Humidifying solution for spinning, humidifying mechanism and humidifying method of humidifying mechanism

By using humidification solutions containing methyl triethylamine chloride, nano alumina, fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether, the problem of uneven humidification of fabrics is solved, and more efficient wetting and better mechanical properties are achieved.

CN119980690APending Publication Date: 2025-05-13FOSHAN NANHAI YONGQIXIANG WEAVING & DYEING CO LTD
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Patent Information

Application Number
CN202411346100.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-09-26
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

In textile processing, the uneven contact of the humidification liquid during the fabric humidification process leads to uneven wetting of the fabric, which affects the processing efficiency and increases the risk of pollution.

Method used

A humidification solution containing methyl triethylamine chloride, nano alumina, fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether is used. Through the synergistic effect of these components, the humidification solution can be quickly penetrated and evenly distributed on the surface of the fabric.

Benefits of technology

It improves the wetting uniformity of the fabric, enhances the tensile, wrinkle and conductive properties after wetting, and reduces the risk of contamination of the fabric during transportation.

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Abstract

The invention relates to the field of spinning production, and particularly discloses a humidifying solution for spinning, a humidifying mechanism and a humidifying method of the humidifying mechanism. The humidifying solution is prepared from the following raw materials in parts by weight: 46 to 58 parts of water, 0.6 to 2.4 parts of chlorinated methyl triethylamine, 4 to 8 parts of nano aluminum oxide and 3 to 6 parts of a nonionic surfactant; 1.5 to 3.5 parts of an organic silicon softening agent; 8 to 15 parts of an acid-base regulator; according to the invention, the existing cloth wetting speed can be effectively improved, and meanwhile, the pollution degree of the wetted cloth is reduced.
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Description

Technical Field

[0001] The present application relates to the field of textile production, and more specifically, to a humidifying solution and a humidifying mechanism for textiles and a humidifying method thereof. Background Art

[0002] In the field of textile processing, it is often necessary to humidify the fabric. After humidification, the fiber stretching, combing, spinning and other processes can proceed smoothly, thereby increasing the yield and quality, improving the processing performance and reducing static electricity.

[0003] At present, when humidifying fabrics, the fabrics that have been pre-treated for decontamination need to pass through the bottom of the humidifying device to deliver the humidifying liquid to the surface of the fabrics, and then the fabrics are guided to the next process for further processing through the tensioning roller. However, after the humidifying liquid is delivered to the fabric surface, the wetting conditions of the humidifying liquid in the various areas of the fabric surface are different due to the order in which the various areas on the width direction of the fabric surface contact the humidifying liquid, so that the fabrics need to be transported over a long distance to allow the humidifying liquid to penetrate evenly in the fabrics, so that the fabrics can be processed in the next process, which increases the degree of contamination of the fabrics during transportation after they are wetted, and affects the overall efficiency of fabric processing. Summary of the invention

[0004] In order to effectively increase the wetting speed of existing fabrics and reduce the degree of contamination of the fabrics after wetting, the present application provides a humidifying solution and a humidifying mechanism and a humidifying method for textiles.

[0005] In a first aspect, the present application provides a humidifying solution for textiles, which adopts the following technical solution: A humidifying solution for textile use, comprising the following raw material components in parts by weight: Water: 46 to 58 parts; Methyltriethylamine chloride: 0.6 to 2.4 parts; Nano-alumina: 4 to 8 parts; Nonionic surfactant: 3 to 6 parts; Silicone softener: 1.5 to 3.5 parts; Acid-base regulator: 8 to 15 parts; The nonionic surfactant is composed of fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether, and the weight ratio of the fatty alcohol polyoxyethylene ether to the alkylphenol polyoxyethylene ether is (2-5):1.

