Device for automatically receiving and collecting silicon steel sheets

By designing an automated silicon steel sheet conveying and receiving device, the problems of instability and low efficiency in the receiving and transfer process of existing devices have been solved, realizing stable transfer and efficient production of silicon steel sheets, and improving the level of automation and overall efficiency of production.

CN224030177UActive Publication Date: 2026-03-24CANWIN AUTOMATIC EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-18
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

Existing silicon steel sheet conveying and receiving devices suffer from problems such as complex structure, inconvenient operation, high maintenance costs, unstable reception, low transfer efficiency, easy damage to silicon steel sheets, and low production efficiency. In particular, they lack adaptability to different feeding heights, resulting in poor production continuity and stability.

Method used

An automatic receiving and receiving device was designed, comprising a material handling machine, a receiving unit, and a lifting assembly. The receiving assembly is driven by a shift motor to perform linear reciprocating motion, thereby realizing the automatic conveying, receiving, and unloading of silicon steel sheets. Combined with the lifting assembly and conveyor chain, the device ensures stable transfer and high adaptability of the silicon steel sheets, avoiding downtime.

Benefits of technology

It improves production efficiency, reduces human error, ensures the stability of silicon steel sheets during transfer, reduces maintenance costs, enhances the level of automation and overall efficiency of production, and guarantees the continuity and stability of production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an automatic silicon steel sheet receiving and collecting device which comprises a material arranging machine used for conveying silicon steel sheets and capable of loosening and falling the silicon steel sheets; the material receiving unit comprises a displacement motor and two oppositely-arranged material receiving assemblies, and the displacement motor is connected with the two material receiving assemblies and drives the two material receiving assemblies to do linear reciprocating motion together so as to drive one material receiving assembly to transversely enter the material arranging machine and receive the stacked silicon steel sheets and drive the other material receiving assembly to move out of the material arranging machine to discharge the silicon steel sheets; the material receiving assembly comprises a rack, a conveying line and a lifting assembly, and the lifting assembly can bear the silicon steel sheets and transfer the silicon steel sheets to the conveying line. A displacement motor in the material receiving unit drives two oppositely-arranged material receiving assemblies to do linear reciprocating motion, one material receiving assembly receives stacked silicon steel sheets, the other material receiving assembly is moved out for discharging, automation of silicon steel sheet conveying, receiving and discharging is achieved, meanwhile, a lifting assembly can stably support the silicon steel sheets and transfer the silicon steel sheets to a conveying line, and the production efficiency is improved. And the stability of the silicon steel sheet in the bearing and transferring process is ensured.
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Description

Technical Field

[0001] This utility model relates to the technical field of silicon steel sheet processing equipment, and in particular to an automatic receiving device for silicon steel sheets. Background Technology

[0002] In the production of silicon steel sheets, the conveying and receiving of the sheets is a crucial step. Traditional methods of conveying and receiving silicon steel sheets typically rely on manual operation, which is not only inefficient but also prone to operational errors, affecting both production quality and efficiency. With the development of automation technology, automated conveying and receiving devices are gradually being applied to silicon steel sheet production lines. However, existing automated devices still have some shortcomings, such as complex structure, inconvenient operation, and high maintenance costs.

[0003] While some existing silicon steel sheet conveying devices can achieve a certain degree of automation, they often suffer from problems such as unstable receiving, low transfer efficiency, and easy damage to the silicon steel sheets during the receiving and transfer process. For example, silicon steel sheet feeding machines magnetically attract and transport silicon steel sheets, releasing them at a higher position to allow them to fall. However, most existing receiving devices lack the ability to flexibly adjust the discharge height, failing to quickly and accurately adapt to different discharge heights according to actual needs. Receiving at a higher position makes it inconvenient to manually remove the silicon steel sheets after receiving, while receiving at a lower position results in a larger falling distance and potential significant positional deviation during the fall, leading to poor receiving results. This often necessitates complex adjustments or even replacements of the equipment during production, increasing operational complexity and workload, severely impacting production efficiency, and reducing production continuity and stability.

