Material transferring equipment for switch cabinet production cutting
By designing a material transfer device for switchgear production, the problem of low efficiency in manual transfer of metal scrap was solved, realizing the mechanized collection and transportation of metal scrap and improving production efficiency.
Patent Information
- Application Number
- CN202511089994.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-05
- Publication Date
- 2025-12-12
AI Technical Summary
The transfer of metal scrap during the switchgear production process relies entirely on manual labor, resulting in high labor intensity and low work efficiency, which affects overall production efficiency.
Design a material transfer device that includes a main frame, a guiding mechanism, a box, and an adjustment mechanism. The guiding mechanism feeds the metal scrap into the box, and the adjustment mechanism moves the fully loaded box to the outside of the main frame, thereby realizing the mechanized collection and transportation of metal scrap.
It reduced the labor intensity of staff, improved the efficiency of metal waste transfer and processing, and realized the mechanized collection and transportation of metal waste.
Smart Images

Figure CN121104729A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of switchgear manufacturing technology, and in particular to a material transfer device for cutting in switchgear manufacturing. Background Technology
[0002] The main function of switchgear is to open, close, control, and protect electrical equipment during the power generation, transmission, distribution, and energy conversion processes in a power system. The main components of switchgear include circuit breakers, disconnect switches, load switches, operating mechanisms, instrument transformers, and various protective devices. Switchgear can be classified in many ways, such as by the circuit breaker installation method (removable switchgear and fixed switchgear); or by the cabinet structure (open switchgear, metal-enclosed switchgear, and metal-enclosed armored switchgear); and by voltage level (high-voltage switchgear, medium-voltage switchgear, and low-voltage switchgear). It is mainly suitable for various applications such as power plants, substations, petrochemical plants, metallurgical steel rolling mills, light industry and textiles, factories and mines, residential communities, and high-rise buildings.
[0003] The production process of switch cabinets requires sheet metal stamping or cutting, which generates a large amount of metal waste. Currently, this waste is collected and transported manually for unified processing. The entire process of transferring metal waste relies entirely on manual labor, resulting in high labor intensity and low work efficiency for workers, which affects overall production efficiency. Summary of the Invention
[0004] The main objective of this invention is to provide a material transfer device for cutting switchgear during production, which aims to solve the problem that the entire transfer process of metal scrap relies entirely on manual labor, resulting in high labor intensity and low work efficiency for workers, thus affecting overall production efficiency.
[0005] To achieve the above objectives, the technical solution proposed by this invention is as follows: A material transfer device for cutting switchgear during production includes a main frame, a guide mechanism, a housing, and an adjustment mechanism. The main frame forms a receiving space, and one side of the main frame forms a discharge port communicating with the receiving space. The housing is located within the receiving space. Both the guide mechanism and the adjustment mechanism are disposed on the main frame. The guide mechanism is positioned above the receiving space, and the side of the housing facing the guide mechanism forms an open opening. The guide mechanism is used to feed scrap metal into the housing located within the receiving space. The adjustment mechanism is located on the side of the receiving space opposite to the discharge port. The adjustment mechanism is driven and connected to the housing. When the guide mechanism feeds a preset amount of scrap metal into the housing within the receiving space, the adjustment mechanism drives the housing through the discharge port into the outside of the main frame.
[0006] Preferably, the guiding mechanism includes a guide frame, an inclined plate, a limiting plate, and two limiters. The guide frame is horizontally arranged, and a plurality of limiting rods are arranged within the guide frame. The limiting rods are arranged sequentially in the horizontal direction, forming a feeding channel between each limiting rod. Each feeding channel is used for the passage of metal scrap. The inclined plate is arranged between the receiving space and the guide frame. The limiting plate is located between the inclined plate and the receiving space away from the guide frame. One end of the limiting plate and the end of the inclined plate away from the guide frame are hinged by a hinge shaft. The end of the limiting plate away from the inclined plate is connected to the main frame through the two limiters. The inclined plate is used to guide the metal scrap passing through each feeding channel into the side of the limiting plate away from the receiving space. The two limiters are used to accommodate a preset number of metal scraps on the side of the limiting plate away from the receiving space, so that the limiting plate moves along the hinge shaft towards the receiving space, sending the metal scrap into the box.
