Arrangement method and device for wear plate of injection mold slider assembly
By automating the iterative layout process and inserting coordinate determination methods, the problems of low efficiency and error-prone manual layout of wear-resistant plates for injection mold slider components are solved. This achieves efficient and accurate layout of wear-resistant plates, ensuring complete coverage and reasonable gaps, and improving the practicality of the project.
Patent Information
- Application Number
- CN202511439598.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-10
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2045-10-10
AI Technical Summary
In the existing technology, the arrangement of wear-resistant plates in the slider assembly of injection molds relies on manual operation, which is inefficient and prone to errors.
An automated method is adopted to determine the wear-resistant plate layout area by iteratively executing the wear-resistant plate layout process, recording the target standard wear-resistant plate, and the custom wear-resistant plates applicable to the remaining area. The plates are then arranged according to the insertion coordinates. Combined with the design parameters and positional relationship parameters of the injection mold slider assembly, the automated layout of the wear-resistant plates is achieved.
This improved the efficiency and accuracy of wear-resistant plate arrangement, ensuring complete coverage and space utilization, and meeting the requirements of actual assembly processes.
Smart Images

Figure CN120893086B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of intelligent manufacturing, and particularly relates to a method and device for arranging wear plates of an injection mold slider assembly. BACKGROUND
[0002] At present, the wear plates of an injection mold slider assembly are manually arranged by a design engineer after the main body of the slider assembly is designed according to the size range of the slider main body and the size of the space where the wear plates can be arranged, and the standard wear plates of appropriate specifications are selected from a standard wear plate library.
[0003] However, this manual arrangement method requires high experience of the design engineer, is low in efficiency and prone to errors. SUMMARY
[0004] The present application provides a method and device for arranging wear plates of an injection mold slider assembly to solve the problems of low efficiency and errors in the prior art.
[0005] The present application provides a method for arranging wear plates of an injection mold slider assembly, comprising the following steps:
[0006] determining a wear plate arrangement area of the injection mold slider assembly;
[0007] iteratively performing a wear plate arrangement process until no standard wear plate in a preset wear plate standard library can be arranged in the remaining area of the wear plate arrangement area, and recording all target standard wear plates arranged in the wear plate arrangement area;
[0008] determining a customized wear plate suitable for arrangement in the remaining area;
[0009] arranging the target standard wear plate and the customized wear plate in the wear plate arrangement area according to the determined insertion coordinates, respectively;
[0010] The wear plate arrangement process is to determine a standard wear plate with the largest specification in the wear plate standard library as a target standard wear plate, and to set the arrangement area after removing the target standard wear plate from the wear plate arrangement area as a new wear plate arrangement area.
[0011] According to the method for arranging wear plates of an injection mold slider assembly, a standard wear plate with the largest specification in the wear plate standard library suitable for arrangement in the wear plate arrangement area is determined, comprising:
[0012] obtaining a specification parameter of the wear plate arrangement area;
[0013] The specifications of the wear-resistant plate arrangement area are matched with the specifications of each standard wear-resistant plate in the wear-resistant plate standard library.
[0014] Determine the set of standard wear-resistant plates that can be arranged after matching;
[0015] The largest standard wear-resistant plate is determined from the set of standard wear-resistant plates that can be arranged.
[0016] According to a method for arranging wear-resistant plates in an injection mold slider assembly provided by the present invention, the step of matching the specification parameters of the wear-resistant plate arrangement area with the specification parameters of each standard wear-resistant plate in the wear-resistant plate standard library includes:
[0017] Iterate through each of the standard wear-resistant plates in the wear-resistant plate standard library;
[0018] If the specifications of any of the standard wear-resistant plates are not greater than the specifications of the wear-resistant plate arrangement area, then the standard wear-resistant plate is added to the set of arrangeable standard wear-resistant plates.
[0019] According to the present invention, the arrangement method of wear-resistant plates for a slider assembly of an injection mold is provided, wherein the arrangement area of the target standard wear-resistant plates is determined based on the specification parameters and arrangement spacing parameters of the target standard wear-resistant plates;
[0020] The spacing parameters include the spacing between the target standard wear-resistant plate and adjacent wear-resistant plates, as well as the spacing between the target standard wear-resistant plate and the boundary of the wear-resistant plate arrangement area.
[0021] According to a method for arranging wear-resistant plates in an injection mold slider assembly provided by the present invention, the step of determining a custom wear-resistant plate suitable for arrangement in the remaining area includes:
[0022] Obtain the specification parameters of the remaining area;
[0023] The customized wear-resistant plate is determined based on the specifications of the remaining area.
[0024] According to a method for arranging wear-resistant plates in an injection mold slider assembly provided by the present invention, the step of arranging the target standard wear-resistant plate and the customized wear-resistant plate into the wear-resistant plate arrangement area according to determined insertion coordinates includes:
[0025] Based on the design parameters of the injection mold slider assembly, the specification parameters of the target standard wear-resistant plate, and the first positional relationship parameters between the injection mold slider assembly and the target standard wear-resistant plate, the first insertion coordinate of the target standard wear-resistant plate is determined.
[0026] Based on the design parameters of the injection mold slider assembly, the specification parameters of the customized wear-resistant plate, and the second positional relationship parameters between the injection mold slider assembly and the customized wear-resistant plate, the second insertion coordinates of the customized wear-resistant plate are determined.
[0027] Based on the first insertion coordinate of each target standard wear-resistant plate and the second insertion coordinate of each custom wear-resistant plate, all target standard wear-resistant plates and all custom wear-resistant plates are arranged in the wear-resistant plate arrangement area.
[0028] According to the present invention, a method for arranging wear-resistant plates in an injection mold slider assembly is provided, wherein the design parameters of the injection mold slider assembly include at least one of the following parameters:
[0029] The angle of the inclined guide post, the length of the slider, the width of the slider, the height of the slider, and the clearance angle.
[0030] According to a method for arranging wear-resistant plates in an injection mold slider assembly provided by the present invention, determining the arrangement area of the wear-resistant plates in the injection mold slider assembly includes:
[0031] Obtain a three-dimensional model of the injection mold slider assembly;
[0032] Identify the surface areas in the three-dimensional model where wear-resistant plates can be arranged;
[0033] The wear-resistant plate arrangement area is determined based on the geometric features of the surface region;
[0034] The surface area includes the bottom area and / or back area of the injection mold slider assembly.