[0006] By adopting the above technical solution, after utilizing the synergistic effect of methyl triethylamine chloride on nano-alumina, further synergistic effect is produced with the compounded fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether, so that when the humidifying liquid contacts the surface of the fabric, it can quickly penetrate into various areas in the width direction of the fabric, and achieve the goal of improving the wetting uniformity of the fabric while also making the wetted fabric have good tensile resistance, wrinkle resistance and conductive properties; Among them, methyl triethylamine chloride has good water solubility, so that the methyl triethylamine chloride molecules can quickly extend and arrange on the gas-liquid interface after contacting the fabric fibers to form a film, and in the process of extending and arranging, the nano-alumina is quickly adsorbed into the micropores and gaps between the fabric fibers to fill and expand the micropores and gaps, effectively improving the dispersion uniformity of the nano-alumina in the fabric fibers. At the same time, through the smaller molecular characteristics of fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether, they can more quickly penetrate and form an interface in the micropores and gaps of the filled and expanded fabric fibers. The layer enhances the hydrophilicity of the fiber and makes the micropores and gaps between the fabric fibers softer and smoother, so that water can flow better in the micropores and gaps of the fabric fibers, and the wetting speed of the water on the fabric is better improved, thereby effectively coordinating with fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether through the synergistic effect of methyl triethylamine chloride and nano-alumina to form a stable and smooth interface layer inside the fabric fiber, thereby achieving the purpose of accelerating the wetting of various areas in the width direction of the fabric and helping to reduce the degree of contamination of the fabric after wetting.

[0007] Optionally, the EO value of the fatty alcohol polyoxyethylene ether is 8-15.

[0008] Optionally, the HLB value of the alkylphenol polyoxyethylene ether is 16.5.

[0009] By adopting the above technical scheme and selecting fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether materials with specific parameters, the compounding effect of the two in the humidifying solution can be further optimized, so that the two can penetrate into the micropores and gaps of the cloth fibers more quickly, and produce a synergistic effect with the dispersed and filled nano-alumina to obtain a more stable interface layer structure, thereby achieving the purpose of increasing the wetting speed of water in the cloth fibers.

[0010] Optionally, the average particle size of the nano-alumina is 50 nm.

[0011] By adopting the above technical solution and selecting nano-alumina with a specific average particle size, the dispersibility of nano-alumina in the solution can be improved, so as to further optimize the synergistic effect of methyltriethylamine chloride on nano-alumina in the solution, so that nano-alumina can fill and expand in the micropores and gaps of the fabric fibers more quickly, so as to obtain fabric with better tensile resistance, wrinkle resistance and conductive properties.

[0012] Optionally, the acid-base regulator is one or both of basic copper oxide and sodium hydroxide.

[0013] By adopting the above technical scheme and selecting specific acid-base regulator materials, the pH value in the solution can be better balanced, so that methyl triethylamine chloride, nano-alumina, fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether can be better dissolved. At the same time, by changing the surface charge of the fiber, the stability of the interface layer formed by fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether in the fiber micropores and gaps can be more effectively improved, thereby better improving the tensile strength, wrinkle resistance and conductive properties of the fabric fiber.

[0014] Optionally, the raw material components also include 1.2 to 3.2 parts of sodium benzoate.

[0015] By adopting the above technical solution, sodium benzoate can improve the stability of the humidifying solution during the conveying process, thereby reducing the deterioration of the humidifying solution during the conveying process and affecting the wetting performance.

[0016] In a second aspect, the present application provides a humidification mechanism, which adopts the following technical solution: A humidifying mechanism comprises a supporting member and a mounting member. The mounting member is arranged above and below the supporting member to abut against the surface of a cloth, and a wetting member for humidifying the cloth is arranged on the mounting member.

[0017] By adopting the above technical solution, the mounting member can stably mount the wetting member above the conveying material cloth under the support of the supporting member, wherein the humidifying liquid can be temporarily stored inside the liquid storage tank in the wetting member, so that the humidifying liquid can be dispersedly discharged from the infusion port at the bottom of the liquid storage tank to the surface of the cloth to achieve wetting of the cloth. At the same time, compared with the existing cloth humidifying mechanism, the present application can block the humidifying liquid discharged from the infusion port of the liquid storage tank due to the presence of the barrier strip, thereby reducing the waste caused by the humidifying liquid sliding from both sides of the cloth, and can also better improve the uniformity and efficiency of the wetting processing of the cloth.

[0018] Optionally, the wetting component includes a liquid storage tank and a barrier strip, the liquid storage tank is arranged above the mounting component and connected to the bottom of the mounting component, and the barrier strip is movably arranged on the inner side of the mounting component and is positioned corresponding to the bottom of the infusion port of the liquid storage tank, so that the humidifying liquid discharged from the infusion port of the liquid storage tank can be blocked by the barrier strip.

