Building aluminum formwork producing and machining equipment and machining method
By designing automatic fixing and spray lubrication and cooling aluminum formwork production and processing equipment, safety risks and friction temperature problems during cutting of building aluminum formwork are solved, and efficient and safe aluminum formwork processing is achieved.
Patent Information
- Application Number
- CN202510891070.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-30
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2045-06-30
AI Technical Summary
In the prior art, during the production and processing of building aluminum formwork, it needs to be manually fixed during cutting, resulting in high safety risks, and friction and temperature problems during cutting are not effectively solved.
Design a construction aluminum formwork production and processing equipment, including processing mechanisms and positioning mechanisms, automatically fixing the aluminum formwork through electric slide rails and clamping plates, and use jet tubes to spray lubricant and coolant during the cutting process to reduce friction and temperature influence.
It achieves no manual fixation, reduces safety risks, extends the life of cutting blades, and improves the processing efficiency and cutting surface quality of aluminum templates.
Smart Images

Figure CN120362592A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of aluminum material cutting, and in particular to a production and processing equipment and a processing method for an architectural aluminum template. Background Art
[0002] Architectural aluminum formwork is a new type of building formwork material, mainly made of high-strength aluminum alloy, used to support and fix concrete structures during concrete pouring. During the production and processing of architectural aluminum formwork, it usually needs to go through multiple processes such as stamping, drilling, cutting, and welding.
[0003] In the prior art, during the production and processing of architectural aluminum formwork, when the architectural aluminum formwork is cut, it is often necessary to manually fix the architectural aluminum formwork, which causes excessive safety risks. At the same time, when the architectural aluminum formwork is cut, there will be excessive friction between the tool and the aluminum material and excessive local temperature of the aluminum material. Summary of the invention
[0004] Technical issues solved In view of the above-mentioned shortcomings of the prior art, the present invention provides a production and processing equipment and method for architectural aluminum formwork, which can effectively solve the technical problem in the prior art that during the production and processing of the architectural aluminum formwork, when the architectural aluminum formwork is cut, it is often necessary to manually fix the architectural aluminum formwork, resulting in excessive safety risks.
[0005] Technical Solution To achieve the above objectives, the present invention is implemented through the following technical solutions: The present invention provides a kind of building aluminum formwork production and processing equipment, comprising a processing table, the top of the processing table is provided with a cutting groove, the top of the processing table is fixedly connected with a U-shaped plate; one side of the U-shaped plate is provided with a processing mechanism; the processing mechanism comprises a mounting frame plate, one end of the mounting frame plate is fixedly connected with the U-shaped plate, the inner side of the mounting frame plate is fixedly connected with an electric slide rail one, a top rod one, and a top rod two, and one side of the electric slide rail one is slidably connected with a cutting assembly; the cutting assembly comprises a cutting part, a cooling part, an air guide part, and a driving part, and the cutting part comprises a bracket plate and a positioning plate, the bracket plate is slidably connected with the electric slide rail one, the inner side of the bracket plate is fixedly connected with a guide rod, the guide rod is slidably connected with an L-shaped plate, the inner side surface of the L-shaped plate is fixedly connected with a driving box, the lower part of the L-shaped plate is rotatably connected with a rotating shaft rod, a motor is fixedly installed inside the driving box, one end of the rotating shaft rod is rotatably arranged inside the driving box and is transmission-connected with the output end of the motor, and the end of the rotating shaft rod away from the driving box is fixedly connected with a cutting blade.
[0006] Further, an arc plate one is fixedly connected to the top of the L-shaped plate. A spring one is arranged inside the support plate. The upper end of the spring one is connected to the L-shaped plate. An expansion link one, an arc plate two, a magnetic plate two, and a magnetic plate three are fixedly connected to the inner side surface of the support plate. One end of the expansion link one is fixedly connected to the positioning plate. A sphere one is rotatably installed on the side of the positioning plate away from the expansion link one. A magnetic plate one is fixedly connected to one side of the positioning plate. The magnetic plate one and the magnetic plate two attract each other as opposite magnetic poles, and the magnetic plate one and the magnetic plate three attract each other as opposite magnetic poles.
[0007] Further, the cooling part includes support rods. There are two support rods, and both are fixedly connected to the L-shaped plate. Two straight rods are rotatably connected between the two support rods. Two infusion tubes are fixedly connected to the two support rods together. A spray pipe is arranged below the straight rods. A pulley one and a gear one are fixedly connected to the outer circumferential surface of the straight rods. A pulley two is fixedly connected to the outer circumferential surface of the spray pipe. A belt one is movably connected to the outside of the pulley one and the pulley two. Both ends of the spray pipe are hermetically and rotatably connected to the inner wall of the infusion tube. A number of nozzles are arranged on the spray pipe.
[0008] Further, the air guiding part includes a straight plate, a rotating rod one, and a rotating rod two. One end of the straight plate is fixedly connected to the L-shaped plate. A liquid guiding pipe one and a liquid guiding pipe two are fixedly connected to the straight plate. A connecting pipe is fixedly connected to the bottoms of the liquid guiding pipe one and the liquid guiding pipe two together. The two ends of the bottom of the connecting pipe are respectively fixedly connected to the two infusion tubes. A flexible pipe one is fixedly connected to the end of the liquid guiding pipe one away from the connecting pipe. A flexible pipe two is fixedly connected to the end of the liquid guiding pipe two away from the connecting pipe. Both the flexible pipe one and the flexible pipe two are fixedly connected to the mounting frame plate.
[0009] Further, a gear four is fixedly connected to one end of the rotating rod one. A ball valve one is fixedly connected to the other end of the rotating rod one. The ball valve one is located inside the liquid guiding pipe one. The rotating rod one penetrates through the liquid guiding pipe one and is hermetically and rotatably connected to the liquid guiding pipe one. A gear five is fixedly connected to one end of the rotating rod two. A ball valve two is fixedly connected to the other end of the rotating rod two. The ball valve two is located inside the liquid guiding pipe two. The rotating rod two penetrates through the liquid guiding pipe two and is hermetically and rotatably connected to the liquid guiding pipe two.
[0010] Further, the driving part includes a fixed frame plate, a first bent connecting plate, a second bent connecting plate, and a second telescopic rod. One end of the fixed frame plate is fixedly connected to the L-shaped plate. A first rack is fixedly connected to the upper part of the first bent connecting plate, and a second rack is fixedly connected to the bottom of the first bent connecting plate. A third rack is fixedly connected to the upper part of the second bent connecting plate, and a fourth rack is fixedly connected to the bottom of the second bent connecting plate. The fourth gear is meshed with the first rack, the fifth gear is meshed with the third rack, and one of the two first gears is meshed with the second rack and the other first gear is meshed with the fourth rack.
[0011] Further, an arc plate three is fixedly connected to one surface of the first bent connecting plate, and an arc plate four is fixedly connected to one surface of the second bent connecting plate. A second spring is arranged between one surface of the first bent connecting plate and one surface of the fixed frame plate, and a third spring is arranged between the other surface of the second bent connecting plate and the other surface of the fixed frame plate. The top of the second telescopic rod is fixedly connected to the positioning plate, the bottom of the second telescopic rod is fixedly connected to a support frame plate, a second sphere is rotatably installed on one surface of the support frame plate, and a third telescopic rod is fixedly connected to the other surface of the support frame plate. The end of the third telescopic rod away from the support frame plate is fixedly connected to the fixed frame plate.