[0004] Furthermore, existing conveyor lines typically operate in only one mode: once the material receiving and stacking operations are completed, the entire conveyor system must stop. Frequent shutdowns significantly reduce production efficiency. Each stop disrupts the continuous conveying and stacking of silicon steel sheets, leading to disrupted production cycles and an inability to meet the demands of large-scale, high-efficiency production. Utility Model Content

[0005] This utility model aims to solve at least one of the technical problems existing in the prior art. To this end, this utility model proposes an automatic receiving device for silicon steel sheets, which can realize the automatic conveying, receiving, transfer and unloading of silicon steel sheets, improve production efficiency, and has a reasonable structure, stable receiving and transfer, avoids damage, reduces maintenance costs, is easy to operate, has a high degree of overall automation, reduces manual intervention, and meets the needs of efficient and precise production.

[0006] An automatic receiving device for silicon steel sheets according to an embodiment of the present invention includes:

[0007] A feeder for conveying silicon steel sheets and capable of releasing and dropping the silicon steel sheets;

[0008] The receiving unit includes a shifting motor and two receiving components. The two receiving components are arranged opposite to each other. The shifting motor is connected to and drives the two receiving components to move linearly and reciprocally together, so as to drive one receiving component to enter the material handling machine laterally and receive the stacked silicon steel sheets, and drive the other receiving component to move out of the material handling machine to unload the silicon steel sheets.

[0009] The receiving assembly includes a frame, a conveyor line, and a lifting assembly. The lifting assembly can support the silicon steel sheet and transfer the silicon steel sheet to the conveyor line.

[0010] According to an embodiment of the present invention, an automatic receiving device for silicon steel sheets has at least the following beneficial effects: The silicon steel sheets can be automatically conveyed and released by a feeding machine; in the receiving unit, a shifting motor drives two opposing receiving components to reciprocate linearly, one receiving stacked silicon steel sheets and the other removing and unloading them, thus automating the conveying, receiving, and unloading of silicon steel sheets, greatly improving production efficiency, reducing errors and instabilities caused by manual operation, and ensuring the continuity and stability of the production process; simultaneously, the receiving components include a frame, a conveyor line, and a lifting component. The lifting component can stably support the silicon steel sheets and transfer them to the conveyor line, ensuring the stability of the silicon steel sheets during the receiving and transfer process, effectively preventing damage to the silicon steel sheets, improving product quality, and the overall structural design is scientific and reasonable, adapting to different production needs, and helping to improve the automation level and overall efficiency of production.

[0011] According to some embodiments of the present invention, an automatic receiving device for silicon steel sheets is provided. The conveyor line includes multiple rollers arranged at intervals. The lifting assembly includes a lifting motor and a lifting frame. The lifting motor is connected to and drives the lifting frame to move in the vertical direction. The lifting frame can hold the receiving plate and can sink down into the rollers to transfer the receiving plate onto the rollers.

[0012] According to some embodiments of this utility model, an automatic receiving device for silicon steel sheets is provided, wherein the conveyor line includes a conveyor chain and a conveyor motor, the conveyor motor is connected to and drives the conveyor chain to move in a closed loop, and the conveyor chain is connected to and drives multiple rollers to move together.

[0013] According to some embodiments of the present invention, an automatic receiving device for silicon steel sheets is provided. The conveyor line includes multiple pressure sprockets. The pressure sprockets are located between two rollers and on the lower side of the rollers. The conveyor chain is wound around the pressure sprockets to leave space for the lowering of the lifting frame.

[0014] According to some embodiments of this utility model, an automatic receiving device for silicon steel sheets is provided. The conveyor line includes a conveyor frame, which is provided with a plurality of receiving slots. The receiving slots correspond one-to-one with the pressure sprockets and are located above the pressure sprockets.

[0015] According to some embodiments of this utility model, an automatic receiving device for silicon steel sheets is provided. The lifting assembly includes a screw rotatably mounted on the frame and a screw block fixedly connected to the lifting frame. The screw is arranged vertically, and the lifting frame is slidably mounted on the frame in the vertical direction. The lifting motor is connected to and drives the screw to rotate. The screw block is threadedly engaged with the screw to drive the lifting frame to move in the vertical direction.

[0016] According to some embodiments of this utility model, there are two screws and two screw blocks. The two screw blocks are respectively fixedly connected to both ends of the lifting frame, and the lifting motor drives the two screws to rotate together.

