Cooling structure for oil pipe of loom

The water-cooling structure of the loom oil pipe, combined with the insulation and control system, solves the problem of excessively high oil temperature in the loom, achieves efficient cooling and reduces energy consumption, and improves the durability and ease of operation of the loom.

CN223316864UActive Publication Date: 2025-09-09GLEN RAVEN TEXTILE TECH SUZHOU
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Patent Information

Application Number
CN202422700327.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-06
Publication Date
2025-09-09
Estimated Expiration
2034-11-06

AI Technical Summary

Technical Problem

The lubricating oil temperature in the loom oil pipe is too high, which leads to accelerated aging of the circuit board and machine failure. The traditional air cooling method consumes a lot of energy and has low efficiency.

Method used

The oil pipe is cooled by water through the cooling pipe, water outlet pipe and water inlet pipe structure, combined with the insulation pipe and installation components. The cooling water circulation is automatically adjusted by the controller to reduce the oil temperature and recycle the cooling water.

Benefits of technology

Effectively reduce oil temperature, reduce equipment failures, improve equipment durability, reduce energy consumption, simplify operating procedures, and extend the service life of looms.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a loom oil pipe cooling structure, which relates to the technical field of oil pipe cooling, and comprises a cooling pipe, a water outlet pipe and a water inlet pipe, the cooling pipe is provided with an installation assembly, the installation assembly is used for installing the cooling pipe on a loom oil pipe, and the cooling pipe is provided with a cooling groove. The water outlet pipe is arranged on the cooling pipe and is communicated with the cooling tank, and the water inlet pipe is arranged on the cooling pipe and is communicated with the cooling tank. The application has the effects of improving the durability of the loom and reducing the energy consumption of a weaving workshop.
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Description

Technical Field

[0001] The utility model relates to the technical field of oil pipe cooling, in particular to a loom oil pipe cooling structure. Background Art

[0002] The loom is a common textile equipment in the textile field. The loom weaves through high-speed rotation drive. During the high-speed operation of the loom, the internal oil plays an important role in lubricating parts and cooling circuit boards.

[0003] However, during long-term use, the lubricating oil in the oil pipe generally has a high oil temperature. Excessively high oil temperature will accelerate the aging of circuit boards and even cause machine failures, increase maintenance costs, and reduce the durability of equipment. At the same time, there are often multiple looms working synchronously in the workshop. Excessive oil temperature will cause the temperature in the workshop to be in a high temperature environment. The traditional method uses air cooling, that is, the air conditioning system is used to cool the workshop, but the workshop is often large in space, and air conditioning cooling will consume a lot of energy. Utility Model Content

[0004] In order to improve the durability of the loom and reduce the energy consumption of the weaving workshop, the present application provides a loom oil pipe cooling structure.

[0005] The present application provides a loom oil pipe cooling structure that adopts the following technical solutions:

[0006] A loom oil pipe cooling structure includes a cooling pipe, a water outlet pipe and a water inlet pipe. The cooling pipe is provided with an installation assembly, and the installation assembly is used to install the cooling pipe on the loom oil pipe. The cooling pipe is provided with a cooling groove. The water outlet pipe is arranged on the cooling pipe and communicates with the cooling groove. The water inlet pipe is arranged on the cooling pipe and communicates with the cooling groove.

[0007] By adopting the above technical solution, the cooling pipe is installed on the loom oil pipe using an installation component, and then cooling water is added to the cooling tank of the cooling pipe through the water inlet pipe. The oil temperature in the oil pipe is reduced by water cooling, and the cooling water can be discharged through the water outlet pipe after a period of use and replaced, thereby ensuring the cooling effect, thereby reducing the possibility of excessive oil temperature, ensuring the lubrication and protection effect of the lubricating oil, thereby reducing the possibility of failure or damage of parts and circuit boards, and improving durability. Compared with air cooling, water cooling has a better effect, ensuring the oil temperature cooling effect, and compared with the workshop air conditioning cooling, the cooling water can be recycled, reducing the energy consumption of the workshop.

[0008] Preferably, the cooling pipe is provided with a heat preservation pipe, and the heat preservation pipe is provided with an assembly component, and the assembly component is used to assemble the heat preservation pipe on the cooling pipe.

