Tamping structure of vibro-rammer and vibro-rammer

The vibratory compactor's improved structural design with a cushioning mechanism and guided movement addresses durability issues, enhancing performance and longevity.

CN223103604UActive Publication Date: 2025-07-15长城重工有限公司
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Patent Information

Application Number
CN202422292739.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-20
Publication Date
2025-07-15
Estimated Expiration
2034-09-20

AI Technical Summary

Technical Problem

The existing hydraulic vibration tamps need to be frequently checked during use, and the aging of the rubber shock absorber pads affects the service life, limiting the quality of the vibration tamps.

Method used

A compact structure of vibrating tamp is designed, including an upper bracket, a lower bracket and a buffer mechanism. Through the setting of the buffer and connector, the force between the upper bracket and the lower bracket is buffered, and the connection strength is increased to ensure the guiding and structural strength of the sliding stroke.

Benefits of technology

Through the setting of the buffer mechanism, the force between the upper bracket and the lower bracket is buffered, the structural strength and connection strength of the vibration tamp are improved, the service life is extended, and the quality of use is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a tamping structure of a vibro-rammer and the vibro-rammer. The tamping structure of the vibro-rammer comprises an upper support, a lower support and a buffering mechanism, wherein the lower support is arranged on the upper support and can slide relative to the upper support, and the buffering mechanism is arranged between the upper support and the lower support. The buffering mechanism is used for buffering acting force generated between the lower support and the upper support when the upper support and the lower support slide relatively, and the buffering mechanism comprises a connecting piece arranged between the upper support and the lower support and a buffering piece arranged on the connecting piece. The tamping structure of the vibro-rammer can improve the use quality of the vibro-rammer.
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Description

Technical Field

[0001] The utility model relates to the technical field of vibrating rammers, and particularly to a compaction structure of a vibrating rammer. The utility model also relates to a vibrating rammer provided with the compaction structure of the vibrating rammer. Background Technique

[0002] A vibrating rammer is a type of auxiliary working device for construction machinery, and is used for compacting the foundation of projects and backfill soil in trenches by departments such as highways, municipal administration, telecommunications, gas, water supply, and railways. It is mainly applicable to compacting materials with small adhesive force and friction force between particles, such as soil, river sand, gravel, and asphalt. The vibrating ram has a large compaction layer thickness, and the compaction degree can meet the requirements of the foundation such as highways. The vibrating ram belongs to the equipment equipped with an excavator and is used for compacting the ground. It can compact planes, slopes, steps, trenches, pits, corners, and back of abutments, etc., and is widely used in the compaction industry.

[0003] At present, the existing hydraulic vibrating ram for excavators is composed of a hydraulic motor, an eccentric mechanism, a ram plate, and a rubber shock pad. The hydraulic ram uses the hydraulic motor to drive the eccentric mechanism to rotate, and the vibration generated by the rotation acts on the material to be rammed through the ram plate, so that the material is compacted.

[0004] Before the existing hydraulic vibrating ram works, it is necessary to check and tighten the bolts of the rubber shock pad, and it is also necessary to prevent the excavator from dropping its arm when parked, so as to avoid damage to the rubber shock pad due to excessive weight bearing caused by the dropping of the arm. There are too many limiting conditions, and the aging of the rubber shock pad will affect the service life of the vibrating ram, which is not conducive to improving the use quality of the vibrating ram. Content of the Utility Model

[0005] In view of this, the utility model aims to provide a compaction structure of a vibrating ram to improve the use quality of the vibrating ram.

[0006] To achieve the above object, the technical solution of the utility model is realized as follows:

[0007] A compaction structure of a vibrating ram includes an upper bracket, a lower bracket disposed on the upper bracket and capable of sliding relative to the upper bracket, and a buffer mechanism disposed between the upper bracket and the lower bracket;

[0008] The buffer mechanism is used to buffer the acting force generated between the lower bracket and the upper bracket when the lower bracket and the upper bracket slide relative to each other, and the buffer mechanism includes a connecting member disposed between the upper bracket and the lower bracket, and a buffer member disposed on the connecting member.

