Punching equipment for bridge-cutoff aluminum window combination

By designing an internal rotating body and a linkage mechanism, the drill bit of the thermally broken aluminum window drilling equipment can be quickly replaced and accurately positioned, solving the problem of cumbersome drill bit replacement in existing equipment and improving processing efficiency.

CN223970899UActive Publication Date: 2026-03-06BEIJING JIAXING HENGYE LIGHT STEEL PROFILED PLATE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-26
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

Existing drilling equipment for thermally broken aluminum windows involves cumbersome drill bit replacement, poor operational convenience, and affects processing efficiency.

Method used

Design a drilling device comprising an outer cylinder, a base, an adjustment structure, an inner rotating body, a sickle arm, and a linkage mechanism. Through the cooperation of the inner rotating body and the spring-loaded buckle, the drill bit can be quickly changed and precisely positioned. Combined with the linkage of the drive mechanism and the sickle arm, the drill bit can be automatically extended and retrieved.

Benefits of technology

It reduces the difficulty of changing drill bits, improves processing efficiency, saves time in loading and unloading drill bits, and enhances the convenience and efficiency of processing.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses drilling equipment for combination of a broken bridge aluminum window, relates to the technical field of drilling equipment, and aims to solve the technical problems that a drill bit of the current drilling equipment is complicated to replace and poor in operation convenience, the drilling equipment comprises an outer cylinder, a base, an adjusting structure, an inner rotating body, a sickle arm and a linkage mechanism, the driving mechanism is arranged on one side in the base, the linkage mechanism is installed on the inner side of the base, the linkage mechanism is attached to the driving mechanism, a rotating column is rotationally installed in the middle of the base, the sickle arm is installed on the outer side of the lower end of the rotating column, and the two sides of the upper end face of the outer cylinder are provided with an elastic pressing buckle and a through opening correspondingly; and an inner cylinder is installed in the middle of the interior of the outer cylinder in a penetrating mode, the inner rotating body is rotationally installed between the outer cylinder and the inner cylinder, and a rotating disc is arranged at the top of the outer cylinder. The punching machine has the advantages that the punching drill bits can be conveniently switched, punching of different sizes is facilitated, and the operation difficulty is reduced.
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Description

Technical Field

[0001] This utility model relates to the field of drilling equipment technology, and more specifically, to a drilling equipment for assemblies of thermally broken aluminum windows. Background Technology

[0002] Thermally broken aluminum windows use thermally broken aluminum profiles for both the frame and sash. The term "thermal break" refers to the addition of a thermal break strip within the aluminum alloy profile, effectively preventing heat conduction by creating a thermal bridge. The main structure includes the window frame, sash, glass, and hardware. The frame and sash are typically manufactured from thermally broken aluminum profiles through cutting and assembly processes. Glass options include standard glass, double-glazed glass, and tempered glass, depending on requirements. Hardware includes handles, hinges, and locks to ensure proper opening and closing and functionality of the window.

[0003] Thermally broken aluminum windows are assembled using screws for fixing, requiring drilling at these joints. Different screws are used depending on the window model, resulting in varying hole diameters. This necessitates changing the drill bit before processing. Existing equipment uses a disassembly-based method for bit replacement, which is extremely inefficient and impacts processing speed. Therefore, we propose a drilling device specifically designed for assembling thermally broken aluminum windows. Utility Model Content

[0004] The purpose of this utility model is to overcome the shortcomings of the existing technology, adapt to the needs of reality, and provide a drilling device for thermally broken aluminum window assemblies, so as to solve the technical problems of the current drilling device having a relatively cumbersome drill bit replacement and poor operation convenience.

[0005] To solve the above technical problems, this utility model provides the following technical solution: a drilling device for combined thermally broken aluminum windows, comprising an outer cylinder, a base, an adjusting structure, an inner rotating body, a sickle arm, and a linkage mechanism. The outer cylinder is installed on the upper side of the base, and a driving mechanism is provided on one side of the interior of the base. The linkage mechanism is installed on the inner side of the base and is in contact with the driving mechanism. A rotating column is rotatably installed in the middle of the base, and the sickle arm is installed on the outer side of the lower end of the rotating column. A spring-loaded buckle and a through-hole are respectively provided on both sides of the upper end face of the outer cylinder. An inner cylinder is installed through the middle of the interior of the outer cylinder. The inner rotating body is rotatably installed between the outer cylinder and the inner cylinder. A rotating disk is provided on the top of the outer cylinder, and the rotating shaft of the rotating disk is connected to the top of the inner rotating body. An assembly port is provided in a circular array on the outer side of the inner rotating body, and a base is provided at the bottom of the assembly port. The adjusting structure is installed on the base and consists of a rotating rod and a rotating ring, with the lower end of the rotating rod penetrating the base.

