Ultra-thin workpiece manufacturing system and processing method

Through the automatic control of the data acquisition unit and the replacement device, combined with the vacuum suction cup positioning, the problem of cumbersome tool and fixture replacement in traditional ultra-thin parts processing is solved, and high-precision and efficient automated processing is achieved.

CN119407262BActive Publication Date: 2025-09-26FAW JIEFANG AUTOMOTIVE CO
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Patent Information

Application Number
CN202411577415.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-06
Publication Date
2025-09-26
Estimated Expiration
2044-11-06

AI Technical Summary

Technical Problem

The process of replacing tools and fixtures in traditional ultra-thin parts processing is cumbersome, time-consuming and prone to human errors, affecting processing accuracy and efficiency.

Method used

The data acquisition unit is used to collect workpiece parameters in real time, and the replacement device is used to automatically control the replacement of clamping components and processing components. Combined with vacuum suction cup positioning and precision detection, automatic positioning and processing are achieved.

Benefits of technology

Improves processing accuracy and efficiency, reduces manual intervention, reduces labor costs, and ensures workpiece quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides a manufacturing and processing system for ultra-thin workpieces and a processing method thereof, which relate to the field of mechanical processing technology. The manufacturing and processing system for ultra-thin workpieces includes: a data acquisition unit, which is used to acquire parameter information of the workpiece to be processed, and the parameter information includes at least: length information, width information, and height information; a replacement device, and the data acquisition unit is electrically connected to the replacement device; a clamping component, which is arranged on the working surface of the machine tool, and is used to clamp the workpiece to be processed; a processing component, which is used to process the workpiece to be processed and the clamping component; wherein the replacement device controls at least one of the clamping component and the processing component based on the parameter information to perform a replacement selection operation to adapt to the workpiece to be processed. By precisely controlling the clamping and processing processes, human operation errors can be reduced and the quality of the processed workpiece can be improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of mechanical processing, and in particular to a manufacturing system and a processing method for an ultra-thin workpiece. Background Art

[0002] With the rapid development of modern manufacturing, CNC machine tools, as core equipment, play a vital role in improving production efficiency and product quality. However, in the field of ultra-thin parts processing, traditional processing methods face many challenges, especially the cumbersome and time-consuming process of replacing tools and fixtures, which is prone to human error. Precision is also difficult to guarantee, seriously affecting processing accuracy and efficiency. In recent years, the rise of technologies such as artificial intelligence and the Internet of Things has provided new solutions for the intelligent manufacturing of ultra-thin parts. However, issues such as the rapid positioning and installation of ultra-thin parts and the control of processing accuracy still need to be improved. Summary of the Invention

[0003] The main purpose of the present invention is to provide a manufacturing and processing system for ultra-thin workpieces and a processing method thereof, so as to solve the problem that the replacement process of tools and fixtures in traditional processing in the prior art is cumbersome and labor-intensive.

[0004] To achieve the above objectives, according to one aspect of the present invention, a system for manufacturing and processing ultra-thin workpieces is provided. The system comprises: a data acquisition unit configured to acquire parameter information of a workpiece to be processed, the parameter information including at least length, width, and height; a replacement device electrically connected to the data acquisition unit; a clamping assembly disposed on a working surface of a machine tool and configured to clamp the workpiece to be processed; and a processing assembly configured to process the workpiece to be processed and the clamping assembly. The replacement device controls at least one of the clamping assembly and the processing assembly based on the parameter information to perform a replacement selection operation to adapt the workpiece to be processed.

[0005] Furthermore, the clamping assembly includes: a fastening assembly, which is arranged on the working surface of the machine tool; a positioning mechanism, which is movably arranged on the fastening assembly and is used to position the workpiece to be processed; wherein the replacement device controls the positioning mechanism based on parameter information to perform the replacement selection operation.

[0006] Furthermore, the replacement device includes: a first replacement unit, the first replacement unit is connected to the clamping component, and the first replacement unit controls the clamping component to perform the replacement selection operation based on the parameter information.

[0007] Furthermore, the replacement device includes: a second replacement unit, the second replacement unit is connected to the processing component, and the second replacement unit controls the processing component to perform the replacement selection operation based on the parameter information.

[0008] Furthermore, the first replacement unit includes: a first replacement module; a first control module, the first control module is electrically connected to the data acquisition unit and the first replacement module, and the first control module controls the first replacement module to perform replacement selection operations on the clamping component based on parameter information.

