An intelligent stamping device for aluminum alloy profiles

The smart extrusion device addresses the need for efficient mold switching and piece differentiation in aluminum alloy processing by enabling intermittent feeding and automated output direction based on mold changes, improving operational efficiency and convenience.

CN120095033BActive Publication Date: 2025-07-15JIANGSU XIONGXIN ALUMINUM CO LTD
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Patent Information

Application Number
CN202510580485.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-07
Publication Date
2025-07-15
Estimated Expiration
2045-05-07

AI Technical Summary

Technical Problem

Existing aluminum alloy profile stamping equipment requires frequent mold replacement, which is inconvenient to use and difficult to distinguish molded parts.

Method used

An intelligent stamping device for aluminum alloy profiles is designed, including a feeding mechanism, a stamping mechanism and a feeding mechanism. The feeding mechanism is intermittently fed into the aluminum alloy sheet. The stamping mechanism has a number of switchable upper and lower molds, and the feeding mechanism adjusts the outlet position according to the change of the mold.

Benefits of technology

It realizes automatic feeding and delivery of aluminum alloy sheets, easy mold switching, different cutting positions of aluminum alloy parts, improving the convenience of use and processing efficiency of the equipment.

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Abstract

The present invention discloses an intelligent stamping device for aluminum alloy profiles, belonging to the technical field of alloy stamping. It includes a feeding mechanism for feeding aluminum alloy plates. A stamping mechanism for stamping the aluminum alloy plates and a discharging mechanism for discharging the stamped aluminum alloy parts are arranged on the feeding mechanism. The feeding mechanism provided by the present invention can intermittently feed the aluminum alloy plates into the stamping mechanism for stamping processing, providing sufficient time for aluminum alloy stamping processing. The stamping mechanism is provided with a plurality of upper molds and lower molds, which can be synchronously switched, enabling the device to adapt to a variety of different processing requirements. And after the molds are replaced, the outlet position of the discharging mechanism changes accordingly, so that the blanking positions of different aluminum alloy parts are different, which is convenient to use. After the stamping mechanism finishes stamping the aluminum alloy parts, the next aluminum alloy plate to be processed automatically pushes the processed aluminum alloy parts onto the discharging mechanism, realizing automatic loading and unloading.
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Description

Technical Field

[0001] The present invention relates to the technical field of alloy stamping, and particularly relates to an intelligent stamping device for aluminum alloy profiles. Background Art

[0002] Aluminum alloy is an alloy based on aluminum and added with a certain amount of other elements. It is a lightweight metal material with good electrical conductivity, thermal conductivity, and corrosion resistance. Aluminum has a soft texture, good ductility, and low strength, making it very suitable for stamping processing. The profiles obtained by stamping processing have the advantages of high precision, easy shape control, and high efficiency. Aluminum alloy parts can be processed through different molds to obtain different aluminum alloy profile products. The aluminum alloy profile stamping equipment in the prior art usually needs to frequently replace the molds, which is inconvenient to use, and the formed aluminum alloy parts will be mixed together and are not easy to distinguish. Summary of the Invention

[0003] For the above technical problems, the technical solution adopted by the present invention is: an intelligent stamping device for aluminum alloy profiles, including a feeding mechanism for feeding aluminum alloy plates. The feeding mechanism includes an inlet frame. A stamping mechanism for stamping the aluminum alloy plates and a discharging mechanism for discharging the stamped aluminum alloy parts are arranged on the feeding mechanism. The stamping mechanism includes a stamping frame, and the discharging mechanism includes a discharging gear;

[0004] The stamping mechanism includes an upper die wheel and a lower die wheel rotatably installed on the stamping frame. Four upper dies with different shapes are slidably installed on the upper die wheel, and four lower dies with different shapes are fixedly installed on the lower die wheel.

[0005] Further, the feeding mechanism includes a motor fixedly installed on the inlet frame. A motor gear is fixedly installed on the motor shaft of the motor. A semi-tooth gear is rotatably installed on the inlet frame. A docking gear is fixedly installed on the semi-tooth gear. The docking gear meshes with the motor gear. An output wheel is rotatably installed on the inlet frame. The output wheel meshes with the semi-tooth gear.

