A vibrating device for building construction

By arranging a swinging rod and a driving mechanism on the vibrating frame, the vibrating rod body is made to swing, thereby solving the problem of uneven vibration and improving the pouring quality of concrete.

CN116591475BActive Publication Date: 2025-09-19CHINA RAILWAY CONSTRUCTION ENGINEERING GROUP +1
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Patent Information

Application Number
CN202310506515.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-05-07
Publication Date
2025-09-19
Estimated Expiration
2043-05-07

AI Technical Summary

Technical Problem

In existing building construction, multiple vibrating rods can only move in a linear motion, resulting in uneven vibration and affecting the quality of concrete pouring.

Method used

A construction vibrating device is designed. By arranging multiple swinging rods and a driving mechanism on a vibrating frame, the vibrating rod body can swing, thereby increasing the vibrating area and improving uniformity.

Benefits of technology

By driving the vibrating rod to swing, the vibrating area is increased, and the vibration quality and uniformity of the concrete are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a construction vibrating device, comprising a vibrating frame, on which a plurality of swinging rods are arranged in parallel in a rotatable connection manner, each of which is provided with a vibrating rod body, and further comprising: a driving mechanism, wherein the driving mechanism comprises a connecting rod member, and the connecting rod member is rotatably connected to each of the swinging rod members so that the connecting rod member can synchronously drive each swinging rod member and the vibrating rod body to swing. When concrete needs to be vibrated, the vibrating frame is driven to move and the plurality of vibrating rod bodies are synchronously driven to move. During the movement of the vibrating rod body, the connecting rod member is driven to move so as to drive the swinging rod member and the vibrating rod body to swing, so that the vibration area of ​​the vibrating rod body is increased and the vibration is more uniform, thereby improving the quality of concrete vibration.
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Description

Technical Field

[0001] The invention relates to the technical field of building construction, in particular to a building construction vibrating device. Background Art

[0002] As is known to all, concrete is one of the most important civil engineering materials in contemporary times. Concrete needs to be vibrated when pouring. The concrete vibration should make the concrete in each part of the formwork dense and uniform. There should be no phenomenon of missed vibration, insufficient vibration or over-vibration, otherwise it will affect the pouring quality of the concrete.

[0003] For example, patent application number CN109958285A, published on July 2, 2019, and titled "Concrete Vibrating Device for Construction," discloses a concrete vibrating device for construction, comprising a mounting frame, two electric cylinders symmetrically fixed longitudinally and horizontally to a lower support plate, a lifting platform disposed on top of the two electric cylinders, pulleys connected to the left and right sides of the protrusions via connecting rods, a connecting block disposed at the left end of the upper support plate with collars arranged vertically symmetrically with the fixing block, and a vibration motor disposed horizontally and equidistantly on the top of the support plate, corresponding to the number of collars. The transmission shaft of the vibration motor is connected to the driving end of a flexible shaft, the driven end of the flexible shaft is fixedly connected to the driving end of a rotating shaft, and the rotating shaft is connected to a sleeve via three thrust bearings, which are coaxial with the sleeve. The vibrating device is provided with collars for receiving the flexible shaft, which organizes the flexible shaft and is easy to use. A fixing device and a lifting device designed for the rod head facilitate the lowering and lifting of the rod head and can effectively reduce the noise generated by vibration.

[0004] In the prior art, in order to compact the concrete by vibration, multiple vibrating rods are often moved synchronously so that the multiple vibrating rods vibrate the concrete in the same linear direction. However, the disadvantage is that the multiple vibrating rods can only move in a linear direction, which reduces the coverage area of ​​the vibrating rods, resulting in uneven vibration and affecting the pouring quality of the concrete. Summary of the Invention

[0005] The purpose of the present invention is to provide a construction vibrating device to solve the above-mentioned problems in the prior art.

[0006] In order to achieve the above object, the present invention provides the following technical solutions:

[0007] A construction vibrating device includes a vibrating frame, on which a plurality of swinging rods are arranged in parallel in a rotationally connected manner, and each of the swinging rods is provided with a vibrating rod body. The device also includes: a driving mechanism, wherein the driving mechanism includes a connecting rod, and the connecting rod is rotationally connected to each of the swinging rods so that the connecting rod can synchronously drive each swinging rod and the vibrating rod body to swing.

