Intelligent material distributing machine for laminated slab production line
By designing a mixing and stirring component and a low-temperature heating component inside the aggregate bin on the composite slab production line, combined with a synchronous drive feeding mechanism, the problem of concrete setting in low-temperature environments was solved, achieving uniform concrete distribution and efficient production.
Patent Information
- Application Number
- CN202422887364.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-26
- Publication Date
- 2026-02-06
- Estimated Expiration
- 2034-11-26
AI Technical Summary
Concrete tends to harden easily in low-temperature environments, making it difficult to place and clean, a problem that current technologies have not been able to effectively solve.
An intelligent concrete placing machine was designed, comprising a material collection box, a mixing assembly, and a low-temperature heating assembly. It prevents concrete from hardening by mixing and heating, and achieves uniform material distribution by using a synchronous drive feeding mechanism.
It effectively prevents concrete from setting in low-temperature environments, ensures the smooth progress of the concrete placement process, avoids the cleaning difficulties after setting, and achieves efficient and uniform concrete placement.
Smart Images

Figure CN223877205U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the technical field of fabricated building, specifically, relate to an intelligent cloth machine for laminated slab production line. BACKGROUND
[0002] Fabricated building has the advantages of fast construction speed, good quality, energy saving and environmental protection, and becomes the development direction of current building industry low-carbon transformation and upgrading. Concrete laminated slab plays an important role in the fabricated building industry. The commonly used laminated slab structure can be divided into prestressed concrete laminated slab, profiled steel plate concrete laminated slab, steel bar truss concrete laminated slab and PK prestressed concrete laminated slab according to different prefabricated bottom plates.
[0003] In the Chinese patent with the application number CN216181544U, a concrete distributing machine is disclosed, which comprises: a track frame with a first track extending longitudinally along a first direction; a first car beam frame supported on the first track and controllably movable along the first track, and the movement of the distributing hopper in the first direction and the second direction is realized through the first car beam frame and the second car beam frame, so that the distributing hopper can be controlled to move in the first direction and the second direction during the distributing process to realize accurate distribution. However, in the case of low temperature, concrete is prone to condensation due to low temperature, which not only affects the distribution of concrete, but also makes it difficult to remove the condensed concrete attached to the distributing hopper.
[0004] In view of the problems in the related art, no effective solution has been proposed so far. INVENTION CONTENTS
[0005] In view of the deficiencies in the prior art, the utility model aims to provide an intelligent cloth machine for laminated slab production line.
[0006] In order to achieve the above-mentioned purpose, the utility model is realized through the following technical scheme, an intelligent cloth machine for laminated slab production line, comprising a material collecting box, an opening is arranged above the material collecting box, a mixing and stirring assembly is installed in the interior of the material collecting box, and a low-temperature prevention heating assembly extending to the outside of the four inner walls of the material collecting box is installed on the four inner walls of the material collecting box, a lower distributing assembly is arranged below the material collecting box, and the lower distributing assembly and the material collecting box are connected through a supporting side plate, a plurality of lower discharge ports are arranged at the bottom of the material collecting box, and the lower discharge ports are controlled through electromagnetic valves, a plurality of receiving ports matched with the lower discharge ports are arranged on the lower distributing assembly, and a synchronous driving feeding mechanism is connected to one end of the lower distributing assembly.
[0007] Preferably, the mixing and stirring assembly comprises a driving motor I fixed at one end of the outer wall of the aggregate tank, the output end of the driving motor I is connected with a driving shaft extending into the aggregate tank, the other end of the driving shaft is installed on the inner wall of the aggregate tank through a bearing I, a plurality of mounting sleeves are fixedly sleeved on the driving shaft, and four groups of stirring blades are uniformly installed on the mounting sleeves.
[0008] Preferably, the low-temperature-resistant heating assembly comprises a square supporting frame fixed on the inner wall of the aggregate tank, an installation cavity is arranged in the square supporting frame, an electric heating wire is arranged in the installation cavity, one end of the outer wall of the aggregate tank is provided with a power supply box, a power supply is installed in the power supply box, and the wiring end of the power supply is electrically connected with the electric heating wire through a power supply lead.