[0009] By adopting the above technical solution, the assembly component installs the insulation pipe on the cooling pipe, which can reduce the unnecessary heat consumption of the cooling water in the cooling pipe due to the high ambient temperature of the workshop, thereby ensuring the cooling effect and slowing down the cycle of changing the cooling water.

[0010] Preferably, the assembly component includes an assembly plate, an assembly bolt and an assembly nut. The assembly plate is arranged on the insulation pipe, the assembly bolt passes through the assembly plate and is threadedly connected to the assembly nut, and the assembly bolt and the assembly nut are used to assemble the two assembly plates together. The insulation pipe is provided with a first mounting hole, the assembly plate is provided with a second mounting hole, the water outlet pipe passes through the first mounting hole and the second mounting hole, and the water inlet pipe passes through the first mounting hole and the second mounting hole.

[0011] By adopting the above technical solution, the water outlet pipe and the water inlet pipe both pass through the first mounting hole and the second mounting hole, and the two groups of semicircular insulation pipes are put on the cooling pipe to wrap the cooling pipe. At this time, the assembly plates on the two groups of insulation pipes are against each other. At this time, the two groups of assembly plates are fixed together with assembly bolts and assembly bolts, so that the insulation pipe is assembled on the cooling pipe, which is simple and convenient to operate.

[0012] Preferably, the mounting assembly includes a mounting plate and mounting bolts, the mounting plate is arranged on the cooling tube, and the mounting bolts are used to mount the mounting plate on the loom oil pipe.

[0013] By adopting the above technical solution, the mounting plates at both ends of the insulation pipe are mounted on the corresponding mounting blocks on the loom through mounting bolts, thereby completing the installation. The operation is simple and convenient, and disassembly is easy.

[0014] Preferably, the mounting plate is provided with a locking groove, a locking block is slidably provided in the locking groove, the locking block abuts against the assembly plate, a locking spring is provided in the locking groove, and the locking spring connects the inner wall of the locking groove and the locking block.

[0015] By adopting the above technical solution, when installing the insulation pipe, the locking block is pushed into the locking groove to compress the locking spring. When the insulation pipe is closed so that the assembly plates are in contact with each other, the locking block is released at this time, and the locking spring recovers to push the locking block out and press against the side wall of the assembly plate, thereby cooperating with the water inlet pipe and the water outlet pipe to limit the insulation pipe, reducing the possibility of rotation of the insulation pipe, and at the same time sharing the pressure borne by the water inlet pipe and the water outlet pipe, reducing the possibility of damage to the water inlet pipe and the water outlet pipe caused by the rotation force of the insulation pipe, and improving durability.

[0016] Preferably, the insulation pipe is provided with a third mounting hole, the assembly plate is provided with a fourth mounting hole, the cooling pipe is provided with a fifth mounting hole connected to the cooling tank, the cooling pipe is provided with a thermometer inserted into the fifth mounting hole and the cooling tank, and the thermometer passes through the third mounting hole and the fourth mounting hole.

[0017] By adopting the above technical solution, the installation of a thermometer can quickly and clearly obtain the temperature of the cooling water in the cooling tank, thereby facilitating the staff to supervise and replace the cooling water, ensuring the cooling effect and improving the durability of the loom.

[0018] Preferably, the water outlet pipe is provided with a water outlet valve, the water inlet pipe is provided with a water inlet valve, and the insulation pipe is provided with a controller connected to the water outlet valve, water inlet valve and thermometer signals, and the controller is used to control the opening and closing of the water outlet valve and the water inlet valve according to the thermometer reading.

[0019] By adopting the above technical solution, a thermometer detects the water temperature in the cooling tank. When the water temperature in the cooling tank drops to a set value, the controller starts the water outlet valve to discharge the water in the cooling tank. Then the controller starts the water inlet valve to fill the cooling tank with cooling water through the water inlet pipe, thereby simplifying the water changing operation and improving the convenience of use. At the same time, timely water changing ensures the oil temperature cooling effect and improves the durability of the loom.

[0020] Preferably, a cooling water tower is further included, wherein the water outlet pipe and the water inlet pipe are both connected to the cooling water tower, and the cooling water tower is provided with a control pump connected to the controller signal, and the control pump is connected to the water inlet pipe, and the control pump is used to deliver water in the cooling water tower into the water inlet pipe.

