Cutting machining device for electromechanical equipment manufacturing
By designing a synchronously moving support platform and cutting mechanism in the cutting processing device, the problem of frequent material pauses in the existing technology is solved, efficient continuous cutting and precise cutting are achieved, and processing efficiency and cutting accuracy are improved.
Patent Information
- Application Number
- CN202510826596.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-19
- Publication Date
- 2025-09-23
AI Technical Summary
When cutting long plate materials, existing cutting processing devices need to stop frequently, resulting in low processing efficiency. Especially when the length of the material to be cut is large, the intermittent motion mode exacerbates the efficiency reduction.
A cutting processing device for electromechanical equipment manufacturing is designed, which includes a carrier table and a cutting mechanism. The carrier table moves synchronously with the cutting material. The cutting mechanism ensures the stability and synchronization of the cutting material through a linear control component and a pressure plate component. The cutting table can be raised and lowered to avoid friction.
The material can be cut during the continuous conveying process, which improves the processing efficiency, ensures the cutting accuracy and the flatness of the material, avoids scratches on the material surface, and reduces equipment downtime.
Smart Images

Figure CN120680043A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cutting devices, in particular to a cutting processing device for manufacturing electromechanical equipment. Background Art
[0002] Currently, the manufacturing process for electromechanical equipment begins with cutting raw materials into appropriate sizes and shapes for subsequent processing. For example, sheet materials such as steel and aluminum sheets are first cut into several short sections using a cutting device to form blanks. These blanks are then trimmed and stamped to achieve the desired shape and specifications. Finally, the processed blanks are welded or riveted together to form the desired component.
[0003] When cutting long plate materials, the existing cutting processing device first needs to place the material to be cut on the processing table, and then control the material to be cut to move toward the cutting mechanism through the conveying mechanism, so that the specific length of the material to be cut exceeds the cutting mechanism, and then the material is cut by the cutting mechanism; after completion, continue to move the material to be cut forward to a specific length and cut again, and repeat this process until the material is cut into several short plates.
[0004] A drawback of existing cutting devices is that, during each cutting operation, the material being cut remains stationary. The material can only continue moving forward after the cut is complete, resulting in an intermittent motion of the material as a whole. This operating mode presents significant drawbacks, resulting in relatively low processing efficiency. This intermittent motion method is particularly problematic when cutting long materials, requiring frequent pauses and waiting, further reducing efficiency. Therefore, we propose a cutting device for electromechanical equipment manufacturing that effectively addresses these drawbacks. Summary of the Invention
[0005] The object of the present invention is to provide a cutting and processing device for manufacturing electromechanical equipment, so as to solve the problems raised in the above-mentioned background technology.
[0006] The present invention is achieved through the following technical solutions: A cutting and processing device for manufacturing electromechanical equipment, comprising a processing table, a top surface of which is provided with a conveying mechanism, and further comprising:
[0007] A carrying platform, the carrying platform is movably arranged at one side of the conveying end of the conveying mechanism;
[0008] A driving assembly, which is arranged on the processing table and is used to control the sliding of the carrier table along the conveying direction of the conveying mechanism;
[0009] The cutting mechanism includes a door-shaped mounting frame and a cutting assembly. The mounting frame is fixedly mounted on the top surface of the carrier platform, and the cutting assembly is arranged on the inner side of the mounting frame. A linear control assembly is also provided on the top of the mounting frame. The linear control assembly is used to control the sliding of the cutting assembly along the width direction of the conveying mechanism.
[0010] In which, the top surface of the supporting platform is lower than the upper surface of the conveying mechanism, and a hidden slot is provided on the top surface of the supporting platform, in which a cutting table capable of being raised and lowered vertically is provided; when the cutting assembly is located at the left and right ends of the mounting frame, the top surface of the cutting table is lower than the upper surface of the conveying mechanism; when the cutting assembly is located in the middle position of the mounting frame, the top surface of the cutting table is flush with the upper surface of the conveying mechanism.
[0011] Optionally, the cutting assembly includes a cutting seat, a drive motor and a cutting disc, the cutting seat is connected to the movable end of the linear control assembly, the drive motor and the cutting disc are both installed on the cutting seat, and the drive motor is used to drive the cutting disc to rotate.
