A chamfering device for aluminum sheet processing

By designing a chamfering equipment for aluminum sheet processing that can move aluminum sheets to a stepped shape and perform chamfering processing at the same time, the problems of low chamfering efficiency and high labor intensity of aluminum sheets in the prior art are solved, and efficient and stable chamfering processing is achieved.

CN119634839BActive Publication Date: 2025-06-10LITONG ALUMINIUM IND WUXI CO LTD
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Patent Information

Application Number
CN202510063913.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-15
Publication Date
2025-06-10
Estimated Expiration
2045-01-15

AI Technical Summary

Technical Problem

Existing aluminum sheet chamfering equipment cannot chamfer multiple aluminum sheets at the same time, resulting in inefficiency and requires staff to flip and move aluminum sheets multiple times to increase labor intensity.

Method used

A chamfering equipment for aluminum sheet processing is designed, using a pushing mechanism and a chamfering mechanism, which can move multiple stacked aluminum sheets to a stepped shape, and chamfering processing is performed simultaneously to reduce manual operation.

Benefits of technology

It greatly improves the efficiency of chamfering processing of aluminum sheets, reduces the labor intensity of staff, and ensures the stability and effect of chamfering of aluminum sheets.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention belongs to the field of chamfering of aluminum plates, and particularly relates to a chamfering device for processing aluminum plates, including a supporting bottom plate. Support columns are fixedly arranged around the upper part of the supporting bottom plate. A top plate is fixedly arranged jointly on the upper parts of the four support columns. A disc is fixedly arranged at the bottom of the top plate through a connecting rod. A rotating rod is rotatably arranged on the upper part of the disc. The bottom end of the rotating rod penetrates through the disc and is fixedly provided with a cross-shaped horizontal plate. A groove is formed inside the horizontal plate. A pushing mechanism is arranged at the upper end inside the groove. A placing seat for stacking aluminum plate bodies is fixedly arranged at the central position of the upper part of the supporting bottom plate. When chamfering the aluminum plate bodies, the pushing mechanism can be used to move a plurality of stacked aluminum plate bodies to be in a stepped shape, so that it is convenient to chamfer a plurality of stacked aluminum plate bodies simultaneously, thereby greatly improving the chamfering processing efficiency of the aluminum plate bodies.
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Description

Technical Field

[0001] The present invention belongs to the field of chamfering aluminum plates, and particularly relates to a chamfering device for processing aluminum plates. Background Art

[0002] With the development of modern industry, aluminum plates have been widely used in many fields such as aerospace, automobile manufacturing, architectural decoration, electronic appliances, etc. due to their excellent properties such as light weight, high strength, and corrosion resistance. In the process of processing aluminum plates, chamfering is an essential step, which can not only improve the aesthetics of products but also enhance the strength and durability of products.

[0003] Currently, when chamfering some large-sized aluminum plates, many current chamfering devices can only chamfer single aluminum plates one by one, and cannot achieve batch processing simultaneously, resulting in low chamfering efficiency of aluminum plates; secondly, during the chamfering process, workers need to turn over and move the aluminum plates multiple times to complete the chamfering processing of the aluminum plates, which not only increases the labor intensity of the workers but also further reduces the chamfering processing efficiency of the aluminum plates. Summary of the Invention

[0004] In view of the above problems, a chamfering device for processing aluminum plates provided by an embodiment of the present application can chamfer multiple stacked aluminum plates simultaneously, greatly improving the chamfering processing efficiency while reducing the labor intensity of workers.

[0005] To achieve the above object, the embodiment of the present application provides the following technical solutions: The present invention provides a chamfering device for processing aluminum plates, including a support bottom plate. Support columns are fixedly arranged around the upper part of the support bottom plate. A top plate is fixedly arranged jointly at the upper parts of the four support columns. A disc is fixedly arranged at the bottom of the top plate through a connecting rod. A rotating rod is rotatably arranged on the upper part of the disc. The bottom end of the rotating rod penetrates through the disc and is fixedly provided with a cross-shaped horizontal plate. A groove is formed inside the horizontal plate. A pushing mechanism is arranged at the upper end inside the groove. A placement seat for stacking aluminum plate bodies is fixedly arranged at the central position of the upper part of the support bottom plate.

