Green recycled concrete prefabricated part forming device
Patent Information
- Application Number
- CN202610775776.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-06-01
- Publication Date
- 2026-08-18
AI Technical Summary
针对现有技术的不足,本发明提供了一种绿色再生混凝土预制件成型设备,解决了结构复杂、操作繁琐、成本较高的问题
本发明中,在传输与振捣环节,传输架内沿传输机构长度方向依次设置辅助架杆和升降架杆,传输机构采用多组传输辊轮结构,辅助架杆与升降架杆分别对应插入传输机构一侧,两者分工明确、配合紧密。辅助架杆保持固定状态,可稳定承接并传输前端引入的预制模具,避免模具传输过程中发生偏移,保障传输稳定性;升降架杆作为再生混凝土原料浇筑后模具的振动成型传输通道,通过升降动作可对预制模具内填充的再生混凝土进行充分振匀处理,有效排出混凝土内部空气,避免成型后构件内部出现孔隙、空洞等缺陷,显著提升预制件结构稳定性与力学性能,同时简化了传输路径与预制流程,降低了操作难度,整体结构适配不同规格预制模具的传输与成型需求,适用范围广,无需复杂操作流程,成型质量稳定。
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Figure CN122584483A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of precast component molding technology, specifically to a green recycled concrete precast component molding equipment. Background Technology
[0002] Recycled concrete uses waste concrete from construction as raw material and is processed into recycled aggregate through crushing, screening, and strengthening processes. It replaces some or all of the natural aggregate in the preparation of concrete, and has the dual value of environmental protection and resource conservation. It has been gradually applied in many fields such as foundation components, non-load-bearing walls, landscape facilities, municipal roads and prefabricated buildings. In projects such as affordable housing and rental housing, the application of recycled concrete precast components has demonstrated good economic efficiency and engineering applicability.
[0003] Currently, most existing recycled concrete precast component molding equipment is simply modified from ordinary concrete precast component molding equipment, resulting in numerous shortcomings in practical use. While some molding equipment attempts to improve molding results through methods such as pressurization and variable frequency vibration, these methods suffer from complex structures, cumbersome operation, and high costs. Furthermore, they are difficult to adapt flexibly to different specifications and types of recycled concrete precast components, exhibiting poor versatility and failing to meet the demands of large-scale production. Therefore, this invention proposes a green recycled concrete precast component molding equipment. Summary of the Invention
[0004] (a) Technical problems to be solved To address the shortcomings of existing technologies, this invention provides a green recycled concrete precast component molding equipment, which solves the problems of complex structure, cumbersome operation, and high cost.
[0005] (II) Technical Solution To achieve the above objectives, the present invention provides the following technical solution: a green recycled concrete precast component molding equipment, comprising a transmission frame and a guide hopper disposed on the top of the transmission frame; two or more transmission mechanisms are assembled along the length of the transmission frame; an auxiliary frame rod is provided on one side of the transmission mechanism perpendicular to the bottom of the guide hopper; a lifting frame rod is provided on the side of the transmission mechanism away from the auxiliary frame rod; an installation frame plate is fixedly connected to the side of the lifting frame rod away from the guide hopper; two or more telescopic cylinder components are fixedly connected at even intervals along the length of the bottom of the installation frame plate; a frame-shaped frame is fixedly connected to the outer wall of the guide hopper; a feeding frame is disposed on the side of the frame-shaped frame away from the guide hopper; a feeding hopper is slidably assembled on the side of the feeding frame away from the frame-shaped frame; a support frame is fixedly connected to the side of the frame-shaped frame away from the feeding frame; an inverted L-shaped frame rod is fixedly connected to the side of the support frame away from the transmission frame; one end wall of the inverted L-shaped frame rod is fixedly connected to the top side wall of the feeding frame.
[0006] Preferably, a bottom support plate is fixedly connected to the side of the telescopic cylinder component facing away from the mounting plate; a fixed plate frame is fixedly inserted into the side of the auxiliary frame rod facing away from the transmission mechanism, and the bottom end of the auxiliary frame rod is fixedly connected to the top end of the bottom support plate; a control mechanism is fixedly connected to the side of the bottom support plate facing the transmission mechanism.
