A smart suspended conveyor for magnetic materials

By designing an intelligent suspended conveying device, and utilizing structures such as elastic telescopic blocks and rubber wheels, the problem of magnetic plates not being fixed in place during the suspended conveying process was solved, thereby improving stability and efficiency and protecting the integrity of the magnetic plates.

CN121247417BActive Publication Date: 2026-04-03JIANGXI JOINS NEW MATERIAL CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-11-25
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

In the existing technology, the magnetic plate may not be fixed in place due to visual deviation caused by manual loading during the suspension and conveying process. This can easily lead to collisions or friction with other components, causing scratches or wear, which affects the appearance quality and performance.

Method used

Design an intelligent suspended conveying device, including a suspension component and a buffer component. Through structures such as elastic telescopic blocks and rubber wheels, it can achieve precise suspension of magnetic plates, reduce friction, and prevent collisions and wear.

Benefits of technology

It improves the stability and efficiency of magnetic plate suspension conveying, protects the surface integrity of the magnetic plates, and reduces the difficulty of operation and the need for secondary adjustments during the production process.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention relates to the field of suspended conveying technology and discloses an intelligent suspended conveying device for magnetic materials, including a conveying device and a suspension assembly. The conveying device has a suspension frame at its bottom, and a magnetic plate is disposed inside the suspension frame. The suspension assembly includes a linkage hole, a mounting groove, an elastic telescopic rod, a mounting frame, a square groove, an elastic telescopic block, a suspension hole, and a linkage plate. The linkage hole is located at the bottom of the suspension frame. If the magnetic plate tilts when suspended inside the suspension frame, the mounting frame will not align with the suspension hole. If the mounting frame does not align with the suspension hole, it will become stuck on the right side of the magnetic plate. By proactively addressing the tilting issue of the magnetic plate through this pre-emptive feedback, secondary adjustments due to improper suspension during subsequent suspended transport can be reduced, improving overall production efficiency. Furthermore, it reduces collisions and friction between the magnetic plate and other components, protecting its surface and magnetic properties from damage.
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Description

Technical Field

[0001] This invention relates to the field of suspended conveying technology, and more particularly to an intelligent suspended conveying device for magnetic materials. Background Technology

[0002] The conveying of magnetic plates needs to avoid direct friction between the magnetic plates and the conveyor rollers. Suspended conveying of magnetic materials can prevent wear on the magnetic layer of the magnetic plates, and suspended transport is usually used for magnetic plates of the same specifications.

[0003] Patent CN216835700U relates to an intelligent garment production suspension system conveying device. This patent includes a ring-shaped transport device body, an adjustment part disposed on the ring-shaped transport device body, a telescopic assembly connected to the adjustment part, and a clamping assembly disposed on the telescopic assembly. The clamping assembly includes a rotating device connected to the telescopic assembly, a flipping device fixedly mounted on the rotating device, a flipping frame connected to the flipping device, a clamping cylinder disposed on the flipping frame, and a clamping plate mounted on the output end of the clamping cylinder. This patent enables the flipping and position adjustment of workpieces, thereby completing the position adjustment of garments during transport, allowing them to move in a predetermined shape on the transport device.

[0004] In existing technologies, when manually loading magnetic plates, visual deviations can cause the magnetic plates to not be fixed in place. During the suspension conveying process, the magnetic plates that are not fixed in place may collide or rub against other components, resulting in scratches or wear on the surface of the magnetic plates and affecting their appearance quality and performance. Therefore, it is necessary to design an intelligent suspension conveying device for magnetic materials to solve the above problems. Summary of the Invention

[0005] The purpose of this invention is to address the shortcomings of existing technologies by proposing an intelligent suspension conveying device for magnetic materials.

