Printing and dyeing auxiliary homogenizing reaction kettle based on ultrasonic dispersion

By combining the internal baffles and heat-conducting pipe three-way valves of the reactor, along with ultrasonic dispersion and multi-layer stirring mechanism, the problems of low heating and feeding efficiency in traditional reactors are solved, and efficient production of dyeing and printing auxiliaries is achieved.

CN121571083APending Publication Date: 2026-02-27ZHEJIANG HONGDA CHEM
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Patent Information

Application Number
CN202511885941.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-15
Publication Date
2026-02-27

AI Technical Summary

Technical Problem

Traditional reactors are inefficient in heating and feeding processes, resulting in long production times and wasted heat for dyeing and printing auxiliaries, making it difficult to achieve efficient production.

Method used

The vessel design, featuring a sliding partition connection, combined with a three-way valve on the heat-conducting pipe and an ultrasonic dispersion component, enables localized heating and automatic feeding within the vessel. The multi-layered blade design of the stirring mechanism further enhances stirring efficiency.

Benefits of technology

It achieves precise control of localized heating inside the reactor, shortens the heating time, improves the production efficiency and homogenization effect of dyeing and printing auxiliaries, and reduces heat waste and manual operation.

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Abstract

The invention relates to the technical field of reaction kettles, in particular to a printing and dyeing auxiliary homogenizing reaction kettle based on ultrasonic dispersion, which comprises a kettle tank, a heat conduction pipe is fixed on the outer side of the kettle tank, a plurality of three-way valves are communicated and fixed on the heat conduction pipe, output pipes are communicated and fixed among the three-way valves, and a partition plate is slidably connected in the kettle tank. A partition plate is arranged in the kettle tank, a feeding pipe and a plurality of feeding cylinders are communicated and fixed to the partition plate, the feeding pipe is used for feeding backing materials into the kettle tank, the feeding cylinders are used for feeding auxiliary materials into the kettle tank, pistons are slidably connected to the interiors of the feeding cylinders, and connecting pipes penetrating through the kettle tank are communicated and fixed to the top surfaces of the pistons. According to the invention, the plurality of three-way valves are communicated and mounted at different positions and heights on the heat conduction pipe, so that hot water in the heat conduction pipe only heats the reaction space below the partition plate, a raw material reaction area in the reaction kettle is heated intensively, and the temperature supply of the reaction space in the reaction kettle can be quickly completed.
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Description

TECHNICAL FIELD

[0001] The application relates to a reaction kettle technical field, in particular to an ultrasonic dispersion-based printing and dyeing auxiliary homogenization reaction kettle. BACKGROUND

[0002] Printing and dyeing auxiliaries refer to chemicals added in the printing and dyeing process of textiles to improve the dyeing, color fixing, printing and other properties of dyes. At present, the production of printing and dyeing auxiliaries is usually completed by using a reaction kettle. For example, in the preparation of high-concentration disperse dye color paste, other auxiliaries (thickeners, adhesives, etc.) have similar processes, only the formula and temperature are different. The bottom materials such as dyes, dispersants, wetting agents, and deionized water need to be mixed in the reaction kettle first, and then the remaining water, anti-settling agent, defoaming agent, and preservative are added. Finally, the high-concentration disperse dye color paste is uniformly mixed through the stirring action of the reaction kettle and the ultrasonic dispersion action. In the production process of printing and dyeing auxiliaries, the reaction kettle also needs to provide a suitable reaction temperature for the bottom materials and auxiliary materials. The main component in the early stage of the reaction kettle is the bottom material, which cannot fill the reaction kettle. However, the traditional reaction kettle needs to use a heat conduction pipe to heat the entire internal space of the reaction kettle when heating the bottom material. It is not convenient to heat only the bottom material area in the reaction kettle. This will cause the reaction kettle to take a long time to heat up, and heating the idle space in the reaction kettle will also cause waste of heat. In addition, it is not easy to automatically add multiple auxiliary materials in most reaction kettles, and manual feeding affects the production efficiency of printing and dyeing auxiliaries. SUMMARY

[0003] The purpose of the present application is to provide an ultrasonic dispersion-based printing and dyeing auxiliary homogenization reaction kettle to solve the problems raised in the background.

