Worm production laser cutting equipment with intelligent deviation rectifying function
The laser cutting equipment with intelligent deviation correction function solves the problems of material transportation deviation and inaccurate cutting in worm production, and achieves efficient and accurate worm cutting and energy saving.
Patent Information
- Application Number
- CN202511129110.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-13
- Publication Date
- 2025-09-16
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing laser cutting equipment has problems with material transport deviation and inaccurate cutting in worm production, resulting in reduced production efficiency.
A laser cutting device with intelligent deviation correction function is designed, which includes a conveying component, a correction component, a limit component and a laser cutting component. The material deviation is detected by the conveying roller, the correction motor performs correction, the adjustment component adjusts the cutting angle, and the cooling component absorbs the cutting heat to achieve precise cutting.
It effectively prevents the worm from deflecting during the cutting process, ensuring uniformity and accuracy of the cutting position, while achieving efficient material transportation and energy saving and cooling.
Smart Images

Figure CN120644833A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of laser cutting, in particular to a laser cutting device for worm production with an intelligent deviation correction function. Background Art
[0002] The worm production process begins with cutting the raw bar stock to a predetermined length. The cut blanks are then fed to milling machines and other processing equipment for tooth shaping. Laser cutting technology, with its significant advantages of high precision, high efficiency, and contactless processing, is increasingly being incorporated into cutting processes at the forefront of worm production, particularly for small-diameter bar stock.
[0003] However, the existing cutting device often deviates during the material transportation process, and a subsequent device is required to limit the position of the material to prevent the cutting part from being skewed during the cutting process. In addition, when existing worm and other materials are cut, different angles need to be cut according to the different materials such as the worm and other materials. However, in order to ensure its accuracy, the existing laser cutting equipment needs to cut the worm and other materials alone, which will lead to a decrease in the productivity of the worm. Summary of the Invention
[0004] The purpose of the present invention is to provide a laser cutting device for worm production with an intelligent deviation correction function to solve the problems raised in the prior art.
[0005] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: a laser cutting device for worm production with an intelligent deviation correction function, comprising a cutting device body and a controller, the cutting device body comprising a welding table, multiple groups of conveying components, multiple groups of deviation correction components and two groups of limit components are installed on the welding table, an adjustment component is installed between the two groups of the limit components, the limit components are respectively installed on both sides of the welding table, a laser cutting component is installed on the adjustment component, the laser cutting component can perform laser cutting on the worm, and the laser cutting component cooperates with the deviation correction component.
[0006] Furthermore, the conveying assembly includes a conveying frame, multiple groups of conveying rollers are installed above the conveying frame, multiple groups of limiting grooves are provided at the bottom of the conveying frame, pressure sensing plates are provided inside the limiting grooves, multiple groups of force rollers are provided inside the limiting grooves, bearings at both ends of the force rollers are respectively connected to springs, the pressure sensing plates are connected to the controller, the conveying rollers and the force rollers form a conveying channel, and a worm is transported in the conveying channel.
[0007] Furthermore, a pulley is installed at one end of the conveying roller, and a group of conveying rollers are connected to a driving motor at the other end. Belts are arranged between multiple groups of pulleys, and the driving motor can drive the conveying roller to rotate. The conveying roller, the force roller and the contact surface of the worm are all made of rubber.
[0008] Furthermore, the correction component includes a correction platform and a correction motor. The correction motor is installed inside the welding platform, and the correction platform is installed directly above the welding platform. The output end of the correction motor is connected to the center point of the correction platform. A correction channel is provided on the correction platform, and the correction channel can limit the worm. A limiting cutting frame is provided on the rising of the correction platform, and a cooling component is provided on the inner ring of the limiting cutting frame.
[0009] Furthermore, the cooling assembly includes multiple groups of heat absorbing plates and multiple groups of cooling plates, a thermoelectric power generation plate is arranged between the heat absorbing plates and the cooling plates, the heat absorbing plates are equidistantly installed inside the limiting cutting frame, the cooling plates are equidistantly installed on the correction platform, the cooling plates are located at the output end of the correction platform, one end of the cooling plate is connected to the heat absorbing plate through a wire, the other end of the cooling plate and the heat absorbing plate are connected to the controller through a wire, and the thermoelectric power generation plate is connected to the controller.