[0019] By adopting the above technical solution, the support frame can support the liquid storage tank on the mounting member through the positioning strip, so that the liquid storage tank can be stably placed above the conveying cloth.

[0020] In a third aspect, the present application provides a humidification method of a humidification mechanism, which adopts the following technical solution: A humidification method of a humidification mechanism comprises the following steps: The fabric is introduced into one side of the supporting member so that the bottom of the mounting member abuts against the surface of the fabric; Introduce the humidifying solution configured according to the weight ratio into the wetted parts; The wetting solution is guided to the surface of the fabric through the wetting element, and the mounting element is used to scrape the wetting solution on the fabric flat; The moistened fabric is guided out from the other side of the support.

[0021] By adopting the above technical scheme, the wetting solution formed by compounding methyl triethylamine chloride, nano-alumina, fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether can be stably guided to the surface of the cloth, and the wetting solution can be quickly and smoothly scraped along the width direction of the cloth through the mounting parts, so that the wetting solution can penetrate into various internal areas in the width direction of the cloth more quickly, thereby improving the efficiency of the wetting processing of the cloth.

[0022] In summary, this application has the following beneficial effects: 1. This application utilizes the synergistic effect of methyl triethylamine chloride on nano-alumina, and then produces a further synergistic effect with the compounded fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether, so that when the humidifying liquid contacts the surface of the fabric, it can quickly penetrate into various areas in the width direction of the fabric, and achieve the goal of improving the wetting uniformity of the fabric while also making the wetted fabric have good tensile resistance, wrinkle resistance and conductive properties; 2. The humidifying mechanism of the present application can stably mount the wetting element above the conveying material cloth through the mounting element under the support of the supporting element, wherein the humidifying liquid can be temporarily stored inside the liquid storage tank in the wetting element, so that the humidifying liquid can be dispersedly guided out from the infusion port at the bottom of the liquid storage tank to the surface of the cloth to achieve wetting of the cloth. At the same time, compared with the existing cloth humidifying mechanism, the present application can block the humidifying liquid guided out from the infusion port of the liquid storage tank due to the presence of the barrier strip, thereby reducing the waste caused by the humidifying liquid sliding down from both sides of the cloth, and can also better improve the uniformity and efficiency of the wetting process of the cloth; 3. The humidification method adopted in the present application can stably guide the humidification solution formed by the compound of methyl triethylamine chloride, nano-alumina, fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether to the surface of the cloth, and use the mounting parts to quickly and smoothly scrape the humidification solution along the width direction of the cloth, so that the humidification solution can penetrate into various internal areas in the width direction of the cloth more quickly, thereby improving the efficiency of the wetting process of the cloth. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] Figure 1 This is a schematic diagram of the overall structure of the pressed humidification mechanism and the fabric in Example 8 of the present application; Figure 2 yes Figure 1 A magnified view of middle; Figure 3 This is a schematic diagram of the structure of the bottom support strip and the barrier strip of Example 8 of the present application; Figure 4 It is a schematic diagram of the structure of the barrier strip of Example 8 of the present application.

[0024] Explanation of the reference numerals: 1. Supporting member; 11. Support frame; 12. Positioning strip; 121. Threaded rod; 122. Positioning nut; 13. Collecting box; 14. Cloth guide roller; 2. Mounting member; 21. Bottom supporting strip; 211. Fitting groove; 22. Extension strip; 23. Locking strip; 24. Connecting block; 25. First through hole; 3. Cloth; 4. Wetting member; 41. Liquid storage tank; 42. Barrier strip; 421. Raised strip; 422. Bevel groove; 423. Current limiting block; 424. Drain hole; 43. Liquid guide tube; 44. Connecting strip. DETAILED DESCRIPTION

[0025] The present application is further described in detail below in combination with embodiments and comparative examples.

[0026] Example 1 A humidifying solution for textile use is prepared by the following steps: Step 1): weigh 460 kg of deionized water and 150 kg of basic copper oxide according to the weight ratio, stir and mix them evenly to form a solution A; Step 2): 6 kg of methyl triethylamine chloride, 80 kg of nano-alumina, 20 kg of fatty alcohol polyoxyethylene ether, 10 kg of alkylphenol polyoxyethylene ether, and 35 kg of silicone oil were weighed and added to the solvent according to the weight ratio, and stirred to form a solution B after mixing evenly; Step 3): Solution A and solution B are stirred and mixed evenly, and then sealed and stored to obtain a humidified solution.

