A high-stability silicone oil film multiphase collaborative preparation device
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- XIONGXIAN JIANHAI WATERPROOF AUXILIARY MATERIALS CO LTD
- Filing Date
- 2026-06-17
- Publication Date
- 2026-08-07
AI Technical Summary
[0003]本发明提供一种高稳定性硅油膜多相协同制备装置,可以有效解决上述背景技术中提出目前制备装置在使用过程中受其内部结构的限制,使得硅油原料在生产过程中搅拌路径和导流路径单一,导致硅油原料搅拌过程中容易出现有规律的分层现象,从而使涂料在后续的涂覆过程中容易出现原料不均的现象,进而降低了硅油膜产品的整体质量和制备设备的生产效果的问题
[0014]与现有技术相比,本发明的有益效果:本发明结构科学合理,使用安全方便:
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Figure CN122516892A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of silicone oil film coating technology, specifically to a device for the multiphase synergistic preparation of highly stable silicone oil films. Background Technology
[0002] The high-stability silicone oil film multiphase synergistic preparation device is an integrated industrial equipment specifically designed for the industrial preparation of high-stability, high-performance silicone oil functional films. It produces silicone oil film products that are temperature resistant, aging resistant, have stable peel strength, and strong adhesion. Silicone oil coating is an important raw material in the silicone oil film production process. Silicone oil films are widely used for the protective function of waterproofing ships. However, the current preparation equipment is limited by its internal structure, resulting in a single stirring and guiding path for the silicone oil raw material during production. This leads to regular stratification during the stirring process, which in turn causes uneven material distribution in the subsequent coating process, thus reducing the overall quality of the silicone oil film product and the production efficiency of the preparation equipment. Summary of the Invention
[0003] This invention provides a high-stability silicone oil film multiphase synergistic preparation device, which can effectively solve the problem mentioned in the background art that the current preparation device is limited by its internal structure during use, resulting in a single stirring and guiding path for the silicone oil raw material during production. This leads to regular stratification of the silicone oil raw material during stirring, which in turn causes uneven material distribution in the subsequent coating process, thereby reducing the overall quality of the silicone oil film product and the production efficiency of the preparation equipment.
[0004] To achieve the above objectives, the present invention provides the following technical solution: a multiphase synergistic preparation device for a high-stability silicone oil film, comprising a vertical mixing vessel body, wherein a mixing motor is mounted on the top of the vertical mixing vessel body via a conical mounting seat, and a mixing raw material pipe is mounted on the top surface of the vertical mixing vessel body; The vertical mixing vessel is equipped with an internal multi-layer linkage mixing mechanism, which is used to guide and stir the silicone oil film liquid raw material and to quickly mix the raw materials during the stirring process. The internal multi-layer linkage hybrid mechanism includes a central drive shaft; The bottom end of the hybrid motor is connected to a central drive shaft. A central guide cone and a liquid guide disk are sleeved on the outside of the central drive shaft. The top surface of the liquid guide disk is connected with an inner layer guide net, a middle layer guide net and an outer layer guide net from the inside to the outside. A conical guide bucket is provided on the outer side of the central drive shaft at the bottom position corresponding to the liquid guiding disk. A central connecting frame is fixedly connected to the top of the inner side of the conical guide bucket, and an external support frame is fixedly sleeved on the bottom of the outer side of the conical guide bucket. A bottom drive ring is fixedly sleeved on the outer bottom of the central drive shaft, and counter-current drive blades are fixedly connected at equal intervals along the outer circumference of the bottom drive ring.
[0005] Preferably, the mixing motor is powered by an external power source, and the end of the mixing raw material pipe is connected to an external raw material supply pipe.
[0006] Preferably, the inner, middle, and outer flow guiding nets have progressively smaller apertures from the inside out, and the circular holes on the sides of the inner, middle, and outer flow guiding nets are staggered.
[0007] Preferably, the conical guide bucket and the outer support frame are jointly fixedly connected to an inner ring isolation cylinder, and the outer side of the inner ring isolation cylinder is uniformly fixedly connected to isolation connecting blocks at equal intervals along the circumferential direction, and the outer layer guide cylinder is jointly fixedly connected to the outer side of multiple isolation connecting blocks; Both the outer ring of the inner isolation cylinder and the inner ring of the outer guide cylinder are fixedly installed with connecting vertical plates at equal intervals along the circumferential direction. The side of the connecting vertical plate is provided with elongated oval mounting grooves at equal intervals. A swing mesh plate is movably installed inside the elongated oval mounting groove through a rotating shaft. The inner side of the top of the conical guide bucket is provided with a rounded chamfer. The inner side of the central connecting frame is fixedly connected to the outer side of the central drive shaft. The outer side of the reverse flow drive blade is tightly slidably attached to the inner wall of the outer guide tube.
