Perforating device for aluminum alloy door and window machining
By designing an aluminum alloy door and window drilling device integrating precision processing, automated waste treatment and environmental purification, the traditional device has solved the problems of complex operation, low accuracy, inconvenient waste treatment and serious environmental pollution, and achieved an efficient, safe and environmentally friendly production process.
Patent Information
- Application Number
- CN202510216806.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-26
- Publication Date
- 2025-05-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The traditional aluminum alloy door and window hole drilling device has complex operation, low processing accuracy, inconvenient waste disposal and serious working environment pollution, resulting in increased operational difficulty, reduced efficiency, high cleaning costs and potential threats to the health of operators.
A hole punching device including a support seat, a processing table, an electric push rod, a clamping plate, a flexible assembly, a slag discharge passage, a material transfer barrel and a fan are designed. The device achieves precise clamping and processing angle adjustment through electric push rods and flexible components, uses slag discharge channels and conveying cranes to achieve automated waste treatment, and maintains the working environment clean through the fan and activated carbon filter layer.
It significantly improves the accuracy and work efficiency of hole punching, simplifies the operation process, reduces interference from human factors, realizes efficient waste treatment and environmental purification, and ensures the health and safety of operators.
Smart Images

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Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of aluminum alloy door and window processing devices, and particularly relates to a drilling device for processing aluminum alloy doors and windows. Background Art
[0002] With the rapid development of the construction industry and the continuous improvement of people's requirements for the quality of living environment, aluminum alloy doors and windows, as an important part of modern buildings, have an increasing demand; aluminum alloy doors and windows have become the mainstream choice in the market due to their excellent corrosion resistance, light weight, high strength, beautiful appearance and durability; however, in the production and processing of aluminum alloy doors and windows, drilling operations, as one of the key links, their accuracy and efficiency directly affect the final quality and production cost of the products; the traditional aluminum alloy door and window drilling devices have the following problems:
[0003] First of all, it is mainly reflected in the adjustment process of the processing angle and the position of the drill bit; operators often need to frequently manually intervene, and it is extremely easy to introduce errors due to human factors, resulting in a large amount of time and energy consumed for each adjustment, thus directly reducing the work efficiency; in addition, the tediousness of manual adjustment also increases the labor intensity of the operators, and long-term work is prone to cause fatigue, which in turn affects the accuracy and safety of the operation;
[0004] Secondly, since the traditional drilling device does not have a fastening device for adjusting the spacing, it is often difficult to ensure the accuracy and consistency of drilling; this results in large deviations in the hole positions of the processed door and window parts and inconsistent sizes, which not only affects the sealing performance of the doors and windows, making them prone to problems such as air leakage and water leakage in actual use, but also seriously damages the aesthetics and overall quality of the products;
[0005] Furthermore, waste materials such as metal chips and dust generated during the drilling process are often difficult to be effectively collected and processed, resulting in a messy processing site, and also increasing the cleaning cost and time; more seriously, if these waste materials are not properly treated, they may also cause environmental pollution, affecting the sustainable development and social image of the enterprise; finally, the serious pollution of the working environment poses a direct threat to the health of the operators; waste materials such as metal chips, dust and possibly harmful gases and odors generated during the drilling process will diffuse and stay in the processing area for a long time; operators working in such an environment for a long time are extremely easy to inhale harmful substances, leading to health problems such as respiratory diseases; this not only damages the physical health and quality of life of the operators, but also reduces their work efficiency and enthusiasm, thus affecting the overall operation and development of the enterprise. Summary of the Invention
[0006] The present invention provides a drilling device for processing aluminum alloy doors and windows, aiming to solve the problems existing in traditional drilling devices for aluminum alloy doors and windows, such as complex operation, low processing accuracy, inconvenient waste treatment, and serious environmental pollution of the working environment. This not only increases the operation difficulty but also reduces the work efficiency, increases the cleaning cost, and the serious environmental pollution of the working environment poses a potential threat to the health of operators.
