Efficient equipment special for building composite material production
By designing composite material production equipment that includes stirring, quantitative liquid collection, building material processing, adsorption and grinding structures, the problem that existing equipment requires two equipment to deal with solid-liquid materials is solved, and fully automated processing is achieved, reducing costs and improving efficiency.
Patent Information
- Application Number
- CN202510613064.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-13
- Publication Date
- 2025-07-04
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Existing building materials processing equipment requires two types of equipment to process solid and liquid materials respectively, resulting in high processing costs and inability to achieve full automation, large manual intervention, and inconvenient liquid material extraction.
A special equipment for the production of composite materials including agitating structure, quantitative liquid extraction structure, building material processing structure, adsorption structure and grinding structure is designed. Through the mechanical structure driven by a servo motor, the automation of liquid stirring, quantitative liquid extraction, plate processing, cleaning and grinding operations is achieved.
It realizes fully automated processing of liquid and solid building materials, reduces processing costs, saves manpower, and can achieve quantitative liquid collection and cleaning, improving production efficiency.
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Figure CN120245206A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of building material processing, and particularly relates to a special device for producing high-efficiency building composite materials. Background Art
[0002] Building material processing equipment is the core instrument for the solidification and forming of liquid materials. By using an automatic pouring machine to inject concrete, resin or gypsum slurry into a customized mold, through processes such as vibration exhaust, temperature control curing and demolding, it can efficiently produce solid building materials such as precast components and decorative boards, with characteristics of high-precision forming and batch production, and is widely used in fields such as prefabricated buildings and decoration projects.
[0003] Currently, when processing raw building materials in a building material processing factory, the building materials are liquid before processing, and the processed results are basically of two types. One is solid building materials, and the other is building material liquid after mixing and proportioning of multiple building material liquids. Therefore, two different processing devices are required to achieve this, resulting in high processing costs. Moreover, when using the processing equipment, neither cleaning nor processing can be fully automated. When processing solid building materials, pouring the liquid into the mold, drying, cooling, grinding and blanking basically require manual intervention. And when processing building material liquid, it is inconvenient to control the amount of liquid taken during quantitative liquid extraction. Therefore, the present application provides a special device for producing high-efficiency building composite materials to meet the requirements. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to provide a special device for producing high-efficiency building composite materials to solve the problems that the processing of existing solid building materials and liquid building materials requires different processing devices, resulting in high processing costs, inability to achieve automation during processing, excessive manual intervention leading to high labor costs, and inconvenience in controlling the amount of liquid taken during quantitative liquid extraction of liquid building materials.
[0005] To solve the above technical problems, the present invention provides the following technical solutions: A special device for producing high-efficiency building composite materials, including a liquid tank, a stirring structure is arranged in the inner cavity of the liquid tank, a liquid conveying pipe is connected to one side of the liquid tank, a tubular liquid outlet part is connected to the top of the liquid conveying pipe, a building material processing structure is arranged at the left bottom of the tubular liquid outlet part, an adsorption structure is installed on one side of the building material processing structure, a grinding structure is arranged in the middle of one side of the adsorption structure, and a quantitative liquid extraction structure is arranged at the right bottom of the tubular liquid outlet part; The stirring structure includes a first servo motor, a fixed plate, a first rotating shaft, a connecting sleeve rod, a self-rotating shaft, a transmission gear, an inner ring gear, a limiting disc and a stirring rod. The first servo motor is arranged at the bottom of the inner cavity of the liquid tank. One end of the output shaft of the first servo motor is fixedly installed with a first rotating shaft. The outer surface of the first rotating shaft is movably sleeved with a fixed plate. The middle part of the outer surface of the first rotating shaft is fixedly sleeved with a connecting sleeve rod. Both sides of the connecting sleeve rod are movably sleeved with self-rotating shafts. Stirring rods are arranged on both sides of the outer surface of each self-rotating shaft. Limiting discs are fixedly installed at both ends of each self-rotating shaft. Transmission gears are fixedly sleeved on both sides of the outer surface of each self-rotating shaft. The inner ring gear is fixedly installed on both sides of the inner cavity of the liquid tank; The building material processing structure includes a sheet conveying roller, a support frame, a liquid passing hopper, a building material mold, a support arm, a connecting plate and a dryer. The sheet conveying roller is arranged at the left bottom of the tubular liquid outlet part. Support frames are fixedly installed on both sides of the top of the sheet conveying roller. The liquid passing hopper is fixedly installed in the inner cavity of the support frame. A building material mold is fixedly installed on one side of the top of the sheet conveying roller. Support arms are fixedly installed on both sides of the middle part of the sheet conveying roller. A connecting plate is fixedly installed on the inner side of the support arm. A dryer is fixedly installed at the bottom of the connecting plate.
