Stirring device for new materials

By introducing a diverting device into the agitating device, the motor-driven conduit and partition structure are used to solve the problem of slow diffusion of new materials and achieve a more efficient mixing effect.

CN223196946UActive Publication Date: 2025-08-08LIAONING YIDE NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202421590734.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-08
Publication Date
2025-08-08
Estimated Expiration
2034-07-08

AI Technical Summary

Technical Problem

When two or more existing materials are mixed and stirred, the materials are difficult to spread quickly, resulting in an extended stirring time.

Method used

An agitating device including an installation device and a diversion device is designed. By installing a diversion device in the agitating box, a first conduit and a second conduit communicating with the storage box are used to combine the motor drive and partition structure to realize the diversion and diffusion of materials.

Benefits of technology

The mixing and mixing efficiency of the new material is improved, so that the material diffuses at different heights in the inner cavity of the mixing box, shortening the stirring time.

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Abstract

The utility model discloses a new material stirring device in the technical field of new material processing equipment, which comprises a mounting device and a shunting device, the mounting device comprises a stirring box, a first motor, a material storage box, a second motor and a stirring mechanism, and the first motor and the material storage box are both fixed at the top of the stirring box through bolts; the stirring device for the new materials is reasonable in arrangement and structural design, the flow dividing device is mounted in the inner cavity of the stirring box, the mounting column in the flow dividing device communicates with the material storage box, and the first guide pipes communicating with the inner cavity of the material storage box are mounted in the mounting column, so that in the stirring process of the new materials, when the new materials need to be added, the flow dividing device and the mounting column communicate with each other; by means of the structure, materials can be added, the materials can be divided into multiple parts, the materials can be discharged at different heights in the inner cavity of the stirring box, the materials can be diffused more easily, and the stirring and mixing efficiency of new materials is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of new material processing equipment, in particular to a stirring device for new materials. Background Art

[0002] New materials refer to some materials that have been recently developed or are under development and have superior performance. They have better performance than traditional materials. In recent years, new materials have received more and more attention, and the country has also attached importance to the development of the new materials industry. With the advancement of science and technology, new materials for industrial textiles are constantly showing a development trend, and their uses are constantly expanding to various fields. In the production process of new materials, a stirring device is needed to mix the raw materials for use.

[0003] When mixing two or more materials, existing new materials are usually poured into the mixing box at once, which makes it difficult for the materials to spread quickly and requires longer mixing time to complete the mixing. To this end, a new technical solution is needed to solve this problem. Utility Model Content

[0004] The purpose of the present utility model is to provide a stirring device for new materials to solve the problem that when the new materials proposed in the above background technology are mixed and stirred with two or more materials, the materials are usually poured into the mixing box, which makes it difficult for the materials to diffuse quickly and requires an increased stirring time to complete the mixing.

[0005] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a stirring device for new materials, comprising a mounting device and a diverter device, the mounting device comprising a stirring box, a first motor, a material storage box, a second motor and a stirring mechanism, the first motor and the material storage box are both fixed to the top of the stirring box by bolts, the second motor is fixed to the bottom of the stirring box by bolts, the stirring mechanism is located in the inner cavity of the stirring box, and the first motor is connected to the stirring mechanism through a gear; the diverter device is located in the middle of the inner cavity of the stirring box, the diverter device comprises a mounting post, an extension plate, a first conduit and a second conduit, the top of the mounting post The cam is fixedly connected to the bottom of the material storage box, and a plurality of rotating holes are opened on the outer wall of the mounting column. A plurality of first conduits are connected to the inner wall of the mounting column through a reinforcing block. The end of the first conduit passes through the bottom of the material storage box. A partition structure is installed inside the first conduit. A second conduit is distributed under each of the first conduits, and a plurality of second conduits are connected by a reinforcing plate. The reinforcing plate is connected to the second motor through a connecting column. The extension plate passes through the rotating hole and is fixedly connected to the bottom of the second conduit. The interior of the extension plate is a hollow structure, and discharge holes are evenly opened on the bottom of the extension plate.

