Multifunctional operation platform and sewing equipment
By introducing a multi-functional operating platform into the sewing machine, the X-axis and Y-axis drive components are used to coordinate the work, and the multi-process synchronous operation is achieved, which solves the problems of low efficiency and unreasonable layout of the sewing machine when dealing with complex shape materials, and improves processing accuracy and production efficiency.
Patent Information
- Application Number
- CN202422576509.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-24
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2034-10-24
AI Technical Summary
When handling materials, existing sewing machines have complex operational processes and low efficiency, making it difficult to accurately and efficiently complete the sewing, cutting and edge locking of complex-shaped materials. The unreasonable layout of multiple components leads to mutual interference and affects production efficiency.
It adopts a multi-functional operating platform, including a workbench, gantry, overhanging arm and rotary lifting assembly. Through the coordinated work of the X-axis and Y-axis drive assembly, it realizes multi-process synchronous operation. The rotary lifting assembly can detachable pressure plate to adapt to different process requirements and form a compact overall layout.
Multi-process synchronous operation is realized, production efficiency is improved, adaptability to complex shape materials is enhanced, connection time and operation complexity are reduced between processes, and processing accuracy and equipment layout rationality.
Smart Images

Figure CN223189385U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of sewing machines, in particular to a multifunctional operating platform and sewing equipment. Background Art
[0002] When processing materials, existing sewing machines usually need to perform operations such as stitching, cutting and locking edges in stages, resulting in complicated processes and lengthy operation processes, further reducing work efficiency. When it comes to materials with complex shapes, it is often necessary to rely on clamping the materials and controlling their trajectory through templates. Due to the lack of automatic rotation devices, it is difficult to accurately and efficiently complete operations such as stitching, cutting and locking edges of the materials. In addition, when multiple components work at the same time, they often interfere with each other due to unreasonable layout design, affecting production efficiency.
[0003] Therefore, there is an urgent need for a multifunctional operating platform and sewing equipment to solve the above problems. Utility Model Content
[0004] The purpose of the utility model is to provide a multifunctional operating platform and sewing equipment, which effectively improves the rationality of the layout, realizes the synchronous operation of multiple processes, enhances the adaptability of the equipment to materials of complex shapes, and can accurately and efficiently complete operations such as sewing, cutting and locking the edges of materials.
[0005] To achieve this purpose, the present invention adopts the following technical solutions:
[0006] Multifunctional operating platform, including:
[0007] A workbench, with processing components arranged side by side in sequence on one side of the workbench;
[0008] A gantry, the gantry being erected above the workbench and extending in the X-axis direction and being located on the same side as the processing assembly, and an X-axis drive assembly being disposed in the gantry;
[0009] A plurality of cantilever arms, each of which is disposed above the workbench and connected to the X-axis drive assembly, wherein the X-axis drive assembly is capable of driving the plurality of cantilever arms to move along the X-axis direction, and a Y-axis drive assembly is disposed inside the cantilever arm along the Y-axis direction, wherein the Y-axis direction is perpendicular to the X-axis direction;
[0010] Multiple rotary lifting assemblies are respectively connected to the cantilever arms, and a pressure plate is detachably connected to the bottom of each rotary lifting assembly. The rotary lifting assembly can drive the pressure plate to move along the Y-axis direction and the vertical direction and rotate around the central axis of the rotary lifting assembly, and the pressure plate can abut against the workbench.
[0011] Furthermore, multiple groups of X-axis drive assemblies are arranged side by side in sequence along the height direction of the gantry, and the output ends of the multiple groups of X-axis drive assemblies are connected to the multiple cantilever arms in sequence to drive the multiple cantilever arms to move along the X-axis direction.
[0012] Furthermore, the X-axis drive assembly includes an X-axis drive motor, an X-axis screw and an X-axis drive block, the output end of the X-axis drive motor is connected to the X-axis screw, the X-axis drive block is screwed to the X-axis screw, and the end of the cantilever arm close to the gantry is connected to the X-axis drive block. The output end of the X-axis drive motor can drive the X-axis screw to drive the X-axis drive block to move along the X-axis direction.
