Steel plate cutting support auxiliary device for stainless steel reactor processing
By designing steel plate cutting support auxiliary devices for stainless steel reactor processing, the distribution components, hoisting components, cleaning components and pressing components are used to solve the problem of conveyor belt damage during steel plate cutting, and a more stable and safe cutting process is achieved.
Patent Information
- Application Number
- CN202411776164.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-05
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2044-12-05
AI Technical Summary
During the cutting process of steel plates, the bottom of the steel plate contacts each other with the outer surface of the conveyor belt, resulting in excessive friction and damage to the conveyor belt.
A steel plate cutting support auxiliary device for stainless steel reactor processing is designed, including a conveyor table, tungsten steel conveyor belt, laser cutter and belt. It adopts distribution components, hoisting components, cleaning components and pressing components to convey the steel plate intermittently and lift the steel plate upward before cutting to avoid contact with the conveyor belt.
It effectively avoids friction between the steel plate and the conveyor belt during the cutting process, extends the service life of the conveyor belt, and improves the stability and safety of cutting.
Smart Images

Figure CN119237962B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of steel plate cutting, in particular to a steel plate cutting support auxiliary device for processing a stainless steel reactor. Background Art
[0002] Stainless steel reactor is a kind of reactor, which is mainly suitable for high temperature and high pressure chemical reaction experiments in petroleum, chemical industry, medicine, metallurgy, scientific research, colleges and universities and other departments. It is used to complete hydrolysis, neutralization, crystallization, distillation, evaporation, storage, hydrogenation, hydrocarbonization, polymerization, condensation, heating mixing, constant temperature reaction and other process. It can achieve high stirring effect for viscous and granular substances. Since the stainless steel reactor is made of steel plate by bending into a cylinder, it is necessary to cut the steel plate when processing and producing the stainless steel reactor.
[0003] At present, in the process of cutting steel plates for reactor production, the steel plates need to be transported to the cutting position through a conveyor belt, and the steel plates are stopped by limiting facilities during cutting and then cut. Since the outer surface of the conveyor belt contacts the bottom of the steel plate and conveys the steel plate through friction, the bottom of the steel plate is still in contact with the outer surface of the conveyor belt after the steel plate is stopped, which results in relative friction between the conveyor belt and the bottom of the steel plate when cutting the steel plate. Long-term friction can easily damage the outer surface of the conveyor belt. Summary of the invention
[0004] The purpose of the present invention is to provide a steel plate cutting support auxiliary device for stainless steel reactor processing, which solves the problem that in the process of existing cutting equipment conveying and cutting steel plates, when the steel plate is stopped for cutting, the bottom of the steel plate is still in contact with the outer surface of the conveyor belt, which leads to relative friction between the conveyor belt and the bottom of the steel plate when the steel plate is cut, and the outer surface of the conveyor belt is easily damaged by long-term friction.
[0005] To achieve the above-mentioned purpose, the present invention adopts the following technical scheme: a steel plate cutting support auxiliary device for stainless steel reactor processing, comprising a conveyor platform, two tungsten steel conveyor belts, a steel plate body, a laser cutter and a belt, a rotating shaft is rotatably connected between the inner walls on both sides of the conveyor platform near the front and rear side edges, and a conveyor roller is fixed on the outer surface of the two rotating shafts near the two end edges, and the two conveyor rollers near one side of the conveyor platform form a group, and the two tungsten steel conveyor belts are correspondingly located on the outer surface of each group of two conveyor rollers, and the steel plate body is placed between the tops of the two tungsten steel conveyor belts, and a distribution component for intermittently driving the rotating shaft to rotate is provided on one side of the conveyor platform, and the laser cutter is fixed between the inner walls on both sides of the conveyor platform near the top edge;
[0006] Two shock-absorbing pads are provided at the bottom of the conveying platform, a lifting assembly for lifting the steel plate body upward is provided inside the conveying platform, a cleaning assembly for preventing cutting debris from splashing to the front side of the conveying platform is provided on the inner wall of one side of the conveying platform, and two pressing assemblies for pressing the steel plate body are provided on the front side of the cleaning assembly, and the two pressing assemblies are respectively located at the two end edges of the front side of the cleaning assembly.
[0007] Preferably, the distribution assembly includes a dividing plate, which is rotatably connected to the outer surface of one side of the conveyor platform, and a gap is left between the dividing plate and the outer surface of one side of the dividing plate, one end of the rotating shaft close to the front side of the conveyor platform extends to the outside of the conveyor platform, and the belt drive is connected between one side of the dividing plate and the outer surface of the rotating shaft.