[0006] In use, this invention involves manually rotating a rotating disc to synchronously rotate an inner rotating body, adjusting the assembly ports on the outer side of the inner rotating body to correspond to the access ports. Six assembly ports are provided on the outer side of the inner rotating body, each housing a corresponding size and model of drilling drill. The drilling drills correspond to the labels on the rotating disc. When the rotating disc rotates and the side port aligns with the spring-loaded buckle, calibration is complete. The manual rotation design allows for switching between different drilling drills, reducing operational difficulty. The spring-loaded buckle design facilitates precise positioning during switching. This structural design saves time loading and unloading drilling drills, improving processing efficiency. Manual rotation of the rotating column causes the sickle arm to deflect... The rotation causes the inclined surface of the curved blade head of the sickle arm to press and lift the upper part of the telescopic rod. The telescopic rod simultaneously drives the lifting column to rise inside the toothed ring. The upper end of the lifting column cross-connects with the bottom cross of the rotating rod, simultaneously driving the rotating rod to rise. The drilling drill at the upper end of the rotating rod protrudes through the opening, and the motor of the drive mechanism is started, driving the drive teeth to rotate. The drive teeth mesh with the toothed ring, simultaneously driving the lifting column to rotate. The drilling drill at the upper end of the lifting column rotates to perform drilling operations. The sickle arm does not use rotation to reset; the drilling drill is retracted by the spring rebound. The above structure completes the protrusion and retrieval of the retractable drilling drill, which is convenient for protection and also facilitates the switching of drilling drills, reducing the difficulty of operation.

[0007] Preferably, the linkage mechanism consists of a telescopic rod, a lifting column, and a toothed ring. The toothed ring is rotatably mounted on the bottom of the outer cylinder, the lifting column is slidably mounted on the inner side of the toothed ring, the lower rod of the telescopic rod is fixed in the base, and the upper rod of the telescopic rod is rotatably connected to the bottom of the lifting column.

[0008] Preferably, the drive mechanism consists of a motor and drive teeth, with the drive teeth meshing with the outer side of the gear ring, and the top cross end of the lifting column connecting to the cross opening at the bottom of the rotating rod.

[0009] Preferably, the outer end of the sickle arm is provided with an arc-shaped cutter head, and the arc-shaped cutter head is provided with a limiting port, which is adapted to the lower rod of the telescopic rod. The upper side of the arc-shaped cutter head is provided with an inclined surface, which is adapted to the bottom of the upper rod. The inner side of the outer end of the sickle arm is provided with an adapter port, which corresponds to the drive mechanism.

[0010] Preferably, the outer ring array of the rotating disk has side openings, and the side openings are adapted to spring-loaded buckles and through-holes, and the rotating disk is provided with a label.

[0011] Preferably, a rotating ring is rotatably mounted on the outer side of the upper end of the rotating rod, and the rotating ring is connected to the base by a spring. A drilling tool is provided at the upper end of the rotating rod.

[0012] Preferably, the inner opening of the toothed ring is connected to the interior of the outer cylinder, and the upper end of the lifting column corresponds to the bottom of the rotating rod.

[0013] Compared with the prior art, the beneficial effects of this utility model are:

[0014] 1. This utility model features an inner rotating body. Manual rotation of the rotating disc synchronously drives the inner rotating body to rotate, adjusting the assembly ports on the outer side of the inner rotating body to correspond to the access ports. Six assembly ports are opened on the outer side of the inner rotating body, each equipped with a corresponding size and model of drilling drill. The drilling drill corresponds to the label on the rotating disc. When the rotating disc rotates and the side port aligns with the spring-loaded buckle, calibration is complete. The manual rotation design allows for switching between different drilling drills, reducing operational difficulty. Simultaneously, the spring-loaded buckle design facilitates precise positioning during switching. This structural design saves time on loading and unloading drilling drills, improving processing efficiency.

