Stretching apparatus for rapid cooling trays

CN224614830UActive Publication Date: 2026-08-11WUHU HONGDU INTELLIGENT TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-04
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

[0005]针对上述问题,提供一种速冷盘的拉伸加工设备,通过吹屑机构和收集机构解决了清理不彻底以及效率不高的问题

Benefits of technology

[0014]本实用新型通过吹屑机构将冲压后产生的废屑吹离加工区域,通过收集机构将吹起的废屑收集起来,避免废屑散落到周围环境中,通过双向螺纹杆带动吹屑机构和收集机构进行同步移动,确保吹气和收集的效率和效果,减少人工干预,提高自动化程度,提高了速冷盘加工生产的效率。

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Abstract

This utility model relates to the field of stretching processing technology for quick-cooling discs, specifically to a stretching processing device for quick-cooling discs. It includes a base, a mounting frame on the base, several connecting columns on the mounting frame, a connecting plate at one end of the base, and symmetrically mounted fixing plates on the connecting plate. The connecting plate has a chip-blowing mechanism for blowing away waste chips, and a collection mechanism for collecting waste chips at the end of the base away from the chip-blowing mechanism. The connecting columns have a processing mechanism for processing the quick-cooling disc, and the base also has a driving mechanism. This utility model uses the chip-blowing mechanism to blow away waste chips generated after stamping from the processing area, and the collection mechanism to collect the blown-up waste chips, preventing them from scattering into the surrounding environment. A bidirectional threaded rod drives the chip-blowing mechanism and the collection mechanism to move synchronously, ensuring the efficiency and effectiveness of blowing and collection, reducing manual intervention, increasing automation, and improving the efficiency of quick-cooling disc processing.
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Description

Technical Field

[0001] This utility model relates to the field of stretching processing technology for rapid cooling discs, specifically to a stretching processing device for rapid cooling discs. Background Technology

[0002] The stretching equipment for quick-cooling discs is mainly used to form metal sheets or plates into quick-cooling discs through a stretching process. This equipment usually includes molds, stretching machines, automated control systems, etc., and can efficiently complete the production of quick-cooling discs.

[0003] Traditional equipment often fails to thoroughly clean up waste after stamping, leading to waste accumulation in the processing area and affecting processing quality. Traditional equipment requires manual waste cleaning, which is inefficient and labor-intensive, thus hindering the improvement of the processing efficiency of quick-cooling plates.

[0004] Based on this, a stretching processing device for rapid cooling discs is now provided, which can eliminate the drawbacks of existing devices. Utility Model Content

[0005] To address the aforementioned problems, a stretching processing device for rapid cooling discs is provided, which solves the issues of incomplete cleaning and low efficiency through a chip blowing mechanism and a chip collection mechanism.

[0006] To address the existing technical problems, this utility model provides a stretching processing device for a quick-cooling plate, including a base, a mounting frame mounted on the base, a plurality of connecting columns mounted on the mounting frame, a connecting plate at one end of the base, and fixing plates symmetrically mounted on the connecting plate;

[0007] The connecting plate is provided with a chip blowing mechanism for blowing waste chips, the base is provided with a collection mechanism for collecting waste chips at the end away from the chip blowing mechanism, the connecting column is provided with a processing mechanism for processing the rapid cooling plate, and the base is also provided with a driving mechanism.

[0008] Preferably, the processing mechanism includes a cylinder, an upper mold base, a mounting base, and a lower mold base. The mounting base is installed on the connecting column, and the cylinder is installed between the connecting column and the mounting frame. The output end of the cylinder passes through the mounting base and connects to the upper mold base. The base is provided with a lower mold base that cooperates with the upper mold base. The base is also provided with several columns, and the mounting base is provided with several sliding cylinders that slide with the columns.

[0009] Preferably, a collection frame is provided on one side of the lower mold base on either end of the base.

