Die machining device facilitating station switching

The integrated mold processing device enables automated switching of mold processing stations and recycling of cutting fluid, solving the problems of low mold processing efficiency and uneven cutting fluid distribution, and improving processing accuracy and tool life.

CN120921164APending Publication Date: 2025-11-11WUXI INSTITUTE OF TECHNOLOGY
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Patent Information

Application Number
CN202511370174.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-24
Publication Date
2025-11-11

AI Technical Summary

Technical Problem

The mold processing process requires manual operation between different workstations, which affects processing efficiency and accuracy. Uneven mixing of cutting fluid leads to mold corrosion and tool wear, making cleaning inconvenient and inefficient.

Method used

A mold processing device with easy-to-switch workstations was designed, integrating clamping, spraying cutting fluid, roughing and finishing, cleaning and cutting fluid circulation functions. The device achieves automated operation through motor-driven rotation and gas cleaning components, preventing cutting fluid sedimentation and maintaining uniformity.

Benefits of technology

It reduces station changeover time, avoids manual operation and multiple mold disassembly and assembly, improves processing efficiency and accuracy, extends tool life, maintains the uniformity of cutting fluid, and improves cooling and lubrication effects.

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Abstract

The invention relates to the technical field of mold processing, in particular to a mold processing device convenient for station switching, which comprises a switching assembly arranged in an outer disc, a cleaning assembly arranged at the top of the outer disc, and a stirring assembly arranged in a cutting fluid box; the switching assembly comprises a leakage groove, the bottom of the outer surface of the leakage groove is fixedly connected with an inner disc, the bottom of the outer surface of the inner disc is fixedly connected with a rotating bevel gear, the outer surface of the rotating bevel gear is in toothed connection with a power bevel gear, the cleaning assembly comprises a first supporting plate, and a first crank is rotationally embedded in the first supporting plate; the outer surface of the first crank is rotationally sleeved with a second crank, and the outer surface of the second crank is rotationally sleeved with a sliding rod. The mold machining device facilitating station switching can conveniently switch the machining stations between the molds, the molds are cleaned in the mold machining process, the mold machining efficiency is improved, and the mold machining efficiency is improved. And mold corrosion or cutter abrasion caused by non-uniform mixing of the cutting fluid can be avoided.
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Description

Technical Field

[0001] This invention relates to the field of mold processing technology, specifically to a mold processing device that facilitates switching of workstations. Background Technology

[0002] During mold production, different processing devices are used to process the molds. Each time, workers need to manually operate and change between different workstations, wasting a lot of time and affecting the processing efficiency of the mold workpieces. Moreover, repeated disassembly and assembly of the mold will affect the processing accuracy. At the same time, when cleaning the mold for debris, it is usually done after the entire processing is completed. This will result in scratches or burrs on the mold surface and shorten the service life of the tools. Furthermore, cutting fluid is sprayed on the mold surface during processing. Cutting fluid is usually composed of base oils such as mineral oil, synthetic esters, emulsifiers, rust inhibitors, extreme pressure additives, etc. When left to stand, density differences will cause the components to separate into layers, such as the oil phase floating and the water phase sinking. Additives may precipitate or precipitate, resulting in uneven concentration of the sprayed cutting fluid. This will lead to a decrease in cooling and lubrication performance, and may even cause mold corrosion or tool wear. Summary of the Invention

[0003] The purpose of this invention is to provide a mold processing device that facilitates switching between processing stations, allows for easy switching between processing stations of molds, cleans the molds during the mold processing process, and avoids mold corrosion or tool wear caused by uneven mixing of cutting fluid.

[0004] To achieve the above objectives, the present invention provides the following technical solution: a mold processing device for easy switching of workstations, comprising a switching component disposed inside the outer disk, the switching component including a trough, and an inner disk fixedly connected to the bottom of the outer surface of the trough, a rotating helical gear fixedly connected to the bottom of the outer surface of the inner disk, and a power helical gear teething the outer surface of the rotating helical gear; and a cleaning component disposed on the top of the outer disk, the cleaning component including a first support plate, and a first crank rotatably embedded inside the first support plate, a second crank rotatably sleeved on the outer surface of the first crank, and a slide rod rotatably sleeved on the outer surface of the second crank, a piston fixedly connected to one side of the outer surface of the slide rod, the piston... A plug is slidably embedded inside the air cylinder, and a cleaning tube is fixedly connected to one side of the outer surface of the air cylinder; and a stirring assembly is installed inside the cutting fluid tank. The stirring assembly includes a support frame, and an output rod is rotatably embedded inside the support frame. A third helical gear is fixedly connected to the outer surface of the output rod. A first helical gear is rotatably embedded inside the cutting fluid tank, and a first connecting rod is fixedly connected to one side of the outer surface of the first helical gear. A first stirring plate is fixedly connected to the outer surface of the first connecting rod. A second helical gear is rotatably embedded inside the cutting fluid tank, and a second connecting rod is fixedly connected to one side of the outer surface of the second helical gear. A second stirring plate is fixedly connected to the outer surface of the second connecting rod.