[0013] Furthermore, the upper and lower edges of the gantry are provided with X-axis guide rails along the X-axis direction, and X-axis guide blocks are relatively provided on the X-axis guide rails. A first connecting plate is provided at one end of the cantilever arm close to the gantry, and the first connecting plate is connected to the X-axis guide block.
[0014] Furthermore, the Y-axis drive assembly includes a Y-axis drive motor, a Y-axis drive block, a Y-axis transmission and a Y-axis screw. The output end of the Y-axis drive motor is connected to the Y-axis transmission, and the Y-axis transmission drives the Y-axis screw to rotate. The Y-axis drive block is threadedly connected to the Y-axis screw and is slidingly connected to the side wall of the cantilever arm. The output end of the Y-axis drive motor can drive the Y-axis drive block on the Y-axis screw to move through the Y-axis transmission.
[0015] Furthermore, the rotary lifting assembly includes a lifting drive, a rotary motor and a rotary shaft; the lifting drive is connected to the Y-axis drive block at one end close to the cantilever arm, and the output end of the lifting drive is connected to the rotary motor to drive the rotary motor to move up and down in the vertical direction; the output end of the rotary motor is connected to the rotary shaft to drive the rotary shaft to rotate, and a pressure plate is detachably connected to the bottom of the rotary shaft.
[0016] Furthermore, the rotary lifting assembly also includes a guide member and a limiting sleeve. A second connecting plate is provided between the lifting drive member and the Y-axis drive block. The guide member is provided on the second connecting plate in a vertical direction. The rotating motor and the rotating shaft can be slidably connected to the guide member; the limiting sleeve is connected to the guide member, and the rotating shaft can move up and down and rotate within the limiting sleeve.
[0017] Furthermore, the pressing plate is provided with an anti-slip member on one side relative to the workbench.
[0018] Furthermore, the multifunctional operating platform also includes a control component, which includes a control part and a visual monitoring part. The control part, the X-axis drive component, the Y-axis drive component and the rotary lifting component are electrically connected. The visual monitoring part is arranged on the rotary lifting component for monitoring the position of the pressure plate and the working condition of the processing component.
[0019] The sewing equipment comprises a base, wherein the sewing equipment further comprises any of the multifunctional operating platforms described above, and the workbench is arranged on the base.
[0020] Beneficial effects of the utility model:
[0021] The utility model provides a multifunctional operating platform and sewing equipment, comprising a workbench, a gantry, multiple cantilever arms, and multiple rotary lifting assemblies. By arranging the processing assembly, the gantry, the cantilever arms, and the rotary lifting assemblies on one side of the workbench, a compact overall layout is formed. Different processing assemblies (such as a sewing machine, an overlock machine, a cutting machine, etc.) can be installed on one side of the rotary lifting assemblies on different cantilever arms, thereby achieving simultaneous operation of multiple workstations on the same workbench. There is no need to transport materials back and forth between different workstations, which reduces the connection time between processes and also reduces operational complexity and errors. The X-axis and Y-axis drive assemblies work in coordination, allowing the multiple rotary lifting assemblies and the cantilever arms to adjust their positions and heights simultaneously, thereby ensuring that different processes can be performed synchronously on the same platform. The rotary lifting assemblies can move freely in the Y-axis and vertical directions and can rotate around their own central axis, so that they can flexibly handle materials of various complex shapes and sizes. Whether it is materials with curved edges or irregular shapes, the position can be precisely adjusted for processing. The pressing plate at the bottom of each rotary lifting assembly is freely removable and replaceable. When changing materials or performing different processes, the pressing plate type can be quickly replaced to adapt to different operating requirements. Therefore, through synchronized multi-axis drive and automated control, a multifunctional operating platform and sewing equipment can quickly complete processes such as material adjustment, pressing, sewing, cutting, and edge locking, reducing the manual operation steps in traditional sewing equipment, thereby greatly improving production efficiency, effectively improving the rationality of the layout of each component, realizing synchronous operation of multiple processes, and enhancing the equipment's adaptability to materials with complex shapes. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 This is a structural diagram of the multifunctional operating platform and sewing equipment of the utility model;
[0023] Figure 2 This is a schematic structural diagram of the X-axis drive assembly of the present invention;
[0024] Figure 3This is a schematic diagram of the structure of the Y-axis drive assembly and the rotary lifting assembly of the utility model at an angle;
[0025] Figure 4 This is a schematic structural diagram of the Y-axis drive assembly and the rotary lifting assembly of the utility model from another angle.