[0015] 2. This utility model also incorporates an adjustable structure and sickle arm. During use, the rotating column is manually rotated, causing the sickle arm to deflect. This causes the inclined surface of the sickle arm's arc-shaped blade to press against and lift the upper part of the telescopic rod. Simultaneously, the telescopic rod lifts the lifting column inside the toothed ring. The upper end of the lifting column cross-connects with the bottom cross of the rotating rod, simultaneously lifting the rotating rod. The drilling drill at the upper end of the rotating rod extends through the opening. The motor of the drive mechanism is activated, driving the drive teeth to rotate. The drive teeth mesh with the toothed ring, simultaneously rotating the lifting column. The drilling drill at the upper end of the lifting column rotates to perform drilling operations. The sickle arm does not require rotation for reset; instead, a spring returns the drilling drill. This structure facilitates the extension and retrieval of the retractable drilling drill, providing convenient protection and allowing for easy switching of drilling drills, thus reducing operational difficulty. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the main structure of this utility model;

[0017] Figure 2 This is a cross-sectional structural diagram of the present invention;

[0018] Figure 3 This is a bottom view of the structure of this utility model;

[0019] Figure 4 This is a schematic diagram of the internal rotating structure of this utility model;

[0020] Figure 5 This is a top view of the base structure of this utility model;

[0021] Figure 6 This is a schematic diagram of the sickle arm structure of this utility model.

[0022] The following are the labels in the diagram: 1. Outer cylinder; 101. Spring-loaded buckle; 102. Through port; 103. Inner cylinder; 2. Base; 3. Rotating column; 4. Rotating disc; 401. Side opening; 5. Adjustment structure; 501. Rotating rod; 502. Spring; 503. Rotating ring; 504. Drill; 6. Inner rotating body; 601. Assembly port; 602. Base; 7. Sickle arm; 701. Adapter port; 702. Arc cutter head; 703. Limit port; 8. Drive mechanism; 9. Linkage mechanism; 901. Telescopic rod; 902. Lifting column; 903. Gear ring. Detailed Implementation

[0023] like Figures 1 to 5 As shown, this utility model relates to a drilling device for combined thermally broken aluminum windows, comprising an outer cylinder 1, a base 2, an adjusting structure 5, an inner rotating body 6, a sickle arm 7, and a linkage mechanism 9. The outer cylinder 1 is mounted on the upper side of the base 2. A driving mechanism 8 is provided on one side of the interior of the base 2. The linkage mechanism 9 is mounted on the inner side of the base 2 and is attached to the driving mechanism 8. A rotating column 3 is rotatably mounted in the middle of the base 2. The sickle arm 7 is mounted on the outer side of the lower end of the rotating column 3. Spring-loaded buckles 101 and through-holes 102 are respectively provided on both sides of the upper end face of the outer cylinder 1. The interior of the outer cylinder 1... An inner cylinder 103 is installed through the middle. An inner rotating body 6 is rotatably installed between the outer cylinder 1 and the inner cylinder 103. The linkage mechanism 9 consists of a telescopic rod 901, a lifting column 902, and a gear ring 903. The gear ring 903 is rotatably installed at the bottom of the outer cylinder 1. The lifting column 902 is slidably installed inside the gear ring 903. The lower rod of the telescopic rod 901 is fixed inside the base 2, and the upper rod of the telescopic rod 901 is rotatably connected to the bottom of the lifting column 902. The drive mechanism 8 consists of a motor and drive teeth, with the drive teeth meshing with the outer side of the gear ring 903. The top of the lifting column 902... The cross-shaped opening at the bottom of the rotating rod 501 is connected to the end of the sickle arm 7. The outer end of the sickle arm 7 is provided with an arc-shaped cutter head 702, and the arc-shaped cutter head 702 is provided with a limiting port 703. The limiting port 703 is adapted to the lower rod of the telescopic rod 901. The upper side of the arc-shaped cutter head 702 is provided with an inclined surface, and the inclined surface is adapted to the bottom of the upper rod. The inner side of the outer end of the sickle arm 7 is provided with an adapter port 701, and the adapter port 701 corresponds to the drive mechanism 8. The manual rotation of the rotating disk 4 synchronously drives the inner rotating body 6 to rotate, so that the assembly port 601 on the outer side of the inner rotating body 6 adjusts to the corresponding through port 102. Six assembly ports 601 are opened on the outside, and corresponding size and model of drilling drills 504 are installed inside. The drilling drills 504 correspond to the labels on the rotating disk 4. When the rotating disk 4 rotates so that the side port 401 is aligned with the spring-loaded buckle 101, the calibration is completed. Different drilling drills 504 can be switched by manual rotation, which reduces the difficulty of operation. At the same time, the design of the spring-loaded buckle 101 engaging with the side port 401 facilitates accurate positioning during the switching process. Through the above structural design, the time for loading and unloading drilling drills 504 is saved, and the processing efficiency is improved.