[0004] To achieve the above purpose, the present application provides the following technical scheme: The ultrasonic dispersion-based printing and dyeing auxiliary homogenization reaction kettle comprises a kettle, a heat conduction pipe fixed outside the kettle, a sliding connection of a partition plate inside the kettle, a rotating connection of a stirring mechanism inside the kettle, an ultrasonic dispersion assembly installed inside the kettle, and a motor fixed on the top of the kettle capable of driving the stirring mechanism to stir the bottom material and auxiliary material. A plurality of three-way valves are communicated and fixed on the heat conduction pipe, an output pipe is communicated and fixed between the three-way valves, a feeding pipe and a plurality of feeding cylinders are communicated and fixed on the partition plate, a piston is slidingly connected in the feeding cylinder, a connecting pipe penetrating the kettle is communicated and fixed on the piston, two air cylinders capable of driving the partition plate to move are arranged on the partition plate, the stirring mechanism comprises an upper paddle rotatingly connected with the partition plate, a stirring piece one and a stirring piece two are arranged below the upper paddle, and a lower paddle rotatingly connected with the kettle is fixed at the bottom of the stirring piece two.

[0005] Furthermore, the top and bottom of the vessel are respectively connected and fixed with a feed pipe and a discharge pipe, and the feeding pipe is arranged directly below the feed pipe.

[0006] Furthermore, the heat-conducting pipe is spirally wound and fixed on the outside of the vessel, and the end of the heat-conducting pipe opposite to the output pipe is connected to and fixed with an input pipe. The external heat-conducting medium enters the heat-conducting pipe from the input pipe and then exits the heat-conducting pipe from the output pipe.

[0007] Furthermore, the ultrasonic dispersion assembly includes a positioning shaft fixedly connected to the vessel, an ultrasonic disperser probe is installed and fixed inside the positioning shaft, and the lower impeller is rotatably connected to the positioning shaft.

[0008] Furthermore, the top of the connecting pipe is connected and fixed to an external pumping pipe for auxiliary materials, and the bottom of the feeding cylinder is connected and fixed to a release pipe.

[0009] Furthermore, a one-way valve is installed in series inside the connecting pipe, and an overflow valve is installed on the release pipe.

[0010] Furthermore, the stirring component includes two sleeves that are fixedly connected to the upper blades, and multiple blades are fixed to the outside of the sleeves.

[0011] Furthermore, the stirring component two includes two shafts that are slidably connected to corresponding sleeves. An L-shaped rod is fixed to the outside of the shaft, and multiple blades are fixedly connected to the outside of the L-shaped rod. The bottom of the shaft is fixedly connected to the lower blade.

[0012] Furthermore, the output end of the motor is fixed with a drive shaft, and the bottom of the drive shaft is fixed with a transmission shaft.

[0013] Furthermore, the transmission shaft includes a pipe fixedly connected to the drive shaft, a movable shaft is slidably engaged at the bottom of the pipe, the movable shaft is rotatably connected to the partition plate, and the movable shaft is fixedly connected to the upper blade.

[0014] Compared with the prior art, the beneficial effects of the present invention are: 1. By sliding a partition inside the vessel, and installing multiple three-way valves of different heights in series on the heat-conducting pipe outside the vessel, the partition is initially moved to the middle of the vessel by extending the output end of the cylinder. At this time, the bottom material that was previously put into the vessel is arranged in the space below the partition inside the vessel. The bottom three-way valve on the heat-conducting pipe is opened, so that the hot water delivered to the heat-conducting pipe does not flow inside the entire heat-conducting pipe, but flows to the height of the partition and then flows out through the output end of the three-way valve. This achieves targeted and concentrated heating of the local area containing the bottom material inside the vessel, eliminating the need for traditional hot water to directly heat the entire vessel through the entire heat-conducting pipe. This helps to supply the reaction temperature of the bottom material in a short time, thereby improving the efficiency of heating the bottom material in the vessel. Later, as auxiliary materials are added to the reactor, the cylinder output end contracts, causing the partition to move upward and expand the reaction space provided below the partition. Existing component displacement sensors can be installed on the partition. An external controller receives the height of the partition moving upward with the displacement sensor and controls an electric three-way valve at the same height to automatically open. This allows the hot water entering the heat pipe to be delivered to the height of the partition and then flow out along the output end. Multiple three-way valves at different heights outside the heat pipe allow for centralized heating of the space below the partition after it moves to different positions. This enables the heat pipe to heat the space below the moved partition according to the different amounts of base material and auxiliary materials, achieving flexible adjustment of the heating area for efficient reaction production of dyeing and printing auxiliaries.