[0007] Preferably, a partition plate is fixedly connected to the side of the transmission frame facing the bottom support plate, and the bottom side wall of the partition plate is fixedly connected to the outer side wall of the bottom support plate; a support frame is fixedly connected to the side of the auxiliary frame rod away from the bottom support plate, and the bottom end of the support frame is fixedly connected to the top end of the transmission frame.
[0008] Preferably, the lifting frame rod has two sets of oppositely arranged blocks integrally formed on the side away from the mounting plate. The inner sidewall of the block is flush with the sidewall of the first partition plate, and the second partition plate is fixedly connected to the side of the block facing the transmission frame.
[0009] Preferably, a U-shaped lifting rod is rotatably mounted on the side of the feeding hopper away from the transmission frame, and round fasteners are rotatably connected to both end walls of the U-shaped lifting rod. The round fasteners are fixedly inserted into the feeding hopper on the side facing the feeding hopper. An outer wheel is fixedly connected to the outer side wall of the feeding hopper perpendicular to the outer side wall of the round fasteners, and the outer side wall of the outer wheel is movably fitted with the feeding frame.
[0010] Preferably, a chuck plate is fixedly connected to the side of the feeding rack facing the frame, and an mounting component is fixedly connected to the side of the feeding hopper facing the chuck plate; an inner wheel is rotatably connected to the inner side wall of the mounting component, and the outer side wall of the inner wheel is rotatably fitted with the inner side wall of the chuck plate.
[0011] Preferably, two sets of crossbeams are fixedly connected to the side of the inverted L-shaped frame away from the feeding frame, and traction axles adapted for U-shaped lifting rod traction are fixedly connected to the center of the bottom end of each set of crossbeams; a base frame is fixedly connected to the side of the guide hopper away from the crossbeams, and fixed frames are fixedly connected to both sides of the bottom end of the base frame, and the bottom end of the fixed frames is fixedly connected to the top end of the transmission frame; an oil spraying mechanism is fixedly connected to the side of the base frame facing the transmission mechanism.
[0012] Preferably, the guide hopper has two sets of discharge end pieces fixedly connected to the outer wall of one side perpendicular to the bottom of the oil spraying mechanism along its width direction; the two sets of discharge end pieces have a discharge guide plate integrally formed on the side away from the guide hopper, and the inner wall of the discharge end piece perpendicular to the discharge guide plate is movably fitted with the discharge baffle.
[0013] Preferably, a triangular block is integrally formed on the side of the discharge baffle away from the guide hopper, and a limiting block one is integrally formed on the top of the discharge end piece perpendicular to the side wall of the triangular block. The side of the triangular block facing the limiting block one is rotatably connected to the limiting block one. A second limiting block is integrally formed on the top of the discharge end piece perpendicular to the outer wall of the guide hopper. A telescopic cylinder two is rotatably connected on the side of the limiting block two away from the discharge end piece. An adapter is fixedly connected on the side of the telescopic cylinder two away from the guide hopper. The side wall of the triangular block facing the adapter is rotatably inserted into the adapter.
[0014] Preferably, a guide rod is rotatably mounted inside the guide hopper at the position corresponding to the discharge end component, and a guide motor is fixedly connected to the side of the guide hopper away from the guide rod. The rotating end of the guide motor extends into the guide hopper and is fixedly connected to the guide rod.
[0015] In summary, the technical effects and advantages of this invention are as follows: In this invention, during the transmission and vibration stages, auxiliary support rods and lifting support rods are sequentially arranged along the length of the transmission mechanism within the transmission frame. The transmission mechanism employs a multi-set transmission roller structure, with the auxiliary support rods and lifting support rods inserted into one side of the transmission mechanism respectively. Their functions are clearly defined and they work closely together. The auxiliary support rods remain fixed, stably receiving and transmitting the precast mold introduced from the front end, preventing mold displacement during transmission and ensuring transmission stability. The lifting support rods serve as the vibration forming transmission channel for the mold after the recycled concrete raw material is poured. Through lifting and lowering movements, the recycled concrete filled in the precast mold can be fully vibrated and evenly mixed, effectively expelling air from the concrete and preventing defects such as pores and voids inside the formed component. This significantly improves the structural stability and mechanical properties of the precast component, while simplifying the transmission path and precast process, reducing operational difficulty. The overall structure is adaptable to the transmission and forming needs of precast molds of different specifications, has a wide range of applications, requires no complex operating procedures, and ensures stable forming quality.
