CN219408518U - Corrosion-resistant stainless steel carbon steel composite plate hot rolling cooling automatic winding device - Google Patents
Corrosion-resistant stainless steel carbon steel composite plate hot rolling cooling automatic winding device Download PDFInfo
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- CN219408518U CN219408518U CN202320248367.XU CN202320248367U CN219408518U CN 219408518 U CN219408518 U CN 219408518U CN 202320248367 U CN202320248367 U CN 202320248367U CN 219408518 U CN219408518 U CN 219408518U
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- 238000004804 winding Methods 0.000 title claims abstract description 105
- 239000002131 composite material Substances 0.000 title claims abstract description 52
- 229910000975 Carbon steel Inorganic materials 0.000 title claims abstract description 51
- 239000010962 carbon steel Substances 0.000 title claims abstract description 51
- 239000010935 stainless steel Substances 0.000 title claims abstract description 51
- 229910001220 stainless steel Inorganic materials 0.000 title claims abstract description 51
- 230000007797 corrosion Effects 0.000 title claims abstract description 21
- 238000005260 corrosion Methods 0.000 title claims abstract description 21
- 238000005098 hot rolling Methods 0.000 title claims abstract description 21
- 238000001816 cooling Methods 0.000 title claims abstract description 19
- 230000007246 mechanism Effects 0.000 claims abstract description 34
- 238000001125 extrusion Methods 0.000 claims abstract description 13
- 230000001105 regulatory effect Effects 0.000 claims abstract description 8
- 230000005540 biological transmission Effects 0.000 claims description 3
- 239000000463 material Substances 0.000 abstract description 9
- 230000007723 transport mechanism Effects 0.000 abstract 1
- 238000000034 method Methods 0.000 description 7
- 230000008569 process Effects 0.000 description 7
- 238000010586 diagram Methods 0.000 description 5
- 230000009471 action Effects 0.000 description 3
- 238000005253 cladding Methods 0.000 description 3
- 239000000758 substrate Substances 0.000 description 3
- 238000013016 damping Methods 0.000 description 2
- 239000010963 304 stainless steel Substances 0.000 description 1
- 229910000589 SAE 304 stainless steel Inorganic materials 0.000 description 1
- 229910000746 Structural steel Inorganic materials 0.000 description 1
- 238000007792 addition Methods 0.000 description 1
- 229910045601 alloy Inorganic materials 0.000 description 1
- 239000000956 alloy Substances 0.000 description 1
- 230000009286 beneficial effect Effects 0.000 description 1
- 230000003139 buffering effect Effects 0.000 description 1
- 239000003638 chemical reducing agent Substances 0.000 description 1
- 230000007547 defect Effects 0.000 description 1
- 230000000694 effects Effects 0.000 description 1
- 238000004519 manufacturing process Methods 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
- 230000004048 modification Effects 0.000 description 1
- 230000002265 prevention Effects 0.000 description 1
- 230000035939 shock Effects 0.000 description 1
- 238000006467 substitution reaction Methods 0.000 description 1
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02P—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
- Y02P70/00—Climate change mitigation technologies in the production process for final industrial or consumer products
- Y02P70/10—Greenhouse gas [GHG] capture, material saving, heat recovery or other energy efficient measures, e.g. motor control, characterised by manufacturing processes, e.g. for rolling metal or metal working
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Abstract
The utility model discloses an automatic winding device for a corrosion-resistant stainless steel carbon steel composite plate after hot rolling and cooling, which comprises a machine base, a machine frame, a winding drum, an extrusion roller, a transfer mechanism, a movable bearing seat, an adjusting mechanism, a fixed bearing seat and a bottom plate; the frame is arranged on one side of the machine base, and the fixed bearing seat is fixed on the machine base; the regulating mechanism is arranged on the frame, the movable bearing seat is movably connected to the regulating mechanism, two ends of the winding drum are respectively connected to the fixed bearing seat and the movable bearing seat, a motor I is arranged at the end of the winding drum, which is positioned on the fixed bearing seat, and the motor I is fixed at the top end of the frame; the extrusion roller is positioned obliquely above the winding drum, two ends of the extrusion roller are connected with arc-shaped connecting frames through bearings, and the arc-shaped connecting frames are connected to the mounting plates at the top ends of the frame and the base through rotating shafts; the bottom plate is located between frame and the frame, and transport mechanism is located the bottom plate top. The utility model can support the winding drum and is convenient for disassembling and transferring coiled materials after winding.