[0015] 2. By fixing multiple feeding cylinders of different diameters on the partition, different types of auxiliary materials can be pre-injected into the feeding cylinders through connecting pipes. Then, when the partition moves up to expand the reaction space of the reactor, the feeding cylinders move up with the partition, and the piston at the top of the feeding cylinder gradually moves into the feeding cylinder relative to the moving feeding cylinder. This allows different types and quantities of auxiliary materials in multiple feeding cylinders to be automatically released into the reactor along the release pipe at the bottom of the feeding cylinder. This enables the reactor to adjust the reaction space, adjust the heating zone, and automatically add multiple auxiliary materials simultaneously, further improving the efficiency of the reactor in producing dyeing and printing auxiliaries.

[0016] 3. By designing the stirring mechanism inside the reactor as an upper blade, a lower blade, a stirring element one, and a stirring element two, with the blades of the upper blade and the lower blade designed to be inclined in opposite directions, the upper blade can push the dyeing auxiliary agent downward when it rotates, and the lower blade can push the dyeing auxiliary agent upward when it rotates. Combined with the multiple blades on stirring element one and stirring element two to stir the dyeing auxiliary agent raw materials, and the ultrasonic disperser probe arranged between stirring element one and stirring element two to disperse the raw materials, it helps to fully homogenize and disperse the dyeing auxiliary agent raw materials. Furthermore, the pipe on stirring element one can slide up and down on the shaft of stirring element two, which not only meets the need for the partition to move up and down, but also further improves the efficiency of mixing the dyeing raw materials by the staggered movement of stirring element one and stirring element two. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall structure of the invention. Figure 1 ; Figure 2 This is a schematic diagram of the overall structure of the invention. Figure 2 ; Figure 3 This is a schematic diagram of the internal structure of the vessel in this invention; Figure 4 This is a schematic diagram of the partition plate upward movement structure in this invention. Figure 1 ; Figure 5 This is a schematic diagram of the partition plate upward movement structure in this invention. Figure 2 ; Figure 6 This is a schematic diagram of the heat pipe, three-way valve, and output pipe in this invention; Figure 7 This is a schematic diagram of the internal structure of the feeding cylinder in this invention; Figure 8 This is a schematic diagram of the stirring mechanism and ultrasonic dispersion component in this invention.

[0018] In the diagram: 100, vessel; 110, feed pipe; 120, discharge pipe; 200, heat pipe; 210, three-way valve; 220, output pipe; 300, baffle plate; 310, feeding pipe; 320, feeding cylinder; 321, piston; 3211, connecting pipe; 322, release pipe; 330, cylinder; 400, stirring mechanism; 410, upper blade; 420, sleeve; 421, blade one; 430, shaft; 431, L-shaped rod; 4311, blade two; 440, lower blade; 441, scraper; 500, ultrasonic dispersion assembly; 510, positioning shaft; 520, ultrasonic disperser probe; 600, motor; 610, drive shaft; 620, transmission shaft; 621, pipe fitting; 622, movable shaft. Detailed Implementation

[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0020] Example 1, please refer to Figure 1 - Figure 8 In this embodiment of the invention, a homogenization reactor for dyeing and printing auxiliaries based on ultrasonic dispersion includes a reactor 100. A heat-conducting pipe 200 is fixed to the outside of the reactor 100, and multiple three-way valves 210 are connected and fixed to the heat-conducting pipe 200. Output pipes 220 are connected and fixed between the multiple three-way valves 210. A partition 300 is slidably connected inside the reactor 100. A feeding pipe 310 and multiple feeding cylinders 320 are connected and fixed to the partition 300. The feeding pipe 310 is used to feed the base material into the reactor 100, and the feeding cylinders 320 are used to feed the auxiliary materials into the reactor 100. A piston 321 is slidably connected inside the feeding cylinders 320, and a through-hole is fixed to the top surface of the piston 321. The connecting pipe 3211 of 00, the partition 300 is also provided with two cylinders 330 that can drive the partition 300 to move, the cylinders 330 are embedded and fixed to the vessel 100, the vessel 100 is provided with a stirring mechanism 400, the stirring mechanism 400 includes an upper blade 410 rotatably connected to the partition 300, a stirring element one and a stirring element two are provided below the upper blade 410, the bottom of the stirring element two is fixed with a lower blade 440 rotatably connected to the vessel 100, an ultrasonic dispersion component 500 that can quickly homogenize the base material and auxiliary materials is provided in the middle position inside the vessel 100, and a motor 600 that can drive the stirring mechanism 400 to perform stirring operation is fixed on the top of the vessel 100.