[0017] According to some embodiments of this utility model, an automatic receiving device for silicon steel sheets is provided. The lifting assembly further includes a drive shaft and two reducers. The screw is arranged in a one-to-one correspondence with the reducers and is connected to the output side of the reducers. The lifting motor is connected to and drives the drive shaft to rotate. The two ends of the drive shaft are respectively connected to the input side of the reducers.

[0018] According to some embodiments of the present invention, an automatic receiving device for silicon steel sheets is provided, wherein the receiving unit further includes a track, the track is arranged horizontally perpendicular to the conveying direction of the silicon steel sheets, and both receiving components are slidably disposed on the track.

[0019] According to some embodiments of this utility model, an automatic receiving device for silicon steel sheets is provided. The receiving unit further includes a connecting rod, the two ends of which are fixedly connected to two receiving components to drive the two receiving components to move together.

[0020] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0021] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:

[0022] Figure 1 This is a schematic diagram of the overall structure of an automatic receiving device for silicon steel sheets according to an embodiment of the present invention;

[0023] Figure 2 This is a schematic diagram of the receiving unit of an automatic receiving device for silicon steel sheets according to an embodiment of the present invention;

[0024] Figure 3 This is a schematic diagram of the lifting frame of an automatic silicon steel sheet receiving device in a high position according to an embodiment of the present invention.

[0025] Figure 4 This is a schematic diagram of the structure of the lifting frame of an automatic silicon steel sheet receiving device in a low position, according to an embodiment of the present invention.

[0026] Explanation of icon numbers:

[0027] Frame 100; Rollers 110;

[0028] Conveyor line 200; roller 210; conveyor chain 220; conveyor motor 230; pressure sprocket 240; conveyor frame 250; receiving trough 2501;

[0029] Lifting assembly 300; lifting motor 310; lifting frame 320; support beam 321; screw 331; screw block 332; reducer 340; drive shaft 350;

[0030] 400mm receiving plate;

[0031] 500 feeder;

[0032] Material receiving unit 600; shifting motor 610; material receiving assembly 620; track 630; connecting rod 640; anti-collision rubber 650. Detailed Implementation

[0033] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.

[0034] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0035] In the description of this utility model, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. If "first" or "second" is used in the description, it is only for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.

[0036] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.

[0037] In the description of this utility model, the terms "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of this utility model. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0038] In the production of silicon steel sheets, the conveying and receiving of the sheets is a crucial step. Traditional methods of conveying and receiving silicon steel sheets typically rely on manual operation, which is not only inefficient but also prone to operational errors, affecting both production quality and efficiency. With the development of automation technology, automated conveying and receiving devices are gradually being applied to silicon steel sheet production lines. However, existing automated devices still have some shortcomings, such as complex structure, inconvenient operation, and high maintenance costs.

[0039] While some existing silicon steel sheet conveying devices can achieve a certain degree of automation, they often suffer from problems such as unstable receiving, low transfer efficiency, and easy damage to the silicon steel sheets during the receiving and transfer process. For example, silicon steel sheet feeding machines magnetically attract and transport silicon steel sheets, releasing them at a higher position to allow them to fall. However, most existing receiving devices lack the ability to flexibly adjust the discharge height, failing to quickly and accurately adapt to different discharge heights according to actual needs. Receiving at a higher position makes it inconvenient to manually remove the silicon steel sheets after receiving, while receiving at a lower position results in a larger falling distance and potential significant positional deviation during the fall, leading to poor receiving results. This often necessitates complex adjustments or even replacements of the equipment during production, increasing operational complexity and workload, severely impacting production efficiency, and reducing production continuity and stability.

[0040] Furthermore, existing conveyor lines typically operate in only one mode: once the material receiving and stacking operations are completed, the entire conveyor system must stop. Frequent shutdowns significantly reduce production efficiency. Each stop disrupts the continuous conveying and stacking of silicon steel sheets, leading to disrupted production cycles and an inability to meet the demands of large-scale, high-efficiency production.