[0007] The present invention is implemented as follows. A drilling device for processing aluminum alloy doors and windows includes a support base. A mounting groove is formed by downward depression on the upper end surface of the support base. Vertical plates symmetrically arranged on both sides of the mounting groove. Electric push rods are provided on the opposite sides of the two vertical plates. A clamping plate is provided at the telescopic end of the two electric push rods, and a flexible component is provided outside the clamping plate. A processing table rotates at the middle position of the mounting groove. A first motor is provided at the bottom position of the mounting groove, and the output end of the first motor is key-fixed to the end of the processing table. A slag discharge channel communicating with the support base is formed at the outer edge position of the mounting groove adjacent to the processing table. An inclined ramp is provided between the slag discharge channel and the adjacent mounting groove. The slag discharge channel extends to the inside of the support base and is connected to a feeding cylinder. A conveying auger rotates in the feeding cylinder. A second motor is provided outside the feeding cylinder, and the output end of the second motor is key-fixed to the end of the conveying auger. A slag discharge port is formed at the bottom position of the feeding cylinder, and the slag discharge port extends to the outside of the lower part of the support base.
[0008] Preferably, the flexible component includes: a plurality of return springs provided on the outer side wall of the clamping plate; dampers are integrated in the plurality of return springs; a same rubber pad is provided on the side of the plurality of return springs away from the clamping plate, and irregular anti-slip patterns are provided on the outer surface of the rubber pad.
[0009] Preferably, a fixed base is provided outside the support base, a third motor is provided in the fixed base, and a first mounting shell is rotatably fitted on the fixed base. The output end of the third motor is key-fixed to the end of the first mounting shell.
[0010] Preferably, a first lead screw is rotatably fitted in the first mounting shell, a first connecting block is threadedly fitted on the first lead screw, the first connecting block is slidably fitted with the inner wall of the first mounting shell, and a fourth motor is provided at the top position of the first mounting shell. The output end of the fourth motor is key-fixed to the end of the first lead screw.
[0011] Preferably, a second mounting shell is provided at a position where the first connecting block extends to the outside of the first mounting shell. The second mounting shell is perpendicularly distributed with the first mounting shell. A second lead screw is rotatably fitted in the second mounting shell. A second connecting block is in threaded fit with the second lead screw. The second connecting block is slidably fitted with the inner wall of the second mounting shell. A fifth motor is provided on one side of the second mounting shell away from the first mounting shell. The output end of the fifth motor is key-fixed to the end of the second lead screw. A drill bit is provided at the bottom position of the second connecting block.
[0012] Preferably, an extension plate is provided on the outer side wall of the second mounting shell. A blower is provided on the extension plate. An adsorption hood is provided at the bottom position of the extension plate. The adsorption end of the blower is communicated with the adsorption hood.
[0013] Preferably, a recovery filter box is provided at a position of the support base adjacent to the fixed base. The recovery filter box is communicated with the discharge and adsorption end of the blower through a flexible pipe.
[0014] Preferably, an activated carbon filter layer is provided in the recovery filter box.
[0015] Compared with the prior art, the embodiments of the present application mainly have the following beneficial effects:
[0016] First: In the present invention, metal chips and waste materials are effectively guided into the material transfer cylinder through the slag discharge channel. Subsequently, the waste materials are pushed from one end of the material transfer cylinder to the other end by the conveying auger until they are smoothly discharged through the slag discharge port to the outside position below the support base. This series of actions constitutes an efficient and automated waste material processing system. This system not only significantly reduces the accumulation of waste materials in the processing area, thereby reducing the impact on the cleanliness of the working environment, but also keeps the production site fresh and orderly through timely waste material discharge.
