Inverted arch layer vibrating equipment

Through the cooperation of the lifting and longitudinal movement mechanism and the vibration angle adjustment mechanism, the problem in the existing technology that the arch layer vibration equipment cannot penetrate deep into the concrete is solved, and efficient vibration of the concrete deep in the arch layer is achieved, thereby improving the concrete quality and construction efficiency.

CN223459391UActive Publication Date: 2025-10-21HUNAN WUXIN MACHINERY
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Patent Information

Application Number
CN202423259571.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-27
Publication Date
2025-10-21
Estimated Expiration
2034-12-27

AI Technical Summary

Technical Problem

In the prior art, the inverted arch layer vibration equipment cannot effectively penetrate into the concrete, resulting in poor vibration effect and inability to fully guarantee the quality of the concrete.

Method used

The lifting and longitudinal movement mechanism, the transverse movement seat and the vibration angle adjustment mechanism are coordinated to realize the lifting, longitudinal movement and angle adjustment of the vibrating rod to ensure the coverage of the vibration depth and range.

Benefits of technology

The vibration quality of concrete deep in the inverted arch layer is improved, the density of concrete and construction efficiency are increased, and labor intensity is reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses inverted arch layer vibrating equipment which comprises a machine frame, a lifting longitudinal moving mechanism, a mounting beam and a vibrating mechanism, the lifting longitudinal moving mechanism is movably arranged on the machine frame, and the lifting longitudinal moving mechanism is connected with the mounting beam to drive the mounting beam to ascend, descend and longitudinally move. The vibrating mechanism comprises a transverse moving seat, a vibrating angle adjusting mechanism arranged on the transverse moving seat and a vibrating rod connected with the vibrating angle adjusting mechanism, the transverse moving seat is arranged on the mounting beam in a reciprocating motion mode, and the vibrating angle adjusting mechanism is used for adjusting the vibrating angle of the vibrating rod. According to the inverted arch layer vibrating equipment disclosed by the utility model, the lifting longitudinal moving mechanism, the transverse moving seat and the vibrating angle adjusting mechanism are matched together, so that the vibrating rod can realize vibrating operation in each vibrating window, the vibrating depth of the vibrating rod can be changed, concrete in the deep position of an inverted arch layer can be vibrated, and the vibrating quality of the concrete can be improved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a tunnel concrete construction equipment technical field especially relates to a invert layer vibrates and pounds equipment. BACKGROUND

[0002] In tunnel construction, the invert construction is a key link, and the invert construction quality will affect the stability and durability of the tunnel. Specifically, the invert construction includes two important steps of concrete pouring and vibrating. In the actual construction process, concrete pouring is usually started at the tunnel side wall, and the invert layer is completely filled with concrete. In order to reduce the bubbles and cavities in the concrete after forming, the concrete needs to be vibrated to improve the density of the concrete.

[0003] At present, the vibration of the invert layer mainly relies on manual holding of the vibrating equipment, and the vibrating window on the invert formwork is used to operate in the concrete. This process has high labor intensity and limited efficiency. In order to improve the construction efficiency and reduce the labor intensity, the prior art attempts to improve this situation by mechanical means. For example, the utility model discloses an invert cushion layer arc-shaped vibrating beam, which vibrates and finishes the surface of the invert cushion layer through the arc-shaped vibrating plate. However, the arc-shaped vibrating plate cannot penetrate into the interior of the concrete, resulting in poor vibrating effect on the concrete with large depth, and the quality of the concrete vibration cannot be fully guaranteed. SUMMARY

[0004] The technical problem to be solved by the utility model is to overcome the deficiencies of the prior art, and provide an invert layer vibrating equipment which can vibrate the concrete in the deep part of the invert layer and improve the quality of the concrete vibration.