[0012] Further, a positioning mechanism is arranged on the top of the processing table. The positioning mechanism includes a guide rail, a bidirectional threaded rod, and a third rotating rod. The guide rail is fixedly connected to the top of the processing table. Two sliding plates are slidably connected to the top of the guide rail. An electric sliding rail two is fixedly connected to one side of the sliding plate, and two clamping plates are slidably connected to one side of the electric sliding rail two. The bidirectional threaded rod and the third rotating rod are both rotatably connected to the inside of the U-shaped plate, and the bidirectional threaded rod is threadedly connected to the sliding plate.
[0013] Further, a third pulley and a second gear are fixedly connected to the circumferential outer surface of the bidirectional threaded rod, and a fourth pulley and a third gear are fixedly connected to the circumferential outer surface of the third rotating rod. A second belt is movably connected to the outside of the third pulley and the fourth pulley. A strip-shaped rod is fixedly connected to the inner side surface of the L-shaped plate, a fifth rack is fixedly connected to the lower side of the strip-shaped rod, and a sixth rack is fixedly connected to the upper side of the strip-shaped rod.
[0014] A processing method of a building aluminum formwork production and processing device, based on the above-mentioned building aluminum formwork production and processing device, the method includes: first, horizontally place the aluminum formwork on the top of the processing table, then move the cutting part of the aluminum formwork directly above the cutting groove, then fix the position of the sliding plate on the guide rail, then drive the electric sliding rail two to make the clamping plates approach each other to clamp both sides of the cutting part of the aluminum formwork, then start the motor inside the driving box to drive the cutting blade to rotate, and finally drive the electric sliding rail one to move the cutting blade from right to left to cut the aluminum formwork.
[0015] Beneficial effects The technical solution provided by the present invention has the following beneficial effects compared with the prior art: 1. For a building aluminum formwork production and processing device and processing method of the present invention, by setting a processing mechanism and a positioning mechanism, first place the aluminum formwork horizontally on the top of the processing table, then move the cutting part of the aluminum formwork directly above the cutting groove, then rotate the bidirectional threaded rod to fix the position of the sliding plate on the guide rail, then drive the second electric slide rail to make the clamping plates approach each other to clamp both sides of the cutting part of the aluminum formwork, and finally start the motor inside the drive box to drive the cutting blade to rotate, and then drive the first electric slide rail to move the cutting blade from right to left to cut the aluminum formwork. By setting two groups of clamping plates to clamp and fix the aluminum formwork, there is no need for manual fixation of the aluminum formwork during cutting, solving the technical problem of excessive safety risks in the prior art that manual fixation of building aluminum formwork is often required during the production and processing of building aluminum formwork.
[0016] 2. For a building aluminum formwork production and processing device and processing method of the present invention, by setting a processing mechanism and a positioning mechanism, when the first electric slide rail drives the cutting blade to move from right to left to cut the aluminum formwork, during this process, the nozzles on the spray pipe face the surface of the cutting blade, the first ball valve is in the open state to make the first liquid guide pipe communicate with the connecting pipe, and the second ball valve is in the closed state to make the second liquid guide pipe not communicate with the connecting pipe. Thus, the lubricating liquid in the first liquid guide pipe enters the infusion pipe through the connecting pipe, and then the lubricating liquid in the two infusion pipes is sprayed on both sides of the surface of the cutting blade through the nozzles of the spray pipe. Thus, when the cutting blade cuts the aluminum formwork, the lubricating liquid will be automatically sprayed on both sides of the surface of the cutting blade, reducing the friction between the cutting blade and the aluminum formwork, thereby prolonging the service life of the cutting blade and improving the cutting surface quality, and improving the processing efficiency of the aluminum formwork.
[0017] 3. For a building aluminum formwork production and processing device and processing method of the present invention, by setting a processing mechanism and a positioning mechanism, when driving the first electric slide rail to drive the cutting blade to move from left to right to reset, it can make the two groups of clamping plates clamp the two cut aluminum formworks and move away from each other by a certain distance, so that the two spray pipes can enter between the cutting surfaces of the two aluminum formworks; thus, the coolant in the infusion pipe can be sprayed on the cutting surface of the aluminum formwork through the nozzles of the spray pipe. Thus, after the cutting blade cuts the aluminum formwork, the coolant will be automatically sprayed on the cutting surface of the aluminum formwork, eliminating the high temperature generated during the processing of the aluminum formwork, preventing the aluminum formwork from deforming or being damaged due to overheating, and further improving the processing efficiency of the aluminum formwork. Description of the Drawings
[0018] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0019] Figure 1 It is a three-dimensional structural schematic diagram of a production and processing device for building aluminum formwork of the present invention; Figure 2 It is a three-dimensional structural schematic diagram of the connection among the processing table, the positioning mechanism, and the aluminum formwork of the present invention; Figure 3 It is a three-dimensional structural schematic diagram of the connection between the processing mechanism and the positioning mechanism of the present invention; Figure 4 It is Figure 3 The structural schematic diagram of the partial enlargement at A in Figure 5 It is a three-dimensional structural schematic diagram of the processing mechanism of the present invention; Figure 6 It is a side view of the processing mechanism of the present invention; Figure 7 It is a three-dimensional structural schematic diagram of a perspective of the cutting component of the present invention; Figure 8 It is Figure 7 The structural schematic diagram of the partial enlargement at B in Figure 9 It is a three-dimensional structural schematic diagram of another perspective of the cutting component of the present invention; Figure 10 It is Figure 9 The structural schematic diagram of the partial enlargement at C in Figure 11 It is a three-dimensional structural schematic diagram of the positioning mechanism of the present invention; Figure 12 It is a three-dimensional structural schematic diagram of a perspective of the cutting part of the present invention; Figure 13 It is a three-dimensional structural schematic diagram of another perspective of the cutting part of the present invention; Figure 14 It is a three-dimensional structural schematic diagram of the cooling part of the present invention; Figure 15 It is Figure 14 The structural schematic diagram of the partial enlargement at D in Figure 16 It is a three-dimensional structural schematic diagram of a perspective of the connection between the cutting part and the cooling part of the present invention; Figure 17 It is Figure 16 The structural schematic diagram of the partial enlargement at E in Figure 18 Another perspective three-dimensional structural schematic diagram of the connection between the cutting part and the cooling part of the present invention; Figure 19 For Figure 18 The partial enlarged structural schematic diagram at position F in Figure 20 Three-dimensional structural schematic diagram of the connection between the second arc plate, the second magnetic plate, the third magnetic plate, and the support plate of the present invention; Figure 21 Three-dimensional structural schematic diagram of the connection between the positioning plate and the first magnetic plate of the present invention; Figure 22 Three-dimensional structural schematic diagram of the air guiding part of the present invention; Figure 23 Three-dimensional structural schematic diagram of the driving part of the present invention; Figure 24 For Figure 23 The partial enlarged structural schematic diagram at position G in Figure 25 Three-dimensional structural schematic diagram of the driving part of the present invention; Figure 26 For Figure 25 The partial enlarged structural schematic diagram at position H in The reference numerals in the figure respectively represent: 1, processing table; 2, processing mechanism; 3, positioning mechanism; 4, cutting part; 5, cooling part; 6, air guiding part; 7, driving part; 8, cutting assembly; 9, aluminum template; 11, cutting groove; 12, U-shaped plate; 21, mounting frame plate; 22, electric slide rail 1; 23, ejector rod 1; 24, ejector rod 2; 31, guide rail; 32, slide plate; 33, electric slide rail 2; 34, clamping plate; 35, bidirectional threaded rod; 36, rotating rod 3; 37, pulley 3; 38, gear 2; 39, pulley 4; 310, gear 3; 311, belt 2; 41, support plate; 42, guide rod; 43, L-shaped plate; 44, drive box; 45, rotating shaft rod; 46, cutting blade; 47, arc plate 1; 48, spring 1; 49, telescopic rod 1; 410, arc plate 2; 411, positioning plate; 412, sphere 1; 413, magnetic plate 1; 414, magnetic plate 2; 415, magnetic plate 3; 416, strip rod; 417, rack 5; 418, rack 6; 51, support rod; 52, straight rod; 53, infusion tube; 54, injection tube; 55, pulley 1; 56, pulley 2; 57, belt 1; 58, gear 1; 59, nozzle; 61, straight plate; 62, liquid guide tube 1; 63, liquid guide tube 2; 64, connecting tube; 65, hose 1; 66, hose 2; 67, rotating rod 1; 68, rotating rod 2; 69, gear 4; 610, gear 5; 71, fixed frame plate; 72, bent connecting plate 1; 73, bent connecting plate 2; 74, rack 1; 75, rack 2; 76, rack 3; 77, rack 4; 78, arc plate 3; 79, arc plate 4; 710, spring 2; 711, spring 3; 712, telescopic rod 2; 713, support frame plate; 714, sphere 2; 715, telescopic rod 3; 716, telescopic rod 4; 717, telescopic rod 5. Detailed implementation mode
[0020] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, 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 some but not all of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without making creative efforts shall fall within the protection scope of the present invention.