[0017] Second: Through the stable rotation and real-time adjustment function of the processing table in the present invention, the operator can easily adjust the processing angle to ensure that each drilling operation can achieve extremely high precision. At the same time, under the coordinated action of multiple motors, the drill bit realizes arbitrary adjustment of the horizontal position, vertical position, and angle. This all-round flexibility greatly enriches the processing means and makes complex drilling tasks simple and feasible. This design not only greatly improves the processing accuracy, enabling each hole of the door and window components to be accurately completed, but also greatly simplifies the operation process, reduces the interference of human factors, and thus significantly improves the work efficiency.
[0018] Thirdly, the present invention can flexibly adapt to door and window components of different sizes and shapes by providing a clamping plate with arbitrarily adjustable spacing, thereby achieving precise and stable clamping. More importantly, the outer side of the clamping plate is cleverly integrated with a flexible component to ensure the stability of the door and window components, and effectively absorb and buffer the impact force from the processing equipment through its inherent elastic properties, thereby preventing any damage to the door and window components that may be caused by over-tight clamping or processing vibration. In addition, the anti-slip texture on the rubber pad further enhances the friction of the clamping interface, and can effectively prevent the door and window components from sliding or shifting even in high-speed punching or cutting operations, thereby ensuring processing accuracy while also ensuring the integrity of the components.
[0019] Fourthly, the present invention forms a stable negative pressure area around the processing area through the operation of a high-efficiency fan. This design cleverly attracts waste materials such as metal debris, dust and possible odors, effectively curbing their spread in the working environment. Subsequently, these attracted waste materials are sent to the recovery filter box for further purification. The recovery filter box is equipped with a high-quality activated carbon filter layer, which has excellent adsorption performance and deeply purifies tiny particles, harmful gases and odors in the airflow, ensuring that the air discharged from the recovery filter box meets the clean and pollution-free standards. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 It is a three-dimensional structural schematic diagram of the present invention;
[0021] Figure 2 is a front view of the present invention;
[0022] Figure 3 It is a front cross-sectional structural schematic diagram of the support base of the present invention;
[0023] Figure 4 It is a schematic diagram of the connection structure between the first mounting shell and the second mounting shell of the present invention;
[0024] Figure 5 It is a schematic diagram of the structure of the flexible component of the present invention;
[0025] Figure 6 It is a schematic diagram of the connection structure between the fan and the recovery filter box of the present invention;
[0026] Figure 7 It is a schematic diagram of the connection structure between the first motor and the processing table of the present invention;
[0027] In the figure: 1, support base; 2, vertical plate; 3, electric push rod; 4, clamping plate; 5, processing table; 6, first motor; 7, slag discharge channel; 8, ramp; 9, feeding cylinder; 10, conveying auger; 11, second motor; 12, slag discharge port; 13, return spring; 14, rubber pad; 15, fixed seat; 16, third motor; 17, first mounting shell; 18, first lead screw; 19, first connecting block; 20, fourth motor; 21, second mounting shell; 22, second lead screw; 23, second connecting block; 24, fifth motor; 25, extension plate; 26, fan; 27, adsorption hood; 28, recycling filter box; 29, flexible pipe; 30, activated carbon filter layer; 31, drill bit. Detailed implementation manners
[0028] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the technical field to which this application belongs; the terms used in the specification of this application are only for the purpose of describing specific embodiments and are not intended to limit this application; the terms "including" and "having" and any variations thereof in the specification and claims of this application and the above drawings are intended to cover non-exclusive inclusion. The terms "first", "second", etc. in the specification and claims of this application or the above drawings are used to distinguish different objects and not to describe a specific order.
[0029] Reference to "embodiment" herein means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one embodiment of this application. The phrase appears in various places in the specification and does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment mutually exclusive with other embodiments. Those skilled in the art will explicitly and implicitly understand that the embodiments described herein can be combined with other embodiments.
