Hanging and conveying mechanism for plaster boxing processing

By designing a liftable frame platform mechanism and gravity locking components, the problem of automatic docking in the plaster boxing process was solved, realizing automated conveying and stability of plaster packaging boxes and improving conveying efficiency.

CN121005218AInactive Publication Date: 2025-11-25NANTONG HEALTH&BEYOND HYGIENIC PROD INC
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Patent Information

Application Number
CN202511185018.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-22
Publication Date
2025-11-25
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing overhead conveyor mechanisms are difficult to automatically connect with the production line in the plaster packaging process, requiring manual or robotic transfer, which affects conveying efficiency.

Method used

A plaster boxing processing suspension conveying mechanism was designed, which includes a suspension component, a conveying component, and a roller conveyor line. It adopts a liftable frame platform mechanism and achieves automatic acceptance and stable conveying of plaster packaging boxes through gravity locking components and damping buffer components.

Benefits of technology

It enables direct and automated conveying of plaster packaging boxes between the production line and the warehouse, improving conveying efficiency and ensuring the stability and safety of the packaging boxes during the suspended conveying process.

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Abstract

The invention relates to the technical field of suspension conveying, in particular to a plaster boxing processing suspension conveying mechanism which comprises a suspension component, a conveying component and a roller way conveying line, and further comprises a frame carrying table mechanism arranged on the suspension component and used for bearing plaster packaging boxes. The frame carrying table mechanism comprises a connecting plate, and frame carrying table assemblies are arranged on the connecting plate side by side. The frame carrying table assembly comprises a bottom supporting rod, a supporting table and a gravity locking component are arranged on the bottom supporting rod, and the supporting table is in transmission connection with the gravity locking component. According to the invention, the liftable frame carrying table mechanism is arranged, the plurality of groups of frame carrying table assemblies are combined in the frame carrying table mechanism in parallel, and the plurality of groups of parallel frame carrying table assemblies are clamped to the tail end of the roller way conveying line, so that the plaster packaging box can be directly carried on the production line, and secondary transfer of the plaster packaging box is avoided; and the conveying efficiency is greatly improved.
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Description

Technical Field

[0001] This invention relates to the field of overhead conveying technology, specifically to an overhead conveying mechanism for processing plaster boxes. Background Technology

[0002] A suspended conveyor system is a device that transports goods by using a power unit to pull a hoist or platform suspended on a track. It enables the suspended transport of materials between different locations and is suitable for material loading, unloading, and transfer in warehousing, logistics, and manufacturing industries. It features space-saving design, flexible layout, and adaptability to complex routes. For example, after processing ointment-type pharmaceuticals into boxes, a suspended conveyor system can transport the boxes directly from the production line to the warehouse for storage.

[0003] Chinese patent application CN120288440A discloses an intelligent suspended conveying system for document management, including a support frame. A transport device is fixedly installed on the inner wall of the support frame. A four-wheel bearing is fixedly installed on the moving end of the transport device, and a tray rotatably passes through the surface of the four-wheel bearing. The system also includes an adjustment device. The adjustment device comprises a sliding rod, a push plate, a rotating rod, and a limiting plate. Pushing the sliding rod moves it towards the center of the tray, which in turn moves the push plate towards the center of the tray. Through standardized operation, the system quickly adjusts the spacing between the push plates, enabling the tray to effectively transport document boxes of different sizes.

[0004] As in the prior art of the aforementioned patent, materials are placed on pallets to achieve suspended conveying. However, when this type of pallet is applied in industrial production, it is difficult to integrate with the production line to achieve automatic feeding. It still requires manual or robotic transfer, which increases the number of operation steps and affects the overall conveying efficiency. Therefore, there is an urgent need for a suspended conveying mechanism for plaster box processing to solve the above problems. Summary of the Invention

[0005] The purpose of this invention is to provide a hanging conveyor mechanism for plaster packaging and processing, so as to overcome the above-mentioned shortcomings in the prior art.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a hanging conveyor mechanism for plaster packaging, comprising a hanging component, a conveying component and a roller conveyor line, and further comprising a frame platform mechanism disposed on the hanging component for receiving plaster packaging boxes;

[0007] The frame platform mechanism includes a connecting plate, on which frame platform assemblies are arranged side by side; the frame platform assembly includes a bottom support rod, and a support platform and a gravity locking component are arranged on the bottom support rod, wherein the support platform and the gravity locking component are connected by transmission.

