Concrete pouring device for house building construction

By designing a concrete pouring device that includes a fixed frame, a power system, a feeding body, and a support device, the problems of inconvenient movement and unstable use of traditional devices have been solved, achieving stable movement and efficient concrete delivery.

CN121932024APending Publication Date: 2026-04-28忻州市工程质量安全服务中心
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
忻州市工程质量安全服务中心
Filing Date
2026-03-24
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Traditional concrete pouring equipment used in building construction is inconvenient to move and support, resulting in instability in its use.

Method used

A concrete pouring device was designed, comprising a fixed frame, a power system, a feeding body, a support device, an installation pipe, and a conveying body. The device is moved by moving the main body, and its stability and conveying efficiency are improved by the support device and the vibration device.

Benefits of technology

It enables stable movement and efficient conveying of the concrete pouring device, preventing instability caused by vibration and blockage during use, and improving construction efficiency.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention relates to the technical field of concrete conveying and pouring, in particular to a concrete pouring device for house building construction, which comprises a fixing frame, a supporting device and a conveying main body, a power system is mounted on the left side of the top of the fixing frame, a feeding main body is mounted on the right side of the power system, and a connecting frame is mounted at the bottom of the feeding main body; the bottom of the connecting frame is installed on the right side of the top of the fixing frame, and a mounting pipe is detachably arranged at the end, away from the power system, of the feeding body. The concrete pouring device can be conveniently moved under the action of the moving main body, the power system can provide power for the feeding main body, the feeding main body conveys concrete grout through the mounting pipe and the conveying main body, meanwhile, the fixing frame is supported through the supporting device, the fixing frame is prevented from moving, and the concrete pouring device is more stable to use.
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Description

Technical Field

[0001] This application relates to the field of concrete conveying and pouring technology, specifically a concrete pouring device for building construction. Background Technology

[0002] In the process of building construction, with the development of society, in order to facilitate the construction of buildings, the method of casting with molds is used to build houses. A concrete casting device is a device for conveying and pouring concrete. When in use, a mixture of water, sand, gravel and concrete is directly conveyed into the building mold to realize the construction of the house.

[0003] Traditional concrete pouring equipment for building construction typically involves directly feeding a mixture of water, sand, gravel, and concrete into the equipment, which then transports the concrete slurry. The equipment is usually supported by a frame that is in direct contact with the ground. This makes it inconvenient for wheels to move the equipment while it is in use. Therefore, to address these issues, a new concrete pouring equipment for building construction is proposed. Summary of the Invention

[0004] The purpose of this application is to provide a concrete pouring device for building construction, so as to solve the problem that the concrete pouring device is inconvenient to move or support during use.

[0005] To achieve the above objectives, this application provides the following technical solution: A concrete pouring device for building construction includes a fixed frame, supporting devices, and a material conveying body. A power system is installed on the top left side of the fixed frame, and a material conveying body is installed on the right side of the power system. A connecting frame is installed at the bottom of the material conveying body, and the bottom of the connecting frame is installed on the top right side of the fixed frame. An installation pipe is detachably attached to the end of the material conveying body away from the power system, and a material conveying body is installed at the end of the installation pipe away from the material conveying body. A movable body is installed at the center of the bottom of the fixed frame, and supporting devices are installed on both the left and right sides of the bottom of the fixed frame, with the two supporting devices respectively located on the left and right sides of the movable body.

[0006] Preferably, the support device includes a fixed shell, a pushing body, and a supporting body. Fixed shells are provided on the outer sides of both the front and rear ends of the pushing body. The top of the fixed shell is fixedly connected to the fixed frame. The supporting body is installed inside and at the bottom of the fixed shell. The supporting body is installed on the outer sides of both the front and rear ends of the pushing body.

[0007] Preferably, the pushing body includes a push rod, a sliding frame, a connecting plate, an insert plate, a connecting block, and a limiting plate. Limiting grooves are formed at both ends of the push rod, and insert plates are installed within the limiting grooves at both ends of the push rod. Connecting blocks are installed on the outer sides of both ends of the push rod. A positioning groove is formed on the side of the connecting block away from the push rod. The insert plate passes through the positioning groove of the connecting block. A connecting plate is fixedly connected to the top of the end of the insert plate away from the connecting block. A sliding frame is fixedly connected to the top of the connecting plate. Two sliding frames are respectively arranged on the outer sides of both ends of the push rod. A supporting body is installed on the outer side of the connecting block. A sliding groove is formed on one side of the fixed shell, and the push rod is positioned within the sliding groove of the fixed shell. A first slot, evenly distributed longitudinally, is formed on the side of the fixed shell away from the sliding groove, and the insert plate passes through one of the first slots of the fixed shell.

