Machining information display method of mold part, electronic equipment and readable storage medium
By introducing a multi-color layer management method in the three-dimensional industrial design software, the problem of dispersed and easy chaos in the processing of mold parts is solved, efficient and accurate information display and management is achieved, and production efficiency and product quality are improved.
Patent Information
- Application Number
- CN202510399426.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2025-07-08
AI Technical Summary
In the prior art, the processing information transmission of mold parts is dispersed and easily confused, resulting in low efficiency and accuracy of processing information transmission, affecting production efficiency and product quality.
Using the multi-color layer management method, the first layer and the second layer are introduced in the three-dimensional industrial design software, which are used to display tolerance information and processing and change information respectively. The layers are switched through the change requirements viewing instructions to realize parallel display and management of multi-dimensional processing information.
It effectively reduces the workload of regenerating screenshots every time the mold parts are processed and sets, reduces the possibility of information transmission errors, improves the efficiency and accuracy of processing information transmission, and ensures production efficiency and product quality.
Smart Images

Figure CN120277839A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of mold manufacturing, and particularly to a method for displaying processing information of mold parts, an electronic device, and a readable storage medium. Background Art
[0002] With the rapid development of the consumer electronics industry, the demand for electronic products is increasing day by day, driving the entire industry to develop towards a more efficient and precise direction. In this context, injection-molded products, as an important part of the outer shell and structural components of electronic devices, their design and manufacturing also face higher requirements and challenges. Especially in meeting the special appearance requirements of consumers, the requirements for the surface treatment of mold parts have reached an unprecedented level. To ensure the high quality and consistency of products, the accurate transmission of information in the mold design process has become particularly crucial.
[0003] Currently, in the field of mold design, 3D industrial design software is used to create complex 3D models and conduct precise engineering analysis. To facilitate the identification of mold parts with different tolerance values, the industry has adopted the method of painting specified colors to visually represent this information. However, when it comes to other complex requirements such as the surface treatment of mold parts, the related technologies still rely on taking screenshots using office software after the preliminary design is completed to convey this additional information. The main limitation of this approach is that industrial 3D design software often only supports applying one color to a single face of a part and cannot simultaneously represent different processing requirements through multiple sets of color states. Therefore, every time a processing design change is made to a mold part, a new screenshot needs to be regenerated and distributed, which not only increases the workload but also easily leads to information transmission errors, affecting production efficiency and product quality.
[0004] In view of the above problems, there are obvious deficiencies in the related technologies in dealing with the display and transmission of complex information of mold parts, and there is an urgent need for an innovative solution to solve the technical problems in the related technologies where the transmission of part processing information is scattered and prone to confusion, resulting in low efficiency and accuracy of processing information transmission, so as to improve the processing efficiency of mold parts and product quality. Summary of the Invention
[0005] The main purpose of this application is to provide a method for displaying processing information of mold parts, an electronic device, and a readable storage medium, aiming to solve the technical problems in the related technologies where the transmission of part processing information is scattered and prone to confusion, resulting in low efficiency and accuracy of processing information transmission.
[0006] To achieve the above purpose, this application provides a method for displaying processing information of mold parts. The display layers of the target processing surface of the digital model corresponding to the mold parts include a first layer and a second layer, and one display layer corresponds to displaying one color;
[0007] Among them, the first layer is the layer corresponding to the part color tolerance mode. The surface attribute interface corresponding to the part color tolerance mode includes multiple different colors and multiple different tolerance information, and each color is mapped to unique tolerance information; the second layer is the layer corresponding to the part design change information mode. The surface attribute interface corresponding to the part design change information mode includes multiple different colors and multiple different machining design change information, and each color is mapped to unique machining design change information;
[0008] The method includes:
[0009] When a design change requirement viewing instruction is obtained, switch the current display layer of the target machining surface to the second layer;
[0010] Among them, the second layer is used to display the target machining design change information of the target machining surface, and the target machining design change information is the machining design change information mapped by the color corresponding to the display of the second layer.
[0011] In one embodiment, the machining design change information includes a design change type and a design change amount under the design change type, and the design change type is adding iron or reducing iron;
[0012] In the surface attribute interface corresponding to the part design change information mode, the design change types and / or design change amounts mapped by each color are different.
[0013] In one embodiment, the method includes:
[0014] When it is detected that the login account for opening the digital model corresponding to the mold part is the first account, enable the editing permission of the display layer of the target machining surface, and set the digital model corresponding to the mold part to a readable and writable mode, where the first account is the user account corresponding to the administrator or the mold designer;
[0015] When it is detected that the login account for opening the digital model corresponding to the mold part is the second account, disable the editing permission of the display layer of the target machining surface, and set the digital model corresponding to the mold part to a read-only mode, where the second account is different from the first account.
[0016] In one embodiment, after the step of switching the current display layer of the target machining surface to the second layer, the method further includes:
[0017] Calculate the area of the target machining surface to obtain the area information of the target machining surface;
[0018] Based on the surface attribute interface corresponding to the part design change information mode, output the target machining design change information and the area information.
[0019] In one embodiment, the first layer is the default display layer of the digital model corresponding to the mold part, and the method further includes:
[0020] When a tool exit instruction or a tolerance information viewing instruction is obtained, switch the current display layer of the target machining surface to the first layer;
[0021] Wherein, the first layer is used to display the target tolerance information of the target machining surface, and the target tolerance information is the tolerance information mapped by the color corresponding to the display of the first layer.
[0022] In one embodiment, the method further includes:
[0023] When a drawing automatic generation instruction is received, based on the target machining design change information, the area information, and the target tolerance information, automatically generate a target machining drawing, wherein the target machining drawing has the target machining design change information, the area information, and the target tolerance information marked on the target machining surface.
[0024] In one embodiment, the display layer of the target machining surface further includes a third layer, wherein the third layer is the layer corresponding to the part stock mode, and the surface attribute interface corresponding to the part stock mode includes multiple different colors and multiple different part machining stock information, and each color maps to a unique part machining stock information;
[0025] The method further includes:
[0026] When a part stock information viewing instruction is obtained, switch the current display layer of the target machining surface to the third layer;
[0027] Wherein, the third layer is used to display the target stock information of the target machining surface, and the target stock information is the part machining stock information mapped by the color corresponding to the display of the third layer.
[0028] In addition, to achieve the above object, the present application further provides an electronic device, which includes: a memory, a processor, and a computer program stored on the memory and executable on the processor, and when the computer program is executed by the processor, it realizes the steps of the machining information display method of the mold part as described above.