[0012] Optionally, a pressure plate assembly is further provided on the mounting frame, and the pressure plate assembly includes two sliding sleeves, which are respectively mounted on the left and right side walls of the mounting frame, and two connecting plates are provided between the two sliding sleeves. Guide rods are provided on the left and right sides of the bottom surface of the connecting plate, and a pressure plate is commonly provided at the bottom ends of the two guide rods located on the bottom surface of the same connecting plate.
[0013] Optionally, the pressure plate assembly further includes a rectangular reinforcement sleeve, which is sleeved on the outside of the mounting frame and fixedly connected to the mounting frame, and the guide rod movably passes through the rectangular reinforcement sleeve.
[0014] Optionally, the pressure plate assembly further comprises two driven plates, the two driven plates being respectively located on the front and rear sides of the cutting assembly, the two ends of the two driven plates being respectively fixedly connected to the two sliding sleeves, the facing surfaces of the two driven plates being provided with a driving groove, the driving groove being low at the two ends and high in the middle;
[0015] The front and rear sides of the cutting seat are both provided with guide wheels, and the two guide wheels are respectively embedded in the driving grooves on the front and rear sides.
[0016] Optionally, connecting columns are provided on both the left and right sides of the cutting table, and through-holes for the connecting columns to pass through are opened on the left and right side walls of the supporting platform, and the connecting columns pass through the through-holes and are provided with displacement blocks, and the outer surface of the displacement blocks is provided with a first rack, and the outer left and right side walls of the supporting platform are also rotatably provided with driven gears;
[0017] A driving rod is provided on the outside of the two sliding sleeves, and a second rack is provided on the bottom of the driving rod. The first rack and the second rack are respectively engaged with the two sides of the driven gear.
[0018] Optionally, the driving groove includes a first horizontal groove located in the middle, and two second horizontal grooves located on both sides of the first horizontal groove, the first horizontal groove is higher than the second horizontal groove, the first horizontal groove and the second horizontal groove are transitionally connected by a diagonal brace, and the length of the first horizontal groove is greater than the width of the material to be cut;
[0019] When the guide wheel is located inside the first horizontal groove, the top surface of the cutting table is flush with the upper surface of the conveying mechanism, and the pressing plate abuts against the upper surface of the material to be cut.
[0020] Optionally, the conveying mechanism adopts a belt conveyor, which is installed on the inner side of the top of the processing table. The top surface of the processing table is also provided with a drive roller, which is installed on the top surface of the processing table through a fixed seat, and the axial direction of the drive roller is parallel to the width direction of the conveying mechanism.
[0021] Optionally, the left and right side walls of the exterior of the processing table are provided with slide rails distributed along the conveying direction of the conveying mechanism, and the two slide rails are slidably connected to slide rods, and one end of the two slide rods is fixedly connected to the supporting platform.
[0022] Optionally, the driving assembly adopts an electric push rod, the driving assembly is fixedly installed on the outer side wall of the processing table, and the movable end of the driving assembly is fixedly connected to the sliding rod.
[0023] Compared with the prior art, the present invention provides a cutting and processing device for electromechanical equipment manufacturing, which has the following beneficial effects:
[0024] 1. The carrier and cutting device of the present invention can move synchronously with the movement of the cutting material. Therefore, the cutting device can also perform cutting operations while the cutting material is moving forward, without pausing the cutting material, thereby helping to improve cutting efficiency.
[0025] 2. The cutting mechanism of the present invention is also provided with a pressure plate assembly, which can press the cutting material downward, so that the cutting material and the cutting mechanism are fully synchronized, ensuring the flatness of the cut section;
[0026] 3. The present invention also has a cutting table, which is always lower than the upper surface of the conveying mechanism during the conveying process of the cutting material, thereby avoiding friction between the cutting material and the cutting table, which in turn causes scratches on the lower surface of the cutting material. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Figure 1 It is a schematic diagram of the structure of the present invention;
[0028] Figure 2 It is a partial side view of the present invention in an uncut state;
[0029] Figure 3 It is a partial side view of the cutting state of the present invention;
[0030] Figure 4 It is a partial front view of the present invention in an uncut state;
[0031] Figure 5 It is a partial front view of the cutting state of the present invention;
[0032] Figure 6 This is a schematic structural diagram of the pressure plate assembly of the present invention;
[0033] Figure 7 for Figure 2 The corresponding figure at A is enlarged;
[0034] Figure 8 for Figure 5 The corresponding figure at point B is enlarged.