[0008] Preferably, the top of the outer side of the outer guide tube is threadedly connected to a mounting bracket, the bottom of the mounting bracket is rotatably connected to a guide swing rod via a rotating shaft, the end of the guide swing rod is rotatably connected to a swing vertical rod via a rotating shaft, the top of the mounting bracket and the swing vertical rod are rotatably connected to a drive swing rod via a rotating shaft, and the end of the drive swing rod is fixedly connected to a counterweight ball; The end face of the swinging mesh plate and the side face of the connecting vertical plate are in close sliding contact, and the weight of the counterweight ball is greater than the sum of the weights of the guide swing rod and the swinging vertical rod.
[0009] Preferably, a cleaning scraper is adhered to the middle of the outer side of the swing vertical rod, and a rectangular limiting strip is fixedly connected to the middle of the side of the mounting bracket; The cleaning scraper side is tightly slidably fitted with the inner wall of the vertical mixing vessel body, and the rectangular limiting strip and the side groove of the swing vertical rod are correspondingly engaged.
[0010] Preferably, an external flow guiding and circulation detection mechanism is provided on the outside of the vertical mixing vessel body. The external flow guiding and circulation detection mechanism is used to guide the silicone oil film raw material to the outside during the mixing process, and to perform external detection and secondary transfer during the flow guiding process. The external flow guidance and circulation detection mechanism includes an external circulation box; An external circulation tank is fixedly connected to the middle of both sides of the main body of the vertical mixing vessel. A water inlet pipe is fixedly connected to the top of one side of the external circulation tank. A guide pump is fixedly connected to the bottom of the outer side of the water inlet pipe. The guide pump is powered by an external power source. A collection bottom ring is fixedly connected to the bottom of the guide pump at the position corresponding to the bottom of the inner side of the main body of the vertical mixing vessel. A transfer pump is embedded at the bottom of the other side of the external circulation tank. The transfer pump is powered by an external power source. A material guide pipe is fixedly connected to the middle of one end of the transfer pump. A spray inner ring is fixedly connected to the end of the material guide pipe at the top position of the inner side of the vertical mixing tank body.
[0011] Preferably, the outer side of the collecting bottom ring is tightly fitted to the inner wall of the vertical mixing vessel body, the top edge of the collecting bottom ring is chamfered, and the inner ring of the collecting bottom ring is evenly and equidistantly provided with water inlet guide grooves along the circumferential direction. The bottom of the inner ring of the spraying inner ring is chamfered, and the bottom inner ring of the spraying inner ring is evenly provided with drainage guide grooves.
[0012] Preferably, a rectangular collection box is embedded in the top of one side of the external circulation box, and a fine filter screen is embedded inside the rectangular collection box; The rectangular collection box is tightly slidably fitted to the outer side of the external circulation box and the inner wall of the external circulation box. The external circulation box is located at the bottom of the water outlet of the inlet pipe. The rectangular collection box and the external circulation box are installed and limited by bolts.
[0013] Preferably, mounting boxes are symmetrically fixedly connected to the bottom of one side of the external circulation box, and a glass observation tube is fixedly connected between the two mounting boxes; A drain pipe is fixedly connected to the middle of the bottom of the external circulation tank; The glass observation tube is connected to the inner cavity of the external circulation box through the installation of the suspension box, and a sealing valve is provided on the outside of the drain bottom pipe.
[0014] Compared with the prior art, the beneficial effects of the present invention are: the present invention has a scientific and reasonable structure and is safe and convenient to use. 1. An internal multi-layer linkage mixing mechanism is set up. Through the cooperation between the various components within the internal multi-layer linkage mixing mechanism, the mixing process of silicone oil coating is optimized. Through the central drive shaft and the multi-layer stirring structure connected to it, the stirring path of silicone oil coating inside the vertical mixing tank is optimized, allowing the raw materials of silicone oil coating to flow horizontally and vertically sequentially during the mixing process. Then, the components connected to the liquid guiding disc and the swing screen plate perform multiple shearing and stirring operations, which effectively prevents the uneven mixing of viscous silicone oil coating due to stratification during the mixing process. Furthermore, the multi-layer stirring structure outside the central drive shaft makes the flow and stirring paths of silicone oil coating more disordered during the mixing process, thereby effectively improving the mixing effect of silicone oil coating, improving the overall mixing quality of silicone oil coating, and ensuring the quality of silicone oil film in subsequent processing. Simultaneously, by controlling the rotational speed of the central drive shaft, the different motion characteristics of the internal components and raw materials of the vertical mixing vessel under centrifugal force are fully utilized. This allows the silicone oil coating to undergo circulating self-stirring mixing inside the conical guide bucket, further improving the mixing effect of the silicone oil coating. Furthermore, by utilizing the motion characteristics of the counterweight ball under different rotational speeds, the shape of each component on the mounting bracket is adjusted. This allows the components connected to the mounting bracket to assist in stirring the silicone oil coating during the mixing process, and to scrape the inner wall of the vertical mixing vessel during the discharge process, thus assisting in the discharge of the mixed silicone oil coating and further improving the functionality of the preparation equipment.
