motor I401 is fixedly connected to the side vertical plate 103 via a flange plate, and a transmission gear II402 is fixedly connected to the output shaft of the geared motor I401 via a keyway and a snap ring.
[0053] Furthermore, after starting the geared motor I401, it will drive the transmission gear II402 to rotate. Moreover, the geared motor I401 rotates only 180 degrees at a time. When the transmission gear I303 moves to the left, the transmission gear I303 will contact the transmission gear II402. When the linkage rotating plate 302 contacts the right-angle support plate 201, the geared motor I401 will be started. After rotating 180 degrees, the geared motor I401 will stop. After the linkage rotating plate 302 contacts the right-angle support plate 201 again, the geared motor I401 will be started again. This cycle is repeated to complete the extrusion printing process on multiple metal plates.
[0054] According to the instruction manual Figure 2 , 5 As detailed in section 7-10, the collecting cavity 106 has two limiting straight plates 501 fixedly connected by welding. Both limiting straight plates 501 are slidably connected to the support frame plate 105 through square openings. A horizontal connecting plate 502 is fixedly connected to the two limiting straight plates 501 by welding. A horizontal moving screw 503 is rotatably connected to the support frame plate 105 through bearing holes. The horizontal moving screw 503 is connected to the horizontal connecting plate 502 through threaded transmission.
[0055] Furthermore, the limiting straight plate 501 is equipped with right-angle plates. These right-angle plates on the two limiting straight plates 501 can limit the leftmost metal plate within the collecting transverse cavity 106. The transverse connecting plate 502 can drive the two limiting straight plates 501 to slide, thereby changing the distance between the right-angle plates on the two limiting straight plates 501 and the supporting frame plate 105. This allows metal plates of different thicknesses to fall through the gap between the two limiting straight plates 501 and the supporting frame plate 105. The distance can be adjusted according to requirements. The distance between the two limiting straight plates 501 and the support frame plate 105 is changed by rotating the transverse sliding screw 503, which drives the transverse connecting plate 502 to slide laterally, thereby changing the distance between the two limiting straight plates 501 and the support frame plate 105, so as to facilitate the smooth falling of metal plates of different thicknesses. The lower surfaces of the two limiting straight plates 501 are in contact with the transverse support slide plate 107. When the metal plate falls through the gap between the two limiting straight plates 501 and the support frame plate 105, the metal plate can fall onto the transverse support slide plate 107.
[0056] According to the instruction manual Figure 2 , 5 Detailed descriptions of sections 7-9 and 11: A horizontal sliding plate 601 is slidably connected to the support frame plate 105 via a groove. The horizontal sliding plate 601 is slidably connected to the collecting horizontal cavity 106 via a straight cavity. Multiple horizontal limiting sliding posts 602 are slidably connected to the horizontal sliding plate 601 via multiple round holes. Each horizontal limiting sliding post 602 is fitted with a spring. A contact plate 603 is fixedly connected to the multiple horizontal limiting sliding posts 602 via welding. A reduction motor II 604 is fixedly connected to the support frame plate 105 via a flange plate. A pressing screw 605 is fixedly connected to the output shaft of the reduction motor II 604 via a keyway and a snap ring. The pressing screw 605 is connected to the horizontal sliding plate 601 via a threaded transmission.
[0057] Furthermore, the horizontal sliding plate 601 can slide on the support frame plate 105. The horizontal sliding plate 601 provides sliding space for multiple horizontal limiting sliding posts 602, and the multiple horizontal limiting sliding posts 602 provide fixed space for the contact plate 603. The elastic force generated by the springs on the multiple horizontal limiting sliding posts 602 acts on the contact plate 603, allowing the contact plate 603 to contact multiple metal plates in the collecting cavity 106. After starting the reduction motor II 604, it can drive the extrusion screw 605 to rotate. When the extrusion screw 605 rotates, it can drive the horizontal sliding plate 601 to move to the left, realizing the extrusion processing of multiple metal plates in the collecting cavity 106. The purpose of setting multiple horizontal limiting sliding posts 602 and contact plates 603 on the horizontal sliding plate 601 is to achieve... The damping function allows it to have a certain deformation capacity. Because the geared motor II604 will rotate continuously, it will drive the extrusion screw 605 to rotate continuously, and finally drive the transverse slide plate 601 to move continuously to the left, completing the continuous extrusion process of multiple metal plates in the collection cavity 106. The benefit of damping is that it can slow down the continuous extrusion of multiple metal plates in the collection cavity 106. This ensures the extrusion process of multiple metal plates in the collection cavity 106, and also has a certain deformation capacity, delaying the extrusion process of multiple metal plates in the collection cavity 106 by the transverse slide plate 601. Because the thickness of multiple metal plates is different, it is impossible to control the distance of the transverse slide plate 601 sliding to the left each time. Therefore, multiple transverse limit slides 602 and contact plates 603 with damping and buffering functions are set.
