A drilling system and drilling method for processing plastic-steel aluminum alloy doors and windows
By designing a drilling system including pad plates, fixed piles, mobile piles, drive components, mobile clamps and drilling components, the problems of cumbersome positioning and low efficiency in the prior art are solved, and the rapid and precise drilling operation of plastic steel and aluminum alloy doors and windows are achieved.
Patent Information
- Application Number
- CN202211665080.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-12-22
- Publication Date
- 2025-06-27
- Estimated Expiration
- 2042-12-22
AI Technical Summary
In the existing aluminum alloy door and window processing technology, the positioning process is cumbersome and the efficiency is low, making it difficult to achieve fast and accurate drilling operations.
A drilling system including pad plates, fixed piles, mobile piles, drive components, mobile clamps and drilling components is designed. Through the drive components, the mobile piles and mobile clamps are driven to translate along the pad plate, so as to achieve rapid correction of plastic steel and aluminum alloy doors and windows and precise adjustment of drilling positions.
The positioning efficiency of plastic steel and aluminum alloy doors and windows is improved, the positioning process is reduced, the accuracy and stability of drilling is ensured, and the impact of vibration on doors and windows is overcome.
Smart Images

Figure CN116117203B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of processing of plastic-steel aluminum alloy doors and windows. Specifically, it relates to a drilling system and a drilling method for processing plastic-steel aluminum alloy doors and windows. Background Art
[0002] Aluminum alloy doors and windows refer to doors and windows made of aluminum alloy extrusion profiles as frames, mullions, and sash materials, which are called aluminum alloy doors and windows for short. Aluminum alloy doors and windows include those with aluminum alloy as the base material of the stressed members and those combined with wood and plastic. Aluminum alloy doors and windows include many types, such as plastic-steel aluminum alloy doors and windows.
[0003] The patent number is: CN214185326U, which discloses a drilling device for the production of aluminum alloy doors and windows. Through the engagement of the moving block and the threaded rotating rod, when the servo motor rotates, the moving block starts to move horizontally, so that the drilling mechanism fixedly connected to the bottom of the moving block starts to move. At the same time, a fixing component is fixedly installed on the top of the drilling table to place the doors and windows. The back plate limits one side of the doors and windows, and the rotating lifting component drives the limiting plate to move up to limit the other side of the doors and windows, and cooperates with the drilling mechanism to perform the drilling process. When one side of the doors and windows is drilled, the clamping plate can be driven by the rotating shaft to flip to drill the other side, improving the drilling efficiency and accuracy.
[0004] In the above solution, when positioning the aluminum alloy doors and windows, it is necessary to limit the aluminum alloy doors and windows in advance through the fixing component, and then adjust the position of the drilling mechanism to make its drill bit flush with the drilling surface of the plastic-steel aluminum alloy doors and windows. The process is relatively cumbersome, and the positioning efficiency is relatively low.
[0005] In order to solve the above problems, there is an urgent need for a drilling system and a drilling method for processing plastic-steel aluminum alloy doors and windows. Summary of the Invention
[0006] The purpose of the present invention is to provide a drilling system and a drilling method for processing plastic-steel aluminum alloy doors and windows to solve the problems raised in the above background art.
[0007] To achieve the above purpose, one of the purposes of the present invention is to provide a drilling system for processing plastic-steel aluminum alloy doors and windows, including a backing plate. Fixed piles are fixedly arranged at the diagonal positions of both sides of the top of the backing plate. Moving piles are arranged at the diagonal positions of the other two sides of the top of the backing plate. A driving component is arranged at a position close to the bottom of the side of the moving pile, and the driving component drives the moving pile to slide horizontally. Pad components are arranged at the tops of the two fixed piles, and the two pad components respectively support two diagonals of the aluminum alloy doors and windows. Moving clamping plates are arranged at the tops of the two moving piles. Drilling components are arranged on both adjacent sides of the moving clamping plate, and a conveying component is connected to the side of the drilling component;
[0008] After the two corners of the plastic-steel aluminum alloy door and window are respectively placed at the top positions of the two fixed piles, the driving assembly drives the two moving clamping plates to approach and fit the other two corners of the plastic-steel aluminum alloy door and window through the moving piles, completing the correction work of the plastic-steel aluminum alloy door and window. Each conveying assembly drives each drilling assembly to translate along the corresponding side of the plastic-steel aluminum alloy door and window to correct the positions of the drilling assemblies.
