Multifunctional metal plate diagonal shaping workbench
By combining a strong magnetic table and a vacuum chuck for clamping, the problem of limited sheet metal positioning and grinding equipment is solved, achieving efficient, stable, and high-quality processing results for multi-functional sheet metal processing.
Patent Information
- Application Number
- CN202423251930.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-27
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2034-12-27
AI Technical Summary
In existing sheet metal processing, magnetic sheet metal parts are difficult to position effectively, while non-magnetic sheet metal parts are easily damaged. Furthermore, the grinding equipment has a limited grinding process and requires frequent wheel replacements, which affects efficiency and quality.
It adopts a clamping method that combines a strong magnetic table and a vacuum suction cup to meet the clamping needs of both magnetic and non-magnetic sheet metal parts; the surface of the grinding wheel has areas with different roughness to achieve a variety of grinding effects without the need for replacement.
It improves the versatility and production efficiency of sheet metal clamping, prevents surface damage, simplifies the operation process, reduces the frequency of grinding wheel replacement, and improves processing accuracy and continuity.
Smart Images

Figure CN223588989U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of sheet metal processing technology, and in particular to a multifunctional sheet metal diagonal shaping workbench (1). Background Technology
[0002] According to a sheet metal processing table disclosed in Chinese Publication No. CN117921607B, the table includes: a processing table body with two sets of clamping plates slidably arranged, each set of clamping plates having a clamping rod elastically arranged; a fixing member disposed at the position of the clamping rod corresponding to the clamping plate; and a control member disposed at the position of the push plate corresponding to the clamping plate. The control member is used to control the lifting and lowering of the elastically arranged push plate. When the clamping plate clamps the sheet metal part, the clamping rod will contact the side wall of the sheet metal part, and the side wall of the sheet metal part will press the clamping rod outward. The clamping rod pushes the guide rod to move. When the guide rod moves, the first abutment block pulls the first pull rope and slides into the inside of the slide groove. When the first pull rope is pulled, the lifting block is pulled simultaneously. When all the elastically arranged first abutment blocks are inserted into the inside of the slide groove, the lifting block pushes the push plate upward. The push plate drives the fixing block to insert into the inside of the fixing groove, thus limiting the sliding clamping rod.
[0003] The aforementioned patent documents and prior art have the following technical problems:
[0004] 1. In traditional sheet metal processing, different clamping equipment or methods are often required for sheet metal parts with different magnetic properties. For magnetic sheet metal parts, conventional clamps may not be able to fully utilize their magnetic characteristics for effective positioning, which can easily cause displacement or surface damage to the sheet metal parts during clamping. For non-magnetic sheet metal parts, traditional mechanical clamping methods may scratch the surface due to excessive contact stress, especially for precision sheet metal parts with high surface quality requirements.
[0005] 2. Traditional sheet metal grinding equipment is usually equipped with a grinding wheel with a single roughness. When different degrees of grinding effect are required, such as the transition from coarse grinding to fine grinding, the grinding wheel must be changed frequently. This not only consumes a lot of time and manpower, but also easily causes problems with the installation accuracy of the wheel during the replacement process, affecting the grinding quality and processing continuity. Utility Model Content
[0006] The purpose of this utility model is to solve the shortcomings of the existing technology, such as the limited processing of sheet metal parts and the single grinding process, and to propose a multi-functional sheet metal diagonal shaping workbench.
[0007] To achieve the above objectives, the present invention adopts the following technical solution: a multifunctional sheet metal diagonal shaping workbench, comprising a workbench and a control console. The top surface of the workbench is provided with a strong magnetic surface. Support frames are symmetrically distributed on both sides of the workbench surface. Clamping components are provided on the surface of the support frames. The clamping components include an adjusting cylinder and a vacuum suction cup. The adjusting cylinder is horizontally bolted to the side of the support frame. An electric shaft is connected to the movable end of the adjusting cylinder. A Y-shaped support is connected to the end of the electric shaft. The end of the Y-shaped support is connected to the back of the vacuum suction cup. A grinding wheel is provided on the side of the workbench perpendicular to the Y-shaped support.
