DIY toy making device capable of being quickly pressed and formed

Through the cooperation of the injection molding machine, lifting mechanism, unloading mechanism and vibration mechanism, the problems of difficult demoulding and inconvenient cooling in DIY toy production are solved, rapid molding and efficient demoulding are achieved, and production efficiency is improved.

CN116653249BActive Publication Date: 2025-10-21JIAN CRAB KINGDOM TECH CO LTD +1
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Patent Information

Application Number
CN202310888771.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-19
Publication Date
2025-10-21
Estimated Expiration
2043-07-19

AI Technical Summary

Technical Problem

In the existing DIY toy production process, the irregular shapes of the parts make demolding difficult, and traditional molds are inconvenient to cool, making rapid molding impossible.

Method used

The injection molding machine, lifting mechanism, unloading mechanism and vibration mechanism are coordinated, and rapid molding and unloading are achieved through cooling in a cooling pool, air demoulding and mold design.

Benefits of technology

The rapid prototyping, cooling and demoulding of DIY toys are realized, which avoids mold damage and improves production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a DIY toy manufacturing device capable of being quickly pressed and formed, and belongs to the technical field of toy forming manufacturing equipment. A first lifting mechanism is arranged on a first support frame, a second lifting mechanism is arranged on a cooling pool, a forming mechanism for manufacturing and forming the DIY toy is arranged on a shell, the first support frame is uniformly provided with communicating chambers, second through holes on each communicating chamber are respectively communicated with the output end of an air inflating pump through air inflating pipelines, a discharging mechanism is arranged on a third support frame, and a vibrating mechanism is arranged on the third support frame. The application adopts an injection molding machine to inject and fill molten plastic into a mold cavity between a first mold and a second mold, and after cooling, gas enters the mold cavity through the air holes, so that the formed toy in the mold cavity is convenient for quick demolding. The other end of the shell moves downward, the other end of the shell moves to the position of the discharging hole, and the discharging hole is used for discharging, so that the purpose of quick forming, demolding and discharging of the toy can be achieved.
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Description

Technical Field

[0001] The invention belongs to the technical field of toy molding and manufacturing equipment, and particularly relates to a DIY toy manufacturing device that can be quickly pressed and molded. Background Art

[0002] As an emerging industry, DIY toys are deeply loved by young people because of their do-it-yourself and self-design features. The process is usually that customers send their design ideas to manufacturers, and manufacturers make the corresponding parts and then send them to customers to assemble. This method can not only meet the customer's design needs, but also allow customers to have different fun in the assembly process. However, in the production process, since most of the toy parts are irregular in shape, it is not easy to demold during production. Forced demolding will damage the toy, and traditional molds are not convenient for cooling, so they cannot be quickly formed. Summary of the Invention

[0003] The technical problem to be solved by the present invention is to overcome the disadvantages of the above-mentioned prior art and provide a DIY toy making device that can be quickly pressed and formed with rapid molding, demoulding and unloading.

[0004] The technical solution adopted to solve the above technical problems is: a first support frame is fixedly installed on the top side of the cooling pool, a unloading hole is provided on the cooling pool, and there is coolant inside the cooling pool; the first support frame is provided with a first lifting mechanism that drives the injection molding machine to move in a vertical direction; the cooling pool is provided with a second lifting mechanism that drives the third support frame to move in a vertical direction inside the cooling pool; the third support frame is provided with a shell located below the injection molding machine, and the shell is provided with a molding mechanism for making and molding DIY toys; connecting chambers are evenly provided on the first support frame, and the second through holes on each connecting chamber are respectively connected to the output end of the air pump through the inflation pipe; the third support frame is provided with a unloading mechanism for unloading the molded DIY toys; the third support frame is provided with a vibration mechanism that drives the shell to vibrate, and the vibration mechanism is connected to the unloading mechanism.

[0005] Furthermore, the molding mechanism is as follows: the third support frame is connected to the second support frame through a first spring, the bottom of the second support frame is movably installed with a first connecting plate located below the shell, sliding holes are respectively processed on both sides of the second support frame, the two sliding holes are slidably connected to the sliding rod, and a unloading mechanism and a vibration mechanism are respectively provided on the sliding rod, the sliding rod is connected to the second support frame through a second spring, a second connecting shaft is provided on the sliding rod, the second connecting shaft is connected to one end of the shell, and the other end of the shell contacts the communicating chamber of the first support frame, and a closed space is formed between the communicating chamber of the first support frame and the inside of the shell, the upper top plate of the shell is evenly processed with a first through hole, and the inside of the shell is respectively provided with a first mold and a second mold located in the first through hole, each first mold and each second mold are respectively processed with an air vent, and there is a mold cavity between each first mold and the corresponding second mold, and the mold cavity is located below the injection molding machine.

