Drilling equipment for processing broken bridge aluminum alloy doors and windows

By designing a drilling equipment that integrates multiple processing functions, the problem that existing equipment cannot continuously process multiple assembly holes on broken bridge aluminum alloy bars is solved, and an efficient and accurate processing process is achieved.

CN222890878UActive Publication Date: 2025-05-23WUHAN FENGHAO TECH CO LTD
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Patent Information

Application Number
CN202421908964.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-08
Publication Date
2025-05-23
Estimated Expiration
2034-08-08

AI Technical Summary

Technical Problem

Existing drilling equipment cannot continuously process multiple assembly holes on broken bridge aluminum alloy bars, resulting in increased processing time and reduced accuracy.

Method used

A drilling equipment with integrated horizontal drilling, vertical drilling and grinding functions is designed, and the continuous processing of broken bridge aluminum alloy door and window accessories is achieved through driving parts and clamping tooling.

Benefits of technology

Continuous processing of broken bridge aluminum alloy door and window accessories is achieved, processing efficiency is improved, manual intervention and artificial errors are reduced, and processing accuracy and equipment versatility are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to drilling equipment for bridge-cutoff aluminum alloy door and window machining. The drilling equipment comprises a workbench, the workbench is provided with a driving part, the driving part is provided with a clamping tool, the driving part is used for driving the clamping tool to move in the length direction of the workbench, and the clamping tool is used for clamping bridge-cutoff aluminum alloy door and window accessories; a plurality of transverse drilling assemblies, at least one vertical drilling assembly and a grinding mechanism are sequentially arranged on the workbench in the length direction of the driving part, and the transverse drilling assemblies are used for drilling the two sides of the broken bridge aluminum alloy door and window accessories. Continuous machining of broken bridge aluminum alloy door and window accessories is achieved, and machining efficiency is remarkably improved. Due to the automatic and continuous machining process, manual intervention is reduced, the labor intensity of operators is reduced, and meanwhile personal errors are reduced.
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Description

Technical Field

[0001] The present application relates to the technical field of door and window processing, and in particular to a drilling device for processing thermally-insulated aluminum alloy doors and windows. Background Art

[0002] In the manufacturing process of thermal insulation aluminum alloy doors and windows, thermal insulation aluminum alloy strips are key components, and their processing quality directly affects the performance and service life of the final product. Before assembly, thermal insulation aluminum alloy strips usually need to be precisely drilled to install various accessories such as hinges, locks, etc.

[0003] When dealing with this processing link, most existing drilling equipment can only perform drilling tasks individually, and cannot realize continuous processing of multiple assembly holes on the thermally-insulated aluminum alloy strip. This means that after drilling each hole, the workpiece needs to be manually moved to the next processing position or the equipment needs to be replaced, which not only increases the processing time, but may also lead to a decrease in processing accuracy.

[0004] In view of the above problems, a drilling device for processing broken bridge aluminum alloy doors and windows is now designed. Utility Model Content

[0005] The embodiment of the present application provides a drilling device for processing thermal break aluminum alloy doors and windows to solve the problem in the related art that the drilling device cannot continuously process multiple assembly holes on the thermal break aluminum alloy strip.

[0006] In a first aspect, a drilling device for processing thermally-insulated aluminum alloy doors and windows is provided, comprising:

[0007] A workbench, wherein a driving member is provided on the workbench, and a clamping tool is provided on the driving member, wherein the driving member is used to drive the clamping tool to move along the length direction of the workbench, and the clamping tool is used to clamp the thermally-broken aluminum alloy door and window accessories;

[0008] Along the length of the driving member, a plurality of transverse drilling assemblies, at least one vertical drilling assembly and a grinding mechanism are sequentially arranged on the workbench. The transverse drilling assembly is used for drilling holes on both sides of the thermally-broken aluminum alloy door and window accessories, the vertical drilling assembly is used for drilling holes on the top of the thermally-broken aluminum alloy door and window accessories, and the grinding mechanism is used for grinding the drilling parts of the thermally-broken aluminum alloy door and window accessories.

[0009] In some embodiments, the clamping tool comprises:

[0010] a bottom plate disposed on the driving member;

[0011] An electric push rod 1 arranged relatively on the bottom plate;

[0012] A clamping plate connected to the electric push rod.