Description
Technical Field
The utility model belongs to the technical field of hot rolling of corrosion-resistant stainless steel carbon steel composite plates, and particularly relates to an automatic winding device for a corrosion-resistant stainless steel carbon steel composite plate after hot rolling and cooling.
Background
Cladding plates are arranged on the upper part and the lower part of a substrate in the corrosion-resistant stainless steel carbon steel composite plate, the thickness ratio of the cladding plates to the substrate is 20% and 35%, the substrate is Q355 low-alloy high-strength structural steel, and the cladding plates are 304 stainless steel; after the corrosion-resistant stainless steel carbon steel composite plate is subjected to hot rolling and cooling, the processed product is stored and transferred through an automatic winding device; however, because the thickness of the hot rolled strip of the composite plate is relatively thicker than that of a hot rolled single plate with the same width specification, both sides of a winding drum in the winding process need to be supported, so that the coiled material is inconvenient to transport after the winding is completed.
Through retrieval, chinese patent CN217102285U discloses a coiled material coiling device for a hot rolling production line, which comprises a bottom plate, a portal frame, a safety frame and a control box, wherein the top of the bottom plate is fixedly connected with the portal frame through bolts, the side wall of the portal frame is fixedly connected with the safety frame through screws, the top of the bottom plate is fixedly connected with a connecting table through screws, the front side wall of the connecting table is fixedly connected with the control box through screws, the top of the bottom plate is fixedly connected with a driving motor and a speed reducer through screws, the side surface of the portal frame is provided with the safety frame connected with the control box, and a rotary switch and a rotary plate are arranged in the safety frame; the winding device can achieve the purpose of quantitative winding, and ensures the safety of the winding process; but the treatment process has the following disadvantages: 1) When the winding of the winding drum reaches a certain requirement, the coiled material which is wound is required to be detached from the winding drum after the winding is stopped, and the coiled material is transported; however, as the portal frame of the winding device is fixed on the bottom plate through bolts, the inner side wall of the portal frame is sleeved with the winding drum through a bearing; so the portal frame on one side needs to be disassembled for transferring the coiled material; 2) In the winding process, as the diameter of the coiled material increases, the stress in the middle of the winding drum increases, so that the winding drum is unevenly stressed to damage equipment; when the winding drum rotates, vibration can be generated, so that the equipment is unstable.
Therefore, the automatic winding device for the corrosion-resistant stainless steel carbon steel composite plate after hot rolling and cooling can support the winding drum and is convenient for the coiled material after winding to be disassembled and transported.
Disclosure of Invention
The utility model aims to overcome the defects in the prior art and provides an automatic winding device for a corrosion-resistant stainless steel carbon steel composite plate after hot rolling and cooling, which can support a winding drum and absorb shock and is convenient for disassembling and transferring coiled materials after winding.
