Heat resistance testing of soles used in the production of lightweight, high-elasticity, and environmentally friendly casual shoes

By adjusting the combination of the conveying component, the clamping displacement component, and the detection component, the problem of the limited conveying distance of the heat resistance testing equipment for the soles of lightweight, high-elasticity, and environmentally friendly casual shoes was solved, realizing automated detection at multiple angles and positions, and improving detection efficiency and accuracy.

CN224268455UActive Publication Date: 2026-05-26RUIAN FEICHI SHOES CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
RUIAN FEICHI SHOES CO LTD
Filing Date
2025-06-05
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

In the existing technology, the heat resistance testing equipment for the soles of lightweight, high-elasticity, and environmentally friendly casual shoes cannot adapt to material transportation over long distances, resulting in limited transportation distance and failing to meet the needs of efficient and accurate testing.

Method used

By employing a combination of adjustment and transmission components, clamping and displacement components, and detection components, and utilizing mechanical transmission, pneumatic control, and electronic control technologies, automated heat resistance testing of shoe soles is achieved.

Benefits of technology

It enables multi-angle and multi-position detection of shoe soles, expanding the detection range, improving detection efficiency and accuracy, and adapting to the transmission and detection of shoe soles of different sizes.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model relates to the technical field of casual shoe production testing, and discloses a heat resistance testing method for soles used in the production of lightweight, high-elasticity, and environmentally friendly casual shoes. It includes a work box assembly, with an adjustment and conveying assembly fixedly installed on the front side of the work box assembly. A clamping displacement assembly and a detection assembly are fixedly installed on the top of the work box assembly. A heating assembly is correspondingly disposed at the top end of the adjustment and conveying assembly, and is fixedly installed on the top of the work box assembly. The clamping displacement assembly is disposed on one side of the heating assembly, and the detection assembly is disposed on the rear side of the heating assembly. By installing the adjustment and conveying assembly on the device, this utility model allows for the adjustment and conveying of parts over longer distances, thus broadening the application range of the device during testing.
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Description

Technical Field

[0001] This utility model relates to the technical field of casual shoe production testing, specifically to a heat resistance test for the sole of lightweight, high-elasticity, and environmentally friendly casual shoes. Background Technology

[0002] With the increasing consumer demand for lightweight, high-elasticity, and environmentally friendly casual shoes, sole performance has become a key factor affecting product quality and user experience. Among these factors, sole heat resistance directly impacts the shoe's lifespan, comfort, and safety in high-temperature environments. However, current heat resistance testing technologies for soles used in the production of lightweight, high-elasticity, and environmentally friendly casual shoes suffer from problems such as bulky and complex testing equipment, cumbersome testing procedures, and an inability to accurately simulate actual wearing scenarios, failing to meet the needs of enterprises for efficient and accurate testing. Therefore, developing efficient heat resistance testing technologies suitable for lightweight, high-elasticity, and environmentally friendly casual shoe soles has become an important issue for improving product quality and driving industry development.

[0003] Application number CN201921390671.8 discloses a performance testing device for fireproof shoes, including a testing box with a hinged door and a transparent window on the door surface. A motor is located at the center of the top of the testing box, with its output shaft connected to a rotating shaft. The rotating shaft passes through the testing box and connects to a support frame. Connecting pieces are located at both ends of the support frame, and a placement frame is connected to the bottom of each connecting piece. Several mounting slots are provided on both sides of the inner wall of the placement frame, with a placement plate between the slots. A mounting base is located at the bottom of the testing box, and a heating plate is located inside the mounting base. A hot air blower is located on one side of the top of the testing box, and the hot air blower is connected to... The device is installed inside a testing chamber, with several heating tubes fixedly connected to both sides of the chamber. This invention uses a hot air blower and heating tubes to heat the entire fireproof shoe at high temperatures, testing its condition under high-temperature conditions. Furthermore, considering the thick sole of the fireproof shoe, a heating plate is used to separately test the sole, thus determining its heat resistance under high-temperature conditions. However, a shortcoming exists: the device is not yet able to adjust for material transport over long distances, limiting its transport distance. Utility Model Content

[0004] The purpose of this invention is to provide a heat resistance test for the soles of lightweight, high-elasticity, and environmentally friendly casual shoes. This invention addresses the problem that the existing device is not yet able to adjust for material transport over long distances, thus limiting the transport distance of the device.