[0013] In some embodiments, the bottom of the splint is fitted with the base plate, and grooves are opened on opposite sides of the two splints. The grooves are U-shaped, and a cavity for accommodating the thermally-broken aluminum alloy door and window accessories is formed between the two grooves, and the cavity is in a "convex" shape.

[0014] In some embodiments, a plurality of transverse drilling assemblies are arranged relatively on both sides of the driving member;

[0015] The transverse drilling assembly includes a base arranged on a workbench, on which a second electric push rod is provided, on which a support plate is provided on the piston rod of the second electric push rod, the second electric push rod is used to drive the support plate away from or close to the driving member, on which a puncher is provided, and inside the workbench a third electric push rod is provided, and the piston rod of the third electric push rod is connected to the base.

[0016] In some embodiments, the vertical drilling assembly includes a YZ-axis drive assembly 1 and a punch 2, wherein the YZ-axis drive assembly 1 is disposed on a workbench, and the YZ-axis drive assembly 1 is connected to the punch 2 and is used to drive the punch 2 to move along the Y-axis or Z-axis direction.

[0017] In some embodiments, the grinding mechanism includes a YZ-axis driving component 2 and a grinder, wherein the YZ-axis driving component 2 is disposed on a workbench, and the YZ-axis driving component 2 is connected to the grinder and is used to drive the grinder to move along the Y-axis or Z-axis direction.

[0018] In some embodiments, the YZ-axis drive component 1 and the YZ-axis drive component 2 both include a mounting frame bracket, a slide is slidably arranged on the bracket, a crossbeam is arranged on the slide, a transversely arranged linear slide rail 1 is arranged on the crossbeam, an electric push rod 4 is arranged on the bracket, and the piston rod of the electric push rod 4 is connected to the slide.

[0019] In some embodiments, the driving member is a second linear guide rail.

[0020] The embodiment of the present application provides a drilling device for processing thermal-break aluminum alloy doors and windows, which integrates multiple processing functions such as horizontal drilling, vertical drilling and grinding, realizes continuous processing of thermal-break aluminum alloy door and window accessories, and significantly improves processing efficiency. The automated and continuous processing process reduces manual intervention, reduces the labor intensity of operators, and reduces the occurrence of human errors. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings required for use in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.

[0022] Figure 1 Schematic diagram of the three-dimensional structure provided in the embodiment of the present application Figure 1 ;

[0023] Figure 2 Schematic diagram of the three-dimensional structure provided in the embodiment of the present application Figure 2 ;

[0024] Figure 3 A schematic diagram of the three-dimensional structure of the YZ-axis drive assembly provided in an embodiment of the present application;

[0025] Figure 4 A schematic diagram of the three-dimensional structure of the clamping tool provided in the embodiment of the present application;

[0026] Figure 5 A schematic diagram of the three-dimensional structure of the transverse drilling assembly provided in an embodiment of the present application.

[0027] In the figure: 1. workbench; 2. driving part; 3. clamping tool; 31. bottom plate; 32. electric push rod 1; 33. clamping plate; 331. chamber; 4. horizontal drilling assembly; 41. base; 42. electric push rod 2; 43. support plate; 44. puncher 1; 45. electric push rod 3; 5. vertical drilling assembly; 51. YZ axis drive assembly 1; 52. puncher 2; 6. grinding mechanism; 61. YZ axis drive assembly 2; 62. grinder; 611. bracket; 612. slide; 613. beam; 614. linear guide rail 1; 615. electric push rod 4. DETAILED DESCRIPTION

[0028] In order to make the purpose, technical solution and advantages of the embodiments of the present application clearer, the technical solution in the embodiments of the present application will be clearly and completely described below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of this application.

[0029] The embodiment of the present application provides a drilling device for processing thermally-insulated aluminum alloy doors and windows, which can solve the problem in the related art that the drilling device cannot continuously process multiple assembly holes on the thermally-insulated aluminum alloy strip.