[0035] The present invention also provides an arrangement device for wear-resistant plates of injection mold slider assemblies, comprising:
[0036] The region determination unit is used to determine the wear-resistant plate arrangement area of the injection mold slider assembly;
[0037] An iterative arrangement unit is used to iteratively execute the wear-resistant plate arrangement process until the remaining area of the wear-resistant plate arrangement area does not meet the requirement of arranging any standard wear-resistant plate in the preset wear-resistant plate standard library, and records all target standard wear-resistant plates arranged to the wear-resistant plate arrangement area.
[0038] A customization determination unit is used to determine the custom wear-resistant plates applicable to the remaining areas;
[0039] The arrangement execution unit is used to arrange the target standard wear-resistant plate and the customized wear-resistant plate into the wear-resistant plate arrangement area according to the determined insertion coordinates, respectively.
[0040] The wear-resistant plate arrangement process involves determining the largest standard wear-resistant plate in the wear-resistant plate standard library that is suitable for arrangement in the wear-resistant plate arrangement area as a target standard wear-resistant plate, and setting the arrangement area after removing the target standard wear-resistant plate from the wear-resistant plate arrangement area as a new wear-resistant plate arrangement area.
[0041] The present invention also provides an electronic device, including a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor executes the program to implement the arrangement method of the wear-resistant plate of the injection mold slider assembly as described above.
[0042] The present invention also provides a non-transitory computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, implements the arrangement method of the wear-resistant plate of the injection mold slider assembly as described above.
[0043] The present invention also provides a computer program product, including a computer program, which, when executed by a processor, implements the arrangement method of the wear-resistant plate of the injection mold slider assembly as described above.
[0044] The present invention provides a method and apparatus for arranging wear-resistant plates for injection mold slider components. By iteratively executing the wear-resistant plate arrangement process, all target standard wear-resistant plates and customized wear-resistant plates to be arranged in the wear-resistant plate arrangement area are determined, thereby realizing automated arrangement of wear-resistant plates and improving the arrangement efficiency and accuracy of wear-resistant plates. Attached Figure Description
[0045] To more clearly illustrate the technical solutions in this invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0046] Figure 1 This is a flowchart illustrating the arrangement method of the wear-resistant plate of the injection mold slider assembly provided by the present invention.
[0047] Figure 2 This is a schematic diagram of the process for determining the target standard wear-resistant plate provided by the present invention.
[0048] Figure 3 This is a schematic diagram of the process for arranging target standard wear-resistant plates and customized wear-resistant plates based on inserted coordinates, provided by the present invention.
[0049] Figure 4 This is a flowchart illustrating the process of determining the wear-resistant plate arrangement area of the injection mold slider assembly provided by the present invention.
[0050] Figure 5 This is one of the schematic diagrams of the wear-resistant plate arrangement provided by the present invention.
[0051] Figure 6 This is the second schematic diagram of the wear-resistant plate arrangement provided by the present invention.
[0052] Figure 7 This is the third schematic diagram of the wear-resistant plate arrangement provided by the present invention.
[0053] Figure 8 This is a schematic diagram of the structure of the wear-resistant plate arrangement device for the injection mold slider assembly provided by the present invention.
[0054] Figure 9 This is a schematic diagram of the structure of the electronic device provided by the present invention. Detailed Implementation
[0055] To make the objectives, technical solutions, and advantages of this invention clearer, the technical solutions of this invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this invention. All other embodiments obtained by those skilled in the art based on the embodiments of this invention without creative effort are within the scope of protection of this invention.
[0056] It should be noted that in the description of this invention, the terms "comprising," "including," or any other variations thereof are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element. The terms "upper," "lower," etc., indicating orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, are only for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the invention. Unless otherwise expressly specified and limited, the terms "installed," "connected," and "linked" should be interpreted broadly, for example, as a fixed connection, a detachable connection, or an integral connection; a mechanical connection or an electrical connection; a direct connection or an indirect connection through an intermediate medium; or a connection within two elements. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0057] The terms "first," "second," etc., used in this invention are used to distinguish similar objects, not to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that embodiments of the invention can be implemented in orders other than those illustrated or described herein, and the objects distinguished by "first," "second," etc., are generally of the same class, without limiting the number of objects; for example, a first object can be one or more. Furthermore, "and / or" indicates at least one of the connected objects, and the character " / " generally indicates that the preceding and following objects are in an "or" relationship.
[0058] The following is combined Figures 1-9 This invention describes the method and apparatus for arranging wear-resistant plates in an injection mold slider assembly.
[0059] Figure 1 This is a flowchart illustrating the method for arranging the wear-resistant plate of the injection mold slider assembly provided by the present invention, as shown below. Figure 1 As shown, the execution subject of the method for arranging wear-resistant plates of the injection mold slider assembly provided by the present invention can be an industrial control computer, a server, a cloud computing platform, or a computer capable of executing the method of the present invention, etc. Unless otherwise specified, the following embodiments will be described using an industrial control computer as an example.
[0060] As an optional embodiment, the arrangement method of the wear-resistant plate of the injection mold slider assembly includes, but is not limited to, the following steps:
[0061] Step 110: Determine the wear-resistant plate arrangement area of the injection mold slider assembly.
[0062] An injection mold slider assembly is a moving component in an injection mold used for lateral core pulling. It moves along specific guide rails during mold opening and closing. For example, the injection mold slider assembly can form grooves, snap-fits, or holes on the sidewall of the injection molded part.
[0063] Wear plates are protective components installed on slider assemblies to reduce friction and wear during operation, thereby extending the service life of injection molds and maintaining motion accuracy. For example, wear plates can be plate-shaped parts made of materials such as high-hardness tool steel or copper alloys.
[0064] The wear-resistant plate arrangement area refers to the surface space on the slider assembly used to install the wear-resistant plate. This wear-resistant plate arrangement area is the main force-bearing surface on which the slider assembly slides and contacts other mold components (such as mold frame and pressure block) during operation. For example, the wear-resistant plate arrangement area can be the bottom area of the slider assembly or the back area of the slider assembly.