[0005] To solve the above technical problems, the utility model adopts the following technical scheme:

[0006] An invert layer vibrating equipment, comprising a rack, a lifting and longitudinal moving mechanism, a mounting beam and a vibrating mechanism, the lifting and longitudinal moving mechanism is movably arranged on the rack, the lifting and longitudinal moving mechanism is connected with the mounting beam to drive the mounting beam to lift and longitudinally move, the vibrating mechanism comprises a transverse moving seat, a vibrating angle adjusting mechanism arranged on the transverse moving seat and a vibrating rod connected with the vibrating angle adjusting mechanism, the transverse moving seat is reciprocally movably arranged on the mounting beam, and the vibrating angle adjusting mechanism is used for adjusting the vibrating angle of the vibrating rod.

[0007] As a further improvement of the above technical solution: the rack comprises a longitudinal track and a support mechanism for supporting the longitudinal track, the support mechanism is provided with a plurality of and is arranged at intervals along the length direction of the longitudinal track, and the lifting and longitudinal moving mechanism is movably arranged on the longitudinal track; or, the rack comprises a stack bridge, and the lifting and longitudinal moving mechanism is movably arranged on the stack bridge.

[0008] As a further improvement of the above technical solution: the lifting and longitudinal moving mechanism comprises a walking mechanism for driving the longitudinal movement of the mounting beam and a lifting mechanism for driving the lifting of the mounting beam, the walking mechanism is movably arranged on the longitudinal track, the lifting mechanism is arranged on the walking mechanism, and the mounting beam is arranged on the lifting mechanism.

[0009] As a further improvement of the above technical solution: the walking mechanism comprises a walking frame, a first roller is arranged on the walking frame and rolls with the longitudinal track, a first walking driving mechanism is arranged on the walking mechanism and drives the first roller, and the lifting mechanism is arranged on the walking frame.

[0010] Or, the walking mechanism comprises a stack bridge trolley which is movable along the length direction of the stack bridge, and the lifting mechanism is arranged on the stack bridge trolley.

[0011] As a further improvement of the above technical solution: the lifting mechanism comprises a lifting driving member, a guide track, and a guide block movably arranged on the guide track, the lifting driving member and the guide track are arranged on the walking mechanism, and the two ends of the mounting beam are connected with the two guide blocks respectively.

[0012] As a further improvement of the above technical solution: the transverse moving seat comprises a transverse moving frame, a second roller arranged on the transverse moving frame, and a second walking driving mechanism for driving the rolling of the second roller, the second roller rolls with the mounting beam, and the second walking driving mechanism is arranged on the transverse moving frame.

[0013] And / or, a transverse moving guide is arranged on the transverse moving frame for guiding the transverse moving frame.

[0014] As a further improvement of the above technical solution: the vibrating angle adjusting mechanism comprises a rotating driving member arranged on the transverse moving seat, a gear connected with the rotating driving member, and a fixed shaft arranged on the transverse moving seat, a bearing is arranged on the fixed shaft, a gear ring engaged with the gear is arranged on the bearing, and the vibrating rod is connected with the bearing.

[0015] Or, the vibrating angle adjusting mechanism comprises a mounting seat and an extension driving member, the mounting seat is hinged with the transverse moving seat, the two ends of the extension driving member are hinged with the transverse moving seat and the mounting seat respectively, and the vibrating rod is connected with the mounting seat.

[0016] As a further improvement of the above technical solution: the support mechanism comprises a cross beam and a plurality of columns arranged along the length direction of the cross beam, and the cross beam is supported on each column, and the longitudinal track is arranged on the cross beam.

[0017] As a further improvement of the above technical solution: the longitudinal track is provided with two tracks and is arranged on both sides of the cross beam, the lifting and longitudinal moving mechanism is provided with two mechanisms and is arranged on the two longitudinal tracks respectively, and the two ends of the mounting beam are connected with the two lifting and longitudinal moving mechanisms respectively.

[0018] As a further improvement of the above technical solution: a plurality of vibration mechanisms are arranged along the length direction of the mounting beam.