[0010] Furthermore, the heat absorbing plate and the cooling plate are both composed of different metal plates and semiconductors, the heat absorbing plate is the hot end, and the cooling plate is the cold end.
[0011] Furthermore, the limiting assembly includes multiple groups of limiting plates, which are respectively installed at both ends of the welding table, and a limiting slider is installed between the two groups of opposite limiting plates, and the limiting slider is installed between the two groups of limiting plates through multiple groups of limiting rods; The adjusting assembly includes an adjusting motor and multiple groups of fixed plates. The fixed plates of the adjusting assembly are respectively installed on both sides of the welding table. A transmission rod is installed between the fixed plates through bearings. The adjusting motor is installed on the side of the welding table. The adjusting motor and a group of transmission rods are parallel to each other. Adjusting wheels are respectively installed on the two groups of transmission rods. Adjusting belts are sleeved on the adjusting wheels. The adjusting belts pass through a limiting slider. Limiting buckles are respectively installed on both sides of the limiting slider. The limiting buckles are fixedly connected to the adjusting belts.
[0012] Furthermore, the laser cutting assembly includes a cutting motor and two groups of L-shaped limit plates, the L-shaped limit plates are respectively installed on the limit sliders, each group of the L-shaped limit plates is respectively installed with a transmission wheel, a transmission belt is arranged between the two groups of the transmission wheels, an H-shaped mounting block is arranged between the two groups of the L-shaped limit plates, the T-shaped mounting block is installed between the L-shaped limit plates through two groups of limit rods, and the transmission belt is fixedly connected to the H-shaped mounting block.
[0013] Furthermore, an adjustment motor and a laser cutting head are respectively installed at both ends of the H-shaped mounting block, and an adjustment groove is respectively provided at one end of the laser cutting head of the H-shaped mounting block, and an airbag is provided inside the adjustment groove. The laser cutting head is installed between the airbags, and a cam and an adjustment plate are installed at the output end of the cutting motor, and the two ends of the adjustment plate are respectively connected to the cam and the laser cutting head through bearings.
[0014] Furthermore, the controller is installed on the side of the cutting device body, and the controller is electrically connected to the cutting device body. A control panel is provided on the controller, and the control panel can indirectly control the cutting device body.
[0015] Compared with the prior art, the present invention has the following beneficial effects: 1. When the device is in use, the worm is first transferred to the deviation-correcting assembly through the conveying assembly. During the process of conveying the worm, the conveying assembly can detect the worm to determine whether the worm is offset during movement, so as to cooperate with the deviation-correcting assembly to limit the position of the worm, thereby preventing the worm from offsetting when the laser cutting assembly cuts the worm, resulting in uneven cutting position. 2. When materials such as the worm pass through the conveying frame, the conveying rollers on the conveying frame can squeeze the worm and other materials. At this time, the worm and other materials are between multiple groups of force rollers. When the force rollers on both sides of the conveying frame are severely unevenly stressed, it indicates that the current worm has deviated during the conveying process. Because when the force rollers are unevenly stressed, the force rollers will press the pressure sensing plate, so that a value can be obtained through the pressure sensing plate. According to the values transmitted by the different pressure sensing plates on both sides, the deviation direction of the worm and other materials can be clearly known, so that the deviation of the transported worm can be corrected in conjunction with the correction component for subsequent cutting.
[0016] 3. When the deflection correction component is in use, it can correct the deflection of materials such as worms to prevent uneven cutting due to offset during processing. The deflection correction component of the device can effectively avoid this situation. When the deflection correction component is in use, the controller can know whether the worm and other materials are offset through the front-end conveying component, and the deflection correction motor can drive the deflection correction table to reset the worm and other materials, so that the worm and other materials can be cut accurately in the subsequent cutting. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a schematic structural diagram of the present invention as a whole; Figure 2 It is a structural schematic diagram of the welding station of the present invention; Figure 3 Schematic diagram of the internal structure of the conveying assembly of the present invention; Figure 4 Schematic diagram of the connection structure between the limiting slider and the L-shaped limiting plate of the present invention; Figure 5 For the present invention Figure 1 An enlarged schematic diagram of point "A" in the figure; Figure 6 For the present invention Figure 2 An enlarged schematic diagram of point "B" in the middle; Figure 7 For the present invention Figure 3 Enlarged diagram of point "C" in the figure.