[0008] Preferably, a support is fixed on one side of the conveying platform, a motor is fixed on the top of the support, a semi-circular disk is fixed on the output end of the motor, a convex rod is fixed on one side of the semi-circular disk, a shift rod is fixed on the rear side of one end of the convex rod, the outer surface of the dividing plate is provided with a plurality of semi-circular grooves equidistantly along the circumferential direction, the outer surface of the dividing plate is provided with a plurality of shift openings equidistantly along the circumferential direction, the plurality of semi-circular grooves and the plurality of shift openings are alternately arranged on the outer surface of the dividing plate, the semi-circular disks and the semi-circular grooves fit each other, and the shift rod is slidably engaged inside the shift openings.
[0009] Preferably, the lifting assembly includes a lifting plate, which is located between the opposite sides of the two tungsten steel conveyor belts and close to the top edge. The bottom of the lifting plate is located at four corners and support plates are fixed thereto. Two guide grooves are provided on the inner walls on both sides of the conveyor platform, and one end of each of the support plates is correspondingly slidably connected to the inside of the guide groove.
[0010] Preferably, the bottom of the lifting plate is provided with an inclined opening extending to one side, a push plate is arranged inside the inclined opening, the top of the push plate is inclined and fits with the inner top surface of the inclined opening, two reciprocating cavities are provided on the inner wall of one side of the conveying platform, movable rods are arranged inside the two reciprocating cavities, both ends of the two movable rods slide through to the outside, one end of the two movable rods is fixed on one side of the push plate, the outer surfaces of the two movable rods are located inside the reciprocating cavity, and movable plates are fixed, one side of the two movable plates is fixed with return springs, and one end of the two return springs is fixed to the inner wall of one side of the reciprocating cavity.
[0011] Preferably, a contact rod is fixed between the other ends of the two movable rods, and an arc plate is fixed on one side of the semi-circular disk. One side of the arc plate is in an inclined arc surface, and the inclined arc surface of the arc plate fits with the outer surface of the contact rod.
[0012] Preferably, the cleaning component includes a side branch pipe, which is fixed on an inner wall of one side of the conveyor platform, and one end of the side branch pipe extends to the outside of the conveyor platform, and the other end of the side branch pipe is closed. A pull-out groove is provided on the side wall of the side branch pipe near the bottom edge, and an adjustment plate is slidably connected to the inside of the pull-out groove. One side of the adjustment plate extends from the closed end of the side branch pipe to the outside, and a connecting plate is fixed to one end of the adjusting plate, and the bottom of the connecting plate is fixed to one of the movable rods.
[0013] Preferably, a plurality of through openings penetrating into the interior of the pull-out groove are equidistantly formed on the inner bottom surface of the side branch pipe, a plurality of air outlet pipes connected to the interior of the pull-out groove are equidistantly fixed to the bottom of the side branch pipe, the plurality of through openings and the inlets of the plurality of air outlet pipes correspond to each other, a plurality of through holes penetrating to the bottom are equidistantly formed on the top of the adjustment plate, the plurality of through holes and the inlets of the plurality of air outlet pipes are staggered and alternately formed.
[0014] Preferably, the pressing assembly includes a side plate, which is fixed on the front side of the side branch pipe near one end edge, and an adjustment cavity is opened inside the side plate, and the adjustment cavity is communicated with the pull-out groove, and a support plate is slidably connected inside the adjustment cavity, one end of the support plate is fixed on one side of the adjustment plate, and a shift block is fixed on the other end of the support plate.
[0015] Preferably, a waist-shaped groove is opened on one side of the shift block inclined toward the bottom of the connecting plate, a pressure plate is arranged below the side plate, a guide rod is fixed on the top of the pressure plate, the guide rod passes through the inside of the adjusting cavity, and the top of the guide rod slides through the top of the side plate, a connecting column is fixed on the outer surface of the guide rod inside the adjusting cavity, and one end of the connecting column slides and extends to the inside of the waist-shaped groove.
