A multi-directional cutting device for forging raw materials
By incorporating a variable-direction seat and lifting components, the design solves the problems of stability and direction switching in existing cutting equipment when cutting forgings, achieving stable multi-directional cutting and efficient chip removal, and is suitable for irregularly shaped cutting parts.
Patent Information
- Application Number
- CN202510428778.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-08
- Publication Date
- 2025-10-28
- Estimated Expiration
- 2045-04-08
AI Technical Summary
Existing cutting equipment is usually limited to a single direction when cutting forging raw materials. Changing directions is cumbersome, and the cutting process is unstable, which can easily lead to tool breakage. It cannot follow the path and speed of the cutting saw, resulting in poor application performance.
The system employs a variable-direction seat, lifting assembly, and pressing and walking assembly, combined with a high-speed chip removal assembly and a pressure-bearing assembly, to achieve multi-directional cutting. The cutting direction is adjusted by a variable-direction motor, the lifting seat and pressing and walking rollers stabilize the cutting, high-speed airflow cleans up debris, and the pressure block quickly positions the forging.
It achieves stable multi-directional cutting and efficient chip removal, avoids blade breakage, improves cutting accuracy and equipment applicability, and is suitable for cutting irregularly shaped parts.
Smart Images

Figure CN120269077B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of cutting technology, and in particular relates to a multi-directional cutting device for forging raw materials. Background Technology
[0002] Cutting equipment refers to industrial tools or machines used to divide, cut, or carve materials into specific shapes. They are widely used in manufacturing, construction, metal processing, woodworking, textiles, electronics, and many other fields. Cutting is also required when processing raw materials for forgings, thus necessitating the use of cutting equipment.
[0003] Chinese Patent (CN119346961A) discloses a raw material cutting device and method for drill bit production, including a raw material conveying mechanism, a raw material rod, a support frame, and a fixed bracket. The raw material conveying mechanism includes a conveying bracket with an arc-shaped support groove at its top and a notch evenly distributed through the top of the conveying bracket. A rubber roller is rotatably mounted inside the notch, with the top of the rubber roller flush with the bottom of the arc-shaped support groove. A transmission gear is fixedly mounted at one end of the rubber roller, and a transmission chain is connected to the outer side of the transmission gear. This device, through the arc-shaped support groove at the top of the conveying bracket and the rotation of the rubber roller, stabilizes the raw material rod in the center position and ensures smooth conveying. During cutting, a second electric push rod pushes a fixed block to press the raw material rod, ensuring that the raw material does not shake or shift during cutting, further improving cutting accuracy and ensuring operational safety. While current cutting equipment can cut raw materials, the cutting is generally limited to a single direction. Changing the cutting direction requires adjusting the position of the workpiece, which is cumbersome. Furthermore, during the cutting process, it cannot keep up with the path and speed of the cutting saw to improve the stability of the workpiece. During cutting, the vibration of the workpiece can easily cause chipping and other problems, resulting in poor performance in practical applications. To solve these problems, there is an urgent need for a multi-directional cutting device for forging raw materials. Summary of the Invention
[0004] The purpose of this invention is to address the problems that current cutting equipment, while capable of cutting raw materials, is generally limited to a single direction. Changing the cutting direction requires adjusting the position of the workpiece, which is cumbersome. Furthermore, during the cutting process, it cannot keep up with the path and speed of the cutting saw to improve the stability of the workpiece. During cutting, the vibration of the workpiece can easily cause chipping and other issues, resulting in poor practical application performance. Therefore, this invention proposes a multi-directional cutting device for forging raw materials.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: a multi-directional cutting device for forging raw materials, comprising a base, side frames fixedly installed on both outer walls of the base, a top shell fixedly installed on the top of the side frames, a controller fixedly installed on one outer wall of the side frames, a side groove provided on the side frames, a reversing motor fixedly installed inside the top shell, a reversing seat fixedly installed at one end of the output shaft of the reversing motor, an adjusting motor fixedly installed at one end of the reversing seat, and an adjusting screw fixedly installed at one end of the output shaft of the adjusting motor;
[0006] A lifting assembly is movably mounted on the outside of the adjusting screw. A cutting assembly is provided on the inside of the lifting assembly. Two pressing and walking assemblies are provided at the bottom of the lifting assembly. The pressing and walking assemblies are used to ensure stability during the cutting of forgings. High-speed chip removal assemblies are provided on both outer walls of the lifting assembly. The high-speed chip removal assemblies are used to simultaneously clean up debris during the cutting process. A stroke groove and a top groove are provided on the top surface of the base. A forging positioning mechanism is slidably mounted inside the stroke groove. A pressure-bearing assembly is provided inside the top groove. The forging positioning mechanism and the pressure-bearing assembly are used for rapid positioning of the forgings during cutting.