[0006] The building material processing structure further includes a support plate, a first air cylinder, a first air pressure rod, a first top plate, an auxiliary telescopic rod, a second servo motor, a second rotating shaft, a transmission belt, a cleaning roller, a first motor support seat, a liquid outlet pipe and a liquid storage tank. The support plate is fixedly installed on both sides of the middle part of the sheet conveying roller. The first air cylinder is fixedly installed in the middle of the top of the support plate. The first air pressure rod is movably sleeved in the inner cavity of the first air cylinder. The top of the first air pressure rod is fixedly installed with a first top plate. Auxiliary telescopic rods are fixedly installed on both sides of the bottom of the first top plate. The first motor support seat is fixedly installed at the bottom of the first top plate. The second servo motor is fixedly sleeved in the inner cavity of the first motor support seat. One end of the output shaft of the second servo motor is fixedly sleeved with a second rotating shaft. The transmission belt is movably sleeved on one side of the second rotating shaft. The cleaning roller is fixedly installed in the middle of the outer surface of the second rotating shaft. The liquid storage tank is fixedly installed at the top of the first top plate. Liquid outlet pipes are communicated with both sides of the bottom of the liquid storage tank.
[0007] The adsorption structure includes a second motor support base, a third servo motor, a threaded column, a building material mold, a second air cylinder, a second air pressure rod, an auxiliary sleeve plate, a second top plate, a reinforcing rib, and a fixing groove. The second motor support base is fixedly installed on one side of the plate conveyor roller. The inner cavity of the second motor support base is fixedly sleeved with a third servo motor. One end of the output shaft of the third servo motor is fixedly sleeved with a threaded column. The outer surface of the threaded column is threadedly sleeved with a threaded sleeve block. Both ends of the outer surface of the threaded sleeve block are movably sleeved with fixing grooves. The top of the threaded sleeve block is fixedly installed with a second air cylinder. The inner cavity of the second air cylinder is movably sleeved with a second air pressure rod. The top of the second air pressure rod is fixedly installed with a second top plate. One end of the outer surface of the second air pressure rod is fixedly installed with an auxiliary sleeve plate. Reinforcing ribs are fixedly installed on both sides of the auxiliary sleeve plate.
[0008] The adsorption structure further includes an adsorber, a suction cup, a first grinding member, a limit connection disk, a first connection column, and a first grinding sandpaper. The adsorber is fixedly installed on the top of the second top plate. Suction cups are communicated with both sides of the bottom of the adsorber. A first grinding member is fixedly installed on the top of the second top plate. A first connection column is arranged at the bottom of the first grinding member. A limit connection disk is fixedly installed on the outer surface of the first connection column. A first grinding sandpaper is fixedly installed at the bottom of the first connection column.
[0009] The grinding structure includes a fixing box, a third motor support base, a fourth servo motor, a third rotating shaft, a first rotating disk, a second connection column, a third connection column, a rotating sleeve rod, and a first movable sleeve rod. The fixing box is fixedly installed on one side of the fixing groove. A third motor support base is fixedly installed on one side of the fixing box. The inner cavity of the third motor support base is fixedly installed with a fourth servo motor. One end of the output shaft of the fourth servo motor is fixedly installed with a third rotating shaft. One end of the third rotating shaft is fixedly installed with a first rotating disk. Second connection columns are fixedly installed on both sides of the first rotating disk. The outer surface of the second connection column is movably sleeved with a first movable sleeve rod. The inner cavity of the bottom of the first movable sleeve rod is fixedly sleeved with a third connection column. The outer surface of the third connection column is movably sleeved with a rotating sleeve rod.