[0008] As mentioned above, a plurality of U-shaped frames are arranged in parallel on the vibrating machine frame, and a swing rod is installed in each of the U-shaped frames in a rotationally matched manner through a positioning shaft, and an active round rod is installed on each of the swing rods, and each of the active round rods is connected to each other in a rotationally matched manner through a connecting rod.

[0009] As mentioned above, one end of the connecting rod is provided with a clamping wheel in a rotationally fitting manner, the other end of the connecting rod is connected to the first elastic member, and the other end of the first elastic member is connected to the vibrator frame.

[0010] As mentioned above, the driving mechanism also includes an active disc and a curved protrusion. The active disc is installed on the end of the vibrating frame close to the clamping wheel in a rotationally fitting manner. An curved protrusion is provided on the side wall of the active disc close to the connecting rod, and the curved protrusion and the clamping wheel are tightly fitted with each other.

[0011] As mentioned above, a plurality of running wheels are provided at the bottom ends of both sides of the vibrating frame in a rotationally matched manner, and the running wheels are used to drive the vibrating frame to move.

[0012] As mentioned above, each of the traveling wheels is provided with a transmission gear, and the transmission gears on the same side of the vibrating frame are connected by a second chain.

[0013] As mentioned above, a driving gear is provided on the outer wall of the traveling wheel close to the driving disc, a driven gear is provided on the outer wall of the driving disc, and the driving gear and the driven gear are connected by a first chain.

[0014] As mentioned above, the vibrating rod body is divided into a first rod body and a second rod body. The first rod body is connected to the swing rod. A straight groove is provided at the bottom end of the first rod body. The second rod body is connected to the straight groove in a rotationally fitted manner through a fixed shaft.

[0015] As mentioned above, an arc concave surface is provided on the inner wall of the straight groove, a square groove is opened on the top of the second rod body, a tightening member is installed in the square groove in a sliding fit manner, the tightening member and the inner wall of the square groove are connected by a second elastic member, and the tightening member is pressed against the arc concave surface.

[0016] As mentioned above, the swing arm is provided with an avoidance unit, and the avoidance unit is used to drive the vibrating rod body to move toward its top end.

[0017] The beneficial effect of the present invention is that when concrete needs to be vibrated, the vibration frame is driven to move and multiple vibrating rods are synchronously driven to move. During the movement of the vibrating rods, the connecting rods are driven to move so that they drive the swing rods and the vibrating rods to swing, so that the vibration area of ​​the vibrating rods is increased and the vibration is more uniform, thereby improving the quality of concrete vibration. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments described in the present invention. For ordinary technicians in this field, other drawings can also be obtained based on these drawings.

[0019] Figure 1 It is a structural schematic diagram of the present invention;

[0020] Figure 2 For the present invention Figure 1 A top view of

[0021] Figure 3 For the present invention Figure 2 Schematic diagram of the cross-sectional structure at AA;

[0022] Figure 4 For the present invention Figure 2 Schematic diagram of the cross-sectional structure at BB;

[0023] Figure 5 For the present invention Figure 2 Schematic diagram of the cross-sectional structure at CC;

[0024] Figure 6 Schematic diagram of the structure of the avoidance unit of the present invention;

[0025] Figure 7 Schematic diagram of the cross-sectional structure of the connecting rod of the present invention in a swinging state;

[0026] Figure 8 Schematic diagram of the cross-sectional structure of the unlocking lever and the positioning lever in the unlocked state of the present invention;

[0027] Figure 9 It is a schematic cross-sectional structural diagram of the vibrating rod body of the present invention in the rising state.