[0009] Furthermore, the second replacement unit includes: a second replacement module; a second control module, the second control module is electrically connected to the data acquisition unit and the second replacement module, and the second control module controls the second replacement module to perform replacement selection operations on the processing component based on parameter information.

[0010] Furthermore, the positioning mechanism includes a matching cavity, the matching cavity is used to match and position the workpiece to be processed, and the processing assembly is used to process the matching cavity.

[0011] Furthermore, the fastening assembly includes a vacuum suction cup, which is arranged on the working surface of the machine tool. The vacuum suction cup is used to adsorb the positioning mechanism to position the workpiece to be processed.

[0012] Furthermore, the data acquisition unit acquires processing range information of the workpiece to be processed, and the processing component processes the workpiece to be processed based on the processing range information.

[0013] Furthermore, the ultra-thin workpiece manufacturing and processing system also includes a human-computer interaction module, which exchanges information with the data acquisition unit and is used to obtain parameter information and processing range information.

[0014] According to another aspect of the present invention, a method for processing an ultra-thin workpiece is provided, which adopts the manufacturing and processing system of the ultra-thin workpiece of the above-mentioned embodiment for processing, and the processing method includes the following steps: determining the parameter information and processing range information of the workpiece to be processed; selecting the positioning mechanism of the clamping assembly according to the parameter information, and installing the positioning mechanism; processing the matching cavity of the positioning mechanism according to the parameter information and the processing range information; installing the workpiece to be processed in the matching cavity; processing the workpiece to be processed according to the processing range information; and the processing assembly automatically compensating the workpiece to be processed to obtain the processed workpiece.

[0015] By applying the technical solution of the present invention, the precise parameter information of the workpiece is collected through the data acquisition unit, and the system can ensure that the clamping components and the processing components accurately match the size of the workpiece to be processed, thereby improving the processing accuracy. The replacement device automatically controls the clamping components and the processing components to perform replacement selection operations based on the collected parameter information, reducing human intervention and improving the degree of automation. By precisely controlling the clamping and processing processes, human operation errors can be reduced and the quality of the processed workpiece can be improved. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] The accompanying drawings, which constitute part of this application, are intended to provide a further understanding of the present invention. The exemplary embodiments of the present invention and their descriptions are intended to explain the present invention and do not constitute an undue limitation of the present invention. In the accompanying drawings:

[0017] Figure 1 A schematic structural diagram of a first embodiment of a manufacturing system for an ultra-thin workpiece according to the present invention is shown;

[0018] Figure 2 A schematic structural diagram of a second embodiment of a manufacturing system for an ultra-thin workpiece according to the present invention is shown;

[0019] Figure 3 A schematic structural diagram of a third embodiment of a manufacturing system for an ultra-thin workpiece according to the present invention is shown;

[0020] Figure 4 The figure shows a flow chart of the method for processing an ultra-thin workpiece according to the present invention.

[0021] The above drawings include the following reference numerals:

[0022] 100. Workpiece to be processed;

[0023] 10. Data acquisition unit;

[0024] 20. Replacement device;

[0025] 21. First replacement unit; 211. First replacement module; 212. First control module;

[0026] 22. Second replacement unit; 221. Second replacement module; 222. Second control module;

[0027] 30. Clamping assembly;

[0028] 31. Fastening assembly; 311. Vacuum suction cup;

[0029] 32. Positioning mechanism; 321. Matching cavity;

[0030] 40. Processing components;

[0031] 50. Human-computer interaction module. DETAILED DESCRIPTION

[0032] It should be noted that, in the absence of conflict, the embodiments and features of the embodiments in this application can be combined with each other. The present invention will be described in detail below with reference to the accompanying drawings and in combination with the embodiments.

[0033] It should be noted that the terms used herein are only for describing specific embodiments and are not intended to limit the exemplary embodiments according to the present application. As used herein, unless the context clearly indicates otherwise, the singular form is also intended to include the plural form. In addition, it should be understood that when the terms "comprise" and / or "include" are used in this specification, they indicate the presence of features, steps, operations, devices, components and / or combinations thereof.

