Cashmere flat comb static electricity removing device

By using a cashmere combing antistatic device, metal rods and ion fans are used to eliminate static electricity in cashmere, solving the problem of static electricity hazards during cashmere transportation and ensuring smooth operation of the process and personnel safety.

CN223942882UActive Publication Date: 2026-02-24INNER MONGOLIA ZHONGKE RONGHUI CASHMERE DEV CO LTD
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Patent Information

Application Number
CN202520393404.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-07
Publication Date
2026-02-24
Estimated Expiration
2035-03-07

AI Technical Summary

Technical Problem

Cashmere generates static electricity during transport due to its unique material properties; failure to remove this static electricity can harm subsequent work.

Method used

The device uses a cashmere comb to remove static electricity. It uses a metal rod to adsorb and release static electricity, combined with an ion fan to generate positive and negative ions to eliminate static ions, and then neutralizes static electricity by spraying an antistatic agent.

Benefits of technology

It effectively removes static electricity from cashmere, ensuring smooth operation of subsequent processes and preventing physical discomfort to workers.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a cashmere flat carding static electricity removing device which comprises a conveyor, a metal rod, a first removing mechanism and a second removing mechanism, a feeding end is arranged on the left side of the conveyor, an output end is arranged on the right side of the conveyor, and the metal rod, the first removing mechanism and the second removing mechanism are sequentially installed at the feeding end towards the output end. The first removing mechanism and the second removing mechanism are arranged at intervals, the whole metal rod is of an L-shaped structure, the top of the metal rod is a horizontal section, the bottom of the metal rod is connected with a grounding component, guiding-out rods are installed on the bottom face of the horizontal section of the metal rod at intervals and extend into cashmere, and a distance is reserved between the bottom of each guiding-out rod and the top face of the conveyor. The utility model provides a cashmere flat carding static electricity removing device which solves the problems that static electricity is generated among cashmere due to particularity of cashmere materials when the cashmere after impurity removal is conveyed at present, and if the static electricity is not removed, the subsequent work is damaged.
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Description

Technical Field

[0001] This utility model relates to the field of cashmere processing technology, and in particular to a cashmere flat combing antistatic device. Background Technology

[0002] Cashmere carding is a crucial step in cashmere processing. Its main purpose is to comb the washed cashmere, removing impurities such as dirt, burrs, and coarse hair, extracting high-quality dehaired cashmere for the spinning process. Cashmere carding machines efficiently remove impurities, improving the purity of the cashmere and providing high-quality raw materials for subsequent spinning. In conclusion, cashmere carding is an indispensable step in cashmere processing. By selecting appropriate cashmere carding equipment and technical parameters, the quality of cashmere products can be ensured to be stable and reliable. The cashmere carding antistatic device is designed to address the problem of static electricity generated during the cashmere carding process due to friction.

[0003] Currently, when conveying cashmere after impurity removal, static electricity is generated between the cashmere fibers due to the special properties of the material. If the static electricity is not removed, it will cause harm to subsequent work.

[0004] Therefore, it is necessary to provide a cashmere combing antistatic device to solve the above-mentioned technical problems. Utility Model Content

[0005] In response to the above situation and to overcome the defects of the existing technology, this utility model provides a cashmere flat combing antistatic device to solve the problem that when cashmere is transported after impurity removal, static electricity will be generated between the cashmere fibers due to the special properties of the cashmere material. If the static electricity is not removed, it will cause harm to subsequent work.

[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:

[0007] The cashmere combing antistatic device includes: a conveyor, a metal rod, a first cleaning mechanism, and a second cleaning mechanism;

[0008] The left side of the conveyor is the feed end, and the right side is the output end. A metal rod, a first cleaning mechanism, and a second cleaning mechanism are installed sequentially from the feed end to the output end, with the first cleaning mechanism and the second cleaning mechanism spaced apart.

[0009] In one embodiment, the metal rod is an L-shaped structure with a horizontal section at the top and a grounding component at the bottom. The bottom surface of the horizontal section of the metal rod is equipped with guide rods at intervals, which extend into the cashmere and have a gap between their bottom and the top surface of the conveyor.

[0010] In one embodiment, a protective sleeve is installed on the working area of ​​the entire metal rod.

[0011] In one embodiment, the first cleaning mechanism consists of a mounting box, an ion fan, an air inlet pipe, and an air outlet. The mounting box is mounted on the top surface of the conveyor. An ion fan is installed on the left side of the mounting box. The ion fan is connected to the air inlet pipe, which is located inside the mounting box. An air outlet is installed at the bottom of the air inlet pipe. Multiple air outlets are installed at intervals, and a gap is left between the bottom surface of the air outlet and the top of the cashmere.