[0006] In order to separate the inner cavity of the storage box and control the closing and opening of the partition structure, a stirring device for new materials is preferably used in the present invention. A partition plate is welded to the bottom of the inner cavity of the storage box, and an electric push rod is fixed to the top of the partition plate by bolts. The moving end of the electric push rod is fixed to a mounting plate by bolts, and a plurality of connecting ropes are fixed to the bottom of the mounting plate by bolts. The connecting ropes can extend into the first conduit and be connected to the partition structure.

[0007] In order to control the amount of material flowing in the first conduit, as a preferred stirring device for new materials of the present invention, the partition structure includes a cross bar, a sealing seat and a sealing plug. The cross bar is welded to the inner wall of the first conduit, and a vertical rod passes through the inside of the cross bar. The sealing plug is fixed to the bottom end of the vertical rod by bolts. The sealing seat is located below the sealing plug and is connected to the inner wall of the first conduit by bolts. The outside of the vertical rod is covered with a spring.

[0008] In order to stir the material in the inner cavity of the mixing box, a stirring device for new materials is preferably used in the present invention. The stirring mechanism includes a gear ring, a connecting plate and a connecting ring. The gear ring and the connecting ring are connected by multiple connecting plates. An annular groove is opened on the inner side wall of the mixing box. The gear ring and the connecting ring are respectively connected to the annular groove through a limiting ring. A stirring rod is welded on the side of the connecting plate pointing to the mounting column.

[0009] In order to prevent the new material from gathering at the bottom of the inner cavity of the mixing box, as a preferred stirring device for new materials in the present invention, two scrapers are symmetrically distributed at the bottom of the connecting ring, one end of the scraper is welded to the bottom of the connecting ring, and the other end is in contact with the outer wall of the mounting column, and the scraper is in rotational contact with the bottom of the inner cavity of the mixing box.

[0010] In order to make the stirring rod and the extension plate be in different planes and facilitate the addition of materials, as a preferred stirring device for new materials of the present invention, the stirring rods installed on the outer side walls of the two adjacent connecting plates are staggered with each other, and the stirring rods on the two outer side walls of the connecting plates are at the same height, and the extension plate is staggered with the stirring rod in the vertical direction.

[0011] Compared with the prior art, the beneficial effects of the present invention are: the setting of the stirring device for new materials is reasonable in structural design, and a diverter device is installed in the inner cavity of the mixing box, and the mounting column in the diverter device is connected to the storage box, and a plurality of first conduits connected to the inner cavity of the storage box are installed inside the mounting column, and a second conduit corresponding to the first conduit is distributed below the first conduit, and the second conduit can be driven by the second motor and the connecting column to rotate back and forth, so that the end of the second conduit contacts or separates from the bottom end of the first conduit, and a plurality of extension plates are distributed in the vertical direction outside the mounting column, and the material in the storage box can be diffused from the extension plate to the inner cavity of the mixing box through the first conduit and the second conduit. Therefore, when new material needs to be added during the mixing of the new material, the material can be added through this structure, and the material can be divided into multiple portions, and the material can be discharged at different heights in the inner cavity of the mixing box, so that the material can be more easily diffused, thereby improving the mixing efficiency of the new material. BRIEF DESCRIPTION OF THE DRAWINGS

[0012] Figure 1 This is a schematic diagram of the internal structure of the mixing box of the utility model;

[0013] Figure 2 This is a schematic structural diagram of the diversion device of the utility model;

[0014] Figure 3 This is a schematic diagram of the closed connection structure of the catheter of the utility model;

[0015] Figure 4 This is a schematic diagram of the three-dimensional structure of the utility model;

[0016] Figure 5 This is a schematic diagram of the internal structure of the first conduit of the present invention.