[0016] In this invention, a tower-like frame is formed by combining a feeding rack and a supporting frame, with the guide hopper stably positioned between the two. The structure is compact and the stress is evenly distributed, effectively ensuring the overall operational stability of the equipment. The feeding hopper can slide and rise along the feeding rack. Later, by connecting a traction device to the U-shaped lifting rod of the feeding hopper, the entire feeding hopper can be pulled upwards, making the hopper port perpendicular to the top of the guide hopper. This facilitates the smooth pouring of recycled concrete into the guide hopper for precasting, eliminating the need for complex drive components, reducing equipment manufacturing costs, simplifying the feeding operation, and improving feeding efficiency. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall structure of a green recycled concrete precast component molding equipment according to the present invention; Figure 2This is a rear view schematic diagram of the overall structure of a green recycled concrete precast component molding equipment according to the present invention; Figure 3 This is a bottom schematic diagram of the overall structure of the guide hopper, feeding hopper, feeding frame, and supporting frame of the present invention. Figure 4 This is a top view of the overall structure of the guide hopper, feeding hopper, feeding frame and supporting frame of the present invention; Figure 5 This is a schematic diagram of the overall structure of the feeding hopper, feeding frame, and supporting frame of the present invention; Figure 6 This is a schematic diagram of the overall structure of the transmission frame, base plate, lifting frame rod, and auxiliary frame rod of the present invention. Figure 7 This is a schematic diagram of the overall structure of the transmission frame and the base support plate of the present invention; Figure 8 For the present invention Figure 3 A magnified diagram of node A.
[0018] In the diagram: 1. Conveyor frame; 101. Conveyor mechanism; 102. Support frame; 103. Partition plate one; 2. Bottom support plate; 201. Control mechanism; 3. Lifting frame rod; 301. Mounting frame plate; 302. Telescopic cylinder component one; 303. Stop block; 304. Partition plate two; 4. Auxiliary frame rod; 401. Fixed plate frame; 5. Guide hopper; 501. Frame-type frame; 502. Base frame component; 503. Oil spraying mechanism; 504. Fixed frame; 505. Guide rotating rod; 506. Guide motor; 6. Discharge end components; 601. Discharge guide plate; 602. Discharge baffle; 603. Triangular block; 604. Limiting block one; 605. Limiting block two; 606. Telescopic cylinder component two; 607. Adapter; 7. Feeding hopper; 701. U-shaped lifting rod; 702. Outer wheels; 703. Round fastener; 704. Mounting component; 705. Inner wheels; 8. Feeding frame; 801. Caster plate; 9. Support frame; 901. Inverted L-shaped frame rod; 902. Crossbeam rod; 903. Traction axle wheel. Detailed Implementation
[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0020] refer to Figures 1-8 The green recycled concrete precast component molding equipment shown includes a conveyor frame 1 and a guide hopper 5 disposed on the top of the conveyor frame 1. A specific embodiment is shown below: Example 1:
[0021] This embodiment includes the installation and matching relationship between the feeding hopper 7 and the guide hopper 5, as well as the feeding operation achieved by the two working together, fully demonstrating the advantages of the equipment's simple feeding structure and convenient operation, as detailed below: During installation, the guide hopper 5 is fixedly mounted on the top of the transmission frame 1, and a frame-type frame 501 is fixedly connected to its outer wall. A feeding frame 8 is set on the side of the frame-type frame 501 opposite to the guide hopper 5, and a feeding hopper 7 is slidably mounted on the side of the feeding frame 8 opposite to the frame-type frame 501, so that the feeding hopper 7 can slide up and down along the feeding frame 8. At the same time, a support frame 9 is fixedly connected to the side of the frame-type frame 501 opposite to the feeding frame 8, and an inverted L-shaped frame rod 901 is fixedly connected to the side of the support frame 9 opposite to the transmission frame 1. One end wall of the inverted L-shaped frame rod 901 is fixedly connected to the top side wall of the feeding frame 8, so that the feeding frame 8 and the support frame 9 combine to form a high tower-like frame, and the guide hopper 5 is stably placed in the middle of the two to ensure the overall stability of the equipment during the feeding process.