[0028] Description of reference numerals:

[0029] 1. Vibrating frame; 11. Swinging rod; 12. Travel wheel; 13. Transmission gear; 14. Second chain; 15. Driving gear; 16. Driven gear; 17. First chain; 2. Vibrating rod; 21. First rod; 22. Second rod; 23. Straight groove; 24. Fixed shaft; 25. Square groove; 26. Clamping member; 27. Second elastic member; 3. Driving mechanism; 31. Connecting rod; 32. U-shaped frame; 33. Positioning shaft; 34 , active round rod; 35, tightening wheel; 36, first elastic member; 37, active disc; 38, arc-surface convex block; 4, avoidance unit; 41, sliding sleeve; 42, positioning rod; 43, locking groove; 44, third elastic member; 45, unlocking rod; 46, locking tooth; 47, arc block; 48, positioning tooth; 49, arc panel; 410, fourth elastic member; 411, jack; 412, through hole; 413, insertion rod; 414, positioning spring. DETAILED DESCRIPTION

[0030] In order to enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.

[0031] like Figures 1 to 9 As shown, an embodiment of the present invention provides a construction vibrating device, comprising a vibrating frame 1, on which a plurality of swinging rods 11 are arranged in parallel in a rotationally connected manner, and each of the swinging rods 11 is provided with a vibrating rod body 2, and further comprising:

[0032] The driving mechanism 3 includes a connecting rod 31 , wherein the connecting rod 31 is rotationally connected to each of the swing rods 11 so that the connecting rod 31 can synchronously drive each of the swing rods 11 and the vibrating rod body 2 to swing.

[0033] Specifically, pouring concrete is the main engineering material in modern times. When pouring concrete, it is necessary to vibrate the concrete to make it dense and uniform. The vibration methods in the existing technology are mostly divided into two types: single vibrating rod vibration and multiple vibrating rods synchronous vibration. When a single vibrating rod is used for vibration, the construction workers need to hold a single vibrating rod to vibrate the concrete. This vibration method is relatively inefficient and increases the labor intensity of the construction workers. When multiple vibrating rods are used to vibrate the concrete synchronously, multiple vibrating rods vibrate the concrete in the same linear direction. The disadvantage is that multiple vibrating rods can only move in a straight line, which reduces the coverage area of ​​the vibrating rods, resulting in uneven vibration, which affects the pouring quality of the concrete. In this embodiment, The concrete is vibrated by multiple vibrating rods 2. At the same time, the vibrating frame 1 is driven to move and synchronously drive the multiple vibrating rods 2 to move. During the movement of the vibrating rods 2, the connecting rod 31 is driven to move so that it drives the swing rod 11 and the vibrating rod 2 to swing. Here, the vibrating rod 2 itself can vibrate to achieve vibration, and the multiple vibrating rods 2 move forward or backward synchronously to achieve vibration of concrete within a range. Vibration and forward and backward movement are existing technologies and will not be repeated. The function of the driving mechanism 3 and the swing rod 11 is to make the vibrating rod 2 move forward and backward while moving left and right, that is, the vibrating rod 2 is no longer a purely linear forward and backward movement, but a swinging forward and backward movement. In this way, the vibration area of ​​the vibrating rod 2 is increased and the vibration is more uniform, thereby improving the quality of concrete vibration.

[0034] Furthermore, a plurality of U-shaped frames 32 are arranged in parallel on the vibrating frame 1, and a swinging rod 11 is installed in each of the U-shaped frames 32 in a rotationally matched manner through a positioning shaft 33, and an active round rod 34 is installed on each of the swinging rods 11. Each of the active round rods 34 is connected in a rotationally matched manner through a connecting rod 31, that is, a plurality of active round rods 34 are arranged on a connecting rod 31. Specifically, two adjacent swinging rods 11, the connecting rod 31 and the vibrating frame 1 are combined into a virtual parallelogram structure. As is known, the parallelogram can swing synchronously. When the vibrating frame 1 drives the vibrating rod 2 to move, the vibrating rod 2 can move the concrete. During the pouring operation, the connecting rod 31 is driven to drive each swing rod 11 to swing around the positioning axis 33 through the active round rod 34 (that is, the connecting rod 31 swings when driven, so that the active round rod 34 connected thereto drives the swing rod 11 to swing, that is, one long side of the parallelogram (that is, the connecting rod 31) swings, and when the other long side of the parallelogram (that is, the vibrating frame 1) is in a fixed position, it can drive the two short sides of the parallelogram (that is, the swing rod 11) to swing, so that the swing rod 11 drives the vibrating rod body 2 to swing, so that the vibrating area of ​​the vibrating rod body 2 is increased and the vibration is more uniform, thereby improving the quality of concrete vibration.

