Method for quickly modifying slider assembly based on three-dimensional software

By calling the main assembly model generation mode in 3D software and automatically matching the sub-assembly models, the problems of data management difficulties and long design time caused by the large number of parts in the slider component model library are solved, realizing rapid modification and efficient design of slider components.

CN119283293BActive Publication Date: 2026-01-16ZHUHAI YINGCHENG ELECTRONICS TECH
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Patent Information

Application Number
CN202411549199.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-01
Publication Date
2026-01-16
Estimated Expiration
2044-11-01

AI Technical Summary

Technical Problem

The existing slider component model library contains a large number of parts, which makes data management difficult, the design process time-consuming, and modifications are easily lost, thus failing to effectively save time and effort.

Method used

By calling the main assembly model generation mode of the model library in the 3D software, the slider variable values ​​are obtained and the main assembly model is generated. The sub-assembly models are automatically matched and updated, and the user's previous modifications are retained, enabling rapid switching and modification of the slider model.

Benefits of technology

It simplifies the slider component design process, improves design efficiency, reduces repetitive modifications, and saves time and effort.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a method for quickly modifying a slider assembly based on three-dimensional software, comprising a model library, and the method comprises the following steps: calling a main assembly model generation mode of the model library; obtaining a slider variable value, which at least comprises one of the following: a slider type, a placement direction, a placement position and a slider related size; generating a main assembly model according to the obtained slider variable value, wherein the main assembly model comprises a slider model and a plurality of sub-assembly models; calling a sub-assembly model generation mode of the model library; obtaining a sub-assembly variable value; and updating a corresponding sub-assembly model on the main assembly model according to the obtained sub-assembly variable value. The application can effectively save time and effort and improve work efficiency.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of mold design, in particular to a method for quickly modifying a slider assembly based on three-dimensional software. BACKGROUND

[0002] In order to facilitate product demolding, a slider assembly is generally provided in an injection mold. The slider assembly generally includes a slider main body, an inclined guide pin assembly, a pressing plate assembly, a slider lock block assembly, a back oil plate assembly, and a bottom oil plate assembly.

[0003] In order to facilitate the design and modification of the slider assembly, a slider assembly model library is generally established in three-dimensional software. A user can call a slider assembly with similar structure from the slider assembly model library and generate a three-dimensional model. Then, the user can optimize and modify the three-dimensional model to obtain a slider assembly that meets the design requirements.

[0004] In the slider assembly model library, the slider main body, the inclined guide pin assembly, and the pressing plate assembly are respectively expressed by multiple different types of models. This results in a large number of parts in the model library. Various parts can be combined to form multiple different slider assemblies, further increasing the data volume of the model library. This is not conducive to data management, maintenance, and improvement. In addition, during the design of the slider assembly, when a part such as the slider main body is switched to a different type of model, the new model will directly replace the old model. This not only takes a long time to replace, but also, once the switch is made, the user's previous modifications to the model will be lost. This results in a waste of previous modification work, and the user needs to re-modify, which prolongs the design time and cannot truly save the user's time and effort. SUMMARY

[0005] The purpose of the present application is to provide a method for quickly modifying a slider assembly based on three-dimensional software, which can effectively save time and effort and improve work efficiency.

[0006] In order to achieve the above purpose, the present application provides a method for quickly modifying a slider assembly based on three-dimensional software, including a model library. The method comprises:

[0007] calling a main assembly model generation mode of the model library;

[0008] obtaining a slider variable value, the slider variable value including at least one of the following: slider type, placement direction, placement position, and slider related dimensions;

[0009] generating a main assembly model according to the obtained slider variable value, the main assembly model including a slider model and a plurality of sub-assembly models;

[0010] calling a sub-assembly model generation mode of the model library;

[0011] obtaining a sub-assembly variable value;

[0012] According to the obtained sub-assembly variable value, the corresponding sub-assembly model is updated on the main assembly model.