[0021] Specifically, a baffle 300 is slidably arranged inside the conventional reactor 100. The baffle 300 can automatically adjust the size of the reaction space inside the reactor 100 according to the different amounts of bottom material and auxiliary materials. At the same time, multiple three-way valves 210 are connected and installed at different heights on the heat conduction pipe 200. The three-way valve 210 at the height of the baffle 300 can be opened so that the hot water inside the heat conduction pipe 200 can only heat the reaction space below the baffle 300. This achieves centralized heating of the raw material reaction area inside the reactor, eliminating the need for direct heating of the entire reactor. This reduces heat consumption and helps to quickly supply the temperature of the reaction space inside the reactor. Furthermore, as the baffle 300 moves upward to increase the reaction space, it can drive the feeding cylinder 320 to automatically feed various auxiliary materials into the reactor, eliminating manual feeding operations and helping to complete the reactor feeding operation efficiently.

[0022] like Figure 1 , Figure 3 and Figure 4 As shown, in this embodiment, the top of the reactor 100 is connected to and fixed with a feed pipe 110. The feeding pipe 310 on the partition 300 is arranged directly below the feed pipe 110. When it is necessary to add the dyeing auxiliary material into the reactor in the initial state, the sealing caps of the feed pipe 110 and the feeding pipe 310 can be opened one after the other. Then, the material can be added into the reactor 100 through the feed pipe 110 and the feeding pipe 310 in sequence. At this time, the partition 300 can be moved to the top of the reactor 100 to shorten the distance between the feeding pipe 310 and the feed pipe 110, making it convenient for the user to inject the material into the reactor from the feeding pipe 310.

[0023] In this embodiment, a discharge pipe 120 is fixedly connected to the bottom of the reactor 100. A valve is installed on the discharge pipe 120. After the dyeing and printing auxiliary raw materials inside the reactor 100 have fully reacted and mixed, the valve can be opened to allow the dyeing and printing auxiliary to be discharged from the reactor 100 through the discharge pipe 120. Multiple mounting seats are fixed around the reactor 100. The mounting seats can support the reactor on the factory ground through external columns.

[0024] like Figure 2 and Figure 6 As shown, in this embodiment, the heat-conducting pipe 200 is spirally wound and fixed on the outside of the reactor 100. This winding method is existing technology. Its main purpose is to allow the heat-conducting medium inside the heat-conducting pipe 200 to fully heat the reactor 100. The specific heat-conducting medium can be selected according to the heating requirements, such as hot water or hot oil. The end of the heat-conducting pipe 200 away from the output pipe 220 is connected to and fixed with an input pipe. The external heat-conducting medium enters the heat-conducting pipe 200 from the input pipe and then exits the heat-conducting pipe 200 from the output pipe 220. This allows the heat-conducting medium to circulate inside the heat-conducting pipe 200 to heat the reactor and raise its temperature, so that the internal temperature of the reactor meets the temperature required for the reaction of the dyeing and printing auxiliaries.

[0025] like Figure 3 and Figure 8 As shown, in this embodiment, the ultrasonic dispersion assembly 500 includes a positioning shaft 510 fixedly connected to the vessel 100. An ultrasonic disperser probe 520 is fixedly mounted on the top of the positioning shaft 510. The lower blade 440 is rotatably connected to the positioning shaft 510. The sleeve 420 and the shaft 430 between the lower blade 440 and the upper blade 410 are respectively arranged on the outside of the ultrasonic disperser probe 520.

[0026] In this embodiment, the ultrasonic dispersion component 500 is a prior art component. It mainly uses ultrasonic waves to fully disperse the raw materials. The specific principle will not be elaborated. By arranging the ultrasonic disperser probe 520 between the sleeve 420 and the shaft 430, the ultrasonic disperser probe 520 will not obstruct the sleeve 420 and the shaft 430 from rotating the blades to stir the raw materials. This ensures that the two processes of stirring the raw materials with the blades and dispersing the raw materials with the ultrasonic disperser probe 520 do not affect each other.

[0027] like Figure 8 As shown, in this embodiment, the upper blade 410 and the lower blade 440 have opposite inclination orientations, so that the rotation of the upper blade 410 can push the raw material downwards, and the rotation of the lower blade 440 can push the raw material upwards, which helps to fully mix the raw material. (Refer to...) Figure 5 The bottom of the lower blade 440 is fixed with a scraper 441 that is in contact with the bottom surface of the vessel 100. The scraper 441 can rotate synchronously with the lower blade 440. The scraper 441 can stir the raw material below the lower blade 440, making up for the fact that the lower blade 440 cannot reach the bottom surface area of ​​the vessel 100 to stir the raw material.