[0006] Furthermore, the shell is provided with a second motor for driving the second gear to rotate, and the shell is respectively rotatably installed with a third screw rod, a fourth screw rod, a fifth screw rod and a sixth screw rod, the sixth screw rod is provided with a first gear that meshes with the second gear, and the sixth screw rod is connected to the third screw rod, the fourth screw rod and the fifth screw rod through a second belt. The third screw rod and the sixth screw rod are respectively threadedly connected to the second mold, and the thread direction of the third screw rod is the same as the thread direction of the sixth screw rod. The fourth screw rod and the fifth screw rod are respectively threadedly connected to the first mold, and the thread direction of the fourth screw rod is the same as the thread direction of the fifth screw rod, and the thread direction of the fourth screw rod is opposite to the thread direction of the third screw rod.

[0007] Furthermore, a plurality of slides are provided inside the shell, each slide is spaced apart from the corresponding first mold and the second mold, a second connecting plate is provided at one end of the plurality of slides, a clip for engaging with the snap switch on the shell is provided on the second connecting plate, a plurality of first connecting shafts are evenly provided on one side plate inside the shell, the number of the first connecting shafts is equal to the number of slides, each slide is slidingly connected to the corresponding first connecting shaft in the horizontal direction, the second connecting plate is slidingly connected to the first connecting shaft in the horizontal direction, a third spring is provided on each first connecting shaft, one end of each third spring is connected to the second connecting plate, and the other end is connected to the inner plate of the shell.

[0008] Furthermore, the first lifting mechanism is as follows: a first motor driving the second pulley to rotate is provided on the first support frame, a first screw rod and a second screw rod are rotatably installed on the first support frame, the injection molding machine is threadedly connected to the first screw rod and the second screw rod respectively, a first pulley is provided at one end of the first screw rod, a third pulley is provided at one end of the second screw rod, and the second pulley is connected to the first pulley and the third pulley through a first belt.

[0009] Furthermore, the second lifting mechanism is as follows: a first fixed plate is provided on the cooling pool, a third motor for driving a seventh screw rod to rotate is provided on the first fixed plate, and the seventh screw rod is threadedly connected to the third support frame.

[0010] Furthermore, the unloading mechanism is as follows: a second fixed plate and a fourth fixed plate are fixedly installed on the sliding rod, a fourth motor driving the third connecting shaft to rotate is provided on the fourth fixed plate, a vibration mechanism is provided at the bottom of the third connecting shaft, a fourth gear is provided on the fourth fixed plate, and the fifth connecting shaft is rotatably installed, a first ratchet is provided at one end of the fifth connecting shaft, a third gear meshing with the fourth gear is provided on the outer circumference of the first ratchet, the third gear is connected to the first pawl through a fourth spring, the first pawl is unidirectionally engaged with the first ratchet, a second bevel gear is provided at the other end of the fifth connecting shaft, the fourth connecting shaft is rotatably installed on the second fixed plate, one end of the fourth connecting shaft is provided with the first bevel gear meshing with the second bevel gear, and the other end of the fourth connecting shaft is provided with a first incomplete gear, the first incomplete gear meshes with the first rack on the sliding rod for transmission, and the first rack is a rack in the vertical direction.

[0011] Furthermore, the vibration mechanism is as follows: a third fixed plate is fixedly mounted on the slide rod, a sixth connecting shaft and a seventh connecting shaft are rotatably mounted on the third fixed plate, a fifth gear is provided at the bottom of the third connecting shaft, a sixth gear meshing with the fifth gear is provided at the bottom of the sixth connecting shaft, a second ratchet is provided at one end of the seventh connecting shaft, the rotation direction of the second ratchet is opposite to that of the first ratchet, a seventh gear meshing with the sixth gear is provided on the outer circumference of the second ratchet, the seventh gear is connected to the second pawl through a fifth spring, the second pawl is unidirectionally clamped with the second ratchet, a second incomplete gear meshing with the second rack on the slide rod is provided at the top end of the seventh connecting shaft, and the second rack is a horizontal rack.