In order to achieve the above purpose, the technical scheme adopted by the utility model is as follows:
an automatic winding device for a corrosion-resistant stainless steel carbon steel composite plate after hot rolling and cooling comprises a machine base, a machine frame, a winding drum, an extrusion roller, a transfer mechanism, a movable bearing seat, an adjusting mechanism, a fixed bearing seat and a bottom plate; the machine frame is arranged on one side of the machine base, a moving groove and a movable groove are arranged on the machine frame, and the fixed bearing seat is fixed on the machine base; the regulating mechanism is arranged on the frame, the movable bearing seat is movably connected to the regulating mechanism, two ends of the winding drum are respectively connected to the fixed bearing seat and the movable bearing seat, a motor I is arranged at the end of the winding drum, which is positioned on the fixed bearing seat, and the motor I is fixed at the top end of the frame; the extrusion roller is positioned obliquely above the winding drum, two ends of the extrusion roller are connected with arc-shaped connecting frames through bearings, and the arc-shaped connecting frames are connected to the mounting plates at the top ends of the frame and the base through rotating shafts; the bottom plate is positioned between the machine base and the machine frame, and the transfer mechanism is positioned at the top end of the bottom plate; firstly, a motor I drives a winding drum to rotate, the stainless steel carbon steel composite board is wound under the action of the winding drum and a squeeze roller, and meanwhile, the wound stainless steel carbon steel composite board is kept compact and stable and is not easy to loosen; and the regulating mechanism drives the movable bearing seat to move so as to be separated from the winding drum after winding, and then the stainless steel carbon steel composite board is wound out through the transferring mechanism.
The adjusting mechanism comprises a movable plate, a telescopic cylinder I, a telescopic cylinder II, a motor II, a moving block, a rotating shaft, a supporting plate, a telescopic cylinder III and a clamping block; the two ends of the moving block are T-shaped, and the moving block is provided with a pair of symmetrical moving grooves which are arranged in the frame; two ends of the movable plate are provided with rotating shafts, and the movable plate is connected to the movable block through the rotating shafts; the top end and the bottom end of the movable plate are respectively provided with a limit rail and a rail; the telescopic oil cylinder II is fixed at the top end of the movable plate, and the output shaft is connected with the movable bearing seat; a motor II is arranged on one side of the moving block and is connected in a movable groove at one end of the frame, and an output shaft of the motor II is connected with the rotating shaft; the telescopic oil cylinder I is positioned in a moving groove of the frame, one end of the telescopic oil cylinder I is fixed on the frame, and the other end of the telescopic oil cylinder I is connected with the moving block; the supporting plate is positioned at the bottom end of the movable groove of the frame; the telescopic oil cylinder III is provided with two pairs of side plates symmetrically arranged at one end of the frame, the output end of the telescopic oil cylinder III is connected with a clamping block, and the clamping block is connected with the movable plate in a clamping way; when the winding drum is wound, the telescopic oil cylinder II drives the movable bearing seat to move, so that the movable bearing seat is far away from the winding drum, and meanwhile, the telescopic oil cylinder III drives the clamping block to be far away from the movable plate; then the telescopic oil cylinder I drives the movable plate to move downwards to be flush with the bottom plate through the moving block, and the bottom end of the motor II is supported on the supporting plate; then the motor II provides power to drive the movable plate to rotate through the rotating shaft, the movable plate is overturned, the bottom rail of the movable plate is communicated with the main rail, and finally the telescopic oil cylinder III drives the clamping block to be clamped on the movable plate, so that the movable plate is supported; and the stainless steel carbon steel composite board is convenient to transport by the transport trolley.
The transfer mechanism comprises a transfer trolley, a motor I, a main rail, an arc-shaped supporting plate, a spring guide shaft, a spring and a fixing plate; two groups of rollers are arranged below the transfer trolley, the two groups of rollers are connected with a transmission shaft through a gear box, and a motor I is fixedly arranged below the transfer trolley and connected with the gear box; the main rail is paved at the top end of the bottom plate, and the rollers are connected to the corresponding main rail; the fixed plate is fixed inside the transfer trolley, the arc-shaped supporting plates are positioned above the transfer trolley, and guide rollers are arranged above the two ends of the arc-shaped supporting plates; one end of the spring is connected to the bottom end of the arc-shaped supporting plate, and the other end of the spring is connected to the fixed plate; one end of the spring guide shaft is fixed at the bottom end of the arc-shaped supporting plate, and the other end of the spring guide shaft penetrates through the spring to be movably connected to the fixed plate; firstly, the stainless steel carbon steel composite board enters a winding drum and an extrusion roller to be wound through a guide roller at the top end of an arc-shaped supporting plate; the guide roller guides the stainless steel carbon steel composite board entering the winding device, and meanwhile, the stainless steel carbon steel composite board can be prevented from being scratched; the arc-shaped supporting plate is tightly attached to the bottom end of the stainless steel carbon steel composite plate roll, and the arc-shaped supporting plate drives the spring guide shaft to move downwards along with the increase of the stainless steel carbon steel composite plate roll, so that the spring is compressed, and the functions of supporting and damping are achieved; after the winding is completed, the motor I drives the transfer trolley to move along the main track through the idler wheels, and the transfer is completed.