[0024] like Figures 2 to 6As shown, this utility model relates to a drilling device for combined thermally broken aluminum windows, including an outer cylinder 1, a base 2, an adjusting structure 5, an inner rotating body 6, a sickle arm 7, and a linkage mechanism 9. The top of the outer cylinder 1 is provided with a rotating disk 4, and the rotating shaft of the rotating disk 4 is connected to the top of the inner rotating body 6. The outer side of the inner rotating body 6 has a ring array of assembly ports 601, and the bottom of the assembly ports 601 is provided with a base 602. The adjusting structure 5 is installed on the base 602, and the adjusting structure 5 consists of a rotating rod 501 and a rotating... The rotating rod 501 is formed by a ring 503, and its lower end passes through the base 602. The outer side of the rotating disk 4 has a ring array with side openings 401, which are adapted to spring-loaded buckles 101 and through-holes 102. A label is provided on the rotating disk 4. A rotating ring 503 is rotatably mounted on the outer side of the upper end of the rotating rod 501, and the rotating ring 503 is connected to the base 602 by a spring 502. A drilling drill 504 is provided at the upper end of the rotating rod 501. The inner opening of the toothed ring 903 communicates with the interior of the outer cylinder 1, and its lifting mechanism is [not specified]. The upper end of column 902 corresponds to the bottom of rotating rod 501. During use, rotating column 3 is manually rotated, causing sickle arm 7 to deflect. This causes the inclined surface of the curved blade head 702 of sickle arm 7 to press against and lift the upper part of telescopic rod 901. Simultaneously, telescopic rod 901 drives lifting column 902 to rise inside toothed ring 903. The upper end of lifting column 902 cross-connects with the bottom cross of rotating rod 501, simultaneously driving rotating rod 501 to rise. The drilling drill 50 at the upper end of rotating rod 501... 4. The protruding opening 102 is activated, and the motor of the drive mechanism 8 is started to drive the drive gear to rotate. The drive gear meshes with the gear ring 903 to synchronously drive the lifting column 902 to rotate. The drilling drill 504 at the upper end of the lifting column 902 rotates to perform drilling operations. The rotating reset sickle arm 7 is not used. The drilling drill 504 is retracted by the spring 502. The above structure completes the protrusion and retrieval of the storage drilling drill 504, which is convenient for protection and also facilitates the switching of the drilling drill 504, reducing the difficulty of operation.

[0025] Working Principle: This embodiment provides a drilling device for assemblies of thermally broken aluminum windows. During use, the manual rotation of the rotating disk 4 synchronously drives the inner rotating body 6 to rotate, causing the assembly opening 601 on the outer side of the inner rotating body 6 to adjust to the corresponding through-hole 102. Six assembly openings 601 are provided on the outer side of the inner rotating body 6, each equipped with a corresponding size and model of drilling drill 504. The drilling drill 504 corresponds to the label on the rotating disk 4. When the rotating disk 4 rotates so that the side opening 401 aligns with the spring-loaded buckle 101, calibration is complete. The manual rotation design allows for switching between different drilling drills 504, reducing operational difficulty. Simultaneously, the spring-loaded buckle 101 engages with the side opening 401, facilitating precise positioning during switching. During use, the manual rotation of the rotating disk... Column 3, rotating column 3 drives sickle arm 7 to deflect, causing the upper inclined surface of the arc cutter head 702 of sickle arm 7 to press and drive the upper rod part of telescopic rod 901 to rise. Telescopic rod 901 simultaneously drives lifting column 902 to rise inside toothed ring 903. The upper end of lifting column 902 cross-connects with the bottom cross of rotating rod 501, simultaneously driving rotating rod 501 to rise. Drill 504 at the upper end of rotating rod 501 protrudes from through opening 102. The motor of drive mechanism 8 is started to drive drive teeth to rotate. Drive teeth mesh with toothed ring 903 to simultaneously drive lifting column 902 to rotate. Drill 504 at the upper end of lifting column 902 rotates to perform drilling operation. Without using rotation to reset sickle arm 7, the drill 504 is retracted by spring 502.

