Shock absorption mechanism of vibrator

By designing a vibrator shock absorber mechanism in the filling equipment, using a combined structure of multi-layer shock absorber plates and buffer parts, the vibration and noise problems caused by the vibration motor are solved, and the protection and silent effect of the equipment is achieved.

CN223035571UActive Publication Date: 2025-06-27ZHEJIANG XIAOTENG INTELLIGENCE TECH CO LTD
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Patent Information

Application Number
CN202422103534.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-28
Publication Date
2025-06-27
Estimated Expiration
2034-08-28

AI Technical Summary

Technical Problem

There are vibration and noise problems caused by vibrating motors in existing filling equipment, which affects the use.

Method used

A vibration shock absorber mechanism is designed, including a mounting frame and a shock absorbing assembly arranged below the mounting frame. The shock absorbing assembly consists of a plurality of shock absorbing plates and an elastic buffer member. The buffer member passes out above the second shock absorbing plate and is connected to the first shock absorbing plate to form a buffering effect.

Benefits of technology

It effectively reduces the vibration transmission of the vibration motor to the fuselage, reduces noise, protects the equipment and achieves a silent effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a vibrator damping mechanism, which comprises a mounting frame, a vibration motor, a vibration motor, a vibration motor, a vibration motor, a vibration motor and a damping device, and is characterized in that the mounting frame is connected with the vibration motor; the damping assembly is arranged below the mounting frame and comprises a first damping plate connected with the mounting frame and a second damping plate connected with the mounting frame; the second damping plate is arranged below the first damping plate; the third damping plate is arranged below the second damping plate; wherein a plurality of elastic buffering pieces are arranged between the second damping plate and the third damping plate, and the buffering pieces penetrate out to the position above the second damping plate and are connected with the first damping plate. The vibration motor can be damped, vibration conducted to a machine body is reduced while vibration force is provided for a bottle body, and the protection and mute effects are achieved.
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Description

Technical Field

[0001] The utility model relates to the technical field of filling shock absorption, in particular to a shock absorber mechanism for a vibrator. Background Art

[0002] Filling refers to the process of injecting liquid or semi-fluid substances into packaging containers through specific methods, mainly realized by filling equipment. There are vibration motors in some filling equipment to provide vibration to the filled bottles to improve the uniformity of the internal substances. For example, the automatic epoxy resin main agent filling device disclosed in the patent number CN210913195U includes a base, on the upper end surface of which a workbench is fixedly installed, on the upper end surface of the workbench a bottle seat is fixedly installed, on the upper end surface of the base a frame is fixedly installed, on the side of the frame a control panel is fixedly installed, and on the upper end surface of the frame a material cylinder is fixedly installed. In this automatic epoxy resin main agent filling device, the stirrer can stir and mix the epoxy resin main agent inside the material cylinder to prevent uneven precipitation of the epoxy resin main agent; the heater can heat the epoxy resin main agent inside the material cylinder to prevent the epoxy resin main agent from solidifying; the pressure pump applies pressure to the inside of the material cylinder, and the epoxy resin main agent inside the material cylinder moves downward under the pressure, facilitating discharging; by installing a vibration button motor in the bottle seat, the filled bottle can be driven to vibrate, so that the epoxy resin main agent in the filled bottle can be evenly distributed, facilitating use.

[0003] For such vibration structures, due to the lack of shock absorption, vibration will be caused to the fuselage during use, and relatively loud noises will be generated, affecting the use. Content of the Utility Model

[0004] The utility model is to avoid the deficiencies existing in the prior art and provides a shock absorber mechanism for a vibrator with shock absorption function.

[0005] The utility model solves the technical problems by adopting the following technical solutions: A shock absorber mechanism for a vibrator, comprising:

[0006] A mounting bracket for connecting with a vibration motor;

[0007] A shock absorption assembly arranged below the mounting bracket, the shock absorption assembly comprising:

[0008] A first shock absorption plate connected to the mounting bracket;

[0009] A second shock absorption plate arranged below the first shock absorption plate;

[0010] A third shock absorption plate arranged below the second shock absorption plate;

[0011] Among them, a plurality of elastic buffer members are arranged between the second shock-absorbing plate and the third shock-absorbing plate, and the buffer members penetrate above the second shock-absorbing plate and are connected to the first shock-absorbing plate.

