Environment-friendly new energy automobile blade battery shell cutting equipment

By designing an environmentally friendly cutting equipment for blade battery shells for new energy vehicles, the vertical cutting wheel and the cross cutting wheel are used to achieve simultaneous cutting, combining transmission and palletizing components, the problem of low production efficiency in the prior art is solved, and an efficient and automated cutting and collection process is achieved.

CN120055355AInactive Publication Date: 2025-05-30CHANGZHOU KUBODE NEW ENERGY TECH CO LTD
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Patent Information

Application Number
CN202510459697.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-14
Publication Date
2025-05-30
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the prior art, the production efficiency of the new energy blade battery case is low, and it is necessary to cut length and width respectively, and there are many processing steps, resulting in low production efficiency.

Method used

An environmentally friendly new energy vehicle blade battery shell cutting equipment is designed, and the longitudinal cutting wheel and the transverse cutting wheel are used to achieve gradual cutting of the required length and width of the battery shell in the same device. Combined with the transmission component and the palletizing component, automatic conveying and automatic collection are achieved, reducing manual operation.

Benefits of technology

By reducing the processing process, the battery case is simultaneously cut, which improves production efficiency, saves production costs, reduces labor intensity for workers, and realizes automatic collection and transportation of cutting materials.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses environment-friendly new energy automobile blade battery shell cutting equipment, and relates to the technical field of cutting equipment, the environment-friendly new energy automobile blade battery shell cutting equipment comprises a mounting seat, a main driving motor is mounted on the mounting seat, and two longitudinal cutting wheels are symmetrically mounted on the mounting seat; when cutting is needed, a cutting material is conveyed to the cutting equipment through the conveying assembly, the main driving motor is started in a timing mode, the main driving motor drives the two longitudinal cutting wheels to rotate, longitudinal cutting of the material is completed, and the material continues to be conveyed forwards; and transverse cutting of the cutting material is completed through the transverse cutting assembly, step-by-step cutting of the needed length and width of the battery shell is achieved, the machining process is shortened, and the production efficiency can be improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of cutting equipment, and specifically, it is an environmentally friendly cutting equipment for the blade battery case of new energy vehicles. Background Art

[0002] The new energy blade battery is a kind of lithium iron phosphate battery launched by BYD. It gets its name because of its long and thin shape similar to a blade. It uses lithium iron phosphate as the cathode material, has the advantages of high safety, long life and low cost. The unique structural design improves the space utilization rate and increases the energy density of the battery pack. It is widely used in electric vehicles (such as BYD Han EV) and energy storage systems, greatly promoting the development of new energy vehicles.

[0003] During the use of the blade battery, it needs to be neatly arranged in the battery case, and the battery case requires specific length and width. In the existing technology, the length and width need to be cut separately on different devices, with many processing steps and low production efficiency of the battery case. Summary of the Invention

[0004] The purpose of the present invention is to provide an environmentally friendly cutting equipment for the blade battery case of new energy vehicles to solve the problems raised in the existing technology.

[0005] To achieve the above purpose, the present invention provides the following technical solution: The environmentally friendly cutting equipment for the blade battery case of new energy vehicles includes a mounting base. A main drive motor is installed on the mounting base. A main shaft is installed on the output shaft of the main drive motor. A central gear is installed on the main shaft. Two transmission rods are symmetrically installed on the mounting base. Both of the two transmission rods are rotatably installed. Longitudinal cutting gears are installed on both sides of the two transmission rods close to the main drive motor. The longitudinal cutting gears are meshed with the central gear. Longitudinal cutting wheels are installed on both sides of the two transmission rods away from the main drive motor. A transverse cutting assembly and a conveying assembly are arranged on the mounting base.

[0006] As a preferred technical solution, the transverse cutting assembly includes a first module slide rail, a slide seat, a sub-drive motor, a drive gear, a driven gear, a transverse cutting wheel, a touch switch, a working cylinder, a sealed air chamber, a slide rod, a negative pressure fan, a mounting plate, a connecting column and a transmission gear;

[0007] The first module slide rail is installed on the mounting base. The slide seat is slidably installed on the first module slide rail. The sub-drive motor is installed on the slide seat. The drive gear is installed on the output shaft of the sub-drive motor. The driven gear is rotatably installed on the mounting base. The drive gear is meshed with the driven gear. The transverse cutting wheel is installed on the driven gear. The touch switch is installed on one side of the first module slide rail close to the main drive motor. The first module slide rail is electrically connected to the sub-drive motor.

