Magnet assembling apparatus with hopper function

By assembling the horizontal and vertical expansion components of the equipment with magnets, the attractive force of the magnets is used to achieve convenient expansion and positioning of the hopper, solving the installation problems in the existing technology and improving the installation efficiency of the expanded hopper.

CN117342140BActive Publication Date: 2026-01-27苏州锐更智能科技有限公司
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Patent Information

Application Number
CN202311570162.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-11-23
Publication Date
2026-01-27
Estimated Expiration
2043-11-23

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Abstract

The application discloses a magnet assembling device with a hopper function, which comprises a connecting assembly, wherein the connecting assembly comprises a funnel, a meander plate, a support and a discharge pipe; the meander plate is fixedly sleeved on the funnel; the support is fixedly installed at the bottom of the meander plate; the discharge pipe is fixedly installed at the bottom of the funnel; a horizontal expansion assembly for horizontally adjusting and expanding the capacity of the hopper is arranged on the connecting assembly; two vertical expansion assemblies for vertically adjusting and expanding the capacity of the hopper are arranged on the horizontal expansion assembly; the horizontal expansion assembly comprises two rectangular plates, four rectangular grooves, a positive magnet, four plug-in plates, a negative magnet, four stepped plates and two bottom plates. The magnet assembling device with the hopper function has the advantages that the capacity of the hopper can be horizontally and vertically adjusted and expanded, and the hopper can be positioned and installed.
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Description

Technical Field

[0001] This invention relates to the field of silo technology, and more specifically to a magnet assembly device with silo function. Background Technology

[0002] A silo is an industrial structure used in industrial buildings to store raw materials, fuel, grain, industrial products, or semi-finished products. In modern industrial production, silos are often needed to store bulk materials and are frequently used industrial structures. Silos are mainly containers used to store materials. The upper part of a silo is mostly cylindrical or prismatic, while the lower part is a conical funnel with a discharge outlet. The material in the silo is discharged from the bottom discharge outlet.

[0003] However, in the existing technology, when the length, width and capacity of the expansion silo are increased, the expansion material needs to be supported before installation. Due to the size, it is often difficult to align during installation, and there is a lack of positioning and installation of the expansion material, which makes the assembly of the expansion silo quite troublesome. Summary of the Invention

[0004] The purpose of this invention is to provide a magnet assembly device with a hopper function, which has the advantages of convenient horizontal and vertical adjustment of the hopper to expand capacity and positioning installation, thereby solving the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a magnet assembly device with a hopper function, comprising a connecting assembly, the connecting assembly including a funnel, a U-shaped plate, a bracket, and a discharge pipe, the U-shaped plate being fixedly sleeved on the funnel, the bracket being fixedly installed at the bottom of the U-shaped plate, and the discharge pipe being fixedly installed at the bottom of the funnel; the connecting assembly is provided with a lateral expansion component for horizontally adjusting and expanding the capacity of the hopper, and the lateral expansion component is provided with two vertical expansion components for vertically adjusting and expanding the capacity of the hopper; the lateral expansion component includes two rectangular plates, four rectangular slots, a positive magnet, four insert plates, a negative magnet, four stepped plates, two base plates, two L-shaped plates, and four C-shaped plates. The device comprises a rectangular plate and two sealing plates. The two rectangular plates are mounted on the connecting assembly. Four rectangular slots are respectively formed on the two rectangular plates. A positive magnet is evenly distributed within the four rectangular slots. Four insert plates are slidably mounted within the four rectangular slots. A negative magnet is evenly distributed on the four insert plates. Four stepped plates are fixedly mounted on the four insert plates. Two base plates are fixedly mounted on the bottom of the four stepped plates. Two L-shaped plates are fixedly mounted on the two base plates. Four C-shaped plates are fixedly mounted on the two L-shaped plates. Two sealing plates are respectively positioned within the four C-shaped plates. The positive and negative magnets attract each other. Both rectangular plates are fixedly connected to the funnel.

[0006] Furthermore, connecting magnets are evenly distributed on the four said slides, and the connecting magnets attract each other to the positive pole magnet.

[0007] Furthermore, the lateral expansion assembly also includes four sliding plates and four support legs. The four sliding plates are slidably installed in the four C-shaped plates or four rectangular slots, the four sliding plates are fixedly installed on the two sealing plates, and the four support legs are fixedly installed on the bottom of the two base plates. The four sliding plates are adapted to the four C-shaped plates or four rectangular slots.