[0006] To achieve the above objectives, the present invention adopts the following technical solution:

[0007] An intelligent suspended conveying device for magnetic materials includes a conveying device and a suspension assembly. The conveying device has a suspension frame at its bottom, and a magnetic plate is disposed inside the suspension frame. The suspension assembly includes a linkage hole, a mounting groove, an elastic telescopic rod, a mounting frame, a square groove, an elastic telescopic block, a suspension hole, and a linkage plate. The linkage hole is located at the bottom of the suspension frame, the mounting groove is located at the bottom of the suspension frame, the elastic telescopic rod is fixedly installed on the inner wall of the suspension frame, the mounting frame is fixedly installed at the free end of the elastic telescopic rod, the square groove is located at the bottom of the mounting frame, the elastic telescopic block is fixedly installed at the bottom of the inner wall of the suspension frame, the suspension hole is located on the left and right walls of the magnetic plate, the linkage plate is fixedly installed at the bottom of the mounting frame, and the bottom of the mounting frame has an abutment groove. The elastic telescopic block is used to limit the positioning of the mounting frame, the mounting frame is used to fix the magnetic plate, and the elastic telescopic rod is used to drive the mounting frame to reset. If the magnetic plate tilts when suspended inside the suspension frame, the mounting frame may not align with the suspension hole, causing the mounting frame to become stuck on the right side of the magnetic plate.

[0008] As a preferred embodiment of the present invention, the mounting frame contacts the inner wall of the suspension hole, the free end of the elastic telescopic block contacts the abutment groove, the linkage plate contacts the linkage hole, and after the limit of the mounting frame is released, the mounting frame is pushed to move a short distance to the right without needing to align the free end of the elastic telescopic block with the square groove.

[0009] As a preferred embodiment of the present invention, the magnetic plate is in contact with the mounting groove, and the bottom of the linkage plate is set as an inclined surface. When the magnetic plate is loaded, the mounting frame moves a long distance to the right, which will drive the linkage plate to move to the right.

[0010] As a preferred embodiment of the present invention, it further includes a buffer assembly and a support assembly. The buffer assembly is used to prevent the magnetic plate from being bumped during unloading, and the support assembly is used to support the bottom of the magnetic plate. The buffer assembly includes a one-way frame and a guide frame. The guide frame is fixedly installed at the bottom of the suspension frame. A spring telescopic rod is fixedly installed on the right side of the guide frame. A support frame is fixedly installed at the free end of the spring telescopic rod. The one-way frame is fixedly installed on the left side of the support frame. A one-way spring is provided between the one-way frame and the guide frame. The one-way frame can be supported by the one-way spring. When the linkage plate moves to the right, it will contact the one-way frame and squeeze it.

[0011] As a preferred embodiment of the present invention, the buffer assembly further includes a rotating rod, a gear, a rubber wheel, and an inclined groove. The rotating rod rotates through the right side of the guide frame. The gear is fixedly installed on the circumferential surface of the rotating rod. The rubber wheel is fixedly installed on the circumferential surface of the rotating rod. The inclined groove is opened at the top of the one-way frame. The rubber wheel rotates in conjunction with the guide frame to guide the magnetic plate for feeding.

[0012] As a preferred embodiment of the present invention, the one-way frame is in contact with the linkage plate, the one-way frame is in contact with the gear, the rubber wheel is in contact with the magnetic plate, and the friction between the magnetic plate and the rubber wheel increases when the magnetic plate is unloaded.

[0013] As a preferred embodiment of the present invention, the support assembly includes a load-bearing plate, a support plate, a buffer spring, a support hole, and a connector. The support plate moves to the right to facilitate the loading of the magnetic plate. The load-bearing plate is fixedly installed at the bottom of the support frame. The support plate is slidably installed on the front and rear walls of the support frame. The buffer spring is disposed between the load-bearing plate and the support plate. The support hole is opened on the front side of the support frame. The connector is fixedly installed on the front side of the support frame.

[0014] As a preferred embodiment of the present invention, the left side of the support plate is set as an inclined surface. By setting the left side of the support plate as an inclined surface, the frictional force when the support plate contacts the magnetic plate can be reduced. The support plate contacts the bottom of the magnetic plate, and the support frame contacts the right side of the magnetic plate. The support plate, in conjunction with the elastic force of the buffer spring, is pressed tightly against the bottom of the magnetic plate and supports the magnetic plate.