[0034] It should be noted that the terms "first", "second", etc. in the specification and claims of the present application and the above-mentioned drawings are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that the terms used in this way are interchangeable where appropriate, so that the embodiments of the present application described herein can, for example, be implemented in an order other than those illustrated or described herein. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions, for example, a process, method, system, product or device that includes a series of steps or units is not necessarily limited to those steps or units clearly listed, but may include other steps or units that are not clearly listed or inherent to these processes, methods, products or devices.

[0035] Now, exemplary embodiments according to the present application will be described in more detail with reference to the accompanying drawings. However, these exemplary embodiments can be implemented in a variety of different forms and should not be interpreted as being limited to the embodiments described herein. It should be understood that these embodiments are provided to make the disclosure of this application thorough and complete, and to fully convey the concepts of these exemplary embodiments to those of ordinary skill in the art. In the accompanying drawings, for the sake of clarity, the thickness of layers and regions may be exaggerated, and the same reference numerals are used to represent the same devices, and thus their descriptions will be omitted.

[0036] Combine Figures 1 to 3 As shown, according to a specific embodiment of the present invention, a manufacturing and processing system for ultra-thin workpieces is provided.

[0037] Specifically, if Figure 1As shown, the manufacturing and processing system of the ultra-thin workpiece includes: a data acquisition unit 10, the data acquisition unit 10 is used to collect parameter information of the workpiece to be processed 100, and the parameter information includes at least: length information, width information, and height information; a replacement device 20, the data acquisition unit 10 is electrically connected to the replacement device 20; a clamping component 30, the clamping component 30 is arranged on the working surface of the machine tool, and the clamping component 30 is used to clamp the workpiece to be processed 100; a processing component 40, the processing component 40 is used to process the workpiece to be processed 100 and the clamping component 30; wherein, the replacement device 20 controls at least one of the clamping component 30 and the processing component 40 to perform a replacement selection operation based on the parameter information to adapt to the workpiece to be processed 100.

[0038] In this embodiment, the data acquisition unit 10 collects precise parameter information of the workpiece, and the system can ensure that the clamping component 30 and the processing component 40 accurately match the size of the workpiece 100 to be processed, thereby improving the processing accuracy. The replacement device 20 automatically controls the clamping component 30 and the processing component 40 to perform the replacement selection operation based on the collected parameter information, reducing manual intervention and improving the degree of automation. By precisely controlling the clamping and processing processes, human operation errors can be reduced and the quality of the processed workpiece can be improved.

[0039] Furthermore, the clamping assembly 30 includes: a fastening assembly 31, which is arranged on the working surface of the machine tool; a positioning mechanism 32, which is movably arranged on the fastening assembly 31, and the positioning mechanism 32 is used to position the workpiece 100 to be processed; wherein, the replacement device 20 controls the positioning mechanism 32 to perform the replacement selection operation based on the parameter information.

[0040] By automatically replacing the positioning mechanism 32, the time for manually replacing the positioning device can be reduced, thereby improving processing efficiency, so that the positioning mechanism 32 can adapt to workpieces of different shapes and sizes to meet the processing requirements of new workpieces.

[0041] Furthermore, the replacement device 20 includes: a first replacement unit 21, the first replacement unit 21 is connected to the clamping assembly 30, and the first replacement unit 21 controls the clamping assembly 30 to perform the replacement selection operation based on the parameter information.

[0042] By automatically controlling the clamping assembly 30 to perform the replacement selection operation based on the parameter information by the first replacement unit 21, manual intervention can be reduced and operation efficiency can be improved.

[0043] In some optional embodiments, in different scenarios, the replacement operation may involve different devices or components. Therefore, multiple replacement strategies can be designed to adapt to different replacement needs.

[0044] In some optional embodiments, during the replacement operation, some safety monitoring mechanisms may be provided, such as an emergency stop button, fault detection, etc., to ensure the safety of the replacement operation.

[0045] In some optional embodiments, in order to facilitate user operation and monitoring of the replacement operation, some human-computer interaction interfaces, such as a touch screen, voice control, etc., may also be designed.

[0046] Furthermore, the replacement device 20 includes: a second replacement unit 22, the second replacement unit 22 is connected to the processing component 40, and the second replacement unit 22 controls the processing component 40 to perform the replacement selection operation based on the parameter information.

[0047] By controlling the processing assembly 40 to perform the replacement selection operation based on the parameter information by the second replacement unit 22, automated replacement can be achieved, reducing manual intervention, thereby improving operation efficiency.

