Efficient cutting equipment for aluminum alloy thin-wall part production

By using a composite motion cutting mechanism and a dynamic cooling system, the problems of single cutting path and uneven cooling in the machining of thin-walled aluminum alloy parts have been solved, achieving efficient and stable cutting of thin-walled aluminum alloy parts and improving machining quality and precision.

CN121104189APending Publication Date: 2025-12-12KUNSHAN JINGZHENGHANG IND EQUIP CO LTD
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Patent Information

Application Number
CN202511586682.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-02
Publication Date
2025-12-12

AI Technical Summary

Technical Problem

Traditional cutting equipment suffers from problems such as a single cutting path, uneven cooling, and rigid cutting parameters when machining thin-walled aluminum alloy parts. This leads to concentrated cutting loads, high risk of thermal deformation, and severe tool wear, affecting machining quality and accuracy.

Method used

The cutting mechanism employs a compound motion mode, combined with a dynamically adjustable cooling and monitoring system. Through the rotation of the dual cutting discs and circumferential feed, it achieves uniform distribution of cutting load and real-time cooling. An integrated infrared thermometer and pressure sensor provide feedback adjustment to ensure processing stability.

Benefits of technology

It significantly improves the processing efficiency and quality of thin-walled aluminum alloy parts, reduces the risk of mechanical deformation and tool damage, and achieves high-precision cutting results.

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Abstract

The invention discloses efficient cutting equipment for aluminum alloy thin-wall part production, and belongs to the technical field of cutting equipment.The efficient cutting equipment comprises a base, a cutting mechanism, a positioning mechanism and a cooling mechanism are arranged at the top of the base, and the cutting mechanism comprises a connecting cylinder, a rotating cylinder, two mounting frames and two cutting discs; and a transverse shaft and a vertical shaft are rotationally mounted in the mounting frame. Through the synergistic effect of the cutting mechanism, the positioning mechanism and the cooling mechanism, the machining efficiency and quality are remarkably improved, the composite motion mode of rotation and circumferential feeding of the double cutting discs is adopted, the radial feeding speed which is dynamically adjusted is combined, cutting loads are evenly distributed, and vibration and stress concentration are reduced; the cooling mechanism realizes precise cooling through an injection system synchronously tracking the cutting position, and thermal deformation and oxidation are inhibited; an infrared thermometer and a pressure sensor are integrated to monitor the temperature and the cutting resistance of the cutter in real time, the rotating speed and the feeding amount are adjusted in a self-adaptive mode based on feedback signals, and overload and overheating are avoided.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of cutting equipment, and in particular to a high-efficiency cutting equipment for aluminum alloy thin-walled part production. BACKGROUND

[0002] With the rapid development of aerospace, electronic equipment and automobile industry, aluminum alloy thin-walled parts are widely used due to their lightweight and high strength characteristics. However, there are significant challenges in the cutting process of aluminum alloy thin-walled parts: the low structural rigidity of aluminum alloy thin-walled parts easily leads to cutting vibration and deformation, the high thermal conductivity is beneficial to heat dissipation, but the local temperature rise will still cause thermal stress deformation, affecting the dimensional accuracy; at the same time, the dynamic load fluctuation in the cutting process easily causes tool wear, surface quality degradation and even rupture.

[0003] The traditional cutting equipment has the following limitations when machining such workpieces: 1. Single motion trajectory: the traditional tool only relies on single rotation or linear feed, and the cutting path lacks composite motion design, resulting in concentrated cutting load and uneven surface quality; 2. Insufficient efficiency of cooling system: fixed cooling nozzles cannot track dynamic cutting positions in real time, resulting in uneven coverage of cooling liquid and local area heat dissipation lag, which aggravates the risk of thermal deformation; 3. Cutting parameter rigidity: lack of real-time feedback and adjustment of cutting resistance and temperature, when the material hardness fluctuates or the tool wears, the workpiece may be deformed or the tool may be broken due to sudden changes in feed speed or cutting force; therefore, we propose a high-efficiency cutting equipment for aluminum alloy thin-walled part production to solve this problem. SUMMARY

[0004] The purpose of the present application is to provide a high-efficiency cutting equipment for aluminum alloy thin-walled part production to solve the problems raised in the background.