[0015] The present invention has the following beneficial effects:

[0016] 1. This invention utilizes the forward movement of the free end of an elastic telescopic block to contact the square groove and limit the positioning of the placement frame. After the elastic telescopic block precisely limits the positioning of the placement frame, the operator does not need to support the placement frame with one hand and can focus on aligning the magnetic plate with both hands. This avoids the problem of suspension tilting or incomplete suspension caused by improper operation with one hand, thereby improving the stability of subsequent suspension transport. If the magnetic plate tilts when it is suspended inside the suspension frame, the placement frame will not be aligned with the suspension hole. If the placement frame is not aligned with the suspension hole, it will be stuck on the right side of the magnetic plate, thus improving the operator's ability to adjust the suspension position of the magnetic plate. The tilting problem of the magnetic plate can be fed back in advance through the stuck feedback, which can reduce the secondary adjustment caused by improper suspension during subsequent suspension transport, improve the overall production efficiency, and reduce the collision and friction between the magnetic plate and other components, protecting its surface and magnetic properties from damage.

[0017] 2. This invention utilizes the contact and compression of a magnetic plate with a rubber wheel to generate rotation. The rotation of the rubber wheel, in conjunction with the guide frame, guides the magnetic plate for feeding. The magnetic plate compresses the rubber wheel to generate rolling friction, which can replace sliding friction, significantly reducing feeding resistance. It eliminates the need for forceful pushing and reduces the operator's operational difficulty, thereby stabilizing the feeding rhythm and improving the overall efficiency of suspended transportation.

[0018] 3. In this invention, the rotating rod and rubber wheel cannot rotate when the magnetic plate is being fed, which increases the friction between the magnetic plate and the rubber wheel during feeding. When the rotating rod and rubber wheel do not rotate, the increased friction can form a buffer resistance, allowing the magnetic plate to move slowly instead of falling freely. This avoids the magnetic plate hitting the equipment or the ground due to improper feeding operation, thereby ensuring the integrity of the magnetic plate.

[0019] 4. This invention facilitates the loading of magnetic plates by moving the support plate to the right. After the support plate moves to the right, it provides sufficient space for the loading of magnetic plates and supports the bottom of the magnetic plates, which can further avoid the risk of falling due to excessive inertia when the conveyor starts, stops and turns.

[0020] 5. In this invention, if there are iron filings protruding at the bottom of individual magnetic plates, the support plate will move downward due to the reaction force of the iron filings protruding. Furthermore, the support plate, in conjunction with the elastic force of the buffer spring, will adhere tightly to the bottom of the magnetic plate and support it. Even if there are protrusions, it can fully fit the support surface, thereby avoiding uneven deformation of the bottom of the magnetic plate due to local protrusions. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the overall structure proposed in this invention;

[0022] Figure 2 This is a schematic diagram of the half-section structure of the suspension frame proposed in this invention;

[0023] Figure 3 This is a schematic diagram of the support frame and support hole positions proposed in this invention;

[0024] Figure 4 The present invention proposes Figure 3 Enlarged schematic diagram of section A in the middle;

[0025] Figure 5 This is a schematic diagram of the half-section structure of the magnetic plate proposed in this invention;

[0026] Figure 6 This is a schematic diagram of the internal structure of the guide frame proposed in this invention;

[0027] Figure 7 This is a schematic diagram of the position structure of the elastic telescopic rod and the mounting frame proposed in this invention.