[0008] Preferably, a fixed sleeve is bolted to one side of the worktable perpendicular to the support frame, and an L-shaped telescopic seat is vertically slidably connected inside the fixed sleeve. A grinding motor is installed inside the end of the L-shaped telescopic seat, and the end of the grinding motor is connected to the back of the grinding wheel.
[0009] Preferably, the back of the grinding wheel is provided with a threaded connector, and the threaded connector is provided with a connecting screw seat outside the connection position with the output shaft of the grinding motor. A telescopic cylinder is vertically bolted inside the fixed sleeve, and the movable end of the telescopic cylinder is connected to the bottom end of the L-shaped telescopic seat.
[0010] Preferably, the surface of the grinding wheel is provided with different rough surfaces distributed along the direction from the center to the edge, and the horizontal center line of the grinding wheel coincides with the horizontal center line of the grinding motor.
[0011] Preferably, linear guide rails are provided on both sides of the worktable surface, and a linear slider is slidably provided inside the linear guide rails. A guide cylinder is bolted to one end of the linear guide rail, and the movable end of the guide cylinder is connected to the surface of the linear slider. The top surface of the linear slider is connected to the bottom surface of the support frame.
[0012] Preferably, a power cavity is provided inside the workbench near the strong magnetic surface, and an electromagnet is provided inside the power cavity. The electromagnet is electrically connected to the control console.
[0013] Preferably, the support frame is located on both sides of the strong magnetic table surface, and the control console is bolted to the workbench surface.
[0014] Beneficial effects
[0015] In this invention, a workbench surface is connected to a clamping assembly via a support frame to clamp sheet metal parts. Vacuum suction cups are used for clamping, ensuring stable passage while preventing surface damage. A grinding wheel is used to treat the edges of the sheet metal parts. A strong magnetic surface is also provided on the workbench surface to position magnetic sheet metal parts, eliminating the need for tool clamping. This allows for the compatible clamping of both magnetic and non-magnetic sheet metal parts. The workbench can attract magnetic sheet metal parts via the strong magnetic surface and clamp non-magnetic or high-quality sheet metal parts using vacuum suction cups. This dual clamping method greatly expands the range of sheet metal parts the workbench can handle, eliminating the need to change equipment or use complex auxiliary clamping devices based on the magnetism of the sheet metal parts. This effectively improves the equipment's versatility and production efficiency, reducing equipment procurement and operating costs for enterprises.
[0016] In this invention, a grinding wheel is connected to the surface of a worktable via a fixed sleeve and an L-shaped telescopic seat to perform edge trimming on sheet metal parts. By setting different roughness levels on the surface of the grinding wheel with different diameter ranges, different grinding degrees can be achieved on the same wheel surface, avoiding frequent replacement of the grinding wheel. It is suitable for grinding of various roughnesses and can achieve multiple grinding process requirements on the same machine. From coarse grinding to fine grinding, there is no need to frequently change the grinding wheel. It can quickly adapt to different edge treatment needs of sheet metal parts. Whether it is preliminary grinding to remove a large number of burrs or fine grinding with high surface quality requirements, it can be completed efficiently, reducing time waste and process connection problems caused by tool changes, and improving overall processing accuracy and production continuity. Attached Figure Description
[0017] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0018] Figure 2 For the present utility model Figure 1 Enlarged view of point B;
[0019] Figure 3 This is a front sectional view of the present invention;
[0020] Figure 4 This is a side sectional view of the present invention;
[0021] Figure 5 For the present utility model Figure 4 Enlarged view of point A;
[0022] Figure 6 This is a diagram showing the connection structure of the grinding wheel of this utility model.
