A conditioning rack assembly for aluminum foil annealing

CN224728594UActive Publication Date: 2026-09-08HENAN SONGSHAN ALUMINUM CO LTD
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Patent Information

Application Number
CN202521941976.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-10
Publication Date
2026-09-08
Estimated Expiration
2035-09-10

AI Technical Summary

Technical Problem

[0004]针对现有技术的不足,本实用新型提供了一种铝箔退火用调节式料架组件,解决了上述背景技术提出的由于不能根据铝箔卷直径的大小进行调整,进而导致铝箔平均装炉量的过小,增加了能耗,从而存在一定的使用局限性的问题

Benefits of technology

[0014] 1. This design provides an adjustable feed rack assembly for aluminum foil annealing. Through the cooperation of a set of round rod one, round rod two, bevel gear one, bevel gear two, and square sleeve, the distance between two base plates one is adjusted. At the same time, with the assistance of the adjusting component two, the distance between two pairs of base plates two and two base plates one is adjusted. Thus, the length and width of the feed rack can be adjusted according to the diameter of the aluminum foil roll, thereby increasing the loading capacity of each furnace, reducing energy consumption and cost, and promoting sustainable development.

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Abstract

This utility model discloses an adjustable feeder assembly for aluminum foil annealing, relating to the technical field of aluminum foil annealing feeder assembly. It includes a base frame and a support frame. The base frame includes symmetrically arranged base plates (1), with base plates (2) on both the front and rear sides of the two base plates (1). The two base plates (1) are fixed together by an adjusting component (1). Two pairs of base plates (2) are fixed together with the two base plates by the adjusting component (2). The support frame includes square pillars on the outer top surfaces of the two pairs of base plates (2), and four sets of square pillars are fixed together by an adjusting component (3). This utility model adjusts the distance between the two base plates (1) through the cooperation of a round rod (1), a round rod (2), a bevel gear (1), a bevel gear (2), and a square sleeve. Simultaneously, with the assistance of the adjusting component (2), it adjusts the distance between the two pairs of base plates (2) and the two base plates (1). This allows for adjustment of the length and width of the feeder according to the diameter of the aluminum foil roll, thereby increasing the loading capacity per furnace.
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Description

Technical Field

[0001] This utility model relates to the field of aluminum foil annealing rack technology, and in particular to an adjustable rack assembly for aluminum foil annealing. Background Technology

[0002] Aluminum foil, due to its excellent properties, is widely used in food, beverages, cigarettes, pharmaceuticals, photographic plates, and household daily necessities, and is usually used as their packaging material. Aluminum foil is a soft metal film that not only has advantages such as moisture resistance, airtightness, light blocking, abrasion resistance, aroma retention, and non-toxicity and odorlessness, but also undergoes rolling, slitting, annealing, and packaging processes during its production. When annealing aluminum foil, an aluminum foil annealing rack is often required. Since aluminum foil is often processed into aluminum foil rolls during production, the diameter of the processed aluminum foil rolls varies.

[0003] Currently available aluminum foil annealing racks, due to their inability to be adjusted according to the diameter of the aluminum foil rolls, result in an insufficient average furnace loading of aluminum foil, increasing energy consumption and thus limiting their application. Therefore, those skilled in the art have provided an adjustable rack assembly for aluminum foil annealing to address the problems mentioned in the background section. Utility Model Content

[0004] To address the shortcomings of existing technologies, this utility model provides an adjustable feed rack assembly for aluminum foil annealing, which solves the problem mentioned in the background art that the inability to adjust according to the diameter of the aluminum foil roll leads to an excessively small average furnace loading of aluminum foil, increasing energy consumption and thus limiting its application.

[0005] To achieve the above objectives, this utility model is implemented through the following technical solution: an adjustable material rack assembly for aluminum foil annealing, comprising a base frame and a support frame. The base frame includes symmetrically arranged base plates 1, and base plates 2 are provided on the front and rear sides of the two base plates 1. The two base plates 1 are fixed to each other by an adjusting component 1. Two pairs of base plates 2 are fixed to the two base plates by adjusting component 2. The support frame includes square pillars provided on the outer top surface of the two pairs of base plates 2, and four sets of square pillars are fixedly connected to each other by an adjusting component 3.