[0027] Among them, the EO value of fatty alcohol polyoxyethylene ether is 6-7, and the CAS number is 111-09-3; the HLB value of alkylphenol polyoxyethylene ether is 13, and the CAS number is 9016-45-9; methyltriethylamine polyvinyl alcohol is industrial grade, and the CAS number is 10052-47-8; the average particle size of nano-alumina is 70nm, and the CAS number is 11092-32-3.

[0028] Example 2 Step 1): weigh 580 kg of deionized water and 80 kg of basic copper oxide according to the weight ratio, stir and mix them evenly to form a solution A; Step 2): 24 kg of methyl triethylamine chloride, 40 kg of nano-alumina, 50 kg of fatty alcohol polyoxyethylene ether, 10 kg of alkylphenol polyoxyethylene ether, and 15 kg of silicone oil were weighed and added to the solvent according to the weight ratio, and stirred to form a solution B after mixing evenly; Step 3): Solution A and solution B are stirred and mixed evenly, and then sealed and stored to obtain a humidified solution.

[0029] Among them, the EO value of fatty alcohol polyoxyethylene ether is 6-7, and the CAS number is 111-09-3; the HLB value of alkylphenol polyoxyethylene ether is 13, and the CAS number is 9016-45-9; methyltriethylamine polyvinyl alcohol is industrial grade, and the CAS number is 10052-47-8; the average particle size of nano-alumina is 70nm, and the CAS number is 11092-32-3.

[0030] Example 3 A humidifying solution for textile use, which is different from Example 2 in that the EO value of the fatty alcohol polyoxyethylene ether is 15.

[0031] Example 4 A humidifying solution for textile use, which is different from Example 2 in that the EO value of the fatty alcohol polyoxyethylene ether is 8.

[0032] Example 5 A humidifying solution for textile use, which is different from Example 2 in that the HLB value of the alkylphenol polyoxyethylene ether is 16.5.

[0033] Example 6 A humidifying solution for textile use, which differs from Example 5 in that the average particle size of nano-alumina is 50 nm.

[0034] Example 7 A humidifying solution for textile use, which is different from Example 6 in that basic copper oxide is replaced by sodium hydroxide.

[0035] Example 8 A humidifying solution for textile use, which differs from Example 7 in that basic copper oxide is replaced by sodium hydroxide and basic copper oxide, wherein sodium hydroxide and basic copper oxide are used in a ratio of 1:1.

[0036] Example 9 A humidifying solution for textile use, which differs from Example 6 in that the raw materials also include 12 kg of sodium benzoate, wherein the sodium benzoate is added in step 2 and stirred until uniform.

[0037] Example 10 A humidifying solution for textile use, which differs from Example 5 in that the raw materials also include 32 kg of sodium benzoate, wherein the sodium benzoate is added together in step 2 and stirred until uniform.

[0038] Comparative Example 1 The difference between this comparative example and Example 1 is that the fatty alcohol polyoxyethylene ether is replaced by an equal amount of polyoxyethylene ether, wherein the average molecular weight of the polyoxyethylene ether is 200 g / mol.

[0039] Comparative Example 2 The difference between this comparative example and Example 1 is that the alkylphenol polyoxyethylene ether is replaced by an equal amount of polyoxyethylene ether, wherein the average molecular weight of the polyoxyethylene ether is 200 g / mol.

[0040] Comparative Example 3 The difference between this comparative example and Example 1 is that methyltriethylamine chloride is replaced by an equal amount of dimethylethanolamine, wherein the CAS number of dimethylethanolamine is 108-01-0.

[0041] Comparative Example 4 The difference between this comparative example and Example 1 is that the nano-alumina is replaced by an equal amount of nano-zirconium oxide, wherein the average particle size of the nano-zirconium oxide is 70 nm.

[0042] Comparative Example 5 The difference between this comparative example and Example 1 is that fatty alcohol polyoxyethylene ether, alkylphenol polyoxyethylene ether, methyl triethylamine chloride and nano-alumina are all replaced by equal amounts of polyoxyethylene ether, wherein the average molecular weight of the polyoxyethylene ether is 200 g / mol.