[0006] The pushing mechanism includes a first sliding component and a second sliding component arranged in a skew cross distribution inside the groove. Two pushing plates are arranged at the lower end of the first sliding component. Two baffle plates are arranged at the lower end of the second sliding component, and the pushing plates and the baffle plates are arranged alternately.

[0007] A cavity is formed inside the pushing plate. A chamfering mechanism for cooperating with the pushing mechanism is arranged in the cavity. The chamfering mechanism includes a flat plate arranged in the cavity. A plurality of vertical rods are fixedly arranged at the bottom of the flat plate. Chamfering blades are fixedly arranged at the bottom ends of the vertical rods. An electric push rod is fixedly arranged at the upper part of the pushing plate. The telescopic end of the electric push rod penetrates into the cavity and is connected to the upper part of the flat plate.

[0008] According to a preferred embodiment, the first sliding assembly includes a first threaded rod rotatably arranged at the lower end inside the groove. Two threaded sections with opposite thread directions are arranged on the first threaded rod, and two first threaded sleeves are threadedly connected to both threaded sections. A guide rail is fixedly arranged at the bottom end of the first threaded sleeve. An electric slider is slidably arranged on the guide rail. A first vertical plate is fixedly arranged at the bottom end of the electric slider. A connecting plate is fixedly arranged at the bottom of the first vertical plate, and one side of the connecting plate is connected to the pushing plate.

[0009] According to a preferred embodiment, the second sliding assembly includes a second threaded rod rotatably arranged at the upper end inside the groove. The first threaded rod and the second threaded rod are arranged in a skew cross distribution inside the groove. Two threaded sections with opposite thread directions are arranged on the second threaded rod, and two second threaded sleeves are threadedly connected to both threaded sections. A second vertical plate is fixedly arranged at the bottom end of the second threaded sleeve, and the bottom of the second vertical plate is connected to the upper part of the baffle.

[0010] According to a preferred embodiment, two guide rods arranged in a skew cross distribution are fixedly arranged inside the groove. The two guide rods are respectively slidably connected to the first threaded sleeve and the second threaded sleeve. One end of the first threaded rod and one end of the second threaded rod are respectively connected to the output shaft of the first motor. The corresponding two first motors are respectively fixedly installed on the cross plate through motor seats.

[0011] According to a preferred embodiment, a second motor is fixedly arranged at the upper part of the disc. Gears are fixedly arranged at the output shaft of the second motor and the top end of the rotating rod, and the two gears mesh with each other.

[0012] According to a preferred embodiment, a plurality of circular openings arranged in a linear array are formed at the upper part of the placing seat. A ball is rotatably arranged inside the circular opening, and the bottom of the aluminum sheet body located at the lowermost part is in contact with the ball. Through openings are formed at the front and rear sides of the placing seat.

[0013] According to a preferred embodiment, a limiting mechanism for cooperating with the ball is arranged at the inner horizontal section of the placing seat. The limiting mechanism includes two T-shaped rods fixedly arranged at the inner horizontal section of the placing seat and distributed symmetrically in the front and rear. A limiting plate is slidably arranged on the two T-shaped rods. A plurality of limiting openings for cooperating with the ball are formed at the upper part of the limiting plate.

[0014] According to a preferred embodiment, an L-shaped plate is fixedly arranged at the bottom of the connecting plate, and an extrusion plate is fixedly arranged at one end of the L-shaped plate away from the connecting plate. The four peripheries of the bottom of the limiting plate are all in a slope shape, and one side of the extrusion plate close to the limiting plate is in an inclined shape that is used in cooperation with the extrusion plate.