[0008] As an optimal technical solution, a working cylinder is installed on the slide rail of the first module, and the working cylinder is sleeved outside the touch switch. A sliding rod is slidably installed in the working cylinder, and the sliding rod and the working cylinder form a closed air chamber. A mounting plate is installed on the mounting seat, and a connecting column is rotatably installed on the mounting plate. A transmission gear is installed at one end of the connecting column close to the center gear, and the transmission gear is meshed with the center gear. A negative pressure fan is installed at the other end of the connecting column, and the negative pressure fan extends into the working cylinder.

[0009] As a preferred technical solution, the transmission assembly includes a mounting chamber, a driving rotating column, a driven rotating column, a crawler, a driving pulley, a mounting block, a suction cup body, a working chamber, a circular partition, a movable rod, an electric telescopic rod, a buffer spring, a two-way air pump, a vent hole, a mounting hole, an air pipe, a rubber gasket and a suction cup air chamber;

[0010] A driving column and a driven column are rotatably mounted on the mounting seat, the driving column and the driven column are located at the same height, the driving column and the driven column are connected by two sets of tracks, an installation chamber is opened on the mounting seat, the transmission rod and the driving column both extend into the installation chamber, the transmission rod and the driving column are connected by a transmission belt, a number of mounting blocks are evenly distributed on the two sets of tracks, a suction cup body is mounted on the mounting block, and a suction cup air chamber is mounted on the suction cup body.

[0011] As an optimal technical solution, a working room is provided in the suction cup body, a circular partition is installed in the working room, an electric telescopic rod is installed on the circular partition, a movable rod is slidably installed in the working room, a suction cup air chamber is installed on the upper end of the movable rod, a two-way air pump is installed under the circular partition, a mounting hole is provided at the lower end of the suction cup air chamber, and the two-way air pump is connected to the mounting hole through an air pipe.

[0012] As a preferred technical solution, the circular partition is connected to the bottom end of the movable rod through a buffer spring, and a vent hole is opened on the wall surface of the suction cup body outside the two-way air pump.

[0013] As a preferred technical solution, a stacking assembly is provided on the mounting seat, and the stacking assembly is located on the side of the cross-cutting wheel away from the main driving motor.

[0014] As a preferred technical solution, the stacking assembly includes a second module slide rail, a stacking platform, a receiving spring, a receiving circular plate, a collecting partition and a side collecting frame;

[0015] A second module slide rail is installed on the mounting seat, a stacking platform is slidably installed on the second module slide rail, a plurality of receiving springs are evenly distributed on the stacking platform, a plurality of receiving circular plates are installed on the upper ends of the receiving springs, two collecting partitions are symmetrically installed on the stacking platform, and the collecting partitions and the mounting seat form two side collecting frames.

[0016] As a preferred technical solution, the palletizing component further includes a limit induction column. The limit induction column is installed at the middle position of the palletizing platform and is electrically connected to the second module slide rail.

[0017] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0018] 1. With the longitudinal cutting wheel and the transverse cutting wheel, the present equipment can gradually cut the required length and width of the battery shell within the same equipment, reducing the processing flow and improving production efficiency.

[0019] 2. By arranging a conveying component inside the equipment to realize the conveyance of the cutting materials, it is avoided that an additional conveying device needs to be set outside the equipment, saving production costs and reducing the production floor area. At the same time, the conveyance is synchronized with the longitudinal cutting. When the longitudinal cutting stops, the conveyance of the cutting materials also stops, facilitating the transverse cutting of the equipment and ensuring the normal operation of the equipment.

