Production equipment and process of high-strength non-oriented silicon steel sheet for wind turbine
By designing production equipment for high-strength non-oriented silicon steel sheets for wind turbines, and employing conveyor belt flattening, pickling, stamping, and storage boxes, the problems of messy stacking and high scrap rate in silicon steel sheet production have been solved, thus improving production efficiency and convenience.
Patent Information
- Application Number
- CN202311693180.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-11
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2043-12-11
AI Technical Summary
Existing non-oriented silicon steel sheet production equipment results in messy stacking of silicon steel sheets after forming, leading to scattering, time and labor costs, and high scrap rates during mass production, making it difficult to achieve efficient mass production.
A production equipment for high-strength non-oriented silicon steel sheets for wind turbines was designed, including a moving mechanism, a pickling mechanism, a pressing mechanism, a rotating mechanism, and a pushing mechanism. The equipment enables the orderly processing and stacking of silicon steel sheets by flattening the coils via a conveyor belt, pickling, stamping, and storing them in a storage box.
This process enables the orderly pickling, stamping, and storage of silicon steel sheets, improving production efficiency, reducing scrap rates, avoiding messy stacking of silicon steel sheets, and providing convenience for subsequent use.
Smart Images

Figure CN117660978B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of non-oriented silicon steel sheet production equipment, in particular to a production equipment and process of high-strength non-oriented silicon steel sheet for wind turbines. BACKGROUND
[0002] Electrical steel, also known as silicon steel sheet, is an important soft magnetic alloy indispensable to the power, electronics and military industries, and is also the largest metal functional material. It is mainly used as the core of various motors, generators and transformers. Its production process is complex and its manufacturing technology is strict. Non-oriented silicon steel refers to a silicon steel material without obvious magnetic guide direction and uniform distribution of magnetic flux density. Non-oriented silicon steel is widely used in electrical equipment such as motors, transformers and automobile generators. It has excellent performance and moderate price, so it is popular in the market.
[0003] However, the existing non-oriented silicon steel sheet production equipment is disordered when stacking after forming the silicon steel sheet. A large amount of silicon steel sheet is scattered on the ground during batch production, and subsequent arrangement is time-consuming and laborious. The existing equipment has a high waste rate and high labor intensity during production of silicon steel sheet, and batch production is difficult to achieve. Therefore, the present application designs a production equipment and process of high-strength non-oriented silicon steel sheet for wind turbines to solve the above problems. SUMMARY
[0004] In view of the problems in the prior art, the present application provides a production equipment and process of high-strength non-oriented silicon steel sheet for wind turbines.
[0005] The technical scheme adopted by the present application to solve the technical problems is: a production equipment and process of high-strength non-oriented silicon steel sheet for wind turbines, comprising a moving mechanism, an acid pickling mechanism, a pressing mechanism, a rotating mechanism and a pushing mechanism, wherein one end of the moving mechanism is provided with the acid pickling mechanism, one end of the acid pickling mechanism is provided with the pressing mechanism, the lower end of the pressing mechanism is provided with the rotating mechanism, and one end of the rotating mechanism is provided with the pushing mechanism.
[0006] Preferably, the moving mechanism comprises a base, a first motor is fixedly connected to the side wall of the base, a first rotating shaft is fixedly connected to one end of the first motor, an eccentric block is fixedly connected to the side wall of the first rotating shaft, a rotating pin is attached to one end of the eccentric block, a first transmission wheel is rotatably connected to one end of the rotating pin, a second rotating shaft is fixedly connected to the center of the first transmission wheel, a fixed block is rotatably connected to the side wall of the second rotating shaft, one end of the fixed block is fixedly connected to the base, and a first belt is tightly attached to the side wall of the first transmission wheel.
[0007] Preferably, the moving mechanism further comprises a second transmission wheel, one end of the first belt is closely attached to the second transmission wheel, the center of the second transmission wheel is fixedly connected with a third rotating shaft, one end of the third rotating shaft is fixedly connected with a first conveying wheel, the side wall of the first conveying wheel is closely attached to a first conveying belt, the inner side wall of the first conveying belt is closely attached to a second conveying wheel, the center of the second conveying wheel is fixedly connected with a first transmission shaft, the side wall of the first transmission shaft is fixedly connected with a first spur gear, one end of the first spur gear is engaged with a second spur gear, the center of the second spur gear is fixedly connected with a second transmission shaft, the side wall of the second transmission shaft is fixedly connected with a third conveying wheel, the side wall of the third conveying wheel is closely attached to a second conveying belt, the upper end of the second conveying belt is closely attached to a coiled material, one end of the coiled material is wound around a winding roller, the center of the winding roller is fixedly connected with a third transmission shaft, one end of the third transmission shaft is rotatably connected with a supporting plate, the lower end of the supporting plate is fixedly connected with the base, the upper end of the base is fixedly connected with a supporting block, the outer end of the coiled material is sleeved with a limiting plate, one end of the limiting plate is fixedly connected with the base.
[0008] Preferably, the pickling mechanism comprises a container, the lower end of the container is fixedly connected with the base, the inner side wall of the container is rotatably connected with a first rotating rod, one end of the first rotating rod is fixedly connected with a roller.
[0009] Preferably, the pressing mechanism comprises a first cam, the center of the first cam is fixedly connected with the second rotating shaft, the lower end of the first cam is closely attached to a first sliding block, the lower end of the first sliding block is fixedly connected with a sliding rod, the outer part of the sliding rod is slidably connected with a first sleeve, the side wall of the first sleeve is fixedly connected with the base, the side wall of the sliding rod is fixedly connected with a baffle.