[0009] Preferably, the lower material distribution assembly comprises a lower material distribution tank, a plurality of sealing baffles I are fixedly installed on the inner wall of the lower material distribution tank, the lower material distribution tank is divided into a plurality of material temporary storage bins through the sealing baffles I, and arc-shaped flow guide plates are integrally connected to the inner wall of the material temporary storage bin on both sides.
[0010] Preferably, one end of the lower material distribution tank is symmetrically provided with an L-shaped positioning plate, the L-shaped positioning plate and the lower material distribution tank form a mounting clamping groove therebetween, a sealing baffle II for sealing the discharge end of the lower material distribution tank is inserted between the mounting clamping grooves, and an elastic sealing piece is bonded to the inner wall of the sealing baffle II.
[0011] Preferably, the synchronous driving and feeding mechanism comprises an outer box body fixed at one end of the lower material distribution tank, a driving motor II is installed on the outer wall of the outer box body, the output end of the driving motor II is connected with a driving toothed sprocket, a plurality of driven sprockets are arranged in the outer box body on one side of the driving toothed sprocket, and the driving toothed sprocket and the driven sprockets are connected through a transmission chain.
[0012] Preferably, one end of the driven sprocket is connected with a rotating shaft, the rotating shaft is installed on the inner wall of the outer box body through a bearing II, a conveying transmission shaft extending into the material temporary storage bin is installed at the center of the other end of the driving toothed sprocket and the driven sprockets, and a plurality of spiral conveying blades are arranged on the conveying transmission shaft.
[0013] The utility model provides a kind of intelligent material distributor for laminated slab production line, beneficial effect is as follows:
[0014] Through being equipped with the opening in the upper of the aggregate tank, for the delivery of the concrete material, the mixing and stirring assembly arranged in the aggregate tank continuously stirs the concrete material, prevents the problem of solidification in the static state, cooperates with the low-temperature prevention heating assembly, can heat the concrete when stirring, avoids the solidification in the low-temperature environment, opens the electromagnetic valve on the lower discharge port, and the concrete material enters the lower distribution assembly through the receiving port through the lower discharge port, and cooperates with the synchronous driving feeding mechanism to realize the discharge of the concrete material, at this time, the transmission mechanism of the production line drives the distribution mechanism to move above the formwork (not shown in the figure), thereby uniformly distributing the concrete on the formwork, the concrete material is continuously stirred to avoid the problem of solidification in the static state, and the low-temperature prevention heating assembly is cooperated to avoid the solidification in the low-temperature environment, and synchronous driving feeding is realized. BRIEF DESCRIPTION OF DRAWINGS
[0015] In order to more clearly illustrate the technical scheme in the embodiments of the present application or the prior art, the drawings needed to be used in the embodiments will be briefly introduced as follows. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor on the basis of these drawings.
[0016] Figure 1 It is a front view of an intelligent distribution machine for a laminated slab production line according to an embodiment of the present application.
[0017] Figure 2 It is a structural schematic view of a mixing and stirring assembly in an intelligent distribution machine for a laminated slab production line according to an embodiment of the present application.
[0018] Figure 3 It is a structural schematic view of a low-temperature prevention heating assembly in an intelligent distribution machine for a laminated slab production line according to an embodiment of the present application.
[0019] Figure 4 It is a structural schematic view of a lower distribution assembly in an intelligent distribution machine for a laminated slab production line according to an embodiment of the present application.
[0020] Figure 5 It is a structural schematic view of a synchronous driving feeding mechanism in an intelligent distribution machine for a laminated slab production line according to an embodiment of the present application.