[0008] Preferably, a reinforcing plate is fixedly connected to the side of the fixed shell away from the slide groove, and a second slot is provided in the reinforcing plate that corresponds one-to-one with the first slot provided in the fixed shell, and the insert plate passes through the second slot provided in the reinforcing plate.

[0009] Preferably, the support body includes a mounting plate, a sliding rod, a return spring, a support shell, a base plate, a damping rod, and a buffer spring. The top of the mounting plate is mounted on the bottom of the fixed shell. The support shell is inserted through the mounting plate. The top of the support shell is fixedly connected to the connecting block. A damping rod is installed inside the support shell. The bottom end of the damping rod is fixedly connected to the base plate. A buffer spring is provided on the outside of the damping rod. Limiting plates are fixedly connected to the bottom of both sides of the connecting block. A sliding rod is inserted through the limiting plate. The bottom end of the sliding rod is fixedly connected to the mounting plate. A return spring is provided on the outside of the bottom end of the sliding rod.

[0010] Preferably, the material conveying body includes a material conveying pipe, a connecting pipe, a flexible pipe, a discharge head, a fixing ring, an external threaded pipe, a vibration device, and an installation body. Connecting pipes are fixedly connected to both the left and right ends of the material conveying pipe. The left end of the connecting pipe is detachably connected to the end of the installation pipe away from the material conveying body via bolts and nuts. The right end of the connecting pipe is detachably connected to a flexible pipe via bolts and nuts. A discharge head is fixedly connected to the end of the flexible pipe away from the connecting pipe. Fixing rings are fixedly connected to both the left and right ends of the outer side of the material conveying pipe. An external threaded pipe communicating with the material conveying pipe is installed on the top of the fixing ring. A vibration device is installed on the outer side of the external threaded pipe. Installation bodies are installed on both the front and rear sides of the vibration device.

[0011] Preferably, the vibration device includes a vibration generating body, a connecting sleeve, a limiting ring, an internally threaded shell, a sealing ring, and a vibration guide rod. The vibration generating body has a vibration guide rod installed at its bottom, and the vibration guide rod is bendable. A connecting sleeve is installed on the outer side of the vibration guide rod, and the top of the connecting sleeve is fixedly connected to the vibration generating body. A limiting ring is fixedly connected to the outer side of the connecting sleeve, and an internally threaded shell is installed on the outer side of the limiting ring. The internally threaded shell is located on the outer side of the connecting sleeve, and its inner side is threadedly connected to an externally threaded pipe. The bottom of the limiting ring is tightly fitted to the externally threaded pipe. Vertically arranged sliding strips are fixedly connected to both the left and right sides of the internally threaded pipe. Slots are opened on both the left and right sides of the connecting sleeve, and the top of the sliding strip is located within one of the slots in the connecting sleeve. A sealing ring is installed on the outer side of the vibration guide rod, and the outer side of the sealing ring is tightly fitted to the externally threaded pipe. Mounting bodies are installed on both the front and rear sides of the vibration generating body.

[0012] Preferably, the mounting body includes a fixing plate, a plug rod, a threaded rod, a support rod, a support plate, a nut, a tray, a rubber sleeve, and a rubber ring. Fixing plates are fixedly connected to both the front and rear sides of the vibration generating body. A rubber sleeve is inserted through the fixing plate, and the rubber sleeve has uniformly distributed deformation grooves. Rubber rings are fixedly connected to the upper and lower ends of the outer side of the rubber sleeve. A plug rod is positioned at the upper part of the rubber sleeve, and a threaded rod is fixedly connected to the bottom end of the plug rod. A support rod is fixedly connected to the bottom end of the threaded rod, and a support plate is fixedly connected to the bottom end of the support rod. A tray is positioned on the outer side of the threaded rod, and the top of the tray is tightly fitted with the rubber ring located below the fixing plate. A nut is threadedly connected to the outer side of the threaded rod, and the top of the nut is fitted with the tray.

