Nameplate and manufacturing tool and manufacturing method thereof
Through the assembly and pressure printing technology of nameplate production tools, the problem of long and high cost of existing nameplate production is solved, and the on-site fast and low-cost nameplate production is achieved, which is suitable for diversified needs.
Patent Information
- Application Number
- CN202510505219.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-21
- Publication Date
- 2025-07-25
AI Technical Summary
The existing nameplate production process takes a long time, is costly, is complex and cannot meet the urgent needs, resulting in inefficient maintenance and cannot be replaced in time in emergency situations.
A nameplate making tool is provided, including a base, loading seat, top and positioning column. The nameplate is quickly produced on-site by assembling and applying pressure. The tool is made of metal and the font mold is made of high-strength titanium alloy, which can engrave characters on the nameplate.
It realizes rapid production of nameplates on site, reduces costs, improves efficiency, meets diverse needs, is suitable for various emergencies, and reduces time and economic costs.
Smart Images

Figure CN120363626A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of nameplate production, and particularly relates to a nameplate, its production tool and production method. Background Art
[0002] With the acceleration of the urbanization process and the increase in infrastructure construction, public facilities such as road manhole covers and pipeline lines are gradually increasing. These facilities usually need to bind or hang nameplates on the surface to indicate key information such as the owner's information, contact phone number, number, etc., which is convenient for the later maintenance and management unit to identify the information.
[0003] However, in the existing solutions, if the nameplate is lost or damaged, a new nameplate needs to be customized through the factory, and there are the following problems:
[0004] 1) Time-consuming: Factory customization requires processes such as design, production, and transportation, and cannot meet urgent needs. According to market research data, it takes an average of 15 to 30 working days to complete the customization.
[0005] 2) Complex work process: The customization process is cumbersome, especially when it comes to batch or personalized customization, the efficiency is low, involving multi-department collaboration, and delays are likely to occur.
[0006] 3) High cost: Customizing nameplates requires paying factory processing fees, which is costly for frequently changing scenarios, and the unit cost of small-batch orders is even higher.
[0007] 4) Fixed content: In the current actual application process, due to production time and cost issues, nameplates with unified content are often used, resulting in a lack of differentiation. For example, numbers cannot be used to define regional locations, etc.
[0008] In addition, in case of emergencies, such as when facilities are damaged or nameplates are lost due to natural disasters, it is particularly important to replace the nameplates in a timely manner. However, the existing solutions cannot meet the requirements of rapid response, resulting in low maintenance efficiency and potential safety hazards.
[0009] Therefore, there is an urgent need for a simple and fast nameplate production tool that can achieve on-site production, reduce time and cost, and is applicable to various emergency situations to improve the management efficiency and safety of urban infrastructure. Summary of the Invention
[0010] To solve at least one of the above technical problems, this application provides a nameplate, its production tool and production method, and the technical solutions adopted are as follows.
[0011] The production tool provided in the present application includes a base, a loading seat, a top seat and at least two positioning columns, the base has a loading surface for placing a nameplate; the loading seat is arranged on the side of the base where the loading surface is located; the top seat is arranged on the side of the loading seat away from the base; the positioning columns are uprightly arranged on the loading surface, and the loading seat and the top seat are both provided with through holes for the positioning columns to pass through; wherein the loading seat is provided with at least one loading slot, the loading slot passes through the loading seat along the thickness direction of the loading seat, and at least one character mold can be arranged in the loading slot.
[0012] In certain embodiments of the present application, a sinking area is formed on the side of the base where the loading surface is located, and the bottom surface of the sinking area has a height difference with the loading surface along the first direction. The sinking area is used to avoid the downward protruding shape formed by the nameplate being pressed down by the mold.
[0013] In certain embodiments of the present application, a stop structure is provided on the outer wall of the mold along its own length direction, and the end face of the entrance of the loading slot can support the stop structure or the inner wall of the loading slot can support the stop structure through a limiting structure.
[0014] In certain embodiments of the present application, the stop structure protrudes from the outer side wall of the mold, and the limiting structure is arranged to protrude from the inner side wall of the loading slot.