[0015] 2. An external flow-guiding and circulation detection mechanism was set up. Through the cooperation between the various components inside the external flow-guiding and circulation detection mechanism, the transfer detection process during the mixing of silicone oil coating was optimized. The various components connected to the external circulation box drive the silicone oil coating inside the vertical mixing vessel to carry out independent external circulation. During the circulation of silicone oil coating, trace agglomerates inside are filtered and collected. At the same time, the silicone oil coating is visually observed and colorimetrically compared through a glass observation tube, thereby realizing auxiliary detection of the mixing state of silicone oil coating. This effectively expands the function of the preparation equipment and further improves the smoothness of the silicone oil coating mixing process. Meanwhile, by collecting the bottom ring and spraying the inner ring, the silicone oil coating at the bottom layer of the vertical mixing vessel is transferred, which effectively prevents the raw materials located at the corners inside the vertical mixing vessel from being mixed unevenly due to lack of stirring, and further improves the mixing effect of the raw materials inside the vertical mixing vessel.
[0016] In summary, by coordinating the internal multi-layered linkage mixing mechanism and the various components within the external flow guidance and circulation detection mechanism, and by optimizing the flow path of the silicone oil coating during the mixing process through the components connected to the central drive shaft and the external circulation box, the complex path effectively prevents uneven mixing of the raw materials within the silicone oil coating. Furthermore, the complex stirring and raw material flow paths effectively improve the mixing efficiency of the silicone oil coating, thereby significantly enhancing the overall production efficiency and final product quality. Attached Figure Description
[0017] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used together with the embodiments of the invention to explain the invention and do not constitute a limitation thereof.
[0018] In the attached diagram: Figure 1 This is a schematic diagram of the structure of the present invention; Figure 2 This is a schematic diagram of the structure of the outer guide tube installation of the present invention; Figure 3 This is a schematic diagram of the bottom drive ring installation structure of the present invention; Figure 4 This is a schematic diagram of the internal multi-layer linkage mixing mechanism of the present invention; Figure 5 This is a schematic diagram of the installation structure of the swing mesh plate of the present invention; Figure 6 This is a schematic diagram of the installation structure of the central guide cone block of the present invention; Figure 7 This is a schematic diagram of the installation structure of the isolation connecting block of the present invention; Figure 8 This is a schematic diagram of the structure for installing the counterweight spheres in this invention; Figure 9 This is a schematic diagram of the external flow guidance and circulation detection mechanism of the present invention; Figure 10 This is a schematic diagram of the rectangular collection box installation structure of the present invention; The diagram shows: 1. Main body of the vertical mixing vessel; 2. Conical mounting base; 3. Mixing motor; 4. Mixing raw material pipe; 5. Internal multi-layer linkage mixing mechanism; 501. Central drive shaft; 502. Central guide cone; 503. Liquid guide disc; 504. Inner layer guide net; 505. Middle layer guide net; 506. Outer layer guide net; 507. Conical guide bucket; 508. Central connecting frame; 509. External support frame; 510. Bottom drive ring; 511. Reverse flow drive blade; 512. Inner ring isolation cylinder; 513. Isolation connecting block; 514. Outer layer guide cylinder; 515. Connecting vertical plate; 516. Elongated oval mounting groove; 517. Swinging mesh plate; 518. Mounting bracket; 519. Guide swing rod; 520. Swinging vertical rod; 521. Drive swing rod; 522. Counterweight ball; 523. Cleaning scraper; 524. Rectangular limit strip; 6. External flow guidance and circulation detection mechanism; 601. External circulation box; 602. Inlet pipe; 603. Flow guidance bottom pump; 604. Collection bottom ring; 605. Transfer pump; 606. Material guide pipe; 607. Spray inner ring; 608. Rectangular collection box; 609. Filter screen; 610. Mounting suspension box; 611. Glass observation tube; 612. Drainage bottom pipe. Detailed Implementation
[0019] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.