[0013] Compared with the prior art, the beneficial effects of this application are: 1. In this application, by setting up a fixed frame, a power system, a connecting frame, a feeding body, a moving body, a support device, an installation pipe, and a conveying body, the fixed frame can be moved easily under the action of the moving body, which facilitates the movement of the concrete pouring device. The power system can provide power to the feeding body, and the feeding body conveys the concrete slurry through the installation pipe and the conveying body. At the same time, the support device supports the fixed frame to prevent the fixed frame from moving, making the concrete pouring device more stable in use. 2. In this application, by setting a fixed shell, push rod, limiting groove, sliding frame, connecting plate, insert plate, connecting block, positioning groove, limiting plate, reinforcing plate, sliding groove, first slot, mounting plate, sliding rod, return spring, support shell, base plate, damping rod, buffer spring, and second slot, the connecting block can be installed in the fixed shell under the action of the insert plate. At this time, the fixed shell, insert plate, connecting block, support shell, damping rod, buffer spring, and base plate support the fixed frame, making the concrete pouring device more stable during use. At this time, the buffer spring and damping rod can buffer the vibration generated by the power system and the feeding body. The sliding frame can drive the insert plate to move within the limiting groove opened in the push rod through the connecting plate, thereby releasing the limiting of the insert plate on the fixed shell and connecting block. At this time, the moving body supports the fixed frame and pushes the push rod downward. The connecting block can push the support shell downwards, and the bottom plate contacts the ground. At this time, the damping rod retracts, and the buffer spring is compressed. Then, the insert plate passes through the first slot opened in the fixed shell and the second slot opened in the reinforcing plate, thereby limiting the push rod and the connecting block. After the push rod is released, the buffer spring and the damping rod can push the bottom plate to fit tightly with the ground, thereby supporting and limiting the fixed frame. After the moving body drives the fixed frame to the position, it prevents the fixed frame from moving, making the concrete pouring sleeve device more stable. After the concrete pouring device is used, the return spring can push the limiting plate upwards. The limiting plate drives the support shell upwards through the connecting block, so that the bottom plate leaves the ground, making it easier for the moving body to drive the fixed frame. The reinforcing plate can reinforce one side of the fixed shell, making the insert plate more stable. 3. In this application, the concrete slurry is conveyed and poured under the action of the conveying pipe, connecting pipe, flexible pipe, discharge head, fixing ring, external threaded pipe, vibration generating body, connecting sleeve, limiting ring, internal threaded shell, sealing ring, vibration guide rod, slot, fixing plate, insert rod, threaded rod, support rod, support plate, nut, support plate, rubber sleeve, rubber ring, and slide bar. The vibration generating body vibrates the concrete slurry in the conveying pipe through the vibration guide rod, preventing the concrete slurry from clogging the conveying pipe and making the concrete slurry delivery more stable. The connecting sleeve is inserted into the external threaded pipe, and the slide bar is set in the slot opened in the connecting sleeve to limit the connection sleeve and ensure more precise installation of the vibration generating body. The vibration generator is installed by connecting the inner threaded shell and the outer threaded pipe, ensuring a tight fit between the bottom of the limiting ring and the top of the outer threaded pipe. The sealing ring, installed on the outside of the vibration guide rod, fits tightly against the outer threaded pipe to prevent concrete slurry from leaking out. Rotating the nut allows it to move up and down on the outside of the threaded rod, supporting the support plate. The support plate, supported by a rubber ring below, also supports the fixing plate. The height between the vibration generator and the fixing ring can be adjusted to further support the vibration generator. When vibration overflows from the vibration generator, it is transmitted through the fixing plate to the rubber sleeve. The rubber sleeve, with its deformation grooves and rubber ring, buffers the vibration, making the vibration generator more stable in use. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall structure of this application; Figure 2 This is a schematic diagram of the support device of this application; Figure 3 This is a schematic diagram of the assembly structure of the main body and supporting body of this application; Figure 4 For this application Figure 3 A magnified structural diagram at point A; Figure 5 This is a structural diagram of the entity driving this application; Figure 6 This is a schematic diagram of the installation structure of the connecting plate in this application; Figure 7 This is a schematic diagram of the installation structure of the damping rod in this application; Figure 8 This is a schematic diagram of the material conveying body of this application; Figure 9 This is a schematic diagram of the installation structure of the vibration device of this application; Figure 10 This is a structural diagram of the main body of the installation in this application; Figure 11 For this application Figure 9 A magnified structural diagram at point B; Figure 12 This is a schematic diagram of the installation structure of the clamp in this application.

[0015] In the diagram: 1. Fixed frame; 2. Power system; 3. Connecting frame; 4. Feeding body; 5. Moving body; 6. Support device; 61. Fixed shell; 62. Pushing body; 621. Push rod; 622. Limiting groove; 623. Sliding frame; 624. Connecting plate; 625. Insert plate; 626. Connecting block; 627. Positioning groove; 628. Limiting plate; 63. Reinforcing plate; 64. Sliding groove; 65. First slot; 66. Supporting body; 661. Mounting plate; 662. Sliding rod; 663. Return spring; 664. Support shell; 665. Base plate; 666. Damping rod; 667. Buffer spring; 67. Second insert... 8. Groove; 7. Installation pipe; 8. Conveying body; 81. Conveying pipe; 82. Connecting pipe; 83. Flexible pipe; 84. Discharge head; 85. Fixing ring; 86. External threaded pipe; 87. Vibration device; 871. Vibration generating body; 872. Connecting sleeve; 873. Limiting ring; 874. Internal threaded shell; 875. Sealing ring; 876. Vibration guide rod; 877. Slot; 88. Installation body; 881. Fixing plate; 882. Insert rod; 883. Threaded rod; 884. Support rod; 885. Support plate; 886. Nut; 887. Support plate; 888. Rubber sleeve; 889. Rubber ring; 89. Sliding bar. Detailed Implementation

