Double-liquid mixing type textile fabric pH value accurate adjusting spray head
By designing a dual-liquid mixing spray nozzle for precise pH adjustment of textile fabrics, the problem of inaccurate spray volume control was solved, achieving precise adjustment of spray volume and pH value, avoiding paint waste and improving effect.
Patent Information
- Application Number
- CN202520004933.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-02
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2035-01-02
AI Technical Summary
Existing spray nozzles have difficulty accurately controlling the spray volume when spraying two-component mixed textile fabrics, resulting in material waste and poor spraying effect.
A dual-liquid mixing nozzle for precise pH adjustment of textile fabrics was designed. The nozzle output is changed by adjusting the position of the connecting shell, and the pH value of the coating is mixed and detected in the storage shell. A one-way flow regulating valve is used to adjust the acidity and alkalinity, so as to achieve precise control of the spraying amount and pH value.
It enables precise adjustment of the spray amount without changing the distance between the nozzle and the fabric, avoiding paint waste and ensuring the spraying effect. The pH test paper is used to ensure that the acidity or alkalinity of the paint is appropriate.
Smart Images

Figure CN223921763U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of shower head, concretely to a double liquid mixed type textile fabric pH value accurate regulation shower head. BACKGROUND
[0002] The double liquid mixed type textile fabric is a kind of textile product combined with the advantages of different fiber materials, which is woven by mixing two or more different fibers, such as the combination of chemical fibers and natural fibers. This mixing method enables the fabric to integrate the advantages of various fibers.
[0003] However, when spraying the double liquid mixed type textile fabric, the amount of sprayed material needs to be controlled, and too much or too little spraying amount will affect the spraying effect of the fabric. The existing shower head usually controls the spraying amount by moving a large distance and rotating a large angle. The farther the distance, the smaller the liquid spraying amount. The liquid spraying amount and effect are affected by different angles. However, when the distance is too large or the angle is too large, the spraying material may be sprayed to the outside, causing waste.
[0004] Therefore, we designed a double liquid mixed type textile fabric pH value accurate regulation shower head to solve the above problems. CONTENT OF THE UTILITY MODEL
[0005] The utility model aims at providing a double liquid mixed type textile fabric pH value accurate regulation shower head to solve the problems raised in the background.
[0006] To solve the above technical problems, the utility model provides a double liquid mixed type textile fabric pH value accurate regulation shower head, which comprises a shower head body, a connecting shell is fixedly arranged at the top of the shower head body, a storage shell is connected inside the connecting shell, a discharging shell is fixedly arranged inside the storage shell, and a discharging port is formed around the discharging shell.
[0007] Further, a baffle is fixedly arranged at the bottom of the discharging shell, and the top surface of the baffle abuts against the bottom surface of the connecting shell.
[0008] Further, a connecting column is fixedly arranged at the top of the storage shell, and a stirring blade is rotatably connected to the bottom of the connecting column.
[0009] Further, a feeding pipe is fixedly arranged at the top of the storage shell.
[0010] Further, a one-way flow regulating valve is fixedly arranged at the other end of the feeding pipe.
[0011] Further, threads are arranged on the bottom surface of the storage shell and the inner wall surface of the connecting shell, and the connecting shell is threadedly connected to the bottom surface of the storage shell.
[0012] Compared with existing technologies, the beneficial effects of this invention are as follows: By rotating the connecting shell, it moves towards the upper end of the storage shell. The baffle releases its contact with the bottom surface of the connecting shell and is positioned inside the nozzle body. Simultaneously, the discharge shell is continuously positioned inside the nozzle body, and the length of the discharge port entering the nozzle body continuously increases. This results in a continuously increasing discharge volume from the nozzle body. When it is necessary to reduce the discharge volume, simply reverse the rotation of the connecting shell. This design allows for changing the discharge volume of the nozzle body with only a slight alteration of the distance between the nozzle body and the fabric, preventing the nozzle body from spraying paint onto the outside.
[0013] Compared with the prior art, the beneficial effects of this utility model are: by feeding different coatings into the storage tank through the feeding pipes on both sides, and mixing them inside the storage tank, a suitable coating can be obtained. Furthermore, the pH value of the coating can be determined by opening the top of the storage tank and testing the pH value of the mixed coating with pH test paper. If the acidity is too high, the acidity of the coating can be reduced by adjusting the one-way flow regulating valve on the right side. If the alkalinity is too high, the alkalinity of the coating can be reduced by adjusting the one-way flow regulating valve on the left side. Attached Figure Description
[0014] Fig. 1 This is a cross-sectional structural diagram of the present invention;
[0015] Fig. 2 This is a schematic diagram of the overall structure of this utility model.
[0016] In the diagram: 1. Nozzle body; 2. Connecting shell; 3. Storage shell; 4. Discharge shell; 5. Discharge port; 6. Baffle; 7. Connecting column; 8. Agitator blade; 9. Feeding pipe; 10. One-way flow regulating valve. Detailed Implementation
[0017] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0018] Please see Figs. 1-2This utility model provides a technical solution: a dual-liquid mixing type pH value precision adjustment nozzle for textile fabrics, including a nozzle body 1, a connecting shell 2 fixedly installed on the top of the nozzle body 1, a storage shell 3 connected inside the connecting shell 2, a discharge shell 4 fixedly installed inside the storage shell 3, discharge ports 5 opened around the discharge shell 4, a baffle 6 fixedly installed at the bottom of the discharge shell 4, the top surface of the baffle 6 abutting against the bottom surface of the connecting shell 2, the bottom surface of the storage shell 3 and the inner wall surface of the connecting shell 2 are both provided with threads, and the connecting shell 2 is threadedly connected to the bottom surface of the storage shell 3.