[0006] The adjustment assembly includes a square cavity inside one of the base plates. A square hole is formed on the left outer wall of one of the base plates, and a square sleeve is slidably connected inside the square hole. A screw hole is formed on the right outer wall of the square sleeve, and the left outer wall is fixed to the other base plate. A round rod is rotatably mounted on the inner bottom surface of the square cavity. A bevel gear is fixed on the outer peripheral side wall of the round rod. A round rod is rotatably mounted on the inner side wall of the square cavity. A bevel gear is fixed at one end of the round rod, and the other end rotates through the square hole and extends into the inner side of the screw hole. A thread matching the screw hole is formed on the outer peripheral side wall. The bevel gear and the bevel gear mesh with each other. One end of the round rod extends to the outer bottom surface of the base plate and is fixed with a knob. A limit block is fixed on the outer peripheral side wall of the knob. The limit block is fixedly connected to the base plate by a positioning screw.

[0007] As a further technical solution of this utility model, the adjustment component 2 includes an opening on the outer side wall of one side of two pairs of base plates 2. The outer walls of the front and rear sides of the two base plates 1 are fixed with insert plates 1 that are adapted to the opening. The opposite ends of the two pairs of insert plates 1 are slidably inserted into the inner side of the opening and are fixedly connected to each other by fastening bolts.

[0008] As a further technical solution of this utility model, straight openings are provided on the outer side walls of the two base plates, and two insert plates are fixed on the outer side walls of the other two base plates, which are adapted to the two straight openings. One end of the two insert plates is slidably inserted into the inner side of the two straight openings and is fixedly connected to each other by fastening bolts.

[0009] As a further technical solution of this utility model, the adjustment component three includes a connecting plate one fixedly installed on the right outer wall of two sets of square pillars, and a connecting plate two fixedly installed on the left outer wall of the other two sets of square pillars. Multiple support blocks are fixedly installed on the outer top surfaces of the two connecting plates one and two, and baffles are fixed on opposite ends of the outer top surfaces of the two connecting plates one and two.

[0010] As a further technical solution of this utility model, a sliding groove is provided on the right outer wall of the two connecting plates one, and an insert plate three adapted to the two sliding grooves is fixed on the left outer wall of the two connecting plates two. One end of the two insert plates two is slidably inserted into the inner side of the two sliding grooves and is fixedly connected to each other by fastening bolts. At the same time, the two sets of square pillars and the other two sets of square pillars are fixedly connected by two sets of telescopic support plates.

[0011] As a further technical solution of this utility model, hooks are fixed on the outer bottom surfaces of the two pairs of base plates, and lugs are fixed on the outer side walls of the four sets of square pillars.

[0012] As a further technical solution of this utility model, a connecting plate is fixed on the outer bottom surface of the four sets of square pillars, and a slot 1 is opened on the outer top surface of the two pairs of bottom plates. One end of the two pairs of connecting plates is slidably inserted into the inner side of the slot 1 and fixed to each other by positioning screw 2. A slot 2 is opened on the outer top surface of the four sets of square pillars.

[0013] This utility model provides an adjustable feed rack assembly for aluminum foil annealing, which has the following advantages compared with the prior art:

[0014] 1. This design provides an adjustable feed rack assembly for aluminum foil annealing. Through the cooperation of a set of round rod one, round rod two, bevel gear one, bevel gear two, and square sleeve, the distance between two base plates one is adjusted. At the same time, with the assistance of the adjusting component two, the distance between two pairs of base plates two and two base plates one is adjusted. Thus, the length and width of the feed rack can be adjusted according to the diameter of the aluminum foil roll, thereby increasing the loading capacity of each furnace, reducing energy consumption and cost, and promoting sustainable development.

[0015] 2. This design provides an adjustable material rack assembly for aluminum foil annealing. The connecting plate, slot one, and slot two allow for the addition of more supports as needed, enabling the stacking of multiple material racks. This allows for the assembly of material racks of appropriate height and number of layers based on the actual amount of material being loaded, thereby further improving the efficiency of annealing furnace loading. Attached Figure Description

[0016] Figure 1 A first three-dimensional structural schematic diagram of an adjustable feed rack assembly for aluminum foil annealing;

[0017] Figure 2 This is a schematic diagram of the second three-dimensional structure of an adjustable feed rack assembly for aluminum foil annealing.