The winding drum comprises an outer winding drum, a guide plate and a main shaft; two ends of the main shaft are respectively connected with the fixed bearing seat and the movable bearing seat, and the main shaft is provided with a connecting block; the outer winding drum is internally provided with a connecting groove, the outer winding drum is connected to the outer side of the main shaft through the connecting groove and the connecting block, and the connecting groove and the connecting block are hexagonal, so that sliding between the outer winding drum and the main shaft in the rotation process can be prevented, and winding is affected; the guide plates are provided with a pair, are connected with the transfer trolley through bolts, and the outer winding drum is rotationally connected with the guide plates; the stainless steel carbon steel composite plate can be prevented from being deviated.
The movable bearing seat comprises a lower fixed seat, an upper fixed seat and an electric push rod; the lower fixing seat is movably connected to the limit rail of the movable plate, the upper fixing seat is arranged at the top end of the lower fixing seat, and the upper fixing seat is connected with the lower fixing seat through an electric push rod; the movable bearing seat is convenient to move.
Compared with the prior art, the utility model has the beneficial effects that:
1) When the winding drum is wound, the telescopic oil cylinder II drives the movable bearing seat to move, so that the movable bearing seat is far away from the winding drum, and meanwhile, the telescopic oil cylinder III drives the clamping block to be far away from the movable plate; then the telescopic oil cylinder I drives the movable plate to move downwards to be flush with the bottom plate through the moving block, and the bottom end of the motor II is supported on the supporting plate; then the motor II provides power to drive the movable plate to rotate through the rotating shaft, the movable plate is overturned, the bottom rail of the movable plate is communicated with the main rail, and finally the telescopic oil cylinder III drives the clamping block to be clamped on the movable plate, so that the movable plate is supported; the stainless steel carbon steel composite board is convenient to transport by the transport trolley;
2) Firstly, the stainless steel carbon steel composite board enters a winding drum and an extrusion roller to be wound through a guide roller at the top end of an arc-shaped supporting plate; the guide roller guides the stainless steel carbon steel composite board entering the winding device, and meanwhile, the stainless steel carbon steel composite board can be prevented from being scratched; the arc-shaped supporting plate is tightly attached to the bottom end of the stainless steel carbon steel composite plate roll, and the arc-shaped supporting plate drives the spring guide shaft to move downwards along with the increase of the stainless steel carbon steel composite plate roll, so that the spring is compressed, and the functions of supporting and buffering prevention are achieved; after the winding is completed, the motor I drives the transfer trolley to move along the main track through the idler wheels, and the transfer is completed.