[0008] The frame platform mechanism is driven by the suspension component to engage with the roller conveyor line and receive the plaster packaging boxes delivered by the roller conveyor line. After the frame platform mechanism receives the plaster packaging boxes, the support platform moves downward under the gravity of the plaster packaging boxes, and the gravity locking component can press against both sides of the plaster packaging boxes under the drive of the support platform.

[0009] Preferably, the conveying component includes a conveying track and a pulley component that is engaged inside the conveying track; it also includes a drive chain that is fixedly connected to the pulley component and is used to pull the pulley component to move inside the conveying track.

[0010] Preferably, the suspension component includes a lifting adjustment box, which is fixedly connected to the bottom of the pulley component. The lifting adjustment box is provided with a lifting component for adjusting the height of the frame platform mechanism.

[0011] Preferably, the gravity locking component includes an acceleration gear set, a clamping arm, and a transmission link. The acceleration gear set, the transmission link, and the clamping arm are all connected by transmission. The transmission link is driven to drive the clamping arm to swing through the acceleration gear set.

[0012] Preferably, the clamping arm includes a hinged clamping front arm and a clamping rear arm. An anti-slip clamping plate is movably installed at the end of the clamping rear arm away from the clamping front arm. The anti-slip clamping plate is subjected to gravity and always remains vertical at the end of the clamping rear arm.

[0013] Preferably, the support platform is movably mounted on the bottom support rod, and the support platform is hinged to the end of the transmission link away from the acceleration gear set. When the support platform moves downward under the weight of the plaster packaging box, it can drive the acceleration gear set to move through the transmission link.

[0014] Preferably, when the support platform is not supporting the plaster packaging box, the clamping arm and the bottom support rod are in a parallel state, and the height of the clamping arm does not exceed the height of the support platform.

[0015] Preferably, the frame platform assembly further includes a hinged top mounting rod and a side connecting rod, with the end of the side connecting rod away from the top mounting rod being fixedly connected to the bottom support rod.

[0016] Preferably, the frame platform assembly further includes a damping buffer component, which is disposed on the top mounting rod and the side connecting rod, for buffering and absorbing the inertia generated when the plaster packaging box stops.

[0017] Preferably, the damping buffer component includes a hinged sleeve, with a hinged shaft fitted inside the hinged sleeve, forming an oil inlet chamber and an oil outlet chamber between the hinged sleeve and the hinged shaft; a buffer flow channel, with its two ends connected to the oil inlet chamber and the oil outlet chamber respectively; and an adjustable damping part, which can adjust the damping effect according to the downward movement of the support platform.

[0018] In the above technical solution, the beneficial effects of the present invention are as follows: by setting up a liftable frame platform mechanism and combining multiple sets of frame platform components in parallel within the frame platform mechanism, and snapping the multiple sets of frame platform components to the end of the roller conveyor line, the plaster packaging boxes can be directly received on the production line, eliminating the need for secondary transfer of the plaster packaging boxes and greatly improving the conveying efficiency; and when the frame platform components receive the plaster packaging boxes, the support platform moves downward under the gravity of the plaster packaging boxes, which can drive the gravity locking components to press against both sides of the plaster packaging boxes, restricting the position of the plaster packaging boxes and ensuring the stability of the plaster packaging boxes during suspended conveying.

[0019] It should be understood that the foregoing general description and the following detailed description are exemplary and illustrative only, and are not intended to limit this disclosure.

[0020] This application provides an overview of various implementations or examples of the technology described in this disclosure, and is not a full disclosure of the entire scope or all features of the disclosed technology. Attached Figure Description

[0021] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this invention. For those skilled in the art, other drawings can be obtained based on these drawings.