[0018] Figure 3 A cross-sectional three-dimensional structural diagram of an adjustable feed rack assembly for aluminum foil annealing;

[0019] Figure 4 A schematic diagram of the three-dimensional structure of the base frame of an adjustable feed rack assembly for aluminum foil annealing;

[0020] Figure 5 This is a three-dimensional structural diagram of a support for an adjustable feed rack assembly for aluminum foil annealing.

[0021] In the picture:

[0022] 1. Base frame; 101. Support frame; 102. Base plate one; 103. Base plate two; 104. Square support column;

[0023] 2. Adjustment component one; 201. Square cavity; 202. Square hole; 203. Square sleeve; 204. Screw hole; 205. Round rod one; 206. Bevel gear one; 207. Round rod two; 208. Bevel gear two; 209. Knob; 210. Limit block;

[0024] 3. Adjustment component two; 301. Opening; 302. Insert plate one; 303. Straight opening; 304. Insert plate two;

[0025] 4. Adjustment component three; 401. Connecting plate one; 402. Connecting plate two; 403. Support block; 404. Baffle; 405. Slide groove; 406. Insert plate three; 407. Support plate;

[0026] 5. Hanging buckle; 501. Hanging lug;

[0027] 6. Connecting plate; 601. Slot 1; 602. Slot 2. Detailed Implementation

[0028] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model.

[0029] Please see Figure 1-5This utility model provides a technical solution for an adjustable material rack assembly for aluminum foil annealing: it includes a base frame 1 and a support 101. The base frame 1 includes two symmetrically arranged base plates 102, which are fixed to each other by an adjusting assembly 2. The adjusting assembly 2 includes a square cavity 201 opened inside one of the base plates 102. A square hole 202 is opened on the left outer wall of one of the base plates 102, and a square sleeve 203 is slidably connected inside the square hole 202. A screw hole 204 is opened on the right outer wall of the square sleeve 203, while the left outer wall is fixed to the other base plate 102. A round rod 205 is rotatably installed on the inner bottom surface of the square cavity 201. A bevel gear 206 is fixed to the outer peripheral sidewall of the round rod 205. A round rod 207 is rotatably mounted on the inner sidewall of the square cavity 201. A bevel gear 208 is fixed to one end of the round rod 207, while the other end rotates through the square hole 202 and extends into the inner side of the screw hole 204. A thread matching the screw hole 204 is opened on the outer peripheral sidewall. The bevel gear 206 and the bevel gear 208 are meshed and connected to each other. One end of the round rod 205 rotates and extends to the outer bottom surface of the base plate 102 and is fixed with a knob 209. A limit block 210 is fixed on the outer peripheral sidewall of the knob 209. The limit block 210 is fixedly connected to the base plate 102 through a positioning screw. In use, turning the knob 209 drives the round rod 205 to rotate inside the square cavity 201, and under the meshing connection of the bevel gear 206, drives the bevel gear 208 to drive the round rod 207 to perform threaded transmission inside the screw hole 204. This drives the square sleeve 203 to slide inside the square hole 202, thereby pushing one of the base plates 102 away from the other base plate 102, thus adjusting the distance between the two base plates 102 and extending the length of the overall material rack. After the adjustment is completed, the positioning screw 1 fixes the limiting block 210 to the outer bottom surface of the base plate 102 to prevent self-rotation.

[0030] Two base plates 102 are provided on both the front and rear sides. The two pairs of base plates 103 are fixed to the two base plates by an adjusting assembly 2 3. The adjusting assembly 2 3 includes an opening 301 on the outer wall of the two pairs of base plates 103 at their closest points. Insert plates 302, adapted to the openings 301, are fixed on the outer walls of both the front and rear sides of the two base plates 102. The opposite ends of the two pairs of insert plates 302 are slidably inserted into the inner side of the openings 301 and fixed together by fastening bolts. Straight openings 303 are provided on the outer walls of both base plates 103. The other two base plates 102... On the outer side wall of 3, there are two insert plates 304 that are compatible with the two straight openings 303. One end of the two insert plates 304 are slidably inserted into the inner side of the two straight openings 303 and are fixed to each other by fastening bolts. In use, according to actual needs, first let the two insert plates 302 slide inside the two openings 301, and then let the two insert plates 304 slide inside the straight openings 303 to adjust the length and width of the overall material rack, so as to meet the needs of aluminum foil rolls of different diameters. At the same time, the fastening bolts can ensure the stability after adjustment, thereby improving practicality.

