Hectometer ultra-large depth vibroflot

By designing a connecting plate driven by an electric telescopic rod and a 100-meter ultra-large depth type vibrator with a rotating motor driving the rotating shaft, the problem of poor soil improvement and stability of the vibrator is solved, and more efficient soil improvement and stability are achieved.

CN223163858UActive Publication Date: 2025-07-29JIANGYIN ZHENBO MASCH CO LTD
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Patent Information

Application Number
CN202422144874.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-03
Publication Date
2025-07-29
Estimated Expiration
2034-09-03

AI Technical Summary

Technical Problem

When facing different soil environments, the existing 100-meter ultra-large depth type vibrator may not achieve the expected results of users by relying solely on vibration to improve the soil.

Method used

A 100-meter ultra-large depth type vibrator is designed. The reciprocating movement of the connecting plate and the load detector is driven by an electric telescopic rod. Combined with the rotating motor, the rotation of the rotating shaft and the vibration survey head is driven, and the telescopic column and the vibration drill bit are equipped to adapt to different soil environments. The exploration situation is monitored in real time through the detection ring.

Benefits of technology

The expected effect of better achieving soil improvement and stability in different soil environments is achieved, and the adaptability and efficiency of the vibrator are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of vibroflots, and discloses a hectometer ultra-large depth type vibroflot. Comprising a vibration rod, a fixing plate is fixedly connected to the top end of the inner wall of the vibration rod, an electric telescopic rod located below the fixing plate is started to push a connecting plate to do reciprocating motion downwards, and clamping grooves are formed in the surfaces of clamping blocks, so that when the clamping grooves make contact with elastic blocks, the elastic blocks are clamped, and the vibration rod is fixed. When an electric telescopic rod is started, a load detector below is pushed to reciprocate up and down in an excavated pit, a vibrator also reciprocates up and down, meanwhile, a rotating motor is fixedly connected into the vibrator, the rotating motor is also started when the electric telescopic rod is started, and the rotating motor drives a rotating shaft at the output end of the rotating motor to rotate; meanwhile, the rotating shaft is driven to be away from the rotating rod of the rotating motor to rotate together, then the vibration exploration head rotates at the same time, certain help is provided for vibration decomposition of the lowermost soil, and the soil can easily reach the expectation expected by a user.
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Description

Technical Field

[0001] The utility model relates to the technical field of vibroflots, in particular to a vibroflot with a super-large depth of one hundred meters. Background Technique

[0002] The "vibroflot with a super-large depth of one hundred meters" is an engineering device for soil treatment. Through vibration and impact, it can effectively improve and reinforce deep soil. The working principle of the vibroflot is to use vibration and impact force to drive the impact hammer or vibrating head of the device deep into the soil to improve the compactness and stability of the soil mass. This device is commonly used in foundation engineering, foundation treatment, and other engineering projects that require deep soil treatment.

[0003] At present, the existing vibroflots with a super-large depth of one hundred meters still use vibration and impact force to drive the impact hammer or vibrating head of the device deep into the soil to improve the compactness and stability of the soil mass. However, since the soil environment for each operation is different, if encountering a complex soil environment, simply relying on vibration to improve the soil environment may not achieve the desired soil effect for users. Therefore, we propose a vibroflot with a super-large depth of one hundred meters. Content of the Utility Model

[0004] The purpose of the utility model is to provide a vibroflot with a super-large depth of one hundred meters to solve the problem that since the soil environment for each operation of the vibroflot with a super-large depth of one hundred meters is different, if encountering a complex soil environment, simply relying on vibration to improve the soil environment may not achieve the desired soil effect as proposed in the above background technique.

[0005] To achieve the above purpose, the utility model provides the following technical solution: A vibroflot with a super-large depth of one hundred meters, including a vibrating rod. The inner wall top of the vibrating rod is fixedly connected with a fixing plate. The lower end of the fixing plate is fixedly connected with an electric telescopic rod. The end of the electric telescopic rod away from the fixing plate is fixedly connected with a connecting plate. The end of the connecting plate away from the electric telescopic rod is fixedly connected with a clamping block. The surface of the clamping block is provided with a clamping groove. The inner wall bottom of the vibrating rod is fixedly connected with an elastic block. The inner wall surface of the clamping groove is in contact with the elastic block.

[0006] As a further preference of the above technical solution, the upper end of the vibrating rod is fixedly connected with a connector. The end of the connector away from the vibrating rod is rotatably connected with a clamping ring. The number of the connectors is set to two. The two connectors are symmetrically arranged up and down about the center of the clamping ring. The end of the connector away from the clamping ring is rotatably connected with a rotator.