[0016] Compared with the prior art, the present invention has the following beneficial effects:
[0017] 1. The present invention is provided with a distribution component, a lifting component, a cleaning component and a pressing component, which helps to lift the steel plate body upward before cutting while intermittently conveying the steel plate body, and stops the tungsten steel conveyor belt from conveying, so as to prevent friction between the bottom of the steel plate body and the outer surface of the tungsten steel conveyor belt during fixed cutting. The distribution component can be used to intermittently convey the steel plate body, and the lifting component can be used to lift the steel plate body upward after conveying it to the bottom of the laser cutter, so as to separate it from the tungsten steel conveyor belt. The cleaning component can prevent the debris generated during cutting from splashing to the front side of the conveying platform. At the same time, when the cleaning component is working, it will drive the pressing component to press the steel plate body, so as to prevent the steel plate body from shaking during cutting.
[0018] 2. The present invention is provided with a distribution assembly and a lifting assembly, which is conducive to intermittently conveying the steel plate body and lifting the steel plate body upward before cutting, thereby avoiding friction between the steel plate body and the tungsten steel conveyor belt during cutting. When the distribution assembly is working, the rotation and stop of the indexing plate are controlled by the semicircular disk and the lever, so that the conveying roller can be controlled to drive the tungsten steel conveyor belt to intermittently convey the steel plate body. When the lifting assembly is driven to work, the inclined surface on one side of the arc plate fits with the outer surface of the contact rod, so that the extension and retraction of the movable rod can be controlled, and then the push plate is driven to control the rise and fall of the lifting plate, so as to achieve the effect of lifting the steel plate body;
[0019] 3. The present invention is provided with a cleaning component, which is conducive to blowing the debris generated by cutting the steel plate body to the rear side of the conveyor table to prevent the debris from splashing to the front side. When the cleaning component is working, first connect the external high-pressure air supply pipe to one end of the side branch pipe, and then control the conduction and closing of the air outlet pipe by pulling the adjustment plate, so that the high-pressure gas will be blown to the cutting part of the steel plate body when cutting the steel plate body;
[0020] 4. The present invention is provided with a pressing assembly, which is beneficial to pressing and fixing the steel plate body in cooperation with the lifting action of the lifting assembly on the steel plate body when the steel plate body is cut. When the pressing assembly is working, the support plate drives the shift block to slide inside the adjustment cavity. Since a waist-shaped groove is inclined on the shift block, and the connecting column on the outer surface of the guide rod slides and extends to the inside of the waist-shaped groove, the constraint of the waist-shaped groove can drive the connecting column to move up and down, and then drive the guide rod to move up and down. When driving the guide rod to move downward, the pressure plate at the bottom will be pressed against the top of the steel plate body. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 A schematic diagram of the side view of the three-dimensional structure of the steel plate cutting support auxiliary device for processing a stainless steel reactor proposed by the present invention;
[0022] Figure 2 This is a rear perspective structural diagram of a steel plate cutting support auxiliary device for stainless steel reactor processing proposed by the present invention;
[0023] Figure 3 A schematic diagram of a partially cutaway three-dimensional structure of a side of a steel plate cutting support auxiliary device for processing a stainless steel reactor provided by the present invention;
[0024] Figure 4 This is a schematic diagram of the other side of the partial cross-section of the three-dimensional structure of the steel plate cutting support auxiliary device for processing a stainless steel reactor proposed by the present invention;
[0025] Figure 5 The present invention provides a schematic cross-sectional three-dimensional structure diagram of a steel plate cutting support auxiliary device for processing a stainless steel reactor;
[0026] Figure 6 The present invention provides a partial cross-sectional three-dimensional structural schematic diagram of a cleaning component in a steel plate cutting support auxiliary device for processing a stainless steel reactor;
[0027] Figure 7 The present invention provides a partial cross-sectional three-dimensional structural schematic diagram of a pressing assembly in a steel plate cutting support auxiliary device for processing a stainless steel reactor;
[0028] Figure 8 The present invention provides a schematic diagram of the main stereoscopic structure of the distribution assembly in the steel plate cutting support auxiliary device for stainless steel reactor processing;
[0029] Fig. 9 The present invention provides a rear perspective structural diagram of a distribution assembly in a steel plate cutting support auxiliary device for processing a stainless steel reactor;
[0030] Fig.10 For the present invention Figure 4 A magnified partial view of point A in the middle.