[0030] See also Figure 1-Figure 3A drilling device for processing thermally broken aluminum alloy doors and windows comprises: a workbench 1, a driving member 2 is arranged on the workbench 1, a clamping tool 3 is arranged on the driving member 2, the driving member 2 is used to drive the clamping tool 3 to move along the length of the workbench 1, and the clamping tool 3 is used to clamp the thermally broken aluminum alloy door and window accessories; along the length of the driving member 2, a plurality of horizontal drilling components 4, at least one vertical drilling component 5 and a grinding mechanism 6 are sequentially arranged on the workbench 1, the horizontal drilling component 4 is used to drill holes on both sides of the thermally broken aluminum alloy door and window accessories, the vertical drilling component 5 is used to drill holes on the top of the thermally broken aluminum alloy door and window accessories, and the grinding mechanism 6 is used to grind the punching parts of the thermally broken aluminum alloy door and window accessories.

[0031] It should be noted that, in this embodiment, the length of the workbench 1 is defined as the "X-axis", the width of the workbench is defined as the "Y-axis", and the height of the workbench 1 is defined as the "Z-axis".

[0032] Clamping and positioning: First, the thermally-insulated aluminum alloy door and window accessories are placed on the clamping fixture 3, and stable clamping is achieved by the clamping fixture 3. The clamping fixture 3 moves along the length direction X axis of the workbench 1 to the initial processing position.

[0033] Horizontal drilling: When the clamping tool 3 moves below the first horizontal drilling assembly 4, the horizontal drilling assembly 4 is started to drill holes on the side of the thermally insulated aluminum alloy door and window accessories. Since multiple horizontal drilling assemblies 4 are relatively arranged on both sides of the driving member 2, holes can be drilled on both sides of the workpiece, thereby improving processing efficiency.

[0034] Vertical drilling: After completing the horizontal drilling, the clamping tool 3 continues to move along the X axis to below the vertical drilling assembly 5. The vertical drilling assembly 5 drills holes on the top of the thermally-insulated aluminum alloy door and window accessories.

[0035] Grinding: Finally, the clamping fixture 3 moves the workpiece under the grinding mechanism 6. The grinding mechanism 6 finely grinds the drilled part to ensure the smoothness and accuracy of the machined surface.

[0036] Cyclic operation: After completing the above processing steps, the clamping tool 3 returns to the initial position and performs the next processing cycle. The entire processing process is automated, continuous and efficient.

[0037] By integrating multiple processing functions such as horizontal drilling, vertical drilling and grinding, the continuous processing of thermally-insulated aluminum alloy door and window accessories is realized, which significantly improves the processing efficiency. The automated and continuous processing process reduces manual intervention, reduces the labor intensity of operators, and reduces the occurrence of human errors.

[0038] The equipment can be flexibly adjusted according to the different specifications and shapes of thermal insulation aluminum alloy door and window accessories, with strong adaptability, which improves the versatility and utilization rate of the equipment.

[0039] By optimizing equipment layout and adding safety protection measures, the safety of the production process is improved and the safety and health of operators are guaranteed.

[0040] like Figure 4 As shown, the clamping tool 3 in this embodiment includes: a base plate 31 arranged on the driving member 2; an electric push rod 32 arranged relatively on the base plate 31; and a clamping plate 33 connected to the electric push rod 32.

[0041] The bottom plate 31 is fixed on the driving member 2 as the supporting base of the entire clamping fixture. The electric push rod 1 32 is relatively arranged on the bottom plate 31, and two or more electric push rods can be arranged to ensure the uniform distribution of the clamping force. The clamping plate 33 is connected to the piston rod of the electric push rod 1 32, and the opening and closing of the clamping plate is realized by the telescopic movement of the electric push rod 1 32.

[0042] When the thermally-insulated aluminum alloy door and window accessories are placed on the bottom plate 31, the electric push rod 32 starts to work, pushing its piston rod outward, and then driving the clamping plate 33 to move closer to the center until the workpiece is firmly clamped between the clamping plates. The size of the clamping force can be controlled by adjusting the thrust of the electric push rod 32 to ensure that the workpiece will not move or deform during the processing. After the processing is completed, the electric push rod 32 moves in the opposite direction, and its piston rod retracts, driving the clamping plate 33 to open outward and release the workpiece. At this time, the workpiece can be easily taken out or processed for the next round.

[0043] Specifically, in this embodiment, the bottom of the splint 33 is fitted with the bottom plate 31, and grooves are opened on opposite sides of the two splints 33. The grooves are U-shaped, and the two grooves enclose a chamber 331 for accommodating the thermally-broken aluminum alloy door and window accessories, and the chamber 331 is in a "convex" shape.

