Support chute system for improving concrete pouring effect

By designing the bracket chute system, the problem of concrete pumping blind spots is solved, and construction efficiency and safety are improved, adaptability and flexibility are enhanced, construction costs are reduced, and construction quality and efficiency are double improvements.

CN222893992UActive Publication Date: 2025-05-23THE FOURTH OF CHINA EIGHTH ENG BUREAU +1
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Patent Information

Application Number
CN202421856876.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-01
Publication Date
2025-05-23
Estimated Expiration
2034-08-01

AI Technical Summary

Technical Problem

During construction, concrete pumping often faces the problem of blind spots covering pump pipes, resulting in discontinuity of casting, cold joints, and low construction efficiency and safety.

Method used

A support chute system is designed, including a support frame, oblique chute and stable chute. By processing the chute on site and flexibly adjusting its angle and direction, it ensures that the concrete is smoothly transported to each pouring area and achieves full coverage of blind spots.

Benefits of technology

It effectively solves the problem of blind spots for concrete pumping, improves construction efficiency and safety, enhances the adaptability and flexibility of the system, reduces construction costs, and achieves the dual improvement of construction quality and efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a support chute system for improving concrete pouring effect, which relates to the technical field of building pouring construction tools, and comprises a support frame, an inclined chute is arranged on the support frame, the support frame and the inclined chute form a herringbone shape, a stable inclined frame is arranged on the support frame, one end of the stable inclined frame is contacted with the ground, and the other end of the stable inclined frame is contacted with the inclined chute. The other end of the stabilizing inclined frame is fixedly connected with the supporting frame; the supporting frame comprises two symmetrically-arranged supporting brackets, and a plurality of stable connecting rods are arranged between the two supporting brackets. The inclined chute comprises an inclined bottom plate making contact with the supporting frame, and limiting plates are symmetrically arranged at the two ends of the inclined bottom plate. According to the utility model, the blind area in the concrete pumping process can be effectively covered, the construction efficiency and the continuity of concrete pouring are improved, meanwhile, the dependence on hoisting machinery is reduced, and the construction cost and the safety risk are reduced. In addition, the system has high adaptability and flexibility and can cope with various complex construction environments.
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Description

Technical Field

[0001] The utility model relates to the technical field of building pouring construction tools, in particular to a bracket chute system for improving concrete pouring effect. Background Art

[0002] Concrete pumping is a common and important construction technology in the construction process. However, in actual operation, concrete pumping often faces the problem of blind spots covered by pump pipes. The traditional solution is to use lifting machinery such as tower cranes to lift concrete tanks to the blind spots for pouring. This method is not only inefficient, but also easily leads to discontinuous concrete pouring, which in turn causes cold joints. At the same time, there are certain safety hazards in lifting machinery operations, and high operating skills and experience requirements are required for construction personnel. Therefore, there is an urgent need for a technical solution that can solve the problem of blind spots in concrete pumping and improve construction efficiency and safety.

[0003] In order to deal with the above problems, some alternative solutions have been proposed in the prior art, such as the use of multi-section pump pipe connections or mobile pumping equipment. However, these solutions still have some limitations in practical applications. Although multi-section pump pipe connections can extend the pumping distance to a certain extent, the increase in connection points brings more maintenance and management problems, and lacks flexibility. Mobile pumping equipment is limited by the space and terrain conditions of the construction site and cannot adapt to complex construction environments.

[0004] How to solve the above technical problems is the subject faced by the present utility model. Summary of the invention

[0005] In order to address the deficiencies in the prior art, the utility model provides a support chute system with a reasonable design, which is safe and reliable for improving the concrete pouring effect. It not only solves the problem of blind area coverage of the pump pipe during concrete pumping, but also improves construction efficiency and safety, enhances the adaptability and flexibility of the system, reduces construction costs, and ultimately achieves a dual improvement in construction quality and efficiency.