[0010] Preferably, the pressing mechanism comprises a first spring, the lower end of the baffle is fixedly connected with the first spring, the lower end of the first spring is fixedly connected with the first sleeve, the lower end of the sliding rod is fixedly connected with a first rotary body, the lower end of the first rotary body is fixedly connected with a pressing block.
[0011] Preferably, the rotating mechanism comprises a second motor, the side wall of the second motor is fixedly connected with the base, one end of the second motor is fixedly connected with a third rotating rod, the side wall of the third rotating rod is fixedly connected with a rotating disc, the side wall of the rotating disc is fixedly connected with a rotating block, the side wall of the rotating disc is fixedly connected with a rotating pin, one end of the rotating pin is attached to a rotating block, and a sliding groove is formed in the inner part of the rotating block.
[0012] Preferably, the rotating mechanism further comprises a fourth rotating rod, the center of the rotating block is fixedly connected with the fourth rotating rod, the upper end of the fourth rotating rod is fixedly connected with a second rotary body, and a hollow groove is formed at one end of the second rotary body.
[0013] Preferably, the pushing mechanism comprises a third transmission wheel, the third transmission wheel is fixedly connected with a third rotating shaft at the center, the side wall of the third transmission wheel is tightly attached with a second belt, one end of the second belt is tightly attached with a fourth transmission wheel, the fourth transmission wheel is fixedly connected with a fifth rotating shaft at the center, the fifth rotating shaft is fixedly connected with a second cam at one end, the second cam is tightly attached with an arc-shaped plate at one end, the arc-shaped plate is fixedly connected with a second sliding block at one end, the upper end of the base is fixedly connected with a limiting block, the limiting block is placed with a storage box at the upper end, the inner side wall of the storage box is slidably connected with a first arc-shaped block, the first arc-shaped block is tightly attached with a second arc-shaped block at the lower end, and the second arc-shaped block is fixedly connected with a connecting block at one end.
[0014] Preferably, the pushing mechanism further comprises a stop block, the connecting block is fixedly connected with a stop block at one end, the side wall of the stop block is slidably connected with a second sleeve, the lower end of the stop block is fixedly connected with a second spring, the lower end of the second spring is fixedly connected with a second sleeve, the upper end of the base is fixedly connected with a third sleeve, the inner side wall of the third sleeve is slidably connected with a partition plate, and the upper end of the partition plate is fixedly connected with a protruding block.
[0015] Preferably, it specifically comprises the following steps:
[0016] S1, first start the first motor to rotate slowly and intermittently for one circle, the first motor rotation drives the first rotating shaft to rotate, the first rotating shaft rotation drives the eccentric block to rotate, the eccentric block is eccentrically connected with the first transmission wheel, the eccentric block rotates from the convex end to the lower end to drive the rotating pin to rotate half a circle around the second rotating shaft, the rotating pin rotation drives the first transmission wheel to rotate, the first transmission wheel rotation drives the first belt to rotate, the first belt rotation drives the second transmission wheel to rotate, the diameter of the first transmission wheel is larger than that of the second transmission wheel, so that the first transmission wheel rotates half a circle to drive the second transmission wheel to rotate more circles, the second transmission wheel rotation drives the third rotating shaft to rotate, the third rotating shaft rotation drives the first conveying wheel to rotate, the first conveying wheel rotation drives the first conveying belt to rotate, the first conveying belt rotation drives the second conveying wheel to rotate, the second conveying wheel rotation drives the first transmission shaft to rotate, the first transmission shaft rotation drives the first spur gear to rotate, the first spur gear rotation drives the second spur gear to rotate, the second spur gear rotation drives the second transmission shaft to rotate, the second transmission shaft rotation drives the third conveying wheel to rotate, the third conveying wheel rotation drives the second conveying belt to rotate, and the second conveying belt rotation drives the coiled material to move forward a distance, the coiled material moves forward through the limiting plate to the upper end of the second rotating body.
[0017] S2, in the process of moving the coiled material to one end, the roller will rotate, the roller rotation drives the first rotating shaft to rotate, and the container is provided with an acid solution for pickling the silicon steel sheet;
[0018] S3, when the eccentric block convex end rotates to the upper end, the first transmission wheel stops rotating, at this time, the eccentric block will continue to rotate and drive the first cam to rotate to the lower end, the rotation of the first cam drives the first sliding block to move downward, the downward movement of the first sliding block drives the sliding rod to move downward, the downward movement of the sliding rod drives the baffle to move downward, the downward movement of the baffle compresses the first spring, the downward movement of the sliding rod drives the first rotating body to move downward, the downward movement of the first rotating body drives the pressing block to move downward, and the downward movement of the pressing block cuts the coiled material into silicon steel sheets;
[0019] S4, at this time, the second motor is started to rotate, the rotation of the second motor drives the third rotating rod to rotate, the rotation of the third rotating rod drives the rotating disc to rotate, the rotation of the rotating disc drives the rotating block to rotate, the rotating disc rotates to drive the rotating pin to rotate around the third rotating rod, the rotating pin rotates to drive the rotating block to rotate one fourth of a circle, the rotating block rotates one fourth of a circle to drive the fourth rotating rod to rotate one fourth of a circle, the fourth rotating rod rotates one fourth of a circle to drive the second rotating body to rotate one fourth of a circle, the second rotating body rotates one fourth of a circle to drive the hollow groove to rotate one fourth of a circle around the fourth rotating rod, the fourth rotating rod rotates one fourth of a circle to drive the second rotating body to rotate one fourth of a circle, and the second rotating body rotates one fourth of a circle to drive the cut silicon steel sheet to rotate to each step;
[0020] S5, the third rotating rod rotates at the same time to drive the third transmission wheel to rotate, the rotation of the third transmission wheel drives the second belt to rotate, the rotation of the second belt drives the fourth transmission wheel to rotate, the rotation of the fourth transmission wheel drives the fifth rotating rod to rotate, the rotation of the fifth rotating rod drives the second cam to rotate, the rotation of the second cam drives the arc-shaped plate to move outward, the outward movement of the arc-shaped plate drives the silicon steel sheet to move outward into the storage box, and the silicon steel sheet enters the storage box to compress the second arc-shaped block downward, the downward movement of the second arc-shaped block drives the connecting block to move downward, the downward movement of the connecting block drives the blocking block to move downward, the downward movement of the blocking block compresses the second spring, and when the storage box is filled with silicon steel sheets, the convex block is pulled outward, the outward movement of the convex block drives the partition plate to move outward, and the partition plate can be taken out from the lower end of the limiting block.