[0021] In the drawings:
[0022] 1, aggregate tank; 2, mixing and stirring assembly; 3, low temperature resistant heating assembly; 4, lower material distribution assembly; 5, support side plate; 6, material receiving port; 7, lower discharge port; 8, synchronous drive feeding mechanism; 9, drive motor one; 10, drive shaft; 11, bearing one; 12, mounting sleeve; 13, stirring blade; 14, square support frame; 15, mounting cavity; 16, electric heating wire; 17, power supply wire; 18, power supply box; 19, lower material distribution box; 20, sealing baffle one; 21, material temporary storage bin; 22, arc-shaped flow guide plate; 23, L-shaped positioning plate; 24, mounting clamping groove; 25, sealing baffle two; 26, outer box body; 27, drive motor two; 28, driving sprocket; 29, driven sprocket; 30, transmission chain; 31, rotating shaft; 32, bearing two; 33, conveying transmission shaft. DETAILED DESCRIPTION
[0023] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of the present application.
[0024] Please refer to Figures 1-5 The present application provides a kind of for laminated slab production line's intelligent material distributor, including aggregate tank 1, the upper of the aggregate tank 1 is equipped with opening, the inside of the aggregate tank 1 is equipped with mixing and stirring assembly 2, and the four inner walls of the aggregate tank 1 are equipped with low temperature resistant heating assembly 3 extending to its outside, by being equipped with opening in the upper of aggregate tank 1, for the pouring of concrete material, mixing and stirring assembly 2 in the aggregate tank 1 is continuously stirred to concrete material, prevent it from solidification in the state of rest, cooperate with the inside low temperature resistant heating assembly 3, can heat concrete when stirring, avoid its solidification in low temperature environment, the lower of the aggregate tank 1 is equipped with lower material distribution assembly 4, and the lower material distribution assembly 4 is connected with the aggregate tank 1 by support side plate 5 installation, the bottom of the aggregate tank 1 is equipped with several lower discharge ports 7, and the lower discharge port 7 is controlled by electromagnetic valve, the lower material distribution assembly 4 is equipped with several material receiving ports 6 matched with the lower discharge port 7, one end of the lower material distribution assembly 4 is connected with synchronous drive feeding mechanism 8, open electromagnetic valve on lower discharge port 7, concrete material passes through lower discharge port and enters lower material distribution assembly 4 through material receiving port 6, match the effect of synchronous drive feeding mechanism 8 to realize the discharge of concrete material, at this time, the transmission mechanism of production line drives lower material distribution assembly 4 to move above the formwork (not shown in the figure), so that concrete is evenly distributed to the formwork.
[0025] In an embodiment, please refer to the attached drawings Figure 2 As shown in the drawings, the mixing and stirring assembly 2 comprises a driving motor I 9 fixed on one end of the outer wall of the aggregate tank 1, the output end of the driving motor I 9 is connected with a driving shaft 10 extending into the aggregate tank 1, the other end of the driving shaft 10 is installed on the inner wall of the aggregate tank 1 through a bearing I 11, a plurality of mounting sleeves 12 are fixedly sleeved on the driving shaft 10, and four groups of stirring blades 13 are uniformly installed on the mounting sleeves 12. The driving motor I 9 is arranged to drive the driving shaft 10 to rotate, so that the mounting sleeves 12 and the stirring blades 13 installed on the driving shaft 10 rotate, realizing the stirring effect of the concrete material and preventing it from solidifying in a static state.
[0026] In an embodiment, please refer to the attached drawings Figure 3 As shown in the drawings, the low-temperature-resistant heating assembly 3 comprises a square support frame 14 fixed on the inner wall of the aggregate tank 1, an installation cavity 15 is arranged in the square support frame 14, an electric heating wire 16 is arranged in the installation cavity 15, an electric power box 18 is installed on one end of the outer wall of the aggregate tank 1, a power supply is installed in the electric power box 18, and the wiring end of the power supply is electrically connected with the electric heating wire 16 through a power supply lead 17. The power supply arranged in the electric power box 18 cooperates with the power supply lead 17 to supply power to the electric heating wire 16, the heat generated by the electric heating wire 16 is transmitted to the concrete material in the aggregate tank 1 through the square support frame 14 with good heat conductivity, realizing the heating effect of the concrete material and avoiding its solidification in a low-temperature environment.
