Heat storage testing device for antibacterial heat storage fabric

By designing a combination of conveyor belt and heat dissipation simulation mechanism, the problem that existing devices cannot simulate the heat storage and retention of fabric in the wind is solved, realizing comprehensive testing of antibacterial heat-retaining fabrics and improving the practicality and applicability of the equipment.

CN223485895UActive Publication Date: 2025-10-28NANTONG FURAN TEXTILE CO LTD
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Patent Information

Application Number
CN202422542636.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-22
Publication Date
2025-10-28
Estimated Expiration
2034-10-22

AI Technical Summary

Technical Problem

Existing antibacterial heat-retaining fabric testing devices cannot simulate the heat retention of fabric in wind, resulting in low practicality and applicability of the equipment.

Method used

A testing device was designed, comprising a conveyor belt, a processing and testing mechanism, and a heat dissipation simulation mechanism. By combining the heating mechanism, the testing mechanism, and the lifting mechanism, the device simulates wind speed and temperature changes under different environments, thereby achieving comprehensive testing of the heat storage effect of the fabric.

Benefits of technology

It enables comprehensive testing of antibacterial and heat-retaining fabrics under different environments, improving the practicality and applicability of the equipment, and enhancing the comprehensiveness and convenience of the testing results.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a heat storage testing device for an antibacterial heat storage fabric, and relates to the technical field of antibacterial heat storage fabric detection and testing. Comprising a conveying belt, a supporting and connecting mechanism is installed on the outer surface of the conveying belt, a processing and detecting mechanism is arranged at the top end of the conveying belt and used for simulating fabric heat storage effects in different environments, and the processing and detecting mechanism comprises a plurality of processing and detecting frames which are arranged at the top end, close to the two ends, of the conveying belt; wherein a heating mechanism is installed in one processing detection frame, a detection mechanism is arranged in the other processing detection frame, and a heat dissipation simulation mechanism is installed between every two processing detection frames and is close to the top end. According to the utility model, through the arrangement of the heat dissipation simulation mechanism, the heat storage preservation condition of the heat storage fabric after passing through the wind can be simulated during use, so that the equipment can achieve a more comprehensive detection effect during use, the use limitation of the equipment is reduced, and the practicability and applicability of the equipment are improved.
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Description

Technical Field

[0001] This utility model relates to the field of testing technology for antibacterial and heat-retaining fabrics, specifically a heat storage testing device for antibacterial and heat-retaining fabrics. Background Technology

[0002] The heat storage test device is mainly used to evaluate the performance of antibacterial heat storage fabrics in storing and releasing heat, in order to determine their effectiveness in keeping warm or regulating body temperature.

[0003] A heat storage testing device for antibacterial, heat-storing, and waterproof fabric based on composite fibers, authorized by announcement number CN214310256U, has the following problems in use:

[0004] The device lacks a structure for simulating the heat storage and retention of fabric in wind. Antibacterial heat-storing fabrics need to be used in different environments to ensure their heat storage and insulation effects. The device cannot meet the testing purpose of the fabric's heat storage and retention in wind, and has certain limitations in fabric testing, resulting in low practicality and applicability of the device. Therefore, this utility model proposes a new solution. Utility Model Content

[0005] The purpose of this invention is to provide a heat storage testing device for antibacterial heat storage fabrics to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a heat storage test device for antibacterial heat storage fabric, comprising a conveyor belt, a support and connection mechanism installed on the outer surface of the conveyor belt, and a processing and testing mechanism provided at the top of the conveyor belt, the processing and testing mechanism being used to simulate the heat storage effect of fabric in different environments;

[0007] The processing and testing mechanism includes multiple processing and testing frames, each set at the top of the conveyor belt near both ends. One processing and testing frame contains a heating mechanism, and the other contains a testing mechanism. A heat dissipation simulation mechanism is installed between each processing and testing frame near the top. Lifting mechanisms are installed on both sides of the outer surface of each processing and testing frame and between the corresponding heating mechanism and testing mechanism. The heat dissipation simulation mechanism includes multiple fans, each fan being equidistantly positioned between the outer surfaces of the multiple processing and testing frames.

[0008] Preferably, the support connection mechanism includes a mounting frame, a conveyor belt installed inside the mounting frame, the bottom of each processing and detection frame being installed near the top of the mounting frame, and a support foot being fixedly connected to the bottom of the mounting frame, with multiple reinforcing ribs provided inside the support foot.