[0026] In the picture:
[0027] 1. Workbench; 2. Processing assembly; 3. Gantry; 4. Cantilever arm; 5. Rotary lifting assembly; 51. Lifting drive member; 52. Rotating motor; 53. Rotating axis; 54. Guide member; 55. Limit sleeve; 56. Second connecting plate; 57. Third connecting plate; 6. Press plate; 7. X-axis drive assembly; 71. X-axis drive motor; 72. X-axis lead screw; 73. X-axis drive block; 74. X-axis guide rail; 75. X-axis guide block; 8. Y-axis drive assembly; 81. Y-axis drive motor; 82. Y-axis drive block; 83. Y-axis transmission member; 831. Pulley; 832. Synchronous belt; 84. Y-axis lead screw; 85. First connecting plate; 9. Base. DETAILED DESCRIPTION
[0028] The present invention will be further described in detail below with reference to the accompanying drawings and examples. It should be understood that the specific embodiments described herein are intended only to illustrate the present invention and are not intended to limit the present invention. It should also be noted that, for ease of description, the accompanying drawings only illustrate portions relevant to the present invention, not all of its components.
[0029] In the description of this utility model, unless otherwise specified or limited, the terms "connected," "connect," and "fixed" should be understood in a broad sense. For example, they can refer to fixed connection, detachable connection, or integration; mechanical connection or electrical connection; direct connection or indirect connection through an intermediate medium; internal communication between two components or interaction between two components. Those skilled in the art will understand the specific meanings of the above terms in this utility model based on the specific circumstances.
[0030] In the present invention, unless otherwise expressly specified or limited, a first feature being "above" or "below" a second feature may include the first and second features being in direct contact, or may include the first and second features being in contact not directly but through another feature between them. Moreover, a first feature being "above," "above," and "above" a second feature may include the first feature being directly above or obliquely above the second feature, or may simply mean that the first feature is higher in level than the second feature. A first feature being "below," "below," and "below" a second feature may include the first feature being directly below or obliquely below the second feature, or may simply mean that the first feature is lower in level than the second feature.
[0031] In the description of this embodiment, the terms "upper," "lower," "left," "right," and other orientations or positional relationships are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely for ease of description and simplified operation. They do not indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on the present invention. Furthermore, the terms "first" and "second" are used solely for descriptive purposes and have no special meaning.
[0032] Please refer to Figures 1 to 4 As shown, the utility model provides a multifunctional operating platform, which effectively improves the rationality of the device layout, realizes the synchronous operation of multiple processes, enhances the adaptability of the equipment to complex-shaped materials, and can accurately and efficiently complete operations such as stitching, cutting and locking the edges of materials; the multifunctional operating platform includes a workbench 1, a gantry 3, multiple cantilever arms 4 and multiple rotating lifting components 5; processing components 2 are arranged side by side on one side of the workbench 1; the gantry 3 is erected above the workbench 1 and extends along the X-axis direction, and is located on the same side as the processing component 2, and an X-axis drive is provided in the gantry 3 Component 7; multiple cantilever arms 4 are arranged above the workbench 1 and are connected to the X-axis drive component 7, which can drive the multiple cantilever arms 4 to move along the X-axis direction. A Y-axis drive component 8 is arranged inside the cantilever arm 4 along the Y-axis direction, and the Y-axis direction is perpendicular to the X-axis direction; multiple rotary lifting components 5 are respectively connected to the cantilever arms 4, and a pressure plate 6 is detachably connected to the bottom of each rotary lifting component 5. The rotary lifting component 5 can drive the pressure plate 6 to move along the Y-axis direction and the vertical direction and rotate around the central axis direction of the rotary lifting component 5, and the pressure plate 6 can abut against the workbench 1.