[0015] In certain embodiments of the present application, the stopping structure is configured as a step surface of the outer wall of the mold, and the limiting structure is configured as a step surface of the inner wall of the loading slot, and the limiting structure and the stopping structure are in contact with each other with the step surfaces.
[0016] In certain embodiments of the present application, the loading slots in the loading seat are at least partially distributed in an array.
[0017] In certain embodiments of the present application, the positioning column is detachably connected to the base, the loading seat, and the top seat.
[0018] The manufacturing method provided in the present application is based on the manufacturing tool as described above to make a nameplate. The user assembles the base, the loading seat, the mold, the top seat, the positioning column and the nameplate to be processed. The user applies pressure to the top seat, the top seat presses down the mold, and the mold presses down the nameplate. The user can customize different nameplates by replacing the mold or the loading seat.
[0019] In certain embodiments of the present application, the nameplate is positioned in a manner that the nameplate is sleeved on each positioning post or each positioning post passes through a through hole of the nameplate.
[0020] The nameplate provided in this application is made using the production tools described above.
[0021] The present application has at least the following beneficial effects: The user places the nameplate on the loading surface of the base, places the loading seat on the surface of the nameplate, selects the required type molds and arranges them in the loading slots, arranges the top seat on the loading seat, and passes the positioning posts through the top seat, the loading seat and the base. The user evenly applies pressure on the surface of the top seat, so that the type molds press down on the nameplate, and then characters are engraved on the surface of the nameplate. The user can easily carry this manufacturing tool and can quickly manufacture nameplates on site, improving efficiency and saving time costs. The present application can be widely applied to the technical field of nameplate manufacturing.
[0022] Additional aspects and advantages of the present application will be given in part in the following description, will become apparent in part from the following description, or will be learned through the practice of the present application. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The following further demonstrates the present application in conjunction with the drawings and embodiments. It should be noted that the embodiments shown in the following drawings are exemplary and are only used to explain the present application and should not be construed as a limitation to the present application.
[0024] Figure 1 It is a structural diagram of the manufacturing tool, and the X direction in the figure is the first direction.
[0025] Figure 2 It is a structural diagram of the type mold.
[0026] Figure 3 It is a structural diagram of the loading seat in some examples, and the figure shows that the loading seat has 3*10 loading slots distributed in an array.
[0027] Figure 4 It is a structural diagram of the loading seat in some other examples, and the figure shows that the loading seat has 1+3*7 loading slots distributed in an array.
[0028] Reference numerals: 100, base; 110, loading surface; 120, sinking area; 200, loading seat; 210, type mold; 220, loading slot; 300, top seat; 400, positioning post; 500, nameplate. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0029] The following will Figures 1 to 4 describe the embodiments of the present application in detail, where the same or similar reference numerals represent the same or similar elements or elements with the same or similar functions throughout. The embodiments described below by referring to the drawings are exemplary and are only used to explain the present application and should not be construed as a limitation to the present application.
[0030] In the description of the present application, it should be understood that if terms such as "center", "middle part", "longitudinal direction", "transverse direction", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "axial direction", "radial direction", "circumferential direction", etc. are used to indicate the orientation or positional relationship, it is based on the orientation or positional relationship shown in the drawings. This is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation to the present application.
[0031] In the description of the present application, the meaning of "several" is more than one, the meaning of "multiple" is more than two. Understandings such as "greater than", "less than", "exceeding", etc. do not include the original number, and understandings such as "above", "below", "within", etc. include the original number. If there is a description of "first" and "second", it is only for the purpose of distinguishing technical features, and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features or implicitly indicating the sequence relationship of the indicated technical features.
[0032] In the description of the present application, unless otherwise clearly specified and limited, the terms "set", "install", "connect", "couple" should be understood in a broad sense. For example: it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances.
[0033] In the description of the present application, if there are descriptions of reference terms such as "an embodiment", "some embodiments", "an example", "some examples", "some embodiments", "schematic embodiments", "example", "specific example", "some examples", etc., it means that the specific features, structures, materials or characteristics described in combination with the embodiment or example are included in at least one embodiment or example of the present application. In this specification, the schematic descriptions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples.