[0009] Preferably, the heating mechanism includes a heating chamber, the outer surface of which is slidably connected to the interior of one of the processing and detection frames. Each processing and detection frame has sliding grooves extending through the interior on both sides of its outer surface. An input pipe is fixedly connected to both sides of the outer surface of the heating chamber, and the outer surface of the input pipe is slidably connected to the interior of the sliding groove. The detection mechanism includes a lifting mounting plate, which is slidably connected to the interior of another processing and detection frame. Multiple detection sensors are mounted on the top of the lifting mounting plate.

[0010] Preferably, the lifting mechanism includes multiple mounting strips, lifting sleeves, and lifting blocks. Each lifting block is fixedly connected to both sides of the surface of the lifting mounting plate. Each lifting block surface is slidably connected to the interior of a corresponding sliding groove. Each lifting sleeve is sleeved onto the outer surface of the input pipe. Each mounting strip is fixedly connected to both sides of the outer surface of the processing and detection frame. Each mounting strip is respectively set at both ends of a corresponding sliding groove. A threaded rod is rotatably connected between each mounting strip located at both ends of the same sliding groove. The lifting sleeve and lifting block are screwed to the outer surface of the corresponding threaded rod. A sliding hole penetrating the bottom end is opened at the top of the lifting sleeve. A sliding rod is slidably connected inside each sliding hole. Both ends of each sliding rod are fixedly connected to the surface of the corresponding mounting strip. A driving mechanism is installed at the top of the processing and detection frame.

[0011] Preferably, the drive mechanism includes multiple rotary motors, each rotary motor having a motor frame mounted on its outer surface. The bottom end of the motor frame is mounted on the top of the processing and detection frame, and the output end of each rotary motor extends through a mounting strip to the top of the threaded rod.

[0012] Preferably, a mounting bracket is provided near the top of each of the processing and detection frames, each fan is installed inside the mounting bracket, and connecting plates are fixedly connected to both sides of the mounting bracket. Multiple fixing bolts are provided between the connecting plates and the processing and detection frames.

[0013] Compared with the prior art, the beneficial effects of this utility model are:

[0014] This heat storage testing device for antibacterial heat storage fabrics, through the setting of a heat dissipation simulation mechanism, can simulate the heat storage and preservation of heat storage fabrics after passing through wind, so that the device can achieve a more comprehensive testing effect, reduce the limitations of the device's use, and increase its practicality and applicability. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the overall bottom structure of this utility model;

[0016] Figure 2 This is a schematic diagram of the overall top structure of this utility model;

[0017] Figure 3 This is a cross-sectional structural diagram of the present invention;

[0018] Figure 4 This is a schematic diagram of the exploded structure of the heat dissipation simulation mechanism of this utility model.

[0019] In the diagram: 1. Conveyor belt; 2. Mounting frame; 3. Processing and detection frame; 4. Sliding groove; 5. Mounting strip; 6. Threaded rod; 7. Slide rod; 8. Lifting sleeve; 9. Input pipe; 10. Lifting block; 11. Rotary motor; 12. Motor frame; 13. Connecting plate; 14. Support leg; 15. Reinforcing rib; 16. Lifting mounting plate; 17. Detection sensor; 18. Heating chamber; 19. Mounting frame; 20. Electric fan; 21. Fixing bolt. Detailed Implementation

[0020] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0021] A heat storage detection device is used when testing the heat storage of antibacterial heat storage fabrics. The heat storage detection device for antibacterial fabrics proposed in this equipment is specifically designed to simulate the heat storage effect of the fabric after passing through the wind. When using the equipment, a control panel needs to be set up to control the rotating motor 11, the fan 20 and the detection sensor 17, as well as to supply power to the equipment. It is also necessary to set up a heat source to circulate into the heating chamber 18 to ensure that the fabric can store heat normally. By adjusting the speed of different fans 20, different wind speeds are simulated to ensure that the equipment can operate normally during use.

[0022] like Figures 1-4 As shown, this utility model provides a technical solution: a heat storage testing device for antibacterial heat storage fabric, including a conveyor belt 1, a support and connection mechanism installed on the outer surface of the conveyor belt 1, a processing and testing mechanism set at the top of the conveyor belt 1, the processing and testing mechanism being used to simulate the heat storage effect of fabric in different environments, the processing and testing mechanism including multiple processing and testing frames 3, each processing and testing frame 3 being set at the top of the conveyor belt 1 near both ends, one processing and testing frame 3 having a heating mechanism installed inside, another processing and testing frame 3 having a testing mechanism installed inside, a heat dissipation simulation mechanism being installed between each processing and testing frame 3 near the top, and a lifting mechanism being installed on both sides of the outer surface of each processing and testing frame 3 and between the corresponding heating mechanism and the testing mechanism, the heat dissipation simulation mechanism including multiple electric fans 20, each electric fan 20 being equidistantly arranged between the outer surfaces of multiple processing and testing frames 3.