[0043] Performance testing 1) Tensile test The humidifying solutions prepared in Examples 1-10 and Comparative Examples 1-5 were dripped horizontally onto the surface of a linen cloth sample pre-cut to a size of 10 cm in length and 5 cm in width using a fabric surface water-wetting tester, and then the elongation at break (%) of the cloth sample was measured according to GB / T 3923.1-2013 "Tensile Properties of Textile Fabrics"; wherein, the greater the elongation at break, the better the tensile resistance of the humidified cloth sample.

[0044] 2) Anti-wrinkle test The humidifying solutions prepared in Examples 1-10 and Comparative Examples 1-5 were dripped horizontally onto the surface of a linen cloth sample pre-cut to a size of 4 cm in length and 1.5 cm in width using a fabric surface water tester, and then the crease recovery angle of the cloth sample was measured after the 10 N load was removed for 5 minutes according to GB / T 3819-1997 "Determination of Crease Recovery of Textile Fabrics" to evaluate the wrinkle resistance of the fabric; wherein, the larger the crease recovery angle, the better the wrinkle resistance of the humidified cloth sample.

[0045] 3) Conductivity test The humidifying solutions prepared in Examples 1-10 and Comparative Examples 1-5 were dripped horizontally onto the surface of a linen cloth sample pre-cut to a size of 13 cm in length and 13 cm in width using a fabric surface water stickiness tester, and then the surface resistivity (Ω / cm) of the cloth sample was measured according to GB / T 12703.4-2010 "Evaluation of electrostatic properties of textiles Part 4: Resistivity"; wherein, the higher the surface resistivity of the cloth sample, the better the antistatic performance of the humidified cloth sample.

[0046] 4) Wetting uniformity of humidifying solution The humidifying solutions prepared in Examples 1-10 and Comparative Examples 1-5 were horizontally dropped onto the surface of a linen cloth sample pre-cut to a size of 13 cm in length and 13 cm in width using a fabric surface water-wetting tester. After standing for 1 minute, a textile moisture meter model MS7100C was used to measure the moisture content (%) of the cloth sample; wherein, the higher the moisture content, the better the wetting uniformity of the humidifying solution in the cloth sample.

[0047] Table 1 - Summary of test data of Examples 1-10 and Comparative Examples 1-5 Elongation at break Crease recovery angle Surface resistivity Moisture content Example 1 8.3 87 25.2x10^10 73.3 Example 2 8.6 88 25.4x10^10 74.5 Example 3 9.2 94 28.1x10^10 78.6 Example 4 9.3 96 29.1x10^10 80.5 Example 5 10.4 104 29.9x10^10 84.9 Example 6 11.6 108 30.2x10^10 87.1 Example 7 12.6 111 31.8x10^10 88.1 Example 8 12.8 113 32.1x10^10 88.4 Example 9 11.9 110 31.4x10^10 87.7 Example 10 12.3 111 31.6x10^10 87.9 Comparative Example 1 4.3 65 17.7x10^10 63.1 Comparative Example 2 4.1 63 17.2x10^10 62.2 Comparative Example 3 3.9 62 16.2x10^10 61.9 Comparative Example 4 3.8 57 15.8x10^10 60.2 Comparative Example 5 3.5 54 14.7x10^10 59.7 According to the comparison of the test data of Example 1 and Comparative Example 5 in Table 1, the humidifying solution prepared according to the technical solution of the present application is compared with the humidifying solution to which methyl triethylamine chloride, nano-alumina, fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether are not added in the raw materials. The three aspects of tensile strength, wrinkle resistance and antistatic performance after acting on the fabric sample are greatly improved, and while effectively optimizing the various properties of the fabric sample, the wetting efficiency of the fabric sample within a certain period of time can be effectively improved, thereby achieving the purpose of enhancing the mechanical properties and antistatic properties of the fabric sample by improving the wetting uniformity of the fabric sample in a short time; In addition, by comparing the experimental data of Example 1 and Example 1-4, it can be seen that if the synergistic effect of the original methyl triethylamine chloride, nano-alumina, fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether is destroyed in the system, the tensile strength, wrinkle resistance and antistatic properties of the prepared humidifying solution after the fabric sample and the wetting uniformity of the fabric sample will be reduced to varying degrees, indicating that the four are indispensable in the humidifying solution of the technical solution of the present application. It is known that the prerequisite for the performance improvement of the humidifying solution of the present application after the fabric sample is acted on is the synergistic cooperation of the four to obtain a more effective synergistic effect on the fabric sample after wetting.