[0026] The embodiments disclosed herein are preferred embodiments, but are not limited thereto. Those skilled in the art can readily grasp the spirit of this utility model based on the above embodiments and make different extensions and variations. However, as long as they do not depart from the spirit of this utility model, they are all within the protection scope of this utility model.

Claims

1. A punching device for broken bridge aluminum window assembly, comprising an outer cylinder (1), a base (2), an adjusting structure (5), an inner rotating body (6), a sickle arm (7) and a linkage mechanism (9), characterized in that: The outer cylinder (1) is installed on the upper side of the base (2), the inner side of the base (2) is provided with a driving mechanism (8), the linkage mechanism (9) is installed on the inner side of the base (2) and is attached to the driving mechanism (8), a rotating column (3) is rotatably installed at the middle of the base (2), the sickle arm (7) is installed on the outer side of the lower end of the rotating column (3), the upper end surface of the outer cylinder (1) is respectively provided with a elastic buckle (101) and a through hole (102), an inner cylinder (103) is installed through the middle of the inner side of the outer cylinder (1), the inner rotating body (6) is rotatably installed between the outer cylinder (1) and the inner cylinder (103), the outer cylinder (1) is provided with a rotating disc (4) at the top, and the rotating shaft part of the rotating disc (4) is connected to the top of the inner rotating body (6), the outer side of the inner rotating body (6) is annularly provided with an assembly opening (601), and the inner bottom of the assembly opening (601) is provided with a base (602), the adjusting structure (5) is installed on the base (602), the adjusting structure (5) is composed of a rotating rod (501) and a rotating ring (503), and the lower end of the rotating rod (501) penetrates the base (602).

2. A punching apparatus for a broken bridge aluminum window assembly according to claim 1, characterized in that: The linkage mechanism (9) is composed of a telescopic rod (901), a lifting column (902) and a gear ring (903), the gear ring (903) is rotatably installed at the bottom of the outer cylinder (1), the lifting column (902) is slidably installed on the inner side of the gear ring (903), and the lower rod of the telescopic rod (901) is fixed in the base (2), and the upper rod of the telescopic rod (901) is rotatably connected to the bottom of the lifting column (902).

3. A punch apparatus for a broken bridge aluminum window assembly as defined in claim 2 wherein: The driving mechanism (8) is composed of a motor and a driving gear, and the driving gear engages the outer side of the gear ring (903), and the cross end of the top of the lifting column (902) is connected to the cross opening at the bottom of the rotating rod (501).

4. The apparatus according to claim 3, wherein: The outer end of the sickle arm (7) is provided with an arc blade head (702), and the arc blade head (702) is provided with a limiting opening (703) inside, the limiting opening (703) is matched with the lower rod of the telescopic rod (901), the upper side of the arc blade head (702) is provided with an inclined surface, and the inclined surface is matched with the bottom of the upper rod, the outer side of the sickle arm (7) is provided with an adapter opening (701), and the adapter opening (701) corresponds to the driving mechanism (8).

5. A punch apparatus for use in the production of a break bridge aluminum window assembly as defined in claim 4 wherein: The outer side of the rotating disc (4) is annularly provided with a side opening (401), and the side opening (401) is matched with the elastic buckle (101) and the through hole (102), and the rotating disc (4) is provided with a label.

6. A punch apparatus for use in the production of a break bridge aluminum window assembly as defined in claim 5 wherein: The upper end of the rotating rod (501) is rotatably installed with a rotating ring (503), and the rotating ring (503) is connected with the base (602) through a spring (502), and the upper end of the rotating rod (501) is provided with a perforating drill (504).

7. A punch apparatus for use in the production of a break bridge aluminum window assembly as defined in claim 6 wherein: The inner opening of the gear ring (903) communicates with the inside of the outer cylinder (1), and the upper end of the lifting column (902) corresponds to the bottom of the rotating rod (501).