[0015] According to a preferred embodiment, a limiting groove is formed at the bottom of the disc, and four limiting rods distributed in a circumferential array are fixedly arranged at the upper part of the cross plate. One end of the limiting rod away from the limiting groove penetrates into the inside of the limiting groove and is slidably connected with the limiting groove. The vertical cross-sections of the limiting rod and the limiting groove are both in a T shape.

[0016] According to a preferred embodiment, one side of each of the two pushing plates close to each other is in a stepped shape, and a plurality of rectangular openings communicating with the cavity are formed on one side of each of the two pushing plates close to each other, and the bottom end of the chamfering blade is located in the rectangular opening.

[0017] Compared with the prior art, a chamfering device for processing aluminum plates provided by an embodiment of the present invention has the following beneficial effects:

[0018] 1. When chamfering the aluminum plate body of the present invention, the pushing mechanism can be used to move a plurality of stacked aluminum plate bodies into a stepped shape, so that chamfering processing can be conveniently carried out on a plurality of stacked aluminum plate bodies at the same time, thereby greatly improving the chamfering processing efficiency of the aluminum plate body. At the same time, the baffle and the limiting mechanism can ensure the stability of the aluminum plate body during chamfering processing, thus ensuring the chamfering effect of the aluminum plate body.

[0019] 2. In the present invention, a first sliding component, a second sliding component, a pushing plate, a baffle and a chamfering mechanism are provided. When chamfering a plurality of stacked aluminum plate bodies, the cooperation of the first sliding component, the second sliding component and the pushing plate can be used to move a plurality of stacked aluminum plate bodies into a stepped shape, and then the cooperation of the baffle and the chamfering mechanism can be used to chamfer the stacked aluminum plate bodies at the same time. During chamfering processing, it is not necessary for the staff to turn over and move the aluminum plate body multiple times, thus greatly reducing the labor intensity of the staff.

[0020] 3. In the present invention, an L-shaped plate, an extrusion plate, a ball and a limiting mechanism are provided. The ball makes the movement of a plurality of stacked aluminum plate bodies smoother. When chamfering the moved aluminum plate body, the cooperation of the L-shaped plate, the extrusion plate and the limiting mechanism can be used to limit the rotation of the ball, so that a plurality of stepped aluminum plate bodies are more stable during chamfering, thereby ensuring the chamfering effect of the aluminum plate body. Description of the Drawings

[0021] Figure 1Structural diagram of the present invention.

[0022] Figure 2 Partial structural diagram in the present invention.

[0023] Figure 3 Connection sectional view structural diagram of the push plate and the chamfering mechanism in the present invention.

[0024] Figure 4 Connection structural diagram of the limiting plate and the placing seat in the present invention.

[0025] Figure 5 Connection sectional view structural diagram of the placing seat and the limiting mechanism in the present invention.

[0026] Figure 6 Connection sectional view structural diagram of the disc and the cross plate in the present invention.

[0027] Figure 7 Schematic diagram when multiple aluminum sheet bodies are in a stepped shape in the present invention.

[0028] Figure 8 First state diagram when chamfering the left and right sides of multiple aluminum sheet bodies in the present invention.

[0029] Figure 9 For Figure 8 Enlarged view of the structure of part A in

[0030] Figure 10 Second state diagram when chamfering the left and right sides of multiple aluminum sheet bodies in the present invention.

[0031] Figure 11 Schematic diagram when chamfering the front and back sides of multiple aluminum sheet bodies in the present invention.