[0029] In addition, to achieve the above object, the present application further provides a computer-readable storage medium, on which a computer program is stored, and when the computer program is executed by a processor, it realizes the steps of the machining information display method of the mold part as described above.
[0030] In addition, to achieve the above object, the present application further provides a computer program product, which includes a computer program. When the computer program is executed by a processor, it implements the steps of the method for displaying machining information of mold parts as described above.
[0031] The embodiment of the present application provides a method for displaying machining information of mold parts, an electronic device, and a readable storage medium. The display layer of the target machining surface of the digital model corresponding to the mold part includes a first layer and a second layer. One display layer corresponds to displaying one color. Among them, the first layer is the layer corresponding to the part color tolerance mode. The surface attribute interface corresponding to the part color tolerance mode includes multiple different colors and multiple different tolerance information. Each color is mapped to a unique tolerance information. The second layer is the layer corresponding to the part design change information mode. The surface attribute interface corresponding to the part design change information mode includes multiple different colors and multiple different machining design change information. Each color is mapped to a unique machining design change information. The technical solution of the embodiment of the present application is to switch the current display layer of the target machining surface to the second layer when a design change requirement viewing instruction is obtained. Among them, the second layer is used to display the target machining design change information of the target machining surface, and the target machining design change information is the machining design change information mapped by the color corresponding to the display of the second layer.
[0032] The embodiment of the present application ingeniously and creatively solves the problem of scattered transmission of part-related machining information through multi-color layer management. Specifically, this embodiment realizes the dynamic management, storage, and visualization of multi-color layers in a 3D industrial design environment. Thus, on a 3D industrial design software, a single surface of a part has a parallel display solution for multi-dimensional machining information, can uniformly and effectively manage and display multiple color states without conflict, is convenient for recording and transmitting part machining information, realizes representing different machining requirements (such as tolerance requirements, design change requirements, etc.) through multiple sets of color states, and avoids the need to regenerate and distribute new screenshots every time a mold part undergoes a machining design change (specifically, a design change on the structural side, such as adding 0.1 mm of iron or reducing 1 mm of iron). Furthermore, it effectively reduces the workload, can avoid the phenomenon of reducing production efficiency and product quality due to incorrect information transmission, and finally solves the technical problem in the related art that the transmission of part machining information is scattered and prone to confusion, resulting in low efficiency and accuracy of machining information transmission. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] The accompanying drawings herein are incorporated into the specification and constitute a part of this specification, showing embodiments consistent with the present application, and are used together with the specification to explain the principles of the present application.
[0034] To more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present application. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on the structures shown in these drawings.
[0035] Figure 1 Schematic flow chart provided by the first embodiment of the method for displaying machining information of the mold parts of the present application;
[0036] Figure 2 Schematic diagram of the surface attribute interface corresponding to the part color tolerance mode in a specific embodiment of the present application;
[0037] Figure 3 Schematic diagram of the first layer displaying target tolerance information in a specific embodiment of the present application;
[0038] Figure 4 Schematic diagram of the surface attribute interface corresponding to the part design change information mode in a specific embodiment of the present application;
[0039] Figure 5 Schematic diagram of the second layer displaying target machining design change information in a specific embodiment of the present application;
[0040] Figure 6 Schematic diagram of the surface attribute interface corresponding to the part stock mode in a specific embodiment of the present application;
[0041] Figure 7 Schematic diagram of the third layer displaying target stock information in a specific embodiment of the present application;
[0042] Figure 8 Schematic diagram of the device structure of the hardware operating environment involved in the method for displaying machining information of the mold parts in the embodiments of the present application.
[0043] The implementation, functional features and advantages of the present application will be further described in conjunction with the embodiments with reference to the drawings. Specific Embodiments
[0044] Here, the exemplary embodiments will be described in detail, and the examples are shown in the drawings. When the following description refers to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The implementation manners described in the following exemplary embodiments do not represent all implementation manners consistent with the present application. On the contrary, they are only examples of the devices and methods consistent with some aspects of the present application as detailed in the appended claims.
[0045] It should be understood that the specific embodiments described herein are only used to explain the technical solutions of the present application and are not used to limit the present application.
[0046] Currently, in order to facilitate the identification of mold parts with different tolerance values, the industry generally uses the method of applying specified colors to visually represent tolerance information. Since industrial 3D design software only supports applying one color to a single face of a part and cannot express multi-dimensional machining requirements (such as the coexistence of tolerance and surface treatment) through multiple color states at the same time, when more complex surface treatment requirements are involved, designers have to rely on external tools such as office software for supplementary explanations, resulting in scattered information storage, cumbersome update processes, and the need to re-produce and distribute screenshots for each design change. This not only increases repetitive labor but also easily causes information transmission errors due to version confusion, ultimately affecting machining efficiency and product quality.
[0047] In response to this, the main solution of the embodiments of the present application is a method for displaying machining information of a mold part. The display layer of the target machining surface of the mold part corresponding to the digital model includes a first layer and a second layer, and one display layer corresponds to displaying one color; wherein, the first layer is the layer corresponding to the part color tolerance mode, and the surface attribute interface corresponding to the part color tolerance mode includes multiple different colors and multiple different tolerance information, and each color maps to a unique tolerance information; the second layer is the layer corresponding to the part design change information mode, and the surface attribute interface corresponding to the part design change information mode includes multiple different colors and multiple different machining design change information, and each color maps to a unique machining design change information; the method includes: when a design change requirement viewing instruction is obtained, switching the current display layer of the target machining surface to the second layer; wherein, the second layer is used to display the target machining design change information of the target machining surface, and the target machining design change information is the machining design change information mapped by the color corresponding to the display of the second layer.
[0048] In the embodiments of the present application, the problem of scattered transmission of machining information related to parts is ingeniously and creatively solved through multi-color layer management. Specifically, in this embodiment, dynamic management, storage, and visualization of multi-color layers are realized in a 3D industrial design environment, so that on a 3D industrial design software, a parallel display solution for multi-dimensional machining information of a single face of a part can be obtained, which can uniformly and effectively manage and display multiple color states without conflict, facilitating the recording and transmission of part machining information, realizing different machining requirements (such as tolerance requirements, design change requirements, etc.) represented by multiple sets of color states, avoiding the need to regenerate and distribute new screenshots every time the machining of a die part is changed, thereby effectively reducing the workload and minimizing the occurrence of phenomena that reduce production efficiency and product quality due to incorrect information transmission. Ultimately, the technical problem in the related art that the machining information transmission of parts is scattered and prone to confusion, resulting in low efficiency and accuracy of machining information transmission, is solved.
