Shoe mold with automatic temperature detection effect

By setting cooling tanks and temperature detectors inside the shoe mold, the problem of multiple temperature measurements is solved, achieving rapid cooling and simplified data processing, thus improving the efficiency of shoe sole molding.

CN224044375UActive Publication Date: 2026-03-27FUJIAN QUANZHOU SHI JIALONG MOULD CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-12
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

Existing shoe molds require temperature detection at multiple locations, resulting in complex data processing and slow cooling speed.

Method used

A temperature detection mechanism is installed inside the lower mold, including a cooling tank, water inlet pipe, water outlet pipe, heat conduction plate, and temperature detector. The cooling tank uses cold water to accelerate cooling and maintain a consistent temperature. Combined with the ejection mechanism, this enables rapid molding and testing of the shoe sole.

Benefits of technology

This eliminates the need for multiple temperature checks, simplifies data processing, and improves cooling speed and sole molding efficiency.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224044375U_ABST
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Abstract

The utility model relates to a shoe mold with an effect of automatically detecting temperature, which belongs to the technical field of shoemaking equipment and comprises a base, a plurality of supporting legs are fixed on the top side of the base, a lower mold is fixed at the top ends of the supporting legs, and an ejection mechanism is arranged in the lower mold and on the top side of the base. A temperature detection mechanism is arranged in the lower mold, an upper mold is connected to the top side of the lower mold in an abutting mode, two upper pressing plates are fixed to the bottom side of the upper mold, two lower pressing plates are arranged on the ejection mechanism, and two forming grooves are formed in the lower mold. According to the shoe mold with the effect of automatically detecting the temperature, a temperature detection mechanism is arranged in the lower mold, cooling forming of a shoe sole can be accelerated through cold water in a cooling groove, meanwhile, the temperature in the lower mold can be kept consistent through the cooling groove, and ejection mechanisms are arranged in the lower mold and on the top side of the bottom side; and the formed shoe sole can be ejected out by utilizing the lower pressing plate.
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Description

TECHNICAL FIELD

[0001] The utility model relates to shoemaking equipment technical field, concretely is a shoe mould with automatic detection temperature effect. BACKGROUND

[0002] Shoes are a tool for people to walk conveniently and protect feet from injury, and have a long history of development. The most primitive shoes made of animal skins appeared in the Yangshao culture period about 5000 years ago. There are various types of shoes, such as leather shoes, sports shoes, cloth shoes, slippers, rubber shoes, etc. Shoe soles need to use shoe moulds in the production process.

[0003] For example, a shoe mould capable of automatically detecting temperature in Chinese patent (CN218928402U) includes an upper mould and a lower mould. The upper mould is arranged on the top of the lower mould. Lower mould grooves are formed on both sides of the top of the lower mould. A detection cavity is formed in the inner wall of the lower mould groove. A detection assembly is arranged in the detection cavity. A digital display instrument is installed on the front side of the lower mould. A thickness control assembly is arranged in the upper mould. The detection assembly includes a servo motor, a threaded screw rod, a threaded sleeve, a mounting block, a connecting rod, and a temperature detector. An installation cavity is installed in the inner wall of the detection cavity. The servo motor is fixedly installed on the inner wall of the installation cavity. The utility model can automatically detect the temperature in the lower mould groove and adjust the position of the temperature detector, so as to conveniently detect the temperature of different parts and thus conveniently know the cooling condition. The thickness control assembly can conveniently control the thickness of the shoe sole according to the production requirements. The adjustment method is simple, fast, and widely applicable.

[0004] The above-mentioned scheme still has the following technical deficiencies. The above-mentioned scheme needs to use a servo motor to drive the temperature detector to move for temperature detection of the shoe sole, so as to detect the temperature in the lower mould groove. This results in the need for the temperature detector to detect multiple places and obtain multiple data, which is difficult to process. Moreover, the above-mentioned scheme is not convenient for accelerating the cooling speed of the lower mould. Therefore, a shoe mould with automatic temperature detection effect is proposed. UTILITY MODEL CONTENTS

[0005] In view of the deficiencies of the prior art, the utility model provides a shoe mould with automatic temperature detection effect, which has the advantages of only needing to detect the temperature at one place to judge the temperature in the lower mould, and solves the problem of the need for the temperature detector to detect the temperature at multiple positions in the lower mould.