[0010] Preferably, the driving mechanism includes a motor, a fixed block, a bidirectional spiral rod, and a guide rod. Fixed blocks are symmetrically installed on the side wall of the collection frame, and a motor is installed on one end of the fixed block. The output end of the motor is connected to the bidirectional spiral rod, and the other end of the bidirectional spiral rod is rotatably engaged with a fixed plate. The guide rod is rotatably disposed between the fixed block and the fixed plate. A chip blowing mechanism and a collection mechanism are slidably provided on both the bidirectional spiral rod and the guide rod.

[0011] Preferably, the chip blowing mechanism includes an air pump, an air blowing pipe, a connecting pipe, a connecting rod, a movable block, an air blowing connection seat, and air blowing ports. The base is equipped with an air pump, the output end of which is connected to the air blowing pipe. The connecting pipe is slidably mounted on a connecting plate. Both ends of the connecting pipe are equipped with connecting rods, and the sidewalls of the connecting rods are connected to movable blocks. The movable blocks are respectively sleeved on the outer wall of a guide rod or a bidirectional spiral rod. The movable blocks have threads that mate with the bidirectional spiral rod. One end of the air blowing pipe communicates with the interface of the sidewall of the connecting pipe. The connecting pipe is equipped with an air blowing connection seat, and the air blowing connection seat has several air blowing ports inclinedly arranged on it. One end of each air blowing port communicates with the connecting pipe through the air blowing connection seat.

[0012] Preferably, the collection mechanism includes a chip removal box, a collection box, a collection pipe, a connecting pipe, a collection port, a movable seat, and guide rails. The chip removal box and the collection box are mounted on the base. The output end of the chip removal box is connected to the collection box, and the input end of the chip removal box is connected to the collection pipe. The other end of the collection pipe is connected to the connecting pipe. The connecting pipe has several collection ports. Guide rails are symmetrically arranged on the base. Movable seats are slidably arranged on each guide rail. The movable seats are slidably arranged on the outer walls of the bidirectional spiral rod and the guide rod, respectively. The movable seats have threads that cooperate with the bidirectional spiral rod. The side wall of the movable seats is connected to the connecting pipe. The other end of the collection port is connected to the collection pipe through the connecting pipe.

[0013] The advantages of this utility model compared to the prior art are:

[0014] This invention uses a chip blowing mechanism to blow the waste chips generated after stamping away from the processing area, and a collection mechanism to collect the blown waste chips, preventing them from scattering into the surrounding environment. A bidirectional threaded rod drives the chip blowing mechanism and the collection mechanism to move synchronously, ensuring the efficiency and effectiveness of blowing and collection, reducing manual intervention, improving the degree of automation, and increasing the efficiency of rapid cooling plate processing. Attached Figure Description

[0015] Figure 1 A three-dimensional structural diagram of a stretching processing equipment for a quick-cooling plate. Figure 1 .

[0016] Figure 2 A three-dimensional structural diagram of a stretching processing equipment for a quick-cooling plate. Figure 2 .

[0017] Figure 3 A stretching processing equipment for quick-cooling discs Figure 2 A magnified three-dimensional structural diagram of part A.

[0018] The diagram is labeled as follows: 101, base; 102, mounting bracket; 103, connecting column; 104, slide cylinder; 105, column; 106, connecting plate; 107, fixing plate; 108, collection frame; 200, machining mechanism; 201, cylinder; 202, upper mold base; 203, mounting base; 204, lower mold base; 300, drive mechanism; 301, motor; 302, fixing block; 303, bidirectional spiral. 304. Guide rod; 400. Chip blowing mechanism; 401. Air pump; 402. Air blowing pipe; 403. Connecting pipe; 404. Connecting rod; 405. Moving block; 406. Air blowing connection seat; 407. Air blowing port; 500. Collection mechanism; 501. Chip removal box; 502. Collection box; 503. Collection pipe; 504. Connecting pipe; 505. Collection port; 506. Moving seat; 507. Guide rail. Detailed Implementation

[0019] To further understand the features, technical means, and specific objectives and functions achieved by this utility model, the following detailed description of this utility model is provided in conjunction with the accompanying drawings and specific embodiments.

