A cabinet, a flexible intelligent manufacturing device and system based on AI intelligent control

By setting up standard interface groups and module interface groups on the chassis and combining them with AI intelligent control, the problem that traditional chassis cannot adapt to diverse production needs has been solved, the compatibility and interchangeability of working modules have been achieved, and the flexibility and production efficiency of the equipment have been improved.

CN224684629UActive Publication Date: 2026-08-25JINDONGLI INTELLINGENT TECH (SZ) CO LTD
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Patent Information

Application Number
CN202522484011.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-24
Publication Date
2026-08-25
Estimated Expiration
2035-11-24

AI Technical Summary

Technical Problem

Traditional chassis mounting positions are customized for specific functional modules, making them unsuitable for different types of modules. Furthermore, the positions of the feeding, loading, function, and unloading positions are fixed, making it difficult to meet the needs of multi-variety, small-batch production.

Method used

Design a chassis with standard interface groups on the mounting positions and module interface groups on the bottom of the working modules. The interface groups have uniform size and connection form, supporting the detachable installation of different or the same type of modules. Combined with AI intelligent control, it can realize rapid module identification, parameter synchronization and real-time verification, adapting to diverse production needs.

Benefits of technology

It achieves compatibility and interchangeability of working modules, improves equipment flexibility and production efficiency, and reduces replacement and modification costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a kind of chassis, flexible intelligent manufacturing device and system based on AI intelligent control, chassis includes multiple installation sites to provide detachable installation of work module, each installation site is correspondingly provided with standard interface group, the bottom of work module is equipped with module interface group, module interface group and standard interface group all have same cooperation size and connection form;Installation site includes feeding site, loading site, function site and unloading site, unloading site is set along X axis direction extension, feeding site, loading site and function site are all located in the same side of unloading site, and feeding site and / or function site are set to the side of loading site.The standard interface group set on the chassis and the module interface group set on the work module cooperate, which is conducive to solving the problem of poor compatibility and interchangeability of the work module. The feeding site, loading site and function site of the present application can be adjusted according to actual needs, which is conducive to adapting to diversified production needs.
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Description

Technical Field

[0001] This utility model relates to the technical field of automated equipment, and in particular to a chassis, a flexible intelligent manufacturing device and system based on AI intelligent control. Background Technology

[0002] In the field of automated manufacturing equipment, the chassis, as the core structure housing various working modules (such as feeding modules, processing modules, and inspection modules), directly impacts production efficiency and equipment flexibility. However, traditional chassis mounting positions are typically customized for specific functional modules. Differences in mounting structures, interface dimensions, and connection methods among different modules mean that the same chassis cannot accommodate different types of working modules. Even replacing modules of the same type requires readjusting the mounting structure, severely limiting the flexible switching of equipment functions and making it difficult to adapt to the needs of multi-variety, small-batch production. Furthermore, the relative positions of the feeding, loading, functional positions (such as processing and inspection positions), and unloading positions in existing chassis are fixed, making it impossible to adjust the arrangement or spatial distribution of each station according to changes in the production process. For example, when the production process requires adding or removing processing steps or adjusting material flow paths, the fixed layout of the chassis is difficult to match the new process requirements, necessitating a complete modification of the equipment, increasing production and time costs. Utility Model Content

[0003] The first objective of this invention is to provide a chassis that addresses the technical problem that existing automated equipment has a fixed layout and is difficult to adapt to diverse production needs.

[0004] To solve the above technical problems, a chassis is provided, including multiple mounting positions for detachable installation of working modules, each mounting position is provided with a standard interface group, and the bottom of each working module is provided with a module interface group. The module interface group and the standard interface group have the same mating size and connection form.

[0005] The installation position includes a feeding position, a loading position, a functional position, and a unloading position. The unloading position extends along the X-axis. The feeding position, the loading position, and the functional position are all located on the same side of the unloading position. The feeding position and / or the functional position are located next to the loading position.

[0006] Furthermore, the feeding position is located on the first side of the loading position and on the side opposite to the unloading position, and the functional position is located on the second side of the loading position and close to the unloading position; or,

[0007] The feeding position is located on the first side of the feeding position and between the unloading position and the feeding position, and the function position is located on the second side of the feeding position and close to the unloading position.

[0008] Furthermore, the unloading position, the loading position, and the feeding position are arranged sequentially along the Y-axis, and the functional position and the loading position are at the same horizontal position along the X-axis.

