Aluminum profile extrusion traction saw cutting equipment
By combining cooling support in the inner cavity of the aluminum profile with external support, the problems of uneven cooling and unstable sawing of the aluminum profile are solved, efficient cooling and stable cutting are achieved, and safety and precision are improved.
Patent Information
- Application Number
- CN202511155235.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-18
- Publication Date
- 2025-09-19
AI Technical Summary
During the cooling and sawing process, aluminum profiles have problems such as uneven cooling inside and outside, unstable cutting and poor safety. In particular, tubular aluminum profiles with complex cross-sections are prone to deformation when insufficiently cooled and prone to vibration during sawing, leading to safety accidents.
An aluminum profile extrusion traction sawing equipment was designed, which includes a clamping device, a cooling mechanism and a sawing device. A magnetic sleeve is used to support the inner cavity of the aluminum profile and inject cold air for cooling. Combined with an external metal belt support, it ensures the stability and safety of the aluminum profile during sawing.
Through the cooperation of internal and external supports and cooling mechanisms, the internal cooling effect of the aluminum profile is improved, the stability and safety of the sawing process are enhanced, the deformation and splashing of the profile are avoided, and the cutting accuracy is improved.
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Figure CN120662875A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of aluminum profile production, in particular to aluminum profile extrusion, traction and sawing equipment. Background Art
[0002] Aluminum profiles are usually extruded through an extruder and a mold. After extrusion, the aluminum profiles are usually cooled and shaped by cold air. Usually, traction and sawing equipment are installed at the extruder to traction the aluminum profiles to reduce distortion during the extrusion cooling and shaping process, and to match the traction speed with the extrusion speed, so as to maintain a certain tension when the profile is extruded and not prone to accumulation or breaking. After the aluminum profile is pulled to a certain length, the profile can be cut to a fixed length by sawing equipment. However, some aluminum profiles, such as tubular aluminum profiles with a single cavity, have a cavity that is connected to the extruder, making it difficult for cold air to enter the interior of the aluminum profile for cooling, which makes the internal temperature of the profile high. The temperature of the inner wall of the profile is higher than that of the outer wall, and can only be cooled by heat conduction through the cold wind blowing from the outer wall, resulting in poor cooling effect on the inner wall of the profile, especially some tubular aluminum profiles with complex cross-sections, such as aluminum tubes with concave, trapezoidal, and continuous concave-convex cross-sections. Due to the complex shape of the outer wall, dead corners may be generated when cold wind passes through, or the wind speed of cold wind in some areas may be reduced, resulting in lower cooling effect. Moreover, during sawing, although the aluminum profile is in a finalized state, the aluminum profile has not been completely cooled, resulting in a softer aluminum profile as a whole. When the saw blade is sawing, the aluminum profile has insufficient supporting force, which is prone to vibration, affecting the cutting accuracy. In addition, deformation or rebound is prone to occur during the cutting process, which may cause the aluminum profile to splash or pop out, which is prone to safety accidents and is more inconvenient. Summary of the Invention
[0003] The object of the present invention is to provide an aluminum profile extrusion, traction and sawing device to solve the problems raised in the above background technology.
[0004] To achieve the above object, the present invention provides the following technical solutions:
[0005] An aluminum profile extrusion traction sawing device includes a body, and two movable platforms are installed on the body, wherein one movable platform is provided with a clamping device, and the other movable platform is provided with a sawing device, including:
[0006] Two shells, two cooling mechanisms for cooling the inside of tubular aluminum profiles and an air intake mechanism for delivering cold air to the inside of the cooling mechanisms. The two shells are fixedly connected to another mobile platform. A circular hole is opened on one side of each shell. The two cooling mechanisms are respectively located inside the two shells. The cooling mechanism includes two electric push rods, and the two electric push rods are respectively fixedly connected at the two ends of the adjacent shells. The movable end of each electric push rod is fixedly connected to a connecting box. An electromagnet is provided inside each connecting box. A sleeve is provided between the two connecting boxes. The air intake mechanism is fixedly connected to a mobile platform.