[0041] Therefore, such as Figures 1 to 4 As shown, this utility model discloses an automatic receiving device for silicon steel sheets, comprising a feeder 500 and a receiving unit 600. The feeder 500 is used to transport silicon steel sheets and release them for dropping. For example, the feeder 500 magnetically attracts the silicon steel sheets for transport and releases them at a higher position to allow them to fall. Further, the receiving unit 600 includes a shift motor 610 and two receiving components 620. The two receiving components 620 are arranged opposite each other. The shift motor 610 connects to and drives the two receiving components 620 to reciprocate linearly, causing one receiving component 620 to laterally enter the feeder 500 and receive stacked silicon steel sheets, while simultaneously moving the other receiving component 620 out of the feeder 500 to unload the silicon steel sheets. It is easy to understand that the silicon steel sheets are conveyed and dropped by the feeder 500, and the shift motor 610 in the receiving unit 600 drives two opposing receiving components 620 to reciprocate linearly. When one receiving component 620 enters the feeder 500 to receive the stacked silicon steel sheets, the other receiving component 620 can move out of the feeder 500 at the same time to unload the sheets. This avoids the problem of having to stop the machine to transport the sheets after receiving and stacking them, which is a traditional device. It realizes continuous operation of silicon steel sheet conveying and stacking, which greatly improves production efficiency, reduces the increase in labor costs, equipment wear and tear and interference with the production cycle caused by downtime, and ensures the smoothness and efficiency of production.

[0042] Refer to Figure 1 and Figure 2In some embodiments of this utility model, the receiving unit 600 includes a track 630, which is horizontally arranged perpendicular to the conveying direction of the silicon steel sheets. Two receiving components 620 are slidably disposed on the track 630, making the movement of the receiving components 620 more stable and precise, and enabling them to easily extend into the feeder 500 to receive silicon steel sheets. Furthermore, the track 630 provides a clear movement path for the receiving components 620, limiting unnecessary shaking and offset, and ensuring that under the drive of the shift motor 610, the receiving components 620 can accurately perform linear reciprocating motion along a predetermined trajectory. Whether entering the feeder 500 to receive silicon steel sheets or removing them from the feeder 500 for unloading operations, the precision of the movements is guaranteed, thereby improving the reliability and stability of the entire device and contributing to improving the quality and efficiency of silicon steel sheet receiving, stacking, and unloading. Furthermore, in some embodiments of this utility model, the receiving component 620 includes a frame 100 and a plurality of rollers 110. The rollers 110 are arranged around the bottom of the frame 100, and the rollers 110 roll in cooperation with the track 630, greatly reducing the friction when the receiving component 620 moves on the track 630. Compared with sliding, the rolling friction coefficient is much smaller, allowing the receiving component 620 to move more easily and smoothly on the track 630. This not only reduces the power consumption required for the shift motor 610 to drive the receiving component 620, reducing energy costs, but also further improves the speed and response performance of the receiving component 620. It can complete the actions of receiving material into the feeder 500 and unloading material from the feeder 500 more quickly, thereby improving the working efficiency of the entire automatic silicon steel sheet receiving device. Specifically, the shift motor 610 connects to and drives two rollers 110 symmetrically arranged on the frame 100 to rotate together. It is easy to understand that the symmetrically arranged rollers 110, driven by the shift motor 610, enable a more balanced power transmission. The synchronous rotation of the two rollers 110 ensures that the frame 100 experiences more even force on the track 630, preventing problems such as instability, jamming, or deviation from the track 630 caused by uneven force on one side. This design guarantees the smooth movement of the receiving assembly 620, ensuring it maintains a precise position and orientation during the receiving and conveying of silicon steel sheets. This improves the neatness and accuracy of silicon steel sheet stacking, thereby enhancing product quality. Optionally, the symmetrically arranged rollers 110 are fixedly connected by a rotating rod, and the shift motor 610 connects to and drives the rotating rod to rotate.