[0034] The present application relates to a manufacturing tool, which is used to manufacture nameplates. The manufacturing tool is easy to carry, facilitating the user to manufacture nameplates on site, solving the problems of cumbersome manufacturing processes and long time consumption in the related art, and is applicable to the manufacture of nameplates for public facilities such as road manholes, line pipes, communication junction boxes, etc., especially for facilities in aspects such as municipal engineering, infrastructure, industrial parks, and emergency response.
[0035] Combined with the attached drawings Figure 1 The manufacturing tool includes a base 100, a loading base 200, and a top base 300. The base 100 has a loading surface 110 for placing the nameplate 500. The loading base 200 is disposed on one side of the base 100 where the loading surface 110 is located, and the top base 300 is disposed on the side of the loading base 200 away from the base 100. Specifically, the loading base 200 is located between the base 100 and the top base 300, the loading surface 110 is located on the upper side surface of the base 100, the loading base 200 is located on the upper side of the base 100, and the top base 300 is located on the upper side of the loading base 200.
[0036] To achieve the assembly, structural stability, and accuracy of the manufacturing tool, the manufacturing tool includes at least two positioning columns 400, which are vertically arranged on the loading surface 110. On the loading surface 110, the positioning columns 400 are spaced apart from each other, and the positioning columns 400 are perpendicular to the loading surface 110. Taking the direction perpendicular to the loading surface 110 as the first direction, the positioning columns 400 are arranged along the first direction. Further, the positioning columns 400 are provided as prisms or cylinders.
[0037] It should be noted that the thickness directions of the base, the loading base, and the top base are all parallel to the first direction.
[0038] The positioning columns 400 are used to define the positions between the base 100, the loading base 200, and the top base 300. Specifically, both the loading base 200 and the top base 300 are sleeved on the positioning columns 400, and both the loading base 200 and the top base 300 are provided with through holes for the positioning columns 400 to pass through. The through holes penetrate the loading base 200 or the top base 300 along the first direction, and the distribution of the through holes is consistent with the distribution of the positioning columns 400.
[0039] Further, the manufacturing tool is configured with at least one letter mold 210. The letter mold 210 is in the shape of a column. The letter mold 210 is arranged on the loading base 200, and a convex character is provided at one end of the letter mold 210 facing the loading surface 110. Specifically, the convex characters include, but are not limited to: Chinese characters, letters, numbers, or symbols. It should be noted that the convex characters on the letter mold 210 can also be equivalently replaced with concave characters. For the convenience of description, the following content is introduced with the letter mold 210 having convex characters.
[0040] The nameplate 500 to be processed is arranged on the loading surface 110 of the base 100. The loading base 200 and the top base 300 are pressed down, and the top base 300 applies pressure to one end of the letter mold 210 away from the convex character. Then, the letter mold 210 can engrave and form concave characters on the surface of the nameplate 500 facing the loading base 200. It should be noted that by matching different letter molds 210 or loading bases 200, the user can easily and quickly customize nameplates 500 with different contents on-site with the manufacturing tool, without the need for batch customization in the factory.
[0041] The base 100 is manufactured by injection molding from metal products, which is strong and durable. As the basic support base for the whole structure of the manufacturing tool, the base 100 provides stable support and load-bearing for the operation of the manufacturing tool. The top base 300 is made of durable metal material. The positioning posts 400 are set as studs, and each positioning post 400 is a metal cylinder with the same specification. The positioning posts 400 are used to serially position the base 100, the loading base 200 and the top base 300 of the whole set of manufacturing tools.
[0042] The character mold 210 is made of high-strength titanium alloy, with high hardness, and can well engrave the characters on the surface of the nameplate 500. The characters of the character mold 210 are engraved in a mirror convex manner, and the user applies pressure to engrave the characters of the character mold 210 on the nameplate 500.
[0043] It should be noted that the loading base 200 is provided with at least one loading groove 220. The loading groove 220 penetrates the loading base 200 along the thickness direction of the loading base, forming a through groove along the first direction. At least one character mold 210 can be arranged in the loading groove 220. It can be understood that the loading groove 220 forms notch openings on both the side facing the top base 300 and the side facing the base 100 on the loading base 200. One end of the character mold 210 away from the convex characters can protrude from the notch opening of the loading groove 220 facing the top base 300, so that the top base 300 can apply pressure to the character mold 210, and the other end of the character mold 210, that is, the convex characters, protrude from the notch opening of the loading groove 220 facing the base 100; or, both ends of the character mold 210 can protrude from the notch openings at both ends of the loading groove 220 respectively.
