Preparation method of backing-paper-free low-temperature curing silicone oil and homogenizer for preparation of backing-paper-free low-temperature curing silicone oil

By combining pressurized preparation components and ultrasonic cavitation effect, the refinement and dispersion problems of existing homogenizers when mixing silicone oils is solved, efficient homogenization and low-temperature curing of silicone oils are achieved, and the preparation efficiency and product stability are improved.

CN120285842AInactive Publication Date: 2025-07-11GUANGDONG JIANCAI PAPER TECH LTD
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Patent Information

Application Number
CN202510389450.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-31
Publication Date
2025-07-11
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

When mixing silicone oil, existing homogenizers are not easy to pressurize the raw materials, resulting in difficult refinement, dispersion and homogenization of particles or liquid droplets, and the mixing and preparation effect is poor.

Method used

Pressurized preparation components are adopted, including a driving motor, crankshaft, ultrasonic motor and spiral crushing belt. Through the rotating shear force of the spiral crushing belt and the cavitation effect of the ultrasonic wave, the displacement of the push rod and the promotion of the material gathering are combined to achieve refinement, dispersion and homogenization of the raw materials, and low-temperature curing is carried out through the heat exchanger.

Benefits of technology

It realizes efficient refining, dispersing and homogenization of silicone oil, improves preparation efficiency and product stability, and ensures low-temperature curing effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a preparation method of backing-paper-free low-temperature curing silicone oil and a homogenizer for preparation, and particularly relates to the technical field of silicone oil preparation, the backing-paper-free low-temperature curing silicone oil comprises a base for supporting, the base is provided with a mounting cavity, the base is provided with a pressurizing preparation assembly, and the pressurizing preparation assembly comprises two bearing seats arranged at one end of the base and used for supporting; and a crankshaft is rotationally connected to the bearing seat. The material pushing rod can make contact with one end of the spiral crushing belt during displacement, the spiral crushing belt rotates under the pressure generated during displacement of the material pushing rod and the traction force generated during material conveying, materials are decomposed through the shearing force generated during rotation of the spiral crushing belt, the materials can be gathered together when the material pushing rod displaces, and the material crushing effect is improved. The raw materials are refined, dispersed and homogenized in cooperation with pressure generated by displacement of the material pushing rod, so that a more uniform and stable product is obtained, the raw materials are subjected to a cavitation effect through high-frequency sound waves in the cavity partition plate, the raw materials are decomposed, and the preparation efficiency and effect are improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of silicone oil preparation, and more specifically, the present invention relates to a method for preparing bottomless paper low-temperature curing silicone oil and a homogenizer used for the preparation. Background Art

[0002] Bottomless paper low-temperature curing silicone oil is a special type of silicone oil, usually used in specific industrial or technological applications. Silicone oil: is a fluid based on polysiloxane, with good stability, chemical inertness and low-temperature performance. Bottomless paper: refers to a product without a supporting or backing paper or other material substrate, so that the silicone oil can be directly applied to the required surface. Low-temperature curing: means that this silicone oil can be cured or hardened at a relatively low temperature, which is very useful for some applications that need to work under low-temperature conditions;

[0003] A homogenizer for preparing bottomless paper low-temperature curing silicone oil is a device used to homogenize silicone oil. The main function of the homogenizer is to refine, disperse and homogenize the particles or droplets in the silicone oil through high-speed rotation or high-pressure impact, etc., so as to obtain a more uniform and stable silicone oil product.