[0028] In the diagram: 1. Conveying equipment; 2. Suspension frame; 3. Magnetic plate; 4. Linkage hole; 5. Installation groove; 6. Elastic telescopic rod; 7. Installation frame; 8. Square groove; 9. Elastic telescopic block; 10. Suspension hole; 11. Linkage plate; 121. One-way frame; 122. One-way spring; 123. Guide frame; 124. Rotating rod; 125. Gear; 126. Rubber wheel; 127. Inclined groove; 131. Spring telescopic rod; 132. Support frame; 133. Load-bearing plate; 134. Support plate; 135. Buffer spring; 136. Support hole; 137. Connector. Detailed Implementation

[0029] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0030] Reference Figure 1-6 One embodiment of the present invention is as follows: an intelligent suspended conveying device for magnetic materials, comprising a conveying device 1 and a suspension assembly. A suspension frame 2 is provided at the bottom of the conveying device 1, and a magnetic plate 3 is provided inside the suspension frame 2. The suspension assembly includes a linkage hole 4, a mounting groove 5, an elastic telescopic rod 6, a mounting frame 7, a square groove 8, an elastic telescopic block 9, a suspension hole 10, and a linkage plate 11. The linkage hole 4 is located at the bottom of the suspension frame 2, the mounting groove 5 is located at the bottom of the suspension frame 2, the elastic telescopic rod 6 is fixedly installed on the inner wall of the suspension frame 2, the mounting frame 7 is fixedly installed on the free end of the elastic telescopic rod 6, and the square groove 8 is located at the inner wall of the suspension frame 2. At the bottom of frame 7, elastic telescopic block 9 is fixedly installed on the bottom of the inner wall of suspension frame 2. Suspension holes 10 are opened on the left and right walls of magnetic plate 3. Linkage plate 11 is fixedly installed at the bottom of placement frame 7. The bottom of placement frame 7 is provided with abutment groove. Elastic telescopic block 9 is used to limit placement frame 7. Placement frame 7 is used to fix magnetic plate 3. Elastic telescopic rod 6 is used to drive placement frame 7 to reset. The tilt problem of magnetic plate 3 is fed back in advance by locking, which can reduce the secondary adjustment caused by improper suspension during subsequent suspension transportation, improve the overall production efficiency, and reduce the collision and friction between magnetic plate 3 and other components, protecting its surface and magnetic properties from damage.

[0031] The mounting frame 7 contacts the inner wall of the suspension hole 10, the free end of the elastic telescopic block 9 contacts the abutment groove, and the linkage plate 11 contacts the linkage hole 4. After the limit of the mounting frame 7 is released, the mounting frame 7 is pushed to move a short distance to the right without aligning the free end of the elastic telescopic block 9 with the square groove 8. The operator does not need to support the mounting frame 7 with one hand and can focus on the suspension alignment of the magnetic plate 3 with both hands, avoiding the problem of suspension tilting or incomplete suspension caused by improper operation with one hand, thereby improving the stability of subsequent suspension conveying.

[0032] The magnetic plate 3 contacts the mounting groove 5. The bottom of the linkage plate 11 is set as an inclined surface. When the magnetic plate 3 is loaded, the mounting frame 7 moves a long distance to the right, which will drive the linkage plate 11 to move to the right.

[0033] During operation: When the magnetic plate 3 is suspended inside the suspension frame 2, first push the free end of the elastic telescopic block 9 to move backward. The free end of the elastic telescopic block 9 will move backward and disengage from the contact groove and release the restriction on the placement frame 7. After the restriction on the placement frame 7 is released, push the placement frame 7 to move a distance to the right. The movement of the placement frame 7 to the right will align the free end of the elastic telescopic block 9 with the square groove 8. After the free end of the elastic telescopic block 9 is aligned with the square groove 8, the free end of the elastic telescopic block 9 will move forward under its own elastic force. The free end of the elastic telescopic block 9 will move forward and contact the square groove 8, thus limiting the placement frame 7.

[0034] After the placement frame 7 is limited by the free end of the elastic telescopic block 9, it pushes the magnetic plate 3 to move upward and into the placement groove 5 and into the suspension frame 2. After the magnetic plate 3 moves upward and contacts the top of the inner wall of the suspension frame 2, it pushes the free end of the elastic telescopic block 9 to move backward and disengage from the square groove 8 and release the limitation on the placement frame 7. After the limitation on the placement frame 7 is released, the placement frame 7 moves to the left and resets under the elastic force of the elastic telescopic rod 6. The reset of the placement frame 7 to the left will contact the suspension hole 10 and limit and fix the magnetic plate 3. If the magnetic plate 3 is tilted when it is suspended inside the suspension frame 2, the placement frame 7 will not be able to align with the suspension hole 10. If the placement frame 7 cannot be aligned with the suspension hole 10, the placement frame 7 will be stuck on the right side of the magnetic plate 3, which will require the operator to adjust the suspension position of the magnetic plate 3. After the magnetic plate 3 is suspended inside the suspension frame 2, the conveying equipment 1 will drive the suspension frame 2 and the magnetic plate 3 to move for suspension transportation.