[0019] Compared with the prior art, the utility model has the advantages of:

[0020] The working principle of the inverted arch layer vibration equipment is as follows: the lifting and longitudinal moving mechanism can drive the vibration rod to move above a certain row of vibration windows of the inverted arch formwork by moving on the rack, adjust the inclination angle of the vibration rod according to the vibration window to be inserted into, open the vibration window, adjust the horizontal and vertical positions of the vibration rod by the lifting and longitudinal moving mechanism and the transverse seat to make the vibration rod insert into the vibration window to vibrate the concrete below the inverted arch formwork, and the lifting and longitudinal moving mechanism and the transverse seat can jointly adjust the vibration depth of the vibration rod during the vibration process; after the vibration work of the current vibration window is completed, the vibration rod is withdrawn from the current vibration window under the cooperation of the lifting and longitudinal moving mechanism and the transverse seat, then the current vibration window is closed, and then the vibration rod moves to the next vibration window to vibrate the concrete under the cooperation of the lifting and longitudinal moving mechanism, the transverse seat and the vibration angle adjusting mechanism; after the vibration work of all the vibration windows is completed, the lifting and longitudinal moving mechanism moves above the next row of vibration windows, and the above steps are repeated until the vibration work of all the vibration windows is completed. BRIEF DESCRIPTION OF DRAWINGS

[0021] Figure 1 is the structure schematic diagram that example one vibration rod is longitudinally in position.

[0022] Figure 2 is the structure schematic diagram that example one adjusts vibration rod vibration angle.

[0023] Figure 3 is a structural schematic diagram of the vibrator in the first position of vibration in the first embodiment.

[0024] Figure 4 is a structural schematic diagram of the vibrator in the second position of vibration in the first embodiment.

[0025] Figure 5 is a structural schematic diagram of the vibrator after vibration in the first embodiment.

[0026] Figure 6 is a top view schematic diagram of the first embodiment.

[0027] Figure 7 is a connection schematic diagram of the mounting beam and the lifting and longitudinal moving mechanism in the first embodiment.

[0028] Figure 8 is a structural schematic diagram of the first lifting and longitudinal moving mechanism in the first embodiment.

[0029] Figure 9 is Figure 7 is a sectional view schematic diagram of A-A in the first embodiment.

[0030] Figure 10 is a top view schematic diagram of the running mechanism of the first lifting and longitudinal moving mechanism in the first embodiment

[0031] Figure 11 is a structural schematic diagram of the second lifting and longitudinal moving mechanism in the first embodiment.

[0032] Figure 12 is a connection structural schematic diagram of the first vibration angle adjusting mechanism in the first embodiment.

[0033] Figure 13 is a schematic diagram of the first use state of the second vibration angle adjusting mechanism in the first embodiment.

[0034] Figure 14 is a schematic diagram of the second use state of the second vibration angle adjusting mechanism in the first embodiment.

[0035] Figure 15 is a structural schematic diagram of the vibrator in the longitudinal position in the second embodiment.

[0036] Figure 16 is a structural schematic diagram of the vibrator in the vibration angle adjustment state in the second embodiment.

[0037] Figure 17 is a structural schematic diagram of the vibrator in the first position of vibration in the second embodiment.

[0038] Figure 18 is a structural schematic diagram of the vibrator in the second position of vibration in the second embodiment.

[0039] Figure 19 is a structural schematic diagram after the vibrating is completed in embodiment two.

[0040] Figure 20 is a top view schematic diagram of embodiment two.

[0041] Figure 21 is a connection schematic diagram of the mounting beam and the lifting and longitudinal moving mechanism of embodiment two.

[0042] Figure 22 is a structural schematic diagram of the lifting and longitudinal moving mechanism of embodiment two.