[0008] Furthermore, the vertical expansion assembly includes two mounting cavities, two springs, two limiting plates, and two cylinders. Both mounting cavities are formed on a rectangular plate. The two springs are fixedly installed in the two mounting cavities respectively. The two limiting plates are slidably installed in the two mounting cavities respectively. The top ends of the two springs are fixedly connected to the two limiting plates respectively. The two cylinders are fixedly installed on the two limiting plates respectively.

[0009] Furthermore, two positioning plates are fixedly installed on the top of the rectangular plate, and two positioning grooves are opened at the bottom of the upright plate, with the two positioning plates matching the two positioning grooves.

[0010] Furthermore, the vertical expansion assembly also includes a vertical plate, two circular slots, two positive magnets, and two negative magnets. The vertical plate is positioned above the rectangular plate, and the two circular slots are both located at the bottom of the vertical plate. The circular slots are adapted to the two cylinders. The two positive magnets are respectively fixedly installed on the inner top walls of the two circular slots, and the two negative magnets are respectively fixedly installed on the tops of the two cylinders. The positive magnets and negative magnets attract each other.

[0011] In summary, due to the adoption of the above-mentioned technologies, the beneficial effects of this invention are:

[0012] This invention, by setting a lateral expansion component, lifts the stepped plate, which in turn moves the insert plate. The insert plate aligns with and is inserted into the rectangular groove, disappearing into the groove. The insert plate then moves the stepped plate, which in turn moves the base plate. The base plate then moves the L-shaped and C-shaped plates. As the insert plate slides within the rectangular groove, it moves the negative magnet. The negative magnet attracts and adheres to the positive magnet within the rectangular groove, facilitating lateral adjustment and expansion of the hopper's capacity and positioning installation.

[0013] This invention utilizes a vertical expansion assembly to lift a vertical plate and place it on a rectangular plate. The vertical plate is then moved and finely slid along the rectangular plate to adjust its position. The vertical plate compresses a cylinder, causing the cylinder to retract and move a limiting plate. The limiting plate moves within the mounting cavity and compresses a spring. The spring deforms under this compression, accumulating elastic force. When the circular groove aligns with the cylinder, the spring releases its compressive force and pushes the limiting plate. The limiting plate then causes the cylinder to reset and submerge into the circular groove. The cylinder then causes the negative magnet to submerge into the circular groove and attract the positive magnet, facilitating vertical adjustment, capacity expansion, and positioning of the hopper. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall structure of a magnet assembly device with a hopper function according to the present invention;

[0015] Figure 2 This is a front sectional view of a magnet assembly device with a hopper function according to the present invention.

[0016] Figure 3 This is a side sectional view of a magnet assembly device with a hopper function according to the present invention.

[0017] Figure 4 In this invention Figure 3 A magnified structural diagram of part A;

[0018] Figure 5 This is a top cross-sectional view of a magnet assembly device with a hopper function according to the present invention.

[0019] Figure 6 This is a partial assembly structure diagram of the lateral expansion component in this invention;

[0020] Figure 7 This is a partial assembly structure diagram of the lateral expansion component in this invention.

[0021] In the diagram: 1. Connecting assembly; 101. Funnel; 102. U-shaped plate; 103. Support; 104. Discharge pipe; 2. Lateral expansion assembly; 201. Rectangular plate; 202. Rectangular groove; 203. Positive magnet one; 204. Insert plate; 205. Negative magnet one; 206. Step plate; 207. Base plate; 208. L-shaped plate; 209. C-shaped plate; 210. Sealing plate; 211. Slide plate; 212. Support leg; 3. Vertical expansion assembly; 301. Mounting cavity; 302. Spring; 303. Limiting plate; 304. Cylinder; 305. Vertical plate; 306. Circular groove; 307. Positive magnet two; 308. Negative magnet two. Detailed Implementation