[0021] The beneficial effects of the present application are:
[0022] (1) The production equipment and process of high-strength non-oriented silicon steel sheet for wind turbine, the first conveying belt and the second conveying belt can drive the coiled material to move forward by a specified distance, and since the first conveying belt and the second conveying belt clamp the coiled material in the horizontal direction, the coiled material can be preliminarily flattened, and the container contains acid solution to conveniently and quickly acid wash the silicon steel sheet.
[0023] (2) The production equipment and process of high-strength non-oriented silicon steel sheet for wind driven generators, the second rotating shaft is provided with a hollow groove at the upper end of the second rotating body, and the cut silicon steel sheet can be subjected to different processing steps.
[0024] (3) The production equipment and process of high-strength non-oriented silicon steel sheet for wind driven generators, the storage box is arranged to stack and store the silicon steel sheet, which is convenient for subsequent use, and avoids the disordered stacking of the processed silicon steel sheet. BRIEF DESCRIPTION OF DRAWINGS
[0025] The application will be further described below in combination with the drawings and examples.
[0026] Figure 1 The overall structure schematic diagram provided by the application is shown in the figure.
[0027] Figure 2 The base structure schematic diagram is shown in the figure.
[0028] Figure 3 The base and first motor connection structure schematic diagram is shown in the figure.
[0029] Figure 4 The support block structure schematic diagram is shown in the figure.
[0030] Figure 5 The first sliding block structure schematic diagram is shown in the figure.
[0031] Figure 6 The fixed block and base connection structure schematic diagram is shown in the figure.
[0032] Figure 7 The first transmission wheel and second rotating shaft connection structure schematic diagram is shown in the figure.
[0033] Figure 8 The first rotating shaft and eccentric block connection structure schematic diagram is shown in the figure.
[0034] Figure 9 The first belt and second transmission wheel connection structure schematic diagram is shown in the figure.
[0035] Figure 10 The first rotating rod and roller connection structure schematic diagram is shown in the figure.
[0036] Figure 11 The first cam and first sliding block connection structure schematic diagram is shown in the figure.
[0037] Figure 12 The sliding rod and baffle connection structure schematic diagram is shown in the figure.
[0038] Figure 13 The third rotating rod and rotating disc connection structure schematic diagram is shown in the figure.
[0039] Figure 14 Fig. 5 is a schematic view of the fifth rotating rod and the second cam connecting structure;
[0040] Figure 15 Fig. 6 is a schematic view of the hollow groove structure;
[0041] Figure 16 Fig. 7 is a schematic view of the storage box structure;
[0042] Figure 17 Fig. 8 is a schematic view of the connecting block and the stop block connecting structure.
[0043] In the figure: 1, moving mechanism; 11, base; 12, first motor; 13, first rotating shaft; 14, eccentric block; 15, rotating pin; 16, first transmission wheel; 17, second rotating shaft; 18, fixed block; 19, first belt; 110, second transmission wheel; 111, third rotating shaft; 112, first conveying wheel; 113, first conveying belt; 114, second conveying wheel; 115, first transmission shaft; 116, first spur gear; 117, second spur gear; 118, second transmission shaft; 119, third conveying wheel; 120, second conveying belt; 121, coiled material; 122, winding roller; 123, third transmission shaft; 124, support plate; 125, support block; 126, limiting plate; 2, pickling mechanism; 21, container; 22, first rotating rod; 23, roller; 3, pressing mechanism; 31, first cam; 32, first sliding block; 33, sliding rod; 34, first sleeve; 35, baffle; 36, first spring; 37, first rotating body; 38, pressing block; 4, rotating mechanism; 41, second motor; 42, third rotating rod; 43, rotating disc; 44, rotating block; 45, rotating pin; 46, rotating block; 47, sliding groove; 48, fourth rotating rod; 49, second rotating body; 410, hollow groove; 5, pushing mechanism; 51, third transmission wheel; 52, second belt; 53, fourth transmission wheel; 54, fifth rotating rod; 55, second cam; 56, arc-shaped plate; 57, second sliding block; 58, limiting block; 59, storage box; 510, first arc-shaped block; 511, second arc-shaped block; 512, connecting block; 513, stop block; 514, second spring; 515, second sleeve; 516, partition plate; 517, protruding block; 518, third sleeve. DETAILED DESCRIPTION
[0044] In order to make the technical means, creative features, purposes and effects of the present application easy to understand, the present application is further described below in combination with specific embodiments.