[0007] Furthermore, one end of each shell is provided with two vent holes, wherein a connecting pipe is fixedly connected between the two vent holes on one shell, and a partition is fixedly sleeved on the middle of one shell.
[0008] Furthermore, any connection box is an open structure on one side, a cover plate is fixedly sleeved on the opening on one side of any connection box, a plurality of sleeve holes are opened on one side of any cover plate, a push rod is slidably sleeved inside any sleeve hole, and a reset spring is fixedly connected between any push rod and the adjacent electromagnet.
[0009] Furthermore, the air intake mechanism includes:
[0010] A connecting rod and a connecting frame, the connecting rod is fixedly connected to a mobile platform, and two fixed tubes are fixedly connected to one side of the connecting rod, the connecting frame is in contact with one end of the two fixed tubes, and two fixing holes are provided on the connecting frame. An air pipe is fixedly sleeved inside any of the fixing holes, and the two air pipes are respectively located inside the two fixed tubes.
[0011] Furthermore, a connecting tube is provided on one side of the connecting frame, and a piston guide rod is slidably sleeved inside the connecting tube, one end of the piston guide rod is fixedly connected to the connecting frame, one end of the connecting tube is fixedly connected to a connecting pipe, and a jam airbag is fixedly sleeved on the outer wall of the connecting tube, and the jam airbag is fixedly connected to a hose.
[0012] Furthermore, a fixed cylinder is fixedly sleeved at the center of the other shell, and a piston push rod is slidably sleeved inside the fixed cylinder, one end of the fixed cylinder and two adjacent vents are fixedly sleeved with a clamping cylinder, the connecting frame is fixedly connected to an L-shaped frame, and a connecting hole is opened on the short arm of the L-shaped frame, and a cannula is fixedly sleeved inside the connecting hole.
[0013] Furthermore, any air pipe, connecting pipe, cannula and hose is equipped with a winding device, which includes a U-shaped plate, and the U-shaped plate is fixedly connected to the connecting rod, a winding drum is rotatably connected between the two arms of the U-shaped plate, and a through-hole is opened on the outer wall of the winding drum; the two arms of the U-shaped plate are respectively fixedly connected to a drive box and a pump box, and a drive motor is provided inside the drive box, the drive motor is fixedly connected to one end of the winding drum, and an air pump is provided inside the pump box.
[0014] Furthermore, a slide groove is provided on one side of each shell, and a fixing mechanism is provided on both the top and bottom sides of each shell, wherein the fixing mechanism includes:
[0015] Material toggling mechanism, its both ends are fixedly connected to the base plate, and the two ends of the guide rail are pivotally connected to each other with a bolt, and a bolt has a round shank to contact with the base plate, and the bolt has a round shank to contact with the base plate.
[0016] Furthermore, any pressing plate is internally connected to two guide rollers for rotation, and any metal belt passes around two adjacent guide rollers.
[0017] Furthermore, multiple conveying rollers are rotatably connected between the two ends of any shell, a motor box is fixedly connected to one end of any shell, a servo motor is provided inside any motor box, and the motor shaft of any servo motor is fixedly connected to the roller shaft of the adjacent conveying roller.
[0018] Compared with the prior art, the present invention has the following beneficial effects:
[0019] 1. The extruded aluminum profile is pulled by the clamping device on the machine body, and the internal cavity of the aluminum profile is filled with the cooling mechanism to cool the inside of the aluminum profile. Then, when the aluminum profile is sawed by the sawing device, the internal cavity of the aluminum profile is supported by the sleeve, and the outer wall of the aluminum profile is supported by the fixing mechanism, so that the aluminum profile is more stable when being cut, thereby improving the safety during sawing.