[0005] Preferably, the power helical gear is rotatably embedded in the second support plate, and a first motor is fixedly connected to one side of the outer surface of the second support plate. The output shaft of the first motor is fixedly connected to the power helical gear. A clamping mechanism is fixedly connected to the top of the outer surface of the trough. The side of the cleaning tube away from the air cylinder is located inside the clamping mechanism. A roughing component is provided on one side of the outer surface of the outer disk, and a finishing component is provided on one side of the outer surface of the outer disk. Multiple fixing brackets are fixedly connected to the top of the outer surface of the outer disk, and a spray head is provided inside one side of one of the multiple fixing brackets. A liquid outlet pipe is provided inside the spray head, and the side of the liquid outlet pipe away from the spray head is located inside the cutting liquid tank.

[0006] Preferably, a cleaning fluid tank is provided on one side of the outer surface of the outer plate, and a cleaning tube is provided inside the cleaning fluid tank. Multiple cleaning heads are provided inside one side of the multiple fixing brackets, and the side of the cleaning tube away from the cleaning fluid tank is located inside the cleaning head.

[0007] Preferably, an air inlet pipe is fixedly connected to one side of the outer surface of the air cylinder, a control valve is provided inside the air cylinder, a first flexible hose is fixedly connected to one side of the outer surface of the air cylinder, and an air storage tank is provided on the side of the first flexible hose away from the air cylinder.

[0008] Preferably, the gas storage tank is provided with a second hose inside, and the side of the second hose away from the gas storage tank is located inside the liquid outlet pipe. The gas storage tank is provided with a third hose inside, and the side of the third hose away from the gas storage tank is located inside the cleaning liquid tank.

[0009] Preferably, the inner disc has a rotatable feed pipe embedded inside, and a feed pipe is fixedly connected to one side of the outer surface of the feed pipe. A circulation box is fixedly connected to one side of the outer surface of the feed pipe, and a discharge valve is provided inside the circulation box. A return pipe is provided inside the circulation box, and the side of the return pipe away from the circulation box is located inside the cutting liquid tank. A fourth hose is provided inside the circulation box, and the side of the fourth hose away from the circulation box is located inside the gas storage tank.

[0010] Preferably, the first connecting rod is rotatably embedded inside the second connecting rod, one side of the outer surface of the third helical gear meshes with the first helical gear, one side of the outer surface of the third helical gear meshes with the second helical gear, the output rod is rotatably embedded inside the first support plate, one side of the outer surface of the first support plate is fixedly connected to the second motor, and the output shaft of the second motor is fixedly connected to the output rod.

[0011] Preferably, a first synchronous wheel is rotatably embedded inside the first support plate, a second synchronous wheel is rotatably embedded inside the first support plate, and a synchronous belt is wound around the outer surface of the second synchronous wheel. The side of the synchronous belt away from the second synchronous wheel is wound around the outer surface of the first synchronous wheel. One side of the outer surface of the second synchronous wheel is fixedly connected to the first crank, and one side of the outer surface of the first synchronous wheel is fixedly connected to the output rod.

[0012] Compared with the prior art, the beneficial effects of the present invention are: This invention clamps the mold within a clamping mechanism. A first motor drives a slug to rotate, which in turn drives the clamping mechanism. First, cutting fluid is sprayed onto the mold surface through a spray nozzle. After spraying, the mold undergoes rough machining, followed by finish machining. After machining, the parts are cleaned through a cleaning head. The cutting fluid and cleaning fluid flow into the feed pipe through the slug, enabling the recycling of the cutting fluid. This is integrated into a continuous operation process, reducing the time spent on intermediate steps, avoiding manual operation and replacement between different workstations, saving time, and avoiding the increased labor intensity of workers due to repeated mold disassembly and reassembly, thus avoiding the impact on the processing efficiency and accuracy of the molded workpieces caused by repeated mold disassembly and reassembly.