[0013] From the above scheme, it can be seen that through the above setting, the user can first call the main assembly model production mode in the model library, then input or modify the slider variable value of the current slider model, and the system will automatically match a plurality of sub-assembly models according to the slider variable value, and express the slider model and the plurality of sub-assembly models in the form of assembly in the main assembly model; when one of the sub-assembly models needs to be modified, the user can first call the sub-assembly model generation mode that needs to be modified, then input or modify the sub-assembly variable value, and the system will automatically update the corresponding sub-assembly model on the main assembly model. The related parameters input or modified by the user about the slider model are automatically retained; when the user needs to modify another sub-assembly model, the same operation as above can be used, and the system will automatically update the corresponding sub-assembly model on the main assembly model, and the modification of the previous sub-assembly model by the user is retained. The present application can quickly call the appropriate slider model and match the appropriate sub-assembly model, and the user's previous modification operation is retained in the subsequent modification process, which is helpful to save time and effort and improve work efficiency.

[0014] Further, during the generation of the main assembly model according to the obtained slider variable value, the sub-assembly models matched with the slider model in the model library are automatically called, and the sub-assembly models are all connected with the slider model.

[0015] From the above scheme, it can be seen that through the above setting, when the user selects the appropriate slider model, the system automatically matches the appropriate sub-assembly model, without the need for the user to design one by one, which is helpful to improve the design efficiency.

[0016] Further, the model library contains a slider model group, the slider model group contains a plurality of design step features, the plurality of design step features can be matched to form a plurality of different types of slider models, and the plurality of different types of slider models each have a unique slider type number.

[0017] The method further includes a slider model modification step, which includes:

[0018] The main assembly model generation mode of the model library is called.

[0019] A target slider variable value is obtained, and the target slider variable value includes a target slider type number.

[0020] According to the obtained target slider variable value, the slider model is updated on the main assembly model, and the updating of the slider model includes: restoring and displaying the corresponding design step feature, and suppressing other design step features.

[0021] From the above scheme, it can be seen that through the above setting, the switching between different types of slider models is mainly realized by restoring or suppressing the features of the driving design step, which facilitates the reservation of part of the modification made by the user to the slider model in the early stage. The part of the modification can be the modification of parameters other than the parameters related to the type of the slider model, such as the size, position and other parameters of the slider model.

[0022] Further, the plurality of sub-assembly models include at least one of: a bevel guide needle assembly model, a pressure plate assembly model, a slider lock block assembly model, a back oil plate assembly model, a bottom oil plate assembly model, and a slider spring assembly model. The bevel guide needle assembly model, the pressure plate assembly model, the slider lock block assembly model, the back oil plate assembly model, the bottom oil plate assembly model, and the slider spring assembly model are all cooperatively arranged on the slider model.

[0023] Further, the bevel guide needle assembly model includes a bevel guide needle individual model and a plurality of bevel guide needle support block individual models of different types. Each bevel guide needle support block individual model has a unique support block type number.

[0024] The method further includes:

[0025] Calling a bevel guide needle assembly model generation mode;

[0026] Obtaining a sub-assembly variable value of the bevel guide needle assembly model, the sub-assembly variable value including a target support block type number;

[0027] According to the obtained sub-assembly variable value, updating the bevel guide needle assembly model on the main assembly model, the updating of the bevel guide needle assembly model including: restoring and displaying the corresponding bevel guide needle support block individual model, and suppressing bevel guide needle support block individual models of other types.

[0028] From the above scheme, it can be seen that through the above setting, by modifying the support block type number, different types of support blocks can be switched, which has the advantages of simple operation and convenience. Moreover, different types of support blocks are displayed or hidden through restoration or suppression, which saves time and effort compared to the replacement method in the prior art. In addition, through the suppression method, the temporarily unnecessary models can be implicitly reserved, and they can be restored at any time when needed in the future.

[0029] Further, each sub-assembly model includes a plurality of individual models. When updating the target sub-assembly model on the main assembly model according to the obtained target sub-assembly variable value, the parameter change of the target sub-assembly model can drive the parameter change of the individual models within it.

