Vibrating body structure with overturning function

By designing a vibrating body structure with a flipping function, the hopper and track are modularly separated, solving the problem of cumbersome disassembly in the existing technology, realizing rapid cleaning and maintenance, and improving the efficiency and maintainability of the equipment.

CN223813030UActive Publication Date: 2026-01-20ZHUHAI AUTO VISION TECH CO LTD
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Patent Information

Application Number
CN202522497589.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-25
Publication Date
2026-01-20
Estimated Expiration
2035-11-25

AI Technical Summary

Technical Problem

The existing vibratory feeder structure requires disassembling the hopper and track during cleaning and maintenance, which is cumbersome, increases time costs, and causes long downtime.

Method used

Design a vibrating body structure with a flipping function. The hopper and the track can be modularly separated through the flipping module. The track can be cleaned and the structure can be replaced without disassembly. Components such as rotating sleeve, rotating shaft and floating spring are used to realize the quick connection and separation of the hopper and the feeding track.

Benefits of technology

It simplifies cleaning and maintenance operations, saves time and costs, improves equipment efficiency and maintainability, and has a compact structure and is easy to operate.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a vibrating body structure with an overturning function, and aims to provide the vibrating body structure with the overturning function, which is simple in structure, small in occupied space, capable of separating a hopper from a track through an overturning structure and capable of cleaning the track without disassembly. The feeding device comprises a base, a vibration module, a hopper module, a feeding track and an overturning module, the vibration module is arranged on the upper end face of the base, the feeding track is arranged on the upper end face of the vibration module, and the overturning module is arranged at the upper end of the base and drives the hopper module to be matched with the feeding track. The utility model is applied to the technical field of product transmission.
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Description

TECHNICAL FIELD

[0001] The utility model is applied to product transmission technical field, and is especially a vibrating body structure with overturning function. BACKGROUND

[0002] The vibrating body structure is a feeding structure for uniformly distributing the material in the hopper on the feeding track through vibration, which can avoid material accumulation, delayed feeding and material jamming, etc. During the vibration process of the product parts on the vibrating disc, the dust on the surface of the parts or the stains remaining during the production of the parts will fall off and adhere to the vibrating disc. Therefore, the vibrating disc needs to be cleaned regularly during long-term use to avoid the accumulation of dust or stains causing material jamming. Currently, the vibrating disc structure on the market mainly fixes the hopper module on the upper end of the vibrating disc. When track cleaning or maintenance and replacement is needed, the entire vibrating disc needs to be disassembled from the upper end of the feeding track and then assembled again, which is complicated and increases the time cost of personnel and causes the equipment to be out of service for a long time. If a vibrating body structure with overturning function is designed, which has a simple structure, occupies a small space, and can separate the hopper from the track through the overturning structure without disassembly to realize track cleaning, the above problems can be solved. SUMMARY

[0003] The utility model solves the technical problems of the prior art and provides a vibrating body structure with overturning function, which has a simple structure, occupies a small space, and can separate the hopper from the track through the overturning structure without disassembly to realize track cleaning.

[0004] The utility model adopts the technical scheme: the utility model discloses a base, vibration module, hopper module, feeding track and overturning module, the vibration module sets up on the upper end surface of base, the feeding track sets up on the upper end surface of vibration module, the overturning module sets up on the upper end of base and drives hopper module and feeding track cooperation.

[0005] Further, the overturning module includes two groups of support plates, two groups of rotating plates, a fixed shaft and a rotating sleeve. The two groups of support plates are connected to the upper end surfaces of the base on both sides, the opposite surfaces of the two groups of support plates are connected through the fixed shaft, the two groups of rotating plates are arranged on the outer sides of the corresponding support plates and are rotationally connected to the two ends of the fixed shaft, the opposite surfaces of the two groups of support plates are each provided with a first square groove on the upper end, the rotating plate is provided with a second square groove on the side corresponding to the first square groove, and the rotating sleeve is connected to the corresponding first square groove and second square groove through a rotating shaft module on both ends.