[0006] Further, an upper conveyor belt and a lower conveyor belt are arranged inside the inlet frame. The output wheel drives the upper conveyor belt and the lower conveyor belt to rotate through a transmission belt and a gear. The rotation directions of the upper conveyor belt and the lower conveyor belt are opposite. A baffle is arranged inside the inlet frame.

[0007] Further, a curved rod is rotatably installed on the inlet frame. The upper conveyor belt drives the curved rod to rotate through a transmission belt. A lower pressure rod is rotatably installed on the curved rod. A sliding rod is slidably installed on the lower pressure rod. An inner spring is arranged between the sliding rod and the lower pressure rod. A push plate is rotatably installed on the sliding rod.

[0008] When in use, the aluminum alloy sheet to be stamped is placed in the entry rack, and the baffle only allows one sheet to pass at a time. The motor drives the motor gear to rotate, thereby driving the docking gear and the half-tooth gear to rotate, thereby driving the output wheel to rotate intermittently, and driving the upper conveyor belt and the lower conveyor belt to rotate through the transmission belt, and the aluminum alloy sheet placed in the entry rack slides along the inclined surface in the entry rack to between the upper conveyor belt and the lower conveyor belt, and the aluminum alloy sheet is transported toward the stamping rack through the upper conveyor belt and the lower conveyor belt. Finally, the sheet arrives between the push plate and the lower conveyor belt, and the upper conveyor belt will also drive the curved rod to rotate through the transmission belt, thereby driving the lower pressure rod and the sliding rod to descend, so that the push plate contacts the aluminum alloy sheet, and then the curved rod continues to rotate, driving the lower pressure rod to continue to descend, the inner spring is compressed, so that the push plate is pressed tightly on the aluminum alloy sheet, and then the curved rod continues to rotate, the push plate rotates relative to the sliding rod, and the inner spring pushes the aluminum alloy sheet into the lower mold through the push plate, and at the same time pushes the last stamped aluminum alloy part into the discharge slope.

[0009] Furthermore, the stamping mechanism also includes a stamping electric cylinder fixedly mounted on the stamping frame, a pressing sheet is provided at the output end of the stamping electric cylinder, and a spring is provided between the upper die and the upper die wheel.

[0010] Furthermore, a hand crank is rotatably installed on the stamping frame, and an upper gear and a lower gear are rotatably installed on the stamping frame. When the hand crank is rotated, the upper gear and the lower gear are driven to rotate through the gear and belt transmission, an upper gear ring is fixedly installed in the upper mold wheel, and a lower gear ring and a transmission gear ring are fixedly installed in the lower mold wheel. An output gear is rotatably installed on the stamping frame, the output gear is meshed with the transmission gear ring, the upper gear is meshed with the upper gear ring, and the lower gear ring is meshed with the lower gear, and the output gear drives the discharge gear to rotate through gear transmission.

[0011] Furthermore, two clamping blocks are slidably mounted on the stamping frame, four clamping grooves cooperating with the clamping blocks are arranged on the hand crank, and a clamping block spring is arranged between the clamping block and the stamping frame.

[0012] When the aluminum alloy sheet is pushed onto the lower die, the stamping electric cylinder extends, pushing the upper die down, and the aluminum alloy sheet on the lower die is stamped through the upper die.

[0013] When the upper mold and the lower mold need to be replaced, the hand crank is manually rotated to drive the upper gear and the lower gear to rotate through the gear transmission and the belt transmission, thereby driving the upper mold wheel to rotate through the upper gear ring, and driving the lower mold wheel to rotate through the lower gear ring. The upper mold and the lower mold are switched every ninety degrees. The hand crank keeps a stable position when it is not rotating through the cooperation of the clamping block and the clamping slot.

[0014] Furthermore, the delivery mechanism includes a discharge slope fixedly mounted on the stamping frame, a rotating rod rotatably mounted on the stamping frame, a discharge gear rotatably mounted with the stamping frame, the discharge gear drives the rotating rod to rotate through a transmission belt, a long rotating rod rotatably mounted on the rotating rod, an outer sliding rod slidably mounted on the long rotating rod, and a lower spring is arranged between the outer sliding rod and the long rotating rod.