[0043] Refer to Figure 2In some embodiments of this utility model, the receiving unit 600 includes a connecting rod 640, the two ends of which are fixedly connected to two receiving components 620 to drive the two receiving components 620 to move together. It should be noted that the presence of the connecting rod 640 enhances the coordination and integrity between the two receiving components 620. Under the action of the shifting motor 610, the connecting rod 640 ensures that the two receiving components 620 always maintain consistent relative positions and synchronously perform linear reciprocating motion. This not only allows the two receiving components 620 to complete their work more coordinatedly and smoothly when alternating between receiving and unloading, but also avoids problems such as collisions and interference that may occur due to asynchronous movement of the two receiving components 620, further improving the reliability and stability of the device operation and ensuring the smooth progress of silicon steel sheet receiving, stacking, and unloading operations. Furthermore, during actual operation, due to potential vibrations or movement deviations in the equipment, the two receiving components 620 may collide when approaching their limit positions or in unexpected situations. To address this, the receiving unit 600 includes two anti-collision rubbers 650, each positioned on one side opposite to the other of the two receiving components 620. The anti-collision rubbers 650 possess excellent cushioning properties, absorbing and dispersing the energy generated by the collision, thus preventing damage to the receiving components 620 from direct impact. For example, the anti-collision rubbers 650 may be made of polyurethane or rubber.

[0044] In some applications, 500 magnetic silicon steel sheet feeders are used to transport silicon steel sheets and release them at a higher position to allow them to fall. However, most existing feeding devices lack the ability to flexibly adjust the feeding height, failing to adapt quickly and accurately to different feeding heights according to actual needs. For example, when feeding at a higher position, it is inconvenient to manually remove the silicon steel sheets after feeding, while feeding at a lower position results in a larger falling distance for the silicon steel sheets, which may lead to significant positional deviations during the fall and poor feeding results. This often necessitates complex adjustments or even replacements of the equipment during production, increasing operational complexity and workload, severely impacting production efficiency, and reducing the continuity and stability of production.

[0045] In this regard, refer to Figure 3 and Figure 4In some embodiments of this utility model, the receiving component 620 includes a conveyor line 200 and a lifting component 300. The lifting component 300 can support the silicon steel sheets and transfer them to the conveyor line 200. Furthermore, the lifting component 300 can precisely adjust the height of the silicon steel sheets as needed, ensuring that the silicon steel sheets are accurately placed on the conveyor line 200, avoiding problems such as slippage and collisions caused by inconsistent heights. Simultaneously, the lifting component 300 also facilitates the stacking of silicon steel sheets, enabling them to be neatly stacked according to a set height and order, improving the quality and efficiency of silicon steel sheet stacking.

[0046] The conveyor line 200 includes multiple spaced rollers 210, and the lifting assembly 300 includes a lifting motor 310 and a lifting frame 320. The lifting motor 310 connects to and drives the lifting frame 320 to move vertically. The lifting frame 320 can hold the receiving plate 400 and can sink down into the rollers 210 to transfer the receiving plate 400 onto the rollers 210. It should be noted that the lifting motor 310 of the lifting assembly 300 drives the lifting frame 320 to move vertically, adapting to different material discharge heights. After the receiving plate 400 receives the material, it can transfer it onto the rollers 210. Furthermore, the conveyor line 200 uses multiple spaced rollers 210, which can both stably support the receiving plate 400 and facilitate the conveying of the receiving plate 400. For example, when the silicon steel sheet feeder 500 releases silicon steel sheets at a relatively high height, the lifting frame 320 can quickly and accurately move to the corresponding height, avoiding problems such as difficulty in receiving materials or poor receiving effect caused by height mismatch. In this regard, by adjusting the height of the lifting frame 320, the receiving plate 400 can be placed in a suitable position for receiving materials. After receiving the materials, the receiving plate 400 can sink into the roller 210, so that the receiving plate 400 is transferred to the roller 210, realizing a smooth transition of the silicon steel sheets from the receiving plate 400 to the conveyor line 200. Utilizing the rolling characteristics of the roller 210, the silicon steel sheets can be smoothly conveyed in subsequent processes. The whole process is smooth and continuous, further improving production efficiency.

