A suspension bracket for parts processing
By introducing an automated flat panel and hanging bracket design into the hanging bracket and using a PLC control panel and module to automatically deliver parts, the problem of workers having to enter the bracket to unload materials is solved, thereby improving safety and efficiency.
Patent Information
- Application Number
- CN202510719293.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-30
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2045-05-30
AI Technical Summary
The existing suspension bracket requires workers to enter the bracket to operate during the cutting process, which poses safety risks and inconveniences in operation.
The machine adopts a flat plate that can slide out of the frame and a double-point suspension frame, combined with a PLC control panel, a double-sided pulley transfer module and a lifting Y-axis pusher module to achieve automatic delivery of parts to be processed, avoiding manual unloading operations.
It reduces the time of material cutting operation, reduces the safety risk, and improves the safety of the working environment and the convenience of operation.
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Figure CN120244892B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of hangers for parts to be processed, in particular to a hanging bracket for parts processing. Background Art
[0002] When processing parts, the main frame of the suspension bracket is usually made of high-strength metal materials, such as stainless steel or aluminum alloy, to ensure sufficient support and durability. This frame not only supports the entire structure, but also bears the weight of the workpiece. Secondly, the suspension bracket is designed with multiple suspension points and hooks. These components are usually adjustable or movable to accommodate workpieces of different sizes and shapes. These hooks and suspension points are protected by anti-slip and protective devices, such as rubber or plastic sleeves, to prevent the workpiece from sliding or being damaged during the suspension process. Connectors and fixtures are another important component that ensure that the suspension bracket is firmly fixed to the processing equipment. High-strength bolts, nuts or clamps are usually used. These connectors can withstand the weight and possible vibration of the workpiece, thereby preventing the suspension system from becoming unstable or loose due to the movement of the workpiece.
[0003] However, during the loading process of the current hanging bracket, the staff needs to place the parts to be processed one by one in order at the hanging points of the bracket to ensure that the inside of the bracket is full of parts to be processed. This results in a part of the workpiece being located deeper inside during the unloading process. Therefore, the staff inevitably needs to enter the inside of the bracket to operate when unloading. At this time, the staff needs to bend, stretch or use auxiliary tools, which increases the possibility of accidents in the working environment. In particular, workpieces made of metal and other materials are heavy and hard, and are prone to accidental collision or falling, resulting in damage to the workpiece or injury to personnel, and making the unloading process of the parts to be processed more difficult and time-consuming. Summary of the Invention
[0004] The purpose of the present invention is to provide a hanging bracket for parts processing, in which a flat plate that can slide out of the frame and a double-point hanging bracket are installed between two adjacent hollow straight arms. During the unloading process, the flat plate, the double-sided pulley transfer module and the lifting Y-axis pushing module and other components are used to actively send the flat plate, the double-point hanging bracket and the suspended parts to be processed out of the frame, thereby eliminating the need for staff to perform unloading and loading operations inside the bracket, thereby solving the problems raised in the above-mentioned background technology.
[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solution: a suspension bracket for parts processing, comprising:
[0006] frame;
[0007] The upper support beam and the lower support beam are respectively arranged at the upper and lower positions inside the frame; the upper support beam and the lower support beam are used to divide the interior of the frame into three chambers, upper, middle and lower.
[0008] A plurality of longitudinal beams, wherein the plurality of longitudinal beams are mounted on the surface of the lower support beam, and a hanging area is formed between two adjacent longitudinal beams;
[0009] Two equiaxial plates, and the equiaxial plates are installed on the top of the upper support beam, and the tops of the two equiaxial plates are slidably mounted with support platforms. A double-sided pulley transfer module for driving the support platforms to slide on the X axis is provided between the two equiaxial plates, and a lifting Y axis pushing module is provided between the two support platforms;
[0010] Hollow straight arms, a flat plate that can slide in the Y-axis direction is installed between two adjacent hollow straight arms, one side of the top of the flat plate is provided with a rectangular hollow part that can be plugged into the Z-axis movable end of the lifting Y-axis pushing module, and the bottom end of the flat plate is installed with several double-point suspension brackets for hanging parts to be processed.