[0035] After the magnetic plate 3 is suspended and transported to the designated position, the free end of the elastic telescopic block 9 is pushed to move backward again. The free end of the elastic telescopic block 9 will move backward and disengage from the contact groove and release the restriction on the placement frame 7. After the restriction on the placement frame 7 is released, the placement frame 7 is pushed to move a short distance to the right. It is not necessary to align the free end of the elastic telescopic block 9 with the square groove 8 to make the placement frame 7 disengage from the contact with the suspension hole 10. After the placement frame 7 disengages from the contact with the suspension hole 10, the magnetic plate 3 completes the unloading under its own weight and with the operator's support.

[0036] Reference Figure 1-7Based on the above embodiments, another embodiment of the present invention further includes a buffer assembly and a support assembly. The buffer assembly is used to prevent the magnetic plate 3 from being bumped during unloading, and the support assembly is used to support the bottom of the magnetic plate 3. The buffer assembly includes a one-way frame 121 and a guide frame 123. The guide frame 123 is fixedly installed at the bottom of the suspension frame 2. A spring telescopic rod 131 is fixedly installed on the right side of the guide frame 123. A support frame 132 is fixedly installed at the free end of the spring telescopic rod 131. The one-way frame 121 is fixedly installed on the left side of the support frame 132. A one-way spring 122 is provided between the one-way frame 121 and the guide frame 123. The one-way frame 121 can be supported by the one-way spring 122. When the linkage plate 11 moves to the right, it will contact the one-way frame 121 and squeeze the one-way frame 121.

[0037] The buffer assembly also includes a rotating rod 124, a gear 125, a rubber wheel 126, and an inclined groove 127. The rotating rod 124 rotates through the right side of the guide frame 123. The gear 125 is fixedly installed on the circumferential surface of the rotating rod 124. The rubber wheel 126 is fixedly installed on the circumferential surface of the rotating rod 124. The inclined groove 127 is opened on the top of the one-way frame 121. The magnetic plate 3 squeezes the rubber wheel 126 to generate rolling friction, which can replace sliding friction and greatly reduce the feeding resistance. It eliminates the need for forceful pushing and reduces the difficulty of operation for the operator, thereby stabilizing the feeding rhythm and improving the overall efficiency of the suspended transport.

[0038] One-way frame 121 contacts the linkage plate 11, one-way frame 121 contacts the gear 125, and rubber wheel 126 contacts the magnetic plate 3. When the magnetic plate 3 is unloaded, the friction between it and the rubber wheel 126 increases. When the rotating rod 124 and the rubber wheel 126 are not rotating, the increased friction can form a buffer resistance, allowing the magnetic plate 3 to move slowly instead of falling freely, thus avoiding the magnetic plate 3 from hitting the equipment or the ground due to improper unloading operation, thereby ensuring the integrity of the magnetic plate 3.

[0039] The support assembly includes a load-bearing plate 133, a support plate 134, a buffer spring 135, a support hole 136, and a connector 137. The load-bearing plate 133 is fixedly installed at the bottom of the support frame 132, the support plate 134 is slidably installed on the front and rear walls of the support frame 132, the buffer spring 135 is disposed between the load-bearing plate 133 and the support plate 134, the support hole 136 is opened on the front side of the support frame 132, and the connector 137 is fixedly installed on the front side of the support frame 132, supporting the bottom of the magnetic plate 3, which can further avoid the risk of falling due to excessive inertia when the conveyor starts, stops, and turns.