[0010] The grinding structure further includes a fixing column, a first fixing sleeve block, a fourth connection column, a rotating sleeve block, a second grinding member, and a second grinding sandpaper. The fixing column is movably sleeved in the middle of the rotating sleeve rod. The middle of the outer surface of the fixing column is fixedly sleeved with a first fixing sleeve block. The first fixing sleeve block is fixedly installed on the inner side of the fixing box. The outer surface of the top of the rotating sleeve rod is fixedly sleeved with a fourth connection column. The outer surface of both sides of the fourth connection column is movably sleeved with a rotating sleeve block. A second grinding member is fixedly installed on one side of the rotating sleeve block. A second grinding sandpaper is arranged on the inner side of the second grinding member.
[0011] The grinding structure further includes a fixed frame, connecting springs, guide posts and a loading plate. The fixed frame is arranged at the bottom of the inner cavity of the fixed box. Connecting springs are connected to both sides of the top of the fixed frame. The top of the connecting spring is connected to a fixed frame identical to its bottom. Wherein, a loading plate is fixedly installed at the top of the fixed frame. Guide posts are fixedly installed on both sides of the top of the fixed frame. The guide posts are movably sleeved with the fixed frame at the top.
[0012] The liquid metering and extraction structure includes a bottom plate, a support rod, a clamping plate, a liquid passing box, a fourth motor support seat, a fifth servo motor, a fourth rotating shaft, a second fixed sleeve block, a second rotating disk, a connecting shaft, a second movable sleeve rod, a liquid outlet groove and a translation column. The bottom plate is arranged at the bottom of the right tubular liquid outlet part. The support rod is fixedly sleeved in the inner cavity of the bottom plate. The clamping plate is fixedly sleeved in the middle of the outer surface of the support rod. The liquid passing box is fixedly installed at the top of the support rod. The fourth motor support seat is fixedly installed on one side of the liquid passing box. The fifth servo motor is fixedly sleeved in the inner cavity of the fourth motor support seat. One end of the output shaft of the fifth servo motor is fixedly sleeved with the fourth rotating shaft. The second fixed sleeve block is movably sleeved in the middle of the outer surface of the fourth rotating shaft. The second fixed sleeve block is fixedly installed on one side of the liquid passing box. The second rotating disk is fixedly installed at the bottom of the fourth rotating shaft. The connecting shaft is fixedly installed at the bottom of the second rotating disk. The second movable sleeve rod is movably sleeved on the outer surface of the connecting shaft. The translation column is movably sleeved on one side of the second movable sleeve rod. The liquid outlet groove is fixedly installed on one side of the bottom of the clamping plate.
[0013] The liquid metering and extraction structure further includes a translation plate, vertical rods, bottom guide rails, multi-size card slots, top guide rails, liquid outlet ports and liquid passing frames. The translation plate is fixedly installed at the top of the translation column. The multi-size card slot is fixedly installed on one side of the translation plate. The top guide rails are arranged on both sides of the multi-size card slot. The top guide rails are fixedly installed on both sides of the bottom of the liquid passing box. The liquid outlet port is opened at the bottom of the liquid passing box. The vertical rods are fixedly installed on both sides of the bottom of the translation plate. The bottom guide rails are fixedly installed on both sides of the bottom of the vertical rods.
[0014] The right side of the top of the liquid tank is fixedly installed with an infusion port. The left side of the top of the liquid tank is fixedly installed with a feeding port. The middle of the outer surface of the... The grinding structure is provided with a blanking frame on one side. A building material conveyor belt is arranged at the bottom of the blanking frame.
[0015] Compared with the prior art, the present invention has at least the following beneficial effects: 1. In the above solution, through the set stirring structure and quantitative liquid extraction structure, when processing building liquids, several building material liquids to be mixed are added into the liquid tank through the feed port. Then, the first servo motor is started to rotate the first rotating shaft and the connecting sleeve rod, so that the self-rotating shaft drives the transmission gear to rotate around the first rotating shaft. Through the meshing transmission of the transmission gear and the fixed inner ring gear, the transmission gear and the self-rotating shaft drive the stirring rod to rotate, so that the processing liquid can be stirred more evenly. After processing, the liquid is transported to the right drain port of the tubular liquid outlet part through the flow dividing valve. At this time, the liquid passing frame matching the required liquid volume is clamped in the multi-size card slots, and then the fifth servo motor is started to rotate the fourth rotating shaft, the second rotating disc and the connecting shaft, so as to drive the second movable sleeve rod to move. Since the multi-size card slots are limited by the top guide rails, the multi-size card slots will drive the liquid passing frame to translate. When translating to the top of the liquid outlet groove, the liquid in the liquid passing frame automatically flows into the liquid outlet groove and finally enters the prepared storage tool, achieving the effect of uniform stirring and quantitative liquid extraction.
