Magnetic shoe tool moving platform
By designing a moving platform for magnetic tile installation, the problems of complex installation process and low assembly efficiency of magnetic tile are solved, and the convenient movement and efficient installation of magnetic tile are achieved, which improves production efficiency and reduces tooling losses.
Patent Information
- Application Number
- CN202422418195.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-08
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2034-10-08
AI Technical Summary
In the prior art, the installation process of magnetic tiles is complicated, resulting in high operational difficulty and low assembly efficiency. The motor magnetic tiles device increases labor intensity during the movement and positioning of different processes.
A magnetic tile tool installation mobile platform is designed, including a base, a first horizontal moving mechanism, a second horizontal moving mechanism, a hollow rotating platform, a hoisting mechanism and a rotary pressing mechanism. Through the coordinated work of these components, the magnetic tile tool installation is easily moved and installed between different processes.
It improves the installation efficiency of magnetic tiles, reduces the loss of workpieces, ensures smooth connection between processes, reduces operational complexity and labor intensity, and improves production efficiency.
Smart Images

Figure CN223206976U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a magnetic tile tooling mobile platform, belonging to the technical field of motor production. Background Art
[0002] With the widespread use of motors in various industrial equipment, magnetic tiles, as key components within motors, are becoming increasingly important. The installation of these tiles typically requires multiple steps, often using a tile fixture as a carrier for mounting them.
[0003] After searching the prior art, we discovered Chinese patent publication number CN218449814U, which discloses a motor magnetic tile device capable of attaching magnetic tiles to the inner wall of a motor rotor. In actual production, the assembly of magnetic tiles often requires multiple steps, including attaching the tiles to the motor magnetic tile device and securing them to the inner wall of the motor housing via the motor magnetic tile device. The movement and positioning of the motor magnetic tile device during various steps not only increases operational complexity and labor intensity, but also impacts final assembly efficiency. Summary of the Invention
[0004] The technical problem to be solved by the utility model is to overcome the defects of the existing technology and provide a mobile platform for magnetic tile tooling, which can facilitate the installation of magnetic tiles on the magnetic tile tooling and can drive the magnetic tile tooling to move between different processes, thereby improving assembly efficiency.
[0005] In order to solve the above technical problems, the technical solution of the utility model is: a magnetic tile tooling mobile platform, comprising:
[0006] A base, wherein the base is provided with a through groove extending in a horizontal direction;
[0007] a first horizontal moving mechanism, the first horizontal moving mechanism being mounted on the base, the first horizontal moving mechanism being provided with a mounting plate, and the first horizontal moving mechanism being adapted to drive the mounting plate to move horizontally on the base;
[0008] a second horizontal moving mechanism, the second horizontal moving mechanism being mounted on the mounting plate of the first horizontal moving mechanism, and a rotary pressing mechanism working station being provided on the moving path of the second horizontal moving mechanism;
[0009] A hollow rotating platform, the hollow rotating platform being mounted on the mounting plate of the first horizontal moving mechanism, the hollow rotating platform being provided with a rotating bearing surface suitable for placing a magnetic tile tooling, the rotating bearing surface being provided with a through hole, and the hollow rotating platform being suitable for driving the rotating bearing surface to rotate;
[0010] a jacking mechanism, the jacking mechanism being installed on the mounting plate of the first horizontal moving mechanism through the through slot of the base, the jacking mechanism being provided with a jacking rod, the jacking mechanism being adapted to drive the jacking rod through the through hole of the rotating bearing surface;
[0011] a rotary pressing mechanism, wherein the rotary pressing mechanism is arranged on the second horizontal moving mechanism;
[0012] When the second horizontal moving mechanism moves to the working station of the rotary pressing mechanism, the rotary pressing mechanism is suitable for abutting against the upper surface of the magnetic tile tooling when the lifting mechanism drives the push rod to pass through the through hole of the rotating bearing surface and press onto the magnetic tile tooling.
