Inclined reaction kettle stirrer

Through innovative designs of cross-flow devices and anti-caking, anti-adhesion and anti-bubble devices, the problem of uneven solid-liquid mixing in the inclined stirring reactor is solved, and more efficient stirring effect and finished product quality is achieved, reducing raw material waste and health risks.

CN120268352APending Publication Date: 2025-07-08NANJING XINYIDA ELECTROMECHANICAL EQUIPMENT CO LTD
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Patent Information

Application Number
CN202510650610.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-20
Publication Date
2025-07-08

AI Technical Summary

Technical Problem

During the stirring process, the existing inclined stirring reactors are prone to precipitate the solid-liquid mixture at the bottom of the kettle, resulting in the inability to fully integrate some raw materials, affecting the reaction effect and increasing economic expenditure.

Method used

The cross-flow device, anti-caking device, anti-adhesion device and anti-bubble device are adopted to form irregular agitation power through the cooperation of the electric telescopic column and the inclined plate, and combined with components such as heating rings and scrapers, the full fusion of solid-liquid raw materials and prevent precipitation are achieved.

Benefits of technology

It improves the stirring effect, prevents raw materials from precipitating, shortens reaction time, reduces waste of raw materials, ensures the quality of finished products, and protects the health of staff.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an inclined type reaction kettle stirrer, and relates to the field of reaction kettle stirrers, the inclined type reaction kettle stirrer comprises a device main body, a round hole is formed in the top of the device main body, a supporting assembly is arranged on the outer side of the device main body, a feeding box is arranged at the top of the device main body, and a feeding port is formed in the top of the feeding box; the cross-flow device is arranged in the device body and comprises an electric telescopic column, a swash plate and a cross-flow assembly, the top of the electric telescopic column is rotationally installed at the top of the inner wall of the device body, the electric telescopic column is fixedly connected with the output end of an external motor, and the external motor is arranged at the top of the device body; the right side of the swash plate is rotationally installed on the left-side slope of the electric telescopic column. The telescopic end of the electric telescopic column reciprocates up and down to drive the swash plate to move synchronously, so that raw materials at the bottom of the device body can be stirred and upwelling, and the reaction effect of the raw materials is prevented from being affected due to the fact that part of the raw materials cannot be fully fused.
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Description

Technical Field

[0001] The present invention relates to the technical field of reactor stirrers, and particularly to an inclined reactor stirrer. Background Art

[0002] In a broad sense, a reactor is a stainless steel container for physical or chemical reactions. Through the structural design and parameter configuration of the container, functions such as heating, evaporation, cooling, and mixing at low and high speeds required by the process are achieved. With the development of the times, the design requirements for reactors are also different.

[0003] A patent with the patent publication number CN202951473U discloses an inclined stirring reactor, including a reactor body and a stirrer. The feature is that the stirrer is installed obliquely, and the stirring shaft of the stirrer forms an angle of 15 to 30 degrees with the center line of the reactor. This kind of inclined stirring reactor has a large stirring intensity and no dead angle in stirring, and is suitable for the stirring of suspensions.

[0004] However, this device still has deficiencies: this device enables the complete mixing of solids and liquids in the reactor, but during the stirring process, it is inevitable that the solid-liquid mixture precipitates at the bottom of the reactor and is difficult to stir fully, thus affecting the reaction effect and quality. The unreacted raw materials also increase the economic expenditure to a certain extent. Therefore, it is very necessary to design an inclined reactor stirrer that can ensure that the raw materials at the bottom of the device main body can be stirred and upsurge to prevent some raw materials from not being fully mixed. Summary of the Invention

[0005] The purpose of the present invention is to provide an inclined reactor stirrer to solve the problems raised in the above background art.

[0006] To solve the above technical problems, the present invention provides the following technical solutions: An inclined reactor stirrer, comprising a device main body, and a round hole is provided at the top of the device main body. A support assembly is provided outside the device main body. A feed box is provided at the top of the device main body, and a feed inlet is provided at the top of the feed box. It further includes a cross-flow device, an anti-caking device, an anti-adhesion device, and an anti-bubble device. The cross-flow device is arranged inside the device main body, the anti-caking device is arranged inside the feed box, the anti-adhesion device is arranged below the anti-caking device, and the anti-bubble device is arranged on the right side of the cross-flow device. The cross-flow device includes an electric telescopic column, an inclined disk, and a cross-flow assembly. The top of the electric telescopic column is rotatably installed on the inner wall top of the device main body, and the electric telescopic column is fixedly connected to the output end of an external motor. The external motor is arranged at the top of the device main body. The right side of the inclined disk is rotatably installed on the left inclined surface of the telescopic end of the electric telescopic column. After the electric telescopic column is started, the telescopic end of the electric telescopic column will reciprocally move up and down, thereby driving the inclined disk to move synchronously, ensuring that the raw materials at the bottom of the device main body can be stirred and upsurge, preventing some raw materials from not being fully fused, thus affecting the reaction effect of the raw materials. A stirring plate is fixedly installed on the outer wall surface of the inclined disk, and a driving motor is arranged inside the inclined disk. The inclined disk is driven to rotate by the built-in motor. When the inclined disk rotates, it drives the stirring plate to rotate synchronously, thereby stirring the solid-liquid raw materials inside the device main body, making the solid-liquid raw materials fully fused. The cross-flow assembly is arranged above the electric telescopic column.

