A sword storage cooling module and cooling system

By installing arc-shaped cooling water pipes on the outer wall of the sword magazine and filling surface defects with thermally conductive adhesive, combined with slider and spring damping design, the problem of frictional heat generation in the sword magazine and sword belt was solved, achieving effective cooling protection and long-term stable operation of the equipment.

CN118186664BActive Publication Date: 2026-07-17GUANGDONG FENGKAI MASCH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
GUANGDONG FENGKAI MASCH CO LTD
Filing Date
2024-04-16
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

During the textile process, the scissor and scissor belt generate excessive heat due to friction, which can easily lead to damage. Existing technologies are insufficient to effectively cool and protect them.

Method used

Arc-shaped cooling water pipes are installed on the outer wall of the sword magazine. Water is circulated through the inlet and outlet to remove heat. Thermally conductive adhesive is used to fill surface defects to improve thermal conductivity. Detachable sliders and springs are combined to reduce the effects of water hammer.

Benefits of technology

It achieves effective cooling protection for the sword magazine and sword belt, ensuring the loom operates efficiently for a long time, and extends the equipment life through the water exchange mode of the self-circulating water supply system and the shock absorption design.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application relates to the field of textile technology, and in particular to a sword magazine cooling module and cooling system. A sword magazine cooling module includes a cooling water pipe installed on the outer wall of the sword magazine. The cooling water pipe is arc-shaped and extends along the arc section where the sword magazine is attached. One end of the cooling water pipe has an inlet, and the other end has an outlet. In actual operation, the cooling water is circulated through the inlet and outlet to remove heat generated by friction between the sword belt and the sword magazine through heat transfer, thereby achieving cooling and protecting the sword magazine and sword belt.
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Description

Technical Field

[0001] This application relates to the field of textile technology, and in particular to a sword magazine cooling module and cooling system. Background Technology

[0002] During the weaving process on a loom, the rapier belt moves back and forth within the rapier magazine. During this process, friction occurs between the rapier belt and the arc-shaped section in the center of the magazine, generating heat. This high temperature can cause the rapier belt to delaminate and peel, leading to damage. Simultaneously, the magazine itself can also be damaged due to excessive friction. Therefore, further improvements are possible. Summary of the Invention

[0003] In order to cool down the sword magazine and thus protect the sword magazine and sword belt, this application provides a sword magazine cooling module and cooling system.

[0004] The sword sheath cooling module provided in this application adopts the following technical solution:

[0005] Firstly, this application provides a sword magazine cooling module, which adopts the following technical solution:

[0006] A sword sheath cooling module includes a cooling water pipe installed on the outer wall of the sword sheath. The cooling water pipe is arc-shaped and extends along the arc section of the sword sheath. One end of the cooling water pipe has an inlet, and the other end has an outlet.

[0007] By adopting the above technical solution, in the actual working process, the inlet and outlet of the cooling water pipe are used to circulate the cooling water pipe, so as to remove the heat generated by the friction between the sword belt and the sword magazine through heat transfer, thereby achieving cooling treatment and protecting the sword magazine and sword belt.

[0008] Optionally, thermally conductive adhesive is provided between the cooling water pipe and the sword magazine.

[0009] By adopting the above technical solution, it can be seen that the surfaces of the sword magazine and cooling water pipes often have tiny gaps or uneven surfaces, which may affect the heat transfer rate. In this case, using thermally conductive gel can fill these defects, absorb the tolerances between the heat source and the radiator, and thus achieve better heat conduction.

[0010] Optionally, the thickness of the thermally conductive adhesive is 0.5-1.5 mm.

[0011] While adopting the above technical solution, it is important to carefully avoid using excessive amounts of thermal conductive gel during application, otherwise it will result in waste and increase thermal resistance, thereby reducing heat dissipation performance. Setting the thickness of the thermal conductive gel to 0.5-1.5mm will result in better thermal conductivity.