[0007] By adopting the above technical solution, and by providing a variable-direction seat, as well as a lifting component and a pressing and walking component, the equipment is designed to be multi-directional cutting, which can meet different cutting needs. At the same time, it can continuously improve the stability of the cut parts during the cutting process, avoid the occurrence of chipping and other problems, and improve the application effect of the equipment.
[0008] As a further description of the above technical solution:
[0009] The lifting assembly includes a slider, which is threadedly mounted on the outside of the adjusting screw through a threaded hole inside it. The slider is slidably connected to a bottom groove on the bottom surface of the reversing seat. A lifting seat is fixedly mounted on the bottom surface of the slider, and a saw groove is provided on the inner side of the lifting seat.
[0010] As a further description of the above technical solution:
[0011] The cutting assembly includes a saw cover, which is fixedly installed inside the saw groove. A drive motor is fixedly installed on one outer wall of the saw cover, and the drive motor is located in a groove inside the lifting seat.
[0012] As a further description of the above technical solution:
[0013] A cutting saw is fixedly mounted on one end of the output shaft of the drive motor, and the cutting saw is located inside the saw cover.
[0014] As a further description of the above technical solution:
[0015] The pressing and walking assembly includes two spring rods, both of which are fixedly installed in the inner holes provided inside the lifting seat, and a bottom cover is fixedly installed at the bottom end of the spring rods.
[0016] As a further description of the above technical solution:
[0017] The inner side of the bottom cover is rotatably mounted with a pressing and traveling roller and a turbulence vane via a rotating shaft. The pressing and traveling roller is located in the bottom groove provided at the bottom of the bottom cover, and the turbulence vane is located in the side shell cavity of the bottom cover.
[0018] As a further description of the above technical solution:
[0019] The high-speed chip removal assembly includes an airflow speed-increasing hood, which is fixedly installed on the outer surface of the lifting base. The airflow speed-increasing hood has two speed-increasing worm gears inside, and a side cover is provided on one side of the airflow speed-increasing hood.
[0020] As a further description of the above technical solution:
[0021] Multiple air guide hoses are provided on the top surface of the airflow speed-increasing hood. One end of each air guide hose is fixedly connected to an air hole provided on the top surface of the bottom cover. The air hole is located directly above the turbulence vane. An air jet pipe is fixedly installed on one side of the outer wall of the airflow speed-increasing hood, with one end of the air jet pipe close to the cutting saw.
[0022] As a further description of the above technical solution:
[0023] The pressure-bearing component includes a pressure-bearing block, which is movably installed inside the top groove by a pressure-bearing spring. The forging positioning mechanism includes a slide rod, on the outside of which a connecting spring is fitted. One end of the connecting spring is fixedly connected to the inner wall of one side of the travel groove. A moving block is slidably installed on the outside of the slide rod. The other end of the connecting spring is fixedly connected to one end of the moving block. The moving block is slidably connected to the travel groove. A side plate is fixedly installed on the top surface of the moving block.
[0024] As a further description of the above technical solution:
[0025] A positioning assembly is provided on the side wall of the side piece. The positioning assembly includes an adjusting motor, which is fixedly installed on one outer wall of the side piece. A wheel frame is fixedly installed at one end of the output shaft of the adjusting motor. A positioning wheel is rotatably installed on the inner side of the wheel frame through a rotating shaft. The pressure block and the moving block are connected by an elastic connecting belt.