[0020] Example: Figure 1-10 As shown, the present invention provides a technical solution, a multiphase synergistic preparation device for a high-stability silicone oil film, including a vertical mixing vessel body 1, a conical mounting base 2 fixedly connected to the top center of the vertical mixing vessel body 1, a mixing motor 3 fixedly connected to the top center of the conical mounting base 2, a mixing raw material pipe 4 uniformly installed along the circumferential direction at the position corresponding to the outer side of the conical mounting base 2 on the top surface of the vertical mixing vessel body 1, the mixing motor 3 being powered by an external power source, and the end of the mixing raw material pipe 4 being interconnected with an external raw material supply pipe; The vertical mixing vessel body 1 is equipped with an internal multi-layer linkage mixing mechanism 5, which is used to guide and stir the silicone oil film liquid raw material and to quickly mix the raw materials during the stirring process. The internal multi-layer linkage mixing mechanism 5 includes a central drive shaft 501, a central guide cone 502, a liquid guide disc 503, an inner guide net 504, a middle guide net 505, an outer guide net 506, a conical guide bucket 507, a central connecting frame 508, an external support frame 509, a bottom drive ring 510, a reverse flow drive blade 511, an inner ring isolation cylinder 512, an isolation connecting block 513, an outer guide cylinder 514, a connecting vertical plate 515, an elongated mounting groove 516, a swing net plate 517, a mounting bracket 518, a guide swing rod 519, a swing vertical rod 520, a drive swing rod 521, a counterweight ball 522, a cleaning scraper 523, and a rectangular limit strip 524. The bottom of the mixing motor 3 is connected to the central drive shaft 501 via a coupling at the position inside the vertical mixing vessel body 1. The central drive shaft 501 is equidistantly sleeved with central guide cones 502 along the axial direction. The outside of the central drive shaft 501 is sleeved with a liquid guide disc 503 at the bottom position of the central guide cones 502. The inner layer guide net 504 is fixedly connected to the inner side of the top surface of the liquid guide disc 503. The middle layer guide net 505 is fixedly connected to the top surface of the liquid guide disc 503 at the position corresponding to the outer side of the inner layer guide net 504. The outer layer guide net 506 is fixedly connected to the outer side of the top surface of the liquid guide disc 503. The aperture of the inner layer guide net 504, the middle layer guide net 505 and the outer layer guide net 506 decreases sequentially from the inside to the outside, and the circular holes on the sides of the inner layer guide net 504, the middle layer guide net 505 and the outer layer guide net 506 are staggered. A conical guide bucket 507 is provided on the outer side of the central drive shaft 501 at the bottom position of the liquid guiding disk 503. A central connecting frame 508 is fixedly connected to the top of the inner side of the conical guide bucket 507, and an external support frame 509 is fixedly sleeved on the bottom of the outer side of the conical guide bucket 507. A bottom drive ring 510 is fixedly sleeved on the bottom outer side of the center drive shaft 501, and a counter-current drive blade 511 is fixedly connected at equal and uniform intervals on the outer circumferential direction of the bottom drive ring 510. The conical guide bucket 507 and the outer support frame 509 are jointly and fixedly connected to the inner ring isolation cylinder 512. The outer side of the inner ring isolation cylinder 512 is uniformly and equidistantly connected to the isolation connecting blocks 513 along the circumferential direction. The outer side of multiple isolation connecting blocks 513 is jointly and fixedly connected to the outer layer guide cylinder 514. The inner side of the top of the conical guide bucket 507 is provided with a rounded chamfer. The inner side of the central connecting frame 508 is fixedly connected to the outer side of the central drive shaft 501. The outer side of the reverse flow drive blade 511 is tightly slidably attached to the inner wall of the outer layer guide cylinder 514. The inner ring isolation cylinder 512 and the outer ring of the outer layer guide cylinder 514 are both fixedly installed with connecting vertical plates 515 at equal intervals along the circumferential direction. The connecting vertical plates 515 have elongated mounting grooves 516 at equal intervals on their sides. The elongated mounting grooves 516 are movably installed with swinging mesh plates 517 through a rotating shaft inside the elongated mounting grooves 516. The outer top of the outer guide tube 514 is threadedly connected to a mounting bracket 518. The bottom of the mounting bracket 518 is rotatably connected to a guide swing rod 519 via a pivot. The end of the guide swing rod 519 is rotatably connected to a swing vertical rod 520 via a pivot. The top of the mounting bracket 518 and the swing vertical rod 520 are rotatably connected to a drive swing rod 521 via a pivot. The end of the drive swing rod 521 is fixedly connected to a counterweight ball 522. The end face of the swing mesh plate 517 and the side of the connecting vertical plate 515 are tightly slidably fitted together. The weight of the counterweight ball 522 is greater than the sum of the weights of the guide swing rod 519 and the swing vertical rod 520. A cleaning scraper 523 is adhered to the middle of the outer side of the swing vertical rod 520. A rectangular limiting strip 524 is fixedly connected to the middle of the side of the mounting bracket 518. The side of the cleaning scraper 523 slides tightly against the inner wall of the vertical mixing vessel body 1. The rectangular limiting strip 524 and the groove on the side of the swing vertical rod 520 are correspondingly engaged. Through the cooperation between the components inside the internal multi-layer linkage mixing mechanism 5, the mixing process of the silicone oil coating is optimized. Through the central drive shaft 501 and the multi-layer stirring structure connected to it, the stirring path of the silicone oil coating inside the vertical mixing vessel body 1 is