[0009] Furthermore, the feeding position, the loading position, and the functional position are arranged sequentially along the X-axis, and the feeding position, the loading position, and the functional position are at the same horizontal position.

[0010] Furthermore, the loading position, the feeding position, and the functional position are arranged sequentially along the X-axis, and the loading position, the feeding position, and the functional position are at the same horizontal position.

[0011] Furthermore, the feeding position, the functional position, and the loading position are arranged sequentially along the X-axis direction, and the feeding position, the functional position, and the loading position are at the same horizontal position.

[0012] Furthermore, the functional area includes a first functional area and a second functional area; the first functional area and the second functional area are arranged adjacent to each other along the X-axis direction, or the first functional area and the second functional area are arranged adjacent to each other along the Y-axis direction.

[0013] Furthermore, the material feeding position includes a first material feeding area and a second material feeding area, both of which extend along the X-axis direction, and the first material feeding area is located between the second material feeding area and the functional position.

[0014] The second objective of this utility model is to provide a flexible intelligent manufacturing device based on AI intelligent control, comprising:

[0015] The aforementioned chassis;

[0016] Multiple working modules are provided, and each of the mounting positions is provided with a standard interface group. The bottom of each working module is provided with a module interface group. The standard interface group and the module interface group cooperate to allow the working module to be detachably installed on the chassis. The module interface group and the standard interface group have the same mating size and connection form to realize the interchangeability of the same or different types of working modules.

[0017] The third objective of this utility model is to provide a flexible intelligent manufacturing system, comprising:

[0018] At least two of the aforementioned flexible intelligent manufacturing devices based on AI intelligent control;

[0019] The connecting components include a first connector and a second connector. The first connector is fixedly installed on the first AI-based flexible intelligent manufacturing device, and the second connector is fixedly installed on the second AI-based flexible intelligent manufacturing device. The first connector includes a plug-in portion, and the second connector includes an alignment groove that mates with the plug-in portion. When the two AI-based flexible intelligent manufacturing devices are connected, the plug-in portion is inserted into the alignment groove, and the first connector is connected to the second AI-based flexible intelligent manufacturing device, while the second connector is connected to the first AI-based flexible intelligent manufacturing device.

[0020] Implementing the embodiments of this utility model will have the following beneficial effects:

[0021] In this embodiment, the chassis has two main features. First, the standard interface group on the chassis and the module interface group on the working module cooperate with each other, and both have the same mating dimensions and connection method. This allows for the detachable installation and free interchangeability of different or the same type of working modules, which helps solve the problem of poor compatibility and interchangeability of working modules. Second, the position of the unloading position is fixed, while the feeding position, loading position, and functional positions can be adjusted according to actual needs, which helps to adapt to diverse production requirements. Attached Figure Description

[0022] To more clearly illustrate the technical solutions in the embodiments of this utility model 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 only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0023] Figure 1 This is a schematic diagram of the layout of each mounting position as described in Embodiment 1 of this utility model;

[0024] Figure 2 This is a schematic diagram of the flexible intelligent manufacturing device based on AI intelligent control as described in Embodiment 1 of this utility model;

[0025] Figure 3 This is a schematic diagram of the flexible intelligent manufacturing system described in Embodiment 1 of this utility model;

[0026] Figure 4 This is a schematic diagram of the connecting member described in Embodiment 1 of this utility model;

[0027] Figure 5This is a schematic diagram of the layout of each mounting position as described in Embodiment 2 of this utility model;

[0028] Figure 6 This is a schematic diagram of the layout of each mounting position as described in Embodiment 3 of this utility model. Figure 1 ;

[0029] Figure 7 This is a schematic diagram of the layout of each mounting position as described in Embodiment 3 of this utility model. Figure 2 ;

[0030] Figure 8 This is a schematic diagram of the layout of each mounting position as described in Embodiment 3 of this utility model. Figure 3 ;

[0031] Figure 9 This is a schematic diagram of the layout of each mounting position as described in Embodiment 4 of this utility model;

[0032] Figure 10 This is a schematic diagram of the layout of each mounting position as described in Embodiment 5 of this utility model;

[0033] Figure 11 This is a schematic diagram of the layout of each mounting position as described in Embodiment Six of this utility model.