[0026] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are:
[0027] 1. In this invention, a variable-direction seat is provided, along with a lifting assembly and a pressing and walking assembly. When cutting raw materials, the raw materials are first installed and positioned. After installation, the variable-direction motor is activated according to the required cutting direction, and the variable-direction seat is adjusted to rotate to a suitable position. At this time, the position of the cutting saw changes synchronously, driving the cutting saw to rotate at high speed. The lifting seat is controlled to descend, and the pressing and walking roller can first contact and press the surface of the workpiece. Then, the cutting saw continues to descend, and the spring rod continues to contract until the cutting saw contacts the workpiece and cuts it. At this time, the adjusting screw is controlled to rotate, driving the lifting assembly to move and achieve stable cutting by the cutting saw. During this process, the pressing and walking roller can roll synchronously on the surface of the workpiece according to the movement of the cutting saw, generating a certain downward pressure on the workpiece, further improving the stability of the workpiece during the cutting process. Through this design, the equipment is designed as a multi-directional cutting device, which can meet different cutting needs. At the same time, it can continuously improve the stability of the workpiece during the cutting process, avoid the occurrence of chipping, and improve the application effect of the equipment.
[0028] 2. In this invention, a high-speed chip removal component is provided. While the pressing and traveling roller is rolling, the turbulence vanes rotate synchronously. The rotation of multiple turbulence vanes generates turbulence. This airflow can enter the airflow speed-up hood through multiple air guide hoses. When the airflow flows into the two speed-up worm gears, the narrow air passage space inside the two speed-up worm gears achieves the effect of speeding up the airflow. The speed-up airflow can be ejected through the jet pipe. The high-speed airflow can quickly remove the chips generated during the cutting process, resulting in a good cleaning effect and avoiding the adverse effects of chip residue on subsequent cutting. Moreover, the high-speed airflow has a good chip removal effect.
[0029] 3. In this invention, by providing a pressure-bearing component and a forging positioning mechanism, when installing and positioning the raw material, simply place the material to be cut on the base. At this time, the pressure block moves downward under pressure. During the downward movement, multiple moving blocks are pulled synchronously towards the center position by the elastic connecting belt until multiple positioning wheels contact the four points of the forging, completing the rapid positioning of the casting. After cutting, when it is necessary to remove the casting upward, simply control the adjusting motor to turn on and drive the wheel frame and positioning wheels to rotate to the vertical direction. At this time, the cut material can be easily removed upward. Through this design, the cutting part can be quickly positioned before cutting without the aid of any external parts or workpieces. Moreover, since the cutting part can be positioned synchronously in multiple different directions, and an elastic connecting belt is used, it can position some irregularly shaped cutting parts, improving the applicability of the structure. At the same time, the angle of the positioning wheels can be adjusted after cutting to facilitate quick removal, greatly improving the actual application effect of the equipment. Attached Figure Description
[0030] Figure 1 This is a three-dimensional structural diagram of a multi-directional cutting device for forging raw materials.
[0031] Figure 2 This is a three-dimensional structural diagram of a multi-directional cutting device for forging raw materials from another angle.
[0032] Figure 3 This is an exploded three-dimensional structural diagram of a multi-directional cutting device for forging raw materials.
[0033] Figure 4 This is an exploded three-dimensional structural diagram of the base in a multi-directional cutting device for forging raw materials.
[0034] Figure 5 This is an exploded three-dimensional structural diagram of the lifting assembly and the cutting assembly in a multi-directional cutting device for forging raw materials.
[0035] Figure 6 This is an exploded three-dimensional structural diagram of the forging positioning mechanism and pressure-bearing component in a multi-directional cutting device for forging raw materials.
[0036] Figure 7 This is an exploded three-dimensional structural diagram of a pressing and walking component in a multi-directional cutting device for forging raw materials.
[0037] Figure 8 This is a three-dimensional structural diagram of a cutting component in a multi-directional cutting device for forging raw materials.
[0038] Figure 9 This is a three-dimensional structural diagram of a positioning component in a multi-directional cutting device for forging raw materials.
[0039] Figure 10 This is an exploded three-dimensional structural diagram of a high-speed chip removal component in a multi-directional cutting device for forging raw materials.