[0065] Step 120: Iteratively execute the wear-resistant plate arrangement process until no standard wear-resistant plate in the preset wear-resistant plate standard library is found in the remaining area of the wear-resistant plate arrangement area. Record all target standard wear-resistant plates arranged in the wear-resistant plate arrangement area.
[0066] The process for arranging wear-resistant plates involves identifying the largest standard wear-resistant plate in the wear-resistant plate standard library that is suitable for arranging in the wear-resistant plate arrangement area as a target standard wear-resistant plate. The arrangement area after removing the target standard wear-resistant plate from the wear-resistant plate arrangement area is then set as the new wear-resistant plate arrangement area.
[0067] A wear-resistant steel plate standard library refers to a database that stores information on all standard wear-resistant steel plate products. For example, the database can be a spreadsheet or a data file integrated into computer-aided design (CAD) software. The database records information such as the model, specifications (such as shape, length, width, thickness, etc.) and materials of each standard wear-resistant steel plate.
[0068] The specifications of standard wear-resistant steel plates refer to the collective term for various characteristic parameters of the plates, which may include the shape, dimensions (such as length and width), area, and other parameters. For example, when standard wear-resistant steel plates are arranged along the length of a wear-resistant steel plate layout area, the specifications may primarily refer to the length of the plates. In this case, the largest specification standard wear-resistant steel plate refers to the longest wear-resistant steel plate among all the standard wear-resistant steel plates in the applicable layout area.
[0069] The area remaining after removing the target standard wear-resistant plate from the wear-resistant plate arrangement area refers to the area remaining after removing the area occupied by the target standard wear-resistant plate and the arrangement spacing from the current arrangeable area through geometric subtraction during one iteration of the wear-resistant plate arrangement process. For example, if the current arrangeable area is a rectangle with a length of 500mm, a width of 50mm, and an area of 500mm × 50mm, and when arranging along the length of the current arrangeable area, the target standard wear-resistant plate selected in this iteration has a length of 100mm, a width of 50mm, and a quantity of 1, then the area occupied by all target standard wear-resistant plates is 100mm × 50mm. If the preset spacing between wear-resistant plates is 10mm, then the area occupied by this spacing is 10mm × 50mm. Therefore, the effective size of the new wear-resistant plate arrangement area for the next iteration will be updated to 500mm×50mm-100mm×50mm×1-10mm×50mm=(500-100-10)mm×50mm, which is 390mm×50mm.
[0070] The remaining area of the wear-resistant plate arrangement area refers to the area that remains after the iterative arrangement process is completed, which is too small to accommodate any standard wear-resistant plate in the wear-resistant plate standard library. For example, after multiple iterations, the remaining area has a layout length of 25mm, while the smallest standard wear-resistant plate in the wear-resistant plate standard library is 30mm. Therefore, this area with a layout length of 25mm is the remaining area of the wear-resistant plate arrangement area.
[0071] Recording all target standard wear-resistant plates arranged in the wear-resistant plate arrangement area refers to recording the information data of the standard wear-resistant plates in each iteration of the wear-resistant plate arrangement process. For example, this information data can be an array containing a series of wear-resistant plate models or specifications, such as ["WP-150-A", "WP-150-A", "WP-80-B"], indicating that the arrangement scheme determines to select two standard wear-resistant plates of model "WP-150-A" and one standard wear-resistant plate of model "WP-80-B". Here, WP-150-A can refer to a standard wear-resistant plate with a length of 150mm and shape A, and WP-80-B can refer to a standard wear-resistant plate with a length of 80mm and shape B.
[0072] Step 130: Determine the appropriate custom abrasion-resistant plates to be arranged in the remaining areas.
[0073] Custom-designed wear-resistant plates refer to non-standard wear-resistant plates that are not in the standard wear-resistant plate library. Their specifications are determined based on the geometry of the remaining area to precisely fill the remaining areas that standard wear-resistant plates cannot cover, thereby ensuring the integrity of the wear-resistant plate arrangement.
[0074] Step 140: Arrange the target standard wear-resistant plate and the customized wear-resistant plate to the wear-resistant plate arrangement area according to the determined insertion coordinates.
[0075] Insertion coordinates refer to a set of coordinates used to locate a target standard wear-resistant plate or a custom wear-resistant plate in three-dimensional space. These insertion coordinates are determined by the reference coordinate system of the three-dimensional model of the injection mold slider assembly.
[0076] For example, when arranging the wear-resistant plates along the length of the area, if the starting coordinates of the arrangement are ( X 0 , Y 0 , Z 0 If the first target standard wear-resistant plate is inserted, its insertion coordinates (e.g., the coordinates of its geometric center) can be calculated and determined as follows: X 1 , Y 1 , Z 1), and the insertion coordinates of the second target standard wear-resistant plate that follows can be calculated as ( X 2 , Y 2 , Z 2 ),in X 2 The value can be based on the length of the first target standard wear-resistant plate, the preset spacing between the standard wear-resistant plates, and X 1 The value is obtained by calculation.
[0077] The method for arranging wear-resistant plates in injection mold slider components provided by the present invention determines all target standard wear-resistant plates and customized wear-resistant plates to be arranged in the wear-resistant plate arrangement area by iteratively executing the wear-resistant plate arrangement process. This enables automated arrangement of wear-resistant plates, thereby improving the efficiency and accuracy of wear-resistant plate arrangement.
[0078] Figure 2 This is a schematic diagram of the process for determining the target standard wear-resistant plate provided by the present invention, as shown below. Figure 2 As shown, as another optional embodiment provided by the present invention, the standard wear-resistant plate with the largest applicable specification in the wear-resistant plate arrangement area in the wear-resistant plate standard library is determined, including:
[0079] Step 210: Obtain the specification parameters of the wear-resistant plate arrangement area.
[0080] For example, if the wear-resistant plate arrangement area is a rectangular area, the specification parameters of this rectangular area can be obtained through the automatic measurement function of CAD software. These specification parameters can refer to the length (e.g., 500mm) and width (e.g., 50mm) of the wear-resistant plate arrangement area.
[0081] Step 220: Match the specifications of the wear-resistant plate arrangement area with the specifications of each standard wear-resistant plate in the wear-resistant plate standard library.