[0009] Further, the upper bracket includes a base plate, a mounting portion disposed above the base plate, and a first connecting portion disposed below the base plate;

[0010] The ramming structure of the vibrating rammer is assembled on an external carrier through the mounting part, and the first connecting part is connected to the connecting piece.

[0011] Furthermore, the mounting part includes a first mounting plate, a second mounting plate, and a pin shaft;

[0012] The first mounting plate and the second mounting plate are oppositely arranged on the base plate, and the pin shaft is penetrated through the first mounting plate and the second mounting plate.

[0013] Furthermore, the first connecting part includes a first extension plate extending downward from the base plate, and a first connecting plate arranged at the end of the first extension plate;

[0014] The first connecting plate is connected to the connecting piece.

[0015] Furthermore, the lower bracket includes a compaction plate, and a second connecting part arranged above the compaction plate;

[0016] The second connecting part is connected to the connecting piece.

[0017] Furthermore, the compaction plate includes a plate body, and flanges are upwardly folded at both opposite ends of the plate body.

[0018] Furthermore, the second connecting part includes a second extension plate extending upward from the compaction plate, and a second connecting plate arranged at the end of the second extension plate;

[0019] The second connecting plate is connected to the connecting piece.

[0020] Furthermore, the connecting piece includes a connecting column, a slotted nut, and a limit pin;

[0021] The lower end of the connecting column is fixedly arranged on the lower bracket, the upper end of the connecting column penetrates through the upper bracket, and a thread is arranged on the upper end of the connecting column;

[0022] The slotted nut is screwed on the upper end of the connecting column to form a position constraint of the upper bracket on the connecting column;

[0023] The limit pin is penetrated through the upper end of the connecting column and is located in the slot of the slotted nut to form a position constraint of the slotted nut on the connecting column.

[0024] Furthermore, the buffer member is a spring sleeved on the connecting piece.

[0025] Compared with the prior art, the present utility model has the following advantages:

[0026] The ramming structure of the vibrating rammer described in the present utility model can buffer the acting force generated between the upper bracket and the lower bracket through the setting of the buffer member, and can guide the sliding stroke when the lower bracket slides relative to the upper bracket through the setting of the connecting member, facilitating the sliding of the lower bracket relative to the upper bracket. Moreover, through the setting of the connecting member, the connection strength between the upper bracket and the lower bracket is improved, which is beneficial to enhancing the structural strength of the ramming structure and thus beneficial to improving the use quality of the vibrating rammer.

[0027] The upper bracket includes a base plate, a mounting portion, and a first connecting portion, and the mounting portion and the first connecting portion are respectively arranged on both sides of the base plate, which is beneficial to enhancing the structural strength of the upper bracket, enabling the forces borne by the mounting portion and the first connecting portion to be distributed to the base plate, and ensuring the connection strength of each of the mounting portion and the first connecting portion.

[0028] Through the setting of the first mounting plate and the second mounting plate, better connection strength can be provided between the ramming structure and the external carrier. Through the setting of the pin shaft, it is convenient for the assembly of the ramming structure on the external carrier and can ensure the connection strength. The structure is simple and beneficial to design and implementation.

[0029] Through the setting of the first extension plate, a receiving space can be formed below the base plate, facilitating the arrangement of the vibration source within the ramming structure and being beneficial to enhancing the structural strength of the upper bracket, which is beneficial to design and implementation.

[0030] The lower bracket includes a compaction plate and a second connecting portion. The buffer mechanism is connected through the second connecting portion, and the soil is compacted through the compaction plate, which is beneficial to enhancing the connection strength between the lower bracket and the buffer mechanism and is beneficial to design and implementation.

[0031] The compaction plate includes a plate body and flanges provided at opposite ends of the plate body. Through the setting of the flanges, the acting force received when the compaction plate compacts the soil can be dispersed to improve the structural strength of the compaction plate, and it is beneficial for the soil below the vibrating rammer to be extruded to both sides when the vibrating rammer compacts the soil, which is beneficial to enhancing the compaction effect of the vibrating rammer.