[0020] 2. The housing is fixed by using the push rods on the two adjacent connecting boxes to contact each other and the magnetic force generated by the electromagnet. Then, when the aluminum profile passes through the inside of the shell, the position of the housing can be adjusted by starting the electric push rod to align the housing with the aluminum profile cavity. Then, the aluminum profile is driven by the conveyor roller to naturally embed the housing into its own cavity, and the aluminum profile squeezes the push rod into the inside of the adjacent connecting box. Then, the clamping device pulls the aluminum profile to move, and the housing frame is retained inside the two shells due to magnetic attraction. During the movement of the aluminum profile, the two housings are easily adsorbed together due to friction, and the moving parts of the two housings are fed into and out of the two housings through two air pipes, so that the cold air circulates inside the two housings to cool the inner cavity of the aluminum profile passing through.
[0021] 3. When sawing, the air is input into the plug airbag to expand and fix it inside the aluminum profile. Then, the air is input into the connecting cylinder to make the piston guide rod push the two moved shells to the appropriate position. Then, the air is input into the fixed cylinder to make the piston push rod push the partition to separate the two shells. When sawing, the saw blade is located between the two shells, so that the two shells support the inner cavity of the aluminum profile.
[0022] 4. Before sawing, adjust the positions of multiple lifting plates in the pressure plate according to the shape of the outer wall of the aluminum profile to be cut, so that the lifting plates pull the adjacent metal strips to deform through the card strips, so that the metal strips adapt to the shape of the outer wall of the aluminum profile, and then use screws to push the positioning plate so that the positioning plate presses the multiple lifting plates to fix them. When sawing, the pressure plate is driven to move by the cylinder so that the metal strips are close to the outer wall of the aluminum profile to support the outer wall of the aluminum profile. When the aluminum profile is cut, the inner and outer walls of the aluminum profile near the cut are supported by the shell and the metal strip respectively, so that the aluminum profile itself is more stable when it is cut. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0024] Figure 2 It is a schematic diagram of the positional relationship among the cooling mechanism, the fixing mechanism and the housing in the present invention;
[0025] Figure 3 This is an exploded view of the cooling mechanism structure of the present invention;
[0026] Figure 4 It is a schematic diagram of the cover plate and the top rod structure of the present invention;
[0027] Figure 5 This is an exploded view of the fixing mechanism structure of the present invention;
[0028] Figure 6 This is an exploded view of the air intake mechanism structure of the present invention;
[0029] Figure 7 It is a structural schematic diagram of the winding device in the present invention.
[0030] In the figure: 100, machine body; 110, moving platform; 111, clamping device; 112, sawing device; 200, housing; 210, conveyor roller; 220, motor box; 300, cooling mechanism; 310, electric push rod; 320, connecting box; 321, cover plate; 322, ejector rod; 323, return spring; 330, housing; 331, partition; 332, connecting pipe; 400, air intake mechanism; 401, cartridge; 410, connecting rod; 411, fixing pipe; 420, connecting frame ; 421, air pipe; 430, connecting tube; 431, stuck airbag; 432, connecting tube; 440, L-shaped frame; 441, intubation tube; 450, fixing tube; 460, U-shaped plate; 461, winding drum; 462, drive box; 463, pump box; 500, fixing mechanism; 510, pressure plate; 511, guide plate; 512, guide roller; 520, slide plate; 521, tension spring; 530, metal belt; 531, clamping strip; 540, lifting plate; 550, positioning plate; 560, cylinder. DETAILED DESCRIPTION
[0031] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0032] See also Figure 1-Figure 7 In an embodiment of the present invention, an aluminum profile extrusion pulling and sawing device includes a body 100, and two movable platforms 110 are installed on the body 100, wherein one movable platform 110 is provided with a clamping device 111, and the other movable platform 110 is provided with a sawing device 112, including:
[0033] Two shells 200, two cooling mechanisms 300 for cooling the inside of tubular aluminum profiles, and an air intake mechanism 400 for delivering cold air to the inside of the cooling mechanism 300. The two shells 200 are fixedly connected to another movable platform 110. A circular hole is provided on one side of each shell 200. The two cooling mechanisms 300 are respectively located inside the two shells 200. The cooling mechanism 300 includes two electric push rods 310, and the two electric push rods 310 are respectively fixedly connected to the two ends of the adjacent shells 200. The movable end of each electric push rod 310 is fixedly connected to a connecting box 320. An electromagnet is provided inside each connecting box 320. A sleeve 330 is provided between the two connecting boxes 320. The air intake mechanism 400 is fixedly connected to a movable platform 110.