[0032] Reference numerals in the figure: 1, support bottom plate; 2, support column; 3, top plate; 4, disc; 5, rotating rod; 6, cross plate; 7, groove; 8, pushing mechanism; 81, first sliding assembly; 811, first threaded rod; 812, first threaded sleeve; 813, guide rail; 814, electric slider; 815, first vertical plate; 816, connecting plate; 82, second sliding assembly; 821, second threaded rod; 822, second threaded sleeve; 823, second vertical plate; 9, aluminum sheet body; 10, placing seat; 11, push plate; 12, baffle; 13, cavity; 14, chamfering mechanism; 141, flat plate; 142, vertical rod; 143, chamfering blade; 144, electric push rod; 15, guide rod; 16, first motor; 17, second motor; 18, gear; 19, ball; 20, through hole; 21, limiting mechanism; 211, T-shaped rod; 212, limiting plate; 213, limiting opening; 22, L-shaped plate; 23, extrusion plate; 24, limiting groove; 25, limiting rod; 26, rectangular opening. Detailed implementation mode

[0033] The following will further elaborate on this application in conjunction with the attached Figures 1-11 drawings.

[0034] Please refer to Figure 1 , Figure 2 , Figure 6 and Figure 7 , a chamfering device for aluminum sheet processing, including a support bottom plate 1. Support columns 2 are fixedly arranged around the upper part of the support bottom plate 1. A top plate 3 is fixedly arranged jointly on the upper parts of the four support columns 2. A disc 4 is fixedly arranged at the bottom of the top plate 3 through a connecting rod. A rotating rod 5 is rotatably arranged on the upper part of the disc 4. The bottom end of the rotating rod 5 penetrates through the disc 4 and is fixedly provided with a cross-shaped horizontal plate 6. A groove 7 is opened inside the horizontal plate 6. A pushing mechanism 8 is arranged at the upper end inside the groove 7. A placing seat 10 for stacking aluminum sheet bodies 9 is fixedly arranged at the central position of the upper part of the support bottom plate 1.

[0035] Refer to Figure 2 , Figure 3 and Figure 8 , the pushing mechanism 8 includes a first sliding component 81 and a second sliding component 82 which are arranged inside the groove 7 and distributed in a skew cross shape. Two pushing plates 11 are arranged at the lower end of the first sliding component 81. Two baffle plates 12 are arranged at the lower end of the second sliding component 82, and the pushing plates 11 and the baffle plates 12 are distributed alternately. A cavity 13 is opened inside the pushing plate 11. A chamfering mechanism 14 which is used in cooperation with the pushing mechanism 8 is arranged inside the cavity 13. The chamfering mechanism 14 includes a flat plate 141 arranged inside the cavity 13. A plurality of vertical rods 142 are fixedly arranged at the bottom of the flat plate 141. Chamfering blades 143 are fixedly arranged at the bottom ends of the vertical rods 142. An electric push rod 144 is fixedly arranged at the upper part of the pushing plate 11. The telescopic end of the electric push rod 144 penetrates into the cavity 13 and is connected with the upper part of the flat plate 141.

[0036] When chamfering the stacked aluminum sheet bodies 9, first use the pushing mechanism 8 to move the stacked aluminum sheet bodies 9 into a stepped shape, and then use the chamfering mechanism 14 to chamfer a plurality of aluminum sheets simultaneously, greatly improving the chamfering efficiency of the aluminum sheet bodies 9.

[0037] Refer to Figure 2, the first sliding assembly 81 includes a first threaded rod 811 rotatably arranged at the lower end inside the groove 7. The first threaded rod 811 is provided with two threaded sections with opposite thread directions, and two first threaded sleeves 812 are threadedly connected to both threaded sections. The bottom end of the first threaded sleeve 812 is fixedly provided with a guide rail 813. An electric slider 814 is slidably arranged on the guide rail 813. The bottom end of the electric slider 814 is fixedly provided with a first vertical plate 815. The bottom of the first vertical plate 815 is fixedly provided with a connecting plate 816, and one side of the connecting plate 816 is connected to the pushing plate 11. The second sliding assembly 82 includes a second threaded rod 821 rotatably arranged at the upper end inside the groove 7, and the first threaded rod 811 and the second threaded rod 821 are arranged in a skew cross distribution inside the groove 7. The second threaded rod 821 is provided with two threaded sections with opposite thread directions, and two second threaded sleeves 822 are threadedly connected to both threaded sections. The bottom end of the second threaded sleeve 822 is fixedly provided with a second vertical plate 823. The bottom of the second vertical plate 823 is connected to the upper part of the baffle 12.

