Cutting device for mold production
By designing a cutting device for mold production, the combination of machine components, feeding components, clamping components and reinforcement components is used to realize automatic positioning, fixing and release of the mold, solving the problems of high equipment costs and inconvenient operation in the prior art, and improving the efficiency and use effect of mold cutting work.
Patent Information
- Application Number
- CN202510140684.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-08
- Publication Date
- 2025-05-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing mold cutting devices rely on power equipment and complex control processes, resulting in high equipment costs, high maintenance costs and inconvenient operation, reducing the overall efficiency of mold cutting work.
A cutting device for mold production is designed, including machine assembly, feeding assembly, clamping assembly and reinforcement assembly. By setting up a guide seat and hollow suction plate, the automatic positioning, fixing and release of the mold is achieved, reducing dependence on power equipment and controllers.
It realizes convenient and efficient positioning and fixing of molds, reduces equipment costs and maintenance costs, improves the overall efficiency of mold cutting work, and can adapt to molds of different sizes, improving the use effect.
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Figure CN119927313A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of mold processing, in particular to a cutting device for mold production. Background Art
[0002] Moulds are various moulds and tools used in industrial production to obtain the required products by methods such as injection moulding, blow moulding, extrusion, die casting or forging, smelting and stamping. In short, moulds are tools used to make moulded objects. They are known as the "mother of industry". They are tools that make the blank into a part with a specific shape and size under the action of external force. During the mould production process, a cutting device is needed to cut the mould.
[0003] In the prior art, such as Chinese patent publication number CN108621309A, a cutting device for mold production is disclosed, including a workbench, a support seat and a cutting mechanism, wherein the workbench is symmetrically provided with a movable plate, the movable plate is provided with a fixed block and an electric push rod, and the fixed block is provided with a first oil chamber and a second oil chamber. The present invention drives the movable plate and the fixed block to move by a first screw rod and a first movable block, so that the left and right sides of the mold are fixed by the fixed block, and drives the first piston to move by the electric push rod, so that the second piston drives the piston rod and the fixed plate to move through the oil guide pipe, so that the front and rear sides of the mold are fixed by the fixed plate, thereby improving the clamping and fixing effect of the mold and avoiding the movement of the mold during the cutting process; the fixed blocks on both sides and the fixed plates on both sides of the fixed blocks can move toward the middle at the same time, so that the mold is always located in the middle of the top surface of the workbench and aligned with the position of the cutting knife, thereby improving the cutting accuracy.
[0004] Although the above patent can keep the mold in the middle of the top of the workbench at all times, the existing mold cutting device, when used, often relies on power equipment in conjunction with a controller to drive the clamp to clamp and position the mold, which not only increases equipment costs and maintenance costs, but also requires manual operation or complex control processes when fixing and releasing the clamp, which is not convenient and efficient, and reduces the overall work efficiency of the mold cutting work.
[0005] Therefore, a cutting device for mold production is proposed to solve the problems raised in the above background technology. Summary of the invention
[0006] The object of the present invention is to provide a cutting device for mold production to solve the problems raised by the above background technology.
[0007] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: A cutting device for mold production, comprising a machine assembly, a cutting assembly is arranged at a position near the top of the front surface of the machine assembly, a feeding assembly is arranged at a position near the front side of the top of the machine assembly, a clamping assembly is symmetrically arranged at the top of the feeding assembly, and a reinforcement assembly is arranged at the bottom of the feeding assembly, the machine assembly comprises a U-shaped base, a first straight groove is symmetrically opened at the inner bottom of the U-shaped base near the front side, a second straight groove is symmetrically opened at the inner bottom of the U-shaped base near the rear surface, a group of inclined grooves are symmetrically opened at the inner bottom of the U-shaped base near the two side edges, each group of inclined grooves is arranged in parallel, and the inclined grooves, the first straight grooves and the second straight grooves are connected to each other, the cutting assembly comprises a mounting seat, the feeding assembly comprises a storage table, the two clamping assemblies each comprise a connecting plate, the bottom of the connecting plate is symmetrically fixedly connected with a guide column, the bottom end of the guide column is slidably inserted in the first straight groove, and the reinforcement assembly comprises a hollow suction plate.