[0045] As Figures 1-17The utility model discloses a kind of production equipment and process of high-strength non-oriented silicon steel sheet for wind-driven generator, including moving mechanism 1, pickling mechanism 2, pressing mechanism 3, rotating mechanism 4, pushing mechanism 5, the moving mechanism 1 one end is equipped with pickling mechanism 2, the pickling mechanism 2 one end is equipped with pressing mechanism 3, the pressing mechanism 3 lower end is equipped with rotating mechanism 4, the rotating mechanism 4 one end is equipped with pushing mechanism 5;Through the first conveyor belt 113 and second conveyor belt 120 of being set with, can drive roll stock 121 to move forward specified distance, be equipped with acid solution in container 21 inside can be conveniently and quickly pickled to silicon steel sheet, while also driving pressing block 38 downward movement to silicon steel sheet is carried out stamping forming when second shaft 17 rotates, using the storage box 59 of being set can be stacked to silicon steel sheet, provide convenience for subsequent use, avoid the silicon steel sheet after processing and stack messy.
[0046] Preferably, the moving mechanism 1 comprises a base 11, one side wall of the base 11 is fixedly connected with a first motor 12, one end of the first motor 12 is fixedly connected with a first rotating shaft 13, one side wall of the first rotating shaft 13 is fixedly connected with an eccentric block 14, one end of the eccentric block 14 is attached with a rotating pin 15, one end of the rotating pin 15 is rotatably connected with a first transmission wheel 16, the center of the first transmission wheel 16 is fixedly connected with a second rotating shaft 17, one side wall of the second rotating shaft 17 is rotatably connected with a fixed block 18, one end of the fixed block 18 is fixedly connected with the base 11, one side wall of the first transmission wheel 16 is tightly attached with a first belt 19, one end of the first belt 19 is tightly attached with a second transmission wheel 110, the center of the second transmission wheel 110 is fixedly connected with a third rotating shaft 111, one end of one side wall of the third rotating shaft 111 is fixedly connected with a first conveying wheel 112, one side wall of the first conveying wheel 112 is tightly attached with a first conveying belt 113, the inner side wall of the first conveying belt 113 is tightly attached with a second conveying wheel 114, the center of the second conveying wheel 114 is fixedly connected with a first transmission shaft 115, one side wall of the first transmission shaft 115 is fixedly connected with a first spur gear 116, one end of the first spur gear 116 is engaged with a second spur gear 117, the center of the second spur gear 117 is fixedly connected with a second transmission shaft 118, one side wall of the second transmission shaft 118 is fixedly connected with a third conveying wheel 119, one side wall of the third conveying wheel 119 is tightly attached with a second conveying belt 120, the upper end of the second conveying belt 120 is tightly attached with a coiled material 121, one end of the coiled material 121 is wound with a winding roller 122, the center of the winding roller 122 is fixedly connected with a third transmission shaft 123, one end of the third transmission shaft 123 is rotatably connected with a supporting plate 124, the lower end of the supporting plate 124 is fixedly connected with the base 11, the upper end of the base 11 is fixedly connected with a supporting block 125, one end of the coiled material 121 is externally sleeved with a limiting plate 126, one end of the limiting plate 126 is fixedly connected with the base 11.The first motor 12 is started to rotate slowly and intermittently for one circle, the first motor 12 rotates to drive the first rotating shaft 13 to rotate, the first rotating shaft 13 rotates to drive the eccentric block 14 to rotate, the eccentric block 14 is eccentrically connected with the first transmission wheel 14, the eccentric block 14 rotates to the lower end of the convex end to drive the rotating pin 15 to rotate half a circle around the second rotating shaft 17, the rotating pin 15 rotates to drive the first transmission wheel 16 to rotate, the first transmission wheel 16 rotates to drive the first belt 19 to rotate, the first belt 19 rotates to drive the second transmission wheel 110 to rotate, the diameter of the first transmission wheel 16 is greater than that of the second transmission wheel 110, so that the first transmission wheel 16 rotates half a circle to drive the second transmission wheel 110 to rotate more circles, the second transmission wheel 110 rotates to drive the third rotating shaft 111 to rotate, the third rotating shaft 111 rotates to drive the first conveying wheel 112 to rotate, the first conveying wheel 112 rotates to drive the first conveying belt 113 to rotate, the first conveying belt 113 rotates to drive the second conveying wheel 114 to rotate, the second conveying wheel 114 rotates to drive the first transmission shaft 115 to rotate, the first transmission shaft 115 rotates to drive the first spur gear 116 to rotate, the first spur gear 116 rotates to drive the second spur gear 117 to rotate, the second spur gear 117 rotates to drive the second transmission shaft 118 to rotate, the second transmission shaft 118 rotates to drive the third conveying wheel 119 to rotate, the third conveying wheel 119 rotates to drive the second conveying belt 120 to rotate, the second conveying belt 120 rotates to drive the coiled material 121 to move a distance, the coiled material 121 moves forward through the limiting plate 126 to the upper end of the second rotating body 49, the first conveying belt 113 and the second conveying belt 120 can drive the coiled material 121 to move a specified distance, and since the first conveying belt 113 and the second conveying belt 120 clamp the coiled material 121 in the horizontal direction, the coiled material can be preliminarily flattened.
[0047] Preferably, the pickling mechanism 2 comprises a container 21, the lower end of the container 21 is fixedly connected with the base 11, the inner side wall of the container 21 is rotatably connected with a first rotating rod 22, and one end of the first rotating rod 22 is fixedly connected with a roller 23; the roller 23 rotates to drive the first rotating rod 22 to rotate in the process that the coiled material 121 moves to one end, and the container 21 is provided with an acid solution to pickle the silicon steel sheet, so that the silicon steel sheet can be conveniently and quickly pickled.