[0044] The bottom of the clamping plate 33 is closely fitted with the bottom plate 31, and this design ensures the stability of the overall structure of the clamping tool 3. When the electric push rod 1 32 pushes the clamping plate 33 to move closer to the center, the clamping plate 33 can move smoothly along the bottom plate 31 without shaking or offsetting.

[0045] U-shaped grooves are provided on opposite sides of the two clamping plates 33. The two grooves correspond to each other and enclose a specific chamber 331 when clamping. The shape of the chamber 331 matches the contour of the thermally-insulated aluminum alloy door and window accessories, especially the special "convex" shape, which can tightly wrap the edge and raised part of the workpiece to achieve more stable and precise clamping.

[0046] When the thermally-insulated aluminum alloy door and window fittings are placed in the chamber 331, the electric push rod 32 pushes the clamping plate 33 to clamp the workpiece. Due to the design of the U-shaped groove, the clamping plate 33 can fit tightly on both sides and the raised part of the workpiece, thereby providing a uniform clamping force. This design not only enhances the stability of the clamping, but also helps to reduce the vibration and shaking of the workpiece during processing.

[0047] In one embodiment, a rubber pad is disposed inside the chamber 331 to prevent damage to the surface of the thermally-insulated aluminum alloy door and window accessories during the clamping process.

[0048] Specifically, Figure 5 As shown, in this embodiment, a plurality of transverse drilling assemblies 4 are arranged relatively on both sides of the driving member 2; the transverse drilling assembly 4 comprises a base 41 arranged on the workbench 1, the base 41 is provided with an electric push rod 2 42, the piston rod of the electric push rod 2 42 is provided with a support plate 43, the electric push rod 2 42 is used to drive the support plate 43 away from or close to the driving member 2, the support plate 43 is provided with a punch 1 44, the workbench 1 is provided with an electric push rod 3 45 inside, the piston rod of the electric push rod 3 45 is connected to the base 41. The workbench 1 is provided with a through hole for the piston rod of the electric push rod 3 45 to extend, and the support plate 43 is L-shaped

[0049] The base 41 provides a stable support for the entire assembly. An electric push rod 2 42 is installed on the base 41, and an L-shaped support plate 43 is connected to its piston rod. This L-shaped design enables the support plate 43 to provide a stable platform to install the punch 1 44.

[0050] The electric push rod 2 42 drives the support plate 43 to move away from or close to the driving member 2 along the Y-axis direction through the telescopic movement of its piston rod. This action enables the punching machine 1 44 to accurately align with the side of the broken bridge aluminum alloy door and window accessories and perform the punching operation.

[0051] In order to further improve the accuracy of drilling, an electric push rod 3 45 is also provided inside the workbench 1. The piston rod of the electric push rod 3 45 is connected to the base 41 and extends through the through hole opened on the workbench 1. In this way, the electric push rod 3 45 can fine-tune the position of the base 41 in the Z-axis direction, thereby realizing precise control of the drilling position.

[0052] In one embodiment, the vertical drilling assembly 5 includes a YZ-axis driving assembly 51 and a punch 52. The YZ-axis driving assembly 51 is arranged on the workbench 1. The YZ-axis driving assembly 51 is connected to the punch 52 and is used to drive the punch 52 to move along the Y-axis or Z-axis direction.

[0053] The vertical drilling assembly 5 mainly includes a YZ-axis driving assembly 1 51 and a puncher 2 52. The YZ-axis driving assembly 1 51 is firmly mounted on the workbench 1, and provides precise two-dimensional motion control for the puncher 2 52, i.e., along the Y-axis and Z-axis directions. The puncher 2 52 is connected to the YZ-axis driving assembly 1 51 and is responsible for the actual punching operation.

[0054] After the punching operation is completed, the YZ axis driving assembly 1 51 will drive the punching machine 2 52 to return to the initial position or move to the next punching position. During the whole process, the control system will automatically adjust the position and movement of the punching machine 2 52 according to the preset program and parameters to realize an automated and continuous processing flow.

[0055] In one embodiment, the grinding mechanism 6 includes a YZ-axis driving component 61 and a grinder 62. The YZ-axis driving component 61 is arranged on the workbench 1. The YZ-axis driving component 61 is connected to the grinder 62 and is used to drive the grinder 62 to move along the Y-axis or Z-axis direction.