[0048] According to the comparison of the test data of Examples 1-2 in Table 1, when the inventor controls the weight ratio of methyl triethylamine chloride, nano-alumina, fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether in the humidifying solution, the tensile strength, wrinkle resistance, antistatic performance and wetting uniformity of the humidifying solution of the present application after wetting the fabric sample can be better improved, thereby further improving the efficiency of the humidifying solution of the present application in wetting the fabric, and effectively reducing the situation in which the fabric is easily contaminated due to wetting during the subsequent transportation process.

[0049] According to the comparison of the test data of Examples 2-6 in Table 1, when the inventors use methyl triethylamine chloride, nano alumina, fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether with specific physical parameters for addition, the elongation at break, crease recovery angle and surface resistivity of the fabric sample after the fabric sample is wetted by the humidifying solution of the present application can be further improved, and at the same time, the moisture content in the fabric sample within a certain period of time can be better improved, thereby more effectively improving the service life and implementation scope of the silicon chip semiconductor substrate of the present application.

[0050] According to the comparison of the test data of Examples 6-8 in Table 1, it can be seen that when the inventors use a specific acid-base regulator to add to the humidifying solution, it can be clearly seen that the wetted fabric samples of the present application are better improved in terms of tensile strength, wrinkle resistance, antistatic performance and wetting uniformity, thereby enabling the humidifying solution prepared by the present application to further improve the efficiency of the fabric wetting process, which has great economic value.

[0051] According to the comparison of the test data of Examples 6 and 9-10 in Table 1, it can be seen that when the inventors further add sodium benzoate to the raw materials and control its weight ratio in the raw material system, the fabric sample wetted by the wetting solution can be further improved in terms of elongation at break, crease recovery angle and surface resistivity, while the moisture content of the fabric sample can also be better improved, indicating that the synergistic effect of methyltriethylamine chloride, nano-alumina, fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether in the wetting solution after adding sodium benzoate is further improved, thereby making the synergistic effect of the wetting solution on the fabric more effectively improved.

[0052] In the second aspect, the present application further provides a humidifying mechanism for wetting the fabric using the humidifying solution on the basis of Example 8, referring to Figure 1-2 The humidifying mechanism includes a supporting member 1 and a mounting member 2. The supporting member 1 is arranged on a supporting surface, and the cloth 3 on the production line is transported on the inner side of the supporting member 1, while the mounting member 2 is mounted on the supporting member 1 and is located above the transported cloth 3 as a whole. At the same time, in order to humidify the cloth 3, a wetting member 4 is installed on the mounting member 2, and the output side of the wetting member 4 is located on the upper surface of the cloth 3.

[0053] Specifically, in this embodiment, the support member 1 includes a support frame 11 and a positioning bar 12. The support frame 11 is installed on the support surface, and a plurality of cloth guide rollers 14 are arranged inside the support frame 11, and the cloth 3 is tensioned and transported inside the support frame 11 through the plurality of cloth guide rollers 14. At the same time, four positioning bars 12 are arranged, and the four positioning bars 12 are divided into two groups, and the two groups of positioning bars 12 are symmetrically fixed on both sides of the top of the support frame 11.

[0054] Reference Figure 1-2In this embodiment, the mounting member 2 includes an extension bar 22. There are four extension bars 22, which are divided into two groups, and the two extension bars 22 in each group are respectively connected to the two positioning bars 12 in each group. At the same time, a positioning hole is provided at the end of each extension bar 22, and a threaded rod 121 is provided at the top of each positioning bar 12, and a positioning nut 122 is threadedly connected to the threaded rod 121. In addition, a plurality of first through holes 25 are evenly provided at one end of each extension bar 22 away from the positioning hole, and a locking bar 23 that can be plugged and matched with the first through hole 25 is movably provided on each extension bar 22, and a connecting block 24 is threadedly connected to the locking bar 23. In this embodiment, the locking bar 23 can be selected as a bolt, and the connecting block 24 can be selected as a locking nut.