[0008] Preferably, a first rack is symmetrically fixedly connected to a position near the front side at the top edge of the U-shaped base, a gantry is fixedly connected to a position near the middle between the outer surfaces of both sides of the U-shaped base, an X-axis slide is arranged on the top of the gantry, a sliding plate is arranged on the front surface of the X-axis slide, a second rack is fixedly connected to the front surface of the sliding plate, and a guide seat is fixedly connected to a position near the rear side at the inner bottom of the U-shaped base.
[0009] Preferably, the storage table is slidably connected to the top of the U-shaped base, and a fourth motor is installed at the top of the storage table near the front edge, the output end of the fourth motor rotates through the top of the storage table and extends downward, the output end of the fourth motor is fixedly connected to the second gear, the second gear is meshingly connected to the first rack, and a plurality of first sliding grooves are symmetrically opened at the top of the storage table near the two side edges.
[0010] Preferably, a plurality of first connecting columns are fixedly connected to the top of the connecting plate, the outer surfaces of the first connecting columns slide in contact with the inner wall of the first slide groove and extend upward, the top of the first connecting column is fixedly connected to a first connecting seat, and the first connecting seat is slidably connected to the top of the storage table.
[0011] Preferably, an adjusting screw is symmetrically threadedly connected to an outer surface of one side of the first connecting seat, one end of the adjusting screw is rotatably connected to the second connecting seat, an inner groove is provided on the outer surface of the second connecting seat away from the first connecting seat, a sliding seat is symmetrically slidably embedded between the inner surface walls of the inner groove, and a triangular push block is fixedly connected to the outer surface of the sliding seat away from the second connecting seat.
[0012] Preferably, a bidirectional screw is rotatably connected between the front and rear inner walls of the embedded groove, the outer surface thread of the bidirectional screw passes through the outer surface of the sliding seat, a second scale is provided at the top of the second connecting seat near the front surface, and a first scale is symmetrically provided at the top of the storage table near the front surface.
[0013] Preferably, the hollow suction plate is embedded in the top center of the storage table, the interior of the hollow suction plate is a cavity and a plurality of suction holes are opened on the top, the bottom of the hollow suction plate is symmetrically fixedly connected with a rectangular shell, a piston plate is slidably arranged between the inner surface walls of the rectangular shell, and a three-way connecting pipe is fixedly connected between the outer surfaces of the opposite sides of the two rectangular shells near the bottom and the bottom of the hollow suction plate.
[0014] Preferably, a spring is fixedly connected between the inner top of the rectangular shell and the top of the piston plate, a second connecting column is fixedly connected to the bottom of the piston plate, the outer surface of the second connecting column slides through the inner bottom of the rectangular shell and extends downward, the bottom end of the second connecting column is fixedly connected to a bottom plate, the bottom of the bottom plate is symmetrically fixedly connected to a rotating seat, a roller is rotatably connected between the outer surfaces of the two rotating seats, and the roller and the guide seat cooperate with each other.
[0015] Preferably, the mounting seat is slidably connected to the front surface of the sliding plate, a first motor is fixedly installed on the front surface of the mounting seat near the top, a first gear is fixedly connected to the output end of the first motor, the first gear is meshingly connected to the second rack, and a first bracket is fixedly connected to the front surface of the mounting seat near the bottom.
[0016] Preferably, a second motor is fixedly mounted on the top of the first bracket, an output end of the second motor is fixedly connected to the second bracket, a third motor is mounted on the rear surface of the second bracket, and a cutting machine is fixedly mounted on the output end of the third motor.
[0017] Compared with the prior art, the present invention has the following beneficial effects: 1. When the present invention is used, by setting the feeding assembly and the clamping assembly, during the entire positioning process of the mold, after the mold is placed on the top of the storage table near the middle position, the fixing operation can be completed without the cooperation of additional power equipment and controller. After the processing is completed, the clamp can be automatically released without additional operation, which not only reduces the equipment cost and maintenance cost, but also is convenient and efficient in operation, thereby improving the overall work efficiency of the mold cutting work.