[0020] 3. By arranging a palletizing component, the automatic collection and palletizing of the cut materials are realized, reducing the labor intensity of workers and improving work efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 is a schematic structural diagram of the first perspective of the present invention;

[0022] Figure 2 is a schematic structural diagram of the second perspective of the present invention;

[0023] Figure 3 is a schematic structural diagram of the third perspective of the present invention;

[0024] Figure 4 is a schematic structural diagram of the fourth perspective of the present invention;

[0025] Figure 5 is a schematic sectional view of the first cut of the present invention;

[0026] Figure 6 is a schematic sectional view of the second cut of the present invention;

[0027] Figure 7 is a schematic partial sectional view of the present invention;

[0028] Figure 8 is the present invention Figure 4 is an enlarged schematic structural diagram of part A in the present invention;

[0029] Figure 9 is the present invention Figure 5 is an enlarged schematic structural diagram of part B in the present invention.

[0030] In the figure: 1. mounting base; 2. main drive motor; 3. main shaft; 4. central gear; 5. longitudinal cutting gear; 6. transmission rod; 7. longitudinal cutting wheel;

[0031] 8. Cross-cutting assembly; 801. First module slide rail; 802. Slide seat; 803. Auxiliary driving motor; 804. Driving gear; 805. Driven gear; 806. Cross-cutting wheel; 807. Touch switch; 808. Working cylinder; 809. Sealed air chamber; 810. Slide rod; 811. Negative pressure fan; 812. Mounting plate; 813. Connecting column; 814. Transmission gear;

[0032] 9. Transmission assembly; 901. Installation chamber; 902. Driving column; 903. Driven column; 904. Track; 905. Transmission belt; 906. Installation block; 907. Suction cup body; 908. Studio; 909. Round partition; 910. Movable rod; 911. Electric telescopic rod; 912. Buffer spring; 913. Two-way air pump; 914. Ventilation hole; 915. Installation hole; 916. Air pipe; 917. Rubber gasket; 918. Suction cup air chamber;

[0033] 10. Palletizing assembly; 1001. Second module slide rail; 1002. Palletizing platform; 1003. Support spring; 1004. Support circular plate; 1005. Limit sensing column; 1006. Collection partition; 1007. Side collection frame. DETAILED DESCRIPTION

[0034] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0035] Example: Figures 1-6 As shown, the present invention provides a technical solution for an environmentally friendly new energy vehicle blade battery shell cutting device, which is characterized in that: the environmentally friendly new energy vehicle blade battery shell cutting device comprises a mounting seat 1, a main drive motor 2 is mounted on the mounting seat 1, a main shaft 3 is mounted on the output shaft of the main drive motor 2, a center gear 4 is mounted on the main shaft 3, two transmission rods 6 are symmetrically mounted on the mounting seat 1, both of the two transmission rods 6 are rotatably mounted, a longitudinal cutting gear 5 is mounted on the side of the two transmission rods 6 close to the main drive motor 2, the longitudinal cutting gear 5 is meshed with the center gear 4, and a longitudinal cutting wheel 7 is mounted on the side of the two transmission rods 6 away from the main drive motor 2, and a cross-cutting component 8 and a transmission component 9 are arranged on the mounting seat 1.

[0036] When cutting is required, the cutting material is conveyed to the cutting device through the conveying component 9. The main drive motor 2 is started regularly. The main drive motor 2 drives the central gear 4 to rotate at a high speed through the main shaft 3. The central gear 4 drives the two longitudinal cutting gears 5 to rotate through meshing. The longitudinal cutting gears 5 drive the longitudinal cutting wheels 7 to rotate through the transmission rods 6, completing the longitudinal cutting of the material. The material continues to be conveyed forward and is transversely cut by the transverse cutting component 8, realizing the simultaneous cutting of the required length and width of the battery shell, reducing the processing flow and improving the production efficiency.

[0037] As Figures 1-6 and Figures 8-9 shown, the transverse cutting component 8 includes a first module slide rail 801, a slide seat 802, a secondary drive motor 803, a drive gear 804, a driven gear 805, a transverse cutting wheel 806, a touch switch 807, a working cylinder 808, a sealed air chamber 809, a slide rod 810, a negative pressure fan 811, a mounting plate 812, a connecting column 813 and a transmission gear 814;

[0038] The first module slide rail 801 is installed on the mounting seat 1. The slide seat 802 is slidably installed on the first module slide rail 801. The secondary drive motor 803 is installed on the slide seat 802. The drive gear 804 is installed on the output shaft of the secondary drive motor 803. The driven gear 805 is rotatably installed on the mounting seat 1. The drive gear 804 meshes with the driven gear 805. The transverse cutting wheel 806 is installed on the driven gear 805. The touch switch 807 is installed on one side of the first module slide rail 801 close to the main drive motor 2. The first module slide rail 801 is electrically connected to the secondary drive motor 803.