[0012] The beneficial effects of the present invention are as follows: (1) The present invention adopts an injection molding machine to inject molten plastic and fill the mold cavity between the first mold and the second mold, the output shaft of the third motor drives the seventh screw to rotate, the third support frame on the seventh screw and the shell on the third support frame move in the vertical direction, and the molding mechanism, the shell, and the third support frame are immersed in the cooling pool as a whole. The vibration mechanism can better make the toy in the mold cavity contact with the coolant and cool it, so as to achieve the purpose of rapid molding of the toy.

[0013] (2) The present invention uses the gas from the air pump to enter the enclosed space through the air pipe, and the gas drives the slide to slide on the first connecting shaft, and the second connecting plate also slides on the first connecting shaft, and the buckle is engaged with the snap switch. At the same time, the gas enters the mold cavity through the air vent, so that the molded toy in the mold cavity can be quickly demolded.

[0014] (3) The present invention adopts a method in which the movement directions of the first mold and the second mold are opposite, the first mold and the second mold are separated, the slide rod slides in the slide hole of the second support frame, the slide rod drives one end of the shell to move upward through the second connecting shaft, and the other end of the shell moves downward, and the other end of the shell moves to the position of the unloading hole, and the molded toys in the first mold and the second mold are unloaded through the unloading hole, thereby achieving the purpose of rapid unloading of toys. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 The figure is a schematic structural diagram of an embodiment of a DIY toy making device capable of rapid press molding according to the present invention.

[0016] Figure 2 It is a structural schematic diagram of the first support frame.

[0017] Figure 3 It is a structural diagram of the first lifting mechanism.

[0018] Figure 4 yes Figure 3 Schematic diagram of the structure from another angle.

[0019] Figure 5 It is a structural diagram of the forming mechanism and the second lifting mechanism.

[0020] Figure 6 yes Figure 5 Schematic diagram of some structures in .

[0021] Figure 7 It is a structural diagram of the shell.

[0022] Figure 8 It is a structural schematic diagram of the second support frame.

[0023] Figure 9 It is a schematic diagram of the parts structure on the shell.

[0024] Figure 10 It is a structural diagram of the sliding rod and the second connecting shaft.

[0025] Figure 11 It is a schematic diagram of the structure inside the shell.

[0026] Figure 12 yes Figure 11 Schematic diagram of some structures in .

[0027] Figure 13 It is a structural diagram of the unloading mechanism and the vibration mechanism.

[0028] Figure 14 yes Figure 13 Schematic diagram of some structures in .

[0029] Figure 15 yes Figure 14 Schematic diagram of the structure from another angle.

[0030] Figure 16 This is a schematic diagram of the parts structure on the fifth connecting shaft.

[0031] Figure 17 It is a schematic diagram of the parts structure on the sixth connecting shaft.

[0032] Reference numerals: 1, first support frame; 2, injection molding machine; 301, first screw; 302, first pulley; 303, first belt; 304, second pulley; 305, first motor; 306, third pulley; 307, second screw; 401, snap-on switch; 402, first mold; 403, second mold; 404, second support frame; 405, first through hole; 406, first spring; 407, slide hole; 408, first connecting rod Connecting plate; 409, second spring; 410, slide bar; 411, slide cylinder; 412, buckle; 413, third spring; 414, first connecting shaft; 415, second connecting plate; 416, vent hole; 417, third screw rod; 418, fourth screw rod; 419, fifth screw rod; 420, second belt; 421, second motor; 422, first gear; 423, second gear; 424, sixth screw rod; 425, second connecting shaft; 501 , third motor; 502, first fixed plate; 503, seventh screw; 601, first rack; 602, first incomplete gear; 603, second fixed plate; 604, third connecting shaft; 605, fourth connecting shaft; 606, first bevel gear; 607, second bevel gear; 608, third gear; 609, fourth motor; 610, fourth gear; 611, fifth connecting shaft; 612, first ratchet; 613, fourth spring; 614, First pawl; 615, fourth fixed plate; 701, fifth gear; 702, sixth gear; 703, third fixed plate; 704, second incomplete gear; 705, second rack; 706, sixth connecting shaft; 707, seventh connecting shaft; 708, seventh gear; 709, fifth spring; 710, second pawl; 711, second ratchet; 8, housing; 9, third support frame; 10, cooling pool; 11, second through hole; 12, discharge hole. DETAILED DESCRIPTION

[0033] In order to make the purpose, technical solutions and advantages of the present invention more clearly understood, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to limit the present invention.