[0017] In the figure: 100, mounting device; 110, mixing box; 111, scraper; 120, first motor; 121, gear; 130, storage box; 131, partition plate; 1311, electric push rod; 1312, mounting plate; 1313, connecting rope; 140, second motor; 141, connecting column; 150, mixing mechanism; 151, gear ring; 152, connecting plate; 153, mixing rod; 154, connecting ring; 155, limiting ring;

[0018] 200, diverter; 210, mounting column; 211, rotating hole; 212, reinforcement plate; 213, reinforcement block; 220, extension plate; 230, first conduit; 231, partition structure; 2311, cross bar; 2312, sealing seat; 2313, sealing plug; 2314, vertical pole; 2315, spring; 240, second conduit. DETAILED DESCRIPTION

[0019] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0020] See also Figure 1-5 The utility model provides a technical solution: including an installation device 100 and a diversion device 200.

[0021] In the present technical solution, a stirring device for new materials, the installation device 100 includes a stirring box 110, a first motor 120, a storage box 130, a second motor 140 and a stirring mechanism 150, the outer wall of the stirring box 110 is welded with a feeding pipe, a discharge pipe is installed at the bottom of the stirring box 110, and a valve is installed on the discharge pipe. The first motor 120 and the storage box 130 are fixed to the top of the stirring box 110 by bolts, the second motor 140 is fixed to the bottom of the stirring box 110 by bolts, the stirring mechanism 150 is located in the inner cavity of the stirring box 110, the first motor 120 is connected to the stirring mechanism 150 by a gear 121, and the gear 121 is keyed to the driving end of the first motor 120;

[0022] In this technical solution, the mixing box 110 is used to provide installation points for the installation of multiple parts, and can complete the mixing and mixing of multiple materials. The first motor 120 and the gear 121 can drive the stirring mechanism 150 to rotate. The rotation of the stirring mechanism 150 can stir the material to make it mixed. The storage box 130 can temporarily store the material added to the inner cavity of the mixing box 110. The second motor 140 and the connecting column 141 can drive the reinforcement plate 212 to rotate, so that the second conduit 240 is docked or misaligned with the first conduit 230.

[0023] The diverter device 200 is located in the middle of the inner cavity of the mixing box 110. The diverter device 200 includes a mounting column 210, an extension plate 220, a first conduit 230 and a second conduit 240. The top of the mounting column 210 is fixedly connected to the bottom of the storage box 130. The outer wall of the mounting column 210 is provided with multiple rotating holes 211. Multiple first conduits 230 are connected to the inner wall of the mounting column 210 through a reinforcing block 213. The reinforcing block 213 is sleeved on the outside of the first conduit 230 and fixed to the inner wall of the mounting column 210 through bolts. The end of the first conduit 230 passes through the bottom of the storage box 130, and the first conduit 230 is connected to the inner cavity of the storage box 130. A partition structure 231 is installed inside the first conduit 230. A second conduit 240 is distributed correspondingly below each first conduit 230, and the top of the second conduit 240 can be connected to the bottom of the first conduit 230. The first and second ducts 230 and 240 are in contact with each other, so that the inner cavities of the first and second ducts 230 and 240 are in a communicating state, and the multiple second ducts 240 are connected by the reinforcing plate 212. The reinforcing plate 212 is sleeved on the outside of the second duct 240 and fixed. The outer wall of the reinforcing plate 212 is in rotational contact with the inner wall of the mounting post 210. The interior of the reinforcing plate 212 is perforated. The reinforcing plate 212 is connected to the second motor 140 through the connecting post 141. The bottom end of the connecting post 141 is keyed to the driving end of the second motor 140. The connecting post 141 passes through the mixing box 110 and the mounting post 210 from bottom to top in sequence. The top of the connecting post 141 is fixed to the bottom of the reinforcing plate 212 by bolts. The extension plate 220 passes through the rotating hole 211 and is fixedly connected to the bottom of the second duct 240. The interior of the extension plate 220 is a hollow structure, and the bottom of the extension plate 220 is evenly provided with discharge holes.