[0018] 2. When the present invention is used, according to the size of different molds, the second connecting seat can be adjusted to be close to or away from the first connecting seat by adjusting the screw rod, so as to clamp molds of different widths. The sliding seat inside the embedded groove can be adjusted to be synchronously close to or away from each other by the bidirectional screw rod, so as to adjust the distance between the two triangular push blocks, and then clamp and fix molds of different lengths. The first scale and the second scale play a role in improving the adjustment accuracy, so that the device can clamp and fix molds of different sizes, thereby improving the use effect.
[0019] 3. When the present invention is in use, the feeding assembly drives the mold to move below the cutting assembly. By setting a guide seat and cooperating with the reinforcement assembly, the hollow suction plate can adsorb and fix the mold through air pressure, making the mold cutting process more stable and improving the cutting quality of the mold. When the feeding assembly drives the mold back to the front loading position, the hollow suction plate can release the mold without any operation, which is convenient and efficient to use.
[0020] 4. When the present invention is used, through the cooperation of the X-axis slide, the feeding assembly, the first rack, the first motor, and the first gear, the cutting machine can be moved to the front, back, left, and right directions of the mold and can move up and down to perform basic cutting processing on the mold. On this basis, after starting the second motor, the second bracket can be driven to rotate, which can drive the cutting machine to rotate horizontally. After starting the third motor, the cutting machine can be driven to rotate longitudinally. The cutting knife angle of the cutting machine can be changed by mutual cooperation, so that more complex cutting operations can be performed on the mold, thereby improving the cutting effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 A three-dimensional diagram of a cutting device for mold production according to the present invention; Figure 2 A cross-sectional view of a cutting device for mold production according to the present invention; Figure 3 This is a schematic diagram of the structure of a machine table component of a cutting device for mold production according to the present invention; Figure 4 This is a schematic diagram of the structure of a cutting component of a cutting device for mold production according to the present invention; Figure 5 This is a schematic diagram of the structure of a clamping assembly of a cutting device for mold production according to the present invention; Figure 6 This is a schematic structural diagram of a feeding assembly of a cutting device for mold production according to the present invention; Figure 7 This is a schematic diagram of the structure of a reinforcement component of a cutting device for mold production according to the present invention; Figure 8 This is a schematic diagram of the movement of a guide column of a cutting device for mold production according to the present invention; Fig. 9 This is a schematic diagram of the movement of a reinforcement component of a cutting device for mold production according to the present invention.
[0022] In the figure: 1. Machine assembly; 101. U-shaped base; 102. First straight groove; 103. Bevel groove; 104. Second straight groove; 105. First rack; 106. Gantry; 107. X-axis slide; 108. Sliding plate; 109. Second rack; 110. Guide seat; 2. Cutting assembly; 201. Mounting seat; 202. First motor; 203. First gear; 204. First bracket; 205. Second motor; 206. Second bracket; 207. Third motor; 208. Cutting machine; 3. Feeding assembly; 301. Storage table; 302. Fourth motor; 303. Second gear ; 304, first slide groove; 305, first scale; 4, clamping assembly; 401, connecting plate; 402, first connecting column; 403, guide column; 404, first connecting seat; 405, adjusting screw rod; 406, second connecting seat; 407, embedded groove; 408, bidirectional screw rod; 409, sliding seat; 410, triangular push block; 411, second scale; 5, reinforcement assembly; 501, hollow suction plate; 502, rectangular shell; 503, three-way connecting pipe; 504, piston plate; 505, second connecting column; 506, rotating seat; 507, roller; 508, spring; 509, bottom plate. DETAILED DESCRIPTION
[0023] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the implementation regulations described 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 creative work are within the scope of protection of the present invention.