[0006] The technical solution adopted by the utility model to solve the technical problem is: a support chute system for improving the concrete pouring effect, comprising a support frame, an inclined chute is arranged on the support frame, and the support frame and the inclined chute are in a herringbone shape, a stable inclined frame is arranged on the support frame, one end of the stable inclined frame is in contact with the ground, and the other end of the stable inclined frame is fixedly connected to the support frame;

[0007] The support frame includes two symmetrically arranged support frames, and a plurality of stabilizing connecting rods are arranged between the two support frames; the inclined chute includes an inclined bottom plate in contact with the support frame, and limit plates are symmetrically arranged at both ends of the inclined bottom plate.

[0008] Two structural designs of support brackets are preferably provided, as follows:

[0009] Firstly, the support bracket comprises a plurality of support rods connected end to end in sequence, one end of the support rod is provided with a first threaded section, and the other end of the support rod is provided with a second threaded section threadably matched with the first threaded section.

[0010] Secondly, the support bracket includes a plurality of support tubes connected end to end in sequence, a socket is provided at one end of the support tube, a socket tube cooperating with the socket is provided at the other end of the support tube, and a plug rod cooperating with the socket tube is provided on the socket.

[0011] Based on the structure of the second support bracket, considering the structural design of the stabilizing link, there are two specific structural designs of the support bracket and the stabilizing link, as follows:

[0012] In the first structure, the support cylinder includes a cylinder body, on which a plurality of connecting discs are evenly arranged along the axial direction of the support cylinder, and the connecting discs are evenly provided with a plurality of connecting grooves connected to the stabilizing connecting rod along the circumferential direction of the connecting discs.

[0013] In the second structure, a connecting tube is sleeved on the supporting tube, a connecting plate is provided on the connecting tube, a positioning screw cooperating with the supporting tube is provided on the connecting tube, and a plurality of connecting grooves are evenly opened along the circumferential direction of the connecting plate and connected to the stabilizing connecting rod.

[0014] Three structural designs of stable connecting rods are preferably provided, as follows:

[0015] First, the stabilizing connecting rod includes a connecting rod, and connecting U frames are arranged at both ends of the connecting rod. The connecting U frame is provided with a through groove penetrating the connecting U frame, and a latch is arranged in the through groove.

[0016] Secondly, the stabilizing connecting rod includes a telescopic rod, and tube locking parts connected to the supporting tube are arranged at both ends of the telescopic rod; the tube locking parts include a tube locking U-frame, and a tube locking tube connected to the telescopic rod is arranged on the tube locking U-frame, and a fastening screw connected to the telescopic rod is arranged on the tube locking tube, and a slot is arranged on the tube locking U-frame, and a pin rod is arranged in the slot.

[0017] Third, the stabilizing connecting rod includes a stabilizing rod, connecting sleeves are provided at both ends of the stabilizing rod, connecting sleeves are provided with connecting screws that cooperate with the stabilizing rod, and a stabilizing sleeve is provided on the connecting sleeve. The stabilizing sleeve is sleeved on the support rod, and the stabilizing sleeve is provided with a stabilizing screw that cooperates with the support rod.

[0018] Furthermore, the stable oblique frame includes a stable oblique rod, and a stable pipe locking frame connected to a support tube is provided on the stable oblique rod, and a pin is provided on the stable pipe locking frame.

[0019] Furthermore, a rotating contact plate assembly in contact with the oblique chute is arranged on the stabilizing connecting rod located at the top end of the support frame; the rotating contact plate assembly includes a stabilizing base frame, a rotating round seat is arranged on the stabilizing base frame, a rotating shaft is arranged on the rotating round seat, a docking U-frame is arranged at the top end of the rotating shaft, a docking plug block is arranged at the opening of the docking U-frame, a socket U-frame which is socket-matched with the docking U-frame is arranged on the docking U-frame, and a supporting frame which is matched with the oblique chute is arranged on the socket U-frame.