[0018] In the figure: 1. Cutting equipment body; 11. Welding table; 2. Conveying assembly; 21. Conveying frame; 22. Conveying roller; 23. Limiting groove; 24. Pressure sensing plate; 25. Force roller; 3. Correcting assembly; 31. Correcting table; 32. Correcting motor; 33. Limit cutting frame; 4. Limiting assembly; 41. Limiting slider; 5. Adjusting assembly; 51. Fixing plate; 52. Adjusting wheel; 6. Laser cutting assembly; 61. Cutting motor; 62. L-shaped limiting plate; 63. Transmission wheel; 7. Cooling assembly; 71. Heat absorbing plate; 72. Cooling plate; 73. Temperature difference power generation plate; 8. H-shaped mounting block; 81. Adjusting motor; 82. Laser cutting head; 83. Adjusting groove; 84. Airbag; 85. Cam; 86. Adjusting plate; 9. Controller. DETAILED DESCRIPTION
[0019] 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.
[0020] Example: Figure 1-Figure 7 As shown, the present invention provides a technical solution for laser cutting equipment for worm production with an intelligent deviation correction function, including a cutting equipment body 1 and a controller 9. The cutting equipment body 1 includes a welding table 11, on which are installed multiple groups of conveying components 2, multiple groups of deviation correction components 3 and two groups of limit components 4. An adjustment component 5 is installed between the two groups of limit components 4. The limit components 4 are respectively installed on both sides of the welding table 11. A laser cutting component 6 is installed on the adjustment component 5. The laser cutting component 6 can perform laser cutting on the worm, and the laser cutting component 6 cooperates with the deviation correction component 3. Therefore, when the device is in use, the worm will first be transferred to the correction component 3 through the conveying component 2. During the process of transmitting the worm, the conveying component 2 can detect the worm to determine whether the worm has position deviation during movement, so as to cooperate with the correction component 3 to limit the position of the worm, and prevent the laser cutting component 6 from offsetting the worm when cutting the worm, thereby causing uneven cutting position. When the laser cutting component 6 of the device is in use, the position of the laser cutting component 6 can be adjusted by the adjustment component 5, thereby changing the position of the laser cutting component 6. When the laser cutting component 6 is in use, the cutting angle can be adjusted during the cutting process, thereby performing cutting of different degrees, and different styles of worms can be cut at the same time. When the laser cutting component 6 of the device is cutting the worm, the cooling component 7 on the correction component 3 can absorb the heat generated during cutting and cool the subsequent cutting area so that the cut worm can be carried out to the next process. Therefore, when the device is in use, it can accurately cut the material, and during the cutting process, the high temperature generated at the cutting area can be utilized to achieve energy saving.
[0021] like Figure 1 、 Figure 3 and Figure 7 As shown, in this embodiment, specifically, the conveying assembly 2 includes a conveying frame 21, multiple groups of conveying rollers 22 are installed above the conveying frame 21, multiple groups of limiting grooves 23 are provided at the bottom of the conveying frame 21, pressure sensing plates 24 are provided inside the limiting grooves 23, multiple groups of force rollers 25 are provided inside the limiting grooves 23, bearings at both ends of the force rollers 25 are respectively connected to springs, the pressure sensing plates 24 are connected to the controller 9, the conveying rollers 22 and the force rollers 25 form a conveying channel, and a worm is transported in the conveying channel; When in use, the conveying component 2 of the device can convey materials such as worms, thereby conveying the worms and other materials to a designated position, and during the use of the conveying component 2, it can detect whether the worms are in an offset state during movement. In specific use, when the worms and other materials pass through the conveying frame 21, the conveying rollers 22 on the conveying frame 21 can squeeze the worms and other materials. At this time, the worms and other materials are between multiple groups of force rollers 25. When the force rollers 25 on both sides of the conveying frame 21 are severely unevenly stressed, it indicates that the current worm has deviated during the conveying process. Because when the force rollers 25 are unevenly stressed, the force rollers 25 will press the pressure sensing plate 24, so that a value can be obtained through the pressure sensing plate 24, and according to the values transmitted by the different pressure sensing plates 24 on both sides, the offset direction of the worms and other materials can be clearly known, thereby cooperating with the correction component 3 to correct the transported worms for subsequent cutting.
