Power-free self-cooling waste heat drying equipment

By setting up a water storage device and a heat dissipation pipe system in the loom stand-alone machine, the secondary and multiple utilization of heat is achieved, which solves the high temperature problem of the loom workshop, reduces energy consumption, and ensures the normal operation of the loom and environmental protection.

CN111964509BActive Publication Date: 2025-07-29青岛江轩机械制造有限公司
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Patent Information

Application Number
CN202010970376.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2020-09-15
Publication Date
2025-07-29
Estimated Expiration
2040-09-15

AI Technical Summary

Technical Problem

The high temperature problem of the loom workshop leads to high energy consumption, and existing fans or air conditioners can consume electricity and are not conducive to resource conservation and environmental protection.

Method used

A disk-shaped water storage device and a heat dissipation pipe system are installed in the loom stand-alone machine. The water pump circulates cold water through the friction roller and the drying roller for heat exchange, so as to achieve secondary and multiple heat utilization.

Benefits of technology

Effectively reduce the temperature of the loom stand-alone machine, ensure a good working environment, save energy, protect resources and the environment, and improve drying efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of textile machinery and provides a power-free self-cooling waste heat drying device, which includes a cooling device. The cooling device includes a water storage device, a water pump, a radiator, a first heat dissipation pipe and a second heat dissipation pipe that are connected end to end in sequence. The water pump is arranged in the water storage device. The first heat dissipation pipe passes through the friction roller of the loom and is connected to the second heat dissipation pipe. The second heat dissipation pipe passes through the drying roller of the loom and is connected with a drain pipe, and the drain pipe is connected to the water storage device. By arranging a disc-shaped water storage device in the single loom large box and injecting cold water into the first heat dissipation pipe passing through the friction roller with a water pump, the present invention realizes the cooling of the friction roller. At the same time, the heated water coming out of the first heat dissipation pipe dissipates heat outward through the second heat dissipation pipe to dry the cloth, realizing the secondary utilization of heat. Multiple water drainage devices can also be set to realize the multiple utilization of heat. While reducing the temperature of the single loom, ensuring a good working environment and the normal operation of the machine, it greatly saves resources.
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Description

Technical Field

[0001] The present invention relates to the field of textile machinery, in particular to a power-free self-cooling waste heat drying device. Background Art

[0002] When a single loom operates, the temperature of the fuselage can reach 60°-90° due to friction. Generally, there are dozens or even hundreds of single looms in a workshop. Therefore, the temperature in the workshop is extremely high, seriously affecting the normal operation of the loom. At present, the main way to cool the workshop is to use fans or air conditioners. This cooling method is extremely power-consuming, greatly increasing the processing cost and being unfavorable to the conservation of resources and environmental protection. Summary of the Invention

[0003] The present invention provides a power-free self-cooling waste heat drying device. By arranging a disc-shaped water storage device in the large box of a single loom, then using a water pump to inject cold water, connecting a first heat dissipation pipe to pass through the friction roller and cool the friction roller. At the same time, using a second heat dissipation pipe to communicate with the first heat dissipation pipe, the heated water coming out of the first heat dissipation pipe dissipates heat outward through the second heat dissipation pipe to dry the cloth, realizing the secondary utilization of heat. At the same time, multiple water drainage devices can be set to realize the multiple utilization of heat. While reducing the temperature of the single loom, ensuring a good working environment and the normal operation of the machine, it greatly saves resources.

[0004] The technical solution of the present invention is realized as follows:

[0005] A power-free self-cooling waste heat drying device, comprising: a control device and a cooling device, the cooling device is connected to the control device;

[0006] The cooling device includes a water storage device, a water pump, a radiator, a first heat dissipation pipe and a second heat dissipation pipe. The water pump is arranged in the water storage device. The radiator is connected to the water pump through a pipeline. One end of the first heat dissipation pipe is connected to the radiator, and the other end passes through the friction roller of the loom and is connected to one end of the second heat dissipation pipe. The other end of the second heat dissipation pipe passes through the drying roller of the loom;

[0007] At the same time, the second heat dissipation pipe is connected with a drain pipe, and the drain pipe is connected to the water storage device;

[0008] The water pump and the radiator are both connected to the control device.

[0009] Further, a plurality of first heat dissipation pipes are provided. Correspondingly, a plurality of second heat dissipation pipes and drain pipes are provided;

[0010] One of the first heat dissipation pipes is connected to the radiator;

[0011] One of the drain pipes is connected to the water storage device;

[0012] The remaining drain pipe and the remaining first heat dissipation pipe are respectively communicated;

[0013] Furthermore, a water draining device is further included, and a plurality of the water draining devices are provided;

[0014] Each of the remaining drain pipes is respectively communicated with each of the remaining first heat dissipation pipes through one of the water draining devices;

[0015] The water draining device is connected to the control device.

[0016] Furthermore, the water storage device is a disc-shaped water storage device.

[0017] Furthermore, the radiator is a disc-shaped radiator.

[0018] Furthermore, the water pump is a non-powered water pump.