[0044] In some embodiments, the character molds 210 and the loading grooves 220 are arranged in one-to-one correspondence. In this case, the number of the character molds 210 and the loading grooves 220 is the same, and the shapes and sizes of the character molds 210 and the loading grooves 220 are the same or the loading grooves 220 are slightly larger than the character molds 210, so that the character molds 210 can be stably arranged in the loading grooves 220.
[0045] Specifically, the character mold 210 is set in the shape of a rectangular prism, and the loading groove 220 is set as a through groove with a rectangular cross-section. It can be understood that the shapes of the character mold 210 and the loading groove 220 include but are not limited to: a polygon, a circle or an ellipse in cross-section.
[0046] It should be noted that the inner side wall of the loading groove 220 is smoothed to ensure that the character mold 210 can be smoothly inserted, and at the same time avoid damage caused by excessive friction.
[0047] Regarding the configuration of the loading groove 220 and the character mold 210, there are at least the following alternative embodiments.
[0048] In some alternative embodiments, at least two fonts 210 are arranged in each loading slot 220. In this case, in order to stably arrange the font 210 in the loading slot 220, the font 210 is configured as a rectangular prism, and the cross section of the loading slot 220 is a larger rectangular shape. Furthermore, the cross section of the loading slot is an integral multiple of the area of the cross section of the font.
[0049] In some embodiments, at least a portion of the loading slots 220 in the loading base 200 are distributed in an array. It is understood that the distribution of the loading slots 220 can be designed to adapt to the content on the nameplate 500.
[0050] Specifically, all the loading slots 220 in the loading seat 200 are arranged in an array, and one or at least two character molds 210 are arranged in each loading slot 220. Alternatively, a portion of the loading slots 220 are arranged in an array, and the remaining loading slots 220 are arranged in other reasonable distribution methods, so that the distribution of the character molds 210 is adapted to the content of the nameplate 500. Furthermore, these loading slots 220 distributed in other reasonable ways can also be replaced and set to be larger in size or different in shape than the loading slots 220 distributed in an array.
[0051] It should be noted that the loading seat 200 is hollowed out to form a plurality of through slots as the loading slots 220. Alternatively, the loading seat 200 is hollowed out to form a large-sized through slot, and a partition frame with crisscross partitions is arranged in the through slot of the loading seat 200, thereby forming a plurality of loading slots 220.
[0052] Some examples of the distribution of the loading slots 220 on the loading base 200 are listed below: Figure 3 , the loading slots 220 are distributed in a 3*10 array; or, the loading slots 220 are distributed in a 3*3 array; or, in combination with the attached Figure 4 The loading slots 220 are distributed in a 1+3*7 arrangement, that is, 3*7 small loading slots 220 are distributed in an array and one large loading slot 220 .
[0053] In some embodiments, a stop structure is provided on the outer wall of the character mold 210 along its own length direction, and the inner wall of the loading slot 220 can support the stop structure through the limiting structure, and the limiting structure is provided on the inner wall of the loading slot 220.
[0054] It is understandable that when the top seat 300 presses the mold 210 downward, the limiting structure of the loading slot 220 supports the stopping structure, thereby preventing the mold 210 from excessively pressing down the nameplate 500, preventing the mold 210 from exerting excessive pressure on the nameplate 500, and preventing the characters engraved on the nameplate 500 from protruding abnormally.
[0055] Further, the stopping structure protrudes from the outer sidewall of the matrix 210, and the limiting structure is arranged to protrude from the inner sidewall of the loading groove 220. The stopping structure has a stopping surface facing the side of the base 100, and the limiting structure has a limiting surface facing the side of the top base 300. When the limiting surface of the limiting structure abuts against the stopping surface of the stopping structure, the limiting structure can hold the matrix 210 in place.