[0048] like Figure 3 As shown, the first replacement unit 21 includes: a first replacement module 211; a first control module 212, the first control module 212 is electrically connected to the data acquisition unit 10 and the first replacement module 211, and the first control module 212 controls the first replacement module 211 to perform replacement selection operations on the clamping component 30 based on parameter information.

[0049] Specifically, the data acquisition unit 10 monitors relevant parameters on the production line in real time and sends this parameter information to the first control module 212. After receiving the data, the first control module 212 determines whether the clamping assembly 30 needs to be replaced based on preset parameter thresholds and logic. These parameters may include, but are not limited to: information about the workpiece to be processed, the degree of wear of the clamping assembly, reduced production line efficiency, product quality issues, and equipment failure signals.

[0050] If the analysis results indicate that the clamping component 30 needs to be replaced, the first control module 212 will generate a replacement instruction. Upon receiving the replacement instruction, the first replacement module 211 automatically executes the replacement operation. This may include: stopping the machine on the production line, moving to the location of the clamping component to be replaced, removing the old clamping component, installing the new clamping component, and testing the new clamping component to ensure it is functioning properly. After the replacement is completed, the first replacement module 211 feeds the replacement results back to the first control module 212, which then records the results and feeds them back to the data acquisition unit 10 for subsequent monitoring and analysis.

[0051] The entire replacement process described above requires no human intervention, reducing human error and improving efficiency. The data acquisition unit 10 monitors the production line status in real time, ensuring timely response. The first control module 212 makes intelligent decisions based on real-time data to optimize the production process. Automated replacement reduces downtime due to component replacement, reducing the need for manual replacement and lowering labor costs. Timely replacement of worn clamping components reduces product quality issues caused by equipment problems.

[0052] In some optional embodiments, the first replacement module 211 can be configured as a manipulator, which generally consists of the following parts:

[0053] 1. Driver: Provides power to drive the movement of the robotic arm.

[0054] 2. Control system: controls the movement and operation of the robotic arm.

[0055] 3. Actuator: such as gripper, tool head, etc., used to perform specific tasks.

[0056] 4. Sensors: Provide environmental information to help the robotic arm perform precise operations.

[0057] The control system of the manipulator communicates with the first control module 212 to receive control signals and execute the replacement task according to the parameter information. Such a design can improve the degree of automation, reduce manual intervention, and improve efficiency and accuracy.

[0058] Furthermore, the second replacement unit 22 includes: a second replacement module 221; a second control module 222, the second control module 222 is electrically connected to the data acquisition unit 10 and the second replacement module 221, and the second control module 222 controls the second replacement module 221 to perform replacement selection operations on the processing component 40 based on parameter information.

[0059] Specifically, the second replacement unit 22 is an important component of the automated production line and is responsible for replacing the processing components when needed. It ensures the continuous operation of the production line and reduces downtime by automatically replacing worn or damaged tools.

[0060] The second replacement module 221 is a physical structure responsible for the actual replacement action and can be configured to include a robotic arm, a fixture, a sensor, etc. for identifying and replacing the cutting tool.

[0061] The aforementioned second control module 222 is responsible for receiving parameter information and making decisions based on it. This parameter information may include the wear status, life expectancy, and current machining task of the cutting tool. The second control module 222 communicates with the data acquisition unit and the replacement module via electrical connections to ensure accurate information transmission and execution.

[0062] The data acquisition unit 10 is responsible for collecting data on the production line, such as tool wear, processing progress, etc., and sending this information to the second control module 222 for analysis and decision-making.

[0063] The above-mentioned processing component 40 is the part directly involved in cutting the workpiece on the production line, which may be a tool, a cutting head or other cutting tools, and needs to be replaced regularly to maintain processing quality and avoid processing errors caused by wear.

[0064] The replacement selection operation is to determine when to perform replacement based on the collected parameter information by the second control module 222. The replacement operation may include steps such as identifying the component to be replaced, performing the replacement operation, and verifying the function of the new component.

[0065] The replacement process is automated, improving production efficiency and reducing human error. The system may also include maintenance and monitoring tools to ensure the long-term stable operation of the replacement unit. With such a system, production lines can achieve a higher level of automation, reduce downtime, and improve processing efficiency and quality.

[0066] Furthermore, the positioning mechanism 32 includes a matching cavity 321 , which is used to match and position the workpiece 100 to be processed, and the processing assembly 40 is used to process the matching cavity 321 .