[0016] Please see Figure 1-12 This application provides a technical solution: A concrete pouring device for building construction includes a fixed frame 1, a support device 6, and a material conveying body 8. A power system 2 is installed on the top left side of the fixed frame 1, and a material conveying body 4 is installed on the right side of the power system 2. A connecting frame 3 is installed at the bottom of the material conveying body 4, and the bottom of the connecting frame 3 is installed on the top right side of the fixed frame 1. An installation pipe 7 is detachably attached to the end of the material conveying body 4 away from the power system 2, and the material conveying body 8 is installed at the end of the installation pipe 7 away from the material conveying body 4. A movable body 5 is installed at the center of the bottom of the fixed frame 1. Support devices 6 are installed on both the left and right sides of the bottom of the fixed frame 1. The two support devices 6 are respectively located on the left and right sides of the movable body 5. This arrangement allows the fixed frame 1 to be moved easily under the action of the movable body 5, facilitating the movement of the concrete pouring device. The power system 2 provides power to the material conveying body 4, which conveys concrete slurry through the installation pipe 7 and the material conveying body 8. At the same time, the support devices 6 support the fixed frame 1 to prevent it from moving, making the concrete pouring device more stable in use.

[0017] like Figure 1-7As shown, the support device 6 includes a fixed shell 61, a pushing body 62, and a supporting body 66. Fixed shells 61 are provided on the outer sides of both the front and rear ends of the pushing body 62. The top of the fixed shell 61 is fixedly connected to the fixed frame 1. The supporting body 66 is installed inside and at the bottom of the fixed shell 61. The pushing body 62 includes a push rod 621, a sliding frame 623, a connecting plate 624, an insert plate 625, a connecting block 626, and a limiting plate 628. Limiting grooves 622 are provided in both ends of the push rod 621. Insert plates 625 are provided in the limiting grooves 622 at both ends of the push rod 621. Connecting blocks 626 are installed on the outer sides of both the front and rear ends of the push rod 621. A positioning feature is provided on the side of the connecting block 626 away from the push rod 621. The slot 627 is formed by inserting plate 625 through the positioning slot 627 of connecting block 626. A connecting plate 624 is fixedly connected to the top of the end of inserting plate 625 away from connecting block 626. A sliding frame 623 is fixedly connected to the top of connecting plate 624. Two sliding frames 623 are respectively located on the outer sides of both ends of push rod 621. A support body 66 is installed on the outer side of connecting block 626. A sliding groove 64 is formed on one side of fixed shell 61. Push rod 621 is located in the sliding groove 64 of fixed shell 61. A first slot 65, evenly distributed longitudinally, is formed on the side of fixed shell 61 away from sliding groove 64. Inserting plate 625 passes through one of the first slots 65 of fixed shell 61. A reinforcing plate 63 is fixedly connected to the side of fixed shell 61 away from sliding groove 64. A reinforcement plate 63 is formed within the reinforcing plate 63. The second slot 67 is arranged in a one-to-one correspondence with the first slot 65 opened in the fixed shell 61. The insert plate 625 passes through the second slot 67 opened in the reinforcing plate 63. The support body 66 includes a mounting plate 661, a sliding rod 662, a return spring 663, a support shell 664, a base plate 665, a damping rod 666, and a buffer spring 667. The top of the mounting plate 661 is installed at the bottom of the fixed shell 61. The support shell 664 is installed through the mounting plate 661. The top of the support shell 664 is fixedly connected to the connecting block 626. The damping rod 666 is installed inside the support shell 664. The bottom end of the damping rod 666 is fixedly connected to the base plate 665. The buffer spring 667 is arranged on the outside of the damping rod 666. Limit plates 628 are fixedly connected to the bottom of both sides of the connecting block 626. A sliding rod 662 is installed through the limiting plate 628. The bottom end of the sliding rod 662 is fixedly connected to the mounting plate 661. A return spring 663 is installed on the outer side of the bottom end of the sliding rod 662. With this arrangement, the connecting block 626 can be installed in the fixed shell 61 under the action of the insert plate 625. At this time, the fixed shell 61, insert plate 625, connecting block 626, support shell 664, damping rod 666, buffer spring 667 and base plate 665 support the fixed frame 1, making the concrete pouring device more stable during use. At this time, the buffer spring 667 and damping rod 666 can buffer the vibration generated by the power system 2 and the feeding body 4. The sliding frame 623 can drive the insert plate 625 to move within the limiting groove 622 opened in the push rod 621 through the connecting plate 624.This releases the limiting effect of the insert plate 625 on the fixed shell 61 and the connecting block 626. The return spring 663, through its own elastic force, pushes the limiting plate 628, the support shell 664, the damping rod 666, the buffer spring 667, and the base plate 665 upward, causing the base plate 665 to leave the ground. At this time, the moving body 5 supports the fixed frame 1 and pushes the push rod 621 downward. The push rod 621, through the connecting block 626, can push the support shell 664 downward, and the bottom of the base plate 665 contacts the ground. At this time, the damping rod 666 contracts, and the buffer spring 667 is compressed. Then, the insert plate 625 passes through the first slot 65 opened in the fixed shell 61 and the second slot 67 opened in the reinforcing plate 63, thereby limiting the push rod 621 and the connecting block 626. After releasing push rod 621, buffer spring 667 and damping rod 666 can push base plate 665 to fit tightly against the ground, thereby supporting and limiting the fixed frame 1. After the moving body 5 moves the fixed frame 1 into position, it prevents the fixed frame 1 from moving, making the concrete pouring sleeve device more stable. After the concrete pouring device is used, manually release the limiting of connecting block 626. Return spring 663 can push limiting plate 628 upward. Limiting plate 628 drives support shell 664 upward through connecting block 626, so that base plate 665 leaves the ground, making it easier for moving body 5 to move fixed frame 1. Reinforcing plate 63 can reinforce one side of fixed shell 61, making insert plate 625 more stable.