[0056] The second YZ-axis drive assembly 61 is firmly mounted on the workbench 1, providing precise two-dimensional motion control for the grinder 62, i.e., along the Y-axis and Z-axis directions. The grinder 62 is connected to the second YZ-axis drive assembly 61, and is responsible for the actual grinding operation.

[0057] When the grinder 62 is precisely positioned on the workpiece surface, the control system will issue a command to start the grinder 62 for grinding. The grinding wheel or grinding disc of the grinder 62 rotates and rubs the workpiece surface at high speed, thereby removing burrs, scratches and uneven parts on the surface, making the workpiece surface smooth and delicate.

[0058] After the grinding operation is completed, the YZ axis drive assembly 2 61 drives the grinder 62 to return to the initial position or move to the next grinding position. During the whole process, the control system automatically adjusts the position and movement of the grinder 62 according to the preset program and parameters to realize an automated and continuous processing flow.

[0059] It should be further explained that the YZ-axis drive component 1 51 and the YZ-axis drive component 2 61 both include a mounting frame bracket 611, a slide 612 is slidably arranged on the bracket 611, a crossbeam 613 is arranged on the slide 612, a transversely arranged linear slide rail 1 614 is arranged on the crossbeam 613, and an electric push rod 4 615 is arranged on the bracket 611, and the piston rod of the electric push rod 4 615 is connected to the slide 612.

[0060] The YZ-axis driving assembly 1 51 and the YZ-axis driving assembly 2 61 are highly similar in structure and are both designed to achieve precise two-dimensional Y-axis and Z-axis motion control.

[0061] Y-axis direction control: When the Y-axis position of the puncher 2 52 or the grinder 62 needs to be adjusted, the control system will send a command to the electric push rod 4 615. The piston rod of the electric push rod 4 615 performs telescopic movement according to the command, thereby driving the slide 612 to move along the Y-axis direction. The movement of the slide 612 will drive the crossbeam 613 and all the components thereon to move synchronously, achieving precise positioning in the Y-axis direction.

[0062] Z-axis direction control: The Z-axis direction control is achieved through the linear slide rail 1 614 on the beam 613. Usually, one or more sliding components such as a connecting plate, a motor seat, etc. are installed on the linear slide rail 1 614, and these sliding components are connected to the puncher 2 52 or the grinder 62. By driving the sliding components to slide on the linear slide rail 1 614, the Z-axis position of the puncher 2 52 or the grinder 62 can be adjusted.

[0063] In practical applications, the YZ-axis drive assembly 1 51 and the YZ-axis drive assembly 2 61 usually need to realize two-dimensional linkage control, that is, to control the movement of the Y-axis and the Z-axis simultaneously or separately. This is usually achieved through complex algorithms of the control system and precise sensor feedback to ensure that the puncher 2 52 or the grinder 62 can move accurately according to the preset path and speed.

[0064] The driving member 2 in this embodiment is a linear guide rail 2. The linear guide rail 2 is arranged along the length direction of the workbench 1.

[0065] The driving member 2 is arranged along the length direction X-axis of the workbench 1 .

[0066] Linear guide rail is a kind of high-precision linear motion component, which uses the rolling friction of balls or rollers between the guide rail and the slider to achieve low-friction, high-rigidity linear motion.

[0067] The linear guide rail 2 is mainly composed of guide rails, sliders, balls or rollers, and retainers. The guide rails are fixed on the workbench 1 as a reference for sliding; the sliders are installed on the parts that need to slide, such as clamping tools, punching machines, grinders, etc., and the sliding is achieved through the cooperation of balls or rollers with the guide rails.

[0068] When an external driving force such as a motor or cylinder acts on the slider, the slider moves linearly along the guide rail. Since the rolling friction coefficient of the ball or roller is much lower than the sliding friction coefficient, the linear guide rail can achieve smooth, precise and low-noise linear motion.

[0069] In the description of the present application, it should be noted that the terms "upper", "lower", etc. indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present application. Unless otherwise clearly specified and limited, the terms "installed", "connected", and "connected" should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection, or it can be an indirect connection through an intermediate medium, or it can be a connection between the two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to the specific circumstances.

[0070] It should be noted that, in this application, relational terms such as "first" and "second" are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device. In the absence of further restrictions, the elements defined by the sentence "comprise a ..." do not exclude the presence of other identical elements in the process, method, article or device including the elements.