[0034] Specifically, the machine body 100 is a device for pulling the aluminum profile to move along the roller and cut it to a fixed length after the aluminum profile is extruded. It is a prior art, and the roller of the machine body 100 for holding the aluminum profile is provided with a torsion spring. The roller can be pressed and deflected when the clamping device 111 and the sawing device 112 pass by, and then automatically reset under the action of the torsion spring. The two moving platforms 110 can move by relying on the guide rails on the machine body 100, and the clamping device 111 can automatically clamp the end of the aluminum profile extruded by the extruder, and The rear clamping device 111 relies on a movable platform 110 to pull the aluminum profile for traction. After the aluminum profile is pulled to a certain length, another movable platform 110 can be started to drive the sawing device 112 to move synchronously with the aluminum profile and use the sawing device 112 to cut the aluminum profile to a fixed length during the movement. Then the two movable platforms 110 are reset, so that the clamping device 111 re-clamps the cut part of the aluminum profile for traction and traction. This is the use process of the aluminum profile traction and sawing equipment in the prior art.
[0035] In this embodiment, when the tubular aluminum profile enters between the two shells 200 along the roller on the body 100, two sleeves 330 are placed in the internal cavity of the aluminum profile. The sleeve 330 is made of a metal material that can be magnetically adsorbed. The specific shape of the sleeve 330 is adapted to the shape of the internal cavity of the aluminum profile. Then, the electromagnet is started to adsorb the sleeve 330 through the aluminum profile, so that when the aluminum profile is pulled and moved by the clamping device 111, the other movable platform 110 and the two shells 200 are in a stationary state, and the sleeve 330 is adsorbed by the electromagnet and slides inside the aluminum profile and is in a relatively stationary state with the shell 200. Then, the air intake mechanism 400 is used to inject cold air into the sleeve 330, so that the cold air enters the sleeve 330 to perform heat exchange with the interior of the aluminum profile passed by the sleeve 330, thereby improving the cooling effect on the interior of the aluminum profile, and the sleeve 330 can be used to support the inner cavity of the aluminum profile during sawing, thereby improving the safety of the sawing operation.
[0036] Example 1
[0037] like Figure 2-Figure 4 As shown, in this embodiment, two ventilation holes are provided at one end of any shell 330, wherein a connecting pipe 332 is fixedly connected between the two ventilation holes on a shell 330, and a partition 331 is fixedly sleeved on the middle part of a shell 330, and any connection box 320 has an open structure on one side, and a cover plate 321 is fixedly sleeved on one opening of any connection box 320. A plurality of sleeve holes are provided on one side of any cover plate 321, and a push rod 322 is slidably sleeved inside any sleeve hole, and a reset spring 323 is fixedly connected between any push rod 322 and the adjacent electromagnet.
[0038] In this embodiment, before the sleeve 330 enters the internal cavity of the aluminum profile, the sleeve 330 will be positioned by the multiple push rods 322 on the two adjacent connecting boxes 320. At this time, most of the push rods 322 are compressed into the adjacent connecting boxes 320, and the sleeve 330 is adsorbed by the magnetic force generated by the electromagnet through the return spring 323 and the push rod 322. Then, when the aluminum profile enters the shell 200, the two electric push rods 310 in any shell 200 can be activated by a one-to-two controller to move in different directions, thereby adjusting the position of the adjacent sleeves 330, so that the sleeve 330 is aligned with the internal cavity of the aluminum profile, so that the aluminum profile can squeeze the multiple push rods 322 out of the sleeve 330 in sequence when the sleeve 330 is embedded in itself. The iron is adsorbed through the air, and is adsorbed by the push rod 322 through the aluminum profile to maintain a small change in its own position. After the shell 330 completely enters the interior of the aluminum profile, the push rod 322 can rely on the return spring 323 to resist the outer wall of the aluminum profile to adsorb the shell 330 inside the aluminum profile. At the same time, since the distance between the electromagnet and the shell 330 is small, the electromagnet can exert a certain adsorption force on the aluminum profile through the air. In the process of aligning the aluminum profile cavity and the shell 330, the existing infrared sensor positioning can be used to accurately locate the position of the shell 330 and the aluminum profile cavity position. Then, the two shells 330 will naturally adsorb each other due to magnetism, so that the interiors of the two shells 330 are connected, and then after the cold air is injected into the shell 330, the shell 330 cools the inside of the aluminum profile it passes through.