[0006] Further, the rotating shaft module comprises a rotating shaft, a pin shaft and a floating spring, sliding grooves are arranged at both ends of the rotating sleeve, the rotating shaft sliding end is in sliding fit with the sliding grooves, slanting grooves are arranged at both ends of the rotating sleeve outer edge, the deflection directions of the two groups of slanting grooves are opposite, the pin shaft is arranged on the rotating shaft and is in sliding fit with the corresponding slanting grooves, the floating spring is arranged between the rotating shaft bottom and the sliding groove bottom, the rotating shaft end is in profile fit with the first square groove and the second square groove, when the rotating sleeve rotates, the pin shaft is in sliding fit with the slanting grooves and drives the rotating shaft end to be in fit with the first square groove or the second square groove.

[0007] Further, the pin shaft height is equal to the slanting groove opening end height.

[0008] Further, a driving handle is arranged at the rotating sleeve outer side middle part, and the driving handle is arranged at the midpoint of the two groups of slanting groove middle lines.

[0009] Further, the hopper module comprises a hopper and a material distributor, the hopper discharge end is connected with the material distributor feeding end, and the material distributor two sides are connected with the corresponding rotating plates.

[0010] Further, the hopper feeding end is provided with a rotating switch door.

[0011] Further, the base is provided with a plurality of damping springs.

[0012] The beneficial effects of the utility model are: the vibration body structure with the turnover function of the application integrates all the structures above the feeding track into a whole, is designed into modularization, and the components below the feeding track are also integrated into a whole in modularization, and are connected and fixed by the turnover device. When needed, the upper components can be rotated by the turnover device, the track is exposed for cleaning or replacement, if the structure needs to be repaired, the integrated modular structure can be directly replaced, which not only saves time but also is simple to operate. The structure has high integration degree, compact structure, replaceable repair, simple operation and reduced repair time cost. BRIEF DESCRIPTION OF DRAWINGS

[0013] Figure 1 is the perspective view of the utility model;

[0014] Figure 2 is the side view of the utility model;

[0015] Figure 3 is the side view of another state of the utility model;

[0016] Figure 4 is the perspective view of the turnover module;

[0017] Figure 5 is a sectional view of the turnover module;

[0018] Figure 6 is a sectional view of another state of the turnover module;

[0019] Figure 7 is Figure 6 is an enlarged view of A in the middle;

[0020] Figure 8 is a plan view of the rotating sleeve;

[0021] Figure 9 is a perspective view of the rotating shaft. DETAILED DESCRIPTION

[0022] As Figures 1 to 9 shown, in this embodiment, the utility model includes base 1, vibration module 2, hopper module 3, feed track 4 and turnover module 5, vibration module 2 is arranged on the upper end surface of base 1, feed track 4 is arranged on the upper end surface of vibration module 2, turnover module 5 is arranged on the upper end of base 1 and drives hopper module 3 to cooperate with feed track 4. Therefore, vibration module 2 and feed track 4 form a lower module, hopper module 3 is connected with the movable end of turnover module 5, and the butt joint and separation of hopper module 3 and feed track 4 are realized through turnover module 5, realizing rapid changeover.

[0023] As Figures 2 to 7 shown, in this embodiment, turnover module 5 includes two groups of support plates 51, two groups of rotating plates 52, fixed shafts 53 and rotating sleeves 54, two groups of support plates 51 are connected with the upper end surfaces of both sides of base 1, two groups of support plates 51 are connected through fixed shafts 53 on opposite surfaces, two groups of rotating plates 52 are arranged on the outer sides of corresponding support plates 51 and are rotationally matched with both ends of fixed shafts 53, both ends of two groups of support plates 51 are provided with first square grooves 55, rotating plates 52 are provided with second square grooves 56 on the sides corresponding to first square grooves 55, and rotating sleeves 54 are matched with corresponding first square grooves 55 and second square grooves 56 through rotating shaft modules 6. Therefore, rotating shaft modules 6 realize the unlocking and locking of rotating plates 52 and support plates 51 through limiting with first square grooves 55 or second square grooves 56, that is, the turnover of hopper module 3 can be realized, and the cleaning of feed track 4 can be carried out without disassembly.