[0013] Furthermore, a specific structure of a rotary pressing mechanism is provided, and the rotary pressing mechanism includes:
[0014] A U-shaped plate, the U-shaped plate being mounted on the second horizontal moving mechanism;
[0015] At least one roller is rotatably mounted on the U-shaped plate, the axis of the roller is parallel to the plane of the base, and the roller is suitable for rolling contact with the upper surface of the magnetic tile tooling.
[0016] Furthermore, a specific structure of a first horizontal movement mechanism is provided, wherein the first horizontal movement mechanism comprises:
[0017] at least one linear guide rail mounted on the base;
[0018] at least one slider, the slider being slidably mounted on the linear guide rail;
[0019] a lead screw rotatably mounted on the base;
[0020] a nut, wherein the nut is threadedly engaged with the lead screw;
[0021] A driving source, the driving source being mounted on the base, the driving source being provided with a rotating shaft connected to one end of the lead screw;
[0022] The mounting plate is fixed on the slider;
[0023] The driving source is suitable for driving the lead screw to rotate, and the slider is driven to move along the linear guide rail through the cooperation of the lead screw and the nut.
[0024] Furthermore, a specific structure of a position detection component is provided, wherein the first horizontal movement mechanism is further provided with a position detection component, and the position detection component includes:
[0025] at least one position sensor, wherein the position sensor is mounted on the linear guide rail of the first horizontal movement mechanism;
[0026] a controller, the controller being electrically connected to the position sensor and the driving source respectively;
[0027] a position triggering member, the position triggering member being mounted on the slider;
[0028] Wherein, when the position trigger moves to a predetermined position, the position sensor is adapted to generate a position signal;
[0029] The controller is adapted to receive a position signal from the position sensor and control the driving source to stop running according to the position signal.
[0030] Furthermore, a specific structure of a second horizontal movement mechanism is provided, wherein the second horizontal movement mechanism includes:
[0031] at least one guide rail, the guide rail being mounted on the mounting plate parallel to the horizontal direction of the base;
[0032] at least one guide slider, the guide slider being slidably engaged on the guide rail;
[0033] The rotary pressing mechanism is installed on the guide slider;
[0034] A telescopic driving source is fixedly mounted on one side of the mounting plate. An output end is provided on the telescopic driving source, and the output end is connected to the rotary pressing mechanism.
[0035] Furthermore, a specific structure of a limit assembly is provided, wherein the second horizontal movement mechanism is further provided with a limit assembly, the limit assembly comprising at least one limit column, and the limit column is mounted on the mounting plate;
[0036] The second horizontal movement mechanism is provided with a contact portion corresponding to the limiting column;
[0037] Wherein, when the second horizontal moving mechanism moves to the limit position, the contact portion is adapted to abut against the limiting column to limit the moving range of the second horizontal moving mechanism.
[0038] Furthermore, a specific structure of a hollow rotating platform is provided, wherein the hollow rotating platform comprises:
[0039] A support base, the support base is fixed on the second horizontal moving mechanism, and the support base is provided with a first through hole;
[0040] A rotating seat, the rotating seat is rotatably mounted on the supporting seat, and a second through hole is provided on the rotating seat;
[0041] The first through hole and the second through hole are combined to form a through hole, and the rotating bearing surface is provided on the rotating seat;
[0042] A transmission assembly, the transmission assembly is installed in the support base and is in transmission connection with the rotating base;
[0043] A rotation drive source is fixed on the support seat. The rotation drive source is provided with an output shaft, the output shaft is in transmission connection with the transmission assembly, and the rotation drive source is suitable for driving the rotating seat to rotate through the transmission assembly.
[0044] Furthermore, a specific structure of a jacking mechanism is provided, and the jacking mechanism includes:
[0045] A lifting and telescopic driving source is fixed on the mounting plate of the first horizontal moving mechanism, and the jack is arranged on the lifting and telescopic driving source.