[0004] Among them, the patent with the patent application number CN202220977826.3 discloses a homogenizer, which includes a homogenizer body, a first homogenization component, a filtration component, a second homogenization component, and several metering and feeding components; the metering and feeding components are installed above the homogenizer body and communicate with the homogenizer body; the first homogenization component, the filtration component, and the second homogenization component are arranged in sequence inside the homogenizer body. The top of the homogenizer body is provided with several feed holes, the feed holes communicate with the metering and feeding components, and the bottom of the homogenizer body is provided with a discharge pipe;

[0005] When this structure is in use, by adopting a plurality of metering and feeding components, different flavors can be mixed, and through the cooperation of the metering tank and the feeding valve, feeding is convenient, and the amount of the added flavor can be measured. However, when mixing the raw materials, it is not easy to pressurize and mix the raw materials, and it is not easy to refine, disperse and homogenize the raw material particles or droplets, resulting in a poor mixing and preparation effect. Summary of the Invention

[0006] In order to overcome the above-mentioned defects of the prior art, the present invention provides a method for preparing bottomless paper low-temperature curing silicone oil and a homogenizer used for the preparation, aiming to solve the problems raised in the above background art.

[0007] To achieve the above object, the present invention provides the following technical solution: A homogenizer for preparing bottomless paper low-temperature curing silicone oil, including a base for support, an installation cavity is opened on the base, and a pressurized preparation component is arranged on the base;

[0008] The pressurized preparation assembly includes two bearing seats for support provided at one end of the base. A crankshaft is rotatably connected to the bearing seats. A drive motor for driving the rotation of the crankshaft is provided on one of the two bearing seats. Partition plates for partitioning are provided on both sides of the bottom of the preparation cylinder. An ultrasonic motor mounted on the base is provided on one side of each partition plate, and a vibration rod is provided on each ultrasonic motor.

[0009] A preparation cylinder is provided on the base. A plurality of combing cylinders for mixing materials are provided on the preparation cylinder. Valves are provided at the top and bottom of each combing cylinder. A spiral crushing belt is rotatably connected in a plurality of the combing cylinders. A plurality of turntables respectively located at one end of the corresponding combing cylinders are provided on the crankshaft. A connecting sleeve is rotatably connected to the outside of the turntable. An outer support block for support is provided on the outside of the connecting sleeve. The outer support block is located at one end of the traction rod and is detachably connected to the traction rod.

[0010] It can be seen that in the above technical solution, the drive motor is started to drive the crankshaft to rotate. When the crankshaft rotates, it drives the turntable to rotate and displace. The connecting sleeve is driven by the torque when the turntable rotates to drive the connecting sleeve and the outer support block to displace, which is conducive to the linkage of each structure. When the connecting sleeve displaces, it will drive the outer support block to displace, and then the traction rod drives the top block, the pushing block and the pushing rod to displace. When the pushing rod displaces, it will contact one end of the spiral crushing belt, and then push the materials together. After the materials are decomposed in the combing cylinder, the materials can be discharged into the partition plate through the valve at the bottom of the combing cylinder. The ultrasonic motor drives the vibration rod to generate an amplitude, so that the raw materials generate a cavitation effect in the partition plate through high-frequency sound waves to decompose the raw materials.

[0011] Traction rods are provided at one end of a plurality of the combing cylinders. A top block for support is provided at one end of the traction rod. A pushing block located in the combing cylinder is rotatably connected to the top block through a shaft pin. Pushing rods are provided at one end of each pushing block. A distribution block is provided at the end of the base far from the bearing seat. A plurality of pumps respectively located at one end of the corresponding combing cylinders are provided on one side of the distribution block. A conduit for guiding is provided at one end of the pump. An electric butterfly valve located at one end of the combing cylinder is provided at one end of the conduit. A heat exchanger is provided on the distribution block. A controller is provided on the heat exchanger. A discharge hole communicated with the pump is provided on the distribution block. One end of the spiral crushing belt extends to the electric butterfly valve and is rotatably connected to the electric butterfly valve. The cross-sectional shape of the spiral crushing belt is set to be conical.

[0012] It can be seen that in the above technical solution, the spiral crushing belt rotates under the pressure when the pushing rod displaces and the traction force during material transportation, causing the material to decompose under the shearing force when the spiral crushing belt rotates. Moreover, when the pushing rod displaces, it can also gather the material together. Combining with the pressure generated by the displacement of the pushing rod, it enables refinement, dispersion, and homogenization, thus obtaining a more uniform and stable product. The raw material can be transported to the pump through the conduit by opening the electric butterfly valve, then transported to the distribution block by the pump and discharged through the discharge hole. At the same time, heat exchange can be carried out through the heat exchanger to facilitate the low-temperature curing of the raw material.