[0012] Optionally, the cooling water pipe is installed at the bottom of the sword magazine, and a slide rail is provided at the top of the arc section of the sword magazine. A slider is slidably arranged in the slide rail, and the cooling water pipe is fixedly connected to the slider. Springs are arranged and installed on both sides of the slider in the slide rail.

[0013] By adopting the above technical solution, during the process of cooling the sword magazine by circulating water through the cooling water pipes, water hammer effects are prone to occur within the magazine. However, in this application, when water hammer effects occur, the water hammer effect generated inside the magazine can be damped by the springs on both sides of the slider in the cooling water pipe installation method, making it less likely to be transmitted to the sword magazine and cause damage.

[0014] Optionally, the cooling water pipe and the slider are detachably connected.

[0015] By adopting the above technical solution, since the cooling water pipe and the slider are detachable, the cooling water pipe can be disassembled and replaced during subsequent use.

[0016] Secondly, this application provides a cooling system, which adopts the following technical solution:

[0017] A cooling system includes a water exchange pipeline subsystem and multiple self-circulating water supply pipeline subsystems. The self-circulating water supply pipeline subsystems are used to independently circulate water to a sword storage cooling module as described above. When the water temperature in the self-circulating water supply unit reaches a set temperature, the self-circulating water supply pipeline subsystem performs water exchange treatment through the water exchange pipeline subsystem.

[0018] By adopting the above technical solution, in actual operation, the self-circulating water supply subsystem provides independent circulating water to the sword magazine cooling module. When the water temperature in the self-circulating water supply unit reaches the set temperature after a period of operation, the self-circulating water supply subsystem stops working, and the water supply subsystem replaces the water to obtain fresh cold water before starting the next cooling cycle. On the one hand, the water replacement mode enables long-term, continuous cooling of the sword magazine, ensuring the long-term efficient and normal operation of the loom. On the other hand, during this process, when water replacement is required, the self-circulating water supply subsystem needs to stop working and then restart after the water replacement is completed. At this time, the self-circulating water supply subsystem is in a periodic work-stop-water-replacement-work mode. During this process, the water hammer effect generated inside the self-circulating water supply subsystem can be damped by the springs on both sides of the slider in the cooling water pipe installation method, making it less likely to be transmitted to the sword magazine and cause damage.

[0019] Optionally, the self-circulating water supply pipeline subsystem includes a water supply tank, a circulating water pump, an inlet pipe, and an outlet pipe; one end of the inlet pipe is connected to the water supply tank, and the other end is connected to the inlet of the cooling water pipe in the corresponding sword storage cooling module; one end of the outlet pipe is connected to the water supply tank, and the other end is connected to the outlet of the cooling water pipe in the corresponding sword storage cooling module; the circulating water pump is installed on the inlet pipe or the outlet pipe.

[0020] By adopting the above technical solution, during the cooling process, under the action of the circulating water pump, the water in the water supply tank is pumped into the cooling water pipe through the inlet pipe, and then flows back to the water supply tank through the outlet pipe to form a circulating water supply, so as to continuously remove the heat from the sword magazine and achieve cooling treatment.

[0021] Optionally, the water exchange pipeline subsystem includes a hot water tank, a cold water tank, a water cooling unit, a cold water pipeline, a hot water pipeline, a cold water pump, and a hot water pump; the water cooling unit is installed between the hot water tank and the cold water tank, and is used to cool the water in the hot water tank before discharging it into the cold water tank; the cold water pump is installed on the cold water pipeline, and the input end of the cold water pipeline is connected to the cold water tank, and the output end of the cold water pipeline is connected to the top of the water supply tank in the self-circulating water supply pipeline subsystem; the hot water pump is installed on the hot water pipeline, and the output end of the hot water pipeline is connected to the hot water tank, and the input end of the hot water pipeline is connected to the bottom of the water supply tank in the self-circulating water supply pipeline subsystem.