[0034] like Figures 1 to 2As shown, the DIY toy making device that can be quickly pressed and formed in this embodiment is composed of a first support frame 1, an injection molding machine 2, a first lifting mechanism, a molding mechanism, a second lifting mechanism, a unloading mechanism, a vibration mechanism, a shell 8, a third support frame 9, a cooling pool 10, a second through hole 11, and a unloading hole 12.

[0035] A first support frame 1 is fixedly installed on the top side of the cooling pool 10, a unloading hole 12 is provided on the cooling pool 10, and there is coolant inside the cooling pool 10. The first support frame 1 is provided with a first lifting mechanism that drives the injection molding machine 2 to move in a vertical direction, and the cooling pool 10 is provided with a second lifting mechanism that drives the third support frame 9 to move in a vertical direction inside the cooling pool 10. The third support frame 9 is provided with a shell 8 located below the injection molding machine 2, and the shell 8 is provided with a molding mechanism for making and molding DIY toys. Connecting chambers are evenly provided on the first support frame 1, and the second through holes 11 on each connecting chamber are respectively connected to the output end of the air pump through the inflation pipe. The third support frame 9 is provided with a unloading mechanism for unloading the molded DIY toys, and the third support frame 9 is provided with a vibration mechanism that drives the shell 8 to vibrate, and the vibration mechanism is connected to the unloading mechanism.

[0036] like Figures 3 and 4 As shown, the first lifting mechanism is composed of a first screw rod 301, a first pulley 302, a first belt 303, a second pulley 304, a first motor 305, a third pulley 306, and a second screw rod 307.

[0037] The first lifting mechanism is as follows: a first motor 305 is provided on the first support frame 1 to drive the second pulley 304 to rotate, a first screw rod 301 and a second screw rod 307 are rotatably installed on the first support frame 1, the injection molding machine 2 is threadedly connected to the first screw rod 301 and the second screw rod 307 respectively, a first pulley 302 is provided at one end of the first screw rod 301, a third pulley 306 is provided at one end of the second screw rod 307, and the second pulley 304 is connected to the first pulley 302 and the third pulley 306 through the first belt 303.

[0038] like Figures 5 to 12 As shown, the molding mechanism is composed of a snap-on switch 401, a first mold 402, a second mold 403, a second support frame 404, a first through hole 405, a first spring 406, a sliding hole 407, a first connecting plate 408, a second spring 409, a sliding rod 410, a slide cylinder 411, a buckle 412, a third spring 413, a first connecting shaft 414, a second connecting plate 415, a vent 416, a third screw rod 417, a fourth screw rod 418, a fifth screw rod 419, a second belt 420, a second motor 421, a first gear 422, a second gear 423, a sixth screw rod 424, and a second connecting shaft 425.

[0039] The forming mechanism is as follows: the third support frame 9 is connected to the second support frame 404 through the first spring 406, the bottom of the second support frame 404 is movably installed with a first connecting plate 408 located below the shell 8, and the second support frame 404 is respectively processed with sliding holes 407 on both sides. The two sliding holes 407 are slidably connected to the sliding rod 410, and the sliding rod 410 is respectively provided with a discharge mechanism and a vibration mechanism. The sliding rod 410 is connected to the second support frame 404 through the second spring 409, and the sliding rod 410 is provided with a second connecting shaft 425. The second connecting shaft 425 is connected to the One end of the shell 8 is connected, and the other end of the shell 8 is in contact with the communicating chamber of the first support frame 1. The communicating chamber of the first support frame 1 and the interior of the shell 8 form a closed space. The upper top plate of the shell 8 is evenly processed with a first through hole 405. The inside of the shell 8 is respectively provided with a first mold 402 and a second mold 403 located in the first through hole 405. Each first mold 402 and each second mold 403 are respectively processed with an air vent 416. There is a mold cavity between each first mold 402 and the corresponding second mold 403, and the mold cavity is located below the injection molding machine 2.

[0040] A second motor 421 is provided on the housing 8 for driving the second gear 423 to rotate. A third screw rod 417, a fourth screw rod 418, a fifth screw rod 419 and a sixth screw rod 424 are rotatably installed on the housing 8 respectively. The sixth screw rod 424 is provided with a first gear 422 that is meshed with the second gear 423 for transmission. The sixth screw rod 424 is transmission-connected to the third screw rod 417, the fourth screw rod 418 and the fifth screw rod 419 through a second belt 420. The third screw rod 417 and the sixth screw rod 424 are respectively threadedly connected to the second mold 403. The thread direction of the third screw rod 417 is the same as the thread direction of the sixth screw rod 424. The fourth screw rod 418 and the fifth screw rod 419 are respectively threadedly connected to the first mold 402. The thread direction of the fourth screw rod 418 is the same as the thread direction of the fifth screw rod 419, and the thread direction of the fourth screw rod 418 is opposite to the thread direction of the third screw rod 417.

