Automatic forming aluminum foil container production device

By designing an automatic forming aluminum foil container production device, the combination of conveying components, stamping forming components and collection components is used to solve the problem of forming difficulties and manual stacking in the production of aluminum foil containers, and an efficient and automated production process is achieved.

CN222999466UActive Publication Date: 2025-06-20ANHUI BAIXIAN NEW MATERIALS TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422394763.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-29
Publication Date
2025-06-20
Estimated Expiration
2034-09-29

AI Technical Summary

Technical Problem

The existing aluminum foil container production devices are prone to sticking during stamping and forming, resulting in difficult forming. The molded containers need to be stacked manually, increasing production costs and error risks.

Method used

An automatic forming aluminum foil container production device is designed, including conveying components, stamping forming components and collection components, which realize automatic forming and collection through tin foil connection, avoiding manual intervention.

Benefits of technology

Automatic molding and collection of aluminum foil containers is realized, production efficiency is improved, production costs are reduced, human errors are reduced, and product quality and appearance are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of processing of aluminum foil for containers, and discloses an automatic forming aluminum foil container production device which comprises a conveying assembly, the conveying assembly is connected with a punch forming assembly through tin foil paper, the conveying assembly is arranged in front of the punch forming assembly, and the punch forming assembly is arranged in front of a conveying assembly. The conveying assembly is arranged in front of the collecting assembly, tin foil ring raw materials are conveyed to the punch forming assembly and then flatly laid on the upper surface of the forming base, a rectangular block downwards cuts tin foil paper, a container block upwards moves to enable the rectangular block to upwards move after the tin foil paper is formed, and a sliding block drives a container groove to downwards move under the action of gravity. The tin foil container is conveyed to the other end along with the second conveying belt and falls on the collecting container pieces, after a certain time, a third electric push rod moves upwards to enable the collecting container pieces to be separated from a through hole block, then a fourth motor drives a center block to rotate, the positions of the two collecting container pieces are exchanged, and the aluminum foil container is conveniently taken out.
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Description

Technical Field

[0001] The utility model relates to the technical field of aluminum foil processing for containers, and more specifically to a production device for automatically forming aluminum foil containers. Background Art

[0002] Under the current technical background, most of the aluminum foil container production equipment at home and abroad is in a state of mechanical semi-automatic production, and there is no complete automatic production line. The aluminum foil container production device reflects the urgent need for efficient and automated production equipment in the industry. With the continuous progress of technology, future aluminum foil container production will tend to be more automated and intelligent to meet the increasing market requirements for production efficiency, product quality, and environmental protection.

[0003] There are some problems in the stamping process of the existing aluminum foil container production devices. First of all, these devices are not easy to fall off during stamping. This means that there may be some difficulties and challenges in the production process. Due to the characteristics of the aluminum foil material, it may stick to the mold, resulting in difficulty in separating the formed aluminum foil container from the mold. This may lead to a reduction in production efficiency because operators need to spend extra time and effort to handle these problems. Secondly, collecting the formed aluminum foil containers requires manual stacking. This process may require operators to manually stack the formed aluminum foil containers together for subsequent processing and packaging. However, this process may increase production costs and is prone to errors. Manual stacking may cause friction and damage between aluminum foil containers, thus affecting the quality and appearance of the products. Summary of the Utility Model

[0004] In order to overcome the above-mentioned defects of the prior art, the utility model provides a production device for automatically forming aluminum foil containers to solve the problems existing in the above-mentioned background art.

[0005] The present utility model provides the following technical solution: An aluminum foil container production device for automatic forming, including a conveying component, which is connected to a stamping and forming component through tinfoil paper. The conveying component is in front of the stamping and forming component, the stamping and forming component is in front of the conveying component, and the conveying component is in front of the collecting component; The stamping and forming component includes a forming base, a first electric push rod, a container block, a cutting groove, a fixing block, a fourth guide roller, a second motor, a second electric push rod, a rectangular block, a sliding block, a cylinder, a circular block, a container groove and a cutting piece. Among them, both side walls of the forming base are fixedly connected to the second electric push rod, one upper end of the forming base is fixedly connected to the fixing block, the inside of the fixing block is movably connected to a third rotating shaft, the outer wall of the third rotating shaft is fixedly connected to the fourth guide roller, one end of the third rotating shaft is fixedly connected to the output end of the second motor, the inside of the forming base is fixedly connected to the first electric push rod, the output end of the first electric push rod is fixedly connected to the container block, a cutting groove is opened at the top of the forming base, the output end of the second electric push rod is fixedly connected to the rectangular block, the inside of the upper end of the rectangular block is movably connected to the sliding block, the middle of the bottom of the sliding block is fixedly connected to the cylinder, the bottom of the cylinder is fixedly connected to the circular block, the bottom of the cylinder is adapted to the top end of the container groove, and the bottom of the rectangular block is fixedly connected to the cutting piece;

