Building board mixed slurry production system

By combining the premixing device and the central tank with the cleaning components, the problems of mixing uniformity and stability in the production system of building board slurry were solved, and the uniform mixing of slurry and the improvement of stirring efficiency were achieved.

CN223961482UActive Publication Date: 2026-03-03GUANGDONG SOBEN GREEN NEW MATERIAL CO LTD
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Patent Information

Application Number
CN202423039938.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-10
Publication Date
2026-03-03
Estimated Expiration
2034-12-10

AI Technical Summary

Technical Problem

Existing building material mixing slurry production systems are inadequate in terms of mixing uniformity and stability, and the slurry tends to stick to the mixing mechanism after mixing, resulting in waste.

Method used

The design employs a premixing device and a central tank, combined with a water supply system, lime feeding line, crystal slurry feeding line, and silica slurry feeding line, to achieve preliminary mixing and uniformity control of raw materials. The cleaning component cleans the slurry on the mixing column to prevent waste.

Benefits of technology

This ensures the uniformity and stability of the mixed slurry, avoids slurry waste, and improves mixing efficiency and equipment lifespan.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a building board mixed slurry production system, which relates to the technical field of mixed slurry production, and comprises a premixing device, a central tank, a water supply system for supplying materials to the premixing device, a lime feeding line, a crystal slurry feeding line and a silicon mortar feeding line, and water required by production is provided through the water supply system. The lime feeding line, the crystal mush feeding line and the silicon mortar feeding line provide raw materials such as lime, crystal mush and silicon mortar respectively. The mineral fiber feeding line, the cement feeding line and the wood pulp feeding line provide mineral fibers, cement, wood pulp and other auxiliary raw materials for the center tank. Raw materials such as lime, crystal mush and silicon mortar are preliminarily mixed in the premixing device, and after being mixed, the raw materials such as the lime, the crystal mush and the silicon mortar enter the central tank through the discharging end of the premixing device. And in the central tank, mineral fibers, cement, wood pulp and other auxiliary raw materials are further mixed, so that the uniformity and stability of the mixed slurry are ensured.
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Description

Technical Field

[0001] This utility model relates to the field of mixed slurry production technology, specifically to a mixed slurry production system for building panels. Background Technology

[0002] With the rapid development of the construction industry, the requirements for building materials are constantly increasing. Building panels, as an indispensable material in construction, directly affect the overall quality and service life of buildings. Building panel mortar is typically composed of a mixture of various raw materials, including cement, aggregates, and admixtures. These raw materials are precisely measured and mixed to form a mortar with specific properties, used in the production of building panels. The performance of the mortar directly affects the strength and durability of the building panels.

[0003] Existing production systems for building material slurry typically store the necessary raw materials, such as cement, gypsum, aggregates (like sand and gravel), and additives (like cellulose ethers, water-retaining agents, and water-reducing agents), in designated warehouses or silos, ensuring their dryness, moisture protection, and contamination prevention. Each raw material is then precisely metered according to the production formula. The metered raw materials are then proportioned according to the formula and mixed into a homogeneous mixture. A suitable mixing device is selected, the proportioned raw material mixture is poured into the mixing equipment, and the agitator is started to mix and stir, ultimately yielding a slurry suitable for producing building materials.

[0004] However, existing technologies have limitations in raw material mixing. Existing technologies typically involve simply placing multiple raw materials together for mixing, which can be a rather simplistic approach. Furthermore, existing technologies struggle to ensure the uniformity and stability of the mixed slurry. Moreover, when mixing the slurry using a stirring mechanism, the fact that the slurry will stick to the mechanism after mixing is not considered, resulting in waste. Utility Model Content

[0005] To address the aforementioned issues, a production system for building board mixing slurry is provided. By incorporating a premixing device, the technical problem of ensuring uniformity and stability of the mixed slurry during mixing is resolved.

[0006] To address the problems of existing technologies, this utility model provides a building board mixed slurry production system, including a premixing device, a central tank, a water supply system for supplying materials to the premixing device, a lime feeding line, a crystal slurry feeding line, and a silica mortar feeding line. The discharge end of the premixing device is connected to the central tank. The building board mixed slurry production system also includes a mineral fiber feeding line, a cement feeding line, and a wood pulp feeding line for supplying materials to the central tank.