[0007] According to the above technical solution, the cross-flow assembly includes a rotating ring, an L-shaped plate, and a scraping block. The inner wall of the rotating ring is fixedly installed on the outer side of the outer wall of the electric telescopic column. The top of the L-shaped plate is fixedly installed at the bottom of the rotating ring. The scraping block is sleeved on the outer wall surface of the telescopic end of the electric telescopic column, and the top of the scraping block is fixedly installed at the bottom of the electric telescopic column. The output end of the external motor drives the electric telescopic column to rotate synchronously. The electric telescopic column drives the rotating ring and the fan plate to rotate synchronously. At this time, the telescopic end of the electric telescopic column will drive the inclined disk to rotate. Through the cross-flow effect formed by the irregular and asynchronous rotation between the two, the solid-liquid raw materials are subjected to an irregular stirring force, making the stirring effect better and the fusion more thorough.

[0008] According to the above technical solution, fan plates are fixedly installed on the outer wall surface of the rotating ring. The L-shaped plates are symmetrically distributed with the electric telescopic column as the center. The left side of the bottom of the L-shaped plate is fixedly installed on the right side of the scraping block.

[0009] According to the above technical solution, the anti-caking device includes a heating ring, a rotating column, a convex ball rod, and an anti-caking component. The inner wall of the heating ring is fixedly installed on the outer wall surface of the feed box. For the raw materials entering the interior of the feed box, through the heating effect of the heating ring, preheating treatment is carried out on the raw materials before stirring, thereby accelerating the reaction time of the raw materials. The bottom of the rotating column is fixedly installed on the top of the electric telescopic column, and an arc groove is provided on the outer wall of the rotating column. The left side of the convex ball rod is fixedly installed on the right side of the rotating column near the top end. When the electric telescopic column rotates, it will drive the rotating column to rotate synchronously. The rotating column drives the convex ball rod to rotate, and the convex ball rod rotates and pats the raw materials falling from the feed port, thereby patting and dispersing some caked parts in the raw materials. The anti-caking component is arranged on the left side of the rotating column.

[0010] According to the above technical solution, the anti-caking component includes a cross column, a scraping ring, and an activated carbon filter screen. The right side of the cross column is slidably installed inside the arc groove on the outer wall of the rotating column. The outer wall of the scraping ring is slidably installed on the inner wall surface of the feed box, and the left side of the inner wall of the scraping ring is fixedly connected to the left side of the cross column. When the rotating column rotates, the cross column is restricted by the arc groove of the rotating column and can move up and down. The cross column drives the scraping ring to move synchronously, and the scraping ring will scrape the raw materials adhered to the inner wall of the feed box to prevent excessive adhesion of raw materials. The outer wall surface of the activated carbon filter screen is fixedly installed at the bottom of the inner wall of the scraping ring. When the scraping ring moves up and down, it drives the activated carbon filter screen to move synchronously. When the activated carbon filter screen moves up and down, the falling raw materials will continuously splash around the surface of the activated carbon filter screen, preventing excessive accumulation of raw materials at the center of the activated carbon filter screen and thus slowing down the feeding speed.

[0011] According to the above technical solution, the anti-adhesion device includes a spring piece, an arc plate, and an anti-adhesion component. The top of the spring piece is fixedly installed at the bottom of the activated carbon filter screen. The top of the arc plate is fixedly installed at the bottom of the spring piece. When the activated carbon filter screen moves downward, it will squeeze the spring piece to deform downward. The spring piece will push the arc plate to move towards the center direction of the rotating column. When the two arc plates move synchronously, they will push the raw materials scattered on the top of the device body, and the raw materials will fall into the interior of the device body through the round holes. The anti-adhesion component is arranged above the arc plate.

[0012] According to the above technical solution, the spring pieces are symmetrically distributed with the feed box as the center, the arc plates are symmetrically distributed with the electric telescopic column as the center, and the bottom of the arc plates is in contact with the top surface of the device body.

[0013] According to the above technical scheme, the anti-adhesion component includes a hinged rod, an arc-shaped rubber block and a semi-circular ball. The left side of the hinged rod is hinged to the right side of the inner wall of the arc plate, the bottom of the arc-shaped rubber block is hinged to the right side of the hinged rod, and the top surface of the arc-shaped rubber block is in contact with the bottom surface of the activated carbon filter. The left side of the semi-circular ball is fixedly installed on the right side surface of the arc-shaped rubber block. When the arc plate moves toward the center of the rotating column, it drives the arc-shaped rubber block to move synchronously through the hinged rod. The arc-shaped rubber block reciprocates and rubs the bottom surface of the activated carbon filter to generate static electricity, so that the bottom surface of the activated carbon filter has adsorption properties, thereby adsorbing the dust raised when the raw material splashes, thereby preventing the dust from blocking the line of sight of the processing personnel.