Drawings
FIG. 1 is a schematic diagram of an automatic winding device after hot rolling and cooling of a corrosion-resistant stainless steel carbon steel composite plate;
FIG. 2 is a schematic diagram of the structure of a frame and an adjusting mechanism in the automatic winding device after hot rolling and cooling of the corrosion-resistant stainless steel carbon steel composite plate;
FIG. 3 is a schematic diagram II of the structure of a frame and an adjusting mechanism in the automatic winding device after hot rolling and cooling of the corrosion-resistant stainless steel carbon steel composite plate;
FIG. 4 is a schematic diagram of the structure of the frame in the automatic winding device after hot rolling and cooling of the corrosion-resistant stainless steel carbon steel composite plate;
FIG. 5 is a schematic structural view of a transfer mechanism of an automatic winding device after hot rolling and cooling of a corrosion-resistant stainless steel carbon steel composite plate;
FIG. 6 is a schematic diagram of the structure of the main shaft in the automatic winding device after hot rolling and cooling of the corrosion-resistant stainless steel carbon steel composite plate;
in the figure: 1. a base; 101. a motor I; 2. a frame; 201. a moving groove; 202. a movable groove; 3. a reel; 301. an outer reel; 3011. a connecting groove; 302. a guide plate; 303. a main shaft; 3031. a connecting block; 4. a squeeze roll; 401. an arc-shaped connecting frame; 5. a transfer mechanism; 501. a transfer vehicle; 5011. a roller; 502. a motor I; 503. a main track; 504. an arc-shaped supporting plate; 5041. a guide roller; 505. a spring guide shaft; 506. a spring; 507. a fixing plate; 6. a movable bearing seat; 601. a lower fixing seat; 602. an upper fixing seat; 603. an electric push rod; 7. an adjusting mechanism; 701. a movable plate; 7011. a limit rail; 7012. a track; 702. a telescopic oil cylinder I; 703. a telescopic oil cylinder II; 704. a motor II; 705. a moving block; 706. a rotating shaft; 707. a support plate; 708. a telescopic cylinder III; 709. a clamping block; 8. fixing a bearing seat; 9. a bottom plate.
Detailed Description
The technical scheme of the present utility model will be further specifically described below with reference to fig. 1 to 6 for the convenience of understanding of those skilled in the art.
An automatic winding device after hot rolling and cooling of a corrosion-resistant stainless steel carbon steel composite plate comprises a machine base 1, a machine frame 2, a winding drum 3, a squeeze roller 4, a transfer mechanism 5, a movable bearing seat 6, an adjusting mechanism 7, a fixed bearing seat 8 and a bottom plate 9; the machine frame 2 is arranged on one side of the machine base 1, and a movable groove 201 and a movable groove 202 are arranged on the machine frame 2; the fixed bearing seat 8 is fixed on the machine base 1; the adjusting mechanism 7 is arranged on the frame 2, the movable bearing seat 6 is movably connected to the adjusting mechanism 7, two ends of the winding drum 3 are respectively connected to the fixed bearing seat 8 and the movable bearing seat 6, a motor I101 is arranged at the end of the winding drum 3, which is positioned on the fixed bearing seat 8, and the motor I101 is fixed at the top end of the frame 1; the extrusion roller 4 is positioned obliquely above the winding drum 3, two ends of the extrusion roller 4 are connected with an arc-shaped connecting frame 401 through bearings, and the arc-shaped connecting frame 401 is connected to mounting plates at the top ends of the frame 2 and the base 1 through a rotating shaft; the bottom plate 9 is positioned between the machine base 1 and the machine frame 2, and the transfer mechanism 5 is positioned at the top end of the bottom plate 9; firstly, a motor I101 drives a winding drum 3 to rotate, the stainless steel carbon steel composite board is wound under the action of the winding drum 3 and a squeeze roll 4, and meanwhile, the wound stainless steel carbon steel composite board is kept compact and stable and is not easy to loosen; the regulating mechanism 7 drives the movable bearing seat 6 to move so as to be separated from the winding drum 3 after winding, and then the stainless steel carbon steel composite plate is wound out through the transferring mechanism 5.