[0015] Furthermore, a rotating module is provided on the stamping frame, and the rotating module includes a lower rotating rod, a rotating frame is fixedly installed on the lower rotating rod, a lower ball is rotatably installed on the bottom of the rotating frame, an output roller is rotatably installed on the rotating frame, the lower rotating rod of the rotating module close to the stamping frame side is rotatably installed with the stamping frame, the lower rotating rod of the outermost rotating module is rotatably installed with the outer sliding rod, and the lower rotating rod between every two rotating modules is rotatably installed through a connecting rod.

[0016] The metal parts that reach the discharge slope will fall onto the output roller and will be continuously pushed by the metal parts that have been processed subsequently and finally leave the equipment.

[0017] When the hand crank is turned, the lower mold wheel rotates, driving the output gear to rotate through the transmission gear ring, driving the discharge gear to rotate through the gear transmission, driving the rotating rod to rotate through the belt transmission, thereby driving the long rotating rod to rotate, coordinating with the extension and retraction of the outer sliding rod and the long rotating rod, pulling the rotating frame to rotate through the lower rotating rod and the connecting rod to change the outlet direction. The position of the hand crank is different, and the channel outlet position is also different, that is, the outlet direction changes according to the difference between the upper mold and the lower mold.

[0018] Compared with the prior art, the present invention has the following beneficial effects: (1) the feeding mechanism provided in the present invention can intermittently feed the aluminum alloy sheet into the stamping mechanism for stamping processing, thereby providing sufficient time for the aluminum alloy stamping processing; (2) the stamping mechanism provided in the present invention is provided with a plurality of upper molds and lower molds, which can be switched synchronously, so that the equipment can adapt to a variety of different processing requirements, and after the mold is replaced, the outlet position of the feeding mechanism is changed accordingly, so that different aluminum alloy parts have different unloading positions, which is convenient to use; (3) after the stamping mechanism provided in the present invention completes the stamping of the aluminum alloy part, the next aluminum alloy sheet to be processed automatically pushes the processed aluminum alloy part onto the feeding mechanism, thereby realizing automatic loading and unloading. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a schematic diagram of the overall structure of the present invention.

[0020] Figure 2 Schematic diagram of the feeding mechanism structure of the present invention Figure 1 .

[0021] Figure 3 Schematic diagram of the feeding mechanism structure of the present invention Figure 2 .

[0022] Figure 4 Schematic diagram of the feeding mechanism of the present invention Figure 3 .

[0023] Figure 5 Schematic diagram of the stamping mechanism of the present invention Figure 1 .

[0024] Figure 6 Schematic diagram of the stamping mechanism of the present invention Figure 2 .

[0025] Figure 7 Schematic diagram of the stamping mechanism of the present invention Figure 3 .

[0026] Figure 8 Schematic diagram of the stamping mechanism of the present invention Figure 4 .

[0027] Figure 9 Schematic diagram of the discharging mechanism of the present invention Figure 1 .

[0028] Figure 10 Schematic diagram of the discharging mechanism of the present invention Figure 2 .

[0029] Figure 11 Schematic diagram of the position when the push plate of the present invention pushes the sheet material

[0030] Figure 12 Schematic diagram of the position when the push plate of the present invention completely pushes out the sheet material

[0031] Figure 13 Schematic diagram of the position when the push plate of the present invention starts to return

[0032] Figure 14 Schematic diagram of the position when the push plate of the present invention returns to the initial position

[0033] Attached drawing reference numerals: 101 - entry frame; 102 - motor; 103 - motor gear; 104 - docking gear; 105 - half - tooth gear; 106 - output wheel; 107 - baffle; 108 - upper conveyor belt; 109 - lower conveyor belt; 110 - curved rod; 111 - lower pressing rod; 112 - sliding rod; 113 - inner spring; 114 - push plate; 201 - stamping frame; 202 - upper die wheel; 203 - upper die; 204 - stamping electric cylinder; 205 - lower die wheel; 206 - lower die; 207 - hand rocker; 208 - lower gear ring; 209 - lower gear; 210 - upper gear ring; 211 - upper gear; 212 - transmission gear ring; 213 - output gear; 214 - card slot; 215 - card block; 216 - card block spring; 301 - discharge gear; 302 - rotating rod; 303 - long rotating rod; 304 - rotating frame; 305 - output roller; 306 - lower rotating rod; 307 - connecting rod; 308 - outer sliding rod; 309 - lower spring; 310 - lower ball; 311 - discharge slope. Specific implementation manners

[0034] The following further describes the specific implementation manners of the present invention with reference to the accompanying drawings.