[0030] An embodiment of the present invention provides a drilling device for processing aluminum alloy doors and windows, as Figures 1-7As shown in the figure, it includes a support base 1; a mounting groove is formed by the downward depression of the upper end surface of the support base 1; vertical plates 2 symmetrically arranged on both sides of the mounting groove; electric push rods 3 are arranged on the opposite sides of the two vertical plates 2; clamping plates 4 arranged at the telescopic ends of the two electric push rods 3, and a flexible component arranged outside the clamping plates 4; a processing table 5 rotatably arranged at the middle position of the mounting groove; a first motor 6 arranged at the bottom position of the mounting groove, and the output end of the first motor 6 is key-fixed to the end of the processing table 5; a slag discharge channel 7 communicating with the support base 1 is opened at the outer edge position of the mounting groove adjacent to the processing table 5; a ramp 8 inclined is arranged between the slag discharge channel 7 and the adjacent mounting groove; a feeding cylinder 9 is communicated with the inner position of the support base 1 where the slag discharge channel 7 extends; a conveying auger 10 rotatably arranged in the feeding cylinder 9; a second motor 11 arranged outside the feeding cylinder 9, and the output end of the second motor 11 is key-fixed to the end of the conveying auger 10; a slag discharge port 12 is opened at the bottom position of the feeding cylinder 9, and the slag discharge port 12 extends to the outer side position of the lower part of the support base 1.
[0031] It should be noted that due to the problems of complex operation, low processing accuracy, inconvenient waste treatment, and serious working environment pollution existing in traditional aluminum alloy door and window drilling devices; this not only increases the operation difficulty, but also reduces the work efficiency; increases the cleaning cost; and the serious working environment pollution poses a potential threat to the health of operators. This solution significantly reduces the waste accumulation, maintains the cleanliness and order of the production site, thereby optimizing the production process and improving the work efficiency; at the same time, the stable rotation and real-time adjustment function of the processing table 5, as well as the omnidirectional adjustment ability of the drill bit 31 under the coordinated action of multiple motors, jointly improve the processing accuracy, simplify the operation process, and further promote the smooth progress of the production process; in addition, the combination of the clamping plates 4 with adjustable spacing and the flexible component ensures the stability and safety of the door and window components during processing, prevents damage, and guarantees the integrity of the components, which is also an important part of optimizing the production process; finally, the advanced environmental protection mechanism effectively purifies the waste such as metal chips, dust, and peculiar smell in the working environment through the cooperation of the high-efficiency fan 26 and the activated carbon filter layer 30, improves the air quality, and creates a healthier and more comfortable working environment for operators.
[0032] Specifically, in this embodiment, the solution mainly includes a support base 1; First, the aluminum alloy door and window components are placed on the processing table 5, and the processing table 5 is firmly located in the middle of the assembly groove of the support base 1; Driven strongly by the first motor 6, the processing table 5 starts to rotate smoothly. This rotational movement provides the necessary positioning and rotational power for the subsequent drilling operation, enabling the operator to adjust the processing angle in real time, thus greatly improving the convenience and accuracy of drilling; After the processing table 5 rotates, the two electric push rods 3 start to push the clamping plates 4 slowly towards the center; The clamping plates 4 and the flexible components equipped on their outer sides tightly clamp the aluminum alloy door and window components, ensuring that they remain absolutely stable and immobile during the entire drilling process, effectively preventing drilling errors caused by vibration or displacement; Once the clamping is stable, the drilling operation begins immediately; The metal chips and waste generated during the drilling process will naturally fall on the processing table 5 and the surrounding areas;
[0033] As the processing table 5 continues to rotate, these metal chips and waste are affected by gravity and slide along the surface of the processing table 5 into the slag discharge channel 7; The ramp 8 is designed to accelerate the flow rate of the waste, effectively preventing blockage; Once the waste enters the slag discharge channel 7, it will be smoothly guided into the feeding cylinder 9 that is tightly connected to the inside of the support base 1; At this time, the conveying auger 10 in the feeding cylinder 9 starts to rotate driven strongly by the second motor 11, and its spiral blades continuously push the waste towards the bottom of the feeding cylinder 9; This efficient conveying process continues until all the waste is pushed to the slag discharge port 12 at the bottom of the feeding cylinder 9; Finally, the waste is smoothly discharged through the slag discharge port 12 to the outer side position below the support base 1. In the entire work process, each component works together seamlessly, not only significantly improving the production efficiency, but also greatly maintaining the cleanliness and orderliness of the working environment.