[0032] Through the setting of the second extension plate, a receiving space is formed above the compaction plate, facilitating the arrangement of the vibration source and being beneficial to enhancing the connection strength between the second connecting portion and the connecting member.

[0033] Through the cooperation of the connecting column with the slotted nut and the limit pin, good connection strength is provided, which is beneficial to the connection between the upper bracket and the lower bracket. Through the setting of the slotted nut and the limit pin, the lower bracket can vibrate relative to the upper bracket without disengaging from the connecting column, which is beneficial to design and implementation.

[0034] The buffer member is a spring, which is convenient for assembly, and through the elasticity of the spring itself, the acting force generated between the upper bracket and the lower bracket due to the relative sliding between the upper bracket and the lower bracket can be better buffered.

[0035] The present utility model also provides a vibrating rammer, and the vibrating rammer is provided with the ramming structure of the vibrating rammer as described above.

[0036] The vibrating rammer of the present utility model has the same beneficial effects as the ramming structure of the vibrating rammer as described above compared with the prior art, so it will not be repeated here. BRIEF DESCRIPTION OF THE DRAWINGS

[0037] The drawings constituting a part of the present utility model are used to provide a further understanding of the present utility model. The schematic embodiments of the present utility model and their descriptions are used to explain the present utility model and do not constitute an improper limitation to the present utility model. In the drawings:

[0038] Figure 1 is a schematic structural diagram of the ramming structure of the vibrating rammer according to the embodiment of the present utility model;

[0039] Figure 2 is a schematic structural diagram of the upper bracket of the ramming structure of the vibrating rammer according to the embodiment of the present utility model;

[0040] Figure 3 is a schematic structural diagram of the lower bracket of the ramming structure of the vibrating rammer according to the embodiment of the present utility model;

[0041] Figure 4 is Figure 1 an enlarged view of part A;

[0042] Description of the reference numerals:

[0043] 1. Upper bracket;

[0044] 101. Substrate; 102. Installation part; 103. First connection part;

[0045] 1021. First mounting plate; 1022. Second mounting plate; 1023. Pin shaft; 1024. Reinforcing rib;

[0046] 1031. First extension plate; 1032. First connection plate;

[0047] 2. Lower bracket;

[0048] 201. Second connection part; 202. Compacting plate;

[0049] 2011. Second extension plate; 2012. Second connection plate;

[0050] 2021. Plate body; 2022. Flange;

[0051] 3. Buffer mechanism;

[0052] 301. Connector; 302. Buffer member;

[0053] 3011. Connecting column; 3012. Slotted nut; 3013. Limit pin. Detailed implementation manners

[0054] It should be noted that, without conflict, the embodiments in the present utility model and the features in the embodiments may be combined with each other.

[0055] In the description of the present utility model, it should be noted that if terms indicating orientation or positional relationship such as "upper", "lower", "inner", "outer", etc. appear, they are based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore should not be construed as a limitation to the present utility model. In addition, if terms such as "first", "second", etc. appear, they are also only for descriptive purposes and cannot be construed as indicating or implying relative importance.

[0056] Taking the vibrating ram where the ramming structure described in the present utility model is located as an example, the orientation terms such as "upper, lower, left, right, front, rear" used in the embodiments are defined based on the up-down direction (also known as the height direction), left-right direction (also known as the width direction), and front-rear direction (also known as the length direction) of the vibrating ram. "Inner" and "outer" are defined based on the contour of the corresponding component. For example, "inner" and "outer" defined based on the contour of the vibrating ram, the side close to the middle of the vibrating ram is "inner", and vice versa is "outer".

[0057] In addition, in the description of the present utility model, unless otherwise clearly defined, the terms "installation", "connection", "connection", "connector" should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or an integral connection; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood in combination with specific situations.

[0058] The present utility model will be described in detail below with reference to the drawings and in combination with embodiments.

[0059] Embodiment 1

[0060] This embodiment relates to a ramming structure of a vibrating ram, aiming to improve the use quality of the vibrating ram.