[0009] As a further improvement of this technical solution, the driving assembly includes a first lead screw, the first lead screw is threadedly connected to the side of the moving pile near the bottom end, one end of the first lead screw is coaxially connected to a first driving motor, the other end of the first lead screw is sleeved with a rotating ring, the first driving motor drives the first lead screw to rotate, and the moving pile is driven to translate along the top of the backing plate through the first lead screw.
[0010] As a further improvement of this technical solution, sliders are provided at the bottom end of the moving pile, and sliding grooves are opened at both sides of the top of the backing plate near the edges. The two sliders are respectively slidably connected to the inner ends of the two sliding grooves.
[0011] As a further improvement of this technical solution, the cushioning component includes a fixed clamping plate, the fixed clamping plate has an L-shaped structure, and a support plate is provided at the bottom end of the fixed clamping plate.
[0012] As a further improvement of this technical solution, the conveying assembly includes a second driving motor, a second lead screw is coaxially connected to the side of the second driving motor, the drilling assembly includes a sliding plate, a threaded hole is opened on the side of the sliding plate, the threaded hole is threadedly connected to the sliding plate, a drill bit is provided inside the sliding plate, and edge plates are connected to both sides of the sliding plate. When the sliding plate fits on the side of the plastic-steel aluminum alloy door and window, the two edge plates respectively fit on the upper and lower sides of the plastic-steel aluminum alloy door and window.
[0013] As a further improvement of this technical solution, a side plate is provided on the side of the sliding plate, a sleeve plate is provided on the side of the side plate close to the plastic-steel aluminum alloy door and window, a plurality of brushes are provided at the inner end of the sleeve plate, and shielding plates are provided on both sides of the sleeve plate.
[0014] As a further improvement of this technical solution, a pair of sliding holes are opened on both sides of the two side plates, a measuring rod is inserted into the inner end of the sliding hole, the measuring rod penetrates through the sliding plate and is slidably connected to it. The ends of one pair of the measuring rods are connected to one side of the second driving motor, and the ends of the other pair of the measuring rods are connected to the adjacent side of the second driving motor. A pair of slots are opened on both adjacent sides of the fixed clamping plate. One pair of the measuring rods are respectively inserted and matched with the two slots on one side of the fixed clamping plate, and the other pair of the measuring rods are respectively clamped and matched with the two slots on the other side of the fixed clamping plate.
[0015] As a further improvement of the technical solution, a socket is provided at the end of the second lead screw, side grooves that are in clamping fit with the second lead screw are provided on both adjacent sides of the fixed clamping plate, a top column is provided at the inner end of the side groove, and a limiting spring is sleeved outside the top column.
[0016] As a further improvement of the technical solution, plug posts are provided at the inner ends of the slots, and a buffer spring is connected between the ends of the plug posts and the inner ends of the slots.
[0017] The second object of the present invention is to provide a drilling method using a drilling system for processing plastic-steel aluminum alloy doors and windows, including the following method steps:
[0018] S1. Adjust the position of the plastic-steel aluminum alloy door and window so that the two opposite corners of the plastic-steel aluminum alloy door and window are respectively aligned with the tops of the two cushioning components;
[0019] S2. Vertically move the plastic-steel aluminum alloy door and window downward until the bottom ends of the two opposite corners of the plastic-steel aluminum alloy door and window are respectively in contact with the tops of the two cushioning components, completing the pre-fixing treatment of the plastic-steel aluminum alloy door and window;
[0020] S3. The driving component drives the moving pile to translate along the top of the backing plate, causing the two moving clamping plates to gradually approach the other two opposite corners of the plastic-steel aluminum alloy door and window;
[0021] S4. The conveying component drives the drilling component to move along the side of the plastic-steel aluminum alloy door and window, driving the drilling component to move to the drilling position, and the drilling component drills the plastic-steel aluminum alloy door and window.