[0005] In order to achieve the above purpose, the present application adopts the following technical scheme: A high-efficiency cutting equipment for aluminum alloy thin-walled part production, comprising: a base, a cutting mechanism, a positioning mechanism and a cooling mechanism are arranged on the top of the base, the cutting mechanism comprises: a connecting cylinder, a rotating cylinder, two mounting frames and two cutting discs, a horizontal shaft and a vertical shaft are rotatably installed in the mounting frame, the cutting disc is fixedly installed on the outside of the horizontal shaft, a horizontal slot is formed on one side of the mounting frame, a pressure sensor is fixedly installed in the horizontal slot, a horizontal plate is slidably installed in the horizontal slot, a rotating frame is fixedly sleeved on the outside of the connecting cylinder, the horizontal plate is slidably sleeved on the outside of the rotating frame, and the rotating cylinder is rotatably sleeved on the outside of the connecting cylinder; The cooling mechanism comprises a fixed cylinder, a vertical pipe and two cooling nozzles, one end of the cooling nozzles is slidingly installed in the vertical pipe, one side of the vertical pipe is communicated with a horizontal pipe, and one end of the horizontal pipe is rotatably installed in the fixed cylinder.

[0006] Preferably, one end of the horizontal shaft is fixedly installed with a first driven bevel gear, one end of the vertical shaft is fixedly installed with a first driving bevel gear, the first driving bevel gear is meshed with the corresponding first driven bevel gear, and the other end of the vertical shaft is fixedly installed with a rotating plate. The outer side of the rotating cylinder is fixedly installed with a second driving bevel gear, the top and bottom of the second driving bevel gear are meshed with second driven bevel gears, the rotating shaft is fixedly installed in the second driven bevel gears, the rotating shaft is rotatably installed in the rotating frame, the other end of the rotating shaft is fixedly installed with a U-shaped rod, and the rotating plate is slidingly sleeved on the outer side of the U-shaped rod.

[0007] Preferably, the top and bottom of the rotating frame are rotatably installed with adjusting screws, one end of the adjusting screw is fixedly installed with a third driven bevel gear, the outer side of the fixed cylinder is fixedly installed with a third driving bevel gear, the third driving bevel gear is meshed with the third driven bevel gear, the horizontal plate is threadedly sleeved on the outer side of the corresponding adjusting screw, one end of the pressure sensor is fixedly installed on the inner wall of the horizontal groove, the other end of the pressure sensor is fixedly connected with the corresponding horizontal plate, the horizontal plate is fixedly sleeved on the outer side of the corresponding cooling nozzle, one side of the horizontal plate is fixedly installed with an infrared temperature measuring instrument, and one side of the rotating frame is fixedly installed with a baffle disc.

[0008] Preferably, the top of the base is fixedly installed with a fixed plate, one side of the fixed plate is fixedly installed with a first driving motor and a second driving motor, the output end of the first driving motor is fixedly installed with a first driving gear, the outer side of the connecting cylinder is fixedly sleeved with a first driven gear, the first driving gear is meshed with the first driven gear, the output shaft of the second driving motor is fixedly installed with a second driving gear, the outer side of the rotating cylinder is fixedly installed with a second driven gear, and the second driving gear is meshed with the second driven gear.

[0009] Preferably, the positioning mechanism comprises a fixed frame and two servo motors, the servo motors are fixedly installed on the front side of the fixed frame, the fixed frame is fixedly installed on the top of the base, a bidirectional screw rod is fixedly installed on the output shaft of the servo motor, the bidirectional screw rod is rotatably installed in the fixed frame, two moving seats are threadedly sleeved on the outer side of the bidirectional screw rod, the moving seats are slidingly sleeved on the outer side of the fixed frame, a gas cylinder is fixedly installed on the inner side of the moving seat, and a positioning seat is fixedly installed on the output end of the gas cylinder.

[0010] Preferably, the top of the base is fixedly provided with a controller and a vertical plate, the vertical plate is rotatably sleeved on the outside of the connecting barrel, and the controller is signal-connected with the first driving motor, the second driving motor, the servo motor, the infrared temperature measuring instrument and the pressure sensor.