[0040] Legend:
[0041] 1. Top shell; 2. Controller; 3. Forging positioning mechanism; 31. Positioning assembly; 311. Wheel frame; 312. Adjusting motor; 313. Positioning wheel; 32. Connecting spring; 33. Side plate; 34. Moving block; 35. Slide rod; 4. Stroke groove; 5. Base; 6. Side frame; 7. Side groove; 8. Reversing seat; 9. Reversing motor; 10. Adjusting motor; 11. Lifting assembly; 111. Slider; 112. Saw groove; 113. Lifting seat; 12. Cutting assembly; 121. Saw shroud; 122. Drive motor; 123. Cutting saw; 13. High-speed chip removal assembly; 131. Airflow speed-increasing shroud; 132. Air guide hose; 133. Speed-increasing worm gear; 134. Side cover; 14. Pressure-bearing assembly; 141. Pressure-bearing block; 142. Pressure-bearing spring; 143. Elastic connecting belt; 15. Top groove; 16. Adjusting screw; 17. Pressing and traveling assembly; 171. Spring rod; 172. Pressing and traveling roller; 173. Bottom cover; 174. Turbidator blade. Detailed Implementation
[0042] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0043] Please see Figures 1-10 The present invention provides a technical solution: a multi-directional cutting device for forging raw materials, including a base 5, side frames 6 are fixedly installed on both outer walls of the base 5, a top shell 1 is fixedly installed on the top of the side frame 6, a controller 2 is fixedly installed on one outer wall of the side frame 6, a side groove 7 is provided on the side frame 6, a reversing motor 9 is fixedly installed inside the top shell 1, a reversing seat 8 is fixedly installed at one end of the output shaft of the reversing motor 9, an adjusting motor 10 is fixedly installed at one end of the reversing seat 8, and an adjusting screw 16 is fixedly installed at one end of the output shaft of the adjusting motor 10.
[0044] A lifting assembly 11 is movably mounted on the outside of the adjusting screw 16. A cutting assembly 12 is provided on the inner side of the lifting assembly 11. Two pressing and walking assemblies 17 are provided at the bottom of the lifting assembly 11. The pressing and walking assemblies 17 are used to ensure the stability of the forging during cutting. High-speed chip removal assemblies 13 are provided on both outer walls of the lifting assembly 11. The high-speed chip removal assemblies 13 are used to synchronously clean the chips during the cutting process. A stroke groove 4 and a top groove 15 are provided on the top surface of the base 5. A forging positioning mechanism 3 is slidably installed inside the stroke groove 4. A pressure bearing assembly 14 is provided inside the top groove 15. The forging positioning mechanism 3 and the pressure bearing assembly 14 are used for rapid positioning of the forging during cutting.
[0045] The lifting assembly 11 includes a slider 111, which is threadedly mounted on the outside of the adjusting screw 16 through a threaded hole inside it. The slider 111 is slidably connected to the bottom groove provided on the bottom surface of the reversing seat 8. A lifting seat 113 is fixedly installed on the bottom surface of the slider 111, and a saw groove 112 is provided on the inner side of the lifting seat 113.
[0046] The cutting assembly 12 includes a saw cover 121, which is fixedly installed inside the saw groove 112. A drive motor 122 is fixedly installed on one outer wall of the saw cover 121. The drive motor 122 is located in a groove inside the lifting seat 113. A cutting saw 123 is fixedly installed at one end of the output shaft of the drive motor 122. The cutting saw 123 is located inside the saw cover 121.
[0047] The pressing and walking assembly 17 includes two spring rods 171, both of which are fixedly installed in the inner hole provided inside the lifting seat 113. A bottom cover 173 is fixedly installed at the bottom end of the spring rods 171. A pressing and walking roller 172 and a turbulence vane 174 are rotatably installed on the inner side of the bottom cover 173 via a rotating shaft. The pressing and walking roller 172 is located in the bottom groove provided at the bottom of the bottom cover 173, and the turbulence vane 174 is located in the side shell cavity of the bottom cover 173.
