Energy-saving engraving device for aluminum alloy doors and windows

By designing an energy-saving aluminum alloy door and window carving device, a baffle and gear linkage system is used to block waste chips, solving the safety hazards and waste chip splashing problems of manual carving, and improving carving efficiency and safety.

CN224130772UActive Publication Date: 2026-04-17TANGSHAN DINGLI DOORS & WINDOWS ENGINEERING CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
TANGSHAN DINGLI DOORS & WINDOWS ENGINEERING CO LTD
Filing Date
2025-06-13
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

In existing technologies, aluminum alloy door and window carving mainly relies on manual operation, which poses safety hazards and easily causes waste to fly, endangering workers and the environment.

Method used

An energy-saving aluminum alloy door and window carving device was designed. The device uses the movement of a baffle to block waste chips, and the rotation of the carving device and the effective blocking of waste chips are achieved through the linkage of gears and racks.

Benefits of technology

It effectively isolates waste chips during the carving process, improves operational safety and environmental protection, and enhances carving efficiency and results.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of machining, in particular to an energy-saving aluminum alloy door and window carving device which comprises a base, a working table is rotatably installed above the base, a carving device is movably installed above the working table, a telescopic rod is installed above the carving device, a power source is fixedly connected above the telescopic rod, and the power source is fixedly connected with the working table. The energy-saving aluminum alloy door and window carving device comprises a base, the two sides of the base are connected with baffles in a sliding mode, a supporting rod is fixedly installed below the base, the outer surface of the carving device is connected with a clamping device in a sliding mode, and an auxiliary rod is fixedly installed on one side of the clamping device. When aluminum alloy doors and windows are engraved, the baffles on the two sides can move upwards along with descending of the engraving device, waste chips generated during engraving are blocked, workers conducting construction are protected, and the situation that the waste chips splash everywhere to affect the surrounding environment is avoided.
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Description

Technical Field

[0001] This utility model relates to the field of mechanical processing technology, specifically to an energy-saving aluminum alloy door and window carving device. Background Technology

[0002] Modern architectural design emphasizes personalization; different building projects and different users have unique requirements for the shape and pattern of doors and windows. Engraving devices can flexibly create various customized patterns on aluminum alloy doors and windows according to the client's personalized design scheme. For example, some high-end residential users may request that their family crest or patterns with special commemorative significance be engraved on their doors and windows.

[0003] Furthermore, building energy conservation is a significant development trend in the global construction industry. As a key component of building envelopes, the energy-saving performance of aluminum alloy doors and windows is crucial. By using engraving devices to process special textures or structures on the surface of doors and windows, their heat insulation, heat preservation, and light transmission performance can be improved.

[0004] Currently, the carving of energy-saving aluminum alloy doors and windows is still mostly done manually. This is dangerous for the workers, as they can easily get injured if they are not careful. In addition, the waste generated during carving can easily damage both the workers and the surrounding environment.

[0005] In view of this, this paper studies and improves upon existing problems, and provides an energy-saving aluminum alloy door and window carving device with reasonable structural design, high stability, and comprehensive application. The aim is to solve the problem and improve practical value through this technology. Utility Model Content

[0006] The purpose of this utility model is to provide an energy-saving aluminum alloy door and window carving device. When carving aluminum alloy doors and windows, as the carving device descends, the baffles on both sides will move upward to block the waste chips generated during carving.

[0007] To achieve the above objectives, this utility model provides the following technical solution: an energy-saving aluminum alloy door and window carving device, comprising a base, a worktable rotatably mounted on top of the base, a carving device movably mounted on top of the worktable, a telescopic rod mounted above the carving device, a power supply fixedly connected above the telescopic rod, baffles slidably connected to both sides of the base, a support rod fixedly mounted below the base, a clamping device slidably connected to the outer surface of the carving device, an auxiliary rod fixedly mounted on one side of the clamping device, and a... A rack B is mounted on one side of the auxiliary rod, and a rack C is fixedly mounted on the other side of the auxiliary rod. A gear A is rotatably mounted on one side of the auxiliary rod, and a rack D is meshed with one side of the gear A. A rack A is meshed with one side of the gear A. One-way wheels A and B are respectively mounted on the other side of the rack B. A mechanical gear is meshed with the outer surface of the one-way wheel B. A slider is slidably mounted below the mechanical gear. A gear C is fixedly mounted on one side of the mechanical gear, and a belt is meshed with the outer surface of the gear C. A gear B is meshed with one side of the inner side of the belt.