[0011] The present application has the advantages that: In the present application, the aluminum alloy thin-walled part production high-efficiency cutting equipment is characterized in that the aluminum alloy thin-walled part is placed in the fixed frame, then the two servo motors are started to drive the two bidirectional screws to rotate, the two bidirectional screws drive the two moving seats to move close to each other through thread cooperation, and drive the positioning seat to move forward and backward, and the cylinder is started to drive the positioning seat to move up and down, so that the positioning seat is abutted on the outside of the aluminum alloy thin-walled part to realize positioning. In the present application, the aluminum alloy thin-walled part production high-efficiency cutting equipment is characterized in that the first driving motor and the second driving motor are started, the second driving motor drives the rotating drum to rotate through the meshing of the second driving gear and the second driven gear, the rotating drum drives the two rotating shafts to rotate through the meshing of the third driving bevel gear and the two third driven bevel gears, the rotating shaft drives the vertical shaft to rotate through the cooperation of the U-shaped rod and the rotating plate, the vertical shaft drives the horizontal shaft and the cutting disc to rotate through the meshing of the first driving bevel gear and the first driven bevel gear, the connecting barrel is driven to rotate through the meshing of the first driving gear and the first driven gear, the connecting barrel drives the rotating frame to rotate synchronously, thereby driving the two cutting discs to rotate and perform circumferential motion around the connecting barrel, at the same time, the rotating frame drives the two second driven bevel gears to perform circumferential motion, the second driving bevel gear is fixed due to being connected with the connecting barrel, the second driven bevel gear performs self-rotation through the meshing with the second driving bevel gear while performing circumferential motion, and drives the two adjusting screws to rotate, the adjusting screws drive the two horizontal plates to move close to each other through thread cooperation with the horizontal plate, the horizontal plate drives the two mounting frames to move close to each other through the pressure sensor, thereby making the two cutting discs move close to each other, at the same time, the vertical shaft and the rotating shaft can be synchronously rotated through the sliding cooperation of the rotating plate and the U-shaped rod, and the output rotation speed of the second driving motor is set to be much greater than the output rotation speed of the first driving motor, thereby making the self-rotation speed of the cutting disc much greater than the speed of circumferential motion, and due to the transmission of the adjusting screw, the speed of the two cutting discs moving close to each other is much smaller than the speed of the circumferential motion of the cutting disc, thereby making the cutting feeding direction present a circular shape and gradually reduce, which can greatly make the cutting amount and friction effect of the aluminum alloy thin-walled part more uniform and stable, on the other hand, at the same time, the heat dissipation effect in the cutting process is greatly improved; In the application, the high-efficiency cutting equipment for aluminum alloy thin-walled part production realizes cooling by guiding the cooling water into the fixed cylinder through the water inlet pipe, then into the vertical pipe through the cross pipe, and then sprayed from the two cooling nozzles and sprayed to the cutting position, so as to prevent the aluminum alloy thin-walled part from being deformed and oxidized by heat, and the vertical pipe rotates with the rotating frame, and the two cooling nozzles rotate with the cross plate while moving close to each other, so that the spraying position of the cooling water is aligned with the cutting position, and the cooling effect is improved. In the application, the high-efficiency cutting equipment for aluminum alloy thin-walled part production drives the infrared temperature detector to rotate around the circumference by the cross plate, and the infrared temperature detector monitors the temperature of the cutting position, and when the temperature is higher than the preset value, the output speed of the first driving motor is reduced, so that the feeding speed of the cutting disc is reduced, and deformation or damage of the cutting tool caused by overheating is avoided. In the application, the high-efficiency cutting equipment for aluminum alloy thin-walled part production can transmit the resistance to the mounting frame through the horizontal shaft when the resistance is encountered during the feeding process of the cutting disc, so as to extrude the pressure sensor, and the pressure sensor monitors the feeding resistance, and when the feeding resistance is detected to be large, the output speed of the first driving motor is reduced and the speed of the second driving motor is increased by the controller, so that the speed of the cutting disc rotating around the circumference is increased and the speed of the cutting disc feeding radially is reduced, so as to reduce the resistance received by the cutting disc, further protect the cutting disc from being damaged, and avoid deformation of the aluminum alloy thin-walled part. In the application, the high-efficiency cutting equipment for aluminum alloy thin-walled part production improves the processing efficiency and quality by the synergistic effect of the cutting mechanism, the positioning mechanism and the cooling mechanism, adopts the composite motion mode of double cutting disc rotation and circumferential feeding, combines the dynamically adjusted radial feeding speed, makes the cutting load distribute uniformly, reduces vibration and stress concentration, realizes accurate cooling by the spraying system of the cooling mechanism which synchronously tracks the cutting position, inhibits thermal deformation and oxidation, integrates the infrared temperature detector and the pressure sensor to monitor the cutting tool temperature and the cutting resistance in real time, adjusts the speed and the feeding amount based on the feedback signal, avoids overload and overheating, and ensures the stable clamping of the thin-walled part by the multi-directional adaptive clamping of the positioning mechanism, reduces the risk of mechanical deformation. The equipment realizes high-precision, low-deformation and high-efficiency processing of the aluminum alloy thin-walled part by closed-loop control and composite motion synergy, prolongs the service life of the cutting tool, and improves the consistency of the finished product. BRIEF DESCRIPTION OF DRAWINGS