[0023] Legend:
[0024] 1. Workbench; 2. Strong magnetic table surface; 3. Power chamber; 4. Electromagnet; 5. Control console; 6. Linear guide rail; 7. Linear slider; 8. Support frame; 9. Clamping assembly; 901. Adjusting cylinder; 902. Electric shaft; 903. Y-type support; 904. Vacuum suction cup; 10. Fixed sleeve; 11. L-type telescopic seat; 12. Telescopic cylinder; 13. Grinding motor; 14. Connecting screw seat; 15. Grinding wheel; 16. Threaded connector; 18. Guide cylinder. Detailed Implementation
[0025] To make the technical means, creative features, and achieved objectives and effects of this utility model easier to understand, the present utility model is further described below with reference to specific embodiments and accompanying drawings. However, the following embodiments are merely preferred embodiments of this utility model and not all of them. Other embodiments obtained by those skilled in the art based on the embodiments described in the implementation plan without creative effort are all within the protection scope of this utility model.
[0026] The specific embodiments of this utility model are described below with reference to the accompanying drawings. Specific Implementation Example 1:
[0028] Reference Figure 1-6A multifunctional sheet metal diagonal shaping workbench 1 includes a workbench 1 and a control console 5. The main body of the workbench 1 serves as the basic structure of the entire workbench 1, supporting other components such as a strong magnetic table surface 2, a support frame 8, a clamping assembly 9, and a grinding wheel 15, providing a stable working platform for the shaping operation of sheet metal parts. The top surface of the workbench 1 is provided with a strong magnetic table surface 2. A power cavity 3 is opened inside the workbench 1 near the strong magnetic table surface 2. An electromagnet 4 is installed inside the power cavity 3. The electromagnet 4 is electrically connected to the control console 5. The strong magnetic table surface 2 uses the magnetic force generated by the electromagnet 4 inside the main body of the workbench 1 to attract and position magnetic sheet metal parts, ensuring that the sheet metal parts will not move randomly during the shaping process, improving the accuracy and safety of the operation. When the electromagnet 4 in the power cavity 3 of the main body of the workbench 1 is energized, a magnetic field is generated. The strong magnetic table surface 2 is within the range of this magnetic field, thus becoming magnetic and able to attract magnetic sheet metal parts such as ferrous materials. The strength of the magnetic force can be adjusted by controlling the current of the electromagnet 4 via the control console 5 to accommodate sheet metal parts of different weights and shapes. Initially, the electromagnet 4 is usually de-energized, and the strong magnetic platform 2 has no magnetic force. When a magnetic sheet metal part needs to be processed, the control console 5 energizes the electromagnet 4, generating a magnetic force on the strong magnetic platform 2 to attract the sheet metal part. After the shaping operation is complete, the control console 5 de-energizes the electromagnet 4, the magnetic force disappears, and the sheet metal part can be easily removed. For magnetic sheet metal parts, positioning can be achieved without additional clamping tools, avoiding potential damage to the sheet metal surface caused by traditional clamping methods. This simplifies the operation process, improves work efficiency, and ensures the stability of the sheet metal part during processing, thus improving the shaping quality.
[0029] Support frames 8 are symmetrically distributed on both sides of the surface of the workbench 1. Clamping components 9 are provided on the surface of the support frames 8. The support frames 8 serve as the mounting support structure for the clamping components 9, fixing the clamping components 9 at appropriate positions on both sides of the main surface of the workbench 1. This ensures that the clamping components 9 can stably clamp the sheet metal parts placed on the workbench 1 and can cover a certain working area in the horizontal direction to accommodate sheet metal parts of different sizes.