optimized, making the silicone oil coating... During the mixing process, the raw materials can flow horizontally and vertically sequentially. Then, the components connected to the liquid guiding disc 503 and the oscillating screen plate 517 perform multiple shearing and stirring operations, which effectively prevents the viscous silicone oil coating from becoming unevenly mixed due to stratification during the mixing process. Furthermore, the multi-layer stirring structure outside the central drive shaft 501 makes the flow path and stirring path of the silicone oil coating more disordered during the mixing process, thereby effectively improving the mixing effect of the silicone oil coating, improving the overall mixing quality of the silicone oil coating, and ensuring the quality of the silicone oil film in subsequent processing. Meanwhile, by controlling the rotational speed of the central drive shaft 501, the different motion characteristics of the internal components and raw materials of the vertical mixing vessel 1 under centrifugal force are fully utilized, allowing the silicone oil coating to undergo circulating self-stirring mixing inside the conical guide bucket 507, thereby further improving the mixing effect of the silicone oil coating. Furthermore, by utilizing the motion characteristics of the counterweight ball 522 under different rotational speeds, the shape of each component on the mounting bracket 518 is adjusted, enabling the components connected to the mounting bracket 518 to assist in stirring the silicone oil coating during the mixing process. During the discharge process, the inner wall of the vertical mixing vessel 1 can be scraped to assist in the discharge of the mixed silicone oil coating, further improving the functionality of the preparation equipment. An external flow guiding and circulation detection mechanism 6 is provided on the outside of the vertical mixing vessel body 1. The external flow guiding and circulation detection mechanism 6 is used to guide the silicone oil film raw material to the outside during the mixing process, and to perform external detection and secondary transfer during the flow guiding process. The external flow circulation detection mechanism 6 includes an external circulation box 601, an inlet pipe 602, a flow guide bottom pump 603, a collection bottom ring 604, a transfer pump 605, a material guide upper pipe 606, a spray inner ring 607, a rectangular collection box 608, a filter fine screen 609, a mounting suspension box 610, a glass observation tube 611, and a drain bottom pipe 612. An external circulation tank 601 is fixedly connected to the middle of both sides of the vertical mixing vessel body 1. An inlet pipe 602 is fixedly connected to the top of one side of the external circulation tank 601. A guide pump 603 is fixedly connected to the bottom of the outer side of the inlet pipe 602. The guide pump 603 is powered by an external power source. A collection bottom ring 604 is fixedly connected to the bottom of the guide pump 603 at the bottom of the inner side of the vertical mixing vessel body 1. A transfer pump 605 is embedded in the bottom of the other side of the external circulation box 601. The transfer pump 605 is powered by an external power source. A guide pipe 606 is fixedly connected to the middle of one end of the transfer pump 605. A spray inner ring 607 is fixedly connected to the end of the guide pipe 606 at the top position of the inner side of the vertical mixing vessel body 1. The outer side of the collection bottom ring 604 is tightly fitted to the inner wall of the vertical mixing vessel body 1. The top edge of the collection bottom ring 604 is chamfered, and the inner ring of the collection bottom ring 604 is evenly and equidistantly provided with water inlet guide grooves along the circumferential direction. The bottom of the inner ring of the spray inner ring 607 is chamfered, and the bottom inner ring of the spray inner ring 607 is evenly provided with drainage guide grooves. A rectangular collection box 608 is embedded in the top of one side of the external circulation box 601. A fine filter screen 609 is embedded inside the rectangular collection box 608. The outer side of the rectangular collection box 608 is tightly slidably fitted with the inner wall of the external circulation box 601. The external circulation box 601 is located at the bottom of the outlet of the inlet pipe 602. The rectangular collection box 608 and the external circulation box 601 are installed and limited by bolts. A mounting box 610 is symmetrically and fixedly connected to the bottom of one side of the external circulation box 601, and a glass observation tube 611 is fixedly connected between the two mounting boxes 610. A drain bottom pipe 612 is fixedly connected to the middle of the bottom of the external circulation box 601. The glass observation tube 611 is connected to the inner cavity of the external circulation box 601 through the installation suspension box 610. A sealing valve is set on the outside of the drain bottom pipe 612. Through the cooperation between the components inside the external flow circulation detection mechanism 6, the transfer detection process in the silicone oil coating mixing process is optimized. The components connected to the external circulation box 601 drive the silicone oil coating inside the vertical mixing vessel body 1 to carry out independent external circulation. During the circulation of the silicone oil coating, the trace clumps inside are filtered and collected. At the same time, the silicone oil coating is visually observed and colorimetrically compared through the glass observation tube 611, thereby realizing the auxiliary detection of the mixing state of the silicone oil coating. This effectively expands the function of the preparation equipment and further improves the smoothness of the silicone oil coating mixing process. Meanwhile, by collecting the bottom ring 604 and spraying the inner ring 607, the silicone oil coating at the bottom layer of the vertical mixing vessel body 1 is transferred, which effectively prevents the raw materials located at the corners inside the vertical mixing vessel body 1 from being mixed unevenly due to lack of stirring, and further improves the mixing effect of the raw materials inside the vertical mixing vessel body 1.