[0039] like Figure 1 and Figure 6-Figure 7 As shown, in this embodiment, the air intake mechanism 400 includes:
[0040] A connecting rod 410 and a connecting frame 420, the connecting rod 410 is fixedly connected to a movable platform 110, and one side of the connecting rod 410 is fixedly connected to two fixed tubes 411, the connecting frame 420 is in contact with one end of the two fixed tubes 411, and two fixing holes are provided on the connecting frame 420, and an air pipe 421 is fixedly sleeved inside any fixing hole, and the two air pipes 421 are respectively located inside the two fixed tubes 411, a connecting cylinder 430 is provided on one side of the connecting frame 420, and a piston guide rod is slidably sleeved inside the connecting cylinder 430, one end of the piston guide rod is fixedly connected to the connecting frame 420, one end of the connecting cylinder 430 is fixedly connected to a connecting tube 432, and a plug airbag 431 is fixedly sleeved on the outer wall of the connecting cylinder 430, and the plug airbag 431 is fixedly connected to a hose, and a fixed cylinder 450 is fixedly sleeved at the center of the other housing 330, and fixed A piston push rod is slidably sleeved inside the cylinder 450, and a cartridge 401 is fixedly sleeved on one end of the fixed cylinder 450 and two adjacent vents, the connecting frame 420 is fixedly connected to the L-shaped frame 440, and the short arm of the L-shaped frame 440 is provided with a connecting hole, and a cannula 441 is fixedly sleeved inside the connecting hole, and any air pipe 421, connecting pipe 432, cannula 441 and hose are all equipped with a winding device, which includes a U-shaped plate 460, and the U-shaped plate 460 is fixedly connected to the connecting rod 410, and a winding drum 461 is rotatably connected between the two arms of the U-shaped plate 460, and a through-hole is provided on the outer wall of the winding drum 461; the two arms of the U-shaped plate 460 are respectively fixedly connected to a drive box 462 and a pump box 463, and a drive motor is provided inside the drive box 462, and the drive motor is fixedly connected to one end of the winding drum 461, and an air pump is provided inside the pump box 463.
[0041] During specific implementation, the fixed tube 411 is a hard tube, and the air pipe 421, the hose, the connecting tube 432, and the cannula 441 are all soft tubes made of rubber. The adjacent reel-up drum 461 can be driven to rotate by starting a driving motor to reel up the adjacent air pipe 421, the connecting tube 432, the cannula 441, or the hose. One end of the air pipe 421, the connecting tube 432, the cannula 441, and the hose are all rotatably connected to a threaded cylinder, and any threaded cylinder passes through the adjacent through-hole and is screwed together with the air inlet or outlet end of the adjacent air pump. The air pump can be used to deliver gas to the air pipe 421, the connecting tube 432, the cannula 441, and the hose.