[0006] Preferably, the collecting component includes a column, a support frame, a through-hole block, a collecting container piece, a square block part, a central block, a third electric push rod, a rectangular base and a protective sleeve. Among them, both sides of the column are fixedly connected to the support frame, the top of the column is fixedly connected to the through-hole block, one end of the collecting container piece away from the through-hole block is fixedly connected to the square block part, the other end of the square block part is fixedly connected to the central block, the bottom of the central block is fixedly connected to the output end of the third electric push rod, the bottom of the third electric push rod is fixedly connected to the rectangular base, the top of the central block is fixedly connected to a fourth motor, and a protective sleeve is arranged outside the fourth motor.

[0007] Preferably, the conveying assembly includes a fixed base, a rectangular frame, a rubber pad, a fixed groove, a first guiding roller, a nut, a first frame body, a transmission port, a first rotating shaft, a second rotating shaft, a guiding block, a second frame body, a second guiding roller, a third guiding roller, a first motor and a first conveyor belt. The upper end of the fixed base is fixedly connected to the rectangular frame. One end of the rectangular frame is fixedly connected to the rubber pad. The upper end of the rubber pad is fixedly connected to the fixed groove. The first guiding roller is movably connected inside the fixed groove. One side wall of the fixed groove is movably connected to the nut. The other side of the rectangular frame is fixedly connected to the first frame body and the second frame body. A transmission port is formed on one side of the first frame body close to the first guiding roller. The bottom inner wall of the first frame body close to the transmission port is movably connected to the first rotating shaft. The middle of the first frame body is movably connected to the second rotating shaft. The guiding block is fixedly connected below the second rotating shaft. The upper end of the second frame body is movably connected to the second guiding roller and the third guiding roller which are distributed at intervals up and down. One end of the third guiding roller is fixedly connected to the output end of the first motor through the first conveyor belt.

[0008] Preferably, the conveying assembly includes support columns, a conveying frame, a fourth rotating shaft, a third motor and a second conveyor belt. The top of the support columns is fixedly connected to the conveying frame. The two ends inside the conveying frame are movably connected to the fourth rotating shaft. One end of the fourth rotating shaft is fixedly connected to the third motor. The second conveyor belt is sleeved outside the fourth rotating shaft.

[0009] Preferably, the collecting assembly includes columns, a support frame, a through-hole block, a collecting container member, a square part, a central block, a third electric push rod, a rectangular base and a protective sleeve. The collecting container member is movably connected inside the through-hole block.

[0010] The technical effects and advantages of the present utility model:

[0011] After putting the tin foil sleeve on the outside of the first guiding roller and placing it in the fixed groove, turn the nut to fix it. The tin foil passes through the conveying assembly and then winds around the surface of the fourth guiding roller, and is laid flat on the upper surface of the forming base. The rectangular block moves down quickly, and the cutting piece cuts the tin foil into the required size and shape. The container block moves upward under the push of the first electric push rod to form the tin foil. Then the rectangular block moves upward, and the sliding block moves downward under the action of gravity, thereby driving the container groove to move downward, so that the formed tin foil container falls off. The third motor drives the fourth rotating shaft to rotate, and the formed tin foil container is driven by the second conveyor belt to the other end, and falls on the protruding part of the collecting container member under the action of inertia. When a certain time has passed, the third electric push rod moves upward to separate the collecting container member from the through-hole block. Then, the fourth motor drives the central block to rotate, and the two collecting container members exchange positions, and then fall inside the through-hole block, which is convenient for taking out the formed aluminum foil container. Description of the Drawings

[0012] Figure 1 This is a schematic diagram of the overall structure of the present utility model.

[0013] Figure 2 This is a schematic sectional view of the overall structure of the present utility model.

[0014] Figure 3 This is a schematic diagram of the structure of the conveying component of the present utility model.

[0015] Figure 4 This is a schematic diagram of the structure of the stamping and forming component of the present utility model.

[0016] Figure 5 This is a schematic diagram of the structure of the collection component of the present utility model.