[0012] In one embodiment, the second cleaning mechanism comprises a housing, a working port, a chute plate, an inlet pipe, a diverter plate, an atomizing nozzle, and a collection box. The housing is mounted on top of the conveyor. A working port is provided on the left top surface of the housing. A chute plate is installed at both ends of the working port. The front and rear ends of the diverter plate are slidably connected to the chute plate via sliders. An inlet pipe is installed on the top surface of the diverter plate. An atomizing nozzle is installed on the bottom surface of the diverter plate. Multiple atomizing nozzles are installed at intervals. A collection box is installed on the lower inner left side of the housing away from the working port. A gap is left between the bottom surface of the collection box and the top of the cashmere.

[0013] The beneficial effects of this utility model are as follows:

[0014] (1) This utility model starts the ion fan and ionizes the air by corona ionization to generate positive and negative ions. The built-in fan forms ion wind, which blows the ion wind through the air outlet to eliminate the ions in the cashmere. The antistatic agent is delivered to the diverter plate through the liquid inlet pipe by the external pump body. The antistatic agent is sprayed on the cashmere through the atomizing nozzle to neutralize the static electricity. The treated cashmere continues to move with the conveyor and enters the next process.

[0015] (2) This utility model uses an outlet rod and a metal rod to adsorb static electricity in cashmere and release it through a grounding component, effectively removing static electricity from inside the cashmere. The protective cover prevents staff from accidentally touching the metal rod and causing physical discomfort. Attached Figure Description

[0016] Figure 1 This is a structural diagram of the present invention;

[0017] Figure 2 This is a detailed drawing of the first cleaning mechanism of this utility model;

[0018] Figure 3 This is a detailed drawing of the second cleaning mechanism of this utility model.

[0019] The corresponding names of the attached figures are: conveyor 1, metal rod 2, guide rod 21, first cleaning mechanism 3, mounting box 31, ion fan 32, air inlet pipe 33, air outlet 34, second cleaning mechanism 4, housing 41, working port 42, chute plate 43, liquid inlet pipe 44, diverter plate 45, atomizing nozzle 46, and collection box 47. Detailed Implementation

[0020] The present invention will be further described below with reference to the accompanying drawings and embodiments. The embodiments of the present invention include, but are not limited to, the following embodiments.

[0021] like Figures 1-2 As shown, the cashmere combing antistatic device provided by this utility model includes: a conveyor 1, a metal rod 2, a first cleaning mechanism 3, and a second cleaning mechanism 4;

[0022] like Figure 1 As shown, the left side of the conveyor 1 is the feeding end and the right side is the output end. The feeding end is connected to the output end by a metal rod 2, a first cleaning mechanism 3, and a second cleaning mechanism 4. The first cleaning mechanism 3 and the second cleaning mechanism 4 are arranged at intervals. The arrangement of multiple cleaning mechanisms helps to quickly remove static electricity from cashmere.

[0023] Preferably, in one embodiment, such as Figures 1-2 As shown, the metal rod 2 has an overall L-shaped structure with a horizontal section at the top. The bottom of the metal rod 2 is connected to the grounding component. The bottom surface of the horizontal section of the metal rod 2 is equipped with guide rods 21 at intervals. The guide rods 21 extend into the cashmere, and there is a gap between their bottom and the top surface of the conveyor 1. The guide rods 21 and the metal rod 2 attract static electricity in the cashmere and release it through the grounding component, effectively removing static electricity from the inside of the cashmere.

[0024] Preferably, in one embodiment, such as Figure 1 As shown, the working area of ​​the metal rod 2 is equipped with a protective cover. The protective cover is designed to prevent workers from accidentally touching the metal rod 2 and causing physical discomfort.

[0025] Preferably, in one embodiment, such as Figures 1-2As shown, the first cleaning mechanism 3 consists of a mounting box 31, an ion fan 32, an air inlet pipe 33, and an air outlet 34. The mounting box 31 is mounted on the top surface of the conveyor 1. The ion fan 32 is installed on the left side of the mounting box 31. The ion fan 32 is connected to the air inlet pipe 33, which is located inside the mounting box 31. An air outlet 34 is installed at the bottom of the air inlet pipe 33. Multiple air outlets 34 are installed at intervals. There is a gap between the bottom surface of the air outlet 34 and the top of the cashmere. When working, the ion fan 32 is started to ionize the air through corona ionization, generating positive and negative ions. An ion wind is formed by the built-in fan. The ion wind blows continuously onto the cashmere through the air outlet 34 to eliminate the ions in the cashmere.