[0014] According to the above technical scheme, the anti-bubble device includes a ladder plate, a sliding ball, a knocking column and an anti-bubble component. The left side of the ladder plate is fixedly installed on the right side of the L-shaped plate, and the right side of the sliding ball is slidably installed on the right side of the inner wall of the device body, and a spring is fixedly installed between the sliding ball and the inside of the device body, and the sliding ball is located on the inclined motion trajectory of the ladder plate. The top of the knocking column is fixedly installed on the bottom of the sliding ball, and the bottom of the inner wall of the device body is located on the bottom motion trajectory of the knocking column. When the L-shaped plate rotates, it drives the ladder plate to rotate synchronously, and the ladder plate will continuously resist the sliding ball to slide upward along the right inner wall of the device body. The sliding ball will drive the knocking column to move synchronously, and the knocking column will continuously knock on the bottom of the device body to generate vibration force, and the bubbles generated by excessive rotation speed when the solid and liquid raw materials are fused are vibrated and eliminated by the vibration force. The anti-bubble component is arranged on the left side of the knocking column.

[0015] According to the above technical solution, the anti-bubble component includes a guide plate and an elastic plate. The top of the guide plate is hinged on the outer wall surface of the knocking column near the top end, and a torsion spring is arranged between the guide plate and the knocking rod. The guide plate is continuously swung toward the center of the electric telescopic column by the force of the sliding ball descending and the impact force of the solid-liquid mixture when the guide plate descends, pushing the solid-liquid mixture pushed by the inclined plate when the inclined plate is stirred in the original direction, thereby promoting the stirring frequency of the solid-liquid mixture. The right side of the elastic plate is fixedly installed on the left surface of the guide plate, and the guide plate will also drive the elastic plate to move synchronously. When the elastic plate moves, the impact force of the solid-liquid mixture is buffered by its own elasticity, thereby reducing the impact force on the guide plate.

[0016] Compared with the prior art, the beneficial effects achieved by the present invention are: (1) Through the setting of the cross-flow device, the electric telescopic column and the inclined disk cooperate to drive the stirring plate to rotate synchronously when the inclined disk rotates, thereby stirring the solid-liquid raw materials inside the device body, making the solid-liquid raw materials fully blend. The inclined angle of the inclined disk makes the stirring amplitude of the solid-liquid raw materials larger and the stirring effect better. At the same time, the telescopic end of the electric telescopic column will reciprocate up and down to drive the inclined disk to move synchronously, ensuring that the raw materials at the bottom of the device body can be stirred and upsurge, preventing some raw materials from not being fully blended and affecting the reaction effect of the raw materials. Through the cooperation of the rotating ring, L-shaped plate and scraping block, the electric telescopic column drives the rotating ring and the fan plate to rotate synchronously, and the inclined disk rotates. Through the cross-flow effect formed by the irregular and asynchronous rotation between the two, the solid-liquid raw materials are subjected to irregular stirring forces, making the stirring effect better, the fusion more thorough, and the reaction quality higher. It also makes the scraping block scrape the solid-liquid mixture adhered to the outer wall of the electric telescopic column when the telescopic end of the electric telescopic column moves upward, preventing long-term adhesion and solidification from corroding the surface of the electric telescopic column and shortening the service life of the electric telescopic column.

[0017] (2) Through the setting of the anti-caking device, the electric telescopic column, heating ring, rotating column, and convex ball rod cooperate to make the convex ball rod rotate and slap the raw materials falling from the feed inlet, thereby slapping and dispersing some caked parts in the raw materials, avoiding the difficulty of fully blending the caked parts during stirring and affecting the stirring effect. It also makes the raw materials be pre-heated through the heating effect of the heating ring before stirring, thereby accelerating the reaction time of the raw materials and speeding up the processing process. Through the cooperation of the cross-column of the rotating column, scraping ring and activated carbon filter screen, the scraping ring scrapes the raw materials adhered to the inner wall of the feed box, preventing too much raw material from adhering and causing waste of raw materials, and at the same time increasing the difficulty of later maintenance. It also makes the raw materials fall continuously splash around the surface of the activated carbon filter screen when the activated carbon filter screen moves up and down, preventing too much raw material from accumulating at the center of the activated carbon filter screen and slowing down the feeding speed. At the same time, the activated carbon filter screen purifies the harmful gases existing in the raw materials, preventing the harmful gases from floating out during discharging and damaging the physical health of the staff.