[0031] The support 101 includes square pillars 104 mounted on the outer top surfaces of two pairs of base plates 103. The four sets of square pillars 104 are fixedly connected to each other via an adjusting assembly 4. The adjusting assembly 4 includes connecting plates 401 fixedly installed on the right outer walls of two sets of square pillars 104, and connecting plates 402 fixedly installed on the left outer walls of the other two sets of square pillars 104. Multiple support blocks 403 are fixedly installed on the outer top surfaces of both connecting plates 401 and 402. Baffles 404 are fixedly installed on opposite ends of the outer top surfaces of both connecting plates 401 and 402. Slide grooves 405 are formed on the right outer walls of the two connecting plates 401, and two slide grooves 405 are fixedly installed on the left outer walls of the two connecting plates 402. The three-piece insert plate 406 is adapted to slide one end of the two two-piece insert plates 304 into the inner side of the two sliding grooves 405 and is fixedly connected to each other by fastening bolts. At the same time, the two sets of square pillars 104 and the other two sets of square pillars 104 are fixedly connected by two sets of telescopic support plates 407. In use, the three-piece insert plate 406 slides inside the sliding groove 405 to adjust the distance between the connecting plate 1 401 and the connecting plate 2 402. With the assistance of the support plates 407, the bracket 101 can be adjusted synchronously in length and width with the base frame 1 to meet the usage requirements. At the same time, the support block 403 and the baffle 404 can ensure the stability of the aluminum foil roll when it is placed and prevent the aluminum foil roll from shaking or moving.

[0032] Lifting buckles 5 are fixed to the outer bottom surfaces of both pairs of base plates 103, and lifting lugs 501 are fixed to the outer side walls of the four sets of square pillars 104. The lifting buckles 5 and lifting lugs 501 facilitate the hoisting and transportation of the material rack. Connecting plates 6 are fixed to the outer bottom surfaces of the four sets of square pillars 104. Slots 601 are opened on the outer top surfaces of both pairs of base plates 103. One end of each pair of connecting plates 6 is slidably inserted into the inner side of slots 601 and fixed to each other by positioning screws. Slots 602 are opened on the outer top surfaces of the four sets of square pillars 104. By inserting connecting plates 6 into the inside of slots 601 and turning positioning screws, they are fixed to each other, thereby fixing brackets 101 to base frame 1. Then, the number of brackets 101 can be increased as needed to stack multiple layers of material racks. Material racks of appropriate height and number of layers can be spliced ​​according to the actual amount of material loaded, thereby further improving the annealing furnace loading efficiency.

[0033] The working principle of this utility model is as follows: In use, first insert the connecting plate 6 into the slot 601, then tighten the positioning screw to fix it, thus fixing the bracket 101 onto the base frame 1. Then, as needed, turn the knob 209 to drive the round rod 205 to rotate along with the round rod 207, thereby causing the square sleeve 203 to slide inside the square hole 202, adjusting the distance between the two base plates 102. Next, allow the two insert plates 302 to slide inside the two openings 301 and the two insert plates 304 to slide inside the straight opening 303, thereby adjusting the length of the base frame 1. The width is adjusted so that the insert plate 3 406 slides inside the slide groove 405, thereby adjusting the distance between the connecting plate 1 401 and the connecting plate 2 402. With the assistance of the support plate 407, the bracket 101 can be adjusted synchronously with the base frame 1 in length and width. Then, the aluminum foil rolls are placed on the support block 403 in sequence. Finally, the corresponding number of brackets 101 are installed in sequence as needed to stack multiple layers of material racks. According to the actual amount of material loaded, a material rack of appropriate height and number of layers can be spliced. Finally, the material rack is hoisted and transported to the annealing furnace for annealing treatment by the hook 5 and the lug 501.

[0034] The above description is merely a preferred embodiment of this utility model. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of this utility model, and these improvements and modifications should also be considered within the scope of protection of this utility model. Structures, devices, and operating methods not specifically described or explained in this utility model are implemented according to conventional methods in the art, unless otherwise specified or limited.