[0006] In order to achieve the above object, the utility model provides the following technical scheme: A shoe mold with automatic temperature effect detection, including base, the top side of base is fixed with a plurality of support legs, the top of a plurality of support legs is fixed with lower mould, the inside of lower mould and the top side of base are equipped with ejection mechanism, the inside of lower mould is equipped with temperature detection mechanism, the top side of lower mould is in contact with upper mould, the bottom side of upper mould is fixed with two upper pressing plates, two lower pressing plates are equipped on ejection mechanism, the inside of lower mould is equipped with two forming grooves;

[0007] The temperature detection mechanism includes a cooling groove in the lower mold, a water inlet pipe fixed in the front side wall of the lower mold, a first valve fixed on the water inlet pipe, a water outlet pipe fixed in the rear side wall of the lower mold, a second valve fixed on the water outlet pipe, two heat-conducting plates fixed in the lower mold, and a temperature detector fixed in the lower mold.

[0008] Further, the ejection mechanism includes two telescopic rods fixed on the top side of the base, the telescopic end of the telescopic rod is fixed with a moving plate, the inside of the moving plate is rotatably connected with a screw rod, the bottom side of the screw rod is fixed with a handle, the top side of the moving plate is fixed with a moving rod, and the top side of the moving rod is fixed with the bottom side of the corresponding lower pressing plate.

[0009] Further, the water inlet pipe is in communication with the front side of the cooling groove, and the water outlet pipe is in communication with the rear side of the cooling groove.

[0010] Further, the inside of the lower mold is provided with a mounting groove, and the temperature detector is fixed on the bottom side of the mounting groove.

[0011] Further, one end of the two heat-conducting plates opposite to each other extends to one side of the two forming grooves opposite to each other, and the opposite end of the two heat-conducting plates extends to the left and right sides of the mounting groove.

[0012] Further, the bottom side of the lower mold is fixed with a bearing seat, and the screw rod rotates in the bearing seat.

[0013] Further, the inside of the lower mold is provided with a moving groove, and the moving rod slides in the moving groove.

[0014] Compared with the prior art, the technical scheme of the present application has the following advantages:

[0015] The shoe mold with automatic temperature detection effect, through the temperature detection mechanism arranged in the inside of the lower mold, can accelerate the cooling forming of the sole by the cold water of the cooling groove, and can keep the temperature of the inside of the lower mold consistent, so that temperature detection is not needed at multiple positions, and through the ejection mechanism arranged in the inside and the top side of the bottom side of the lower mold, the molded sole can be ejected by the lower pressing plate, and different thickness of soles can be made by adjusting the height position of the lower pressing plate. BRIEF DESCRIPTION OF DRAWINGS

[0016] Fig. 1 It is a structural schematic view of the utility model;

[0017] Fig. 2 It is a top view structural schematic view of the utility model;

[0018] Fig. 3 It is a three-dimensional structural schematic view of the ejection mechanism of the utility model.

[0019] In the drawing: 1 base, 2 support leg, 3 lower mold, 400 ejection mechanism, 401 telescopic rod, 402 moving plate, 403 screw rod, 404 handle, 405 moving rod, 500 temperature detection mechanism, 501 cooling groove, 502 water inlet pipe, 503 first valve, 504 water outlet pipe, 505 second valve, 506 heat conduction plate, 507 temperature detector, 6 upper mold, 7 upper pressing plate, 8 lower pressing plate, 9 forming groove. DETAILED DESCRIPTION

[0020] The technical scheme in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor belong to the scope of protection of the utility model.

[0021] Please refer to Figs. 1 to 3 The shoe mold with automatic temperature detection effect in the embodiment comprises a base 1, a plurality of support legs 2 are fixed on the top side of the base 1, a lower mold 3 is fixed at the top end of the plurality of support legs 2, an ejection mechanism 400 is arranged in the inside and the top side of the base 1 of the lower mold 3, a temperature detection mechanism 500 is arranged in the inside of the lower mold 3, an upper mold 6 is abutted on the top side of the lower mold 3, two upper pressing plates 7 are fixed on the bottom side of the upper mold 6, two lower pressing plates 8 are arranged on the ejection mechanism 400, and two forming grooves 9 are arranged in the inside of the lower mold 3.

[0022] The ejection mechanism 400 in the embodiment is used to drive the lower pressing plate 8 to extrude and form the sole and eject the sole, and the temperature detection mechanism 500 is used to detect the temperature of the sole and the lower mold 3.