[0027] In an embodiment, please refer to the attached drawings Figure 4 As shown in the drawings, the lower material distribution assembly 4 comprises a lower material distribution box 19, a plurality of sealing baffles I 20 are fixedly installed on the inner wall of the lower material distribution box 19, the lower material distribution box 19 is divided into a plurality of material temporary storage bins 21 through the sealing baffles I 20, arc-shaped flow guides 22 are integrally connected on both sides of the inner wall of the material temporary storage bins 21, L-shaped positioning plates 23 are symmetrically arranged at one end of the lower material distribution box 19, mounting clamping grooves 24 are formed between the L-shaped positioning plates 23 and the lower material distribution box 19, sealing baffles II 25 for sealing the discharge end of the lower material distribution box 19 are inserted between the mounting clamping grooves 24, and elastic sealing pieces are bonded on the inner wall of the sealing baffles II 25. A plurality of material temporary storage bins 21 are formed by arranging a plurality of sealing baffles 20 in the lower material distribution box 19, the concrete material entering the lower material distribution assembly 4 through the receiving port 6 falls into the corresponding material temporary storage bin 21, and when the material is distributed by using the synchronous driving material feeding mechanism 8 as power, the sealing baffles II 25 clamped between the mounting clamping grooves 24 are opened, so that the concrete material is discharged from the outlet thereof, realizing the discharging work.
[0028] In an embodiment, please refer to the attached drawings Figure 5As shown, the synchronous drive feeding mechanism 8 comprises an outer box body 26 fixed at one end of the lower cloth box 19, a driving motor 27 is installed on the outer wall of the outer box body 26, the output end of the driving motor 27 is connected with a driving toothed chain wheel 28, a plurality of driven chain wheels 29 are arranged on one side of the driving toothed chain wheel 28 in the outer box body 26, and the driving toothed chain wheel 28 and the driven chain wheel 29 are connected through a transmission chain 30, one end of the driven chain wheel 29 is connected with a rotating shaft 31, the rotating shaft 31 is installed on the inner wall of the outer box body 26 through a bearing 32, the other end center of the driving toothed chain wheel 28 and the driven chain wheel 29 are both installed with a conveying transmission shaft 33 extending into the material temporary storage bin 21, and a plurality of spiral conveying blades are arranged on the conveying transmission shaft 33. The driving motor 27 is arranged to drive the driving toothed chain wheel 28 to rotate, and the synchronous rotation of the driven chain wheel 29 is realized by cooperating with the transmission chain 30. When the driven chain wheel 29 and the driving toothed chain wheel 28 rotate, the conveying transmission shaft 33 installed at the center thereof is driven to rotate, so that the spiral conveying blades are rotated to realize the discharging work of the concrete material.
[0029] In actual application, the opening is arranged above the aggregate box 1 for the pouring of the concrete material, the mixing and stirring assembly 2 arranged in the aggregate box 1 continuously stirs the concrete material to prevent the problem of solidification in the static state, and the low-temperature prevention heating assembly 3 is matched to heat the concrete during stirring to avoid the solidification of the concrete in the low-temperature environment. The electromagnetic valve on the lower discharge port 7 is opened, the concrete material passes through the lower discharge port and enters the lower cloth assembly 4 through the receiving port 6, and the synchronous drive feeding mechanism 8 is matched to realize the discharging of the concrete material. At this time, the transmission mechanism of the production line drives the lower cloth assembly 4 to move above the formwork (not shown in the figure), so that the concrete is uniformly distributed on the formwork. The concrete material is continuously stirred to avoid the problem of solidification in the static state, and the low-temperature prevention heating assembly 3 is matched to avoid the solidification of the concrete in the low-temperature environment, and the synchronous drive feeding is realized for distribution.