[0024] Example 1: Please refer to Figure 1-Figure 9As shown, the present invention provides a technical solution: a cutting device for mold production, comprising a machine assembly 1, a cutting assembly 2 is arranged near the top of the front surface of the machine assembly 1, a feeding assembly 3 is arranged near the front side of the top of the machine assembly 1, a clamping assembly 4 is symmetrically arranged on the top of the feeding assembly 3, a reinforcing assembly 5 is arranged at the bottom of the feeding assembly 3, the machine assembly 1 comprises a U-shaped base 101, a first straight groove 102 is symmetrically opened at the inner bottom of the U-shaped base 101 near the front side, and a first straight groove 102 is symmetrically opened at the inner bottom of the U-shaped base 101 near the rear surface. There is a second straight groove 104, and a group of inclined grooves 103 are symmetrically opened at the inner bottom of the U-shaped base 101 near the edges on both sides. Each group of inclined grooves 103 is arranged in parallel, and the inclined grooves 103, the first straight groove 102 and the second straight groove 104 are connected. The cutting component 2 includes a mounting seat 201, the feeding component 3 includes a storage table 301, and the two clamping components 4 both include a connecting plate 401. The bottom of the connecting plate 401 is symmetrically fixedly connected with a guide column 403, and the bottom end of the guide column 403 is slidably inserted into the first straight groove 102, and the reinforcement component 5 includes a hollow suction plate 501.
[0025] A first rack 105 is symmetrically fixedly connected to the top edge of the U-shaped base 101 near the front side, a gantry 106 is fixedly connected to a position near the middle between the outer surfaces of both sides of the U-shaped base 101, an X-axis slide 107 is arranged on the top of the gantry 106, a sliding plate 108 is arranged on the front surface of the X-axis slide 107, a second rack 109 is fixedly connected to the front surface of the sliding plate 108, a guide seat 110 is fixedly connected to the bottom of the U-shaped base 101 near the rear side, the gantry 106 is in an inverted U shape, and is installed near the middle of the U-shaped base 101, the top X-axis slide 107 consists of a motor and a gear on the rear side of the rack and the sliding plate 108, which are used to control the left and right movement of the cutting assembly 2, and the guide seat 110 is trapezoidal in shape, and a slope is provided on the front side.
[0026] The storage table 301 is slidably connected to the top of the U-shaped base 101, and a fourth motor 302 is installed at the top of the storage table 301 near the front edge. The output end of the fourth motor 302 rotates through the top of the storage table 301 and extends downward. The output end of the fourth motor 302 is fixedly connected to the second gear 303, and the second gear 303 is meshed with the first rack 105. A plurality of first slide grooves 304 are symmetrically provided at the top of the storage table 301 near the two side edges. When in use, the fourth motor 302 is started to drive the second gear 303 to rotate. Since the second gear 303 is meshed with the first rack 105 fixed on the U-shaped base 101, the fourth motor 302 will drive the storage table 301 to move to the bottom of the rear gantry 106 after starting, so as to load materials, and the first slide grooves 304 are arranged horizontally left and right.
[0027] A plurality of first connecting columns 402 are fixedly connected to the top of the connecting plate 401, and the outer surface of the first connecting column 402 and the inner surface wall of the first slide groove 304 are slidably fitted and extended upwardly, and the top of the first connecting column 402 is fixedly connected to the first connecting seat 404, and the first connecting seat 404 is slidably connected to the top of the storage table 301. The connecting plate 401 is connected to the first connecting seat 404 above the storage table 301 through the first connecting column 402, so when the connecting plate 401 moves, it will drive the first connecting seat 404 to move synchronously, and the connecting plate 401 is connected to the guide column 403, so when the guide column 403 moves, it will drive the connecting plate 401 to move synchronously.
[0028] An adjusting screw rod 405 is symmetrically threadedly connected to the outer surface of one side of the first connecting seat 404, and one end of the adjusting screw rod 405 is rotatably connected to the second connecting seat 406. An embedded groove 407 is provided on the outer surface of the second connecting seat 406 away from the first connecting seat 404, and a sliding seat 409 is symmetrically slidably embedded between the inner surface walls of the embedded groove 407. A triangular push block 410 is fixedly connected to the outer surface of the sliding seat 409 away from the second connecting seat 406. When in use, the second connecting seat 406 can be adjusted to be close to or away from the first connecting seat 404 by rotating the adjusting screw rod 405, so that the device can be adjusted to clamp molds of different widths. By rotating the bidirectional screw rod 408, the bidirectional screw rod 408 will drive the sliding seat 409 inside the embedded groove 407 to move closer or farther synchronously, thereby adjusting the distance between the two triangular push blocks 410, so as to clamp and fix molds of different lengths.