[0022] Compared with the prior art, the beneficial effects of the present invention are:
[0023] 1. In the drilling system and drilling method for processing plastic-steel aluminum alloy doors and windows, the driving component drives the moving pile to translate along the top of the backing plate, causing the two moving clamping plates to gradually approach the other two opposite corners of the plastic-steel aluminum alloy door and window. When the sides of the two moving clamping plates are respectively in contact with the other two opposite corners of the plastic-steel aluminum alloy door and window, through the thrust applied by the moving clamping plates, the entire plastic-steel aluminum alloy door and window completes the position correction work, reducing the positioning process and improving the positioning efficiency of the plastic-steel aluminum alloy door and window. At the same time, after the moving clamping plates are in contact with the corners of the plastic-steel aluminum alloy door and window, the thrust applied by the moving clamping plates causes the plastic-steel aluminum alloy door and window to maintain the corrected state to overcome the vibration generated during later drilling and maintain the stability of the entire plastic-steel aluminum alloy door and window.
[0024] 2. In the drilling system and drilling method for processing plastic-steel aluminum alloy doors and windows, by limiting the slider at the inner end of the chute, the slider can only slide horizontally and cannot shift upward or downward, further improving the stability of the position adjustment of the moving clamping plate.
[0025] 3. In the drilling system and method for processing plastic-steel aluminum alloy doors and windows, the side of the plastic-steel aluminum alloy door and window is scraped by a brush to clean the drilling position in advance, preventing dust accumulation from blocking the drilling position and affecting the drill bit positioning work. At the same time, after the drilling work is completed, the sleeve plate slides reversely along the side of the plastic-steel aluminum alloy door and window to scrape the inner and outer sides of the drill hole twice, preventing debris generated during the drilling process from accumulating and affecting the subsequent processing work. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 is the overall structural schematic diagram of Embodiment 1 of the present invention;
[0027] Figure 2 is the split view of the overall structure of Embodiment 1 of the present invention;
[0028] Figure 3 is the structural schematic diagram of the backing plate of Embodiment 1 of the present invention;
[0029] Figure 4 is the first structural schematic diagram of the fixed clamping plate of Embodiment 1 of the present invention;
[0030] Figure 5 is for Embodiment 1 of the present invention Figure 4 local enlarged view of A;
[0031] Figure 6 is the second structural schematic diagram of the fixed clamping plate of Embodiment 1 of the present invention;
[0032] Figure 7 is the structural schematic diagram of the movable clamping plate of Embodiment 1 of the present invention;
[0033] Figure 8 is for Embodiment 1 of the present invention Figure 7 local enlarged view of B;
[0034] Figure 9 is the structural schematic diagram of the sliding plate of Embodiment 1 of the present invention.
[0035] The meanings of the various reference numerals in the figure are as follows:
[0036] 10, backing plate; 110, fixed pile; 120, movable pile; 130, sliding groove; 140, first lead screw; 150, first driving motor;
[0037] 20, fixed clamping plate; 210, side groove; 211, top column; 212, limiting spring; 220, slot; 221, plug post; 222, buffer spring;
[0038] 30. Movable clamping plate; 310. Second driving motor; 320. Second lead screw; 321. Socket; 330. Slide plate; 331. Threaded hole; 332. Slide hole; 333. Drill bit; 334. Side plate; 335. Sleeve plate; 336. Brush; 337. Shading plate; 338. Edge plate; 340. Measuring rod. Detailed implementation manners
[0039] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0040] In the description of the present invention, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present invention 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 should not be construed as a limitation of the present invention.