[0022] like Figure 1 and Figure 3 As shown, in this embodiment, specifically, a pulley is installed at one end of the conveying roller 22, and a drive motor is connected to the other end of a group of conveying rollers 22. A belt is provided between the multiple groups of pulleys, and the drive motor can drive the conveying roller 22 to rotate. The conveying roller 22 and the force roller 25 are made of rubber on the contact surface with the worm. When in use, the conveying rollers 22 of the device can convey materials such as the worm in the conveying frame 21, and assist in conveying the worm and other materials to the cutting position. In specific use, the driving motor can drive a group of conveying rollers 22 to rotate. Because pulleys are respectively installed at the other ends of the conveying rollers 22, and belts are arranged between the pulleys, when a group of conveying rollers 22 rotates under the drive of the driving motor, due to the transmission of the belt, multiple groups of conveying rollers 22 can be driven together, thereby completing the transportation of the worm and materials.
[0023] like Figure 1 and Figure 5 As shown, in this embodiment, specifically, the correcting assembly 3 includes a correcting platform 31 and a correcting motor 32. The correcting motor 32 is installed inside the welding platform 11, and the correcting platform 31 is installed directly above the welding platform 11. The output end of the correcting motor 32 is connected to the center point of the correcting platform 31. The correcting platform 31 is provided with a correcting channel, which can limit the worm. The correcting platform 31 is provided with a limited cutting frame 33 when it rises, and a cooling component 7 is provided on the inner ring of the limited cutting frame 33. When the deflection correction component 3 of the device is in use, it can correct the deflection of materials such as worms, and prevent the worms and other materials from being unevenly cut due to offset during processing. The deflection correction component 3 of the device can effectively avoid this situation. When the deflection correction component 3 is in use, the controller 9 can know whether the worms and other materials are offset through the front-end conveying component 2, and the deflection correction motor 32 can drive the deflection correction platform 31 to reset the worms and other materials, so that the worms and other materials can be accurately cut when they are cut subsequently.
[0024] like Figure 5 As shown, in this embodiment, specifically, the cooling assembly 7 includes multiple groups of heat absorbing plates 71 and multiple groups of cooling plates 72, and a thermoelectric power generation plate 73 is provided between the heat absorbing plates 71 and the cooling plates 72. The heat absorbing plates 71 are equidistantly installed inside the limiting cutting frame 33, and the cooling plates 72 are equidistantly installed on the correction platform 31. The cooling plates 72 are located at the output end of the correction platform 31. One end of the cooling plate 72 is connected to the heat absorbing plate 71 through a wire, and the other ends of the cooling plate 72 and the heat absorbing plate 71 are connected to the controller 9 through a wire. The thermoelectric power generation plate 73 is connected to the controller 9. When in use, the cooling component 7 of the device can cool the cutting part of the worm after the cutting is completed. When in use, during the laser cutting process of the worm, high temperature will be generated at the cutting part, and the heat absorbing plate 71 located next to the cutting part can absorb excess heat. Because the heat absorbing plate 71 and the cooling plate 72 are connected by a wire, after the heat absorbing plate 71 absorbs heat, the electrons in the heat absorbing plate 71 will flow into the cooling plate 72 and accumulate in the cooling plate 72, and a temperature difference will be generated between the heat absorbing plate 71 and the cooling plate 72, which means that the temperature of the cooling plate 72 will always be lower than that of the heat absorbing plate 71. In the process of accelerating the temperature at the cutting part, the temperature difference between the two can be utilized by the thermoelectric power generation plate 73, thereby achieving the effect of thermoelectric power generation, thereby reducing resource consumption.