[0021] By adopting the above technical solution, the high-temperature water discharged from the outlet pipe is collected by the cooling water tower and placed for cooling. After that, the controller controls the pump to perform water intake operation, thereby realizing the recycling of water resources and thus saving energy and reducing consumption.

[0022] In summary, this application includes at least one of the following beneficial technical effects:

[0023] 1. By setting a cooling pipe, a water outlet pipe, a water inlet pipe, an installation component and a cooling tank, the installation component sets the cooling pipe on the oil pipe, and cooling water is added to the cooling tank of the cooling pipe through the water inlet pipe, thereby cooling the oil in the oil pipe by water cooling. At the same time, the cooling water in the cooling tank that has been used for a long time and has increased in temperature can be discharged through the water outlet pipe for replacement, thereby achieving water cooling, so that the oil temperature will not be too high to damage the loom parts and electronic components, and the durability of the loom is improved;

[0024] 2. By arranging the insulation tube, the assembly plate, the first mounting hole, the second mounting hole, the assembly bolts and the assembly nuts, the two sets of semicircular insulation tubes wrap the cooling tube, and the water inlet pipe and the water outlet pipe pass through the first mounting hole and the second mounting hole, so that the assembly plates are pressed against each other. At this time, the two assembly plates are fixed by the assembly bolts and the assembly bolts to achieve assembly. By using the external insulation tube, the ambient temperature can be lowered to speed up the cooling water heating process, thereby slowing down the water change speed and facilitating use;

[0025] 3. By setting a stop block, a stop groove and a stop spring, when installing the insulation pipe, first push the stop block into the stop groove and compress the stop spring. When the insulation pipe assembly plates are against each other, release the stop block, and the stop spring restores to push the stop block out of the stop groove and against the side wall of the assembly plate, thereby limiting the rotation of the insulation pipe, reducing the pressure that the water inlet and outlet pipes may bear, and improving durability. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 This is an overall schematic diagram of a loom oil pipe cooling structure provided in an embodiment of the present application.

[0027] Figure 2 yes Figure 1 Magnified view of area A in center.

[0028] Figure 3 It is a cross-sectional view used to reflect the internal structure of the insulation pipe.

[0029] Figure 4 It is a cross-sectional view used to illustrate the internal structure of the retaining groove.

[0030] Figure 5 This is a control block diagram of a loom oil pipe cooling structure provided in an embodiment of the present application.

[0031] Explanation of the accompanying drawings: 1. Cooling pipe; 11. Cooling trough; 12. Fifth mounting hole; 2. Mounting assembly; 21. Mounting plate; 211. Locking groove; 212. Locking spring; 213. Locking block; 22. Mounting bolt; 23. Sealing block; 3. Water inlet pipe; 31. Water inlet valve; 4. Water outlet pipe; 41. Water outlet valve; 5. Insulation pipe; 51. First mounting hole; 52. Third mounting hole; 6. Assembly assembly; 61. Assembly plate; 611. Second mounting hole; 612. Fourth mounting hole; 62. Assembly bolt; 63. Assembly nut; 7. Thermometer; 8. Control cabinet; 81. Controller; 82. Display screen; 83. Control pump; 84. Cooling water tower. DETAILED DESCRIPTION

[0032] The following is combined with Figure 1-5 This application is described in further detail.

[0033] The present application discloses a loom oil pipe cooling structure. Figures 1 to 3The cooling system comprises a cooling pipe 1, a cooling water tower 84, a control cabinet 8, a water outlet pipe 4, and a water inlet pipe 3. Both the water outlet pipe 4 and the water inlet pipe 3 are connected to the cooling water tower 84. The cooling water tower 84 is equipped with a control pump 83 connected to the water inlet pipe 3, which is used to deliver cooling water to the water inlet pipe 3. The cooling pipe 1 is provided with a mounting assembly 2 for mounting the cooling pipe 1 on the loom oil pipe. The mounting assembly 2 includes a mounting plate 21 and mounting bolts 22. The mounting plate 21 is fixedly mounted at both ends of the cooling pipe 1. The center of the mounting plate 21 is penetrated and provided with a sealing block 23 for sealing. The inner wall of the cooling pipe 1 is provided with a cooling groove 11. The water outlet pipe 4 and the water inlet pipe 3 are both fixedly connected to the cooling pipe 1 and pass through the cooling pipe 1 to connect to the cooling groove 11. In another embodiment, the cooling groove 11 is located inside the cooling pipe 1 and does not communicate with the inner wall of the cooling pipe 1 to reduce the possibility of cooling water leakage and improve sealing performance. The cooling water in the cooling tank 11 cools the oil pipe, thereby reducing the possibility of excessive oil temperature damaging loom parts and circuits, improving durability, and at the same time reducing energy consumption in the workshop through water cooling.