[0034] Wherein: 100, chassis; 110, mounting position; 111, feeding position; 112, loading position; 113, functional position; 1131, first functional area; 1132, second functional area; 114, unloading position; 1141, first unloading area; 1142, second unloading area; 115, standard interface group;

[0035] 200. Flexible intelligent manufacturing device based on AI intelligent control; 210. Working module; 211. Module interface group;

[0036] 300. Flexible intelligent manufacturing system; 310. Connecting component; 311. First connector; 3111. Insertion part; 312. Second connector; 3121. Alignment groove. Detailed Implementation

[0037] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. Preferred embodiments of this utility model are shown in the drawings. However, this utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of the disclosure of this utility model.

[0038] It should be noted that when a component is said to be "fixed to" another component, it can be directly attached to the other component or there may be an intervening component. When a component is said to be "connected to" another component, it can be directly connected to the other component or there may be an intervening component. The terms "vertical," "horizontal," "left," "right," and similar expressions used in this document are for illustrative purposes only.

[0039] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.

[0040] Example 1:

[0041] Please refer to Figures 1-4 This utility model embodiment provides a chassis 100, which includes multiple mounting positions 110 for detachable installation of working modules 210. Each mounting position 110 is provided with a standard interface group 115. The bottom of each working module 210 is provided with a module interface group 211. The module interface group 211 and the standard interface group 115 have the same mating dimensions and connection form. The mounting position 110 includes a feeding position 111, a loading position 112, a functional position 113 and a discharging position 114. The discharging position 114 extends along the X-axis direction. The feeding position 111, the loading position 112 and the functional position 113 are all located on the same side of the discharging position 114. The feeding position 111 and / or the functional position 113 are located next to the loading position 112. For example, the feeding position 111 and / or the function position 113 being located beside the loading position 112 includes the following three cases: the first case is that the feeding position 111 and the function position 113 are located beside the loading position 112, including the same side, opposite side or adjacent side; the second case is that only the feeding position 111 is located beside the loading position 112; and the third case is that the function position 113 is located beside the loading position 112.

[0042] In this embodiment, the chassis 100 has two main features. First, the standard interface group 115 on the chassis 100 cooperates with the module interface group 211 on the working module 210. Both the module interface group 211 and the standard interface group 115 have the same mating dimensions and connection form, enabling the detachable installation and free interchangeability of different or the same type of working modules 210. This helps solve the problem of poor compatibility and interchangeability of the working modules 210. Second, the position of the unloading position 114 in this application is fixed, while the feeding position 111, loading position 112, and functional position 113 can be adjusted according to actual needs, which helps adapt to diverse production requirements.

[0043] In this application, all standard interface groups 115 and module interface groups 211 have the same mating dimensions and connection forms. Specifically, all module interface groups 211 of the working modules 210 and standard interface groups 115 of the rack are completely identical in size (e.g., hole diameter, spacing), shape (e.g., circular, square), and connection method (e.g., threaded engagement, magnetic attraction). In practical applications, the standard interface groups 115 and module interface groups 211 can be an array of mounting holes for detachable connection via bolts, or an array of magnets for detachable connection via magnetic attraction.

[0044] Please refer to Figure 1 In one possible implementation, the feeding position 111 is located on the first side of the loading position 112 and away from the unloading position 114, while the functional position 113 is located on the second side of the loading position 112 and close to the unloading position 114. Exemplarily, the loading position 112 is located between the feeding position 111 and the unloading position 114. Both the feeding position 111 and the unloading position 114 are located beside the functional position 113. It should be noted that in this embodiment, the area of ​​the functional position 113 is equal to the sum of the areas of the feeding position 111 and the loading position 112, and the areas of the feeding position 111 and the loading position 112 are equal. Of course, in specific applications, the area of ​​the functional position 113 is an integer multiple of the feeding position 111; for example, the area of ​​the functional position 113 can be set to 1 times or 3 times the feeding position 111.

[0045] Please refer to Figure 1In one possible implementation, functional position 113 includes a first functional area 1131 and a second functional area 1132; the first functional area 1131 and the second functional area 1132 are arranged adjacent to each other along the X-axis direction, or the first functional area 1131 and the second functional area 1132 are arranged adjacent to each other along the Y-axis direction. In this embodiment, with the loading position 112 as the center, the feeding position 111, the first functional area 1131, the second functional area 1132, and the unloading position 114 are arranged in a counterclockwise direction. The loading position 112 can house a mobile robot, the feeding position 111 houses a feeding module, and the first functional area 1131 and the second functional area 1132 house functional modules, for example, the first functional area 1131 implements the bending process, and the second functional area 1132 implements CCD detection. The unloading position 114 houses an unloading module. That is, this positional distribution allows the mobile robot to grab materials from the feeding module and move along the processing, detection, and unloading sequence, which helps improve the working efficiency of the mobile robot. Of course, in specific applications, function bit 113 can also hold only one function module or multiple function modules. The number of installation bits 110 for function bit 113 can also be adjusted according to the actual situation, and no further restrictions are imposed here.