[0061] In terms of the overall structure, as Figures 1 to 4 shown, the ramming structure of the vibrating ram in this embodiment includes an upper bracket 1, a lower bracket 2, and a buffer mechanism 3.

[0062] Among them, the lower bracket 2 is arranged on the upper bracket 1 and can slide relative to the upper bracket 1. The buffer mechanism 3 is arranged between the upper bracket 1 and the lower bracket 2. The buffer mechanism 3 is used to buffer the acting force generated between the lower bracket 2 and the upper bracket 1 when the upper bracket 1 and the lower bracket 2 slide relative to each other. The buffer mechanism 3 includes a connecting member 301 arranged between the upper bracket 1 and the lower bracket 2, and a buffer member 302 arranged on the connecting member 301.

[0063] With the above settings, in the ramming structure of the vibratory ram in this embodiment, through the setting of the buffer member 302, the acting force generated between the upper bracket 1 and the lower bracket 2 can be buffered. And through the setting of the connecting member 301, the sliding stroke when the lower bracket 2 slides relative to the upper bracket 1 can be guided, which is convenient for the lower bracket 2 to slide relative to the upper bracket 1. And through the setting of the connecting member 301, the connection strength between the upper bracket 1 and the lower bracket 2 is improved, which is beneficial to improving the structural strength of the ramming structure and thus beneficial to improving the use quality of the vibratory ram.

[0064] Specifically, in this embodiment, as an exemplary structure, in combination with Figure 1 and Figure 2 As shown, in order to better improve the structural strength of the upper bracket 1, the upper bracket 1 in this embodiment includes a base plate 101, a mounting portion 102 arranged above the base plate 101, and a first connecting portion 103 arranged below the base plate 101. The ramming structure of the vibratory ram is assembled on an external carrier through the mounting portion 102, and the first connecting portion 103 is connected to the connecting member 301. In this embodiment, the external carrier is an engineering vehicle, such as an excavator. The mounting portion 102 is assembled on the arm of the excavator, so that the vibratory ram can be moved by the excavator. The upper bracket 1 includes the base plate 101, the mounting portion 102 and the first connecting portion 103, and the mounting portion 102 and the first connecting portion 103 are respectively arranged on both sides of the base plate 101, which is beneficial to improving the structural strength of the upper bracket 1, so that the forces borne by the mounting portion 102 and the first connecting portion 103 can be shared on the base plate 101, ensuring the connection strength of the mounting portion 102 and the first connecting portion 103 respectively.

[0065] More specifically, the base plate 101 in this embodiment is circularly arranged. The circularly arranged base plate 101 can better share the stress between the mounting portion 102 and the first connecting portion 103. Of course, the base plate 101 can also be adjusted to other shapes according to design requirements, such as rectangular or rhombic, etc., as long as it meets the requirements of the structural design and can provide good structural strength.

[0066] In order to better facilitate the installation of the vibratory ram on the external carrier, in combination with Figure 2As shown in the figure, the installation part 102 in this embodiment includes a first mounting plate 1021, a second mounting plate 1022, and a pin shaft 1023. The first mounting plate 1021 and the second mounting plate 1022 are oppositely arranged on the base plate 101, and the pin shaft 1023 passes through the first mounting plate 1021 and the second mounting plate 1022. Through the arrangement of the first mounting plate 1021 and the second mounting plate 1022, better connection strength can be provided between the ramming structure and the external carrier. Through the arrangement of the pin shaft 1023, the assembly of the ramming structure on the external carrier is facilitated, and the connection strength can be ensured. The structure is simple and is conducive to design and implementation.

[0067] Specifically, the number of the pin shafts 1023 is two. When the installation part 102 is assembled on the external carrier, the pin shafts 1023 are removed from the first mounting plate 1021 and the second mounting plate 1022, the pin shafts 1023 pass through the first mounting plate 1021, and after passing through the basic matching holes on the external carrier, they pass through the second mounting plate 1022, and then the ramming structure of the vibrating ram is assembled on the external carrier. Of course, the number of the pin shafts 1023 can also be adjusted according to the design requirements, and only needs to be adjusted according to the number of the basic matching holes of the external carrier.