[0028] like Figure 2 - Figure 4 As shown, in this embodiment, the top of the connecting pipe 3211 is connected and fixed to the external pumping auxiliary material pipeline, the connecting pipe 3211 is inserted and fixed to the vessel 100, the bottom of the feeding cylinder 320 is connected and fixed to the release pipe 322, the release pipe 322 passes through the partition 300 and communicates with the internal space of the vessel 100, and a one-way valve is installed in series inside the connecting pipe 3211, and an overflow valve is installed on the release pipe 322.

[0029] In this embodiment, during the specific use of the reactor, the connecting pipes 3211 at different positions can be connected to external pipelines that pump different auxiliary materials. The auxiliary materials are first injected into the feeding cylinder 320 through the connecting pipe 3211, and then the auxiliary materials in the feeding cylinder 320 are released into the reactor 100 through the release pipe 322. The one-way valve inside the connecting pipe 3211 only allows external auxiliary materials to enter the feeding cylinder 320. The overflow valve on the release pipe 322 automatically opens to release the auxiliary materials when the baffle 300 moves upward and the pressure inside the feeding cylinder 320 is high. Specifically, the baffle 300 moves upward with the feeding cylinder 320, causing the piston 321 at the bottom of the connecting pipe 3211 to move downward and push the auxiliary materials inside the feeding cylinder 320. During the bottom material stirring, the baffle 300 remains stationary and the overflow valve is in the closed state.

[0030] like Figure 5 and Figure 8As shown, in this embodiment, the first stirring component includes two sleeves 420 that are fixedly connected to the upper blade 410. Multiple blades 421 are fixed to the outside of the sleeves 420. The second stirring component includes two shafts 430 that are slidably connected to the corresponding sleeves 420. An L-shaped rod 431 is fixed to the outside of the shafts 430. Multiple blades 4311 are fixedly connected to the outside of the L-shaped rods 431. The bottom of the shafts 430 is fixedly connected to the lower blade 440.

[0031] In this embodiment, when mixing the base material, refer to Figure 8 At this time, the sleeve 420 moves down and fits onto the shaft 430. The L-shaped rod 431 is arranged outside the sleeve 420. The L-shaped rod 431 is fixedly connected to the bottom of the shaft 430 through its bottom, which does not affect the sleeve 420 sliding up and down along the shaft 430. Furthermore, the first blade 421 and the second blade 4311 are distributed at equal angles and multiple blades 421 and 4311 are at different heights. Thus, when the upper blade 410 rotates, the upper blade 410 will rotate the sleeve 420, the shaft 430, and the lower blade 440. At the same time, the sleeve 420 will rotate the first blade 421, and the shaft 430 will rotate the second blade 4311. This allows the entire stirring mechanism 400 to fully stir the dyeing and printing auxiliary materials. (Refer to...) Figure 5 When the partition 300 moves upward, the sleeve 420 will slide upward along the shaft 430. At this time, multiple blades 1 421 and blade 2 4311 can separate in the height direction, which facilitates stirring operations at different heights inside the vessel 100.

[0032] like Figure 2 and Figure 3 As shown, in this embodiment, a drive shaft 610 is fixed to the output end of the motor 600, and a transmission shaft 620 is fixed to the bottom of the drive shaft 610. The transmission shaft 620 includes a tube 621 fixedly connected to the drive shaft 610. A movable shaft 622 is slidably engaged at the bottom of the tube 621. The movable shaft 622 is rotatably connected to the partition 300 and fixedly connected to the upper blade 410. A slider is fixed inside the tube 621, and a groove is provided on the outside of the movable shaft 622 to slide with the slider. This allows the movable shaft 622 and the tube 621 to slide relative to each other and also allows the tube 621 to rotate with the movable shaft 622.

[0033] In this embodiment, the motor 600 drives the drive shaft 610 to rotate, the drive shaft 610 drives the transmission shaft 620 to rotate, and the transmission shaft 620 drives the upper blade 410 to rotate, so that the stirring mechanism 400 performs stirring operations. During the process of the cylinder 330 driving the partition 300 to move up and down, the movable shaft 622 slides up and down inside the tube 621 at the same time, so that the transmission shaft 620 can drive the stirring mechanism 400 to rotate and stir the dyeing and printing auxiliary materials after the partition 300 moves up and down to different positions.