[0046] Please refer to Figure 1 In one possible implementation, the unloading position 114 includes a first unloading area 1141 and a second unloading area 1142, both extending along the X-axis, with the first unloading area 1141 located between the second unloading area 1142 and the functional position 113. Exemplarily, the first unloading area 1141 and the second unloading area 1142 are arranged side-by-side along the X-axis. The unloading module includes a first unloading component and a second unloading component arranged side-by-side. The first unloading area 1141 is used to place the first unloading component, and the second unloading area 1142 is used to place the second unloading component. The first unloading component is used to convey materials or fixtures within a first spacing range, and the second unloading component is used to convey materials or fixtures within a second spacing range, where the second spacing range is larger than the first spacing range. For example, the fixture is used to place materials, the spacing of the first feeding component is adjustable within a first spacing range, the spacing of the second feeding component is adjustable within a second spacing range, and the first feeding component is used to convey smaller-sized fixtures or materials, while the second feeding component is used to convey larger-sized fixtures or materials. Furthermore, the adjustable spacing allows for the adaptation to various sizes of materials, which helps to further improve the versatility of the system.

[0047] Please refer to Figure 2The second objective of this utility model is to provide a flexible intelligent manufacturing device 200 based on AI intelligent control. The flexible intelligent manufacturing device 200 includes the aforementioned chassis 100 and multiple working modules 210. Each mounting position 110 is provided with a standard interface group 115. Each working module 210 has a module interface group 211 at its bottom. The standard interface group 115 cooperates with the module interface group 211 to allow the working module 210 to be detachably installed on the chassis 100. The module interface group 211 and the standard interface group 115 have the same mating dimensions and connection form to achieve interchangeability of the same or different types of working modules 210. Exemplarily, the working module 210 includes a feeding module, a loading module, a functional module, and an unloading module. The functional module can perform conventional processes such as dispensing, bending, cutting, resistance / continuity testing, laser paint stripping, CCD detection, 3D / 2D measurement, labeling / film calibration, resistance welding, implantation assembly, and assembly. In this embodiment, the feeding module is a flexible vibratory feeder. Of course, as one implementation, the feeding module can also be a vibratory feeder, a magazine feeder, or a pallet feeder. The feeding module includes two feeding methods: robot feeding and three-axis module feeding. The unloading module includes four unloading methods: belt conveyor (fixture), heat-sealed / cold-sealed tape, double-speed chain (fixture), and pallet unloading. Detachable installation refers to a connection form that can be separated without damaging the structure (such as bolted connection, electromagnetic adsorption, pneumatic clamping, etc.). Its core feature is that it allows for quick replacement of the working module 210.

[0048] Please refer to Figure 2 The AI-based intelligent control flexible intelligent manufacturing device 200 of this application solves the problems of insufficient versatility and low changeover efficiency caused by interface fragmentation and fixed positions in existing modular production equipment through the collaborative design of the standard interface group 115 on the chassis 100 and the module interface group 211 at the bottom of each working module 210. Since the interface groups of all working modules 210 adopt a unified mating size and connection form, different types of modules such as feeding, loading, function and unloading (such as flexible vibration feeding module and spring clip feeding module, cutting function module and bending function module) can be directly interchanged without the need for customized adapters or modification of interface structure, which significantly improves the reusability of the equipment.