[0007] Preferably, the water supply system includes a sewage tower, a clear water tower, an industrial wastewater collection tank, and a clear water tank; the sewage tower is connected to the industrial wastewater collection tank via a pipeline, the industrial wastewater collection tank is connected to a filter tank via a one-way valve, the filter tank is connected to the clear water tank via a one-way valve, and the clear water tank is connected to the clear water tower via a one-way valve.

[0008] Preferably, the crystal slurry feeding line includes a reactor and a crystal slurry storage tank; the discharge end of the reactor is connected to the crystal slurry storage tank.

[0009] Preferably, the silica sand slurry feeding line includes a ball mill and a silica sand storage tank; the discharge end of the ball mill is connected to the silica sand storage tank.

[0010] Preferably, the premixing device includes a base; a rectangular frame is provided at the bottom of the base, a movable seat is movably mounted on the rectangular frame, a vertical adjustment component for driving the movable seat to move is provided inside the rectangular frame, a movable block is movably mounted on the movable seat, a horizontal adjustment component for driving the movable block to move is provided inside the movable seat, a mounting plate is provided at the top of the movable block, a first motor is provided at the top of the mounting plate, a stirring shaft is provided at the output end of the first motor, a stirring block is provided at the bottom of the stirring shaft, a stirring column is provided at the bottom of the stirring block, and a cleaning assembly is also provided on the stirring shaft. The cleaning assembly includes a cleaning ring for cleaning the slurry adhering to the outside of the stirring column and an axial drive component for driving the cleaning ring to move.

[0011] Preferably, the axial drive component includes a turntable; the turntable is slidably disposed outside the stirring shaft, and the moving block is further provided with a threaded drive component for driving the turntable to move. A limit block is also provided on the outer side of the stirring shaft, and a limit groove is provided on the turntable for the limit block to move. A connecting rod is provided at the bottom of the turntable, a connecting block is provided at one end of the connecting rod, a connecting plate is provided on one side of the connecting block, and a connecting plate is provided on the outer side of the connecting plate. The connecting plate is connected to the cleaning ring.

[0012] Preferably, an extension block is provided on the outer side of the connecting plate, and the extension block has a through-hole for the connecting rod to move.

[0013] Preferably, the threaded drive component includes a mounting bracket; the mounting bracket is disposed on one side of the movable block, a first threaded rod is vertically disposed inside the mounting bracket, a second motor is disposed on the top of the mounting bracket, the output end of the second motor is connected to the first threaded rod, a first drive block is threadedly connected to the first threaded rod, a clamping plate is disposed on one side of the first drive block, a limit slider is disposed on the inner side of the clamping plate, and a limit groove for the limit slider to move is provided on the turntable.

[0014] Preferably, the vertical adjustment component includes a second threaded rod, a third motor, and a second drive block; the second threaded rod is vertically disposed within a rectangular frame; the third motor is disposed at the bottom of the rectangular frame, and the output end of the third motor is connected to the second threaded rod; the second drive block is threadedly connected to the outside of the second threaded rod, and the second drive block is connected to a movable base.

[0015] Preferably, the horizontal adjustment component includes a third threaded rod and a fourth motor; the third threaded rod is horizontally disposed inside the movable seat; the fourth motor is disposed on one side of the movable seat, the output end of the fourth motor is connected to the third threaded rod, and the movable block is threadedly connected to the outside of the third threaded rod.

[0016] The advantages of this utility model compared to the prior art are:

[0017] 1. The water required for production is supplied through a water supply system. The lime feeding line, crystal slurry feeding line, and silica mortar feeding line supply raw materials such as lime, crystal slurry, and silica mortar, respectively. The mineral fiber feeding line, cement feeding line, and wood pulp feeding line supply auxiliary raw materials such as mineral fiber, cement, and wood pulp to the central tank. The lime, crystal slurry, and silica mortar raw materials are initially mixed in a premixing unit. After mixing, they enter the central tank through the outlet of the premixing unit. In the central tank, they are further mixed with the auxiliary raw materials such as mineral fiber, cement, and wood pulp to form a uniform building board slurry, thereby ensuring the uniformity and stability of the slurry.