[0043] Figure 23 is a side view schematic diagram of embodiment two

[0044] In the drawings, various labels indicate: 1, frame; 11, longitudinal rail; 111, longitudinal beam; 112, first walking platform; 113, second walking platform; 12, support mechanism; 121, cross beam; 122, stand column; 13, trestle; 2, lifting and longitudinal moving mechanism; 21, walking mechanism; 211, walking frame; 212, first roller; 213, first walking driving mechanism; 214, trestle trolley; 215, first rotary motor; 216, chain; 22, lifting mechanism; 221, lifting driving piece; 222, guide rail; 223, guide block; 3, mounting beam; 31, guide slide rail; 32, rack; 4, vibrating mechanism; 41, transverse moving seat; 411, transverse moving frame; 412, second roller; 413, second walking driving mechanism; 414, second rotary motor; 415, driving gear ring; 42, vibrating angle adjusting mechanism; 421, rotary driving piece; 422, gear; 423, fixed shaft; 424, bearing; 425, gear ring; 426, mounting seat; 427, telescopic driving piece; 43, vibrating rod; 5, transverse moving guide piece; 51, guide slide block; 6, inverted arch formwork; 61, vibrating window. DETAILED DESCRIPTION

[0045] The utility model will be made further detailed description in combination with the drawings and specific embodiment.

[0046] In the description of the utility model, it is understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the utility model and simplifying the description, and do not indicate or imply that the indicated device or element must have a particular orientation, be constructed and operated in a particular orientation, and therefore can not be understood as limiting the utility model.

[0047] In this utility model, unless otherwise specified or limited, the terms "assemble," "connect," "connect," "fix," etc. should be understood in a broad sense. For example, they can refer to fixed connection, detachable connection, or integration; mechanical connection or electrical connection; direct connection or indirect connection through an intermediate medium; internal communication between two components or interaction between two components. For those skilled in the art, the specific meanings of the above terms in this utility model can be understood according to specific circumstances.

[0048] Example 1

[0049] Figures 1 to 14 An embodiment of the inverted arch layer vibration equipment of the present invention is shown. The inverted arch layer vibration equipment of this embodiment includes a frame 1, a lifting and longitudinal movement mechanism 2, a mounting beam 3 and a vibration mechanism 4. The lifting and longitudinal movement mechanism 2 is movably arranged on the frame 1. The lifting and longitudinal movement mechanism 2 is connected to the mounting beam 3 to drive the mounting beam 3 to lift and move longitudinally. The vibration mechanism 4 includes a transverse movement seat 41, a vibration angle adjustment mechanism 42 arranged on the transverse movement seat 41 and a vibration rod 43 connected to the vibration angle adjustment mechanism 42. The transverse movement seat 41 is reciprocatingly arranged on the mounting beam 3. The vibration angle adjustment mechanism 42 is used to adjust the vibration angle of the vibration rod 43.

[0050] The working principle of the inverted arch layer vibrating device of this embodiment is as follows: the lifting and longitudinal movement mechanism 2 can drive the vibrating rod 43 to move to the top of a row of vibrating windows 61 of the inverted arch template 6 by moving on the frame 1 (see Figure 1 ), and according to the vibrating window 61 to be inserted, the inclination angle of the vibrating rod 43 is adjusted by the vibrating angle adjustment mechanism 42 (see Figure 2 ), after opening the vibrating window 61, the horizontal and vertical positions of the vibrating rod 43 are adjusted by the lifting and longitudinal movement mechanism 2 and the transverse movement seat 41 so that the vibrating rod 43 extends into the vibrating window 61 to vibrate the concrete below the inverted arch formwork 6 (see Figure 3 and Figure 4 ), and during the vibration process, the lifting and longitudinal movement mechanism 2 and the transverse movement seat 41 can cooperate to adjust the vibration depth of the vibrating rod 43. After the vibration work of the current vibration window 61 is completed, the vibrating rod 43 withdraws from the current vibration window 61 under the cooperation of the lifting and longitudinal movement mechanism 2 and the transverse movement seat 41, and then closes the current vibration window 61 (see Figure 5 ), and then the vibrating rod 43 moves to the next vibrating window 61 in cooperation with the lifting and longitudinal movement mechanism 2, the transverse movement seat 41 and the vibration angle adjustment mechanism 42 to vibrate the concrete. After the vibration operation of a row of vibrating windows 61 is completed, the lifting and longitudinal movement mechanism 2 moves to the top of the next row of vibrating windows 61, and the above steps are repeated until the vibration operation of all vibrating windows 61 is completed.