[0049] The AI-based flexible intelligent manufacturing device 200 includes a main control program, and each working module 210 has a corresponding sub-control program. It should be noted that the main control program controls the overall process flow and execution steps of each working module 210 on the flexible intelligent manufacturing device, while the sub-control programs control the specific execution processes and steps of each individual working module 210. Since the working modules 210 in this application can be replaced as needed, an AI intelligent docking algorithm module is embedded in the main control program to ensure that the replaced working module 210 can cooperate with the main control program. Based on the existing communication link between the main control and sub-control programs, automatic docking is completed through three steps: data acquisition, feature matching, and decision execution. First, automatic identification occurs after module replacement. When the working module 210 is installed, the main control program automatically sends an identity query command to the sub-control program. The sub-control program returns a preset unique identifier and core hardware parameters. The AI ​​algorithm is based on a historically stored module feature database, which contains all compatible modules. The AI ​​uses a K-nearest neighbor classification algorithm to quickly match module types based on ID, function, and parameters. If the returned ID matches the database perfectly, the AI ​​directly confirms the module's identity, skipping parameter verification. If the returned ID does not match but the core function / hardware parameters match (e.g., adding a new first unloading module 130 of the same type but from a different batch), the AI ​​calculates parameter similarity (e.g., parameter similarity deviation ≤ 10% is considered compatible), automatically classifies it as an adaptable module, and updates the feature database. If the returned parameters deviate from the database by more than 10% (e.g., mistakenly installing an incompatible module), the AI ​​immediately sends a module incompatibility warning to the main control program, prohibits the device from starting, and displays the reason for incompatibility. The second step is automatic synchronization of control parameters. After confirming the module's identity, the AI ​​automatically completes parameter configuration based on the historical mapping relationship between module type and process requirements. The AI ​​retrieves the process requirements of the current production task from the main control program, combines them with the hardware parameters fed back by the sub-control program, automatically calculates and distributes the adaptation parameters, and the sub-control program automatically adjusts the hardware status upon receiving them. If a related module is replaced, the AI ​​automatically retrieves the module collaboration rule library and synchronously updates the control logic of the main control program for other related modules to avoid collaboration conflicts. The third step is real-time closed-loop status verification. After the parameters are issued, the AI ​​collects feedback data from the sub-control programs in real time (such as sensor signals and the operating status of drive components) through the main control program to verify the effectiveness of the docking. If the parameters are successfully received from the sub-control program and the hardware is in place, the AI ​​determines that the docking is complete and sends a module ready command to the main control program, and the equipment can start running immediately. If the parameters fed back by the sub-control program exceed the limits, the AI ​​automatically calculates the correction value of the process parameters or sends a process conflict warning to the main control program, prompting manual adjustment of the production task. If parameter drift occurs during operation, the AI ​​monitors the sensor data of the sub-control program in real time and automatically issues correction commands without manual intervention.

[0050] Please refer to Figure 3 and Figure 4 The third objective of this utility model is to provide a flexible intelligent manufacturing system 300, which includes a connecting member 310 and at least two of the aforementioned AI-based flexible intelligent manufacturing devices 200. The connecting member 310 includes a first connector 311 and a second connector 312. The first connector 311 is fixedly installed on the first AI-based flexible intelligent manufacturing device 200, and the second connector 312 is fixedly installed on the second AI-based flexible intelligent manufacturing device 200. The first connector 311 includes a plug-in portion 3111, and the second connector 312 includes an alignment groove 3121 that mates with the plug-in portion 3111. When the two AI-based flexible intelligent manufacturing devices 200 are connected, the plug-in portion 3111 is inserted into the alignment groove 3121, and the first connector 311 is connected to the second AI-based flexible intelligent manufacturing device 200, while the second connector 312 is connected to the first AI-based flexible intelligent manufacturing device 200. For example, the flexible intelligent manufacturing system 300 is a product production line constructed based on AI-controlled flexible intelligent manufacturing devices 200 and connecting components 310. In this embodiment, the alignment groove 3121 has an inclined surface. The inclined surface facilitates guiding the insertion part 3111 into the alignment groove 3121, and the cooperation between the insertion part 3111 and the alignment groove 3121 enables two adjacent AI-controlled flexible intelligent manufacturing devices 200 to be aligned, which is beneficial for the assembled product line to always be arranged linearly. Specifically, the alignment groove 3121 is trapezoidal or triangular, and the shape of the insertion part 3111 is the same as that of the alignment groove 3121. Before assembly, the first connector 311 is fixedly installed on the first AI-based flexible intelligent manufacturing device 200, and the second connector 312 is fixedly installed on the second AI-based flexible intelligent manufacturing device 200. After assembly, the first connector 311 is fixedly installed between the first and second AI-based flexible intelligent manufacturing devices 200 by bolts, and the second connector 312 is fixedly installed between the first and second AI-based flexible intelligent manufacturing devices 200 by bolts. This ensures assembly accuracy and facilitates rapid assembly of the product line.