[0012] In several embodiments, the buffer member includes a first body, a second body, and a third body coaxially arranged in sequence. The outer diameter of the third body is larger than that of the second body, and the outer diameter of the second body is larger than that of the first body.

[0013] In several embodiments, a first through hole is provided on the first shock-absorbing plate, and a second through hole is provided on the second shock-absorbing plate. The second through hole only allows the first body and the second body to pass through, and the first through hole only allows the first body to penetrate.

[0014] In several embodiments, a plug-in member is provided on the first shock-absorbing plate. The plug-in member includes a body portion and a head portion coaxially arranged. The outer diameter of the body portion is smaller than that of the head portion, and the body portion is used to penetrate into the first through hole and abut against the first body.

[0015] In several embodiments, axially penetrating connection holes are provided on both the plug-in member and the buffer member.

[0016] In several embodiments, a plurality of auxiliary shock-absorbing members are arranged between the second shock-absorbing plate and the third shock-absorbing plate, and the size of the auxiliary shock-absorbing members is smaller than that of the buffer members.

[0017] In several embodiments, a plurality of support feet are provided below the third shock-absorbing plate.

[0018] In several embodiments, a slot is provided on the front side of the first shock-absorbing plate.

[0019] The beneficial effects of the present utility model are as follows:

[0020] The present utility model can shock-absorb the vibration motor, reduce the vibration transmitted to the fuselage while maintaining the vibration force provided to the bottle body, and achieve the effects of protection and noise reduction. Description of the Drawings

[0021] The drawings described herein are only for the purpose of illustrating the selected embodiments and do not represent all possible embodiments, and should not be considered as a limitation on the scope of the present utility model.

[0022] Figure 1 Schematically shows the overall structure of the vibrator shock-absorbing mechanism in this embodiment;

[0023] Figure 2 Schematically shows Figure 1 The structure from another perspective;

[0024] Figure 3is schematically shown Figure 2 partial explosion structure of Specific Embodiment

[0025] Next, embodiments of the present invention will be described in detail with reference to the accompanying drawings. To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention.

[0026] Therefore, the following detailed description of the embodiments of the present invention provided in conjunction with the accompanying drawings is not intended to limit the scope of the claimed present invention, but merely represents selected embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts fall within the scope of protection of the present invention.

[0027] As Figures 1 - 3 shown, the vibration absorber mechanism in this embodiment is used in combination with a filling device. It mainly consists of a mounting frame 10 and a shock-absorbing component arranged below the mounting frame 10. The shock-absorbing component is arranged on the filling device. The side position of the mounting frame 10 is connected to a vibration motor, and the upper end position of the mounting frame 10 is connected to a tooling for fixing a container such as a bottle. Thus, vibration is provided through the mounting frame 10, and at the same time, the downward vibration generated by the mounting frame 10 is buffered and reduced by the shock-absorbing component, reducing the impact on the filling device and noise.

[0028] Specifically, the shock-absorbing component mainly consists of a first shock-absorbing plate 20 connected to the mounting frame 10, a second shock-absorbing plate 30 arranged below the first shock-absorbing plate 20, a third shock-absorbing plate 40 arranged below the second shock-absorbing plate 30, and a plurality of elastic buffer members 50. The buffer members 50 are installed between the second shock-absorbing plate 30 and the third shock-absorbing plate 40 to form a buffer.

[0029] Among them, a slot 22 is provided on the front side of the first shock-absorbing plate 20, and a first through hole 21 is provided at each of the four corners of the first shock-absorbing plate 20.

[0030] And, a second through hole 31 is also provided at each of the four corners of the second shock-absorbing plate 30. The positions of the first through hole 21 and the second through hole 31 correspond to each other and are connected.

[0031] Among them, the buffer member 50 passes through above the second shock-absorbing plate 30 and is connected to the first shock-absorbing plate 20. The buffer member 50 includes a first main body 51, a second main body 52, and a third main body 53 that are coaxially arranged in sequence. The outer diameter of the third main body 53 is greater than the outer diameter of the second main body 52, and the outer diameter of the second main body 52 is greater than the outer diameter of the first main body 51.

[0032] Moreover, the first through hole 21 only allows the first main body 51 to penetrate, and the second through hole 31 only allows the first main body 51 and the second main body 52 to pass through.