[0018] like Figure 1 and 8As shown in Figure -11, the material conveying body 8 includes a material conveying pipe 81, a connecting pipe 82, a flexible pipe 83, a discharge head 84, a fixing ring 85, an external threaded pipe 86, a vibration device 87, and an installation body 88. The material conveying pipe 81 is fixedly connected to both its left and right ends by connecting pipes 82. The left end of the connecting pipe 82 is detachably connected to the end of the installation pipe 7 away from the material conveying body 4 by bolts and nuts. The right end of the connecting pipe 82 is detachably connected to the flexible pipe 83 by bolts and nuts. The end of the flexible pipe 83 away from the connecting pipe 82 is fixedly connected to the discharge head 84. The material conveying pipe 81 is fixedly connected to both its left and right ends by fixing rings 85. An external threaded pipe 86, communicating with the material conveying pipe 81, is installed on the top of the fixing ring 85. A vibration device 86 is installed on the outside of the external threaded pipe 86. 7. The vibration device 87 has mounting bodies 88 installed on both its front and rear sides. The vibration device 87 includes a vibration generating body 871, a connecting sleeve 872, a limiting ring 873, an internally threaded shell 874, a sealing ring 875, and a vibration guide rod 876. The vibration guide rod 876 is installed at the bottom of the vibration generating body 871 and is bendable. A connecting sleeve 872 is installed on the outer side of the vibration guide rod 876. The top of the connecting sleeve 872 is fixedly connected to the vibration generating body 871. A limiting ring 873 is fixedly connected to the outer side of the connecting sleeve 872. An internally threaded shell 874 is installed on the outer side of the limiting ring 873 and is located outside the connecting sleeve 872. The inner side of the internally threaded shell 874 is threadedly connected to an externally threaded tube 86. The bottom of the limiting ring 873 is tightly fitted to the external threaded tube 86. Vertically arranged slide bars 89 are fixedly connected to both the left and right sides of the external threaded tube 86. The connecting sleeve 872 has slots 877 on both the left and right sides. The top of the slide bar 89 is positioned within the slots 877 of the connecting sleeve 872. A sealing ring 875 is installed on the outside of the vibration guide rod 876, and the outer side of the sealing ring 875 is tightly fitted to the external threaded tube 86. The vibration generating body 871 has mounting bodies 88 on both the front and rear sides. Each mounting body 88 includes a fixing plate 881, a plug rod 882, a threaded rod 883, a support rod 884, a support plate 885, a nut 886, a support plate 887, a rubber sleeve 888, and a rubber ring 889. The vibration generating body 871 has vertically arranged slide bars 89 on both the front and rear sides. A fixed plate 881 is fixedly connected, and a rubber sleeve 888 is inserted through the fixed plate 881. The rubber sleeve 888 has evenly distributed deformation grooves. Rubber rings 889 are fixedly connected to the upper and lower ends of the outer side of the rubber sleeve 888. An insertion rod 882 is located at the upper part of the inner side of the rubber sleeve 888. A threaded rod 883 is fixedly connected to the bottom end of the insertion rod 882. A support rod 884 is fixedly connected to the bottom end of the threaded rod 883. A support plate 885 is fixedly connected to the bottom end of the support rod 884. A support plate 887 is located on the outer side of the threaded rod 883. The top of the support plate 887 is tightly fitted with the rubber rings 889 located below the fixed plate 881. A nut 886 is threadedly connected to the outer side of the threaded rod 883. The top of the nut 886 is fitted with the support plate 887. This arrangement...The concrete slurry can be transported and poured under the action of the conveying pipe 81, connecting pipe 82, flexible pipe 83, and discharge head 84. At this time, the vibration generating body 871 vibrates the concrete slurry in the conveying pipe 81 through the vibration guide rod 876 to prevent the concrete slurry from clogging the conveying pipe 81. At the same time, the vibrating concrete slurry can transmit the vibration to the installation pipe 7 and flexible pipe 83 to prevent blockage in the installation pipe 7 and flexible pipe 83, making the concrete slurry delivery more stable. The connecting sleeve 872 is inserted into the external threaded pipe 86. At this time, the slide bar 89 is set in the slot 877 opened in the connecting sleeve 872 to limit the connecting sleeve 872 and ensure that the vibration generating body 871 is installed more accurately. The internal threaded shell 874 and the external threaded pipe 86 are threadedly connected, so that the bottom of the limiting ring 873 fits tightly with the top of the external threaded pipe 86. The vibration generator 871 is installed, and the sealing ring 875, installed on the outside of the vibration guide rod 876, fits tightly against the external threaded pipe 86 to prevent concrete slurry from leaking out of the external threaded pipe 86. Rotating the nut 886 allows it to move up and down on the outside of the threaded rod 883, thus supporting the support plate 887. The support plate 887 supports the fixing plate 881 via the rubber ring 889 below. The height between the vibration generator 871 and the fixing ring 85 can also be adjusted, further supporting the vibration generator 871. When vibration overflows from the vibration generator 871, the vibration is transmitted through the fixing plate 881 to the rubber sleeve 888. The rubber sleeve 888, through its deformation grooves and the rubber ring 889, buffers the vibration, making the vibration generator 871 more stable in use.