[0022] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention. Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to represent selected embodiments of the invention. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0023] This invention provides, for example Figure 1-7As shown, a magnet assembly device with a hopper function includes a connecting assembly 1. The connecting assembly 1 includes a funnel 101, a U-shaped plate 102, a support 103, and a discharge pipe 104. The U-shaped plate 102 is fixedly sleeved on the funnel 101, the support 103 is fixedly installed at the bottom of the U-shaped plate 102, and the discharge pipe 104 is fixedly installed at the bottom of the funnel 101. The connecting assembly 1 is provided with a lateral expansion assembly 2 for laterally adjusting and expanding the capacity of the hopper. This structure is used to solve the problem of lacking positioning during hopper expansion, which makes expansion cumbersome. The lateral expansion assembly 2 is provided with two... A vertical expansion component 3 for vertically adjusting and expanding the capacity of the silo; a horizontal expansion component 2 comprising two rectangular plates 201, four rectangular slots 202, a positive magnet 203, four insert plates 204, a negative magnet 205, four stepped plates 206, two base plates 207, two L-shaped plates 208, four C-shaped plates 209, and two sealing plates 210. The two rectangular plates 201 are both mounted on the connecting component 1. The four rectangular slots 202 are respectively formed on the two rectangular plates 201. The positive magnets 203 are evenly distributed within the four rectangular slots 202. The four insert plates 204 are slidably mounted on the four... Within a rectangular groove 202, the negative magnet 205 is evenly distributed on four insert plates 204. Four stepped plates 206 are fixedly installed on the four insert plates 204. Two base plates 207 are fixedly installed at the bottom of the four stepped plates 206. Two L-shaped plates 208 are fixedly installed on the two base plates 207. Four C-shaped plates 209 are fixedly installed on the two L-shaped plates 208. Two sealing plates 210 are respectively disposed within the four C-shaped plates 209. The positive magnet 203 and the negative magnet 205 attract each other. Both rectangular plates 201 are fixed to the funnel 101. More specifically, the connection involves lifting the step plate 206, which in turn moves the insert plate 204. The insert plate 204 aligns with and is inserted into the rectangular groove 202, disappearing into the groove. The insert plate 204 then moves the step plate 206, which in turn moves the base plate 207. The base plate 207 then moves the L-shaped plate 208 and the C-shaped plate 209. As the insert plate 204 slides within the rectangular groove 202, it moves the negative magnet 205. The negative magnet 205 attracts and adheres to the positive magnet 203 within the rectangular groove 202, facilitating lateral adjustment of the hopper to expand its capacity and for precise installation.

[0024] In some embodiments, four of the slide plates 211 are evenly distributed with connecting magnets, which attract each other to the positive magnet.

[0025] In addition, the lateral expansion assembly 2 also includes four slide plates 211 and four support legs 212. The four slide plates 211 are slidably installed in the four C-shaped plates 209 respectively, and the four support legs 212 are fixedly installed at the bottom of the two base plates 207 respectively. The four slide plates 211 are adapted to the four rectangular slots 202.

[0026] like Figure 1 As shown, in some embodiments, the vertical expansion component 3 includes two mounting cavities 301, two springs 302, two limiting plates 303, and two cylinders 304. The two mounting cavities 301 are both formed on the rectangular plate 201. The two springs 302 are respectively fixedly installed in the two mounting cavities 301. The two limiting plates 303 are respectively slidably installed in the two mounting cavities 301. The top ends of the two springs 302 are respectively fixedly connected to the two limiting plates 303. The two cylinders 304 are respectively fixedly installed on the two limiting plates 303.

[0027] In some embodiments, two positioning plates are fixedly installed on the top of the rectangular plate 201, and two positioning grooves are opened at the bottom of the upright plate 305, with the two positioning plates matching the two positioning grooves.

[0028] In addition, the vertical expansion component 3 also includes a vertical plate 305, two circular slots 306, two positive magnets 307, and two negative magnets 308. The vertical plate 305 is disposed on the rectangular plate 201. The two circular slots 306 are both formed at the bottom of the vertical plate 305 and are adapted to the two cylinders 304. The two positive magnets 307 are respectively fixedly installed on the top inner walls of the two circular slots 306, and the two negative magnets 308 are respectively fixedly installed on the tops of the two cylinders 304. The positive magnets 307 and negative magnets 308 attract each other. More specifically, the vertical plate 305 is lifted and placed above the rectangular plate 201. The movable vertical plate 305 slides and adjusts its position on the rectangular plate 201. The vertical plate 305 presses against the cylinder 304, causing the cylinder 304 to retract and move the limiting plate 303. The limiting plate 303 moves within the mounting cavity 301 and presses against the spring 302. The spring 302 deforms under the pressure and accumulates elastic force. When the circular groove 306 aligns with the cylinder 304, the spring 302 loses the pressing force, releases the elastic force, and pushes the limiting plate 303. The limiting plate 303 causes the cylinder 304 to reset and sink into the circular groove 306. The cylinder 304 causes the negative magnet 308 to sink into the circular groove 306 and attract each other to the positive magnet 307, facilitating vertical adjustment of the hopper to expand its capacity and for positioning and installation.