[0026] Preferably, in one embodiment, such as Figure 3 As shown, the second cleaning mechanism 4 consists of a housing 41, a working port 42, a chute plate 43, an inlet pipe 44, a diverter plate 45, an atomizing nozzle 46, and a collection box 47. The housing 41 is mounted on top of the conveyor 1. The working port 42 is opened on the left top surface of the housing 41. The chute plate 43 is installed on both sides of the working port 42. The front and rear ends of the diverter plate 45 are slidably connected to the chute plate 43 by a slider. The inlet pipe 44 is installed on the top surface of the diverter plate 45. The atomizing nozzle 46 is installed on the bottom surface of the diverter plate 45. Multiple atomizing nozzles 46 are installed at intervals. The housing 41 is located on the inner left side away from the working port 42. A collection box 47 is installed below, with a gap between the bottom of the collection box 47 and the top of the cashmere. During operation, the diverter plate 45 is pushed out along the slide plate 43, causing the bottom of the atomizing nozzle 46 to move out of the collection box 47. After the atomizing nozzle 46 finishes spraying, the diverter plate 45 is reset, and the overflow liquid from the atomizing nozzle 6 drips into the collection box 47 for collection, preventing the overflow liquid from dripping into the conveyor 1. The antistatic agent is delivered to the diverter plate 45 through the inlet pipe 44 by an external pump, and then sprayed onto the cashmere by the atomizing nozzle 46 to neutralize static electricity. The treated cashmere continues to move with the conveyor and enters the next process.

[0027] Working principle of this utility model:

[0028] During operation, static electricity is adsorbed within the cashmere through the guide rod 21 and metal rod 2, and released through the grounding component, effectively removing static electricity from the inside of the cashmere. By starting the ion fan 32, the air is ionized through corona ionization to generate positive and negative ions, and an ion wind is formed by the built-in fan. The ion wind blows continuously onto the cashmere through the air outlet 34 to eliminate the ions in the cashmere. The antistatic agent is delivered to the diverter plate 45 through the liquid inlet pipe 44 by the external pump body, and sprayed onto the cashmere through the atomizing nozzle 46 to neutralize the static electricity. After treatment, the cashmere continues to move with the conveyor and enters the next process.

[0029] The above embodiments are merely one of the preferred embodiments of this utility model and should not be used to limit the scope of protection of this utility model. Any modifications or refinements made to the main design concept and spirit of this utility model that are not of substantial significance, but solve the same technical problem as this utility model, should be included within the scope of protection of this utility model.

Claims

1. A cashmere flat comb antistatic device, characterized in that, include: Conveyor, metal rod, first cleaning mechanism, second cleaning mechanism; The left side of the conveyor is the feed end, and the right side is the output end. A metal rod, a first cleaning mechanism, and a second cleaning mechanism are installed sequentially from the feed end to the output end, with the first cleaning mechanism and the second cleaning mechanism spaced apart.

2. The cashmere combing antistatic device according to claim 1, characterized in that, The metal rod has an overall L-shaped structure with a horizontal section at the top and a grounding component at the bottom. The bottom surface of the horizontal section of the metal rod is equipped with guide rods at intervals, which extend into the cashmere. There is a gap between the bottom of the guide rod and the top surface of the conveyor.

3. The cashmere combing antistatic device according to claim 2, characterized in that, The working area of ​​the entire metal rod is equipped with a protective sleeve.

4. The cashmere combing antistatic device according to claim 1, characterized in that, The first cleaning mechanism consists of a mounting box, an ion fan, an air inlet pipe, and an air outlet. The mounting box is mounted on the top surface of the conveyor. An ion fan is installed on the left side of the mounting box. The ion fan is connected to the air inlet pipe, which is located inside the mounting box. An air outlet is installed at the bottom of the air inlet pipe. Multiple air outlets are installed at intervals, and a gap is left between the bottom surface of the air outlet and the top of the cashmere.

5. The cashmere combing antistatic device according to claim 1, characterized in that, The second cleaning mechanism consists of a housing, a working port, a chute plate, an inlet pipe, a flow divider, an atomizing nozzle, and a collection box. The housing is mounted on top of the conveyor. A working port is opened on the top left side of the housing. A chute plate is installed on both sides of the working port. The front and rear ends of the flow divider are slidably connected to the chute plate via sliders. An inlet pipe is installed on the top surface of the flow divider. An atomizing nozzle is installed on the bottom surface of the flow divider. Multiple atomizing nozzles are installed at intervals. A collection box is installed on the lower inner left side of the housing away from the working port. A gap is left between the bottom surface of the collection box and the top of the cashmere.