[0082] Specifically, the specifications of each standard wear-resistant plate in the wear-resistant plate standard library can be compared one by one with the specifications of the wear-resistant plate layout area to determine which standard wear-resistant plates can be accommodated in the wear-resistant plate layout area.
[0083] Step 230: Determine the set of standard wear-resistant plates that can be arranged after matching.
[0084] The set of standard wear-resistant plates that can be arranged refers to the set of all standard wear-resistant plates that can be accommodated within the wear-resistant plate arrangement area.
[0085] For example, standard wear-resistant plates with a length of 150mm and a width of 50mm, as well as standard wear-resistant plates with a length of 100mm and a width of 50mm, can all be accommodated within a wear-resistant plate arrangement area with a length of 500mm and a width of 50mm. Therefore, the set of standard wear-resistant plates that can be arranged can include standard wear-resistant plates with a length of 150mm and a width of 50mm, as well as standard wear-resistant plates with a length of 100mm and a width of 50mm.
[0086] Step 240: Determine the largest standard wear-resistant plate from the set of standard wear-resistant plates that can be arranged.
[0087] For example, the set of standard wear-resistant plates that can be arranged includes a standard wear-resistant plate with a length of 150mm and a width of 50mm and a standard wear-resistant plate with a length of 100mm and a width of 50mm. Since 150mm is greater than 100mm, the standard wear-resistant plate with a length of 150mm and a width of 50mm is determined as the target standard wear-resistant plate.
[0088] The method for arranging wear-resistant plates in injection mold slider components provided by this invention obtains the specification parameters of the wear-resistant plate arrangement area, matches them with a standard library to form a set of standard wear-resistant plates that can be arranged, and then selects the standard wear-resistant plate with the largest specification from the set. This provides a clear and executable implementation path, thereby ensuring the executability and reliability of the entire iterative arrangement process.
[0089] In another embodiment of the present invention, the specification parameters of the wear-resistant plate arrangement area are matched with the specification parameters of each standard wear-resistant plate in the wear-resistant plate standard library, including: traversing each standard wear-resistant plate in the wear-resistant plate standard library; if the specification parameters of any standard wear-resistant plate are not greater than the specification parameters of the wear-resistant plate arrangement area, then the standard wear-resistant plate is added to the set of arrangeable standard wear-resistant plates.
[0090] For example, if the specifications of the current wear-resistant plate arrangement area are: length 500mm and width 50mm, when a standard wear-resistant plate with a length of 150mm and a width of 50mm is found in the wear-resistant plate standard library, since its length and width are not greater than the specifications of the current wear-resistant plate arrangement area, the standard wear-resistant plate with a length of 150mm and a width of 50mm is added to the set of standard wear-resistant plates that can be arranged; however, when another standard wear-resistant plate with a length of 550mm is found in the wear-resistant plate standard library, since its length is greater than the length of the current wear-resistant plate arrangement area, it is not added to the set of standard wear-resistant plates that can be arranged.
[0091] The method for arranging wear-resistant plates in injection mold slider components provided by the present invention can accurately define the members of the set of standard wear-resistant plates that can be arranged by traversing the standard wear-resistant plate library and filtering and adding standard wear-resistant plates based on conditions, thereby ensuring the completeness and accuracy of the set.
[0092] In another embodiment of the present invention, the arrangement area of the target standard wear-resistant plate is determined based on the specification parameters and arrangement spacing parameters of the target standard wear-resistant plate; the arrangement spacing parameters include the spacing between the target standard wear-resistant plate and adjacent wear-resistant plates and the spacing between the target standard wear-resistant plate and the boundary of the wear-resistant plate arrangement area.
[0093] Considering that in practical engineering applications, if wear-resistant plates are arranged closely according to their specifications, there may be no gaps between the plates or between the plates and the boundaries. This could lead to assembly difficulties during manufacturing and assembly, or interference between the plates due to thermal expansion and contraction. Therefore, this invention, when determining the arrangement area of the target standard wear-resistant plates, considers the spacing between adjacent wear-resistant plates and the spacing between the boundaries of the arrangement area. These factors are combined with the specifications of the wear-resistant plates themselves to determine the actual space occupied by each target standard wear-resistant plate, thereby ensuring that reasonable safety gaps are automatically maintained between the wear-resistant plates and between the plates and the boundaries.
[0094] The method for arranging wear-resistant plates in injection mold slider assemblies provided by this invention, by comprehensively considering the specification parameters of the target standard wear-resistant plate and the distance parameters between it and adjacent wear-resistant plates and the boundary of the arrangement area when determining the arrangement area occupied by the wear-resistant plate, can ensure that the wear-resistant plates automatically arranged in the end are not only accurately positioned, but also maintain reasonable safety gaps between each other and with the boundary, making the arrangement result more in line with the actual assembly process requirements and improving the practicality of the project.
[0095] In another embodiment of the present invention, determining a custom wear-resistant plate suitable for arrangement in the remaining area includes: obtaining the specification parameters of the remaining area; and determining the custom wear-resistant plate based on the specification parameters of the remaining area.
[0096] For example, if the remaining area of the wear-resistant plate arrangement area is a rectangular area with a length of 25mm and a width of 50mm, then the customized wear-resistant plate is a non-standard wear-resistant plate with a precise length of 25mm and a width of 50mm.
[0097] The method for arranging wear-resistant plates for injection mold slider components provided by this invention obtains the specification parameters of the remaining area after iterative arrangement and determines the method of customizing wear-resistant plates based on these parameters. This enables precise and automated compensation for fragmented spaces that cannot be covered by standard wear-resistant plates, thereby ensuring complete coverage of the entire wear-resistant plate arrangement area and improving the integrity of the arrangement scheme and the utilization rate of space.
[0098] Figure 3 This is a schematic diagram of the process for arranging target standard wear-resistant plates and customized wear-resistant plates based on interpolated coordinates, as provided by the present invention. Figure 3 As shown, as another optional embodiment provided by the present invention, the target standard wear-resistant plate and the customized wear-resistant plate are arranged in the wear-resistant plate arrangement area according to the determined insertion coordinates, including:
[0099] Step 310: Determine the first insertion coordinates of the target standard wear-resistant plate based on the design parameters of the injection mold slider assembly, the specification parameters of the target standard wear-resistant plate, and the first positional relationship parameters between the injection mold slider assembly and the target standard wear-resistant plate.