[0038] Refer to Figure 2 , two guide rods 15 arranged in a skew cross distribution are fixedly arranged inside the groove 7, and the two guide rods 15 are respectively slidably connected to the first threaded sleeve 812 and the second threaded sleeve 822. One end of the first threaded rod 811 and one end of the second threaded rod 821 are respectively connected to the output shaft of the first motor 16. The corresponding two first motors 16 are respectively fixedly installed on the cross plate 6 through motor seats.

[0039] Refer to Figure 3 , both sides of the two pushing plates 11 close to each other are stepped. A plurality of rectangular openings 26 communicating with the cavity 13 are formed on both sides of the two pushing plates 11 close to each other, and the bottom end of the chamfering blade 143 is located inside the rectangular opening 26.

[0040] In order to facilitate chamfering the corners of multiple stacked aluminum sheet bodies 9 at the same time, after stacking multiple aluminum sheet bodies 9 on the upper part of the placement seat 10, at this time, the corresponding first motor 16 works to drive the second threaded rod 821 to rotate. The rotation of the second threaded rod 821 drives the two second threaded sleeves 822 to approach each other, so that the two baffles 12 approach each other and contact the front and rear sides of the aluminum sheet body 9. Then, at this time, another motor works to drive the other first threaded rod 811 to rotate. The rotation of the first threaded rod 811 drives the two first threaded sleeves 812 to approach each other, and then the two pushing plates 11 can be driven to approach each other. The two pushing plates 11 can push the aluminum sheet body 9 left and right. Since both sides of the two pushing plates 11 close to each other are stepped, the multiple stacked aluminum sheet bodies 9 can be pushed to be distributed in a stepped shape in the left - right direction (as Figure 7As shown in the figure, at this time, the left and right sides of the aluminum sheet body 9 are respectively attached to the approaching sides of the two pushing plates 11, which facilitates subsequent chamfering of multiple aluminum sheet bodies 9 at the same time.

[0041] Refer to Figure 6 , a second motor 17 is fixedly arranged on the upper part of the disc 4, and gears 18 are fixedly arranged on the output shaft of the second motor 17 and the top of the rotating rod 5, and the two gears 18 mesh with each other.

[0042] In order to facilitate chamfering of multiple aluminum sheet bodies 9 distributed in a stepped manner, after multiple stacked aluminum sheet bodies 9 are distributed in a stepped manner in the left-right direction, the cooperation of the guide rail 813 and the electric slider 814 can drive the two pushing plates 11 to move forward. After the pushing plates 11 move to a position where they are not fully attached to the multiple aluminum sheet bodies 9 (as shown in Figure 8 and Figure 9 ), at this time, the electric push rod 144 works to drive the flat plate 141 to move downward. The downward movement of the flat plate 141 can drive the chamfering blade 143 to move downward through the vertical rod 142, so that the chamfering blade 143 moves out of the rectangular opening 26. When the chamfering blade 143 moves to a suitable position, the electric push rod 144 stops working. Then, at this time, the cooperation of the guide rail 813 and the electric slider 814 can continue to drive the two pushing plates 11 to move backward. At this time, the chamfering blade 143 can chamfer the upper left side and the lower right side of the aluminum sheet body 9 at the same time (as shown in Figure 8 ).