[0031] In the figure: 1. conveyor platform; 2. shock-absorbing pad; 3. rotating shaft; 4. conveyor roller; 5. tungsten steel conveyor belt; 6. support; 7. motor; 8. indexing plate; 9. steel plate body; 10. laser cutter; 11. side branch pipe; 12. contact rod; 13. belt; 14. lifting plate; 15. inclined mouth; 16. push plate; 17. movable rod; 18. reciprocating chamber; 19. outlet pipe; 20. connecting plate; 21. guide slot; 22, support plate; 23, movable plate; 24, return spring; 25, pull-out slot; 26, adjustment plate; 27, through hole; 28, through opening; 29, side plate; 30, pressure plate; 31, guide rod; 32, adjustment cavity; 33, support plate; 34, shift block; 35, connecting column; 36, waist-shaped slot; 37, semicircular disk; 38, convex rod; 39, shift rod; 40, semicircular slot; 41, shift opening; 42, arc plate. DETAILED DESCRIPTION
[0032] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the implementation regulations described 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 creative work are within the scope of protection of the present invention.
[0033] See also Figure 1-10The present invention provides a technical solution: a steel plate cutting support auxiliary device for stainless steel reactor processing, comprising a conveyor platform 1, two tungsten steel conveyor belts 5, a steel plate body 9, a laser cutter 10 and a belt 13, a rotating shaft 3 is rotatably connected between the inner walls on both sides of the conveyor platform 1 near the front and rear side edges, and a conveyor roller 4 is fixed on the outer surfaces of the two rotating shafts 3 near the two end edges, and the two conveyor rollers 4 near one side of the conveyor platform 1 are a group, and the two tungsten steel conveyor belts 5 are correspondingly located on the outer surface of each group of two conveyor rollers 4, and the steel plate body 9 is placed between the tops of the two tungsten steel conveyor belts 5, and a distribution component for intermittently driving the rotating shaft 3 to rotate is provided on one side of the conveyor platform 1, and the laser cutter 10 is fixed between the inner walls on both sides of the conveyor platform 1 near the top edge;
[0034] Two shock-absorbing pads 2 are provided at the bottom of the conveying platform 1, and a lifting assembly for lifting the steel plate body 9 upward is provided inside the conveying platform 1. A cleaning assembly is provided on the inner wall of one side of the conveying platform 1 to prevent cutting debris from splashing to the front side of the conveying platform 1, and two pressing assemblies for pressing the steel plate body 9 are provided on the front side of the cleaning assembly, and the two pressing assemblies are respectively located at the two end edges of the front side of the cleaning assembly.
[0035] The effect achieved is that, by providing a distribution component, a lifting component, a cleaning component and a pressing component, it is helpful to lift the steel plate body 9 upward before cutting while intermittently conveying the steel plate body 9, so as to prevent friction between the bottom of the steel plate body 9 and the outer surface of the tungsten steel conveyor belt 5 during fixed cutting, the distribution component can be used to intermittently convey the steel plate body 9, and the lifting component can be used to lift the steel plate body 9 upward after conveying it to the bottom of the laser cutter 10, so that it is separated from the tungsten steel conveyor belt 5, wherein the distribution component and the lifting component work to cooperate with each other and move alternately, and in actual operation, it is necessary to manually collect the cut steel plate body 9 on the front side of the conveying platform 1, so the lifting component will lift the steel plate body 9 upward while also driving the cleaning component to prevent the debris generated during cutting from splashing to the front side of the conveying platform 1, so as to prevent the debris from accidentally injuring the staff in front of the conveying platform 1, and at the same time, when the cleaning component is working, it will drive the pressing component to press the steel plate body 9 to prevent the steel plate body 9 from shaking during cutting.
[0036] like Figure 1 , Figure 3 , Figure 8 and Fig. 9As shown, the dialing assembly includes a dividing plate 8, which is rotatably connected to the outer surface of one side of the conveying platform 1, and a gap is left between the dividing plate 8 and the outer surface of one side of the dividing plate 8, one end of the rotating shaft 3 close to the front side of the conveying platform 1 extends to the outside of the conveying platform 1, and the belt 13 is transmission-connected between one side of the dividing plate 8 and the outer surface of the rotating shaft 3, a support 6 is fixed to one side of the conveying platform 1, a motor 7 is fixed to the top of the support 6, a semi-circular disk 37 is fixed to the output end of the motor 7, a convex rod 38 is fixed to one side of the semi-circular disk 37, and a shifting rod 39 is fixed to the rear side of one end of the convex rod 38, a plurality of semi-circular grooves 40 are equidistantly provided on the outer surface of the dividing plate 8 along the circumferential direction, a plurality of shifting openings 41 are equidistantly provided on the outer surface of the dividing plate 8 along the circumferential direction, a plurality of semi-circular grooves 40 and a plurality of shifting openings 41 are alternately arranged on the outer surface of the dividing plate 8, the semi-circular disk 37 and the semi-circular grooves 40 are fitted together, and the shifting rod 39 is slidably engaged in the inside of the shifting opening 41.