[0047] When the receiving plate 400 is transferred onto the roller 210, in addition to manually pulling out the receiving plate 400, refer to... Figures 1 to 4 In some embodiments of this utility model, the conveyor line 200 includes a conveyor chain 220 and a conveyor motor 230. The conveyor motor 230 connects to and drives the conveyor chain 220 in a closed-loop motion. The conveyor chain 220 connects to and drives multiple rollers 210 to move together, making the power source of the conveyor line 200 more stable and reliable. The receiving plate 400 can be conveyed outward by running the conveyor motor 230. For example, referring to… Figure 1The receiving plate 400 is conveyed outwards to the receiving trolley, allowing workers to transport the receiving plate 400 as a whole using the trolley. Furthermore, the closed-loop conveyor chain 220 ensures the synchronous rotation of each roller 210, preventing problems such as jamming or deviation of the silicon steel sheets during conveying due to differences in the rotational speed of individual rollers 210. Further, the conveyor line 200 includes multiple pressure sprockets 240, located between two rollers 210 and below them. The conveyor chain 220 is wound around the pressure sprockets 240 to allow space for the lowering of the lifting frame 320. On one hand, the presence of the pressure sprockets 240 effectively tensions the conveyor chain 220, preventing slackness during operation and ensuring that the conveyor chain 220 is always under appropriate tension, thereby ensuring the stability and accuracy of the chain drive. On the other hand, the reasonable arrangement of the pressure sprocket 240 provides the necessary space for the lifting frame 320 to descend, allowing it to smoothly sink between the rollers 210 when the receiving plate 400 needs to be transferred to the rollers 210. This avoids interference with the conveyor chain 220, ensuring the normal operation of the receiving assembly 620 and the smooth progress of the receiving operation. Furthermore, the conveyor line 200 includes a conveyor frame 250 with multiple receiving slots 2501. Each receiving slot corresponds to one of the pressure sprockets 240 and is located above it, further preventing interference with the conveyor chain 220 around the pressure sprocket 240 when the lifting frame 320 sinks into the receiving slot 2501, thus ensuring the stability of the conveyor line 200.

[0048] In some embodiments of this utility model, the lifting frame 320 has a frame structure, which has high structural strength and rigidity, and can withstand greater weight and external forces. During the material receiving process, it can stably support and transfer the receiving plate 400 and the silicon steel sheets stacked on it, and is not easily deformed or damaged. Secondly, the frame structure is relatively lightweight and will not place an excessive load on the lifting motor 310, which is beneficial to the stable operation of the lifting motor 310 and extends its service life. Specifically, as... Figure 3 As shown, the lifting frame 320 includes multiple support beams 321, which are staggered from the rollers 210 and can sink downwards between the two rollers 210. This staggered arrangement of the support beams 321 better adapts to the arrangement of the rollers 210, avoiding potential collisions or slippage that could occur if the lifting frame 320 directly contacts the rollers 210 during descent, thus ensuring the safety and stability of the receiving plate 400 during transfer.

[0049] Refer to Figure 3 and Figure 4In some embodiments of this utility model, the lifting assembly 300 includes a screw 331 rotatably mounted on the frame 100 and a screw block 332 fixedly connected to the lifting frame 320. The screw 331 is vertically arranged, and the lifting frame 320 is slidably mounted on the frame 100 in the vertical direction. The lifting motor 310 is connected to and drives the screw 331 to rotate. The screw block 332 is threadedly engaged with the screw 331 to drive the lifting frame 320 to move in the vertical direction. The threaded transmission method has significant advantages such as high transmission accuracy and good stability. Through the precise cooperation of the screw 331 and the screw block 332, the lifting motor 310 can accurately control the rising and falling positions of the lifting frame 320, thereby achieving precise adaptation to different material feeding heights. Compared to traditional hydraulic or pneumatic drives, threaded drives are unaffected by external environmental factors (such as temperature and humidity), maintaining stable performance in various complex working environments. Furthermore, threaded drives have a self-locking function, ensuring the receiving assembly 620 can reliably operate at a preset height, thus improving equipment reliability. Specifically, there are two screws 331 and two screw blocks 332, each fixedly connected to both ends of the lifting frame 320. The lifting motor 310 drives both screws 331 to rotate together, effectively preventing tilting or swaying of the lifting frame 320 during movement, ensuring the smoothness and accuracy of the receiving plate 400 transfer process. Simultaneously, the dual-screw drive 331 also increases the load-bearing capacity of the lifting assembly 300, enabling it to handle heavier receiving plates 400 and silicon steel sheet loads, further enhancing equipment stability and reliability, extending its service life, and reducing the failure rate. Furthermore, the lifting assembly 300 includes a drive shaft 350 and two reducers 340. A screw 331 is arranged correspondingly to each reducer 340 and connected to the output side of the reducer 340. A lifting motor 310 is connected to and drives the drive shaft 350 to rotate. Both ends of the drive shaft 350 are connected to the input side of the reducer 340. It is easy to understand that the combined use of the drive shaft 350 and the reducers 340 can effectively adjust the speed and torque of the lifting motor 310, making it more suitable for the movement requirements of the lifting frame 320. Specifically, the reducers 340 can convert the high-speed rotation of the lifting motor 310 into the low-speed, high-torque output required by the screw 331, thereby ensuring that the lifting frame 320 can move smoothly and slowly, avoiding shaking or damage to the receiving plate 400 due to excessive speed. The drive shaft 350 evenly transmits the power of the lifting motor 310 to the reducer 340, ensuring that the two screws 331 can rotate synchronously, further improving the stability and reliability of the lifting assembly 300, and enabling the receiving assembly 620 to maintain good working performance under different load conditions.