[0019] Workflow: When using this concrete pouring device for building construction, first push the fixed frame 1, which in turn pushes the moving main body 5 to move. The wheels installed on the moving main body 5 roll on the ground until the fixed frame 1 is moved to the appropriate position. Then, push the two sliding frames 623 at both ends of a push rod 621 towards each other. At this time, the sliding frames 623 drive the insert plate 625 to slide within the limiting groove 622 opened in the push rod 621 through the connecting plate 624, until the limiting plate 628 is removed from the second slot 67 opened in the reinforcing plate 63 and the first slot 65 opened in the fixed shell 61. Then, place the jack between the fixed frame 1 and the push rod 621, and push the push rod 621 downward through the jack. The push rod 621 is pushed by the connecting block 626. The moving support shell 664 moves downward, and at the same time, the limiting plate 628 pushes the return spring 663 to compress outside the slide rod 662. Simultaneously, the connecting block 626 pushes the support shell 664 downward. The support shell 664 pushes the base plate 665 to contact the ground through the damping rod 666 and the buffer spring 667. At this time, the push rod 621 continues to move downward. The push rod 621 pushes the support shell 664 through the connecting block 626. The support shell 664 pushes the damping rod 666 to retract, and at the same time, the buffer spring 667 is compressed. After the push rod 621 moves to the appropriate position, it pushes the slide frame 623 towards the fixed shell 61. The slide frame 623 pushes the insert plate 625 through the connecting plate 624, so that the insert plate 625 passes through the first slot 65 opened in the fixed shell 61 and the reinforcing plate 63. After the second slot 67 is opened and the sliding frames 623 at both ends of the push rod 621 have been moved, another worker moves the push rod 621 at the bottom of the other side of the fixed frame 1 downwards so that it is in the same position as the push rod 621 above. Then, the insert plate 625 is moved in the same way as above. After the movement is completed, the push rod 621 is released together. At this time, the buffer spring 667 returns to its original position through its own spring, and the damping rod 666 gradually extends, so that the base plate 665 is in close contact with the ground, thereby positioning the fixed frame 1 and preventing the fixed frame 1 and the power system 2 from moving. Then, the conveying body 8 is installed at one end of the installation pipe 7 with bolts and nuts. Then, the vibrating guide rod 876 is inserted into the conveying pipe 81 through the external threaded pipe 86. At this point, the vibrating guide rod 876 deforms until it drives the sealing ring 875 to insert into the external threaded tube 86. The outer side of the sealing ring 875 is tightly fitted against the inner wall of the external threaded tube 86. Simultaneously, the vibration generating body 871 drives the connecting sleeve 872 to insert into the external threaded tube 86. The slot 877 on the connecting sleeve 872 is installed on the outer side of the slide bar 89. Then, the inner threaded shell 874 is rotated, and it is threadedly connected to the external threaded tube 86. The inner threaded shell 874 pushes the bottom of the limiting ring 873 to fit against the external threaded tube 86, thus completing the installation of the vibration generating body 871. Finally, the nut 886 is rotated, and it is threadedly connected to the threaded rod 883. The nut 886 then pushes the support plate 887 upwards.When the bottom of the support plate 885 contacts the ground, under the action of gravity, the vibration generating body 871 drives the fixed plate 881 to move downward. The bottom of the rubber ring 889 set at the bottom of the fixed plate 881 is tightly fitted with the support plate 887, and the bottom of the support plate 887 is tightly fitted with the nut 886, thus supporting and supporting the vibration generating body 871. Then, the power supply is turned on and the power system 2 is started through the external controller. The power system 2 is powered by the diesel engine. At this time, the power system 2 starts the feeding body 4 through the transmission device. Then, the worker feeds the mixed concrete slurry into the feeding body 4. The feeding body 4 and the installation pipe 7 convey the concrete slurry through the connecting pipe 82. Pipe 81 and flexible pipe 83 are fed into discharge head 84. Workers pour concrete into the mold by hand using discharge head 84, thus completing the house construction. When vertical upward transmission is required, clamps can be directly inserted through rubber sleeve 888 and fixed to the wall. At this time, rubber sleeve 888 can buffer the vibration generated by the vibration generator 871 through the deformation groove. During the pouring process, the vibration generator 871 is activated by an external controller. The vibration generator 871 transmits the vibration to the vibration guide rod 876, which in turn transmits the vibration into the concrete slurry, preventing the concrete slurry from clogging in the delivery pipe 81 and making the concrete pouring more stable.