[0022] A U-shaped lifting rod 701 is rotatably mounted on the side of the feeding hopper 7 away from the transmission frame 1. Round fasteners 703 are rotatably connected to both end walls of the U-shaped lifting rod 701. The side of the round fasteners 703 facing the feeding hopper 7 is fixedly inserted into the feeding hopper 7 to ensure that the U-shaped lifting rod 701 can rotate flexibly and is firmly connected. An outer wheel 702 is fixedly connected to the outer side wall of the feeding hopper 7 perpendicular to the round fasteners 703. The outer side wall of the outer wheel 702 is movably fitted with the feeding frame 8. At the same time, a retaining plate 801 is fixedly connected to the side of the feeding frame 8 facing the frame 501. An installation part 704 is fixedly connected to the side of the feeding hopper 7 facing the retaining plate 801. An inner wheel 705 is rotatably connected to the inner side wall of the installation part 704. The outer side wall of the inner wheel 705 is rotatably fitted with the inner side wall of the retaining plate 801, further improving the smoothness and stability of the sliding of the feeding hopper 7.
[0023] In use, the recycled concrete raw materials are first loaded into the feeding hopper 7. Then, a traction device is connected to the U-shaped lifting rod 701. The traction device pulls the U-shaped lifting rod 701, causing the feeding hopper 7 to slide upward along the feeding frame 8. With the cooperation of the outer wheel 702 and the inner wheel 705, the feeding hopper 7 is raised and lowered smoothly until the inner wheel 705 is engaged with the inner side wall of the wheel plate 801. At this time, traction is continued. Since the inner wheel 705 of the feeding hopper 7 is engaged in the wheel plate 801, the feeding hopper 7 can only tilt slowly, and the recycled concrete inside is poured smoothly into the guide hopper 5 to complete the feeding operation. The whole process does not require complicated drive parts, is easy to operate, effectively improves feeding efficiency, and reduces manpower input.
[0024] Example 2:
[0025] This embodiment includes the installation and assembly of the transmission frame 1, lifting frame rod 3, auxiliary frame rod 4, and bottom support plate 2, as well as the transmission and vibration functions realized by this part of the structure, ensuring the stability of precast mold transmission and the molding quality of recycled concrete, as detailed below: During installation, two or more sets of transmission mechanisms 101 are assembled along the length of the transmission frame 1. The transmission mechanism 101 adopts a multi-set transmission roller structure to facilitate the smooth transmission of precast molds. An auxiliary frame rod 4 is provided on the side of the transmission mechanism 101 perpendicular to the bottom of the guide hopper 5, and a lifting frame rod 3 is provided on the side of the transmission mechanism 101 opposite to the auxiliary frame rod 4. The lifting frame rod 3 and the auxiliary frame rod 4 are respectively inserted into one side of the transmission mechanism 101, with clear division of labor and close cooperation between the two.
[0026] A mounting plate 301 is fixedly connected to the side of the lifting frame rod 3 facing away from the guide hopper 5. Two or more sets of telescopic cylinder components 302 are fixedly connected at even intervals along the length of the bottom end of the mounting plate 301. A bottom support plate 2 is fixedly connected to the side of the telescopic cylinder component 302 facing away from the mounting plate 301. The bottom support plate 2 provides stable support for the entire transmission and vibration structure. A fixed plate frame 401 is fixedly inserted into the side of the auxiliary frame rod 4 facing away from the transmission mechanism 101. The bottom end of the auxiliary frame rod 4 is fixedly connected to the top end of the bottom support plate 2, further improving the installation stability of the auxiliary frame rod 4. A control mechanism 201 is fixedly connected to the side of the bottom support plate 2 facing the transmission mechanism 101, which is used to control the lifting and lowering action of the telescopic cylinder component 302 to realize the vibration function.
[0027] A partition plate 103 is fixedly connected to the side of the transmission frame 1 facing the bottom support plate 2. The bottom side wall of the partition plate 103 is fixedly connected to the outer side wall of the bottom support plate 2 for protection. A support frame 102 is fixedly connected to the side of the auxiliary frame rod 4 away from the bottom support plate 2. The bottom end of the support frame 102 is fixedly connected to the top end of the transmission frame 1 to improve the connection between the auxiliary frame rod 4 and the transmission frame 1. Two sets of opposite blocks 303 are integrally formed on the side of the lifting frame rod 3 away from the mounting plate 301. The inner side wall of the block 303 is flush with the side wall of the partition plate 103. A partition plate 304 is fixedly connected to the side of the block 303 facing the transmission frame 1 to prevent the precast mold from shifting during transmission.