[0020] The utility model can effectively solve the problem of blind area covered by the pump pipe during concrete pumping. By processing the chute on site and flexibly adjusting its angle and direction, it ensures that concrete can be smoothly transported to each pouring area, achieving full coverage of the blind area and avoiding the common pouring discontinuity and cold joint problems in traditional construction methods.

[0021] The utility model adopts a lightweight hollow steel pipe bracket and a template wooden square chute, which is easy and quick to install and adjust. The length of the bracket legs is adjustable, and the chute can be rotated at will, which can quickly adapt to the actual situation of the construction site and greatly improve the construction efficiency.

[0022] The support leg part of the utility model adopts a length-adjustable structure, which can flexibly adjust the inclination of the chute according to the site conditions to meet the pump pipe transportation requirements at different angles, avoiding large amounts of concrete splashing. The chute is processed on-site using template wood squares, which can be customized according to the specific range of the site blind area, ensuring that full coverage of concrete pouring can be achieved, and adapting to various complex construction sites.

[0023] The chute and the bracket in the utility model are connected by a rotating shaft, allowing the chute to rotate freely within a certain range, which can meet the needs of concrete delivery at different angles, reduce the number of times the bracket chute is moved, and improve the flexibility of construction. The support bracket can be threaded or socket-connected, and the stabilizing connecting rod also has a variety of structural designs, which can be quickly assembled and disassembled according to on-site needs, improving the adaptability and flexibility of the system. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 It is a schematic diagram of the three-dimensional structure of the preferred embodiment of the utility model under the first viewing angle.

[0025] Figure 2 It is an enlarged schematic diagram of point A of the present utility model.

[0026] Figure 3 This is a schematic diagram of the three-dimensional structure of the preferred embodiment of the utility model under the second viewing angle.

[0027] Figure 4 It is an enlarged schematic diagram of point B of the present utility model.

[0028] Among them, the accompanying drawings are marked as: 100, support frame; 110, support bracket; 120, stabilizing connecting rod; 121, connecting rod; 122, connecting U frame; 123, latch; 130, connecting disc; 131, connecting groove; 200, stabilizing oblique frame; 210, stabilizing oblique rod; 220, stabilizing pipe locking frame; 230, pin; 300, oblique chute; 310, oblique bottom plate; 320, limit plate; 400, rotating contact plate assembly; 410, stabilizing base frame; 420, rotating round seat; 430, rotating shaft; 440, docking U frame; 450, docking plug block; 460, socket U frame; 470, supporting frame. Specific embodiments

[0029] See also Figures 1 to 4 As shown, a support chute system for improving concrete pouring effect includes a support frame 100, an inclined chute 300 is arranged on the support frame 100, and the support frame 100 and the inclined chute 300 are in a herringbone shape, and a stable inclined frame 200 is arranged on the support frame 100, one end of the stable inclined frame 200 is in contact with the ground, and the other end of the stable inclined frame 200 is fixedly connected to the support frame 100;

[0030] The support frame 100 includes two symmetrically arranged support frames 110, and a plurality of stabilizing connecting rods 120 are arranged between the two support frames 110; the inclined chute 300 includes an inclined bottom plate 310 in contact with the support frame 100, and limit plates 320 are symmetrically arranged at both ends of the inclined bottom plate 310.

[0031] Preferably, the top surface of the inclined bottom plate 310 is an arc surface.