[0048] The specific implementation method is as follows: When cutting the raw material, the raw material is first installed and positioned. After installation, the direction change motor 9 is turned on according to the required cutting direction, and the direction change seat 8 is adjusted to rotate to a suitable position. At this time, the position of the cutting saw 123 changes synchronously, driving the cutting saw 123 to rotate at high speed. The lifting seat 113 is controlled to descend. At this time, the pressing roller 172 can first contact and squeeze the surface of the cutting workpiece. Then the cutting saw 123 continues to descend, and the spring rod 171 continues to contract until the cutting saw 123 contacts the cutting workpiece and cuts it. At this time, the adjusting screw 16 is controlled to rotate, driving the lifting component 11 to move and realize the stable cutting of the cutting saw 123. During this process, the pressing roller 172 can roll synchronously on the surface of the cutting workpiece according to the movement of the cutting saw 123, generating a certain downward pressure on the cutting workpiece, further improving the stability of the cutting workpiece during the cutting process.
[0049] This design enables the equipment to perform multi-directional cutting, meeting diverse cutting needs while continuously improving the stability of the cut parts during the cutting process, preventing chipping and other issues, and enhancing the equipment's overall performance.
[0050] The high-speed chip removal assembly 13 includes an airflow speed-increasing hood 131, which is fixedly installed on the outer surface of the lifting base 113. Two speed-increasing worm gears 133 are arranged inside the airflow speed-increasing hood 131. A side cover 134 is provided on one side of the airflow speed-increasing hood 131. Multiple air guide hoses 132 are provided on the top surface of the airflow speed-increasing hood 131. One end of the multiple air guide hoses 132 is fixedly connected to an air hole provided on the top surface of the bottom cover 173. The air hole is located directly above the turbulence vane 174. An air jet pipe is fixedly installed on one side of the outer wall of the airflow speed-increasing hood 131. One end of the air jet pipe is close to the cutting saw 123.
[0051] The specific implementation method is as follows: while the pressing and traveling roller 172 is rolling, it drives the turbulence vane 174 to rotate synchronously. The rotation of multiple turbulence vanes 174 generates turbulence. This airflow can enter the airflow speed-up hood 131 through multiple air guide hoses 132. When the airflow flows into the two speed-up worm gears 133, the air passage space inside the two speed-up worm gears 133 is narrow, thus achieving the effect of speeding up the airflow. The speed-up airflow can be ejected through the jet pipe. The high-speed airflow can quickly carry away the debris generated during the cutting process, with good cleaning effect, avoiding the adverse effects of debris residue on subsequent cutting, and the high-speed airflow has a good chip removal effect.
[0052] The pressure-bearing assembly 14 includes a pressure-bearing block 141, which is movably mounted inside the top groove 15 via a pressure spring 142. The forging positioning mechanism 3 includes a slide rod 35, with a connecting spring 32 fitted around the slide rod 35. One end of the connecting spring 32 is fixedly connected to one side inner wall of the travel groove 4. A moving block 34 is slidably mounted around the slide rod 35, with the other end of the connecting spring 32 fixedly connected to one end of the moving block 34. The moving block 34 slides along the travel groove 4. The moving block 34 is connected by a side plate 33 fixedly mounted on its top surface. A positioning component 31 is provided on the side wall of the side plate 33. The positioning component 31 includes an adjusting motor 312, which is fixedly mounted on one outer wall of the side plate 33. A wheel frame 311 is fixedly mounted on one end of the output shaft of the adjusting motor 312. A positioning wheel 313 is rotatably mounted on the inner side of the wheel frame 311 via a rotating shaft. The pressure block 141 and the moving block 34 are connected by an elastic connecting belt 143.
[0053] The specific implementation method is as follows: When installing and positioning the raw material, simply place the raw material to be cut on the base 5. At this time, the pressure block 141 is subjected to pressure and moves downward. During the downward movement, the elastic connecting belt 143 pulls multiple moving blocks 34 to move synchronously towards the center position until multiple positioning wheels 313 contact the four points of the forging, thus completing the rapid positioning of the casting. After the cutting is completed, when it is necessary to remove the casting upward, simply control the adjusting motor 312 to start and drive the wheel frame 311 and positioning wheels 313 to rotate to the vertical direction. At this time, the cut material can be smoothly removed upward.