[0023] It is worth noting that this structure allows the device to simulate the heat retention of heat-storing fabric when exposed to wind, thereby increasing the device's detection effectiveness, practicality, and reducing its limitations. This enables the device to achieve a wider range of detection capabilities, enhancing its usability and applicability.

[0024] like Figures 1-3 As shown, the heating mechanism includes a heating chamber 18, the outer surface of which is slidably connected to the interior of one of the processing and detection frames 3. Each processing and detection frame 3 has sliding grooves 4 penetrating through its interior on both sides of its outer surface. Input pipes 9 are fixedly connected to both sides of the outer surface of the heating chamber 18, and their outer surfaces are slidably connected to the interior of the sliding grooves 4. The detection mechanism includes a lifting mounting plate 16, which is slidably connected to the interior of another processing and detection frame 3. Multiple detection sensors 17 are mounted on the top of the lifting mounting plate 16. The lifting mechanism includes multiple mounting strips 5, a lifting sleeve 8, and lifting blocks 10. Each lifting block 10 is fixedly connected to both sides of the surface of the lifting mounting plate 16. Each lifting block 10 is slidably connected to the inside of the corresponding sliding groove 4. Each lifting sleeve 8 is sleeved on the outer surface of the input pipe 9. Each mounting strip 5 is fixedly connected to both sides of the outer surface of the processing and detection frame 3. Each mounting strip 5 is respectively set at both ends of the corresponding sliding groove 4. A threaded rod 6 is rotatably connected between each mounting strip 5 located at both ends of the same sliding groove 4. The lifting sleeve 8 and the lifting block 10 are screwed to the outer surface of the corresponding threaded rod 6. The top of the lifting sleeve 8 is provided with a sliding hole that penetrates the bottom end. A sliding rod 7 is slidably connected inside each sliding hole. Both ends of each sliding rod 7 are fixedly connected to the surface of the corresponding mounting strip 5. A drive mechanism is installed at the top of the processing and detection frame 3.

[0025] It is worth noting that this structure allows the device to simulate wind blowing on the surface of the heat-storing fabric during use, enabling the detection of the fabric's heat storage effect under wind conditions. This increases the detection effectiveness of the device, ensuring it can perform tests in different environments, and enhancing its ease of use, practicality, and applicability.

[0026] like Figures 1-4As shown, the support connection mechanism includes a mounting frame 2, a conveyor belt 1 installed inside the mounting frame 2, and the bottom of each processing and detection frame 3 installed near the top of the mounting frame 2. The bottom of the mounting frame 2 is fixedly connected to a support foot 14, and the support foot 14 is provided with multiple reinforcing ribs 15. The drive mechanism includes multiple rotary motors 11, and a motor frame 12 is installed on the outer surface of each rotary motor 11. The bottom of the motor frame 12 is installed at the top of the processing and detection frame 3. The output end of each rotary motor 11 passes through the mounting strip 5 to the top of the threaded rod 6. A mounting bracket 19 is provided near the top of each processing and detection frame 3. Each fan 20 is installed inside the mounting bracket 19. A connecting plate 13 is fixedly connected to both sides of the mounting bracket 19. Multiple fixing bolts 21 are provided between the connecting plate 13 and the processing and detection frame 3.

[0027] It is worth noting that this structural design provides excellent support for the equipment during use, enabling more stable processing. It also allows for rapid adjustment of the height of the heating and detection mechanisms, facilitating the detection of different fabrics and ensuring wider applicability, thus increasing the equipment's practicality and versatility.

[0028] Working principle: During use, the height of the heating chamber 18 is adjusted by the rotary motor 11, so that the bottom of the outer surface of the heating chamber 18 contacts the fabric. During the heating process, the heating source is input into the heating chamber 18 through the input pipe 9. Multiple input pipes 9 can form a circulating flow. The rotary motor 11 adjusts the height of the lifting mounting plate 16, so that the height of the detection sensor 17 can be adjusted to achieve the desired effect, realizing the adjustment of the detection height for different materials. The electric fan 20 is set between multiple processing and detection frames 3, which can simulate airflow after the fabric has finished heat storage. By adjusting the motor speed, different wind speeds can be achieved, which can detect the heat flow efficiency of the fabric after heat storage, so that the equipment can achieve a more comprehensive detection effect and increase the practicality and applicability of the equipment.