[0032] In general, the support frame 100 is composed of two symmetrical support brackets 110, which are connected by a stable connecting rod 120 to increase the stability of the structure. It is mainly to support the chute, and at the same time ensure that the bracket can withstand the load generated during the concrete transportation, and maintain the stability of the structure, to ensure the stability and safety of the chute during the concrete transportation process. The inclined chute 300 serves as a channel for concrete to flow from high to low, ensuring that the concrete can flow smoothly to the destination, and the bottom of the chute adopts a curved surface design to reduce the friction when the concrete flows, so that the concrete flows more smoothly. The support frame 100 and the inclined chute 300 form a herringbone structure, which increases the overall stability of the system. One end of the stable inclined frame 200 is in contact with the ground, and the other end is fixedly connected to the support frame 100 to increase the stability of the system. It mainly increases the stability of the entire system, prevents shaking during the concrete transportation process, and then ensures that the entire system will not lose balance due to external forces during the concrete transportation process.

[0033] The support frame 100 and the stabilizing inclined frame 200 are made of lightweight hollow steel pipe brackets, while the inclined chute 300 is made of a template wooden square chute.

[0034] Preferably, two structural designs of the support bracket 110 are provided, as follows:

[0035] First, the support bracket 110 includes a plurality of support rods connected end to end in sequence, one end of the support rod is provided with a first threaded section, and the other end of the support rod is provided with a second threaded section threadably matched with the first threaded section.

[0036] Secondly, the support bracket 110 includes a plurality of support tubes connected end to end in sequence, a socket is provided at one end of the support tube, a socket tube cooperating with the socket is provided at the other end of the support tube, and a plug rod cooperating with the socket tube is provided on the socket.

[0037] In general, the support bracket 110 is a main component of the support frame 100. In the first design, the support bracket 110 includes support rods connected end to end, connected by threaded sections, which are convenient for quick assembly and length adjustment. In the second design, the support bracket 110 includes support tubes connected end to end, connected by sockets and socket tubes, providing higher stability and easy disassembly. The support bracket 110 provides two different connection methods to adapt to different construction requirements and site conditions, solves the assembly and disassembly problems of the support frame 100, and improves the convenience of construction.

[0038] Based on the structure of the second support bracket 110, considering the structural design of the stabilizing link 120, there are two specific structural designs of the support bracket 110 and the stabilizing link 120, as follows:

[0039] In the first structure, the support cylinder includes a cylinder body, on which a plurality of connecting discs 130 are evenly arranged along the axial direction of the support cylinder, and the connecting disc 130 is evenly provided with a plurality of connecting grooves 131 connected to the stabilizing connecting rod 120 along the circumferential direction of the connecting disc 130.

[0040] In the second structure, a connecting tube is sleeved on the supporting tube, a connecting plate is provided on the connecting tube, a positioning screw cooperating with the supporting tube is provided on the connecting tube, and a plurality of connecting grooves are evenly opened along the circumferential direction of the connecting plate 130 and connected to the stabilizing connecting rod 120.

[0041] In general, in order to achieve a stable connection, the connecting disc 130 and the supporting bracket 110 are designed as an integrated structure, or the connecting disc 130 and the supporting bracket 110 are designed as a detachable structure.

[0042] Preferably, three structural designs of the stabilizing connecting rod 120 are provided, as follows:

[0043] First, the stabilizing connecting rod 120 includes a connecting rod 121 , and connecting U frames 122 are provided at both ends of the connecting rod 121 . The connecting U frame 122 is provided with a through slot penetrating the connecting U frame 122 , and a latch 123 is provided in the through slot.

[0044] When in use, the opening of the connecting U frame 122 is connected to the connecting disc 130 or the connecting disc, and the latch 123 passes through the connecting groove or the connecting groove 131 .

[0045] Secondly, the stabilizing link 120 includes a telescopic rod, and both ends of the telescopic rod are provided with tube locking parts connected to the supporting tube; the tube locking parts include a tube locking U-frame, and the tube locking U-frame is provided with a tube locking tube connected to the telescopic rod, and the tube locking tube is provided with a fastening screw connected to the telescopic rod, and the tube locking U-frame is provided with a slot, and a pin rod is provided in the slot.

[0046] When in use, the opening of the pipe lock U frame is connected to the above-mentioned connecting disc 130 or the above-mentioned connecting disc, and the pin rod passes through the above-mentioned connecting groove or the above-mentioned connecting groove 131.