[0048] Preferably, the pressing mechanism 3 comprises a first cam 31, the center of the first cam 31 is fixedly connected with the second rotating shaft 17, the lower end of the first cam 31 is tightly fitted with a first sliding block 32, the lower end of the first sliding block 32 is fixedly connected with a sliding rod 33, the sliding rod 33 is externally and slidably connected with a first sleeve 34, the side wall of the first sleeve 34 is fixedly connected with the base 11, the side wall of the sliding rod 33 is fixedly connected with a baffle 35, the lower end of the baffle 35 is fixedly connected with a first spring 36, the lower end of the first spring 36 is fixedly connected with the first sleeve 34, the lower end of the sliding rod 33 is fixedly connected with a first rotary body 37, and the lower end of the first rotary body 37 is fixedly connected with a pressing block 38; when the protruding end of the eccentric block 14 rotates to the upper end, the first transmission wheel 16 stops rotating, at this time, the eccentric block 14 will continue to rotate to drive the first cam 31 to rotate to the lower end, the rotation of the first cam 31 drives the first sliding block 32 to move downward, the downward movement of the first sliding block 32 drives the sliding rod 33 to move downward, the downward movement of the sliding rod 33 drives the baffle 35 to move downward, the downward movement of the baffle 35 compresses the first spring 36, the downward movement of the sliding rod 33 drives the first rotary body 37 to move downward, the downward movement of the first rotary body 37 drives the pressing block 38 to move downward, and the downward movement of the pressing block 38 cuts the coiled material 121 into silicon steel sheets, and the second rotating shaft 17 rotates to drive the pressing block 38 to move downward to stamp and form the silicon steel sheets.
[0049] Preferably, the rotating mechanism 4 comprises a second motor 41, one end of the third rotating rod 42 is fixedly connected with the second motor 41, the third rotating rod 42 is fixedly connected with the rotating disc 43, the rotating disc 43 is fixedly connected with the rotating block 44, the rotating disc 43 is fixedly connected with the rotating pin 45, the rotating pin 45 is attached with the rotating block 46, the rotating block 46 is internally formed with the sliding slot 47, the fourth rotating rod 48 is fixedly connected with the second rotating body 49, and the hollow groove 410 is formed in one end of the second rotating body 49; at this time, the second motor 41 is started to rotate, the third rotating rod 42 is driven to rotate, the rotating disc 43 is driven to rotate, the rotating block 44 is driven to rotate, the rotating pin 45 is driven to rotate around the third rotating rod 42, the rotating block 46 is driven to rotate a quarter of a circle, the fourth rotating rod 48 is driven to rotate a quarter of a circle, the second rotating body 49 is driven to rotate a quarter of a circle, the hollow groove 410 is driven to rotate a quarter of a circle around the fourth rotating rod 48, the second rotating body 49 is driven to rotate a quarter of a circle, the second rotating body 49 is driven to rotate a quarter of a circle to rotate the cut silicon steel sheet to each step, and the hollow groove 410 arranged on the second rotating body 49 can perform different processing steps on the cut silicon steel sheet.
[0050] Preferably, the pushing mechanism 5 comprises a third transmission wheel 51, the center of which is fixedly connected with the third rotating rod 42, the side wall of the third transmission wheel 51 is tightly attached with a second belt 52, one end of the second belt 52 is tightly attached with a fourth transmission wheel 53, the center of the fourth transmission wheel 53 is fixedly connected with a fifth rotating rod 54, one end of the fifth rotating rod 54 is fixedly connected with a second cam 55, one end of the second cam 55 is tightly attached with an arc-shaped plate 56, one end of the arc-shaped plate 56 is fixedly connected with a second sliding block 57, the upper end of the base 11 is fixedly connected with a limiting block 58, the limiting block 58 is placed with a storage box 59, the inner side wall of the storage box 59 is slidingly connected with a first arc-shaped block 510, the lower end of the first arc-shaped block 510 is tightly attached with a second arc-shaped block 511, one end of the second arc-shaped block 511 is fixedly connected with a connecting block 512, one end of the connecting block 512 is fixedly connected with a blocking block 513, the side wall of the blocking block 513 is slidingly connected with a second sleeve 515, the lower end of the blocking block 513 is fixedly connected with a second spring 514, the lower end of the second spring 514 is fixedly connected with the second sleeve 515, the upper end of the base 11 is fixedly connected with a third sleeve 518, the inner part of the third sleeve 518 is slidingly connected with a partition plate 516, the upper end of the partition plate 516 is fixedly connected with a protruding block 517; while the third rotating rod 42 rotates, the third transmission wheel 51 will rotate, the third transmission wheel 51 rotates to drive the second belt 52 to rotate, the second belt 52 rotates to drive the fourth transmission wheel 53 to rotate, the fourth transmission wheel 53 rotates to drive the fifth rotating rod 54 to rotate, the fifth rotating rod 54 rotates to drive the second cam 55 to rotate, the second cam 55 rotates to drive the arc-shaped plate 56 to move outward, the arc-shaped plate 56 moves outward, the silicon steel sheet moves outward into the inner part of the storage box 59, the silicon steel sheet entering the inner part of the storage box 59 will be compressed downward, the second arc-shaped block 511 moves downward to drive the connecting block 512 to move downward, the connecting block 512 moves downward to drive the blocking block 513 to move downward, the blocking block 513 moves downward to compress the second spring 514, when the storage box 59 is filled with silicon steel sheets, the protruding block 517 is pulled outward, the protruding block 517 moves outward to drive the partition plate 516 to move outward, the partition plate 516 moves outward to be taken out from the lower end of the limiting block 58, the storage box 59 is arranged to stack and store the silicon steel sheets, which is convenient for subsequent use, and avoids the disordered stacking of the processed silicon steel sheets.