[0008] Optionally, a baffle is slidably connected to one side of rack A, and a baffle is slidably connected to one side of rack D.

[0009] Optionally, gear A is rotatably connected between rack A and rack B, thereby indirectly connecting rack B and rack A.

[0010] Optionally, the one-way wheel A and the one-way wheel B are installed correspondingly.

[0011] Optionally, the engraving device is installed inside the clamping device.

[0012] Optionally, gear B and gear C are indirectly connected by a belt.

[0013] Compared with the prior art, the beneficial effects of this utility model are: when carving aluminum alloy doors and windows, as the carving device descends, the baffles on both sides will move upward to block the waste generated during carving. Furthermore, the rotation direction of the worktable can be determined by adjusting the sliding block so that the aluminum alloy doors and windows will also rotate during carving. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall structure of an energy-saving aluminum alloy door and window carving device according to this utility model;

[0015] Figure 2 This is a part drawing of an energy-saving aluminum alloy door and window engraving device according to the present invention;

[0016] Figure 3 This is a layout diagram of the parts of an energy-saving aluminum alloy door and window carving device according to this utility model;

[0017] Figure 4 This is a part drawing of an energy-saving aluminum alloy door and window engraving device according to the present invention;

[0018] Figure 5 This is a drawing of the internal parts of an energy-saving aluminum alloy door and window engraving device according to this utility model;

[0019] Figure 6 This is a schematic diagram of the gear connection of an energy-saving aluminum alloy door and window carving device according to this utility model.

[0020] In the diagram: 1. Base; 2. Workbench; 3. Engraving device; 4. Clamping device; 5. Telescopic rod; 6. Power supply; 7. Baffle; 8. Support rod; 9. Rack A; 10. Rack B; 11. Slider; 12. Auxiliary rod; 13. Rack C; 14. Rack D; 15. Gear A; 16. One-way wheel A; 17. One-way wheel B; 18. Belt; 19. Gear B; 20. Machine gear; 21. Gear C. Detailed Implementation

[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0022] Please see Figures 1 to 5 This utility model provides an energy-saving aluminum alloy door and window carving device. The device includes a base 1, a worktable 2 rotatably mounted above the base 1, a carving device 3 movably mounted above the worktable 2, a telescopic rod 5 mounted above the carving device 3, a power supply 6 fixedly connected above the telescopic rod 5, baffles 7 slidably connected to both sides of the base 1, a support rod 8 fixedly mounted below the base 1, a clamping device 4 slidably connected to the outer surface of the carving device 3, an auxiliary rod 12 fixedly mounted on one side of the clamping device 4, and a rack B10 fixedly mounted on one side of the auxiliary rod 12. A rack C13 is fixedly installed on the other side of the auxiliary rod 12. A gear A15 is rotatably installed on one side of the auxiliary rod 12. A rack D14 is meshed on one side of the gear A15. A rack A9 is meshed on one side of the gear A15. One-way wheels A16 and B17 are respectively installed on the other side of the rack B10. A mechanical gear 20 is meshed on the outer surface of the one-way wheel B17. A slider 11 is slidably installed below the mechanical gear 20. A gear C21 is fixedly installed on one side of the mechanical gear 20. A belt 18 is meshed on the outer surface of the gear C21. A gear B19 is meshed on one side of the inner side of the belt 18.