[0035] Figure: 100, processing table; 101, conveying mechanism; 102, driving roller; 103, slide rail; 104, slide bar; 200, carrying platform; 201, cutting table; 202, connecting column; 203, through-hole; 204, displacement block; 205, driven gear; 206, first rack; 300, driving assembly; 400, cutting mechanism; 401, mounting frame; 402, cutting assembly; 4021, cutting seat ; 4022, driving motor; 4023, cutting disc; 403, linear control assembly; 404, guide wheel; 500, pressure plate assembly; 501, sliding sleeve; 502, connecting plate; 503, guide rod; 504, pressure plate; 505, rectangular reinforcement sleeve; 506, driven plate; 507, driving slot; 5071, first horizontal slot; 5072, second horizontal slot; 508, driving rod; 509, second rack. DETAILED DESCRIPTION
[0036] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0037] See also Figure 1 - Figure 8A cutting and processing device for manufacturing electromechanical equipment includes a processing table 100. A conveying mechanism 101 is provided on the top surface of the processing table 100. Specifically, the conveying mechanism 101 adopts a belt conveyor, which is installed on the inner side of the top of the processing table 100. The top surface of the processing table 100 is also provided with a drive roller 102. The drive roller 102 is installed on the top surface of the processing table 100 through a fixed seat, and the axial direction of the drive roller 102 is parallel to the width direction of the conveying mechanism 101. Specifically, during implementation, the material to be cut can be inserted between the conveying mechanism 101 and the drive roller 102. At this time, the drive roller 102 and the conveying mechanism 101 are respectively in contact with the upper and lower surfaces of the material to be cut, thereby driving the material to be cut continuously forward.
[0038] This embodiment further includes a carrying platform 200 and a drive assembly 300, wherein the carrying platform 200 is movably disposed on one side of the conveying end of the conveying mechanism 101; the drive assembly 300 is disposed on the processing table 100 and is used to control the sliding movement of the carrying platform 200 along the conveying direction of the conveying mechanism 101. Specifically, the top surface of the carrying platform 200 is lower than the upper surface of the conveying mechanism 101, and the left and right side walls of the processing table 100 are each provided with a slide rail 103 distributed along the conveying direction of the conveying mechanism 101. The two slide rails 103 are slidably connected to a slide rod 104, and one end of each slide rod 104 is fixedly connected to the carrying platform 200. In other words, the carrying platform 200 can be moved along the conveying direction of the conveying mechanism 101 via the slide rails 103.
[0039] In addition, the drive assembly 300 adopts an electric push rod, which is fixedly installed on the outer wall of the processing table 100, and the movable end of the drive assembly 300 is fixedly connected to the slide rod 104; therefore, the electric push rod can push the carrier table 200 to move along the conveying direction of the conveying mechanism 101, and when the electric push rod pushes the carrier table 200 to move toward the side away from the processing table 100, the movement speed of the carrier table 200 is consistent with the conveying speed of the conveying mechanism 101, and its function is to keep the carrier table 200 and the material to be cut moving synchronously.
[0040] This embodiment also includes a cutting mechanism 400, which includes a door-shaped mounting frame 401 and a cutting component 402. The mounting frame 401 is fixedly installed on the top surface of the supporting platform 200, and the length direction of the mounting frame 401 is consistent with the width direction of the conveying mechanism 101. The cutting component 402 is arranged on the inner side of the mounting frame 401. A linear control component 403 is also provided on the top of the mounting frame 401. The linear control component 403 is used to control the sliding of the cutting component 402 along the width direction of the conveying mechanism 101; specifically, the linear control component 403 can adopt a linear slide to control the left and right horizontal movement of the cutting component 402 to achieve cutting of the material.
[0041] Specifically, the cutting assembly 402 includes a cutting base 4021, a drive motor 4022, and a cutting disc 4023. The cutting base 4021 is connected to the movable end of the linear control assembly 403. The drive motor 4022 and the cutting disc 4023 are both mounted on the cutting base 4021. The drive motor 4022 is used to rotate the cutting disc 4023. It should be noted that the bottom end of the cutting disc 4023 is lower than the upper surface of the conveying mechanism 101, allowing it to smoothly cut the material.
[0042] This embodiment further includes a control system, which includes a PLC controller for controlling the actions of the conveying mechanism 101 , the driving component 300 and the linear control component 403 .