[0023] It should be noted that the upper pressing plate 7 cooperates with the lower pressing plate 8 to extrude the shoe sole, and the forming groove 9 is used to prevent the shoe sole. The driving mechanism for driving the upper mold 6 to move up and down is a common content in the prior art, and therefore is not shown in the figure.

[0024] Please refer to Fig. 1 and Fig. 2 In order to keep the temperature of each part in the lower mold 3 consistent and facilitate detection, the temperature detection mechanism 500 in the embodiment includes a cooling groove 501 opened in the lower mold 3, a water inlet pipe 502 fixed in the front side wall of the lower mold 3, a first valve 503 fixed on the water inlet pipe 502, a water outlet pipe 504 fixed in the rear side wall of the lower mold 3, a second valve 505 fixed on the water outlet pipe 504, two heat-conducting plates 506 fixed in the lower mold 3, and a temperature detector 507 fixed in the lower mold 3. The water inlet pipe 502 is in communication with the front side of the cooling groove 501, the water outlet pipe 504 is in communication with the rear side of the cooling groove 501, the lower mold 3 is provided with a mounting groove in the inside, the temperature detector 507 is fixed to the bottom side of the mounting groove, and the two heat-conducting plates 506 extend to the opposite side of the two forming grooves 9 at the opposite ends, and extend to the left and right sides of the mounting groove at the opposite ends.

[0025] The temperature detection mechanism 500 in the embodiment can accommodate cold water through the cooling groove 501, so as to facilitate cooling of the lower mold 3 and the shoe sole by the cold water, while keeping each part of the lower mold 3 consistent. The water inlet pipe 502 is used to introduce cold water, the water outlet pipe 504 is used to discharge cold water, the temperature detector 507 is used to detect the temperature inside the lower mold 3, and the heat-conducting plate 506 is used to facilitate detection of the temperature in the forming groove 9 when the shoe sole is being processed and formed.

[0026] It should be noted that there is no cold water in the cooling groove 501 during the processing and forming of the shoe sole, so the heat-conducting plate 506 is needed to conduct heat from the forming groove 9. The first valve 503 is used to control the entry of cold water into the cooling groove 501, and the second valve 505 is used to control the discharge of cold water from the cooling groove 501.

[0027] Please refer to Fig. 1 and Fig. 3, in order to facilitate the finished sole ejection, the ejection mechanism 400 in the embodiment includes two telescopic rods 401 fixed on the top side of the base 1, the telescopic end of the telescopic rod 401 is fixed with a moving plate 402, the inside of the moving plate 402 is rotatably connected with a screw rod 403, the bottom side of the lower mold 3 is fixed with a bearing seat, the screw rod 403 rotates in the bearing seat, the bottom side of the screw rod 403 is fixed with a handle 404, the top side of the moving plate 402 is fixed with a moving rod 405, the top side of the moving rod 405 is fixed with the bottom side of the corresponding pressing plate 8, the inside of the lower mold 3 is provided with a moving groove, and the moving rod 405 slides in the moving groove.

[0028] The ejection mechanism 400 in the embodiment can drive the screw rod 403 to rotate by rotating the handle 404, the screw rod 403 is used for driving the moving plate 402 to move up and down, the moving plate 402 drives the moving rod 405 to move, and the pressing plate 8 is driven to move up and down, so that the sole is easily ejected by the pressing plate 8 and the production thickness of the sole is controlled.

[0029] It should be noted that the telescopic rod 401 can limit the moving plate 402 by following the telescopic movement of the moving plate 402, and the bearing seat is used for conveniently fixing the screw rod 403.

[0030] The electric elements appearing in the paper are electrically connected with the controller and the power supply, the control mode of the utility model is controlled by the controller, the control circuit of the controller can be realized by simple programming of the person skilled in the art, the power supply also belongs to the common knowledge in the art, and the utility model is mainly used for protecting the mechanical device, so the control mode and the circuit connection of the utility model will not be explained in detail.