[0041] A plurality of slides 411 are arranged inside the shell 8, and each slide 411 is spaced apart from the corresponding first mold 402 and second mold 403. A second connecting plate 415 is provided at one end of the plurality of slides 411, and a buckle 412 is provided on the second connecting plate 415 for engaging with the snap switch 401 on the shell 8. A plurality of first connecting shafts 414 are evenly arranged on one side plate inside the shell 8, and the number of the first connecting shafts 414 is equal to the number of slides 411. Each slide 411 is respectively connected to the corresponding first connecting shaft 414 in a horizontal direction for sliding connection, and the second connecting plate 415 is connected to the first connecting shaft 414 in a horizontal direction for sliding connection. A third spring 413 is respectively provided on each first connecting shaft 414, and one end of each third spring 413 is connected to the second connecting plate 415 and the other end is connected to the inner plate of the shell 8.

[0042] like Figure 5 As shown, the second lifting mechanism is composed of a third motor 501, a first fixing plate 502, and a seventh screw rod 503.

[0043] The second lifting mechanism is as follows: a first fixing plate 502 is provided on the cooling pool 10 , a third motor 501 driving a seventh screw rod 503 to rotate is provided on the first fixing plate 502 , and the seventh screw rod 503 is threadedly connected to the third support frame 9 .

[0044] like Figures 13 to 17 As shown, the unloading mechanism is composed of a first rack 601, a first incomplete gear 602, a second fixed plate 603, a third connecting shaft 604, a fourth connecting shaft 605, a first bevel gear 606, a second bevel gear 607, a third gear 608, a fourth motor 609, a fourth gear 610, a fifth connecting shaft 611, a first ratchet 612, a fourth spring 613, a first pawl 614, and a fourth fixed plate 615.

[0045] The unloading mechanism is as follows: a second fixing plate 603 and a fourth fixing plate 615 are fixedly mounted on the slide bar 410; a fourth motor 609 for driving the third connecting shaft 604 to rotate is provided on the fourth fixing plate 615; a vibration mechanism is provided at the bottom of the third connecting shaft 604; a fourth gear 610 is provided on the third connecting shaft 604; a fifth connecting shaft 611 is rotatably mounted on the fourth fixing plate 615; a first ratchet 612 is provided at one end of the fifth connecting shaft 611; a third gear 608 is provided on the outer circumference of the first ratchet 612 to mesh with the fourth gear 610 for transmission; the third gear 608 is connected to the It is connected to the first pawl 614 through the fourth spring 613, the first pawl 614 is unidirectionally clamped with the first ratchet 612, the other end of the fifth connecting shaft 611 is provided with a second bevel gear 607, the fourth connecting shaft 605 is rotatably installed on the second fixed plate 603, one end of the fourth connecting shaft 605 is provided with a first bevel gear 606 that meshes with the second bevel gear 607 for transmission, and the other end of the fourth connecting shaft 605 is provided with a first incomplete gear 602, the first incomplete gear 602 is meshed with the first rack 601 on the slide rod 410 for transmission, and the first rack 601 is a vertical rack.

[0046] The vibration mechanism is composed of a fifth gear 701, a sixth gear 702, a third fixed plate 703, a second incomplete gear 704, a second rack 705, a sixth connecting shaft 706, a seventh connecting shaft 707, a seventh gear 708, a fifth spring 709, a second pawl 710, and a second ratchet 711.

[0047] The vibration mechanism is as follows: a third fixed plate 703 is fixedly mounted on the sliding rod 410, and a sixth connecting shaft 706 and a seventh connecting shaft 707 are rotatably mounted on the third fixed plate 703; a fifth gear 701 is provided at the bottom of the third connecting shaft 604; a sixth gear 702 is provided at the bottom of the sixth connecting shaft 706, which is engaged with the fifth gear 701 for transmission; a second ratchet 711 is provided at one end of the seventh connecting shaft 707; the rotation direction of the second ratchet 711 is opposite to that of the first ratchet 612; a seventh gear 708 is provided on the outer circumference of the second ratchet 711 which is engaged with the sixth gear 702 for transmission; the seventh gear 708 is connected to the second pawl 710 through a fifth spring 709; the second pawl 710 is unidirectionally engaged with the second ratchet 711; a second incomplete gear 704 is provided at the top of the seventh connecting shaft 707 which is engaged with the second rack 705 on the sliding rod 410 for transmission; and the second rack 705 is a horizontal rack.