[0007] Preferably, the limiter includes a first connecting seat, a second connecting seat, and a tension spring. The first connecting seat is connected to the main frame, the second connecting seat is connected to the end of the limit plate away from the hinge axis, one end of the tension spring is connected to the first connecting seat, and the other end of the tension spring is connected to the second connecting seat.
[0008] Preferably, the adjustment mechanism includes a first push plate and an electrically controlled telescopic column. The first push plate is disposed on the side of the accommodating space away from the discharge port, and the electrically controlled telescopic column is located on the side of the first push plate away from the accommodating space. The output end of the electrically controlled telescopic column is driven and connected to the first push plate, and the electrically controlled telescopic column is used to drive the box to move towards the discharge port through the first push plate.
[0009] Preferably, the side of the box away from the opening is provided with casters, and the side of the box away from the accommodating space is provided with a connecting latch.
[0010] Preferably, the main frame body is further provided with a loading space and a loading port, the loading port being connected to the loading space, the loading space being used to accommodate another box; the loading space is located on one side of the accommodating space, the loading space being connected to the accommodating space; a loading mechanism is provided in the loading space, the loading mechanism being located on the side of the loading space away from the loading port; the loading mechanism is used to drive the box in the loading space into the accommodating space when the adjusting mechanism sends the box in the accommodating space out of the main frame body, so that the adjusting mechanism drives the box sent into the accommodating space by the loading mechanism.
[0011] Preferably, the feeding mechanism includes a linear slide rail and a second pusher plate. The linear slide rail is disposed on the side of the feeding space away from the feeding port and extends along the side of the feeding space away from the receiving space toward the connection between the feeding space and the receiving space. The second pusher plate is located on the side of the feeding space away from the receiving space, and the side of the second pusher plate facing the receiving space is used to receive the box. The linear slide rail is driven to connect with the second pusher plate, and the linear slide rail is used to drive the box in the feeding space into the receiving space by controlling the second pusher plate.
[0012] Preferably, a door and a driver are provided at the feeding port. The driver is connected to the door and is used to drive the door to close the feeding port when the second push plate leaves the feeding space and moves away from the receiving space.
[0013] Preferably, the driver includes two tracks and two first electrically controlled slides. The two tracks are vertically arranged on one side of the main frame where the loading port is located, and the two tracks are arranged parallel and spaced apart. The loading port is located between the two tracks. One of the first electrically controlled slides is slidably arranged on one of the tracks, and the other first electrically controlled slide is slidably arranged on the other track. The two first electrically controlled slides are driven to connect to the door body, and the two first electrically controlled slides are used to drive the door body to move vertically along the tracks so that the door body can open and close the loading port.
[0014] Compared with the prior art, the present invention has at least the following beneficial effects: The external conveyor belt transports metal scrap to the guiding mechanism, which then guides the scrap into the container. Once a sufficient quantity is loaded, the container is moved to the outside of the main frame by an adjustment mechanism, allowing workers to move it using trailers or other tools for unified processing of the metal scrap. This mechanizes the entire process of collecting and transporting metal scrap, reducing workload and improving efficiency. Attached Figure Description
[0015] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.
[0016] Figure 1 This is a schematic diagram of an embodiment of a material transfer device for cutting switchgear production according to the present invention; Figure 2 for Figure 1A structural diagram from another perspective.
[0017] Explanation of icon numbers: 1-Main frame; 11-Accommodation space; 12-Discharge port; 13-Feeding space; 14-Feeding port; 15-Slide rail; 16-Second electrically controlled slide; 17-Infrared rangefinder; 18-Pressure sensor; 2-Guiding mechanism; 21-Guide frame; 22-Sloping plate; 23-Limiting plate; 24-Limiting rod; 25-Discharge channel; 26-First connecting seat; 27-Second connecting seat; 28-Tension spring; 3-Adjustment mechanism; 31-First push plate; 32-Electrically controlled telescopic column; 33-Clamping plate; 34-Vibration motor; 4-Feeding mechanism; 41-Linear slide rail; 42-Second push plate; 43-Door body; 44-Railway; 45-Electrically controlled slide block; 5-Box body; 51-Wheel casters; 52-Connecting latch; The realization of the objective, functional features and advantages of the present invention will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0018] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.