[0029] A bidirectional screw rod 408 is rotatably connected between the front and rear inner walls of the embedded groove 407, and the outer surface thread of the bidirectional screw rod 408 passes through the outer surface of the sliding seat 409. A second scale 411 is provided at the top of the second connecting seat 406 near the front surface, and a first scale 305 is symmetrically provided at the top of the storage table 301 near the front surface. During the adjustment of the first connecting seat 404, the first scale 305 serves to observe the moving distance of the first connecting seat 404. When adjusting the triangular push block 410, the second scale 411 serves to facilitate the observation of the moving distance of the triangular push block 410.
[0030] The use steps of the present invention are as follows: when the device is used to cut the mold during the mold production process, the mold only needs to be placed on the top of the storage table 301 in the area between the four triangular push blocks 410. At this time, when the fourth motor 302 is started to drive the second gear 303 to rotate, since the second gear 303 is meshed with the first rack 105 fixed on the U-shaped base 101, the fourth motor 302 will drive the storage table 301 to move under the rear gantry 106 after it is started, so as to play the role of loading materials. When the storage table 301 moves backward, the first connecting column 402 at the bottom of the first connecting seat 404 can only move left and right due to the limitation of the first slide groove 304, and the bottom of the first connecting column 402 is connected to the connecting plate 401 by the connecting plate 401. The guide column 403 is inserted in the first straight groove 102, so the guide column 403 will slide backward inside the first straight groove 102 during the backward movement of the storage table 301. When the guide column 403 slides to the rearmost area of the first straight groove 102, it will enter the inclined groove 103 and continue to move backward. When approaching the gantry 106 area, the guide column 403 will enter the second straight groove 104. During this movement, the guide columns 403 on both sides will drive the connecting plates 401 on both sides to approach synchronously. At this time, the two first connecting seats 404 above the storage table 301 will drive the second connecting seats 406 to approach the two side surfaces of the extrusion mold synchronously. When the two sides of the mold are squeezed by the second connecting seats 406 with the triangular push blocks 410, the triangular push blocks 410 will push the second connecting seats 406 to move toward the two side surfaces of the extrusion mold. The beveled edge of the push block 410 will exert a force with a lateral component on the mold, thereby causing the mold to rotate toward a state of force balance and then tend to a straight state. When the second connecting seats 406 on both sides complete the extrusion and fixation of the two sides of the mold, the four corners of the mold will be respectively in the rectangular area formed by the sharp angles of the opposite sides of the four triangular push blocks 410, and because the second connecting seats 406 are symmetrically positioned, the triangular push blocks 410 are stacked in the same position, so that the mold is located in the center of the storage table 301 after being squeezed and fixed, which is convenient for the subsequent cutting machine 208 to directly perform cutting operations without modifying the control parameters during the cutting process, thereby improving the cutting efficiency. After the cutting is completed, the fourth motor 302, the second gear 303 and the first rack 105, the guide column 403 will move forward from the inside of the second straight groove 104 and pass through the inclined groove 103 to the first straight groove 102. At this time, the two first connecting seats 404 will drive the second connecting seat 406 to automatically move away from the mold, thereby releasing the fixation of the mold. During the entire positioning process of the mold, after the mold is placed on the top of the storage table 301 near the middle position, no additional power equipment and controller are required to complete the fixing operation. After the processing is completed, the clamp can be automatically released without additional operation, which not only reduces the equipment cost and maintenance cost, but also is convenient and efficient in operation, thereby improving the overall work efficiency of the mold cutting work. At the same time, according to the size of different molds,The second connection seat 406 can be adjusted to be close to or away from the first connection seat 404 by rotating the adjustment screw 405, and the device can be adjusted to clamp molds of different widths. After rotating the bidirectional screw 408, the bidirectional screw 408 will drive the sliding seat 409 inside the embedded groove 407 to move closer or farther synchronously, thereby adjusting the distance between the two triangular push blocks 410, so as to clamp and fix molds of different lengths. During the adjustment process, the first scale 305 and the second scale 411 play a role in improving the adjustment accuracy, so that the device can clamp and fix molds of different sizes, thereby improving the use effect.