[0030] From the above scheme, through the above setting, when the target sub-assembly model is modified, the parameter of the individual model in the target sub-assembly model will change, so that the target sub-assembly model and the individual model always maintain the latest and best cooperation, and the process of separately modifying the individual model by the user is reduced, and the operation is simplified, the efficiency and design accuracy are provided.

[0031] Further, the method further comprises:

[0032] calling a target individual model generation mode;

[0033] obtaining a target individual variable value;

[0034] updating the target individual model and the parameter of the target individual model on the main assembly model according to the obtained target individual variable value, and the parameter change of the target individual model will drive the parameter change of other individual models cooperating with the target individual model.

[0035] From the above scheme, through the above setting, when the target sub-assembly model is modified, the parameter of the individual model in the target sub-assembly model will change, so that the target sub-assembly model and the individual model always maintain the latest and best cooperation, and the process of separately modifying the individual model by the user is reduced, and the operation is simplified, the efficiency and design accuracy are provided.

[0036] Further, the main assembly model, the sub-assembly model and the individual model form a three-level mode from top to bottom in turn, and the parameters are transmitted from top to bottom in turn.

[0037] Further, the model library is provided with a main interface and a model display area for displaying the model, and the main interface comprises a display area, a calling area and a variable value input area. BRIEF DESCRIPTION OF DRAWINGS

[0038] Figure 1 is a structure diagram of different types of slider models in the model library of the embodiment of the application and a first perspective view of a plurality of sub-assembly models corresponding to the slider models.

[0039] Figure 2 is a structure diagram of different types of slider models in the model library of the embodiment of the application and a second perspective view of a plurality of sub-assembly models corresponding to the slider models.

[0040] Figure 3 is a schematic diagram of design steps of three different types of slider models in the embodiment of the application.

[0041] Figure 4 is a flow chart of the embodiment of the application.

[0042] Figure 5 is a schematic diagram of the main interface and the model display area when the main assembly model generation mode is called in the embodiment of the application.

[0043] Figure 6is a flow chart of modifying the slider model step of the embodiment of the present application.

[0044] Figure 7 is a flow chart of modifying the inclined guide needle assembly model of the embodiment of the present application.

[0045] Figure 8 is a schematic diagram of the main interface when modifying the inclined guide needle assembly model of the embodiment of the present application.

[0046] Figure 9 is a schematic diagram of the main interface when modifying the press plate assembly model of the embodiment of the present application.

[0047] Figure 10 is a schematic diagram of the main interface when modifying the slider lock block assembly model of the embodiment of the present application.

[0048] Figure 11 is a schematic diagram of the main interface when modifying the back oil plate assembly model of the embodiment of the present application.

[0049] Figure 12 is a schematic diagram of the main interface when modifying the bottom oil plate assembly model of the embodiment of the present application.

[0050] Figure 13 is a schematic diagram of the main interface when modifying the slider spring assembly model of the embodiment of the present application.

[0051] Figure 14 is a flow chart of modifying the individual model of the embodiment of the present application.

[0052] The present application is further described below in conjunction with the accompanying drawings and embodiments. DETAILED DESCRIPTION

[0053] Referring to Figures 1 to 3 The method provided by the embodiment can be applied to NX software, Proe software, Creo software or Solidworks software, and the embodiment is preferably NX software.

[0054] The method comprises a model library, and the model library comprises a slider model as a whole and a plurality of sub-assembly models.

[0055] The slider model contains a plurality of design step features in the overall model. The design step features are the basic components of the three-dimensional entity model. The design step features can be geometric shapes, such as stretching, rotating, etc. The design step features can also be operations, such as rounding, chamfering, holes, etc. Several of the plurality of design step features can be combined to form a plurality of different types of slider models 2. Different types of slider models 2 can have one or more than two identical design step features, but the size data implied in these identical design step features can be different. This embodiment takes three different types of slider models 2 as an example, which are B-type slider model 2a, F-type slider model 2b and G-type slider model 2c. Any one of the B-type slider model 2a, the F-type slider model 2b and the G-type slider model 2c can be combined with a plurality of sub-assembly models to form a main assembly model 1 according to the assembly relationship.