[0018] (3) Through the setting of the anti-adhesion device, with the cooperation of the activated carbon filter screen, elastic pieces and arc plates, when the arc plates on both sides move synchronously, the raw materials scattered on the top of the device main body will be pushed, and the raw materials will fall into the device main body through the round holes, avoiding the corrosion caused by the adhesion of the raw materials to the top of the device main body and the waste of raw materials; through the cooperation of the hinge rod, arc-shaped rubber block and semi-sphere, the arc-shaped rubber block reciprocally rubs the bottom surface of the activated carbon filter screen to generate static electricity, making the bottom surface of the activated carbon filter screen have adsorption, so as to adsorb the dust raised when the raw materials splash, thus avoiding the dust from blocking the sight of the processing personnel and leading to inaccurate judgment of the preheating state of the raw materials and having an adverse impact on the processing state; also, when the arc-shaped rubber block moves, it drives the semi-spheres to collide with each other to make a sound, thus providing a prompt for the blind area of the processing personnel's sight and ensuring that the processing personnel understand whether the device is running normally and can be maintained in time in case of a failure.

[0019] (4) Through the setting of the anti-bubble device, with the cooperation of the L-shaped plate, ladder plate, sliding ball and knocking column, the sliding ball will drive the knocking column to move synchronously, and the knocking column will continuously knock the bottom of the device main body to generate a vibration force, and the vibration force is used to vibrate and eliminate the bubbles generated due to excessive rotation when the solid-liquid raw materials are fused, preventing the bubbles from affecting the quality of the finished product and resulting in unqualified finished products and economic losses; through the cooperation of the guide plate and the elastic plate, the guide plate swings continuously towards the center direction of the electric telescopic column by the force of the sliding ball descending and the impact force of the solid-liquid mixture when it descends itself, and pushes the solid-liquid mixture pushed by the inclined disk stirring back to the original direction, promoting the stirring frequency of the solid-liquid mixture, thus accelerating the mixing speed of the solid-liquid mixture, further improving the mixing degree of the solid-liquid mixture and shortening the processing time; also, when the elastic plate moves, it buffers the impact force of the solid-liquid mixture through its own elasticity, thereby reducing the impact force received by the guide plate, avoiding damage to the guide plate, and thus increasing the number of part replacements. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The drawings are used to provide a further understanding of the present invention, and constitute a part of the specification. They are used together with the embodiments of the present invention to explain the present invention, and do not constitute a limitation to the present invention. In the drawings: Figure 1 is a schematic diagram of the whole of the present invention; Figure 2 is a sectional schematic diagram of the whole of the present invention; Figure 3 is a schematic diagram of the cross-flow device of the present invention; Figure 4 is a schematic diagram of the anti-caking device of the present invention; Figure 5 is a sectional schematic diagram of the anti-caking device of the present invention; Figure 6 is a schematic diagram of the anti-adhesion device of the present invention; Figure 7 Schematic diagram of the anti-bubble device of the present invention.

[0021] In the figure: 1, device main body; 2, support assembly; 3, feed box; 4, cross-flow device; 41, electric telescopic column; 42, inclined disk; 400, cross-flow assembly; 401, rotating ring; 402, L-shaped plate; 403, scraping block; 5, anti-caking device; 51, heating ring; 52, rotating column; 53, convex ball rod; 500, anti-caking assembly; 501, cross column; 502, scraping ring; 503, activated carbon filter screen; 6, anti-adhesion device; 61, elastic sheet; 62, arc plate; 600, anti-adhesion assembly; 601, hinge rod; 602, arc-shaped rubber block; 603, semi-sphere; 7, anti-bubble device; 71, ladder plate; 72, sliding ball; 73, knocking column; 700, anti-bubble assembly; 701, diversion plate; 702, elastic plate. Specific embodiments

[0022] 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. Embodiment 1

[0023] Please refer to Figures 1-4 , the present invention provides a technical solution: an inclined reactor stirrer, including a device main body 1, and a round hole is provided at the top of the device main body 1. A support assembly 2 is provided on the outer side of the device main body 1. A feed box 3 is provided at the top of the device main body 1, and a feed port is provided at the top of the feed box 3. It also includes a cross-flow device 4 and an anti-caking device 5. The cross-flow device 4 is arranged inside the device main body 1, and the anti-caking device 5 is arranged inside the feed box 3. The cross-flow device 4 includes an electric telescopic column 41, an inclined disk 42 and a cross-flow assembly 400. The top of the electric telescopic column 41 is rotatably installed on the inner wall top of the device main body 1, and the electric telescopic column 41 is fixedly connected to the output end of an external motor. The external motor is arranged on the top of the device main body 1. The right side of the inclined disk 42 is rotatably installed on the left inclined surface of the telescopic end of the electric telescopic column 41. After the electric telescopic column 41 is started, the telescopic end of the electric telescopic column 41 will reciprocally move up and down, thereby driving the inclined disk 42 to move synchronously, ensuring that the raw materials at the bottom of the device main body 1 can be stirred and upsurge, preventing some raw materials from not being fully fused, thus affecting the reaction effect of the raw materials. Stirring plates are fixedly installed on the outer wall surface of the inclined disk 42, and a driving motor is built in the inclined disk 42. The inclined disk 42 is driven to rotate by the built-in motor. When the inclined disk 42 rotates, the stirring plates are driven to rotate synchronously, thereby stirring the solid-liquid raw materials inside the device main body 1, so that the solid-liquid raw materials are fully fused. The cross-flow assembly 400 is arranged above the electric telescopic column 41.