[0035] Furthermore, one end of the connecting rod 31 is provided with a clamping wheel 35 in a rotationally matched manner, and the other end of the connecting rod 31 is connected to a first elastic member 36, and the other end of the first elastic member 36 is connected to the vibrating frame 1. Specifically, when it is necessary to drive the connecting rod 31 to swing, the clamping wheel 35 is driven to drive the connecting rod 31 to swing. During the swinging of the connecting rod 31, the connecting rod 31 squeezes the first elastic member 36 (the first elastic member 36 is an element that can be telescoped and reset, preferably a spring). Under the rebound action of the first elastic member 36, the connecting rod 31 can swing back and forth, so that the connecting rod 31 drives the swinging rod 11 and the vibrating rod body 2 to swing back and forth, so that the vibrating rod body 2 vibrates the concrete more evenly.

[0036] Furthermore, the driving mechanism 3 also includes an active disc 37 and an arc-surface protrusion 38. The active disc 37 is installed on the end of the vibrating frame 1 close to the clamping wheel 35 in a rotationally matched manner. The side wall of the active disc 37 close to the connecting rod 31 is provided with an arc-surface protrusion 38, and the arc-surface protrusion 38 and the clamping wheel 35 are tightly fitted with each other. Specifically, when it is necessary to drive the clamping wheel 35 to drive the connecting rod 31 to perform a swinging operation, the active disc 37 is driven to drive the arc-surface protrusion 38 (the arc-surface protrusion 38 is a curved plate with the same curved surface trajectory as the active disc 37, the middle part of the curved plate is a convex part, and the two sides are curved surfaces, so as to facilitate the abutment with the clamping wheel 35) to rotate. In the process of the active disc 37 driving the arc-surface protrusion 38 to rotate one circle: (1) when the arc-surface protrusion 38 rotates to When the arc-surface protrusion 38 is in contact with the pressing wheel 35, the arc-surface protrusion 38 pushes the connecting rod 31 to swing toward one end of the first elastic member 36, so that the connecting rod 31 performs an extrusion operation on the first elastic member 36. (2) When the arc-surface protrusion 38 rotates to a position where it is separated from the arc-surface protrusion 38, the arc-surface protrusion 38 no longer presses the connecting rod 31. Under the rebound action of the first elastic member 36, the first elastic member 36 drives the connecting rod 31 to swing toward one end close to the active disc 37. That is, in the process of the active disc 37 driving the arc-surface protrusion 38 to rotate one circle, the connecting rod 31 swings back and forth. The connecting rod 31 drives the swinging rod 11 to swing back and forth through the active circular rod 34. The swinging rod 11 drives the vibrating rod body 2 to swing back and forth, so that the vibrating rod body 2 vibrates the concrete more evenly.

[0037] Furthermore, a plurality of walking wheels 12 are provided at the bottom ends of both sides of the vibrating frame 1 in a rotationally matched manner. The walking wheels 12 are used to drive the vibrating frame 1 to move. Specifically, when the vibrating frame 1 needs to perform a walking operation (that is, the vibrating frame 1 moves along the concrete pouring track), the driving walking wheels 12 drive the vibrating frame 1 to move, and the walking wheels 12 can provide a stable driving force for the movement of the vibrating frame 1.

[0038] Furthermore, each of the walking wheels 12 is provided with a transmission gear 13, and the transmission gears 13 on the same side of the vibrating frame 1 are connected by a second chain 14. Specifically, when the vibrating frame 1 needs to perform a walking operation (that is, the vibrating frame 1 moves along the concrete pouring trajectory), one of the walking wheels 12 on the same side of the vibrating frame 1 is driven to move, and the driving force of the walking wheel 12 is driven by a power component (such as a motor), and the walking wheel 12 drives the transmission gear 13 to rotate, and the transmission gears 13 are transmitted through the second chain 14, so that all the walking wheels 12 move synchronously, so that the walking wheel 12 drives the vibrating frame 1 to move. This is common knowledge in the field and will not be repeated.