[0034] In this invention, the specific types and quantities of the bottom materials and auxiliary materials added to the reactor are existing technologies and will not be described in detail here.

[0035] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

[0036] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A homogenization reactor for dyeing and printing auxiliaries based on ultrasonic dispersion, characterized in that, include: Pots and pans (100); A heat pipe (200) is fixed on the outside of the vessel (100). Multiple three-way valves (210) are connected and fixed on the heat pipe (200), and an output pipe (220) is connected and fixed between the three-way valves (210). A partition (300) is slidably connected inside the vessel (100). A feeding pipe (310) and multiple feeding cylinders (320) are connected and fixed on the partition (300). A piston (321) is slidably connected inside the feeding cylinder (320). A connecting pipe (3211) that penetrates the vessel (100) is connected and fixed on the piston (321). Two cylinders (330) that can drive the partition (300) to move are also arranged on the partition (300). A stirring mechanism (400) is arranged inside the vessel (100). The stirring mechanism (400) includes an upper blade (410) rotatably connected to a partition (300). A stirring element one and a stirring element two are arranged below the upper blade (410). A lower blade (440) rotatably connected to the vessel (100) is fixed at the bottom of the stirring element two. An ultrasonic dispersion component (500) is arranged in the middle of the vessel (100) to quickly homogenize the base material and auxiliary materials; The motor (600), fixed on the top of the vessel (100), is capable of driving the stirring mechanism (400) to perform stirring operations.

2. The homogenization reactor for dyeing and printing auxiliaries based on ultrasonic dispersion according to claim 1, characterized in that, The top and bottom of the vessel (100) are respectively connected and fixed with a feed pipe (110) and a discharge pipe (120), and the feeding pipe (310) is arranged directly below the feed pipe (110).

3. The homogenization reactor for dyeing and printing auxiliaries based on ultrasonic dispersion according to claim 1, characterized in that, The heat pipe (200) is spirally wound and fixed on the outside of the vessel (100). The end of the heat pipe (200) away from the output pipe (220) is connected to the input pipe. The external heat transfer medium enters the heat pipe (200) from the input pipe and then exits the heat pipe (200) from the output pipe (220).

4. The homogenization reactor for dyeing and printing auxiliaries based on ultrasonic dispersion according to claim 1, characterized in that, The ultrasonic dispersion assembly (500) includes a positioning shaft (510) fixedly connected to the vessel (100), an ultrasonic disperser probe (520) is installed and fixed inside the positioning shaft (510), and the lower impeller (440) is rotatably connected to the positioning shaft (510).

5. The homogenization reactor for dyeing and printing auxiliaries based on ultrasonic dispersion according to claim 1, characterized in that, The top of the connecting pipe (3211) is connected and fixed to the external pumping auxiliary material pipeline, and the bottom of the feeding cylinder (320) is connected and fixed to the release pipe (322).

6. The homogenization reactor for dyeing and printing auxiliaries based on ultrasonic dispersion according to claim 5, characterized in that, A one-way valve is installed in series inside the connecting pipe (3211), and an overflow valve is installed on the release pipe (322).

7. The homogenization reactor for dyeing and printing auxiliaries based on ultrasonic dispersion according to claim 1, characterized in that, The stirring component includes two sleeves (420) that are fixedly connected to the upper blade (410), and a plurality of blades (421) are fixed on the outside of the sleeves (420).

8. The homogenization reactor for dyeing and printing auxiliaries based on ultrasonic dispersion according to claim 7, characterized in that, The stirring component 2 includes two shafts (430) that are slidably connected to the corresponding sleeves (420). An L-shaped rod (431) is fixed to the outside of the shaft (430). Multiple blades (4311) are fixedly connected to the outside of the L-shaped rod (431). The bottom of the shaft (430) is fixedly connected to the lower blade (440).

9. The homogenization reactor for dyeing and printing auxiliaries based on ultrasonic dispersion according to claim 1, characterized in that, The output end of the motor (600) is fixed with a drive shaft (610), and the bottom of the drive shaft (610) is fixed with a transmission shaft (620).

10. The homogenization reactor for dyeing and printing auxiliaries based on ultrasonic dispersion according to claim 9, characterized in that, The drive shaft (620) includes a pipe (621) fixedly connected to the drive shaft (610). A movable shaft (622) is slidably engaged at the bottom of the pipe (621). The movable shaft (622) is rotatably connected to the partition (300). The movable shaft (622) is fixedly connected to the upper blade (410).