[0013] A preparation method using the above-mentioned homogenizer for preparing non-bottom-paper low-temperature curing silicone oil, the method comprising the following steps:

[0014] Step 1, the staff installs the device at the designated position. When preparing non-bottom-paper low-temperature curing silicone oil, the raw material is added into the carding cylinder through the valve at the top of the carding cylinder. The driving crankshaft is rotated by starting the driving motor. When the crankshaft rotates, it drives the turntable to rotate and displace. The connecting sleeve is driven to displace the connecting sleeve and the outer support block through the torsion force when the turntable rotates, facilitating the linkage of each structure.

[0015] Step 2, when the connecting sleeve displaces, it drives the outer support block to displace, and then the traction rod drives the top block, the pushing block, and the pushing rod to displace. When the pushing rod displaces, it contacts one end of the spiral crushing belt, and then pushes the material together.

[0016] Step 3, the spiral crushing belt rotates under the pressure when the pushing rod displaces and the traction force during material transportation, causing the material to decompose under the shearing force when the spiral crushing belt rotates. Moreover, when the pushing rod displaces, it can also gather the material together. Combining with the pressure generated by the displacement of the pushing rod, it enables refinement, dispersion, and homogenization, thus obtaining a more uniform and stable product.

[0017] Step 4, meanwhile, when the device is in use, after the material is decomposed in the carding cylinder, the material can be discharged into the partition plate through the valve at the bottom of the carding cylinder. The ultrasonic motor drives the vibrating rod to generate an amplitude, causing the raw material to generate a cavitation effect in the partition plate through high-frequency sound waves, decomposing the raw material.

[0018] Step 5, meanwhile, when the device is in use, the raw material can be transported to the pump through the conduit by opening the electric butterfly valve, then transported to the distribution block by the pump and discharged through the discharge hole. At the same time, heat exchange can be carried out through the heat exchanger to facilitate the low-temperature curing of the raw material.

[0019] The technical effects and advantages of the present invention:

[0020] 1. When the connecting sleeve displaces, it drives the outer support block to displace, and then the traction rod drives the top block, the material pushing block and the material pushing rod to displace. When the material pushing rod displaces, it contacts one end of the spiral crushing belt, and then pushes the materials together;

[0021] 2. The spiral crushing belt of the present invention rotates under the pressure when the material pushing rod displaces and the traction force during material transportation, so that the materials are decomposed by the shearing force when the spiral crushing belt rotates. And when the material pushing rod displaces, it can also gather the materials together. Combining with the pressure generated by the displacement of the material pushing rod, it makes the materials refined, dispersed and homogenized, so as to obtain a more uniform and stable product;

[0022] 3. When the materials are decomposed in the carding cylinder, the materials can be discharged into the partition plate through the valve at the bottom of the carding cylinder. The ultrasonic motor drives the vibrating rod to generate an amplitude, so that the raw materials generate a cavitation effect in the partition plate through high-frequency sound waves, decomposing the raw materials and improving the preparation efficiency and effect;

[0023] 4. By opening the electric butterfly valve, the raw materials can be transported to the pump through the conduit, transported to the distribution block by the pump and discharged through the discharge holes. At the same time, heat exchange can be carried out through the heat exchanger, which is convenient for the raw materials to be cured at low temperature;