[0024] The cross-flow component 400 includes a swivel ring 401, an L-shaped plate 402, and a scraping block 403. The inner wall of the swivel ring 401 is fixedly installed on the outer side of the outer wall of the electric telescopic column 41. The top of the L-shaped plate 402 is fixedly installed at the bottom of the swivel ring 401. The scraping block 403 is sleeved on the outer wall surface of the telescopic end of the electric telescopic column 41, and the top of the scraping block 403 is fixedly installed at the bottom of the electric telescopic column 41. The output end of an externally connected motor drives the electric telescopic column 41 to rotate synchronously. The electric telescopic column 41 drives the swivel ring 401 and the fan plate to rotate synchronously. At this time, the telescopic end of the electric telescopic column 41 will drive the inclined disk 42 to rotate. Through the cross-flow effect formed by the irregular and asynchronous rotation between the two, the solid-liquid raw materials are subjected to irregular stirring forces, making the stirring effect better and the fusion more thorough.

[0025] Fan plates are fixedly installed on the outer wall surface of the swivel ring 401. The L-shaped plates 402 are symmetrically distributed around the electric telescopic column 41. The left side of the bottom of the L-shaped plate 402 is fixedly installed on the right side of the scraping block 403.

[0026] The anti-caking device 5 includes a heating ring 51, a rotating column 52, a convex ball rod 53, and an anti-caking component 500. The inner wall of the heating ring 51 is fixedly installed on the outer wall surface of the feed box 3. The raw materials entering the interior of the feed box 3 are pre-heated through the heating effect of the heating ring 51 before stirring, thereby accelerating the reaction time of the raw materials. The bottom of the rotating column 52 is fixedly installed on the top of the electric telescopic column 41, and an arc groove is provided on the outer wall of the rotating column 52. The left side of the convex ball rod 53 is fixedly installed on the right side of the rotating column 52 near the top end. When the electric telescopic column 41 rotates, it will drive the rotating column 52 to rotate synchronously. The rotating column 52 drives the convex ball rod 53 to rotate. The convex ball rod 53 rotates and pats the raw materials falling from the feed inlet, thereby patting and dispersing some caked parts in the raw materials. The anti-caking component 500 is arranged on the left side of the rotating column 52.

[0027] The anti-caking component 500 includes a cross column 501, a scraping ring 502, and an activated carbon filter screen 503. The right side of the cross column 501 is slidably installed inside the arc groove on the outer wall of the rotating column 52. The outer wall of the scraping ring 502 is slidably installed on the inner wall surface of the feed box 3, and the left side of the inner wall of the scraping ring 502 is fixedly connected to the left side of the cross column 501. When the rotating column 52 rotates, the cross column 501 is restricted by the arc groove of the rotating column 52 and can move up and down. The cross column 501 drives the scraping ring 502 to move synchronously. The scraping ring 502 scrapes the raw materials adhering to the inner wall of the feed box 3 to prevent excessive adhesion of raw materials. The outer wall surface of the activated carbon filter screen 503 is fixedly installed at the bottom of the inner wall of the scraping ring 502. When the scraping ring 502 moves up and down, it drives the activated carbon filter screen 503 to move synchronously. When the activated carbon filter screen 503 moves up and down, the falling raw materials will continuously splash around the surface of the activated carbon filter screen 503, preventing excessive accumulation of raw materials at the center of the activated carbon filter screen 503 and thus slowing down the feeding speed.

[0028] During use, raw materials are poured from the feeding box 3 into the interior of the device main body 1 for material reaction. The tilting disc 42 is driven to rotate by the built-in motor. When the tilting disc 42 rotates, it drives the stirring plate to rotate synchronously, thereby agitating the solid-liquid raw materials inside the device main body 1, making the solid-liquid raw materials fully blend. The tilting angle of the tilting disc 42 enables a greater stirring amplitude for the solid-liquid raw materials and a better stirring effect. After the electric telescopic column 41 is started, the telescopic end of the electric telescopic column 41 will reciprocate up and down, thereby driving the tilting disc 42 to move synchronously, ensuring that the raw materials at the bottom of the device main body 1 can be stirred and surging upward, preventing some raw materials from not being fully blended and thus affecting the reaction effect of the raw materials. At the same time, the output end of the external motor drives the electric telescopic column 41 to rotate synchronously. When the electric telescopic column 41 rotates, it drives the rotating ring 401 and the fan plate to rotate synchronously. At this time, the telescopic end of the electric telescopic column 41 will drive the tilting disc 42 to rotate. Through the cross-flow effect formed by the irregular and asynchronous rotation between the two, the solid-liquid raw materials are subjected to irregular stirring forces, making the stirring effect better, the fusion more thorough, and the reaction quality higher. When the rotating ring 401 rotates, it drives the L-shaped plate 402 to rotate synchronously, and the L-shaped plate 402 drives the scraping block 403 to rotate. Thus, when the telescopic end of the electric telescopic column 41 moves upward, the scraping block 403 will scrape the solid-liquid mixture adhering to the outer wall of the electric telescopic column 41, preventing long-term adhesion and solidification from corroding the surface of the electric telescopic column 41 and shortening its service life.