[0011] Preferably, the double-sided pulley transfer module includes:
[0012] A rotation drive unit, wherein the rotation drive unit is installed on one side of the interior of the frame;
[0013] A main transmission shaft, the main transmission shaft being rotatably mounted between the two equiaxed plates;
[0014] And a pulley displacement structure is arranged on the outer wall of the two equiaxial plates on the side away from each other, and a clamping plate for fixed connection with the bottom end of the support platform is installed on the belt surface of the pulley displacement structure.
[0015] Preferably, the rotation drive unit includes:
[0016] A motor seat, the motor seat being mounted on one side inside the frame;
[0017] A servo motor is installed on the outer wall of one side of the motor seat, and the output end of the servo motor is installed with a crawler transmission structure for driving the main transmission shaft to rotate.
[0018] Preferably, a track of the same length as the isometric plate is installed on one side of the top end, and two slides for slidingly cooperating with the track are installed on the bottom end of the support platform.
[0019] Preferably, the lifting Y-axis pushing module includes:
[0020] A Z-axis cylinder, which is installed on the top of the support platform;
[0021] and a connecting beam fixed to the top end of the Z-axis cylinder piston rod, wherein the bottom end of the connecting beam is integrally formed with a drop plate;
[0022] A right-angle slide is slidably mounted on one end of the drop plate surface, a stepper motor is mounted on the surface of the right-angle slide, and a gear rack moving structure is mounted on the output end of the stepper motor for driving the stepper motor and the right-angle slide to slide in the Y-axis direction;
[0023] The raised portion is arranged at the bottom end of the right-angle slide, and the raised portion and the rectangular hollow portion are plugged into each other.
[0024] Preferably, the gear rack moving structure includes a driving helical gear installed at the output end of the stepping motor and a helical rack fixed to one side of the drop plate surface, and the helical rack and the driving helical gear are meshed with each other.
[0025] Preferably, a connecting plate is installed at the top end of the piston rod of the Z-axis cylinder, a sinking column is installed on one side of the top end of the connecting beam, and the top end of the sinking column is fixedly connected to the bottom end of the connecting plate by bolts.
[0026] Preferably, a plurality of rubber wheels with equal spacing are rotatably mounted on the outer walls of the opposite sides of two adjacent hollow straight arms.
[0027] Preferably, a circular guide seat is fixed to one end of the hollow straight arm, and a notch is provided at the bottom end of the circular guide seat.
[0028] Preferably, the dual-point suspension bracket includes an arc-shaped seat installed at the bottom end of the flat plate, two L-shaped hanging legs symmetrically welded at the bottom end of the arc-shaped seat, and a U-shaped hanging plate bolted to the bottom ends of the two L-shaped hanging legs.
[0029] Compared with the prior art, the beneficial effects of the present invention are as follows: the suspension bracket for parts processing is used to actively send the flat plate and the double-point suspension bracket to the outside of the frame through the double-sided pulley transfer module and the lifting Y-axis pushing module when needed, so that the operator can easily access the workpiece, and the operator does not need to enter the inside of the bracket, reducing the time for unloading and loading operations, and the workpiece is sent to a position that is easy for the operator to access in an automated manner, that is, the outside of the bracket, avoiding narrow spaces and inconvenient working postures. The staff can have a larger space for movement, which greatly reduces the safety risks during operation and improves the safety of the working environment. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Figure 1 This is a schematic diagram of the main structure of the present invention;
[0031] Figure 2 Schematic diagram of the three-dimensional structure of the present invention Figure 1 ;
[0032] Figure 3Schematic diagram of the three-dimensional structure of the present invention Figure 2 ;
[0033] Figure 4 Schematic diagram of the three-dimensional structure of the present invention Figure 3 ;
[0034] Figure 5 It is a schematic diagram of the three-dimensional structure of the framework of the present invention;