[0025] like Figure 5 As shown, in this embodiment, specifically, the heat absorbing plate 71 and the cooling plate 72 are composed of different metal plates and semiconductors, the heat absorbing plate 71 is the hot end, and the cooling plate 72 is the cold end; When the heat absorbing plate 71 absorbs heat, due to the characteristics of its hot end, the electron carriers inside gain energy and become active. Under the action of the semiconductor, these electron carriers flow in an orderly manner to the cooling plate 72 at the cold end. In this process, the flow of electron carriers not only realizes the transfer of heat, but also forms an electric current under the action of the thermoelectric power generation plate 73; the thermoelectric power generation plate 73 utilizes the Seebeck effect to convert the temperature difference between the heat absorbing plate 71 and the cooling plate 72 into electrical energy. The generated electrical energy will be transmitted to the controller 9, and the controller 9 can reasonably allocate and utilize this electrical energy according to the operating requirements of the equipment.
[0026] like Figure 1-Figure 2 As shown, in this embodiment, specifically, the limiting assembly 4 includes multiple sets of limiting plates, which are respectively installed at both ends of the welding table 11, and a limiting slider 41 is installed between the two sets of opposite limiting plates. The limiting slider 41 is installed between the two sets of limiting plates through multiple sets of limiting rods; The adjustment assembly 5 includes an adjustment motor and multiple sets of fixing plates 51. The fixing plates 51 of the adjustment assembly 5 are respectively installed on both sides of the welding table 11. A transmission rod is installed between the fixing plates 51 through a bearing. The adjustment motor is installed on the side of the welding table 11. The adjustment motor and a set of transmission rods are parallel to each other. Adjustment wheels 52 are respectively installed on the two sets of transmission rods. Adjustment belts are sleeved on the adjustment wheels 52. The adjustment belts pass through the limit slider 41. Limit buckles are respectively installed on both sides of the limit slider 41. The limit buckles are fixedly connected to the adjustment belts. During use, the limiting assembly 4 can limit the moving direction of the laser cutting device to ensure the moving direction of the laser cutting, and cooperate with the adjusting assembly 5 to drive the laser cutting assembly 6 to move horizontally between the limiting assemblies 4. During specific use, the adjusting motor can drive the transmission rod to rotate, and the adjusting wheel 52 on the transmission rod will rotate in conjunction. Because the adjusting belt passes through the limiting slider 41, and the limiting slider 41 and the adjusting belt are limited by the limiting buckles at both ends, when the transmission rod drives the adjusting belt to move, the position of the limiting slider 41 can be adjusted, thereby changing the position of the laser cutting assembly 6. In addition, the limit component 4 and the adjustment component 5 cooperate with each other to ensure the normal operation of the equipment. The limit component 4 provides a stable foundation for the adjustment component 5, so that the adjustment component 5 can be precisely adjusted in a stable environment, so that the device can complete the worm cutting task efficiently and accurately when laser cutting the worm.
[0027] like Figure 4 and Figure 6 As shown, in this embodiment, specifically, the laser cutting assembly 6 includes a cutting motor 61 and two groups of L-shaped limit plates 62, the L-shaped limit plates 62 are respectively installed on the limit slider 41, and each group of L-shaped limit plates 62 is respectively installed with a transmission wheel 63, a transmission belt is provided between the two groups of transmission wheels 63, an H-shaped mounting block 8 is provided between the two groups of L-shaped limit plates 62, and a T-shaped mounting block is installed between the L-shaped limit plates 62 through two groups of limit rods, and the transmission belt is fixedly connected to the H-shaped mounting block 8; When in use, the laser cutting component 6 of the device can move between two groups of L-shaped limit plates 62, thereby changing the cutting position of the laser cutting component 6, so that the device can synchronously cut and process multiple groups of worm gears and other logistics, and adjust the laser cutting component 6 to different degrees according to the different states of each group of worm gears. During specific use, the cutting motor 61 can drive the transmission wheel 63 to rotate, and then drive the transmission belt on the transmission wheel 63. Because the transmission belt is connected to the H-shaped mounting block 8, when the transmission belt moves, it can drive the H-shaped mounting block 8 to move together, thereby adjusting the position of the laser cutting component 6.