[0071] The above description is only a specific implementation of the present application, so that those skilled in the art can understand or implement the present application. Various modifications to these embodiments will be apparent to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present application. Therefore, the present application will not be limited to the embodiments shown herein, but will conform to the widest range consistent with the principles and novel features applied for herein.

Claims

1. A drilling device for processing broken bridge aluminum alloy doors and windows, characterized in that: include: A workbench (1), wherein a driving member (2) is arranged on the workbench (1), and a clamping tool (3) is arranged on the driving member (2), wherein the driving member (2) is used to drive the clamping tool (3) to move along the length direction of the workbench (1), and the clamping tool (3) is used to clamp the thermally-insulated aluminum alloy door and window accessories; A plurality of transverse drilling assemblies (4), at least one vertical drilling assembly (5) and a grinding mechanism (6) are sequentially arranged on the workbench (1) along the length of the driving member (2); the transverse drilling assembly (4) is used for drilling holes on both sides of the thermally-broken aluminum alloy door and window accessories; the vertical drilling assembly (5) is used for drilling holes on the top of the thermally-broken aluminum alloy door and window accessories; and the grinding mechanism (6) is used for grinding the drilling parts of the thermally-broken aluminum alloy door and window accessories.

2. The drilling equipment for processing broken bridge aluminum alloy doors and windows as claimed in claim 1, characterized in that: The clamping tool (3) comprises: A bottom plate (31) disposed on the driving member (2); An electric push rod (32) disposed relatively on the bottom plate (31); A clamping plate (33) connected to the electric push rod (32).

3. The drilling equipment for processing broken bridge aluminum alloy doors and windows as claimed in claim 2, characterized in that: The bottom of the clamping plate (33) is fitted with the bottom plate (31), and grooves are provided on opposite sides of the two clamping plates (33), wherein the grooves are U-shaped, and a chamber (331) for accommodating the thermally-broken aluminum alloy door and window accessories is formed between the two grooves, and the chamber (331) is convex.

4. The drilling equipment for processing thermal-break aluminum alloy doors and windows as claimed in claim 1, characterized in that: A plurality of transverse drilling assemblies (4) are arranged relatively on both sides of the driving member (2); The transverse drilling assembly (4) comprises a base (41) arranged on a workbench (1), an electric push rod 2 (42) is arranged on the base (41), a support plate (43) is arranged on the piston rod of the electric push rod 2 (42), the electric push rod 2 (42) is used to drive the support plate (43) away from or close to the driving member (2), a puncher 1 (44) is arranged on the support plate (43), and an electric push rod 3 (45) is arranged inside the workbench (1), and the piston rod of the electric push rod 3 (45) is connected to the base (41).

5. The drilling equipment for processing thermal-break aluminum alloy doors and windows as claimed in claim 1, characterized in that: The vertical drilling assembly (5) comprises a YZ-axis driving assembly (51) and a punch (52). The YZ-axis driving assembly (51) is arranged on the workbench (1). The YZ-axis driving assembly (51) is connected to the punch (52) and is used to drive the punch (52) to move along the Y-axis or Z-axis direction.

6. The drilling equipment for processing thermal-break aluminum alloy doors and windows as claimed in claim 5, characterized in that: The grinding mechanism (6) comprises a second YZ-axis driving component (61) and a grinding machine (62); the second YZ-axis driving component (61) is arranged on the workbench (1); the second YZ-axis driving component (61) is connected to the grinding machine (62) and is used to drive the grinding machine (62) to move along the Y-axis or Z-axis direction.

7. The drilling equipment for processing thermal-break aluminum alloy doors and windows as claimed in claim 6, characterized in that: The YZ-axis drive component 1 (51) and the YZ-axis drive component 2 (61) both include a mounting frame bracket (611), a slide table (612) is slidably arranged on the bracket (611), a crossbeam (613) is arranged on the slide table (612), a transversely arranged linear slide rail 1 (614) is arranged on the crossbeam (613), an electric push rod 4 (615) is arranged on the bracket (611), and the piston rod of the electric push rod 4 (615) is connected to the slide table (612).

8. The drilling equipment for processing thermal-break aluminum alloy doors and windows as claimed in claim 1, characterized in that: The driving member (2) is a second linear slide rail.