[0019] Furthermore, the end of the first heat dissipation pipe is spirally wound around the inner surface of the friction roller, and the end of the second heat dissipation pipe is spirally wound around the inner surface of the drying roller.

[0020] Furthermore, a heat dissipation pipe support frame is further included. The heat dissipation pipe support frame is provided with a spiral groove, and the first heat dissipation pipe or the second heat dissipation pipe is wound in the spiral groove of the heat dissipation pipe support frame. The heat dissipation pipe support frame is installed in the friction roller or the drying roller.

[0021] In the present invention, a disc-shaped water storage device is arranged in a large box of a single loom, and then cold water is injected by using a water pump. The first heat dissipation pipe is communicated and passes through the friction roller to cool the friction roller. At the same time, the second heat dissipation pipe is communicated with the first heat dissipation pipe, and the heated water coming out of the first heat dissipation pipe is radiated outward through the second heat dissipation pipe to dry the cloth, realizing the secondary utilization of heat. At the same time, a plurality of water draining devices can be provided to realize the multiple utilization of heat, greatly saving resources while reducing the temperature of the single loom, ensuring a good working environment and ensuring the normal operation of the machine. Description of the Drawings

[0022] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0023] Figure 1 It is a schematic structural diagram of a non-powered self-cooling waste heat drying device in a specific embodiment of the present invention;

[0024] Figure 2 ForFigure 1 Partial structural schematic diagram of the power-free self-cooling waste heat drying equipment shown

[0025] Figure 3 For Figure 1 - Figure 2 Schematic diagram of the connection relationship of the power-free self-cooling waste heat drying equipment shown Specific implementation mode

[0026] Next, in combination with the embodiments of the present invention, the technical solutions in the embodiments of the present invention will be clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the scope of protection of the present invention

[0027] In the specific embodiment of the present invention, see Figure 1 - Figure 3 , the power-free self-cooling waste heat drying equipment includes a control device a and a cooling device, and the cooling device is connected to the control device a

[0028] The cooling device includes a water storage tank 1, a water pump 2, a radiator 3, a first heat dissipation pipe 4 and a second heat dissipation pipe 6. The water pump 2 is arranged in the water storage tank 1. The radiator 3 is communicated with the water pump 2 through a pipeline. One end of the first heat dissipation pipe 4 is communicated with the radiator 3, and the other end passes through the friction roller 5 of the loom and is communicated with one end of the second heat dissipation pipe 6. The other end of the second heat dissipation pipe 6 passes through the drying roller 7 of the loom

[0029] At the same time, the second heat dissipation pipe 6 is connected with a drain pipe 8, and the drain pipe 8 is communicated with the water storage tank 1

[0030] Both the water pump 2 and the radiator 3 are connected to the control device a

[0031] In the specific embodiment of the present invention, see Figure 1 - Figure 3 , a plurality of first heat dissipation pipes 4 are provided. Correspondingly, a plurality of second heat dissipation pipes 6 and drain pipes 8 are provided

[0032] One of the first heat dissipation pipes is communicated with the radiator 3

[0033] One of the drain pipes is communicated with the water storage tank 1

[0034] The remaining drain pipes are respectively communicated with the remaining first heat dissipation pipes

[0035] It further includes a water draining device 9. Correspondingly, a plurality of water draining devices 9 are provided

[0036] Each of the remaining drain pipes is respectively communicated with each of the remaining first heat dissipation pipes through a water draining device

[0037] The water draining device 9 is connected to the control device a

[0038] In a specific embodiment, there is one water drainage device 9. At this time, there are two first radiating pipes, namely the first radiating pipe 4 and the first radiating pipe 4'. There are two second radiating pipes, namely the second radiating pipe 6 and the second radiating pipe 6'. There are two drain pipes, namely the drain pipe 8 and the drain pipe 8'. The cooling process is as follows:

[0039] The water pump 2 extracts cold water from the water storage device 1 to the radiator 3. The radiator 3 further reduces the temperature of the cold water and drives the cold water into the first radiating pipe 4. The cold water inside the first radiating pipe 4 absorbs the heat of the friction roller 5 after passing through the friction roller 5 and its temperature rises. The water with the increased temperature enters the second radiating pipe 6. The second radiating pipe 6 passes through the drying roller 7. The water with the increased temperature inside the second radiating pipe 6 dissipates heat outward to dry the cloth on the drying roller 7, and the heat of the water is reused for the second time. Then the water after heat dissipation enters the water drainage device 9 through the drain pipe 8, and then passes through the first radiating pipe 4' again to penetrate into the friction roller 5 to dissipate heat to the friction roller 5. After such a cycle, it flows back into the water storage device 1 through the drain pipe 8' again. In the above process, the heat is reused for the second time, effectively reducing the use of energy for drying, thereby effectively protecting resources and the environment. At the same time, the cloth is dried for the second time, and the drying effect is better.

[0040] In a specific embodiment of the present invention, see Figure 1 - Figure 3 , the water storage device 1 is a disk-shaped water storage device. The disk-shaped water storage device occupies a small space, is convenient for installation and disassembly, and ensures that without expanding the original equipment.