[0012] Figure 1 A perspective structural schematic view of the high-efficiency cutting equipment for aluminum alloy thin-walled part production is provided. Figure 2 Another perspective structural schematic view of the high-efficiency cutting equipment for aluminum alloy thin-walled part production is provided. Figure 3A perspective view of the cutting mechanism and the cooling mechanism according to the present application; Figure 4 A sectional view of the cutting mechanism and the cooling mechanism according to the present application; Figure 5 A perspective view of the cutting mechanism according to the present application; Figure 4 A perspective view of the cutting mechanism according to the present application; Figure 6 Figure 4 A perspective view of the cutting mechanism according to the present application; Figure 7 A perspective view of the cutting mechanism according to the present application; Figure 4 A perspective view of the cutting mechanism according to the present application; Figure 8 A perspective view of the cutting mechanism according to the present application; Figure 9 A sectional view of the cooling mechanism according to the present application; Figure 10 A sectional view of the cooling mechanism according to the present application; Figure 11 A perspective view of the positioning mechanism according to the present application.

[0013] In the figure: 1, base; 101, fixed plate; 102, vertical plate; 2, positioning mechanism; 201, fixed frame; 202, moving seat; 203, air cylinder; 204, positioning seat; 205, bidirectional screw rod; 206, servo motor; 3, cutting disc; 301, horizontal shaft; 302, first driven bevel gear; 4, mounting frame; 401, pressure sensor; 402, horizontal plate; 403, adjusting screw; 404, infrared temperature measuring instrument; 405, second driven bevel gear; 5, vertical shaft; 501, first driving bevel gear; 502, rotating plate; 6, rotating frame; 601, baffle disc; 7, U-shaped rod; 701, third driven bevel gear; 702, rotating shaft; 8, fixed cylinder; 801, horizontal pipe; 802, vertical pipe; 803, cooling nozzle; 804, second driving bevel gear; 805, water inlet pipe; 806, first driven gear; 807, first driving gear; 808, first driving motor; 809, connecting cylinder; 9, rotating cylinder; 901, second driven gear; 902, second driving gear; 903, second driving motor; 904, third driving bevel gear; 10, controller. DETAILED DESCRIPTION

[0014] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, but not all the embodiments of the present application.

[0015] Reference Figures 1-11 ​The utility model provides a kind of high-efficiency cutting equipment for aluminum alloy thin-walled part production, including: base 1, the top of base 1 is provided with cutting mechanism, positioning mechanism 2 and cooling mechanism, cutting mechanism includes: connecting cylinder 809, rotating cylinder 9, two mounting frames 4 and two cutting discs 3, horizontal shaft 301 and vertical shaft 5 are rotatably installed in mounting frame 4, cutting disc 3 is fixedly installed on the outside of horizontal shaft 301, one side of mounting frame 4 is provided with transverse slot, pressure sensor 401 is fixedly installed in transverse slot, horizontal plate 402 is slidably installed in transverse slot, rotating frame 6 is fixedly sleeved on the outside of connecting cylinder 809, horizontal plate 402 is slidably sleeved on the outside of rotating frame 6, rotating cylinder 9 is rotatably sleeved on the outside of connecting cylinder 809; Cooling mechanism includes: fixed cylinder 8, vertical pipe 802 and two cooling nozzles 803, one end of cooling nozzle 803 is slidably installed in vertical pipe 802, one side of vertical pipe 802 is communicated with horizontal pipe 801, horizontal pipe 801 is rotatably installed on one end of fixed cylinder 8.