[0005] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution:

[0006] This utility model relates to a heat resistance test for the sole of a lightweight, high-elasticity, environmentally friendly casual shoe. It includes a work box assembly. An adjustment conveying assembly is fixedly installed on the front side of the work box assembly, and a clamping displacement assembly and a detection assembly are fixedly installed on the top of the work box assembly. A heating assembly is correspondingly provided at the top end of the adjustment conveying assembly. The heating assembly is fixedly installed on the top of the work box assembly. The clamping displacement assembly is correspondingly provided on one side of the heating assembly, and the detection assembly is correspondingly provided on the rear side of the heating assembly.

[0007] The adjustment and conveying assembly includes a first conveying section, which is fixedly installed inside the slot on the front side of the work box by a bracket. The two sides of the first conveying section are connected to the second conveying section by a pneumatic push plate, and the two sides of the second conveying section are connected to the third conveying section by a pneumatic push plate.

[0008] Furthermore, the work box assembly includes a work box, a workbench is fixedly mounted on the top of the work box, and fixed support silicone is fixedly mounted diagonally on the bottom of the work box.

[0009] Furthermore, when the second and third transmission segments extend, they are aligned with the first transmission segment.

[0010] Furthermore, the heating assembly includes a limiting bracket, which is correspondingly disposed at the top of the first conveying section and fixedly installed on the top of the workbench. At the same time, an electrically controlled rotating rod is fixedly installed on the rear side of the limiting bracket, and a heating grid plate is fixedly installed on the outer side of the electrically controlled rotating rod. The two sides of the heating grid plate are limited by the limiting bracket.

[0011] Furthermore, the clamping displacement assembly includes a fixed base plate, which is fixedly installed on the top of the workbench. A support column is fixedly installed on the top of the fixed base plate. A rotating plate is installed on the top of the support column, and the support column is correspondingly positioned on one side of the limiting bracket. A sliding plate is fixedly installed on the top of the rotating plate. A rotating threaded rod is installed on the outer end of one side of the sliding plate. A threaded sliding plate is installed on the outer side of the rotating threaded rod. A lifting brake is fixedly installed on the top of the threaded sliding plate, and a gripper is fixedly installed on the bottom of the lifting brake.

[0012] Furthermore, the detection component includes a bracket, which is fixedly installed on the top of the workbench and correspondingly positioned behind the limiting bracket. A second rotating threaded rod is fixedly installed on one side of the top of the bracket. A second threaded sliding plate is fixedly installed in the middle of the second rotating threaded rod. A second lifting brake is fixedly installed on the top of the second threaded sliding plate. A detection lens is fixedly installed at the bottom of the second lifting brake. A placement plate is correspondingly positioned at the bottom of the detection lens, and the detection lens is associated with a computer display screen. The computer display screen is fixedly installed on the top of the workbench, and the placement plate is slidably installed on the limiting slide rail.

[0013] This utility model has the following beneficial effects:

[0014] (1) The present invention provides a heat resistance test for the sole of a lightweight, high-elasticity, environmentally friendly casual shoe. By installing an adjustment and transmission component on the device, the device can be adjusted and transmitted to parts that are far away. This makes the device more widely applicable when used for testing.

[0015] (2) The present invention provides a heat resistance test for the sole of a lightweight, high-elasticity, environmentally friendly casual shoe. By installing a clamping displacement component on the device, the material can be conveyed after heating by the clamping displacement component when using the device.

[0016] Of course, any product implementing this utility model does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description

[0017] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 This is a schematic diagram of the overall structure of a lightweight, high-elasticity, environmentally friendly casual shoe sole heat resistance testing device for production according to this utility model.

[0019] Figure 2 This is a schematic diagram of the structure of a heat resistance testing and adjustment transmission component for the sole of a lightweight, high-elasticity, environmentally friendly casual shoe.

[0020] Figure 3 This is a schematic diagram of the structure of a heat-resistant detection clamping displacement component for producing lightweight, high-elasticity, and environmentally friendly casual shoes.

[0021] Figure 4This is a schematic diagram of the structure of a heat resistance testing component for the sole of a lightweight, high-elasticity, environmentally friendly casual shoe.