[0041] In a specific embodiment of the present invention, see Figure 1 - Figure 3 , the radiator 3 is a disk-shaped radiator. The disk-shaped radiator has a fast cooling speed and greatly ensures the cooling efficiency.

[0042] In a specific embodiment of the present invention, see Figure 1 - Figure 3 , the water pump 2 is a non-powered water pump.

[0043] In a specific embodiment of the present invention, see Figure 1 - Figure 3 , the end of the first radiating pipe 4 is spirally wound around the inner surface of the friction roller 5, and the end of the second radiating pipe 6 is spirally wound around the inner surface of the drying roller 7;

[0044] After the first radiating pipe 4 and the second radiating pipe 6 are spirally arranged, the contact area between the first radiating pipe 4 and the friction roller 5 and between the second radiating pipe 6 and the drying roller 7 can be effectively increased, the cooling efficiency and the drying efficiency can be improved, the heat can be fully reused for the second time, and further resources are saved and the environment is protected.

[0045] In a specific embodiment of the present invention, see Figure 1 - Figure 3 , it further includes a radiating pipe support frame 10, and a spiral groove 101 is arranged on the radiating pipe support frame 10;

[0046] There are two heat dissipation pipe support frames 10, namely the first heat dissipation pipe support frame and the second heat dissipation pipe support frame. The first heat dissipation pipe support frame is provided with a first spiral groove, and the second heat dissipation pipe support frame is provided with a second spiral groove;

[0047] The first heat dissipation pipe 4 is wound in the first spiral groove of the first heat dissipation pipe support frame, and the first heat dissipation pipe support frame is installed in the friction roller 5;

[0048] The second heat dissipation pipe 6 is wound in the second spiral groove of the second heat dissipation pipe support frame, and the second heat dissipation pipe support frame is installed in the drying roller 7;

[0049] After setting the first heat dissipation pipe support frame and the second heat dissipation pipe support frame, it is more convenient for the spiral arrangement of the first heat dissipation pipe 4 and the second heat dissipation pipe 6, greatly improving the cooling efficiency and the drying efficiency.

[0050] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. The non-powered self-cooling waste heat drying equipment includes: A control device and a cooling device, the cooling device being connected to the control device; The cooling device includes a water storage tank, a water pump and a radiator. The water pump is arranged in the water storage tank, and the radiator is communicated with the water pump through a pipeline; It is characterized in that: it further includes a first heat dissipation pipe and a second heat dissipation pipe; One end of the first heat dissipation pipe is communicated with the radiator, and the other end passes through the friction roller of the loom; After the other end of the first heat dissipation pipe passes through the friction roller of the loom, it is communicated with one end of the second heat dissipation pipe, and the other end of the second heat dissipation pipe passes through the drying roller of the loom; Meanwhile, a drain pipe is connected to the second heat dissipation pipe, and the drain pipe is communicated with the water storage tank; Both the water pump and the radiator are connected to the control device; The water pump is a non-powered water pump; It further includes a water drainer, and a plurality of water drainers are provided; Each of the remaining drain pipes is respectively communicated with each of the remaining first heat dissipation pipes through one of the water drainers; The water drainer is connected to the control device; The cooling process is as follows: The water pump extracts cold water from the water storage tank to the radiator. The radiator further reduces the temperature of the cold water and drives the cold water into the first heat dissipation pipe. After the first heat dissipation pipe passes through the friction roller, the cold water inside absorbs the heat of the friction roller and the temperature rises. The water with the increased temperature enters the second heat dissipation pipe. The second heat dissipation pipe passes through the drying roller. The water with the increased temperature in the second heat dissipation pipe then enters the water drainer through the drain pipe and then passes through the first heat dissipation pipe again to penetrate into the friction roller to dissipate heat from the friction roller. After such a cycle, it flows back into the water storage tank through the drain pipe again.

2. The power-free self-cooling waste heat drying equipment according to claim 1, characterized in that: A plurality of first heat dissipation pipes are provided. Correspondingly, a plurality of second heat dissipation pipes and drain pipes are provided; One of the first heat dissipation pipes is communicated with the radiator; One of the drain pipes is communicated with the water storage tank; The remaining drain pipes are respectively communicated with the remaining first heat dissipation pipes.

3. The non-powered self-cooling waste heat drying equipment according to claim 2, wherein: The water storage tank is a disc-shaped water storage tank.

4. The non-powered self-cooling waste heat drying equipment according to claim 1, characterized in that: The radiator is a disc-shaped radiator.

5. The power-free self-cooling waste heat drying equipment according to claim 1, characterized in that: The end of the first heat dissipation pipe is spirally wound around the inner surface of the friction roller, and the end of the second heat dissipation pipe is spirally wound around the inner surface of the drying roller.

6. The power-free self-cooling waste heat drying equipment according to claim 1, characterized in that: It further includes a heat dissipation pipe support frame. A spiral groove is provided on the heat dissipation pipe support frame. The first heat dissipation pipe or the second heat dissipation pipe is wound in the spiral groove of the heat dissipation pipe support frame, and the heat dissipation pipe support frame is installed inside the friction roller or the drying roller.

Citation Information

Patent Citations

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