[0022] Figure 1 This is a schematic diagram of the overall assembled structure of the present invention;

[0023] Figure 2 This is a structural schematic diagram showing the installation position of the pulley mechanism of the present invention;

[0024] Figure 3 This is a schematic diagram of the overall structure of the pulley mechanism of the present invention;

[0025] Figure 4 This is a schematic diagram of the internal structure of the suspension box of the present invention;

[0026] Figure 5 This is a schematic diagram of the overall structure of the frame platform mechanism of the present invention;

[0027] Figure 6 This is a schematic diagram of the structure of the frame platform mechanism of the present invention in conjunction with the roller conveyor line;

[0028] Figure 7 This is a schematic diagram of the gravity locking component of the present invention during operation;

[0029] Figure 8 This is a schematic diagram of the overall structure of the gravity locking component of the present invention;

[0030] Figure 9 This is a schematic diagram of the structure connecting the forearm clamping, the rear arm clamping, and the anti-slip clamping plate of the present invention;

[0031] Figure 10 A schematic diagram showing the location of the damping buffer component of the present invention;

[0032] Figure 11 This is a schematic diagram of the structure of the damping orifice and buffer flow channel of the present invention.

[0033] Explanation of reference numerals in the attached figures:

[0034] In the diagram: 1. Conveying track; 2. Pulley assembly; 21. Mounting slide; 22. Guide pulley; 23. Suspension rod; 24. Conductive brush; 3. Drive chain; 4. Lifting adjustment box; 5. Frame platform mechanism; 51. Connecting plate; 52. Frame platform assembly; 521. Top mounting rod; 522. Side connecting rod; 523. Bottom support rod; 524. Support platform; 525. Gravity locking component; 5251. Mounting bracket; 5252. Clamping forearm; 5253. Clamping... 5254. Rear arm; 5255. Anti-slip clamping plate; 5256. Driven gear; 5257. Drive gear; 5258. Drive rack; 5259. Transmission link; 526. Damping buffer component; 5261. Hinge sleeve; 5262. Hinge frame; 5263. Hinge shaft; 5264. Buffer flow channel; 5265. Adjusting insert plate; 5266. Damping hole; 6. Gear servo motor; 7. Roller drum; 8. Plaster packaging box; 9. Roller conveyor line. Detailed Implementation

[0035] To make the objectives, technical solutions, and advantages of the embodiments of this disclosure clearer, the technical solutions of the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this disclosure. All other embodiments obtained by those skilled in the art based on the described embodiments of this disclosure without creative effort are within the scope of protection of this disclosure.

[0036] Please see Figure 1-11 The present invention provides a technical solution: a plaster boxing and processing hanging conveyor mechanism, including a hanging component, a conveying component and a roller conveyor line 9, and also includes a frame platform mechanism 5, which is disposed on the hanging component and is used to support the plaster packaging box 8;

[0037] The frame platform mechanism 5 includes a connecting plate 51, on which frame platform assemblies 52 are arranged in parallel; the frame platform assembly 52 includes a bottom support rod 523, and a support platform 524 and a gravity locking component 525 are arranged on the bottom support rod 523, and the support platform 524 and the gravity locking component 525 are connected by transmission.

[0038] The frame platform mechanism 5 is driven by the suspension component to engage with the roller conveyor line 9 and receive the plaster packaging box 8 delivered to the position by the roller conveyor line 9. After the frame platform mechanism 5 receives the plaster packaging box 8, the support platform 524 moves downward under the gravity of the plaster packaging box 8, and the gravity locking component 525 presses against both sides of the plaster packaging box 8 under the action of the support platform 524.

[0039] Specifically, the suspension component and the conveying component work together to suspend and transport the frame platform mechanism 5, thereby conveying the plaster packaging box 8 along the production line to the warehouse location. Initially, the frame platform mechanism 5 is driven downwards by the suspension component, causing multiple sets of parallel frame platform assemblies 52 to engage with the conveyor rollers of the roller conveyor line 9. The roller conveyor line 9 then transports the plaster packaging box 8 into the frame platform mechanism 5. After the frame platform mechanism 5 moves upwards, it can drive the plaster packaging box 8, which has moved into place inside, to move upwards, achieving automatic feeding of the plaster packaging box 8. After the frame platform mechanism 5 receives the plaster packaging box 8, the support platform 524 moves downward under the gravity of the plaster packaging box 8, and drives the gravity locking component 525 to move synchronously and press against both sides of the plaster packaging box 8, restricting the position of the plaster packaging box 8 and ensuring the stability of the plaster packaging box 8 during suspension and transportation; the support platform 524 moves downward under the gravity of the plaster packaging box 8, and drives the gravity locking component 525 to move. When the gravity locking component 525 presses against both sides of the plaster packaging box 8, the support platform 524 stops moving downward. This structure can adapt to plaster packaging boxes 8 of different sizes.