[0022] The attached diagram lists the components represented by each number as follows:

[0023] In the diagram: 1. Workbox assembly; 2. Adjustment and conveying assembly; 3. Heating assembly; 4. Clamping and displacement assembly; 5. Detection assembly; 101. Workbox; 102. Worktable; 103. Fixed support silicone; 201. Conveyor section one; 202. Pneumatic pusher plate one; 203. Conveyor section two; 204. Pneumatic pusher plate two; 205. Conveyor section three; 301. Limit bracket; 302. Heating grid plate; 303. Electrically controlled rotating rod; 40 1. Fixed base plate; 402. Support column; 403. Rotating plate; 404. Sliding plate; 405. Rotating threaded rod one; 406. Threaded sliding plate one; 407. Lifting brake one; 408. Grip clamp; 501. Bracket; 502. Rotating threaded rod two; 503. Threaded sliding plate two; 504. Lifting brake two; 505. Detection lens; 506. Placement plate; 507. Limiting slide rail; 508. Computer display screen. Detailed Implementation

[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0025] Please see Figures 1-4 As shown, this utility model is a heat resistance test for the sole of a lightweight, high-elasticity, environmentally friendly casual shoe. It includes a work box assembly 1, an adjustment conveying assembly 2 fixedly installed on the front side of the work box assembly 1, and a clamping displacement assembly 4 and a detection assembly 5 fixedly installed on the top of the work box assembly 1. A heating assembly 3 is correspondingly provided at the top end of the adjustment conveying assembly 2. The heating assembly 3 is fixedly installed on the top of the work box assembly 1. The clamping displacement assembly 4 is correspondingly provided on one side of the heating assembly 3, and the detection assembly 5 is correspondingly provided on the rear side of the heating assembly 3.

[0026] The adjustment conveying assembly 2 includes a first conveying section 201, which is fixedly installed inside the slot on the front side of the work box 101 by a bracket. The two sides of the first conveying section 201 are connected to the second conveying section 203 by a pneumatic push plate 202, and the two sides of the second conveying section 203 are connected to the third conveying section 205 by a pneumatic push plate 204.

[0027] By installing the adjustment and conveying component 2 on the device, the device can be adjusted and conveyed to parts that are far away when it is used, thus making the device more widely applicable when used for testing.

[0028] The work box assembly 1 includes a work box 101, a workbench 102 is fixedly installed on the top of the work box 101, and fixed support silicone 103 is fixedly installed diagonally on the bottom of the work box 101. The work box 101 in the work box assembly 1 provides a stable working foundation, and the fixed support silicone 103 at the bottom ensures the stability and anti-slip properties when the device is placed.

[0029] When conveyor sections 203 and 305 extend, they become flush with conveyor section 1 (201), which is in operation, conveying the sole to the detection device. When it is necessary to adapt to different sole sizes or adjust the conveying path, pneumatic pusher 202 pushes conveyor section 203 and pneumatic pusher 204 pushes conveyor section 3 (205) to extend until it is flush with conveyor section 1 (201), forming a wider or longer conveying path. The sole is then conveyed to the end via the adjustment conveyor assembly 2. At this time, the heating assembly 3 located at the top of conveyor section 1 (201) starts to work.

[0030] The heating component 3 includes a limiting bracket 301, which is positioned on the top of the first conveyor section 201 and fixedly mounted on the top of the workbench 102. A electrically controlled rotating rod 303 is fixedly mounted on the rear side of the limiting bracket 301, and a heating grid plate 302 is fixedly mounted on the outer side of the electrically controlled rotating rod 303. The heating grid plate 302 is limited on both sides by the limiting bracket 301, which is fixed to the workbench 102, providing support and limiting for the heating component. The electrically controlled rotating rod 303 drives the heating grid plate 302 to rotate, adjusting the heating angle and range to uniformly heat the sole, simulating the high-temperature environment that the sole may encounter in actual use.