[0007] As a further preference of this technical solution, a detection ring is rotatably connected to one end of the rotator away from the connector. A connecting clamping column is fixedly connected to the upper end of the detection ring. The number of the detection rings is set to two, and the two detection rings are symmetrically arranged up and down about the center of the connecting clamping column. A connecting rod is fixedly connected to the upper end of the detection ring, and a limiting plate is fixedly connected to one end of the connecting rod away from the detection ring.

[0008] As a further preference of this technical solution, a load detector is rotatably connected to the lower end of the vibrating rod. A connecting column is arranged at the center of the load detector. The lower end of the vibrating rod is rotatably connected to the upper end of the connecting column. An exploration groove is formed on the surface of the load detector, and a vibrator is fixedly connected to the lower end of the load detector.

[0009] As a further preference of this technical solution, a clamping plate is fixedly connected to the inner wall of the vibrator. A rotating motor is fixedly connected to the upper end of the clamping plate. The output end of the rotating motor is rotatably connected to a rotating shaft. A rotating rod is fixedly connected to one end of the rotating shaft away from the rotating motor, and a vibrating exploration head is fixedly connected to one end of the rotating rod away from the rotating shaft.

[0010] As a further preference of this technical solution, vibrating fan blades are fixedly connected to the surface of the vibrator. The number of the vibrating fan blades is set to two, and the two vibrating fan blades are symmetrically arranged left and right about the center of the vibrator.

[0011] As a further preference of this technical solution, a telescopic column is fixedly connected to the lower end of the vibrator. A top block is fixedly connected to one end of the telescopic column away from the vibrator. A vibrating drill bit is fixedly connected to one end of the top block away from the telescopic column. The number of the telescopic columns is set to several, and several telescopic columns are fixedly connected to the periphery of the lower end of the vibrator.

[0012] The utility model provides a vibroflot for ultra-large depth of one hundred meters, and has the following beneficial effects:

[0013] (1) By starting the electric telescopic rod located below the fixed plate, the electric telescopic rod will push the connecting plate to move repeatedly downward. And because a card slot is formed on the surface of the clamping block, when the card slot contacts the elastic block, it will be clamped, thereby pushing the lower load detector to move up and down reciprocally inside the dug soil pit at the same time, thus driving the vibrator below the load detector to also move up and down reciprocally at the same time. At the same time, because a rotating motor is fixedly connected to the inside of the vibrator, when starting the electric telescopic rod, the rotating motor is also started at the same time. The rotating motor will drive the rotating shaft at its output end to rotate, thereby driving the rotating rod away from the rotating motor of the rotating shaft to rotate together, and then the vibrating exploration head will also rotate at the same time, thereby providing certain help for the vibration decomposition of the soil at the bottommost layer, so that the soil can easily reach the expected value desired by the user.

[0014] (2) In the present utility model, a telescopic column is fixedly connected to the lower end of the vibrator. The user can adjust the height of the telescopic column according to the specific vibroflotation situation, so that the vibration drill bit at the top of the top block can also contact the soil at the lowest level, making the land after vibroflotation more in line with the user's ideal expectation. Since a detection ring is provided at the lower end of the connecting rod, the situation of the subsurface exploration and vibroflotation can be understood in real time according to the detection ring. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 is a schematic diagram of the overall structure of the present utility model;

[0016] Figure 2 is a schematic sectional view of the overall structure of the present utility model;

[0017] Figure 3 is a schematic sectional view of the internal structure of the vibrator of the present utility model;

[0018] Figure 4 is a schematic diagram of the internal structure of the vibrating rod of the present utility model;

[0019] Figure 5 is the present utility model Figure 3 is an enlarged schematic diagram of the structure of part A in the present utility model.

[0020] In the figure: 1. Limit plate; 2. Connecting rod; 3. Detection ring; 4. Connecting clamping column; 5. Rotator; 6. Connector; 7. Snap ring; 8. Vibrating rod; 9. Fixed plate; 10. Electric telescopic rod; 11. Connecting plate; 12. Clamping block; 13. Card slot; 14. Elastic block; 15. Connecting column; 16. Exploration groove; 17. Load detector; 18. Vibrator; 19. Vibration fan blade; 20. Rotating motor; 21. Rotating shaft; 22. Rotating rod; 23. Vibration exploration head; 24. Telescopic column; 25. Top block; 26. Vibration drill bit. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0021] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the drawings in the embodiments of the present utility model.