[0068] In order to better improve the structural strength of the installation part 102, the installation part 102 in this embodiment further includes a reinforcing rib 1024. The reinforcing rib 1024 is arranged between the first mounting plate 1021 and the second mounting plate 1022 and is respectively connected to the first mounting plate 1021 and the second mounting plate 1022. A hollow is provided in the middle of the reinforcing rib 1024 to facilitate the assembly of the vibration source. Through the arrangement of the reinforcing rib 1024, the structural strength of the installation part 102 is improved, the structure is simple, and it is conducive to design and implementation.

[0069] In order to facilitate the arrangement of the vibration source and improve the structural strength of the first connection part 103, the first connection part 103 in this embodiment includes a first extension plate 1031 extending downward from the base plate 101, and a first connection plate 1032 arranged at the end of the first extension plate 1031. The first connection plate 1032 is connected to the connecting piece 301. Through the arrangement of the first extension plate 1031, a receiving space can be formed below the base plate 101, which is convenient for the arrangement of the vibration source in the ramming structure, and is conducive to enhancing the structural strength of the upper support 1, and is conducive to design and implementation.

[0070] It is worth mentioning that a hollow is provided on the side wall of the first extension plate 1031. Through the arrangement of the hollow, the arrangement of the vibration source can be facilitated, and the maintenance and repair of the vibration source are facilitated. The shape of the hollow can be, for example, an oval hole, and the number of the hollows can be, for example, four arranged at intervals along the side of the first extension plate 1031. Of course, it can also be two, six or eight, as long as the structural strength of the first extension plate 1031 can be ensured.

[0071] In this embodiment, the lower bracket 2 is slidably disposed below the upper bracket 1 through a buffer mechanism 3, and the lower bracket 2 can be driven by a vibration source to compact the soil.

[0072] Specifically, in combination with Figure 1 and Figure 3 As shown, the lower bracket 2 of the compaction structure of the vibrating rammer in this embodiment includes a compaction plate 202 and a second connecting portion 201 disposed above the compaction plate 202. The second connecting portion 201 is connected to the connecting member 301. The lower bracket 2 includes the compaction plate 202 and the second connecting portion 201. The buffer mechanism 3 is connected through the second connecting portion 201, and the soil is compacted through the compaction plate 202, which is beneficial to improving the connection strength between the lower bracket 2 and the buffer mechanism 3 and is conducive to the design and implementation.

[0073] In order to better improve the compaction effect of the compaction plate 202, the compaction plate 202 in this embodiment includes a plate body, and flanges 2022 are turned up at both opposite ends of the plate body 2021. The compaction plate 202 includes the plate body 2021 and the flanges 2022 disposed at opposite ends of the plate body 2021. Through the arrangement of the flanges 2022, the acting force received when the compaction plate 202 compacts the soil can be dispersed to improve the structural strength of the compaction plate 202, and it is beneficial for the soil below the vibrating rammer to be extruded to both sides when the vibrating rammer compacts the soil, which is beneficial to improving the compaction effect of the vibrating rammer.

[0074] It should be noted that when the compaction structure of the vibrating rammer in this embodiment is assembled with the vibration source to form a vibrating rammer, the lower bracket 2 of the compaction structure of the vibrating rammer in this embodiment can slide relative to the upper bracket 1 under the drive of the vibration source, and the soil can be compacted through the compaction plate 202 of the lower bracket 2.

[0075] More specifically, in order to facilitate the arrangement of the vibration source and improve the structural strength of the second connecting portion 201, the second connecting portion 201 of the lower bracket 2 in this embodiment includes a second extension plate 2011 extending upward from the compaction plate 202 and a second connecting plate 2012 disposed at the end of the second extension plate 2011. The second connecting plate 2012 is connected to the connecting member 301. Through the arrangement of the second extension plate 2011, a receiving space is formed above the compaction plate 202, which is convenient for the arrangement of the vibration source and is beneficial to improving the connection strength between the second connecting portion 201 and the connecting member 301.