The adjusting mechanism 7 comprises a movable plate 701, a telescopic cylinder I702, a telescopic cylinder II 703, a motor II 704, a moving block 705, a rotating shaft 706, a supporting plate 707, a telescopic cylinder III 708 and a clamping block 709; the two ends of the moving block 705 are in a T shape, and the moving block 705 is provided with a pair of symmetrical moving grooves 201 which are arranged in the frame 2; two ends of the movable plate 701 are provided with rotating shafts 706, and the movable plate 701 is connected to the moving block 705 through the rotating shafts 706; the top end and the bottom end of the movable plate 701 are respectively provided with a limit rail 7011 and a rail 7012; the telescopic cylinder II 703 is fixed at the top end of the movable plate 701, and an output shaft is connected with the movable bearing seat 6; a motor II 704 is arranged on one side of the moving block 705, the motor II 704 is connected in the movable groove 202 at one end of the frame 2, and an output shaft of the motor II 704 is connected with a rotating shaft 706; the telescopic oil cylinder I702 is positioned in the moving groove 201 of the frame 2, one end of the telescopic oil cylinder I is fixed on the frame 2, and the other end of the telescopic oil cylinder I is connected with the moving block 705; the supporting plate 707 is positioned at the bottom end of the movable slot 202 of the frame 2; the telescopic cylinder III 708 is provided with two pairs of side plates symmetrically arranged at one end of the frame 2, the output end of the telescopic cylinder III is connected with a clamping block 709, and the clamping block 709 is in clamping connection with the movable plate 701; when the winding drum 3 finishes winding, the telescopic oil cylinder II 703 drives the movable bearing seat 6 to move, so that the movable bearing seat 6 is far away from the winding drum 3, and meanwhile, the telescopic oil cylinder III 708 drives the clamping block 709 to be far away from the movable plate 701; then the telescopic oil cylinder I702 drives the movable plate 701 to move downwards to be flush with the bottom plate 9 through the moving block 705, and the bottom end of the motor II is supported on the supporting plate; then, the motor II 704 provides power to drive the movable plate 701 to rotate through the rotating shaft 706, the movable plate 701 is turned over, the rail 7012 is communicated with the main rail 503, and finally the telescopic cylinder III 708 drives the clamping block 709 to be clamped on the movable plate 701, so that the movable plate 701 is supported; the transfer trolley 501 is convenient for transferring the stainless steel carbon steel composite board.
The transfer mechanism 5 comprises a transfer trolley 501, a motor I502, a main track 503, an arc-shaped supporting plate 504, a spring guide shaft 505, a spring 506 and a fixing plate 507; two groups of rollers 5011 are arranged below the transfer trolley 501, the two groups of rollers 5011 are connected with a transmission shaft through a gear box, and a motor I502 is fixedly arranged below the transfer trolley 501 and connected with the gear box; the main tracks 503 are paved at the top end of the bottom plate 9, and the rollers 5011 are connected to the corresponding main tracks 503; the fixed plate 507 is fixed inside the transfer trolley 501, the arc-shaped supporting plate 504 is positioned above the transfer trolley 501, and guide rollers 5041 are arranged above two ends of the arc-shaped supporting plate 504; one end of a spring 506 is connected to the bottom end of the arc-shaped supporting plate 504, and the other end is connected to the fixed plate 507; one end of a spring guide shaft 505 is fixed at the bottom end of the arc-shaped supporting plate 504, and the other end of the spring guide shaft penetrates through a spring 506 and is movably connected to the fixed plate 507; firstly, the stainless steel carbon steel composite plate passes through a guide roller 5041 at the top end of an arc-shaped supporting plate 504, and enters a winding drum 3 and a squeeze roller 4 for winding; the guide roller 5041 guides the stainless steel carbon steel composite board entering the winding device, and can prevent the stainless steel carbon steel composite board from being scratched; the arc-shaped supporting plate 504 is tightly attached to the bottom end of the stainless steel carbon steel composite plate coil, and along with the increase of the stainless steel carbon steel composite plate coil, the arc-shaped supporting plate 504 drives the spring guide shaft 505 to move downwards, and the spring 506 is compressed, so that the effects of supporting and damping are achieved; after the winding is completed, the motor I502 drives the transfer trolley 501 to move along the main track 503 through the roller 5011, and the transfer is completed.