[0034] In order to reduce room temperature interference, refer to Figures 2 to 4 The cooling pipe 1 is provided with an insulation pipe 5, and the cross-section of the insulation pipe 5 is semicircular. The insulation pipe 5 is provided with an assembly component 6 for assembling the insulation pipe 5 on the cooling pipe 1. The side wall of the insulation pipe 5 is penetrated by a semicircular first mounting hole 51 for the water inlet pipe 3 and the water outlet pipe 4 to pass through. The assembly component 6 includes an assembly plate 61, an assembly bolt 62 and an assembly nut 63. The assembly plate 61 is fixedly set at both ends of the semicircular diameter of the insulation pipe 5. The assembly bolt 62 passes through the assembly plate 61 and is threadedly connected to the assembly bolt 62. The assembly bolt 62 and the assembly nut 63 are used to assemble the two assembly plates 61 together. The top wall of the assembly plate 61 is provided with a semicircular second mounting hole 611 that passes through the side wall. The water outlet pipe 4 and the water inlet pipe 3 both pass through the second mounting hole 611 and the first mounting hole 51. The side wall of the mounting block near the cooling pipe 1 is provided with a retaining groove 211, within which a retaining block 213 is slidably disposed. A retaining spring 212 is provided on the inner wall of the retaining groove 211, fixedly connected to the side wall of the retaining block 213. The retaining block 213 can abut against the side wall of the assembly plate 61. The retaining block 213 is tilted away from the side wall of the assembly plate 61. The insulation pipe 5 is made of a heat-insulating material to reduce the heat dissipation of the cooling water in the cooling tank 11 to the outside, thereby reducing interference with the room temperature heating of the cooling water.

[0035] To improve the convenience of use, refer to Figure 1 、 Figure 3 and Figure 5The insulation sleeve is provided with a semicircular third mounting hole 52 extending through the side wall, the assembly plate 61 is provided with a semicircular fourth mounting hole 612 extending through the side wall, the outer wall of the cooling pipe 1 is provided with a fifth mounting hole 12 extending through the cooling tank 11, and the cooling pipe 1 is provided with a thermometer 7 extending through the third mounting hole 52, the fourth mounting hole 612, and the fifth mounting hole 12 and inserted into the cooling tank 11. The control cabinet 8 is provided with a controller 81 connected to the control pump 83 and the thermometer 7. The water inlet pipe 3 is provided with a water inlet valve 31 connected to the controller 81, and the water outlet pipe 4 is provided with a water outlet valve 41 connected to the controller 81. The controller 81 is used to control the opening and closing of the water inlet valve 31, the water outlet valve 41, and the control pump 83 according to the reading of the thermometer 7. The control cabinet 8 is provided with a display screen 82 connected to the controller 81. In another embodiment, the inner walls of the cooling trough 11 of the cooling pipe 1 and the inner walls of the cooling water tower 84 are both equipped with liquid level sensors connected to the controller 81 signal, allowing for more precise water changes. In another embodiment, the oil pipe may also be equipped with a temperature sensor for monitoring the oil temperature and connected to the controller 81 signal to maintain the oil temperature within a stable and appropriate range. Thermometer 7 detects the temperature of the cooling water in the cooling trough 11. When the temperature is too low, the controller 81 activates the outlet valve 41 to discharge the cooling water. After a set time, the controller activates the inlet valve 31 and control pump 83 and closes the outlet valve 41 to add water. After a set time, the controller closes the inlet valve 31 and control pump 83 to change the water. This process is automatic, improving user convenience.