[0042] In this embodiment, when the other shell 330 has not yet entered the interior of the aluminum profile, a movable platform 110 can be moved by the connecting rod 410 and the fixed tube 411, and the two air tubes 421 can be reeled in by starting the reeling device, so that the connecting frame 420 and the fixed tube 411 are in conflict, and then when the connecting frame 420 is driven to move by the fixed tube 411, the intubation tube 441 can be plugged into the cartridge 401 on the fixed tube 450, and the two air tubes 421 can be respectively plugged into the cartridges 401 of the two vents, while the other shell 330 is still in conflict with the ejector rod 322 and fixed by the adsorption of the electromagnet, so that the shell 330 is not easily 441 and the air pipe 421 are plugged in and moved, and then after the other shell 330 enters the interior of the aluminum profile, the aluminum profile is pulled by using a moving platform 110 and a clamping device 111, and the winding device is started to release the air pipe 421, the inserting pipe 441, the connecting pipe 432 and the hose to adapt to the movement of the aluminum profile, so that the two shells 330 are still inside the two shells 200, and then cold air can be injected into one air pipe 421 through an air pump and extracted from the other air pipe 421, so that the cold air circulates inside the two mutually adsorbed shells 330 through the connecting pipe 332, and when the aluminum profile needs to be cut, due to the magnetic When the two sleeves 330 are adsorbed, the movement of the aluminum profile may drive the two sleeves 330 to move partially toward the connecting rod 410 due to friction. Air is injected into the jam airbag 431 through the hose to make it expand and jam inside the aluminum profile for fixation. Then, air is injected into the connecting cylinder 430 through the connecting tube 432 to push the piston guide rod to move, so that the piston guide rod pushes the connecting frame 420 and the two sleeves 330 to move and change their positions. Then, air is injected into the fixing cylinder 450 through the insert tube 441 to push the piston push rod to contact the partition 331, so that the two sleeves 330 are separated to produce a gap and no longer adsorbed to each other. Then, the piston guide rod is retracted in the sawing device When sawing the aluminum profile, 112 uses two sleeves 330 to support the internal cavity of the aluminum profile. During sawing, the saw blade is located between the two sleeves 330. After sawing, the clamping device 111 is used to pull the cut aluminum profile out of the sleeve 330, and then the winding device is started to retract the cannula 441, the connecting pipe 432, the hose and the air pipe 421. After that, the clamping device 111 releases the cut aluminum profile, so that the cannula 441, the connecting pipe 432, the hose and the air pipe 421 are separated from the inside of the cut aluminum profile, and then a movable platform 110 is used to re-position the cannula 441 and the air pipe 421 and re-connect them to the cartridge 401.
[0043] like Figure 2 and Figure 5 As shown, in this embodiment, a slide groove is provided on one side of any housing 200, and a fixing mechanism 500 is provided on both the top and bottom sides of any housing 200. The fixing mechanism 500 includes:
[0044] The pressing plate 510, the slide plate 520, the metal strip 530 for fitting with the outer wall of the aluminum profile, a plurality of lifting plates 540 for adjusting the shape of the metal strip 530, the positioning plate 550 and a plurality of cylinders 560 for driving the pressing plate 510 to move. The pressing plate 510 is an open structure at one end. The pressing plate 510 is slidably connected to the inside of the adjacent slide groove, and a rectangular notch is provided on one side of the pressing plate 510. Two guide plates 511 are fixedly connected to the inside of the pressing plate 510, and a receiving groove is provided on an inner side wall of the pressing plate 510. The slide plate 520 is slidably connected to the inside of the pressing plate 510. A plurality of tension springs 521 are fixedly connected between the slide plate 520 and the other end of the pressing plate 510. The two ends of 530 are respectively fixedly connected to the two ends of the slide plate 520, and a clamping strip 531 is fixedly connected to one side of the metal belt 530. Multiple lifting plates 540 are located between the two guide plates 511. A clamping slot is provided at one end of any lifting plate 540. The clamping strip 531 is slidably clamped inside the adjacent clamping slot. The positioning plate 550 is movably sleeved inside the storage groove. A plurality of threaded holes are provided on an inner wall of the storage groove. The movable ends of multiple cylinders 560 are fixedly connected to the other end of the pressure plate 510. Any cylinder 560 is fixedly connected to the adjacent shell 200. Two guide rollers 512 are rotatably connected to the interior of any pressure plate 510, and any metal belt 530 bypasses the two adjacent guide rollers 512.