[0016] In the embodiment, one end of horizontal shaft 301 is fixedly installed with first driven bevel gear 302, one end of vertical shaft 5 is fixedly installed with first driving bevel gear 501, first driving bevel gear 501 is engaged with corresponding first driven bevel gear 302, the other end of vertical shaft 5 is fixedly installed with rotating plate 502; Second driving bevel gear 804 is fixedly installed on the outside of rotating cylinder 9, second driven bevel gear 405 is engaged with the top and bottom of second driving bevel gear 804, rotating shaft 702 is fixedly installed in second driven bevel gear 405, rotating shaft 702 is rotatably installed in rotating frame 6, U-shaped rod 7 is fixedly installed on the other end of rotating shaft 702, rotating plate 502 is slidably sleeved on the outside of U-shaped rod 7.

[0017] In the embodiment, adjusting screw 403 is rotatably installed on the top and bottom of rotating frame 6, third driven bevel gear 701 is fixedly installed on one end of adjusting screw 403, third driving bevel gear 904 is fixedly installed on the outside of fixed cylinder 8, third driving bevel gear 904 is engaged with third driven bevel gear 701, horizontal plate 402 is threadedly sleeved on the outside of corresponding adjusting screw 403, one end of pressure sensor 401 is fixedly installed on the inner wall of transverse slot, the other end of pressure sensor 401 is fixedly connected with corresponding horizontal plate 402, horizontal plate 402 is fixedly sleeved on the outside of corresponding cooling nozzle 803, infrared temperature measuring instrument 404 is fixedly installed on one side of horizontal plate 402, baffle disc 601 is fixedly installed on one side of rotating frame 6.

[0018] The top of the base 1 is fixedly provided with a fixed plate 101, one side of the fixed plate 101 is fixedly provided with a first driving motor 808 and a second driving motor 903, the output end of the first driving motor 808 is fixedly provided with a first driving gear 807, the outer side of the connecting barrel 809 is fixedly sleeved with a first driven gear 806, the first driving gear 807 and the first driven gear 806 are mutually engaged, the output shaft of the second driving motor 903 is fixedly provided with a second driving gear 902, the outer side of the rotating barrel 9 is fixedly provided with a second driven gear 901, and the second driving gear 902 and the second driven gear 901 are mutually engaged.

[0019] In the embodiment, the positioning mechanism 2 comprises a fixed frame 201 and two servo motors 206, the servo motors 206 are fixedly installed on the front side of the fixed frame 201, the fixed frame 201 is fixedly installed on the top of the base 1, a bidirectional screw rod 205 is fixedly installed on the output shaft of the servo motor 206, the bidirectional screw rod 205 is rotatably installed in the fixed frame 201, two moving seats 202 are threadedly sleeved on the outer side of the bidirectional screw rod 205, the moving seats 202 are slidably sleeved on the outer side of the fixed frame 201, a cylinder 203 is fixedly installed on the inner side of the moving seat 202, a positioning seat 204 is fixedly installed on the output end of the cylinder 203, a controller 10 and a vertical plate 102 are fixedly installed on the top of the base 1, the vertical plate 102 is rotatably sleeved on the outer side of the connecting barrel 809, the controller 10 is signal connected with the first driving motor 808, the second driving motor 903, the servo motor 206, the infrared temperature measuring instrument 404 and the pressure sensor 401, and one end of the fixed barrel 8 is communicated with a water inlet pipe 805, so as to facilitate cooling.