[0030] The clamping assembly 9 includes an adjusting cylinder 901 and a vacuum suction cup 904. The adjusting cylinder 901 is horizontally bolted to the side of the support frame 8. The movable end of the adjusting cylinder 901 is connected to an electric shaft 902. The end of the electric shaft 902 is connected to a Y-shaped support 903. The end of the Y-shaped support 903 is connected to the back of the vacuum suction cup 904. The adjusting cylinder 901 adjusts the position of the clamping assembly 9 in the horizontal direction, so that sheet metal parts placed in different positions on the worktable 1 can be clamped, thus expanding the clamping range and improving the versatility of the worktable 1. The control console 5 controls the air intake or exhaust, causing the piston in the cylinder to drive the movable end connected to the electric shaft 902 to extend and retract. When air is intake, the piston pushes the movable end outward; when air is exhaust, the piston, under the action of a spring or other reset device, drives the movable end inward. The control console 5 receives signals and controls the air pressure changes in the cylinder according to the signals, thereby realizing the extension and retraction of the movable end. In the initial state, the adjusting cylinder 901 can be in the retracted state. When it is necessary to clamp the sheet metal part, the control console 5 controls the adjusting cylinder 901 to extend to a suitable length according to the position of the sheet metal part, so that the vacuum suction cup 904 is close to the sheet metal part.
[0031] After the adjusting cylinder 901 adjusts the vacuum suction cup 904 to its approximate position, the electric shaft 902 can achieve more precise angle adjustment, allowing the vacuum suction cup 904 to better fit the surface of the sheet metal part, ensuring the firmness and stability of the clamping. It can also adapt to the clamping needs of some sheet metal parts with special shapes or inclined surfaces. The motor inside the electric shaft 902 is controlled by the control console 5 to rotate, and the motor drives the shaft to rotate. The rotation angle of the shaft can be precisely controlled by the number of rotations of the motor or the angle sensor. After the adjusting cylinder 901 moves the Y-shaped support and the vacuum suction cup 904 to a position close to the sheet metal part, the control console 5 controls the electric shaft 902 to rotate at the corresponding angle according to the shape and surface angle of the sheet metal part, so that the vacuum suction cup 904 can be perpendicular to the surface of the sheet metal part or form the best fitting angle with the surface.
[0032] The Y-shaped support serves as a transitional structure connecting the electric shaft 902 and the vacuum suction cup 904, playing a role in transmitting force and adjusting the direction of force. Its Y-shaped structure allows the vacuum suction cup 904 to adjust its relative position within a certain range, better adapting to sheet metal parts of different shapes and sizes, while ensuring uniform force distribution and making clamping more stable. Due to its Y-shaped structural design, when the electric shaft 902 applies force, the force is evenly transmitted to the vacuum suction cup 904 through the Y-shaped support. Furthermore, when the vacuum suction cup 904 adsorbs the sheet metal part, the reaction force of the sheet metal part on the vacuum suction cup 904 is also transmitted to the electric shaft 902 and the adjusting cylinder 901 through the Y-shaped support, ensuring the force balance of the entire clamping assembly 9.
[0033] Vacuum suction cup 904 utilizes the principle of vacuum adsorption to clamp sheet metal parts in a non-contact manner. This not only firmly fixes the sheet metal parts and prevents them from moving during the shaping process, but also avoids scratches or other damage to the surface of the sheet metal parts. It is particularly suitable for clamping sheet metal parts with high surface quality requirements. By connecting to an external vacuum system, its on / off state can be controlled by control console 5. When vacuum suction cup 904 contacts the surface of the sheet metal parts and the vacuum system is activated, the air inside the suction cup is extracted, forming a negative pressure. Under the action of external atmospheric pressure, the sheet metal parts are tightly adsorbed onto the surface of the suction cup. After adjusting cylinder 901 and electric shaft 902 to adjust vacuum suction cup 904 to a suitable position and make it contact the surface of the sheet metal parts, control console 5 controls the vacuum system to start, so that vacuum suction cup 904 generates suction force to adsorb the sheet metal parts. After the shaping operation is completed, console 5 shuts down the vacuum system, restoring the pressure inside the suction cup to normal and releasing the clamp on the sheet metal part. This achieves damage-free clamping of the sheet metal part, protecting its surface quality, and is especially suitable for sheet metal parts with coatings or high precision requirements. Simultaneously, the vacuum adsorption method provides a more uniform clamping force, reducing the risk of sheet metal part deformation caused by uneven clamping force, improving the accuracy and quality of the shaping process. Furthermore, it is easy to operate, allowing for quick clamping and releasing, thus improving work efficiency.