[0031] Embodiment 2: Figure 1 , Figure 2 , Figure 7 and Fig. 9 As shown, the difference between the embodiment and the base is that the hollow suction plate 501 is embedded in the center of the top of the storage table 301, the interior of the hollow suction plate 501 is a cavity and a plurality of suction holes are opened on the top, the bottom of the hollow suction plate 501 is symmetrically fixedly connected with a rectangular shell 502, and a piston plate 504 is slidably arranged between the inner surface walls of the rectangular shell 502, and a three-way connecting pipe 503 is fixedly connected between the outer surfaces of the opposite sides of the two rectangular shells 502 near the bottom and the bottom of the hollow suction plate 501. When in use, the piston plate 504 When the rectangular shell 502 moves upward, the space below the piston plate 504 inside the rectangular shell 502 is connected to the internal space of the hollow suction plate 501 through the three-way connecting pipe 503, and the suction hole on the top of the hollow suction plate 501 is blocked by the mold, and the connected space gradually increases, and the air pressure will be lower than the external air pressure. Therefore, under the action of air pressure, the hollow suction plate 501 plays a role in adsorbing and fixing the mold. Conversely, when the piston plate 504 moves downward, the air pressure inside the hollow suction plate 501 is restored, and the fixed mold can be released.
[0032] A spring 508 is fixedly connected between the inner top of the rectangular shell 502 and the top of the piston plate 504, and a second connecting column 505 is fixedly connected to the bottom of the piston plate 504. The outer surface of the second connecting column 505 slides through the inner bottom of the rectangular shell 502 and extends downward. The bottom end of the second connecting column 505 is fixedly connected to a bottom plate 509, and the bottom of the bottom plate 509 is symmetrically fixedly connected to a rotating seat 506. A roller 507 is rotatably connected between the outer surfaces of the two rotating seats 506. The roller 507 cooperates with the guide seat 110. When in use, the placement table 301 drives the mold to move to the gantry 106 area. , the reinforcement component 5 will move with it. When the storage table 301 is in the front position, the roller 507 under the rotating seat 506 in the reinforcement component 5 will roll backward in accordance with the inner bottom of the U-shaped base 101. When it reaches the position of the guide seat 110, the roller 507 will roll to the plane position above the guide seat 110 under the guidance of the front inclined surface of the guide seat 110. During the process, the roller 507 will reach the high position from the low position. During the process, the spring 508 will be squeezed and contracted by the piston plate 504. Conversely, after the roller 507 moves forward, the spring 508 rebounds to generate a downward thrust, and the roller 507 will return to the low position again.
[0033] The steps of using the present invention are as follows: during the process in which the placement table 301 drives the mold to move toward the gantry 106 area, the reinforcement component 5 will follow the movement. When the placement table 301 is in the front position, the roller 507 below the rotating seat 506 in the reinforcement component 5 will roll backward in accordance with the inner bottom of the U-shaped base 101. When reaching the position of the guide seat 110, the roller 507 will roll to the plane position above the guide seat 110 under the guidance of the inclined surface on the front side of the guide seat 110. During the process, the roller 507 will reach the high position from the low position, and push the piston plate 504 to move upward inside the rectangular shell 502 through the bottom plate 509 and the second connecting column 505. At this time, the space below the piston plate 504 inside the rectangular shell 502 is connected to the hollow suction plate through the three-way connecting pipe 503. The internal space of 501 is connected, and the suction hole on the top of the hollow suction plate 501 is blocked by the mold, and the connected space gradually increases, and the air pressure will be lower than the external air pressure. Therefore, under the action of air pressure, the hollow suction plate 501 plays the role of adsorbing and fixing the mold, making the mold cutting process more stable and improving the cutting quality of the mold. The piston plate 504 will squeeze the spring 508 to contract during the upward movement. Therefore, during the forward movement and reset process of the storage table 301, as the roller 507 disengages from the guide seat 110, the spring 508 will rebound and push the piston plate 504 to move down and reset, so that the space inside the hollow suction plate 501 will no longer continue to adsorb the mold after recovery, and the mold can be released without any operation. It is convenient and efficient to use.