[0051] Example 2:

[0052] Please refer to Figure 5 The main difference between this embodiment and Embodiment 1 lies in the layout of each mounting position 110. Specifically:

[0053] Please refer to Figure 5In one possible implementation, the feeding position 111 is located on the first side of the loading position 112 and between the unloading position 114 and the loading position 112, and the functional position 113 is located on the second side of the loading position 112 and close to the unloading position 114. Compared with Embodiment 1, the solution of this embodiment can be obtained by interchanged positions of the feeding position 111 and the loading position 112 in Embodiment 1.

[0054] Apart from the differences mentioned above, the structures of the chassis 100, the AI-based intelligent control flexible intelligent manufacturing device 200, the flexible intelligent manufacturing system 300, and their components provided in this embodiment can all be optimized with reference to Embodiment 1, and will not be described in detail here.

[0055] Example 3:

[0056] Please refer to Figure 6 The main difference between this embodiment and Embodiment 1 lies in the layout of each mounting position 110. Specifically:

[0057] Please refer to Figure 6 In one possible implementation, the unloading position 114, the loading position 112, and the feeding position 111 are arranged sequentially along the Y-axis, and the functional position 113 and the loading position 112 are at the same horizontal position along the X-axis. Exemplarily, in this embodiment, the feeding position 111, the first functional area 1131, and the second functional area 1132 are arranged sequentially, and the length of the loading position 112 along the X-axis is equal to the sum of the lengths of the feeding position 111, the first functional area 1131, and the second functional area 1132; that is, the area of ​​the loading position 112 is equal to the sum of the areas of the feeding position 111, the first functional area 1131, and the second functional area 1132. The areas of the feeding position 111, the first functional area 1131, and the second functional area 1132 are equal. Of course, in another embodiment, please refer to... Figure 7 The length of the loading position 112 along the X-axis is equal to the length of the feeding position 111, that is, the area of ​​the loading position 112 is equal to the area of ​​the feeding position 111. Figure 7 In the example given, the loading position 112 corresponds to the position of the first functional area 1131, that is, the loading position 112 and the first functional area 1131 are aligned along the Y-axis. Of course, the loading position 112 can also correspond to the position of the second functional area 1132 or the feeding position 111. In another embodiment, please refer to... Figure 8 The length of the loading position 112 along the X-axis is equal to the sum of the lengths of the feeding position 111 and the first functional area 1131, that is, the area of ​​the loading position 112 is equal to the sum of the areas of the feeding position 111 and the first functional area 1131. Figure 8In the example given, the loading position 112 corresponds to the positions of the first functional area 1131 and the feeding position 111. That is, the loading position 112 is aligned with the first functional area 1131 and the feeding position 111 along the Y-axis. Of course, the loading position 112 can also correspond to the positions of the first functional area 1131 and the second functional area 1132.

[0058] Apart from the differences mentioned above, the structures of the chassis 100, the AI-based intelligent control flexible intelligent manufacturing device 200, the flexible intelligent manufacturing system 300, and their components provided in this embodiment can all be optimized with reference to Embodiment 1, and will not be described in detail here.

[0059] Example 4:

[0060] Please refer to Figure 9 The main difference between this embodiment and Embodiment 1 lies in the area and layout of the feeding position 112. Specifically:

[0061] Please refer to Figure 9 In one possible implementation, the feeding position 111, the loading position 112, and the functional position 113 are arranged sequentially along the X-axis, and the feeding position 111, the loading position 112, and the functional position 113 are at the same horizontal position. The difference from Embodiment 3 is that in this embodiment, the feeding position 111, the loading position 112, the first functional area 1131, and the second functional area 1132 are arranged linearly along the X-axis.

[0062] Apart from the differences mentioned above, the structures of the chassis 100, the AI-based intelligent control flexible intelligent manufacturing device 200, the flexible intelligent manufacturing system 300, and their components provided in this embodiment can all be optimized with reference to Embodiment 1, and will not be described in detail here.

[0063] Example 5:

[0064] Please refer to Figure 10 The main difference between this embodiment and Embodiment 4 lies in the layout of each mounting position 110. Specifically:

[0065] In one possible implementation, the loading position 112, the feeding position 111, and the functional position 113 are arranged sequentially along the X-axis, and the loading position 112, the feeding position 111, and the functional position 113 are at the same horizontal position. For example, by interchanged between the loading position 112 and the feeding position 111 in Embodiment 4, the layout scheme of this embodiment can be obtained.