[0035] Figure 6 This is a schematic diagram of the hollow straight arm three-dimensional structure of the present invention;
[0036] Figure 7 Schematic diagram of the three-dimensional structure of the double-sided pulley transfer module of the second embodiment of the present invention Figure 1 ;
[0037] Figure 8 For the present invention Figure 7 A in the middle is an enlarged structural diagram;
[0038] Figure 9 Schematic diagram of the three-dimensional structure of the double-sided pulley transfer module of the second embodiment of the present invention Figure 2 ;
[0039] Figure 10 This is a schematic diagram of the three-dimensional structure of the hollow straight arm of the third embodiment of the present invention;
[0040] Figure 11 Schematic diagram of the three-dimensional structure of the double-point suspension frame of the third embodiment of the present invention Figure 1 ;
[0041] Figure 12 Schematic diagram of the three-dimensional structure of the double-point suspension frame of the third embodiment of the present invention Figure 2 ;
[0042] In the figure: 1, frame; 2, upper support beam; 3, isometric plate; 4, double-sided pulley transfer module; 401, rotation drive unit; 402, main transmission shaft; 403, pulley shift structure; 404, clamping plate; 5, support platform; 6, lifting Y-axis pusher module; 601, Z-axis cylinder; 6011, connecting plate; 6012, sinking column; 602, connecting beam; 603, drop plate; 604, right-angle slide; 60 5. Stepper motor; 606. Gear rack moving structure; 7. Lower support beam; 701. Longitudinal beam; 702. Hanging area; 8. Hollow straight arm; 801. Rubber wheel; 9. Round guide seat; 901. Notch; 10. Flat plate; 1001. Rectangular hollow part; 11. PLC control panel; 12. Double-point suspension bracket; 1201. Arc seat; 1202. L-shaped hanging foot; 1203. U-shaped hanging plate. DETAILED DESCRIPTION
[0043] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0044] Embodiment 1, by Figures 1 to 6 The present invention includes a frame 1, wherein an upper support beam 2 and a lower support beam 7 are respectively installed at the upper and lower positions inside the frame 1. The upper support beam 2 and the lower support beam 7 are used to divide the interior of the frame 1 into three chambers, namely, upper, middle and lower chambers. A plurality of longitudinal beams 701 are installed on the surface of the lower support beam 7, and a hanging area 702 is formed between two adjacent longitudinal beams 701.
[0045] There are two equiaxial plates 3, and the equiaxial plates 3 are installed on the top of the upper support beam 2. The top of the two equiaxial plates 3 is slidably mounted with a support platform 5. One side of the top of the equiaxial plate 3 is mounted with a track of the same length as itself, and the bottom of the support platform 5 is mounted with two slides for sliding with the track. The design of the track and the slide can ensure that the support platform 5 maintains precise positioning and stable support during movement. This precise sliding fit can keep the support platform 5 stable when moving along the track to avoid shaking or instability.
[0046] A double-sided pulley transfer module 4 is provided between the two equiaxed plates 3 for driving the support platform 5 to slide along the X axis, and a lifting Y-axis pushing module 6 is provided between the two support platforms 5;
[0047] The hollow straight arm 8 is fixed to the top of the longitudinal beam 701. A flat plate 10 that can slide in the Y-axis direction is installed between two adjacent hollow straight arms 8. A rectangular hollow portion 1001 that can be plugged into the Z-axis movable end of the lifting Y-axis pushing module 6 is provided on one side of the top of the flat plate 10. The bottom end of the flat plate 10 is installed with several double-point suspension brackets 12 for hanging parts to be processed;
[0048] PLC control panel 11, PLC control panel 11 is installed on one side outer wall of the frame 1, the output end of the PLC control panel 11 is electrically connected to the input end of the double-sided pulley transfer module 4 and the lifting Y-axis pushing module 6, and the PLC control panel 11 is used to manage and control the entire motion system. The double-sided pulley transfer module 4, the lifting Y-axis pushing module 6 and other components can accurately control the sliding out and retraction of the flat panel 10 and the movement and fixation of the double-point suspension frame 12 according to preset programs and signals.