[0045] In a specific implementation, the metal strip 530 is thin and strip-shaped and can be bent. Before the fixing mechanism 500 is used, multiple lifting plates 540 are manually moved according to the shape of the aluminum profile, so that the multiple lifting plates 540 pull the clamping strip 531 and the metal strip 530 through the bayonet, so that the bottom of the metal strip 530 forms a shape that fits the outer wall of the aluminum profile, and then screws are screwed into the threaded holes to contact the adjacent positioning plates 550, so that the positioning plates 550 press the adjacent lifting plates 540 to fix them. When the two moving platforms 110 move synchronously, When the sawing device 112 is activated to saw, the cylinder 560 is started to move through the one-to-two controller, so that the two pressure plates 510 on the same shell 200 move toward each other to clamp the aluminum profile, and the metal belt 530 is pressed against the outer wall of the aluminum profile. The sawing device 112 is then used to saw the aluminum profile, so that when the aluminum profile is sawed, the inner cavity is filled with the shell 330, and the outer wall is resisted by the metal belt 530 and the lifting plate 540, so that the aluminum profile itself is more stable when being cut and is safer when sawing.
[0046] In this embodiment, by removing one air pipe 421, cold air can enter the interior of the shell 330 and then be discharged from the vent hole of the other shell 330 where the air pipe 421 is not inserted, so that the air flow is naturally discharged toward the clamping device 111 through the internal cavity of the aluminum profile, thereby increasing the air circulation inside the aluminum profile and improving the heat dissipation effect inside the aluminum profile.
[0047] Example 2
[0048] On the basis of the first embodiment, the conveying rollers 210 are provided to facilitate the movement of the aluminum profile.
[0049] like Figure 1-2 As shown, in this embodiment, a plurality of conveying rollers 210 are rotatably connected between the two ends inside any shell 200, a motor box 220 is fixedly connected to one end of any shell 200, a servo motor is provided inside any motor box 220, and the motor shaft of any servo motor is fixedly connected to the roller shaft of the adjacent conveying roller 210.
[0050] During specific implementation, the servo motor is started to drive the conveying roller 210 to rotate, so that when the aluminum profile falls on the conveying roller 210 , it can be driven by the conveying roller 210 to pass through the interior of the housing 200 .
[0051] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.
[0052] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.
Claims
1. An aluminum profile extrusion traction sawing device, comprising a machine body (100), and two moving platforms (110) are installed on the machine body (100), wherein: A clamping device (111) is provided on one movable platform (110), and a sawing device (112) is provided on the other movable platform (110), and the invention is characterized by comprising: The two shells (200) are both fixedly connected to another mobile platform (110), and a circular hole is opened on one side of each shell (200); Two cooling mechanisms (300) are respectively located inside the two housings (200), the cooling mechanisms (300) comprising two electric push rods (310), and the two electric push rods (310) are respectively fixedly connected to the two ends inside the adjacent housings (200), the movable end of each electric push rod (310) is fixedly connected to a connection box (320), an electromagnet is provided inside each connection box (320), and a sleeve (330) is provided between the two connection boxes (320); The air intake mechanism (400) is fixedly connected to a movable platform (110).
2. The aluminum profile extrusion traction sawing equipment according to claim 1, characterized in that: Two vent holes are provided at one end of each shell (330), wherein a connecting pipe (332) is fixedly connected between the two vent holes on one shell (330), and a partition (331) is fixedly sleeved on the middle of one shell (330).
3. The aluminum profile extrusion traction sawing equipment according to claim 1, characterized in that: A plurality of conveying rollers (210) are rotatably connected between the two ends of any housing (200), a motor box (220) is fixedly connected to one end of any housing (200), a servo motor is provided inside any motor box (220), and a motor shaft of any servo motor is fixedly connected to the roller shaft of an adjacent conveying roller (210).
4. The aluminum profile extrusion traction sawing equipment according to claim 1, characterized in that: Each connection box (320) has an open structure on one side. A cover plate (321) is fixedly sleeved on the opening on one side of each connection box (320). A plurality of sleeve holes are provided on one side of each cover plate (321). A push rod (322) is slidably sleeved inside each sleeve hole. A reset spring (323) is fixedly connected between each push rod (322) and an adjacent electromagnet.