[0051] Working principle: the first slow intermittent rotation of the first motor 12 is started in use, the first motor 12 drives the first rotating shaft 13 to rotate, the first rotating shaft 13 drives the eccentric block 14 to rotate, the eccentric block 14 is eccentrically connected with the first transmission wheel 14, the protruding end of the eccentric block 14 rotates to the lower end, which drives the rotating pin 15 to rotate around the second rotating shaft 17 by half a circle, the rotating pin 15 drives the first transmission wheel 16 to rotate, the first transmission wheel 16 drives the first belt 19 to rotate, the first belt 19 drives the second transmission wheel 110 to rotate, the diameter of the first transmission wheel 16 is larger than that of the second transmission wheel 110, so that the first transmission wheel 16 drives the second transmission wheel 110 to rotate more circles when rotating half a circle, the second transmission wheel 110 drives the third rotating shaft 111 to rotate, the third rotating shaft 111 drives the first conveying wheel 112 to rotate, the first conveying wheel 112 drives the first conveying belt 113 to rotate, the first conveying belt 113 drives the second conveying wheel 114 to rotate, the second conveying wheel 114 drives the first transmission shaft 115 to rotate, the first transmission shaft 115 drives the first spur gear 116 to rotate, the first spur gear 116 drives the second spur gear 117 to rotate, the second spur gear 117 drives the second transmission shaft 118 to rotate, the second transmission shaft 118 drives the third conveying wheel 119 to rotate, the third conveying wheel 119 drives the second conveying belt 120 to rotate, the second conveying belt 120 drives the coiled material 121 to move a distance, and the coiled material 121 moves forward through the limiting plate 126 to the upper end of the second rotating body 49; the first conveying belt 113 and the second conveying belt 120 can drive the coiled material 121 to move a specified distance, and since the first conveying belt 113 and the second conveying belt 120 clamp the coiled material 121 in the horizontal direction, the coiled material can be preliminarily flattened.
[0052] In the process of moving the coiled material 121 to one end, the roller 23 is driven to rotate, the roller 23 drives the first rotating rod 22 to rotate, and the container 21 is provided with an acid solution for acid pickling of the silicon steel sheet.
[0053] When the first transmission wheel 16 stops rotating at the protruding end of the eccentric block 14 rotating to the upper end, the eccentric block 14 will continue to rotate to drive the first cam 31 to rotate to the lower end, the rotation of the first cam 31 drives the first sliding block 32 to move downward, the downward movement of the first sliding block 32 drives the sliding rod 33 to move downward, the downward movement of the sliding rod 33 drives the baffle 35 to move downward, the downward movement of the baffle 35 compresses the first spring 36, the downward movement of the sliding rod 33 drives the first rotating body 37 to move downward, the downward movement of the first rotating body 37 drives the pressing block 38 to move downward, the downward movement of the pressing block 38 cuts the coiled material 121 into silicon steel sheets; the second rotating shaft 17 rotates and drives the pressing block 38 to move downward to punch and form the silicon steel sheets.
[0054] At this time, the second motor 41 is started to rotate, the rotation of the second motor 41 drives the third rotating rod 42 to rotate, the rotation of the third rotating rod 42 drives the rotating disc 43 to rotate, the rotation of the rotating disc 43 drives the rotating block 44 to rotate, the rotation of the rotating disc 43 drives the rotating pin 45 to rotate around the third rotating rod 42, the rotation of the rotating pin 45 drives the rotating block 46 to rotate one-quarter of a circle, the rotation of the rotating block 46 drives the fourth rotating rod 48 to rotate one-quarter of a circle, the rotation of the fourth rotating rod 48 drives the second rotating body 49 to rotate one-quarter of a circle, the rotation of the second rotating body 49 drives the hollow groove 410 to rotate one-quarter of a circle around the fourth rotating rod 48, the rotation of the fourth rotating rod 48 drives the second rotating body 49 to rotate one-quarter of a circle, the rotation of the second rotating body 49 rotates one-quarter of a circle to drive the cut silicon steel sheets to rotate to each step; the hollow groove 410 arranged at the upper end of the second rotating body 49 can perform different processing steps on the cut silicon steel sheets.
[0055] The third rotating rod 42 rotates to drive the third transmission wheel 51 to rotate, the rotation of the third transmission wheel 51 drives the second belt 52 to rotate, the rotation of the second belt 52 drives the fourth transmission wheel 53 to rotate, the rotation of the fourth transmission wheel 53 drives the fifth rotating rod 54 to rotate, the rotation of the fifth rotating rod 54 drives the second cam 55 to rotate, the rotation of the second cam 55 drives the arc-shaped plate 56 to move outward, the outward movement of the arc-shaped plate 56 drives the silicon steel sheets to move outward into the inside of the storage box 59, the silicon steel sheets entering the inside of the storage box 59 compress the second arc-shaped block 511 downward, the downward movement of the second arc-shaped block 511 drives the connecting block 512 to move downward, the downward movement of the connecting block 512 drives the blocking block 513 to move downward, the downward movement of the blocking block 513 compresses the second spring 514, and when the inside of the storage box 59 is filled with silicon steel sheets, the protruding block 517 is pulled outward, the outward movement of the protruding block 517 drives the partition plate 516 to move outward, and the outward movement of the partition plate 516 can take out the storage box 59 from the lower end of the limiting block 58; the storage box 59 arranged can stack and store the silicon steel sheets, which provides convenience for subsequent use and avoids the disordered stacking of the processed silicon steel sheets.
[0056] The above shows and describes the basic principles, main features and advantages of the present application. Those skilled in the art should understand that the present application is not limited to the above embodiments, and the above embodiments and descriptions in the specification are only to illustrate the principles of the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, and these changes and improvements all fall within the scope of the present application. The scope of protection of the present application is defined by the appended claims and their equivalents.