[0039] When the main drive motor 2 stops running, the mounting seat 1 is controlled to move downward along the first module slide rail 801. The first module slide rail 801 emits an electrical signal to control the operation of the secondary drive motor 803. The secondary drive motor 803 drives the transverse cutting wheel 806 to rotate through the meshing of the drive gear 804 and the driven gear 805. The transverse cutting wheel 806 completes the transverse cutting of the cutting material as the mounting seat 1 moves, reducing the processing steps and effectively improving the working efficiency.

[0040] At the same time, by adjusting the distance between the two longitudinal cutting wheels 7 during installation to control the width of the cut product, and by adjusting the conveying distance of the conveying component driven by the main drive motor 2 to control the length of the cut product, the processing requirements for battery shells of different specifications can be realized.

[0041] A working cylinder 808 is installed on the first module slide rail 801. The working cylinder 808 is sleeved outside the touch switch 807. A slide rod 810 is slidably installed in the working cylinder 808. The slide rod 810 and the working cylinder 808 form a sealed air chamber 809. An installation plate 812 is installed on the mounting seat 1. A connecting column 813 is rotatably installed on the installation plate 812. A transmission gear 814 is installed at one end of the connecting column 813 close to the central gear 4. The transmission gear 814 meshes with the central gear 4. A negative pressure fan 811 is installed at the other end of the connecting column 813. The negative pressure fan 811 extends into the working cylinder 808.

[0042] When the main drive motor 2 operates, the central gear 4 rotates synchronously. The central gear 4 drives the connecting column 813 to rotate through the meshing action with the transmission gear 814. At this time, the connecting column 813 will drive the negative pressure fan 811 to rotate at a high speed, pumping out the gas in the working cylinder 808, and a negative pressure state is formed in the working cylinder 808. Since the air pressure in the sealed air chamber 809 is greater than the air pressure in the working cylinder 808, the slide rod 810 cannot contact the touch switch 807 at this time, and the first module slide rail 801 does not work.

[0043] When the main drive motor 2 stops operating, the negative pressure fan 811 stops working. Due to the increase in volume and the decrease in pressure in the sealed air chamber 809, the atmospheric pressure will push the slide rod 810 to restore the sealed air chamber 809 to its initial state. The slide rod 810 will contact the touch switch 807, and the touch switch 807 controls the operation of the first module slide rail 801. The operation of the first module slide rail 801 finally enables the horizontal cutting wheel 806 to complete the horizontal cutting of the cutting material. After the longitudinal cutting of the cutting material, the horizontal cutting can be carried out, realizing the mutual cooperation between the longitudinal cutting and the horizontal cutting, enabling the equipment to operate more reasonably and improving the cutting efficiency.

[0044] As Figures 1-7 shown, the conveying assembly 9 includes an installation chamber 901, a driving rotating column 902, a driven rotating column 903, a crawler 904, a transmission belt 905, an installation block 906, a suction cup main body 907, a working chamber 908, a circular partition 909, a movable rod 910, an electric telescopic rod 911, a buffer spring 912, a two-way air pump 913, a ventilation hole 914, an installation hole 915, an air pipe 916, a rubber gasket 917, and a suction cup air chamber 918;

[0045] A driving rotating column 902 and a driven rotating column 903 are rotatably mounted on the mounting base 1. The driving rotating column 902 and the driven rotating column 903 are at the same height. The driving rotating column 902 and the driven rotating column 903 are connected by two sets of crawler belts 904. An installation chamber 901 is formed on the mounting base 1. The transmission rod 6 and the driving rotating column 902 both extend into the installation chamber 901. The transmission rod 6 and the driving rotating column 902 are connected by a transmission belt 905. A number of mounting blocks 906 are evenly distributed on the two sets of crawler belts 904. A suction cup main body 907 is mounted on the mounting block 906. A suction cup air chamber 918 is mounted on the suction cup main body 907.