[0019] In practice, when spraying the fabric, first rotate the connecting shell 2, moving it towards the upper end of the material storage shell 3. As the connecting shell 2 moves upward, the baffle 6 releases its contact with the bottom surface of the connecting shell 2 and is placed inside the nozzle body 1. As the connecting shell 2 continues to rise, the material discharge shell 4 is also continuously placed inside the nozzle body 1, and the length of the discharge port 5 entering the nozzle body 1 continuously increases. This results in a continuous increase in the output of the nozzle body 1. When it is necessary to reduce the amount of material sprayed by the nozzle body 1, simply rotate the connecting shell 2 in the opposite direction. Through this setting, the amount of material sprayed by the nozzle body 1 can be changed by only slightly altering the distance between the nozzle body 1 and the fabric, preventing the nozzle body 1 from spraying paint onto the outside.
[0020] It should be noted that the diameter of the nozzle body 1 is much larger than the diameter of the connecting shell 2, and the depth of the nozzle body 1 is greater than the length of the discharge shell 4, ensuring that the discharge shell 4 can be placed inside the nozzle body 1.
[0021] See Figs. 1-2 As shown, a connecting column 7 is fixedly installed on the top of the storage shell 3, and a stirring blade 8 is rotatably connected to the bottom of the connecting column 7.
[0022] In practice, before spraying the fabric, the spray material needs to be mixed. Different paints are fed into the storage tank 3 through the feeding pipes 9 on both sides and mixed inside the storage tank 3 to obtain a suitable paint. The pH value of the paint can be determined by opening the top of the storage tank 3 and testing the pH value of the mixed paint with pH test paper.
[0023] It should be noted that the stirring blade 8 here rotates under the action of the feeding pipes 9 on both sides, and mixes the sprayed materials on both sides. When the sprayed material in the feeding pipe 9 hits the stirring blade 8, the stirring blade 8 will rotate under the action of the sprayed material, thereby mixing the paint.
[0024] See Figs. 1-2 Feeding pipes 9 are fixedly installed on both sides of the top of the storage shell 3, and a one-way flow regulating valve 10 is fixedly installed at the other end of the feeding pipes 9.
[0025] In practice, when the coating is too acidic, the acidity of the coating is reduced by adjusting the one-way flow regulating valve 10 on the right side; if the alkalinity is too high, the alkalinity of the coating is reduced by adjusting the one-way flow regulating valve 10 on the left side.
[0026] It should be noted that the coating in the right-side feed pipe 9 is a highly alkaline coating, while the coating in the left-side feed pipe 9 is a highly acidic coating. The two coatings are the same type of coating, differing only in their acidity or alkalinity.
[0027] Working Principle: When spraying the fabric, first rotate the connecting shell 2, causing it to move towards the upper end of the material storage shell 3. As the connecting shell 2 moves upward, the baffle 6 releases its contact with the bottom surface of the connecting shell 2 and is placed inside the nozzle body 1. As the connecting shell 2 continues to rise, the material discharge shell 4 is also continuously placed inside the nozzle body 1, and the length of the discharge port 5 entering the nozzle body 1 continuously increases. This results in a continuous increase in the material output of the nozzle body 1. When it is necessary to reduce the spraying amount of the nozzle body 1, simply rotate the connecting shell 2 in the opposite direction. Through this setting, the spraying amount of the nozzle body 1 can be changed by only slightly altering the distance between the nozzle body 1 and the fabric, preventing the nozzle body 1 from spraying paint onto the outside.
[0028] Before spraying the fabric, the spray material needs to be mixed. Different coatings are fed into the storage tank 3 through the feed pipes 9 on both sides and mixed inside the storage tank 3 to obtain a suitable coating. The pH value of the coating can be determined by opening the top of the storage tank 3 and testing the pH value of the mixed coating with pH test paper. If the acidity is too high, the acidity of the coating is reduced by adjusting the one-way flow regulating valve 10 on the right. If the alkalinity is too high, the alkalinity of the fabric is reduced by adjusting the one-way flow regulating valve 10 on the left.
Claims
1. A dual-liquid mixing type pH-precision adjustment nozzle for textile fabrics, comprising a nozzle body (1), characterized in that, A connecting shell (2) is fixedly installed on the top of the nozzle body (1). A storage shell (3) is connected inside the connecting shell (2). A discharge shell (4) is fixedly installed inside the storage shell (3). A discharge port (5) is opened around the discharge shell (4).
2. The dual-liquid mixing type pH value precise adjustment nozzle for textile fabrics as described in claim 1, characterized in that: A baffle (6) is fixedly provided at the bottom of the material discharge shell (4), and the top surface of the baffle (6) abuts against the bottom surface of the connecting shell (2).
3. The dual-liquid mixing type pH value precise adjustment nozzle for textile fabrics as described in claim 1, characterized in that: A connecting column (7) is fixedly provided on the top of the storage shell (3), and a stirring blade (8) is rotatably connected to the bottom of the connecting column (7).
4. The dual-liquid mixing type pH value precise adjustment nozzle for textile fabrics as described in claim 1, characterized in that: Feeding pipes (9) are fixedly installed on both sides of the top of the storage shell (3).
5. The dual-liquid mixing type pH value precise adjustment nozzle for textile fabrics as described in claim 4, characterized in that: A one-way flow regulating valve (10) is fixedly installed at the other end of the feeding pipe (9).
6. The dual-liquid mixing type pH value precise adjustment nozzle for textile fabrics as described in claim 1, characterized in that: The bottom surface of the storage shell (3) and the inner wall surface of the connecting shell (2) are both provided with threads, and the connecting shell (2) is threadedly connected to the bottom surface of the storage shell (3).