[0019] It should be noted that all directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of the present invention are only used to explain the relative positional relationship and movement of each component in a certain specific posture (as shown in the figure). If the specific posture changes, the directional indication will also change accordingly.
[0020] Furthermore, in this invention, descriptions involving "first," "second," etc., are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this invention, "a plurality of" means at least two, such as two, three, etc., unless otherwise explicitly specified.
[0021] In this invention, unless otherwise explicitly specified and limited, the terms "connection," "fixed," etc., should be interpreted broadly. For example, "fixed" can mean a fixed connection, a detachable connection, or an integral part; it can mean a mechanical connection or an electrical connection; it can mean a direct connection or an indirect connection through an intermediate medium; it can mean the internal communication of two components or the interaction between two components, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0022] Furthermore, the technical solutions of the various embodiments of the present invention can be combined with each other, but only if they are feasible for those skilled in the art. If the combination of technical solutions is contradictory or cannot be implemented, it should be considered that such combination of technical solutions does not exist and is not within the scope of protection claimed by the present invention.
[0023] This invention proposes a material transfer device for cutting in the production of switchgear.
[0024] like Figures 1 to 2 The shown material transfer device for cutting switchgear production includes a main frame 1, a guide mechanism 2, a housing 5, and an adjustment mechanism 3. The main frame 1 forms a receiving space 11, and a discharge port 12 communicating with the receiving space 11 is formed on one side of the main frame 1. The housing 5 is located inside the receiving space 11. The guide mechanism 2 and the adjustment mechanism 3 are both disposed on the main frame 1. The guide mechanism 2 is located above the receiving space 11, and the housing 5 has an open side facing the guide mechanism 2. The guide mechanism 2 is used to feed metal scrap into the housing 5 located in the receiving space 11. The adjustment mechanism 3 is located on the side of the receiving space 11 away from the discharge port 12. The adjustment mechanism 3 drives the housing 5. When the guide mechanism 2 feeds a preset amount of metal scrap into the housing 5 in the receiving space 11, the adjustment mechanism 3 drives the housing 5 to enter the outside of the main frame 1 through the discharge port 12.
[0025] The external conveyor belt transports the metal scrap to the guide mechanism 2, and then the guide mechanism 2 guides the external metal scrap into the container 5 in sequence. When a sufficient quantity is loaded, the adjustment mechanism 3 moves the container 5 to the outside of the main frame 1 so that the staff can move the container 5 with tools such as trailers for unified processing of the metal scrap. The entire process of collecting and transporting metal scrap is mechanized, reducing labor intensity and improving work efficiency.
[0026] The guiding mechanism 2 includes a guide frame 21, an inclined plate 22, a limiting plate 23, and two limiters. The guide frame 21 is horizontally arranged, and several limiting rods 24 are arranged inside the guide frame 21. The limiting rods 24 are arranged sequentially in the horizontal direction, and a feeding channel 25 is formed between the limiting rods 24 for metal scrap to pass through. The inclined plate 22 is arranged between the receiving space 11 and the guide frame 21. The limiting plate 23 is located between the inclined plate 22 and the receiving space 11, away from the guide frame 21. One end of the inclined plate 22 and the end away from the guide frame 21 are hinged together by a hinge shaft. The end of the limiting plate 23 away from the inclined plate 22 is connected to the main frame 1 by two limiters. The inclined plate 22 is used to guide the metal scrap passing through each feeding channel 25 into the side of the limiting plate 23 away from the receiving space 11. The two limiters are used to allow the limiting plate 23 to move along the hinge shaft towards the receiving space 11 when it receives a preset amount of metal scrap on the side away from the receiving space 11, thus feeding the metal scrap into the box 5. By setting multiple feeding channels 25 in the guide frame 21, a large amount of metal scrap is prevented from falling together, which can effectively protect the inclined plate 22 and the limiting plate 23. The limiting plate 23 and the two limiters have the effect of quantitative feeding, which facilitates the control of the amount of metal scrap entering the box 5.