[0028] like Figure 6 As shown, in this embodiment, specifically, an adjustment motor 81 and a laser cutting head 82 are respectively installed at both ends of the H-shaped mounting block 8, and an adjustment groove 83 is respectively provided at one end of the H-shaped mounting block 8 where the laser cutting head 82 is provided. An air bag 84 is provided inside the adjustment groove 83, and the laser cutting head 82 is installed between the air bags 84. A cam 85 and an adjustment plate 86 are installed at the output end of the cutting motor 61, and both ends of the adjustment plate 86 are connected to the cam 85 and the laser cutting head 82 through bearings respectively. Because the device is provided with multiple groups of conveying components 2, each group of worms will have different degrees of deviation during the movement process of material transfer, and then the device can cut each group of worms in a targeted manner through the laser cutting component 6. During specific use, the adjustment motor 81 can drive the cam 85 to rotate, and because the other end of the cam 85 is installed with an adjustment plate 86 through a bearing, and the adjustment plate 86 is connected to the laser cutting head 82 through a bearing, it can drive the laser cutting head 82 to rotate, and because the laser cutting head 82 is installed between the airbags 84, the position of the laser cutting head 82 can be limited by the airbags 84, thereby forcing the angle of the laser cutting head 82 to change in order to match the worm and other materials on each group of correction components 3.
[0029] like Figure 1 As shown, in this embodiment, specifically, a controller 9 is installed on the side of the cutting device body 1, the controller 9 is electrically connected to the cutting device body 1, and a control panel is provided on the controller 9, which can indirectly control the cutting device body 1; When the device is in use, the entire cutting device body 1 can be controlled through the controller 9. Since the controller 9 is provided with a control panel, the staff can indirectly operate the entire cutting device body 1 through the control panel to better cut materials such as the worm.
[0030] Working principle: When the device is in use, the worm will first be transferred to the correcting component 3 through the conveying component 2. During the transmission of the worm, the conveying component 2 can detect the worm to determine whether the worm has position deviation during movement, so as to cooperate with the correcting component 3 to limit the position of the worm to prevent the laser cutting component 6 from offsetting the worm when cutting the worm, thereby causing uneven cutting position. When the laser cutting component 6 of the device is in use, the position of the laser cutting component 6 can be adjusted by the adjusting component 5, thereby changing the position of the laser cutting component 6. When the laser cutting component 6 is in use, the cutting angle can be adjusted during the cutting process to perform cutting of different degrees. At the same time, different styles of worms can be cut. When the laser cutting component 6 of the device is cutting the worm, the cooling component 7 on the correcting component 3 can absorb the heat generated during cutting and cool down the subsequent cutting area so that the cut worm can be carried out to the next process. Therefore, when the device is in use, it can accurately cut the material and utilize the high temperature generated at the cutting area during the cutting process to achieve energy saving.
[0031] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.
Claims
1. A laser cutting device for worm production with an intelligent deviation correction function, comprising a cutting device body (1) and a controller (9), characterized in that: The cutting equipment body (1) includes a welding table (11), on which are installed a plurality of conveying components (2), a plurality of deviation-correcting components (3) and two groups of position-limiting components (4), an adjusting component (5) is installed between the two groups of position-limiting components (4), the position-limiting components (4) are respectively installed on both sides of the welding table (11), a laser cutting component (6) is installed on the adjusting component (5), the laser cutting component (6) is capable of laser cutting a worm, and the laser cutting component (6) cooperates with the deviation-correcting component (3).
2. The laser cutting equipment for worm production with intelligent deviation correction function according to claim 1 is characterized in that: The conveying assembly (2) includes a conveying frame (21), a plurality of conveying rollers (22) are installed above the conveying frame (21), a plurality of limiting grooves (23) are provided at the bottom of the conveying frame (21), a pressure sensing plate (24) is provided inside the limiting groove (23), a plurality of force rollers (25) are provided inside the limiting groove (23), bearings at both ends of the force rollers (25) are respectively connected to springs, the pressure sensing plate (24) is connected to the controller (9), the conveying rollers (22) and the force rollers (25) form a conveying channel, and a worm is transported in the conveying channel.
3. The laser cutting device for worm production with intelligent deviation correction function according to claim 2, characterized in that: A pulley is installed at one end of the conveying roller (22), and a group of the conveying rollers (22) are connected to a driving motor at the other end. A belt is provided between the multiple groups of pulleys, and the driving motor can drive the conveying roller (22) to rotate. The contact surface of the conveying roller (22) and the force roller (25) with the worm is made of rubber.