[0029] Working principle: First, pull the sealing plate 210, which moves the sliding plate 211. The sliding plate 211 moves out of the rectangular groove 202. At this time, lift the step plate 206, which moves the insert plate 204. The insert plate 204 aligns with the rectangular groove 202 and is inserted. The insert plate 204 is submerged in the rectangular groove 202. The insert plate 204 moves the step plate 206, which in turn moves the base plate 207. The base plate 207 moves the L-shaped plate 208 and the C-shaped plate 209. When the insert plate 204 slides in the rectangular groove 202, it moves the negative magnet 205. The negative magnet 205 attracts and adheres to the positive magnet 203 in the rectangular groove 202. Then, lift the sealing plate 210 again, which moves the sliding plate 211. The sliding plate 211 aligns with the C-shaped plate 209 and... Insertion completes the horizontal expansion. When vertical expansion is needed, lift the upright plate 305 and place it on the rectangular plate 201. Move the upright plate 305 on the rectangular plate 201 for fine-tuning and adjusting its position. The upright plate 305 presses against the cylinder 304, causing the cylinder 304 to retract and move the limiting plate 303. The limiting plate 303 moves within the mounting cavity 301 and presses against the spring 302. The spring 302 deforms under the pressure and accumulates elastic force. When the circular groove 306 aligns with the cylinder 304, the spring 302 loses its pressing force, releases its elastic force, and pushes the limiting plate 303. The limiting plate 303 causes the cylinder 304 to reset and sink into the circular groove 306. The cylinder 304 causes the negative magnet 308 to sink into the circular groove 306 and attract each other to the positive magnet 307. At this point, horizontal expansion can be performed on the upright plate 305, thus completing the vertical expansion.

[0030] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

[0031] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

Claims

1. A magnet assembly device with a hopper function, comprising a connecting assembly, characterized in that: The connecting assembly includes a funnel, a U-shaped plate, a support, and a discharge pipe. The U-shaped plate is fixedly sleeved on the funnel, the support is fixedly installed at the bottom of the U-shaped plate, and the discharge pipe is fixedly installed at the bottom of the funnel. The connecting assembly is provided with a lateral expansion component for horizontally adjusting and expanding the capacity of the hopper, and two vertical expansion components for vertically adjusting and expanding the capacity of the hopper. The lateral expansion component includes two rectangular plates, four rectangular slots, a positive magnet, four insert plates, a negative magnet, four stepped plates, two base plates, two L-shaped plates, four C-shaped plates, and two sealing plates. The two rectangular plates are both set on the connecting assembly. The four rectangular slots are respectively opened on the two rectangular plates. The positive magnets are evenly distributed in the four rectangular slots. The four insert plates are slidably installed in the four rectangular slots. The negative magnets are evenly distributed... On the four insert plates, the four stepped plates are fixedly installed on the four insert plates respectively, the two base plates are fixedly installed on the bottom of the four stepped plates respectively, the two L-shaped plates are fixedly installed on the two base plates respectively, the four C-shaped plates are fixedly installed on the two L-shaped plates respectively, and the two sealing plates are respectively disposed in the four C-shaped plates. The first positive magnet and the first negative magnet attract each other. The two rectangular plates are fixedly connected to the funnel. The lateral expansion assembly also includes four sliding plates and four supporting legs. The four sliding plates are slidably installed in the four C-shaped plates or the four rectangular slots respectively. The four sliding plates are fixedly installed on the two sealing plates respectively. The four supporting legs are fixedly installed on the bottom of the two base plates respectively. The four sliding plates are adapted to the four C-shaped plates or the four rectangular slots. Connecting magnets are evenly distributed on the four sliding plates. The connecting magnets attract each other to the first positive magnet.

2. The magnet assembly equipment with a hopper function according to claim 1, characterized in that: The vertical expansion assembly includes two mounting cavities, two springs, two limiting plates, and two cylinders. Both mounting cavities are formed on a rectangular plate. The two springs are fixedly installed within the two mounting cavities, and the two limiting plates are slidably installed within the two mounting cavities. The top ends of the two springs are fixedly connected to the two limiting plates, and the two cylinders are fixedly installed on the two limiting plates. The vertical expansion assembly also includes a vertical plate, two circular slots, two positive magnets, and two negative magnets. The vertical plate is positioned above the rectangular plate. The two circular slots are formed at the bottom of the vertical plate and are adapted to the two cylinders. The two positive magnets are fixedly installed on the top inner walls of the two circular slots, and the two negative magnets are fixedly installed on the top ends of the two cylinders. The positive and negative magnets attract each other.

3. The magnet assembly equipment with a hopper function according to claim 2, characterized in that: Two positioning plates are fixedly installed on the top of the rectangular plate, and two positioning grooves are opened on the bottom of the upright plate, with the two positioning plates matching the two positioning grooves.

Citation Information

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