[0037] The effect achieved is that when the dividing assembly is working, the semi-circular disc 37 and the convex rod 38 are driven to rotate by the motor 7. When the convex rod 38 drives the lever 39 to rotate to the inside of the dialing port 41, the dividing plate 8 can be dialed to a certain angle. When the dividing plate 8 rotates, the belt 13 can drive the rotating shaft 3 to rotate, thereby driving the conveying roller 4 to drive the tungsten steel conveyor belt 5 to convey the steel plate body 9. When the semi-circular disc 37 rotates to the inside of the semicircular groove 40 on the dividing plate 8, the dividing plate 8 can be fixed to stop the rotating shaft 3 from rotating. At this time, the convex rod 38 drives the lever 39 to slide out of the dialing port 41, and the arc plate 42 on one side of the semi-circular disc 37 drives the lifting assembly to work through the action of the inclined surface.
[0038] like Figure 4 , Figure 5 , Fig. 9 and Fig.10As shown, the lifting assembly includes a lifting plate 14, which is located between the two opposite sides of the two tungsten steel conveyor belts 5 and close to the top edge. The bottom of the lifting plate 14 is located at four corners and support plates 22 are fixed thereto. Two guide grooves 21 are provided on the inner walls of both sides of the conveyor platform 1. One end of each of the support plates 22 is correspondingly slidably connected to the inside of the guide groove 21. An inclined opening 15 penetrating to one side is provided at the bottom of the lifting plate 14. A push plate 16 is provided inside the inclined opening 15. The top of the push plate 16 is inclined and fits with the inner top surface of the inclined opening 15. Two reciprocating cavities 18 are provided on the inner wall of one side of the conveyor platform 1. The two reciprocating cavities 18 A movable rod 17 is provided inside, and both ends of the two movable rods 17 slide through the outside, one end of the two movable rods 17 is fixed to one side of the push plate 16, and the outer surface of the two movable rods 17 is located inside the reciprocating cavity 18, and a movable plate 23 is fixed thereto, and one side of the two movable plates 23 is fixed with a return spring 24, and one end of the two return springs 24 is fixed to an inner wall of one side of the reciprocating cavity 18, and a contact rod 12 is fixed between the other ends of the two movable rods 17, and an arc plate 42 is fixed on one side of the semi-circular disk 37, and one side of the arc plate 42 is in an inclined arc shape, and the inclined arc surface of the arc plate 42 fits with the outer surface of the contact rod 12.
[0039] The effect achieved is that when the lifting assembly is working, the inclined surface on one side of the arc plate 42 fits with the outer surface of the contact rod 12, and the contact rod 12 is pushed to the middle of the conveying platform 1 by the push of the inclined surface during rotation. During the pushing process, the two movable rods 17 are driven to slide toward the inner side of the conveying platform 1, and then the push plate 16 is driven to slide toward the side of the lifting plate 14. During the sliding process, the top inclined surface of the push plate 16 fits with the inner inclined surface of the bottom inclined opening 15 of the lifting plate 14, and the lifting plate 14 is lifted upward under the action of the inclined surface, so that The steel plate body 9 is lifted upward, and the reset spring 24 is compressed during the process. When the inclined surface on one side of the arc plate 42 is separated from the outer surface of the contact rod 12, the pushing force on the contact rod 12 can be contacted. At this time, the movable rod 17 and the push plate 16 can be driven to reset under the elastic force of the reset spring 24. When the push plate 16 is reset, the lifting plate 14 is reset due to the self-weight of the lifting plate 14. When the lifting plate 14 is active, the guide groove 21 and the support plate 22 are engaged with each other, so that the sliding of the lifting plate 14 is smoother.