[0056] In this embodiment, the main assembly model 1 is a slider assembly model, and the plurality of sub-assembly models at least include one of the following: a bevel guide needle assembly model 3, a pressing plate assembly model 4, a slider lock block assembly model 5, a back oil plate assembly model 6, a bottom oil plate assembly model 7 and a slider spring assembly model 8. The bevel guide needle assembly model 3, the pressing plate assembly model 4, the slider lock block assembly model 5, the back oil plate assembly model 6, the bottom oil plate assembly model 7 and the slider spring assembly model 8 are all arranged on the slider model 2.

[0057] Each sub-assembly model contains a plurality of individual models. For example, the bevel guide needle assembly model 3 includes a bevel guide needle model 31, a plurality of different types of bevel guide needle support block models 32 and a plurality of screws. In the bevel guide needle assembly model 3, the bevel guide needle model 31, the bevel guide needle support block model 32 and the screws are all individual models.

[0058] The main assembly model 1, the sub-assembly model and the individual model of this embodiment form a three-level mode in turn from top to bottom, and transmit parameters in turn from top to bottom. That is, when the main assembly model 1 parameter changes, the sub-assembly model parameter changes; when the sub-assembly model parameter changes, the individual model parameter in it changes. The parameters of this embodiment include shape structure, size and position data of the model, etc.

[0059] Referring to Figure 4 and Figure 5 in combination with Figure 1 and Figure 2The model library is provided with a main interface 10 and a model display area 20. The main interface 10 includes a display area 101, a calling area 102 and a variable value input area 103. The user can call the main assembly model generation mode, each sub-assembly model generation mode and the individual model generation mode in the calling area 102. The user can input or modify the related data in the variable value input area 103. The display area 101 is used to display the modification reference diagram, which aims to help the user quickly understand the meaning of each variable name in the variable value input area. The model display area 20 is used to display the generated main assembly model 1, and can also display the sub-assembly model or the individual model alone. The model display area 20 is the graphic window of the three-dimensional software.

[0060] The embodiment provides a method for quickly modifying a slider assembly based on three-dimensional software, which comprises the following steps:

[0061] S1: calling the main assembly model generation mode of the model library. The user can select "slider combination" in the calling area 102 of the main interface 10. At this time, the display area 101 of the main interface 10 displays the coordinate system, three slider models 2a / 2b / 2c and the initial position of the slider model 2 in the coordinate system.

[0062] S2: obtaining the slider variable value, which at least includes one of the following: slider type, placement direction, placement position and slider related size. The user can input or select the specific variable value in the variable value input area 103 of the main interface 10. The slider variable value can be input by the user or automatically calculated by the system according to the current parameters of the slider. When the automatic calculation is adopted, the corresponding variable value in the variable value input area 103 displays a negative number, such as "-1", to facilitate the formation of obvious distinction with other positive numbers input by the user. Figures 8 to 13 In the embodiment, the "-1" displayed in the variable value input area 103 represents the automatic calculation, which will not be described one by one.

[0063] S3: generating the main assembly model 1 according to the obtained slider variable value and displaying it in the model display area 20. At this time, the main assembly model 1 includes one kind of slider model and a plurality of different sub-assembly models matched with the slider model.

[0064] When the main assembly model 1 is generated, the user can carefully check the design in the model display area 20 to see whether it meets the requirements or whether there are interference problems. If the slider model does not meet the design requirements or has interference problems, the above steps S1, S2 and S3 are repeated. If there is a problem in a certain sub-assembly model, the following steps can be continued:

[0065] S4: Call the sub-assembly model generation mode of the model library. The user can select the target sub-assembly model in the calling area 102 of the main interface 10, and the target sub-assembly model can be any one of the following: the inclined guide pin assembly model 3, the pressing plate assembly model 4, the slider lock block assembly model 5, the back oil plate assembly model 6, the bottom oil plate assembly model 7, and the slider spring assembly model 8. As shown in Figure 8 , selecting "inclined guide pin assembly" calls the inclined guide pin assembly model generation mode.