[0024] In this technical solution, the mounting column 210 provides an installation point for the installation of multiple parts. The inner cavity of the storage box 130 is divided by the partition plate 131 to form multiple chambers, and each chamber corresponds to a first conduit 230. When the first conduit 230 and the second conduit 240 are docked, the partition structure 231 is in an open state. The material in the separated chamber can pass through the first conduit 230 and the second conduit 240 into the extension plate 220 and flow out from the discharge hole at the bottom of the extension plate 220 to improve the diffusion efficiency of the material. When the first conduit 230 and the second conduit 240 are misaligned, the partition structure 231 is in a closed state.

[0025] In some technical solutions, reference Figure 1 and Figure 5A partition plate 131 is welded to the bottom of the inner cavity of the storage box 130, and an electric push rod 1311 is fixed to the top of the partition plate 131 by bolts. The moving end of the electric push rod 1311 is fixed to a mounting plate 1312 by bolts, and a plurality of connecting ropes 1313 are fixed to the bottom of the mounting plate 1312 by bolts. The connecting ropes 1313 can extend into the first conduit 230 and be connected to the partition structure 231.

[0026] In this technical solution, the partition plate 131 divides the inner cavity of the storage box 130 into equal parts, and the electric push rod 1311 can control the vertical movement of the connecting rope 1313 through the mounting plate 1312. When the connecting rope 1313 moves in the vertical direction, it can drive the vertical rod 2314 to move synchronously, so as to realize the control of the contact and separation of the sealing plug 2313 and the sealing seat 2312.

[0027] In some technical solutions, reference Figure 5 The partition structure 231 includes a cross bar 2311, a sealing seat 2312 and a sealing plug 2313. The cross bar 2311 is welded to the inner wall of the first conduit 230. A vertical pole 2314 runs through the interior of the cross bar 2311. The bottom of the connecting rope 1313 is fixed to the top of the vertical pole 2314 by bolts. The sealing plug 2313 is fixed to the bottom end of the vertical pole 2314 by bolts. The sealing seat 2312 is located below the sealing plug 2313 and is connected to the inner wall of the first conduit 230 by bolts. A through hole is opened inside the sealing seat 2312, and the sealing plug 2313 can be close to the inner wall of the through hole. A spring 2315 is sleeved on the outside of the vertical pole 2314, and the spring 2315 is located in the middle of the cross bar 2311 and the sealing plug 2313.

[0028] In this technical solution, when the connecting rope 1313 generates an upward pulling force on the opposing rod 2314, the spring 2315 is in a compressed state, and the sealing plug 2313 is separated from the sealing seat 2312, so that the material can flow out from the through hole in the sealing seat 2312. When the connecting rope 1313 releases the pulling force on the opposing rod 2314, the spring 2315 returns to its original position, pushing the sealing plug 2313 downward until it contacts the sealing seat 2312, thereby controlling the opening and closing of the inner cavity of the first conduit 230.

[0029] In some technical solutions, reference Figure 1-2The stirring mechanism 150 includes a gear ring 151, a connecting plate 152 and a connecting ring 154. The gear ring 151 and the connecting ring 154 are connected by multiple connecting plates 152. A tooth groove is opened on the inner side wall of the gear ring 151. The gear 121 is meshed with the gear ring 151. The two ends of the connecting plate 152 are respectively welded to the gear ring 151 and the connecting ring 154. The multiple connecting plates 152 are distributed in an annular manner. An annular groove is opened on the inner side wall of the mixing box 110. The gear ring 151 and the connecting ring 154 are respectively connected to the annular groove through a limiting ring 155. The two limiting rings 155 are respectively fixed to the outer side walls of the gear ring 151 and the connecting ring 154 by bolts. The limiting ring 155 rotates in the annular groove, and a stirring rod 153 is welded on the side of the connecting plate 152 pointing to the mounting column 210.