[0033] By arranging the processing assembly 2, gantry 3, cantilever arm 4 and rotary lifting assembly 5 on one side of the workbench 1, a compact overall layout is formed. Different processing assemblies 2 (such as sewing machines, overlock machines, cutting machines, etc.) can be installed on one side of the rotary lifting assembly 5 on different cantilever arms 4, thereby realizing simultaneous operation of multiple stations on the same work platform. There is no need to transport materials back and forth between different stations, reducing the connection time between processes and reducing operational complexity and errors. The X-axis and Y-axis drive assemblies work in coordination, so that multiple rotary lifting assemblies 5 and cantilever arms 4 can adjust their positions and heights at the same time, thereby ensuring that different processes can be carried out synchronously on the same platform. The rotary lifting assembly 5 can move freely in the Y-axis and vertical directions, and can rotate around its own central axis, and can flexibly cope with materials of various complex shapes and sizes. Whether it is curved edges or irregular shapes, the position can be accurately adjusted for processing. The pressure plate 6 at the bottom of each rotary lifting assembly 5 can be freely removed and replaced. When changing materials or performing different processes, the type of pressure plate 6 can be quickly replaced to adapt to different operating requirements. Therefore, through synchronized multi-axis drive and automated control, a multifunctional operating platform and sewing equipment can quickly complete processes such as material adjustment, pressing, sewing, cutting, and edge locking, reducing the manual operation steps in traditional sewing equipment, thereby greatly improving production efficiency, effectively improving the rationality of the layout of each component, realizing synchronous operation of multiple processes, and enhancing the equipment's adaptability to materials with complex shapes.
[0034] To enhance the stability between the pressing plate 6 and the material, in some embodiments, an anti-slip member is provided on the side of the pressing plate 6 facing the workbench 1. The anti-slip member increases the friction between the pressing plate 6 and the material, effectively preventing the material from sliding due to vibration or movement of the pressing plate 6 during processing, thereby ensuring processing accuracy. The anti-slip member may be, but is not limited to, a silicone pad, etc., and is not specifically limited here.
[0035] like Figure 2As shown, in order to improve the working efficiency of the multi-functional operating platform, in some embodiments, multiple groups of X-axis drive components 7 are arranged side by side in sequence along the height direction of the gantry 3, and the output ends of the multiple groups of X-axis drive components 7 are connected to the multiple cantilever arms 4 in sequence to drive the multiple cantilever arms 4 to move along the X-axis direction; through the multiple groups of X-axis drive components 7 respectively connected to each cantilever arm 4, each cantilever arm 4 can be moved and operated independently; even if one cantilever arm 4 needs to adjust its position or suspend operation, it will not affect the normal operation of other cantilever arms 4; in addition, the ability of independent control enables the multi-functional operating platform to be flexibly adjusted to different types of materials or task requirements, each cantilever arm 4 can move according to the set path and speed, adapt to complex operating scenarios, and ensure coordination and efficiency between processes; in addition, multiple groups of X-axis drive components 7 are arranged in sequence along the height direction of the gantry 3, with high space utilization, making the layout more compact, and at the same time, each group of X-axis drive components is independent of each other, avoiding cross interference and improving work efficiency.
[0036] Continue as Figure 2 As shown, specifically, the X-axis drive assembly 7 includes an X-axis drive motor 71, an X-axis screw rod 72 and an X-axis drive block 73. The output end of the X-axis drive motor 71 is connected to the X-axis screw rod 72, and the X-axis drive block 73 is screwed to the X-axis screw rod 72. The end of the cantilever arm 4 close to the gantry 3 is connected to the X-axis drive block 73. The output end of the X-axis drive motor 71 can drive the X-axis screw rod 72 to drive the X-axis drive block 73 to move along the X-axis direction; the X-axis drive motor 71 drives the X-axis screw rod 72 to rotate, so that the X-axis drive block 73 can be accurately controlled. The screw drive system has high mechanical stability, can reduce vibration and offset, and ensure that the cantilever arm 4 remains stable during movement. At the same time, the screw connection structure of the screw and the drive block has a certain self-locking ability. When there is no motor drive, the screw can lock the position of the drive block, preventing the cantilever arm 4 from moving or sliding unnecessarily under the action of gravity or external forces, thereby improving the safety of the drive assembly. In addition, the combination of the X-axis motor, screw, and drive block forms a compact and efficient transmission system, which takes up little space and simplifies the overall structure. Among them, the X-axis drive motor 71 can be, but is not limited to, a servo motor, etc., and is not specifically limited here.