[0028] In use, the equipment is started by the control mechanism 201, and the precast mold is introduced from the end of the transmission mechanism 101 near the auxiliary frame 4. The auxiliary frame 4 remains fixed and, in conjunction with the rotation of the transmission mechanism 101, the precast mold is smoothly transmitted to the bottom of the guide hopper 5 to complete the concrete pouring. After the pouring is completed, the precast mold continues to be transmitted to the corresponding position of the lifting frame 3. The control mechanism 201 controls the telescopic cylinder 302 to drive the lifting frame 3 to rise and fall, so as to vibrate and even out the recycled concrete in the precast mold and expel the internal air. Then the transmission mechanism 101 continues to drive the precast mold forward to complete the subsequent process. The entire transmission and vibration process is seamless, easy to operate, and effectively improves the forming quality of the precast components.
[0029] Example 3:
[0030] This embodiment includes the installation and assembly of the related structures of the guide hopper 5 and the discharge end piece 6, as well as the operation process of guiding and discharging materials, to ensure that the recycled concrete is injected into the precast mold evenly and stably, thereby improving the pouring effect, as detailed below: During installation, the guide hopper 5 is fixed to the top of the transmission frame 1, and a base frame 502 is fixedly connected to the side of the guide hopper 5 facing away from the crossbeam 902. Fixing frames 504 are fixedly connected to both sides of the bottom end of the base frame 502. The bottom end of the fixing frame 504 is fixedly connected to the top end of the transmission frame 1 to ensure that the guide hopper 5 is installed stably. An oil spraying mechanism 503 is fixedly connected to the side of the base frame 502 facing the transmission mechanism 101, which can spray oil on the inner wall of the precast mold before pouring to facilitate subsequent demolding.
[0031] The guide hopper 5 has two sets of discharge end pieces 6 fixedly connected to its outer wall on one side perpendicular to the bottom of the spraying mechanism 503, along its width direction. The two sets of discharge end pieces 6 are symmetrically arranged to ensure uniform material guidance. The side of the discharge end piece 6 opposite to the guide hopper 5 has an integrally formed sloping discharge guide plate 601, which facilitates the precise injection of concrete into the precast mold. The inner wall of the side of the discharge end piece 6 perpendicular to the discharge guide plate 601 is movably fitted with the discharge baffle 602, which is used to control the opening and closing of the discharge end piece 6.
[0032] A triangular block 603 is integrally formed on the side of the discharge baffle 602 away from the guide hopper 5. A limiting block 604 is integrally formed on the top of the discharge end piece 6 perpendicular to the side wall of the triangular block 603. The side of the triangular block 603 facing the limiting block 604 is rotatably connected to the limiting block 604, so that the discharge baffle 602 can rotate around the limiting block 604. A limiting block 605 is integrally formed on the top of the discharge end piece 6 perpendicular to the outer wall of the guide hopper 5. A telescopic cylinder 606 is rotatably connected on the side of the limiting block 605 away from the discharge end piece 605. An adapter 607 is fixedly connected on the side of the telescopic cylinder 606 away from the guide hopper 5. The triangular block 603 is rotatably inserted into the adapter 607 on the side wall of the adapter 607. The discharge baffle 602 is rotated by the extension and retraction of the telescopic cylinder 606, thereby realizing the discharge control. Inside the hopper 5, a guide rod 505 is rotatably mounted at the position corresponding to the discharge end piece 6. A guide motor 506 is fixedly connected to the side of the hopper 5 away from the guide rod 505. The rotating end of the guide motor 506 extends into the hopper 5 and is fixedly connected to the guide rod 505. It is used to agitate and quickly discharge the recycled concrete in the hopper 5 to prevent clumping.
[0033] In use, after recycled concrete is poured from the feeding hopper 7 into the guide hopper 5, the guide motor 506 is started, which drives the guide rotating rod 505 to rotate, stirring the recycled concrete in the guide hopper 5 to ensure that it is uniform and free of lumps. When the precast mold is transferred to the bottom of the discharge end piece 6, the telescopic cylinder part 606 is extended and retracted by the control mechanism 201, which drives the triangular block 603 to rotate around the limiting block 604, thereby driving the discharge baffle 602 to open. The recycled concrete in the guide hopper 5 is evenly injected into the precast mold through the discharge end piece 6 and the discharge guide plate 601. After the pouring is completed, the telescopic cylinder part 606 is reset, which drives the discharge baffle 602 to close and stop the discharge. The entire guiding and discharge process is controllable and easy to operate, ensuring uniform pouring and improving the molding quality of the precast parts.