[0031] The clamping displacement assembly 4 includes a fixed base plate 401, which is fixedly installed on the top of the worktable 102. A support column 402 is fixedly installed on the top of the fixed base plate 401, and a rotating plate 403 is installed on the top of the support column 402. The support column 402 is correspondingly positioned on one side of the limiting bracket 301. A sliding plate 404 is fixedly installed on the top of the rotating plate 403. A rotating threaded rod 405 is installed on the outer end of one side of the sliding plate 404. A threaded sliding plate 406 is installed on the outer side of the threaded rod 405. A lifting brake 407 is fixedly installed on the top of the threaded sliding plate 406, and a gripper 408 is fixedly installed on the bottom of the lifting brake 407. After heating is completed, the clamping displacement assembly 4 begins to operate. The support column 402 on the fixed base plate 401 on the top of the worktable 102 supports the rotating plate 403, and the rotating plate 403 can be angled. The rotating threaded rod 405 on the sliding plate 404 rotates, causing the threaded sliding plate 406 to move horizontally. At the same time, the lifting brake 407 controls the lifting of the gripper 408, thereby achieving precise gripping of the heated shoe sole and transferring it to the detection position.

[0032] The detection component 5 includes a bracket 501, which is fixedly installed on the top of the workbench 102 and is correspondingly positioned behind the limiting bracket 301. A rotating threaded rod 502 is fixedly installed on one side of the top of the bracket 501. A threaded sliding plate 503 is fixedly installed in the middle of the rotating threaded rod 502. A lifting brake 504 is fixedly installed on the top of the threaded sliding plate 503. A detection lens 505 is fixedly installed at the bottom of the lifting brake 504. A placement plate 506 is correspondingly positioned at the bottom of the detection lens 505. The detection lens 505 is associated with a computer display screen 508, which is fixedly installed on the top of the workbench 102. The placement plate 506 is slidably mounted on the limiting slide rail 507. The clamping displacement component 4 places the shoe sole on the placement plate 506 of the detection component 5. The placement plate 506 can slide and adjust its position on the limiting slide rail 507. The bracket 501 is fixed to the top of the workbench 102. The rotating threaded rod 502 on the bracket 501 rotates, driving the threaded sliding plate 503 to move horizontally. The lifting brake 504 controls the lifting and lowering of the detection lens 505, realizing multi-angle and multi-position detection of the sole. The detection lens 505 transmits the detection data to the associated computer display screen 508, which displays the detection results, thus completing the detection of the heat resistance performance of the sole.

[0033] This lightweight, high-elasticity, environmentally friendly casual shoe manufacturing outsole heat resistance testing device uses a conveying assembly 2 to transfer the outsole, a heating assembly 3 to heat the outsole, a clamping and displacement assembly 4 to clamp and transfer the outsole, and a testing assembly 5 to test the heat resistance of the heated outsole. These components work together, utilizing mechanical transmission, pneumatic control, and electrical control technologies to automate the outsole heat resistance testing process. During operation, the working box 101 in the working box assembly 1 provides a stable working foundation, and its bottom fixed support silicone 103 ensures the stability and anti-slip properties of the device when placed. The conveying assembly 2 is adjusted to start operation; initially, the conveyor section 201 is in working condition, transporting the outsole into the testing device. When it is necessary to adapt to different sized soles or adjust the conveying path, pneumatic pusher plate 202 pushes conveyor section 203 and pneumatic pusher plate 204 to extend conveyor section 3 205 until they are flush with conveyor section 201, forming a wider or longer conveying path. The sole is conveyed to the end through the adjustment conveying assembly 2, at which point the heating assembly 3 located at the top of conveyor section 201 begins to work. The limiting bracket 301 is fixed on the worktable 102, providing support and limiting for the heating assembly. The electrically controlled rotating rod 303 drives the heating grid plate 302 to rotate, adjusting the heating angle and range to uniformly heat the sole, simulating the high-temperature environment that the sole may encounter in actual use. After heating is completed, the clamping displacement assembly 4 begins to operate. The support column 402 on the fixed base plate 401 fixed on the top of the worktable 102 supports the rotating plate 403, which can be angled. The rotating threaded rod 405 on the sliding plate 404 rotates, causing the threaded sliding plate 406 to move horizontally. Simultaneously, the lifting brake 407 controls the lifting and lowering of the gripper 408, thus achieving precise gripping of the heated shoe sole and transferring it to the detection position. The gripping displacement component 4 places the shoe sole on the placement plate 506 of the detection component 5. The placement plate 506 can slide and adjust its position on the limiting slide rail 507. The bracket 501 is fixed to the top of the worktable 102. The rotating threaded rod 502 on the bracket 501 rotates, causing the threaded sliding plate 503 to move horizontally. The lifting brake 504 controls the lifting and lowering of the detection lens 505, enabling multi-angle and multi-position detection of the shoe sole. The detection lens 505 transmits the detection data to the associated computer display screen 508, which displays the detection results, completing the detection of the shoe sole's heat resistance performance.