[0034] A grinding wheel 15 is provided on the side of the workbench 1 perpendicular to the Y-shaped support 903. A fixed sleeve 10 is bolted to the side of the workbench 1 perpendicular to the support frame 8. An L-shaped telescopic seat 11 is vertically slidably connected inside the fixed sleeve 10. A grinding motor 13 is provided inside the end of the L-shaped telescopic seat 11. The end of the grinding motor 13 is connected to the back of the grinding wheel 15. The grinding wheel 15 is used to grind the edges of the sheet metal parts. In cooperation with the grinding motor 13, the high-speed rotating grinding wheel 15 can remove burrs and unevenness from the edges of the sheet metal parts, making the edges of the sheet metal parts smooth and achieving the required surface roughness, thereby improving the appearance quality and performance of the sheet metal parts. Driven by the grinding motor 13, the wheel 15 rotates and uses the friction generated when the rough surface of the wheel contacts the edge of the sheet metal parts to gradually grind away the material on the edge of the sheet metal parts. The surface of the grinding wheel 15 is equipped with different rough surfaces distributed from the center to the edge. Different rough surfaces can be selected to contact the sheet metal part as needed, achieving different degrees of polishing. Before polishing, the height and position of the L-shaped telescopic seat are adjusted by the telescopic cylinder 12 within the fixed sleeve 10, according to the polishing requirements of the sheet metal part, to ensure the grinding wheel 15 is in a suitable contact position and angle with the edge of the sheet metal part. Then, the polishing motor 13 is started, and the grinding wheel 15 begins to rotate at high speed. The operator slowly brings the edge of the sheet metal part closer to the grinding wheel 15 for polishing. During the polishing process, the contact position between the sheet metal part and the grinding wheel 15 can be adjusted as needed to utilize different rough surfaces for polishing. By setting different rough surfaces, different degrees of polishing are achieved on the same wheel surface, avoiding frequent changes of the grinding wheel 15, improving work efficiency, and reducing production costs. This allows for precise polishing of the edges of sheet metal parts, improving surface quality and edge smoothness, meeting different process requirements, and enhancing the overall quality and market competitiveness of the product.
[0035] The grinding wheel 15 has a threaded connector 16 on its back. A connecting screw seat 14 is located outside the connection point between the threaded connector 16 and the output shaft of the grinding motor 13. A telescopic cylinder 12 is vertically bolted inside the fixed sleeve 10, and the movable end of the telescopic cylinder 12 is connected to the bottom end of the L-shaped telescopic seat 11. Different rough surfaces are distributed along the direction from the center to the edge of the grinding wheel 15. The horizontal centerline of the grinding wheel 15 coincides with the horizontal centerline of the grinding motor 13. Before grinding, according to the height of the sheet metal part and the grinding requirements, the control console 5 controls the telescopic cylinder 12 inside the fixed sleeve 10 to extend or retract, causing the L-shaped telescopic seat to raise or lower the grinding wheel 15 to a suitable position. Then, the control console 5 starts the grinding motor 13, which drives the grinding wheel 15 to rotate, beginning the grinding of the sheet metal part. During the grinding process, the height of the L-shaped telescopic seat can be adjusted again as needed to adapt to the grinding requirements of different parts, realizing flexible adjustment of the height position of the grinding wheel 15. This allows it to adapt to the grinding needs of sheet metal parts of different heights, improving the versatility of the worktable 1. The internal grinding motor 13 provides a stable and reliable power source for the grinding wheel 15, ensuring smooth grinding operations. Furthermore, through a reasonable structural design, the power transmission and height adjustment functions are integrated, making the entire grinding system compact, easy to operate, and improving work efficiency and grinding quality.