[0039] Furthermore, a driving gear 15 is provided on the outer wall of the walking wheel 12 near the driving disc 37, and a driven gear 16 is provided on the outer wall of the driving disc 37, and the driving gear 15 and the driven gear 16 are connected by a first chain 17. Specifically, when it is necessary to drive the driving disc 37 to rotate, at the same time, the vibrating frame 1 performs a walking operation (that is, when the vibrating frame 1 moves along the concrete pouring trajectory), the driving walking wheel 12 is driven to rotate so as to drive the driving gear 15 to rotate, and the driving gear 15 drives the driven gear 16 to rotate through the first chain 17, and the driven gear 16 drives the driving disc 37 to rotate, so that the driving disc 37 drives the connecting rod 31 and the swinging rod 11 to swing back and forth through the arc-surface protrusion 38 and the holding wheel 35, and the swinging rod 11 drives the vibrating rod body 2 to swing back and forth, so that the vibrating rod body 2 vibrates the concrete more evenly.

[0040] Preferably, the vibrating rod body 2 is divided into a first rod body 21 and a second rod body 22. The first rod body 21 is connected to the swing rod 11. A straight groove 23 is provided at the bottom end of the first rod body 21. The second rod body 22 is connected to the straight groove 23 in a rotationally matched manner through a fixed shaft 24. Specifically, when the vibrating frame 1 drives the vibrating rod body 2 to move, the vibrating rod body 2 performs linear motion and reciprocating swings at the same time. Since there may be hard obstacles such as steel bars and formwork (or concrete support plates) inside and on the edge of the concrete, the vibrating rod body 2 may press against the hard obstacles when vibrating the concrete. When the vibrating rod body 2 presses against the hard obstacles, If the vibrating frame 1 continues to move, it will cause damage to the vibrating rod body 2, and the vibrating rod body 2 is divided into a first rod body 21 and a second rod body 22 that are rotatably connected to each other. When the vibrating rod body 2 is pressed against a hard obstacle, the second rod body 22 will rotate around the fixed axis 24, so that the vibrating rod body 2 will not damage the formwork, and the vibrating rod body 2 itself will not be damaged. A vibrating module is provided inside the first rod body 21 (the vibrating module includes an electric motor and an eccentric wheel, and the eccentric wheel is driven to rotate by the electric motor to cause the first rod body 21 to vibrate. This is common knowledge in the existing field and will not be repeated here), so as to enable the first rod body 21 and the second rod body 22 to vibrate the concrete.

[0041] Furthermore, an arc concave surface is provided on the inner wall of the straight groove 23, a square groove 25 is provided on the top of the second rod body 22, a pressing member 26 is installed in the square groove 25 in a sliding fit manner, the pressing member 26 and the inner wall of the square groove 25 are connected by a second elastic member 27, and the pressing member 26 is pressed against the arc concave surface. Specifically, (1) when the second rod body 22 and the first rod body 21 of the vibrating rod body 2 vibrate the concrete, the pressing effect of the second elastic member 27 (the second elastic member 27 is a component that can be telescopically reset, preferably a spring) Under the action of the second elastic member 27, the pressing member 26 is pressed against the arc concave surface, so that the pressing member 26 positions the second rod body 22, so that the second rod body 22 and the first rod body 21 form an integral vibrating rod body 2; (2) when the vibrating rod body 2 is pressed against the template, the second rod body 22 is squeezed by the template, so that the second rod body 22 drives the pressing member 26 to slide out of the arc concave surface, and the second rod body 22 rotates around the fixed shaft 24, so that the vibrating rod body 2 will not damage the template, and the vibrating rod body 2 itself will not be damaged.