[0066] Apart from the differences mentioned above, the structures of the chassis 100, the AI-based intelligent control flexible intelligent manufacturing device 200, the flexible intelligent manufacturing system 300, and their components provided in this embodiment can all be optimized with reference to Embodiment 4, and will not be described in detail here.

[0067] Example 6:

[0068] Please refer to Figure 11 The main difference between this embodiment and Embodiment 4 lies in the layout of each mounting position 110. Specifically:

[0069] In one possible implementation, the feeding position 111, the functional position 113, and the loading position 112 are arranged sequentially along the X-axis, and the feeding position 111, the functional position 113, and the loading position 112 are at the same horizontal position. For example, by interchanged between the loading position 112 and the functional position 113 in Embodiment 4, the layout scheme of this embodiment can be obtained.

[0070] Apart from the differences mentioned above, the structures of the chassis 100, the AI-based intelligent control flexible intelligent manufacturing device 200, the flexible intelligent manufacturing system 300, and their components provided in this embodiment can all be optimized with reference to Embodiment 4, and will not be described in detail here.

[0071] The embodiments described above are merely illustrative of several implementations of this utility model, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.

Claims

1. A chassis, characterized in that, It includes multiple mounting positions for detachable installation of working modules, each mounting position is provided with a standard interface group, and the bottom of each working module is provided with a module interface group. The module interface group and the standard interface group have the same mating size and connection form. The installation position includes a feeding position, a loading position, a functional position, and a unloading position. The unloading position extends along the X-axis. The feeding position, the loading position, and the functional position are all located on the same side of the unloading position. The feeding position and / or the functional position are located next to the loading position.

2. The chassis according to claim 1, characterized in that, The feeding position is located on the first side of the feeding position and away from the unloading position; the functional position is located on the second side of the feeding position and close to the unloading position; or... The feeding position is located on the first side of the feeding position and between the unloading position and the feeding position, and the function position is located on the second side of the feeding position and close to the unloading position.

3. The chassis according to claim 1, characterized in that, The unloading position, the loading position, and the feeding position are arranged sequentially along the Y-axis, and the functional position and the loading position are at the same horizontal position along the X-axis.

4. The chassis according to claim 1, characterized in that, The feeding position, the loading position, and the functional position are arranged sequentially along the X-axis, and the feeding position, the loading position, and the functional position are at the same horizontal position.

5. The chassis according to claim 1, characterized in that, The loading position, the feeding position, and the functional position are arranged sequentially along the X-axis, and the loading position, the feeding position, and the functional position are at the same horizontal position.

6. The chassis according to claim 1, characterized in that, The feeding position, the functional position, and the loading position are arranged sequentially along the X-axis, and the feeding position, the functional position, and the loading position are at the same horizontal position.

7. The chassis according to any one of claims 1-6, characterized in that, The functional area includes a first functional area and a second functional area; the first functional area and the second functional area are arranged adjacent to each other along the X-axis direction, or the first functional area and the second functional area are arranged adjacent to each other along the Y-axis direction.

8. The chassis according to any one of claims 1-6, characterized in that, The material feeding position includes a first material feeding area and a second material feeding area. Both the first material feeding area and the second material feeding area extend along the X-axis direction, and the first material feeding area is located between the second material feeding area and the functional position.

9. A flexible intelligent manufacturing device based on AI intelligent control, characterized in that, include: The chassis as described in any one of claims 1-8; Multiple working modules are provided, and each of the mounting positions is provided with a standard interface group. The bottom of each working module is provided with a module interface group. The standard interface group and the module interface group cooperate to allow the working module to be detachably installed on the chassis. The module interface group and the standard interface group have the same mating size and connection form to realize the interchangeability of the same or different types of working modules.

10. A flexible intelligent manufacturing system, characterized in that, include: At least two of the flexible intelligent manufacturing devices based on AI intelligent control as described in claim 9; The connecting components include a first connector and a second connector. The first connector is fixedly installed on the first AI-based flexible intelligent manufacturing device, and the second connector is fixedly installed on the second AI-based flexible intelligent manufacturing device. The first connector includes a plug-in portion, and the second connector includes an alignment groove that mates with the plug-in portion. When the two AI-based flexible intelligent manufacturing devices are connected, the plug-in portion is inserted into the alignment groove, and the first connector is connected to the second AI-based flexible intelligent manufacturing device, while the second connector is connected to the first AI-based flexible intelligent manufacturing device.