[0043] Then, the first motor 16 works to drive the two pushing plates 11 and the baffle 12 to move away from each other, so that the pushing plates 11 and the baffle 12 are both away from the aluminum sheet body 9. Then, the second motor 17 works. The cooperation of the two gears 18 can drive the rotating rod 5 to rotate. The rotation of the rotating rod 5 can drive the cross plate 6 to rotate. When the cross plate 6 rotates 180 degrees, the first motor 16 stops working. At this time, the positions of the two pushing plates 11 have been swapped. Then, according to the same steps above, the pushing plates 11 and the baffle 12 are brought into contact with the aluminum sheet body 9, and the lower left side and the upper right side of the aluminum sheet body 9 can be chamfered at the same time (as shown in Figure 10 ).

[0044] Similarly, when the second motor 17 works to drive the cross plate 6 to rotate 90 degrees, at this time, the two pushing plates 11 have respectively moved to the front and rear sides of the aluminum sheet body 9, and the two baffles 12 have moved to the left and right sides of the aluminum sheet body 9 (as shown in Figure 11As shown, first, move the two baffles 12 closer to each other to push the multiple aluminum sheet bodies 9 in a stepped shape, so that the multiple aluminum sheet bodies 9 move to the initial stacked state. At this time, the multiple stacked aluminum sheet bodies 9 are flush in the vertical direction. Then, move the push plate 11 to move the multiple stacked aluminum sheet bodies 9 to be distributed in a stepped shape in the front-back direction. Then, chamfering can be performed on the upper and lower parts of the front and back sides of the aluminum sheet body 9 according to the same steps, thus greatly improving the efficiency of chamfering the aluminum sheet body 9, and there is no need for the staff to turn over and move the aluminum sheet body 9 multiple times, greatly reducing the labor intensity of the staff.

[0045] Refer to Figure 4 , a plurality of circular openings distributed in a linear array are formed in the upper part of the placement seat 10. Ball bearings 19 are rotatably arranged in the circular openings, and the bottom of the lowermost aluminum sheet body 9 is in contact with the ball bearings 19. Through openings 20 are formed on both the front and back sides of the placement seat 10.

[0046] Refer to Figure 1 and Figure 5 , a limiting mechanism 21 for cooperating with the ball bearings 19 is arranged on the inner horizontal section of the placement seat 10. The limiting mechanism 21 includes two T-shaped rods 211 fixedly arranged on the inner horizontal section of the placement seat 10 and symmetrically distributed in the front-back direction. A limiting plate 212 is slidably arranged on the two T-shaped rods 211. A plurality of limiting openings 213 for cooperating with the ball bearings 19 are formed in the upper part of the limiting plate 212.

[0047] Refer to Figure 1 , Figure 2 and Figure 7 , an L-shaped plate 22 is fixedly arranged at the bottom of the connecting plate 816. An extrusion plate 23 is fixedly arranged at one end of the L-shaped plate 22 away from the connecting plate 816. The four surrounding sides of the bottom of the limiting plate 212 are in a slope shape, and one side of the extrusion plate 23 close to the limiting plate 212 is in an inclined shape for cooperating with the extrusion plate 23.

[0048] To facilitate the movement of multiple stacked aluminum sheet bodies 9, when the pusher plate 11 is used to push the aluminum sheet body 9, since the lowermost aluminum sheet body 9 contacts the ball 19, the aluminum sheet body 9 can move more smoothly during movement. During the movement of the pusher plate 11, the L-shaped plate 22 will also be driven to move. The movement of the L-shaped plate 22 will drive the extrusion plate 23 to move. When the extrusion plate 23 moves to contact the limiting plate 212, it will extrude the limiting plate 212. The limiting plate 212 will move upward under the extrusion. When the pusher plate 11 pushes the stacked aluminum sheet bodies 9 to form a stepped shape and then stops moving, at this time, the limiting plate 212 also stops moving upward. At this time, the limiting port 213 on the limiting plate 212 contacts the ball 19, which can limit the rotation of the ball 19, so that the multiple stepped aluminum sheet bodies 9 are more stable during chamfering, thus ensuring the chamfering effect of the aluminum sheet body 9.