[0027] Specifically, a controller is also installed inside the main frame 1; the main frame 1 is also equipped with a slide rail 15 and a second electrically controlled slide block 16. The slide rail 15 is located above the accommodating space 11, and is located on the side of the limiting plate 23 away from the hinge axis. The slide rail 15 is parallel to the hinge axis. The second electrically controlled slide block 16 is slidably connected to the slide rail 15. An infrared rangefinder 17 is installed on the side of the second electrically controlled slide block 16 facing the accommodating space 11. The second electrically controlled slide block 16 is used to drive the infrared rangefinder 17 to slide along the slide rail 15 so that the infrared rangefinder 17 can sequentially detect the height data of the metal scrap in the box 5. The controller is electrically connected to the electrically controlled telescopic column 32 and the infrared rangefinder 17 respectively. The controller is used to acquire each height data and control the electrically controlled telescopic column 32 according to each height data so that the box 5 is loaded with metal scrap sequentially along the telescopic direction of the electrically controlled telescopic column 32. The controller determines whether there is enough metal scrap in the box 5 based on the height data of the metal scrap. The metal scrap is loaded sequentially in the box 5 from the side closest to the discharge port 12 toward the electrically controlled telescopic column 32 to avoid excessive stacking. The lead box 5 enters and exits the main frame 1.
[0028] Specifically, the controller is used to acquire the length data of the slide rail, and according to the length data, divide the slide rail into three monitoring areas along the length direction of the slide rail; the controller is also used to determine the starting point of the three monitoring areas according to the initial position of the second electric control slide 16; and then, according to the set value and the three starting points, determine the detection points in the three monitoring areas, and control the second electric control slide 16 to drive the infrared rangefinder 17 to move sequentially to the three detection points for height detection.
[0029] Specifically, the setpoints include at least one parameter, the value of which is less than or equal to one-third of the length of slide 15. The controller obtains one of the setpoints on demand and executes the step of determining the detection points in the three monitoring areas based on the setpoints and the starting point. This ensures that the actual position of the detection point is different each time, maximizing the control over the flatness of the metal scrap inside the housing 5.
[0030] The limiter includes a first connecting seat 26, a second connecting seat 27, and a tension spring 28. The first connecting seat 26 is connected to the main frame 1, and the second connecting seat 27 is connected to the end of the limit plate 23 away from the hinge axis. One end of the tension spring 28 is connected to the first connecting seat 26, and the other end of the tension spring 28 is connected to the second connecting seat 27. Automatic feeding and quantitative feeding are achieved by utilizing the tension spring 28 and the weight of the scrap metal.
[0031] The adjustment mechanism 3 includes a first push plate 31 and an electrically controlled telescopic column 32. The first push plate 31 is located on the side of the accommodating space 11 away from the discharge port 12. The electrically controlled telescopic column 32 is located on the side of the first push plate 31 away from the accommodating space 11. The output end of the electrically controlled telescopic column 32 is driven to connect to the first push plate 31. The electrically controlled telescopic column 32 is used to drive the box 5 to move towards the discharge port 12 through the first push plate 31.
[0032] Specifically, two clamping plates 33 are installed on the side of the first push plate 31 facing the electrically controlled telescopic column 32. The box body 5 is located between the two clamping plates 33. Vibration motors 34 are installed on the side of each clamping plate 33 away from the box body 5. The controller is electrically connected to the two vibration motors 34 and is used to drive the two clamping plates 33 to vibrate the box body 5. The arrangement of the two clamping plates 33 in conjunction with the two vibration motors 34 further flattens the metal scrap inside the box body 5, maximizing the utilization of the space inside the box body 5.
[0033] Specifically, a pressure sensor 18 is also installed between the two drives. The detection end of the pressure sensor 18 abuts against the side of the limiting plate 23 away from the receiving space 11. The pressure sensor 18 is used to detect the number of times the limiting plate 23 discharges material. The controller is electrically connected to the pressure sensor 18. The controller is used to determine the actual weight of the metal scrap in the box 5 based on the number of discharges and to control the electrically controlled telescopic column based on the actual weight. The installation of the pressure sensor 18 can prevent the box 5 from being overloaded.