[0013] This invention utilizes a second motor to drive a piston, which in turn moves the air cylinder in and out. The gas enters through the intake pipe and exits through the cleaning pipe, continuously blowing away debris generated during processing. This prevents debris accumulation from affecting subsequent processing accuracy or causing surface scratches, and extends tool life. In addition to cleaning debris, the gas, controlled by a valve, creates pressure fluctuations during tool cleaning through the coordination of the air tank and cleaning fluid tank, resulting in pulse cleaning. This removes stubborn debris more thoroughly than continuous cleaning, reduces the risk of thermal damage, and improves cleaning effectiveness. The air tank is connected to the outlet pipe via a second hose, pressurizing the cutting fluid during spraying. This pressurized spraying allows the cutting fluid to be sprayed over a wider area, improving cooling and lubrication.

[0014] In this invention, when the second motor starts and drives the output rod to rotate, the rotation of the output rod also drives the third helical gear to rotate. The rotation of the third helical gear, in turn, drives the first and second helical gears to rotate, but the rotation of the first and second helical gears is in opposite directions. The first helical gear is connected to the first stirring plate through the first connecting rod, and the second helical gear is connected to the second stirring plate through the second connecting rod. The rotation of the first and second stirring plates stirs the cutting fluid inside the cutting fluid tank. The two sets of opposing rotations cancel out the torque, thereby achieving efficient stirring, preventing the cutting fluid from settling, maintaining its uniformity, extending the service life of the cutting fluid, and improving its cooling and lubrication effects. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall three-dimensional structure of the present invention; Figure 2 This is a partial three-dimensional structural schematic diagram of the present invention; Figure 3 This is a head-up three-dimensional structural diagram of the present invention; Figure 4 This is a schematic diagram of the disassembled three-dimensional structure of the present invention; Figure 5 This is a three-dimensional structural diagram of the stirring assembly of the present invention; Figure 6 This is a three-dimensional structural diagram of the cleaning component of the present invention.

[0016] In the diagram: 1. Outer plate; 101. Clamping mechanism; 102. Roughing assembly; 103. Finishing assembly; 104. Fixing frame; 105. First support plate; 2. Slot; 201. Inner plate; 202. Rotating helical gear; 203. Power helical gear; 204. First motor; 205. Second support plate; 3. Cutting fluid tank; 301. Support frame; 302. Third helical gear; 303. First helical gear; 304. Second helical gear; 305. First connecting rod; 306. First stirring plate; 307. Second connecting rod; 308. Second stirring plate; 309. Discharge pipe; 310. Spray head; 4. Output rod; 401. Second motor; 402. Synchronous belt; 403. First synchronous pulley; 404. Second synchronous pulley; 5. Air cylinder; 501. Control valve; 502. Slide rod; 503. Piston; 504. Air inlet pipe; 505. Cleaning pipe; 506. First crank; 507. Second crank; 6. Air tank; 601. First hose; 602. Second hose; 603. Third hose; 604. Fourth hose; 7. Cleaning liquid tank; 701. Cleaning pipe; 702. Cleaning head; 8. Circulation tank; 801. Feed pipe; 802. Discharge valve; 803. Return pipe; 804. Discharge pipe. Detailed Implementation

[0017] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without inventive effort are within the scope of protection of the present invention.