Claims
1. An apparatus for producing high-strength non-oriented silicon steel sheets for wind power generators, characterized by: The utility model relates to a pickling device for the production of food, including mobile mechanism (1), pickling mechanism (2), press mechanism (3), rotation mechanism (4), push mechanism (5), mobile mechanism (1) one end is equipped with pickling mechanism (2), pickling mechanism (2) one end is equipped with press mechanism (3), press mechanism (3) lower extreme is equipped with rotation mechanism (4), rotation mechanism (4) one end is equipped with push mechanism (5), The mobile mechanism (1) includes a base (11), the side wall of base (11) is fixedly connected with a first motor (12), one end of first motor (12) is fixedly connected with a first rotating shaft (13), the side wall of first rotating shaft (13) is fixedly connected with an eccentric block (14), one end of eccentric block (14) is attached with a rotating pin (15), one end of rotating pin (15) is rotatably connected with a first transmission wheel (16), the center of first transmission wheel (16) is fixedly connected with a second rotating shaft (17), the side wall of second rotating shaft (17) is rotatably connected with a fixed block (18), one end of fixed block (18) is fixedly connected with base (11), the side wall of first transmission wheel (16) is tightly attached with a first belt (19), The press mechanism (3) includes a first cam (31), the center of first cam (31) is fixedly connected with second rotating shaft (17), the lower end of first cam (31) is tightly attached with a first sliding block (32), the lower end of first sliding block (32) is fixedly connected with a sliding rod (33), the outer portion of sliding rod (33) is slidably connected with a first sleeve (34), the side wall of first sleeve (34) is fixedly connected with base (11), the side wall of sliding rod (33) is fixedly connected with a baffle (35), The press mechanism (3) includes a first spring (36), the lower end of baffle (35) is fixedly connected with first spring (36), the lower end of first spring (36) is fixedly connected with first sleeve (34), the lower end of sliding rod (33) is fixedly connected with a first rotary body (37), the lower end of first rotary body (37) is fixedly connected with a pressing block (38), The rotating mechanism (4) includes a second motor (41), the second motor (41) is fixedly connected with the base (11), one end of the second motor (41) is fixedly connected with a third rotating rod (42), the third rotating rod (42) is fixedly connected with a rotating disc (43) on the side wall, the rotating disc (43) is fixedly connected with a rotating block (44) on the side wall, the rotating disc (43) is fixedly connected with a rotating pin (45) on the side wall, one end of the rotating pin (45) is attached with a rotating block (46), a sliding groove (47) is formed in the rotating block (46), the pushing mechanism (5) includes a third transmission wheel (51), the third transmission wheel (51) is fixedly connected with the third rotating rod (42) at the center, the third transmission wheel (51) is tightly attached with a second belt (52) on the side wall, one end of the second belt (52) is tightly attached with a fourth transmission wheel (53), the fourth transmission wheel (53) is fixedly connected with a fifth rotating rod (54) at the center, one end of the fifth rotating rod (54) is fixedly connected with a second cam (55), one end of the second cam (55) is tightly attached with an arc plate (56), one end of the arc plate (56) is fixedly connected with a second sliding block (57), the base (11) is fixedly connected with a limiting block (58) on the upper end, the limiting block (58) is placed with a storage box (59) on the upper end, the storage box (59) is internally and slidably connected with a first arc block (510) on the side wall, the first arc block (510) is tightly attached with a second arc block (511) on the lower end, one end of the second arc block (511) is fixedly connected with a connecting block (512).
2. The production equipment of high-strength non-oriented silicon steel sheets for wind generators according to claim 1, characterized in that: The moving mechanism (1) further includes a second transmission wheel (110), one end of the first belt (19) is closely attached with the second transmission wheel (110), the center of the second transmission wheel (110) is fixedly connected with a third rotating shaft (111), one end of the third rotating shaft (111) is fixedly connected with a first conveying wheel (112), the side wall of the first conveying wheel (112) is closely attached with a first conveying belt (113), the inner side wall of the first conveying belt (113) is closely attached with a second conveying wheel (114), the center of the second conveying wheel (114) is fixedly connected with a first transmission shaft (115), the side wall of the first transmission shaft (115) is fixedly connected with a first spur gear (116), one end of the first spur gear (116) is engaged with a second spur gear (117), the center of the second spur gear (117) is fixedly connected with a second transmission shaft (118), the side wall of the second transmission shaft (118) is fixedly connected with a third conveying wheel (119), the side wall of the third conveying wheel (119) is closely attached with a second conveying belt (120), the upper end of the second conveying belt (120) is closely attached with a coiled material (121), one end of the coiled material (121) is wound with a winding roller (122), the center of the winding roller (122) is fixedly connected with a third transmission shaft (123), one end of the third transmission shaft (123) is rotatably connected with a supporting plate (124), the lower end of the supporting plate (124) is fixedly connected with the base (11), the upper end of the base (11) is fixedly connected with a supporting block (125), one end of the coiled material (121) is externally sleeved with a limiting plate (126), one end of the limiting plate (126) is fixedly connected with the base (11).
3. The production equipment of high-strength non-oriented silicon steel sheets for wind generators according to claim 2, characterized in that: The pickling mechanism (2) includes a container (21), the lower end of the container (21) is fixedly connected with the base (11), and the inner side wall of the container (21) is rotatably connected with a first rotating rod (22). The first rotating rod (22) is fixedly connected with a roller (23) at one end.
4. The production equipment of high-strength non-oriented silicon steel sheets for wind generators according to claim 3, characterized in that: The rotating mechanism (4) further includes a fourth rotating rod (48), the center of the rotating block (46) is fixedly connected with the fourth rotating rod (48), the upper end of the fourth rotating rod (48) is fixedly connected with a second rotating body (49), and the first end of the second rotating body (49) is provided with a hollow groove (410).