[0055] Specifically, in this embodiment, the mounting member 2 further includes a bottom support bar 21. Two bottom support bars 21 are provided, and the two bottom support bars 21 are arranged in sequence along the conveying direction of the cloth 3. At the same time, both ends of each bottom support bar 21 are provided with a second through hole that can be penetrated by the locking bar 23.

[0056] During installation, the two ends of the bottom support bar 21 are respectively pressed against the bottom walls of the two extension bars 22, so that the second through holes at the two ends of the bottom support bar 21 coincide with the first through holes 25 at the corresponding positions of the two extension bars 22, and then the locking bars 23 on the two extension bars 22 are successively passed through the second through holes and the first through holes 25 at the corresponding positions, and then the connecting block 24 is threadedly connected to one end of the locking bar 23 passing through the second through holes and the first through holes 25, and the connecting block 24 is pressed against the top surface of the extension bar 22, and the other bottom support bar 21 is connected with reference to the above installation steps, thereby realizing the installation of the two bottom support bars 21.

[0057] Reference Figure 1-3In this embodiment, the wetting component 4 includes a liquid storage tank 41 and a barrier strip 42. Among them, connecting strips 44 are symmetrically fixed on both sides of the liquid storage tank 41. The two connecting strips 44 are installed on the top of the two bottom support strips 21 through multiple fasteners, and the end of each connecting strip 44 extends to between the bottom support strip 21 and the extension strip 22. A connecting hole that can be penetrated by the locking strip 23 is opened at the end of each connecting strip 44, and multiple infusion ports uniformly opened along the length direction at the bottom of the liquid storage tank 41 are connected to the gap between the two bottom support strips 21. At the same time, a liquid guide tube 43 is connected to the side wall of the liquid storage tank 41, and the other end of the liquid guide tube 43 is connected to a pre-configured humidifying liquid storage mechanism. In addition, two barrier strips 42 are provided, and the two bottom support strips 21 are slidably inserted in the gap between the two bottom support strips 21, and the two bottom support strips 21 are symmetrically distributed. In addition, a convex strip 421 is provided on the side wall of each barrier strip 42, and an engaging groove 211 matching with the convex strip 421 is provided on the side wall of two of the bottom supporting strips 21. In this embodiment, the bottom supporting strip 21, the extension strip 22 and the connection strip 44 can all be angle steels.

[0058] During installation, the connecting strip 44 on the side wall of the liquid storage tank 41 is connected to the bottom support strip 21 through a plurality of fasteners, and then the locking strip 23 is sequentially passed through the bottom support strip 21, the connecting strip 44 and the extension strip 22 and then threadedly connected to the connecting block 24, so that the liquid storage tank 41 can be installed on the top of the cloth 3 through the extension strips 22 on both sides, and then the two barrier strips 42 can be slid and inserted from both sides of the gap between the two bottom support strips 21 respectively, so that the convex strip 421 of each barrier strip 42 is embedded in the embedding groove 211 of the side wall of the corresponding bottom support strip 21, until the ends of the two barrier strips 42 that are close to each other slide to a position close to the side edge of the cloth 3, so as to facilitate the humidification liquid flowing out of the two sides of the cloth 3 to be blocked by the two barrier strips 42, effectively reducing the waste caused by the direct outflow of the humidification liquid.

[0059] In addition, refer to Figure 1 and 4 In this embodiment, a sloped groove 422 is provided on the top wall of the barrier strip 42 and at one end close to the cloth 3. The sloped groove 422 is provided downwardly and obliquely toward the end close to the cloth 3, and the end of the barrier strip 42 close to the cloth 3 is provided through. At the same time, a flow limiting block 423 is provided inside the sloped groove 422 and at one end close to the cloth 3, and a gap is left between the bottom of the flow limiting block 423 and the bottom of the sloped groove 422, so that a drainage hole 424 located lower than the cloth 3 is formed on the side of the sloped groove 422 close to the cloth 3.