[0020] Reference Figures 1-3 A stretching processing device for a quick-cooling plate includes a base 101, a mounting frame 102 mounted on the base 101, a plurality of connecting columns 103 mounted on the mounting frame 102, a connecting plate 106 provided at one end of the base 101, and fixing plates 107 symmetrically mounted on the connecting plate 106.

[0021] The connecting plate 106 is provided with a chip blowing mechanism 400 for blowing waste chips, and the base 101 is provided with a collection mechanism 500 for collecting waste chips at the end away from the chip blowing mechanism 400. The connecting column 103 is provided with a processing mechanism 200 for processing the rapid cooling plate, and the base 101 is also provided with a driving mechanism 300.

[0022] The chip blowing mechanism 400 blows the waste chips generated after stamping away from the processing area. The collection mechanism 500 collects the blown waste chips to prevent them from falling into the surrounding environment. The drive mechanism 300 drives the chip blowing mechanism 400 and the collection mechanism 500 to move synchronously to ensure the efficiency and effectiveness of blowing and collection.

[0023] Reference Figures 1-2The processing mechanism 200 includes a cylinder 201, an upper mold base 202, a mounting base 203, and a lower mold base 204. The mounting base 203 is installed on the connecting column 103. The cylinder 201 is installed between the connecting column 103 and the mounting frame 102. The output end of the cylinder 201 passes through the mounting base 203 and connects to the upper mold base 202. The base 101 is provided with a lower mold base 204 that cooperates with the upper mold base 202. The base 101 is also provided with a plurality of columns 105. The mounting base 203 is provided with a plurality of slide cylinders 104 that slide with the columns 105.

[0024] The worker places the sheet material with the film applied into the positioning space between the upper mold base 202 and the lower mold base 204, with the textured side facing up, and starts the cylinder 201 to perform the positioning and stamping work. This is existing technology and will not be described in detail here.

[0025] Reference Figures 1-2 A collection frame 108 is provided on one side of the lower mold base 204 on either end of the base 101.

[0026] The collection box 108 is used to collect the waste generated after stamping.

[0027] Reference Figures 1-2 The driving mechanism 300 includes a motor 301, a fixing block 302, a bidirectional spiral rod 303, and a guide rod 304. The fixing blocks 302 are symmetrically installed on the side wall of the collection frame 108. The motor 301 is installed on one end of the fixing block 302. The output end of the motor 301 is connected to the bidirectional spiral rod 303. The other end of the bidirectional spiral rod 303 is rotatably engaged with the fixing plate 107. The guide rod 304 is rotatably disposed between the fixing block 302 and the fixing plate 107. A chip blowing mechanism 400 and a collection mechanism 500 are slidably provided on both the bidirectional spiral rod 303 and the guide rod 304.

[0028] The starter motor 301 drives the bidirectional screw rod 303 to rotate, and the rotation of the bidirectional screw rod 303 enables the chip blowing mechanism 400 and the collecting mechanism 500 to move relative to or in opposite directions.

[0029] Reference Figures 1-3The chip blowing mechanism 400 includes an air pump 401, an air blowing pipe 402, a connecting pipe 403, a connecting rod 404, a moving block 405, an air blowing connecting seat 406, and an air blowing port 407. The air pump 401 is mounted on the base 101. The output end of the air pump 401 is connected to the air blowing pipe 402. The connecting pipe 403 is slidably mounted on the connecting plate 106. Connecting rods 404 are provided at both ends of the connecting pipe 403. The moving block 405 is connected to the side wall of the connecting rod 404. The movable blocks 405 are respectively sleeved on the outer wall of the guide rod 304 or the bidirectional spiral rod 303. The movable blocks 405 are provided with threads that cooperate with the bidirectional spiral rod 303. One end of the air blowing pipe 402 is connected to the side wall interface of the connecting pipe 403. The connecting pipe 403 is provided with an air blowing connecting seat 406. The air blowing connecting seat 406 is provided with a plurality of air blowing ports 407 at an incline. One end of the air blowing port 407 is connected to the connecting pipe 403 through the air blowing connecting seat 406.