[0048] First screw 301, first pulley 302, first belt 303, second pulley 304, first motor 305, third pulley 306, second screw 307

[0049] The working principle of this embodiment is as follows: (1) Molding and cooling: the output shaft of the first motor 305 drives the second pulley 304 to rotate, and the second pulley 304 drives the first pulley 302 and the third pulley 306 to rotate through the first belt 303, the first pulley 302 drives the first screw 301 to rotate, and the third pulley 306 drives the second screw 307 to rotate, and the injection molding machine 2 moves vertically on the third pulley 306 and the second screw 307 to approach the first mold 402 and the second mold 403. The first motor 305 is reversed, which can make the injection molding machine 2 move away from the first mold 402 and the second mold 403. The injection molding machine 2 injects molten plastic and fills the mold cavity between the first mold 402 and the second mold 403. The output shaft of the third motor 501 drives the seventh screw 503 to rotate, and the third support frame 9 on the seventh screw 503 and the shell 8 on the third support frame 9 move vertically, so that the molding mechanism, the shell 8, and the third support frame 9 are immersed in the cooling pool 10 as a whole, and the coolant in the cooling pool 10 cools and shapes them. In the initial state, the buckle 412 is engaged with the engaging switch 401 .

[0050] At the same time, the output shaft of the fourth motor 609 drives the third connecting shaft 604 to rotate, and the third connecting shaft 604 drives the fourth gear 610 and the fifth gear 701 to rotate. The fourth gear 610 drives the third gear 608 to rotate. Since the first pawl 614 on the third gear 608 is not engaged with the first ratchet 612, it will not drive the first ratchet 612 to rotate. The fifth gear 701 drives the sixth gear 702 to rotate, and the sixth gear 702 drives the seventh gear 708 to rotate. The second pawl 710 on the seventh gear 708 drives the second ratchet 711 to rotate, and the second ratchet 711 drives the seventh connecting shaft 707 to rotate. The seventh connecting shaft 707 drives the second incomplete gear 704 to rotate. The second incomplete gear 704 engages with the second rack 705 on the slide rod 410 and drives the slide rod 410 to move in the horizontal direction, which can better enable the toy in the mold cavity to contact with the coolant and cool it.

[0051] (2) Demolding: Press the latching switch 401 to separate the latching switch 401 from the buckle 412, and the third motor 501 reverses. The output shaft of the third motor 501 drives the seventh screw rod 503 to rotate, and the third support frame 9 on the seventh screw rod 503 and the shell 8 on the third support frame 9 move in the vertical direction, so that one end of the shell 8 corresponds to the connecting chamber at one end of the first support frame 1. The connecting chamber of the first support frame 1 and the inside of the shell 8 form a closed space, and the gas of the air pump enters the closed space through the air pipe. The gas drives the slide 411 to slide on the first connecting shaft 414, and the second connecting plate 415 also slides on the first connecting shaft 414. The buckle 412 is engaged with the latching switch 401, and at the same time, the gas enters the mold cavity through the air vent 416, so that the molded toy in the mold cavity is easy to demold.

[0052] (3) Unloading: The second motor 421 drives the second gear 423 to rotate, the second gear 423 drives the first gear 422 to rotate, the first gear 422 drives the sixth screw rod 424 to rotate, and the sixth screw rod 424 drives the fifth screw rod 419, the fourth screw rod 418, and the third screw rod 417 to rotate through the second belt 420. Since the thread direction of the third screw rod 417 is the same as the thread direction of the sixth screw rod 424, the thread direction of the fourth screw rod 418 is the same as the thread direction of the fifth screw rod 419, and the thread direction of the fourth screw rod 418 is opposite to the thread direction of the third screw rod 417, the movement directions of the first mold 402 and the second mold 403 are opposite, and the first mold 402 and the second mold 403 are separated.