[0100] The first positional relationship parameter refers to a parameter that indicates the position and distance of the target standard wear-resistant plate relative to the injection mold slider assembly.
[0101] For example, when arranging the bottom area of the slider assembly, the first positional relationship parameter can be "maintaining a distance between the target standard wear-resistant plate and the left boundary of the wear-resistant plate arrangement area". C1 Maintain a distance from the lower boundary of the wear-resistant plate arrangement area. C6 "Assuming" C1 =10mm, C6 =15mm, then the first positional relationship parameter can be [boundary spacing] C1 10mm, boundary spacing C6 It is expressed in the form of :15mm].
[0102] The determination of the first insertion coordinates can be achieved through spatial geometric calculations. This calculation process takes the design parameters of the injection mold slider assembly, the specification parameters of the target standard wear-resistant plate, and the first positional relationship parameters as inputs. Through a preset mathematical model and geometric algorithm, the precise position of the target standard wear-resistant plate in the reference coordinate system of the slider assembly's three-dimensional model is calculated.
[0103] For example, when arranging wear-resistant plates in the bottom area of an injection mold slider assembly, this bottom area is determined by the design parameters of the injection mold slider assembly (such as slider length and slider width). The coordinates of a starting reference point for the wear-resistant plate arrangement area (e.g., the lower left corner of the wear-resistant plate arrangement area) are (...). Px , Py , Pz ), combined with the first positional relationship parameters (such as the left boundary spacing) C1 =10mm, lower boundary spacing C6 =15mm), and the coordinates of the starting point of the wear-resistant plate are determined by coordinate offset calculation. Px+C1 , Py+C6 , PzCombined with the specifications of the first target standard wear-resistant plate (such as length...), L Width is W This allows us to calculate the first insertion coordinates of the first target standard wear-resistant plate. For example, the coordinates of its geometric center are ( Px+C1+L / 2 , Py+C6+W / 2 , Pz ).
[0104] Step 320: Determine the second insertion coordinates of the custom wear-resistant plate based on the design parameters of the injection mold slider assembly, the specification parameters of the custom wear-resistant plate, and the second positional relationship parameters between the injection mold slider assembly and the custom wear-resistant plate.
[0105] The second positional relationship parameter refers to a parameter that indicates the position and distance of the custom wear-resistant plate relative to the injection mold slider assembly.
[0106] The determination of the second insertion coordinates can be achieved through spatial geometric calculations. This calculation process takes the design parameters of the injection mold slider assembly, the specification parameters of the customized wear-resistant plate, and the second positional relationship parameters as inputs. Through a preset mathematical model and geometric algorithm, the precise position of the customized wear-resistant plate in the reference coordinate system of the slider assembly's three-dimensional model is calculated.
[0107] Step 330: Arrange all target standard wear-resistant plates and all custom wear-resistant plates to the wear-resistant plate arrangement area according to the first insertion coordinate of each target standard wear-resistant plate and the second insertion coordinate of each custom wear-resistant plate.
[0108] The method for arranging wear-resistant plates in an injection mold slider assembly provided by this invention calculates the insertion coordinates of each wear-resistant plate by comprehensively utilizing the design parameters of the injection mold slider assembly, the specification parameters of the wear-resistant plate itself, and the preset positional relationship parameters. This enables the final arrangement of wear-resistant plates to be not only geometrically accurate, but also closely related to the overall design features and local assembly requirements of the slider, thereby making the automated arrangement result more engineering-rational and design-related.
[0109] In another embodiment of the present invention, the design parameters of the injection mold slider assembly include at least one of the following parameters: angle of the inclined guide post, slider length, slider width, slider height, and clearance angle.
[0110] The angle of the inclined guide post refers to the angle between the central axis of the inclined guide post that drives the slider assembly to move laterally in an injection mold and the main mold opening direction.
[0111] The clearance angle refers to the tilt angle designed on a specific surface (such as the back or bottom edge) of the slider to prevent interference or scratching between its non-working surface and other mold parts during movement.
[0112] The method for arranging wear-resistant plates in injection mold slider components provided by this invention defines the design parameters used for coordinate calculation as key parameters that determine the core function and shape of the slider, such as the angle of the inclined guide post and the length of the slider. This enables a deep parameterized correlation between the arrangement of wear-resistant plates and the functional design of the slider component, so that the arrangement scheme can automatically and accurately adapt and update as the key parameters of the slider change.
[0113] Figure 4 This is a flowchart illustrating the process of determining the wear-resistant plate arrangement area of the injection mold slider assembly provided by the present invention, as shown below. Figure 4 As shown, as another optional embodiment provided by the present invention, determining the wear-resistant plate arrangement area of the injection mold slider assembly includes:
[0114] Step 410: Obtain the 3D model of the injection mold slider assembly.
[0115] The 3D model can be designed using CAD software and then imported into the current working environment in a standard data format (such as STEP, IGES, Parasolid, etc.). This 3D model contains precise geometric and topological information of the injection mold slider assembly to support subsequent geometric feature recognition.
[0116] Step 420: Identify the surface areas in the 3D model where wear-resistant plates can be placed.
[0117] The surface area includes the bottom area and / or back area of the injection mold slider assembly.
[0118] Step 430: Determine the wear-resistant plate arrangement area based on the geometric features of the surface area.
[0119] Geometric features refer to the basic geometric elements that make up a 3D model, such as points, lines, surfaces, and volumes, and their topological relationships. For example, a geometric feature can be a specific plane and a series of edges that form the boundary of that plane. By analyzing these features, the type of the surface (such as a plane or a curved surface), its orientation, and its boundary contour can be determined.
[0120] The determination of the wear-resistant plate arrangement area can be achieved by performing boundary analysis and geometric calculations on the identified surface areas, thereby extracting one or more regular effective spaces that can be used for arrangement.
[0121] For example, after identifying the bottom surface area of the slider assembly, this area may contain geometric details such as chamfers and holes that are unsuitable for arranging wear-resistant plates. Therefore, determining the wear-resistant plate arrangement area can be achieved by calculating the maximum inscribed rectangle of this surface area. By analyzing the outer boundary of the bottom surface area, the maximum rectangular area that can be accommodated within this boundary is calculated. This calculated maximum rectangular area is the wear-resistant plate arrangement area used to perform the iterative arrangement process.