[0030] In this technical solution, the gear ring 151 , the connecting plate 152 and the connecting ring 154 form a frame and rotate along the inner wall of the mixing box 110 , so that the stirring rod 153 can always stir the material in the inner cavity of the mixing box 110 .

[0031] In some technical solutions, reference Figure 1 Two scrapers 111 are symmetrically distributed at the bottom of the connecting ring 154. One end of the scraper 111 is welded to the bottom of the connecting ring 154, and the other end is in contact with the outer wall of the mounting column 210. The scraper 111 is in rotational contact with the bottom of the inner cavity of the mixing box 110.

[0032] In this technical solution, when the scraper 111 rotates synchronously with the connecting ring 154, the scraper 111 can scrape the bottom of the inner cavity of the mixing box 110 to prevent the material from settling at the bottom of the inner cavity of the mixing box 110 and not completing mixing.

[0033] In some technical solutions, reference Figure 1-3 The stirring rods 153 installed on the outer walls of two adjacent connecting plates 152 are staggered with each other, and the stirring rods 153 on the outer walls of the two spaced connecting plates 152 are at the same height, and the extension plate 220 is staggered with the stirring rod 153 in the vertical direction.

[0034] In this technical solution, the extension plates 220 and 253 are in different planes in the vertical direction, so the rotation of the stirring rod 153 will not affect the extension plate 220, allowing the extension plate 220 to easily lead the material into the inner cavity of the stirring box 110.

[0035] Working principle: first, the mixed material is introduced into the inner cavity of the mixing box 110 through the feeding pipe, and the first motor 120, the second motor 140 and the electric push rod 1311 are connected to the external control device and power supply, and the control switch of the first motor 120 is started. The first motor 120 drives the stirring mechanism 150 to rotate along the inner wall of the mixing box 110 through the gear 121. When the stirring mechanism 150 rotates, its stirring rod 153 can stir the material in the inner cavity of the mixing box 110 to make it mixed evenly. When new material needs to be added during stirring, the material is weighed and introduced into the inner cavity of the storage box 130. The material is divided equally under the action of the partition plate 131. At this time, the partition structure 231 is in a closed state, and the first conduit 230 and the second conduit 240 are in a staggered state. At this time, the control switch of the second motor 140 is operated, and the second motor 140 drives the reinforcement plate 212 to rotate through the connecting column 141. At this time, the reinforcement plate 212 The second conduit 240 is driven to rotate counterclockwise, and the extension plate 220 rotates in the rotating hole 211 until the top of the second conduit 240 contacts the bottom of the first conduit 230, and the control switch of the electric push rod 1311 is turned on. The electric push rod 1311 drives the connecting rope 1313 to move upward through the mounting plate 1312. The connecting rope 1313 exerts an upward pulling force on the vertical rod 2314, so that the sealing plug 2313 is separated from the sealing seat 2312. At this time, the material can flow in the inner cavity of the first conduit 230 and flow into the second conduit 240, and finally enter the extension plate 220 and flow out from the discharge hole. Since the multiple extension plates 220 are in different planes in the vertical direction, the material can be diffused at different locations and stirred by the stirring mechanism 150 to accelerate the mixing efficiency of the material. After the mixing process of the new material is completed, the valve on the discharge pipe is opened to discharge the mixed material from the inner cavity of the mixing box 110.

[0036] It should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such process, method, article, or apparatus.

[0037] While the present invention has been described above with reference to exemplary embodiments, various modifications may be made and equivalent components may be substituted without departing from the scope of the present invention. In particular, as long as no structural conflicts exist, the various features of the disclosed embodiments may be combined with one another in any manner. The omission of an exhaustive description of these combinations in this specification is solely for the sake of space and resource conservation. Therefore, the present invention is not limited to the specific embodiments disclosed herein, but encompasses all technical solutions within the scope of the claims.