[0051] The utility model discloses a inverted arch layer vibrates and stirs equipment, and lifting longitudinal movement mechanism 2 can drive the vibration rod 43 to lift and move longitudinally, and horizontal movement seat 41 can drive the vibration rod 43 to move horizontally, and vibration angle adjusting mechanism 42 can adjust the vibration angle of vibration rod 43, and lifting longitudinal movement mechanism 2, horizontal movement seat 41 and vibration angle adjusting mechanism 42 can realize vibration rod 43 in every vibration window 61 all can realize vibration operation, and can change the vibration depth of vibration rod 43, realize the vibration of inverted arch layer deep concrete, can improve the vibration quality of concrete.

[0052] Further, in the embodiment, the rack 1 comprises a longitudinal rail 11 and a supporting mechanism 12 for supporting the longitudinal rail 11 (see Figures 1 to 5 ), the supporting mechanism 12 is provided with a plurality of and arranged along the length direction of the longitudinal rail 11 (see Figure 6 ), and the lifting longitudinal movement mechanism 2 is movably arranged on the longitudinal rail 11 (see Figures 1 to 11 ). The longitudinal rail 11 can be well supported, which is conducive to ensuring the stability of the longitudinal rail 11.

[0053] Specifically, as shown in Figures 1 to 11 , further, in the embodiment, the lifting longitudinal movement mechanism 2 comprises a traveling mechanism 21 for driving the mounting beam 3 to move longitudinally and a lifting mechanism 22 for driving the mounting beam 3 to lift, the traveling mechanism 21 is movably arranged on the longitudinal rail 11, the lifting mechanism 22 is arranged on the traveling mechanism 21, and the mounting beam 3 is arranged on the lifting mechanism 22. The traveling mechanism 21 moves along the length direction of the longitudinal rail 11 to drive the lifting mechanism 22 to move longitudinally, and then drive the mounting beam 3 and the vibration rod 43 to move longitudinally, and the lifting mechanism 22 lifts to drive the mounting beam 3 and the vibration rod 43 to lift.

[0054] Specifically, as shown in Figures 1 to 11 , further, in the embodiment, the traveling mechanism 21 comprises a traveling frame 211, the traveling frame 211 is provided with a first roller 212 in rolling cooperation with the longitudinal rail 11, the traveling mechanism 21 is provided with a first traveling driving mechanism 213 for driving the first roller 212, and the lifting mechanism 22 is arranged on the traveling frame 211. Specifically, the longitudinal rail 11 can comprise a longitudinal beam 111, a first traveling platform 112 arranged at the top of the longitudinal beam 111, and a second traveling platform 113 arranged at both sides of the longitudinal beam 111, the two sides of the first traveling platform 112 extend out of the longitudinal beam 111, the traveling frame 211 is provided with the first roller 212 at both sides and the middle part, the first roller 212 arranged at the middle part is in rolling cooperation with the first traveling platform 112, and the first roller 212 arranged at both sides is respectively in rolling cooperation with the two second traveling platforms 113 (see Figure 7 andFigure 8 ), when the walking mechanism 21 has a tendency of lateral movement, the first roller 212 on one side will abut against the longitudinal rail 11, which is conducive to preventing the walking mechanism 21 from escaping from the longitudinal rail 11, and the first roller 212 arranged between the first walking platform 112 and the second walking platform 113 can abut against the first walking platform 112 when the walking frame 211 has lateral rotation, which is conducive to preventing the walking frame 211 from further rotating, further improving the ability of the walking mechanism 21 to escape from the longitudinal rail 11, and having good safety. Of course, the cross section of the longitudinal rail 11 can also be square, and the walking frame 211 is arranged around the longitudinal rail 11, and a plurality of first rollers 212 are arranged on the walking frame 211, and each side of the longitudinal rail 11 is matched with at least one first roller 212 (see Figure 11 ), which can also improve the ability of the walking mechanism 21 to escape from the longitudinal rail 11.