4. The laser cutting device for worm production with intelligent deviation correction function according to claim 3 is characterized in that: The deflection correction component (3) includes a deflection correction platform (31) and a deflection correction motor (32). The deflection correction motor (32) is installed inside the welding platform (11). The deflection correction platform (31) is installed directly above the welding platform (11). The output end of the deflection correction motor (32) is connected to the center point of the deflection correction platform (31). The deflection correction platform (31) is provided with a deflection correction channel. The deflection correction channel can limit the worm. The deflection correction platform (31) is provided with a limit cutting frame (33) when it rises. The inner ring of the limit cutting frame (33) is provided with a cooling component (7).
5. The laser cutting device for worm production with intelligent deviation correction function according to claim 4 is characterized in that: The cooling assembly (7) comprises a plurality of groups of heat absorbing plates (71) and a plurality of groups of cooling plates (72), a thermoelectric generating plate (73) is provided between the heat absorbing plates (71) and the cooling plates (72), the heat absorbing plates (71) are equidistantly installed inside the limiting cutting frame (33), the cooling plates (72) are equidistantly installed on the deflection correction platform (31), the cooling plates (72) are located at the output end of the deflection correction platform (31), one end of the cooling plate (72) is connected to the heat absorbing plates (71) via a wire, the other ends of the cooling plate (72) and the heat absorbing plates (71) are connected to the controller (9) via a wire, and the thermoelectric generating plate (73) is connected to the controller (9).
6. The laser cutting device for worm production with intelligent deviation correction function according to claim 5, characterized in that: The heat absorbing plate (71) and the cooling plate (72) are both composed of different metal plates and semiconductors; the heat absorbing plate (71) is a hot end, and the cooling plate (72) is a cold end.
7. The laser cutting device for worm production with intelligent deviation correction function according to claim 6, characterized in that: The limiting assembly (4) includes a plurality of limiting plates, the limiting plates are respectively installed at both ends of the welding table (11), a limiting slider (41) is installed between two sets of opposite limiting plates, and the limiting slider (41) is installed between the two sets of limiting plates through a plurality of limiting rods; The adjustment assembly (5) comprises an adjustment motor and a plurality of fixed plates (51). The fixed plates (51) of the adjustment assembly (5) are respectively mounted on both sides of the welding table (11). A transmission rod is mounted between the fixed plates (51) via a bearing. The adjustment motor is mounted on the side of the welding table (11). The adjustment motor and a group of transmission rods are parallel to each other. Adjustment wheels (52) are respectively mounted on the two groups of transmission rods. An adjustment belt is sleeved on the adjustment wheel (52). The adjustment belt passes through a limit slider (41). Limit buckles are respectively mounted on both sides of the limit slider (41). The limit buckles are fixedly connected to the adjustment belt.
8. The laser cutting device for worm production with intelligent deviation correction function according to claim 7, characterized in that: The laser cutting assembly (6) includes a cutting motor (61) and two groups of L-shaped limit plates (62), the L-shaped limit plates (62) are respectively mounted on the limit slider (41), each group of the L-shaped limit plates (62) is respectively mounted with a transmission wheel (63), a transmission belt is arranged between the two groups of the transmission wheels (63), an H-shaped mounting block (8) is arranged between the two groups of the L-shaped limit plates (62), the T-shaped mounting block is mounted between the L-shaped limit plates (62) through two groups of limit rods, and the transmission belt is fixedly connected to the H-shaped mounting block (8).
9. The laser cutting device for worm production with intelligent deviation correction function according to claim 8, characterized in that: An adjustment motor (81) and a laser cutting head (82) are respectively installed at both ends of the H-shaped mounting block (8), and an adjustment groove (83) is respectively provided at one end of the H-shaped mounting block (8) where the laser cutting head (82) is provided. An air bag (84) is provided inside the adjustment groove (83), and the laser cutting head (82) is installed between the air bags (84). A cam (85) and an adjustment plate (86) are installed at the output end of the cutting motor (61), and both ends of the adjustment plate (86) are connected to the cam (85) and the laser cutting head (82) through bearings.
10. The laser cutting device for worm production with intelligent deviation correction function according to claim 9, characterized in that: The controller (9) is installed on the side of the cutting device body (1), and the controller (9) is electrically connected to the cutting device body (1). A control panel is provided on the controller (9), and the control panel can indirectly control the cutting device body (1).