Claims

1. A stirring device for new materials, characterized by: The invention comprises an installation device (100) and a diversion device (200), wherein the installation device (100) comprises a mixing box (110), a first motor (120), a material storage box (130), a second motor (140) and a mixing mechanism (150), wherein the first motor (120) and the material storage box (130) are both fixed to the top of the mixing box (110) by bolts, the second motor (140) is fixed to the bottom of the mixing box (110) by bolts, the mixing mechanism (150) is located in the inner cavity of the mixing box (110), and the first motor (120) is connected to the mixing mechanism (150) by a gear (121); The diverter device (200) is located in the middle of the inner cavity of the mixing box (110), and the diverter device (200) includes a mounting column (210), an extension plate (220), a first conduit (230) and a second conduit (240). The top of the mounting column (210) is fixedly connected to the bottom of the storage box (130). The outer wall of the mounting column (210) is provided with a plurality of rotation holes (211). The plurality of first conduits (230) are connected to the inner wall of the mounting column (210) through a reinforcement block (213). The end of the first conduit (230) passes through the bottom of the storage box (130). A partition structure (231) is installed inside the first conduit (230), and a corresponding second conduit (240) is distributed below each first conduit (230), and multiple second conduits (240) are connected by a reinforcement plate (212), and the reinforcement plate (212) is connected to the second motor (140) through a connecting column (141). The extension plate (220) passes through the rotating hole (211) and is fixedly connected to the bottom of the second conduit (240). The interior of the extension plate (220) is a hollow structure, and the bottom of the extension plate (220) is evenly opened with discharge holes.

2. A stirring device for new materials according to claim 1, characterized in that: A partition plate (131) is welded to the bottom of the inner cavity of the storage box (130), an electric push rod (1311) is fixed to the top of the partition plate (131) by bolts, a mounting plate (1312) is fixed to the movable end of the electric push rod (1311) by bolts, and a plurality of connecting ropes (1313) are fixed to the bottom of the mounting plate (1312) by bolts, and the connecting ropes (1313) can extend into the first conduit (230) and be connected to the partition structure (231).

3. The stirring device for new materials according to claim 1, characterized in that: The partition structure (231) includes a cross bar (2311), a sealing seat (2312) and a sealing plug (2313); the cross bar (2311) is welded to the inner wall of the first conduit (230); a vertical rod (2314) passes through the interior of the cross bar (2311); the sealing plug (2313) and the bottom end of the vertical rod (2314) are fixed by bolts; the sealing seat (2312) is located below the sealing plug (2313) and is connected to the inner wall of the first conduit (230) by bolts; and a spring (2315) is sleeved on the outside of the vertical rod (2314).

4. The stirring device for new materials according to claim 1, characterized in that: The stirring mechanism (150) comprises a gear ring (151), a connecting plate (152) and a connecting ring (154); the gear ring (151) and the connecting ring (154) are connected via a plurality of connecting plates (152); an annular groove is provided on the inner side wall of the stirring box (110); the gear ring (151) and the connecting ring (154) are respectively connected to the annular groove via a limiting ring (155); a stirring rod (153) is welded to the side of the connecting plate (152) pointing towards the mounting column (210).

5. A stirring device for new materials according to claim 4, characterized in that: Two scrapers (111) are symmetrically distributed at the bottom of the connecting ring (154), one end of the scraper (111) is welded to the bottom of the connecting ring (154), and the other end is in contact with the outer wall of the mounting column (210), and the scraper (111) is in rotational contact with the bottom of the inner cavity of the stirring box (110).

6. A stirring device for new materials according to claim 4, characterized in that: The stirring rods (153) installed on the outer side walls of two adjacent connecting plates (152) are staggered with each other, and the stirring rods (153) on the outer side walls of the two spaced connecting plates (152) are at the same height, and the extension plate (220) is staggered with the stirring rods (153) in the vertical direction.