[0022] By adopting the above technical solution, during the water exchange process, when the water temperature in the self-circulating water supply pipeline subsystem reaches the set temperature, water from the supply tank in the self-circulating water supply pipeline subsystem is pumped into the hot water tank via the hot water pump and hot water pipeline. Then, the hot water in the hot water tank is cooled using the water cooling unit and transferred to the cold water tank. The cooled water is then returned to the supply tank in the self-circulating water supply pipeline subsystem by starting the cold water pump and cold water pipeline, thus completing the water exchange process.

[0023] Optionally, both the cold water pipeline and the hot water pipeline include a main pipeline and multiple branch pipelines connected to the main pipeline, and each branch pipeline is equipped with a control valve; each branch pipeline is connected to a water supply tank in the self-circulating water supply pipeline subsystem.

[0024] By adopting the above technical solution, in actual operation, some looms may need to be shut down due to project quantity requirements, machine failures, or other reasons. In this case, the user can close the corresponding control valve to uniformly control the sword magazine in both working and non-working states of the loom, thereby improving the independence and efficiency of the entire cooling system.

[0025] In summary, this application includes at least one of the following beneficial technical effects:

[0026] 1. In actual operation, the inlet and outlet of the cooling water pipe are used to circulate the cooling water to remove the heat generated by the friction between the sword belt and the sword magazine through heat transfer, thereby achieving cooling and protecting the sword magazine and sword belt.

[0027] 2. Since the surfaces of the sword magazine and cooling water pipes often have tiny gaps or uneven surfaces, these defects can affect the heat transfer rate. In this case, using thermal conductive gel can fill these defects, absorb the tolerances between the heat source and the radiator, and thus achieve better thermal conductivity.

[0028] 3. In actual operation, the self-circulating water supply subsystem provides independent circulating water for the sword magazine cooling module. When the water temperature in the self-circulating water supply unit reaches the set temperature after a period of operation, the self-circulating water supply subsystem stops working, and the water supply subsystem replaces the water to obtain fresh cold water before starting the next cooling cycle. On one hand, this water-replacement mode enables long-term, continuous cooling of the sword magazine, ensuring the loom's long-term, efficient, and normal operation. On the other hand, during this process, when water replacement is needed, the self-circulating water supply subsystem needs to stop working, and then restart after the water replacement is completed. This creates a cyclical work-stop-water-replacement-work mode. During this process, the water hammer effect generated within the self-circulating water supply subsystem is damped by the springs on both sides of the slider in the cooling water pipe installation, preventing it from being transmitted to the sword magazine and causing damage. Attached Figure Description

[0029] Figure 1 This is a schematic diagram of the structure of embodiment 1 in the sword magazine cooling module of this application.

[0030] Figure 2 yes Figure 1 Enlarged view of section A in the middle.

[0031] Figure 3 This is a schematic diagram of embodiment 2 of a sword magazine cooling module in this application.

[0032] Figure 4 yes Figure 3 Enlarged view of section B.

[0033] Figure 5 This is a schematic diagram of a cooling system according to this application.

[0034] Figure 6 This is a schematic diagram of the structure of a self-circulating water supply pipeline subsystem in a cooling system according to this application.

[0035] Explanation of reference numerals in the attached figures:

[0036] 1. Sword storage cooling module; 11. Cooling water pipe; 12. Thermal conductive adhesive; 13. Slide rail; 14. Slider; 15. Spring; 2. Water exchange pipeline subsystem; 21. Hot water tank; 22. Cold water tank; 23. Water cooling unit; 24. Hot water pipeline; 25. Cold water pipeline; 26. Hot water pump; 27. Cold water pump; 28. Control valve; 3. Self-circulating water supply pipeline subsystem; 31. Water supply tank; 32. Circulating water pump; 33. Inlet pipe; 34. Outlet pipe; 100. Sword storage. Detailed Implementation

[0037] The following is in conjunction with the appendix Figure 1-6 This application will be described in further detail.

[0038] This application discloses a sword storage cooling module.