[0046] When the main drive motor 2 operates, it drives the transmission rod 6 to rotate. The transmission rod 6 drives the driving rotating column 902 to rotate through the transmission belt 905. The driving rotating column 902 drives the mounting block 906 to move through the crawler belt 904. When the mounting block 906 moves, it adsorbs the cutting material through the suction cup main body 907 and the suction cup air chamber 918, and conveys the cutting material. By arranging a conveying component 9 inside the equipment, the conveying of the cutting material is realized, avoiding the need to additionally arrange a conveying device outside the equipment, saving production costs and reducing the production floor area.

[0047] At the same time, the conveying is synchronized with the longitudinal cutting. When the longitudinal cutting stops, the conveying of the cutting material also stops, which is convenient for the equipment to perform transverse cutting and ensures the normal operation of the equipment.

[0048] A working chamber 908 is formed inside the suction cup main body 907. A circular partition 909 is mounted inside the working chamber 908. An electric telescopic rod 911 is mounted on the circular partition 909. A movable rod 910 is slidably mounted inside the working chamber 908. The upper end of the movable rod 910 is mounted with a suction cup air chamber 918. A two-way air pump 913 is mounted below the circular partition 909. An installation hole 915 is formed at the lower end of the suction cup air chamber 918. The two-way air pump 913 is connected to the installation hole 915 through an air pipe.

[0049] The crawler 904 presents as two parallel lines and semi-circular arcs at both ends around the driving rotating column 902 and the driven rotating column 903. When the crawler 904 drives the mounting block 906 to move to the driven rotating column 903, the opening of the suction cup air chamber 918 at this time moves upward. Due to gravity, the suction cup air chamber 918 and the movable rod 910 move downward along the working chamber 908 until the suction cup air chamber 918 is horizontal. The switch of the electric telescopic rod 911 at the end of the movable rod 910 touches the switch of the electric telescopic rod 911. The electric telescopic rod 911 extends regularly to ensure that a sealed space is formed between the suction cup air chamber 918 and the bottom of the cutting material. At the same time, the electric telescopic rod 911 will send an electrical signal to control the operation of the two-way air pump 913 to extract the gas in the suction cup air chamber 918, so that the suction cup air chamber 918 is tightly adsorbed to the cutting material. With the operation of the crawler 904, the conveying of the cutting material is driven. When the mounting block 906 is about to move to the driving rotating column 902, the electric telescopic rod 911 contracts and controls the two-way air pump 913 to inflate the suction cup air chamber 918 to cancel the adsorption of the cutting material, facilitating the continuous conveying of the subsequent cutting material and the output of the cut material. The adsorption of the cutting material by the suction cup air chamber 918 during conveying can play a fixing role to prevent the cutting material from shifting during cutting and affecting the production quality.

[0050] The circular partition 909 is connected to the bottom end of the movable rod 910 through a buffer spring 912. Vent holes 914 are provided on the wall surface of the suction cup main body 907 outside the two-way air pump 913.

[0051] The existence of the buffer spring 912 can ensure that the switch of the electric telescopic rod 911 can be touched only when the suction cup air chamber 918 moves upward to the horizontal first, ensuring the normal operation of the equipment.

[0052] A palletizing component 10 is provided on the mounting seat 1, and the palletizing component 10 is located on the side of the horizontal cutting wheel 806 away from the main drive motor 2.

[0053] The palletizing component 10 includes a second module slide rail 1001, a palletizing platform 1002, a receiving spring 1003, a receiving circular plate 1004, a collecting partition 1006, and a side collecting frame 1007;

[0054] The second module slide rail 1001 is installed on the mounting seat 1, the palletizing platform 1002 is slidably installed on the second module slide rail 1001, a number of receiving springs 1003 are evenly distributed on the palletizing platform 1002, the upper ends of the number of receiving springs 1003 are installed with a receiving circular plate 1004, two collecting partitions 1006 are symmetrically installed on the palletizing platform 1002, and the collecting partitions 1006 and the mounting seat 1 form two side collecting frames 1007.