[0067] Specifically, the main function of the positioning mechanism 32 is to accurately match and position the workpiece 100 to be processed to ensure that the position of the workpiece is stable and accurate during the processing. The matching cavity 321 is the part of the positioning mechanism 32 used to accommodate and fix the workpiece 100 to be processed. The design of the matching cavity 321 needs to take into account the shape and size of the workpiece 100 to be processed to ensure that the workpiece can be correctly fixed in place. The internal shape of the matching cavity 321 may match the shape of the workpiece 100 to be processed, or include adjustable components to accommodate different workpieces. The processing assembly 40 is a component used to process the matching cavity 321. It may include cutting tools, grinding tools or other types of processing tools that can accurately process the shape and size of the matching cavity 321 according to design requirements.

[0068] In some optional embodiments, a measurement system may be integrated into the positioning mechanism 32 to monitor the position and machining accuracy of the workpiece in real time during the machining process to ensure machining quality.

[0069] like Figure 2 As shown, the fastening assembly 31 includes a vacuum suction cup 311 , which is disposed on a working surface of a machine tool. The vacuum suction cup 311 is used to absorb the positioning mechanism 32 to position the workpiece 100 to be processed.

[0070] Specifically, a plurality of positioning holes are provided on the vacuum suction cup, and a positioning hole is also provided on the positioning mechanism 32 . The positioning mechanism 32 and the vacuum suction cup are connected by a positioning pin 33 to achieve a firm connection.

[0071] The vacuum cup 311 holds the workpiece by generating negative pressure. When the pressure inside the cup drops below atmospheric pressure, the air between the cup and the workpiece is expelled, creating a seal that secures the workpiece to the cup. The cup is typically made of durable rubber or silicone to ensure a good seal and good adhesion to various surfaces.

[0072] In some optional embodiments, the vacuum suction cup is generally equipped with a control unit that can adjust the suction force to suit different processing requirements.

[0073] Furthermore, the data acquisition unit 10 acquires processing range information of the workpiece 100 to be processed, and the processing component 40 processes the workpiece based on the processing range information.

[0074] Furthermore, the ultra-thin workpiece manufacturing and processing system further includes a human-computer interaction module 50 , which performs information exchange with the data acquisition unit 10 , and is used to obtain parameter information and processing range information.

[0075] like Figure 4 As shown, according to another aspect of the present invention, a method for processing an ultra-thin workpiece is provided. The processing method adopts the ultra-thin workpiece manufacturing processing system of the above embodiment for processing, and the processing method comprises the following steps:

[0076] Step S10: Determine parameter information and processing range information of the workpiece to be processed.

[0077] Step S20: selecting a positioning mechanism of the clamping assembly according to the parameter information and installing the positioning mechanism;

[0078] Step S30: Processing the matching cavity of the positioning mechanism according to the parameter information and the processing range information.

[0079] Through the above steps, a matching cavity that matches the workpiece is accurately machined based on parameter information and machining range information. Specifically, computer-aided design (CAD) and computer-aided manufacturing (CAM) technologies are used to optimize the design and machining process of the matching cavity.

[0080] Step S40: Install the workpiece to be processed in the matching cavity.

[0081] Through the above steps, the workpiece is accurately placed in the matching cavity, ensuring that the position and orientation of the workpiece meet the processing requirements. A visual system is used to accurately position the workpiece to improve processing accuracy.

[0082] Step S50: Processing the workpiece according to the processing range information.

[0083] Through the above steps, the workpiece is accurately processed according to the processing range information, using high-precision CNC machine tools or other automated processing equipment to ensure the processing quality.

[0084] Step S60: the processing component performs automatic compensation processing on the workpiece to be processed to obtain a processed workpiece.

[0085] Through the above steps, during the machining process, the system monitors the status of the workpiece in real time and automatically compensates as needed. Advanced sensors and control systems are used to achieve instant adjustments to any deviations that may occur during the machining process.

[0086] In some optional embodiments, the subsequent steps may further include:

[0087] Step S70: Quality Control and Inspection: After processing is completed, strict quality inspection is carried out to ensure that the workpiece meets the expected accuracy and quality standards. Non-contact inspection methods such as 3D scanning technology and laser measurement are used to reduce damage to the workpiece.