[0037] Continue as Figure 2As shown, in order to improve the stability of the cantilever arm 4's movement, in some embodiments, X-axis guide rails 74 are provided along the upper and lower edges of the gantry 3 along the X-axis direction. X-axis guide blocks 75 are provided on the X-axis guide rails 74 in a relative manner. A first connecting plate 85 is provided at the end of the cantilever arm 4 near the gantry 3, and the first connecting plate 85 is connected to the X-axis guide block 75. By providing guide rails on the upper and lower edges of the gantry 3, a dual-guide rail structure is formed, which can effectively distribute the load of the cantilever arm 4 and its upper components, making the entire mobile system more evenly stressed during operation, providing a larger support surface and greater stability for the cantilever arm 4, and avoiding tilting or shaking caused by a single guide rail design. The X-axis guide block 75 forms a stable support between the upper and lower guide rails. The cantilever arm 4 is connected by the first connecting plate 85, ensuring that the cantilever arm 4 maintains parallel movement during movement, reducing misoperation or danger caused by vibration or impact, and improving safety and reliability. The first connecting plate 85 is screwed to the X-axis guide block 75, making the connection between the two more stable.
[0038] Combine Figure 3 and Figure 4As shown, in some embodiments, the Y-axis drive assembly 8 includes a Y-axis drive motor 81, a Y-axis drive block 82, a Y-axis transmission member 83 and a Y-axis screw 84. The output end of the Y-axis drive motor 81 is connected to the Y-axis transmission member 83, and the Y-axis transmission member 83 drives the Y-axis screw 84 to rotate. The Y-axis drive block 82 is screwed to the Y-axis screw 84 and is slidably connected to the side wall of the cantilever arm 4. The output end of the Y-axis drive motor 81 can drive the Y-axis drive block 82 on the Y-axis screw 84 to move through the Y-axis transmission member 83; the Y-axis drive motor 81 drives the Y-axis screw 84 to rotate through the Y-axis transmission member 83, so that the Y-axis drive block 82 moves precisely along the Y-axis direction, and the transmission method of the Y-axis screw 84 can achieve high-precision movement control; the Y-axis drive block 82 is screwed to the Y-axis screw 84 and is slidably connected to the side wall of the cantilever arm 4, thereby realizing a dual guide structure to ensure that the drive block remains stable during movement, reduce offset or tilt, and ensure accurate positioning of the material during processing. Specifically, the Y-axis transmission member 83 includes a first pulley 831, a second pulley 831 and a synchronous belt 832. The first pulley 831 is connected to the output end of the Y-axis drive motor 81, one end of the synchronous belt 832 is connected to the first pulley 831, and the other end is connected to the second pulley 831. The second pulley 831 is fixed to one end of the Y-axis screw rod 84. When the Y-axis drive motor 81 is started, the first pulley 831 starts to rotate, and the synchronous belt 832 transmits the power of the first pulley 831 to the second pulley 831, ensuring the synchronization and accuracy of the transmission process. As the second pulley 831 rotates, the Y-axis screw rod 84 also rotates, driving the Y-axis drive block 82 screwed thereto to move along the Y-axis direction; through the combination of the first pulley 831, the synchronous belt 832 and the second pulley 831, the power transmission process is efficient, without the need for complex mechanical devices, ensuring synchronization in the transmission process, reducing energy loss, and the motor speed can be adjusted as needed, thereby realizing different speed and acceleration control of the Y-axis drive block 82.