[0016] 2. In the above solution, through the set building material processing structure, adsorption structure and grinding structure, when building boards need to be processed, the liquid in the liquid tank is transported to the left drain port of the tubular liquid outlet part through the flow dividing valve. At this time, the liquid material enters the building material mold, and then the building board conveyor rolls transport the building material mold to the bottom of the connecting plate. At this time, the dryer is started to dry and solidify the liquid. After the board becomes solid, the building material mold is continuously transported to the bottom of the first top plate. At this time, the cleaning roller sprays the cleaning liquid inside the liquid storage tank onto the formed board inside the building material mold for cooling. Then, after the building material mold is transported to one end of the building board conveyor rolls, the second air cylinder is started to make the second air pressure rod drive the second top plate to descend. When the suction cup is tightly attached to the surface of the processed solid building material, the adsorber is started to adsorb. At this time, the third servo motor is started to rotate the threaded column, so that the threaded sleeve block drives the top structure and the building material to translate. When translating to the top of the grinding structure, the building material is placed on the top of the carrier plate. At this time, the fourth servo motor is started to rotate the third rotating shaft, the first rotating disc and the two second connecting columns, so as to drive the first movable sleeve rod to move. Since the rotating sleeve rod is limited by the fixed column, the two rotating sleeve rods drive the second grinding part on the top to clamp inward. At this time, the second grinding part and the first grinding sandpaper are started to grind the surface of the building material. Then, the building material is placed on the top of the building material conveyor belt from the blanking frame for transmission, so as to achieve the effect of unmanned and fully automatic building material processing and save manpower.
[0017] 3. In the above solution, through the set building material processing structure, when cleaning the processing device, when placing the cleaning liquid in the liquid tank through the liquid infusion port, start the stirring structure to rotate and clean the inner wall of the liquid tank. Then, while the shunt valve allows the cleaning liquid inside the liquid tank to flow out through the tubular liquid outlet part, it flushes the inside of the tubular liquid outlet part. And after the building material in the building material mold is sucked away by the suction cup, when the building material mold returns and passes through the bottom of the liquid storage tank, start the first pneumatic cylinder to lower the first top plate. When the cleaning roller descends into the building material mold, start the second servo motor to rotate the second rotating shaft, thereby driving the two cleaning rollers to rotate and cooperate with the cleaning liquid inside the liquid storage tank to scour the inside of the building material mold, and dry the inside of the building material mold through the connecting plate for the next processing. And when this device is in use, it can not only perform quantitative storage of building material liquid mixing and processing, but also process solid plates, integrating two different processing lines. Compared with two independent processing lines, it greatly saves processing costs, and realizes full automation for building material liquid processing and mixing, solid plate processing, and device cleaning in this device, greatly saving labor costs. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] The accompanying drawings incorporated herein and constituting a part of the specification illustrate embodiments of the present disclosure and, together with the specification, are further used to explain the principles of the present disclosure and enable those skilled in the relevant art to implement and use the present disclosure.