[0017] The reference numerals are: 1, conveying component; 101, fixed base; 102, rectangular frame; 103, rubber pad; 104, fixed groove; 105, first guiding roller; 106, nut; 107, first frame; 108, transmission port; 109, first rotating shaft; 110, second rotating shaft; 111, guiding block; 112, second frame; 113, second guiding roller; 114, third guiding roller; 115, first motor; 116, first conveyor belt; 2, stamping and forming component; 201, forming base; 202, first electric push rod; 203, container block; 204, cutting groove; 205, fixed block; 206, fourth guiding roller; 207, second motor; 208, second electric push rod; 209, rectangular block; 210, sliding block; 211, cylinder; 212, circular block; 213, container groove; 214, cutting piece; 215, third rotating shaft; 3, conveying component; 301, support column; 302, conveying frame; 303, fourth rotating shaft; 304, third motor; 305, second conveyor belt; 4, collection component; 401, column; 402, support frame; 403, through-hole block; 404, collection container part; 405, square part; 406, center block; 407, third electric push rod; 408, rectangular base; 409, protective sleeve; 410, fourth motor. Detailed implementation manners

[0018] Next, the technical solutions in the present utility model will be clearly and completely described in conjunction with the drawings in the present utility model. In addition, the forms of each structure described in the following embodiments are merely examples, and an automatic forming aluminum foil container production device related to the present utility model is not limited to the structures described in the following embodiments. All other embodiments obtained by those of ordinary skill in the art without creative efforts fall within the scope of protection of the present utility model.

[0019] Refer to Figure 1 and Figure 2, the present utility model provides a production device for automatically forming aluminum foil containers, which includes a conveying component 1. The conveying component 1 is connected to a stamping and forming component 2 through tinfoil paper. The conveying component 1 is in front of the stamping and forming component 2, the stamping and forming component 2 is in front of a conveying component 3, and the conveying component 3 is in front of a collecting component 4;

[0020] Among them, the conveying component 1 includes a fixed base 101, a rectangular frame 102, a rubber pad 103, a fixed groove 104, a first guide roller 105, a nut 106, a first frame 107, a transmission port 108, a first rotating shaft 109, a second rotating shaft 110, a guiding block 111, a second frame 112, a second guide roller 113, a third guide roller 114, a first motor 115 and a first conveyor belt 116. The upper end of the fixed base 101 is fixedly connected to the rectangular frame 102. One end of the rectangular frame 102 is fixedly connected to the rubber pad 103. The upper end of the rubber pad 103 is fixedly connected to the fixed groove 104. The first guide roller 105 is movably connected inside the fixed groove 104. One side wall of the fixed groove 104 is movably connected to the nut 106. The other side of the rectangular frame 102 is fixedly connected to the first frame 107 and the second frame 112. A transmission port 108 is opened on one side of the first frame 107 close to the first guide roller 105. The bottom inner wall of the first frame 107 close to the transmission port 108 is movably connected to the first rotating shaft 109. The middle of the first frame 107 is movably connected to the second rotating shaft 110. The guiding block 111 is fixedly connected below the second rotating shaft 110. The upper end of the second frame 112 is movably connected to the second guide roller 113 and the third guide roller 114 which are distributed at intervals up and down. One end of the third guide roller 114 is fixedly connected to the output end of the first motor 115 through the first conveyor belt 116;

[0021] The stamping and forming assembly 2 includes a forming base 201, a first electric push rod 202, a container block 203, a cutting groove 204, a fixing block 205, a fourth material guiding roller 206, a second motor 207, a second electric push rod 208, a rectangular block 209, a sliding block 210, a cylinder 211, a circular block 212, a container groove 213 and a cutting piece 214. The two side walls of the forming base 201 are fixedly connected to the second electric push rod 208. The upper end of one side of the forming base 201 is fixedly connected to the fixing block 205. The inside of the fixing block 205 is movably connected to a third rotating shaft 215. The outer wall of the third rotating shaft 215 is fixedly connected to the fourth material guiding roller 206. One end of the third rotating shaft 215 is fixedly connected to the output end of the second motor 207. The inside of the forming base 201 is fixedly connected to the first electric push rod 202. The output end of the first electric push rod 202 is fixedly connected to the container block 203. A cutting groove 204 is formed at the top of the forming base 201, and the cutting groove 204 is around the container block 203. The output end of the second electric push rod 208 is fixedly connected to the rectangular block 209. The upper end inside of the rectangular block 209 is movably connected to the sliding block 210. The middle of the bottom of the sliding block 210 is fixedly connected to the cylinder 211. The bottom of the cylinder 211 is fixedly connected to the circular block 212. The bottom of the cylinder 211 is adapted to the top end of the container groove 213. The container groove 213 is adapted to the container block 203. When there is no external force, the circular block 212 is inside the container groove 213. The bottom of the rectangular block 209 is fixedly connected to the cutting piece 214, and the cutting piece 214 is adapted to the cutting groove 204;