[0034] Working principle of this invention: After the equipment is started, the feeding operation is completed first: the recycled concrete raw material is loaded into the feeding hopper 7, the traction device is connected to the U-shaped lifting rod 701, and the feeding hopper 7 is dragged to slide upward along the feeding frame 8. With the cooperation of the outer wheel 702 and the inner wheel 705, it is raised and lowered smoothly until the inner wheel 705 is engaged with the wheel plate 801. The feeding hopper 7 is slowly tilted to pour the raw material smoothly into the guide hopper 5. The frame formed by the feeding frame 8 and the support frame 9 ensures the stability of the feeding process.
[0035] After the raw materials enter the guide hopper 5, the guide motor 506 is started, driving the guide rotating rod 505 to rotate and agitate the raw materials to prevent clumping. At the same time, the control mechanism 201 starts the transmission mechanism 101 to introduce the precast mold from one side of the auxiliary support rod 4. The auxiliary support rod 4 is fixedly supported, and together with the transmission mechanism 101, the mold is smoothly transmitted to the bottom of the discharge end piece 6. The oil spraying mechanism 503 sprays oil on the inner wall of the mold to facilitate subsequent demolding. After the mold is in place, the telescopic cylinder part 2 606 is controlled to extend and retract, driving the triangular block 603 and the discharge baffle 602 to rotate and open. The raw materials in the guide hopper 5 are evenly injected into the mold through the discharge end piece 6 and the discharge guide plate 601. After casting, the transmission mechanism 101 transmits the mold to the lifting support rod 3 position, and the telescopic cylinder part 1 302 is controlled to drive the lifting support rod 3 to rise and fall, vibrating the raw materials in the mold evenly, expelling internal air, and ensuring molding quality.
[0036] After vibration is completed, the transmission mechanism 101 continues to drive the mold forward to complete the subsequent process. The stop block 303 and the partition plate can prevent the mold from shifting during transmission. The entire working process is controlled by the control mechanism 201.
[0037] All electrical components mentioned in this article are connected to an external main controller and 220V AC mains power, and the main controller can be a conventional known device such as a computer that can control it.
[0038] Finally, it should be noted that the above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A green recycled concrete precast component molding equipment, comprising a conveyor frame (1) and a guide hopper (5) disposed on the top of the conveyor frame (1), characterized in that: The transmission frame (1) is equipped with two or more transmission mechanisms (101) along its length. An auxiliary support rod (4) is provided on one side of the transmission mechanism (101) perpendicular to the bottom of the guide hopper (5). A lifting support rod (3) is provided on the side of the transmission mechanism (101) away from the auxiliary support rod (4). A mounting plate (301) is fixedly connected to the side of the lifting support rod (3) away from the guide hopper (5). Two or more telescopic cylinder parts (302) are fixedly connected at even intervals along the length of the bottom of the mounting plate (301). The guide hopper ( 5) A frame frame (501) is fixedly connected to the outer wall of the frame frame (501). A feeding frame (8) is provided on the side of the frame frame (501) away from the guide hopper (5). A feeding hopper (7) is slidably assembled on the side of the feeding frame (8) away from the frame frame (501). A support frame (9) is fixedly connected to the side of the frame frame (501) away from the feeding frame (8). An inverted L-shaped frame rod (901) is fixedly connected to the side of the support frame (9) away from the transmission frame (1). One end wall of the inverted L-shaped frame rod (901) is fixedly connected to the top side wall of the feeding frame (8).
2. The green recycled concrete precast component molding equipment according to claim 1, characterized in that: The telescopic cylinder component 1 (302) is fixedly connected to a bottom support plate (2) on the side away from the mounting plate (301); the auxiliary frame rod (4) is fixedly inserted with a fixing plate frame (401) on the side away from the transmission mechanism (101), and the bottom end of the auxiliary frame rod (4) is fixedly connected to the top end of the bottom support plate (2); the bottom support plate (2) is fixedly connected to a control mechanism (201) on the side facing the transmission mechanism (101).