[0019] Figure 1 It is a three-dimensional structure schematic diagram of a special equipment for the production of high-efficiency building composite materials; Figure 2 It is a cross-sectional schematic diagram of the stirring structure of a special equipment for the production of high-efficiency building composite materials; Figure 3 It is a partial structure schematic diagram of a special equipment for the production of high-efficiency building composite materials; Figure 4 It is a schematic diagram of the building material processing structure of a special equipment for the production of high-efficiency building composite materials; Figure 5 It is a schematic diagram of the adsorption structure of a special equipment for the production of high-efficiency building composite materials; Figure 6 It is a partial structure schematic diagram of the adsorption structure of a special equipment for the production of high-efficiency building composite materials; Figure 7 It is a disassembled structure schematic diagram of the grinding structure of a special equipment for the production of high-efficiency building composite materials; Figure 8 It is a schematic diagram of the quantitative liquid extraction structure of a special equipment for the production of high-efficiency building composite materials; Figure 9 It is a schematic diagram of the explosion structure of the quantitative liquid extraction of a special equipment for the production of high-efficiency building composite materials; Figure 10 It is a partial structural schematic diagram of a liquid quantitative extraction structure, which is a special equipment for the production of an efficient building composite material.
[0020] [Reference Signs] 1. Liquid tank; 2. Stirring structure; 3. Feed inlet; 4. Liquid infusion port; 5. Liquid conveying pipe; 6. Tubular liquid outlet part; 7. Building material processing structure; 8. Adsorption structure; 9. Grinding structure; 10. Liquid quantitative extraction structure; 11. Feeding frame; 12. Building material conveyor belt; 13. Diverting valve; 21. First servo motor; 22. Fixed plate; 23. First rotating shaft; 24. Connecting sleeve rod; 25. Self-rotating shaft; 26. Driving gear; 27. Inner ring gear; 28. Limiting disc; 29. Stirring rod; 71. Plate conveying roller; 72. Support frame; 73. Liquid conveying hopper; 74. Building material mold; 75. Support arm; 76. Connecting plate; 77. Dryer; 78. Support plate; 79. First air cylinder; 710. First air pressure rod; 711. First top plate; 712. Auxiliary telescopic rod; 713. Second servo motor; 714. Second rotating shaft; 715. Transmission belt; 716. Cleaning roller; 717. First motor support seat; 718. Liquid outlet pipe; 719. Liquid storage tank; 81. Second motor support seat; 82. Third servo motor; 83. Threaded column; 84. Threaded sleeve block; 85. Second air cylinder; 86. Second air pressure rod; 87. Auxiliary sleeve plate; 88. Second top plate; 89. Reinforcing rib; 810. Adsorber; 811. Suction cup; 812. First grinding piece; 813. Limiting connection disc; 814. First connecting column; 815. First grinding sandpaper; 816. Fixed groove; 91. Fixed box; 92. Third motor support seat; 93. Fourth servo motor; 94. Third rotating shaft; 95. First rotating disc; 96. Second connecting column; 97. Third connecting column; 98. Rotating sleeve rod; 99. Fixed column; 910. First fixed sleeve block; 911. Fourth connecting column; 912. Rotating sleeve block; 913. Second grinding piece; 914. Second grinding sandpaper; 915. Fixed frame; 916. Connecting spring; 917. Guide post; 918. Carrying plate; 919. First movable sleeve rod; 101. Bottom plate; 102. Support rod; 103. Clamping plate; 104. Liquid conveying box; 105. Fourth motor support seat; 106. Fifth servo motor; 107. Fourth rotating shaft; 108. Second fixed sleeve block; 109. Second rotating disc; 1011. Connecting shaft; 1012. Second movable sleeve rod; 1013. Liquid outlet groove; 1014. Translating column; 1015. Translating plate; 1016. Vertical rod; 1017. Bottom guide rail; 1018. Multi-size card slot; 1019. Top guide rail; 1020. Liquid outlet; 1021. Liquid conveying frame.
[0021] As shown in the figure, in order to clearly implement the structure of the embodiments of the present invention, specific structures and devices are labeled in the figure. However, this is only for illustrative purposes and is not intended to limit the present invention to this specific structure, device, and environment. According to specific needs, those of ordinary skill in the art can adjust or modify these devices and environments, and such adjustments or modifications are still included within the scope of the appended claims. Detailed implementation manners
[0022] The following will describe in detail a special device for producing an efficient building composite material provided by the present invention in conjunction with the accompanying drawings and specific embodiments. At the same time, it should be noted here that in order to make the embodiments more detailed, the following embodiments are the best and preferred embodiments. For some well-known technologies, those skilled in the art can also adopt other alternative methods for implementation; moreover, the accompanying drawings are only for more specifically describing the embodiments and are not intended to specifically limit the present invention.