[0020] This document uses specific examples to illustrate the principles and implementation methods of this application. The examples are merely for the purpose of helping to understand the methods and core ideas of this application. The above descriptions are only preferred embodiments of this application. It should be noted that due to the limitations of written expression, while there are objectively infinite specific structures, those skilled in the art can make various improvements, modifications, or variations without departing from the principles of this application, and can also combine the above technical features in an appropriate manner. These improvements, modifications, variations, or combinations, or the direct application of the inventive concept and technical solution to other situations without modification, should all be considered within the scope of protection of this application.

Claims

1. A concrete pouring device for building construction, comprising a fixing frame (1), a supporting device (6), and a material conveying body (8), characterized in that: A power system (2) is installed on the top left side of the fixed frame (1), a feeding body (4) is installed on the right side of the power system (2), a connecting frame (3) is installed at the bottom of the feeding body (4), the bottom of the connecting frame (3) is installed on the top right side of the fixed frame (1), an installation pipe (7) is detachably installed at the end of the feeding body (4) away from the power system (2), a conveying body (8) is installed at the end of the installation pipe (7) away from the feeding body (4), a moving body (5) is installed at the center of the bottom of the fixed frame (1), and support devices (6) are installed on both the left and right sides of the bottom of the fixed frame (1). The two support devices (6) are respectively set on the left and right sides of the moving body (5). The support device (6) includes a fixed shell (61) and a pushing body (62). The pushing body (62) has a fixed shell (61) on both the front and rear outer sides. The pushing body (62) includes a push rod (621), a sliding frame (623), a connecting plate (624), an insert plate (625), a connecting block (626), and a limiting plate (628). The push rod (621) has a limiting groove (622) in both ends. The limiting groove (622) in both ends of the push rod (621) has an insert plate (625) in it. The pushing rod (621) has a fixed shell (61) on both the front and rear outer sides. Each is equipped with a connecting block (626). A positioning groove (627) is provided on the side of the connecting block (626) away from the push rod (621). The insert plate (625) passes through the positioning groove (627) of the connecting block (626). A connecting plate (624) is fixedly connected to the top of the end of the insert plate (625) away from the connecting block (626). A sliding frame (623) is fixedly connected to the top of the connecting plate (624). The two sliding frames (623) are respectively set on the outer sides of both ends of the push rod (621). A support body (66) is installed on the outer side of the connecting block (626).

2. The concrete pouring device for building construction according to claim 1, characterized in that: The support device (6) further includes a support body (66), the top of the fixed shell (61) is fixedly connected to the fixed frame (1), the support body (66) is installed inside and at the bottom of the fixed shell (61), and the support body (66) is installed on the outer sides of both the front and rear ends of the pushing body (62).

3. A concrete pouring device for building construction according to claim 2, characterized in that: The fixed shell (61) has a groove (64) on one side, and the push rod (621) is set in the groove (64) of the fixed shell (61). The fixed shell (61) has a first slot (65) that is evenly distributed in the longitudinal direction on the side away from the groove (64). The insert plate (625) passes through one of the first slots (65) of the fixed shell (61).

4. A concrete pouring device for building construction according to claim 3, characterized in that: A reinforcing plate (63) is fixedly connected to the side of the fixed shell (61) away from the slide groove (64). A second slot (67) is provided in the reinforcing plate (63) in a one-to-one correspondence with the first slot (65) provided in the fixed shell (61). The insert plate (625) passes through the second slot (67) provided in the reinforcing plate (63).