[0021] The present invention will be further described below with reference to the embodiments.
[0022] Embodiment 1 Please refer to Figures 1 - 26, a production and processing equipment for building aluminum formwork, including a processing table 1, a cutting groove 11 is opened on the top of the processing table 1, and the cutting groove 11 is a through groove. The waste chips generated by the cutting of the aluminum formwork 9 fall through the cutting groove 11. The bottom of the U-shaped plate 12 is fixedly connected to the top of the processing table 1, and a processing mechanism 2 is arranged on one side of the U-shaped plate 12. Multiple groups of aluminum formworks 9 are installed on the top of the processing table 1. During processing, the aluminum formworks 9 are moved by an external mobile device so that the aluminum formworks 9 are moved to the top of the cutting groove 11 of the processing table 1. When moving to a certain length, the movement of the aluminum formwork 9 is stopped. The aluminum formwork 9 is horizontally arranged on the top of the processing table 1.
[0023] The processing mechanism 2 includes a mounting frame 21, an electric slide rail 22, and a cutting assembly 8. The mounting frame 21 is horizontally arranged, and one end of the mounting frame 21 is fixedly connected to the top of the U-shaped plate 12. The inner side of the mounting frame 21 is fixedly connected with an electric slide rail 22, which is horizontally arranged. The electric slide rail 22 belongs to existing equipment, and its structure is not described here. The length direction of the electric slide rail 22 is perpendicular to the length direction of the aluminum template 9.
[0024] A cutting assembly 8 is slidably connected to one side of the electric slide rail 1 22. The cutting assembly 8 includes a cutting part 4. The cutting part 4 includes a bracket plate 41, a guide rod 42, an L-shaped plate 43, a drive box 44, a rotating shaft rod 45, a cutting blade 46, an arc plate 1 47, a spring 1 48, and an arc plate 2 410. The bracket plate 41 is slidably connected to the electric slide rail 1 22, and the bracket plate 41 moves left and right by electrically driving the electric slide rail 1 22.
[0025] The inner side of the bracket plate 41 is fixedly connected with a guide rod 42, and the guide rod 42 is arranged vertically. An L-shaped plate 43 is slidably connected to the guide rod 42, and the L-shaped plate 43 can slide up and down on the guide rod 42 along the vertical direction. A driving box 44 is fixedly connected to the inner side of the L-shaped plate 43, and a rotating shaft rod 45 is rotatably connected to the lower part of the L-shaped plate 43. A motor is fixedly installed inside the driving box 44, and the rotating shaft rod 45 is arranged horizontally. One end of the rotating shaft rod 45 is rotatably arranged inside the driving box 44. One end of the rotating shaft rod 45 located inside the driving box 44 is transmission-connected to the output end of the motor, and one end of the rotating shaft rod 45 away from the driving box 44 is fixedly connected to a cutting blade 46, and the cutting blade 46 is driven to rotate by starting the motor inside the driving box 44 to cut the aluminum template 9.
[0026] The top of the L-shaped plate 43 is fixedly connected with a first arc plate 47, and the convex arc surface of the first arc plate 47 is arranged upward. Two first springs 48 are arranged inside the support plate 41, and one of the first springs 48 is located on the annular side of the guide rod 42. The first springs 48 are arranged vertically, the upper ends of the first springs 48 are connected with the L-shaped plate 43, and the lower ends of the first springs 48 are connected with the inner side surface of the support plate 41. The inner side surface of the support plate 41 is fixedly connected with a second arc plate 410, and the convex arc surface of the second arc plate 410 is arranged downward. The convex arc surface of the first arc plate 47 is arranged opposite to the convex arc surface of the second arc plate 410. Due to the tension of the first springs 48 on the left and right, the convex arc surface of the first arc plate 47 is closely attached to the convex arc surface of the second arc plate 410, and at this time the first springs 48 are in a compressed state.
[0027] A positioning mechanism 3 is arranged on the top of the processing table 1. The positioning mechanism 3 includes a guide rail 31, a sliding plate 32, an electric sliding rail two 33, and a clamping plate 34. The guide rail 31 is fixedly connected to the top of the processing table 1 and is arranged horizontally. Two sliding plates 32 are slidably connected to the top of the guide rail 31. The sliding plates 32 are of an L-shaped structure and are arranged vertically. One side of the sliding plate 32 is fixedly connected with an electric sliding rail two 33. The electric sliding rail two 33 is arranged vertically and is located on one side of the cutting groove 11. The electric sliding rail two 33 is an existing device, and its structure will not be described in detail here.
[0028] Two clamping plates 34 are slidably connected to one side of the electric sliding rail two 33. The clamping plates 34 are arranged horizontally. By electrically driving the electric sliding rail two 33 to make the clamping plates 34 approach each other, the aluminum template 9 can be clamped, and by electrically driving the electric sliding rail two 33 to make the clamping plates 34 move away from each other, the aluminum template 9 can be loosened. A bidirectional threaded rod 35 is rotatably connected inside the U-shaped plate 12 and is arranged horizontally. Threaded holes are formed in both of the two sliding plates 32. The thread directions on both sides of the bidirectional threaded rod 35 are opposite. One side thread of the bidirectional threaded rod 35 is threadedly connected with the threaded hole in one sliding plate 32, and the other side thread of the bidirectional threaded rod 35 is threadedly connected with the threaded hole in the other sliding plate 32. Therefore, the moving directions of the two sliding plates 32 are always opposite. Two clamping plates 34 slidably connected to the electric sliding rail two 33, one of the clamping plates 34 is located inside the cutting groove 11, and the other clamping plate 34 is located directly above the cutting groove 11. The cutting part of the aluminum template 9 is located directly above the cutting groove 11. The length direction of the guide rail 31 is parallel to the length direction of the aluminum template 9. One side of the cutting groove 11 close to the electric sliding rail two 33 is open. The length direction of the electric sliding rail one 22 is parallel to the width direction of the aluminum template 9.