[0018] 2. By activating the threaded drive component, the turntable is driven to slide on the stirring shaft. The movement of the turntable drives the connecting plate to move via the connecting rod. As the connecting plate moves, the connecting plate is moved, which in turn drives the cleaning ring to move, causing the cleaning ring to clean along the outside of the stirring column, scraping off the slurry adhering to the stirring column. This avoids slurry waste and prevents slurry accumulation that could lead to decreased stirring efficiency or damage to the stirring column. Attached Figure Description

[0019] Figure 1 This is a process flow diagram of a building board mixing slurry production system.

[0020] Figure 2 A three-dimensional diagram of a building board mixing slurry production system Figure 1 .

[0021] Figure 3 A three-dimensional diagram of a building board mixing slurry production system Figure 2 .

[0022] Figure 4 This is a three-dimensional diagram of a cleaning ring, turntable, and connecting rod in a building material mixing slurry production system.

[0023] Figure 5 This is a three-dimensional view of a movable seat, movable block, and mounting frame in a building board mixing slurry production system.

[0024] Figure 6 This is a three-dimensional view of a rectangular frame in a building material mixing slurry production system.

[0025] The diagram is labeled as follows: S1, Water supply system; S2, Lime feeding line; S3, Crystal slurry feeding line; S4, Silica mortar feeding line; S5, Mineral fiber feeding line; S6, Cement feeding line; S7, Wood pulp feeding line; 1, Base; 2, Rectangular frame; 21, Second threaded rod; 22, Third motor; 23, Second drive block; 24, Smooth rod; 25, Auxiliary block; 3, Moving seat; 31, Third threaded rod; 32, Fourth motor; 4, Moving block; 5, Mounting plate. 6. First motor; 7. Stirring shaft; 8. Stirring block; 9. Stirring column; 10. Cleaning assembly; 101. Cleaning ring; 102. Turntable; 103. Limiting block; 104. Connecting rod; 105. Connecting block; 106. Connecting disc; 107. Connecting plate; 108. Extension block; 109. Limiting groove; 1010. Mounting bracket; 1011. First threaded rod; 1012. Second motor; 1013. First drive block; 1014. Clamping plate. Detailed Implementation

[0026] To further understand the features, technical means, and specific objectives and functions achieved by this utility model, the following detailed description of this utility model is provided in conjunction with the accompanying drawings and specific embodiments.

[0027] See Figures 1 to 6 As shown, this utility model provides a building board mixed slurry production system, including a premixing device, a central tank, a water supply system S1 for supplying materials to the premixing device, a lime feeding line S2, a crystal slurry feeding line S3, and a silica mortar feeding line S4. The discharge end of the premixing device is connected to the central tank. The building board mixed slurry production system also includes a mineral fiber feeding line S5, a cement feeding line S6, and a wood pulp feeding line S7 for supplying materials to the central tank.

[0028] Water for production is supplied via water supply system S1. Lime feeding line S2, crystal slurry feeding line S3, and silica mortar feeding line S4 supply raw materials such as lime, crystal slurry, and silica mortar, respectively. Mineral fiber feeding line S5, cement feeding line S6, and wood pulp feeding line S7 supply auxiliary raw materials such as mineral fiber, cement, and wood pulp to the central tank. The lime, crystal slurry, and silica mortar are initially mixed in the premixing unit. After mixing, they enter the central tank through the outlet of the premixing unit. In the central tank, they are further mixed with the auxiliary raw materials such as mineral fiber, cement, and wood pulp to form a uniform building board slurry, thus ensuring the uniformity and stability of the slurry.

[0029] The lime feeding line S2 obtains lime from the lime storage tank and feeds it into the premixing unit after precise metering.

[0030] The mineral fiber feeding line S5 feeds mineral fibers into a central tank.

[0031] The cement feeding line S6 receives cement from the cement storage tank, accurately measures the cement, and then feeds it into the central tank.

[0032] The wood pulp feeding line S7 pre-treats the wood pulp raw materials through a shredder to ensure the fineness of the pulp. The pre-treated pulp is then finely ground in a grinder to further improve its fineness. The processed pulp is then sent to a pulp storage tank for storage. When needed, the pulp is precisely metered and added to the central tank.