[0024] In summary, the overall design is simple and the structure is reasonable. Through the corresponding cooperation of each structure, when the material pushing rod displaces, it contacts one end of the spiral crushing belt, and then pushes the materials together. The spiral crushing belt rotates under the pressure when the material pushing rod displaces and the traction force during material transportation, so that the materials are decomposed by the shearing force when the spiral crushing belt rotates. And when the material pushing rod displaces, it can also gather the materials together. Combining with the pressure generated by the displacement of the material pushing rod, it makes the materials refined, dispersed and homogenized, so as to obtain a more uniform and stable product. The ultrasonic motor drives the vibrating rod to generate an amplitude, so that the raw materials generate a cavitation effect in the partition plate through high-frequency sound waves, decomposing the raw materials and improving the preparation efficiency and effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] In order to more clearly illustrate the technical solutions in the present disclosure, the following will briefly introduce the drawings required for use in some embodiments of the present disclosure. Obviously, the drawings in the following description are only the drawings of some embodiments of the present disclosure. For those of ordinary skill in the art, other drawings can also be obtained according to these drawings. In addition, the drawings in the following description can be regarded as schematic diagrams, and are not limitations on the actual sizes of the products, the actual processes of the methods, the actual timings of the signals, etc. involved in the embodiments of the present disclosure.

[0026] Figure 1 It is a schematic diagram of the overall structure of the present invention.

[0027] Figure 2This is the top view of the overall structure of the present invention.

[0028] Figure 3 This is the three-dimensional view of the drawbar, spiral crushing belt, turntable and connecting sleeve of the present invention.

[0029] Figure 4 This is the three-dimensional view of each structure on the base of the present invention.

[0030] Figure 5 For the present invention Figure 4 The partial structural schematic diagram at position A.

[0031] Figure 6 This is the three-dimensional view of the distribution block, pump, conduit and heat exchanger of the present invention.

[0032] Figure 7 This is the sectional view of the overall structure of the present invention.

[0033] The reference numerals are: 1, base; 101, installation cavity; 102, bearing seat; 103, crankshaft; 104, drive motor; 105, partition plate; 106, ultrasonic motor; 107, vibrating rod;

[0034] 2, preparation cylinder; 201, carding cylinder; 202, valve; 203, spiral crushing belt; 204, turntable; 205, connecting sleeve; 206, outer support block;

[0035] 3, drawbar; 301, top block; 302, pusher block; 303, pusher rod; 304, distribution block; 305, pump; 306, conduit; 307, electric butterfly valve; 308, heat exchanger; 309, controller; 310, discharge hole. Detailed implementation manners

[0036] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0037] The terms "first", "second", and "third" in the embodiments of the present application are only for descriptive purposes and cannot be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, features defined with "first", "second", and "third" may explicitly or implicitly include at least one of such features. In the description of the present application, the meaning of "a plurality" is at least two, such as two, three, etc., unless otherwise specifically defined. In addition, the terms "comprising" and "having" and any variations thereof are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or device that includes a series of steps or units is not limited to the listed steps or units, but optionally further includes steps or units not listed, or optionally further includes other steps or units inherent to these processes, methods, products, or devices.

[0038] Reference to "embodiment" herein means that a particular feature, structure, or characteristic described in connection with the embodiment can be included in at least one embodiment of the present application. The phrase appears in various places in the specification and does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment mutually exclusive with other embodiments. Those skilled in the art will explicitly and implicitly understand that the embodiments described herein can be combined with other embodiments.

[0039] As shown in the attached Figures 1-7 A method for preparing a low-temperature curing silicone oil without base paper and a homogenizer for use in the preparation thereof. Through a pressurizing preparation assembly provided on a base 1, when a pushing rod 303 is displaced, it will contact one end of a spiral crushing belt 203, and then push the materials together. The spiral crushing belt 203 rotates under the pressure when the pushing rod 303 is displaced and the traction force during material transportation, so that the materials are decomposed by the shearing force when the spiral crushing belt 203 rotates. And when the pushing rod 303 is displaced, it can also gather the materials together. Combining with the pressure generated by the displacement of the pushing rod 303, it makes the materials refined, dispersed, and homogenized, so as to obtain a more uniform and stable product. The vibration rod 107 generates an amplitude driven by an ultrasonic motor 106, so that the raw materials generate a cavitation effect through high-frequency sound waves in the partition plate 105, decompose the raw materials, improve the preparation efficiency and effect, and the specific structure of the assembly is as follows;