[0039] like Figure 4 As shown, in order to accurately control the rotary lifting assembly 5, in some embodiments, the rotary lifting assembly 5 includes a lifting drive 51, a rotary motor 52 and a rotary shaft 53; the lifting drive 51 is connected to the Y-axis drive block 82 at one end close to the cantilever arm 4, and the output end of the lifting drive 51 is connected to the rotary motor 52 to drive the rotary motor 52 to move up and down in the vertical direction; the output end of the rotary motor 52 is connected to the rotary shaft 53 to drive the rotary shaft 53 to rotate, and the bottom of the rotary shaft 53 is detachably connected to a pressure plate 6; the rotary lifting assembly 5 has both lifting and rotating movement capabilities, and can realize flexible adjustment of the pressure plate 6 in multiple directions, wherein the lifting drive 51 and the rotary motor 52 can be independently controlled, so that during operation, their height and rotation angle can be adjusted according to actual needs, thereby accurately adjusting the position and angle of the pressure plate 6 to meet the needs of different processes and to achieve the positioning accuracy of the pressure plate 6.
[0040] Continue as Figure 4 As shown, in order to improve the stability of the movement of the rotary lifting assembly 5, in some embodiments, the rotary lifting assembly 5 also includes a guide member 54 and a limiting sleeve 55, a second connecting plate 56 is arranged between the lifting drive member 51 and the Y-axis drive block 82, and a guide member 54 is arranged on the second connecting plate 56 in the vertical direction, and the rotary motor 52 and the rotary shaft 53 can be slidably connected to the guide member 54; the limiting sleeve 55 is connected to the guide member 54, and the rotary shaft 53 can move up and down and rotate in the limiting sleeve 55; wherein the guide member 54 effectively limits the movement path of the rotary motor 52 and the rotary shaft 53 in the vertical direction, prevents unnecessary lateral movement and swinging, and makes the lifting action smoother; the limiting sleeve 55 effectively limits the movement path of the rotary shaft 53 in the horizontal direction, and ensures that the rotary shaft 53 remains within the specified movement range during operation, thereby improving the repeatability and consistency of the rotation and lifting actions, and ensuring the processing quality. Specifically, the guide member 54 includes a slide rail and a third connecting plate 57. The slide rail is arranged in the vertical direction. The rotating motor 52 and the rotating shaft 53 are connected to the third connecting plate 57. The third connecting plate 57 is connected to the slide rail. The slide rail can drive the rotating motor 52 and the rotating shaft 53 on the third connecting plate 57 to move up and down in the vertical direction. The friction of the slide rail is small, which can ensure the smoothness of the movement, and can effectively guide the movement path of the rotating motor 52 and the rotating shaft 53, reduce deviation, and improve positioning accuracy.
[0041] In order to improve the intelligence level of the multifunctional operating platform, in some embodiments, the multifunctional operating platform also includes a control component, which includes a control component and a visual monitoring component. The control component, X-axis drive component 7, Y-axis drive component 8 and rotary lifting component 5 are electrically connected, and the visual monitoring component is arranged on the rotary lifting component 5 to monitor the position of the pressing plate 6 and the working condition of the processing component 2; through the integrated function of the control component, the movement of each component can be automatically adjusted, manual intervention can be reduced, operational efficiency can be improved, and complex multi-process operations can be made simpler; wherein the control component, X-axis drive component 7, Y-axis drive component 8 and rotary lifting component 5 are electrically connected, and can accurately issue instructions according to processing requirements to ensure the coordinated movement of each drive component and improve processing accuracy; the visual monitoring component can monitor the position of the pressing plate 6 and the working condition of the processing component 2 in real time, provide accurate position information, and help the control component to fine-tune the position of the pressing plate 6, thereby improving the accuracy of sewing, cutting and edge locking operations, and can also detect abnormal conditions in time, reduce the risk of failure, and improve operational safety.