[0018] This invention provides a mold processing device that facilitates switching workstations, including a switching component disposed inside an outer disk 1; the switching component includes a trough 2, and an inner disk 201 is fixedly connected to the bottom of the outer surface of the trough 2, a rotating helical gear 202 is fixedly connected to the bottom of the outer surface of the inner disk 201, and a power helical gear 203 is geared to the outer surface of the rotating helical gear 202; the power helical gear 203 is rotatably embedded in a second support plate 205, and a first motor 204 is fixedly connected to one side of the outer surface of the second support plate 205, the output shaft of the first motor 204 being fixedly connected to the power helical gear 203; a clamping mechanism 101 is fixedly connected to the top of the outer surface of the trough 2, and the side of the cleaning tube 505 away from the air cylinder 5 is disposed inside the clamping mechanism 101; a roughing component 102 is disposed on one side of the outer surface of the outer disk 1, and a finishing component 102 is disposed on one side of the outer surface of the outer disk 1. Component 103 has multiple fixed brackets 104 fixedly connected to the top of the outer surface of the outer plate 1. A spray head 310 is provided inside one side of the multiple fixed brackets 104. A liquid outlet pipe 309 is provided inside the spray head 310. The side of the liquid outlet pipe 309 away from the spray head 310 is located inside the cutting liquid tank 3. The inner plate 201 has a feeding pipe 804 rotatably embedded inside. A feeding pipe 801 is fixedly connected to one side of the outer surface of the feeding pipe 804. A circulation box 8 is fixedly connected to one side of the outer surface of the feeding pipe 801. A discharge valve 802 is provided inside the circulation box 8. A return pipe 803 is provided inside the circulation box 8. The side of the return pipe 803 away from the circulation box 8 is located inside the cutting liquid tank 3. A fourth hose 604 is provided inside the circulation box 8. The side of the fourth hose 604 away from the circulation box 8 is located inside the gas storage box 6. See Figures 1 to 4As shown, the mold is clamped in the clamping mechanism 101. The first motor 204 is turned on, driving the power helical gear 203 to rotate. The rotation of the power helical gear 203 drives the inner disk 201 to rotate, which in turn drives the trough 2 to rotate. The trough 2 then drives the clamping mechanism 101 to rotate. The clamping mechanism 101 first rotates to the bottom of the spray head 310, drawing cutting fluid from the cutting fluid tank 3 and spraying it onto the mold surface. After spraying, the first motor 204 continues to rotate, moving the clamping mechanism 101 to the roughing assembly 102. The roughing assembly 102 performs roughing on the mold, such as drilling. Then, it moves to the finishing assembly 103 for finishing. After processing, the part is moved to the bottom of the cleaning head 702 for cleaning. The cutting fluid and cleaning fluid flow into the feed pipe 804 through the trough 2. The feed pipe 804 is connected to the circulation tank 8 through the feed pipe 801. The circulation tank 8 is connected to the cutting fluid tank 3 through the return pipe 803. The return pipe 803 is equipped with a baffle that allows only liquid to pass through. The cutting fluid is recycled through the circulation tank 8. The above technical solution is integrated into a continuous operation process, reducing the conversion time of intermediate steps, avoiding manual operation and replacement between different workstations, saving time, avoiding the increase in labor intensity of workers due to multiple disassembly and relocation of molds, avoiding the impact on the processing efficiency of mold workpieces due to multiple disassembly and reassembly of molds, and avoiding the impact on processing accuracy due to multiple disassembly and reassembly of molds. The cleaning assembly, located on the top of the outer plate, includes a first support plate 105. A first crank 506 is rotatably embedded inside the first support plate 105. A second crank 507 is rotatably sleeved on the outer surface of the first crank 506. A slide rod 502 is rotatably sleeved on the outer surface of the second crank 507. A piston 503 is fixedly connected to one side of the outer surface of the slide rod 502. The piston 503 is slidably embedded inside the air cylinder 5. A cleaning pipe 505 is fixedly connected to one side of the outer surface of the air cylinder 5. An air inlet pipe 504 is fixedly connected to one side of the outer surface of the air cylinder 5. A control valve 501 is installed inside the air cylinder 5. A first flexible hose 601 is fixedly connected to one side of the outer surface of the air cylinder 5. An air storage tank 6 is located on the side of the first flexible hose 601 away from the air cylinder 5. The air storage tank 6 contains... A second hose 602 is provided, and the side of the second hose 602 away from the gas storage tank 6 is located inside the liquid outlet pipe 309. A third hose 603 is provided inside the gas storage tank 6, and the side of the third hose 603 away from the gas storage tank 6 is located inside the cleaning liquid tank 7. A first synchronous wheel 403 is rotatably embedded inside the first support plate 105, and a second synchronous wheel 404 is rotatably embedded inside the first support plate 105. A synchronous belt 402 is wrapped around the outer surface of the second synchronous wheel 404, and the side of the synchronous belt 402 away from the second synchronous wheel 404 is wrapped around the outer surface of the first synchronous wheel 403. One side of the outer surface of the second synchronous wheel 404 is fixedly connected to the first crank 506, and one side of the outer surface of the first synchronous wheel 403 is fixedly connected to the output rod 4. See Figures 1 to 6As shown, by turning on the second motor 401, the output rod 4 rotates, which in turn drives the connected first synchronous pulley 403 to rotate. The rotation of the first synchronous pulley 403, through the synchronous belt 402, drives the second synchronous pulley 404 to rotate. When the second synchronous pulley 404 rotates, it drives the first crank 506 to rotate. Through the cooperation of the first crank 506 and the slide rod 502, the rotational motion of the first crank 506 is converted into the reciprocating motion of the piston 503. Through the reciprocating motion of the piston 503, the air cylinder 5 is driven to inhale and exhale. The gas enters the cleaning pipe 505 through the air inlet pipe 504 and is discharged through the cleaning pipe 505. The cleaning pipe 505 is connected to the clamping mechanism 101. The cleaning pipe 505 is a long hose. When the clamping mechanism 101 rotates, the cleaning pipe 505 is wrapped around the feed pipe 804. After completing one revolution of processing... The clamping mechanism 101 needs to be reset. During the workpiece processing within the clamping mechanism 101, the debris generated during processing is continuously blown away, preventing debris accumulation from affecting subsequent processing accuracy or causing surface scratches, and extending tool life. The gas not only cleans the debris, but also, under the control of the control valve 501, the gas enters the gas storage tank 6 through the first hose 601. The gas storage tank 6 is connected to the cleaning fluid tank 7 through the third hose 603. When cleaning the tool, the cooperation between the gas storage tank 6 and the cleaning fluid tank 7 creates air pressure fluctuations to form pulse cleaning, which removes stubborn debris more thoroughly than continuous cleaning, reduces the risk of thermal damage, and improves the cleaning effect. The gas storage tank 6 is also connected to the liquid outlet pipe 309 through the second hose 602, which pressurizes the cutting fluid during the spraying process. Pressurized spraying increases the spray range of the cutting fluid, thereby improving the cooling and lubrication effect. The cutting fluid tank 3 is equipped with a stirring assembly, which includes a support frame 301. An output rod 4 is rotatably embedded inside the support frame 301. A third helical gear 302 is fixedly connected to the outer surface of the output rod 4. A first helical gear 303 is rotatably embedded inside the cutting fluid tank 3. A first connecting rod 305 is fixedly connected to one side of the outer surface of the first helical gear 303. A first stirring plate 306 is fixedly connected to the outer surface of the first connecting rod 305. A second helical gear 304 is rotatably embedded inside the cutting fluid tank 3. A first stirring plate 306 is fixedly connected to one side of the outer surface of the second helical gear 304. A second connecting rod 307 is fixedly connected, and a second stirring plate 308 is fixedly connected to the outer surface of the second connecting rod 307; a first connecting rod 305 is rotatably embedded inside the second connecting rod 307; one side of the outer surface of the third helical gear 302 meshes with the first helical gear 303, and one side of the outer surface of the third helical gear 302 meshes with the second helical gear 304; an output rod 4 is rotatably embedded inside the first support plate 105; a second motor 401 is fixedly connected to one side of the outer surface of the first support plate 105, and the output shaft of the second motor 401 is fixedly connected to the output rod 4. See Figures 3 to 5As shown, when the second motor 401 starts and drives the output rod 4 to rotate, the rotation of the output rod 4 also drives the third helical gear 302 to rotate. The rotation of the third helical gear 302 drives the first helical gear 303 and the second helical gear 304 to rotate. However, the rotation of the first helical gear 303 and the second helical gear 304 is opposite. The first helical gear 303 is connected to the first stirring plate 306 through the first connecting rod 305, and the second helical gear 304 is connected to the second stirring plate 308 through the second connecting rod 307. The rotation of the first stirring plate 306 and the second stirring plate 308 stirs the cutting fluid inside the cutting fluid tank 3. The two sets of oppositely rotating stirring achieve torque cancellation, thereby achieving efficient stirring, preventing the cutting fluid from settling, maintaining its uniformity, extending the service life of the cutting fluid, and improving its cooling and lubrication effects.