[0050] The embodiments of the present utility model have been described in detail above with reference to the accompanying drawings. However, the present utility model is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present utility model.

Claims

1. A device for automatically receiving silicon steel sheets, characterized in that, include: A feeder, used to convey silicon steel sheets and capable of releasing and dropping the silicon steel sheets; The receiving unit includes a shifting motor and two receiving components. The two receiving components are arranged opposite to each other. The shifting motor is connected to and drives the two receiving components to move linearly and reciprocally together, so as to drive one receiving component to enter the material handling machine laterally and receive the stacked silicon steel sheets, and drive the other receiving component to move out of the material handling machine to unload the silicon steel sheets. The receiving assembly includes a frame, a conveyor line, and a lifting assembly. The lifting assembly can support the silicon steel sheet and transfer the silicon steel sheet to the conveyor line.

2. The device for automatically receiving silicon steel sheets according to claim 1, characterized in that: The conveyor line includes multiple spaced rollers, and the lifting assembly includes a lifting motor and a lifting frame. The lifting motor is connected to and drives the lifting frame to move in the vertical direction. The lifting frame can hold the receiving plate and can sink down into the roller to transfer the receiving plate onto the roller.

3. The device for automatically receiving silicon steel sheets according to claim 2, characterized in that: The conveyor line includes a conveyor chain and a conveyor motor. The conveyor motor is connected to and drives the conveyor chain in a closed-loop motion. The conveyor chain is connected to and drives multiple rollers to move together.

4. The device for automatically receiving silicon steel sheets according to claim 3, characterized in that: The conveyor line includes multiple pressure sprockets, which are located between two rollers and below the rollers. The conveyor chain is wound around the pressure sprockets to provide space for the lowering of the lifting frame.

5. The device for automatically receiving silicon steel sheets according to claim 4, characterized in that: The conveyor line includes a conveyor frame, which is provided with a plurality of receiving slots, each of which corresponds to a lower pressure sprocket and is located above the lower pressure sprocket.

6. The device for automatically receiving silicon steel sheets according to claim 2, characterized in that: The lifting assembly includes a screw rotatably mounted on the frame and a screw block fixedly connected to the lifting frame. The screw is arranged vertically, and the lifting frame is slidably mounted on the frame in the vertical direction. The lifting motor is connected to and drives the screw to rotate. The screw block is threadedly engaged with the screw to drive the lifting frame to move in the vertical direction.

7. The device for automatically receiving silicon steel sheets according to claim 6, characterized in that: There are two screws and two screw blocks. The two screw blocks are fixedly connected to both ends of the lifting frame, and the lifting motor drives the two screws to rotate together.

8. The device for automatically receiving silicon steel sheets according to claim 7, characterized in that: The lifting assembly also includes a drive shaft and two reducers. The screw is arranged in a one-to-one correspondence with the reducer and is connected to the output side of the reducer. The lifting motor is connected to and drives the drive shaft to rotate. The two ends of the drive shaft are respectively connected to the input side of the reducer.

9. The device for automatically receiving silicon steel sheets according to claim 1, characterized in that: The receiving unit also includes a track, which is arranged horizontally perpendicular to the conveying direction of the silicon steel sheet, and both receiving components are slidably mounted on the track.

10. The device for automatically receiving silicon steel sheets according to claim 1, characterized in that: The receiving unit also includes a connecting rod, the two ends of which are fixedly connected to the two receiving components respectively, so as to drive the two receiving components to move together.