Claims

1. A conditioning rack assembly for annealing aluminum foil, characterized by, The system includes a base frame (1) and a support frame (101). The base frame (1) includes symmetrically arranged base plates (102). The two base plates (102) are provided with base plates (103) on both the front and rear sides. The two base plates (102) are fixed to each other by an adjustment component (2). The two pairs of base plates (103) are fixed to the two base plates by an adjustment component (3). The support frame (101) includes square pillars (104) on the outer top surface of the two pairs of base plates (103). The four sets of square pillars (104) are fixedly connected to each other by an adjustment component (4). The adjustment component 1 (2) includes a square cavity (201) formed inside one of the base plates 1 (102). A square hole (202) is formed on the left outer wall of one of the base plates 1 (102). A square sleeve (203) is slidably connected inside the square hole (202). A screw hole (204) is formed on the right outer wall of the square sleeve (203). The left outer wall is fixed to the other base plate 1 (102). A round rod 1 (205) is rotatably mounted on the inner bottom surface of the square cavity (201). A bevel gear 1 (206) is fixed on the outer peripheral side wall of the round rod 1 (205). A bevel gear 1 (206) is rotatably mounted on the inner side wall of the square cavity (201). A round rod (207) is provided, one end of which is fixed with a bevel gear (208), and the other end rotates through a square hole (202) and extends into the inner side of a screw hole (204). A thread matching the screw hole (204) is provided on the outer peripheral sidewall. The bevel gear (206) and bevel gear (208) mesh with each other. One end of the round rod (205) rotates and extends to the outer bottom surface of the base plate (102) and is fixed with a knob (209). A limit block (210) is fixed on the outer peripheral sidewall of the knob (209). The limit block (210) is fixedly connected to the base plate (102) through a positioning screw.

2. The adjustable rack assembly for annealing aluminum foil according to claim 1, wherein The adjustment component 2 (3) includes an opening (301) on the outer side wall of one side of two pairs of base plates 2 (103). The outer side walls of the two base plates 1 (102) are fixed with insert plates 1 (302) that are adapted to the opening (301). The opposite ends of the two pairs of insert plates 1 (302) are slidably inserted into the inner side of the opening (301) and are fixedly connected to each other by fastening bolts.

3. The adjustable rack assembly for annealing aluminum foil according to claim 2, wherein Two of the base plates (103) have straight openings (303) on their outer side walls. The other two base plates (103) have insert plates (304) that are compatible with the two straight openings (303) fixed on their outer side walls. One end of each insert plate (304) is slidably inserted into the inner side of the two straight openings (303) and is fixedly connected to each other by fastening bolts.

4. The adjustable rack assembly for annealing aluminum foil according to claim 3, wherein The adjustment component three (4) includes a connecting plate one (401) fixedly installed on the right outer wall of two sets of square pillars (104), and a connecting plate two (402) fixedly installed on the left outer wall of the other two sets of square pillars (104). Multiple support blocks (403) are fixedly installed on the outer top surfaces of the two connecting plates one (401) and two connecting plates two (402). At the same time, baffles (404) are fixed on opposite ends of the outer top surfaces of the two connecting plates one (401) and two connecting plates two (402).

5. The adjustable rack assembly for annealing aluminum foil as set forth in claim 4, wherein, A sliding groove (405) is provided on the right outer wall of the two connecting plates (401). An insert plate (406) adapted to the two sliding grooves (405) is fixed on the left outer wall of the two connecting plates (402). One end of the two insert plates (304) is slidably inserted into the inner side of the two sliding grooves (405) and is fixedly connected to each other by fastening bolts. At the same time, the two sets of square pillars (104) and the other two sets of square pillars (104) are fixedly connected by two sets of telescopic support plates (407).

6. The adjustable rack assembly for annealing aluminum foil according to claim 1, wherein Hanging buckles (5) are fixed on the outer bottom surface of the two pairs of base plates (103), and lifting lugs (501) are fixed on the outer side walls of the four sets of square pillars (104).

7. The adjustable rack assembly for annealing aluminum foil according to claim 1, wherein Connecting plates (6) are fixed on the outer bottom surface of the four sets of square pillars (104). A slot (601) is provided on the outer top surface of the two pairs of bottom plates (103). One end of the two pairs of connecting plates (6) is slidably inserted into the inner side of the slot (601) and fixed to each other by positioning screws. A slot (602) is provided on the outer top surface of the four sets of square pillars (104).