[0034] In a further preferred embodiment of the present invention, as Figures 1-5 shown, the flexible component includes: a plurality of return springs 13 arranged on the outer side wall of the clamping plate 4; A damper is integrated in each of the plurality of return springs 13; The same rubber pad 14 is arranged on the side of the plurality of return springs 13 away from the clamping plate 4, and irregular anti-slip patterns are arranged on the outer surface of the rubber pad 14.
[0035] In this embodiment, the clamping plate 4 moves towards the center under the push of the electric push rod 3, and at the same time drives a number of reset springs 13 on its outer wall to approach the door and window components together; these reset springs 13 not only provide the necessary clamping force, but also absorb and buffer the possible impact force during the clamping process through their elastic characteristics, protecting the door and window components from damage; inside the reset spring 13, a damper is integrated; the function of the damper is to further control the telescopic speed of the reset spring 13 to ensure a smooth and impact-free clamping process; when the clamping plate 4 contacts the door and window components, the damper will slow down the compression speed of the spring to avoid unnecessary stress on the door and window components caused by a suddenly increased clamping force.
[0036] On the side of the reset spring 13 away from the clamping plate 4, there is the same rubber pad 14. As the part in direct contact with the door and window components, this rubber pad 14 has excellent buffering and anti-slip properties; the outer surface of the rubber pad 14 is provided with irregular anti-slip patterns, and these patterns can increase the friction between the rubber pad 14 and the door and window components, ensuring that the door and window components can remain stable and immovable during the drilling process, and preventing drilling errors caused by sliding or displacement.
[0037] In a further preferred embodiment of the present invention, as Figures 1-4 shown, a fixed seat 15 is provided on the outside of the support seat 1. A third motor 16 is provided inside the fixed seat 15. A first mounting shell 17 is rotatably fitted on the fixed seat 15. The output end of the third motor 16 is key-fixed to the end of the first mounting shell 17.
[0038] In this embodiment, the first mounting shell 17 will rotate synchronously with the rotation of the third motor 16. This rotational fit ensures the effective transmission of power and enables the first mounting shell 17 to rotate flexibly on the fixed seat 15, improving the accuracy of the drill bit 31 for drilling.
[0039] In a further preferred embodiment of the present invention, as Figures 1-4 shown, a first lead screw 18 is rotatably fitted inside the first mounting shell 17. A first connecting block 19 is threadedly fitted on the first lead screw 18. The first connecting block 19 is slidably fitted with the inner wall of the first mounting shell 17. A fourth motor 20 is provided at the top position of the first mounting shell 17. The output end of the fourth motor 20 is key-fixed to the end of the first lead screw 18.
[0040] In this embodiment, the fourth motor 20 drives the first lead screw 18 to rotate; since there is a threaded fit between the first connecting block 19 and the first lead screw 18, and the first connecting block 19 is also in sliding fit with the inner wall of the first mounting shell 17, this sliding fit plays a role of guiding and supporting, ensuring the stability and directionality of the first connecting block 19 during movement; as the first lead screw 18 rotates, the first connecting block 19 will perform a longitudinal reciprocating motion along the axial direction of the first lead screw 18; enabling the first connecting block 19 to accurately adjust its position in the vertical direction; allowing the operator to accurately adjust the height of the tool according to the specific dimensions and processing requirements of the aluminum alloy door and window components, so as to achieve accurate processing operations.