[0023] It should be noted that in the specification, references to "an embodiment", "embodiments", "exemplary embodiments", "some embodiments", etc. indicate that the described embodiments may include specific features, structures, or characteristics, but not necessarily every embodiment includes such specific features, structures, or characteristics. Additionally, when combining embodiments to describe a specific feature, structure, or characteristic, implementing such a feature, structure, or characteristic in combination with other embodiments (whether explicitly described or not) should be within the knowledge of those skilled in the relevant art.
[0024] Generally, terms can be understood, at least in part, from their use in the context. For example, at least in part depending on the context, the term "one or more" as used herein can be used to describe any feature, structure, or characteristic in a singular sense, or can be used to describe a combination of features, structures, or characteristics in a plural sense. Additionally, the term "based on" can be understood as not necessarily intended to convey a set of exclusive factors, but rather, at least in part depending on the context, can allow for the existence of other factors that may not be explicitly described.
[0025] It can be understood that the meanings of "on...", "above...", and "over..." in the present disclosure should be interpreted in the broadest manner, such that "on..." not only means "directly on" something, but also includes the meaning of being "on" something with intervening features or layers therebetween, and "above..." or "over..." not only means "above" or "over" something, but also can include the meaning of being "above" or "over" something with no intervening features or layers therebetween.
[0026] In addition, spatial relative terms such as "under", "below", "lower part", "above", "upper part", etc. may be used herein for convenience of description to describe the relationship of one element or feature with another or more elements or features, as shown in the drawings. The spatial relative terms are intended to cover different orientations in the use or operation of the device in addition to the orientation depicted in the drawings. The device may be oriented in other ways, and the spatial relative descriptors used herein may be interpreted accordingly.
[0027] Embodiment 1: As Figure 1 , Figure 2 and Figure 3 shown, an embodiment of the present invention provides a special device for efficiently producing building composite materials, including a liquid tank 1, a stirring structure 2 is arranged in the inner cavity of the liquid tank 1, a liquid delivery pipe 5 is communicated with one side of the liquid tank 1, a tubular liquid outlet member 6 is communicated with the top of the liquid delivery pipe 5, a building material processing structure 7 is arranged at the left bottom of the tubular liquid outlet member 6, an adsorption structure 8 is installed on one side of the building material processing structure 7, a grinding structure 9 is arranged in the middle of one side of the adsorption structure 8, and a quantitative liquid taking structure 10 is arranged at the right bottom of the tubular liquid outlet member 6; The stirring structure 2 includes a first servo motor 21, a fixing plate 22, a first rotating shaft 23, a connecting sleeve rod 24, a self-rotating shaft 25, a transmission gear 26, an inner ring gear 27, a limiting disc 28 and a stirring rod 29. The first servo motor 21 is arranged at the bottom of the inner cavity of the liquid tank 1, one end of the output shaft of the first servo motor 21 is fixedly installed with a first rotating shaft 23, the outer surface of the first rotating shaft 23 is movably sleeved with a fixing plate 22, the middle of the outer surface of the first rotating shaft 23 is fixedly sleeved with a connecting sleeve rod 24, both sides of the connecting sleeve rod 24 are movably sleeved with a self-rotating shaft 25, stirring rods 29 are arranged on both sides of the outer surface of the self-rotating shaft 25, limiting discs 28 are fixedly installed at both ends of the self-rotating shaft 25, transmission gears 26 are fixedly sleeved on both sides of the outer surface of the self-rotating shaft 25, and the inner ring gear 27 is fixedly installed on both sides of the inner cavity of the liquid tank 1; The building material processing structure 7 includes a plate conveying roller 71, a support frame 72, a liquid passing hopper 73, a building material mold 74, a support arm 75, a connecting plate 76 and a dryer 77. The plate conveying roller 71 is arranged at the left bottom of the tubular liquid outlet member 6, support frames 72 are fixedly installed on both sides of the top of the plate conveying roller 71, a liquid passing hopper 73 is fixedly installed in the inner cavity of the support frame 72, a building material mold 74 is fixedly installed on one side of the top of the plate conveying roller 71, support arms 75 are fixedly installed on both sides of the middle of the plate conveying roller 71, a connecting plate 76 is fixedly installed on the inner side of the support arm 75, and a dryer 77 is fixedly installed at the bottom of the connecting plate 76; On the upper right side of the liquid tank 1, an infusion port 4 is fixedly installed, and on the upper left side of the liquid tank 1, a feed port 3 is fixedly installed. In the middle of the outer surface of the tubular liquid outlet member 6, a flow dividing valve 13 is fixedly installed. On one side of the grinding structure 9, a blanking frame 11 is provided, and at the bottom of the blanking frame 11, a building material conveyor belt 12 is provided.