[0041] In addition, the terms "first" and "second" are only used for descriptive purposes, and cannot be construed as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the present invention, "a plurality" means two or more, unless otherwise specifically defined. Embodiment
[0042] Please refer to Figures 1-9 As shown in the figure, one of the purposes of this embodiment is to provide a drilling system for processing plastic-steel aluminum alloy doors and windows, including a base plate 10. Fixed piles 110 are fixedly arranged at the diagonal positions of both sides of the top of the base plate 10. Moving piles 120 are arranged at the diagonal positions of the other two sides of the top of the base plate 10. A driving component is arranged at a position near the bottom of the side of the moving pile 120, and the driving component drives the moving pile 120 to slide horizontally. Pad components are arranged at the tops of the two fixed piles 110, and the two pad components respectively support the two diagonals of the aluminum alloy door and window. Movable clamping plates 30 are arranged at the tops of the two moving piles 120. Drilling components are arranged on both adjacent sides of the movable clamping plate 30, and a conveying component is connected to the side of the drilling component;
[0043] After the two corners of the plastic-steel aluminum alloy door and window are respectively placed at the top positions of the two fixed piles 110, the driving assembly drives the two moving clamping plates 30 to approach and fit the other two corners of the plastic-steel aluminum alloy door and window through the moving pile 120, completing the correction work of the plastic-steel aluminum alloy door and window. Each conveying assembly drives each drilling assembly to translate along the corresponding side of the plastic-steel aluminum alloy door and window to correct the positions of the drilling assemblies.
[0044] During specific use, first move the plastic-steel aluminum alloy door and window to be processed directly above the backing plate 10, adjust the position of the plastic-steel aluminum alloy door and window so that its two opposite corners are respectively aligned with the tops of the two cushioning assemblies, and then vertically move the plastic-steel aluminum alloy door and window downward until the bottoms of its two opposite corners are respectively in contact with the tops of the two cushioning assemblies, completing the pre-fixing treatment of the plastic-steel aluminum alloy door and window. Subsequently, the driving assembly drives the moving pile 120 to translate along the top of the backing plate 10, causing the two moving clamping plates 30 to gradually approach the other two opposite corners of the plastic-steel aluminum alloy door and window. When the sides of the two moving clamping plates 30 are respectively in contact with the other two opposite corners of the plastic-steel aluminum alloy door and window, through the thrust applied by the moving clamping plates 30, the entire plastic-steel aluminum alloy door and window completes the position correction work. The conveying assembly drives the drilling assembly to move along the side of the plastic-steel aluminum alloy door and window, driving the drilling assembly to move to the drilling position, and the drilling assembly drills the plastic-steel aluminum alloy door and window.
[0045] In the present invention, the driving assembly drives the moving pile 120 to translate along the top of the backing plate 10, causing the two moving clamping plates 30 to gradually approach the other two opposite corners of the plastic-steel aluminum alloy door and window. When the sides of the two moving clamping plates 30 are respectively in contact with the other two opposite corners of the plastic-steel aluminum alloy door and window, through the thrust applied by the moving clamping plates 30, the entire plastic-steel aluminum alloy door and window completes the position correction work, reducing the positioning process and improving the positioning efficiency of the plastic-steel aluminum alloy door and window. At the same time, after the moving clamping plates 30 are in contact with the corners of the plastic-steel aluminum alloy door and window, the thrust applied by the moving clamping plates 30 causes the plastic-steel aluminum alloy door and window to maintain the corrected state to overcome the vibration generated during later drilling and maintain the stability of the entire plastic-steel aluminum alloy door and window.