[0021] The working principle and usage process of this invention: In the actual application of this invention, when it is necessary to use a mixing tank to mix and process silicone film coating material, it is necessary to first connect the mixing raw material pipe 4 with the corresponding raw material supply pipe, and then install the mixing motor 3 on the top of the vertical mixing tank body 1 through the conical mounting base 2. At the same time, the raw materials are added to the interior of the vertical mixing tank body 1 in the proportion required by the formula through the mixing raw material pipe 4, and the mixing motor 3 synchronously drives the central drive shaft 501 and its components to rotate synchronously. During the rotation of the central guide cone 502, the raw materials added during the process are initially mixed, allowing the raw materials to gradually coat the outside of the central guide cone 502. Under the action of centrifugal force, the raw materials are thrown onto the top area of the liquid guiding disk 503. As the raw materials rotate with the liquid guiding disk 503, the raw materials at the top of the liquid guiding disk 503 pass through the inner layer guide net 504, the middle layer guide net 505, and the outer layer guide net 506 from the inside to the outside. At the same time, the viscosity of the raw materials themselves, as well as the porous structure of the inner layer guide net 504, the middle layer guide net 505, and the outer layer guide net 506, guide the flow path of the raw materials, so that the raw materials can be mixed and stirred in multiple layers during the flow process. The raw materials flowing outward through the outer guide net 506 flow sequentially into the corresponding conical guide bucket 507 under the action of gravity. The central connecting frame 508 and the external support frame 509 provide overall support and reinforcement for the inside and outside of the conical guide bucket 507. Due to the restriction of the inverted conical structure of the inner cavity of the conical guide bucket 507, the raw materials near the inner wall of the conical guide bucket 507 flow upward under the action of centrifugal force, while the raw materials near the outer side of the central drive shaft 501, due to the smaller centrifugal force, will flow downward along the inner cavity of the conical guide bucket 507 under the action of gravity. This causes the outer ring of raw materials inside the conical guide bucket 507 to flow upward and gather under the action of centrifugal force, while the inner ring of raw materials flows downward and drips under the action of gravity. After the raw materials drip from the bottom of the conical guide bucket 507 to the outer side of the lower central guide cone block 502, they undergo subsequent secondary mixing. After the mixed silicone oil coating flows to the bottom of the inner ring isolation cylinder 512, the rotation of the bottom drive ring 510 and the counterflow drive blade 511 drives the lower layer of silicone oil coating in the vertical mixing vessel body 1 to flow upward along the gap between the inner ring isolation cylinder 512 and the outer layer guide cylinder 514. During the upward flow of the silicone oil coating, the swing mesh plate 517 is driven to rotate by the connecting vertical plate 515. During the rotation of the swing mesh plate 517, the silicone oil coating flowing between the inner ring isolation cylinder 512 and the outer layer guide cylinder 514 is stirred. At the same time, during the stirring process, the reaction force of the silicone oil coating drives the swing mesh plate 517 to slide vertically along the inner wall of the elongated mounting groove 516, which increases the complexity of the flow path in the silicone oil coating mixing process. After the silicone oil coating flows upward to the top, part of the silicone oil coating diffuses into the middle of the vertical mixing vessel body 1 and enters the inner ring isolation cylinder 512 for secondary mixing, while the other part of the silicone oil coating diffuses to the outside of the outer layer guide cylinder 514 for stirring and mixing. During the rotation of the outer guide tube 514, the mounting bracket 518 and its components rotate synchronously. As the mounting bracket 518 rotates, centrifugal force causes the counterweight ball 522 to move outwards, which in turn drives the swing rod 521 to swing synchronously. This causes the side of the swing rod 520 to fit tightly against the mounting bracket 518, and the cleaning scraper 523 to engage with the swing rod 520. Thus, through the mounting bracket 518 and the swing rod 520... The rotation of 0 stirs and mixes the silicone oil coating in the outer cavity of the outer guide tube 514. When the central drive shaft 501 drives the outer guide tube 514 and its components to rotate at low speed, the counterweight ball 522 drives the drive swing rod 521 and the swing vertical rod 520 to tilt upward under the action of gravity. During the movement of the swing vertical rod 520, the cleaning scraper 523 is driven to stick to the inner wall of the vertical mixing vessel body 1 so as to scrape and clean the inner wall of the vertical mixing vessel body 1 by the rotation of the cleaning scraper 523. When transferring and testing the silicone oil coating through the vertical mixing vessel body 1, the silicone