[0024] As Figures 4 to 7As shown, in this embodiment, the rotating shaft module 6 includes a rotating shaft 61, a pin 62, and a floating spring 63. Both ends of the rotating sleeve 54 are provided with sliding grooves 57. The sliding end of the rotating shaft 61 slides in cooperation with the sliding grooves 57. Both ends of the outer edge of the rotating sleeve 54 are provided with oblique slots 58, with the two sets of oblique slots 58 having opposite deflection directions. The pin 62 is disposed on the rotating shaft 61 and slides in cooperation with the corresponding oblique slot 58. The floating spring 63 is disposed between the bottom of the rotating shaft 61 and the bottom of the sliding groove 57. The end of the rotating shaft 61 conforms to the first square groove 55 and the second square groove 56. When the rotating sleeve 54 rotates, the pin 62 slides in cooperation with the oblique slot 58 and drives the end of the rotating shaft 61 to cooperate with the first square groove 55 or the second square groove 56. Therefore, it can be seen that during the sliding process of the pin 62 on the corresponding oblique slot 58, it will drive the rotating shaft 61 to move laterally, thereby realizing the separation of the contour limiting end of the rotating shaft 61 from the second square slot 56, so that the rotating plate 52 can be unlocked, can be flipped, and drive the hopper module 3 to separate from the feeding track 4, achieving the effect of avoiding displacement. The floating spring 63 provides elasticity in the locked state to prevent the rotating shaft 61 from loosening and causing it to disengage from the limiting position of the second square slot 56.

[0025] like Figure 4 As shown, in this embodiment, the height of the pin 62 is equal to the height of the opening end of the oblique slot 58. Therefore, having the pin 62 flush with the oblique slot 58 prevents the protruding part from rubbing against external mechanisms or the operator during rotation.

[0026] like Figure 4 As shown, in this embodiment, a drive handle 7 is provided at the center of the outer side of the rotating sleeve 54, and the drive handle 7 is located at the midpoint of the line connecting the two sets of oblique slots 58. Therefore, by rotating the drive handle 7 in different directions, the flipping module can be locked or unlocked, making operation more effortless.

[0027] like Figures 1 to 3 As shown, in this embodiment, the hopper module 3 includes a hopper 31 and a distributor 32. The discharge end of the hopper 31 is connected to the inlet end of the distributor 32, and both sides of the distributor 32 are connected to the corresponding rotating plates 52. Therefore, the hopper 31 is used for replenishing material, and the distributor 32 can evenly distribute the product in the hopper 31 onto each set of feed slots on the feeding track 4, preventing product accumulation.

[0028] like Figure 1 As shown, in this embodiment, the feed end of the hopper 31 is equipped with a rotary switch door 8. Therefore, the rotary switch door 8 closes after feeding is completed, preventing external materials from entering the hopper 31.

[0029] As Figure 2 shown, in the present embodiment, the base 1 is provided with several damping springs 9. As can be seen, several damping springs 9 provide the overall buffering effect of the device during vibration transmission.

[0030] The working principle of the utility model: before the equipment starts, the operator opens the rotating switch door 8 and replenishes the hopper 31, closes the rotating switch door 8 after the replenishment is completed, sets the vibration frequency and vibration force size and other parameters of the vibration module 2 according to the specifications of the material, sets the vibration module 2 after the setting is completed, the material distributor 32 transfers the product in the hopper 31 to the feeding track 4, and the vibration module 2 vibrates to make several products move on the feeding track 4 and flow out to the next station through the end of the feeding track 4, when the vibration transmission is completed, each component is closed, the operator drives the driving handle 7 to turn up, the rotating sleeve 54 rotates relative to the rotating shaft 61, the pin shaft 62 on the rotating shaft 61 slides on the inclined slot 58 on the rotating sleeve 54, and drives the rotating shaft 61 to slide towards the bottom of the sliding groove 57, when the end of the rotating shaft 61 is separated from the second square groove 56, the rotating plate 52 is unlocked, the operator turns the hopper module 3 away from the feeding track 4 by a certain angle, so that the hopper module 3 is separated from the feeding track 4, and the feeding track 4 can be cleaned, after cleaning, the hopper module 3 is reset, and the driving handle 7 is driven to turn down, so that the rotating shaft 61 is reset and locked by the second square groove 56, and the above steps are repeated, so that the vibration transmission and turnover cleaning of the vibration body can be realized.

