Silk thread circular blowing cooling device for textile production

By using the diversion cyclone blades and arc-shaped blower chamber designs in the lower case and upper case in textile production, combined with cyclone cooling and dehumidification systems, the problems of uneven wire cooling and low efficiency are solved, achieving uniform and efficient cooling effects and convenient maintenance of the device.

CN223118620UActive Publication Date: 2025-07-18HUBEI YAOKUN TEXTILE CO LTD
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Patent Information

Application Number
CN202422016512.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-20
Publication Date
2025-07-18
Estimated Expiration
2034-08-20

AI Technical Summary

Technical Problem

In the existing textile production, the wire is unevenly cooled and has low cooling efficiency, making it difficult to effectively export heat.

Method used

The ring-blowing cooling device is adopted with a diversion cyclone blade and an arc-shaped blowing chamber in the lower case and the upper case. The air conditioner is distributed in an annular manner through the lower air outlet and the upper air outlet. Combined with the cyclone cooling method, it achieves all-round cooling and reduces humidity through the dehumidification box and drainage system.

Benefits of technology

Improves the uniformity and efficiency of wire cooling, prevents wire from getting damp, and simplifies the cleaning and maintenance of the device.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model discloses a silk thread annular blowing cooling device for textile production, which comprises a lower shell, lower flow guide rotary vanes, an upper shell and upper flow guide rotary vanes, the upper shell is arranged at the top end of the lower shell, the upper flow guide rotary vanes are all fixed on the inner wall of the lower shell, an upper arc-shaped blowing cavity is arranged in the side wall of the upper shell, and a lower arc-shaped blowing cavity is arranged in the side wall of the lower shell. Upper air outlet holes are formed in the positions, between the upper flow guide rotary blades, of the inner wall of the upper shell, the lower flow guide rotary blades are fixed to the inner wall of the lower shell, a lower arc-shaped air blowing cavity is formed in the side wall of the lower shell, and lower air outlet holes are formed in the positions, between the lower flow guide rotary blades, of the inner wall of the lower shell. One end of the lower shell and one end of the upper shell are each provided with a wire inlet, the other end of the lower shell and the other end of the upper shell are each provided with a wire outlet, and a main air supply pipe is installed on one side of the lower shell. According to the cooling device, all-around cooling can be carried out on silk threads, the cooling uniformity is improved, a cyclone cooling mode is adopted, and the cooling efficiency is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of textile production, and particularly relates to a silk loop blowing cooling device for textile production. Background Technique

[0002] Textiles, that is, products processed by textile processing, including yarns, woven fabrics, knitted fabrics, braided fabrics, etc. During the textile production process, the cooling of silk threads is an important link. If the cooling is uneven, it will affect the quality of the spun silk. Therefore, a cooling device is needed.

[0003] Most cooling devices cool the silk threads by blowing air in a single direction. This cooling method is not uniform enough, and since the blown cold air lacks guidance in the device, the heat remains in the device and is difficult to export, affecting the cooling efficiency. Therefore, it is urgently needed to be improved. Content of the Utility Model

[0004] The purpose of the utility model is to provide a silk loop blowing cooling device for textile production to solve the problems put forward in the above background technique.

[0005] To achieve the above purpose, the utility model provides the following technical solution: A silk loop blowing cooling device for textile production, including a lower housing, lower guide vanes, an upper housing and upper guide vanes. The upper housing is arranged at the top end of the lower housing. The upper guide vanes are all fixed on the inner wall of the lower housing. An upper arc-shaped blowing cavity is arranged inside the side wall of the upper housing. Upper air outlet holes are arranged on the inner wall of the upper housing between the upper guide vanes. The upper air outlet holes are communicated with the upper arc-shaped blowing cavity. The lower guide vanes are all fixed on the inner wall of the lower housing. The lower guide vanes are connected with the upper guide vanes. A lower arc-shaped blowing cavity is arranged inside the side wall of the lower housing. Lower air outlet holes are arranged on the inner wall of the lower housing between the lower guide vanes. The lower air outlet holes are communicated with the lower arc-shaped blowing cavity. Inlets are arranged at one end of both the lower housing and the upper housing, and outlets are arranged at the other end of both the lower housing and the upper housing. A main air supply pipe is installed on one side of the lower housing, and the main air supply pipe is respectively communicated with the lower housing and one end of the upper housing through a lower hose and an upper hose. An air outlet pipe is installed at the other end of the lower housing. An induced draft fan is arranged on one side of the main air supply pipe, and the output end of the induced draft fan is communicated with the main air supply pipe.