[0055] After the horizontal cutting is completed, the cut materials will fall downward onto the receiving circular plate 1004, and the receiving spring 1003 will be compressed and move downward by a certain distance to reserve a falling position for the next cut material. Such a setting can prevent the cut materials from being damaged due to excessive falling distance. The scraps will fall into the side collection frames 1007 on both sides, realizing the automatic collection and stacking of the cut materials, reducing the labor intensity of workers and improving work efficiency.

[0056] The stacking assembly 10 further includes a limit induction column 1005. The limit induction column 1005 is installed at the middle position of the stacking platform 1002, and the limit induction column 1005 is electrically connected to the second module slide rail 1001.

[0057] When the receiving spring 1003 is compressed until the cut material touches the limit induction column 1005, the limit induction column 1005 will send out an alarm to remind the worker to carry the stacked cut finished products, ensuring the subsequent operation of the equipment.

[0058] The working principle of the present invention:

[0059] When cutting is required, the cutting material is conveyed to the cutting equipment through the conveying assembly 9. The main drive motor 2 is started regularly. The main drive motor 2 drives the central gear 4 to rotate at a high speed through the main shaft 3. The central gear 4 drives the two longitudinal cutting gears 5 to rotate through meshing. The longitudinal cutting gears 5 drive the longitudinal cutting wheels 7 to rotate through the transmission rods 6 to complete the longitudinal cutting of the material. The material continues to be conveyed forward and is horizontally cut by the transverse cutting assembly 8 to achieve the simultaneous cutting of the required length and width of the battery shell, reducing the processing process and improving production efficiency.

[0060] When the main drive motor 2 stops running, the control mounting seat 1 moves downward along the first module slide rail 801. The first module slide rail 801 sends out an electrical signal to control the operation of the sub-drive motor 803. The sub-drive motor 803 drives the transverse cutting wheel 806 to rotate through the meshing of the drive gear 804 and the driven gear 805. The transverse cutting wheel 806 completes the horizontal cutting of the cutting material as the mounting seat 1 moves, reducing the processing steps and effectively improving work efficiency.

[0061] When the main drive motor 2 is running, the central gear 4 rotates synchronously. The central gear 4 drives the connecting column 813 to rotate through the meshing with the transmission gear 814. At this time, the connecting column 813 will drive the negative pressure fan 811 to rotate at a high speed, extracting the gas in the working cylinder 808. A negative pressure state is formed in the working cylinder 808. Since the air pressure in the closed air chamber 809 is greater than the air pressure in the working cylinder 808, the slide rod 810 cannot touch the touch switch 807 at this time, and the first module slide rail 801 does not work.

[0062] When the main drive motor 2 stops running, the negative pressure fan 811 stops working. Since the volume of the sealed air chamber 809 increases and the pressure decreases, the atmospheric pressure will push the slide rod 810 to restore the sealed air chamber 809 to its initial state. The slide rod 810 will contact the touch switch 807, and the touch switch 807 controls the operation of the first module slide rail 801. The operation of the first module slide rail 801 finally enables the horizontal cutting wheel 806 to complete the horizontal cutting of the cutting material. After the longitudinal cutting of the cutting material, the horizontal cutting can be carried out, realizing the mutual cooperation between the longitudinal cutting and the horizontal cutting, enabling the equipment to operate more reasonably and improving the cutting efficiency.

[0063] When the main drive motor 2 runs, it drives the transmission rod 6 to rotate. The transmission rod 6 drives the drive rotating column 902 to rotate through the transmission belt 905. The drive rotating column 902 drives the mounting block 906 to move through the crawler belt 904. When the mounting block 906 moves, it adsorbs the cutting material through the suction cup main body 907 and the suction cup air chamber 918, and conveys the cutting material. By arranging the conveying component 9 inside the equipment, the conveying of the cutting material is realized, avoiding the need to additionally arrange a conveying device outside the equipment, saving production costs and reducing the production floor area.

[0064] At the same time, the conveying is synchronized with the longitudinal cutting. When the longitudinal cutting stops, the conveying of the cutting material also stops, facilitating the horizontal cutting of the equipment and ensuring the normal operation of the equipment.