[0056] It should be noted that the stopping surface and the limiting surface are set as planes perpendicular to the first direction or surfaces inclined relative to the first direction. Further, the height of the stopping surface along the first direction on the outer sidewall of the matrix 210 is the same as the height of the limiting surface along the first direction on the inner sidewall of the loading groove 220, so that the stopping surface and the limiting surface can abut against each other, and the raised characters of the letters can abut against the surface of the nameplate 500.
[0057] On the other hand, by designing the height of the stopping surface of the matrix 210 and the height of the limiting surface of the loading groove 220, the depth of the characters engraved by the matrix 210 on the surface of the nameplate 500 can be set, and characters meeting the depth requirements can be engraved.
[0058] In some examples, in combination with the attached Figure 2 , the stopping structure is set as the stepped surface of the outer sidewall of the matrix 210, and the stepped surface serves as the stopping surface. Correspondingly, in combination with the attached Figure 3 , the limiting structure is set as the stepped surface of the inner sidewall of the loading groove 220, and the stepped surface serves as the limiting surface. It can be understood that the limiting structure and the stopping structure abut against each other with stepped surfaces.
[0059] In some examples, the cross-sections of both the matrix 210 and the loading groove 220 are set as polygonal shapes. At least one outer sidewall of the matrix along the first direction is provided with a stopping structure, and from one end to the other end of the raised characters on the matrix 210, a stepped shape is formed by increasing the side length of the cross-sectional shape of the matrix 210. At least one inner sidewall of the loading groove is provided with a limiting structure, and from one end close to the base 100 to the other end of the loading groove 220, a stepped shape is formed by increasing the side length of the cross-sectional shape of the loading groove 220.
[0060] Regarding the stopping structure of the matrix 210 and the limiting structure of the loading groove 220, there are at least the following alternative embodiments.
[0061] In some alternative embodiments, when the cross-sections of both the matrix 210 and the loading groove 220 are set as polygonal shapes, at least one outer sidewall of the matrix 210 is set as an inclined sidewall, and the inclined sidewall serves as the stopping structure. Correspondingly, at least one inner sidewall of the loading groove 220 is set as an inclined sidewall, and the inclined sidewall serves as the limiting structure.
[0062] Further, each outer side wall of the mold 210 is configured as an inclined side wall, and the mold 210 is configured as a pyramid-shaped column. Each inner side wall of the loading slot 220 is configured as an inclined side wall, and the loading slot 220 is configured as a pyramid-shaped through slot.
[0063] In some alternative embodiments, when the cross-sections of the mold 210 and the loading slot 220 are both set to be circular or elliptical, the step shape is formed by changing the perimeter of the cross-section shape. Alternatively, the outer side wall of the mold 210 and the inner side wall of the loading slot 220 are both set to be inclined tapered side walls.
[0064] Regarding the limitation of the loading slot 220 on the character mold 210, there are at least the following alternative embodiments.
[0065] In some alternative embodiments, the end surface of the entrance of the loading slot 220 can resist the stop structure. In this case, the stop structure of the mold 210 is set as a step surface or the mold uses an inclined side wall as the stop structure, and the end surface side wall of the loading slot 220 facing the port of the base 100, that is, the surface of the loading slot 220 facing the base 100, is used as a limiting structure.
[0066] In some embodiments, a sinking area 120 is formed on the side of the base 100 where the loading surface 110 is located. Further, the sinking area 120 is located in the middle of the side of the base 100. When the mold 210 presses down the nameplate 500, the sinking area 120 is used to avoid the downward convex shape of the nameplate 500 formed by the mold 210 pressing down. The sinking area 120 provides space for the concave characters of the nameplate 500 to form, and enables the base 100 to have good impact absorption performance.
[0067] Specifically, the sinking area 120 is formed concavely on the side of the base 100 , so that a bottom surface of the sinking area 120 and the object-carrying surface 110 have a height difference along the first direction.
[0068] In some examples, the sinking area 120 is provided with a cushion layer, which is used to contact the surface of the nameplate 500 , so as to support the nameplate 500 without interfering with the concave and convex characters on the surface of the nameplate 500 .
[0069] In some embodiments, the positioning column 400 is detachably connected to the base 100 , the loading seat 200 , and the top seat 300 , so as to facilitate storage, improve portability, and facilitate repeated use and maintenance by the user.