[0035] Embodiment: Refer to Figures 1 - 10 , an intelligent stamping device for aluminum alloy profiles, including a feeding mechanism for feeding aluminum alloy plates. The feeding mechanism includes an entry frame 101. A stamping mechanism for stamping aluminum alloy plates and a discharging mechanism for discharging the stamped aluminum alloy parts are provided on the feeding mechanism. The stamping mechanism includes a stamping frame 201, and the discharging mechanism includes a discharge gear 301;

[0036] The stamping mechanism includes an upper die wheel 202 and a lower die wheel 205 rotatably installed on the stamping frame 201. Four different - shaped upper dies 203 are slidably installed on the upper die wheel 202, and four different - shaped lower dies 206 are fixedly installed on the lower die wheel 205.

[0037] As Figures 2 - 4 shown, the feeding mechanism includes a motor 102 fixedly installed on the entry frame 101. A motor gear 103 is fixedly installed on the motor shaft of the motor 102. A half - tooth gear 105 is rotatably installed on the entry frame 101. A docking gear 104 is fixedly installed on the half - tooth gear 105. The docking gear 104 meshes with the motor gear 103. An output wheel 106 is rotatably installed on the entry frame 101. The output wheel 106 meshes with the half - tooth gear 105.

[0038] As Figures 2 - 4As shown, an upper conveyor belt 108 and a lower conveyor belt 109 are provided in the entrance frame 101, and the output wheel 106 drives the upper conveyor belt 108 and the lower conveyor belt 109 to rotate through a transmission belt and a gear. The rotation directions of the upper conveyor belt 108 and the lower conveyor belt 109 are opposite, and a baffle 107 is provided in the entrance frame 101.

[0039] like Figures 2 - 4 As shown, a bent rod 110 is rotatably installed on the entry frame 101, and the upper conveyor belt 108 drives the bent rod 110 to rotate through the transmission belt. A lower pressure rod 111 is rotatably installed on the bent rod 110, and a sliding rod 112 is slidably installed on the lower pressure rod 111. An inner spring 113 is provided between the sliding rod 112 and the lower pressure rod 111, and a push plate 114 is rotatably installed on the sliding rod 112.

[0040] When in use, the aluminum alloy sheet to be stamped is placed in the entry frame 101, and the baffle 107 allows only one sheet to pass through at a time. The motor 102 drives the motor gear 103 to rotate, thereby driving the docking gear 104 and the half-tooth gear 105 to rotate, thereby driving the output wheel 106 to rotate intermittently, and the upper conveyor belt 108 and the lower conveyor belt 109 are driven to rotate through the transmission belt. The aluminum alloy sheet placed in the entry frame 101 slides along the inclined surface in the entry frame 101 to between the upper conveyor belt 108 and the lower conveyor belt 109, and is transported toward the stamping frame 201 through the upper conveyor belt 108 and the lower conveyor belt 109, and finally the sheet reaches the push plate 114 and the lower conveyor belt 109, the upper conveyor belt 108 will also drive the curved rod 110 to rotate through the transmission belt, thereby driving the lower pressure rod 111 and the sliding rod 112 to descend, so that the push plate 114 contacts the aluminum alloy plate, and then the curved rod 110 continues to rotate, driving the lower pressure rod 111 to continue to descend, the inner spring 113 is compressed, so that the push plate 114 is pressed tightly on the aluminum alloy plate, and then the curved rod 110 continues to rotate, the push plate 114 rotates relative to the sliding rod 112, and the inner spring 113 pushes the aluminum alloy plate into the lower mold 206 through the push plate 114, and at the same time pushes the last stamped aluminum alloy part into the discharge slope 311.

[0041] from Figure 4 Starting from the position, the crank rod 110 starts to rotate counterclockwise. First, the inner spring 113 is compressed, and the push plate 114 is pressed against the plate. Then the push plate 114 moves the plate to the left. At this time, the lower conveyor belt 109 also moves the plate to the left. When the crank rod 110 reaches Figure 4 Before the position, the lower pressure rod 111 and the curved rod 110 tilt to the right, and the curved rod 110 rotates counterclockwise for a certain angle before reaching the position. Figure 4The position where the push plate 114 is about to contact the plate. As the curved rod 110 continues to rotate counterclockwise, the push plate 114 will be further pressed down onto the plate. After the push plate 114 pushes the plate into the lower die 206, the curved rod 110 continues to rotate counterclockwise, driving the push plate 114 and the pressing rod 111 to rise. At this time, the upper conveyor belt 108 and the lower conveyor belt 109 convey the next plate. When the next plate reaches below the push plate 114, the curved rod 110 just rotates counterclockwise to Figure 4 the position where the push plate 114 reaches above the plate, and so on.