[0019] Working principle: The mold is clamped in the clamping mechanism 101. By turning on the first motor 204, the first motor 204 drives the power helical gear 203 to rotate. The rotation of the power helical gear 203 drives the inner disk 201 to rotate. The rotation of the inner disk 201 drives the trough 2 to rotate. The trough 2 drives the clamping mechanism 101 to rotate. The clamping mechanism 101 first rotates to the bottom of the spray head 310. The spray head 310 draws cutting fluid from the cutting fluid tank 3 and sprays the cutting fluid onto the mold surface. After spraying, the first motor 204 continues to rotate, rotating the clamping mechanism 101 to the roughing position. At component 102, the mold is rough-machined, such as by drilling, and then moved to component 103 for finishing. After finishing, it is moved to the bottom of cleaning head 702 to clean the parts. The cutting fluid and cleaning fluid flow into the feed pipe 804 through the trough 2. The feed pipe 804 is connected to the circulation tank 8 through the feed pipe 801. The circulation tank 8 is connected to the cutting fluid tank 3 through the return pipe 803. The return pipe 803 is equipped with a baffle that allows only liquid to pass through. The cutting fluid is recycled through the circulation tank 8. By turning on the second motor 401, the output rod 4 is driven to enter the machine. The output rod 4 rotates, causing the connected first synchronous pulley 403 to rotate. The rotation of the first synchronous pulley 403 drives the second synchronous pulley 404 to rotate via the synchronous belt 402. The rotation of the second synchronous pulley 404 drives the first crank 506 to rotate. Through the cooperation of the first crank 506 and the slide rod 502, the rotational motion of the first crank 506 is converted into the reciprocating motion of the piston 503. The reciprocating motion of the piston 503 drives the air cylinder 5 to inhale and exhale. The gas enters the cleaning pipe 505 through the air inlet pipe 504 and is discharged through the cleaning pipe 505. The cleaning pipe 505 is connected to the clamping mechanism 101 and is a long flexible tube. When the clamping mechanism 101 rotates, the cleaning tube 505 wraps around the feeding tube 804. After completing one round of processing, the clamping mechanism 101 needs to be reset. During the workpiece processing in the clamping mechanism 101, the debris generated during the processing is continuously blown away, which avoids the accumulation of debris affecting the subsequent processing accuracy or causing surface scratches, and extends the tool life. The gas can not only clean the debris, but also enter the gas storage tank 6 through the first hose 601 under the control of the control valve 501. The gas storage tank 6 is connected to the cleaning liquid tank 7 through the third hose 603. When cleaning the tool, the air pressure fluctuation is formed by the cooperation of the gas storage tank 6 and the cleaning liquid tank 7 to form a pulse cleaning.When the second motor 401 starts and drives the output rod 4 to rotate, the rotation of the output rod 4 also drives the third helical gear 302 to rotate. The rotation of the third helical gear 302, in turn, drives the first helical gear 303 and the second helical gear 304 to rotate, but the rotation of the first helical gear 303 and the second helical gear 304 is in opposite directions. The first helical gear 303 is connected to the first stirring plate 306 through the first connecting rod 305, and the second helical gear 304 is connected to the second stirring plate 308 through the second connecting rod 307. The rotation of the first stirring plate 306 and the second stirring plate 308 stirs the cutting fluid inside the cutting fluid tank 3.