[0049] It should be noted that the execution entity of the embodiments of the present application is an electronic device, which may include but is not limited to mobile terminals such as smart phones, laptop computers, PADs (Portable Application Description, tablet computers), etc., and fixed terminals such as desktop computers, or any electronic device capable of implementing the above functions. The embodiments of the present application do not make specific limitations in this regard. Taking the electronic device as the execution entity as an example, the following embodiments of the present application will be described.
[0050] To better understand the technical solution of the present application, the following will be described in detail in conjunction with the specification drawings and specific implementation manners.
[0051] The present application proposes a method for displaying machining information of a die part in a first embodiment.
[0052] Please refer to Figure 1 , Figure 1 , which is a schematic flow chart provided for the first embodiment of the method for displaying machining information of a die part in the present application.
[0053] In this embodiment, the display layers of the target machining surface of the die part corresponding to the digital model include a first layer and a second layer, and one display layer corresponds to displaying one color;
[0054] Among them, the first layer is the layer corresponding to the part color tolerance mode. The surface attribute interface corresponding to the part color tolerance mode includes multiple different colors and multiple different tolerance information, and each color maps to a unique tolerance information; the second layer is the layer corresponding to the part design change information mode. The surface attribute interface corresponding to the part design change information mode includes multiple different colors and multiple different machining design change information, and each color maps to a unique machining design change information;
[0055] The method for displaying the processing information of die parts includes steps S100 to S300:
[0056] Step S100, when a design change requirement viewing instruction is obtained, switch the current display layer of the target machining surface to the second layer;
[0057] Among them, the second layer is used to display the target machining design change information of the target machining surface, and the target machining design change information is the machining design change information mapped by the color corresponding to the second layer display.
[0058] As known to those skilled in the art, die parts refer to metal or non-metal components with specific geometric shapes and functional requirements formed through machining during die manufacturing. The corresponding digital model of die parts refers to the three-dimensional digital model of die parts.
[0059] It should be noted that in this embodiment, the tolerance information refers to the allowable dimensional deviation of the surface of the die part when machining the die part, the machining design change information refers to the design change requirements (specifically the design change requirements on the structural side) that the surface machining of the die part needs to meet, the part color tolerance mode is a mode of setting color to mark the tolerance information, the part design change information mode is a mode of setting color to mark the machining design change information, and the surface attribute interface is a user interface for characterizing the machining information of the surface of the corresponding digital model of the die part through color.
[0060] Exemplarily, in a feasible implementation manner, the machining design change information includes the design change type and the design change amount under the design change type. The design change type is adding iron or reducing iron; in the surface attribute interface corresponding to the part design change information mode, the design change type and / or the design change amount mapped by each color are different.
[0061] It should be noted that the design change amount refers to the degree of design change. When the design change type is adding iron, the design change amount represents the degree of adding iron, such as adding 0.5 mm of iron. When the design change type is reducing iron, the design change amount represents the degree of reducing iron, such as reducing 0.1 mm of iron.
[0062] In this implementation manner, for the surface attribute interface corresponding to the part design change information mode, the design change type and / or the design change amount mapped by each color are different.
[0063] Exemplarily, in the surface attribute interface corresponding to the part design change information mode, when the machining equipment information mapped by green is adding 1 mm of iron, that is, the mapped design change type is adding iron and the design change amount is 1 mm, among the machining equipment information mapped by other colors, at least one of the design change type and the design change amount is different from that of green, ensuring that each color mapping has a unique machining design change information in the surface attribute interface corresponding to the part design change information mode, so that engineers can intuitively identify the design change requirements of each surface in the mold part through the colors displayed on each surface of the corresponding digital model of the mold part during the machining and manufacturing of the mold part, thereby ensuring that the machining and manufacturing of the mold part accurately follow the design intent.
[0064] It should also be noted that the design change requirement viewing instruction is an instruction used to view the machining design change information (i.e., the target machining design change information) marked on the target machining surface in the digital model corresponding to the mold part. The target machining surface is one or more surfaces among all the surfaces of the digital model corresponding to the mold part that the user hopes to view or set the machining information for.
[0065] In the related art, due to the limitations of 3D industrial design software, each surface of the digital model corresponding to the mold part has only one display layer, which means that each surface can only represent one type of machining information through one color. Therefore, when those skilled in the art need to express multiple types of machining information (such as tolerance requirements and design change requirements), they have to rely on external tools, such as using office software to take screenshots or create multiple views and documents to supplement and explain this information, resulting in scattered storage and complex management of machining information, and each design change requires regenerating and distributing new screenshots or updating documents, increasing the workload and prone to information transmission errors due to improper version control, thus affecting production efficiency and product quality.
[0066] However, this embodiment proposes an innovative method for displaying machining information of mold parts, which solves the above problems by introducing a multi-layer mechanism. Specifically, in this embodiment, the display layer of the target machining surface includes a first layer and a second layer, and each display layer can independently display different colors, corresponding to different types of machining information respectively. Among them, the first layer is used to display tolerance information, and the second layer is used to display machining design change information, so that when the user hopes to view the machining design change information marked on a certain surface of the digital model corresponding to the mold part, the user can set this surface as the target machining surface and then input the design change requirement viewing instruction to switch the current display layer of this surface to the second layer, so as to facilitate the user to intuitively view the target machining design change information of this surface.
[0067] It is not difficult to understand that in this embodiment, one or more surfaces of the digital model corresponding to the mold part can be set as the target machining surface first, and then the current display layer of the target machining surface can be switched to the second layer through the instruction for viewing design change requirements. Alternatively, one or more surfaces of the digital model corresponding to the mold part can be directly set as the target machining surface in the instruction for viewing design change requirements, thereby triggering the switching of the display layer of the target machining surface. This embodiment does not make specific limitations on this.
[0068] It is worth mentioning that in this embodiment, the method for setting the color corresponding to the display of the second layer includes at least one of the following:
[0069] Based on the manipulation instruction generated by manipulating the target button in the surface attribute interface corresponding to the part design change information mode, the color corresponding to the display of the second layer is set to the color mapped by the target button, where the target button is the coloring button selected and manipulated by the user among multiple coloring buttons, and different coloring buttons map different colors;
[0070] Based on the machining design change information input in the surface attribute interface corresponding to the part design change information mode, the color corresponding to the display of the second layer is set to the color mapped by the input machining design change information;
[0071] This embodiment provides a variety of flexible and efficient ways to achieve the setting of the color corresponding to the display of the second layer.