[0033] Among them, a plug-in member 60 is provided on the first shock-absorbing plate 20. The plug-in member 60 includes a body portion 61 and a head portion 62 that are coaxially arranged. The outer diameter of the body portion 61 is smaller than the outer diameter of the head portion 62. The body portion 61 is used to penetrate into the first through hole 21 and abut against the first main body 51. Axially penetrating connection holes 101 are provided on both the plug-in member 60 and the buffer member 50. A pin or the like can be inserted into the connection hole 101 for connection and positioning.

[0034] Among them, a plurality of auxiliary shock-absorbing members 70 are provided between the second shock-absorbing plate 30 and the third shock-absorbing plate 40. The size of the auxiliary shock-absorbing members 70 is smaller than the size of the buffer member 50. The auxiliary shock-absorbing members 70 also have elasticity, are cylindrical, and can be made of the same material as the buffer member 50, such as rubber.

[0035] Among them, a plurality of support feet 80 are provided below the third shock-absorbing plate 40, and are connected and fixed to an external filling device through the support feet 80.

[0036] All the ways described in this article can be carried out in any suitable order. Any and all examples used, or the exemplary language provided in this article (such as "for example") are only used to better illustrate the present invention, and are not a limitation on the scope of the present invention, unless otherwise claimed. The language in the detailed description should not be construed as indicating any essential elements for practicing the present invention that are not claimed.

[0037] The present invention describes preferred implementation schemes, including the best ways known to the inventors of the present invention for practicing the present invention. Of course, it is obvious to those skilled in the art that changes can be made to these preferred implementation schemes. The inventors of the present invention anticipate that those skilled in the art can use such changes as appropriate. The inventors of the present invention point out that the present invention can be implemented in other ways different from those specifically described above. Therefore, the present invention includes all improvements included in the gist and scope of the present invention defined by the claims. Moreover, unless otherwise stated or there is an obvious contradiction in content, the present invention includes any of the above elements and all possible changes thereof.

Claims

1. A vibration damping mechanism, characterized in that: include: A mounting frame (10), the mounting frame (10) being used to be connected to the vibration motor; A shock absorbing assembly is arranged below the mounting frame (10), the shock absorbing assembly comprising: A first shock absorbing plate (20) connected to the mounting frame (10); A second damping plate (30) disposed below the first damping plate (20); a third damping plate (40) disposed below the second damping plate (30); A plurality of elastic buffer members (50) are arranged between the second damping plate (30) and the third damping plate (40), and the buffer members (50) extend above the second damping plate (30) and are connected to the first damping plate (20).

2. A vibrator damping mechanism according to claim 1, characterized in that: The buffer member (50) comprises a first body (51), a second body (52) and a third body (53) which are coaxially arranged in sequence, the outer diameter of the third body (53) being greater than the outer diameter of the second body (52), and the outer diameter of the second body (52) being greater than the outer diameter of the first body (51).

3. A vibrator damping mechanism according to claim 2, characterized in that: The first damping plate (20) is provided with a first through hole (21), the second damping plate (30) is provided with a second through hole (31), the second through hole (31) is only for the first body (51) and the second body (52) to pass through, and the first through hole (21) is only for the first body (51) to pass through.

4. A vibrator damping mechanism according to claim 3, characterized in that: The first damping plate (20) is provided with a plug-in connector (60), the plug-in connector (60) comprising a body (61) and a head (62) which are coaxially arranged, the outer diameter of the body (61) being smaller than the outer diameter of the head (62), the body (61) being used to penetrate into the first through hole (21) and abut against the first main body (51).

5. A vibrator damping mechanism according to claim 4, characterized in that: The plug-in component (60) and the buffer component (50) are both provided with a connecting hole (101) that penetrates axially.

6. A vibrator damping mechanism according to claim 1, characterized in that: A plurality of auxiliary shock absorbing members (70) are arranged between the second shock absorbing plate (30) and the third shock absorbing plate (40), and the size of the auxiliary shock absorbing members (70) is smaller than the size of the buffer member (50).

7. A vibrator damping mechanism according to claim 1, characterized in that: A plurality of supporting legs (80) are arranged below the third damping plate (40).

8. A vibrator damping mechanism according to claim 1, characterized in that: The front side of the first damping plate (20) is provided with a slot (22).

Citation Information

Patent Citations

  • Automatic epoxy resin main agent filling device

    CN210913195U