[0029] When the electric telescopic column 41 rotates, it will drive the rotating column 52 to rotate synchronously. When the rotating column 52 rotates, it will drive the convex ball rod 53 to rotate. When the convex ball rod 53 rotates, it will perform a rotating slap on the raw materials falling from the feeding port, thereby dispersing some of the agglomerated parts in the raw materials and preventing the agglomerated parts from being difficult to fully blend during stirring and affecting the stirring effect. For the raw materials entering the interior of the feeding box 3, through the heating effect of the heating ring 51, preheating treatment is carried out on the raw materials before stirring, thereby accelerating the reaction time of the raw materials and speeding up the processing process. When the rotating column 52 rotates, the cross bar 501 is restricted by the arc groove of the rotating column 52 and can move up and down. When the cross bar 501 moves up and down, it drives the scraping ring 502 to move synchronously. The scraping ring 502 will scrape the raw materials adhering to the inner wall of the feeding box 3, preventing excessive adhesion of raw materials, resulting in waste of raw materials, and at the same time increasing the difficulty of later maintenance. When the scraping ring 502 moves up and down, it drives the activated carbon filter screen 503 to move synchronously. When the activated carbon filter screen 503 moves up and down, the falling raw materials will continuously splash around the surface of the activated carbon filter screen 503, preventing excessive accumulation of raw materials at the center of the activated carbon filter screen 503 and thus slowing down the feeding speed. At the same time, the activated carbon filter screen 503 will purify the harmful gases existing in the raw materials, preventing the harmful gases from dispersing during discharging and damaging the physical health of the staff. Embodiment 2

[0030] Please refer to Figures 1-7, based on Embodiment 1, this embodiment further includes an anti-adhesion device 6 and an anti-bubble device 7. The anti-adhesion device 6 is arranged below the anti-caking device 5, and the anti-bubble device 7 is arranged on the right side of the cross-flow device 4; The anti-adhesion device 6 includes a spring piece 61, an arc plate 62 and an anti-adhesion assembly 600. The top of the spring piece 61 is fixedly installed at the bottom of the activated carbon filter screen 503. The top of the arc plate 62 is fixedly installed at the bottom of the spring piece 61. When the activated carbon filter screen 503 moves downward, it will squeeze the spring piece 61 to deform downward. The spring piece 61 will push the arc plate 62 to move towards the center of the rotating column 52. When the arc plates 62 on both sides move synchronously, they will push the raw materials scattered on the top of the device main body 1, and the raw materials will fall into the device main body 1 through the round holes. The anti-adhesion assembly 600 is arranged above the arc plate 62.

[0031] The spring pieces 61 are symmetrically distributed with the feed box 3 as the center, and the arc plates 62 are symmetrically distributed with the electric telescopic column 41 as the center, and the bottom of the arc plate 62 is in contact with the top surface of the device main body 1.

[0032] The anti-adhesion assembly 600 includes a hinge rod 601, an arc-shaped rubber block 602 and a semi-sphere 603. The left side of the hinge rod 601 is hinged to the right side of the inner wall of the arc plate 62. The bottom of the arc-shaped rubber block 602 is hinged to the right side of the hinge rod 601, and the top surface of the arc-shaped rubber block 602 is in contact with the bottom surface of the activated carbon filter screen 503. The left side of the semi-sphere 603 is fixedly installed on the right side surface of the arc-shaped rubber block 602. When the arc plate 62 moves towards the center of the rotating column 52, it drives the arc-shaped rubber block 602 to move synchronously through the hinge rod 601. The arc-shaped rubber block 602 reciprocally rubs the bottom surface of the activated carbon filter screen 503 to generate static electricity, so that the bottom surface of the activated carbon filter screen 503 has adsorption, thereby adsorbing the dust raised when the raw materials splash, thus avoiding the dust from blocking the sight of the processing personnel.

[0033] The anti-bubble device 7 includes a ladder plate 71, a sliding ball 72, a knocking column 73 and an anti-bubble assembly 700. The left side of the ladder plate 71 is fixedly installed on the right side of the L-shaped plate 402. The right side of the sliding ball 72 is slidably installed on the right side of the inner wall of the device main body 1, and a spring is fixedly installed between the sliding ball 72 and the inside of the device main body 1. The sliding ball 72 is located on the inclined movement track of the ladder plate 71. The top of the knocking column 73 is fixedly installed at the bottom of the sliding ball 72, and the bottom of the inner wall of the device main body 1 is located on the movement track of the bottom of the knocking column 73. When the L-shaped plate 402 rotates, it drives the ladder plate 71 to rotate synchronously. The ladder plate 71 will continuously push against the sliding ball 72 to slide upward along the right inner wall of the device main body 1. The sliding ball 72 will drive the knocking column 73 to move synchronously. The knocking column 73 will continuously knock the bottom of the device main body 1 to generate a vibration force, and the vibration force is used to vibrate and eliminate the bubbles generated due to excessive rotation when the solid-liquid raw materials are fused. The anti-bubble assembly 700 is arranged on the left side of the knocking column 73.