[0046] Further, the driving component includes a first lead screw 140, which is threadedly connected to the side of the moving pile 120 near the bottom end. One end of the first lead screw 140 is coaxially connected to a first driving motor 150, and a rotating ring is sleeved on the other end of the first lead screw 140. The first driving motor 150 drives the first lead screw 140 to rotate, and the moving pile 120 is driven by the first lead screw 140 to translate along the top of the backing plate 10. During specific use, after the pre-fixing work of the plastic-steel aluminum alloy doors and windows is completed, the two first driving motors 150 respectively drive the two first lead screws 140, and the first lead screws 140 drive the moving pile 120 to translate along the top of the backing plate 10. The moving pile 120 will drive the moving clamping plate 30 to translate until the moving clamping plate 30 fits the corner position of the plastic-steel aluminum alloy doors and windows. When the position of the plastic-steel aluminum alloy doors and windows deviates during the pre-fixing process, the thrust applied to the corners of the plastic-steel aluminum alloy doors and windows by the moving clamping plate 30 will drive the plastic-steel aluminum alloy doors and windows to complete position correction, ensuring that during the drilling process, each drilling component is parallel to the side of the plastic-steel aluminum alloy doors and windows respectively, and preventing the drilling position from deviating.
[0047] Furthermore, sliders are provided at the bottom end of the moving pile 120, and sliding grooves 130 are respectively formed at the positions near the edges on both sides of the top of the backing plate 10. The two sliders are respectively slidably connected to the inner ends of the two sliding grooves 130. During specific use, when the moving pile 120 moves along the top of the backing plate 10, the sliders slide along the inner ends of the sliding grooves 130. The inner ends of the sliding grooves 130 are used to limit the sliders, so that the sliders can only slide horizontally and cannot deviate upward or downward, further improving the stability of the position adjustment of the moving clamping plate 30.
[0048] Specifically, the padding component includes a fixed clamping plate 20, which has an L-shaped structure, and a support plate is provided at the bottom end of the fixed clamping plate 20. During specific use, when the plastic-steel aluminum alloy doors and windows move downward to the top of the fixed clamping plate 20, the two corners of the plastic-steel aluminum alloy doors and windows slide down along the side of the top of the fixed clamping plate 20 until the bottom ends of the two corners of the plastic-steel aluminum alloy doors and windows fit the support plate. The plastic-steel aluminum alloy doors and windows are supported by the support plate, and the corners of the plastic-steel aluminum alloy doors and windows are limited by the side of the fixed clamping plate 20, completing the pre-fixing process of the plastic-steel aluminum alloy doors and windows.
[0049] In addition, the conveying component includes a second driving motor 310. A second lead screw 320 is coaxially connected to the side of the second driving motor 310. The drilling component includes a sliding plate 330. A threaded hole 331 is formed in the side of the sliding plate 330, and the threaded hole 331 is in threaded connection with the sliding plate 330. A drill bit 333 is arranged inside the sliding plate 330. Edge plates 338 are connected to both sides of the sliding plate 330. When the sliding plate 330 is attached to the side of the plastic-steel aluminum alloy door and window, the two edge plates 338 are respectively attached to the upper and lower sides of the plastic-steel aluminum alloy door and window. During specific use, the second driving motor 310 drives the second lead screw 320 to rotate, and the second lead screw 320 drives the sliding plate 330 to translate along the side of the plastic-steel aluminum alloy door and window. During this process, the two edge plates 338 are respectively attached to the upper and lower sides of the plastic-steel aluminum alloy door and window, ensuring that the sliding plate 330 is attached to the side of the plastic-steel aluminum alloy door and window, further limiting the sliding position of the sliding plate 330 and improving the drilling accuracy.