oil coating inside the collection bottom ring 604 is drawn by the bottom pump 603, and the silicone oil coating drawn by the bottom pump 603 is transferred to the external circulation box 601 through the water inlet pipe 602. Then, as the coating material inside the external circulation box 601 flows from top to bottom, the trace condensates inside the silicone oil coating are intercepted and collected by the rectangular collection box 608 and the filter screen 609. The coating inside the external circulation box 601 is externally diverted by the suspended box 610 and the glass observation tube 611, and the mixing state of the silicone oil coating is detected by the glass observation tube 611. Then, the silicone oil coating in the lower layer of the external circulation box 601 is introduced into the upper feed pipe 606 through the transfer pump 605, and the raw material in the upper feed pipe 606 is discharged back into the vertical mixing vessel body 1 through the spray inner ring 607, so as to realize the transfer of raw material from the lower layer to the upper layer in the vertical mixing vessel body 1, preventing the silicone oil coating from being unevenly mixed due to stratification during the mixing process. The mixed silicone oil coating is discharged into the vertical mixing vessel body 1 through the drain bottom pipe 612 to complete the processing of silicone oil coating.
[0022] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A device for the multiphase synergistic preparation of a high-stability silicone oil film, comprising a vertical mixing vessel body (1), characterized in that: The vertical mixing vessel body (1) has a mixing motor (3) installed at the top through a conical mounting base (2), and a mixing raw material pipe (4) is installed on the top surface of the vertical mixing vessel body (1). The vertical mixing vessel body (1) is equipped with an internal multi-layer linkage mixing mechanism (5), which is used to guide and stir the silicone oil film liquid raw material and to quickly mix the raw materials during the stirring process. The internal multi-layer linkage hybrid mechanism (5) includes a central drive shaft (501). The bottom end of the hybrid motor (3) is connected to a central drive shaft (501). A central guide cone (502) and a liquid guide disk (503) are sleeved on the outside of the central drive shaft (501). The top surface of the liquid guide disk (503) is connected to an inner layer guide net (504), a middle layer guide net (505) and an outer layer guide net (506) from the inside to the outside. A conical guide bucket (507) is provided on the outer side of the central drive shaft (501) at the bottom position of the liquid guide disk (503). A central connecting frame (508) is fixedly connected to the top of the inner side of the conical guide bucket (507), and an external support frame (509) is fixedly sleeved on the bottom of the outer side of the conical guide bucket (507). A bottom drive ring (510) is fixedly sleeved on the bottom outer side of the central drive shaft (501), and a counter-current drive blade (511) is fixedly connected at equal intervals in the circumferential direction on the outer side of the bottom drive ring (510).
2. The apparatus for multiphase synergistic preparation of a high-stability silicone oil film according to claim 1, characterized in that, The mixing motor (3) is powered by an external power source, and the end of the mixing raw material pipe (4) is connected to the external raw material supply pipe.
3. The apparatus for multiphase synergistic preparation of a high-stability silicone oil film according to claim 1, characterized in that, The inner layer guide net (504), middle layer guide net (505) and outer layer guide net (506) have successively smaller apertures from the inside to the outside, and the circular holes on the sides of the inner layer guide net (504), middle layer guide net (505) and outer layer guide net (506) are staggered.
4. The apparatus for multiphase synergistic preparation of a high-stability silicone oil film according to claim 1, characterized in that, The conical guide bucket (507) and the outer support frame (509) are jointly fixedly connected to an inner ring isolation cylinder (512). The outer side of the inner ring isolation cylinder (512) is uniformly fixedly connected to an isolation connecting block (513) at equal intervals along the circumferential direction. The outer side of multiple isolation connecting blocks (513) is jointly fixedly connected to an outer layer guide cylinder (514). The outer ring of the inner ring isolation cylinder (512) and the inner ring of the outer layer guide cylinder (514) are both fixedly installed with connecting vertical plates (515) at equal intervals along the circumferential direction. The connecting vertical plates (515) are provided with elongated oval mounting grooves (516) at equal intervals on their sides. The elongated oval mounting grooves (516) are movably installed with swing mesh plates (517) through a rotating shaft inside. The inner side of the top of the conical guide bucket (507) is provided with a rounded chamfer. The inner side of the central connecting frame (508) is fixedly connected to the outer side of the central drive shaft (501). The outer side of the reverse flow drive blade (511) is tightly slidably attached to the inner wall of the outer guide tube (514).