The winding drum 3 comprises an outer winding drum 301, a guide plate 302 and a main shaft 303; two ends of the main shaft 303 are respectively connected with the fixed bearing seat 8 and the movable bearing seat 6, and a connecting block 3031 is arranged on the main shaft 303; the connecting groove 3011 is formed in the outer winding drum 301, the outer winding drum 301 is connected to the outer side of the main shaft 303 through the connecting groove 3011 and the connecting block 3031, the connecting groove 3011 and the connecting block 3031 are hexagonal, sliding between the outer winding drum 301 and the main shaft 303 in the rotating process can be prevented, and therefore winding is affected; the guide plates 302 are provided with a pair, and are connected with the transfer trolley 501 through bolts, and the outer winding drum 301 is rotatably connected with the guide plates 302; the stainless steel carbon steel composite plate can be prevented from being deviated.
The movable bearing seat 6 comprises a lower fixing seat 601, an upper fixing seat 602 and an electric push rod 603; the lower fixed seat 601 is movably connected to a limit rail 7011 of the movable plate 701, the upper fixed seat 602 is mounted at the top end of the lower fixed seat 601, and the upper fixed seat 602 is connected with the lower fixed seat 601 through an electric push rod 603; the movable bearing seat 6 is convenient to move.
An automatic winding device for a corrosion-resistant stainless steel carbon steel composite plate after hot rolling and cooling is characterized by comprising the following working processes: firstly, a motor I drives a winding drum to rotate, the stainless steel carbon steel composite board is wound under the action of the winding drum and a squeeze roller, and meanwhile, the wound stainless steel carbon steel composite board is kept compact and stable and is not easy to loosen; when the winding drum is wound, the telescopic oil cylinder II drives the movable bearing seat to move, so that the movable bearing seat is far away from the winding drum, and meanwhile, the telescopic oil cylinder III drives the clamping block to be far away from the movable plate; then the telescopic oil cylinder I drives the movable plate to move downwards to be flush with the bottom plate through the moving block, and the bottom end of the motor II is supported on the supporting plate; then the motor II provides power to drive the movable plate to rotate through the rotating shaft, the movable plate is overturned, the bottom rail of the movable plate is communicated with the main rail, and finally the telescopic oil cylinder III drives the clamping block to be clamped on the movable plate, so that the movable plate is supported; the motor I drives the transfer trolley to move along the main track through the idler wheels, so that the stainless steel carbon steel composite plate roll and the outer winding drum are detached from the main shaft, and the stainless steel carbon steel composite plate roll is transferred.
The foregoing is merely illustrative and explanatory of the utility model, as it is well within the scope of the utility model as claimed, as it relates to various modifications, additions and substitutions for those skilled in the art, without departing from the inventive concept and without departing from the scope of the utility model as defined in the accompanying claims.
Claims (3)
1. An automatic winding device for a corrosion-resistant stainless steel carbon steel composite plate after hot rolling and cooling comprises a machine base, a machine frame, a winding drum, an extrusion roller, a transfer mechanism, a movable bearing seat, an adjusting mechanism, a fixed bearing seat and a bottom plate; the device is characterized in that a frame is arranged on one side of a machine base, a moving groove and a movable groove are arranged on the frame, and a fixed bearing seat is fixed on the machine base; the regulating mechanism is arranged on the frame, the movable bearing seat is movably connected to the regulating mechanism, two ends of the winding drum are respectively connected to the fixed bearing seat and the movable bearing seat, a motor I is arranged at the end of the winding drum, which is positioned on the fixed bearing seat, and the motor I is fixed at the top end of the frame; the extrusion roller is positioned obliquely above the winding drum, two ends of the extrusion roller are connected with arc-shaped connecting frames through bearings, and the arc-shaped connecting frames are connected to the mounting plates at the top ends of the frame and the base through rotating shafts; the bottom plate is positioned between the machine base and the machine frame, and the transfer mechanism is positioned at the top end of the bottom plate; the adjusting mechanism comprises a movable plate, a telescopic cylinder I, a telescopic cylinder