[0050] In addition, a side plate 334 is arranged on the side of the sliding plate 330. A sleeve plate 335 is arranged on the side of the side plate 334 close to the plastic-steel aluminum alloy door and window. A plurality of brushes 336 are arranged at the inner end of the sleeve plate 335. Shield plates 337 are arranged on both sides of the sleeve plate 335. During specific use, when the sliding plate 330 slides along the side of the plastic-steel aluminum alloy door and window, the side of the sleeve plate 335 is attached to the side of the plastic-steel aluminum alloy door and window, and the ends of the brushes 336 are attached to the side of the plastic-steel aluminum alloy door and window. The side of the plastic-steel aluminum alloy door and window is scraped by the brushes 336 to clean the drilling position in advance, preventing dust accumulation from blocking the drilling position and affecting the positioning work of the drill bit 333. At the same time, after the drilling work is completed, the sleeve plate 335 slides in the reverse direction along the side of the plastic-steel aluminum alloy door and window to scrape the inner and outer sides of the drill hole twice, preventing the accumulation of debris generated during the drilling process and affecting the subsequent processing work.
[0051] Furthermore, a pair of sliding holes 332 are formed on the side surfaces of both side plates 334. A measuring rod 340 is inserted into the inner end of each sliding hole 332. The measuring rod 340 penetrates through the sliding plate 330 and is slidably connected thereto. The ends of one pair of measuring rods 340 are connected to one side of the second driving motor 310, and the ends of the other pair of measuring rods 340 are connected to the adjacent side of the second driving motor 310. A pair of slot holes 220 are formed on each of the adjacent sides of the fixed clamping plate 20. One pair of measuring rods 340 is respectively inserted into and engaged with the two slot holes 220 on one side of the fixed clamping plate 20, and the other pair of measuring rods 340 is respectively clamped and engaged with the two slot holes 220 on the other side of the fixed clamping plate 20. During the specific use process, when the moving clamping plate 30 horizontally slides along the top end of the base plate 10, the moving clamping plate 30 drives the two measuring rods 340 on one side to vertically insert into the inner ends of the corresponding slot holes 220, and drives the two measuring rods 340 on the other side to horizontally snap into the inner ends of the corresponding slot holes 220. At this time, the two measuring rods 340 limit the side surfaces of the side plates 334. The side plates 334 and the sliding plate 330 both horizontally slide along the two measuring rods 340, further improving the stability of the sliding plate 330 during the sliding process and avoiding the phenomenon of position deviation. At the same time, a number of equally spaced scale grooves are formed on the outer side of the measuring rod 340. The operator can determine the final drilling point by observing the position of the side surface of the side plate 334 and the scale grooves, further precision drilling work.
[0052] Furthermore, an insertion opening 321 is formed at the end of the second lead screw 320. Side grooves 210 that are clamped and engaged with the second lead screw 320 are formed on each of the adjacent sides of the fixed clamping plate 20. A top column 211 is arranged at the inner end of the side groove 210. A limiting spring 212 is sleeved on the outer side of the top column 211. After the moving clamping plate 30 fits with the corner of the plastic steel aluminum alloy door and window, the moving clamping plate 30 will drive the end of the second lead screw 320 to snap into the inner end of the corresponding side groove 210, further limiting the position of the side groove 210. At the same time, after the end of the second lead screw 320 snaps into the inner end of the corresponding side groove 210, the side surface of the second lead screw 320 presses the top column 211, causing the top column 211 to slide towards the inner side of the side groove 210 and pressing the limiting spring 212 until the opening of the insertion opening 321 is aligned with the end of the top column 211. At this time, the limiting spring 212 loses pressure and will drive the top column 211 to snap into the inner end of the insertion opening 321, completing the positioning work of the second lead screw 320 and improving the positioning effect of the second lead screw 320.
[0053] Specifically, insertion posts 221 are provided at the inner ends of the slots 220, and a buffer spring 222 is connected between the ends of the insertion posts 221 and the inner ends of the slots 220. After the end of the measuring rod 340 is inserted into the inner end of the slot 220, the thrust applied by the slot 220 will directly act on the side of the insertion post 221, causing the insertion post 221 to move towards the inner end of the slot 220 and compress the buffer spring 222. During the inward contraction of the buffer spring 222, a reverse force will be provided to the insertion post 221 to counteract the thrust received by the insertion post 221, achieving a buffering effect on the measuring rod 340 and preventing the measuring rod 340 from colliding with the inner end of the slot 220 for a long time, which may cause damage to the measuring rod 340 and affect its measurement accuracy and service life.