5. The production equipment of high-strength non-oriented silicon steel sheets for wind generators according to claim 4, characterized in that: The pushing mechanism (5) further includes a stop block (513), the one end of the connecting block (512) is fixedly connected with the stop block (513), the side wall of the stop block (513) is slidably connected with a second sleeve (515), the lower end of the stop block (513) is fixedly connected with a second spring (514), the lower end of the second spring (514) is fixedly connected with the second sleeve (515), the upper end of the base (11) is fixedly connected with a third sleeve (518), the inner side of the third sleeve (518) is slidably connected with a partition plate (516), and the upper end of the partition plate (516) is fixedly connected with a protruding block (517).
6. A process for using the production apparatus for high-strength non-oriented silicon steel sheets for wind generators as claimed in claim 5, characterized in that: Specifically includes the following steps: S1, first start the first motor (12) slowly intermittent rotation a circle, the first motor (12) rotation drives the first rotating shaft (13) rotation, the first rotating shaft (13) rotation drives the eccentric block (14) rotation, the eccentric block (14) and the first transmission wheel (16) are eccentric connection, the eccentric block (14) convex end rotation to the lower end will drive the rotating pin (15) rotation around the second rotating shaft (17) half a circle, the rotating pin (15) rotation drives the first transmission wheel (16) rotation, the first transmission wheel (16) rotation drives the first belt (19) rotation, the first belt (19) rotation drives the second transmission wheel (110) rotation, the diameter of the first transmission wheel (16) is greater than the diameter of the second transmission wheel (110), therefore, when the first transmission wheel (16) rotates half a circle, it will drive the second transmission wheel (110) to rotate more circles, the second transmission wheel (110) rotation drives the third rotating shaft (111) rotation, the third rotating shaft (111) rotation drives the first conveying wheel (112) rotation, the first conveying wheel (112) rotation drives the first conveying belt (113) rotation, the first conveying belt (113) rotation drives the second conveying wheel (114) rotation, the second conveying wheel (114) rotation drives the first transmission shaft (115) rotation, the first transmission shaft (115) rotation drives the first spur gear (116) rotation, the first spur gear (116) rotation drives the second spur gear (117) rotation, the second spur gear (117) rotation drives the second transmission shaft (118) rotation, the second transmission shaft (118) rotation drives the third conveying wheel (119) rotation, the third conveying wheel (119) rotation drives the second conveying belt (120) rotation, the second conveying belt (120) rotation drives the coiled material (121) to move a distance forward, the coiled material (121) moves forward through the limiting plate (126) to the upper end of the second rotating body (49); S2, in the process of the coiled material (121) moving to one end, the roller (23) will be driven to rotate, the roller (23) rotation drives the first rotating rod (22) rotation, the acid solution in the container (21) can be used for pickling silicon steel sheet; S3, when the eccentric block (14) convex end rotates to the upper end, the first transmission wheel (16) stops rotating, at this time, the eccentric block (14) will continue to rotate and drive the first cam (31) to rotate to the lower end, the first cam (31) rotation drives the first sliding block (32) to move downward, the first sliding block (32) downward movement drives the sliding rod (33) to move downward, the sliding rod (33) downward movement drives the baffle (35) to move downward, the baffle (35) downward movement will compress the first spring (36), the sliding rod (33) downward movement drives the first rotating body (37) to move downward, the first rotating body (37) downward movement drives the pressing block (38) to move downward, the pressing block (38) downward movement will cut the coiled material (121) into silicon steel sheet; S4, at this time start the second motor (41) rotation, the second motor (41) rotation driven third rotating rod (42) rotation, third rotating rod (42) rotation driven rotating disc (43) rotation, rotating disc (43) rotation driven rotating block (44) rotation, rotating disc (43) rotation driven rotating pin (45) around the third rotating rod (42) rotation, rotating pin (45) rotation driven rotating block (46) rotation quarter turn, rotating block (46) rotation quarter turn driven fourth rotating rod (48) rotation quarter turn, fourth rotating rod (48) rotation quarter turn driven second rotating body (49) rotation quarter turn, second rotating body (49) rotation quarter turn driven hollow slot (410) around the fourth rotating rod (48) rotation quarter turn, fourth rotating rod (48) rotation quarter turn driven second rotating body (49) rotation quarter turn, second rotating body (49) rotation quarter turn thereby driven after cutting silicon steel sheet rotation to each step; S5, in the third rotating rod (42) rotation will drive the third transmission wheel (51) rotation, the third transmission wheel (51) rotation driven second belt (52) rotation, second belt (52) rotation driven fourth transmission wheel (53) rotation, fourth transmission wheel (53) rotation driven fifth rotating rod (54) rotation, fifth rotating rod (54) rotation driven second cam (55) rotation, second cam (55) rotation driven arc plate (56) outward movement, arc plate (56) outward movement silicon steel plate outward movement into the storage box (59) inside, silicon steel plate into the storage box (59) inside will be compressed downward second arc block (511), second arc block (511) downward movement will drive the connecting block (512) downward movement, connecting block (512) downward movement driven stop block (513) downward movement, stop block (513) downward movement will compress the second spring (514), when the storage box (59) inside full of silicon steel plate pull out the convex block (517) outward, convex block (517) outward movement driven baffle (516) outward movement, baffle (516) outward movement can be taken out from the limiting block (58) lower end storage box (59).
Citation Information
Patent Citations
Production process and equipment of high-strength non-oriented silicon steel sheet for automobile driving motor
CN116351938A
Silicon steel sheet iron core stacking device
CN207981980U