[0065] The crawler belt 904 presents two parallel lines and semi-circular arcs at both ends around the drive rotating column 902 and the driven rotating column 903. When the crawler belt 904 drives the mounting block 906 to move to the driven rotating column 903, the opening of the suction cup air chamber 918 moves upward at this time. Due to the gravity, the suction cup air chamber 918 and the movable rod 910 move downward along the working chamber 908 until the suction cup air chamber 918 is horizontal, and the end of the movable rod 910 contacts the electric telescopic rod 911. The electric telescopic rod 911 extends regularly to ensure that a sealed space is formed between the suction cup air chamber 918 and the bottom of the cutting material. At the same time, the electric telescopic rod 911 will emit an electrical signal to control the operation of the two-way air pump 913, extract the gas in the suction cup air chamber 918, and make the suction cup air chamber 918 tightly adsorb to the cutting material. With the rotation of the crawler belt 904, the conveying of the cutting material is driven. When the mounting block 906 is about to move to the drive rotating column 902, the electric telescopic rod 911 contracts, and controls the two-way air pump 913 to inflate the suction cup air chamber 918, canceling the adsorption of the cutting material, facilitating the continuous conveying of the subsequent cutting material and the output of the cut material. By adsorbing the cutting material through the suction cup air chamber 918 for conveying, a fixing effect can be achieved, preventing the cutting material from shifting during the cutting process and affecting the production quality.

[0066] After the horizontal cutting is completed, the cut material will fall downward onto the receiving circular plate 1004, and the receiving spring 1003 will be compressed and move downward by a certain distance to reserve a falling position for the next cut material. Such a setting can prevent the cut material from being damaged due to excessive falling distance. The scraps will fall into the side collection frames 1007 on both sides, realizing the automatic collection and stacking of the cut materials, reducing the labor intensity of workers and improving work efficiency.

[0067] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above-described exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be embraced within the present invention. Any reference signs in the claims should not be construed as limiting the claimed rights.

Claims

1. An environmentally friendly new energy vehicle blade battery shell cutting device, characterized in that: The environmentally friendly new energy vehicle blade battery shell cutting device comprises a mounting seat (1), wherein a main drive motor (2) is mounted on the mounting seat (1), a main shaft (3) is mounted on the output shaft of the main drive motor (2), a central gear (4) is mounted on the main shaft (3), two transmission rods (6) are symmetrically mounted on the mounting seat (1), both transmission rods (6) are rotatably mounted, longitudinal cutting gears (5) are mounted on the sides of the two transmission rods (6) close to the main drive motor (2), the longitudinal cutting gears (5) are meshed with the central gear (4), longitudinal cutting wheels (7) are mounted on the sides of the two transmission rods (6) away from the main drive motor (2), and a cross-cutting component (8) and a transmission component (9) are arranged on the mounting seat (1).

2. According to claim 1, an environmentally friendly new energy vehicle blade battery shell cutting device is characterized in that: The cross-cutting assembly (8) comprises a first module slide rail (801), a slide seat (802), a secondary driving motor (803), a driving gear (804), a driven gear (805), a cross-cutting wheel (806), a touch switch (807), a working cylinder (808), a sealed air chamber (809), a sliding rod (810), a negative pressure fan (811), a mounting plate (812), a connecting column (813) and a transmission gear (814); A first module slide rail (801) is mounted on the mounting seat (1), a slide seat (802) is slidably mounted on the first module slide rail (801), an auxiliary drive motor (803) is mounted on the slide seat (802), a driving gear (804) is mounted on the output shaft of the auxiliary drive motor (803), a driven gear (805) is rotatably mounted on the mounting seat (1), the driving gear (804) is meshed with the driven gear (805), a cross-cutting wheel (806) is mounted on the driven gear (805), a touch switch (807) is mounted on the side of the first module slide rail (801) close to the main drive motor (2), and the first module slide rail (801) is electrically connected to the auxiliary drive motor (803).