[0030] When the air pump 401 is started, the moving block 405 can reciprocate. The moving block 405 and the moving seat 506 can move relative to or in opposite directions. The movement of the moving block 405 can drive the connecting pipe 403 and the connecting rod 404 to slide on the bidirectional spiral rod 303 and the guide rod 304, so as to realize the reciprocating movement of the air blowing connecting seat 406 and the air blowing port 407. Since the air blowing port 407 is installed at an angle, it can blow air from all directions on the waste generated after the stamping is completed and blow it into the collection frame 108.

[0031] Reference Figures 1-2 The collecting mechanism 500 includes a chip removal box 501, a collection box 502, a collection pipe 503, a connecting pipe 504, a collection port 505, a movable base 506, and a guide rail 507. The chip removal box 501 and the collection box 502 are mounted on the base 101. The output end of the chip removal box 501 is connected to the collection box 502, and the input end of the chip removal box 501 is connected to the collection pipe 503. The other end of the collection pipe 503 is connected to the connecting pipe 504, which is equipped with... Several collection ports 505 are provided. Guide rails 507 are symmetrically arranged on the base 101. Movable seats 506 are slidably arranged on each guide rail 507. The movable seats 506 are respectively slidably arranged on the outer walls of the bidirectional spiral rod 303 and the guide rod 304. The movable seats 506 are provided with threads that cooperate with the bidirectional spiral rod 303. The side wall of the movable seats 506 is connected to the connecting pipe 504. The other end of the collection port 505 is connected to the collection pipe 503 through the connecting pipe 504.

[0032] When the chip removal box 501 is started, the generated waste chips are collected through the chip removal box 501 into the collection box 502 by the reciprocating air blowing of the air blowing connector 406 and the air blowing port 407. This facilitates the centralized processing of waste chips by the staff.

[0033] Working principle: The operator places the film-coated sheet material into the positioning space between the upper mold base 202 and the lower mold base 204, with the textured side facing upwards. The cylinder 201 is activated to perform positioning and stamping operations; this is existing technology and will not be elaborated upon here. The motor 301 is activated, driving the bidirectional spiral rod 303 to rotate. The air pump 401 is activated, allowing the moving block 405 to reciprocate. The moving block 405 and the moving seat 506 can move relative to or in opposite directions. The movement of the moving block 405 causes the connecting pipe 403 and the connecting rod 404 to slide on the bidirectional spiral rod 303 and the guide rod 304, thus realizing the connection between the air-blowing connecting seat 406 and the air-blowing port. 407 moves back and forth. Since the air outlet 407 is installed at an angle, it can blow air from all directions onto the waste chips generated after stamping and blow them into the collection frame 108. When the chip removal box 501 is started, the waste chips generated are blown back and forth by the air blowing connector 406 and the air outlet 407. At the same time, the connecting pipe 504 drives the collection port 505 to move back and forth synchronously, collecting the waste chips through the chip removal box 501 into the collection box 502. This makes it convenient for the staff to centrally process the waste chips, ensuring the efficiency and effect of air blowing and collection, reducing manual intervention, improving the degree of automation, and improving the efficiency of quick-cooling plate processing.

[0034] The above embodiments only illustrate one or more implementations of this utility model, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of this utility model. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the appended claims.

Claims

1. A stretching processing device for a rapid cooling disc, characterized in that, Includes a base (101), on which a mounting bracket (102) is installed, and on which a plurality of connecting columns (103) are installed, and a connecting plate (106) is provided at one end of the base (101), and fixing plates (107) are symmetrically installed on the connecting plate (106); The connecting plate (106) is provided with a chip blowing mechanism (400) for blowing waste chips, and the base (101) is provided with a collection mechanism (500) for collecting waste chips at one end away from the chip blowing mechanism (400). The connecting column (103) is provided with a processing mechanism (200) for processing the rapid cooling plate, and the base (101) is also provided with a driving mechanism (300).