[0040] like Figure 1 , Figure 3 and Figure 6As shown, the cleaning assembly includes a side branch pipe 11, which is fixed on an inner wall of one side of the conveying platform 1, and one end of the side branch pipe 11 extends to the outside of the conveying platform 1, and the other end of the side branch pipe 11 is closed, and a drawing groove 25 is provided near the bottom edge of the side wall of the side branch pipe 11, and an adjustment plate 26 is slidably connected inside the drawing groove 25, and one side of the adjustment plate 26 extends from the closed end of the side branch pipe 11 to the outside, and a connecting plate 20 is fixed to one end of the adjusting plate 26, and the connecting plate 20 The bottom is fixed on one of the movable rods 17, and a plurality of through-holes 28 penetrating into the interior of the pull-out groove 25 are equidistantly provided on the inner bottom surface of the side branch pipe 11. A plurality of air outlet pipes 19 connected to the interior of the pull-out groove 25 are equidistantly fixed on the bottom of the side branch pipe 11, and the plurality of through-holes 28 and the entrances of the plurality of air outlet pipes 19 correspond to each other. A plurality of through-holes 27 penetrating to the bottom are equidistantly provided on the top of the adjustment plate 26, and the plurality of through-holes 27 and the entrances of the plurality of air outlet pipes 19 are staggered and alternated with each other.
[0041] The effect achieved is that, when the cleaning component is working, the external high-pressure air supply pipe is first connected to one end of the side branch pipe 11. As the movable rod 17 in the lifting component slides toward the inside of the conveyor platform 1, the adjusting plate 26 will be driven to slide toward the inside of the side branch pipe 11 through the connecting plate 20 during the sliding process. When the through hole 27 on the adjusting plate 26 slides to a position relatively flush with the inlet of the air outlet pipe 19 and the through hole 28, the high-pressure air inside the side branch pipe 11 can be discharged through the air outlet pipe 19 and blown toward the cutting part of the steel plate body 9.
[0042] like Figure 1 , Figure 3 , Figure 6 and Figure 7 As shown, the pressing assembly includes a side plate 29, which is fixed on the front side of the side branch pipe 11 near one end edge, and an adjusting cavity 32 is opened inside the side plate 29, and the adjusting cavity 32 is communicated with the pull-out groove 25, and a support plate 33 is slidably connected inside the adjusting cavity 32, and one end of the support plate 33 is fixed to one side of the adjusting plate 26, and a shift block 34 is fixed to the other end of the support plate 33, and one side of the shift block 34 is inclined toward the bottom of the connecting plate 20 and has a waist-shaped groove 36, and a pressure plate 30 is arranged below the side plate 29, and a guide rod 31 is fixed on the top of the pressure plate 30, and the guide rod 31 passes through the inside of the adjusting cavity 32, and the top of the guide rod 31 slides through the top of the side plate 29, and the outer surface of the guide rod 31 is located inside the adjusting cavity 32 and a connecting column 35 is fixed, and one end of the connecting column 35 slides and extends to the inside of the waist-shaped groove 36.
[0043] The effect achieved is that when the pressing assembly is working, during the sliding process of the adjustment plate 26, the support plate 33 will drive the shift block 34 to slide inside the adjustment chamber 32. Since a waist-shaped groove 36 is inclined on the shift block 34, and the connecting column 35 on the outer surface of the guide rod 31 slides and extends to the inside of the waist-shaped groove 36, the connecting column 35 can be driven to move up and down through the constraint of the waist-shaped groove 36, and then the guide rod 31 can be driven to move up and down. When driving the guide rod 31 to move downward, the bottom pressure plate 30 will be pressed against the top of the steel plate body 9.