[0029] The present invention also includes a processing method for a building aluminum formwork production and processing device. First, the aluminum formwork 9 is horizontally placed on the top of the processing table 1. Then, the cutting part of the aluminum formwork 9 is moved directly above the cutting groove 11. Next, the bidirectional threaded rod 35 is rotated to fix the position of the sliding plate 32 on the guide rail 31. Then, the electric slide rail two 33 is driven to make the clamping plates 34 approach each other to clamp both sides of the cutting part of the aluminum formwork 9. Then, the motor inside the driving box 44 is started to drive the cutting blade 46 to rotate. Finally, the electric slide rail one 22 is driven to move the cutting blade 46 from right to left to cut the aluminum formwork 9.
[0030] In summary, by setting the processing mechanism 2 and the positioning mechanism 3, first, the aluminum formwork 9 is horizontally placed on the top of the processing table 1. Then, the cutting part of the aluminum formwork 9 is moved directly above the cutting groove 11. Next, the bidirectional threaded rod 35 is rotated to fix the position of the sliding plate 32 on the guide rail 31. Then, the electric slide rail two 33 is driven to make the clamping plates 34 approach each other to clamp both sides of the cutting part of the aluminum formwork 9. Finally, the motor inside the driving box 44 is started to drive the cutting blade 46 to rotate. Then, the electric slide rail one 22 is driven to move the cutting blade 46 from right to left to cut the aluminum formwork 9. By setting two groups of clamping plates 34 to clamp and fix the aluminum formwork 9, it is not necessary for manual labor to fix the aluminum formwork 9 during cutting, solving the technical problem of excessive safety risks in the prior art that often requires manual labor to fix the building aluminum formwork during the production and processing of building aluminum formwork.
[0031] Embodiment 2 Please refer to Figures 1 - 26 , compared with Embodiment 1, the difference between this embodiment and Embodiment 1 is: The processing mechanism 2 further includes a first ejector rod 23 and a second ejector rod 24. The inner side of the mounting frame plate 21 is fixedly connected with the first ejector rod 23 and the second ejector rod 24, and both the first ejector rod 23 and the second ejector rod 24 are horizontally arranged.
[0032] The cutting part 4 further includes a first telescopic rod 49, a positioning plate 411, a first sphere 412, a first magnetic plate 413, a second magnetic plate 414, a third magnetic plate 415, a strip-shaped rod 416, a fifth rack 417, and a sixth rack 418. The first telescopic rod 49 is horizontally arranged, one end of the first telescopic rod 49 is fixedly connected with the inner side surface of the support plate 41, and the other end of the first telescopic rod 49 is fixedly connected with the positioning plate 411. The first ejector rod 23 is located on the left side of the positioning plate 411, and the second ejector rod 24 is located on the right side of the positioning plate 411.
[0033] The inner side of the support plate 41 is fixedly connected with a second magnetic plate 414 and a third magnetic plate 415. The second magnetic plate 414 is located on the right side of the third magnetic plate 415. The distance between the third magnetic plate 415 and the second arc plate 410 is closer than the distance between the second magnetic plate 414 and the second arc plate 410. A first sphere 412 is rotatably installed on the side of the positioning plate 411 away from the first telescopic rod 49, and the first sphere 412 can rotate by itself. A first magnetic plate 413 is fixedly connected to one side of the positioning plate 411. The first magnetic plate 413 and the second magnetic plate 414 attract each other as opposite magnetic poles, and the first magnetic plate 413 and the third magnetic plate 415 attract each other as opposite magnetic poles.
[0034] A strip-shaped rod 416 is fixedly connected to the inner side of the L-shaped plate 43, and the strip-shaped rod 416 is horizontally arranged. A fifth rack 417 is fixedly connected to the lower side of the strip-shaped rod 416, and the fifth rack 417 is horizontally arranged. A sixth rack 418 is fixedly connected to the upper side of the strip-shaped rod 416, and the sixth rack 418 is horizontally arranged.
[0035] The cutting assembly 8 further includes a cooling part 5, a gas guiding part 6, and a driving part 7. The cooling part 5 includes a support rod 51, a straight rod 52, an infusion tube 53, a spray tube 54, a first pulley 55, a second pulley 56, a first belt 57, a first gear 58, and a nozzle 59. There are two support rods 51, and the support rods 51 are horizontally arranged. One end of the support rod 51 is fixedly connected to the L-shaped plate 43.
[0036] Two straight rods 52 are rotatably connected between the two support rods 51, and the straight rods 52 are horizontally arranged. Two infusion tubes 53 are fixedly connected to the two support rods 51 together. The infusion tube 53 passes through the support rod 51 and is fixedly connected to the support rod 51. A spray tube 54 is arranged below the straight rod 52, and the spray tube 54 is horizontally arranged below the L-shaped plate 43 and the driving box 44. Both ends of the spray tube 54 are hermetically and rotatably connected to the inner wall of the infusion tube 53. The infusion tube 53 and the spray tube 54 are in communication with each other. The infusion tube 53 and the spray tube 54 form a square structure. A plurality of nozzles 59 arranged neatly in a row are arranged on the spray tube 54, and the nozzles 59 are arranged below the L-shaped plate 43 and the driving box 44. The rotating shaft rod 45 horizontally passes through the middle of the square structure formed by the infusion tube 53 and the spray tube 54 close to the L-shaped plate 43. The cutting blade 46 is vertically arranged between the two spray tubes 54.
[0037] The outer circumferential surface of the straight rod 52 is fixedly connected with a first pulley 55 and a first gear 58. The outer circumferential surface of the spray tube 54 is fixedly connected with a second pulley 56. The outer sides of the first pulley 55 and the second pulley 56 are jointly movably connected with a first belt 57. The first pulley 55 drives the second pulley 56 to rotate together through the first belt 57, so that the straight rod 52 and the spray tube 54 rotate synchronously.
[0038] The air guiding part 6 includes a straight plate 61, a first liquid guiding pipe 62, a second liquid guiding pipe 63, a connecting pipe 64, a first flexible pipe 65, a second flexible pipe 66, a first rotating rod 67, a second rotating rod 68, a fourth gear 69, and a fifth gear 610. One end of the straight plate 61 is fixedly connected to the L-shaped plate 43, and the straight plate 61 is horizontally arranged. The first liquid guiding pipe 62 and the second liquid guiding pipe 63 are fixedly connected to the straight plate 61. The first liquid guiding pipe 62 is vertically arranged, the bottom of the first liquid guiding pipe 62 is closed, and the first liquid guiding pipe 62 is made of stainless steel or other hard materials. The second liquid guiding pipe 63 is vertically arranged, the bottom of the second liquid guiding pipe 63 is closed, and the second liquid guiding pipe 63 is made of stainless steel or other hard materials.