[0031] Although the embodiments of the utility model are described in actual schemes, but do not constitute the limitation to the meaning of the utility model, for the technical personnel in the art, according to the modification of its implementation scheme and the combination with other schemes in this specification are obvious.

Claims

1. A vibrating body structure with a flipping function, comprising a base (1), a vibration module (2), a hopper module (3), a feeding track (4), and a flipping module (5), characterized in that: The vibration module (2) is disposed on the upper surface of the base (1), the feeding track (4) is disposed on the upper surface of the vibration module (2), and the flipping module (5) is disposed on the upper surface of the base (1) and drives the hopper module (3) to cooperate with the feeding track (4).

2. The vibrating body structure with a flipping function according to claim 1, characterized in that: The flipping module (5) includes two sets of support plates (51), two sets of rotating plates (52), a fixed shaft (53), and a rotating sleeve (54). The two sets of support plates (51) are connected to the two sides of the upper surface of the base (1). The opposite surfaces of the two sets of support plates (51) are connected by the fixed shaft (53). The two sets of rotating plates (52) are set on the outside of the corresponding support plates (51) and rotate in cooperation with the two ends of the fixed shaft (53). The upper surface of the two sets of support plates (51) is provided with a first square groove (55). The rotating plate (52) is provided with a second square groove (56) on the side corresponding to the first square groove (55). The two ends of the rotating sleeve (54) are cooperated with the corresponding first square groove (55) and second square groove (56) through the rotating shaft module (6).

3. A vibrating body structure with a flipping function according to claim 2, characterized in that: The rotating shaft module (6) includes a rotating shaft (61), a pin (62), and a floating spring (63). Both ends of the rotating sleeve (54) are provided with sliding grooves (57). The sliding end of the rotating shaft (61) is slidably engaged with the sliding groove (57). Both ends of the outer edge of the rotating sleeve (54) are provided with oblique slots (58). The two sets of oblique slots (58) have opposite deflection directions. The pin (62) is disposed on the rotating shaft (61) and is slidably engaged with the corresponding oblique slot (58). The floating spring (63) is disposed between the bottom of the rotating shaft (61) and the bottom of the sliding groove (57). The end of the rotating shaft (61) is conformally engaged with the first square groove (55) and the second square groove (56). When the rotating sleeve (54) rotates, the pin (62) is slidably engaged with the oblique slot (58) and drives the end of the rotating shaft (61) to engage with the first square groove (55) or the second square groove (56).

4. A vibrating body structure with a flipping function according to claim 3, characterized in that: The height of the pin (62) is equal to the height of the opening end of the oblique slot (58).

5. A vibrating body structure with a flipping function according to claim 3, characterized in that: A drive handle (7) is provided on the middle of the outer side of the rotating sleeve (54), and the drive handle (7) is located at the midpoint of the line connecting the middle of the two sets of oblique slots (58).

6. A vibrating body structure with a flipping function according to claim 2, characterized in that: The hopper module (3) includes a hopper (31) and a distributor (32). The discharge end of the hopper (31) is connected to the feed end of the distributor (32), and the two sides of the distributor (32) are connected to the corresponding rotating plates (52).

7. A vibrating body structure with a flipping function according to claim 6, characterized in that: The feed end of the hopper (31) is equipped with a rotary switch door (8).

8. A vibrating body structure with a flipping function according to claim 1, characterized in that: The base (1) is provided with several shock-absorbing springs (9).