Demolding equipment for slipper processing

By designing a demolding device for slipper processing, and utilizing a demolding mechanism composed of an L-shaped bracket and a vacuum pump, the demolding process of slippers is completed automatically, solving the problems of burn risk and time-consuming and laborious manual demolding, and realizing safe and efficient automated demolding.

CN223790841UActive Publication Date: 2026-01-13FUJIAN GUOXIE SPORTING GOODS CO LTD
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Patent Information

Application Number
CN202520704262.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-15
Publication Date
2026-01-13
Estimated Expiration
2035-04-15

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Abstract

The utility model provides demolding equipment for slipper processing, which belongs to the technical field of slipper processing equipment and structurally comprises a rack, a bottom mold and a lifting top mold are arranged at the upper end and the lower end of the middle of the rack in an aligned manner, a demolding mechanism is transversely arranged beside the left side between the bottom mold and the lifting top mold, and a collecting box is placed at the lower end of the demolding mechanism. After the bottom mold and the lifting top mold are opened, the demolding end transversely moves rightwards, then is opened up and down to buffer and abut against the shoe sole upwards or downwards, then is closed for adsorption demolding, transversely moves leftwards to pull the shoe sole to the position above the discharging inclined plate, then rotates the shoe sole by 90 degrees for anti-clamping discharging, finally, automatic discharging and collecting are conducted, manual demolding is not needed, and the scalding risk is avoided. Time and labor are saved during automatic demolding, and working efficiency is high.
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Description

Technical Field

[0001] This utility model relates to a demolding device for slipper processing, belonging to the technical field of slipper processing equipment. Background Technology

[0002] Slippers are a type of shoe with an open heel and only a toe box. They are usually flat and do not require laces.

[0003] Slipper soles are produced using high-temperature foaming molding with molds. During processing, the foamed soles are usually embedded in the mold cavity of the bottom mold or top mold. The existing demolding method is manual pulling of the mold. Since the mold needs to be foamed at high temperatures, manual demolding carries the risk of burns and is time-consuming and laborious. In view of the above shortcomings, this utility model proposes a demolding device for slipper processing. Utility Model Content

[0004] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a demolding device for slipper processing to solve the existing problems.

[0005] To achieve the above objectives, this utility model is implemented through the following technical solution: a demolding device for slipper processing, the structure of which includes a frame, and a bottom mold and a lifting top mold are arranged aligned at the upper and lower ends of the frame. A demolding mechanism is arranged horizontally on the left side between the bottom mold and the lifting top mold. A collection box is placed at the lower end of the demolding mechanism. The demolding mechanism includes an L-shaped bracket, and a demolding end is arranged horizontally on the left side of the L-shaped bracket. A discharge sloping plate is arranged obliquely on the lower right side of the demolding end. A vacuum pump is connected to the other end of the demolding end.

[0006] The demolding end includes a first telescopic member, and a driving end is laterally arranged on the right end of the first telescopic member. A first buffer suction cup group and a second buffer suction cup group are laterally aligned on the upper and lower sides of the driving end. A first suction hose connected to a vacuum pump is connected between the first buffer suction cup group and the second buffer suction cup group.

[0007] A further improvement is that the left side of the frame has a demolding opening for the drive end to move laterally to the right through.

[0008] A further improvement is that the drive end includes a rotator, and the right end of the rotator is laterally connected to a cross arm, with a bidirectional telescopic device vertically arranged in the middle of the cross arm.

[0009] A further improvement is that the second buffer suction cup group includes a pull mold horizontal plate, and multiple suction cup assemblies are spaced apart on the pull mold horizontal plate, and a second suction hose is connected in series between each suction cup assembly. The first buffer suction cup group and the second buffer suction cup group have the same structure.