[0088] Step S80: Data recording and analysis: All data from the entire processing process is recorded, including processing parameters, equipment status, environmental conditions, etc. Using big data analysis technology, the collected data is analyzed to optimize future processing processes.

[0089] In some optional embodiments, the positioning mechanism 32 of the present application is made of aluminum alloy, and the matching cavity 321 of the ultra-thin part is processed by rapid processing. The vacuum suction cup 311 has a vacuum adsorption function and can adsorb the bottom surface of the ultra-thin part.

[0090] In some optional embodiments, the present invention can use computer CAD to assist in the design of fixtures for different materials and different types of ultra-thin parts, ensure the rapid positioning of parts, realize dynamic detection of part processing parameters during the process, and adjust the part processing parameters through trained models and auxiliary adjustments to further ensure the processing accuracy of parts.

[0091] In some optional embodiments, the present invention includes an automatic tool setting device, which automatically controls the processing of the entire part in sections in cooperation with a macro program, realizes automatic tool setting, automatically performs tool compensation, further completes the processing technology control of the part, and ensures the correct processing of the part.

[0092] In some optional embodiments, the processing method of the present invention can be used not only for thin-walled parts, but also for different special-shaped parts, hollow parts, and other different types of parts. The processing model of this method can also be used to train more processing parameter models of different types of parts to form a model library, further realizing further processing of different parts of different types, automatically generating processing plans, and automatically adjusting processing parameters.

[0093] In some optional embodiments, the vacuum suction cup 311 of the present invention adopts multi-stage control, and multiple vacuum suction cups 311 can be used in combination, which greatly improves the utilization efficiency of the suction cup. It can also directly adsorb flat products, and adopts different hole designs to achieve precise adsorption at different positions.

[0094] Through the above-mentioned intelligent rapid tool compensation technology, intelligent algorithm control processing technology, and embedded development, an ultra-thin parts intelligent manufacturing and processing system is constructed, and the ultra-thin parts intelligent manufacturing and processing device and processing method of the present invention can achieve efficient and high-quality processing of ultra-thin parts.

[0095] From the above description, it can be seen that the above embodiments of the present invention achieve the following technical effects:

[0096] This processing method relies on advanced CNC machine tools. By integrating intelligent control technology and precision tool setting mechanisms, it realizes automatic tool setting and rapid replacement of cutting tools, as well as real-time monitoring and adjustment of part processing through sensors during the processing. This method not only significantly reduces manual intervention and reduces labor intensity, but also greatly improves production efficiency and processing accuracy, providing a strong guarantee for the high-quality production of ultra-thin parts. Specifically, the processing method of ultra-thin workpieces of the present invention uses intelligent algorithms to accurately control the processing process, ensuring that the tool always remains in the best condition during replacement and processing. At the same time, a precision detection mechanism is used to monitor the processing accuracy of parts in real time, and the processing parameters are adjusted in time to ensure that the size and shape accuracy of the parts meet the design requirements. In addition, the method further improves processing efficiency and surface quality by optimizing the processing path and tool trajectory.

[0097] For ease of description, spatially relative terms such as "above", "above", "on the upper surface of", "above", etc. may be used herein to describe the spatial positional relationship of a device or feature to other devices or features as shown in the figures. It should be understood that spatially relative terms are intended to include different orientations of the device in use or operation in addition to the orientation described in the figures. For example, if the device in the drawings is inverted, the device described as "above other devices or structures" or "above other devices or structures" will be positioned as "below other devices or structures" or "below other devices or structures". Thus, the exemplary term "above" can include both "above" and "below". The device can also be positioned in other different ways (rotated 90 degrees or in other orientations), and the spatially relative descriptions used here are interpreted accordingly.

[0098] In addition to the above, it should be noted that references to "one embodiment," "another embodiment," "an embodiment," and the like in this specification refer to specific features, structures, or characteristics described in conjunction with that embodiment as included in at least one embodiment generally described in this application. The appearance of the same expression in multiple places in the specification does not necessarily refer to the same embodiment. Furthermore, when a specific feature, structure, or characteristic is described in conjunction with any embodiment, it is intended that such feature, structure, or characteristic, when implemented in conjunction with other embodiments, also falls within the scope of the present invention.

[0099] In the above embodiments, the description of each embodiment has its own focus. For parts that are not described in detail in a certain embodiment, reference can be made to the relevant descriptions of other embodiments.