[0049] Refer to Figure 6 As shown in the figure, a limiting groove 24 is opened at the bottom of the disc 4, and four limiting rods 25 distributed in a circumferential array are fixedly arranged on the upper part of the cross plate 6. One end of the limiting rod 25 away from the limiting groove 24 penetrates into the inside of the limiting groove 24 and is slidably connected with the limiting groove 24. The vertical cross sections of the limiting rod 25 and the limiting groove 24 are both T-shaped.

[0050] To ensure the stability of the cross plate 6 during rotation, during the rotation of the cross plate 6, since the limiting rod 25 is slidably connected with the limiting groove 24, the limiting rod 25 can rotate smoothly in the limiting groove 24. And since the vertical cross sections of the limiting rod 25 and the limiting groove 24 are both T-shaped, the cross plate 6 will not shake excessively during rotation, thus ensuring the stability of the cross plate 6 during rotation.

[0051] During specific operation, first, multiple aluminum sheet bodies 9 are stacked on the upper part of the placement seat 10. Then, by the cooperation of the pushing mechanism 8 and the baffle 12, the multiple stacked aluminum sheet bodies 9 can be pushed to be distributed in a stepped shape in the left-right direction. At this time, through the cooperation of the chamfering mechanism 14, the guide rail 813 and the electric slider 814, chamfering processing can be carried out on the upper left side and the lower right side of the aluminum sheet body 9 at the same time. Then, by the cooperation of the second motor 17 and the gear 18, the cross plate 6 can be driven to rotate 180 degrees, and then chamfering processing can be continued on the lower left side and the upper right side of the aluminum sheet body 9 at the same time.

[0052] Similarly, when the cooperation of the second motor 17 and the gear 18 drives the cross plate 6 to rotate by 90 degrees, the push plate 11 and the baffle 12 can be used to move multiple stacked aluminum sheet bodies 9 to be distributed in a stepped manner in the front-back direction. Then, according to the same steps, chamfering can be performed on the upper and lower parts of the front and back sides of the aluminum sheet body 9, thus greatly improving the efficiency of chamfering the aluminum sheet body 9, and there is no need for the staff to turn over and move the aluminum sheet body 9 multiple times, greatly reducing the labor intensity of the staff.

[0053] Moreover, when pushing the aluminum sheet body 9, the use of the ball 19 can make the movement smoother. When chamfering the aluminum sheet body 9, at this time, the contact between the limiting port 213 on the limiting plate 212 and the ball 19 can limit the rotation of the ball 19, so that multiple stepped aluminum sheet bodies 9 are more stable during chamfering, thereby ensuring the chamfering effect of the aluminum sheet body 9.

[0054] The above are only the embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. All equivalent structural or equivalent process transformations made by using the content of the specification and drawings of the present invention, or directly or indirectly applied in other related technical fields, are similarly included in the patent protection scope of the present invention.