[0022] The conveying assembly 3 includes a support column 301, a conveying frame 302, a fourth rotating shaft 303, a third motor 304 and a second conveyor belt 305. The top of the support column 301 is fixedly connected to the conveying frame 302. The two ends inside the conveying frame 302 are movably connected to the fourth rotating shaft 303. One end of the fourth rotating shaft 303 is fixedly connected to the third motor 304. The outside of the two fourth rotating shafts 303 is sleeved with the second conveyor belt 305. The third motor 304 drives the fourth rotating shaft 303 to rotate, and the fourth rotating shaft 303 drives the second conveyor belt 305 to rotate;

[0023] The collection component 4 includes a column 401, a support frame 402, a through-hole block 403, a collection container member 404, a square part 405, a central block 406, a third electric push rod 407, a rectangular base 408 and a protective sleeve 409. On both sides of the column 401, the support frame 402 is fixedly connected to play a supporting role. At the top of the column 401, the through-hole block 403 is fixedly connected. A hole is provided inside the through-hole block 403, and the collection container member 404 is movably connected inside the hole. One end of the collection container member 404 away from the through-hole block 403 is fixedly connected to the square part 405, and the other end of the square part 405 is fixedly connected to the central block 406. The bottom of the central block 406 is fixedly connected to the output end of the third electric push rod 407, and the bottom of the third electric push rod 407 is fixedly connected to the rectangular base 408. The top of the central block 406 is fixedly connected to a fourth motor 410, and the protective sleeve 409 is arranged outside the fourth motor 410.

[0024] The working principle of the present utility model:

[0025] Remove the first guiding roller 105, put the tin foil loop outside the first guiding roller 105 and then place it in the fixing groove 104, turn the nut 106 to fix it, pull out one end of the tin foil loop through the transmission port 108, bypass the upper end of the first rotating shaft 109, then bypass the lower end of the second rotating shaft 110, and pass the tin foil paper between the second guiding roller 113 and the third guiding roller 114 along the direction of the guiding block 111. The output end of the first motor 115 drives the first conveyor belt 116 to drive, and the first conveyor belt 116 drives one end of the third guiding roller 114 to drive, so as to promote the forward movement of the tin foil paper. The tin foil paper passes around the surface of the fourth guiding roller 206 after passing through the conveying component 1, and then spreads on the upper surface of the forming base 201. At this time, the rectangular block 209 moves down rapidly. After the cutting piece 214 cuts the tin foil paper into the required size and shape, the container block 203 moves upward under the push of the first electric push rod 202 to form the tin foil paper. Subsequently, the rectangular block 209 moves upward. During the upward movement, the sliding block 210 moves downward under the action of gravity, thereby driving the container groove 213 to move downward, so that the formed tin foil container drops. Since the tin foil paper has been advancing towards the surface of the forming base 201, under the action of inertia, the formed tin foil container that has dropped lands on the surface of the second conveyor belt 305.

[0026] The third motor 304 drives the fourth rotating shaft 303 to drive. The formed tin foil container follows the second conveyor belt 305 to the other end and lands on the protruding part of the collection container member 404 under the action of inertia. When a certain time has passed, the third electric push rod 407 moves upward to separate the collection container member 404 from the through-hole block 403. Subsequently, the fourth motor 410 drives the central block 406 to rotate, and the two collection container members 404 exchange positions and then fall inside the through-hole block 403, which is convenient for taking out the formed aluminum foil container.

[0027] The following points should be noted: First, in the description of this application, it should be noted that unless otherwise specified and limited, the terms "installed", "connected", and "coupled" should be understood in a broad sense. It can be a mechanical connection or an electrical connection, or it can be the communication inside two components. It can be directly connected. The terms "upper", "lower", "left", "right", etc. are only used to represent the relative position relationship. When the absolute position of the object being described changes, the relative position relationship may change;

[0028] Second, in the attached drawings of the disclosed embodiments of the present utility model, only the structures related to the disclosed embodiments are involved. For other structures, reference can be made to the general design. Without conflict, the same embodiment and different embodiments of the present utility model can be combined with each other;

[0029] Finally, the above are only the preferred embodiments of the present utility model and are not used to limit the present utility model. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.