2. The stretching processing equipment for a rapid cooling disc according to claim 1, characterized in that, The processing mechanism (200) includes a cylinder (201), an upper mold base (202), a mounting base (203), and a lower mold base (204). The mounting base (203) is installed on the connecting column (103). The cylinder (201) is installed between the connecting column (103) and the mounting frame (102). The output end of the cylinder (201) passes through the mounting base (203) and connects to the upper mold base (202). The base (101) is provided with a lower mold base (204) that cooperates with the upper mold base (202). The base (101) is also provided with a number of columns (105). The mounting base (203) is provided with a number of slide cylinders (104) that slide with the columns (105).

3. The stretching processing equipment for a rapid cooling disc according to claim 1, characterized in that, A collection frame (108) is provided on one side of the lower mold base (204) on either end of the base (101).

4. The stretching processing equipment for a rapid cooling disc according to claim 3, characterized in that, The driving mechanism (300) includes a motor (301), a fixing block (302), a bidirectional spiral rod (303), and a guide rod (304). The fixing blocks (302) are symmetrically installed on the side wall of the collection frame (108). The motor (301) is installed on one end of the fixing block (302). The output end of the motor (301) is connected to the bidirectional spiral rod (303). The other end of the bidirectional spiral rod (303) is rotatably engaged with the fixing plate (107). The guide rod (304) is rotatably disposed between the fixing block (302) and the fixing plate (107). The bidirectional spiral rod (303) and the guide rod (304) are both slidably provided with a chip blowing mechanism (400) and a collection mechanism (500).

5. The stretching processing equipment for a rapid cooling disc according to claim 4, characterized in that, The chip blowing mechanism (400) includes an air pump (401), an air blowing pipe (402), a connecting pipe (403), a connecting rod (404), a moving block (405), an air blowing connection seat (406), and an air blowing port (407). The air pump (401) is mounted on the base (101). The output end of the air pump (401) is connected to the air blowing pipe (402). The connecting pipe (403) is slidably mounted on the connecting plate (106). Connecting rods (404) are provided at both ends of the connecting pipe (403). The sidewall of the connecting rod (404) is connected to the moving block (407). 5) The movable block (405) is respectively sleeved on the outer wall of the guide rod (304) or the bidirectional spiral rod (303). The movable block (405) is provided with a thread that mates with the bidirectional spiral rod (303). One end of the air blowing pipe (402) is connected to the interface of the side wall of the connecting pipe (403). The connecting pipe (403) is provided with an air blowing connection seat (406). The air blowing connection seat (406) is provided with a plurality of air blowing ports (407) at an incline. One end of the air blowing port (407) is connected to the connecting pipe (403) through the air blowing connection seat (406).

6. The stretching processing equipment for a rapid cooling disc according to claim 4, characterized in that, The collecting mechanism (500) includes a chip removal box (501), a collection box (502), a collection pipe (503), a connecting pipe (504), a collection port (505), a movable base (506), and a guide rail (507). The chip removal box (501) and the collection box (502) are mounted on the base (101). The output end of the chip removal box (501) is connected to the collection box (502), and the input end of the chip removal box (501) is connected to the collection pipe (503). The other end of the collection pipe (503) is connected to the connecting pipe (504). The base (101) is provided with several collection ports (505). Guide rails (507) are symmetrically arranged on the base (101). Movable seats (506) are slidably arranged on each guide rail (507). The movable seats (506) are respectively slidably arranged on the outer wall of the bidirectional spiral rod (303) and the guide rod (304). The movable seats (506) are provided with threads that cooperate with the bidirectional spiral rod (303). The side wall of the movable seats (506) is connected to the connecting pipe (504). The other end of the collection port (505) is connected to the collection pipe (503) through the connecting pipe (504).