[0044] Working principle: First, connect the external high-pressure air supply pipe to one end of the side branch pipe 11, and then drive the semi-circular disc 37 and the convex rod 38 to rotate through the motor 7. When the convex rod 38 drives the lever 39 to rotate to the inside of the dialing port 41, the indexing disc 8 can be moved to a certain angle. When the indexing disc 8 rotates, the belt 13 can drive the shaft 3 to rotate, thereby driving the conveying roller 4 to drive the tungsten steel conveyor belt 5 to convey the steel plate body 9. When the semi-circular disc 37 rotates to the inside of the semicircular groove 40 on the indexing disc 8, the indexing disc 8 can be fixed to stop the shaft 3. The semicircular disc 37 stops rotating, and at this time, the protruding rod 38 drives the lever 39 to slide out from the inside of the lever opening 41, and the arc-shaped plate 42 on one side of the semicircular disc 37 fits with the outer surface of the contact rod 12 through the inclined surface. When rotating, the contact rod 12 is pushed to the middle of the conveying platform 1 by the push of the inclined surface. During the pushing process, the two movable rods 17 are driven to slide to the inside of the conveying platform 1, and then the push plate 16 is driven to slide to the side of the lifting plate 14. During the sliding process, the top inclined surface of the push plate 16 fits with the inner inclined surface of the bottom inclined opening 15 of the lifting plate 14. The lifting plate 14 is lifted upward, so that the steel plate body 9 can be lifted upward to a state where the bottom and the top of the tungsten steel conveyor belt 5 are separated from each other. At the same time, the tungsten steel conveyor belt 5 will stop conveying to avoid friction between the tungsten steel conveyor belt 5 and the tungsten steel conveyor belt 5 during cutting. When the movable rod 17 slides toward the inside of the conveying platform 1, it will drive the adjustment plate 26 to slide toward the inside of the side branch pipe 11 through the connecting plate 20. When the through hole 27 on the adjustment plate 26 slides to a position relatively flush with the entrance of the air outlet pipe 19 and the through hole 28, the high-pressure air inside the side branch pipe 11 can be passed through. The air is discharged through the air outlet pipe 19 and blown toward the cutting part of the steel plate body 9. During the sliding process of the adjustment plate 26, the support plate 33 will drive the shift block 34 to slide inside the adjustment chamber 32. Since a waist-shaped groove 36 is inclined on the shift block 34, and the connecting column 35 on the outer surface of the guide rod 31 slides and extends to the inside of the waist-shaped groove 36, the connecting column 35 can be driven to move up and down through the constraint of the waist-shaped groove 36, and then the guide rod 31 can be driven to move up and down. When driving the guide rod 31 to move downward, the bottom pressure plate 30 will be pressed against the top of the steel plate body 9.
[0045] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.
Claims
1. A steel plate cutting support auxiliary device for stainless steel reactor processing, characterized in that: It comprises a conveyor platform (1), two tungsten steel conveyor belts (5), a steel plate body (9), a laser cutter (10) and a belt (13), wherein a rotating shaft (3) is rotatably connected between the inner walls on both sides of the conveyor platform (1) near the front and rear side edges, and a conveyor roller (4) is fixed to the outer surfaces of the two rotating shafts (3) near the two end edges, and the two conveyor rollers (4) near one side of the conveyor platform (1) form a group, and the two tungsten steel conveyor belts (5) are correspondingly located on the outer surface of each group of two conveyor rollers (4), and the steel plate body (9) is placed between the tops of the two tungsten steel conveyor belts (5). A distribution component for intermittently driving the rotating shaft (3) to rotate is provided on one side of the conveyor platform (1), and the laser cutter (10) is fixed between the inner walls on both sides of the conveyor platform (1) near the top edge; Two shock-absorbing pads (2) are arranged at the bottom of the conveying platform (1), a lifting assembly for lifting the steel plate body (9) upward is arranged inside the conveying platform (1), a cleaning assembly for preventing cutting debris from splashing toward the front side of the conveying platform (1) is arranged on the inner wall of one side of the conveying platform (1), two pressing assemblies for pressing the steel plate body (9) are arranged on the front side of the cleaning assembly, and the two pressing assemblies are respectively located at the two end edges of the front side of the cleaning assembly, and the lifting assembly includes a lifting plate (14), and the lifting plate (14) is located between the opposite sides of the two tungsten steel conveyor belts (5) and close to the top edge, and the bottom of the lifting plate (14) is fixed at the four corners. A support plate (22) is provided, and two guide grooves (21) are provided on the inner walls of both sides of the conveying platform (1), and one end of each of the support plates (22) is slidably connected to the inside of the guide grooves (21). The bottom of the lifting plate (14) is provided with an inclined opening (15) extending to one side, and a push plate (16) is provided inside the inclined opening (15). The top of the push plate (16) is inclined and fits with the inner top surface of the inclined opening (15). Two reciprocating cavities (18) are provided on the inner wall of one side of the conveying platform (1), and movable rods (17) are provided inside the two reciprocating cavities (18), and both ends of the two movable rods (17) are slidably penetrated. The movable rods (17) are inserted to the outside, one end of each of the two movable rods (17) is fixed to one side of the push plate (16), the outer surfaces of the two movable rods (17) are located inside the reciprocating cavity (18), and movable plates (23) are fixed thereto, one side of each of the two movable plates (23) is fixed with a return spring (24), one end of each of the two return springs (24) is fixed to the inner wall of one side of the reciprocating cavity (18), a contact rod (12) is fixed between the other ends of the two movable rods (17), and an arc plate (42) is fixed to one side of the semicircular disk (37), one side of the arc plate (42) is in the shape of an inclined arc surface, and the inclined arc surface of the arc plate (42) is aligned with the outer surface of the contact rod (12). The surfaces of the side branch pipe (11) are in contact with each other, the cleaning component comprises a side branch pipe (11), the side branch pipe (11) is fixed on an inner wall of one side of the conveying platform (1), one end of the side branch pipe (11) extends to the outside of the conveying platform (1), the other end of the side branch pipe (11) is in a closed state, a draw-out groove (25) is provided on the side wall of the side branch pipe (11) near the bottom edge, an adjustment plate (26) is slidably connected inside the draw-out groove (25), one side of the adjustment plate (26) extends from the closed end of the side branch pipe (11) to the outside, a connecting plate (20) is fixed to one end of the adjustment plate (26), and the bottom of the connecting plate (20) is fixed to one of the movable rods (17).