[0058] According to the instruction manual Figure 2 , 5 Detailed descriptions of points 7, 9, and 10: The two limiting straight plates 501 are rotatably connected by a friction wheel 701 via a convex plate.
[0059] Furthermore, a reduction motor III is fixedly connected to one of the limiting straight plates 501. The output shaft of the reduction motor III is fixedly connected to the friction wheel 701. When the metal plate falls through the horizontal support slide 107, the reduction motor III will start, thereby driving the friction wheel 701 to rotate. When the friction wheel 701 rotates, it can drive the metal plate at the leftmost end in the collecting horizontal cavity 106 to move downward, thereby transferring the metal plate through the gap between the two limiting straight plates 501 and the support frame plate 105 to the horizontal support slide 107, so that only one metal plate can fall and land on the horizontal support slide 107 at a time.
Claims
1. A processing method for a nameplate, characterized in that, The process includes the following steps: Step 1: Add the metal raw material into the hot melt machine to complete the processing of liquid metal; Step 2: Perform mold processing on the liquid metal to complete the processing of multiple metal plates; Step 3: Add multiple metal plates into the collecting cavity (106); Step 4: Drop the multiple metal plates from the collection cavity (106) onto the horizontal support slide (107) in sequence; Step 5: Activate multiple telescopic rods (102) to move the extrusion printing plate (101) toward the metal plate, thus completing the printing of information onto multiple metal plates; Step 6: Drill holes in the multiple metal plates with the printed information to complete the nameplate processing.
2. The processing technology for a nameplate according to claim 1, characterized in that: The liquid metal needs to be filtered before it can be processed into molds.
3. The processing technology of a nameplate according to claim 1, characterized in that: After drilling, the multiple metal plates are coated.
4. The processing technology of a nameplate according to claim 1, characterized in that: Multiple telescopic rods (102) are uniformly fixedly connected to the extrusion plate (101). The multiple telescopic rods (102) are fixedly connected to the side vertical plate (103). The side vertical plate (103) is fixedly connected to the support table (104). A support frame plate (105) is fixedly connected to the support table (104). A collection cavity (106) is slidably connected to the support frame plate (105). A horizontal support slide plate (107) is slidably connected to the support frame plate (105).
5. The processing technology for a nameplate according to claim 4, characterized in that: A right-angle support plate (201) is fixedly connected to the horizontal support plate (107), and a horizontal sliding cylinder (202) is fixedly connected to the right-angle support plate (201). The horizontal sliding cylinder (202) is slidably connected to the side vertical support plate (103).
6. The processing technology of a nameplate according to claim 5, characterized in that: A bearing seat (301) is fixedly connected to the extrusion plate (101), a linkage rotating plate (302) is rotatably connected to the bearing seat (301), and a transmission gear I (303) is fixedly connected to the linkage rotating plate (302).
7. The processing technology for a nameplate according to claim 6, characterized in that: A geared motor I (401) is fixedly connected to the side vertical plate (103), and a transmission gear II (402) is fixedly connected to the output shaft of the geared motor I (401).
8. The processing technology of a nameplate according to claim 4, characterized in that: Two limiting straight plates (501) are fixedly connected to the collecting transverse cavity (106). Both limiting straight plates (501) are slidably connected to the support frame plate (105). A transverse connecting plate (502) is fixedly connected to the two limiting straight plates (501). A transverse sliding screw (503) is rotatably connected to the support frame plate (105). The transverse sliding screw (503) and the transverse connecting plate (502) are connected by a threaded transmission.
9. The processing technology of a nameplate according to claim 8, characterized in that: A horizontal sliding plate (601) is slidably connected to the support frame plate (105). The horizontal sliding plate (601) is slidably connected to the collecting horizontal cavity (106). Multiple horizontal limiting sliding columns (602) are slidably connected to the horizontal sliding plate (601). Each of the multiple horizontal limiting sliding columns (602) is fitted with a spring. A contact plate (603) is fixedly connected to the multiple horizontal limiting sliding columns (602). A reduction motor II (604) is fixedly connected to the support frame plate (105). A pressing screw (605) is fixedly connected to the output shaft of the reduction motor II (604). The pressing screw (605) and the horizontal sliding plate (601) are connected by a threaded transmission.
10. The processing technology of a nameplate according to claim 9, characterized in that: A friction wheel (701) is rotatably connected between the two limiting straight plates (501).