[0043] In this embodiment, the conveying mechanism 101 is used to continuously convey the material to be cut. Taking the metal sheet as an example, one end of the metal sheet passes through the bottom of the cutting assembly 402, and the free end of the metal sheet is aligned with the cutting disc 4023; then the conveying mechanism 101 is started, and the conveying mechanism 101 controls the metal sheet to move forward at a uniform speed. When the distance between the front end of the metal sheet and the cutting disc 4023 reaches the set value, the control system immediately controls the carrier 200 to move forward and maintain the same forward speed as the metal sheet.
[0044] During the forward movement of the carrier 200, the linear control component 403 synchronously controls the lateral movement of the cutting component 402 to cut off the front end of the metal sheet. When the cutting component 402 moves from one side of the mounting frame 401 to the other side, the cutting action is completed, and then the control system immediately controls the carrier 200 to return to its original position. When the front end of the metal sheet moves again until the distance from the cutting disc 4023 reaches the set value, the carrier 200 and the cutting component 402 move again, and so on and so forth, continuous cutting of the material can be achieved without stopping the conveying mechanism 101. Compared with traditional technologies, this embodiment can greatly improve the efficiency of material cutting and avoid damage to the drive components caused by repeated shutdowns.
[0045] It should be noted that, assuming the time it takes for the cutting assembly 402 to move from one side of the mounting frame 401 to the other is t1, the time it takes for the carrier 200 to return is t2, and the time it takes for the cut material to advance one cutting length is t3, then in this embodiment, the sum of t1 and t2 must be less than t3. Since the cutting material advances at a constant speed, t3 is a fixed value. Therefore, the operator only needs to activate the drive assembly 300 once every t3 through the control system.
[0046] In some embodiments of the present application, a pressure plate assembly 500 is further provided on the mounting frame 401. The pressure plate assembly 500 includes two sliding sleeves 501, which are respectively mounted on the left and right side walls of the mounting frame 401. Two connecting plates 502 are disposed between the two sliding sleeves 501. Guide rods 503 are provided on both the left and right sides of the bottom surface of the connecting plates 502. A pressure plate 504 is provided at the bottom ends of the two guide rods 503 located on the bottom surface of the same connecting plate 502. The sliding sleeves 501 slide together with the side walls of the mounting frame 401, while the connecting plates 502 and the sliding sleeves 501 are welded and fixed, and the guide rods 503 are threadedly connected to the connecting plates 502. The pressure plate 504 is also bolted to the bottom ends of the guide rods 503. When the sliding sleeves 501 move up and down, the pressure plate 504 is driven to move up and down.
[0047] Furthermore, the pressure plate assembly 500 includes a rectangular reinforcement sleeve 505, which is mounted on the outside of the mounting frame 401 and fixedly connected to the mounting frame 401. The guide rod 503 movably extends through the rectangular reinforcement sleeve 505. The guide rod 503 and the rectangular reinforcement sleeve 505 are slidably engaged with each other to increase the support strength of the guide rod 503.
[0048] In addition, the pressure plate assembly 500 also includes two driven plates 506, which are respectively located on the front and rear sides of the cutting assembly 402. The two ends of the two driven plates 506 are respectively fixedly connected to the two sliding sleeves 501, and the facing surfaces of the two driven plates 506 are provided with driving grooves 507, which are low at both ends and high in the middle; specifically, the driving grooves 507 include a first horizontal groove 5071 located in the middle, and two second horizontal grooves 5072 located on both sides of the first horizontal groove 5071, the first horizontal groove 5071 is higher than the second horizontal groove 5072, the first horizontal groove 5071 and the second horizontal groove 5072 are connected by a diagonal brace, and the length of the first horizontal groove 5071 is greater than the width of the material to be cut.
[0049] Guide wheels 404 are provided on both the front and rear sides of the cutting seat 4021. These guide wheels 404 are respectively embedded in the drive slots 507 on the front and rear sides. When the guide wheels 404 are located within the two second horizontal slots 5072, the bottom surface of the pressure plate 504 is higher than the upper surface of the conveyor mechanism 101. When the material to be cut passes under the pressure plate 504, there is no friction between the pressure plate 504 and the material to be cut. When the guide wheels 404 are located within the first horizontal slots 5071, the pressure plates 504 move toward each other to compress the material to be cut.