[0040] Compared with the prior art, the plaster packaging processing suspension conveying mechanism proposed in this embodiment of the invention, by setting up a liftable frame platform mechanism 5, and combining multiple sets of frame platform components 52 in parallel in the frame platform mechanism 5, and snapping the multiple sets of frame platform components 52 in parallel to the end of the roller conveyor line 9, can directly receive the plaster packaging boxes 8 on the production line, eliminating the need for secondary transfer of the plaster packaging boxes 8 and greatly improving the conveying efficiency; and when the frame platform components 52 receive the plaster packaging boxes 8, the support platform 524 moves down under the gravity of the plaster packaging boxes 8, which can drive the gravity locking component 525 to press against both sides of the plaster packaging boxes 8, restricting the position of the plaster packaging boxes 8 and ensuring the stability of the plaster packaging boxes 8 during suspension conveying.

[0041] As a preferred technical solution of this embodiment, the conveying component includes a conveying track 1 and a pulley component 2 that is engaged inside the conveying track 1; it also includes a drive chain 3, which is fixedly connected to the pulley component 2 and is used to pull the pulley component 2 to move inside the conveying track 1. Specifically, the pulley component 2 includes a mounting slide 21, on which horizontal and vertical guide pulleys 22 are movably mounted for rolling inside the conveying track 1. A suspension rod 23 is fixedly connected to the bottom of the mounting slide 21 for connecting to the lifting adjustment box 4, and a conductive brush 24 is fixedly mounted on the top. A conductive sheet is fixedly mounted on the top of the inner side of the conveying track 1. The conductive brush 24 cooperates with the conductive sheet to supply power to the lifting adjustment box 4. The drive chain 3 is driven by the power mechanism in the prior art to drive the pulley component 2 to move inside the conveying track 1, thereby driving the lifting adjustment box 4 and the frame platform mechanism 5 to move, so as to realize the suspended conveying of the plaster packaging box 8.

[0042] As a preferred technical solution in this embodiment, the suspension component includes a lifting adjustment box 4, which is fixedly connected to the bottom of the pulley component 2. The lifting adjustment box 4 is provided with a lifting component for adjusting the height of the frame platform mechanism 5. Specifically, the lifting component includes a reduction servo motor 6 and several drums 7. The reduction servo motor 6 is connected to the several drums 7 in a transmission manner. The outside of the drums 7 is wound with a cable, and the end of the cable is fixedly connected to the connecting plate 51. By driving the several drums 7 to rotate and wind up the cable through the reduction servo motor 6, the height of the frame platform mechanism 5 can be adjusted. In the conveying state, the reduction servo motor 6 adjusts the top of the frame platform mechanism 5 to a position close to the bottom of the lifting adjustment box 4 to avoid the frame platform mechanism 5 from shaking during conveying due to excessive cable length. The reduction servo motor 6 is a common prior art technology, which can be controlled by a control system in the prior art through wireless communication technology.

[0043] As a preferred technical solution in this embodiment, the gravity locking component 525 includes an acceleration gear set, a clamping arm, and a transmission link 5259. The acceleration gear set, the transmission link 5259, and the clamping arm are all connected by transmission. The transmission link 5259 is driven to drive the clamping arm to swing through the acceleration gear set. Specifically, there are two sets of gravity locking components 525 on the bottom support rod 523, and the two sets of gravity locking components 525 are mirror-distributed on both sides of the support platform 524. The gravity locking component 525 also includes a mounting bracket 5251, which is fixedly installed inside the bottom support rod 523. The acceleration gear set includes a drive rack 5258, which is movably installed on the mounting bracket 5251, and the drive rack 5258 is hinged to the end of the transmission link 5259 away from the support platform 524. The transmission gear 5256 and the driven gear 5255 are both movably installed on the mounting bracket 5251. On 51, a drive gear 5257 is fixedly connected to the transmission gear 5256, and a driven gear 5255 is fixedly connected to the clamping forearm 5252. The driven gear 5255 and the transmission gear 5256 have the same diameter, and the diameter of the drive gear 5257 is one-third to one-quarter of the diameter of the transmission gear 5256. The drive rack 5258 meshes with the upper part of the drive gear 5257. The support platform 524 moves downward under the gravity of the plaster packaging box 8, and is driven by the transmission link 5259 to push the drive rack 5258 to move, which in turn drives the drive gear 5257, the transmission gear 5256 and the driven gear 5255 to rotate, causing the clamping arm to swing upward and press against the side of the plaster packaging box 8. It should be noted that since the moving distance of the clamping arm is greater than the moving distance of the support platform 524 during operation, different transmission ratios are set to improve the moving speed of the clamping arm.