[0076] The buffer mechanism 3 in this embodiment can buffer the acting force generated between the upper bracket 1 and the lower bracket 2 due to the relative sliding of the upper bracket 1 and the lower bracket 2. Through the arrangement of the connecting member 301, good structural strength can be provided between the upper bracket 1 and the lower bracket 2, and the acting force between the upper bracket 1 and the lower bracket 2 can be buffered through the buffer member 302.

[0077] Specifically, in combination with Figure 1 andFigure 4 As shown, in order to provide better structural strength, the connecting member 301 in this embodiment includes a connecting column 3011, a slotted nut 3012, and a limit pin 3013. Among them, the lower end of the connecting column 3011 is fixedly arranged on the lower bracket 2, the upper end of the connecting column 3011 passes through the upper bracket 1, and a thread is provided on the upper end of the connecting column 3011. The slotted nut 3012 is screwed onto the upper end of the connecting column 3011 to form a position constraint of the upper bracket 1 on the connecting column 3011. The limit pin 3013 is inserted through the upper end of the connecting column 3011 and is located in the slot of the slotted nut 3012 to form a position constraint of the slotted nut 3012 on the connecting column 3011. Through the cooperation of the connecting column 3011, the slotted nut 3012, and the limit pin 3013, good connection strength is provided, which is beneficial to the connection between the upper bracket 1 and the lower bracket 2. Through the settings of the slotted nut 3012 and the limit pin 3013, the lower bracket 2 can vibrate relative to the upper bracket 1 without detaching from the connecting column 3011, which is beneficial to the design and implementation.

[0078] A plurality of connecting columns 3011 are spaced and arranged on the first connecting portion 103 and the second connecting portion 201. The number of connecting columns 3011 can be, for example, three, four, five, six, seven, or eight, and only needs to be selected according to the structural design requirements. Correspondingly, the numbers of the buffer member 302, the slotted nut 3012, and the limit pin 3013 are all matched with the number of connecting columns 3011. In this embodiment, the number of connecting columns 3011 is six. Correspondingly, the numbers of the buffer member 302, the slotted nut 3012, and the limit pin 3013 are all six, the same as the number of connecting columns 3011.

[0079] More specifically, in order to better buffer the acting force between the upper bracket 1 and the lower bracket 2, the buffer member 302 of the buffer mechanism 3 in this embodiment is a spring sleeved on the connecting member 301. When the upper bracket 1 and the lower bracket 2 slide relative to each other to generate an acting force, the spring is compressed and can absorb the acting force between the upper bracket 1 and the lower bracket 2, thereby forming good buffering for the upper bracket 1 and the lower bracket 2. Making the buffer member 302 a spring is convenient for assembly, and through the elasticity of the spring itself, it can better buffer the acting force generated between the upper bracket 1 and the lower bracket 2 due to the relative sliding between the upper bracket 1 and the lower bracket 2.

[0080] When the compaction structure of the vibrating rammer in this embodiment is in use, first, the vibration source needs to be assembled between the upper bracket 1 and the lower bracket 2. The lower end of the connecting column 3011 is fixedly arranged on the second connecting part 201. Then, the upper bracket 1 is passed through the upper end of the connecting column 3011. After that, the slotted nut 3012 is screwed onto the upper end of the connecting column 3011, and the limit pin 3013 is passed through the slot of the slotted nut 3012 and the upper end of the connecting column 3011. Then, the mounting part 102 is assembled on the external carrier. Through the compaction structure of the vibrating rammer in this embodiment, it is convenient to install the vibration source in the vibrating rammer and convenient to install the vibrating rammer on the external carrier, which is beneficial to the design and implementation.

[0081] The compaction structure of the vibrating rammer in this embodiment has good structural strength and connection strength with the external carrier through the structural design of the upper bracket 1 and the lower bracket 2. There is a receiving cavity for the vibration source between the upper bracket 1 and the lower bracket 2, which is convenient for the assembly of the vibration source. Through the buffer mechanism 3, the acting force generated between the upper bracket 1 and the lower bracket 2 due to their relative sliding can be buffered, avoiding the influence of the acting force between the upper bracket 1 and the lower bracket 2 on its own service life, which is beneficial to improving the service life of the vibrating rammer and ensuring the connection strength between the upper bracket 1 and the lower bracket 2, effectively improving the use quality of the vibrating rammer.