II, a motor II, a moving block, a rotating shaft, a supporting plate, a telescopic cylinder III and a clamping block; the two ends of the moving block are T-shaped, and the moving block is provided with a pair of symmetrical moving grooves which are arranged in the frame; two ends of the movable plate are provided with rotating shafts, and the movable plate is connected to the movable block through the rotating shafts; the top end and the bottom end of the movable plate are respectively provided with a limit rail and a rail; the telescopic oil cylinder II is fixed at the top end of the movable plate, and the output shaft is connected with the movable bearing seat; a motor II is arranged on one side of the moving block and is connected in a movable groove at one end of the frame, and an output shaft of the motor II is connected with the rotating shaft; the telescopic oil cylinder I is positioned in a moving groove of the frame, one end of the telescopic oil cylinder I is fixed on the frame, and the other end of the telescopic oil cylinder I is connected with the moving block; the supporting plate is positioned at the bottom end of the movable groove of the frame; the telescopic oil cylinder III is provided with two pairs of side plates symmetrically arranged at one end of the frame, the output end of the telescopic oil cylinder III is connected with a clamping block, and the clamping block is connected with the movable plate in a clamping way; the transfer mechanism comprises a transfer trolley, a motor I, a main rail, an arc-shaped supporting plate, a spring guide shaft, a spring and a fixing plate; two groups of rollers are arranged below the transfer trolley, the two groups of rollers are connected with a transmission shaft through a gear box, and a motor I is fixedly arranged below the transfer trolley and connected with the gear box; the main rail is paved at the top end of the bottom plate, and the rollers are connected to the corresponding main rail; the fixed plate is fixed inside the transfer trolley, the arc-shaped supporting plates are positioned above the transfer trolley, and guide rollers are arranged above the two ends of the arc-shaped supporting plates; one end of the spring is connected to the bottom end of the arc-shaped supporting plate, and the other end of the spring is connected to the fixed plate; one end of the spring guide shaft is fixed at the bottom end of the arc-shaped supporting plate, and the other end of the spring guide shaft penetrates through the spring to be movably connected to the fixing plate.
2. The automatic winding device for the corrosion-resistant stainless steel carbon steel composite plate after hot rolling and cooling is characterized in that the winding drum comprises an outer winding drum, a guide plate and a main shaft; two ends of the main shaft are respectively connected with the fixed bearing seat and the movable bearing seat, and the main shaft is provided with a connecting block; the outer winding drum is internally provided with a connecting groove, the outer winding drum is connected to the outer side of the main shaft through the connecting groove and a connecting block, and the connecting groove and the connecting block are hexagonal; the deflector is provided with a pair of connection with the transfer car (buggy) through the bolt, and outer reel rotates with the deflector to be connected.
3. The automatic winding device after hot rolling and cooling of the corrosion-resistant stainless steel carbon steel composite plate is characterized in that the movable bearing seat comprises a lower fixing seat, an upper fixing seat and an electric push rod; the lower fixing seat is movably connected to the limit rail of the movable plate, the upper fixing seat is arranged at the top end of the lower fixing seat, and the upper fixing seat is connected with the lower fixing seat through an electric push rod.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202320248367.XU CN219408518U (en) | 2023-02-20 | 2023-02-20 | Corrosion-resistant stainless steel carbon steel composite plate hot rolling cooling automatic winding device |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202320248367.XU CN219408518U (en) | 2023-02-20 | 2023-02-20 | Corrosion-resistant stainless steel carbon steel composite plate hot rolling cooling automatic winding device |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| CN219408518U true CN219408518U (en) | 2023-07-25 |
Family
ID=87228490
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CN202320248367.XU Active CN219408518U (en) | 2023-02-20 | 2023-02-20 | Corrosion-resistant stainless steel carbon steel composite plate hot rolling cooling automatic winding device |
Country Status (1)
| Country | Link |
|---|---|
| CN (1) | CN219408518U (en) |
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2023
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