[0039] Example 1:

[0040] Reference Figure 1 and Figure 2 A sword storage cooling module includes a cooling water pipe 11 installed on the outer wall of the sword storage 100. The cooling water pipe 11 is arc-shaped and is mounted along the bottom of the arc segment of the sword storage 100. One end of the cooling water pipe 11 is provided with a water inlet and the other end of the cooling water pipe 11 is provided with a water outlet.

[0041] In actual operation, the inlet and outlet of the cooling water pipe 11 are used to circulate water through the cooling water pipe 11. The heat generated by the friction between the sword belt and the sword magazine 100 is carried away by heat transfer to achieve cooling treatment and thus protect the sword magazine 100 and the sword belt.

[0042] Specifically, in this embodiment, the cooling water pipe 11 is secured by cable ties (not shown in the figure), and pipe fittings are installed at both the inlet and outlet ends of the cooling water pipe 11 for subsequent installation and connection.

[0043] In this embodiment, thermally conductive adhesive 12 is provided between the cooling water pipe 11 and the sword magazine 100. In this embodiment, the thickness of the thermally conductive adhesive 12 is 0.5-1.5mm, preferably 1mm.

[0044] Since the surfaces of the sword holder 100 and cooling water pipe 11 typically have tiny gaps or uneven surfaces, these defects can affect the heat transfer rate. In such cases, using thermal conductive gel can fill these defects and absorb the tolerances between the heat source and the radiator, thereby achieving better heat conduction. However, care must be taken to avoid using excessive amounts of thermal conductive gel during application, otherwise it will result in waste and increase thermal resistance, thus reducing heat dissipation performance. Setting the thickness of the thermal conductive gel 12 to 1mm provides better thermal conductivity.

[0045] Example 2:

[0046] The difference between this embodiment and Embodiment 1 is that the installation method of the cooling water pipe 11 is different.

[0047] Reference Figure 3 and Figure 4 Specifically, in this embodiment, a slide rail 13 is provided at the top of the arc segment of the sword magazine 100, and a slider 14 is slidably arranged inside the slide rail 13. Springs 15 are arranged and installed on both sides of the slider 14 inside the slide rail 13. A cooling water pipe 11 is arranged and installed at the bottom of the sword magazine 100, and the cooling water pipe 11 is fixedly connected to the slider 14.

[0048] During the cooling process of the sword magazine 100 by circulating water through the cooling water pipe 11, water hammer effect is likely to occur inside the magazine. However, in this application, when water hammer effect occurs, the water hammer effect generated inside the magazine can be damped by the springs 15 on both sides of the slider 14 in the installation method of the cooling water pipe 11, so that it is not easily transmitted to the sword magazine 100 and cause damage.

[0049] In this embodiment, the cooling water pipe 11 and the slider 14 are connected by screws to form a detachable connection, so that the cooling water pipe 11 can be disassembled and replaced during subsequent use.

[0050] The implementation principle of the sword storage cooling module 1 of this application is as follows: In the actual working process, the inlet and outlet of the cooling water pipe 11 are used to circulate water through the cooling water pipe 11, so as to remove the heat generated by the friction between the sword belt and the sword storage 100 through heat transfer, thereby achieving cooling treatment and protecting the sword storage 100 and the sword belt.

[0051] This application also discloses a cooling system.

[0052] Reference Figure 5 A cooling system includes a water exchange pipeline subsystem 2 and multiple self-circulating water supply pipeline subsystems 3; wherein, the self-circulating water supply pipeline subsystem 3 is used to independently circulate water supply to the aforementioned sword storage cooling module 1, and when the water temperature in the self-circulating water supply unit reaches a set temperature state, the self-circulating water supply pipeline subsystem 3 performs water exchange treatment through the water exchange pipeline subsystem 2.

[0053] In actual operation, the self-circulating water supply subsystem 3 provides independent circulating water supply to the sword storage cooling module 1. When the water temperature in the self-circulating water supply unit reaches the set temperature after working for a period of time, the self-circulating water supply subsystem 3 stops working, and the water supply subsystem replaces the water in the self-circulating water supply subsystem 3 to obtain cold water again. Then, the self-circulating water supply subsystem 3 starts the next cooling cycle.