[0034] A caster wheel 51 is installed on the side of the container 5 away from the open end, and a connecting latch 52 is installed on the side of the container 5 away from the storage space 11. The caster wheel 51 assists in the movement of the container 5, and the connecting latch 52 facilitates the towing of the container 5 by an external trailer.
[0035] The main frame 1 is also equipped with a loading space 13 and a loading port 14. The loading port 14 is connected to the loading space 13, which is used to accommodate another box 5. The loading space 13 is located on one side of the accommodating space 11 and is connected to the accommodating space 11. A loading mechanism 4 is installed in the loading space 13, located on the side of the loading space 13 away from the loading port 14. The loading mechanism 4 is used to drive the box 5 in the loading space 13 into the accommodating space 11 when the adjusting mechanism 3 sends the box 5 in the accommodating space 11 out of the main frame 1, so that the adjusting mechanism 3 drives the box 5 sent into the accommodating space 11 by the loading mechanism 4. The setting of the loading space 13 and the other box 5 in the loading space 13 effectively enhances the continuity of metal scrap transportation and further improves the operating efficiency.
[0036] Specifically, the feeding port 14 and the discharging port 12 are located on the same side of the main frame 1, and the connection between the feeding space 13 and the accommodating space 11 is located between the feeding port 14 and the discharging port 12.
[0037] The feeding mechanism 4 includes a linear slide rail 41 and a second push plate 42. The linear slide rail 41 is located on the side of the feeding space 13 away from the feeding port 14, and extends along the side of the feeding space 13 away from the receiving space 11 to the connection between the feeding space 13 and the receiving space 11. The second push plate 42 is located on the side of the feeding space 13 away from the receiving space 11, and the side of the second push plate 42 facing the receiving space 11 is used to receive the box 5. The linear slide rail 41 is driven and connected to the second push plate 42. The linear slide rail 41 is used to drive the box 5 in the feeding space 13 into the receiving space 11 by controlling the second push plate 42. When the electrically controlled telescopic column sends the fully loaded box 5 out of the main frame 1 through the discharge port 12 via the first push plate 31, and the electrically controlled telescopic column drives the first push plate 31 to reset, the linear slide rail 41 drives the other unloaded box 5 through the feeding space 13 into the receiving space 11 via the second push plate 42.
[0038] A door 43 and a driver are provided at the feeding port 14. The driver drives the door 43 to close the feeding port 14 when the second push plate 42 leaves the feeding space 13 and moves away from the receiving space 11.
[0039] The actuator includes two rails 44 and two first electrically controlled slides 45. The two rails 44 are vertically arranged on one side of the main frame 1 where the loading port 14 is located, and the two rails 44 are parallel and spaced apart. The loading port 14 is located between the two rails 44. One first electrically controlled slide 45 is slidably arranged on one rail 44, and the other first electrically controlled slide 45 is slidably arranged on the other rail 44. The two first electrically controlled slides 45 are driven to connect to the door body 43, and are used to drive the door body 43 to move vertically along the rails 44, so that the door body 43 opens and closes the loading port 14. The arrangement of the door body 43 and the actuator can prevent an external trailer from accidentally sending another empty box 5 into the loading space 13 when an empty box 5 enters the receiving space 11. The actuator will only drive the door body 43 to open the loading port 14 when the second push plate 42 is reset to the side of the loading space 13 away from the receiving space 11.
[0040] The above description is merely a preferred embodiment of the present invention and does not limit the patent scope of the present invention. Any equivalent structural transformations made using the contents of the present invention's specification and drawings under the inventive concept of the present invention, or direct / indirect applications in other related technical fields, are included within the patent protection scope of the present invention.
Claims
1. A material transfer device for cutting switchgear during production, characterized in that, The device includes a main frame, a guide mechanism, a housing, and an adjustment mechanism. The main frame forms a receiving space, and one side of the main frame forms a discharge port communicating with the receiving space. The housing is located within the receiving space. Both the guide mechanism and the adjustment mechanism are located on the main frame. The guide mechanism is positioned above the receiving space, and the side of the housing facing the guide mechanism forms an open opening. The guide mechanism is used to feed scrap metal into the housing located within the receiving space. The adjustment mechanism is located on the side of the receiving space opposite to the discharge port. The adjustment mechanism is driven and connected to the housing. When the guide mechanism feeds a preset amount of scrap metal into the housing within the receiving space, the adjustment mechanism drives the housing to enter the outside of the main frame through the discharge port.