[0042] As Figures 5 - 8 shown, the stamping mechanism further includes a stamping electric cylinder 204 fixedly installed on the stamping frame 201. A pressing piece is provided at the output end of the stamping electric cylinder 204, and a spring is provided between the upper die 203 and the upper die wheel 202.

[0043] As Figures 5 - 8 shown, a hand rocker 207 is rotatably installed on the stamping frame 201, an upper gear 211 and a lower gear 209 are rotatably installed on the stamping frame 201. When the hand rocker 207 is rotated, the upper gear 211 and the lower gear 209 are driven to rotate through gear and belt transmission. An upper tooth ring 210 is fixedly installed inside the upper die wheel 202, a lower tooth ring 208 and a transmission tooth ring 212 are fixedly installed inside the lower die wheel 205. An output gear 213 is rotatably installed on the stamping frame 201, the output gear 213 meshes with the transmission tooth ring 212, the upper gear 211 meshes with the upper tooth ring 210, the lower tooth ring 208 meshes with the lower gear 209, and the output gear 213 drives the discharging gear 301 to rotate through gear transmission.

[0044] As Figures 5 - 8 shown, two clamping blocks 215 are slidably installed on the stamping frame 201. Four clamping slots 214 cooperating with the clamping blocks 215 are provided on the hand rocker 207. A clamping block spring 216 is provided between the clamping blocks 215 and the stamping frame 201.

[0045] When the aluminum alloy plate is pushed onto the lower die 206, at this time the stamping electric cylinder 204 extends, pushing the upper die 203 to descend, and stamping the aluminum alloy plate located on the lower die 206 through the upper die 203.

[0046] When it is necessary to replace the upper die 203 and the lower die 206, manually rotate the hand rocker 207, drive the upper gear 211 and the lower gear 209 to rotate through gear transmission and belt transmission, thereby driving the upper die wheel 202 to rotate through the upper tooth ring 210, and driving the lower die wheel 205 to rotate through the lower tooth ring 208. Every time it rotates 90 degrees, a switching of the upper die 203 and the lower die 206 is performed. Through the cooperation of the clamping blocks 215 and the clamping slots 214, the hand rocker 207 remains stable in position when not rotating.

[0047] AsFigure 9 , Figure 10 As shown, the delivery mechanism includes a discharge slope 311 fixedly mounted on the stamping frame 201, a rotating rod 302 is rotatably mounted on the stamping frame 201, a discharge gear 301 is rotatably mounted with the stamping frame 201, the discharge gear 301 drives the rotating rod 302 to rotate through a transmission belt, a long rotating rod 303 is rotatably mounted on the rotating rod 302, an outer sliding rod 308 is slidably mounted on the long rotating rod 303, and a lower spring 309 is arranged between the outer sliding rod 308 and the long rotating rod 303.

[0048] like Figure 9 , Figure 10 As shown, a rotating module is arranged on the stamping frame 201, and the rotating module includes a lower rotating rod 306, on which a rotating frame 304 is fixedly mounted, a lower ball 310 is rotatably mounted at the bottom of the rotating frame 304, and an output roller 305 is rotatably mounted on the rotating frame 304, the lower rotating rod 306 of the rotating module close to the stamping frame 201 side is rotatably mounted with the stamping frame 201, the lower rotating rod 306 of the outermost rotating module is rotatably mounted with the outer sliding rod 308, and the lower rotating rod 306 between every two rotating modules is rotatably mounted via a connecting rod 307.

[0049] The metal parts that have reached the discharge slope 311 will fall onto the output roller 305 and will be continuously pushed by the metal parts that have been processed subsequently and finally leave the equipment.