[0060] Implementation principle: After the humidifying liquid inside the liquid storage tank 41 is discharged to the surface of the cloth 3 through the multiple infusion ports at the bottom, it will be scraped flat by the bottom support bar 21 so that the humidifying liquid can be evenly spread on the upper surface of the cloth 3. At this time, the excess humidifying liquid will gradually flow out at the two sides of the cloth 3, among which most of the humidifying liquid will be returned to the surface of the cloth 3 under the limitation of the two barrier bars 42, and a small part of the humidifying liquid will gradually accumulate on the barrier bar 42 and flow into the inclined groove 422, so that the humidifying liquid will be discharged from the drainage hole 424 on the side of the barrier bar 42 close to the cloth 3 through the guiding and limiting effect of the inclined groove 422 and the flow limiting block 423, and fall into the collection box 13 below through the bottom of the cloth 3.

[0061] In a third aspect, the present application also provides a humidification method for the above humidification mechanism, comprising the following steps: Step 1): Introduce the cloth 3 from one side of the support frame 11 so that the bottom of the bottom support strip 21 abuts against the surface of the cloth 3; Step 2): introducing the humidifying solution prepared according to the weight ratio into the liquid storage tank 41 through the liquid guide tube 43; Step 3): The humidifying solution is delivered to the surface of the fabric 3 through the infusion port at the bottom of the liquid storage tank 41, and the bottom support strip 21 is used to scrape the humidifying solution on the fabric 3; Step 4): The moistened cloth 3 is guided out from the other side of the support frame 11 to complete the humidification of the cloth 3.

[0062] This specific embodiment is merely an explanation of the present application and is not a limitation of the present application. After reading this specification, those skilled in the art may make modifications to the present embodiment without any creative contribution as needed. However, as long as it is within the scope of the claims of the present application, it shall be protected by the patent law.

Claims

1. A humidifying solution for textile use, characterized in that: The invention is made of the following raw material components in parts by weight: Water: 46~58 parts; Methyltriethylamine chloride: 0.6 to 2.4 parts; Nano-alumina: 4 to 8 parts; Nonionic surfactant: 3 to 6 parts; Silicone softener: 1.5 to 3.5 parts; Acid-base regulator: 8 to 15 parts; The nonionic surfactant is composed of fatty alcohol polyoxyethylene ether and alkylphenol polyoxyethylene ether, and the weight ratio of the fatty alcohol polyoxyethylene ether to the alkylphenol polyoxyethylene ether is (2-5):

1.

2. A humidifying solution for textile use according to claim 1, characterized in that: The EO value of the fatty alcohol polyoxyethylene ether is 8-15.

3. A humidifying solution for textile use according to claim 1, characterized in that: The HLB value of the alkylphenol polyoxyethylene ether is 16.

5.

4. A humidifying solution for textile use according to any one of claims 2-3, characterized in that: The average particle size of the nano-alumina is 50 nm.

5. A humidifying solution for textile use according to claim 4, characterized in that: The acid-base regulator is one or both of basic copper oxide and sodium hydroxide.

6. A humidifying solution for textile use according to claim 4, characterized in that: The raw material components also include 1.2 to 3.2 parts of sodium benzoate.

7. A humidifying mechanism, using a textile humidifying solution as claimed in any one of claims 1 to 6 as a raw material to humidify fabrics, characterized in that: The invention comprises a supporting member (1) and a mounting member (2), wherein the mounting member (2) is arranged above and below the supporting member (1) to abut against the surface of a cloth (3), and a wetting member (4) for wetting the cloth (3) is arranged on the mounting member (2).

8. A humidifying mechanism according to claim 7, characterized in that: The wetting component (4) comprises a liquid storage tank (41) and a barrier strip (42); the liquid storage tank (41) is arranged above the mounting component (2) and is connected to the bottom of the mounting component (2); the barrier strip (42) is movably arranged on the inner side of the mounting component (2) and is located corresponding to the bottom of the infusion port of the liquid storage tank (41), so that the wetting liquid discharged from the infusion port of the liquid storage tank (41) can be blocked by the barrier strip (42).

9. A humidification method based on a humidification mechanism according to any one of claims 7-8, characterized in that: The following steps are involved: The fabric (3) is introduced from one side of the supporting member (1) so that the bottom of the mounting member (2) abuts against the surface of the fabric (3); Introducing a humidifying solution prepared according to a weight ratio into the wetted part (4); The wetting solution is guided to the surface of the cloth (3) through the wetting element (4), and the mounting element (2) is used to scrape the wetting solution on the cloth (3) flat; The moistened cloth (3) is guided out from the other side of the support member (1), thereby completing the humidification of the cloth (3).