[0040] The left side of the support plate 134 is set as an inclined surface. By setting the left side of the support plate 134 as an inclined surface, the frictional force when the support plate 134 contacts the magnetic plate 3 can be reduced. The support plate 134 contacts the bottom of the magnetic plate 3, and the support frame 132 contacts the right side of the magnetic plate 3. The support plate 134, together with the elastic force of the buffer spring 135, is pressed tightly against the bottom of the magnetic plate 3 and supports the magnetic plate 3. Even if there is a protrusion, it can fully fit the support surface, thereby avoiding uneven deformation of the bottom of the magnetic plate 3 due to local protrusion.

[0041] During operation, when the magnetic plate 3 is fed, the placement frame 7 moves a distance to the right, which in turn moves the linkage plate 11 to the right. The linkage plate 11, moving to the right, contacts the one-way frame 121 and compresses it. The one-way frame 121, compressed by the linkage plate 11, moves a distance to the right and pulls the one-way spring 122. The one-way spring 122 deforms and stores force under the pull of the one-way frame 121. Simultaneously, the one-way frame 121, moving a distance to the right, disengages from the gear 125 and releases the gear engagement. After the limit of the gear 125 is released, the magnetic plate 3 is aligned with the guide frame 123 and the magnetic plate 3 is pushed upward. The magnetic plate 3 moves upward and enters the interior of the guide frame 123 and contacts the rubber wheel 126. The magnetic plate 3 contacts the rubber wheel 126 and squeezes the rubber wheel 126 to generate rotation. The rotation of the rubber wheel 126 cooperates with the guide frame 123 to guide the magnetic plate 3 for feeding. When the magnetic plate 3 is unloaded, the placement frame 7 moves a short distance to the right, which will drive the linkage plate 11 to move to the right.

[0042] When the linkage plate 11 moves to the right, it will contact the one-way frame 121 and squeeze the one-way frame 121. The one-way frame 121 is squeezed by the linkage plate 11 and moves a short distance to the right while maintaining contact with the gear 125. The one-way frame 121 maintains contact with the gear 125 and continuously limits the gear 125. The gear 125 is continuously limited by the one-way frame 121, so the rotating rod 124 and the rubber wheel 126 cannot rotate. The rotating rod 124 and the rubber wheel 126 cannot rotate when the magnetic plate 3 is unloaded, so the friction between the magnetic plate 3 and the rubber wheel 126 increases when the magnetic plate 3 is unloaded. The increased friction between the magnetic plate 3 and the rubber wheel 126 causes the magnetic plate 3 to move slowly downward to prevent the magnetic plate 3 from falling and bumping.

[0043] The movement of the one-way frame 121 to the right will cause the support frame 132 to move to the right. The movement of the support frame 132 to the right will cause the support plate 134 to move to the right. The movement of the support plate 134 to the right will pull the free end of the spring telescopic rod 131. The free end of the spring telescopic rod 131 will move to the right and store force due to the pull of the support plate 134. At the same time, the movement of the support plate 134 to the right will facilitate the feeding of the magnetic plate 3.

[0044] When the one-way frame 121 moves to the left and resets, the movement of the one-way frame 121 to the left will drive the support frame 132 to the left, and the movement of the support frame 132 to the left will drive the support plate 134 to the left. The movement of the support plate 134 to the left will contact the bottom of the magnetic plate 3 and support the magnetic plate 3. If there are iron filings protruding at the bottom of some magnetic plates 3, the movement of the support plate 134 to the left will contact the iron filings and squeeze them.

[0045] The support plate 134 will move downward due to the reaction force of the iron filings protruding under pressure. The downward movement of the support plate 134 will compress the buffer spring 135. The buffer spring 135 will deform and store force under the compression of the support plate 134. At the same time, the support plate 134 and the elastic force of the buffer spring 135 will stick tightly to the bottom of the magnetic plate 3 and support the magnetic plate 3.

[0046] The above are merely preferred embodiments 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.