[0072] Specifically, in the first method based on manipulating the target button, the surface attribute interface corresponding to the part design change information mode provides multiple coloring buttons, and each coloring button maps a specific color. When the user needs to set the annotation of the machining design change information for a certain surface in the digital model corresponding to the mold part, this surface can be selected as the target machining surface. Then, according to the machining design change information required to be annotated for this target machining surface, one of the multiple coloring buttons is selected as the target button, and the corresponding manipulation instruction is generated by manipulating this target button, triggering the system to set the color corresponding to the display of the second layer of this target machining surface to the color mapped by this target button. This method is simple and intuitive to operate, and is especially suitable for scenarios where quick color switching or preliminary design verification is required. The user only needs to click the button to complete the color setting, reducing complex operation steps and improving work efficiency.
[0073] In the second method based on the input of machining design change information, the surface attribute interface corresponding to the part design change information mode provides a machining design change information input unit. When the user needs to set the annotation of machining design change information for a certain surface in the digital model corresponding to the mold part, the surface can be selected as the target machining surface, so that in the surface attribute interface corresponding to the part design change information mode, the machining design change information required to be annotated for the target machining surface can be directly input through the machining design change information input unit. Then, the system automatically determines the color corresponding to the input machining design change information according to the predefined mapping rule between the machining design change information and the color, and sets the color corresponding to the display of the second layer of the target machining surface to this color. This method is especially applicable to scenarios with clear specifications for design change requirements. The user only needs to focus on inputting specific machining information without manually selecting the color, avoiding the possibility of human errors and ensuring the consistency and accuracy of color setting. In addition, this method also supports dynamic update, that is, when the machining design change information changes, the system will automatically adjust the color setting to ensure the real-time nature of the data.
[0074] The above two methods of this embodiment each have their own characteristics, and users can flexibly select or combine them according to actual needs to meet the user needs in different scenarios.
[0075] Through the flexible application of these two methods, this embodiment significantly improves the flexibility and efficiency of the display of machining information of mold parts. Users can also easily achieve multi-dimensional display and management of complex machining information in 3D industrial design software, avoiding problems such as scattered information and cumbersome updates in traditional methods, and ultimately achieving the high efficiency, accuracy and consistency of machining information transmission, providing strong technical support for the optimization and intelligent upgrade of the mold manufacturing process.
[0076] Exemplarily, the first layer is the default display layer of the digital model corresponding to the mold part.
[0077] Step S200, when a tool exit instruction or a tolerance information viewing instruction is obtained, switch the current display layer of the target machining surface to the first layer;
[0078] Among them, the first layer is used to display the target tolerance information of the target machining surface, and the target tolerance information is the tolerance information mapped by the color corresponding to the display of the first layer.
[0079] It should be noted that the default display layer refers to the layer that is automatically loaded and displayed by the system when the user opens or initializes the digital model corresponding to the mold part. The tolerance information viewing instruction is an instruction used to view the tolerance information (i.e., the target tolerance information) marked on the target machining surface in the digital model corresponding to the mold part. The tool exit instruction is an instruction used to return to the default display layer of the digital model corresponding to the mold part.
[0080] In this embodiment, the first layer is set as the default display layer, so that when the user initially loads the model or exits other modes (such as editing machining information, viewing machining information other than tolerance information), the information related to tolerance can be directly seen. This improves work efficiency for engineers who mostly focus on dimensional accuracy in most cases.
[0081] In addition, in this embodiment, whether through the tolerance information viewing instruction or the tool exit instruction, the user can quickly switch back to the first layer to view the target tolerance information of the target machining surface. The operation method is simple and clear, effectively ensuring that after the user completes the editing of machining information or views machining information other than tolerance information, they can quickly return to the information view related to tolerance, thereby improving work efficiency and reducing the inconvenience caused by frequent view switching.
[0082] Similar to the method for setting the color corresponding to the second layer, in this embodiment, the method for setting the color corresponding to the first layer includes at least one of the following:
[0083] Based on the manipulation instruction generated by manipulating the target button in the surface attribute interface corresponding to the part color tolerance mode, set the color corresponding to the first layer to the color mapped by the target button, where the target button is the coloring button selected and manipulated by the user among multiple coloring buttons, and different coloring buttons map to different colors;
[0084] Based on the tolerance information input in the surface attribute interface corresponding to the part color tolerance mode, set the color corresponding to the first layer to the color mapped by the input tolerance information;
[0085] The method for setting the color corresponding to the first layer in this embodiment is similar to that in the first embodiment, and the technical effects are similar. This embodiment will not elaborate too much on this.
[0086] Exemplarily, the display layer of the target machining surface further includes a third layer, where the third layer is the layer corresponding to the part stock removal mode. The surface attribute interface corresponding to the part stock removal mode includes multiple different colors and multiple different part machining stock removal information, and each color maps to a unique part machining stock removal information.
[0087] Step S300, when the part stock removal information viewing instruction is obtained, switch the current display layer of the target machining surface to the third layer;
[0088] Among them, the third layer is used to display the target stock removal information of the target machining surface, and the target stock removal information is the part machining stock removal information mapped by the color corresponding to the third layer.
[0089] It should be noted that the machining allowance information of parts refers to the thickness of the material or other dimensional parameters that need to be reserved on the surface of the die parts to meet the requirements of multi-process collaboration and dimensional accuracy control when machining die parts. The part allowance mode is a mode of setting color markings for the machining allowance information of parts. The part allowance information viewing instruction is an instruction for viewing the machining allowance information of parts (i.e., the target allowance information) marked on the target machining surface in the digital model corresponding to the die parts.
[0090] In this embodiment, on the basis of the dual-layer mechanism of the first layer and the second layer, a third layer is introduced to implement a multi-layer mechanism, so that when the user hopes to view the machining allowance information of parts marked on a certain surface of the digital model corresponding to the die parts, the surface can be set as the target machining surface, and then by inputting the part allowance information viewing instruction, the current display layer of the surface is switched to the third layer, so as to facilitate the user to intuitively view the machining allowance information of the surface, further enhancing the flexibility and comprehensiveness of the display of die part machining information.