[0041] In a further preferred embodiment of the present invention, as Figures 1-4 shown, the first connecting block 19 extends to an external position of the first mounting shell 17 and is provided with a second mounting shell 21. The second mounting shell 21 is perpendicularly distributed with the first mounting shell 17. A second lead screw 22 is rotatably fitted in the second mounting shell 21. A second connecting block 23 is in threaded fit with the second lead screw 22. The second connecting block 23 is in sliding fit with the inner wall of the second mounting shell 21. A fifth motor 24 is provided on one side of the second mounting shell 21 away from the first mounting shell 17. The output end of the fifth motor 24 is key-fixed to the end of the second lead screw 22. A drill bit 31 is provided at the bottom position of the second connecting block 23.
[0042] In this embodiment, the longitudinal movement of the first connecting block 19 drives the height adjustment of the second mounting shell 21. The fifth motor 24 drives the second lead screw 22 to rotate. Since there is a threaded fit between the second connecting block 23 and the second lead screw 22, and the second connecting block 23 is also in sliding fit with the inner wall of the second mounting shell 21, this sliding fit provides a stable guiding effect for the movement of the second connecting block 23. As the second lead screw 22 rotates, the second connecting block 23 will perform a horizontal lateral movement along the axial direction of the second lead screw 22. This lateral movement is combined with the longitudinal movement driven by the first connecting block 19 to achieve arbitrary adjustment of the drill bit 31 in the lateral and longitudinal directions.
[0043] In a further preferred embodiment of the present invention, as Figures 1-6 shown, an extension plate 25 is provided on the outer side wall of the second mounting shell 21. A blower 26 is provided on the extension plate 25. An adsorption hood 27 is provided at the bottom position of the extension plate 25. The adsorption end of the blower 26 is communicated with the adsorption hood 27.
[0044] In this embodiment, when the fan 26 is working, a negative pressure area will be generated around the adsorption hood 27; this negative pressure area will attract the surrounding air as well as waste materials such as metal debris and peculiar smell carried in the air, and enter the fan 26 through the adsorption hood 27; the waste materials are then sucked in by the fan 26 and conveyed into the recovery filter box 28; in this way, the impurities and peculiar smell generated during the processing can be cleaned up in real time, keeping the working area clean; at the same time, since the waste materials are removed in time, the potential damage to the processing equipment and products is also reduced, improving the processing efficiency and product quality; in addition, since the adsorption hood 27 is arranged at the bottom position of the extension plate 25 and is adjacent to the processing area, it can capture and remove the generated waste materials more effectively, reducing the splashing and spreading of the waste materials, which also helps to improve the air quality of the working environment and protect the health of the operators.
[0045] In a further preferred embodiment of the present invention, as Figures 1-6 shown, a recovery filter box 28 is arranged at a position adjacent to the fixed seat 15 on one side of the support seat 1, and the recovery filter box 28 is communicated with the discharge and adsorption end of the fan 26 through a flexible pipe 29.
[0046] In this embodiment, under the action of the fan 26, waste materials such as metal debris and dust are sucked in from the adsorption hood 27 and conveyed to the discharge and adsorption end of the fan 26 through the fan 26; the discharge and adsorption end of the fan 26 is communicated with the recovery filter box 28 through the flexible pipe 29; the design of the flexible pipe 29 allows a certain degree of flexibility and freedom between the fan 26 and the recovery filter box 28, and even if the equipment moves or vibrates slightly during the working process, the connection between the two can be ensured not to be affected.
[0047] In a further preferred embodiment of the present invention, as Figure 6 shown, an activated carbon filter layer 30 is arranged in the recovery filter box 28.
[0048] In this embodiment, the cleanliness and purity of the air flow after being treated by the activated carbon filter layer 30 will be significantly improved, further reducing the potential harm to the working environment and the health of the operators.