[0055] Specifically, as shown in Figures 8 to 11 , as a preferred embodiment, the first walking driving mechanism 213 includes a first rotating motor 215, a chain 216, and a first sprocket connected with the first rotating motor 215, and one first roller 212 is spaced apart in the circumferential direction and provided with a plurality of chain teeth on the side away from the longitudinal rail 11 to form a second sprocket, and the chain 216 is arranged on the first sprocket and the second sprocket, and the first roller 212 is driven to roll by rotating the first rotating motor 215, which has a simple and reliable structure.

[0056] Specifically, as shown in Figure 8 and Figure 11 , further, in the embodiment, the lifting mechanism 22 includes a lifting driving member 221, a guide rail 222, and a guide block 223 movably arranged on the guide rail 222, the lifting driving member 221 and the guide rail 222 are arranged on the walking mechanism 21, and the two ends of the mounting beam 3 are connected with the two guide blocks 223, which is conducive to ensuring the stability during lifting, wherein the lifting driving member 221 can be an oil cylinder, an air cylinder, or an electric push rod, etc. Specifically, the guide rail 222 can be a guide sleeve, the guide block 223 is in the form of a column and is slidably arranged in the guide sleeve, and the lower end of the guide block 223 extends out of the guide sleeve and is connected with the mounting beam 3 (see Figure 8 ); the guide rail 222 can also be a guide groove with an open side, and the guide block 223 is arranged in the guide groove, and the side of the guide block 223 close to the opening of the guide groove is connected with the mounting beam 3 (see Figure 11 ), which also has a lifting guiding effect.

[0057] Specifically, as shown in Figure 12, further, in the embodiment, the horizontal moving seat 41 comprises a horizontal moving frame 411, a second roller 412 arranged on the horizontal moving frame 411, and a second walking driving mechanism 413 for driving the second roller 412 to roll, the second roller 412 is in rolling cooperation with the mounting beam 3, and the second walking driving mechanism 413 is arranged on the horizontal moving frame 411. The second walking driving mechanism 413 comprises a second rotating motor 414 arranged on the horizontal moving frame 411 and a driving gear ring 415 arranged on a driving shaft of the second rotating motor 414, the mounting beam 3 is provided with a rack 32 engaged with the driving gear ring 415 along the length direction, and the driving shaft of the second rotating motor 414 rotates to drive the driving gear ring 415 to rotate, thereby driving the second roller 412 to move on the mounting beam 3, which is simple and reliable in structure.

[0058] Specifically referring to Figure 12 , as a preferred embodiment, the horizontal moving frame 411 is provided with a horizontal moving guide 5 for guiding the horizontal moving frame 411, which is beneficial to ensure the stability and accuracy of the horizontal moving of the horizontal moving seat 41. Specifically, the horizontal moving guide 5 is a guide sliding block 51, and the mounting beam 3 is provided with a guide sliding rail 31 along the length direction, and the guide sliding block 51 cooperates with the guide sliding rail 31.