[0010] A further improvement is that each of the suction cup components includes a buffer slide rod and a spring movably sleeved on the pull mold horizontal plate, and the top surface of the buffer slide rod is provided with a suction pipe seat, and the top surface of the suction pipe seat is connected to and installed with a suction cup, which is made of a high temperature resistant material.

[0011] A further improvement is that the bottom mold and the lifting top mold are both existing technologies, and their structures will not be described in detail here.

[0012] The beneficial effects of the utility model are:

[0013] This utility model provides a demolding device for slipper processing. The demolding mechanism, consisting of an L-shaped bracket, a demolding end, a discharge ramp, and a vacuum pump, is horizontally positioned on the left side between the bottom mold and the lifting top mold. After the bottom mold and the lifting top mold open, the demolding end first moves horizontally to the right, then opens up and down to buffer and abut against the shoe sole, then closes to adsorb and demold, and then moves horizontally to the left to pull the shoe sole above the discharge ramp. The shoe sole is then rotated 90° to prevent jamming and release the material. Finally, the material is automatically discharged and collected. There is no need for manual demolding, avoiding the risk of burns. Automatic demolding saves time and effort and has high work efficiency. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the demolding equipment for slipper processing according to the present invention;

[0015] Figure 2 This is a schematic diagram of the demolding end structure of this utility model;

[0016] Figure 3 This is a schematic diagram of the drive end structure of this utility model;

[0017] Figure 4 This is a schematic diagram of the second buffer suction cup assembly of this utility model;

[0018] Figure 5 This is a schematic diagram of the suction cup assembly structure of this utility model. Detailed Implementation

[0019] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.

[0020] Please see Figure 1-5The present invention relates to a demolding device for slipper processing, comprising a frame 1, with a bottom mold 2 and a lifting top mold 3 aligned at the top and bottom ends of the frame. A demolding mechanism 4 is laterally arranged on the left side between the bottom mold 2 and the lifting top mold 3. A collection box 5 is placed at the lower end of the demolding mechanism 4. The demolding mechanism 4 includes an L-shaped bracket 41, with a demolding end 42 laterally arranged on the left side of the L-shaped bracket 41. A discharge sloping plate 43 is obliquely arranged below the right side of the demolding end 42. A vacuum pump 44 is connected to the other end of the demolding end 42. The demolding end 42 includes a first telescopic member 421, with a driving end 422 laterally arranged on the right end of the first telescopic member 421. A first buffer suction cup group 423 and a second buffer suction cup group 424 are laterally aligned on the upper and lower sides of the driving end 422. A first suction hose 425 connected to the vacuum pump 44 is connected between the first buffer suction cup group 423 and the second buffer suction cup group 424.

[0021] The left side of the frame 1 has a demolding opening 11 for the drive end 422 to move laterally to the right and pass through.

[0022] The drive end 422 includes a rotator 4221, and the right end of the rotator 4221 is laterally connected to a cross arm 4222, and a bidirectional telescopic device 4223 is vertically arranged in the middle of the cross arm 4222.

[0023] The second buffer suction cup group 424 includes a pull mold horizontal plate 4241, and a plurality of suction cup assemblies 4242 are spaced on the pull mold horizontal plate 4241, and a second suction hose 4243 is connected in series between each suction cup assembly 4242. The first buffer suction cup group 423 and the second buffer suction cup group 424 have the same structure.

[0024] Each of the suction cup assemblies 4242 includes a buffer slide rod 4244 and a spring 4245 movably sleeved on the pull mold horizontal plate 4241. The top surface of the buffer slide rod 4244 is provided with a suction pipe seat 4246, and the top surface of the suction pipe seat 4246 is connected to a suction cup 4247, which is made of high temperature resistant material.