[0040] The pressurizing preparation assembly includes two bearing seats 102 for support provided at one end of the base 1. A crankshaft 103 is rotatably connected to the bearing seats 102. A driving motor 104 for driving the crankshaft 103 to rotate is provided on one of the two bearing seats 102. Partition plates 105 for blocking are provided on both sides of the bottom of the preparation cylinder 2. An ultrasonic motor 106 mounted on the base 1 is provided on one side of each partition plate 105, and a vibration rod 107 is provided on each ultrasonic motor 106;

[0041] A preparation cylinder 2 is provided on a base 1. A number of carding cylinders 201 for mixing materials are provided on the preparation cylinder 2. Valves 202 are provided at the top and bottom of each carding cylinder 201. A spiral crushing belt 203 is rotatably connected inside each of the plurality of carding cylinders 201. A number of turntables 204 are provided on a crankshaft 103 at one end of the corresponding carding cylinder 201. A connecting sleeve 205 is rotatably connected to the outside of the turntable 204. An outer support block 206 for support is provided on the outside of the connecting sleeve 205. The outer support block 206 is located at one end of a traction rod 3 and is detachably connected to the traction rod 3;

[0042] Traction rods 3 are provided at one end of each of the plurality of carding cylinders 201. A top block 301 for support is provided at one end of the traction rod 3. A pusher block 302 located inside the carding cylinder 201 is rotatably connected to the top block 301 through a shaft pin. A pusher rod 303 is provided at one end of each pusher block 302. A material distribution block 304 is provided at one end of the base 1 away from the bearing block 102. A number of pump machines 305 are provided on one side of the material distribution block 304 at one end of the corresponding carding cylinder 201. A conduit 306 for guiding is provided at one end of the pump machine 305. An electric butterfly valve 307 is provided at one end of the conduit 306 at one end of the carding cylinder 201. A heat exchanger 308 is provided on the material distribution block 304. A controller 309 is provided on the heat exchanger 308. A discharge hole 310 communicating with the pump machine 305 is provided on the material distribution block 304. One end of the spiral crushing belt 203 extends to the electric butterfly valve 307 and is rotatably connected to the electric butterfly valve 307. The cross-sectional shape of the spiral crushing belt 203 is set to a conical shape;

[0043] A preparation method uses the homogeneous machine for preparing bottomless paper low-temperature curing silicone oil described above. The method includes the following steps.

[0044] Step 1, the staff installs the device at a designated position. When preparing the bottomless paper low-temperature curing silicone oil, the raw materials are added into the carding cylinder 201 through the valve 202 at the top of the carding cylinder 201. The driving crankshaft 103 is rotated by starting the driving motor 104. When the crankshaft 103 rotates, it drives the turntable 204 to rotate and displace. The connecting sleeve 205 is driven to displace the connecting sleeve 205 and the outer support block 206 through the torque when the turntable 204 rotates, which is conducive to the linkage of each structure;

[0045] Step 2, and when the connecting sleeve 205 displaces, it will drive the outer support block 206 to displace, which in turn causes the traction rod 3 to drive the top block 301, the pusher block 302 and the pusher rod 303 to displace. When the pusher rod 303 displaces, it will contact one end of the spiral crushing belt 203, and then push the materials together;

[0046] Step 3: The spiral crushing belt 203 rotates due to the pressure of the push rod 303 when it is displaced and the traction force of the material when it is transported, so that the material is decomposed by the shear force of the spiral crushing belt 203 when it rotates, and the material can be gathered together when the push rod 303 is displaced, and the pressure generated by the displacement of the push rod 303 is used to refine, disperse and homogenize the material, thereby obtaining a more uniform and stable product.