[0059] Further, in the embodiment, the vibrating angle adjusting mechanism 42 comprises a rotating driving member 421 arranged on the horizontal moving seat 41, a gear 422 connected with the rotating driving member 421, and a fixed shaft 423 arranged on the horizontal moving seat 41, the fixed shaft 423 is sleeved with a bearing 424, the bearing 424 is provided with a gear ring 425 engaged with the gear 422, and the vibrating rod 43 is connected with the bearing 424 (see Figure 12 ); the rotating driving member 421 drives the gear 422 to rotate to drive the bearing 424 to rotate, thereby driving the vibrating rod 43 to rotate to change the vibrating angle, which is simple and reliable in structure. When the horizontal moving frame 411 moves longitudinally, the vibrating rod 43 can also be rotated to be parallel to the mounting beam 3, so as to prevent the vibrating rod 43 from colliding with the inverted arch formwork 6 during movement. Of course, the vibrating angle adjusting mechanism 42 can also comprise a mounting seat 426 and a telescopic driving member 427, which can be an oil cylinder, an air cylinder or an electric push rod, etc. The mounting seat 426 is hinged with the horizontal moving seat 41, the two ends of the telescopic driving member 427 are hinged with the horizontal moving seat 41 and the mounting seat 426 respectively, and the vibrating rod 43 is connected with the mounting seat 426 (see Figure 13 and Figure 14 ), which can also achieve the purpose of changing the vibrating angle of the vibrating rod 43. Preferably, the rotating driving member 421 is a servo motor, which is beneficial to ensure the accuracy of the vibrating angle of the vibrating rod 43 during vibration.

[0060] Specifically referring to Figures 1 to 5Further, in the embodiment, the support mechanism 12 comprises a cross beam 121 and a plurality of columns 122, the columns 122 are arranged along the length direction of the cross beam 121, the cross beam 121 is supported on each column 122, and the longitudinal rail 11 is arranged on the cross beam 121, wherein the columns 122 can be supported on the bottom wall of the tunnel or the inverted arch formwork 6. The structure is simple and reliable.

[0061] Specifically referring to Figures 1 to 7 Further, in the embodiment, the longitudinal rail 11 comprises two longitudinal rails arranged on the two sides of the cross beam 121 respectively, the lifting and longitudinal moving mechanism 2 comprises two lifting and longitudinal moving mechanisms arranged on the two longitudinal rails 11 respectively, and the two ends of the mounting beam 3 are connected with the two lifting and longitudinal moving mechanisms 2 respectively. The stability of the lifting and longitudinal moving mechanism 2 in lifting and longitudinally moving the mounting beam 3 is improved.

[0062] Specifically referring to Figures 1 to 7 Further, in the embodiment, a plurality of vibrating mechanisms 4 are arranged along the length direction of the mounting beam 3. The plurality of vibrating mechanisms 4 can simultaneously vibrate the concrete under the plurality of vibrating windows 61, so that the vibrating efficiency is improved.

[0063] Embodiment two

[0064] Figures 15 to 23 An embodiment of the inverted arch layer vibrating equipment is shown, the inverted arch layer vibrating equipment in the embodiment is substantially the same as that in embodiment one, and the difference lies in that the rack 1 comprises a trestle 13, the lifting and longitudinal moving mechanism 2 is movably arranged on the trestle 13, the walking mechanism 21 comprises a trestle trolley 214 which is movable along the length direction of the trestle 13, and the lifting mechanism 22 is arranged on the trestle trolley 214. Compared with embodiment one, the support mechanism 12 does not need to be repeatedly arranged, so that the arrangement time is saved, the construction efficiency is improved, and the influence on the normal traffic of the construction section is small.

[0065] Although the utility model has been disclosed as above with preferred embodiments, however, it is not used to limit the utility model. Any skilled person in the art can make many possible changes and modifications to the utility model technical scheme or modify equivalent embodiments with equivalent changes by using the disclosed technical contents without departing from the scope of the utility model technical scheme. Therefore, any simple modification, equivalent change and modification made to the above embodiments according to the technical essence of the utility model should fall within the protection scope of the utility model technical scheme.

Claims

1. A device for vibrating a layer of inverted arches, characterized in that: The machine frame (1) comprises a longitudinal track (11) and a support mechanism (12) for supporting the longitudinal track (11), the support mechanism (12) is provided with a plurality of and is arranged at intervals along the length direction of the longitudinal track (11), and the lifting and longitudinal moving mechanism (2) is movably arranged on the longitudinal track (11).