[0034] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the utility model to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of this utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.

Claims

1. A light weight high elastic environment-friendly casual shoe production sole heat resistance detection, comprising a working box assembly (1), characterized in that: An adjustment conveying assembly (2) is fixedly installed on the front side of the work box assembly (1), and a clamping displacement assembly (4) and a detection assembly (5) are fixedly installed on the top of the work box assembly (1). A heating assembly (3) is correspondingly provided at the top end of the adjustment conveying assembly (2). The heating assembly (3) is fixedly installed on the top of the work box assembly (1). The clamping displacement assembly (4) is correspondingly provided on one side of the heating assembly (3). The detection assembly (5) is correspondingly provided on the rear side of the heating assembly (3). ​ The regulating conveying assembly (2) includes a first conveying section (201), which is fixedly installed inside the slot on the front side of the work box (101) by a bracket, and the two sides of the first conveying section (201) are connected to the second conveying section (203) by a pneumatic push plate (202), and the two sides of the second conveying section (203) are connected to the third conveying section (205) by a pneumatic push plate (204).

2. The heat-resistant sole detection for light-weight high-elastic environmentally friendly casual shoe production according to claim 1, characterized in that: The work box assembly (1) includes a work box (101), a workbench (102) is fixedly installed on the top of the work box (101), and fixed support silicone (103) is fixedly installed diagonally on the bottom of the work box (101).

3. The heat-resistant sole detection for light-weight high-elastic environmentally friendly casual shoe production according to claim 1, characterized in that: When the second (203) and third (205) transmission segments extend, they are aligned with the first (201) transmission segment.

4. The heat resistance testing method for the sole of a lightweight, high-elasticity, environmentally friendly casual shoe as described in claim 1, characterized in that: The heating component (3) includes a limiting bracket (301), which is correspondingly disposed on the top of the first conveyor section (201) and fixedly installed on the top of the workbench (102). At the same time, an electric control rotating rod (303) is fixedly installed on the rear side of the limiting bracket (301), and a heating grid plate (302) is fixedly installed on the outer side of the electric control rotating rod (303). The two sides of the heating grid plate (302) are limited by the limiting bracket (301).

5. The heat resistance testing method for the sole of a lightweight, high-elasticity, environmentally friendly casual shoe as described in claim 1, characterized in that: The clamping displacement assembly (4) includes a fixed base plate (401), which is fixedly installed on the top of the workbench (102). A support column (402) is fixedly installed on the top of the fixed base plate (401). A rotating plate (403) is installed on the top of the support column (402), and the support column (402) is correspondingly arranged on one side of the limiting bracket (301). A sliding plate (404) is fixedly installed on the top of the rotating plate (403). A rotating threaded rod (405) is installed on the outer end of one side of the sliding plate (404). A threaded sliding plate (406) is installed on the outer side of the threaded rod of the rotating threaded rod (405). A lifting brake (407) is fixedly installed on the top of the threaded sliding plate (406). A gripper (408) is fixedly installed on the bottom of the lifting brake (407).

6. The heat resistance test method for the sole of a lightweight, high-elasticity, environmentally friendly casual shoe as described in claim 1, characterized in that: The detection component (5) includes a bracket (501), which is fixedly installed on the top of the workbench (102) and is correspondingly arranged on the rear side of the limiting bracket (301). At the same time, a rotating threaded rod (502) is fixedly installed on one side of the top of the bracket (501). A threaded sliding plate (503) is fixedly installed in the middle of the rotating threaded rod (502). A lifting brake (504) is fixedly installed on the top of the threaded sliding plate (503). A detection lens (505) is fixedly installed at the bottom of the lifting brake (504). A placement plate (506) is correspondingly arranged at the bottom of the detection lens (505). The detection lens (505) is associated with a computer display screen (508). The computer display screen (508) is fixedly installed on the top of the workbench (102). The placement plate (506) is slidably installed on the limiting slide rail (507).