[0006] Preferably, a water collecting tank is arranged on the inner wall of the bottom of the lower housing to facilitate the collection of condensed water.

[0007] Preferably, a drain pipe is installed at one end of the water collecting tank, and the bottom end of the drain pipe extends below the lower housing to facilitate the discharge of condensed water.

[0008] Preferably, both the inlet and outlet are semi-circular structures, and after the inlet and outlet are combined, they form a complete circular structure.

[0009] Preferably, wire wheels are installed inside both the inlet and outlet to facilitate guiding and limiting the silk thread.

[0010] Preferably, a dehumidification box is provided below the lower housing, a desiccant box is arranged inside the dehumidification box, and one end of the desiccant box extends to the outside of the dehumidification box and is equipped with a sealing plate to facilitate dehumidifying the cold air.

[0011] Preferably, one end of the dehumidification box is communicated with the air outlet pipe, and the other end of the dehumidification box is communicated with the main air supply pipe through a circulation pipe.

[0012] Preferably, the lower housing and the upper housing are combined into a cylindrical structure, and one side of the upper housing is connected to the lower housing through a rotating shaft.

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

[0014] The silk thread enters the lower housing and the upper housing from the inlet and is led out from the outlet. The air blower sucks the cold air into the main air supply pipe. The main air supply pipe transports the cold air into the lower arc-shaped blowing cavity and the upper arc-shaped blowing cavity inside the lower housing and the upper housing through the lower hose and the upper hose. The cold air enters the cylinder formed by the lower housing and the upper housing from the lower air outlet holes and the upper air outlet holes. Since the lower air outlet holes and the upper air outlet holes are annularly distributed, the silk thread is cooled evenly in all directions, thereby improving the cooling uniformity. At the same time, the silk thread moves from left to right, while the cold air forms a cyclone and moves from right to left under the guiding action of the lower guide vanes and the upper guide vanes. When the cold air cyclone passes through the silk thread, it takes away the heat of the silk thread and is led out through the air outlet pipe, so that the heat will not remain in the device, thereby improving the cooling efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 is the main sectional structure schematic diagram of the present utility model;

[0016] Figure 2 is the side sectional structure schematic diagram of the present utility model;

[0017] Figure 3 is the partial enlarged structure schematic diagram of the present utility model;

[0018] Figure 4 is the Figure 3 enlarged structure schematic diagram at A in the present utility model;

[0019] Figure 5 is the enlarged sectional structure schematic diagram of the dehumidification box of the present utility model.

[0020] In the figure: 1. Lower housing; 101. Lower arc-shaped blowing cavity; 102. Lower air outlet hole; 103. Water collecting tank; 104. Drain pipe; 2. Lower guide vane; 3. Dehumidification box; 301. Sealing plate; 302. Desiccant box; 4. Lower hose; 5. Main air supply pipe; 6. Induced draft fan; 7. Upper hose; 8. Upper housing; 801. Upper arc-shaped blowing cavity; 802. Upper air outlet hole; 9. Upper guide vane; 10. Circulation pipe; 11. Air outlet pipe; 12. Inlet port; 13. Outlet port; 14. Wire wheel. Specific implementation mode

[0021] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present invention.

[0022] Please refer to Figures 1-5 , an embodiment provided by the present invention: A silk ring blowing and cooling device for textile production, including a lower housing 1, a lower guide vane 2, an upper housing 8 and an upper guide vane 9. The upper housing 8 is arranged at the top of the lower housing 1, and the upper guide vanes 9 are all fixed on the inner wall of the lower housing 1. An upper arc-shaped blowing cavity 801 is arranged inside the side wall of the upper housing 8, and upper air outlet holes 802 are arranged on the inner wall of the upper housing 8 between the upper guide vanes 9. The upper air outlet holes 802 are communicated with the upper arc-shaped blowing cavity 801. The lower guide vanes 2 are all fixed on the inner wall of the lower housing 1, and the lower guide vanes 2 are connected with the upper guide vanes 9;

[0023] Specifically, the silk thread enters the lower housing 1 and the upper housing 8 from the inlet port 12 and is led out from the outlet port 13. Among them, the wire wheel 14 guides and positions the silk thread. Then, the induced draft fan 6 is connected to an external cold air pipe, and the induced draft fan 6 pumps the cold air into the main air supply pipe 5. The main air supply pipe 5 transports the cold air into the lower arc-shaped blowing cavity 101 and the upper arc-shaped blowing cavity 801 inside the lower housing 1 and the upper housing 8 through the lower hose 4 and the upper hose 7. The cold air enters the cylinder formed by the lower housing 1 and the upper housing 8 from the lower air outlet hole 102 and the upper air outlet hole 802. Since the lower air outlet holes 102 are annularly distributed, the silk thread is cooled uniformly in all directions, thereby improving the cooling uniformity;