[0050] When the hand crank 207 is rotated, the lower mold wheel 205 rotates, and the output gear 213 is driven to rotate through the transmission ring gear 212, and the discharge gear 301 is driven to rotate through the gear transmission, and the rotating rod 302 is driven to rotate through the belt transmission, thereby driving the long rotating rod 303 to rotate, and cooperating with the extension and retraction of the outer sliding rod 308 and the long rotating rod 303, the rotating frame 304 is pulled to rotate through the lower rotating rod 306 and the connecting rod 307 to change the outlet direction. The position of the hand crank 207 is different, and the channel outlet position is also different, that is, the outlet direction is different according to the difference between the upper mold 203 and the lower mold 206.

[0051] The working principle of the intelligent stamping equipment for aluminum alloy profiles disclosed in the present invention is: when the upper mold 203 and the lower mold 206 need to be replaced, the hand crank 207 is manually rotated to drive the upper gear 211 and the lower gear 209 to rotate through gear transmission and belt transmission, thereby driving the upper mold wheel 202 to rotate through the upper gear ring 210, and driving the lower mold wheel 205 to rotate through the lower gear ring 208. The upper mold 203 and the lower mold 206 are switched every ninety degrees of rotation. The hand crank 207 maintains a stable position when it is not rotating through the cooperation of the clamping block 215 and the clamping slot 214. When the hand crank 207 is rotated, the lower mold wheel 205 rotates, and the output gear 213 is driven to rotate through the transmission ring gear 212, and the discharge gear 301 is driven to rotate through the gear transmission, and the rotating rod 302 is driven to rotate through the belt transmission, thereby driving the long rotating rod 303 to rotate, and cooperating with the extension and retraction of the outer sliding rod 308 and the long rotating rod 303, the rotating frame 304 is pulled to rotate through the lower rotating rod 306 and the connecting rod 307 to change the outlet direction. The position of the hand crank 207 is different, and the channel outlet position is also different, that is, the outlet direction is different according to the difference between the upper mold 203 and the lower mold 206.

[0052] When in use, the aluminum alloy sheet to be stamped is placed in the entry frame 101, and the baffle 107 allows only one sheet to pass through at a time. The motor 102 drives the motor gear 103 to rotate, thereby driving the docking gear 104 and the half-tooth gear 105 to rotate, thereby driving the output wheel 106 to rotate intermittently, and the upper conveyor belt 108 and the lower conveyor belt 109 are driven to rotate through the transmission belt. The aluminum alloy sheet placed in the entry frame 101 slides along the inclined surface in the entry frame 101 to between the upper conveyor belt 108 and the lower conveyor belt 109, and is transported toward the stamping frame 201 through the upper conveyor belt 108 and the lower conveyor belt 109, and finally the sheet reaches the push plate 114 and the lower conveyor belt 109, the upper conveyor belt 108 will also drive the crank rod 110 to rotate through the transmission belt, thereby driving the lower pressure rod 111 and the slide bar 112 to descend, so that the push plate 114 contacts the aluminum alloy sheet, and then the crank rod 110 continues to rotate, driving the lower pressure rod 111 to continue to descend, the inner spring 113 is compressed, so that the push plate 114 is pressed against the aluminum alloy sheet, and then the crank rod 110 continues to rotate, the push plate 114 rotates relative to the slide bar 112, and the inner spring 113 pushes the aluminum alloy sheet into the lower die 206 through the push plate 114, and at the same time pushes the last stamped aluminum alloy part into the discharge slope 311. When the aluminum alloy sheet is pushed onto the lower die 206, the stamping electric cylinder 204 extends, pushing the upper die 203 down, and the aluminum alloy sheet located on the lower die 206 is stamped through the upper die 203. The metal parts that have reached the discharge slope 311 will fall onto the output roller 305 and will be continuously pushed by the metal parts that have been processed subsequently and finally leave the equipment.

[0053] The above are only the preferred specific embodiments of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope of the present invention, according to the technical solution of the present invention and its inventive concept, making equivalent substitutions or changes, shall be covered by the protection scope of the present invention.