[0049] Example 2, based on Example 1, Figure 7 、 Figure 8 and Figure 9It is given that the double-sided pulley transfer module 4 includes a rotation drive unit 401 installed on one side of the interior of the frame 1, a main transmission shaft 402 rotatably installed between the two equiaxial plates 3, and a pulley displacement structure 403 arranged on the outer wall of the side of the two equiaxial plates 3 away from each other, and a clamping plate 404 for fixedly connecting to the bottom end of the support table 5 is installed on the belt surface of the pulley displacement structure 403. When the X-axis position of the support table 5 and the lifting Y-axis pushing module 6 is controlled by the double-sided pulley transfer module 4, the rotation drive unit 401 drives the main transmission shaft 402 to rotate, and the rotational power of the main transmission shaft 402 is synchronously transmitted to the two pulley displacement structures 403. At this time, the belt of the pulley displacement structure 403 drives the support table 5 and the lifting Y-axis pushing module 6 to move along the extension direction of the equiaxial plates 3 through the clamping plate 404 until the support table 5 and the lifting Y-axis pushing module 6 move to above the flat plate 10 at the opposite vertex position;
[0050] The rotary drive unit 401 includes a motor base mounted on one side of the interior of the frame 1, and a servo motor mounted on an outer wall of one side of the motor base. The output end of the servo motor is mounted with a crawler drive structure for driving the main transmission shaft 402 to rotate. The rotary drive unit 401 adopts a power transmission form of the servo motor and the crawler drive structure. The rotary drive unit 401 can ensure the accuracy of each movement and positioning according to the preset program and its own internal precise sensor feedback, and at the same time achieve rapid response and high-speed movement with the cooperation of the pulley shift structure 403; the main transmission shaft 402, as a transmission component connecting the two pulley shift structures 403, can withstand large forces and torques to ensure stable power transmission;
[0051] The lifting Y-axis pushing module 6 includes a Z-axis cylinder 601 installed on the top of the support platform 5, and a connecting beam 602 fixed to the top of the piston rod of the Z-axis cylinder 601. A connecting plate 6011 is installed on the top of the piston rod of the Z-axis cylinder 601, and a sinking column 6012 is installed on one side of the top of the connecting beam 602. The top of the sinking column 6012 is fixedly connected to the bottom end of the connecting plate 6011 by bolts. A drop plate 603 is integrally formed at the bottom end of the connecting beam 602. A connecting plate 6011 and a sinking column 6012 in the form of a right-angle structure are installed on the top of the piston rod of the Z-axis cylinder 601. The end of the piston rod of the Z-axis cylinder 601 and the end of the connecting beam 602 are connected by the connecting plate 6011 and the sinking column 6012 to ensure that the connecting beam 602, the drop plate 603 and other components can be stably driven and perform lifting actions;
[0052] A right-angled slide 604 is slidably mounted on one end of the surface of the drop plate 603, and a stepper motor 605 is mounted on the surface of the right-angled slide 604. The output end of the stepper motor 605 is mounted with a gear rack moving structure 606 for driving the stepper motor 605 and the right-angled slide 604 to slide in the Y-axis direction. A protrusion is provided at the bottom end of the right-angled slide 604, and the protrusion can be plugged into the rectangular hollow portion 1001. When the lifting Y-axis pushing module 6 moves to the top of the corresponding flat plate 10, the staff starts the Z-axis cylinder 601 through the PLC control panel 11 to work, and the Z-axis cylinder 601 can drive the connecting beam 602, the drop plate 603 and other components to move downward until the protrusion at the bottom end of the right-angled slide 604 enters the rectangular hollow portion 1001 of the flat plate 10;
[0053] The stepper motor 605 is in motion. During the rotational drive process, the stepper motor 605 uses the gear rack moving structure 606 to move itself and the right-angle slide 604 along the extension direction of the connecting beam 602. Because the right-angle slide 604 is against the rectangular hollow portion 1001, the stepper motor 605 and the right-angle slide 604 will move the flat plate 10 together until the flat plate 10 is removed from the frame 1, thereby facilitating the loading and unloading operations of the parts to be processed on the dual-point suspension frame 12 by the operator. The operator does not need to manually enter the interior of the bracket, but can easily push the flat plate 10 and the workpiece to a position accessible to the operator through the control panel and the automated program, thereby facilitating the operator's operation.
[0054] The gear rack moving structure 606 includes a driving helical gear installed at the output end of the stepper motor 605 and a helical rack fixed to one side of the surface of the drop plate 603. The helical rack and the driving helical gear are engaged with each other. The stepper motor 605 and the right-angle slide 604 can move along the Y-axis through the driving helical gear and the helical rack.