[0054] The second object of this embodiment is to provide a drilling method using a drilling system for processing plastic-steel aluminum alloy doors and windows, including the following method steps:
[0055] S1. Adjust the position of the plastic-steel aluminum alloy door and window so that the two opposite corners of the plastic-steel aluminum alloy door and window are respectively aligned with the tops of the two cushioning components;
[0056] S2. Vertically move the plastic-steel aluminum alloy door and window downward until the bottoms of the two opposite corners of the plastic-steel aluminum alloy door and window are respectively in contact with the tops of the two cushioning components, completing the pre-fixing process of the plastic-steel aluminum alloy door and window;
[0057] S3. The driving component drives the moving pile 120 to translate along the top of the backing plate 10, causing the two moving clamping plates 30 to gradually approach the other two opposite corners of the plastic-steel aluminum alloy door and window;
[0058] S4. The conveying component drives the drilling component to move along the side of the plastic-steel aluminum alloy door and window, driving the drilling component to move to the drilling position, and the drilling component drills the plastic-steel aluminum alloy door and window.
[0059] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art of this industry should understand that the present invention is not limited by the above embodiments. The above embodiments and the descriptions in the specification are only preferred examples of the present invention and are not used to limit the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.
Claims
1. A drilling system for processing plastic-steel aluminum alloy doors and windows, including a backing plate (10), and fixed piles (110) are fixedly arranged at diagonal positions on both sides of the top edge of the backing plate (10). It is characterized in that: At the diagonal positions of the other two sides of the top end of the backing plate (10), moving piles (120) are arranged. At a position close to the bottom end on the side of the moving pile (120), a driving assembly is arranged. The driving assembly drives the moving pile (120) to slide horizontally. At the top ends of the two fixed piles (110), padding assemblies are arranged. The two padding assemblies respectively support the two diagonals of the aluminum alloy doors and windows. At the top ends of the two moving piles (120), moving clamping plates (30) are arranged. Drilling assemblies are arranged on the two adjacent sides of the moving clamping plate (30). A conveying assembly is connected to the side of the drilling assembly; After the two corners of the plastic-steel aluminum alloy doors and windows are respectively placed at the top ends of the two fixed piles (110), the driving assembly drives the two moving clamping plates (30) to approach and fit the other two corners of the plastic-steel aluminum alloy doors and windows respectively through the moving piles (120), completing the correction work of the plastic-steel aluminum alloy doors and windows. Each conveying assembly drives each drilling assembly to translate along the corresponding side of the plastic-steel aluminum alloy doors and windows to correct the positions of the drilling assemblies; The driving assembly includes a first screw rod (140). The first screw rod (140) is threadedly connected to a position close to the bottom end on the side of the moving pile (120). One end of the first screw rod (140) is coaxially connected to a first driving motor (150). A rotating ring is sleeved on the other end of the first screw rod (140). The first driving motor (150) drives the first screw rod (140) to rotate, and drives the moving pile (120) to translate along the top end of the backing plate (10) through the first screw rod (140); The padding assembly includes a fixed clamping plate (20). The fixed clamping plate (20) has an L-shaped structure. A support plate is arranged at the bottom end of the fixed clamping plate (20); The conveying assembly includes a second driving motor (310). A second screw rod (320) is coaxially connected to the side of the second driving motor (310). The drilling assembly includes a sliding plate (330). A threaded hole (331) is formed in the side of the sliding plate (330). The threaded hole (331) is threadedly connected to the sliding plate (330). A drill bit (333) is arranged inside the sliding plate (330). Edge plates (338) are connected to both sides of the sliding plate (330). When the sliding plate (330) fits on the side of the plastic-steel aluminum alloy doors and windows, the two edge plates (338) respectively fit on the upper and lower sides of the plastic-steel aluminum alloy doors and windows; A side plate (334) is arranged on the side of the sliding plate (330). A sleeve plate (335) is arranged on the side of the side plate (334) close to the plastic-steel aluminum alloy doors and windows. A plurality of brushes (336) are arranged at the inner end of the sleeve plate (335). Shading plates (337) are arranged on both sides of the sleeve plate (335).