[0028] Example 2: As Figure 3 , Figure 4 , Figure 5 and Figure 6As shown, the building material processing structure 7 further includes a support plate 78, a first pneumatic cylinder 79, a first pneumatic rod 710, a first top plate 711, an auxiliary telescopic rod 712, a second servo motor 713, a second rotating shaft 714, a transmission belt 715, a cleaning roller 716, a first motor support seat 717, a liquid outlet pipe 718 and a liquid storage tank 719. The support plate 78 is fixedly installed on both sides of the middle part of the sheet conveying roller 71. The middle part of the top of the support plate 78 is fixedly installed with the first pneumatic cylinder 79. The inner cavity of the first pneumatic cylinder 79 is movably sleeved with the first pneumatic rod 710. The top of the first pneumatic rod 710 is fixedly installed with the first top plate 711. Both sides of the bottom of the first top plate 711 are fixedly installed with the auxiliary telescopic rod 712. The bottom of the first top plate 711 is fixedly installed with the first motor support seat 717. The inner cavity of the first motor support seat 717 is fixedly sleeved with the second servo motor 713. One end of the output shaft of the second servo motor 713 is fixedly sleeved with the second rotating shaft 714. One side of the second rotating shaft 714 is movably sleeved with the transmission belt 715. The middle part of the outer surface of the second rotating shaft 714 is fixedly installed with the cleaning roller 716. The top of the first top plate 711 is fixedly installed with the liquid storage tank 719. Both sides of the bottom of the liquid storage tank 719 are communicated with the liquid outlet pipe 718. The adsorption structure 8 includes a second motor support seat 81, a third servo motor 82, a threaded column 83, a building material mold 74, a second pneumatic cylinder 85, a second pneumatic rod 86, an auxiliary sleeve plate 87, a second top plate 88, a reinforcing rib 89 and a fixing groove 816. The second motor support seat 81 is fixedly installed on one side of the sheet conveying roller 71. The inner cavity of the second motor support seat 81 is fixedly sleeved with the third servo motor 82. One end of the output shaft of the third servo motor 82 is fixedly sleeved with the threaded column 83. The outer surface of the threaded column 83 is threadedly sleeved with a threaded sleeve block 84. Both ends of the outer surface of the threaded sleeve block 84 are movably sleeved with the fixing groove 816. The top of the threaded sleeve block 84 is fixedly installed with the second pneumatic cylinder 85. The inner cavity of the second pneumatic cylinder 85 is movably sleeved with the second pneumatic rod 86. The top of the second pneumatic rod 86 is fixedly installed with the second top plate 88. One end of the outer surface of the second pneumatic rod 86 is fixedly installed with the auxiliary sleeve plate 87. Both sides of the auxiliary sleeve plate 87 are fixedly installed with the reinforcing rib 89. The adsorption structure 8 further includes an adsorber 810, a suction cup 811, a first grinding part 812, a limit connection disk 813, a first connection column 814 and a first grinding sandpaper 815. The adsorber 810 is fixedly installed on the top of the second top plate 88. Both sides of the bottom of the adsorber 810 are communicated with the suction cup 811. The top of the second top plate 88 is fixedly installed with the first grinding part 812. The bottom of the first grinding part 812 is provided with the first connection column 814. The outer surface of the first connection column 814 is fixedly installed with the limit connection disk 813. The bottom of the first connection column 814 is fixedly installed with the first grinding sandpaper 815.