[0091] Similar to the method of setting the color corresponding to the second layer, in this embodiment, the method of setting the color corresponding to the third layer includes at least one of the following:
[0092] Based on the manipulation instruction generated by manipulating the target button in the surface attribute interface corresponding to the part allowance mode, the color corresponding to the third layer is set to the color mapped by the target button, where the target button is the coloring button selected and manipulated by the user among multiple coloring buttons, and the colors mapped by different coloring buttons are different;
[0093] Based on the machining allowance information of parts input in the surface attribute interface corresponding to the part allowance mode, the color corresponding to the third layer is set to the color mapped by the input machining allowance information of parts;
[0094] The method of setting the color corresponding to the third layer in this embodiment is similar to that of the first embodiment, and the technical effects are similar. This embodiment will not elaborate too much on this.
[0095] In this embodiment, by implementing the dynamic management, storage, and visualization of multi-color layers in a 3D industrial design environment, a parallel display solution for multi-dimensional machining information on a single face of a part is achieved in 3D industrial design software. It can uniformly and effectively manage and display multiple color states without conflict, facilitating the recording and transmission of part machining information. By using multiple sets of color states to represent different machining requirements, it is possible to avoid the need to regenerate and distribute new screenshots every time there is a machining design change for a mold part, thereby effectively reducing the workload and minimizing the occurrence of phenomena such as reduced production efficiency and product quality due to incorrect information transmission. Ultimately, it solves the technical problem in the related art that the transmission of part machining information is scattered and prone to confusion, resulting in low efficiency and accuracy of machining information transmission.
[0096] In addition, when it comes to design changes, this embodiment also supports dynamic layer switching and real-time updates. Once new machining information is added or modified, all associated color codes are automatically adjusted to ensure data consistency and accuracy. At the same time, the built-in version control system of the software records every change, facilitating the tracing of historical versions and avoiding quality problems caused by information loss or confusion.
[0097] Based on the above first embodiment, a method for displaying machining information of a mold part according to the second embodiment of the present application is proposed.
[0098] In the second embodiment of the present application, for content that is the same as or similar to the above embodiment, reference can be made to the above introduction and will not be elaborated further below.
[0099] In this embodiment, the method for displaying machining information of a mold part may further include steps A10 to A20:
[0100] Step A10, when it is detected that the login account for opening the digital model corresponding to the mold part is the first account, the editing permission of the display layer of the target machining surface is enabled, and the digital model corresponding to the mold part is set to a read-write mode, where the first account is the user account corresponding to the administrator or mold designer;
[0101] Step A20, when it is detected that the login account for opening the digital model corresponding to the mold part is the second account, the editing permission of the display layer of the target machining surface is disabled, and the digital model corresponding to the mold part is set to a read-only mode, where the second account is different from the first account.
[0102] It should be noted that the first account is a high-privilege account with machining information editing permission (i.e., the editing permission of the display layer of the target machining surface), usually assigned to mold designers or project administrators. The second account is an ordinary user account, such as a machining engineer or quality inspector, who only needs to view the machining information and has no right to modify it.
[0103] In this embodiment, in the read-write mode, the user has complete read and write permissions for the display layers and related processing information of each surface in the digital model corresponding to the mold part, allowing the user to set the color of the display layer, edit the processing information, and switch the display layer for the target processing surface. In the read-only mode, the user only has read permissions for the display layer and related processing information of the digital model corresponding to the mold part, and can switch the display layer for the target processing surface to view the processing information displayed on each display layer, but cannot set the color of the display layer or edit the processing information for the target processing surface.
[0104] Exemplarily, in a feasible implementation, the system identifies the role attribute of the logged-in account through the user authentication module. When the first account logs in, various controls in the surface attribute interface corresponding to each mode (such as the control for selecting the target processing surface, the control for setting the color, the control for inputting processing information, etc.) are all in an active state, and the user can set the color of the display layer, edit the processing information, and switch the display layer for the target processing surface. If it is detected that the second account logs in, the system can automatically hide or disable the surface attribute interface corresponding to each mode, only retain the control corresponding to switching the display layer, allow the user to view the marked processing information by switching the display layer, and pop up a permission prompt box when the user attempts to modify the processing information to ensure data security.
[0105] By combining with the multi-layer mechanism of the first embodiment, this embodiment realizes double protection for processing information management: on the one hand, it realizes the parallel display of multi-dimensional information through the multi-layer dynamic switching technology; on the other hand, it ensures that the modification right of processing information is limited to authorized personnel through the permission grading mechanism. This design effectively solves the problem of version chaos caused by multiple people's misoperations in traditional collaborative work. For example, during the iterative process of mold design, if a processing engineer accidentally triggers the modification of the layer color, it may lead to the inaccuracy of the mapping relationship between the design change information and the color, and then cause processing errors. This embodiment fundamentally avoids such risks through permission isolation.
[0106] Based on the above embodiment, a method for displaying the processing information of the mold part in the third embodiment of the present application is proposed.
[0107] In the third embodiment of the present application, the same or similar content as the above embodiment can be referred to the above introduction and will not be repeated hereinafter.
[0108] In this embodiment, the method for displaying the processing information of the mold part further includes B10 to B20:
[0109] Step B10, calculate the area of the target processing surface to obtain the area information of the target processing surface;
[0110] It should be noted that the area information refers to the area of the target processing surface.
[0111] In this embodiment, the boundary contour features of the target machining surface can be extracted by parsing the geometric topology data of the corresponding digital model of the die part, so as to calculate its surface area based on a numerical integration algorithm (such as the Gaussian integration method or the triangulation method), and then obtain the area information of the target machining surface.
[0112] Step B20: Output the target machining design change information and area information based on the surface attribute interface corresponding to the part design change information mode.
[0113] In this embodiment, a machining information display area is provided in the surface attribute interface corresponding to each mode for outputting and displaying the machining information of the target machining surface. Therefore, after the calculation of the area information is completed, this embodiment can output the target machining design change information and area information of the target machining surface through the surface attribute interface corresponding to the part design change information mode, and display them in the machining information display area of this surface attribute interface, so that engineers can intuitively understand the design change requirements of each surface in the die part through the machining information displayed in this machining information display area during the machining and manufacturing process of the die part, and then ensure that the machining and manufacturing of the die part accurately follow the design intent.
[0114] Furthermore, in a feasible implementation manner, the machining information display method for die parts may further include step C10:
[0115] Step C10: When receiving a drawing automatic generation instruction, automatically generate a target machining drawing based on the target machining design change information, area information, and target tolerance information, where the target machining drawing has the target machining design change information, area information, and target tolerance information marked on the target machining surface.