[0049] Working principle: When the present invention is used, the aluminum alloy door and window parts are first placed stably on the processing table 5, which is located in the middle of the assembly groove of the support seat 1 to ensure stability without shaking; with the start of the first motor 6, the processing table 5 starts to rotate smoothly, providing accurate positioning and rotational power for the subsequent drilling operation; the operator can adjust the processing angle in real time according to needs, greatly improving the convenience and accuracy of drilling;
[0050] After the angle adjustment of the processing table 5 is completed, the two electric push rods 3 are started synchronously, and the clamping plate 4 is slowly pushed to move toward the center; the flexible components on the outside of the clamping plate 4, including the return spring 13 and the rubber pad 14, tightly and gently clamp the door and window components; the return spring 13 not only provides the necessary clamping force, but also absorbs and buffers the impact force through its elastic characteristics to protect the door and window components from damage; the built-in damper further controls the expansion and contraction speed of the spring to ensure a smooth and impact-free clamping process; the irregular anti-skid patterns on the rubber pad 14 increase the friction between the door and window components to prevent sliding or displacement during the punching process;
[0051] After the punching operation begins, the generated metal debris and waste naturally fall on the processing table 5 and its surroundings; the continuous rotation of the processing table 5 uses gravity to make the waste slide along the surface into the slag discharge channel 7; the ramp 8 design of the slag discharge channel 7 accelerates the flow of waste and prevents blockage; after the waste enters the material transfer cylinder 9, the conveying auger 10 driven by the second motor 11 starts to work, and its spiral blades push the waste to the bottom of the material transfer cylinder 9, and finally discharge it to the outer position of the lower part of the support seat 1 through the slag discharge port 12, completing the waste treatment and discharge;
[0052] At the same time, the first mounting shell 17 rotates flexibly under the drive of the third motor 16, thereby improving the accuracy of drilling by the drill bit 31; the fourth motor 20 drives the first screw rod 18 to rotate, thereby driving the first connecting block 19 to move longitudinally in the first mounting shell 17, thereby realizing precise adjustment of the tool in the vertical direction; the movement of the first connecting block 19 further drives the height adjustment of the second mounting shell 21; and the fifth motor 24 drives the second screw rod 22 to rotate, thereby causing the second connecting block 23 to move transversely in the second mounting shell 21, and combined with the longitudinal movement, realizes arbitrary adjustment of the drill bit 31 in the transverse and longitudinal directions;
[0053] In order to keep the working environment clean and tidy, the fan 26 works continuously during the processing; it creates a negative pressure area around the adsorption hood 27 to attract and remove waste materials such as metal debris, dust and odor; after the waste is sucked into the fan 26, it is transported to the recovery filter box 28 through the pipeline system; the activated carbon filter layer 30 in the recovery filter box 28 deeply purifies the airflow to improve the cleanliness and purity, and finally discharges clean air to protect the working environment and the health of operators; the various components of the entire system work together and seamlessly connect, which not only improves production efficiency, but also ensures the cleanliness and orderliness of the working environment.
[0054] It should be noted that, for the foregoing embodiments, for the sake of simple description, they are all described as a series of action combinations. However, those skilled in the art should be aware that the present invention is not limited by the described action sequence, because according to the present invention, certain steps may be performed in other sequences or simultaneously. Secondly, those skilled in the art should also be aware that the embodiments described in the specification are all preferred embodiments, and the actions and modules involved are not necessarily essential to the present invention.
[0055] In several embodiments provided by the present application, it should be understood that the disclosed device can be implemented in other ways. For example, the device embodiments described above are merely illustrative. For example, the above division of units may have other division methods in actual implementation. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Another point is that the displayed or discussed coupling or communication connection between each other may be through some interfaces, and the indirect coupling or communication connection between devices or units may be in the form of telecommunications or other forms.
[0056] The units described above as separate components may or may not be physically separated, and the components displayed as units may or may not be physical units, that is, they may be located in one place or distributed to multiple network units. Some or all of the units can be selected according to actual needs to achieve the purpose of the solution of this embodiment.