[0047] Third, the stabilizing connecting rod 120 includes a stabilizing rod, both ends of which are provided with connecting sleeves, the connecting sleeves are provided with connecting screws that cooperate with the stabilizing rod, the connecting sleeves are provided with a stabilizing sleeve, the stabilizing sleeve is sleeved on the support rod, and the stabilizing sleeve is provided with a stabilizing screw that cooperates with the support rod.

[0048] In general, in the first structure, connecting U frames 122 are provided at both ends of the connecting rod 121, which are fixed by latches 123, and the connection is firm and easy to disassemble. In the second structure, pipe locks are provided at both ends of the telescopic rod, which are fixed by fastening screws and pins, providing flexible length adjustment and firm connection. In addition, in the third structure, connecting sleeves are provided at both ends of the stabilizing rod, which are fixed by connecting screws and stabilizing screws to ensure the firmness and stability of the connection. Through the design of different types of stabilizing connecting rods 120, the stability and flexibility of the connection of the support frame 100 are solved, which adapts to different construction requirements and ensures the stability and reliability of the bracket system.

[0049] Furthermore, the stable oblique frame 200 includes a stable oblique rod 210 , on which a stable pipe locking frame 220 connected to a support tube is disposed, and on which a pin 230 is disposed.

[0050] Specifically, the structure of the stable pipe locking frame 220 is consistent with the structure of the pipe locking member; and the pin 230 passes through the connecting groove or the connecting groove 131 .

[0051] Furthermore, a rotating contact plate assembly 400 in contact with the inclined chute 300 is arranged on the stabilizing connecting rod 120 located at the top end of the support frame 100; the rotating contact plate assembly 400 includes a stabilizing base frame 410, a rotating round seat 420 is arranged on the stabilizing base frame 410, a rotating shaft 430 is arranged on the rotating round seat 420, a docking U-frame 440 is arranged at the top end of the rotating shaft 430, a docking plug block 450 is arranged at the opening of the docking U-frame 440, a socket U-frame 460 that is socket-fitted with the docking U-frame 440 is arranged on the docking U-frame 440, and a supporting frame 470 that cooperates with the inclined chute 300 is arranged on the socket U-frame 460.

[0052] Preferably, the docking U-frame 440 is provided with a positioning rod that cooperates with the socket U-frame 460 .

[0053] In general, a rotating contact plate assembly 400 is arranged on the stabilizing link 120 at the top of the support frame 100, and the assembly includes a stabilizing base frame 410, a rotating round seat 420, a rotating shaft 430 and a docking U frame 440, which ensures the rotation and docking stability of the chute. The design of the rotating contact plate assembly 400 solves the problem of flexibility and stability of the chute direction adjustment, ensures that concrete can be smoothly transported to the area where it needs to be poured, and improves construction efficiency.

[0054] Technical features not described in the present invention can be achieved through or by adopting existing technologies, and will not be elaborated here. Of course, the above description is not a limitation of the present invention, and the present invention is not limited to the above examples. Changes, modifications, additions or substitutions made by ordinary technicians in this technical field within the essential scope of the present invention should also fall within the scope of protection of the present invention.

Claims

1. A support chute system for improving concrete pouring effect, characterized in that: The invention comprises a support frame (100), wherein an inclined chute (300) is arranged on the support frame (100), and the support frame (100) and the inclined chute (300) are in a herringbone shape; a stable inclined frame (200) is arranged on the support frame (100), one end of the stable inclined frame (200) is in contact with the ground, and the other end of the stable inclined frame (200) is fixedly connected to the support frame (100); The support frame (100) comprises two symmetrically arranged support frames (110), and a plurality of stabilizing connecting rods (120) are arranged between the two support frames (110); the inclined chute (300) comprises an inclined bottom plate (310) in contact with the support frame (100), and limit plates (320) are symmetrically arranged at both ends of the inclined bottom plate (310).