[0030] Although the present specification is described in terms of embodiments, not every embodiment contains only one independent technical solution, and the description manner of the specification is only for the sake of clarity, and those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. An intelligent spreader for a laminated board production line, characterized by, The utility model provides a low temperature resistant material mixing and feeding device, which comprises a material collecting box (1) provided with an opening in the upper portion, a mixing and stirring assembly (2) installed in the interior of the material collecting box (1), and a low temperature resistant heating assembly (3) installed on the four inner walls of the material collecting box (1) and extending to the outside, a lower material distributing assembly (4) arranged below the material collecting box (1) and connected with the material collecting box (1) through a supporting side plate (5), a plurality of lower discharge ports (7) arranged on the bottom of the material collecting box (1) and controlled by electromagnetic valves, a plurality of material receiving ports (6) arranged on the lower material distributing assembly (4) and matched with the lower discharge ports (7), and a synchronous driving material feeding mechanism (8) connected to one end of the lower material distributing assembly (4).
2. The intelligent spreader for a laminated board production line according to claim 1, characterized in that, The mixing and stirring assembly (2) comprises a driving motor (9) fixed to one end of the outer wall of the material collecting box (1), an output end of the driving motor (9) is connected with a driving shaft (10) extending into the interior of the material collecting box (1), the other end of the driving shaft (10) is installed on the inner wall of the material collecting box (1) through a bearing (11), and a plurality of mounting sleeves (12) are fixedly sleeved on the driving shaft (10).
3. The intelligent spreader for a laminated board production line according to claim 2, characterized in that, The low temperature resistant heating assembly (3) comprises a square supporting frame (14) fixed to the inner wall of the material collecting box (1), an installation cavity (15) is arranged in the square supporting frame (14), an electric heating wire (16) is arranged in the installation cavity (15), a power supply box (18) is arranged at one end of the outer wall of the material collecting box (1), a power supply is installed in the power supply box (18), and the wiring end of the power supply is electrically connected with the electric heating wire (16) through a power supply lead (17).
4. The intelligent spreader for a laminated board production line according to claim 3, characterized in that, The lower material distributing assembly (4) comprises a lower material distributing box (19), a plurality of sealing baffles (20) are fixedly installed on the inner wall of the lower material distributing box (19), the lower material distributing box (19) is divided into a plurality of material temporary storage bins (21) through the sealing baffles (20), and arc-shaped flow guide plates (22) are integrally connected to the inner wall of the material temporary storage bin (21) on both sides.
5. The intelligent spreader for a laminated board production line according to claim 4, characterized in that, One end of the lower material distributing box (19) is symmetrically provided with an L-shaped positioning plate (23), an installation clamping groove (24) is formed between the L-shaped positioning plate (23) and the lower material distributing box (19), a sealing baffle (25) used for sealing the discharge end of the lower material distributing box (19) is inserted between the installation clamping grooves (24), and an elastic sealing piece is bonded to the inner wall of the sealing baffle (25).
6. An intelligent spreader for a laminated board production line as claimed in claim 5, characterized in that, The synchronous drive feeding mechanism (8) comprises an outer box (26) fixed at one end of the lower cloth box (19), a driving motor two (27) is installed on the outer wall of the outer box (26), the output end of the driving motor two (27) is connected with a driving toothed chain wheel (28), a plurality of driven sprockets (29) are arranged on one side of the driving toothed chain wheel (28) in the outer box (26), and the driving toothed chain wheel (28) and the driven sprockets (29) are connected through a transmission chain (30).
7. The intelligent spreader for a laminated veneer lumber production line according to claim 6, wherein, One end of the driven sprocket (29) is connected with a rotating shaft (31), the rotating shaft (31) is installed on the inner wall of the outer box (26) through a bearing two (32), the center of the other end of the driving toothed chain wheel (28) and the driven sprocket (29) is installed with a conveying transmission shaft (33) extending into the material temporary storage bin (21), and a plurality of spiral conveying blades are arranged on the conveying transmission shaft (33).
Citation Information
Patent Citations
Concrete spreader
CN216181544U