[0023] Multiple support rods 8 are fixedly connected to the bottom of the base 1. These support rods 8 assist in stabilizing the carving process, allowing for accurate carving of the desired aluminum alloy doors and windows. The carving device 3 is fixedly installed inside the clamping device 4. Power from the start of the power supply 6 causes the telescopic rod 5 to extend and retract, indirectly driving the clamping device 4 to move up and down. Simultaneously, the carving device 3, connected internally, moves downwards to carve the desired aluminum alloy doors and windows. When the auxiliary rod 12 begins to move, the racks B10 and C13 fixedly installed on both sides of it also begin to move downwards. When the rack C13 moves downwards, it causes the... The gear A15 and its indirectly connected rack D14 begin to move, and rack D14, along with the baffle 7 fixedly installed on one side, begins to move upward. Similarly, when rack B10 begins to move downward, it indirectly drives rack A9, which is indirectly connected to gear A15, to move upward. At the same time, rack A9 drives the baffle 7 fixedly installed on one side to move upward. Thus, when the power supply 6 is turned on, the engraving device 3, through racks B10 and C13 fixedly installed on both sides of the auxiliary rod 12, indirectly drives the baffles 7 on both sides to move upward. When the device cuts aluminum alloy doors and windows, the baffles 7 on both sides will rise, blocking the waste generated during engraving and preventing it from spreading. The rack B10 splashes water and affects workers and the surrounding environment. When the rack B10 moves downward, it drives the one-way wheels A16 and B17, which are respectively installed on one side of it, to rotate. The outer surface of the one-way wheel A16 is meshed with a mechanical gear 20. A gear C21 is fixedly installed below the mechanical gear 20. A slider 11 is slidably connected below the gear C21. The gear C21 is indirectly connected to the gear B19 through a belt 18. A worktable 2 is rotatably installed above the gear B19. When the rack B10 moves up and down, it drives the one-way wheels A16 and B17, which are installed on one side of it, to rotate. As the rack B10 pushes the gear C21, which is slidably installed below the mechanical gear 20, the one-way wheels A16 and B17 will rotate. 17 engages with gear 20, and as gear 20 is driven, gear B19 rotates, allowing the carving device 3 to adjust the position of slider 11 when it begins to descend and carve the aluminum alloy doors and windows. When gear 20 engages with one-way wheel A16, one-way wheel B17 disengages from gear 20, causing gear C21, mounted at the bottom of gear 20, to rotate clockwise. As gear C21 rotates clockwise, gear B19, indirectly connected to it, also begins to rotate clockwise. At this time, the carving device fixedly mounted on gear B19 rotates clockwise along with the gear. Similarly, when gear 20 engages with one-way wheel B17, gear 20 disengages from one-way wheel A16.At this time, gear C21, installed at the bottom of gear 20, begins to rotate counterclockwise. When gear C21 rotates counterclockwise, gear B19, indirectly connected to it, also begins to rotate counterclockwise. The engraving device fixedly installed on gear B19 will then rotate counterclockwise along with the gear, allowing the aluminum alloy doors and windows to rotate during the raising and lowering of the engraving device 3, thus making the engraving of the aluminum alloy doors and windows smoother and more effective.

[0024] A baffle 7 is slidably connected to one side of rack A9 and another baffle 7 is slidably connected to one side of rack D14, which increases the linkage of the device.

[0025] Gear A15 is rotatably connected between rack A9 and rack B10, indirectly connecting rack B10 and rack A9, making the operation between devices smoother.

[0026] One-way wheels A16 and B17 are installed in a corresponding manner to enable better operation between devices.

[0027] The engraving device 3 is installed inside the clamping device 4, which increases the linkage of the device.

[0028] Gear B19 and gear C21 are indirectly connected by belt 18.