2. A support chute system for improving concrete pouring effect as claimed in claim 1, characterized in that: The support bracket (110) comprises a plurality of support rods connected end to end in sequence, one end of the support rod is provided with a first threaded section, and the other end of the support rod is provided with a second threaded section threadably matched with the first threaded section.

3. A support chute system for improving concrete pouring effect as claimed in claim 1, characterized in that: The support bracket (110) comprises a plurality of support tubes connected end to end in sequence, a socket is provided at one end of the support tube, a socket tube cooperating with the socket is provided at the other end of the support tube, and a plug rod cooperating with the socket is provided on the socket.

4. A support chute system for improving concrete pouring effect as claimed in claim 3, characterized in that: The support cylinder comprises a cylinder body, on which a plurality of connecting discs (130) are evenly arranged along the axial direction of the support cylinder, and the connecting disc (130) is evenly provided with a plurality of connecting grooves (131) connected to the stabilizing connecting rod (120) along the circumferential direction of the connecting disc (130).

5. A support chute system for improving concrete pouring effect as claimed in claim 3, characterized in that: The support tube is sleeved with a connecting tube, the connecting tube is provided with a connecting disk, the connecting tube is provided with a positioning screw matched with the support tube, and the connecting disk is evenly provided with a plurality of connecting grooves connected to the stabilizing connecting rod (120) along the circumferential direction of the connecting disk.

6. A support chute system for improving concrete pouring effect as claimed in claim 1, characterized in that: The stabilizing connecting rod (120) comprises a connecting rod (121), and connecting U frames (122) are arranged at both ends of the connecting rod (121). A through slot penetrating the connecting U frame (122) is arranged on the connecting U frame (122), and a latch (123) is arranged in the through slot.

7. A support chute system for improving concrete pouring effect as claimed in claim 3, characterized in that: The stabilizing connecting rod (120) comprises a telescopic rod, and tube locking parts connected to the supporting tube are arranged at both ends of the telescopic rod; the tube locking parts comprise a tube locking U-frame, and a tube locking tube connected to the telescopic rod is arranged on the tube locking U-frame, and a fastening screw connected to the telescopic rod is arranged on the tube locking tube, and a slot is arranged on the tube locking U-frame, and a pin is arranged in the slot.

8. A support chute system for improving concrete pouring effect as claimed in claim 2, characterized in that: The stabilizing connecting rod (120) comprises a stabilizing rod, connecting sleeves are arranged at both ends of the stabilizing rod, connecting screws cooperating with the stabilizing rod are arranged on the connecting sleeves, a stabilizing sleeve is arranged on the connecting sleeve, the stabilizing sleeve is sleeved on the supporting rod, and a stabilizing screw cooperating with the supporting rod is arranged on the stabilizing sleeve.

9. A support chute system for improving concrete pouring effect as claimed in claim 1, characterized in that: The stable oblique frame (200) comprises a stable oblique rod (210), on which a stable pipe locking frame (220) connected to a support tube is arranged, and on which a pin (230) is arranged.

10. A support chute system for improving concrete pouring effect as claimed in claim 1, characterized in that: A rotating contact plate assembly (400) in contact with the oblique chute (300) is arranged on the stabilizing connecting rod (120) located at the top end of the support frame (100); the rotating contact plate assembly (400) comprises a stabilizing base frame (410), a rotating round seat (420) is arranged on the stabilizing base frame (410), a rotating shaft (430) is arranged on the rotating round seat (420), a docking U-frame (440) is arranged at the top end of the rotating shaft (430), a docking plug block (450) is arranged at the opening of the docking U-frame (440), a socket U-frame (460) which is socket-matched with the docking U-frame (440) is arranged on the docking U-frame (440), and a supporting frame (470) which is matched with the oblique chute (300) is arranged on the socket U-frame (460).