[0020] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A mold processing device that facilitates switching of workstations, characterized in that, The switching component includes a trough (2) inside the outer disk (1); the switching component includes a trough (2), and an inner disk (201) is fixedly connected to the bottom of the outer surface of the trough (2), a rotating helical gear (202) is fixedly connected to the bottom of the outer surface of the inner disk (201), and a power helical gear (203) is toothed on the outer surface of the rotating helical gear (202). The cleaning component is provided on the top of the outer plate (1). The cleaning component includes a first support plate (105), and a first crank (506) is rotatably embedded inside the first support plate (105). A second crank (507) is rotatably sleeved on the outer surface of the first crank (506), and a slide rod (502) is rotatably sleeved on the outer surface of the second crank (507). A piston (503) is fixedly connected to one side of the outer surface of the slide rod (502). The piston (503) is slidably embedded inside the air cylinder (5). A cleaning tube (505) is fixedly connected to one side of the outer surface of the air cylinder (5). The cutting fluid tank (3) is equipped with a stirring assembly; the stirring assembly includes a support frame (301), and an output rod (4) is rotatably embedded inside the support frame (301). A third helical gear (302) is fixedly connected to the outer surface of the output rod (4). A first helical gear (303) is rotatably embedded inside the cutting fluid tank (3), and a first connecting rod (305) is fixedly connected to one side of the outer surface of the first helical gear (303). A first stirring plate (306) is fixedly connected to the outer surface of the first connecting rod (305). A second helical gear (304) is rotatably embedded inside the cutting fluid tank (3), and a second connecting rod (307) is fixedly connected to one side of the outer surface of the second helical gear (304). A second stirring plate (308) is fixedly connected to the outer surface of the second connecting rod (307).