[0122] The method for arranging wear-resistant plates in injection mold slider assemblies provided by this invention automatically defines the precise arrangement area of wear-resistant plates from key surfaces such as the bottom or back of the slider assembly by recognizing the geometric features of the three-dimensional model of the slider assembly. This transforms the process of determining the arrangement area from relying on manual visual inspection and measurement to an automated process, thereby providing a reliable and objective calculation basis for subsequent iterative arrangement processes.
[0123] Figure 5 This is one of the schematic diagrams of the wear-resistant plate arrangement provided by the present invention, such as... Figure 5 As shown, the height of the wear-resistant plate arrangement area of the slider assembly is... h0 Width is W1 Angle of inclined guide post This indicates the angle of inclination of the wear-resistant plate arrangement surface relative to the main opening direction of the mold. p1 to p5 This represents multiple wear-resistant plate location points within the wear-resistant plate arrangement area. These wear-resistant plate location points correspond to the arrangement references of the wear-resistant plates at different heights. Their coordinates are obtained through geometric calculations, and the wear-resistant plate parameters are uniformly managed and adjusted through a table.
[0124] n1 to n5 This indicates the width of each wear-resistant plate. h1 to h5 This indicates the height of each wear-resistant plate. These width and height dimensions are determined by multiple geometric parameters on the slider assembly (such as...). B , C , D , E , F , G , H , I , J , K , L , Q , AS , AT , ALThese parameters, calculated comprehensively (e.g., width, height, and relative position of each wear-resistant plate on the slider assembly), together determine the precise arrangement of the wear-resistant plates on the slider assembly. By adjusting these dimensional parameters, a reasonable distribution of the wear-resistant plates in the width and height directions can be achieved, ensuring effective coverage of the wear-resistant plate arrangement area.
[0125] Figure 6 This is the second schematic diagram of the wear-resistant plate arrangement provided by the present invention, as shown below. Figure 6 As shown, the length of the wear-resistant plate arrangement area of the slider assembly is expressed as... L0 It indicates that the spatial lengths in which the wear-resistant plates can be distributed are respectively L1 , L2 , L3 , L4, L5 The height direction of the wear-resistant plate arrangement area is from... h0 to h6 It consists of multiple height values, among which, h0 Represents the highest point of the slider component. h1 to h5 Each is composed of a series of geometric parameters ( C , D , E , F , G , H , I, J, K ) and the angle of the inclined guide post The cosine values are calculated together, for example, , wait.
[0126] p1 to p5 The key positioning points for the wear-resistant plate arrangement are determined by their coordinates combined with positional parameters in the length, corresponding height, and width directions. For example... p1 Coordinates are ( L1 / 2 , h1 , n1 ),in n1 The height difference between different heights in the wear-resistant plate arrangement area, combined with the angle of the inclined guide post, is used to analyze the height difference between different heights in the wear-resistant plate arrangement area. Calculated using parameters such as, for example, ,in, n1 This indicates the position coordinates of the wear-resistant plate in the width direction. h0 This represents the maximum vertical coordinate of the wear-resistant plate arrangement area of the slider assembly. h1 This indicates the specific vertical height at which the wear-resistant plates are arranged. Indicates the angle of the inclined guide post The tangent value, This indicates the width of the slider component.
[0127] parameter RThis represents an adjustment factor used to adjust the arrangement length based on the height difference, ensuring adequate spacing between the wear-resistant plates. Angle This indicates the angle between the wear-resistant plate arrangement surface and the reference surface. It plays a corrective role when calculating the arrangement length, ensuring the accuracy of the arrangement area.
[0128] Figure 7 This is the third schematic diagram of the wear-resistant plate arrangement provided by the present invention, as shown below. Figure 7 As shown, the wear-resistant plates are arranged at the bottom of the slider assembly by dividing the area into multiple arrangement surfaces. The wear-resistant plate arrangement area is divided into multiple arrangement columns, including the starting point. AA Point and BB point, B Points and C Key positioning points, such as points, are represented by specific three-dimensional coordinates. The coordinate values are referenced to the coordinate system of the layout area. The specific coordinate data covers... X , Y , Z The offset values in three directions ensure precise positioning during the arrangement process.
[0129] Figure 7 The text indicates that several dimensional parameters, such as boundary spacing, are labeled. C1 , C2 , C4 , C5 Width parameters W1_0 , W1 ,spacing t0 and wear-resistant plate width w_2 In this context, w50 refers to a fixed structural offset. Considering that the wear-resistant plates may require a fixed structural space to avoid bolt heads or accommodate guide grooves during arrangement, this application designs an additional, fixed structural offset between the initial layout reference line and the actual starting point of the first wear-resistant plate. The value of w50 is determined based on the geometric dimensions of the structural features to be avoided in the 3D model of the slider assembly (such as the minimum outer diameter of bolt holes, the width of guide grooves, etc.). The value of w50 remains constant throughout the automated layout process and is a pre-fixed geometric parameter based on the specific design requirements of the slider assembly, ensuring that the wear-resistant plates begin to be arranged while accurately avoiding critical structures. These parameters collectively define the size of each layout area and the spacing between wear-resistant plates, ensuring the rationality and regularity of the wear-resistant plate arrangement. Different arrangements (first row, second row, etc.) are defined by corresponding lateral length parameters. L1 , L2 , L3 and its correction value L1_0 , L2_ 0 , L3_0 Precise control of the layout length, the spacing between each row is determined by dimensions. b ,b2 Further adjustments are needed.
[0130] Figure 8 This is a schematic diagram of the structure of the wear-resistant plate arrangement device for the injection mold slider assembly provided by the present invention, as shown below. Figure 8 As shown, it mainly includes, but is not limited to:
[0131] The region determination unit 810 is used to determine the wear-resistant plate arrangement area of the injection mold slider assembly.
[0132] The iterative arrangement unit 820 is used to iteratively execute the wear-resistant plate arrangement process until the remaining area of the wear-resistant plate arrangement area does not meet the requirements for arranging any standard wear-resistant plate in the preset wear-resistant plate standard library, and records all target standard wear-resistant plates arranged to the wear-resistant plate arrangement area.