[0022] The present utility model provides a technical solution: As Figures 1 to 5As shown in the figure, in this embodiment, a super-large-depth vibroflot for 100 meters includes a vibration rod 8. At the top end of the inner wall of the vibration rod 8, a fixed plate 9 is fixedly connected. At the lower end of the fixed plate 9, an electric telescopic rod 10 is fixedly connected. At the end of the electric telescopic rod 10 away from the fixed plate 9, a connecting plate 11 is fixedly connected. At the end of the connecting plate 11 away from the electric telescopic rod 10, a clamping block 12 is fixedly connected. A clamping groove 13 is formed on the surface of the clamping block 12. At the bottom end of the inner wall of the vibration rod 8, an elastic block 14 is fixedly connected. The inner wall surface of the clamping groove 13 is in contact with the elastic block 14. By starting the electric telescopic rod 10 located below the fixed plate 9, the electric telescopic rod 10 will push the connecting plate 11 to move repeatedly downward. Also, since a clamping groove 13 is formed on the surface of the clamping block 12, when the clamping groove 13 is in contact with the elastic block 14, it will be clamped, thereby pushing the load detector 17 below to move up and down reciprocally inside the excavated soil pit, and driving the vibrator 18 below the load detector 17 to also move up and down reciprocally at the same time.

[0023] At the upper end of the vibration rod 8, a connector 6 is fixedly connected. At the end of the connector 6 away from the vibration rod 8, a clamping ring 7 is rotatably connected. The number of connectors 6 is set to two, and the two connectors 6 are symmetrically arranged up and down about the center of the clamping ring 7. At the end of the connector 6 away from the clamping ring 7, a rotator 5 is rotatably connected.

[0024] At the end of the rotator 5 away from the connector 6, a detection ring 3 is rotatably connected. At the upper end of the detection ring 3, a connecting clamping column 4 is fixedly connected. The number of detection rings 3 is set to two, and the two detection rings 3 are symmetrically arranged up and down about the center of the connecting clamping column 4. At the upper end of the detection ring 3, a connecting rod 2 is fixedly connected. At the end of the connecting rod 2 away from the detection ring 3, a limiting plate 1 is fixedly connected. By providing a detection ring 3 at the lower end of the connecting rod 2, the situation of the exploration vibroflotation below can be understood in real time according to the detection ring 3.

[0025] At the lower end of the vibration rod 8, a load detector 17 is rotatably connected. A connecting column 15 is provided at the center of the load detector 17. The lower end of the vibration rod 8 is rotatably connected to the upper end of the connecting column 15. An exploration groove 16 is formed on the surface of the load detector 17. At the lower end of the load detector 17, a vibrator 18 is fixedly connected.

[0026] Wherein, a clamping plate is fixedly connected to the inner wall of the vibrator 18, a rotating motor 20 is fixedly connected to the upper end of the clamping plate, the output end of the rotating motor 20 is rotatably connected to a rotating shaft 21, a rotating rod 22 is fixedly connected to the end of the rotating shaft 21 away from the rotating motor 20, and a vibration probe 23 is fixedly connected to the end of the rotating rod 22 away from the rotating shaft 21. By fixedly connecting a rotating motor 20 inside the vibrator 18, when the electric telescopic rod 10 is started, the rotating motor 20 is also started at the same time. The rotating motor 20 drives the rotating shaft 21 at its output end to rotate, thereby simultaneously driving the rotating rod 22 at the end of the rotating shaft 21 away from the rotating motor 20 to rotate. Furthermore, the vibration probe 23 also rotates simultaneously, thus providing certain assistance for vibrating and decomposing the soil at the lowest layer.

[0027] Wherein, vibration fan blades 19 are fixedly connected to the surface of the vibrator 18, the number of the vibration fan blades 19 is set to two, and the two vibration fan blades 19 are symmetrically arranged about the center of the vibrator 18.

[0028] Wherein, telescopic columns 24 are fixedly connected to the lower end of the vibrator 18, a top block 25 is fixedly connected to the end of the telescopic column 24 away from the vibrator 18, and a vibration drill bit 26 is fixedly connected to the end of the top block 25 away from the telescopic column 24. The number of the telescopic columns 24 is set to several, and several telescopic columns 24 are all fixedly connected to the periphery of the lower end of the vibrator 18. By fixedly connecting the telescopic columns 24 to the lower end of the vibrator 18, the user can adjust the height of the telescopic columns 24 according to the specific vibroflotation situation, so that the vibration drill bit 26 at the top of the top block 25 can also contact the soil at the lowest layer at the same time, thus making the land after vibroflotation more meet the ideal expectation of the user.