[0116] It should be noted that the drawing automatic generation instruction is used to trigger the system to automatically output a digital engineering drawing (i.e., the target machining drawing) of the die part that meets the preset industry standards based on the machining information marked by the colors corresponding to the display layers on the digital model corresponding to the die part.
[0117] It can be understood that the drawing automatic generation instruction allows the user to actively select the processing information covered by the target processing drawing according to requirements. Specifically, the user can specify at least one of the part color tolerance mode, the part design change information mode, and the part allowance mode through the drawing automatic generation instruction, so as to generate a target processing drawing with the processing information output by the surface attribute interface corresponding to the specified mode (for example, the target tolerance information output by the surface attribute interface corresponding to the part color tolerance mode, the target processing design change information and area information output by the surface attribute interface corresponding to the part design change information mode, and the target allowance information output by the surface attribute interface corresponding to the part allowance mode) marked on the target processing surface, so as to meet different processing information display requirements.
[0118] Exemplarily, when the user needs to generate a target processing drawing with the target processing design change information, area information, and target tolerance information marked on the target processing surface, after calculating the area information, the user can specify the part color tolerance mode and the part design change information mode through the drawing automatic generation instruction, so as to generate a target processing drawing with the target processing design change information, area information, and target tolerance information marked on the target processing surface based on the target tolerance information output by the surface attribute interface corresponding to the part color tolerance mode, and the target processing design change information and area information output by the surface attribute interface corresponding to the part design change information mode.
[0119] Based on the above embodiments, a method for displaying processing information of a die part according to a fourth embodiment of the present application is proposed.
[0120] In the third embodiment of the present application, the same or similar content as the above embodiments can be referred to the above introduction and will not be repeated hereinafter.
[0121] In this embodiment, the method for displaying processing information of a die part may further include steps D10 to D30:
[0122] Step D10, when the target processing surface is a special surface, obtain the input custom tolerance information and the target color, where the target color is different from the colors mapped by other tolerance information, and the other tolerance information is tolerance information different from the custom tolerance information;
[0123] Step D20, take the custom tolerance information as the target tolerance information, and set the color corresponding to the first layer display to the target color;
[0124] Step D30, establish a target mapping relationship between the custom tolerance information and the target color, and create and add the target mapping relationship to the surface attribute interface corresponding to the part color tolerance mode.
[0125] In this embodiment, a special surface refers to a machined surface whose tolerance information is different from the general tolerance information in the industry and requires non-standard or non-general tolerance information for marking. Of course, from another perspective, a special surface can also refer to a surface in the digital model corresponding to a mold part where the machining information to be marked lacks a predefined color mapping in the surface attribute interface. Because in the surface attribute interface corresponding to the part color tolerance mode, if the target mapping relationship of adding custom tolerance information - target color is not created, generally, the surface attribute interface corresponding to the part color tolerance mode only stores the mapping relationship between each general tolerance information and color. That is, at this time, when the machining information of a certain surface in the digital model corresponding to the mold part cannot be directly represented by the color in the surface attribute interface, this surface is regarded as a special surface.
[0126] In this case, the user can meet the marking requirements of this special surface by inputting custom machining information (i.e., machining information lacking a predefined color mapping in the surface attribute interface) and the target color. After the marking is completed, the mapping relationship between the custom machining information and the target color, that is, the target mapping relationship, will be established and added to the corresponding surface attribute interface.
[0127] Exemplarily, when the tolerance information to be marked on the target machined surface lacks a predefined color mapping in the surface attribute interface corresponding to the part surface information mode, the tolerance information required to be marked on this special surface can be input as custom tolerance information (i.e., tolerance information lacking a predefined color mapping in the surface attribute interface corresponding to the part color tolerance mode) and the target color can be configured for it, so that the color corresponding to the first layer of this special surface is set to the target color, and this custom tolerance information is used as the target tolerance information to complete the marking of this custom tolerance information. Furthermore, after the marking is completed, the mapping relationship between the custom tolerance information and the target color is established and added to the surface attribute interface corresponding to the part color tolerance mode.
[0128] This embodiment allows users to set unique machining information markings for special surfaces by introducing custom machining information and target colors, ensuring that even complex and special machining requirements can be clearly and accurately expressed, reducing the omission or error of machining information caused by insufficient predefined color mappings, further expanding the application scope and functions of the method for displaying machining information of mold parts, significantly improving the accuracy and efficiency of information transmission, and providing strong support for the optimization of the mold manufacturing process.
[0129] In addition, in this embodiment, the user can complete the marking of the special surface in just a few simple steps, and the established target mapping relationship can be conveniently reused in future projects, greatly simplifying the operation process and improving work efficiency.
[0130] To facilitate the understanding of the above embodiments of the present application, in one example, the surface attribute interface corresponding to the part color tolerance mode is as follows Figure 2 shown. In this surface attribute interface, the user can specify the target machining surface through the "Select Surface" module, and then through the "Tolerance and Special Surface" module, select an appropriate color to label the tolerance information of the target machining surface, or input the tolerance information to be labeled for the target machining surface through the "Tolerance Information" module. The system automatically sets the color corresponding to the first layer of the target machining surface to the color mapped by the input tolerance information. Or through the "Tolerance and Special Surface" module, when the target machining surface is a feature surface, input custom tolerance information and configure the target color, and finally establish the target mapping relationship and create and add it to this surface attribute interface. After completing the labeling of the tolerance information, the target tolerance information of the target machining surface shown in the first layer is as follows Figure 3 shown.
[0131] In another example, the surface attribute interface corresponding to the part design change information mode is as follows Figure 4 shown. In this surface attribute interface, the user can specify the target machining surface through the "Select Surface" module, and then through the "Design Change" module, select an appropriate color to label the machining design change information of the target machining surface, or input the machining design change information to be labeled for the target machining surface through the "Design Change Information" module. The system automatically sets the color corresponding to the second layer of the target machining surface to the color mapped by the input machining design change information. In addition, in this surface attribute interface, the design change type of the target machining surface, the design change quantity under this design change type, and the area information can also be displayed through the "Category" unit, "Content" unit, and "Area" unit (i.e., the machining information display area) under the "View Attributes" module. After completing the labeling of the machining design change information, the target machining design change information of the target machining surface shown in the second layer is as follows Figure 5 shown.