[0039] The bottom of the first liquid guiding pipe 62 and the second liquid guiding pipe 63 are jointly fixedly connected with the connecting pipe 64. The connecting pipe 64 has an I-shaped structure and is in mutual communication with both the first liquid guiding pipe 62 and the second liquid guiding pipe 63. The two ends of the bottom of the connecting pipe 64 are respectively fixedly connected with two infusion pipes 53, and the connecting pipe 64 is in mutual communication with both the two infusion pipes 53.
[0040] One end of the first liquid guiding pipe 62 far from the connecting pipe 64 is fixedly connected with the first flexible pipe 65, and one end of the second liquid guiding pipe 63 far from the connecting pipe 64 is fixedly connected with the second flexible pipe 66. Both the first flexible pipe 65 and the second flexible pipe 66 are fixedly connected to the mounting frame plate 21, and both the first flexible pipe 65 and the second flexible pipe 66 can be elastically stretched.
[0041] One end of the first flexible pipe 65 far from the first liquid guiding pipe 62 is in mutual communication with an external device filled with lubricating liquid. The external device filled with lubricating liquid transports the lubricating liquid into the first flexible pipe 65 through a delivery pump. The main components of the lubricating liquid may include base oil, lubricating additives, rust inhibitors, and antioxidants. Its core function is to reduce the friction between the cutting blade 46 and the aluminum material, extend the service life of the cutting blade 46, and improve the cutting surface quality.
[0042] One end of the second flexible pipe 66 far from the second liquid guiding pipe 63 is in mutual communication with an external device filled with coolant. The external device filled with coolant transports the coolant into the second flexible pipe 66 through a delivery pump. The main components of the coolant may include water-soluble components, lubricating additives, rust inhibitors, and antioxidants. Its core function is to take away the high temperature generated during the processing and prevent the aluminum template 9 from overheating and deforming.
[0043] The first rotating rod 67 is horizontally arranged. One end of the first rotating rod 67 is fixedly connected with a fourth gear 69, and the other end of the first rotating rod 67 is fixedly connected with a first ball valve. The first ball valve is located inside the first liquid guide pipe 62, on one side of the connection between the first liquid guide pipe 62 and the connecting pipe 64. The first rotating rod 67 penetrates through the first liquid guide pipe 62, and the first rotating rod 67 is in sealed rotational connection with the first liquid guide pipe 62. The second rotating rod 68 is horizontally arranged. One end of the second rotating rod 68 is fixedly connected with a fifth gear 610, and the other end of the second rotating rod 68 is fixedly connected with a second ball valve. The second ball valve is located inside the second liquid guide pipe 63, on one side of the connection between the second liquid guide pipe 63 and the connecting pipe 64. The second rotating rod 68 penetrates through the second liquid guide pipe 63, and the second rotating rod 68 is in sealed rotational connection with the second liquid guide pipe 63.
[0044] The driving part 7 includes a fixed frame plate 71, a first bent connecting plate 72, a second bent connecting plate 73, a first rack 74, a second rack 75, a third rack 76, a fourth rack 77, a third arc plate 78, a fourth arc plate 79, a second spring 710, a third spring 711, a second telescopic rod 712, a support frame plate 713, a second sphere 714, a third telescopic rod 715, a fourth telescopic rod 716, and a fifth telescopic rod 717. One end of the fixed frame plate 71 is fixedly connected with the L-shaped plate 43.
[0045] The upper part of the first bent connecting plate 72 is fixedly connected with a first rack 74, the first rack 74 is horizontally arranged, and the bottom of the first bent connecting plate 72 is fixedly connected with a second rack 75, the second rack 75 is horizontally arranged. The upper part of the second bent connecting plate 73 is fixedly connected with a third rack 76, the third rack 76 is horizontally arranged, and the bottom of the second bent connecting plate 73 is fixedly connected with a fourth rack 77, the fourth rack 77 is horizontally arranged. The fourth gear 69 is meshed with the first rack 74, the fifth gear 610 is meshed with the third rack 76, and one of the two first gears 58 is meshed with the second rack 75 and the other first gear 58 is meshed with the fourth rack 77.
[0046] One surface of the first bent connecting plate 72 is fixedly connected with a third arc plate 78, one surface of the second bent connecting plate 73 is fixedly connected with a fourth arc plate 79, and the convex arc surface of the third arc plate 78 is arranged opposite to the convex arc surface of the fourth arc plate 79.
[0047] A second spring 710 is arranged between one surface of the first bent connecting plate 72 and one surface of the fixed frame plate 71. The second spring 710 is horizontally arranged. One end of the second spring 710 is connected to one surface of the first bent connecting plate 72, and the other end of the second spring 710 is connected to one surface of the fixed frame plate 71. Inside the second spring 710, there is a fourth telescopic rod 716. The fourth telescopic rod 716 is horizontally arranged. One end of the fourth telescopic rod 716 is fixedly connected to one surface of the first bent connecting plate 72, and the other end of the fourth telescopic rod 716 is fixedly connected to one surface of the fixed frame plate 71. The fourth telescopic rod 716 can enable the first bent connecting plate 72 to move horizontally back and forth stably.
[0048] A third spring 711 is arranged between the second bent connecting plate 73 and the other surface of the fixed frame plate 71. The third spring 711 is horizontally arranged. One end of the third spring 711 is connected to one surface of the second bent connecting plate 73, and the other end of the third spring 711 is connected to one surface of the fixed frame plate 71. An expansion link five 717 is arranged inside the third spring 711. The expansion link five 717 is horizontally arranged. One end of the expansion link five 717 is fixedly connected to one surface of the second bent connecting plate 73, and the other end of the expansion link five 717 is fixedly connected to one surface of the fixed frame plate 71. The expansion link five 717 can enable the second bent connecting plate 73 to stably move horizontally back and forth.
[0049] The second expansion link 712 is vertically arranged. The top of the second expansion link 712 is fixedly connected to the positioning plate 411. The bottom of the second expansion link 712 is fixedly connected to a support frame plate 713. A second sphere 714 is rotatably installed on one surface of the support frame plate 713. The second sphere 714 can rotate by itself. A third expansion link 715 is fixedly connected to the other surface of the support frame plate 713. The third expansion link 715 is horizontally arranged. The end of the third expansion link 715 far from the support frame plate 713 is fixedly connected to the fixed frame plate 71.
[0050] A positioning mechanism 3 is arranged on the top of the processing table 1. The positioning mechanism 3 further includes a third rotating rod 36, a third pulley 37, a second gear 38, a fourth pulley 39, a third gear 310, and a second belt 311. The third rotating rod 36 is rotatably connected to the inside of the U-shaped plate 12. The third rotating rod 36 is horizontally arranged.
[0051] A third pulley 37 and a second gear 38 are fixedly connected to the circumferential outer surface of the bidirectional threaded rod 35. The fifth rack 417 is located above the second gear 38. A fourth pulley 39 and a third gear 310 are fixedly connected to the circumferential outer surface of the third rotating rod 36. The sixth rack 418 is located below the third gear 310. The third pulley 37 and the fourth pulley 39 are jointly movably connected to the outside of the second belt 311. The third pulley 37 drives the fourth pulley 39 to rotate together through the second belt 311, so as to make the bidirectional threaded rod 35 and the third rotating rod 36 rotate synchronously. Both the bidirectional threaded rod 35 and the third rotating rod 36 have a certain gravity. When there is no external force to make the bidirectional threaded rod 35 and the third rotating rod 36 rotate, neither the bidirectional threaded rod 35 nor the third rotating rod 36 will rotate. The center line of the bidirectional threaded rod 35 is parallel to the center line of the third rotating rod 36.