[0057] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than limiting the protection scope of the invention. Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on these embodiments, all other embodiments obtained by those of ordinary skill in the art without creative work belong to the scope of protection of the present invention. Although the present invention has been described in detail with reference to the above embodiments, those of ordinary skill in the art can still, without conflict and without creative work, combine, add, delete or make other adjustments to the features in the embodiments of the present invention according to the situation, so as to obtain different technical solutions that essentially do not deviate from the concept of the present invention, and these technical solutions also belong to the scope of protection of the present invention.
Claims
1. A punching device for aluminum alloy doors and windows, characterized in that: include: Support seat; The upper end surface of the support seat is recessed downward to form an assembly groove; Vertical plates symmetrically arranged on both sides of the assembly groove; An electric push rod is provided on the opposite side of the two vertical plates; A clamping plate provided at the telescopic ends of the two electric push rods, and a flexible component provided at the outer side of the clamping plate; A processing table rotating at the middle position of the assembly groove; A first motor is arranged at the bottom of the assembly groove, and an output end of the first motor is fixedly connected with an end key of the processing table; The outer edge of the assembly groove adjacent to the processing table is provided with a slag discharge channel connected to the support seat; An inclined ramp is provided between the slag discharge channel and the adjacent assembly groove; The slag discharge channel extends to the inner position of the support seat and is connected to the material transfer cylinder; A conveying auger rotating in the transfer cylinder; A second motor is arranged outside the material transfer cylinder, and an output end of the second motor is fixedly connected with an end key of the conveying auger; A slag discharge port is provided at the bottom of the material transfer cylinder, and the slag discharge port extends to the outer side of the lower part of the support seat.
2. A punching device for aluminum alloy door and window processing as claimed in claim 1, characterized in that: The flexible component comprises: A plurality of return springs arranged on the outer side wall of the clamping plate; A damper is integrated in each of the return springs; A common rubber pad is arranged on one side of the plurality of return springs away from the clamping plate, and an outer surface of the rubber pad is arranged with irregular anti-skid patterns.
3. A punching device for aluminum alloy door and window processing as claimed in claim 1, characterized in that: A fixing seat is arranged outside the support seat, a third motor is arranged inside the fixing seat, a first mounting shell is rotatably matched on the fixing seat, and an output end of the third motor is fixedly connected with an end key of the first mounting shell.
4. A punching device for aluminum alloy door and window processing as claimed in claim 3, characterized in that: A first screw rod is rotatably engaged in the first mounting shell, a first connecting block is threadedly engaged on the first screw rod, the first connecting block is slidably engaged with the inner wall of the first mounting shell, a fourth motor is arranged at the top position of the first mounting shell, and the output end of the fourth motor is fixedly connected with the end key of the first screw rod.
5. A punching device for aluminum alloy door and window processing as claimed in claim 4, characterized in that: The first connecting block extends to the external position of the first mounting shell and is provided with a second mounting shell, the second mounting shell is vertically distributed with the first mounting shell, a second screw rod is rotatably engaged in the second mounting shell, a second connecting block is threadedly engaged on the second screw rod, the second connecting block is slidably engaged with the inner wall of the second mounting shell, a fifth motor is provided on the side of the second mounting shell away from the first mounting shell, the output end of the fifth motor is fixedly connected with the end key of the second screw rod, and a drill bit is provided at the bottom position of the second connecting block.
6. A punching device for aluminum alloy door and window processing as claimed in claim 5, characterized in that: An extension plate is disposed on the outer side wall of the second installation shell, a fan is disposed on the extension plate, an adsorption cover is disposed at the bottom of the extension plate, and an adsorption end of the fan is connected to the adsorption cover.
7. A punching device for aluminum alloy door and window processing as claimed in claim 6, characterized in that: A recovery filter box is arranged at one side of the support seat adjacent to the fixing seat, and the recovery filter box is connected with the exhaust end of the fan through a flexible pipe.
8. A punching device for aluminum alloy door and window processing as claimed in claim 7, characterized in that: An activated carbon filter layer is arranged in the recovery filter box.