[0046] By adopting the above technical solution, the utility model has the following beneficial effects:
[0047] In the present invention, the second horizontal movable mechanism is first moved to the non-rotating clamping mechanism working station, allowing the magnetic tile fixture to be placed on the rotating bearing surface of the hollow rotating platform. Subsequently, the second horizontal movable mechanism begins to move to the rotating clamping mechanism working station, driving the rotating clamping mechanism to move above the hollow rotating platform, corresponding to the magnetic tile fixture. At this point, the jacking mechanism is activated, driving the ejector rod through the through-hole from below the rotating bearing surface and pressing against the bottom of the magnetic tile fixture. The magnetic tile fixture is released, and the upper surface of the magnetic tile fixture is abutted by the roller of the rotating clamping mechanism. Next, the hollow rotating platform begins to rotate, driving the magnetic tile fixture to rotate to the desired angle. For each angle of rotation, a magnetic tile is installed, and this process is repeated until all magnetic tiles are installed. After installation is completed, the jacking mechanism retracts, and the second horizontal movable mechanism moves again, moving the rotating clamping mechanism away from the non-rotating clamping mechanism working station. Finally, the first horizontal movable mechanism drives the entire assembly to the next process position.
[0048] Furthermore, the rotary clamping mechanism utilizes a U-shaped plate and roller design, effectively reducing friction during the clamping process, protecting the surface of the magnetic tile fixture from damage and facilitating installation. The safety of movement is further enhanced by incorporating a limiter assembly into the second horizontal movement mechanism.
[0049] In summary, the present invention significantly improves the installation efficiency, mobility and overall convenience of magnetic tiles. While improving production efficiency, it also effectively reduces tooling wear and tear, ensuring smooth connection between processes. BRIEF DESCRIPTION OF THE DRAWINGS
[0050] Figure 1 The three-dimensional structure of the mobile platform of the magnetic tile tooling of the utility model is shown in FIG. Figure 1 ;
[0051] Figure 2 for Figure 1 A partial enlarged view of part A in the middle;
[0052] Figure 3 The three-dimensional structure of the mobile platform of the magnetic tile tooling of the utility model is shown in FIG. Figure 2 ;
[0053] Figure 4 The three-dimensional structure of the mobile platform of the magnetic tile tooling of the utility model is shown in FIG. Figure 3 ;
[0054] Figure 5 The three-dimensional structure of the mobile platform of the magnetic tile tooling of the utility model is shown in FIG. Figure 4 . DETAILED DESCRIPTION
[0055] In order to make the contents of the present invention more clearly understood, the present invention is further described in detail below based on specific embodiments in conjunction with the accompanying drawings.
[0056] like Figure 1-5 As shown, a magnetic tile tooling mobile platform includes:
[0057] A base 1 is provided with a through groove extending in a horizontal direction;
[0058] A first horizontal moving mechanism 2 is installed on the base 1. A mounting plate is provided on the first horizontal moving mechanism 2. The first horizontal moving mechanism 2 is suitable for driving the mounting plate to move horizontally on the base 1.
[0059] A second horizontal moving mechanism 3 is mounted on the mounting plate of the first horizontal moving mechanism 2, and a rotary pressing mechanism working station is provided on the moving path of the second horizontal moving mechanism 3;
[0060] The hollow rotating platform 4 is mounted on the mounting plate of the first horizontal moving mechanism 2. The hollow rotating platform 4 is provided with a rotating bearing surface suitable for placing the magnetic tile tooling 7. The rotating bearing surface is provided with a through hole. The hollow rotating platform 4 is suitable for driving the rotating bearing surface to rotate;
[0061] A lifting mechanism 5 is installed on the mounting plate of the first horizontal moving mechanism 2 through the through slot of the base 1. The lifting mechanism 5 is provided with a push rod, and the lifting mechanism 5 is suitable for driving the push rod to pass through the through hole of the rotating bearing surface;
[0062] A rotary pressing mechanism 6, which is arranged on the second horizontal moving mechanism 3;
[0063] When the second horizontal moving mechanism 3 moves to the working position of the rotary clamping mechanism, the rotary clamping mechanism 6 is suitable for abutting against the upper surface of the magnetic tile fixture 7 when the lifting mechanism 5 drives the push rod through the through hole of the rotating bearing surface and presses on the magnetic tile fixture 7.