[0034] Embodiment 3: Figure 1 , Figure 2 and Figure 4As shown, the difference between the basis of the embodiment and the mounting seat 201 is that the mounting seat 201 is slidably connected to the front surface of the sliding plate 108, and the first motor 202 is fixedly installed near the top of the front surface of the mounting seat 201. The output end of the first motor 202 is fixedly connected to the first gear 203, and the first gear 203 is meshed with the second rack 109. The front surface of the mounting seat 201 is fixedly connected to the first bracket 204 near the bottom. When in use, the cutting machine 208 can be controlled to move left and right through the X-axis slide 107 above the gantry 106. The mold can be controlled to move forward and backward under the cutting machine 208 through the storage table 301 through the cooperation of the fourth motor 302 and the second gear 303. When the first motor 202 is started to drive the first gear 203 to rotate, since the first gear 203 is meshed with the second rack 109 on the surface of the sliding plate 108, the mounting seat 201 and the cutting machine 208 can be driven to move up and down.
[0035] A second motor 205 is fixedly installed on the top of the first bracket 204, and a second bracket 206 is fixedly connected to the output end of the second motor 205. A third motor 207 is installed on the rear surface of the second bracket 206, and a cutter 208 is fixedly installed on the output end of the third motor 207. After the second motor 205 is started, the second bracket 206 is driven to rotate, which can drive the cutter 208 to rotate horizontally. After the third motor 207 is started, the cutter 208 can be driven to rotate longitudinally. The cutting knife angle of the cutter 208 can be changed by mutual cooperation, so that more complex cutting operations can be performed on the mold.
[0036] The use steps of the present invention are as follows: when the placement table 301 drives the mold to move to the area below the gantry 106, the cutting machine 208 can be controlled to move left and right through the X-axis slide 107 above the gantry 106. The fourth motor 302 and the second gear 303 can cooperate to control the mold to move forward and backward under the cutting machine 208 through the placement table 301. When the first motor 202 is started to drive the first gear 203 to rotate, since the first gear 203 is engaged with the second rack 109 on the surface of the sliding plate 108, the mounting seat 201 and the cutting machine 208 can be driven to move up and down. Under mutual cooperation, the cutting machine 208 can move to the front, back, left and right directions of the mold and can perform basic cutting processing on the mold after moving up and down. According to needs, the second motor 205 can be started to drive the second bracket 206 to rotate to drive the cutting machine 208 to rotate horizontally. After the third motor 207 is started, the cutting machine 208 can be driven to rotate longitudinally. Under mutual cooperation, the cutting knife angle of the cutting machine 208 can be changed, so that more complex cutting operations can be performed on the mold, thereby improving the cutting effect.
[0037] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.
Claims
1. A cutting device for mold production, comprising a machine assembly (1), characterized in that: A cutting assembly (2) is arranged near the top of the front surface of the machine assembly (1); a feeding assembly (3) is arranged near the front side of the top of the machine assembly (1); a clamping assembly (4) is symmetrically arranged at the top of the feeding assembly (3); and a reinforcing assembly (5) is arranged at the bottom of the feeding assembly (3); The machine assembly (1) comprises a U-shaped base (101), a first straight groove (102) is symmetrically provided at a position of the inner bottom of the U-shaped base (101) near the front side, a second straight groove (104) is symmetrically provided at a position of the inner bottom of the U-shaped base (101) near the rear surface, and a group of inclined grooves (103) are symmetrically provided at the inner bottom of the U-shaped base (101) near the two side edges, each group of the inclined grooves (103) is arranged in parallel, and the inclined grooves (103), the first straight groove (102) and the second straight groove (104) are arranged in a connected manner; The cutting assembly (2) comprises a mounting seat (201); The feeding assembly (3) comprises a storage platform (301); The two clamping assemblies (4) each comprise a connecting plate (401), the bottom of the connecting plate (401) being symmetrically fixedly connected with a guide column (403), the bottom end of the guide column (403) being slidably inserted into the first straight groove (102); The reinforcement component (5) comprises a hollow suction plate (501).
2. The cutting device for mold production according to claim 1, characterized in that: A first rack (105) is symmetrically fixedly connected to a position near the front side of the top edge of the U-shaped base (101); a gantry (106) is fixedly connected to a position near the middle between the outer surfaces of both sides of the U-shaped base (101); an X-axis slide (107) is arranged on the top of the gantry (106); a sliding plate (108) is arranged on the front surface of the X-axis slide (107); a second rack (109) is fixedly connected to the front surface of the sliding plate (108); and a guide seat (110) is fixedly connected to a position near the rear side of the inner bottom of the U-shaped base (101).