[0053] The fourth motor 609 rotates in reverse, and the output shaft of the fourth motor 609 drives the third connecting shaft 604 to rotate. The third connecting shaft 604 drives the fourth gear 610 and the fifth gear 701 to rotate. The fifth gear 701 drives the sixth gear 702 to rotate. The sixth gear 702 drives the seventh gear 708 to rotate. The second pawl 710 on the seventh gear 708 is not engaged with the second ratchet 711, so it will not drive the second ratchet 711 to rotate. The fourth gear 610 drives the third gear 608 to rotate. The first pawl 614 on the third gear 608 is engaged with the first ratchet 612, so it will drive the first ratchet 612 to rotate. The first ratchet 612 drives the fifth connecting shaft 608 to rotate. The connecting shaft 611 rotates, and the fifth connecting shaft 611 drives the first incomplete gear 602 to rotate through the second bevel gear 607, the first bevel gear 606, and the fourth connecting shaft 605 in sequence. The first incomplete gear 602 engages with the first rack 601 on the slide rod 410 and drives the slide rod 410 to move in the vertical direction. The slide rod 410 slides in the slide hole 407 of the second support frame 404. The slide rod 410 drives one end of the shell 8 to move upward through the second connecting shaft 425, and the other end of the shell 8 moves downward. The other end of the shell 8 moves to the position of the unloading hole 12, and the molded toys in the first mold 402 and the second mold 403 are unloaded through the unloading hole 12.

[0054] The above description is merely a preferred embodiment of the present invention and is not intended to limit the scope of protection of the present invention.

Claims

1. A DIY toy making device that can be quickly pressed into shape, characterized by: A first support frame (1) is fixedly installed on one side of the top of the cooling pool (10), a discharge hole (12) is provided on the cooling pool (10), and a coolant is provided inside the cooling pool (10). A first lifting mechanism for driving the injection molding machine (2) to move in a vertical direction is provided on the first support frame (1), a second lifting mechanism for driving the third support frame (9) to move in a vertical direction inside the cooling pool (10) is provided on the cooling pool (10), a shell (8) located below the injection molding machine (2) is provided on the third support frame (9), a molding mechanism for molding DIY toys is provided on the shell (8), connecting chambers are evenly provided on the first support frame (1), and the second through hole (11) on each connecting chamber is respectively connected to the output end of the air pump through an air pipe, a discharge mechanism for discharging the molded DIY toys is provided on the third support frame (9), and a vibration mechanism for driving the shell (8) to vibrate is provided on the third support frame (9), and the vibration mechanism is connected to the discharge mechanism; The forming mechanism is as follows: the third support frame (9) is connected to the second support frame (404) through a first spring (406); the bottom of the second support frame (404) is movably installed with a first connecting plate (408) located below the shell (8); sliding holes (407) are respectively processed on both sides of the second support frame (404); the two sliding holes (407) are slidably connected to the sliding rod (410); the sliding rod (410) is respectively provided with a discharge mechanism and a vibration mechanism; the sliding rod (410) is connected to the second support frame (404) through a second spring (409); the sliding rod (410) is provided with a second connecting shaft (425); the second connecting shaft (425) The housing (8) is connected to one end thereof, and the other end thereof contacts the communicating chamber of the first supporting frame (1). The communicating chamber of the first supporting frame (1) and the interior of the housing (8) form a closed space. The upper top plate of the housing (8) is uniformly processed with first through holes (405). The housing (8) is provided with a first mold (402) and a second mold (403) located in the first through holes (405). Each first mold (402) and each second mold (403) are respectively processed with an air vent (416). A mold cavity is provided between each first mold (402) and the corresponding second mold (403). The mold cavity is located below the injection molding machine (2).

2. The DIY toy making device capable of rapid press molding according to claim 1, characterized in that: The housing (8) is provided with a second motor (421) for driving the second gear (423) to rotate. The housing (8) is provided with a third screw rod (417), a fourth screw rod (418), a fifth screw rod (419), and a sixth screw rod (424) which are rotatably mounted. The sixth screw rod (424) is provided with a first gear (422) which is meshed with the second gear (423). The sixth screw rod (424) is connected to the third screw rod (417), the fourth screw rod (418), the fifth screw rod (419), and the sixth screw rod (424) through a second belt (420). 9) transmission connection, the third screw rod (417) and the sixth screw rod (424) are respectively threadedly connected to the second mold (403), the thread direction of the third screw rod (417) is the same as the thread direction of the sixth screw rod (424), the fourth screw rod (418) and the fifth screw rod (419) are respectively threadedly connected to the first mold (402), the thread direction of the fourth screw rod (418) is the same as the thread direction of the fifth screw rod (419), and the thread direction of the fourth screw rod (418) is opposite to the thread direction of the third screw rod (417).