[0050] In this embodiment, a hidden slot is provided on the top surface of the supporting platform 200, in which a cutting table 201 capable of being raised and lowered vertically is provided; when the cutting assembly 402 is located at the left and right ends of the mounting frame 401, the top surface of the cutting table 201 is lower than the upper surface of the conveying mechanism 101; when the cutting assembly 402 is located in the middle position of the mounting frame 401, the top surface of the cutting table 201 is flush with the upper surface of the conveying mechanism 101.
[0051] Specifically, the cutting table 201 is provided with connecting posts 202 on both sides. The left and right walls of the supporting platform 200 each have through-holes 203 for the connecting posts 202 to pass through. The connecting posts 202 pass through the through-holes 203 and are provided with displacement blocks 204. The displacement blocks 204 have first racks 206 mounted on their outer surfaces. Driven gears 205 are also rotatably mounted on the left and right walls of the supporting platform 200. Drive rods 508 are mounted on the exterior of each of the two sliding sleeves 501. Second racks 509 are located at their bases. The first racks 206 and second racks 509 engage with the driven gears 205, respectively. Therefore, when the sliding sleeves 501 and the pressure plate 504 move toward each other, they synchronously drive the cutting table 201 upward.
[0052] It should be noted that the top surface of the cutting table 201 has an elongated cutout for the bottom of the cutting disc 4023 to extend into. Specifically, when the guide wheel 404 is located within the first horizontal groove 5071, the top surface of the cutting table 201 is flush with the upper surface of the conveying mechanism 101; when the guide wheel 404 is located within the second horizontal groove 5072, the cutting table 201 is flush with the top surface of the carrier 200.
[0053] In this embodiment, when the cutting assembly 402 moves laterally, the pressure plate 504 can move downward, while the cutting table 201 can move upward, thereby pressing and securing the cutting material. This serves to maintain complete synchronization between the cutting material and the cutting table 201, thereby helping to improve cutting accuracy. It is worth noting that although the forward speeds of the carrier 200 and the cutting material are consistent on a macroscopic level, due to the possibility of some slippage between the cutting material and the conveying mechanism 101, there may be a slight difference in the forward speeds of the cutting material and the carrier 200 on a microscopic level. If the pressure plate 504 and the cutting table 201 are not used to press and secure the material, the cross-section of the cut material will not be smooth enough.
[0054] In addition, in the uncut state, the top surface of the cutting table 201 is always lower than the upper surface of the conveying mechanism 101. Its function is to maintain a certain gap between the cutting table 201 and the material to be cut. In this way, when the cutting material moves forward, friction between the cutting material and the cutting table 201 can be avoided, which may cause scratches on the lower surface of the material.
[0055] In the prior art, the cutting table height of the cutting device is usually fixed. When the material moves on the cutting table, the sliding friction between the two can easily cause scratches on the lower surface of the material, thereby damaging the material. In addition, if rollers are provided on the cutting table to reduce the resistance of the material as it moves forward, then when the material moves forward, although scratches will not be generated on the lower surface of the material, the instability of the rollers will affect the fixing effect of the cut material during the cutting operation, which may have an adverse effect on the cutting accuracy. In this embodiment, the cutting table 201 that can move up and down not only does not generate friction on the cut material, but also maintains the stability of the cut material during the cutting action, which is conducive to improving cutting accuracy.
[0056] It should be noted that, in this document, the terms "comprises," "includes," or any other variations thereof are intended to encompass non-exclusive inclusion, such that a process, method, article, or apparatus comprising a series of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of other identical elements in the process, method, article, or apparatus comprising the element.
[0057] 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 cutting and processing device for manufacturing electromechanical equipment, comprising a processing table, the top surface of which is provided with a conveying mechanism, characterized in that: Also includes: A carrying platform, the carrying platform is movably arranged at one side of the conveying end of the conveying mechanism; A driving assembly, which is arranged on the processing table and is used to control the sliding of the carrier table along the conveying direction of the conveying mechanism; The cutting mechanism includes a door-shaped mounting frame and a cutting assembly. The mounting frame is fixedly mounted on the top surface of the carrier platform, and the cutting assembly is arranged on the inner side of the mounting frame. A linear control assembly is also provided on the top of the mounting frame. The linear control assembly is used to control the sliding of the cutting assembly along the width direction of the conveying mechanism. In which, the top surface of the supporting platform is lower than the upper surface of the conveying mechanism, and a hidden slot is provided on the top surface of the supporting platform, in which a cutting table capable of being raised and lowered vertically is provided; when the cutting assembly is located at the left and right ends of the mounting frame, the top surface of the cutting table is lower than the upper surface of the conveying mechanism; when the cutting assembly is located in the middle position of the mounting frame, the top surface of the cutting table is flush with the upper surface of the conveying mechanism.