[0033] See Figure 1 As shown, the water supply system S1 includes a sewage tower, a clear water tower, an industrial sewage collection tank, and a clear water tank. The sewage tower is connected to the industrial sewage collection tank through a pipeline. The industrial sewage collection tank is connected to the filter tank through a one-way valve. The filter tank is connected to the clear water tank through a one-way valve. The clear water tank is connected to the clear water tower through a one-way valve.

[0034] Wastewater generated during production is collected in a wastewater treatment tower and then flows into an industrial wastewater collection tank. From there, the wastewater is conveyed to a filtration tank via a one-way valve. In the filtration tank, additives are added to improve water quality or remove certain pollutants. An air flotation reaction removes grease and suspended solids, and finally, a pressure filtration process removes solid particles, forming sludge, which is collected by a sludge collection system. The treated wastewater is then transported to a clear water tank, and finally from there to a clear water tower. When needed, the wastewater is fed into a premixing unit via the clear water tower.

[0035] See Figure 1 As shown, the crystal slurry feeding line S3 includes a reactor and a crystal slurry storage tank; the discharge end of the reactor is connected to the crystal slurry storage tank.

[0036] By precisely metering and batching the raw materials for the crystal slurry, the materials are then processed in a reactor. After processing in the reactor, crystal slurry is generated. The generated crystal slurry is then transferred to a crystal slurry storage tank for later use. When crystal slurry is needed, it is transferred from the crystal slurry storage tank to the premixing unit.

[0037] See Figure 1 As shown, the silica sand slurry feeding line S4 includes a ball mill and a silica sand storage tank; the discharge end of the ball mill is connected to the silica sand storage tank.

[0038] The silica sand raw material is ground in a ball mill to separate silica from impurities as much as possible, achieving a selectable particle size. The ground silica sand is then stored in a silica sand storage tank, and when needed, it is added to the premixing unit through the silica sand storage tank.

[0039] See Figures 2 to 5 As shown, the premixing device includes a base 1, a rectangular frame 2 at the bottom of the base 1, a movable seat 3 movably mounted on the rectangular frame 2, a vertical adjustment component for driving the movable seat 3 to move inside the rectangular frame 2, a movable block 4 movably mounted on the movable seat 3, a horizontal adjustment component for driving the movable block 4 to move inside the movable seat 3, a mounting plate 5 at the top of the movable block 4, a first motor 6 at the top of the mounting plate 5, a stirring shaft 7 at the output end of the first motor 6, a stirring block 8 at the bottom of the stirring shaft 7, a stirring column 9 at the bottom of the stirring block 8, and a cleaning assembly 10 on the stirring shaft 7. The cleaning assembly 10 includes a cleaning ring 101 for cleaning the slurry adhering to the outside of the stirring column 9 and an axial drive component for driving the cleaning ring 101 to move.

[0040] A square or round premixing tank with an open top is fixed to the base 1. According to production needs, the vertical adjustment component drives the moving seat 3 to move vertically on the rectangular frame 2, adjusting the stirring shaft 7, the stirring blocks 8 on the stirring shaft 7, and the stirring column 9 to a suitable stirring height. Simultaneously, the horizontal adjustment component drives the moving block 4 to move horizontally on the moving seat 3, adjusting the horizontal position of the stirring shaft 7. The first motor 6 at the top of the mounting plate 5 is activated, and its output drives the stirring shaft 7 to rotate. The rotation of the stirring shaft 7 causes the stirring blocks 8 and the stirring column 9 to rotate together, thoroughly mixing the slurry. After mixing, slurry may adhere to the outside of the stirring column 9. At this time, the axial drive component in the cleaning assembly 10 is activated, driving the cleaning ring 101 to move axially along the stirring shaft 7. The cleaning ring 101 makes close contact with the outside of the stirring column 9, scraping off the slurry adhering to the stirring column 9, avoiding slurry waste and preventing slurry accumulation that could lead to decreased mixing efficiency or damage to the stirring column 9.

[0041] See Figures 2 to 5 As shown, the axial drive component includes a turntable 102; the turntable 102 is slidably disposed outside the stirring shaft 7, and the moving block 4 is also provided with a threaded drive component for driving the turntable 102 to move. A limit block 103 is also provided on the outer side of the stirring shaft 7. A limit groove for the limit block 103 to move is provided on the turntable 102. A connecting rod 104 is provided at the bottom of the turntable 102. A connecting block 105 is provided at one end of the connecting rod 104. A connecting plate 106 is provided on one side of the connecting block 105. A connecting plate 107 is provided on the outer side of the connecting plate 106. The connecting plate 107 is connected to the cleaning ring 101.