5. The aluminum profile extrusion traction sawing equipment according to claim 2, characterized in that: The air intake mechanism (400) comprises: A connecting rod (410) is fixedly connected to a movable platform (110), and one side of the connecting rod (410) is fixedly connected to two fixed tubes (411); The connecting frame (420) contacts one end of the two fixed tubes (411). Two fixing holes are provided on the connecting frame (420). An air pipe (421) is fixedly sleeved inside each fixing hole, and the two air pipes (421) are respectively located inside the two fixed tubes (411).
6. The aluminum profile extrusion, traction and sawing equipment according to claim 5, characterized in that: A connecting tube (430) is provided on one side of the connecting frame (420), and a piston guide rod is slidably sleeved inside the connecting tube (430), one end of the piston guide rod is fixedly connected to the connecting frame (420), one end of the connecting tube (430) is fixedly connected to a connecting pipe (432), and a blocking airbag (431) is fixedly sleeved on the outer wall of the connecting tube (430), and the blocking airbag (431) is fixedly connected to a hose.
7. The aluminum profile extrusion, traction and sawing equipment according to claim 6, characterized in that: A fixed cylinder (450) is fixedly sleeved at the center of the other sleeve (330), and a piston push rod is slidably sleeved inside the fixed cylinder (450), and a clamping cylinder (401) is fixedly sleeved at one end of the fixed cylinder (450) and two adjacent vent holes, and the connecting frame (420) is fixedly connected to the L-shaped frame (440), and a connecting hole is opened on the short arm of the L-shaped frame (440), and a cannula (441) is fixedly sleeved inside the connecting hole.
8. The aluminum profile extrusion, traction and sawing equipment according to claim 7, characterized in that: Any trachea (421), connecting tube (432), cannula (441) and hose are equipped with a winding device, the winding device includes a U-shaped plate (460), and the U-shaped plate (460) is fixedly connected to the connecting rod (410), a winding drum (461) is rotatably connected between the two arms of the U-shaped plate (460), and a through hole is opened on the outer wall of the winding drum (461); the two arms of the U-shaped plate (460) are respectively fixedly connected to a drive box (462) and a pump box (463), and a drive motor is provided inside the drive box (462), the drive motor is fixedly connected to one end of the winding drum (461), and an air pump is provided inside the pump box (463).
9. The aluminum profile extrusion traction sawing equipment according to claim 1, characterized in that: A slide groove is provided on one side of any shell (200), and a fixing mechanism (500) is provided on both the top and bottom sides of any shell (200), wherein the fixing mechanism (500) includes: The pressing plate (510) is an open structure at one end, the pressing plate (510) is slidably engaged in the adjacent chute, and a rectangular notch is provided on one side of the pressing plate (510), two guide plates (511) are fixedly connected to the inside of the pressing plate (510), and a receiving groove is provided on an inner side wall of the pressing plate (510); A slide plate (520) is slidably engaged with the interior of the pressure plate (510), and a plurality of tension springs (521) are fixedly connected between the slide plate (520) and the other end of the interior of the pressure plate (510); A metal belt (530), both ends of which are fixedly connected to both ends of the slide plate (520), and a clamping strip (531) is fixedly connected to one side of the metal belt (530); A plurality of lifting plates (540) are located between the two guide plates (511), and a latch is provided at one end of each lifting plate (540), and the latching strip (531) is slidably latched inside an adjacent latch; A positioning plate (550) is movably sleeved inside the receiving groove, and a plurality of threaded holes are formed on an inner wall of the receiving groove; The movable ends of the plurality of cylinders (560) are fixedly connected to the other end of the pressure plate (510), and any cylinder (560) is fixedly connected to the adjacent housing (200).
10. The aluminum profile extrusion, traction and sawing equipment according to claim 9, characterized in that: Two guide rollers (512) are rotatably connected inside any pressing plate (510), and any metal belt (530) passes around two adjacent guide rollers (512).