[0047] Step 4: When the device is in use, after the material is decomposed in the combing cylinder 201, the material can be discharged into the cavity plate 105 through the valve 202 at the bottom of the combing cylinder 201, and the ultrasonic motor 106 drives the vibrating rod 107 to generate amplitude, so that the raw material is cavitated by the high-frequency sound wave in the cavity plate 105 to decompose the raw material;

[0048] Step five, when the device is in use, the electric butterfly valve 307 can be opened to allow the raw material to be transported to the pump 305 through the conduit 306, and then transported to the distribution block 304 through the pump 305 and discharged from the discharge hole 310. At the same time, heat exchange can be carried out through the heat exchanger 308 to facilitate low-temperature solidification of the raw material.

[0049] When using the above structure, the staff installs the device at the designated position. When preparing the bottom-free low-temperature curing silicone oil, the raw material is added into the combing cylinder 201 through the valve 202 on the top of the combing cylinder 201, and the crankshaft 103 is driven to rotate by the driving motor 104. When the crankshaft 103 rotates, the turntable 204 is driven to rotate and move, and the connecting sleeve 205 drives the connecting sleeve 205 and the outer support block 206 to move through the torque when the turntable 204 rotates, which makes it easy for each structure to be linked. When the connecting sleeve 205 moves, the outer support block 206 will be moved, and then the traction rod 3 drives the top block 301, the push block 302 and the push rod 303 to move. When the push rod 303 moves, it will contact one end of the spiral crushing belt 203, and then push the materials together.

[0050] The spiral crushing belt 203 rotates due to the pressure of the push rod 303 when it is displaced and the traction force of the material when it is transported, so that the material is decomposed by the shear force of the spiral crushing belt 203 when it rotates, and the material can be gathered together when the push rod 303 is displaced, and the pressure generated by the displacement of the push rod 303 is combined to refine, disperse and homogenize the material, thereby obtaining a more uniform and stable product.

[0051] When the device is in use, after the material is decomposed in the carding cylinder 201, the material can be discharged into the partition plate 105 through the valve 202 at the bottom of the carding cylinder 201. The ultrasonic motor 106 drives the vibrating rod 107 to generate an amplitude, so that the raw material generates a cavitation effect in the partition plate 105 through high-frequency sound waves, decomposing the raw material. At the same time, when the device is in use, the electric butterfly valve 307 can be opened so that the raw material can be transported into the pump 305 through the conduit 306, transported by the pump 305 into the distribution block 304 and discharged through the discharge holes 310. At the same time, heat exchange can be carried out through the heat exchanger 308 to facilitate the low-temperature curing of the raw material.

[0052] Different from the prior art, the present application discloses a method for preparing a bottomless paper low-temperature curing silicone oil and a homogenizer for its preparation. When the pushing rod 303 moves, it will contact one end of the spiral crushing belt 203, and then push the material together. The spiral crushing belt 203 rotates under the pressure generated by the displacement of the pushing rod 303 and the traction force during material transportation, so that the material is decomposed by the shearing force generated when the spiral crushing belt 203 rotates. And when the pushing rod 303 moves, it can also gather the material together. Combining with the pressure generated by the displacement of the pushing rod 303, it makes the material refined, dispersed and homogenized, so as to obtain a more uniform and stable product. The ultrasonic motor 106 drives the vibrating rod 107 to generate an amplitude, so that the raw material generates a cavitation effect in the partition plate 105 through high-frequency sound waves, decomposing the raw material and improving the preparation efficiency and effect.

[0053] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A homogenizer for preparing a low-temperature curable silicone oil without base paper, comprising a base (1) for support, wherein an installation cavity (101) is formed on the base (1), and it is characterized in that: A pressurized preparation assembly is provided on the base (1). The pressurized preparation assembly includes two bearing seats (102) for support provided at one end of the base (1). A preparation cylinder (2) is provided on the base (1), and a plurality of carding cylinders (201) for mixing are provided on the preparation cylinder (2). Valves (202) are provided at the top and bottom of each carding cylinder (201), and spiral crushing belts (203) are rotatably connected inside the plurality of carding cylinders (201). One ends of the plurality of carding cylinders (201) are all provided with traction rods (3). A top block (301) for support is provided at one end of the traction rod (3). A pusher block (302) located inside the carding cylinder (201) is rotatably connected to the top block (301) through a pin, and a pusher rod (303) is provided at one end of each pusher block (302).