[0044] As a preferred embodiment, the clamping arm includes a hinged clamping front arm 5252 and a clamping rear arm 5253. An anti-slip clamping plate 5254 is movably mounted on the end of the clamping rear arm 5253 away from the clamping front arm 5252. Under the influence of gravity, the anti-slip clamping plate 5254 remains vertical at the end of the clamping rear arm 5253. Specifically, a hinge shaft is provided at the hinge joint between the clamping front arm 5252 and the clamping rear arm 5253, and a return torsion spring is provided at the end of the hinge shaft. The clamping arm is driven by a driven gear 5255. When the drive presses against the side of the plaster packaging box 8, the clamping rear arm 5253 can overcome the elastic force of the torsion spring and rotate at the end of the clamping front arm 5252; the upper part of the anti-slip clamping plate 5254 is movably installed on the clamping rear arm 5253. When the clamping rear arm 5253 swings, the anti-slip clamping plate 5254 is always in a vertical state under the action of gravity, so that the side of the anti-slip clamping plate 5254 near the middle of the bottom support rod 523 can press against the side of the plaster packaging box 8, improving the effect of pressing and limiting the plaster packaging box 8.

[0045] As a preferred technical solution in this embodiment, the support platform 524 is movably mounted on the bottom support rod 523, and the support platform 524 is hinged to the end of the transmission link 5259 away from the acceleration gear set. When the support platform 524 moves downward under the gravity of the plaster packaging box 8, it can drive the acceleration gear set to move through the transmission link 5259. Specifically, a return spring located at the top of the bottom support rod 523 is movably mounted on the support platform 524 to drive the support platform 524 to return to its original position. When the frame platform mechanism 5 supports the plaster packaging box 8, the plaster packaging box 8 falls on the top of the support platform 524, and the support platform 524 moves downward under the gravity of the plaster packaging box 8. Through the transmission link 5259 and the acceleration gear set, it can drive the clamping arm to deflect upward and press the clamping arm against the side of the plaster packaging box 8 to restrict the position of the plaster packaging box 8 and ensure the stability of the plaster packaging box 8 during suspension and transportation.

[0046] As a preferred technical solution in this embodiment, when the support platform 524 is not receiving the plaster packaging box 8, the clamping arm and the bottom support rod 523 are in a parallel state, and the height of the clamping arm does not exceed the height of the support platform 524. It should be noted that, in order to prevent the clamping arm from interfering with the movement of the plaster packaging box 8 into the frame platform mechanism 5 when initially receiving the plaster packaging box 8, the initial position of the clamping arm is restricted.

[0047] In the prior art, when the plaster packaging box 8 is suspended and transported, it not only needs to pass through a horizontal track, but also an inclined track. When passing through the inclined track, if the frame platform assembly 52 is in a rigid state, it will cause the plaster packaging box 8 to tilt, increasing the risk of the plaster packaging box 8 slipping. Therefore, the following embodiments are proposed to solve the above problems.

[0048] In another embodiment of the present invention, the frame platform assembly 52 further includes a hinged top mounting rod 521 and a side connecting rod 522. The end of the side connecting rod 522 away from the top mounting rod 521 is fixedly connected to the bottom support rod 523. Specifically, when the frame platform mechanism 5 passes through the inclined track, the top mounting rod 521 is in an inclined state. The side connecting rod 522 can swing adaptively at the end of the top mounting rod 521 due to its own weight and the weight of the plaster packaging box 8, so that the top mounting rod 521 and the plaster packaging box 8 are always in a vertical state during the transportation process, which greatly reduces the probability of the plaster packaging box 8 falling during the transportation process.