[0052] All the other structures are the same as those in the first embodiment.
[0053] The working principle and usage process of the embodiment of the present invention: First, drive the electric slide rail 1-22 to drive the cutting blade 46 to move from right to left to cut the aluminum formwork 9. During this process: the arc convex surface of the first arc plate 47 is in close contact with the arc convex surface of the second arc plate 410; the L-shaped plate 43 is at the highest position; the first telescopic rod 49 is in the shortest state; the first spring 48 is in a compressed state; the first sphere 412 is located on one side of the first arc plate 47 and the second arc plate 410; the first magnetic plate 413 and the second magnetic plate 414 are in magnetic attraction contact with each other so that the positioning plate 411 will not move without external force; the fifth rack 417 moves horizontally and will not mesh with the second gear 38; the spray pipe 54 is located above the aluminum formwork 9; the first ball valve is in the open state so that the first liquid guide pipe 62 is in communication with the connecting pipe 64, and the second ball valve is in the closed state so that the second liquid guide pipe 63 is not in communication with the connecting pipe 64. Furthermore, the lubricating liquid in the first liquid guide pipe 62 enters the infusion pipe 53 through the connecting pipe 64. Furthermore, the lubricating liquid in the two infusion pipes 53 is sprayed on both side surfaces of the cutting blade 46 through the nozzles 59 of the spray pipe 54 (at this time, the nozzles 59 of the two spray pipes 54 can spray the lubricating liquid obliquely downward in the direction where the two spray pipes 54 approach each other respectively). Furthermore, when the cutting blade 46 cuts the aluminum formwork 9, the lubricating liquid will be automatically sprayed on both side surfaces of the cutting blade 46 (the lubricating liquid is mainly sprayed at the place where the cutting blade 46 contacts the aluminum formwork 9), reducing the friction between the cutting blade 46 and the aluminum formwork 9, thereby prolonging the service life of the cutting blade 46 and improving the cutting surface quality, and improving the processing efficiency of the aluminum formwork 9; When the electric slide rail 1-22 drives the cutting blade 46 to move from right to left to cut off the aluminum formwork 9, continue to drive the electric slide rail 1-22 to move the cutting blade 46 to the left. The positioning plate 411 will be squeezed by the first ejector rod 23, and the first ejector rod 23 will push the positioning plate 411 to move to the right, so that the first telescopic rod 49 extends to the longest; furthermore, the first sphere 412 rotates and inserts between the first arc plate 47 and the second arc plate 410; furthermore, the first magnetic plate 413 and the third magnetic plate 415 are in magnetic attraction contact with each other so that the positioning plate 411 will not move without external force; furthermore, the first sphere 412 will squeeze the first arc plate 47 to make the first arc plate 47 move downward; furthermore, the L-shaped plate 43 moves downward to the lowest position; furthermore, the spray pipe 54 moves downward to the lowest position; when the L-shaped plate 43 is at the lowest position, the fifth rack 417 moves to the right and will mesh with the second gear 38, and when the sixth rack 418 moves horizontally, it will not mesh with the third gear 310; During the process of the first ejector rod 23 pushing the positioning plate 411 to move rightward, the positioning plate 411 will drive the support frame plate 713 to move rightward through the second telescopic rod 712; thereby causing the second sphere 714 to rotate and insert between the third arc plate 78 and the fourth arc plate 79; thereby causing the third arc plate 78 and the fourth arc plate 79 to move away from each other; thereby causing both the second spring 710 and the third spring 711 to be compressed; thereby causing both the fourth telescopic rod 716 and the fifth telescopic rod 717 to be retracted to the shortest; thereby causing the first bent connecting plate 72 and the second bent connecting plate 73 to move away from each other (the moving direction of the first bent connecting plate 72 is opposite to that of the second bent connecting plate 73); thereby causing the first rack 74 to drive the fourth gear 69 to rotate 90 degrees, thereby causing the third rack 76 to drive the fifth gear 610 to rotate 90 degrees, thereby causing the first ball valve to be in a closed state and the first liquid guide pipe 62 and the connecting pipe 64 to be in a non - connected state, thereby causing the second ball valve to be in an open state and the second liquid guide pipe 63 and the connecting pipe 64 to be in a connected state, thereby causing the coolant in the second liquid guide pipe 63 to enter the infusion pipe 53 through the connecting pipe 64; the movement of the first bent connecting plate 72 and the second bent connecting plate 73 can drive the second rack 75 and the fourth rack 77 to move away from each other, causing both the first gears 58 to rotate simultaneously (the rotation directions of the two first gears 58 are opposite); thereby causing both the straight rods 52 to rotate simultaneously (the rotation directions of the two straight rods 52 are opposite); thereby causing both the injection pipes 54 to rotate simultaneously (the rotation directions of the two injection pipes 54 are opposite); thereby causing the nozzles 59 of the two injection pipes 54 to face the directions in which the two injection pipes 54 move away from each other respectively (at this time, the nozzles 59 of the two injection pipes 54 can spray the coolant along the horizontal line in the directions in which the two injection pipes 54 move away from each other respectively); After the electric slide rail 1-22 drives the cutting blade 46 to move to the leftmost end, turn off the electric slide rail 1-22 and then start the electric slide rail 1-22 again. Drive the electric slide rail 1-22 to drive the cutting blade 46 to move from left to right to reset. During the process of the cutting blade 46 moving from left to right and approaching the aluminum formwork 9: the rack five 417 moves to the right and meshes with the gear two 38, causing the gear two 38 to rotate forward; thereby causing the bidirectional threaded rod 35 to rotate forward; thereby causing the two slide plates 32 to move away from each other; thereby causing the electric slide rails 2-33 to move away from each other; thereby causing the two groups of clamping plates 34 to clamp the two cut aluminum formworks 9 and move away from each other by a certain distance (each group of clamping plates 34 has two clamping plates 34, and the two clamping plates 34 respectively abut against the upper and lower sides of the aluminum formwork 9, thereby clamping the aluminum formwork 9); after the two cut aluminum formworks 9 move away from each other by a certain distance, the two spray pipes 54 can enter between the cutting surfaces of the two cut aluminum formworks 9; thereby, during the process of the electric slide rail 1-22 driving the cutting blade 46 to move from left to right, the coolant in the infusion pipe 53 can be sprayed on the cutting surface of the aluminum formwork 9 through the nozzles 59 of the spray pipes 54. Thereby, after the cutting blade 46 cuts the aluminum formwork 9, the coolant will be automatically sprayed on the cutting surface of the aluminum formwork 9, eliminating the high temperature generated during the processing of the aluminum formwork 9 and preventing the aluminum formwork 9 from deforming or being damaged due to overheating, and further improving the processing efficiency of the aluminum formwork 9; When the two spray pipes 54 move from left to right and move out from between the cutting surfaces of the two aluminum formworks 9, then continue to drive the electric slide rail 1-22 to move the cutting blade 46 to the rightmost end. During this process: the positioning plate 411 will be squeezed by the ejector rod two 24, and the ejector rod two 24 will push the positioning plate 411 to move to