3. The green recycled concrete precast component molding equipment according to claim 2, characterized in that: The transmission frame (1) is fixedly connected to a partition plate (103) on the side facing the bottom support plate (2), and the bottom side wall of the partition plate (103) is fixedly connected to the outer side wall of the bottom support plate (2); the auxiliary frame rod (4) is fixedly connected to a support frame (102) on the side away from the bottom support plate (2), and the bottom end of the support frame (102) is fixedly connected to the top end of the transmission frame (1).
4. The green recycled concrete precast component molding equipment according to claim 3, characterized in that: The lifting frame rod (3) has two sets of oppositely arranged blocks (303) integrally formed on the side away from the mounting plate (301). The inner side wall of the block (303) is flush with the side wall of the first partition plate (103), and the second partition plate (304) is fixedly connected to the side of the block (303) facing the transmission frame (1).
5. The green recycled concrete precast component molding equipment according to claim 1, characterized in that: The feeding hopper (7) is rotatably equipped with a U-shaped lifting rod (701) on the side away from the transmission frame (1). Both sides of the U-shaped lifting rod (701) are rotatably connected with round fasteners (703). The side of the round fasteners (703) facing the feeding hopper (7) is fixedly inserted into the feeding hopper (7). The feeding hopper (7) is fixedly connected with an outer wheel (702) perpendicular to the outer side wall of the round fasteners (703). The outer side wall of the outer wheel (702) is movably fitted with the feeding frame (8).
6. The green recycled concrete precast component molding equipment according to claim 1, characterized in that: The feeding rack (8) is fixedly connected to a roller plate (801) on the side facing the frame (501), and the feeding hopper (7) is fixedly connected to an installation component (704) on the side facing the roller plate (801); the inner wall of the installation component (704) is rotatably connected to an inner wheel (705), and the outer wall of the inner wheel (705) is rotatably attached to the inner wall of the roller plate (801).
7. The green recycled concrete precast component molding equipment according to claim 5, characterized in that: Two sets of crossbeams (902) are fixedly connected to the side of the inverted L-shaped frame rod (901) away from the feeding frame (8). Traction wheels (903) adapted for traction by U-shaped lifting rod (701) are fixedly connected to the center of the bottom end of the two sets of crossbeams (902). A base frame (502) is fixedly connected to the side of the guide hopper (5) away from the crossbeam rod (902). Fixing frames (504) are fixedly connected to both sides of the bottom end of the base frame (502). The bottom end of the fixing frame (504) is fixedly connected to the top end of the transmission frame (1). An oil spraying mechanism (503) is fixedly connected to the side of the base frame (502) facing the transmission mechanism (101).
8. The green recycled concrete precast component molding equipment according to claim 7, characterized in that: The guide hopper (5) is perpendicular to the bottom of the oil spraying mechanism (503) and has two sets of discharge end pieces (6) fixedly connected along its width direction. The two sets of discharge end pieces (6) are integrally formed with discharge guide plates (601) on the side away from the guide hopper (5), and the inner wall of the discharge end piece (6) perpendicular to the discharge guide plate (601) is movably fitted with the discharge baffle (602).
9. The green recycled concrete precast component molding equipment according to claim 8, characterized in that: The discharge baffle (602) has a triangular block (603) integrally formed on the side away from the guide hopper (5). The discharge end piece (6) has a limiting block one (604) integrally formed on the top of the side wall of the triangular block (603). The side of the triangular block (603) facing the limiting block one (604) is rotatably connected to the limiting block one (604). The top of the discharge end piece (6) has a limiting block two (605) integrally formed on the top of the outer wall of the guide hopper (5). The side of the limiting block two (605) away from the discharge end piece (6) is rotatably connected to a telescopic cylinder part two (606). The side of the telescopic cylinder part two (606) away from the guide hopper (5) is fixedly connected to an adapter (607). The side of the triangular block (603) facing the adapter (607) is rotatably inserted into the adapter (607).
10. The green recycled concrete precast component molding equipment according to claim 8, characterized in that: The guide hopper (5) is rotatably mounted with a guide rod (505) at the position corresponding to the discharge end piece (6). A guide motor (506) is fixedly connected to the side of the guide hopper (5) away from the guide rod (505). The rotating end of the guide motor (506) extends into the guide hopper (5) and is fixedly connected to the guide rod (505).