[0049] As can be seen from the above embodiments, when the suspended conveyor mechanism transports the plaster packaging box 8 to its position, due to inertia, the plaster packaging box 8 still tends to move forward. Since the side connecting rod 522 is hinged to the top mounting rod 521, the plaster packaging box 8 will cause the side connecting rod 522 to swing forward at a certain angle, causing the lifting adjustment box 4 and the conveying components to bear additional tension beyond the working load. In particular, for the conveying components driven by the drive chain 3, all the plaster packaging boxes 8 stop at the same time. Since the plaster packaging box 8 is generally heavy, the conveying components bear a large tension, which may lead to damage. Therefore, the following embodiments are proposed to solve the above problems.

[0050] In another embodiment of the present invention, the frame platform assembly 52 further includes a damping buffer component 526, which is disposed on the top mounting rod 521 and the side connecting rod 522, for buffering and absorbing the inertia generated when the plaster packaging box 8 stops. Specifically, when the suspended conveying mechanism transports the plaster packaging box 8 to the position, and the side connecting rod 522 swings due to inertia, the damping buffer component 526 can absorb the inertia, preventing the inertia of the plaster packaging box 8 when it stops from being transmitted to the conveying component, thereby reducing the probability of damage to the conveying component.

[0051] As a preferred embodiment, the damping buffer component 526 includes a hinged sleeve 5261, with a hinged shaft 5263 fitted inside the hinged sleeve 5261, forming an oil inlet chamber and an oil outlet chamber between the hinged sleeve 5261 and the hinged shaft 5263; a buffer flow channel 5264, with its two ends communicating with the oil inlet chamber and the oil outlet chamber respectively; and an adjustable damping part, which can adjust the damping effect according to the downward movement of the support platform 524. Specifically, the hinged sleeve 5261 is disposed at the top end of the side connecting rod 522, the hinged frame 5262 is disposed at the bottom end of the top mounting rod 521, and the hinged shaft 5263 is fixedly sleeved. The side connecting rod 522, installed inside the hinge frame 5262, is hinged to the end of the top mounting rod 521 via the hinge sleeve 5261, the hinge shaft 5263, and the hinge frame 5262. Two sets of extrusion blocks are symmetrically arranged on the hinge shaft 5263, with one side of each set of extrusion blocks serving as an oil inlet chamber and the other as an oil outlet chamber. Hydraulic oil is injected into the oil inlet chamber, oil outlet chamber, and buffer flow channel 5264. When the side connecting rod 522 swings due to inertia, the hinge sleeve 5261 and the hinge shaft 5263 rotate relative to each other, causing the hydraulic oil in the oil chamber to be extruded through the extrusion blocks on the hinge shaft 5263 and pushed towards the buffer flow channel. The hydraulic oil flows through the flow channel 5264 and returns to the oil inlet chamber. When the hydraulic oil flows in the buffer flow channel 5264, it passes through the adjustable damping section. Through the throttling effect of the adjustable damping section, part of the kinetic energy is converted into heat energy, realizing the damping buffering effect, thereby absorbing the force of the guide pulley 22 deflection, and thus absorbing the inertia of the plaster packaging box 8. The adjustable damping section includes an adjusting plate 5265, one end of which is fixedly connected to the drive rack 5258, and the other end is inserted into the side connecting rod 522. Several damping devices are provided on the end of the adjusting plate 5265 that is inserted into the side connecting rod 522. The damping orifice 5266 can throttle the hydraulic oil flowing in the buffer channel 5264, thus achieving damping and buffering. Furthermore, the position of the adjusting plate 5265 is adjusted by the weight of the plaster packaging box 8. The greater the weight of the plaster packaging box 8, the greater the downward movement of the support platform 524, and the greater the distance that the drive rack 5258 moves outward. Consequently, the drive rack 5258 drives the adjusting plate 5265 to move outward a greater distance. As the distance that the adjusting plate 5265 moves outward increases, the damping orifice 5266 acting on the buffer channel 5264 decreases, thereby increasing the damping and buffering effect.

[0052] The foregoing has only described certain exemplary embodiments of the present invention by way of illustration. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the foregoing drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.