[0024] The silk thread moves from left to right, while the cold air forms a cyclone and moves from right to left under the guiding action of the lower guide vane 2 and the upper guide vane 9. When the cold air cyclone passes through the silk thread, it takes away the heat of the silk thread and is led out through the air outlet pipe 11, so that the heat will not remain in the device, thereby improving the cooling efficiency;

[0025] An arc-shaped blowing cavity 101 is provided inside the side wall of the lower housing 1. Lower air outlet holes 102 are provided on the inner wall of the lower housing 1 between the lower guide vanes 2. The lower air outlet holes 102 communicate with the arc-shaped blowing cavity 101.

[0026] Inlets 12 are provided at one end of both the lower housing 1 and the upper housing 8, and outlets 13 are provided at the other end of both the lower housing 1 and the upper housing 8.

[0027] A main air supply pipe 5 is installed on one side of the lower housing 1. The main air supply pipe 5 is respectively connected to one end of the lower housing 1 and the upper housing 8 through a lower hose 4 and an upper hose 7. An air outlet pipe 11 is installed at the other end of the lower housing 1. An air blower 6 is provided on one side of the main air supply pipe 5, and the output end of the air blower 6 communicates with the main air supply pipe 5.

[0028] A water collecting tank 103 is provided on the inner wall of the bottom of the lower housing 1.

[0029] A drain pipe 104 is installed at one end of the water collecting tank 103, and the bottom end of the drain pipe 104 extends below the lower housing 1.

[0030] Both the inlets 12 and the outlets 13 are semi-circular structures, and after the inlets 12 and the outlets 13 are combined, they form a complete circular structure.

[0031] Wire wheels 14 are installed inside both the inlets 12 and the outlets 13.

[0032] A dehumidification box 3 is provided below the lower housing 1. A desiccant box 302 is provided inside the dehumidification box 3, and one end of the desiccant box 302 extends outside the dehumidification box 3 and is installed with a sealing plate 301.

[0033] One end of the dehumidification box 3 communicates with the air outlet pipe 11, and the other end of the dehumidification box 3 communicates with the main air supply pipe 5 through a circulation pipe 10.

[0034] Specifically, the air outlet pipe 11 introduces cold air into the dehumidification box 3. The desiccant box 302 dehumidifies the cold air. The sealing plate 301 can be pulled to draw out the desiccant box 302 for replacement. The dehumidified cold air re-enters the main air supply pipe 5 through the circulation pipe 10, mixes with the cold air in the main air supply pipe 5, and then enters the lower housing 1 and the upper housing 8 again. In this way, the humidity inside the device is reduced, preventing the silk thread from getting damp. In addition, a small amount of condensed water on the inner walls of the lower housing 1 and the upper housing 8 flows into the water collecting tank 103 under the action of gravity and is discharged to the outside through the drain pipe 104, so as to facilitate the discharge of condensed water.

[0035] The lower housing 1 and the upper housing 8 are combined into a cylindrical structure, and one side of the upper housing 8 is connected to the lower housing 1 through a rotating shaft.

[0036] Specifically, the upper housing 8 can be flipped around the lower housing 1, and the upper housing 8 is opened to facilitate regular cleaning and maintenance of the interior of the lower housing 1 and the upper housing 8.