[0132] In yet another example, the surface attribute interface corresponding to the part stock removal mode is as follows Figure 6 shown. In this surface attribute interface, the user can specify the target machining surface through the "Select Surface" module, and then through the "Stock Removal" module, select an appropriate color to label the part machining stock removal information of the target machining surface, or input the part machining stock removal information to be labeled for the target machining surface through the "Stock Removal Information" module. The system automatically sets the color corresponding to the third layer of the target machining surface to the color mapped by the input part machining stock removal information. In addition, in this surface attribute interface, the part machining stock removal information labeled for the target machining surface can also be displayed through the "View Attributes" module. After completing the labeling of the machining design change information, the target stock removal information of the target machining surface shown in the second layer is as follows Figure 7 shown.
[0133] It should be noted that the above examples are only for assisting in understanding the present application, and do not constitute a limitation on the method for displaying the processing information of the mold parts of the present application. Based on this technical concept, more forms of simple transformations are within the protection scope of the present application.
[0134] In addition, please refer to Figure 8 , Figure 8 which is a schematic structural diagram of the device of the hardware operating environment involved in the method for displaying the processing information of the mold parts in the embodiment of the present application.
[0135] The present application also provides an electronic device, which includes: at least one processor; and a memory communicatively connected to the at least one processor; wherein the memory stores instructions executable by the at least one processor, and the instructions are executed by the at least one processor to enable the at least one processor to execute the steps of the method for displaying the processing information of the mold parts in the above embodiment.
[0136] Next, refer to Figure 8 , which shows a schematic structural diagram of an electronic device suitable for implementing the embodiment of the present application. The electronic device in the embodiment of the present application may include, but is not limited to, mobile terminals such as smart phones, laptop computers, PADs (Portable Application Description, tablet computers), etc., and fixed terminals such as desktop computers, etc., or any electronic device capable of implementing the above functions. Figure 8 The electronic device shown is only an example and should not bring any limitation to the functions and usage scope of the embodiment of the present application.
[0137] As Figure 8As shown, the electronic device may include a processing device 1001 (such as a central processing unit, a graphics processing unit, etc.), which can perform various appropriate actions and processes according to the program stored in the read-only memory 1002 or the program loaded from the storage device 1003 into the random access memory 1004. In the random access memory 1004, various programs and data required for the operation of the electronic device are also stored. The processing device 1001, the read-only memory 1002, and the random access memory 1004 are connected to each other through a bus 1005. The input / output interface 1006 is also connected to the bus. Generally, the following systems can be connected to the input / output interface 1006: an input device 1007 including, for example, a touch screen, a touchpad, a keyboard, a mouse, an image sensor, a microphone, an accelerometer, a gyroscope, etc.; an output device 1008 including, for example, a liquid crystal display (LCD), a speaker, a vibrator, etc.; a storage device 1003 including, for example, a magnetic tape, a hard disk, etc.; and a communication device 1009. The communication device 1009 can allow the electronic device to communicate with other devices wirelessly or wiredly to exchange data. Although the figure shows an electronic device with various systems, it should be understood that it is not required to implement or have all the shown systems. More or fewer systems can be alternatively implemented or had.
[0138] Specifically, according to the embodiments disclosed in the present application, the process described above with reference to the flowchart can be implemented as a computer software program. For example, the embodiments disclosed in the present application include a computer program product, which includes a computer program carried on a computer-readable medium, and the computer program contains program codes for executing the method shown in the flowchart. In such an embodiment, the computer program can be downloaded and installed from the network through the communication device, or installed from the storage device 1003, or installed from the read-only memory 1002. When the computer program is executed by the processing device 1001, the above functions defined in the method of the embodiments disclosed in the present application are executed.
[0139] The electronic device provided by the present application adopts the method for displaying the processing information of the mold parts in the above embodiments, and can solve the technical problems in the related art that the transfer of part processing information is scattered and easy to be confused, resulting in low efficiency and accuracy of the transfer of processing information. Compared with the prior art, the beneficial effects of the electronic device provided by the present application are the same as those of the method for displaying the processing information of the mold parts provided in the above embodiments, and other technical features in the electronic device are the same as those disclosed in the above embodiment method, and will not be elaborated here.
[0140] It should be understood that each part disclosed in this application can be implemented by hardware, software, firmware, or a combination thereof. In the description of the above embodiments, specific features, structures, materials, or characteristics can be combined in a suitable manner in any one or more embodiments or examples.
[0141] The above is only the specific implementation manner of this application, but the protection scope of this application is not limited thereto. Any person skilled in the art within the technical scope disclosed in this application can easily think of changes or substitutions, which should all be covered within the protection scope of this application. Therefore, the protection scope of this application shall be subject to the protection scope of the above-mentioned claims.
[0142] In addition, this application also provides a computer-readable storage medium with computer-readable program instructions (i.e., computer programs) stored thereon. The computer-readable program instructions are used to execute the steps of the method for displaying processing information of mold parts in the above embodiments.
[0143] The computer-readable storage medium provided by this application can be, for example, a USB flash drive, but is not limited to electrical, magnetic, optical, electromagnetic, infrared, or semiconductor systems, devices, or any combination of the above. More specific examples of the computer-readable storage medium may include, but are not limited to: an electrical connection with one or more wires, a portable computer disk, a hard disk, a random access memory, a read-only memory (, an erasable programmable read-only memory, an optical fiber, a portable compact disk read-only memory, an optical storage device, a magnetic storage device, or any suitable combination of the above. In this embodiment, the computer-readable storage medium can be any tangible medium that contains or stores a program, and this program can be used by or in combination with an instruction execution system, device, or device. The program code contained on the computer-readable storage medium can be transmitted by any appropriate medium, including but not limited to: wires, optical cables, RF (Radio Frequency), etc., or any suitable combination of the above.
[0144] The above computer-readable storage medium can be included in an electronic device; it can also exist separately without being assembled into the electronic device.
[0145] The above computer-readable storage medium carries one or more programs. When the above one or more programs are executed by an electronic device, the electronic device: in the case of obtaining a design change requirement viewing instruction, switches the current display layer of the target processing surface to the second layer; wherein, the second layer is used to display the target processing design change information of the target processing surface, and the target processing design change information is the processing design change information mapped by the color corresponding to the second layer display.
[0146] Computer program code for performing the operations of this application can be written in one or more programming languages or combinations thereof. The above-mentioned programming languages include object-oriented programming languages such as Java, Smalltalk, C++, and also include conventional procedural programming languages such as the "C" language or similar programming languages. The program code can be executed entirely on the user's computer, partially on the user's computer, executed as an independent software package, partially on the user's computer and partially on a remote computer, or entirely on a remote computer or server. In the case of a remote computer, the remote computer can be connected to the user's computer through any type of network, including a local area network (LAN) or a wide area network (WAN), or it can be connected to an external computer (for example, by connecting through the Internet service provider via the Internet).