[0042] like Figure 1As shown, the present invention further provides a sewing device, comprising a base 9 and a multifunctional operating platform in any of the above embodiments, wherein the workbench 1 is arranged on the base 9 . The sewing equipment forms a compact overall layout by arranging the processing component 2, the gantry 3, the cantilever arm 4 and the rotary lifting component 5 on one side of the workbench 1. Different processing components 2 (such as sewing machines, overlock machines, cutting machines, etc.) can be installed on one side of the rotary lifting component 5 on different cantilever arms 4, thereby realizing simultaneous operation of multiple stations on the same work platform. There is no need to transport materials back and forth between different stations, which reduces the connection time between processes and reduces the complexity and error of operation. The X-axis and Y-axis drive components work in coordination, so that multiple rotary lifting components 5 and the cantilever arm 4 can adjust their positions and heights at the same time, thereby ensuring that different processes can be carried out synchronously on the same platform. The rotary lifting component 5 can move freely in the Y-axis and vertical directions and can rotate around its own central axis. It can flexibly cope with materials of various complex shapes and sizes. Whether it is curved edges or irregular shapes, the position can be accurately adjusted for processing. The pressing plate 6 at the bottom of each rotary lifting component 5 can be freely removed and replaced. When changing materials or performing different processes, the type of pressing plate 6 can be quickly replaced to adapt to different operating requirements. Therefore, through synchronized multi-axis drive and automated control, a multifunctional operating platform and sewing equipment can quickly complete processes such as material adjustment, pressing, sewing, cutting, and edge locking, reducing the manual operation steps in traditional sewing equipment, thereby greatly improving production efficiency, effectively improving the rationality of the layout of each component, realizing synchronous operation of multiple processes, and enhancing the equipment's adaptability to materials with complex shapes.
[0043] The following is the operating process of the multi-function operating platform and sewing equipment:
[0044] First, place the material at the designated location on workbench 1;
[0045] Then, start the X-axis drive assembly 7 on the gantry 3 and the Y-axis drive assembly 8 in the cantilever arm 4, move the cantilever arm 4 and the rotary lifting assembly 5, and move the pressure plate 6 at the bottom end of the rotary lifting assembly 5 to be just above the material;
[0046] After that, the rotary lifting assembly 5 is started, the pressing plate 6 is lowered to press the material, and the cantilever arm 4 moves along the X direction on the gantry 3, driving the material to the processing assembly 2, and the material is transferred between multiple cantilever arms 4, and the material is sequentially stitched, cut and hemmed. When the material is processed, the X-axis drive assembly 7, the Y-axis drive assembly 8 and the rotary lifting assembly 5 move according to the set trajectory;
[0047] Finally, after the material processing is completed, the material is moved to the designated location and then re-taken.
[0048] Obviously, the above-described embodiments of the present invention are merely examples for the purpose of clearly illustrating the present invention and are not intended to limit the manner in which the present invention is to be implemented. A person skilled in the art would be able to make various obvious changes, readjustments, and substitutions without departing from the scope of protection of the present invention. It is not necessary and impossible to enumerate all embodiments here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the claims of the present invention.
Claims
1. Multifunctional operating platform, characterized by: include: A workbench (1), wherein processing components (2) are sequentially arranged side by side on one side of the workbench (1); A gantry (3), the gantry (3) being erected above the workbench (1) and extending in the X-axis direction and being located on the same side as the processing assembly (2), an X-axis drive assembly (7) being provided in the gantry (3); A plurality of cantilever arms (4), wherein the plurality of cantilever arms (4) are arranged above the workbench (1) and are connected to the X-axis drive assembly (7), wherein the X-axis drive assembly (7) is capable of driving the plurality of cantilever arms (4) to move along the X-axis direction, and a Y-axis drive assembly (8) is arranged inside the cantilever arms (4) along the Y-axis direction, wherein the Y-axis direction is perpendicular to the X-axis direction; A plurality of rotary lifting assemblies (5) are respectively connected to the cantilever arms (4); a pressing plate (6) is detachably connected to the bottom of each rotary lifting assembly (5); the rotary lifting assembly (5) can drive the pressing plate (6) to move along the Y-axis direction and the vertical direction and to rotate around the central axis of the rotary lifting assembly (5); and the pressing plate (6) can abut against the workbench (1).