5. A concrete pouring device for building construction according to claim 3, characterized in that: The supporting body (66) includes a mounting plate (661), a sliding rod (662), a return spring (663), a supporting shell (664), a base plate (665), a damping rod (666), and a buffer spring (667). The top of the mounting plate (661) is installed on the bottom of the fixed shell (61). The supporting shell (664) is installed through the mounting plate (661). The top of the supporting shell (664) is fixedly connected to the connecting block (626). The supporting shell (664) is installed inside the supporting shell (664). A damping rod (666) is provided, and a base plate (665) is fixedly connected to the bottom end of the damping rod (666). A buffer spring (667) is provided on the outside of the damping rod (666). Limiting plates (628) are fixedly connected to the bottom of both sides of the connecting block (626). A sliding rod (662) is provided through the limiting plate (628). The bottom end of the sliding rod (662) is fixedly connected to the mounting plate (661). A return spring (663) is provided on the outside of the bottom end of the sliding rod (662).

6. A concrete pouring device for building construction according to claim 1, characterized in that: The material conveying body (8) includes a material conveying pipe (81), a connecting pipe (82), a flexible pipe (83), a discharge head (84), a fixing ring (85), an external threaded pipe (86), a vibration device (87), and an installation body (88). The material conveying pipe (81) has connecting pipes (82) fixedly connected to both its left and right ends. The left end of the connecting pipe (82) is detachably connected to the end of the installation pipe (7) away from the material conveying body (4) via bolts and nuts. The right end of the connecting pipe (82) is detachably connected to the end of the installation pipe (7) away from the material conveying body (4) via bolts and nuts. The nut is detachably connected to a flexible tube (83). The end of the flexible tube (83) away from the connecting tube (82) is fixedly connected to a discharge head (84). The left and right ends of the conveying tube (81) are fixedly connected to a fixing ring (85). The top of the fixing ring (85) is equipped with an external threaded tube (86) that communicates with the conveying tube (81). The outside of the external threaded tube (86) is equipped with a vibration device (87). The front and rear sides of the vibration device (87) are equipped with an installation body (88).

7. A concrete pouring device for building construction according to claim 6, characterized in that: The vibration device (87) includes a vibration generating body (871), a connecting sleeve (872), a limiting ring (873), an internal threaded shell (874), a sealing ring (875), and a vibration guide rod (876). The vibration generating body (871) has a vibration guide rod (876) installed at its bottom. The vibration guide rod (876) is bendable. The connecting sleeve (872) is provided on the outside of the vibration guide rod (876). The top of the connecting sleeve (872) is fixedly connected to the vibration generating body (871). The limiting ring (873) is fixedly connected to the outside of the connecting sleeve (872). The internal threaded shell (874) is provided on the outside of the limiting ring (873). The inner side of the inner threaded shell (874) is threaded to the outer threaded tube (86) on the outside of the connecting sleeve (872). The bottom of the limiting ring (873) is tightly fitted to the outer threaded tube (86). Vertically arranged slide bars (89) are fixedly connected to the left and right sides of the outer threaded tube (86). The left and right sides of the connecting sleeve (872) are provided with slots (877). The top of the slide bar (89) is set in the slot (877) opened in the connecting sleeve (872). A sealing ring (875) is installed on the outside of the vibration guide rod (876). The outside of the sealing ring (875) is tightly fitted to the outer threaded tube (86). The front and rear sides of the vibration generating body (871) are equipped with mounting bodies (88).

8. A concrete pouring device for building construction according to claim 7, characterized in that: The mounting body (88) includes a fixing plate (881), a plug rod (882), a threaded rod (883), a support rod (884), a support plate (885), a nut (886), a support plate (887), a rubber sleeve (888), and a rubber ring (889). The vibration generating body (871) has fixing plates (881) fixedly connected to both its front and rear sides. A rubber sleeve (888) is inserted through the fixing plate (881). The rubber sleeve (888) has evenly distributed deformation grooves inside. Rubber rings (889) are fixedly connected to the upper and lower ends of the outer side of the rubber sleeve (888). An insert rod (882) is provided at the top inside the sleeve (888). A threaded rod (883) is fixedly connected to the bottom end of the insert rod (882). A support rod (884) is fixedly connected to the bottom end of the threaded rod (883). A support plate (885) is fixedly connected to the bottom end of the support rod (884). A support plate (887) is provided on the outside of the threaded rod (883). The top of the support plate (887) is tightly fitted with a rubber ring (889) provided below the fixed plate (881). A nut (886) is threadedly connected to the outside of the threaded rod (883). The top of the nut (886) is fitted with the support plate (887).