[0064] In this embodiment, if Figure 1 and Figure 3 As shown, the second horizontal movable mechanism 3 is first moved to the non-rotating clamping mechanism working station, allowing the magnetic tile fixture 7 to be placed on the rotating bearing surface of the hollow rotating platform 4. Subsequently, the second horizontal movable mechanism 3 begins to move to the rotating clamping mechanism working station, driving the rotating clamping mechanism 6 to move above the hollow rotating platform 4, corresponding to the magnetic tile fixture 7. At this point, the lifting mechanism 5 is activated, driving the ejector rod through the through-hole from below the rotating bearing surface and pressing against the bottom of the magnetic tile fixture 7. The magnetic tile fixture 7 is released, and the upper surface of the magnetic tile fixture 7 is abutted by the roller 62 of the rotating clamping mechanism 6. Next, the hollow rotating platform 4 begins to rotate, driving the magnetic tile fixture 7 to rotate to the desired angle. Each time the angle is rotated, a magnetic tile is installed, and this process is repeated until all magnetic tiles are installed. After installation is completed, the lifting mechanism 5 retracts, and the second horizontal movable mechanism 3 moves again, moving the rotating clamping mechanism 6 away from the non-rotating clamping mechanism working station. Finally, the first horizontal movable mechanism 2 drives the entire assembly to the next process position.
[0065] Specifically, such as Figure 1 and Figure 5 As shown, the rotary pressing mechanism 6 may have the following structure, including:
[0066] U-shaped plate 61, the U-shaped plate 61 is installed on the second horizontal moving mechanism 3;
[0067] Four rollers 62 are rotatably mounted on the U-shaped plate 61 , with axes of the rollers 62 parallel to the plane of the base 1 . The rollers 62 are suitable for rolling contact with the upper surface of the magnetic tile fixture 7 .
[0068] In this embodiment, if Figure 1 and Figure 5 As shown, the rotating nature of the rollers 62 greatly reduces friction with the surface of the magnetic tile fixture 7, avoiding possible scratches or damage. Furthermore, the rollers 62 evenly distribute the pressing force, ensuring the stability of the magnetic tile fixture 7 during rotation. Two rollers 62 are provided on each side of the U-shaped plate 61.
[0069] In some embodiments, the number of rollers 62 is not limited to four and can be set according to specific needs.
[0070] Specifically, such as Figure 1 and Figure 3-4 As shown, the first horizontal moving mechanism 2 may have the following structure, including:
[0071] A set of linear guide rails 21, the linear guide rails 21 are installed on the base 1;
[0072] A set of sliders 22, the sliders 22 are slidably mounted on the linear guide rails 21;
[0073] A lead screw rotatably mounted on the base 1;
[0074] A nut, the nut thread is fitted on the lead screw;
[0075] A driving source 23 is mounted on the base 1 and is provided with a rotating shaft connected to one end of the lead screw;
[0076] The mounting plate is fixed on the slider 22;
[0077] The driving source 23 is suitable for driving the lead screw to rotate, and the slider 22 is driven to move along the linear guide rail 21 through the cooperation between the lead screw and the nut.
[0078] In this embodiment, if Figure 3-4 As shown, during use, the drive source 23 rotates the lead screw. The threaded engagement between the lead screw and the nut converts this rotational motion into linear motion of the slider 22 along the linear guide rail 21. The lead screw drive has a self-locking characteristic, maintaining its position when stationary, enhancing system stability. Furthermore, by varying the speed and direction of rotation of the drive source 23, the speed and direction of movement of the slider 22 can be precisely controlled. Specifically, the drive source 23 can be a motor.