[0054] On the one hand, the water-changing mode enables long-term, continuous cooling of the scissor magazine 100, ensuring the long-term, efficient, and normal operation of the loom. On the other hand, during this process, when water needs to be changed, the self-circulating water supply subsystem 3 needs to stop working and then restart after the water change is completed. At this time, the self-circulating water supply subsystem 3 is in a periodic work-stop water-changing-work mode. During this process, the water hammer effect generated inside the self-circulating water supply subsystem 3 can be damped by the springs 15 on both sides of the slider 14 in the cooling water pipe 11 installation method, making it less likely to be transmitted to the scissor magazine 100 and cause damage.

[0055] Reference Figure 4 and Figure 6 Specifically, the self-circulating water supply subsystem 3 includes a water supply tank 31, a circulating water pump 32, an inlet pipe 33, and an outlet pipe 34. One end of the inlet pipe 33 is connected to the water supply tank 31, and the other end is connected to the inlet of the cooling water pipe 11 in the corresponding sword storage cooling module 1. One end of the outlet pipe 34 is connected to the water supply tank 31, and the other end is connected to the outlet of the cooling water pipe 11 in the corresponding sword storage cooling module 1. In this embodiment, the circulating water pump 32 is installed on the inlet pipe 33; in other embodiments, the circulating water pump 32 is installed on the outlet pipe 34.

[0056] During the cooling process, under the action of the circulating water pump 32, the water in the water supply tank 31 is pumped into the cooling water pipe 11 through the water inlet pipe 33, and then flows back to the water supply tank 31 through the water outlet pipe 34 to form a circulating water supply, so as to continuously remove the heat on the sword storage 100 and achieve the cooling treatment.

[0057] Reference Figure 5 Specifically, the water exchange pipeline subsystem 2 includes a hot water tank 21, a cold water tank 22, a water cooling unit 23, a cold water pipeline 25, a hot water pipeline 24, a cold water pump 27, and a hot water pump 26. In this embodiment, the water cooling unit 23 is a chiller, installed between the hot water tank 21 and the cold water tank 22, and used to cool the water in the hot water tank 21 before discharging it into the cold water tank 22. The cold water pump 27 is installed on the cold water pipeline 25, with its input end connected to the cold water tank 22 and its output end connected to the top of the water supply tank 31 in the self-circulating water supply pipeline subsystem 3. The hot water pump 26 is installed on the hot water pipeline 24, with its output end connected to the hot water tank 21 and its input end connected to the bottom of the water supply tank 31 in the self-circulating water supply pipeline subsystem 3.

[0058] During the water exchange process, when the water temperature in the self-circulating water supply subsystem 3 reaches the set temperature, water from the water supply tank 31 in the self-circulating water supply subsystem 3 is pumped into the hot water tank 21 via the hot water pump 26 and hot water pipe 24. Then, the hot water in the hot water tank 21 is cooled by the water cooling unit 23 and transferred to the cold water tank 22. The cooled water is then pumped back into the water supply tank 31 in the self-circulating water supply subsystem 3 by starting the cold water pump 27 and cold water pipe 25, thus completing the water exchange process.

[0059] Reference Figure 5 Specifically, in this embodiment, the cold water pipeline 25 includes a main pipeline and multiple branch pipelines connected to the main pipeline, and each branch pipeline is equipped with a control valve 28. The branch pipelines in the cold water pipeline 25 are connected one-to-one to the top of the water supply tank 31 in the self-circulating water supply pipeline subsystem 3.

[0060] Similarly, the hot water pipe 24 and the cold water pipe 25 have the same structure, including a main pipe and multiple branch pipes connected to the main pipe. Control valves 28 are installed on each branch pipe, and the branch pipes in the hot water pipe 24 are connected one by one to the bottom of the water supply tank 31 in the self-circulating water supply subsystem 3.