[0029] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended embodiments and their equivalents.

Claims

1. A heat storage testing device for antibacterial heat storage fabric, comprising a conveyor belt (1), characterized in that: A support connection mechanism is installed on the outer surface of the conveyor belt (1), and a processing and detection mechanism is set at the top of the conveyor belt (1). The processing and detection mechanism is used to simulate the heat storage effect of fabrics in different environments. The processing and testing mechanism includes multiple processing and testing frames (3). Each processing and testing frame (3) is located at the top of the conveyor belt (1) near both ends. A heating mechanism is installed inside one of the processing and testing frames (3), and a testing mechanism is installed inside the other processing and testing frame (3). A heat dissipation simulation mechanism is installed between each processing and testing frame (3) near the top. A lifting mechanism is installed between the corresponding heating mechanism and the testing mechanism on both sides of the outer surface of each processing and testing frame (3). The heat dissipation simulation mechanism includes multiple electric fans (20). Each electric fan (20) is equidistantly arranged between the outer surfaces of multiple processing and testing frames (3).

2. The heat storage testing device for antibacterial heat storage fabric according to claim 1, characterized in that: The support connection mechanism includes a mounting frame (2), a conveyor belt (1) installed inside the mounting frame (2), and the bottom of each processing and detection frame (3) is installed at the top of the mounting frame (2) near both ends. The bottom of the mounting frame (2) is fixedly connected to a support foot (14), and multiple reinforcing ribs (15) are provided inside the support foot (14).

3. The heat storage testing device for antibacterial heat storage fabric according to claim 1, characterized in that: The heating mechanism includes a heating chamber (18), the outer surface of which is slidably connected to the interior of one of the processing and detection frames (3). Each processing and detection frame (3) has a sliding groove (4) extending through the interior on both sides of its outer surface. An input pipe (9) is fixedly connected to both sides of the outer surface of the heating chamber (18), and the outer surface of the input pipe (9) is slidably connected to the interior of the sliding groove (4). The detection mechanism includes a lifting mounting plate (16), which is slidably connected to the interior of another processing and detection frame (3). Multiple detection sensors (17) are installed on the top of the lifting mounting plate (16).

4. The heat storage testing device for antibacterial heat storage fabric according to claim 3, characterized in that: The lifting mechanism includes multiple mounting strips (5), lifting sleeves (8), and lifting blocks (10). Each lifting block (10) is fixedly connected to both sides of the surface of the lifting mounting plate (16). The surface of each lifting block (10) is slidably connected to the inside of the corresponding sliding groove (4). Each lifting sleeve (8) is sleeved on the outer surface of the input pipe (9). Each mounting strip (5) is fixedly connected to both sides of the outer surface of the processing detection frame (3). Each mounting strip (5) is respectively set at both ends of the corresponding sliding groove (4). A threaded rod (6) is rotatably connected between each mounting strip (5) located at both ends of the same sliding groove (4). The lifting sleeve (8) and the lifting block (10) are screwed to the outer surface of the corresponding threaded rod (6). A sliding hole penetrating the bottom end is opened at the top of the lifting sleeve (8). A sliding rod (7) is slidably connected inside each sliding hole. Both ends of each sliding rod (7) are fixedly connected to the surface of the corresponding mounting strip (5). A driving mechanism is installed at the top of the processing detection frame (3).

5. The heat storage testing device for antibacterial heat storage fabric according to claim 4, characterized in that: The drive mechanism includes multiple rotary motors (11), each rotary motor (11) has a motor frame (12) mounted on its outer surface, the bottom end of the motor frame (12) is mounted on the top of the processing and detection frame (3), and the output end of each rotary motor (11) passes through the mounting strip (5) to the top of the threaded rod (6).

6. The heat storage testing device for antibacterial heat storage fabric according to claim 1, characterized in that: A mounting bracket (19) is provided near the top of each of the processing and detection frames (3). Each fan (20) is installed inside the mounting bracket (19). A connecting plate (13) is fixedly connected to both sides of the mounting bracket (19). Multiple fixing bolts (21) are provided between the connecting plate (13) and the processing and detection frame (3).

Citation Information

Patent Citations

  • Heat storage testing device for antibacterial heat storage waterproof fabric based on composite fibers

    CN214310256U