[0020] In the embodiment, the aluminum alloy thin-walled part is placed in the fixed frame 201, and then the two servo motors 206 are started to drive the two bidirectional screws 205 to rotate. The bidirectional screws 205 drive the two moving seats 202 to move close to each other through the thread cooperation with the two moving seats 202, and drive the positioning seat 204 to move forward and backward, and start the air cylinder 203 to drive the positioning seat 204 to move up and down, so that the positioning seat 204 abuts against the outside of the aluminum alloy thin-walled part to realize positioning. The first driving motor 808 and the second driving motor 903 are started, the second driving motor 903 drives the rotating drum 9 to rotate through the meshing of the second driving gear 902 and the second driven gear 901, the rotating drum 9 drives the two rotating shafts 702 to rotate through the meshing of the third driving bevel gear 904 and the two third driven bevel gears 701, the rotating shaft 702 drives the vertical shaft 5 to rotate through the cooperation of the U-shaped rod 7 and the rotating plate 502, the vertical shaft 5 drives the horizontal shaft 301 and the cutting disc 3 to rotate through the meshing of the first driving bevel gear 501 and the first driven bevel gear 302, the first driving motor 808 drives the connecting cylinder 809 to rotate through the meshing of the first driving gear 807 and the first driven gear 806, the connecting cylinder 809 drives the rotating frame 6 to rotate synchronously, thereby driving the two cutting discs 3 to rotate and simultaneously perform circular motion around the connecting cylinder 809. At the same time, the rotating frame 6 drives the two second driven bevel gears 405 to perform circular motion, the second driving bevel gear 804 remains fixed due to being connected with the connecting cylinder 809, the second driven bevel gear 405 performs rotation at the same time of performing circular motion through the meshing with the second driving bevel gear 804, and drives the two adjusting screws 403 to rotate. The adjusting screw 403 drives the two horizontal plates 402 to move close to each other through the thread cooperation with the horizontal plate 402, the horizontal plate 402 drives the two mounting frames 4 to move close to each other through the pressure sensor 401, so that the two cutting discs 3 move close to each other. At the same time, synchronous rotation of the vertical shaft 5 and the rotating shaft 702 can be realized through the sliding cooperation of the rotating plate 502 and the U-shaped rod 7, and the output rotation speed of the second driving motor 903 is set to be much greater than the output rotation speed of the first driving motor 808, so that the rotation speed of the cutting disc 3 is much greater than the speed of performing circular motion, and the speed of the two cutting discs 3 moving close to each other is much smaller than the speed of the cutting disc 3 performing circular motion due to the transmission of the adjusting screw 403, so that the cutting feed direction presents a circular shape effect and a gradually reduced change of the circular shape, which can greatly make the cutting amount and friction effect of the aluminum alloy thin-walled part more uniform and stable, and on the other hand, the heat dissipation effect in the cutting process is greatly improved; The cooling water is introduced into the fixed cylinder 8 through the water inlet pipe 805, then introduced into the vertical pipe 802 through the horizontal pipe 801, and then sprayed from the two cooling nozzles 803 and sprayed to the cutting position to achieve cooling, so as to prevent the heated deformation and oxidation of the aluminum alloy thin-walled part, and at the same time, the vertical pipe 802 rotates with the rotating frame 6, the two cooling nozzles 803 rotate with the horizontal plate 402 and approach each other, so that the spraying position of the cooling water is aligned with the cutting position, the cooling effect is improved, the infrared temperature detector 404 rotates with the horizontal plate 402, the infrared temperature detector 404 monitors the temperature of the cutting position, when the temperature is higher than the preset value, the output speed of the first driving motor 808 is reduced to reduce the feeding speed of the cutting disc 3, so as to avoid deformation or damage of the cutting tool caused by overheating; When the cutting disc 3 encounters resistance during feeding, the resistance can be transmitted to the mounting frame 4 through the horizontal shaft 301, so as to press the pressure sensor 401, and at the same time, the pressure sensor 401 monitors the feeding resistance, when the feeding resistance is detected to be increased, the output speed of the first driving motor 808 is reduced and the speed of the second driving motor 903 is increased, so that the rotating speed of the cutting disc 3 is increased, the circumferential motion speed is reduced, and the radial feeding speed is reduced, so as to reduce the resistance of the cutting disc 3, further protect the cutting disc 3 from being damaged, and avoid deformation of the aluminum alloy thin-walled part.

[0021] The above describes in detail the high-efficiency cutting device for aluminum alloy thin-walled part production provided by the present application. The principles and implementation modes of the present application are described by applying specific embodiments, and the above embodiments are only used to help understand the method of the present application and its core idea. It should be pointed out that for ordinary skilled persons in the technical field, some improvements and modifications can be made to the present application without departing from the principles of the present application, and these improvements and modifications also fall within the protection scope of the claims of the present application.

Claims

1. A high-efficiency cutting equipment for producing thin-walled aluminum alloy parts, characterized in that, include: The base (1) is provided with a cutting mechanism, a positioning mechanism (2) and a cooling mechanism on its top. The cutting mechanism includes a connecting cylinder (809), a rotating cylinder (9), two mounting brackets (4) and two cutting discs (3). A horizontal shaft (301) and a vertical shaft (5) are rotatably installed in the mounting bracket (4). The cutting discs (3) are fixedly installed on the outside of the horizontal shaft (301). A transverse groove is provided on one side of the mounting bracket (4). A pressure sensor (401) is fixedly installed in the transverse groove. A horizontal plate (402) is slidably installed in the transverse groove. A rotating bracket (6) is fixedly sleeved on the outside of the connecting cylinder (809). The horizontal plate (402) is slidably sleeved on the outside of the rotating bracket (6). The rotating cylinder (9) is rotatably sleeved on the outside of the connecting cylinder (809). The cooling mechanism includes a fixed cylinder (8), a vertical pipe (802) and two cooling nozzles (803). One end of the cooling nozzle (803) is slidably installed inside the vertical pipe (802). A horizontal pipe (801) is connected to one side of the vertical pipe (802). The horizontal pipe (801) is rotatably installed at one end of the fixed cylinder (8).