[0066] S5: Obtain the sub-assembly variable value. Different sub-assembly models have different sub-assembly variable values, and the sub-assembly variable values of the embodiment include variable names and variable values. Each variable name has a unique variable value. The sub-assembly variable value can be automatically adapted according to the user's selection of the slider model in the main assembly model 1, and the user can further modify it according to the actual situation to generate a personalized sub-assembly model, and finally generate a main assembly model 1 that meets the design requirements.

[0067] As shown in Figure 8 , the sub-assembly variable values of the inclined guide pin assembly model include at least one of the following: metric units, bevel standard, interval, bevel type, bevel diameter, bevel number, bevel position, and plate A bottom position. The user can input or select the specific variable value in the variable value input area 103 of the main interface 10. If the user only modifies part of the sub-assembly variable value, the system will automatically adapt the appropriate variable value by default for the sub-assembly variable value that has not been modified, and at this time the variable value is represented by a negative number, such as "-1".

[0068] S6: Update the corresponding sub-assembly model on the main assembly model according to the obtained sub-assembly variable value, so that the main assembly model displayed in the model display area 20 is the latest.

[0069] During the generation of the main assembly model according to the obtained slider variable value, the system will automatically call each of the sub-assembly models in the model library that matches the slider model, and each of the sub-assembly models is connected with the slider model.

[0070] When the main assembly model is updated, the user can carefully check the design to see if it meets the requirements or if there are any interference problems, etc. If there is a problem with the slider model, repeat steps S1, S2, and S3; if there is a problem with other sub-assembly models, repeat steps S4, S5, and S6.

[0071] As shown in Figure 3 , Figure 5 , and Figure 6 , and in combination with Figure 8 , if the type of the slider module needs to be modified during the design process, the following steps can be performed, specifically:

[0072] The slider model group contains three different types of slider models 2, namely, a B-type slider model 2a, an F-type slider model 2b, and a G-type slider model 2c. Each of the three different types of slider models 2 has a unique slider type number, wherein "B", "F", and "G" are the slider type numbers.

[0073] The method for quickly modifying the slider assembly based on the three-dimensional software provided in the embodiment further includes a slider model modification step. The slider model modification step can be arranged after the step S3 or after the step S6. Specifically:

[0074] The slider model modification step includes:

[0075] S10: A main assembly model generation mode of the model library is called, and the user can select "slider combination" in a calling area 102 of the main interface 10.

[0076] S11: A target slider variable value is obtained, and the target slider variable value includes a target slider type number. The user can point and select the required slider type number in a variable input area of the main interface 10.

[0077] S12: The slider model 2 is updated on the main assembly model 1 according to the obtained target slider variable value. The updating of the slider model 2 includes: restoring and displaying the corresponding design step feature and suppressing other design step features.

[0078] The embodiment restores or suppresses the design step feature, so that only one slider model 2 is contained in the main assembly model 1. The modification of the slider model 2 by the user can be linked to other slider models 2 of different types, thereby avoiding the loss of modification parameters due to switching between different types of slider models 2.

[0079] Since the slider model 2 is the basis of the main assembly model 1, and the sub-assembly models are all installed on the slider model 2, in the process of modifying the type of the slider model 2, the updating of the slider model 2 can also drive the associated parameters of the sub-assembly models to change, and the personalized parameters of the sub-assembly models can remain unchanged. The personalized parameter refers to a parameter that exists independently in the sub-assembly model, and the parameter is not directly associated with the slider model 2, such as the metric unit and the bevel standard data in the inclined needle assembly model 3. The associated parameter refers to other parameters except the personalized parameter, and the change of the associated parameter will change with the change of the superior assembly. In order to adapt to special needs, the associated parameter also needs to be changed. When the variable value corresponding to the associated parameter is a negative number, such as "-1", the actual value will change with the change of the superior assembly. When the user modifies the variable value from a negative number to a positive number, the actual value is the positive number.