2. The multifunctional operating platform according to claim 1, characterized in that: Multiple groups of X-axis drive assemblies (7) are sequentially arranged side by side inside the gantry (3) along its height direction, and the output ends of the multiple groups of X-axis drive assemblies (7) are sequentially connected to the multiple cantilever arms (4) to drive the multiple cantilever arms (4) to move along the X-axis direction.
3. The multifunctional operating platform according to claim 2, characterized in that: The X-axis drive assembly (7) comprises an X-axis drive motor (71), an X-axis screw rod (72) and an X-axis drive block (73); the output end of the X-axis drive motor (71) is connected to the X-axis screw rod (72); the X-axis drive block (73) is screwed to the X-axis screw rod (72); one end of the cantilever arm (4) close to the gantry (3) is connected to the X-axis drive block (73); the output end of the X-axis drive motor (71) can drive the X-axis screw rod (72) to drive the X-axis drive block (73) to move along the X-axis direction.
4. The multifunctional operating platform according to claim 3, characterized in that: The upper and lower edges of the gantry (3) are provided with X-axis guide rails (74) along the X-axis direction, and an X-axis guide block (75) is relatively provided on the X-axis guide rail (74). The cantilever arm (4) is provided with a first connecting plate (85) at one end close to the gantry (3), and the first connecting plate (85) is connected to the X-axis guide block (75).
5. The multifunctional operating platform according to claim 1, characterized in that: The Y-axis drive assembly (8) comprises a Y-axis drive motor (81), a Y-axis drive block (82), a Y-axis transmission member (83) and a Y-axis screw rod (84); the output end of the Y-axis drive motor (81) is connected to the Y-axis transmission member (83); the Y-axis transmission member (83) drives the Y-axis screw rod (84) to rotate; the Y-axis drive block (82) is screwed to the Y-axis screw rod (84) and is slidably connected to the side wall of the cantilever arm (4); the output end of the Y-axis drive motor (81) can drive the Y-axis drive block (82) on the Y-axis screw rod (84) to move through the Y-axis transmission member (83).
6. The multifunctional operating platform according to claim 5, characterized in that: The rotary lifting assembly (5) comprises a lifting drive member (51), a rotary motor (52) and a rotary shaft (53); the lifting drive member (51) is connected to the Y-axis driving block (82) at one end close to the cantilever arm (4); the output end of the lifting drive member (51) is connected to the rotary motor (52) to drive the rotary motor (52) to move up and down in the vertical direction; the output end of the rotary motor (52) is connected to the rotary shaft (53) to drive the rotary shaft (53) to rotate, and the bottom of the rotary shaft (53) is detachably connected to a pressure plate (6).
7. The multifunctional operating platform according to claim 6, characterized in that: The rotary lifting assembly (5) also includes a guide member (54) and a limiting sleeve (55). A second connecting plate (56) is provided between the lifting drive member (51) and the Y-axis drive block (82). The guide member (54) is provided on the second connecting plate (56) in a vertical direction. The rotary motor (52) and the rotary shaft (53) can be slidably connected to the guide member (54); the limiting sleeve (55) is connected to the guide member (54), and the rotary shaft (53) can move up and down and rotate in the limiting sleeve (55).
8. The multifunctional operating platform according to any one of claims 1 to 7, characterized in that: The pressing plate (6) is provided with an anti-slip part on one side relative to the workbench (1).
9. The multifunctional operating platform according to any one of claims 1 to 7, characterized in that: The multifunctional operating platform further comprises a control component, which comprises a control part and a visual monitoring part. The control part, the X-axis drive component (7), the Y-axis drive component (8) and the rotary lifting component (5) are electrically connected. The visual monitoring part is arranged on the rotary lifting component (5) and is used to monitor the position of the pressure plate (6) and the working condition of the processing component (2).
10. Sewing device comprising a base (9), characterized in that The sewing equipment further comprises a multifunctional operating platform according to any one of claims 1 to 9, and the workbench (1) is arranged on the base (9).