[0079] Specifically, such as Figure 1-2 and Figure 4 As shown, the first horizontal moving mechanism 2 is further provided with a position detection component, which may be of the following structure, including:
[0080] Two position sensors 221, the position sensors 221 are installed near the two ends of the linear guide rail 21 of the first horizontal moving mechanism 2;
[0081] A controller, the controller being electrically connected to the position sensor 221 and the driving source 23;
[0082] A position trigger 222 , which is mounted on the slider 22 ;
[0083] Wherein, when the position trigger 222 moves to a predetermined position, the position sensor 221 is adapted to generate a position signal;
[0084] The controller is adapted to receive a position signal from the position sensor 221 and control the driving source 23 to stop running according to the position signal.
[0085] In this embodiment, if Figure 1-2 and Figure 4 As shown, the controller is connected to the drive source 23 via a frequency converter. When the slider 22 drives the position trigger 222 to the predetermined position, the position sensor 221 immediately generates a position signal. Upon receiving this signal, the controller quickly responds by issuing a stop command to the drive source 23, thereby precisely controlling the position of the slider 22. The predetermined position is near the ends of the linear guide 21. The controller can be a PLC. The position sensor 221 can be a photoelectric sensor.
[0086] In some embodiments, the number of position sensors 221 is not limited to two and can be set according to specific needs.
[0087] Specifically, such as Figure 1 and Figure 4 As shown, the second horizontal moving mechanism 3 may have the following structure, including:
[0088] A set of guide rails 31, the guide rails 31 are mounted on the mounting plate parallel to the horizontal direction of the base 1;
[0089] A set of guide sliders 32, the guide sliders 32 are slidably fitted on the guide rails 31;
[0090] The rotary pressing mechanism 6 is mounted on the guide slider 32;
[0091] The telescopic driving source 33 is fixedly mounted on one side of the mounting plate. The telescopic driving source 33 is provided with an output end, which is connected to the rotary pressing mechanism 6 .
[0092] In this embodiment, if Figure 1 and Figure 4 As shown, during use, when the position of the rotary clamping mechanism 6 needs to be adjusted, the telescopic drive source 33 drives the entire mechanism to move on the guide rail 31. By adjusting the stroke of the telescopic drive source 33, it can flexibly adapt to different sizes of magnetic tile fixtures 7, increasing the applicability and flexibility of the device. The telescopic drive source 33 can specifically be a rodless cylinder.
[0093] Specifically, such as Figure 1 and Figure 4 As shown, the second horizontal moving mechanism 3 is further provided with a limit assembly, which includes two limit columns 34, and the limit columns 34 are mounted on the mounting plate;
[0094] The second horizontal moving mechanism 3 is provided with a contact portion corresponding to the limiting column 34;
[0095] When the second horizontal moving mechanism 3 moves to the limit position, the contact portion is adapted to abut against the limiting column 34 to limit the moving range of the second horizontal moving mechanism 3 .
[0096] In this embodiment, if Figure 1 and Figure 4 As shown, when the second horizontal movement mechanism 3 moves horizontally to the preset limit position, the contact portion abuts against the limit post 34. This physical contact effectively prevents further movement of the second horizontal movement mechanism 3, thereby limiting its range of motion. This design not only protects the equipment from damage caused by excessive movement but also ensures safe and controllable operation.
[0097] In some embodiments, the number of the limiting posts 34 is not limited to two and can be set according to specific needs.
[0098] Specifically, such as Figure 1 and Figure 4 As shown, the hollow rotating platform 4 can be of the following structure, including:
[0099] A support base 41 is fixed to the second horizontal moving mechanism 3 and is provided with a first through hole;
[0100] The rotating seat 42 is rotatably mounted on the supporting seat 41 and is provided with a second through hole;
[0101] The first through hole and the second through hole are combined to form a through hole, and the rotating bearing surface is provided on the rotating seat 42;
[0102] The transmission assembly is installed in the support base 41 and is in transmission connection with the rotating base 42;
[0103] The rotary drive source 43 is fixed on the support base 41 and is provided with an output shaft, which is in transmission connection with the transmission assembly. The rotary drive source 43 is suitable for driving the rotary base 42 to rotate through the transmission assembly.