[0100] The foregoing description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that various modifications and variations of the present invention are possible. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention are intended to be within the scope of protection of the present invention.

Claims

1. A manufacturing system for ultra-thin workpieces, characterized in that: include: A data acquisition unit (10), the data acquisition unit (10) is used to acquire parameter information of a workpiece (100) to be processed, the parameter information at least including: length information, width information, and height information; a replacement device (20), the data acquisition unit (10) being electrically connected to the replacement device (20); A clamping assembly (30), the clamping assembly (30) being arranged on a working surface of a machine tool, the clamping assembly (30) being used to clamp the workpiece (100) to be processed; a processing assembly (40), the processing assembly (40) being used to process the workpiece to be processed (100) and the clamping assembly (30); Wherein, the replacement device (20) controls at least one of the clamping assembly (30) and the processing assembly (40) to perform a replacement selection operation based on the parameter information to adapt to the workpiece (100) to be processed; The clamping assembly (30) comprises: A fastening assembly (31), wherein the fastening assembly (31) is arranged on a working surface of a machine tool; a positioning mechanism (32), the positioning mechanism (32) being movably disposed on the fastening assembly (31), the positioning mechanism (32) being used to position the workpiece to be processed (100), the positioning mechanism (32) comprising a matching cavity (321), the matching cavity (321) being used to match and position the workpiece to be processed (100), and the processing assembly (40) being used to process the matching cavity (321); Wherein, the replacement device (20) controls the positioning mechanism (32) based on the parameter information to perform the replacement selection operation.

2. The ultra-thin workpiece manufacturing and processing system according to claim 1, characterized in that: The replacement device (20) comprises: A first replacement unit (21), the first replacement unit (21) is connected to the clamping assembly (30), and the first replacement unit (21) controls the clamping assembly (30) to perform the replacement selection operation based on the parameter information.

3. The ultra-thin workpiece manufacturing and processing system according to claim 1 or 2, characterized in that: The replacement device (20) comprises: A second replacement unit (22) is connected to the processing component (40), and the second replacement unit (22) controls the processing component (40) to perform the replacement selection operation based on the parameter information.

4. The ultra-thin workpiece manufacturing and processing system according to claim 2, characterized in that: The first replacement unit (21) comprises: First replacement module (211); A first control module (212) is electrically connected to the data acquisition unit (10) and the first replacement module (211), and the first control module (212) controls the first replacement module (211) to perform the replacement selection operation on the clamping component (30) based on the parameter information.

5. The manufacturing and processing system for ultra-thin workpieces according to claim 3, characterized in that: The second replacement unit (22) comprises: Second replacement module (221); A second control module (222) is electrically connected to the data acquisition unit (10) and the second replacement module (221), and the second control module (222) controls the second replacement module (221) based on the parameter information to perform the replacement selection operation on the processing component (40).

6. The manufacturing and processing system for ultra-thin workpieces according to claim 1, characterized in that: The fastening assembly (31) includes a vacuum suction cup (311), which is arranged on a working surface of the machine tool. The vacuum suction cup (311) is used to absorb the positioning mechanism (32) to position the workpiece (100) to be processed.

7. The ultra-thin workpiece manufacturing and processing system according to claim 1, characterized in that: The data acquisition unit (10) acquires processing range information of the workpiece to be processed (100), and the processing component (40) processes the workpiece to be processed based on the processing range information.

8. The ultra-thin workpiece manufacturing and processing system according to claim 1, characterized in that: The ultra-thin workpiece manufacturing and processing system further comprises a human-computer interaction module (50), wherein the human-computer interaction module (50) performs information interaction with the data acquisition unit (10), and the human-computer interaction module (50) is used to obtain the parameter information and the processing range information.

9. A method for processing an ultra-thin workpiece, characterized in that: The processing method is performed using the manufacturing system for the ultra-thin workpiece according to any one of claims 1 to 8, and the processing method comprises the following steps: Determine the parameter information and processing range information of the workpiece to be processed; Selecting a positioning mechanism of the clamping assembly according to the parameter information and installing the positioning mechanism; Processing the matching cavity of the positioning mechanism according to the parameter information and the processing range information; Installing the workpiece to be processed into the matching cavity; Processing the workpiece to be processed according to the processing range information; The processing component performs automatic compensation processing on the workpiece to be processed to obtain a processed workpiece.

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