[0054] This design enables rapid positioning of the cutting part before cutting without the need for any external parts or workpieces. Furthermore, since the cutting part can be positioned simultaneously in multiple different directions, and the use of an elastic connecting belt 143 allows for the positioning of some irregularly shaped cutting parts, thus improving the applicability of the structure. Additionally, the angle of the positioning wheel 313 can be adjusted after cutting to facilitate quick removal, greatly enhancing the practical application effect of the equipment.
[0055] Working principle: When cutting raw materials, the raw materials are first installed and positioned. Simply place the raw material to be cut on the base 5. At this time, the pressure block 141 moves downward under pressure. During the downward movement, the elastic connecting belt 143 pulls multiple moving blocks 34 to move synchronously towards the center position until multiple positioning wheels 313 contact the four points of the forging, completing the rapid positioning of the casting. After cutting, when it is necessary to remove the casting upward, simply control the adjusting motor 312 to turn on and drive the wheel frame 311 and positioning wheels 313 to rotate to the vertical direction. At this time, the cut material can be easily removed upward. Through this design, the cutting part can be quickly positioned before cutting without the aid of any external parts or workpieces. Since the cutting part can be positioned synchronously in multiple different directions, and the elastic connecting belt 143 is used, it can position some irregularly shaped cutting parts, thus improving the applicability of this structure.
[0056] After installation, control the direction change motor 9 to start according to the required cutting direction, and adjust the direction change seat 8 to rotate to the appropriate position. At this time, the position of the cutting saw 123 changes synchronously, driving the cutting saw 123 to rotate at high speed. Control the lifting seat 113 to descend. At this time, the pressing roller 172 can first contact and squeeze the surface of the workpiece. Then the cutting saw 123 continues to descend, and the spring rod 171 continues to contract until the cutting saw 123 contacts the workpiece and cuts it. At this time, control the adjusting screw 16 to rotate, driving the lifting assembly 11 to move, so as to achieve stable cutting by the cutting saw 123. During this process, the pressing roller 172 can roll synchronously on the surface of the workpiece according to the movement of the cutting saw 123, generating a certain downward pressure on the workpiece, further improving the stability of the workpiece during the cutting process.
[0057] While the pressing and traveling roller 172 is rolling, it drives the turbulence vanes 174 to rotate synchronously. The rotation of multiple turbulence vanes 174 generates turbulence. This airflow can enter the airflow speed-up hood 131 through multiple air guide hoses 132. When the airflow flows into the two speed-up worm gears 133, the narrow air passage space inside the two speed-up worm gears 133 achieves the effect of speeding up the airflow. The speed-up airflow can be ejected through the jet pipe. The high-speed airflow can quickly carry away the debris generated during the cutting process, with good cleaning effect, avoiding the adverse effects of debris residue on subsequent cutting, and the high-speed airflow has a good chip removal effect.
[0058] The above are merely preferred embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A multi-directional cutting device for forging raw materials, comprising a base (5), characterized in that: Side frames (6) are fixedly installed on both outer walls of the base (5). A top shell (1) is fixedly installed on the top of the side frame (6). A controller (2) is fixedly installed on one outer wall of the side frame (6). A side groove (7) is provided on the side frame (6). A reversing motor (9) is fixedly installed inside the top shell (1). A reversing seat (8) is fixedly installed at one end of the output shaft of the reversing motor (9). An adjusting motor (10) is fixedly installed at one end of the reversing seat (8). An adjusting screw (16) is fixedly installed at one end of the output shaft of the adjusting motor (10). A lifting assembly (11) is movably mounted on the outside of the adjusting screw (16). A cutting assembly (12) is provided on the inside of the lifting assembly (11). Two pressing and walking assemblies (17) are provided at the bottom of the lifting assembly (11). High-speed chip removal assemblies (13) are provided on both outer walls of the lifting assembly (11). A stroke groove (4) and a top groove (15) are provided on the top surface of the base (5). A forging positioning mechanism (3) is slidably mounted inside the stroke groove (4). A pressure bearing assembly (14) is provided inside the top groove (15). The pressure-bearing component (14) includes a pressure-bearing block (141), which is movably installed inside the top groove (15) by a pressure-bearing spring (142). The forging positioning mechanism (3) includes a