[0104] In this embodiment, if Figure 1 and Figure 3-4 As shown, when the angle of the magnetic tile fixture 7 needs to be adjusted, the rotary drive source 43 is activated, driving the rotating base 42 to rotate through the transmission assembly. This design allows the operator to precisely adjust the angle of the magnetic tile fixture 7 without moving the entire platform. At the same time, the through-hole design ensures that the lifting mechanism 5 can continue to operate normally during the rotation process. The transmission assembly can be a speed reducer or a worm gear. The hollow rotating platform 4 is conventional technology and will not be described in detail in this embodiment.
[0105] Specifically, such as Figure 1 and Figure 3As shown, the lifting mechanism 5 may have the following structure, including:
[0106] The jacking and telescopic driving source is fixed on the mounting plate of the first horizontal moving mechanism 2, and the jacking rod is arranged on the jacking and telescopic driving source.
[0107] In this embodiment, if Figure 1 As shown, the lifting and telescopic drive source can specifically be a pneumatic cylinder, or in some embodiments, a hydraulic cylinder. In actual use, when the magnetic tile fixture 7 needs to be released, the lifting and telescopic drive source drives the push rod upward, passing through the through-hole of the hollow rotating platform 4 until it contacts the bottom of the magnetic tile fixture 7. When the operation is completed, the lifting and telescopic drive source drives the push rod downward.
[0108] The magnetic tile tooling 7 is a prior art and will not be described in detail in this embodiment.
[0109] The specific embodiments described above further illustrate the technical problems, technical solutions and beneficial effects solved by the present invention. It should be understood that the above are only specific embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A mobile platform for magnetic tile tooling, characterized in that: include: A base (1), wherein the base (1) is provided with a through groove extending in a horizontal direction; a first horizontal moving mechanism (2), the first horizontal moving mechanism (2) being mounted on the base (1), a mounting plate being provided on the first horizontal moving mechanism (2), and the first horizontal moving mechanism (2) being adapted to drive the mounting plate to move horizontally on the base (1); a second horizontal moving mechanism (3), the second horizontal moving mechanism (3) being mounted on a mounting plate of the first horizontal moving mechanism (2), and a rotary pressing mechanism working station being provided on a moving path of the second horizontal moving mechanism (3); A hollow rotating platform (4), the hollow rotating platform (4) being mounted on a mounting plate of the first horizontal moving mechanism (2), the hollow rotating platform (4) being provided with a rotating bearing surface suitable for placing a magnetic tile tooling (7), the rotating bearing surface being provided with a through hole, and the hollow rotating platform (4) being suitable for driving the rotating bearing surface to rotate; A lifting mechanism (5), the lifting mechanism (5) is installed on the mounting plate of the first horizontal moving mechanism (2) through the through slot of the base (1), the lifting mechanism (5) is provided with a push rod, and the lifting mechanism (5) is suitable for driving the push rod to pass through the through hole of the rotating bearing surface; a rotary pressing mechanism (6), wherein the rotary pressing mechanism (6) is arranged on the second horizontal moving mechanism (3); When the second horizontal moving mechanism (3) moves to the working station of the rotary pressing mechanism, the rotary pressing mechanism (6) is suitable for abutting against the upper surface of the magnetic tile fixture (7) when the lifting mechanism (5) drives the push rod to pass through the through hole of the rotary bearing surface and press onto the magnetic tile fixture (7).
2. The magnetic tile tooling mobile platform according to claim 1, characterized in that: The rotary pressing mechanism (6) comprises: A U-shaped plate (61), the U-shaped plate (61) being mounted on the second horizontal moving mechanism (3); At least one roller (62) is rotatably mounted on the U-shaped plate (61), the axis of the roller (62) is parallel to the plane of the base (1), and the roller (62) is suitable for rolling contact with the upper surface of the magnetic tile fixture (7).