[0036] Linear guide rails 6 are provided on both sides of the worktable 1. Linear sliders 7 slide inside the linear guide rails 6. A guide cylinder 17 is bolted to one end of the linear guide rail 6, and the movable end of the guide cylinder 17 is connected to the surface of the linear slider 7. Support frames 8 are located on both sides of the strong magnetic table 2. The control console 5 is bolted to the surface of the worktable 1. The linear guide rails 6 have specific cross-sectional shapes, such as dovetail grooves or rectangles. The linear sliders 7 match the shape of the guide rails and are installed inside the guide rails, allowing them to slide freely on the guide rails. The linear sliders 7 are connected to the bottom surface of the support frame 8, driving the support frame 8 to move along both sides of the main body of the worktable 1. This increases the distance between the sheet metal parts clamped on the surface of the support frame 8 and the grinding wheel 15, facilitating edge grinding. The fit between the guide rails and the sliders is highly precise. Frictional resistance is reduced by lubricating oil or other lubrication methods, allowing the sliders to move smoothly on the guide rails. Specific Implementation Example 2:
[0038] Reference Figure 1-6 Based on the content of the above specific embodiments, the following content is further disclosed:
[0039] The control console 5 serves as the control center for the entire workbench 1. It provides electrical control over the electromagnet 4 and other electric or pneumatic components within the main body of the workbench 1, such as the telescopic cylinder 12, the electric shaft 902, and the grinding motor 13. This ensures coordinated operation of all components and meets the needs of different sheet metal shaping operations. The console connects these components via circuitry and sends electrical signals to the electromagnet 4, motor, and cylinder according to preset programs or operator commands. This controls parameters such as current on / off, current magnitude, direction of rotation for the motor, and telescopic stroke for the cylinder, thereby achieving precise control over the various functions of the workbench 1. Operators can input operating commands on the control console 5, such as selecting the processing mode for magnetic or non-magnetic sheet metal parts, setting the rotation speed of the grinding wheel 15, and adjusting the position of the clamping assembly 9. The control console 5 then sends corresponding electrical signals to the relevant components based on these commands. For example, when magnetic sheet metal parts need to be adsorbed, the control console 5 sends an energizing signal to the electromagnet 4 inside the main body of the workbench 1; when the position of the clamping component 9 needs to be adjusted, the control console 5 sends an extension signal to the adjusting cylinder 901 to control the position of its movable end, thereby driving the vacuum suction cup 904 to move. Centralized control of each component makes operation more convenient and efficient. The working state of the workbench 1 can be flexibly adjusted according to different sheet metal parts shapes, sizes and processing requirements, improving the versatility and adaptability of the workbench 1, reducing the labor intensity and operation difficulty of operators, and reducing equipment damage and product quality problems caused by human error.
[0040] In summary:
[0041] 1. The workbench 1 is connected to the clamping assembly 9 via the support frame 8 to clamp the sheet metal parts. The vacuum suction cup 904 is used for clamping, which maintains stability during passage and prevents damage to the surface of the sheet metal parts. The grinding wheel 15 is used to process the edges of the sheet metal parts. At the same time, a strong magnetic table 2 is set on the surface of the workbench 1 to position the magnetic sheet metal parts. No tools are required for clamping. This achieves the adaptable clamping of both magnetic and non-magnetic sheet metal parts. The workbench 1 can attract magnetic sheet metal parts through the strong magnetic table 2 and clamp non-magnetic or sheet metal parts with high surface quality requirements using the vacuum suction cup 904. This dual clamping method greatly expands the range of sheet metal parts that the workbench 1 can handle. There is no need to change equipment or use complex auxiliary clamping devices due to the magnetic nature of the sheet metal parts. This effectively improves the versatility of the equipment and production efficiency, and reduces the equipment procurement and operating costs of enterprises.