Claims

1. A hanging conveyor mechanism for plaster packaging and processing, comprising a hanging component, a conveying component, and a roller conveyor line (9), characterized in that, It also includes a frame platform mechanism (5), which is set on the suspension component to support the plaster packaging box (8). The frame platform mechanism (5) includes a connecting plate (51), on which frame platform assemblies (52) are arranged in parallel; the frame platform assembly (52) includes a bottom support rod (523), and a support platform (524) and a gravity locking component (525) are arranged on the bottom support rod (523), and the support platform (524) and the gravity locking component (525) are connected by transmission. The frame platform mechanism (5) is driven by the suspension component to engage with the roller conveyor line (9) and receive the plaster packaging box (8) delivered by the roller conveyor line (9); after the frame platform mechanism (5) receives the plaster packaging box (8), the support platform (524) moves down under the gravity of the plaster packaging box (8), and the gravity locking component (525) presses against both sides of the plaster packaging box (8) under the drive of the support platform (524).

2. The plaster packaging and processing suspension conveying mechanism according to claim 1, characterized in that, The conveying component includes a conveying track (1) and a pulley component (2) that is engaged inside the conveying track (1); it also includes a drive chain (3) that is fixedly connected to the pulley component (2) and is used to pull the pulley component (2) to move inside the conveying track (1).

3. The plaster packaging and processing suspension conveying mechanism according to claim 2, characterized in that, The suspension component includes a lifting adjustment box (4), which is fixedly connected to the bottom of the pulley component (2). The lifting adjustment box (4) is provided with a lifting component for adjusting the height of the frame platform mechanism (5).

4. The plaster packaging and processing suspension conveying mechanism according to claim 1, characterized in that, The gravity locking component (525) includes an acceleration gear set, a clamping arm, and a transmission link (5259). The acceleration gear set, the transmission link (5259), and the clamping arm are all connected by transmission. The transmission link (5259) is driven to drive the clamping arm to swing through the acceleration gear set.

5. The plaster packaging and processing suspension conveying mechanism according to claim 4, characterized in that, The clamping arm includes a hinged clamping front arm (5252) and a clamping rear arm (5253). An anti-slip clamping plate (5254) is movably installed at the end of the clamping rear arm (5253) away from the clamping front arm (5252). The anti-slip clamping plate (5254) is subjected to gravity and always remains vertical at the end of the clamping rear arm (5253).

6. The plaster packaging and processing suspension conveying mechanism according to claim 5, characterized in that, The support platform (524) is movably mounted on the bottom support rod (523), and the support platform (524) is hinged to the end of the transmission link (5259) away from the acceleration gear set. When the support platform (524) moves down under the gravity of the plaster packaging box (8), it can drive the acceleration gear set to move through the transmission link (5259).

7. The plaster packaging and processing suspension conveying mechanism according to claim 1, characterized in that, When the support platform (524) is not receiving the plaster packaging box (8), the clamping arm and the bottom support rod (523) are in a parallel state, and the height of the clamping arm does not exceed the height of the support platform (524).

8. The plaster packaging and processing suspension conveying mechanism according to claim 1, characterized in that, The frame platform assembly (52) also includes a hinged top mounting rod (521) and a side connecting rod (522), with one end of the side connecting rod (522) away from the top mounting rod (521) being fixedly connected to the bottom support rod (523).

9. The plaster packaging and processing suspension conveying mechanism according to claim 1, characterized in that, The frame platform assembly (52) also includes a damping buffer component (526), ​​which is disposed on the top mounting rod (521) and the side connecting rod (522) to buffer and absorb the inertia generated when the plaster packaging box (8) stops.

10. A hanging conveyor mechanism for plaster packaging and processing according to claim 9, characterized in that, The damping buffer component (526) includes a hinged sleeve (5261), inside which a hinged shaft (5263) is fitted, and an oil inlet chamber and an oil outlet chamber are formed between the hinged sleeve (5261) and the hinged shaft (5263); a buffer flow channel (5264), whose two ends are respectively connected to the oil inlet chamber and the oil outlet chamber; and an adjustable damping part, which can adjust the damping effect according to the downward movement of the support platform (524).

Citation Information

Patent Citations

  • Intelligent suspension conveying system for file management

    CN120288440A