Claims

1. A chamfering device for aluminum plate processing, comprising a supporting base plate, characterized in that: The upper part of the support bottom plate is fixedly provided with support columns all around, the upper parts of the four support columns are jointly fixedly provided with a top plate, the bottom of the top plate is fixedly provided with a disc through a connecting rod, the upper part of the disc is rotatably provided with a rotating rod, the bottom end of the rotating rod penetrates the disc and is fixedly provided with a cross-shaped horizontal plate, the interior of the horizontal plate is provided with a groove, the inner upper end of the groove is provided with a pushing mechanism, and a placement seat for stacking the aluminum plate body is fixedly provided at the center position of the upper part of the support bottom plate; The pushing mechanism comprises a first sliding assembly and a second sliding assembly which are arranged inside the groove and are cross-distributed in different planes, two pushing plates are arranged at the lower end of the first sliding assembly, two baffles are arranged at the lower end of the second sliding assembly, and the pushing plates and the baffles are staggered; A cavity is provided inside the push plate, and a chamfering mechanism used in conjunction with the push mechanism is provided in the cavity. The chamfering mechanism includes a flat plate provided in the cavity, a plurality of vertical rods are fixedly provided at the bottom of the flat plate, a chamfering blade is fixedly provided at the bottom end of the vertical rod, and an electric push rod is fixedly provided at the upper part of the push plate, and the telescopic end of the electric push rod penetrates into the cavity and is connected to the upper part of the flat plate; The first sliding assembly includes a first threaded rod rotatably arranged at the lower end of the groove, the first threaded rod is provided with two threaded sections with opposite thread directions, and the two threaded sections are both threadedly connected with a first threaded sleeve, a guide rail is fixedly arranged at the bottom end of the first threaded sleeve, an electric slider is slidably arranged on the guide rail, a first vertical plate is fixedly arranged at the bottom end of the electric slider, a connecting plate is fixedly arranged at the bottom of the first vertical plate, and one side of the connecting plate is connected to the pushing plate; A second motor is fixedly arranged on the upper part of the disc, and gears are fixedly arranged on the output shaft of the second motor and the top end of the rotating rod, and the two gears are meshed with each other; The upper part of the placement seat is provided with a plurality of circular openings distributed in a linear array, a ball bearing is rotatably arranged in the circular opening, and the bottom of the aluminum plate body located at the bottom contacts the ball bearing, and both the front and rear sides of the placement seat are provided with through openings; The inner horizontal section of the placement seat is provided with a limiting mechanism used in conjunction with the ball bearing. The limiting mechanism includes two T-shaped rods fixedly arranged on the inner horizontal section of the placement seat and symmetrically distributed front to back. A limiting plate is slidably arranged on the two T-shaped rods. The upper part of the limiting plate is provided with multiple limiting openings used in conjunction with the ball bearing.

2. The chamfering equipment for aluminum plate processing according to claim 1 is characterized in that: The second sliding component includes a second threaded rod rotatably arranged at the upper end of the groove, and the first threaded rod and the second threaded rod are distributed in a cross-shaped manner in different planes in the groove. The second threaded rod is provided with two threaded sections with opposite thread directions, and the two threaded sections are threadedly connected to a second threaded sleeve. A second vertical plate is fixedly arranged at the bottom end of the second threaded sleeve, and the bottom of the second vertical plate is connected to the upper part of the baffle.

3. The chamfering equipment for aluminum plate processing according to claim 2 is characterized in that: Two guide rods are fixedly arranged in the groove and are distributed in a cross-shaped manner in different planes. The two guide rods are slidingly connected to the first threaded sleeve and the second threaded sleeve respectively. One end of the first threaded rod and one end of the second threaded rod are respectively connected to the output shaft of the first motor. The corresponding two first motors are fixedly installed on the horizontal plate through motor seats.

4. The chamfering equipment for aluminum plate processing according to claim 1 is characterized in that: An L-shaped plate is fixedly provided at the bottom of the connecting plate, and an extrusion plate is fixedly provided at one end of the L-shaped plate away from the connecting plate. The bottom of the limiting plate is sloped all around, and the side of the extrusion plate close to the limiting plate is inclined for use with the extrusion plate.

5. The chamfering equipment for aluminum plate processing according to claim 1, characterized in that: A limiting groove is provided at the bottom of the disc, and four limiting rods distributed in a circular array are fixedly arranged on the upper part of the cross plate. One end of the limiting rod away from the limiting groove penetrates into the interior of the limiting groove and is slidably connected to the limiting groove. The vertical sections of the limiting rod and the limiting groove are both T-shaped.

6. The chamfering equipment for aluminum plate processing according to claim 1, characterized in that: The sides of the two push plates close to each other are both stepped, and the sides of the two push plates close to each other are both provided with a plurality of rectangular openings connected with the cavity, and the bottom ends of the chamfering blades are located in the rectangular openings.

Citation Information

Patent Citations

  • Method and device for chamfering plate

    JP2003340696A

  • A chamfer machine of substrate

    KR1020050021217A