[0055] Example 3, based on Example 1, Figure 10 、 Figure 11 and Figure 12 A plurality of equally spaced rubber wheels 801 are rotatably mounted on the outer walls of the opposite sides of two adjacent hollow straight arms 8. When the flat panel 10 is pushed and slid, the rubber wheels 801 can provide additional friction and support, making the flat panel 10 more stable during the sliding process. The rubber wheels 801 can also absorb some vibration and impact when the flat panel 10 slides, thereby reducing noise and vibration generated during transportation and helping to extend the service life of the mechanical equipment.
[0056] A circular guide seat 9 is fixed to one end of the hollow straight arm 8. When the plate 10 is driven to slide by the lifting Y-axis pusher module 6, the circular guide seat 9 serves as a movement guide for the plate 10, preventing the plate 10 from swaying and becoming unstable during the pushing process, thereby stabilizing the workpiece hung on the double-point suspension frame 12.
[0057] A tongue is installed at one end of the flat plate 10 away from the circular guide seat 9, which prevents the flat plate 10 from completely passing through the circular guide seat 9, thereby achieving the function of preventing the two from falling off;
[0058] A notch 901 is provided at the bottom end of the circular guide seat 9. The notch 901 allows the dual-point suspension frame 12 to pass through the circular guide seat 9 smoothly, thereby preventing the circular guide seat 9 from hindering the movement of the dual-point suspension frame 12 due to its closed-loop structure, thereby ensuring the smoothness of the movement of the dual-point suspension frame 12 and the continuity of operation.
[0059] The dual-point suspension bracket 12 includes an arc-shaped base 1201 mounted on the bottom end of the flat plate 10, two L-shaped hanging legs 1202 symmetrically welded to the bottom end of the arc-shaped base 1201, and a U-shaped hanging plate 1203 bolted to the bottom ends of the two L-shaped hanging legs 1202. This allows the dual-point suspension bracket 12 to have a large adjustment range and flexibility, which can effectively save the hanging area inside the frame 1 and improve the internal space utilization of the bracket.
[0060] The L-shaped hanging foot 1202 and the U-shaped hanging plate 1203 are bolted connections, which can provide a strong connection to ensure that the dual-point suspension frame 12 is stable and reliable during use. This design enables the entire suspension system to withstand greater weight and force, ensuring the safe suspension and transportation of workpieces or equipment.
[0061] When the embodiment of the present application is in use, the staff first hangs the workpieces to be used and processed on each double-point hanging frame 12 one by one. The double-point hanging frame 12 can hang and support up to two workpieces at the same time, and there is no contact between the two workpieces to be processed, so as to ensure that a large number of workpieces to be processed can be stored in the interior of the frame 1, thereby increasing the workpiece holding capacity of the bracket. When the staff needs to unload the workpieces stored in the bracket, the staff first starts the double-sided pulley transfer module 4 through the PLC control panel 11 to operate, and the double-sided pulley transfer module 4 drives the support table 5, the lifting Y-axis pushing module 6 and other components to move in the X-axis direction until the support table 5 and the lifting Y-axis pushing module 6 are moved by the double-sided pulley transfer module 4 to the flat plate 10, the double-point hanging frame 12 and the workpieces to be processed where the workpieces need to be unloaded. At this time, the staff again uses the PLC control panel 11 to start the lifting Y-axis pushing module 6 to work, so that the Z-axis movable end of the lifting Y-axis pushing module 6 enters the flat plate 1 0 in the rectangular hollow part 1001, and then the Y-axis driving end of the lifting Y-axis pushing module 6 is actuated, so that the lifting Y-axis pushing module 6 pushes the flat plate 10 and the double-point suspension frame 12 at the position along the extension direction of the hollow straight arm 8 to the outside of the frame 1, that is, a part of the flat plate 10 itself and several double-point suspension frames 12 are actively moved out of the frame 1, at this time the staff can unload and take the workpiece on the double-point suspension frame 12, and the suspension bracket is used to actively send the flat plate 10 or the double-point suspension frame 12 to the outside of the frame 1 when needed through the double-sided pulley transfer module 4 and the lifting Y-axis pushing module 6, so that the operator can easily access the workpiece, so that the operator does not need to enter the inside of the bracket, reducing the time of unloading and loading operations, and sending the workpiece to a position that is easy for the operator to access in an automated manner, that is, outside the bracket, avoiding narrow space and inconvenient working postures, and the staff can have a larger movement space, which greatly reduces the safety risks during operation and improves the safety of the working environment.