[0070] Specifically, at least two mounting holes are provided on the side of the base 100 where the loading surface 110 is located, and the positioning column 400 is inserted into the mounting holes. It can be understood that the mounting holes of the base 100 are distributed correspondingly to the through holes of the loading seat 200 and the top seat 300.
[0071] In some examples, the positioning posts 400 are set to four. Correspondingly, there are four mounting holes on the base 100, and four through holes on the loading seat 200 and the top seat 300. Further, the mounting holes on the base 100 are respectively located at the four corners of a rectangular shape.
[0072] This application relates to a nameplate, and the user makes the nameplate using the manufacturing tool as described above.
[0073] The surface of the nameplate is subjected to anti-oxidation treatment, such as spraying anti-rust paint or electroplating or coating, to extend the service life of the nameplate.
[0074] The thickness of the nameplate is 0.5 mm to 1.5 mm to ensure the firmness and wear resistance of the nameplate.
[0075] This application relates to a manufacturing method, and the manufacturing tool is used to make the nameplate according to the manufacturing method.
[0076] The user assembles the base, the loading seat, the letter mold, the top seat, the positioning posts and the nameplate to be processed. The user applies pressure to the top seat, the top seat presses down the letter mold, the letter mold presses down the nameplate, and concave characters are formed on the surface of the nameplate facing the letter mold.
[0077] To make the nameplate be stably pressed on the load surface and ensure the accurate position of the concave characters, it is specifically designed that the nameplate is sleeved on each positioning post or each positioning post penetrates through the through hole of the nameplate, thereby positioning the nameplate.
[0078] It should be noted that the user can customize different nameplates by replacing the letter mold or the loading seat. The user can easily carry the manufacturing tool to the site and quickly make the nameplate. The content of the nameplate is adjusted according to the actual situation to display the nameplate number, the affiliated unit, the contact information, etc., and the nameplate is fixed on the surface of the road surface or the wall surface or the sign.
[0079] Different letter molds have convex characters with different information. The user can obtain nameplates displaying different information by replacing different letter molds and combining different letter molds.
[0080] Different loading seats have loading grooves distributed at different positions. The user can also realize the combined use of different letter molds by replacing different loading seats, and thus obtain nameplates displaying different information.
[0081] Based on the description of the above manufacturing method, the structure of the manufacturing tool is supplemented and introduced below.
[0082] Regarding the positioning of the nameplate in the manufacturing tool, there are at least the following alternative embodiments.
[0083] In some alternative embodiments, the loading surface on the base is recessed and formed on the side where it is located, and the loading surface is smaller than the depth of the depression in the sinking area. The recessed loading surface forms a limiting step structure on the side of the base, and a step structure is also formed between the sinking area and the loading surface.
[0084] Specifically, the user places the nameplate in the area formed by the recessed loading surface, and the nameplate is not sleeved on the positioning post. It can be understood that the step structure formed by the loading surface and the side of the base can limit the position of the nameplate, thereby preventing the nameplate from shifting.
[0085] The manufacturing tool in this application has at least the following technical effects.
[0086] Portability: When the user uses this manufacturing tool, it is suitable for on-site use, without relying on factory customization, saving time and cost, and can complete the production of nameplates in a short time, greatly improving work efficiency.
[0087] High efficiency: By replacing the type mold or the loading seat, the user can quickly complete the production of different nameplates to meet diverse needs. Compared with the traditional factory customization mode, this manufacturing tool greatly saves the production time.
[0088] Flexibility: This manufacturing tool supports adding colors or other markings, such as covering the engraved area with paint or stickers, to further enhance the aesthetics and information content of the nameplate. In addition, this manufacturing tool is also applicable to the production of nameplates made of different materials to meet various application requirements.
[0089] Economy: This manufacturing tool greatly reduces the customization cost of nameplates, especially in the case of small batch orders, and the cost-effectiveness is remarkable.
[0090] The following lists specific examples of the manufacturing method. It should be noted that the following description is only for illustrative purposes and not a specific limitation of this application.
[0091] 1) Preparation stage:
[0092] Place the base, nameplate, and loading seat from bottom to top, and connect the three together in series with positioning posts to form a compact box structure.