[0042] Preferably, the swing lever 11 is provided with an avoidance unit 4, the avoidance unit 4 is used to drive the vibrating rod body 2 to move toward its top end, the avoidance unit 4 includes a sliding sleeve 41 and a positioning rod 42, the swing lever 11 is mounted with a sliding sleeve 41 in a sliding fit manner, the sliding sleeve 41 is used to place the vibrating rod body 2, a locking groove 43 is provided on the inner wall of the swing lever 11 near the connecting rod 31, a plurality of third elastic members 44 are evenly provided on the side wall of the locking groove 43 near the connecting rod 31, and each of the third elastic members 44 is connected by an unlocking rod 45, and the unlocking rod The bottom end of the member 45 and the second rod body 22 abut against each other, and two locking teeth 46 are provided on the side wall of the unlocking rod 45 away from the connecting rod 31. An arc block 47 is provided on the side wall of the sliding sleeve 41 close to the connecting rod 31. A positioning rod 42 is provided at the bottom end of the arc block 47. The positioning rod 42 is inserted into the locking groove 43. Two positioning teeth 48 are provided on the positioning rod 42, and the positioning teeth 48 and the locking teeth 46 abut against each other and lock. The side wall of the positioning teeth 48 and the locking teeth 46 close to each other is an inclined surface from the end close to the connecting rod 31 to the end away from the connecting rod 31. The sliding sleeve 4 An arc panel 49 is provided on the outer wall of the side away from the connecting rod 31. The arc panel 49 and the swing rod 11 are connected by a fourth elastic member 410. Specifically, (1) before the vibrating rod 2 vibrates the concrete, the construction worker installs the vibrating rod 2 in the sliding sleeve 41. The construction worker slides the sliding sleeve 41 on the swing rod 11 toward its bottom end. The sliding sleeve 41 drives the arc block 47 to slide toward its bottom end. The arc block 47 drives the positioning rod 42 to slide toward the bottom end side in the locking groove 43. The positioning rod 42 drives the two positioning teeth 48 to slide to the two locking teeth 4 on the unlocking rod 45. 6, so that the positioning teeth 48 and the locking teeth 46 abut against each other, and under the pressing action of the third elastic member 44 (the third elastic member 44 is a component that can be telescopically reset, preferably a spring), the unlocking rod 45 locks and positions the positioning rod 42. At the same time, the sliding sleeve 41 drives the arc panel 49 to move toward the side of its bottom end, so that the arc panel 49 squeezes the fourth elastic member 410 (the fourth elastic member 410 is a component that can be telescopically reset, preferably a spring). Under the action of the unlocking rod 45 locking and positioning the positioning rod 42, the fourth elastic member 410 is in a compressed state;(2) When the vibrating rod body 2 is pressed against the template, the second rod body 22 is squeezed by the template, so that the second rod body 22 drives the pressing member 26 to slide out of the arc concave surface, and the second rod body 22 rotates around the fixed shaft 24. When the second rod body 22 rotates around the fixed shaft 24, the second rod body 22 pushes the unlocking rod 45 to slide toward the side close to the connecting rod 31, so that the third elastic member 44 is in a compressed state. Due to the movement of the unlocking rod 45, the positioning teeth 48 and the locking teeth 46 are disengaged from each other, so that the locking teeth 46 no longer position the positioning teeth 48, so that the positioning rod 42 is no longer locked by the unlocking rod 45. Under the rebound action of the fourth elastic member 410, the fourth elastic member 410 drives the sliding sleeve 41 to slide toward the top of the swinging rod 11 through the arc panel 49, and the sliding sleeve 41 drives the vibrating rod body 2 to swing The top end of the rod 11 slides, allowing the entire vibrating rod 2 to avoid the formwork, allowing the vibrating rod 2 to slide over the top of the formwork without causing displacement of the formwork. When the second rod 22 of the vibrating rod 2 is no longer subjected to the compressive force of the formwork, under the action of the second rod 22's gravity, the second rod 22 rotates around the fixed axis 24 to a vertical position (i.e., a position where the second rod 22 and the first rod 21 are parallel to each other), allowing the abutting member 26 to position the second rod 22, so that the second rod 22 and the first rod 21 form a single vibrating rod 2. After the vibrating rod 2 slides over the top of the formwork, the construction worker slides the sliding sleeve 41 on the swinging rod 11 toward its bottom end, causing the unlocking rod 45 to lock the positioning rod 42 in place, allowing the vibrating rod 2 to vibrate the concrete.