3. The cutting device for mold production according to claim 1, characterized in that: The storage platform (301) is slidably connected to the top of the U-shaped base (101); a fourth motor (302) is installed on the top of the storage platform (301) near the front edge; an output end of the fourth motor (302) rotates through the top of the storage platform (301) and extends downward; a second gear (303) is fixedly connected to the output end of the fourth motor (302); the second gear (303) is meshingly connected to the first rack (105); and a plurality of first sliding grooves (304) are symmetrically provided on the top of the storage platform (301) near the two side edges.
4. The cutting device for mold production according to claim 1, characterized in that: A plurality of first connecting columns (402) are fixedly connected to the top of the connecting plate (401); the outer surfaces of the first connecting columns (402) are slidably attached to the inner surface wall of the first sliding groove (304) and extend upward; the top of the first connecting column (402) is fixedly connected to a first connecting seat (404); and the first connecting seat (404) is slidably connected to the top of the storage table (301).
5. The cutting device for mold production according to claim 4, characterized in that: An adjusting screw rod (405) is symmetrically threadedly connected to an outer surface of one side of the first connecting seat (404); one end of the adjusting screw rod (405) is rotatably connected to a second connecting seat (406); an outer surface of the second connecting seat (406) away from the first connecting seat (404) is provided with an embedded groove (407); a sliding seat (409) is symmetrically slidably embedded between the inner surface walls of the embedded groove (407); and a triangular push block (410) is fixedly connected to the outer surface of the sliding seat (409) away from the second connecting seat (406).
6. The cutting device for mold production according to claim 5, characterized in that: A bidirectional screw rod (408) is rotatably connected between the front and rear inner walls of the embedded groove (407); the outer surface of the bidirectional screw rod (408) is threadedly passed through the outer surface of the sliding seat (409); a second scale (411) is provided at the top of the second connecting seat (406) near the front surface; and a first scale (305) is symmetrically provided at the top of the storage platform (301) near the front surface.
7. The cutting device for mold production according to claim 1, characterized in that: The hollow suction plate (501) is embedded in the center of the top of the storage table (301); the interior of the hollow suction plate (501) is arranged as a cavity and a plurality of suction holes are opened on the top; the bottom of the hollow suction plate (501) is symmetrically fixedly connected with a rectangular shell (502); a piston plate (504) is slidably arranged between the inner surface walls of the rectangular shell (502); and a three-way connecting pipe (503) is fixedly connected between the outer surfaces of the opposite sides of the two rectangular shells (502) near the bottom and the bottom of the hollow suction plate (501).
8. The cutting device for mold production according to claim 7, characterized in that: A spring (508) is fixedly connected between the inner top of the rectangular shell (502) and the top of the piston plate (504); a second connecting column (505) is fixedly connected to the bottom of the piston plate (504); the outer surface of the second connecting column (505) slides through the inner bottom of the rectangular shell (502) and extends downward; the bottom end of the second connecting column (505) is fixedly connected to a bottom plate (509); a rotating seat (506) is symmetrically fixedly connected to the bottom of the bottom plate (509); a roller (507) is rotatably connected between the outer surfaces of the two rotating seats (506); the roller (507) and the guide seat (110) cooperate with each other.
9. The cutting device for mold production according to claim 1, characterized in that: The mounting seat (201) is slidably connected to the front surface of the sliding plate (108); a first motor (202) is fixedly installed at a position near the top of the front surface of the mounting seat (201); a first gear (203) is fixedly connected to the output end of the first motor (202); the first gear (203) is meshingly connected to the second rack (109); and a first bracket (204) is fixedly connected to a position near the bottom of the front surface of the mounting seat (201).
10. The cutting device for mold production according to claim 9, characterized in that: A second motor (205) is fixedly mounted on the top of the first bracket (204); an output end of the second motor (205) is fixedly connected to a second bracket (206); a third motor (207) is mounted on the rear surface of the second bracket (206); and a cutting machine (208) is fixedly mounted on the output end of the third motor (207).
Citation Information
Patent Citations
Cutting device for mould production
CN108621309A