2. The high-efficiency cutting equipment for producing thin-walled aluminum alloy parts according to claim 1, characterized in that, A first driven bevel gear (302) is fixedly installed at one end of the horizontal shaft (301), and a first driving bevel gear (501) is fixedly installed at one end of the vertical shaft (5). The first driving bevel gear (501) meshes with the corresponding first driven bevel gear (302). A rotating plate (502) is fixedly installed at the other end of the vertical shaft (5). A second driving bevel gear (804) is fixedly installed on the outer side of the rotating drum (9). A second driven bevel gear (405) meshes with the top and bottom of the second driving bevel gear (804). A rotating shaft (702) is fixedly installed inside the second driven bevel gear (405). The rotating shaft (702) is rotatably installed in the rotating frame (6). A U-shaped rod (7) is fixedly installed at the other end of the rotating shaft (702). The rotating plate (502) is slidably sleeved on the outer side of the U-shaped rod (7).

3. The high-efficiency cutting equipment for producing thin-walled aluminum alloy parts according to claim 1, characterized in that, The top and bottom of the rotating frame (6) are rotatably mounted with adjusting screws (403). One end of the adjusting screw (403) is fixedly mounted with a third driven bevel gear (701). The outside of the fixed cylinder (8) is fixedly mounted with a third driving bevel gear (904). The third driving bevel gear (904) and the third driven bevel gear (701) mesh with each other. The horizontal plate (402) is threaded onto the outside of the corresponding adjusting screw (403). One end of the pressure sensor (401) is fixedly mounted on the inner wall of the transverse groove. The other end of the pressure sensor (401) is fixedly connected to the corresponding horizontal plate (402). The horizontal plate (402) is fixedly mounted onto the outside of the corresponding cooling nozzle (803). An infrared thermometer (404) is fixedly mounted on one side of the horizontal plate (402). A baffle (601) is fixedly mounted on one side of the rotating frame (6).

4. The high-efficiency cutting equipment for producing thin-walled aluminum alloy parts according to claim 1, characterized in that, A fixing plate (101) is fixedly installed on the top of the base (1). A first drive motor (808) and a second drive motor (903) are fixedly installed on one side of the fixing plate (101). A first drive gear (807) is fixedly installed on the output end of the first drive motor (808). A first driven gear (806) is fixedly sleeved on the outside of the connecting cylinder (809). The first drive gear (807) and the first driven gear (806) mesh with each other. A second drive gear (902) is fixedly installed on the output shaft of the second drive motor (903). A second driven gear (901) is fixedly installed on the outside of the rotating cylinder (9). The second drive gear (902) and the second driven gear (901) mesh with each other.

5. The high-efficiency cutting equipment for producing thin-walled aluminum alloy parts according to claim 1, characterized in that, The positioning mechanism (2) includes: a fixed frame (201) and two servo motors (206). The servo motors (206) are fixedly installed on the front side of the fixed frame (201). The fixed frame (201) is fixedly installed on the top of the base (1). A bidirectional lead screw (205) is fixedly installed on the output shaft of the servo motor (206). The bidirectional lead screw (205) is rotatably installed inside the fixed frame (201). Two movable seats (202) are threaded on the outer side of the bidirectional lead screw (205). The movable seats (202) are slidably sleeved on the outer side of the fixed frame (201). A cylinder (203) is fixedly installed on the inner side of the movable seat (202). A positioning seat (204) is fixedly installed on the output end of the cylinder (203).

6. The high-efficiency cutting equipment for producing thin-walled aluminum alloy parts according to claim 1, characterized in that, The top of the base (1) is fixedly installed with a controller (10) and a vertical plate (102). The vertical plate (102) is rotatably sleeved on the outside of the connecting cylinder (809). The controller (10) is connected to the first drive motor (808), the second drive motor (903), the servo motor (206), the infrared thermometer (404), and the pressure sensor (401). One end of the fixed cylinder (8) is connected to a water inlet pipe (805).

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