5. The apparatus for multiphase synergistic preparation of a high-stability silicone oil film according to claim 4, characterized in that, The outer top of the outer guide tube (514) is connected to a mounting bracket (518) by a threaded connection. The bottom of the mounting bracket (518) is rotatably connected to a guide swing rod (519) via a rotating shaft. The end of the guide swing rod (519) is rotatably connected to a swing vertical rod (520) via a rotating shaft. The top of the mounting bracket (518) and the swing vertical rod (520) are rotatably connected to a drive swing rod (521) via a rotating shaft. The end of the drive swing rod (521) is fixedly connected to a counterweight ball (522). The end face of the swinging net plate (517) and the side face of the connecting vertical plate (515) are closely slidably attached, and the weight of the counterweight ball (522) is greater than the sum of the weights of the guide swing rod (519) and the swinging vertical rod (520).
6. The apparatus for multiphase synergistic preparation of a high-stability silicone oil film according to claim 5, characterized in that, A cleaning scraper (523) is bonded to the middle of the outer side of the swing vertical rod (520), and a rectangular limiting strip (524) is fixedly connected to the middle of the side of the mounting bracket (518). The cleaning scraper (523) is tightly slidably attached to the inner wall of the vertical mixing vessel body (1), and the rectangular limiting strip (524) and the side groove of the swing vertical rod (520) are correspondingly engaged.
7. The apparatus for multiphase synergistic preparation of a high-stability silicone oil film according to claim 1, characterized in that, An external flow guiding and circulation detection mechanism (6) is provided on the outside of the vertical mixing vessel body (1). The external flow guiding and circulation detection mechanism (6) is used to guide the silicone oil film raw material to the outside during the mixing process, and to perform external detection and secondary transfer during the flow guiding process. The external flow circulation detection mechanism (6) includes an external circulation box (601); External circulation tanks (601) are fixedly connected to the middle of both sides of the vertical mixing vessel body (1). A water inlet pipe (602) is fixedly connected to the top of one side of the external circulation tank (601). A guide pump (603) is fixedly connected to the bottom of the outer side of the water inlet pipe (602). The guide pump (603) is powered by an external power source. A collection bottom ring (604) is fixedly connected to the bottom of the guide pump (603) at the bottom of the vertical mixing vessel body (1) corresponding to the bottom of the inner side. A transfer pump (605) is embedded in the bottom of the other side of the external circulation box (601). The transfer pump (605) is powered by an external power source. A guide pipe (606) is fixedly connected to the middle of one end of the transfer pump (605). A spray inner ring (607) is fixedly connected to the end of the guide pipe (606) at the top of the inner side of the vertical mixing tank body (1).
8. The apparatus for multiphase synergistic preparation of a high-stability silicone oil film according to claim 7, characterized in that, The outer side of the collecting bottom ring (604) is tightly fitted to the inner wall of the vertical mixing vessel body (1). The top edge of the collecting bottom ring (604) is chamfered, and the inner ring of the collecting bottom ring (604) is evenly and equidistantly provided with water inlet guide grooves along the circumferential direction. The bottom of the inner ring of the spray inner ring (607) is chamfered, and the bottom inner ring of the spray inner ring (607) is evenly provided with drainage guide grooves.
9. The apparatus for multiphase synergistic preparation of a high-stability silicone oil film according to claim 7, characterized in that, A rectangular collection box (608) is embedded in the top of one side of the external circulation box (601), and a filter screen (609) is embedded inside the rectangular collection box (608). The rectangular collection box (608) is tightly slidably fitted to the outer side of the external circulation box (601). The external circulation box (601) is located at the bottom of the outlet of the water inlet pipe (602). The rectangular collection box (608) and the external circulation box (601) are installed and limited by bolts.
10. The apparatus for multiphase synergistic preparation of a high-stability silicone oil film according to claim 7, characterized in that, The external circulation box (601) is symmetrically and fixedly connected to a mounting suspension box (610) on one side bottom, and a glass observation tube (611) is fixedly connected between the two mounting suspension boxes (610). The bottom middle of the external circulation tank (601) is fixedly connected to a drain bottom pipe (612). The glass observation tube (611) is connected to the inner cavity of the external circulation box (601) through the installation suspension box (610), and a sealing valve is provided on the outside of the drain bottom pipe (612).