[0080] For example, when the bevel diameter of the inclined guide pin assembly model 3 is "-1", the system will automatically match the appropriate bevel diameter according to the system's pre-set formula; when the user modifies "-1" to "10", the actual value of the variable is "10". The bevel diameter of this embodiment is the diameter of the inclined guide pin.

[0081] During the design process, if other sub-assembly models need to be modified, the above steps S4, S5 and S6 can be repeated.

[0082] The inclined guide pin assembly model 3 is taken as an example for detailed description as follows:

[0083] Referring to Figure 7 and Figure 8 , in combination with Figure 1 , the inclined guide pin assembly model 3 includes inclined guide pin individual models and a plurality of inclined guide pin support block individual models of different types, each of which has a unique support block type number. The support block types of this embodiment include automatic matching, no support block, A-type support block, B-type support block and C-type support block, and the support block type numbers corresponding to the automatic matching, no support block, A-type support block, B-type support block and C-type support block are "-1", "0", "1", "2" and "3" in sequence. It should be noted that "-1" and "automatic matching" mean that the system automatically adapts the appropriate support block according to the slider model 2 selected by the user before, for example, the C-type support block is automatically adapted for the G-type slider model. "No support block" and "0" mean that no support block is needed in the main assembly model 1.

[0084] When the inclined guide pin assembly model 3 needs to be modified, the following steps can be performed:

[0085] S20: Call the inclined guide pin assembly model generation mode. The user can select "inclined guide pin assembly" in the calling area 102 of the main interface 10.

[0086] S21: Obtain the sub-assembly variable values of the inclined guide pin assembly model 3, which include the metric and imperial units, bevel standard, interval, bevel type, bevel diameter, bevel number, bevel position and plate A bottom position, etc. The bevel type corresponds to the support block type, and the user can select the required support block type number here.

[0087] S22: Update the inclined guide pin assembly model 3 on the main assembly model according to the obtained sub-assembly variable values. The update of the inclined guide pin assembly model includes: restoring and displaying the corresponding inclined guide pin model, and suppressing other types of inclined guide pin support block individual models.

[0088] For example, the user selects "1" type at "bevel type", and when the inclined guide pin assembly model 3 is updated, the support block individual model of "1" type is restored and displayed, and the support block individual models of "-1", "0", "2" and "3" types are suppressed.

[0089] For the main assembly model 1 containing a plurality of sub-assembly models, the user can check each sub-assembly model one by one, and perform the above operation for the sub-assembly model which needs to be modified, as shown in Figures 8 to 13 , which will not be repeated here.

[0090] Referring to Figure 14 , the method for quickly modifying the slider assembly based on the three-dimensional software provided by the embodiment further comprises:

[0091] In the design process, when the user needs to modify the individual model, the following steps can be performed:

[0092] S30: Call the target individual model generation mode. The user can select an individual model in any sub-assembly model as the target individual model in the calling area 102 of the main interface 10.

[0093] S31: Obtain the target individual variable value. The user can modify the target individual variable value in the main interface 10.

[0094] S32: Update the target individual model and its parameters in the main assembly model according to the obtained target individual variable value. The parameter change of the target individual model will drive the parameter change of other individual models cooperating with it, which includes but is not limited to the shape structure, size and position data of the individual model.

[0095] As can be seen from the above, through the above setting, the user can first call the main assembly model production mode in the model library, then input or modify the slider variable value of the current slider model, and the system will automatically match a plurality of sub-assembly models according to the slider variable value, and express the slider model and the plurality of sub-assembly models in the main assembly model in the form of assembly; when one of the sub-assembly models needs to be modified, the user can first call the sub-assembly model generation mode which needs to be modified, then input or modify the sub-assembly variable value, and the system will automatically update the corresponding sub-assembly model on the main assembly model; when the user needs to modify another sub-assembly model, the same operation as above can be used, and the system will automatically update the corresponding sub-assembly model on the main assembly model, and the previous modification of the user on the previous sub-assembly model is retained. The present application can quickly call the appropriate slider model and match the appropriate sub-assembly model, and the previous modification operation of the user is retained in the subsequent modification process, which is helpful to save time and effort, and provides work efficiency.