2. The inverted arch layer vibrating device according to claim 1, characterized in that: Or, the machine frame (1) comprises a stack bridge (13), and the lifting and longitudinal moving mechanism (2) is movably arranged on the stack bridge (13). The lifting and longitudinal moving mechanism (2) comprises a walking mechanism (21) for driving the mounting beam (3) to longitudinally move and a lifting mechanism (22) for driving the mounting beam (3) to lift, the walking mechanism (21) is movably arranged on the longitudinal track (11), the lifting mechanism (22) is arranged on the walking mechanism (21), and the mounting beam (3) is arranged on the lifting mechanism (22).

3. The inverted arch layer vibrating device according to claim 2, characterized in that: The walking mechanism (21) comprises a walking frame (211), the walking frame (211) is provided with a first roller (212) rolling matched with the longitudinal track (11), the walking mechanism (21) is provided with a first walking driving mechanism (213) for driving the first roller (212), and the lifting mechanism (22) is arranged on the walking frame (211).

4. The inverted arch layer vibrating device according to claim 3, characterized in that: Or, the walking mechanism (21) comprises a stack bridge trolley (214) which can move along the length direction of the stack bridge (13), and the lifting mechanism (22) is arranged on the stack bridge trolley (214). The lifting mechanism (22) comprises a lifting driving piece (221), a guide track (222) and a guide block (223) movably arranged on the guide track (222), the lifting driving piece (221) and the guide track (222) are arranged on the walking mechanism (21), and the two ends of the mounting beam (3) are connected with two guide blocks (223) respectively.

5. The inverted arch layer vibrating apparatus according to claim 3, characterized by: The transverse moving seat (41) comprises a transverse moving frame (411), a second roller (412) arranged on the transverse moving frame (411) and a second walking driving mechanism (413) for driving the second roller (412) to roll, the second roller (412) is rolling matched with the mounting beam (3), and the second walking driving mechanism (413) is arranged on the transverse moving frame (411).

6. The inverted arch layer vibrating apparatus according to claim 1, characterized by: ​ And / or, a horizontal moving guide (5) is arranged on the horizontal moving frame (411) to guide the horizontal moving frame (411).

7. The inverted arch layer vibrating apparatus according to claim 1, characterized by: The vibrating angle adjusting mechanism (42) comprises a rotating driving member (421) arranged on the horizontal moving base (41), a gear (422) connected with the rotating driving member (421), and a fixed shaft (423) arranged on the horizontal moving base (41), wherein an outer sleeve of the fixed shaft (423) is provided with a bearing (424), the bearing (424) is provided with a gear ring (425) engaged with the gear (422), and the vibrating rod (43) is connected with the bearing (424). Or, the vibrating angle adjusting mechanism (42) comprises a mounting base (426) and a telescopic driving member (427), the mounting base (426) is hinged with the horizontal moving base (41), two ends of the telescopic driving member (427) are respectively hinged with the horizontal moving base (41) and the mounting base (426), and the vibrating rod (43) is connected with the mounting base (426).

8. The inverted arch layer vibrating device according to claim 2, characterized in that: The supporting mechanism (12) comprises a cross beam (121) and a plurality of vertical columns (122) arranged along a length direction of the cross beam (121), the cross beam (121) is supported on each vertical column (122), and the longitudinal track (11) is arranged on the cross beam (121).

9. The inverted arch layer vibrating apparatus according to claim 8, characterized by: The longitudinal track (11) comprises two longitudinal tracks arranged on two sides of the cross beam (121), the lifting and longitudinal moving mechanism (2) comprises two lifting and longitudinal moving mechanisms arranged on the two longitudinal tracks (11) respectively, and two ends of the mounting beam (3) are connected with the two lifting and longitudinal moving mechanisms (2) respectively.

10. A haunch layer vibration device according to any one of claims 1 to 9, characterised in that: The vibrating mechanism (4) comprises a plurality of vibrating mechanisms arranged along a length direction of the mounting beam (3).

Citation Information

Patent Citations

  • Inverted arch cushion arc-shaped vibrating beam

    CN221144456U