[0133] Customization determination unit 830 is used to determine the custom wear-resistant plates applicable to the remaining area.
[0134] The arrangement execution unit 840 is used to arrange the target standard wear-resistant plate and the customized wear-resistant plate into the wear-resistant plate arrangement area according to the determined insertion coordinates.
[0135] The process for arranging wear-resistant plates involves identifying the largest standard wear-resistant plate in the wear-resistant plate standard library that is suitable for arranging in the wear-resistant plate arrangement area as a target standard wear-resistant plate. The arrangement area after removing the target standard wear-resistant plate from the wear-resistant plate arrangement area is then set as the new wear-resistant plate arrangement area.
[0136] It should be noted that the arrangement device for the wear-resistant plate of the injection mold slider assembly provided by the present invention can execute the arrangement method of the wear-resistant plate of the injection mold slider assembly described in any of the above embodiments during specific operation, and will not be described in detail in this embodiment.
[0137] The wear-resistant plate arrangement device for injection mold slider assembly provided by the present invention determines all target standard wear-resistant plates and customized wear-resistant plates to be arranged in the wear-resistant plate arrangement area by iteratively executing the wear-resistant plate arrangement process. This enables automated arrangement of wear-resistant plates, thereby improving the arrangement efficiency and accuracy of wear-resistant plates.
[0138] Figure 9 This is a schematic diagram of the structure of the electronic device provided by the present invention, such as... Figure 9As shown, the electronic device may include: a processor 910, a communications interface 920, a memory 930, and a communications bus 940, wherein the processor 910, the communications interface 920, and the memory 930 communicate with each other through the communications bus 940. The processor 910 can call logic instructions in the memory 930 to execute a method for arranging wear-resistant plates in an injection mold slider assembly. This method includes: determining the wear-resistant plate arrangement area of the injection mold slider assembly; iteratively executing the wear-resistant plate arrangement process until the remaining area of the wear-resistant plate arrangement area does not meet the requirement of arranging any standard wear-resistant plate in the preset wear-resistant plate standard library, and recording all target standard wear-resistant plates arranged in the wear-resistant plate arrangement area; determining a custom wear-resistant plate suitable for arrangement in the remaining area; and arranging the target standard wear-resistant plate and the custom wear-resistant plate in the wear-resistant plate arrangement area according to the determined insertion coordinates, respectively. The wear-resistant plate arrangement process involves determining the standard wear-resistant plate with the largest specification suitable for arrangement in the wear-resistant plate arrangement area from the wear-resistant plate standard library as a target standard wear-resistant plate, and setting the arrangement area after removing the target standard wear-resistant plate from the wear-resistant plate arrangement area as a new wear-resistant plate arrangement area.
[0139] Furthermore, the logical instructions in the aforementioned memory 930 can be implemented as software functional units and, when sold or used as independent products, can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present invention, or the part that contributes to the prior art, or a part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of the present invention. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.
[0140] On the other hand, the present invention also provides a computer program product, the computer program product including a computer program stored on a non-transitory computer-readable storage medium, the computer program including program instructions, when the program instructions are executed by a computer, the computer is able to execute the method for arranging wear-resistant plates of the injection mold slider assembly provided in the above embodiments, the method including: determining the wear-resistant plate arrangement area of the injection mold slider assembly; iteratively executing the wear-resistant plate arrangement process until the remaining area of the wear-resistant plate arrangement area does not meet the requirement of arranging any standard wear-resistant plate in the preset wear-resistant plate standard library, recording all target standard wear-resistant plates arranged to the wear-resistant plate arrangement area; determining a custom wear-resistant plate suitable for arrangement in the remaining area; arranging the target standard wear-resistant plate and the custom wear-resistant plate to the wear-resistant plate arrangement area according to the determined insertion coordinates respectively; the wear-resistant plate arrangement process is to determine the standard wear-resistant plate with the largest specification suitable for arrangement in the wear-resistant plate arrangement area in the wear-resistant plate standard library as a target standard wear-resistant plate, and setting the arrangement area after removing the target standard wear-resistant plate from the wear-resistant plate arrangement area as a new wear-resistant plate arrangement area.
[0141] In another aspect, the present invention also provides a non-transitory computer-readable storage medium storing a computer program thereon. When executed by a processor, the computer program implements a method for arranging wear-resistant plates for injection mold slider assemblies provided in the above embodiments. The method includes: determining a wear-resistant plate arrangement area for the injection mold slider assembly; iteratively executing a wear-resistant plate arrangement process until the remaining area of the wear-resistant plate arrangement area does not meet the requirement of arranging any standard wear-resistant plate in a preset wear-resistant plate standard library, and recording all target standard wear-resistant plates arranged in the wear-resistant plate arrangement area; determining a custom wear-resistant plate suitable for arrangement in the remaining area; and arranging the target standard wear-resistant plate and the custom wear-resistant plate in the wear-resistant plate arrangement area according to the determined insertion coordinates, respectively. The wear-resistant plate arrangement process involves determining the standard wear-resistant plate with the largest specification suitable for arrangement in the wear-resistant plate arrangement area from the wear-resistant plate standard library as a target standard wear-resistant plate, and setting the arrangement area after removing the target standard wear-resistant plate from the wear-resistant plate arrangement area as a new wear-resistant plate arrangement area.
[0142] The device embodiments described above are merely illustrative. The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the modules can be selected to achieve the purpose of this embodiment according to actual needs. Those skilled in the art can understand and implement this without any creative effort.
[0143] Through the above description of the embodiments, those skilled in the art can clearly understand that each embodiment can be implemented by means of software plus necessary general-purpose hardware platforms, and of course, it can also be implemented by hardware. Based on this understanding, the above technical solutions, in essence or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product can be stored in a computer-readable storage medium, such as ROM / RAM, magnetic disk, optical disk, etc., and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute the methods described in the various embodiments or some parts of the embodiments.