[0043] Preferably, the first rod body 21 of the vibrating rod body 2 is provided with two insertion holes 411, and the sliding sleeve 41 is provided with two through holes 412 that cooperate with the insertion holes 411. The two through holes 412 and the insertion holes 411 are each installed with an insertion rod 413 in a sliding manner. A positioning spring 414 is respectively provided on the outer wall of the two insertion rods 413. Specifically, before the vibrating rod body 2 is inserted into the sliding sleeve 41, the construction personnel pull the insertion rod 413 so that the vibrating rod body 2 can be smoothly Inserted into the sliding sleeve 41, the positioning spring 414 is in a stretched state, so that the socket 411 on the first rod body 21 of the vibrating rod body 2 and the through hole 412 on the sliding sleeve 41 are docked. The construction personnel release the pulling force on the insertion rod 413, and under the rebound action of the positioning spring 414, the insertion rod 413 is inserted from the through hole 412 into the socket 411, so that the insertion rod 413 positions the vibrating rod body 2 in the sliding sleeve 41, so that the vibrating rod body 2 can be stably placed in the sliding sleeve 41.

[0044] The above description is merely illustrative of certain exemplary embodiments of the present invention. It goes without saying that those skilled in the art will be able to modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and description are illustrative in nature and should not be construed as limiting the scope of protection of the claims.

Claims

1. A construction vibrating device, comprising a vibrating frame, on which a plurality of swinging rods are arranged in parallel in a rotationally connected manner, characterized in that: Each of the swing rods is provided with a vibrating rod body, and further comprises: A driving mechanism, the driving mechanism comprising a connecting rod, the connecting rod being rotatably connected to each of the swinging rods so that the connecting rod can synchronously drive each of the swinging rods and the vibrating rod body to swing; One end of the connecting rod is provided with a clamping wheel in a rotationally matched manner, the other end of the connecting rod is connected to a first elastic member, and the other end of the first elastic member is connected to the vibrator frame; The driving mechanism also includes an active disc and a cambered convex block. The active disc is rotatably mounted on the end of the vibrating frame close to the abutting wheel. A cambered convex block is provided on the side wall of the active disc close to the connecting rod, and the cambered convex block and the abutting wheel are tightly fitted with each other. The bottom ends of both sides of the vibrating frame are provided with a plurality of running wheels in a rotationally matched manner, and the running wheels are used to drive the vibrating frame to move; Each of the traveling wheels is provided with a transmission gear, and the transmission gears on the same side of the vibrating frame are connected by a second chain; A driving gear is provided on the outer wall of the traveling wheel close to the driving disc, a driven gear is provided on the outer wall of the driving disc, and the driving gear and the driven gear are connected by a first chain.

2. A construction vibrating device according to claim 1, characterized in that: A plurality of U-shaped frames are arranged in parallel on the vibrator frame, and a swing rod is installed in each of the U-shaped frames in a rotationally matched manner through a positioning shaft, and an active round rod is installed on each of the swing rods, and the active round rods are connected to each other in a rotationally matched manner through a connecting rod.

3. A construction vibrating device according to claim 1, characterized in that: The vibrating rod body is divided into a first rod body and a second rod body. The first rod body is connected to the swing rod. A straight groove is provided at the bottom end of the first rod body. The second rod body is connected to the straight groove in a rotationally matched manner through a fixed shaft.

4. A construction vibrating device according to claim 3, characterized in that: An arc concave surface is provided on the inner wall of the straight groove, and a square groove is provided on the top of the second rod body. A tightening piece is installed in the square groove in a sliding fit manner. The tightening piece and the inner wall of the square groove are connected by a second elastic piece, and the tightening piece is pressed against the arc concave surface.

5. A construction vibrating device according to claim 1, characterized in that: The swinging rod is provided with an avoidance unit, and the avoidance unit is used to drive the vibrating rod body to move toward its top end.

Citation Information

Patent Citations

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    CN109958285A

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