2. The homogenizer for preparing the bottomless paper low-temperature curing silicone oil according to claim 1, characterized in that: A crankshaft (103) is rotatably connected to the bearing seat (102), and a drive motor (104) for driving the crankshaft (103) to rotate is provided on one of the two bearing seats (102).

3. A homogenizer for preparing a low-temperature curable silicone oil without base paper according to claim 1, characterized in that: Partition plates (105) for blocking are provided on both sides of the bottom of the preparation cylinder (2). Ultrasonic motors (106) installed on the base (1) are provided on one side of each partition plate (105), and vibrating rods (107) are provided on each ultrasonic motor (106).

4. A homogenizer for preparing a low-temperature curable silicone oil without base paper according to claim 2, wherein: A plurality of turntables (204) respectively located at one end of the corresponding carding cylinders (201) are provided on the crankshaft (103), and a connecting sleeve (205) is rotatably connected to the outside of the turntable (204).

5. The homogenizer for preparing the bottomless paper low-temperature curing silicone oil according to claim 4, wherein: An outer support block (206) for support is provided on the outside of the connecting sleeve (205). The outer support block (206) is located at one end of the traction rod (3) and is detachably connected to the traction rod (3).

6. A homogenizer for preparing a silicone oil with low-temperature curing and no base paper according to claim 1, characterized in that: A distribution block (304) is provided at one end of the base (1) away from the bearing seat (102). A plurality of pump machines (305) respectively located at one end of the corresponding carding cylinders (201) are provided on one side of the distribution block (304).

7. A homogenizer for preparing a silicone oil with low-temperature curing and no base paper according to claim 6, characterized in that: A conduit (306) for guiding is provided at one end of the pump machine (305), and an electric butterfly valve (307) located at one end of the carding cylinder (201) is provided at one end of the conduit (306).

8. A homogenizer for preparing a low-temperature curable silicone oil without base paper according to claim 6, characterized in that: A heat exchanger (308) is provided on the distribution block (304), a controller (309) is provided on the heat exchanger (308), and a discharge hole (310) communicating with the pump machine (305) is provided on the distribution block (304).

9. A homogenizer for preparing a low-temperature curable silicone oil without base paper according to claim 7, characterized in that: One end of the spiral crushing belt (203) extends to the electric butterfly valve (307) and is rotatably connected to the electric butterfly valve (307). The cross-sectional shape of the spiral crushing belt (203) is set to be conical.

10. A preparation method, which uses the homogenizer for preparing the bottomless paper low-temperature curing silicone oil described in any one of claims 1-9, is characterized in that: The method includes the following steps. Step 1: Raw materials are added into the carding cylinder (201) through the valve (202) at the top of the carding cylinder (201). When the crankshaft (103) rotates, it drives the turntable (204) to rotate and displace, and the connecting sleeve (205) is driven to displace by the torque during the rotation of the turntable (204) through the connecting sleeve (205). In Step Two, when the connecting sleeve (205) moves, it drives the outer support block (206) to move. When the pusher rod (303) moves, it contacts one end of the spiral crushing belt (203), and then pushes the materials together; In Step Three, the spiral crushing belt (203) rotates under the pressure when the pusher rod (303) moves and the traction force during material transportation, so that the materials are decomposed by the shearing force when the spiral crushing belt (203) rotates. Combined with the pressure generated by the movement of the pusher rod (303), it makes the materials refined, dispersed and homogenized, thus obtaining a more uniform and stable product; In Step Four, the ultrasonic motor (106) drives the vibrating rod (107) to generate an amplitude, so that the raw materials generate a cavitation effect through high-frequency sound waves in the partition plate (105) to decompose the raw materials; In Step Five, it is transported to the distribution block (304) by the pump (305) and discharged from the discharge hole (310). At the same time, it can be heat-exchanged through the heat exchanger (308) to facilitate the low-temperature curing of the raw materials.

Citation Information

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