2. The drilling system for processing plastic-steel aluminum alloy doors and windows according to claim 1, wherein: Sliders are arranged at the bottom end of the moving pile (120). Chute grooves (130) are respectively formed at positions close to the edges on both sides of the top end of the backing plate (10). The two sliders are respectively slidably connected to the inner ends of the two chute grooves (130).
3. The drilling system for processing plastic-steel and aluminum alloy doors and windows according to claim 1, characterized in that: A pair of sliding holes (332) are formed in the sides of the two side plates (334). A measuring rod (340) is inserted into the inner end of the sliding hole (332). The measuring rod (340) penetrates through the sliding plate (330) and is slidably connected thereto. The ends of one pair of the measuring rods (340) are connected to one side of the second driving motor (310), and the ends of the other pair of the measuring rods (340) are connected to the adjacent side of the second driving motor (310). A pair of inserting slots (220) are formed in the adjacent sides of the fixed clamping plate (20). One pair of the measuring rods (340) are respectively inserted into and engaged with the two inserting slots (220) on one side of the fixed clamping plate (20), and the other pair of the measuring rods (340) are respectively clamped and engaged with the two inserting slots (220) on the other side of the fixed clamping plate (20).
4. The drilling system for processing plastic-steel aluminum alloy doors and windows according to claim 3, characterized in that: An inserting opening (321) is formed at the end of the second lead screw (320). Side grooves (210) which are clamped and engaged with the second lead screw (320) are formed in the adjacent sides of the fixed clamping plate (20). A top column (211) is arranged at the inner end of the side groove (210), and a limiting spring (212) is sleeved outside the top column (211).
5. The drilling system for processing plastic-steel aluminum alloy doors and windows according to claim 3, wherein: Inserting columns (221) are arranged at the inner ends of the inserting slots (220), and a buffer spring (222) is connected between the end of the inserting column (221) and the inner end of the inserting slot (220).
6. A drilling method using the drilling system for processing plastic-steel aluminum alloy doors and windows according to any one of claims 1-5, characterized in that: It includes the following method steps: S1. Adjust the position of the plastic-steel aluminum alloy door and window so that the two opposite corners of the plastic-steel aluminum alloy door and window are respectively aligned with the tops of the two cushioning components; S2. Vertically move down the plastic-steel aluminum alloy door and window until the bottoms of the two opposite corners of the plastic-steel aluminum alloy door and window are respectively attached to the tops of the two cushioning components, completing the pre-fixing treatment of the plastic-steel aluminum alloy door and window; S3. The driving component drives the moving pile (120) to translate along the top of the cushion plate (10), so that the two moving clamping plates (30) gradually approach the other two opposite corners of the plastic-steel aluminum alloy door and window; S4. The conveying component drives the drilling component to move along the side of the plastic-steel aluminum alloy door and window, driving the drilling component to move to the drilling position, and the drilling component drills the plastic-steel aluminum alloy door and window.
Citation Information
Patent Citations
Perforating device for aluminum alloy door and window production
CN214185326U
Drilling device for plastic-steel door and window machining
CN209021271U
Drilling device for aluminum alloy window frame
CN210817552U
Automatic scrap iron cleaning equipment for metal door and window plate cutting
CN211304960U
Drilling device for aluminum alloy door and window machining
CN214393286U