slide rod (35), which is fitted with a connecting spring (32). One end of the connecting spring (32) is fixedly connected to the inner wall of one side of the stroke groove (4). A moving block (34) is slidably installed on the outside of the slide rod (35). The other end of the connecting spring (32) is fixedly connected to one end of the moving block (34). The moving block (34) is slidably connected to the stroke groove (4). A side plate (33) is fixedly installed on the top surface of the moving block (34). A positioning component (31) is provided on the side wall of the side piece (33). The positioning component (31) includes an adjusting motor (312). The adjusting motor (312) is fixedly installed on one side outer wall of the side piece (33). A wheel frame (311) is fixedly installed at one end of the output shaft of the adjusting motor (312). A positioning wheel (313) is rotatably installed on the inner side of the wheel frame (311) through a rotating shaft. The pressure block (141) and the moving block (34) are connected by an elastic connecting belt (143). When installing and positioning the raw material, simply place the raw material to be cut on the base (5). At this time, the pressure block (141) is subjected to pressure and moves downward. During the downward movement, the elastic connecting belt (143) pulls multiple moving blocks (34) to move synchronously towards the center position until multiple positioning wheels (313) contact the four points of the forging, thus completing the rapid positioning of the casting. After the cutting is completed, when it is necessary to remove the casting upward, simply control the adjusting motor (312) to start and drive the wheel frame (311) and positioning wheel (313) to rotate to the vertical direction. At this time, the cut material can be smoothly removed upward.
2. The multi-directional cutting equipment for forging raw materials according to claim 1, characterized in that, The lifting assembly (11) includes a slider (111), which is threadedly installed on the outside of the adjusting screw (16) through a threaded hole provided inside it. The slider (111) is slidably connected to the bottom groove provided on the bottom surface of the reversing seat (8). A lifting seat (113) is fixedly installed on the bottom surface of the slider (111), and a saw groove (112) is provided on the inner side of the lifting seat (113).
3. The multi-directional cutting equipment for forging raw materials according to claim 2, characterized in that, The cutting assembly (12) includes a saw cover (121), which is fixedly installed inside the saw groove (112). A drive motor (122) is fixedly installed on one outer wall of the saw cover (121), and the drive motor (122) is located in a groove inside the lifting seat (113).
4. The multi-directional cutting equipment for forging raw materials according to claim 3, characterized in that, A cutting saw (123) is fixedly mounted on one end of the output shaft of the drive motor (122), and the cutting saw (123) is located inside the saw cover (121).
5. The multi-directional cutting equipment for forging raw materials according to claim 4, characterized in that, The pressing and walking assembly (17) includes two spring rods (171), both of which are fixedly installed in the inner hole provided inside the lifting seat (113), and a bottom cover (173) is fixedly installed at the bottom end of the spring rods (171).
6. The multi-directional cutting equipment for forging raw materials according to claim 5, characterized in that, The inner side of the bottom cover (173) is rotatably mounted with a pressing roller (172) and a turbulence vane (174) via a rotating shaft. The pressing roller (172) is located in the bottom groove provided at the bottom of the bottom cover (173), and the turbulence vane (174) is located in the side shell cavity of the bottom cover (173).
7. The multi-directional cutting equipment for forging raw materials according to claim 6, characterized in that, The high-speed chip removal assembly (13) includes an airflow speed-increasing hood (131), which is fixedly installed on the outer surface of the lifting seat (113). The airflow speed-increasing hood (131) has two speed-increasing worm gears (133) inside, and a side cover (134) is provided on one side of the airflow speed-increasing hood (131).
8. The multi-directional cutting equipment for forging raw materials according to claim 7, characterized in that, The top surface of the airflow speed-increasing hood (131) is provided with multiple air guide hoses (132), one end of the multiple air guide hoses (132) is fixedly connected to the air holes provided on the top surface of the bottom cover (173), the air holes are located directly above the turbulence vane (174), and a jet pipe is fixedly installed on one side of the outer wall of the airflow speed-increasing hood (131), one end of the jet pipe is close to the cutting saw (123).
Citation Information
Patent Citations
Raw material cutting equipment and method for drill bit production
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Die steel block forging processing equipment and process
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