3. The environmentally friendly new energy vehicle blade battery shell cutting device according to claim 2 is characterized in that: A working cylinder (808) is installed on the first module slide rail (801), and the working cylinder (808) is sleeved outside the touch switch (807). A sliding rod (810) is slidably installed in the working cylinder (808), and the sliding rod (810) and the working cylinder (808) form a closed air chamber (809). A mounting plate (812) is installed on the mounting seat (1), and a connecting column (813) is rotatably installed on the mounting plate (812). A transmission gear (814) is installed at one end of the connecting column (813) close to the central gear (4), and the transmission gear (814) is meshed with the central gear (4). A negative pressure fan (811) is installed at the other end of the connecting column (813), and the negative pressure fan (811) extends into the working cylinder (808).

4. The environmentally friendly new energy vehicle blade battery shell cutting device according to claim 3 is characterized by: The transmission assembly (9) comprises a mounting chamber (901), a driving rotating column (902), a driven rotating column (903), a crawler track (904), a transmission belt (905), a mounting block (906), a suction cup body (907), a working chamber (908), a circular partition (909), a movable rod (910), an electric telescopic rod (911), a buffer spring (912), a two-way air pump (913), a vent hole (914), a mounting hole (915), an air pipe (916), a rubber gasket (917) and a suction cup air chamber (918); A driving rotating column (902) and a driven rotating column (903) are rotatably mounted on the mounting seat (1); the driving rotating column (902) and the driven rotating column (903) are located at the same height; the driving rotating column (902) and the driven rotating column (903) are connected via two sets of crawler tracks (904); a mounting chamber (901) is provided on the mounting seat (1); the transmission rod (6) and the driving rotating column (902) are both extended into the mounting chamber (901); the transmission rod (6) and the driving rotating column (902) are connected via a transmission belt (905); a plurality of mounting blocks (906) are evenly distributed on the two sets of crawler tracks (904); a suction cup body (907) is mounted on the mounting block (906); and a suction cup air chamber (918) is mounted on the suction cup body (907).

5. The environmentally friendly new energy vehicle blade battery shell cutting device according to claim 4 is characterized in that: A working chamber (908) is provided in the suction cup body (907), a circular partition (909) is installed in the working chamber (908), an electric telescopic rod (911) is installed on the circular partition (909), a movable rod (910) is slidably installed in the working chamber (908), a suction cup air chamber (918) is installed on the upper end of the movable rod (910), a two-way air pump (913) is installed below the circular partition (909), a mounting hole (915) is provided at the lower end of the suction cup air chamber (918), and the two-way air pump (913) is connected to the mounting hole (915) through an air pipe.

6. The environmentally friendly new energy vehicle blade battery shell cutting device according to claim 5 is characterized in that: The circular partition (909) is connected to the bottom end of the movable rod (910) via a buffer spring (912), and a vent hole (914) is provided on the wall surface of the suction cup body (907) outside the bidirectional air pump (913).

7. The environmentally friendly new energy vehicle blade battery shell cutting device according to claim 4 is characterized by: A stacking assembly (10) is provided on the mounting seat (1), and the stacking assembly (10) is located on a side of the cross-cutting wheel (806) away from the main drive motor (2).

8. The environmentally friendly new energy vehicle blade battery shell cutting device according to claim 7 is characterized in that: The stacking assembly (10) comprises a second module slide rail (1001), a stacking platform (1002), a receiving spring (1003), a receiving circular plate (1004), a collecting partition (1006) and a side collecting frame (1007); A second module slide rail (1001) is mounted on the mounting seat (1), a stacking platform (1002) is slidably mounted on the second module slide rail (1001), a plurality of receiving springs (1003) are evenly distributed on the stacking platform (1002), a plurality of receiving circular plates (1004) are mounted on the upper ends of the receiving springs (1003), two collecting partitions (1006) are symmetrically mounted on the stacking platform (1002), and the collecting partitions (1006) and the mounting seat (1) form two side collecting frames (1007).

9. The environmentally friendly new energy vehicle blade battery shell cutting device according to claim 8 is characterized by: The stacking assembly (10) further comprises a limit sensing column (1005), the limit sensing column (1005) being installed at the middle position of the stacking platform (1002), and the limit sensing column (1005) being electrically connected to the second module slide rail (1001).