[0034] The anti-bubble component 700 includes a diversion plate 701 and an elastic plate 702. The top of the diversion plate 701 is hinged to the outer wall surface of the knocking column 73 near the top end, and a torsion spring is arranged between the diversion plate 701 and the knocking rod 73. The diversion plate 701 swings continuously towards the center direction of the electric telescopic column 41 by the force of the sliding ball 72 descending and the impact force of the solid-liquid mixture when it descends itself, and pushes the solid-liquid mixture pushed by the inclined disk 42 during agitation back to the original direction, promoting the stirring frequency of the solid-liquid mixture. The right side of the elastic plate 702 is fixedly installed on the left surface of the diversion plate 701, and the diversion plate 701 will also drive the elastic plate 702 to move synchronously. When the elastic plate 702 moves, it buffers the impact force of the solid-liquid mixture through its own elasticity, thereby reducing the impact force received by the diversion plate 701.

[0035] During use, when the activated carbon filter screen 503 moves downward, it will squeeze the elastic piece 61 to deform downward. When the elastic piece 61 deforms downward, it will push the arc plate 62 to move towards the center direction of the rotating column 52. When the two arc plates 62 move synchronously, they will push the raw materials scattered on the top of the device main body 1, and the raw materials will fall into the device main body 1 through the round holes, avoiding the adhesion of the raw materials to the top of the device main body 1 causing corrosion and the waste of raw materials; when the arc plate 62 moves towards the center direction of the rotating column 52, it drives the articulated rod 601 to push the arc-shaped rubber block 602 to move synchronously, and static electricity is generated by the reciprocating friction of the arc-shaped rubber block 602 on the bottom surface of the activated carbon filter screen 503, so that the bottom surface of the activated carbon filter screen 503 has adsorption property, thereby adsorbing the dust raised when the raw materials splash, avoiding the dust from blocking the sight of the processing personnel and causing inaccurate judgment of the preheating state of the raw materials and having an adverse impact on the processing state; at the same time, when the arc-shaped rubber block 602 moves, it drives the semi-spherical balls 603 to collide with each other to generate a sound, thereby providing a prompt for the blind area of the processing personnel's sight and ensuring that the processing personnel understand whether the device is operating normally and can be maintained in time in case of a failure.

[0036] When the L-shaped plate 402 rotates, it drives the ladder plate 71 to rotate synchronously. When the ladder plate 71 rotates, it will continuously resist the sliding ball 72 and slide upward along the right inner wall of the device body 1. The sliding ball 72 will drive the knocking column 73 to move synchronously. The knocking column 73 will continuously knock on the bottom of the device body 1 to generate vibration force. The bubbles generated by excessive rotation speed when the solid and liquid raw materials are fused are vibrated and eliminated through the vibration force to prevent the bubbles from affecting the quality of the finished product, thereby causing unqualified finished products and causing economic losses; at the same time, the sliding ball 72 is reset by the spring; when the sliding ball 72 moves downward, it drives the guide plate 701 to move synchronously. At this time, the guide plate 701 is driven by the downward force of the sliding ball 72 and When the guide plate 701 descends, the impact force of the solid-liquid mixture continuously swings toward the center of the electric telescopic column 41, thereby pushing the solid-liquid mixture pushed by the inclined plate 42 when stirring in the original direction, and repeating this process. This promotes the stirring frequency of the solid-liquid mixture, thereby accelerating the mixing speed of the solid-liquid mixture, further improving the mixing degree of the solid-liquid mixture, and shortening the processing time. The guide plate 701 will also drive the elastic plate 702 to move synchronously. When the elastic plate 702 moves, it uses its own elasticity to buffer the impact force of the solid-liquid mixture, thereby reducing the impact force on the guide plate 701, avoiding damage to the guide plate 701, and increasing the number of parts replacement times.

[0037] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.

[0038] Finally, it should be noted that the above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art can still modify the technical solutions described in the aforementioned embodiments or replace some of the technical features therein by equivalents. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. An inclined reactor stirrer, comprising a device main body (1), and a round hole is arranged at the top of the device main body (1). A support assembly (2) is arranged on the outer side of the device main body (1). A feed box (3) is arranged at the top of the device main body (1), and a feed inlet is arranged at the top of the feed box (3). It is characterized in that: It further includes a cross-flow device (4), an anti-caking device (5), an anti-adhesion device (6) and an anti-bubble device (7). The cross-flow device (4) is arranged inside the device main body (1), the anti-caking device (5) is arranged inside the feed box (3), the anti-adhesion device (6) is arranged below the anti-caking device (5), and the anti-bubble device (7) is arranged on the right side of the cross-flow device (4). The cross-flow device (4) includes an electric telescopic column (41), an inclined disk (42) and a cross-flow assembly (400). The top of the electric telescopic column (41) is rotatably installed on the top inner wall of the device main body (1), and the electric telescopic column (41) is fixedly connected to the output end of an external motor. The external motor is arranged on the top of the device main body (1). The right side of the inclined disk (42) is rotatably installed on the left inclined surface of the telescopic end of the electric telescopic column (41). A stirring plate is fixedly installed on the outer wall surface of the inclined disk (42), and a driving motor is built in the inclined disk (42). The cross-flow assembly (400) is arranged above the electric telescopic column (41).