[0029] The present utility model provides a vibroflot for ultra-large depth of one hundred meters, and the specific working principle is as follows:

[0030] When in use, the user needs to place the device inside the currently excavated soil pit, and then clamp the limit plate 1 at the top with the ground to complete the limit fixation of the device. At this time, start the electric telescopic rod 10 located below the fixing plate 9. The electric telescopic rod 10 will push the connecting plate 11 to move repeatedly downward. Also, since a card slot 13 is provided on the surface of the card block 12, when the card slot 13 contacts the elastic block 14, it will be clamped, thereby pushing the lower load detector 17 to move up and down reciprocally inside the excavated soil pit, driving the vibrator 18 below the load detector 17 to also move up and down reciprocally at the same time. At the same time, since a rotating motor 20 is fixedly connected inside the vibrator 18, when starting the electric telescopic rod 10, the rotating motor 20 is also started simultaneously. The rotating motor 20 will drive the rotating shaft 21 at its output end to rotate, thereby driving the rotating rod 22 away from the rotating motor 20 of the rotating shaft 21 to rotate together. Furthermore, the vibration probe 23 will also rotate at the same time, providing certain assistance for the vibration decomposition of the soil at the bottom. At the same time, a telescopic column 24 is fixedly connected to the lower end of the vibrator 18. The user can adjust the height of the telescopic column 24 according to the specific vibroflotation situation, so that the vibration drill bit 26 at the top of the top block 25 can also contact the soil at the bottom at the same time, making the land after vibroflotation more meet the ideal expectation of the user. Since a detection ring 3 is provided at the lower end of the connecting rod 2, the situation of the exploration and vibroflotation below can be understood in real time according to the detection ring 3.

[0031] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A vibroflot with an ultra-large depth of 100 meters, comprising a vibrating rod (8), characterized in that, At the top end of the inner wall of the vibrating rod (8), a fixing plate (9) is fixedly connected. At the lower end of the fixing plate (9), an electric telescopic rod (10) is fixedly connected. At the end of the electric telescopic rod (10) away from the fixing plate (9), a connecting plate (11) is fixedly connected. At the end of the connecting plate (11) away from the electric telescopic rod (10), a clamping block (12) is fixedly connected. A clamping groove (13) is formed on the surface of the clamping block (12). At the bottom end of the inner wall of the vibrating rod (8), an elastic block (14) is fixedly connected. The surface of the inner wall of the clamping groove (13) is in contact with the elastic block (14).

2. The vibroflot with a super large depth of 100 meters according to claim 1, characterized in that: At the upper end of the vibrating rod (8), a connector (6) is fixedly connected. At the end of the connector (6) away from the vibrating rod (8), a clamping ring (7) is rotatably connected. The number of the connectors (6) is set to two, and the two connectors (6) are symmetrically arranged up and down about the center of the clamping ring (7). At the end of the connector (6) away from the clamping ring (7), a rotator (5) is rotatably connected.

3. The vibroflot with a super large depth of 100 meters according to claim 2, characterized in that: At the end of the rotator (5) away from the connector (6), a detection ring (3) is rotatably connected. At the upper end of the detection ring (3), a connecting clamping column (4) is fixedly connected. The number of the detection rings (3) is set to two, and the two detection rings (3) are symmetrically arranged up and down about the center of the connecting clamping column (4). At the upper end of the detection ring (3), a connecting rod (2) is fixedly connected. At the end of the connecting rod (2) away from the detection ring (3), a limiting plate (1) is fixedly connected.

4. The super-large depth vibroflot according to claim 1, characterized in that: At the lower end of the vibrating rod (8), a load detector (17) is rotatably connected. A connecting column (15) is arranged at the center of the load detector (17). The lower end of the vibrating rod (8) is rotatably connected to the upper end of the connecting column (15). An exploration groove (16) is formed on the surface of the load detector (17). At the lower end of the load detector (17), a vibrator (18) is fixedly connected.

5. The vibroflot of the super-large depth type with a depth of 100 meters according to claim 4, characterized in that: Inside the vibrator (18), a clamping plate is fixedly connected. At the upper end of the clamping plate, a rotating motor (20) is fixedly connected. The output end of the rotating motor (20) is rotatably connected to a rotating shaft (21). At the end of the rotating shaft (21) away from the rotating motor (20), a rotating rod (22) is fixedly connected. At the end of the rotating rod (22) away from the rotating shaft (21), a vibrating exploration head (23) is fixedly connected.

6. The vibroflot of the super-large depth type with a depth of 100 meters according to claim 5, characterized in that: On the surface of the vibrator (18), vibrating fan blades (19) are fixedly connected. The number of the vibrating fan blades (19) is set to two, and the two vibrating fan blades (19) are symmetrically arranged left and right about the center of the vibrator (18).

7. The vibroflot for super-large depth of 100 meters according to claim 5, characterized in that: At the lower end of the vibrator (18), a telescopic column (24) is fixedly connected. At the end of the telescopic column (24) away from the vibrator (18), a top block (25) is fixedly connected. At the end of the top block (25) away from the telescopic column (24), a vibrating drill bit (26) is fixedly connected. The number of the telescopic columns (24) is set to several, and several telescopic columns (24) are fixedly connected to the periphery of the lower end of the vibrator (18).