[0031] The working principle of the above embodiment is as follows:

[0032] The raw materials are added into the forming groove 9, the driving mechanism is used for driving the upper mold 6 to move downwards, the upper mold 6 drives the upper pressing plate 7 to enter the forming groove 9, then the handle 404 is rotated, the handle 404 drives the screw rod 403 to rotate, the screw rod 403 drives the moving plate 402 to move upwards, the moving plate 402 drives the moving rod 405 and the pressing plate 8 to move upwards, the pressing plate 8 cooperates with the upper pressing plate 7 to extrude the sole, meanwhile, the heat in the forming groove 9 is transmitted to the temperature detector 507 through the heat conduction plate 506, the temperature detector 507 receives the temperature, then the first valve 503 is opened, the cold water is introduced into the cooling groove 501 through the water inlet pipe 502, the cold water in the cooling groove 501 uniformly cools each part in the lower mold 3, so as to accelerate the cooling and forming of the sole, when the temperature detector 507 detects that the temperature in the forming groove 9 reaches a predetermined value, the driving mechanism is used for driving the upper mold 6 to move upwards, the upper pressing plate 7 follows the upper mold 6 to leave the forming groove 9, then the handle 404 is rotated, and the finished sole is ejected by the pressing plate 8.

[0033] It should be noted that the relationship terms, such as first and second, and the like, are used only to differentiate one entity or action from another, and do not necessarily require or imply that there is any such actual relationship or order between or among the entities or actions. Also, the terms "comprises", "comprising", or any other variations thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but can also include other elements not expressly listed or inherent to such process, method, article, or apparatus. An element proceeded by "comprises... a" does not, without more constraints, exclude the existence of additional identical elements in the process, method, article, or apparatus that comprises the element.

[0034] While the embodiments of the present application have been illustrated and described, it will be understood by those skilled in the art that various changes, modifications, substitutions, and alterations can be made therein without departing from the spirit and scope of the application.

Claims

1. A shoe mold mold with automatic detection of temperature effects, comprising a base (1), characterized in that: The top side of the base (1) is fixed with a plurality of support legs (2), the top end of the plurality of support legs (2) is fixed with a lower mold (3), the inside of the lower mold (3) and the top side of the base (1) are provided with an ejection mechanism (400), the inside of the lower mold (3) is provided with a temperature detection mechanism (500), the top side of the lower mold (3) is abutted with an upper mold (6), the bottom side of the upper mold (6) is fixed with two upper pressing plates (7), the ejection mechanism (400) is provided with two lower pressing plates (8), the inside of the lower mold (3) is provided with two forming grooves (9); The temperature detection mechanism (500) comprises a cooling groove (501) formed in the inside of the lower mold (3), a water inlet pipe (502) fixed in the front side wall of the lower mold (3), a first valve (503) fixed on the water inlet pipe (502), a water outlet pipe (504) fixed in the rear side wall of the lower mold (3), a second valve (505) fixed on the water outlet pipe (504), two heat conduction plates (506) fixed in the inside of the lower mold (3), and a temperature detector (507) fixed in the inside of the lower mold (3).

2. The shoe mold with automatic temperature effect detection of claim 1, wherein: The ejection mechanism (400) comprises two telescopic rods (401) fixed on the top side of the base (1), the telescopic end of the telescopic rod (401) is fixed with a moving plate (402), the inside of the moving plate (402) is rotatably connected with a screw rod (403), the bottom side of the screw rod (403) is fixed with a handle (404), the top side of the moving plate (402) is fixed with a moving rod (405), and the top side of the moving rod (405) is fixed with the bottom side of the corresponding lower pressing plate (8).

3. The shoe mold with automatic temperature effect detection of claim 1, wherein: The front side of the water inlet pipe (502) is communicated with the cooling groove (501), and the rear side of the water outlet pipe (504) is communicated with the cooling groove (501).

4. The shoe mold with automatic temperature effect detection of claim 1, wherein: The inside of the lower mold (3) is provided with a mounting groove, and the temperature detector (507) is fixed on the bottom side of the mounting groove.

5. The shoe mold with automatic temperature effect detection of claim 4, wherein: The opposite ends of the two heat conduction plates (506) extend to the opposite sides of the two forming grooves (9), and the opposite ends of the two heat conduction plates (506) extend to the left and right sides of the mounting groove.

6. The shoe mold with automatic temperature effect detection of claim 2, wherein: The bottom side of the lower mold (3) is fixed with a bearing seat, and the screw rod (403) rotates in the bearing seat.

7. The shoe mold with automatic temperature effect detection of claim 2, wherein: The inside of the lower mold (3) is provided with a moving groove, and the moving rod (405) slides in the moving groove.

Citation Information

Patent Citations

  • Shoe mold capable of automatically detecting temperature

    CN218928402U