[0042] When cleaning of the mixing column 9 is required, the threaded drive component starts working, driving the turntable 102 to slide on the mixing shaft 7. The movement of the turntable 102 drives the connecting plate 106 to move via the connecting rod 104. As the connecting plate 106 moves, the connecting plate 107 is driven, which in turn drives the cleaning ring 101 to move, causing the cleaning ring 101 to clean along the outside of the mixing column 9, scraping off the slurry adhering to the mixing column 9, avoiding slurry waste and preventing slurry accumulation that could lead to decreased mixing efficiency or damage to the mixing column 9.

[0043] See Figure 4 As shown, an extension block 108 is provided on the outer side of the connecting plate 106, and an opening is provided on the extension block 108 for the connecting rod 104 to move.

[0044] When the turntable 102 slides on the stirring shaft 7 and drives the connecting rod 104 to move, the connecting rod 104 will move within the through hole of the extension block 108. The through hole improves the stability of the movement of the connecting rod 104.

[0045] See Figure 5 As shown, the threaded drive component includes a mounting bracket 1010; the mounting bracket 1010 is disposed on one side of the movable block 4, a first threaded rod 1011 is vertically disposed inside the mounting bracket 1010, a second motor 1012 is disposed on the top of the mounting bracket 1010, the output end of the second motor 1012 is connected to the first threaded rod 1011, a first drive block 1013 is threadedly connected to the first threaded rod 1011, a clamping plate 1014 is disposed on one side of the first drive block 1013, a limit slider is disposed on the inner side of the clamping plate 1014, and a limit groove 109 for the limit slider to move is provided on the turntable 102.

[0046] When the turntable 102 needs to be moved, the second motor 1012 is activated. The output of the second motor 1012 drives the first threaded rod 1011 to rotate. Since the first drive block 1013 is threadedly connected to the first threaded rod 1011, the first drive block 1013 will move axially along the first threaded rod 1011 as the first threaded rod 1011 rotates. The movement of the first drive block 1013 drives the clamping plate 1014 to move. Since the turntable 102 is connected to the limiting slide groove 109 through the limiting slider on the clamping plate 1014, when the clamping plate 1014 drives the turntable 102 to move, it will not affect the rotation of the turntable 102, thereby achieving the effect of driving the cleaning ring 101 to move axially along the stirring shaft 7.

[0047] See Figure 6As shown, the vertical adjustment component includes a second threaded rod 21, a third motor 22, and a second drive block 23; the second threaded rod 21 is vertically arranged inside the rectangular frame 2; the third motor 22 is arranged at the bottom of the rectangular frame 2, and the output end of the third motor 22 is connected to the second threaded rod 21; the second drive block 23 is threadedly connected to the outside of the second threaded rod 21, and the second drive block 23 is connected to the movable seat 3.

[0048] When the vertical position of the stirring column 9 needs to be adjusted, the third motor 22 is started, and the output end of the third motor 22 drives the second threaded rod 21 to rotate. Since the second drive block 23 is threadedly connected to the second threaded rod 21, the second drive block 23 will move along the rotation axis of the second threaded rod 21 as the second threaded rod 21 rotates. The movement of the second drive block 23 causes the movable seat 3 connected to the second drive block 23 to move together. The movement of the movable seat 3 then drives the stirring column 9 to move vertically to the desired position.

[0049] See Figure 6 As shown, a smooth rod 24 is provided on both sides of the second threaded rod 21 inside the rectangular frame 2. An auxiliary block 25 is slidably provided on the smooth rod 24. One end of the auxiliary block 25 is connected to the movable seat 3, and one side of the auxiliary block 25 is connected to one side of the second drive block 23.

[0050] When the second threaded rod 21 drives the second drive block 23 to move, since one side of the auxiliary block 25 is connected to the second drive block 23, the movement of the second drive block 23 will drive the auxiliary block 25 to move together, and the auxiliary block 25 will slide on the light rod 24, providing additional stability and guidance for the movement of the moving seat 3 and the second drive block 23.