[0144] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A method for arranging wear-resistant plates in an injection mold slider assembly, characterized in that, include: Determine the wear-resistant plate arrangement area of the injection mold slider assembly; Iteratively execute the wear-resistant plate arrangement process until the remaining area of the wear-resistant plate arrangement area does not meet the requirements for arranging any standard wear-resistant plate in the preset wear-resistant plate standard library, and record all target standard wear-resistant plates arranged in the wear-resistant plate arrangement area. Determine the appropriate wear-resistant plates to be arranged in the remaining areas; The target standard wear-resistant plate and the customized wear-resistant plate are respectively arranged in the wear-resistant plate arrangement area according to the determined insertion coordinates; The wear-resistant plate arrangement process involves determining the largest standard wear-resistant plate in the wear-resistant plate standard library that is suitable for arrangement in the wear-resistant plate arrangement area as a target standard wear-resistant plate, and setting the arrangement area after removing the target standard wear-resistant plate from the wear-resistant plate arrangement area as a new wear-resistant plate arrangement area.
2. The method for arranging the wear-resistant plate of the injection mold slider assembly according to claim 1, characterized in that, The standard wear-resistant plates in the wear-resistant plate standard library that have the largest applicable specifications for the wear-resistant plate arrangement area include: Obtain the specification parameters of the wear-resistant plate arrangement area; The specifications of the wear-resistant plate arrangement area are matched with the specifications of each standard wear-resistant plate in the wear-resistant plate standard library. Determine the set of standard wear-resistant plates that can be arranged after matching; The largest standard wear-resistant plate is determined from the set of standard wear-resistant plates that can be arranged.
3. The method for arranging the wear-resistant plate of the injection mold slider assembly according to claim 2, characterized in that, The step of matching the specification parameters of the wear-resistant plate arrangement area with the specification parameters of each standard wear-resistant plate in the wear-resistant plate standard library includes: Iterate through each of the standard wear-resistant plates in the wear-resistant plate standard library; If the specifications of any of the standard wear-resistant plates are not greater than the specifications of the wear-resistant plate arrangement area, then the standard wear-resistant plate is added to the set of arrangeable standard wear-resistant plates.
4. The method for arranging the wear-resistant plate of the injection mold slider assembly according to claim 1, characterized in that, The arrangement area of the target standard wear-resistant plate is determined based on the specification parameters and arrangement spacing parameters of the target standard wear-resistant plate; The spacing parameters include the spacing between the target standard wear-resistant plate and adjacent wear-resistant plates, as well as the spacing between the target standard wear-resistant plate and the boundary of the wear-resistant plate arrangement area.
5. The method for arranging the wear-resistant plate of the injection mold slider assembly according to claim 1, characterized in that, The determination of the suitable custom wear-resistant plate to be arranged in the remaining area includes: Obtain the specification parameters of the remaining area; The customized wear-resistant plate is determined based on the specifications of the remaining area.
6. The method for arranging the wear-resistant plate of the injection mold slider assembly according to claim 1, characterized in that, The step of arranging the target standard wear-resistant plate and the customized wear-resistant plate into the wear-resistant plate arrangement area according to the determined insertion coordinates includes: Based on the design parameters of the injection mold slider assembly, the specification parameters of the target standard wear-resistant plate, and the first positional relationship parameters between the injection mold slider assembly and the target standard wear-resistant plate, the first insertion coordinate of the target standard wear-resistant plate is determined. Based on the design parameters of the injection mold slider assembly, the specification parameters of the customized wear-resistant plate, and the second positional relationship parameters between the injection mold slider assembly and the customized wear-resistant plate, the second insertion coordinates of the customized wear-resistant plate are determined. Based on the first insertion coordinate of each target standard wear-resistant plate and the second insertion coordinate of each custom wear-resistant plate, all target standard wear-resistant plates and all custom wear-resistant plates are arranged in the wear-resistant plate arrangement area.
7. The method for arranging the wear-resistant plate of the injection mold slider assembly according to claim 6, characterized in that, The design parameters of the injection mold slider assembly include at least one of the following parameters: The angle of the inclined guide post, the length of the slider, the width of the slider, the height of the slider, and the clearance angle.
8. The method for arranging the wear-resistant plate of the injection mold slider assembly according to claim 1, characterized in that, The determination of the wear-resistant plate arrangement area of the injection mold slider assembly includes: Obtain a three-dimensional model of the injection mold slider assembly; Identify the surface areas in the three-dimensional model where wear-resistant plates can be arranged; The wear-resistant plate arrangement area is determined based on the geometric features of the surface region; The surface area includes the bottom area and / or back area of the injection mold slider assembly.
9. A device for arranging wear-resistant plates in an injection mold slider assembly, characterized in that, include: The region determination unit is used to determine the wear-resistant plate arrangement area of the injection mold slider assembly; An iterative arrangement unit is used to iteratively execute the wear-resistant plate arrangement process until the remaining area of the wear-resistant plate arrangement area does not meet the requirement of arranging any standard wear-resistant plate in the preset wear-resistant plate standard library, and records all target standard wear-resistant plates arranged to the wear-resistant plate arrangement area. A customization determination unit is used to determine the custom wear-resistant plates applicable to the remaining areas; The arrangement execution unit is used to arrange the target standard wear-resistant plate and the customized wear-resistant plate into the wear-resistant plate arrangement area according to the determined insertion coordinates, respectively. The wear-resistant plate arrangement process involves determining the largest standard wear-resistant plate in the wear-resistant plate standard library that is suitable for arrangement in the wear-resistant plate arrangement area as a target standard wear-resistant plate, and setting the arrangement area after removing the target standard wear-resistant plate from the wear-resistant plate arrangement area as a new wear-resistant plate arrangement area.
10. An electronic device comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, characterized in that, When the processor executes the computer program, it implements the method for arranging the wear-resistant plates of the injection mold slider assembly as described in any one of claims 1 to 8.
11. A non-transitory computer-readable storage medium having a computer program stored thereon, characterized in that, When the computer program is executed by the processor, it implements the method for arranging the wear-resistant plates of the injection mold slider assembly as described in any one of claims 1 to 8.
12. A computer program product, comprising a computer program, characterized in that, When the computer program is executed by the processor, it implements the method for arranging the wear-resistant plates of the injection mold slider assembly as described in any one of claims 1 to 8.
Citation Information
Patent Citations
Piece arraying method and piece arraying device
CN102729093A
Photovoltaic module arrangement method and device and computer readable storage medium
CN117408040A