[0029] Working principle: Power is provided by the starting power source 6, which causes the telescopic rod 5 to extend and retract, thereby indirectly driving the clamping device 4 connected to it to move up and down. This causes the engraving device 3, which runs through the rod and is connected internally, to move and engrave the aluminum alloy doors and windows. When the auxiliary rod 12 begins to move, the racks B10 and C13, fixedly installed on both sides, will begin to move downwards along with the auxiliary rod 12. When rack C13 moves downwards, it causes rack D14, indirectly connected to it via gear A15, to begin moving, and rack D14 carries the fixed device... The baffle 7 on one side begins to move upward. Similarly, when rack B10 begins to move downward, it indirectly drives rack A9, which is indirectly connected to it via gear A15, to move upward. At the same time, rack A9 drives the baffle 7 fixedly installed on its side to move upward. Thus, when the power supply 6 is turned on, the engraving device 3 indirectly drives the baffles 7 on both sides to move upward through racks B10 and C13 fixedly installed on both sides of the auxiliary rod 12. When the device cuts aluminum alloy doors and windows, the baffles 7 on both sides will rise, allowing the engraving to proceed smoothly. The rack B10 is used to block the waste generated during the production of aluminum alloy doors and windows. When the rack B10 moves downward, it drives the one-way wheels A16 and B17, which are respectively installed on one side of it, to rotate. The outer surface of the one-way wheel A16 is meshed with a mechanical gear 20. A gear C21 is fixedly installed below the mechanical gear 20. A slider 11 is slidably connected below the gear C21. The gear C21 is indirectly connected to the gear B19 through a belt 18. A worktable 2 is rotatably installed above the gear B19. When the rack B10 moves up and down, it drives the one-way wheels installed on one side of it to rotate. One-way wheels A16 and B17, when pushed and slidably mounted on gear C21 below the machine gear 20, will mesh with the machine gear 20 respectively. As the machine gear 20 is driven, gear B19 will rotate. When the engraving device 3 begins to descend and engrave the aluminum alloy door and window, the position of the slider 11 can be adjusted. Rotating the machine gear 20 to connect with one-way wheels A16 or B17 allows the aluminum alloy door and window to be engraved to rotate clockwise or counterclockwise, making the engraving more efficient and faster.

[0030] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An energy-saving aluminum alloy door and window engraving device, comprising a base (1), characterized in that, A worktable (2) is rotatably mounted above the base (1), and an engraving device (3) is movably mounted above the worktable (2). A telescopic rod (5) is mounted above the engraving device (3), and a power supply (6) is fixedly connected above the telescopic rod (5). Baffles (7) are slidably connected to both sides of the base (1), and a support rod (8) is fixedly mounted below the base (1). A clamping device (4) is slidably connected to the outer surface of the engraving device (3). An auxiliary rod (12) is fixedly mounted on one side of the clamping device (4), a rack B (10) is fixedly mounted on one side of the auxiliary rod (12), and a rack C (13) is fixedly mounted on the other side of the auxiliary rod (12). A gear A (15) is rotatably mounted on one side of the auxiliary rod (12). A rack D (14) is meshed on one side of the gear A (15). A rack A (9) is meshed on one side of the gear A (15). A one-way wheel A (16) and a one-way wheel B (17) are respectively mounted on the other side of the rack B (10). A mechanical gear (20) is meshed on the outer surface of the one-way wheel B (17). A slider (11) is slidably mounted below the mechanical gear (20). A gear C (21) is fixedly mounted on one side of the mechanical gear (20). A belt (18) is meshed on the outer surface of the gear C (21). A gear B (19) is meshed on one side of the inner side of the belt (18).

2. The energy-saving aluminum alloy door and window engraving device according to claim 1, characterized in that, A baffle (7) is slidably connected to one side of the rack A (9), and a baffle (7) is slidably connected to one side of the rack D (14).

3. The energy-saving aluminum alloy door and window carving device according to claim 1, characterized in that, The gear A (15) is rotatably connected between rack A (9) and rack B (10).

4. The energy-saving aluminum alloy door and window engraving device according to claim 1, characterized in that, The one-way wheel A (16) and the one-way wheel B (17) are installed accordingly.

5. The energy-saving aluminum alloy door and window engraving device according to claim 1, characterized in that, The engraving device (3) is installed inside the clamping device (4).

6. The energy-saving aluminum alloy door and window engraving device according to claim 1, characterized in that, Gear B (19) and gear C (21) are indirectly connected by belt (18).