2. The material transfer equipment for cutting switchgear during production according to claim 1, characterized in that, The guiding mechanism includes a guide frame, an inclined plate, a limiting plate, and two limiters. The guide frame is horizontally arranged, and several limiting rods are arranged within the guide frame. The limiting rods are arranged sequentially in the horizontal direction, forming a feeding channel between them. Each feeding channel is used for the passage of metal scrap. The inclined plate is located between the receiving space and the guide frame. The limiting plate is located between the inclined plate and the receiving space away from the guide frame. One end of the limiting plate and the end of the inclined plate away from the guide frame are hinged by a hinge shaft. The end of the limiting plate away from the inclined plate is connected to the main frame through the two limiters. The inclined plate is used to guide the metal scrap passing through each feeding channel into the side of the limiting plate away from the receiving space. The two limiters are used to accommodate a preset number of metal scraps on the side of the limiting plate away from the receiving space, so that the limiting plate moves along the hinge shaft towards the receiving space, sending the metal scrap into the box.
3. The material transfer equipment for cutting switchgear during production according to claim 2, characterized in that, The limiter includes a first connecting seat, a second connecting seat, and a tension spring. The first connecting seat is connected to the main frame, the second connecting seat is connected to the end of the limit plate away from the hinge axis, one end of the tension spring is connected to the first connecting seat, and the other end of the tension spring is connected to the second connecting seat.
4. The material transfer equipment for cutting switchgear during production according to claim 1, characterized in that, The adjustment mechanism includes a first push plate and an electrically controlled telescopic column. The first push plate is disposed on the side of the accommodating space away from the discharge port. The electrically controlled telescopic column is located on the side of the first push plate away from the accommodating space. The output end of the electrically controlled telescopic column is driven and connected to the first push plate. The electrically controlled telescopic column is used to drive the box to move towards the discharge port through the first push plate.
5. A material transfer device for cutting switchgear during production according to claim 1, characterized in that, The box body is equipped with casters on the side away from the opening, and a connecting latch is provided on the side of the box body away from the storage space.
6. A material transfer device for cutting switchgear during production according to any one of claims 1-5, characterized in that, The main frame body is also provided with a loading space and a loading port, the loading port is connected to the loading space, and the loading space is used to accommodate another box; the loading space is located on one side of the accommodating space and is connected to the accommodating space; A feeding mechanism is provided in the feeding space, and the feeding mechanism is located on the side of the feeding space away from the feeding port; the feeding mechanism is used to drive the box in the feeding space into the receiving space when the adjustment mechanism sends the box in the receiving space out of the main frame, so that the adjustment mechanism drives the box sent into the receiving space by the feeding mechanism.
7. A material transfer device for cutting switchgear during production according to claim 6, characterized in that, The feeding mechanism includes a linear slide rail and a second pusher plate. The linear slide rail is located on the side of the feeding space away from the feeding port and extends along the side of the feeding space away from the receiving space toward the connection between the feeding space and the receiving space. The second pusher plate is located on the side of the feeding space away from the receiving space, and the side of the second pusher plate facing the receiving space is used to receive the box. The linear slide rail is driven by the second pusher plate, and the linear slide rail is used to drive the box in the feeding space into the receiving space by controlling the second pusher plate.
8. A material transfer device for cutting switchgear during production according to claim 7, characterized in that, A door and a driver are provided at the feeding port. The driver is connected to the door and is used to drive the door to close the feeding port when the second push plate leaves the feeding space and moves away from the receiving space.
9. A material transfer device for cutting switchgear during production according to claim 8, characterized in that, The drive includes two tracks and two first electrically controlled slides. The two tracks are vertically arranged on one side of the main frame where the loading port is located. The two tracks are parallel and spaced apart, and the loading port is located between the two tracks. One of the first electrically controlled slides is slidably arranged on one of the tracks, and the other first electrically controlled slide is slidably arranged on the other track. The two first electrically controlled slides are driven to connect to the door body. The two first electrically controlled slides are used to drive the door body to move vertically along the tracks so that the door body can open and close the loading port.