[0025] Working principle:

[0026] In use, after the bottom mold 2 and the lifting top mold 3 are foamed and molded at high temperature, the sole will be embedded in the mold cavity of the bottom mold 2 or the lifting top mold 3. Then, the first telescopic device 421 extends to the right, causing the demolding end 42 to move laterally to the right and pass through the demolding opening 11, so that the first buffer suction cup group 423 is aligned with the bottom mold 2 and the second buffer suction cup group 424 is aligned with the lifting top mold 3. Then, the bidirectional telescopic device 4223 extends in both directions, causing the first buffer suction cup group 423 to descend and buffer against the sole, or the second buffer suction cup group 424 to rise and buffer against the sole. It should be noted that the first buffer suction cup group 423 only works in the mold cavity of the bottom mold or the top mold containing the sole. Only when group 423 or the first buffer suction cup group 424 buffers against each other will the vacuum pump 44 draw in air, causing the suction cup 4247 to adhere to the sole. Then, the bidirectional telescopic device 4223 retracts, causing the first buffer suction cup group 423 or the first buffer suction cup group 424 to adsorb and demold the sole. Then, the first telescopic device 421 retracts to the left, causing the demolding end 42 to move to the left and above the discharge ramp 43. Then, the rotator 4221 rotates 90°, causing the first buffer suction cup group 423 and the first buffer suction cup group 424 to turn longitudinally, preventing material jamming when discharging the sole. After discharging, the sole falls onto the discharge ramp 43 and slides into the collection box 5.

[0027] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. It will be apparent to those skilled in the art that this utility model is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or basic characteristics of this utility model. Therefore, the embodiments should be considered exemplary and non-limiting in all respects. The scope of this utility model is defined by the appended claims rather than the foregoing description, and thus all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this utility model. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0028] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A demolding device for slipper processing, comprising a frame (1), wherein a bottom mold (2) and a lifting top mold (3) are aligned at the upper and lower ends of the frame, and a demolding mechanism (4) is arranged laterally on the left side between the bottom mold (2) and the lifting top mold (3), and a collection box (5) is placed at the lower end of the demolding mechanism (4), characterized in that: The demolding mechanism (4) comprises an L-shaped support (41), a demolding end (42) is horizontally arranged on the left side of the L-shaped support (41), a discharge inclined plate (43) is obliquely arranged on the right side and below the demolding end (42), and a vacuum pump (44) is connected to the other end of the demolding end (42); The demolding end (42) comprises a first telescopic device (421), a driving end (422) is horizontally arranged on the right end of the first telescopic device (421), a first buffer suction disc group (423) and a second buffer suction disc group (424) are horizontally arranged on the upper side and the lower side of the driving end (422) in alignment, and a first air suction hose (425) in communication with the vacuum pump (44) is connected between the first buffer suction disc group (423) and the second buffer suction disc group (424).

2. The demolding apparatus for processing slippers according to claim 1, characterized in that: The rack (1) is provided with a demolding opening (11) on the left side for the driving end (422) to horizontally move to the right.

3. The demolding apparatus for processing slippers according to claim 2, characterized in that: The driving end (422) comprises a rotator (4221), a cross arm (4222) is horizontally and transmissionally connected to the right end of the rotator (4221), and a bidirectional telescopic device (4223) is vertically arranged on the middle part of the cross arm (4222).

4. The demolding apparatus for processing slippers according to claim 3, characterized in that: The second buffer suction disc group (424) comprises a die cross plate (4241), a plurality of suction disc assemblies (4242) are intervally sleeved on the die cross plate (4241), and a second air suction hose (4243) is connected between each suction disc assembly (4242), and the first buffer suction disc group (423) and the second buffer suction disc group (424) are of the same structure.

5. The demolding apparatus for processing slippers according to claim 4, characterized in that: Each suction disc assembly (4242) comprises a buffer sliding rod (4244) and a spring (4245) which are movably sleeved on the die cross plate (4241), an air suction pipe seat (4246) is arranged on the top surface of the buffer sliding rod (4244), a suction disc (4247) is installed in communication on the top surface of the air suction pipe seat (4246), and the suction disc (4247) is made of high-temperature resistant material.