[0061] In actual operation, some looms may need to be shut down due to project requirements, machine failures, or other reasons. In such cases, the user can close the corresponding control valve 28 to uniformly control the sword magazine 100 in both working and non-working states of the loom, thereby improving the independence and efficiency of the entire cooling system.

[0062] The implementation principle of a cooling system according to an embodiment of this application is as follows: In actual operation, the self-circulating water supply subsystem 3 provides independent circulating water supply to the sword storage cooling module 1. When the water temperature in the self-circulating water supply unit reaches the set temperature after a period of operation, the self-circulating water supply subsystem 3 stops working, and the water supply subsystem replaces the water in the self-circulating water supply subsystem 3 to obtain cold water again. Then, the self-circulating water supply subsystem 3 begins the next cooling cycle.

[0063] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A cooling system, characterized in that, include: The water exchange pipeline subsystem (2) and multiple self-circulating water supply pipeline subsystems (3) are used to provide independent circulating water supply to the sword storage cooling module (1). The sword storage cooling module (1) includes a cooling water pipe (11) installed on the outer wall of the sword storage (100). The cooling water pipe (11) is arc-shaped and is attached to the arc section of the sword storage (100). One end of the cooling water pipe (11) is provided with an inlet and the other end of the cooling water pipe (11) is provided with an outlet. When the water temperature in the self-circulating water supply pipeline subsystem (3) reaches the set temperature, the self-circulating water supply pipeline subsystem (3) performs water replacement treatment through the water replacement pipeline subsystem (2). The self-circulating water supply pipeline subsystem (3) includes a water supply tank (31), a circulating water pump (32), an inlet pipe (33), and an outlet pipe (34); one end of the inlet pipe (33) is connected to the water supply tank (31), and the other end is connected to the inlet of the cooling water pipe (11) in the corresponding sword storage cooling module (1); One end of the outlet pipe (34) is connected to the water supply tank (31), and the other end is connected to the outlet of the cooling water pipe (11) in the corresponding sword storage cooling module (1); the circulating water pump (32) is installed on the inlet pipe (33) or the outlet pipe (34); The water exchange pipeline subsystem (2) includes a hot water tank (21), a cold water tank (22), a water cooling unit (23), a cold water pipeline (25), a hot water pipeline (24), a cold water pump (27), and a hot water pump (26). The water cooling unit (23) is installed between the hot water tank (21) and the cold water tank (22), and is used to cool the water in the hot water tank (21) and then discharge it into the cold water tank (22); The cold water pump (27) is installed on the cold water pipeline (25), and the input end of the cold water pipeline (25) is connected to the cold water tank (22), and the output end of the cold water pipeline (25) is connected to the top of the water supply tank (31) in the self-circulating water supply pipeline subsystem (3); The hot water pump (26) is installed on the hot water pipe (24), and the output end of the hot water pipe (24) is connected to the hot water tank (21), and the input end of the hot water pipe (24) is connected to the bottom of the water supply tank (31) in the self-circulating water supply pipe subsystem (3); Furthermore, the cooling water pipe (11) is arranged and installed at the bottom of the sword sheath (100), and a slide rail (13) is provided at the top of the arc section of the sword sheath (100). A slider (14) is slidably arranged in the slide rail (13), and the cooling water pipe (11) is fixedly connected to the slider (14). Springs (15) are arranged and installed on both sides of the slider (14) in the slide rail (13), and the cooling water pipe (11) and the slider (14) are detachably connected.

2. The cooling system according to claim 1, characterized in that: Thermal conductive adhesive (12) is provided between the cooling water pipe (11) and the sword magazine (100).

3. A cooling system according to claim 2, characterized in that: The thickness of the thermally conductive adhesive (12) is 0.5-1.5 mm.

4. A cooling system according to claim 1, characterized in that: The cold water pipeline (25) and hot water pipeline (24) both include a main pipeline and multiple branch pipelines connected to the main pipeline, and each branch pipeline is equipped with a control valve (28); each branch pipeline is connected to a water supply tank (31) in the self-circulating water supply pipeline subsystem (3).