Claims

1. An automatic forming aluminum foil container production device, comprising a conveying component (1), characterized in that: The conveying component (1) is connected to the stamping and forming component (2) through tin foil, the conveying component (1) is in front of the stamping and forming component (2), the stamping and forming component (2) is in front of the conveying component (3), and the conveying component (3) is in front of the collecting component (4); the stamping and forming component (2) comprises a forming base (201), a first electric push rod (202), a container block (203), a cutting groove (204), a fixed block (205), a fourth material guide roller (206), a second motor (207), a second electric push rod (208), a rectangular block (209), a sliding block (210), a cylinder (211), a circular block (212), a container groove (213) and a cutting piece (214), wherein the two side walls of the forming base (201) are fixedly connected to the second electric push rod (208), the upper end of one side of the forming base (201) is fixedly connected to the fixed block (205), and the interior of the fixed block (205) is movably connected to the third rotary The third rotating shaft (215) is fixedly connected to the fourth material guide roller (206) on its outer wall, one end of the third rotating shaft (215) is fixedly connected to the output end of the second motor (207), the interior of the molding base (201) is fixedly connected to the first electric push rod (202), the output end of the first electric push rod (202) is fixedly connected to the container block (203), the top of the molding base (201) is provided with a cutting groove (204), and the second electric push rod (202) is fixedly connected to the output end of the second motor (207). The output end of the rod (208) is fixedly connected to a rectangular block (209), the upper end of the rectangular block (209) is movably connected to a sliding block (210), the bottom middle of the sliding block (210) is fixedly connected to a cylinder (211), the bottom of the cylinder (211) is fixedly connected to a circular block (212), the bottom of the cylinder (211) is matched with the top of the container groove (213), and the bottom of the rectangular block (209) is fixedly connected to a cutting piece (214).

2. The automatic forming aluminum foil container production device according to claim 1 is characterized in that: The collecting assembly (4) comprises a column (401), a support frame (402), a through-hole block (403), a collecting container (404), a square part (405), a center block (406), a third electric push rod (407), a rectangular base (408) and a protective cover (409), wherein both sides of the column (401) are fixedly connected to the support frame (402), the top of the column (401) is fixedly connected to the through-hole block (403), and the collecting container (404) is away from the through-hole block. One end of (403) is fixedly connected to a block part (405), the other end of the block part (405) is fixedly connected to a center block (406), the bottom of the center block (406) is fixedly connected to an output end of a third electric push rod (407), the bottom of the third electric push rod (407) is fixedly connected to a rectangular base (408), the top of the center block (406) is fixedly connected to a fourth motor (410), and a protective cover (409) is provided on the outside of the fourth motor (410).

3. The automatic forming aluminum foil container production device according to claim 1 is characterized in that: The transmission component (1) comprises a fixed base (101), a rectangular frame (102), a rubber pad (103), a fixed groove (104), a first guide roller (105), a nut (106), a first frame (107), a transmission port (108), a first rotating shaft (109), a second rotating shaft (110), a guide block (111), a second frame (112), a second guide roller (113), a third guide roller (114), a first motor (115) and a first conveyor belt (116), wherein the upper end of the fixed base (101) is fixedly connected to the rectangular frame (102), one end of the rectangular frame (102) is fixedly connected to the rubber pad (103), the upper end of the rubber pad (103) is fixedly connected to the fixed groove (104), the interior of the fixed groove (104) is movably connected to the first guide roller (105), and the fixed groove (1 04) is movably connected to a nut (106) on one side wall, the other side of the rectangular frame (102) is fixedly connected to a first frame (107) and a second frame (112), a transmission port (108) is provided on a side of the first frame (107) close to the first guide roller (105), the bottom inner wall of the first frame (107) close to the transmission port (108) is movably connected to a first rotating shaft (109), the middle of the first frame (107) is movably connected to a second rotating shaft (110), the lower side of the second rotating shaft (110) is fixedly connected to a guide block (111), the upper end of the second frame (112) is movably connected to a second guide roller (113) and a third guide roller (114) which are spaced apart from each other, and one end of the third guide roller (114) is fixedly connected to the output end of the first motor (115) through a first conveyor belt (116).

4. The automatic forming aluminum foil container production device according to claim 1 is characterized in that: The conveying assembly (3) comprises a support column (301), a conveying frame (302), a fourth rotating shaft (303), a third motor (304) and a second conveyor belt (305), wherein the top of the support column (301) is fixedly connected to the conveying frame (302), the inner two ends of the conveying frame (302) are movably connected to the fourth rotating shaft (303), one end of the fourth rotating shaft (303) is fixedly connected to the third motor (304), and the outer part of the fourth rotating shaft (303) is covered with a second conveyor belt (305).

5. The automatic forming aluminum foil container production device according to claim 1, characterized in that: The collecting assembly (4) comprises a column (401), a support frame (402), a through-hole block (403), a collecting container (404), a square part (405), a center block (406), a third electric push rod (407), a rectangular base (408) and a protective cover (409), wherein the through-hole block (403) is internally movably connected to the collecting container (404).