[0042] 2. The surface of the worktable 1 is connected to the grinding wheel 15 through the cooperation of the fixed sleeve 10 and the L-shaped telescopic seat 11 to perform edge trimming on the surface of sheet metal parts. By setting different roughness ranges on the surface of the grinding wheel 15, different grinding effects can be achieved on the same wheel surface, avoiding frequent replacement of the grinding wheel 15. It is suitable for grinding of various roughnesses and can realize various grinding process requirements on the same machine. From coarse grinding to fine grinding, there is no need to frequently change the grinding wheel 15. It can quickly adapt to different edge treatment needs of sheet metal parts. Whether it is the initial grinding to remove a lot of burrs or the fine grinding with high surface quality requirements, it can be completed efficiently, reducing the time waste and process connection problems caused by tool changes, and improving the overall processing accuracy and production continuity.
[0043] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0044] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A multifunctional sheet metal diagonal shaping workbench, comprising a workbench (1) and a control console (5), characterized in that: The top surface of the workbench (1) is provided with a strong magnetic table surface (2). Support frames (8) are symmetrically distributed on both sides of the surface of the workbench (1). The surface of the support frame (8) is provided with a clamping assembly (9). The clamping assembly (9) includes an adjusting cylinder (901) and a vacuum suction cup (904). The adjusting cylinder (901) is horizontally bolted to the side of the support frame (8). The movable end of the adjusting cylinder (901) is connected to an electric shaft (902). The end of the electric shaft (902) is connected to a Y-shaped support (903). The end of the Y-shaped support (903) is connected to the back of the vacuum suction cup (904). A grinding wheel (15) is provided on the side of the workbench (1) perpendicular to the Y-shaped support (903).
2. The multifunctional sheet metal diagonal shaping workbench according to claim 1, characterized in that: A fixed sleeve (10) is bolted to one side of the workbench (1) perpendicular to the support frame (8). An L-shaped telescopic seat (11) is vertically slidably connected inside the fixed sleeve (10). A grinding motor (13) is provided inside the end of the L-shaped telescopic seat (11). The end of the grinding motor (13) is connected to the back of the grinding wheel (15).
3. A multifunctional sheet metal diagonal shaping workbench according to claim 2, characterized in that: The back of the grinding wheel (15) is provided with a threaded connector (16). The threaded connector (16) is connected to the output shaft of the grinding motor (13) with a connecting screw seat (14) outside. The fixed sleeve (10) is vertically bolted with a telescopic cylinder (12), and the movable end of the telescopic cylinder (12) is connected to the bottom end of the L-shaped telescopic seat (11).
4. The multifunctional sheet metal diagonal shaping workbench according to claim 1, characterized in that: The surface of the grinding wheel (15) is provided with different rough surfaces along the direction from the center to the edge, and the horizontal center line of the grinding wheel (15) coincides with the horizontal center line of the grinding motor (13).
5. A multifunctional sheet metal diagonal shaping workbench according to claim 1, characterized in that: Linear guide rails (6) are provided on both sides of the surface of the workbench (1). A linear slider (7) is slidably provided inside the linear guide rail (6). A guide cylinder (17) is bolted to one end of the linear guide rail (6), and the movable end of the guide cylinder (17) is connected to the surface of the linear slider (7). The top surface of the linear slider (7) is connected to the bottom surface of the support frame (8).
6. A multifunctional sheet metal diagonal shaping workbench according to claim 1, characterized in that: The workbench (1) has a power cavity (3) located near the strong magnetic table surface (2) inside. An electromagnet (4) is installed inside the power cavity (3), and the electromagnet (4) is electrically connected to the control console (5).
7. A multifunctional sheet metal diagonal shaping workbench according to claim 1, characterized in that: The support frame (8) is located on both sides of the strong magnetic table (2), and the control console (5) is bolted to the surface of the workbench (1).
Citation Information
Patent Citations
A processing table for sheet metal processing
CN117921607B