2. The cutting and processing device for electromechanical equipment manufacturing according to claim 1, characterized in that: The cutting assembly includes a cutting seat, a driving motor and a cutting disc. The cutting seat is connected to the movable end of the linear control assembly. The driving motor and the cutting disc are both installed on the cutting seat, and the driving motor is used to drive the cutting disc to rotate.
3. The cutting and processing device for electromechanical equipment manufacturing according to claim 2, characterized in that: The mounting frame is also provided with a pressure plate assembly, which includes two sliding sleeves, which are respectively mounted on the left and right side walls of the mounting frame, and two connecting plates are provided between the two sliding sleeves. Guide rods are provided on the left and right sides of the bottom surface of the connecting plate, and a pressure plate is commonly provided at the bottom ends of the two guide rods located on the bottom surface of the same connecting plate.
4. The cutting and processing device for electromechanical equipment manufacturing according to claim 3, characterized in that: The pressure plate assembly further includes a rectangular reinforcement sleeve, which is sleeved on the outside of the mounting frame and fixedly connected to the mounting frame, and the guide rod movably passes through the rectangular reinforcement sleeve.
5. The cutting and processing device for electromechanical equipment manufacturing according to claim 4, characterized in that: The pressure plate assembly also includes two driven plates, which are respectively located on the front and rear sides of the cutting assembly. The two ends of the two driven plates are respectively fixedly connected to the two sliding sleeves. The facing surfaces of the two driven plates are each provided with a driving groove, which is low at both ends and high in the middle. The front and rear sides of the cutting seat are both provided with guide wheels, and the two guide wheels are respectively embedded in the driving grooves on the front and rear sides.
6. The cutting and processing device for electromechanical equipment manufacturing according to claim 5, characterized in that: The left and right sides of the cutting table are provided with connecting columns, and the left and right side walls of the supporting platform are provided with through-holes for the connecting columns to pass through. The connecting columns pass through the through-holes and are provided with displacement blocks. The outer surface of the displacement block is provided with a first rack. The left and right side walls of the outer side of the supporting platform are also rotatably provided with driven gears. A driving rod is provided on the outside of the two sliding sleeves, and a second rack is provided on the bottom of the driving rod. The first rack and the second rack are respectively engaged with the two sides of the driven gear.
7. The cutting and processing device for electromechanical equipment manufacturing according to claim 6, characterized in that: The driving groove includes a first horizontal groove located in the middle and two second horizontal grooves located on both sides of the first horizontal groove, the first horizontal groove is higher than the second horizontal groove, the first horizontal groove and the second horizontal groove are transitionally connected by a diagonal brace, and the length of the first horizontal groove is greater than the width of the material to be cut; When the guide wheel is located inside the first horizontal groove, the top surface of the cutting table is flush with the upper surface of the conveying mechanism, and the pressing plate abuts against the upper surface of the material to be cut.
8. The cutting and processing device for electromechanical equipment manufacturing according to claim 1, characterized in that: The conveying mechanism adopts a belt conveyor, which is installed on the inner side of the top of the processing table. The top surface of the processing table is also provided with a driving roller, which is installed on the top surface of the processing table through a fixed seat, and the axial direction of the driving roller is parallel to the width direction of the conveying mechanism.
9. The cutting and processing device for electromechanical equipment manufacturing according to claim 1, characterized in that: The left and right side walls of the outside of the processing table are both provided with slide rails distributed along the conveying direction of the conveying mechanism. The two slide rails are both slidably connected with slide rods, and one end of the two slide rods is fixedly connected to the bearing platform.
10. The cutting and processing device for electromechanical equipment manufacturing according to claim 1, characterized in that: The driving assembly adopts an electric push rod, the driving assembly is fixedly installed on the outer side wall of the processing table, and the movable end of the driving assembly is fixedly connected to the sliding rod.