[0147] The flowcharts and block diagrams in the accompanying drawings illustrate the possible architectures, functions, and operations of systems, methods, and computer program products according to various embodiments of this application. In this regard, each block in the flowchart or block diagram can represent a module, a program segment, or a part of the code, and this module, program segment, or part of the code contains one or more executable instructions for implementing the specified logical function. It should also be noted that in some alternative implementations, the functions marked in the blocks can occur in a different order than that marked in the accompanying drawings. For example, two consecutively represented blocks can actually be executed substantially in parallel, and they can sometimes be executed in the reverse order, depending on the functions involved. It should also be noted that each block in the block diagram and / or flowchart, as well as the combination of blocks in the block diagram and / or flowchart, can be implemented by a dedicated hardware-based system for performing the specified functions or operations, or can be implemented by a combination of dedicated hardware and computer instructions.
[0148] The modules involved in the embodiments described in this application can be implemented in software or in hardware. Among them, the name of the module does not constitute a limitation to the unit itself in some cases.
[0149] The computer-readable storage medium provided in this application stores computer-readable program instructions (i.e., computer programs) for performing the steps of the above-mentioned method for displaying machining information of die parts, which can solve the technical problems in the related art that the transfer of part machining information is scattered and prone to confusion, resulting in low efficiency and accuracy of the transfer of machining information. Compared with the prior art, the beneficial effects of the computer-readable storage medium provided in this application are the same as those of the method for displaying machining information of die parts provided in the above embodiments, and will not be elaborated here.
[0150] In addition, an embodiment of the present application further provides a computer program product, including a computer program, which when executed by a processor, implements the steps of the method for displaying machining information of die parts as described in the above embodiments.
[0151] The computer program product provided by the present application can solve the technical problem that in the related art, the transmission of part machining information is scattered and prone to confusion, resulting in low efficiency and accuracy of the transmission of machining information. Compared with the prior art, the beneficial effects of the computer program product provided by the embodiment of the present application are the same as those of the method for displaying machining information of die parts provided by the above embodiments, and will not be elaborated here.
[0152] The above are only partial embodiments of the present application, and thus do not limit the patent scope of the present application. Any equivalent structural transformation made by using the content of the specification and drawings of the present application under the technical concept of the present application, or any direct / indirect application in other related technical fields, is included in the patent protection scope of the present application.
Claims
1. A method for displaying processing information of a mold part, characterized in that The display layers of the target machining surfaces of the die parts corresponding to the digital model include a first layer and a second layer, and one display layer corresponds to displaying one color; Among them, the first layer is the layer corresponding to the part color tolerance mode. The surface attribute interface corresponding to the part color tolerance mode includes multiple different colors and multiple different tolerance information, and each color is mapped to a unique tolerance information; the second layer is the layer corresponding to the part design change information mode. The surface attribute interface corresponding to the part design change information mode includes multiple different colors and multiple different machining design change information, and each color is mapped to a unique machining design change information; The method includes: When a design change requirement viewing instruction is obtained, switch the current display layer of the target machining surface to the second layer; Among them, the second layer is used to display the target machining design change information of the target machining surface, and the target machining design change information is the machining design change information mapped by the color corresponding to the display of the second layer.
2. The method for displaying machining information of the mold part according to claim 1, wherein, The machining design change information includes a design change type and a design change amount under the design change type. The design change type is adding iron or reducing iron; In the surface attribute interface corresponding to the part design change information mode, the design change types and / or design change amounts mapped by each color are different.
3. The method for displaying the processing information of the mold part according to claim 2, wherein, The method includes: When it is detected that the login account for opening the digital model corresponding to the die part is the first account, enable the editing permission of the display layer of the target machining surface, and set the digital model corresponding to the die part to a readable and writable mode. Among them, the first account is the user account corresponding to the administrator or die designer; When it is detected that the login account for opening the digital model corresponding to the die part is the second account, disable the editing permission of the display layer of the target machining surface, and set the digital model corresponding to the die part to a read-only mode. Among them, the second account is different from the first account.
4. The method for displaying machining information of a mold part according to any one of claims 1 to 3, characterized in that, After the step of switching the current display layer of the target machining surface to the second layer, the method further includes: Calculate the area of the target machining surface to obtain the area information of the target machining surface; Based on the surface attribute interface corresponding to the part design change information mode, output the target machining design change information and the area information.
5. The method for displaying the processing information of the mold part according to claim 4, wherein, The first layer is the default display layer of the digital model corresponding to the die part, and the method further includes: When a tool exit instruction or a tolerance information viewing instruction is obtained, switch the current display layer of the target machining surface to the first layer; Among them, the first layer is used to display the target tolerance information of the target machining surface, and the target tolerance information is the tolerance information mapped by the color corresponding to the display of the first layer.
6. The method for displaying the processing information of the mold part according to claim 5, wherein, The method further includes: When a drawing automatic generation instruction is received, automatically generate a target machining drawing based on the target machining design change information, the area information, and the target tolerance information. Among them, the target machining drawing has the target machining design change information, the area information, and the target tolerance information marked on the target machining surface.
7. The method for displaying machining information of the mold part according to claim 5, wherein, The display layer of the target machining surface further includes a third layer, where the third layer is the layer corresponding to the part stock mode, and the surface attribute interface corresponding to the part stock mode includes multiple different colors and multiple different part machining stock information, and each color is mapped to a unique part machining stock information; The method further includes: When a part stock information viewing instruction is obtained, switching the current display layer of the target machining surface to the third layer; Wherein, the third layer is used to display the target stock information of the target machining surface, and the target stock information is the part machining stock information mapped by the color corresponding to the display of the third layer.
8. An electronic device, characterized in that, Including: A memory, a processor, and a computer program stored on the memory and executable on the processor, where when the computer program is executed by the processor, it implements the method for displaying machining information of a mold part as described in any one of claims 1 to 7.
9. A readable storage medium, characterized in that, The readable storage medium is a computer-readable storage medium, and a computer program is stored on the computer-readable storage medium, where when the computer program is executed by a processor, it implements the method for displaying machining information of a mold part as described in any one of claims 1 to 7.
10. A computer program product, characterized in that, The computer program product includes a computer program, where when the computer program is executed by a processor, it implements the method for displaying machining information of a mold part as described in any one of claims 1 to 7.