[0093] Ensure that all components are tightly connected without looseness to ensure the consistency and quality of the engraving effect.
[0094] 2) Select the type mold:
[0095] The user selects the corresponding type mold according to the content of the nameplate to be produced and installs the type mold in the loading seat.
[0096] 3) Assembly and pressurization:
[0097] Place the top seat on the upper side of the loading seat. The positioning post passes through the through hole of the top seat to ensure that the top seat will not slide or move.
[0098] The user taps the top seat to apply pressure to the letter mold. The letter mold presses downward, and then the characters are clearly engraved on the nameplate. When tapping, the force should be applied evenly to avoid deforming or damaging the nameplate due to excessive force.
[0099] It should be noted that if special characters need to be color - reminded, apply coloring material to the end face where the characters of the letter mold are located. The coloring material will adhere to the surface of the nameplate during the pressing process.
[0100] 4) Disassembly and replacement:
[0101] After completion, remove the nameplate and it can be used. If it is necessary to replace the letter mold or make a new nameplate, the letter mold or the loading seat can be quickly replaced, and the above steps can be repeated.
[0102] During the replacement process, attention should be paid to cleaning the remaining engraving traces to ensure the clarity and accuracy of making the nameplate next time.
[0103] The above has described the embodiments of the present application in detail with reference to the accompanying drawings. However, the present application is not limited to the above - mentioned embodiments. Within the knowledge scope of those of ordinary skill in the art in the said technical field, various changes can be made without departing from the purpose of the present application. In addition, without conflict, the embodiments of the present application and the features in the embodiments can be combined with each other.
Claims
1. A manufacturing tool, characterized in that: including a base, the base having a loading surface for placing a nameplate; a loading seat, the loading seat being arranged on one side of the base where the loading surface is located; a top seat, the top seat being arranged on one side of the loading seat away from the base; at least two positioning columns, the positioning columns being vertically arranged on the loading surface, and both the loading seat and the top seat being provided with through holes for the positioning columns to pass through; wherein, the loading seat is provided with at least one loading groove, the loading groove penetrating through the loading seat along the thickness direction of the loading seat, and at least one type mold can be arranged in the loading groove.
2. The manufacturing tool according to claim 1, wherein: A sinking area is formed on the side surface of the base where the loading surface is located, and the bottom surface of the sinking area has a height difference from the loading surface in a first direction. The sinking area is used to avoid the downward convex shape formed by the nameplate being pressed down by the type mold.
3. The manufacturing tool according to claim 1, wherein: A stop structure is arranged on the outer side wall of the type mold along its own length direction, and the end surface of the entrance of the loading groove can abut against the stop structure or the inner side wall of the loading groove can abut against the stop structure through a limiting structure.
4. The manufacturing tool according to claim 3, wherein: The stop structure protrudes from the outer side wall of the type mold, and the limiting structure protrudes and is arranged on the inner side wall of the loading groove.
5. The manufacturing tool according to claim 4, characterized in that: The stop structure is arranged as a stepped surface on the outer side wall of the type mold, and the limiting structure is arranged as a stepped surface on the inner side wall of the loading groove. The limiting structure and the stop structure abut against each other with stepped surfaces.
6. The manufacturing tool according to any one of claims 1 to 5, characterized in that: At least a part of the loading grooves in the loading seat are arranged in an array.
7. The manufacturing tool according to claim 1, wherein: The positioning columns are detachably connected to the base, the loading seat, and the top seat respectively.
8. A manufacturing method, characterized in that: Using the manufacturing tool according to any one of claims 1 to 7 to manufacture a nameplate by the manufacturing method, the user assembles the base, the loading seat, the type mold, the top seat, the positioning columns and the nameplate to be processed. The user applies pressure to the top seat, the top seat presses down the type mold, and the type mold presses down the nameplate; the user can customize different nameplates by replacing the type mold or the loading seat.
9. The manufacturing method according to claim 8, wherein: Position the nameplate in such a way that the nameplate is sleeved on each positioning column or each positioning column penetrates through the through hole of the nameplate.
10. A nameplate, characterized in that: The nameplate is manufactured by using the manufacturing tool according to any one of claims 1 to 7.