the left, causing the telescopic rod one 49 to shorten; thereby causing the sphere one 412 to rotate and move out between the arc plate one 47 and the arc plate two 410; thereby causing the magnetic plate one 413 and the magnetic plate two 414 to be magnetically attracted to each other and contact, so that the positioning plate 411 will not move without external force; thereby causing the L-shaped plate 43 to move upward to the highest position and reset under the tension of the spring one 48; thereby causing the spray pipe 54 to move upward to the highest position and reset; when the L-shaped plate 43 is at the highest position, the rack five 417 moves horizontally and does not mesh with the gear two 38, and the rack six 418 moves to the left and meshes with the gear three 310; During the process that the second ejector rod 24 pushes the positioning plate 411 to move leftward, the positioning plate 411 will drive the support frame plate 713 to move leftward through the second telescopic rod 712; thereby causing the second sphere 714 to rotate and move out between the third arc plate 78 and the fourth arc plate 79; thereby causing the third arc plate 78 and the fourth arc plate 79 to approach each other until the arc convex surface of the third arc plate 78 is in close contact with the arc convex surface of the fourth arc plate 79 (due to the tension of the second spring 710 and the third spring 711); thereby causing the first bending connecting plate 72 and the second bending connecting plate 73 to move towards each other (the moving direction of the first bending connecting plate 72 is opposite to the moving direction of the second bending connecting plate 73); thereby causing the first rack 74 to drive the fourth gear 69 to rotate 90 degrees; thereby causing the third rack 76 to drive the fifth gear 610 to rotate 90 degrees; thereby putting the first ball valve in an open state so that the first liquid guide pipe 62 is in communication with the connecting pipe 64, and putting the second ball valve in a closed state so that the second liquid guide pipe 63 is not in communication with the connecting pipe 64, and thereby causing the lubricating liquid in the first liquid guide pipe 62 to enter the infusion pipe 53 through the connecting pipe 64; the movement of the first bending connecting plate 72 and the second bending connecting plate 73 can drive the second rack 75 and the fourth rack 77 to move towards each other, causing the two first gears 58 to rotate simultaneously (the rotating directions of the two first gears 58 are opposite); thereby causing the two straight rods 52 to rotate simultaneously (the rotating directions of the two straight rods 52 are opposite); thereby causing the two injection pipes 54 to rotate simultaneously (the rotating directions of the two injection pipes 54 are opposite); thereby causing the nozzles 59 of the two injection pipes 54 to face the direction in which the two injection pipes 54 approach each other respectively (at this time, the nozzles 59 of the two injection pipes 54 can spray the lubricating liquid obliquely downward towards the direction in which the two injection pipes 54 approach each other respectively). After the electric slide rail 1 22 drives the cutting blade 46 to move to the rightmost end, turn off the electric slide rail 1 22 and then start the electric slide rail 1 22 again, driving the electric slide rail 1 22 to drive the cutting blade 46 to move from right to left. During the process that the cutting blade 46 moves from right to left and approaches the aluminum formwork 9: the sixth rack 418 moves leftward and meshes with the third gear 310, causing the third gear 310 to reverse; thereby causing the third rotating rod 36 to reverse and reset; thereby causing the bidirectional threaded rod 35 to reverse and reset; thereby causing the two slide plates 32 to move towards each other and reset; thereby causing the electric slide rail 2 33 to move towards each other and reset.
[0054] In summary, by setting up the processing mechanism 2 and the positioning mechanism 3, when the electric slide rail 1 drives the cutting blade 46 to move from right to left to cut the aluminum template 9, during this process, the nozzle 59 on the spray pipe 54 faces the surface of the cutting blade 46. The first ball valve is in the open state, so that the first liquid guide pipe 62 is in communication with the connecting pipe 64, and the second ball valve is in the closed state, so that the second liquid guide pipe 63 is not in communication with the connecting pipe 64. As a result, the lubricating liquid in the first liquid guide pipe 62 enters the liquid infusion pipe 53 through the connecting pipe 64. Then, the lubricating liquid in the two liquid infusion pipes 53 is sprayed on both sides of the cutting blade 46 through the nozzles 59 of the spray pipe 54. Thus, when the cutting blade 46 cuts the aluminum template 9, the lubricating liquid will be automatically sprayed on both sides of the cutting blade 46, reducing the friction between the cutting blade 46 and the aluminum template 9, thereby prolonging the service life of the cutting blade 46 and improving the cutting surface quality, and improving the processing efficiency of the aluminum template 9. By setting up the processing mechanism 2 and the positioning mechanism 3, when driving the electric slide rail 1 to drive the cutting blade 46 to move from left to right to reset, the two groups of clamping plates 34 can clamp the two cut aluminum templates 9 and move away from each other by a certain distance. Then, the two spray pipes 54 can enter between the cutting surfaces of the two aluminum templates 9. As a result, the coolant in the liquid infusion pipe 53 can be sprayed on the cutting surface of the aluminum template 9 through the nozzles 59 of the spray pipe 54. Thus, after the cutting blade 46 cuts the aluminum template 9, the coolant will be automatically sprayed on the cutting surface of the aluminum template 9, eliminating the high temperature generated during the processing of the aluminum template 9 and preventing the aluminum template 9 from deforming or being damaged due to overheating, further improving the processing efficiency of the aluminum template 9.
[0055] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features; and these modifications or replacements will not cause the essence of the corresponding technical solutions to deviate from the protection scope of the technical solutions of the embodiments of the present invention.
Claims
1. A building aluminum formwork production and processing equipment, including a processing table (1), characterized in that a cutting groove (11) is opened at the top of the processing table (1), and a U-shaped plate (12) is fixedly connected to the top of the processing table (1); a processing mechanism (2) is arranged on one side of the U-shaped plate (12); the processing mechanism (2) includes a mounting frame plate (21), one end of the mounting frame plate (21) is fixedly connected to the U-shaped plate (12), and an electric slide rail one (22), a push rod one (23), and a push rod two (24) are fixedly connected to the inner side of the mounting frame plate (21), and a cutting component (8) is slidably connected to one side of the electric slide rail one (22); the cutting component (8) includes a cutting part (4), a cooling part (5), a gas guiding part (6), and a driving part (7). The cutting part (4) includes a support plate (41) and a positioning plate (411). The support plate (41) is slidably connected to the electric slide rail one (22). A guide rod (42) is fixedly connected to the inner side of the support plate (41). An L-shaped plate (43) is slidably connected to the guide rod (42). A driving box (44) is fixedly connected to the inner side surface of the L-shaped plate (43). A rotating shaft rod (45) is rotatably connected to the lower part of the L-shaped plate (43). A motor is fixedly installed inside the driving box (44). One end of the rotating shaft rod (45) is rotatably arranged inside the driving box (44) and is in transmission connection with the output end of the motor. A cutting blade (46) is fixedly connected to the end of the rotating shaft rod (45) far away from the driving box (44).