3. The DIY toy making device capable of rapid press molding according to claim 2, characterized in that: The shell (8) is provided with a plurality of slides (411), each slide (411) is spaced apart from the corresponding first mold (402) and the second mold (403), one end of each slide (411) is provided with a second connecting plate (415), and the second connecting plate (415) is provided with a buckle (412) that is connected to the clamping switch (401) on the shell (8), and a side plate inside the shell (8) is evenly provided with a plurality of first connecting shafts (414), the number of the first connecting shafts (414) is equal to the number of the slides (411), each slide (411) is respectively connected to the corresponding first connecting shaft (414) in a horizontal sliding direction, the second connecting plate (415) is connected to the first connecting shaft (414) in a horizontal sliding direction, and each first connecting shaft (414) is respectively provided with a third spring (413), one end of each third spring (413) is connected to the second connecting plate (415), and the other end is connected to the inner plate of the shell (8).

4. The DIY toy making device capable of rapid press molding according to claim 1, characterized in that: The first lifting mechanism comprises: a first motor (305) for driving a second pulley (304) to rotate is provided on a first support frame (1); a first screw rod (301) and a second screw rod (307) are rotatably mounted on the first support frame (1); an injection molding machine (2) is threadedly connected to the first screw rod (301) and the second screw rod (307), one end of the first screw rod (301) is provided with a first pulley (302), one end of the second screw rod (307) is provided with a third pulley (306), and the second pulley (304) is transmission-connected to the first pulley (302) and the third pulley (306) via a first belt (303).

5. The DIY toy making device capable of rapid press molding according to claim 1, characterized in that: The second lifting mechanism comprises: a first fixing plate (502) is provided on the cooling pool (10); a third motor (501) is provided on the first fixing plate (502) for driving a seventh screw rod (503) to rotate; and the seventh screw rod (503) is threadedly connected to the third support frame (9).

6. The DIY toy making device capable of rapid press molding according to claim 1, characterized in that: The unloading mechanism is as follows: a second fixed plate (603) and a fourth fixed plate (615) are fixedly mounted on the slide bar (410); a fourth motor (609) for driving the third connecting shaft (604) to rotate is provided on the fourth fixed plate (615); a vibration mechanism is provided at the bottom of the third connecting shaft (604); a fourth gear (610) is provided on the third connecting shaft (604); a fifth connecting shaft (611) is rotatably mounted on the fourth fixed plate (615); a first ratchet (612) is provided at one end of the fifth connecting shaft (611); a third gear (608) meshing with the fourth gear (610) is provided on the outer circumference of the first ratchet (612); the third gear (608) is meshed with the fourth gear (610) for transmission; ) is connected to the first pawl (614) through a fourth spring (613), the first pawl (614) is unidirectionally engaged with the first ratchet (612), the other end of the fifth connecting shaft (611) is provided with a second bevel gear (607), the second fixed plate (603) is rotatably mounted with a fourth connecting shaft (605), one end of the fourth connecting shaft (605) is provided with a first bevel gear (606) meshing with the second bevel gear (607), the other end of the fourth connecting shaft (605) is provided with a first incomplete gear (602), the first incomplete gear (602) is meshed with the first rack (601) on the slide bar (410), and the first rack (601) is a rack in the vertical direction.

7. The DIY toy making device capable of rapid press molding according to claim 6, characterized in that: The vibration mechanism is as follows: a third fixed plate (703) is fixedly mounted on the slide bar (410); a sixth connecting shaft (706) and a seventh connecting shaft (707) are rotatably mounted on the third fixed plate (703); a fifth gear (701) is arranged at the bottom of the third connecting shaft (604); a sixth gear (702) meshing with the fifth gear (701) is arranged at the bottom of the sixth connecting shaft (706); a second ratchet (711) is arranged at one end of the seventh connecting shaft (707); and the rotation direction of the second ratchet (711) is the same as that of the first ratchet. The rotation direction of (612) is opposite, and the outer circumference of the second ratchet (711) is provided with a seventh gear (708) meshing with the sixth gear (702). The seventh gear (708) is connected to the second pawl (710) through the fifth spring (709). The second pawl (710) is unidirectionally engaged with the second ratchet (711). The top end of the seventh connecting shaft (707) is provided with a second incomplete gear (704) meshing with the second rack (705) on the slide bar (410). The second rack (705) is a horizontal rack.

Citation Information

Patent Citations

  • Processing injection molding equipment for toy shell

    CN115284559A

  • Cooling device for plastic educational toy production

    CN216506590U