Claims

1. An intelligent suspended conveying device for magnetic materials, comprising conveying equipment (1), characterized in that, It also includes a suspension assembly, a buffer assembly and a support assembly. The bottom of the conveying device (1) is provided with a suspension frame (2) and a magnetic plate (3) is provided inside the suspension frame (2). The suspension assembly includes a linkage hole (4), a mounting groove (5), an elastic telescopic rod (6), a mounting frame (7), a square groove (8), an elastic telescopic block (9), a suspension hole (10), and a linkage plate (11). The linkage hole (4) is located at the bottom of the suspension frame (2), the mounting groove (5) is located at the bottom of the suspension frame (2), the elastic telescopic rod (6) is fixedly installed on the inner wall of the suspension frame (2), the mounting frame (7) is fixedly installed on the free end of the elastic telescopic rod (6), the square groove (8) is located at the bottom of the mounting frame (7), the elastic telescopic block (9) is fixedly installed at the bottom of the inner wall of the suspension frame (2), the suspension hole (10) is located on the left and right walls of the magnetic plate (3), the linkage plate (11) is fixedly installed at the bottom of the mounting frame (7), the bottom of the mounting frame (7) is provided with an abutment groove, the elastic telescopic block (9) is used to limit the mounting frame (7), the mounting frame (7) is used to fix the magnetic plate (3), and the elastic telescopic rod (6) is used to drive the mounting frame (7) to reset. The buffer assembly is used to prevent the magnetic plate (3) from being bumped during unloading, and the support assembly is used to support the bottom of the magnetic plate (3); The buffer assembly includes a one-way frame (121) and a guide frame (123). The guide frame (123) is fixedly installed at the bottom of the suspension frame (2). A spring telescopic rod (131) is fixedly installed on the right side of the guide frame (123). A support frame (132) is fixedly installed at the free end of the spring telescopic rod (131). The one-way frame (121) is fixedly installed on the left side of the support frame (132). A one-way spring (122) is provided between the one-way frame (121) and the guide frame (123). The buffer assembly also includes a rotating rod (124), a gear (125), a rubber wheel (126), and a sloping groove (127). The rotating rod (124) rotates through the right side of the guide frame (123). The gear (125) is fixedly installed on the circumferential surface of the rotating rod (124). The rubber wheel (126) is fixedly installed on the circumferential surface of the rotating rod (124). The sloping groove (127) is opened on the top of the one-way frame (121). The one-way frame (121) is in contact with the linkage plate (11), the one-way frame (121) is in contact with the gear (125), and the rubber wheel (126) is in contact with the magnetic plate (3).

2. The intelligent suspension conveying device for magnetic materials according to claim 1, characterized in that, The mounting frame (7) contacts the inner wall of the hanging hole (10), the free end of the elastic telescopic block (9) contacts the abutment groove, and the linkage plate (11) contacts the linkage hole (4).

3. The intelligent suspension conveying device for magnetic materials according to claim 2, characterized in that, The magnetic plate (3) is in contact with the mounting groove (5), and the bottom of the linkage plate (11) is set as an inclined surface.

4. The intelligent suspension conveying device for magnetic materials according to claim 3, characterized in that, The support assembly includes a load-bearing plate (133), a support plate (134), a buffer spring (135), a support hole (136), and a connector (137). The load-bearing plate (133) is fixedly installed at the bottom of the support frame (132). The support plate (134) is slidably installed on the front and rear walls of the support frame (132). The buffer spring (135) is disposed between the load-bearing plate (133) and the support plate (134). The support hole (136) is opened on the front side of the support frame (132). The connector (137) is fixedly installed on the front side of the support frame (132).

5. The intelligent suspended conveying device for magnetic materials according to claim 4, characterized in that, The left side of the support plate (134) is set as an inclined surface, the support plate (134) is in contact with the bottom of the magnetic plate (3), and the support frame (132) is in contact with the right side of the magnetic plate (3).

Citation Information

Patent Citations

  • Conveying device of intelligent clothing production suspension system

    CN216835700U

  • Intelligent suspension conveying equipment for conveying guide plate of large rolling mill

    CN120057516A

  • Clamping structure and carrying manipulator

    CN120229477A