[0051] See Figure 4 As shown, the horizontal adjustment component includes a third threaded rod 31 and a fourth motor 32; the third threaded rod is horizontally disposed inside the movable seat 3; the fourth motor 32 is disposed on one side of the movable seat 3, the output end of the fourth motor 32 is connected to the third threaded rod 31, and the movable block 4 is threadedly connected to the outside of the third threaded rod 31.

[0052] When it is necessary to adjust the horizontal position of the stirring column 9, the fourth motor 32 is started, and the output end of the fourth motor 32 drives the third threaded rod 31 to rotate. Since the moving block 4 is threadedly connected to the third threaded rod 31, the moving block 4 will move along the axial direction of the third threaded rod 31 as the third threaded rod 31 rotates. The movement of the moving block 4 thereby drives the stirring column 9 to move horizontally to the desired position.

[0053] Water for production is supplied via water supply system S1. Lime feeding line S2, crystal slurry feeding line S3, and silica mortar feeding line S4 supply raw materials such as lime, crystal slurry, and silica mortar, respectively. Mineral fiber feeding line S5, cement feeding line S6, and wood pulp feeding line S7 supply auxiliary raw materials such as mineral fiber, cement, and wood pulp to the central tank. Lime, crystal slurry, and silica mortar are placed into a square or round premixing tank with an opening at the top. The premixing tank is fixed to the base 1. According to production needs, the vertical adjustment component drives the moving seat 3 to move vertically on the rectangular frame 2, adjusting the mixing shaft 7 and the mixing blocks 8 and mixing column 9 on the mixing shaft 7 to a suitable mixing height. Simultaneously, the horizontal adjustment component drives the moving block 4 to move horizontally on the moving seat 3, adjusting the horizontal position of the mixing column 9. The first motor 6 at the top of the mounting plate 5 is started, and the output of the first motor 6 drives the mixing shaft 7 to rotate. The rotation of the mixing shaft 7 causes the mixing blocks 8 and mixing column 9 to rotate together, thoroughly mixing the slurry. After mixing is complete, the second motor 1012 is started. The output of the second motor 1012 drives the first threaded rod 1011 to rotate. Since the first drive block 1013 is threadedly connected to the first threaded rod 1011, the first drive block 1013 will move axially along the first threaded rod 1011 as the first threaded rod 1011 rotates. The movement of the first drive block 1013 drives the clamping plate 1014 to move. Since the turntable 102 is connected to the limiting slide groove 109 through the limiting slider on the clamping plate 1014, when the clamping plate 1014 drives the turntable 102 to move, it will not affect the rotation of the turntable 102, thereby achieving the effect of driving the cleaning ring 101 to move axially along the mixing shaft 7. The movement of the turntable 102 drives the connecting plate 106 to move through the connecting rod 104. As the connecting plate 106 moves, the connecting plate 107 is driven, which in turn drives the cleaning ring 101 to move, causing the cleaning ring 101 to clean along the outside of the mixing column 9. The slurry adhering to the mixing column 9 is scraped off, preventing slurry waste and accumulation that could lead to decreased mixing efficiency or damage to the mixing column 9. After the raw materials such as lime, crystal slurry, and silica mortar are mixed, they enter the central tank through the discharge end of the premixing tank. In the central tank, they are further mixed with auxiliary raw materials such as mineral fibers, cement, and wood pulp to form a uniform building board slurry, thereby ensuring the uniformity and stability of the slurry.

[0054] The above embodiments only illustrate one or more implementations of this utility model, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of this utility model. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the appended claims.