3. The magnetic tile tooling mobile platform according to claim 1, characterized in that: The first horizontal movement mechanism (2) comprises: at least one linear guide rail (21), the linear guide rail (21) being mounted on the base (1); at least one slider (22), the slider (22) being slidably mounted on the linear guide rail (21); A lead screw rotatably mounted on the base (1); a nut, wherein the nut is threadedly engaged with the lead screw; A driving source (23), the driving source (23) being mounted on the base (1), the driving source (23) being provided with a rotating shaft connected to one end of the lead screw; The mounting plate is fixed on the slider (22); The driving source (23) is suitable for driving the lead screw to rotate, and the slider (22) is driven to move along the linear guide rail (21) through the cooperation between the lead screw and the nut.
4. The magnetic tile tooling mobile platform according to claim 3, characterized in that: The first horizontal moving mechanism (2) is also provided with a position detection component, and the position detection component comprises: at least one position sensor (221), the position sensor (221) being mounted on the linear guide rail (21) of the first horizontal moving mechanism (2); a controller electrically connected to the position sensor (221) and the driving source (23); a position triggering member (222), the position triggering member (222) being mounted on the slider (22); Wherein, when the position trigger (222) moves to a predetermined position, the position sensor (221) is adapted to generate a position signal; The controller is adapted to receive a position signal from the position sensor (221) and control the driving source (23) to stop running according to the position signal.
5. The magnetic tile tooling mobile platform according to claim 1, characterized in that: The second horizontal moving mechanism (3) comprises: at least one guide rail (31), the guide rail (31) being mounted on the mounting plate parallel to the horizontal direction of the base (1); at least one guide slider (32), the guide slider (32) being slidably engaged on the guide rail (31); The rotary pressing mechanism (6) is mounted on the guide slider (32); A telescopic driving source (33) is fixedly mounted on one side of the mounting plate. An output end is provided on the telescopic driving source (33), and the output end is connected to the rotary pressing mechanism (6).
6. The magnetic tile tooling mobile platform according to claim 5, characterized in that: The second horizontal movement mechanism (3) is further provided with a limiting assembly, the limiting assembly comprising at least one limiting column (34), and the limiting column (34) is mounted on the mounting plate; The second horizontal movement mechanism (3) is provided with a contact portion corresponding to the limiting column (34); Wherein, when the second horizontal moving mechanism (3) moves to the extreme position, the contact portion is adapted to abut against the limiting column (34) to limit the moving range of the second horizontal moving mechanism (3).
7. The magnetic tile tooling mobile platform according to claim 1, characterized in that: The hollow rotating platform (4) comprises: A support seat (41), the support seat (41) is fixed on the second horizontal movement mechanism (3), and the support seat (41) is provided with a first through hole; a rotating seat (42), the rotating seat (42) being rotatably mounted on the supporting seat (41), and the rotating seat (42) being provided with a second through hole; The first through hole and the second through hole are combined to form a through hole, and the rotating bearing surface is arranged on the rotating seat (42); a transmission assembly, the transmission assembly being installed in the support seat (41) and being in transmission connection with the rotating seat (42); A rotation drive source (43) is fixed on the support seat (41). The rotation drive source (43) is provided with an output shaft, the output shaft is in transmission connection with the transmission assembly, and the rotation drive source (43) is suitable for driving the rotation seat (42) to rotate through the transmission assembly.
8. The magnetic tile tooling mobile platform according to claim 1, characterized in that: The lifting mechanism (5) comprises: A lifting and telescopic driving source is fixed on a mounting plate of the first horizontal moving mechanism (2), and the jack is arranged on the lifting and telescopic driving source.
Citation Information
Patent Citations
Motor magnetic shoe pasting device
CN218449814U