2. The production and processing equipment for building aluminum formwork according to claim 1, characterized in that, An arc plate one (47) is fixedly connected to the top of the L-shaped plate (43). A spring one (48) is arranged inside the support plate (41). The upper end of the spring one (48) is connected to the L-shaped plate (43). A telescopic rod one (49), an arc plate two (410), a magnetic plate two (414), and a magnetic plate three (415) are fixedly connected to the inner side surface of the support plate (41). One end of the telescopic rod one (49) is fixedly connected to the positioning plate (411). A sphere one (412) is rotatably installed on the side of the positioning plate (411) far away from the telescopic rod one (49). A magnetic plate one (413) is fixedly connected to one side of the positioning plate (411). The magnetic plate one (413) and the magnetic plate two (414) attract each other as opposite magnetic poles. The magnetic plate one (413) and the magnetic plate three (415) attract each other as opposite magnetic poles.
3. An architectural aluminum formwork production and processing equipment according to claim 1, characterized in that, The cooling part (5) includes support rods (51). There are two support rods (51), and both of them are fixedly connected to the L-shaped plate (43). Two straight rods (52) are rotatably connected between the two support rods (51). Two infusion tubes (53) are fixedly connected together on the two support rods (51). A spray tube (54) is arranged below the straight rod (52). A first pulley (55) and a first gear (58) are fixedly connected to the outer circumferential surface of the straight rod (52). A second pulley (56) is fixedly connected to the outer circumferential surface of the spray tube (54). A first belt (57) is movably connected to the outer sides of the first pulley (55) and the second pulley (56). Both ends of the spray tube (54) are hermetically and rotatably connected to the inner wall of the infusion tube (53). A number of nozzles (59) are arranged on the spray tube (54).
4. A building aluminum formwork production and processing device according to claim 3, characterized in that, The air guiding part (6) includes a straight plate (61), a first rotating rod (67), and a second rotating rod (68). One end of the straight plate (61) is fixedly connected to the L-shaped plate (43). A first liquid guiding tube (62) and a second liquid guiding tube (63) are fixedly connected to the straight plate (61). A connecting tube (64) is fixedly connected to the bottoms of the first liquid guiding tube (62) and the second liquid guiding tube (63). The two ends of the bottom of the connecting tube (64) are respectively fixedly connected to the two infusion tubes (53). A first flexible tube (65) is fixedly connected to the end of the first liquid guiding tube (62) far from the connecting tube (64). A second flexible tube (66) is fixedly connected to the end of the second liquid guiding tube (63) far from the connecting tube (64). Both the first flexible tube (65) and the second flexible tube (66) are fixedly connected to the mounting frame plate (21).
5. The production and processing equipment for building aluminum formwork according to claim 4, characterized in that, One end of the first rotating rod (67) is fixedly connected to a fourth gear (69). The other end of the first rotating rod (67) is fixedly connected to a first ball valve. The first ball valve is located inside the first liquid guiding tube (62). The first rotating rod (67) penetrates through the first liquid guiding tube (62) and is hermetically and rotatably connected to the first liquid guiding tube (62). One end of the second rotating rod (68) is fixedly connected to a fifth gear (610). The other end of the second rotating rod (68) is fixedly connected to a second ball valve. The second ball valve is located inside the second liquid guiding tube (63). The second rotating rod (68) penetrates through the second liquid guiding tube (63) and is hermetically and rotatably connected to the second liquid guiding tube (63).
6. The production and processing equipment for building aluminum formwork according to claim 5, characterized in that, The driving part (7) includes a fixed frame plate (71), a first bent connecting plate (72), a second bent connecting plate (73), and a second telescopic rod (712). One end of the fixed frame plate (71) is fixedly connected to the L-shaped plate (43). A first rack (74) is fixedly connected to the upper part of the first bent connecting plate (72), and a second rack (75) is fixedly connected to the bottom of the first bent connecting plate (72). A third rack (76) is fixedly connected to the upper part of the second bent connecting plate (73), and a fourth rack (77) is fixedly connected to the bottom of the second bent connecting plate (73). The fourth gear (69) is meshed with the first rack (74), the fifth gear (610) is meshed with the third rack (76), and one of the two first gears (58) is meshed with the second rack (75) and the other first gear (58) is meshed with the fourth rack (77).
7. An architectural aluminum formwork production and processing device according to claim 6, characterized in that, An arc plate three (78) is fixedly connected to one surface of the first bent connecting plate (72), and an arc plate four (79) is fixedly connected to one surface of the second bent connecting plate (73). A second spring (710) is arranged between one surface of the first bent connecting plate (72) and the fixed frame plate (71), and a third spring (711) is arranged between the other surface of the second bent connecting plate (73) and the fixed frame plate (71). The top of the second telescopic rod (712) is fixedly connected to the positioning plate (411), the bottom of the second telescopic rod (712) is fixedly connected to a support frame plate (713), a second sphere (714) is rotatably installed on one surface of the support frame plate (713), a third telescopic rod (715) is fixedly connected to the other surface of the support frame plate (713), and the end of the third telescopic rod (715) far from the support frame plate (713) is fixedly connected to the fixed frame plate (71).
8. An architectural aluminum formwork production and processing device according to claim 1, characterized in that, A positioning mechanism (3) is arranged on the top of the processing table (1). The positioning mechanism (3) includes a guide rail (31), a bidirectional threaded rod (35), and a third rotating rod (36). The guide rail (31) is fixedly connected to the top of the processing table (1). Two sliding plates (32) are slidably connected to the top of the guide rail (31). An electric slide rail two (33) is fixedly connected to one side of the sliding plate (32), and two clamping plates (34) are slidably connected to one side of the electric slide rail two (33). The bidirectional threaded rod (35) and the third rotating rod (36) are both rotatably connected to the inside of the U-shaped plate (12), and the bidirectional threaded rod (35) is threadedly connected to the sliding plate (32).
9. A production and processing equipment for building aluminum formwork according to claim 8, characterized in that, A third pulley (37) and a second gear (38) are fixedly connected to the circumferential outer surface of the bidirectional threaded rod (35), a fourth pulley (39) and a third gear (310) are fixedly connected to the circumferential outer surface of the third rotating rod (36), a second belt (311) is movably connected to the outside of the third pulley (37) and the fourth pulley (39), a strip-shaped rod (416) is fixedly connected to the inner side surface of the L-shaped plate (43), a fifth rack (417) is fixedly connected to the lower side of the strip-shaped rod (416), and a sixth rack (418) is fixedly connected to the upper side of the strip-shaped rod (416).
10. A processing method of a production and processing device for building aluminum formwork, characterized in that, A production and processing device for building aluminum formwork according to any one of claims 8 or 9, the processing method comprising: First, horizontally place the aluminum formwork (9) on the top of the processing table (1), then move the cutting part of the aluminum formwork (9) directly above the cutting groove (11), then rotate the bidirectional threaded rod (35) to fix the position of the sliding plate (32) on the guide rail (31), then drive the electric slide rail two (33) to make the clamping plates (34) approach each other to clamp both sides of the cutting part of the aluminum formwork (9), then start the motor inside the drive box (44) to drive the cutting blade (46) to rotate, and finally drive the electric slide rail one (22) to move the cutting blade (46) from right to left to cut the aluminum formwork (9).
Citation Information
Patent Citations
Double-end cutting saw for aluminum alloy profile machining
CN211680291U
Aluminum template sawing machine
CN221817489U
Cutting device for cutting lenses
US20120301237A1
Orthopedic cast removal apparatus
US20170209317A1