Claims

1. An intelligent stamping device for aluminum alloy profiles, including a feeding mechanism for feeding aluminum alloy sheets, characterized in that: The feeding mechanism includes an inlet frame (101). A stamping mechanism for stamping aluminum alloy plates and a discharging mechanism for discharging the stamped aluminum alloy parts are provided on the feeding mechanism. The stamping mechanism includes a stamping frame (201), and the discharging mechanism includes a discharging gear (301). The stamping mechanism includes an upper die wheel (202) and a lower die wheel (205) rotatably installed on the stamping frame (201). Four upper dies (203) with different shapes are slidably installed on the upper die wheel (202), and four lower dies (206) with different shapes are fixedly installed on the lower die wheel (205). The stamping mechanism further includes a stamping electric cylinder (204) fixedly installed on the stamping frame (201). A pressing plate is provided at the output end of the stamping electric cylinder (204), and a spring is provided between the upper die (203) and the upper die wheel (202). A hand rocker (207) is rotatably installed on the stamping frame (201). An upper gear (211) and a lower gear (209) are rotatably installed on the stamping frame (201). When the hand rocker (207) is rotated, the upper gear (211) and the lower gear (209) are driven to rotate through gear and belt transmission. An upper tooth ring (210) is fixedly installed inside the upper die wheel (202), a lower tooth ring (208) and a transmission tooth ring (212) are fixedly installed inside the lower die wheel (205). An output gear (213) is rotatably installed on the stamping frame (201). The output gear (213) meshes with the transmission tooth ring (212), the upper gear (211) meshes with the upper tooth ring (210), and the lower tooth ring (208) meshes with the lower gear (209). The output gear (213) drives the discharging gear (301) to rotate through gear transmission. An upper conveyor belt (108) and a lower conveyor belt (109) are arranged inside the inlet frame (101). A curved rod (110) is rotatably installed on the inlet frame (101). The upper conveyor belt (108) drives the curved rod (110) to rotate through a transmission belt. A lower pressing rod (111) is rotatably installed on the curved rod (110). A sliding rod (112) is slidably installed on the lower pressing rod (111). An inner spring (113) is provided between the sliding rod (112) and the lower pressing rod (111). A pushing plate (114) is rotatably installed on the sliding rod (112). The discharging mechanism includes a discharging slope (311) fixedly installed on the stamping frame (201). A rotating rod (302) is rotatably installed on the stamping frame (201). The discharging gear (301) is rotatably installed on the stamping frame (201). The discharging gear (301) drives the rotating rod (302) to rotate through a transmission belt. A long rotating rod (303) is rotatably installed on the rotating rod (302). An outer sliding rod (308) is slidably installed on the long rotating rod (303). A lower spring (309) is provided between the outer sliding rod (308) and the long rotating rod (303). A rotation module is provided on the stamping frame (201). The rotation module includes a lower rotating rod (306). A rotating frame (304) is fixedly installed on the lower rotating rod (306). Lower rolling balls (310) are rotatably installed at the bottom of the rotating frame (304). An output roller (305) is rotatably installed on the rotating frame (304). The lower rotating rod (306) of the rotation module close to the stamping frame (201) is rotatably installed with the stamping frame (201). The lower rotating rod (306) of the outermost rotation module is rotatably installed with the outer sliding rod (308). The lower rotating rods (306) between every two rotation modules are rotatably installed through a connecting rod (307).

2. The intelligent stamping equipment for an aluminum alloy profile according to claim 1, characterized in that: The feeding mechanism includes a motor (102) fixedly installed on the inlet frame (101). A motor gear (103) is fixedly installed on the motor shaft of the motor (102). A semi-tooth gear (105) is rotatably installed on the inlet frame (101). A docking gear (104) is fixedly installed on the semi-tooth gear (105). The docking gear (104) meshes with the motor gear (103). An output wheel (106) is rotatably installed on the inlet frame (101). The output wheel (106) meshes with the semi-tooth gear (105).

3. The intelligent stamping equipment for an aluminum alloy profile according to claim 2, wherein: The output wheel (106) drives the upper conveyor belt (108) and the lower conveyor belt (109) to rotate through a transmission belt and gears. The rotating directions of the upper conveyor belt (108) and the lower conveyor belt (109) are opposite. A baffle (107) is provided inside the inlet frame (101).

4. The intelligent stamping device for an aluminum alloy profile according to claim 1, characterized in that: Two clamping blocks (215) are slidably installed on the stamping frame (201). Four clamping slots (214) cooperating with the clamping blocks (215) are provided on the hand crank (207). A clamping block spring (216) is provided between the clamping block (215) and the stamping frame (201).

Citation Information

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