2. The steel plate cutting support auxiliary device for stainless steel reactor processing according to claim 1 is characterized in that: The distribution assembly comprises a dividing plate (8), the dividing plate (8) being rotatably connected to an outer surface of one side of the conveying platform (1), and a gap being left between the dividing plate (8) and the outer surface of one side of the dividing plate (8), one end of the rotating shaft (3) close to the front side of the conveying platform (1) extending to the outside of the conveying platform (1), and the belt (13) being transmission-connected between one side of the dividing plate (8) and the outer surface of the rotating shaft (3).
3. The steel plate cutting support auxiliary device for stainless steel reactor processing according to claim 2 is characterized in that: A support (6) is fixed on one side of the conveying platform (1), a motor (7) is fixed on the top of the support (6), a semi-circular disc (37) is fixed on the output end of the motor (7), a convex rod (38) is fixed on one side of the semi-circular disc (37), a lever (39) is fixed on the rear side of one end of the convex rod (38), a plurality of semi-circular grooves (40) are equidistantly provided on the outer surface of the indexing disc (8) along the circumferential direction, a plurality of lever openings (41) are equidistantly provided on the outer surface of the indexing disc (8), the plurality of semi-circular grooves (40) and the plurality of lever openings (41) are alternately arranged on the outer surface of the indexing disc (8), the semi-circular disc (37) and the semi-circular grooves (40) are fitted together, and the lever (39) is slidably engaged inside the lever openings (41).
4. The steel plate cutting support auxiliary device for stainless steel reactor processing according to claim 3 is characterized in that: The inner bottom surface of the side branch pipe (11) is provided with a plurality of through openings (28) extending into the interior of the draw-out groove (25) at equal intervals, and a plurality of air outlet pipes (19) connected to the interior of the draw-out groove (25) are fixed at equal intervals on the bottom of the side branch pipe (11), and the plurality of through openings (28) and the entrances of the plurality of air outlet pipes (19) correspond to each other, and the top of the adjustment plate (26) is provided with a plurality of through holes (27) extending into the bottom at equal intervals, and the plurality of through holes (27) and the entrances of the plurality of air outlet pipes (19) are alternately staggered with each other.
5. The steel plate cutting support auxiliary device for stainless steel reactor processing according to claim 4 is characterized in that: The pressing assembly comprises a side plate (29), wherein the side plate (29) is fixed on the front side of the side branch pipe (11) near one end edge, an adjusting cavity (32) is provided inside the side plate (29), the adjusting cavity (32) is communicated with the draw-out groove (25), a support plate (33) is slidably connected inside the adjusting cavity (32), one end of the support plate (33) is fixed to one side of the adjusting plate (26), and a shifting block (34) is fixed to the other end of the support plate (33).
6. The steel plate cutting support auxiliary device for stainless steel reactor processing according to claim 5, characterized in that: A waist-shaped groove (36) is provided on one side of the shift block (34) in an inclined manner toward the bottom of the connecting plate (20); a pressure plate (30) is provided below the side plate (29); a guide rod (31) is fixed to the top of the pressure plate (30); the guide rod (31) passes through the inside of the adjusting cavity (32); and the top of the guide rod (31) slides through the top of the side plate (29); a connecting column (35) is fixed to the outer surface of the guide rod (31) located inside the adjusting cavity (32); one end of the connecting column (35) slides and extends to the inside of the waist-shaped groove (36).
Citation Information
Patent Citations
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