[0062] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.
[0063] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A suspension bracket for parts processing, characterized in that: include: frame; The upper support beam and the lower support beam are respectively arranged at the upper and lower positions inside the frame; the upper support beam and the lower support beam are used to divide the interior of the frame into three chambers, upper, middle and lower. A plurality of longitudinal beams, wherein the plurality of longitudinal beams are mounted on the surface of the lower support beam, and a hanging area is formed between two adjacent longitudinal beams; Two equiaxial plates, and the equiaxial plates are installed on the top of the upper support beam, and the tops of the two equiaxial plates are slidably mounted with support platforms. A double-sided pulley transfer module for driving the support platforms to slide on the X axis is provided between the two equiaxial plates, and a lifting Y axis pushing module is provided between the two support platforms; Hollow straight arms, a flat plate that can slide in the Y-axis direction is installed between two adjacent hollow straight arms, one side of the top of the flat plate is provided with a rectangular hollow portion that can be plugged into the Z-axis movable end of the lifting Y-axis pushing module, and the bottom of the flat plate is installed with several double-point suspension brackets for hanging parts to be processed; The lifting Y-axis pushing module includes: A Z-axis cylinder, which is installed on the top of the support platform; and a connecting beam fixed to the top end of the Z-axis cylinder piston rod, wherein the bottom end of the connecting beam is integrally formed with a drop plate; A right-angle slide is slidably mounted on one end of the drop plate surface, a stepper motor is mounted on the surface of the right-angle slide, and a gear rack moving structure is mounted on the output end of the stepper motor for driving the stepper motor and the right-angle slide to slide in the Y-axis direction; A raised portion, the raised portion being arranged at the bottom end of the right-angled slide, and the raised portion being plugged into the rectangular hollow portion; The gear rack moving structure includes a driving helical gear installed at the output end of the stepping motor and a helical rack fixed to one side of the drop plate surface, and the helical rack and the driving helical gear are meshed with each other; A connecting plate is installed at the top of the piston rod of the Z-axis cylinder, and a sinking column is installed on one side of the top of the connecting beam, and the top of the sinking column is fixedly connected to the bottom of the connecting plate by bolts; A circular guide seat is fixed at one end of the hollow straight arm, and a notch is provided at the bottom end of the circular guide seat; The double-point suspension frame includes an arc-shaped seat installed at the bottom end of the flat plate, two L-shaped hanging legs symmetrically welded at the bottom end of the arc-shaped seat, and a U-shaped hanging plate bolted to the bottom ends of the two L-shaped hanging legs.
2. A suspension bracket for parts processing according to claim 1, characterized in that: The double-sided pulley transfer module includes: A rotation drive unit, wherein the rotation drive unit is installed on one side of the interior of the frame; A main transmission shaft, the main transmission shaft being rotatably mounted between the two equiaxed plates; And a pulley displacement structure is arranged on the outer wall of the two equiaxial plates on the side away from each other, and a clamping plate for fixed connection with the bottom end of the support platform is installed on the belt surface of the pulley displacement structure.
3. The suspension bracket for parts processing according to claim 2, characterized in that: The rotary drive unit comprises: A motor seat, the motor seat being mounted on one side inside the frame; A servo motor is installed on the outer wall of one side of the motor seat, and the output end of the servo motor is installed with a crawler transmission structure for driving the main transmission shaft to rotate.
4. The suspension bracket for parts processing according to claim 1, characterized in that: A track of the same length as the isometric plate is installed on one side of the top end of the isometric plate, and two slides for slidingly cooperating with the track are installed on the bottom end of the support platform.
5. The suspension bracket for parts processing according to claim 1, characterized in that: A plurality of rubber wheels with equal spacing are rotatably mounted on the outer walls of the opposite sides of two adjacent hollow straight arms.
Citation Information
Patent Citations
Discharging clamping device for injection molding machine
CN210061872U