[0037] In the use of the embodiment of the present application: First, the silk thread enters the lower housing 1 and the upper housing 8 from the wire inlet 12 and is led out from the wire outlet 13. Among them, the wire guiding wheel 14 guides and positions the silk thread. Then, the air blower 6 is connected to an external cold air pipe, and the air blower 6 pumps the cold air into the main air supply pipe 5. The main air supply pipe 5 conveys the cold air into the lower arc-shaped blowing cavity 101 and the upper arc-shaped blowing cavity 801 inside the lower housing 1 and the upper housing 8 through the lower hose 4 and the upper hose 7. The cold air enters the cylinder formed by the lower housing 1 and the upper housing 8 from the lower air outlet holes 102 and the upper air outlet holes 802. Since the lower air outlet holes 102 and the lower air outlet holes 102 are annularly distributed, the silk thread is cooled uniformly in all directions, thereby improving the uniformity of cooling. At the same time, the silk thread moves from left to right, and the cold air forms a cyclone and moves from right to left under the guiding action of the lower guide vanes 2 and the upper guide vanes 9. When the cold air cyclone passes through the silk thread, it takes away the heat of the silk thread and is led out through the air outlet pipe 11, so that the heat does not remain in the device, thereby improving the cooling efficiency. Moreover, the air outlet pipe 11 leads the cold air into the dehumidification box 3, and the desiccant box 302 dehumidifies the cold air. The sealing plate 301 can be pulled to draw out the desiccant box 302 for replacement. The dehumidified cold air re-enters the main air supply pipe 5 through the circulation pipe 10, mixes with the cold air in the main air supply pipe 5 and then enters the lower housing 1 and the upper housing 8 again. In this way, the humidity in the device is reduced to prevent the silk thread from being affected by moisture. In addition, a small amount of condensed water on the inner walls of the lower housing 1 and the upper housing 8 flows into the water collecting tank 103 under the action of gravity and is led out to the outside through the drain pipe 104, so as to facilitate the discharge of the condensed water. Specifically, the upper housing 8 can be flipped around the lower housing 1, and the upper housing 8 is opened to facilitate regular cleaning and maintenance of the interior of the lower housing 1 and the upper housing 8.

Claims

1. A silk thread loop blowing cooling device for textile production, characterized in that, It includes a lower housing (1), lower guide vanes (2), an upper housing (8) and upper guide vanes (9). The upper housing (8) is arranged at the top of the lower housing (1). The upper guide vanes (9) are all fixed on the inner wall of the lower housing (1). An upper arc-shaped blowing cavity (801) is arranged inside the side wall of the upper housing (8). Upper air outlet holes (802) are arranged on the inner wall of the upper housing (8) between the upper guide vanes (9). The upper air outlet holes (802) are communicated with the upper arc-shaped blowing cavity (801). The lower guide vanes (2) are all fixed on the inner wall of the lower housing (1). The lower guide vanes (2) are connected with the upper guide vanes (9). A lower arc-shaped blowing cavity (101) is arranged inside the side wall of the lower housing (1). Lower air outlet holes (102) are arranged on the inner wall of the lower housing (1) between the lower guide vanes (2). The lower air outlet holes (102) are communicated with the lower arc-shaped blowing cavity (101). Inlets (12) are arranged at one end of the lower housing (1) and the upper housing (8). Outlets (13) are arranged at the other end of the lower housing (1) and the upper housing (8). A main air supply pipe (5) is installed on one side of the lower housing (1). And the main air supply pipe (5) is respectively communicated with the lower housing (1) and one end of the upper housing (8) through a lower hose (4) and an upper hose (7). An air outlet pipe (11) is installed at the other end of the lower housing (1). An air blower (6) is arranged on one side of the main air supply pipe (5). The output end of the air blower (6) is communicated with the main air supply pipe (5).

2. The silk thread loop blowing cooling device for textile production according to claim 1, wherein: A water collecting tank (103) is arranged on the inner wall at the bottom of the lower housing (1).

3. The silk thread loop blowing cooling device for textile production according to claim 2, characterized in that: A drain pipe (104) is installed at one end of the water collecting tank (103). The bottom end of the drain pipe (104) extends below the lower housing (1).

4. A silk loop blowing cooling device for textile production according to claim 1, characterized in that: Both the inlets (12) and the outlets (13) are semi-circular structures. And after the inlets (12) and the outlets (13) are combined, they form a complete circular structure.

5. A silk ring blowing cooling device for textile production according to claim 1, characterized in that: Wire wheels (14) are installed inside both the inlets (12) and the outlets (13).

6. A silk loop blowing cooling device for textile production according to claim 1, characterized in that: A dehumidification box (3) is arranged below the lower housing (1). And a desiccant box (302) is arranged inside the dehumidification box (3). And one end of the desiccant box (302) extends outside the dehumidification box (3) and a sealing plate (301) is installed.

7. The wire loop blowing and cooling device for textile production according to claim 6, characterized in that: One end of the dehumidification box (3) is communicated with the air outlet pipe (11). And the other end of the dehumidification box (3) is communicated with the main air supply pipe (5) through a circulation pipe (10).

8. A silk ring blowing cooling device for textile production according to claim 1, characterized in that: The lower housing (1) and the upper housing (8) are combined into a cylindrical structure. And one side of the upper housing (8) is connected with the lower housing (1) through a rotating shaft.