2. The mold processing device for easy switching of workstations according to claim 1, characterized in that, The power helical gear (203) is rotatably embedded in the second support plate (205), and a first motor (204) is fixedly connected to one side of the outer surface of the second support plate (205). The output shaft of the first motor (204) is fixedly connected to the power helical gear (203). A clamping mechanism (101) is fixedly connected to the top of the outer surface of the trough (2). The side of the cleaning tube (505) away from the air cylinder (5) is located inside the clamping mechanism (101). A roughing component (102) is provided on one side of the outer surface of the outer disk (1). A finishing component (103) is provided on one side of the outer surface of the outer disk (1). A plurality of fixing brackets (104) are fixedly connected to the top of the outer surface of the outer disk (1). A spray head (310) is provided inside one side of the plurality of fixing brackets (104). A liquid outlet pipe (309) is provided inside the spray head (310). The side of the liquid outlet pipe (309) away from the spray head (310) is located inside the cutting liquid tank (3).

3. The mold processing device for easy switching of workstations according to claim 1, characterized in that, A cleaning liquid tank (7) is provided on one side of the outer surface of the outer plate (1), and a cleaning tube (701) is provided inside the cleaning liquid tank (7). Multiple cleaning heads (702) are provided inside one side of the multiple fixing brackets (104), and the side of the cleaning tube (701) away from the cleaning liquid tank (7) is provided inside the cleaning head (702).

4. The mold processing device for easy switching of workstations according to claim 1, characterized in that, An air inlet pipe (504) is fixedly connected to one side of the outer surface of the air cylinder (5). A control valve (501) is provided inside the air cylinder (5). A first hose (601) is fixedly connected to one side of the outer surface of the air cylinder (5), and an air storage tank (6) is provided on the side of the first hose (601) away from the air cylinder (5).

5. A mold processing device for easy switching of workstations according to claim 4, characterized in that, The gas storage tank (6) is provided with a second hose (602) inside, and the side of the second hose (602) away from the gas storage tank (6) is located inside the liquid outlet pipe (309). The gas storage tank (6) is provided with a third hose (603) inside, and the side of the third hose (603) away from the gas storage tank (6) is located inside the cleaning liquid tank (7).

6. The mold processing device for easy switching of workstations according to claim 1, characterized in that, The inner disc (201) is rotatably embedded with a feed pipe (804), and a feed pipe (801) is fixedly connected to one side of the outer surface of the feed pipe (804). A circulation box (8) is fixedly connected to one side of the outer surface of the feed pipe (801), and a discharge valve (802) is provided inside the circulation box (8). A return pipe (803) is provided inside the circulation box (8), and the side of the return pipe (803) away from the circulation box (8) is located inside the cutting liquid tank (3). A fourth hose (604) is provided inside the circulation box (8), and the side of the fourth hose (604) away from the circulation box (8) is located inside the gas storage tank (6).

7. The mold processing device for easy switching of workstations according to claim 1, characterized in that, The first connecting rod (305) is rotatably embedded inside the second connecting rod (307). One side of the outer surface of the third helical gear (302) meshes with the first helical gear (303), and one side of the outer surface of the third helical gear (302) meshes with the second helical gear (304). The output rod (4) is rotatably embedded inside the first support plate (105). One side of the outer surface of the first support plate (105) is fixedly connected to the second motor (401), and the output shaft of the second motor (401) is fixedly connected to the output rod (4).

8. A mold processing device for easy switching of workstations according to claim 1, characterized in that, The first support plate (105) is rotatably fitted with a first synchronous pulley (403), and the first support plate (105) is rotatably fitted with a second synchronous pulley (404). The outer surface of the second synchronous pulley (404) is wrapped with a synchronous belt (402). The side of the synchronous belt (402) away from the second synchronous pulley (404) is wrapped with the outer surface of the first synchronous pulley (403). One side of the outer surface of the second synchronous pulley (404) is fixedly connected to the first crank (506), and one side of the outer surface of the first synchronous pulley (403) is fixedly connected to the output rod (4).