[0082] Embodiment Two

[0083] This embodiment relates to a vibrating rammer, in which the compaction structure of the vibrating rammer in Embodiment One is provided.

[0084] Through the setting of the compaction structure of the vibrating rammer in Embodiment One, the vibrating rammer in this embodiment can have good structural strength and compaction effect, and through the setting of the buffer mechanism 3, its own service life can be improved, which is beneficial to improving the use quality of the vibrating rammer.

[0085] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. The ramming structure of a vibrating rammer, characterized in that: It includes an upper bracket (1), a lower bracket (2) provided on the upper bracket (1) and capable of sliding relative to the upper bracket (1), and a buffer mechanism (3) provided between the upper bracket (1) and the lower bracket (2); The buffer mechanism (3) is used to buffer the acting force generated between the lower bracket (2) and the upper bracket (1) when the upper bracket (1) and the lower bracket (2) slide relative to each other, and the buffer mechanism (3) includes a connecting member (301) provided between the upper bracket (1) and the lower bracket (2), and a buffer member (302) provided on the connecting member (301).

2. The ramming structure of the vibrating rammer according to claim 1, characterized in that: The upper bracket (1) includes a base plate (101), a mounting portion (102) provided above the base plate (101), and a first connecting portion (103) provided below the base plate (101); The ramming structure of the vibrating rammer is assembled on an external carrier through the mounting portion (102), and the first connecting portion (103) is connected to the connecting member (301).

3. The ramming structure of the vibrating rammer according to claim 2, characterized in that: The mounting portion (102) includes a first mounting plate (1021), a second mounting plate (1022) and a pin shaft (1023); The first mounting plate (1021) and the second mounting plate (1022) are oppositely provided on the base plate (101), and the pin shaft (1023) is passed through the first mounting plate (1021) and the second mounting plate (1022).

4. The ramming structure of the vibrating rammer according to claim 2, characterized in that: The first connecting portion (103) includes a first extension plate (1031) extending downward from the base plate (101), and a first connecting plate (1032) provided at the end of the first extension plate (1031); The first connecting plate (1032) is connected to the connecting member (301).

5. The ramming structure of the vibrating rammer according to claim 1, characterized in that: The lower bracket (2) includes a compaction plate (202), and a second connecting portion (201) provided above the compaction plate (202); The second connecting portion (201) is connected to the connecting member (301).

6. The ramming structure of the vibrating rammer according to claim 5, characterized in that: The compaction plate (202) includes a plate body, and flanges (2022) are turned up at both opposite ends of the plate body (2021).

7. The ramming structure of the vibrating rammer according to claim 5, characterized in that: The second connecting portion (201) includes a second extension plate (2011) extending upward from the compaction plate (202), and a second connecting plate (2012) provided at the end of the second extension plate (2011); The second connecting plate (2012) is connected to the connecting member (301).

8. The ramming structure of the vibrating rammer according to claim 1, characterized in that: The connecting member (301) includes a connecting column (3011), a slotted nut (3012) and a limit pin (3013); The lower end of the connecting column (3011) is fixedly provided on the lower bracket (2), the upper end of the connecting column (3011) passes through the upper bracket (1), and a thread is provided on the upper end of the connecting column (3011); The slotted nut (3012) is screwed onto the upper end of the connecting column (3011) to form a position constraint of the upper bracket (1) on the connecting column (3011); The limit pin (3013) is inserted through the upper end of the connecting column (3011) and is located in the slot of the slotted nut (3012) to form a position constraint of the slotted nut (3012) on the connecting column (3011).

9. The compaction structure of the vibrating rammer according to any one of claims 1-8, characterized in that: The buffer member (302) is a spring sleeved on the connecting member (301).

10. A vibrating rammer, characterized in that: The vibrating rammer is provided with the compaction structure of the vibrating rammer according to any one of claims 1-9.