Claims

1. A building board slurry production system, characterized by, The building board mixed slurry production system comprises a premixing device, a central tank, a water supply system (S1) for supplying the premixing device, a lime feeding line (S2), a crystal slurry feeding line (S3) and a silica sand slurry feeding line (S4), the discharge end of the premixing device is connected with the central tank, and the building board mixed slurry production system further comprises a mineral fiber feeding line (S5), a cement feeding line (S6) and a wood pulp feeding line (S7) for supplying the central tank; The premixing device comprises a base (1); The bottom of the base (1) is provided with a rectangular frame (2), a moving seat (3) is movably arranged on the rectangular frame (2), a vertical adjusting component for driving the moving seat (3) to move is arranged in the rectangular frame (2), a moving block (4) is movably arranged on the moving seat (3), a horizontal adjusting component for driving the moving block (4) to move is arranged in the moving seat (3), the top of the moving block (4) is provided with a mounting plate (5), the top of the mounting plate (5) is provided with a first motor (6), the output end of the first motor (6) is provided with a stirring shaft (7), the bottom of the stirring shaft (7) is provided with a stirring block (8), the bottom of the stirring block (8) is provided with a stirring column (9), a cleaning assembly (10) is further arranged on the stirring shaft (7), and the cleaning assembly (10) comprises a cleaning ring (101) for cleaning the slurry adhered to the outer side of the stirring column (9) and an axial driving component for driving the cleaning ring (101) to move.

2. A building board slurry production system according to claim 1, wherein, The water supply system (S1) comprises a sewage tower, a clean water tower, an industrial sewage collection tank and a clean water tank; The sewage tower is communicated with the industrial sewage collection tank through a pipeline, the industrial sewage collection tank is connected to a filter tank through a one-way valve, the filter tank is connected with the clean water tank through a one-way valve, and the clean water tank is connected with the clean water tower through a one-way valve.

3. The production system of a mixed slurry for building board according to claim 1, wherein, The crystal slurry feeding line (S3) comprises a reaction kettle and a crystal slurry storage tank; The discharge end of the reaction kettle is communicated with the crystal slurry storage tank.

4. The production system of a mixed slurry for building board according to claim 1, wherein, The silica sand slurry feeding line (S4) comprises a ball mill and a silica sand storage tank; The discharge end of the ball mill is communicated with the silica sand storage tank.

5. The system for producing a mixed slurry of a building board according to claim 1, wherein The axial driving component comprises a rotating disc (102); The rotating disc (102) is slidably arranged outside the stirring shaft (7), a threaded driving component for driving the rotating disc (102) to move is further arranged on the moving block (4), a limiting block (103) is further arranged outside the stirring shaft (7), a limiting groove for the movement of the limiting block (103) is formed in the rotating disc (102), a connecting rod (104) is arranged at the bottom of the rotating disc (102), one end of the connecting rod (104) is provided with a connecting block (105), one side of the connecting block (105) is provided with a connecting disc (106), the outer side of the connecting disc (106) is provided with a connecting plate (107), and the connecting plate (107) is connected with the cleaning ring (101).

6. A building board slurry production system according to claim 5, wherein, The outer side of the connecting disc (106) is provided with an extension block (108), and a through hole for the movement of the connecting rod (104) is formed in the extension block (108).

7. The system for producing a mixed slurry of a building board according to claim 5, wherein The threaded driving component comprises a mounting frame (1010); The mounting frame (1010) is arranged on one side of the moving block (4), a first threaded rod (1011) is vertically arranged in the mounting frame (1010), a second motor (1012) is arranged on the top of the mounting frame (1010), the output end of the second motor (1012) is connected with the first threaded rod (1011), a first driving block (1013) is threadedly connected on the first threaded rod (1011), a clamping plate (1014) is arranged on one side of the first driving block (1013), a limiting sliding block is arranged on the inner side of the clamping plate (1014), and a limiting sliding groove (109) is formed in the rotating disc (102) and used for the movement of the limiting sliding block.

8. The system for producing a mixed slurry of a building board according to claim 1, wherein The vertical adjusting component comprises a second threaded rod (21), a third motor (22) and a second driving block (23); The second threaded rod (21) is vertically arranged in the rectangular frame (2); The third motor (22) is arranged on the bottom of the rectangular frame (2), and the output end of the third motor (22) is connected with the second threaded rod (21); The second driving block (23) is threadedly connected to the outside of the second threaded rod (21), and the second driving block (23) is connected with the moving seat (3).

9. The system for producing a mixed slurry of a building board according to claim 1, wherein The horizontal adjusting component comprises a third threaded rod (31) and a fourth motor (32); The third threaded rod (31) is horizontally arranged in the moving seat (3); The fourth motor (32) is arranged on one side of the moving seat (3), the output end of the fourth motor (32) is connected with the third threaded rod (31), and the moving block (4) is threadedly connected to the outside of the third threaded rod (31).