2. The inclined reactor agitator according to claim 1, wherein: The cross-flow assembly (400) includes a rotating ring (401), an L-shaped plate (402) and a scraping block (403). The inner wall of the rotating ring (401) is fixedly installed on the outer side of the outer wall of the electric telescopic column (41). The top of the L-shaped plate (402) is fixedly installed at the bottom of the rotating ring (401). The scraping block (403) is sleeved on the outer wall surface of the telescopic end of the electric telescopic column (41), and the top of the scraping block (403) is fixedly installed at the bottom of the electric telescopic column (41).

3. The inclined reactor agitator according to claim 2, characterized in that: A fan plate is fixedly installed on the outer wall surface of the rotating ring (401). The L-shaped plates (402) are symmetrically distributed with the electric telescopic column (41) as the center. The left side of the bottom of the L-shaped plate (402) is fixedly installed on the right side of the scraping block (403).

4. The inclined reactor agitator according to claim 3, characterized in that: The anti-caking device (5) includes a heating ring (51), a rotating column (52), a convex spherical rod (53) and an anti-caking assembly (500). The inner wall of the heating ring (51) is fixedly installed on the outer wall surface of the feed box (3). The bottom of the rotating column (52) is fixedly installed on the top of the electric telescopic column (41), and an arc groove is arranged on the outer wall of the rotating column (52). The left side of the convex spherical rod (53) is fixedly installed on the right side of the rotating column (52) near the top end. The anti-caking assembly (500) is arranged on the left side of the rotating column (52).

5. The inclined reactor stirrer according to claim 4, characterized in that: The anti-caking assembly (500) includes a cross column (501), a scraping ring (502) and an activated carbon filter screen (503). The right side of the cross column (501) is slidably installed inside the arc groove on the outer wall of the rotating column (52). The outer wall of the scraping ring (502) is slidably installed on the inner wall surface of the feed box (3), and the left side of the inner wall of the scraping ring (502) is fixedly connected to the left side of the cross column (501). The outer wall surface of the activated carbon filter screen (503) is fixedly installed at the bottom of the inner wall of the scraping ring (502).

6. The inclined reactor agitator according to claim 5, wherein: The anti-adhesion device (6) includes a shrapnel piece (61), an arc plate (62) and an anti-adhesion assembly (600). The top of the shrapnel piece (61) is fixedly installed at the bottom of the activated carbon filter screen (503). The top of the arc plate (62) is fixedly installed at the bottom of the shrapnel piece (61). The anti-adhesion assembly (600) is arranged above the arc plate (62).

7. An inclined reactor stirrer according to claim 6, characterized in that: The shrapnel pieces (61) are symmetrically distributed with the feeding box (3) as the center. The arc plates (62) are symmetrically distributed with the electric telescopic column (41) as the center, and the bottom of the arc plate (62) is in contact with the top surface of the device main body (1).

8. The inclined reactor stirrer according to claim 7, characterized in that: The anti-adhesion assembly (600) includes a hinge rod (601), an arc-shaped rubber block (602) and a semi-sphere (603). The left side of the hinge rod (601) is hinged to the right side of the inner wall of the arc plate (62). The bottom of the arc-shaped rubber block (602) is hinged to the right side of the hinge rod (601), and the top surface of the arc-shaped rubber block (602) is in contact with the bottom surface of the activated carbon filter screen (503). The left side of the semi-sphere (603) is fixedly installed on the right surface of the arc-shaped rubber block (602).

9. The inclined reactor agitator according to claim 8, characterized in that: The anti-bubble device (7) includes a ladder plate (71), a sliding ball (72), a knocking column (73) and an anti-bubble assembly (700). The left side of the ladder plate (71) is fixedly installed on the right side of the L-shaped plate (402). The right side of the sliding ball (72) is slidably installed on the right side of the inner wall of the device main body (1), and a spring is fixedly installed between the sliding ball (72) and the inside of the device main body (1). The sliding ball (72) is located on the inclined movement track of the ladder plate (71). The top of the knocking column (73) is fixedly installed at the bottom of the sliding ball (72), and the bottom of the inner wall of the device main body (1) is located on the movement track of the bottom of the knocking column (73). The anti-bubble assembly (700) is arranged on the left side of the knocking column (73).

10. A tilting reactor agitator according to claim 9, characterized in that: The anti-bubble assembly (700) includes a diversion plate (701) and an elastic plate (702). The top of the diversion plate (701) is hinged to the outer surface of the knocking column (73) near the top end, and a torsion spring is arranged between the diversion plate (701) and the knocking rod (73). The right side of the elastic plate (702) is fixedly installed on the left surface of the diversion plate (701).

Citation Information

Patent Citations

  • Oblique type stirring reaction still

    CN202951473U