[0036] The implementation principle of the oil pipe cooling structure of a loom in an embodiment of the present application is as follows: a cooling pipe 1 is put on the loom oil pipe, and the mounting plate 21 is installed on the loom by means of mounting bolts 22; a water circulation system consisting of a water inlet pipe 3, a water outlet pipe 4, and a cooling water tower 84; an operating system controller 81 of a water inlet valve 31, a control pump 83 and a water outlet valve 41 controlled by a controller 81; cooling water is added into the cooling tank 11; the lubricating oil in the oil pipe is cooled by the cooling water, thereby reducing the possibility of damage to parts and circuits due to excessive oil temperature, improving the durability of the loom; and at the same time, the cooling water can be recycled, effectively reducing energy consumption in the workshop.

[0037] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.

Claims

1. A loom oil pipe cooling structure, characterized by: The invention comprises a cooling pipe (1), a water outlet pipe (4) and a water inlet pipe (3); the cooling pipe (1) is provided with a mounting assembly (2); the mounting assembly (2) is used to mount the cooling pipe (1) on a loom oil pipe; the cooling pipe (1) is provided with a cooling groove (11); the water outlet pipe (4) is provided on the cooling pipe (1) and communicates with the cooling groove (11); and the water inlet pipe (3) is provided on the cooling pipe (1) and communicates with the cooling groove (11).

2. The loom oil pipe cooling structure according to claim 1, characterized in that: The cooling pipe (1) is provided with a heat preservation pipe (5), and the heat preservation pipe (5) is provided with an assembly component (6). The assembly component (6) is used to assemble the heat preservation pipe (5) on the cooling pipe (1).

3. The loom oil pipe cooling structure according to claim 2, characterized in that: The assembly component (6) comprises an assembly plate (61), an assembly bolt (62) and an assembly nut (63); the assembly plate (61) is arranged on the thermal insulation pipe (5); the assembly bolt (62) passes through the assembly plate (61) and is threadedly connected to the assembly nut (63); the assembly bolt (62) and the assembly nut (63) are used to assemble the two assembly plates (61) together; the thermal insulation pipe (5) is provided with a first mounting hole (51); the assembly plate (61) is provided with a second mounting hole (611); the water outlet pipe (4) passes through the first mounting hole (51) and the second mounting hole (611); and the water inlet pipe (3) passes through the first mounting hole (51) and the second mounting hole (611).

4. The loom oil pipe cooling structure according to claim 3, characterized in that: The mounting assembly (2) comprises a mounting plate (21) and mounting bolts (22); the mounting plate (21) is arranged on the cooling pipe (1); and the mounting bolts (22) are used to mount the mounting plate (21) on the loom oil pipe.

5. The loom oil pipe cooling structure according to claim 4, characterized in that: The mounting plate (21) is provided with a locking groove (211), a locking block (213) is slidably provided in the locking groove (211), the locking block (213) abuts against the assembly plate (61), a locking spring (212) is provided in the locking groove (211), and the locking spring (212) connects the inner wall of the locking groove (211) and the locking block (213).

6. The loom oil pipe cooling structure according to claim 3, characterized in that: The insulation pipe (5) is provided with a third mounting hole (52), the assembly plate (61) is provided with a fourth mounting hole (612), the cooling pipe (1) is provided with a fifth mounting hole (12) connected to the cooling groove (11), the cooling pipe (1) is provided with a thermometer (7) inserted into the fifth mounting hole (12) and the cooling groove (11), and the thermometer (7) passes through the third mounting hole (52) and the fourth mounting hole (612).

7. The loom oil pipe cooling structure according to claim 6, characterized in that: The water outlet pipe (4) is provided with a water outlet valve (41), the water inlet pipe (3) is provided with a water inlet valve, and the heat preservation pipe (5) is provided with a controller (81) which is signal-connected to the water outlet valve (41), the water inlet valve and the thermometer (7), and the controller (81) is used to control the opening and closing of the water outlet valve (41) and the water inlet valve according to the reading of the thermometer (7).

8. The loom oil pipe cooling structure according to claim 1, characterized in that: The invention also includes a cooling water tower (84), wherein the water outlet pipe (4) and the water inlet pipe (3) are both connected to the cooling water tower (84), and the cooling water tower (84) is provided with a control pump (83) connected to the controller (81) signal, and the control pump (83) is connected to the water inlet pipe (3), and the control pump (83) is used to send water in the cooling water tower (84) into the water inlet pipe (3).