[0096] Finally, it should be noted that the above merely represents the preferred embodiments of the present application and is not intended to limit the present application, and the present application can have various changes and modifications for those skilled in the art, and any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. A method for quickly modifying a slider assembly based on three-dimensional software, comprising a model library, characterized in that: the method comprises: calling a main assembly model generation mode of the model library; obtaining slider variable values, the slider variable values at least comprising one of the following: slider type, placement direction, placement position, and slider related dimensions; generating a main assembly model according to the obtained slider variable values, the main assembly model comprising a slider model and a plurality of sub-assembly models; calling a sub-assembly model generation mode; obtaining sub-assembly variable values; updating corresponding sub-assembly models on the main assembly model according to the obtained sub-assembly variable values; the model library contains a slider model group, the slider model group contains a plurality of design step features, the plurality of design step features can be combined to form a plurality of different types of slider models, and the plurality of different types of slider models each have a unique slider type number; the method further comprises a slider model modification step, the slider model modification step comprising: calling a main assembly model generation mode of the model library; obtaining target slider variable values, the target slider variable values comprising a target slider type number; updating the slider model on the main assembly model according to the obtained target slider variable values, the updating of the slider model comprising: restoring and displaying the corresponding design step features, and suppressing other design step features. 2.The method for quickly modifying a slider assembly based on three-dimensional software according to claim 1, characterized in that: during the process of generating a main assembly model according to the obtained slider variable values, the sub-assembly models matched with the slider model in the model library are automatically called, and the sub-assembly models are connected with the slider model. 3.The method for quickly modifying a slider assembly based on three-dimensional software according to claim 1, characterized in that: the plurality of sub-assembly models at least comprise one of the following: a bevel pin assembly model, a pressing plate assembly model, a slider lock block assembly model, a back oil plate assembly model, a bottom oil plate assembly model, and a slider spring assembly model, and the bevel pin assembly model, the pressing plate assembly model, the slider lock block assembly model, the back oil plate assembly model, the bottom oil plate assembly model, and the slider spring assembly model are all arranged on the slider model. 4.The method for quickly modifying a slider assembly based on three-dimensional software according to claim 3, characterized in that: the bevel pin assembly model comprises a bevel pin individual model and a plurality of different types of bevel pin support block individual models, and each bevel pin support block individual model has a unique support block type number; the method further comprises: calling a bevel pin assembly model generation mode; obtaining sub-assembly variable values of the bevel pin assembly model, the sub-assembly variable values comprising a target support block type number; updating the bevel pin assembly model on the main assembly model according to the obtained sub-assembly variable values, the updating of the bevel pin assembly model comprising: restoring and displaying the corresponding bevel pin support block individual model, and suppressing other types of bevel pin support block individual models.

5. The method for quickly modifying the slider assembly based on the three-dimensional software according to claim 1, characterized in that: each of the sub-assembly models comprises a plurality of individual models; when the target sub-assembly model is updated on the main assembly model according to the obtained target sub-assembly variable value, the parameter change of the target sub-assembly model can drive the parameter change of the individual models in the target sub-assembly model.

6. The method for quickly modifying the slider assembly based on the three-dimensional software according to claim 1, characterized in that: the method further comprises: calling a target individual model generation mode; obtaining a target individual variable value; updating the target individual model and its parameters on the main assembly model according to the obtained target individual variable value, and the parameter change of the target individual model can drive the parameter change of other individual models cooperating with the target individual model.

7. The method for quickly modifying the slider assembly based on the three-dimensional software according to claim 5 or 6, characterized in that: the main assembly model, the sub-assembly model and the individual model form a three-level mode from top to bottom in sequence, and the parameters are transmitted from top to bottom in sequence.

8. The method for quickly modifying the slider assembly based on the three-dimensional software according to any one of claims 1 to 6, characterized in that: the model library is provided with a main interface and a model display area for displaying models, and the main interface comprises a display area, a calling area and a variable value input area.

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