[0029] By starting the second air cylinder 85, the second air pressure rod 86 drives the second top plate 88 to descend. When the suction cup 811 is pressed against the surface of the processed solid building material, the adsorber 810 is started for adsorption. At this time, the third servo motor 82 is started to rotate the threaded column 83, so that the threaded sleeve block 84 drives the top structure and the building material to move horizontally. When it moves to the top of the grinding structure 9, the building material is placed on the top of the carrier plate 918. At this time, the fourth servo motor 93 drives the third rotating shaft 94, the first rotating disk 95 and the two second connecting columns 96 to rotate, so as to drive the first movable sleeve rod 919 to move. The rotating sleeve rod 98 is limited by the fixed column 99, so that the two rotating sleeve rods 98 drive the second grinding piece 913 at the top to clamp inward. At this time, the second grinding piece 913 and the first grinding sandpaper 815 are started to grind the surface of the building material, achieving the effect of automatic grinding and picking.
[0030] Example 3: As Figure 7 , Figure 8 , Figure 9 and Figure 10As shown, the grinding structure 9 includes a fixed box 91, a third motor support base 92, a fourth servo motor 93, a third rotating shaft 94, a first rotating disk 95, a second connecting column 96, a third connecting column 97, a rotating sleeve rod 98 and a first movable sleeve rod 919. The fixed box 91 is fixedly installed on one side of the fixed groove 816. A third motor support base 92 is fixedly installed on one side of the fixed box 91. A fourth servo motor 93 is fixedly installed in the inner cavity of the third motor support base 92. One end of the output shaft of the fourth servo motor 93 is fixedly installed with a third rotating shaft 94. One end of the third rotating shaft 94 is fixedly installed with a first rotating disk 95. Second connecting columns 96 are fixedly installed on both sides of the first rotating disk 95. The outer surface of the second connecting column 96 is movably sleeved with a first movable sleeve rod 919. A third connecting column 97 is fixedly sleeved in the bottom inner cavity of the first movable sleeve rod 919. The outer surface of the third connecting column 97 is movably sleeved with a rotating sleeve rod 98. The grinding structure 9 further includes a fixed column 99, a first fixed sleeve block 910, a fourth connecting column 911, a rotating sleeve block 912, a second grinding member 913 and a second grinding sandpaper 914. The fixed column 99 is movably sleeved in the middle of the rotating sleeve rod 98. A first fixed sleeve block 910 is fixedly sleeved in the middle of the outer surface of the fixed column 99. The first fixed sleeve block 910 is fixedly installed inside the fixed box 91. A fourth connecting column 911 is fixedly sleeved on the top outer surface of the rotating sleeve rod 98. Rotating sleeve blocks 912 are movably sleeved on both sides of the outer surface of the fourth connecting column 911. A second grinding member 913 is fixedly installed on one side of the rotating sleeve block 912. A second grinding sandpaper 914 is arranged inside the second grinding member 913. The grinding structure 9 further includes a fixed frame 915, a connecting spring 916, a guide post 917 and a carrier plate 918. The fixed frame 915 is arranged at the bottom inner cavity of the fixed box 91. Connecting springs 916 are connected to both sides of the top of the fixed frame 915. The top of the connecting spring 916 is connected to a fixed frame 915 identical to its bottom. A carrier plate 918 is fixedly installed on the top of the fixed frame 915. Guide posts 917 are fixedly installed on both sides of the top of the fixed frame 915. The guide posts 917 are movably sleeved with the top fixed frame 915. The liquid metering structure 10 includes a bottom plate 101, a support rod 102, a clamping plate 103, a liquid passing box 104, a fourth motor support base 105, a fifth servo motor 106, a fourth rotating shaft 107, a second fixed sleeve block 108, a second rotating disk 109, a connecting shaft 1011, a second movable sleeve rod 1012, a liquid outlet groove 1013 and a translation column 1014. The bottom plate 101 is arranged at the bottom of the right tubular liquid outlet member 6. A support rod 102 is fixedly sleeved in the inner cavity of the bottom plate 101. A clamping plate 103 is fixedly sleeved in the middle of the outer surface of the support rod 102. A liquid passing box 104 is fixedly installed on the top of the support rod 102. A fourth motor support base 105 is fixedly installed on one side of the liquid passing box 104. A fifth servo motor 106 is fixedly sleeved in the inner cavity of the fourth motor support base 105. One end of the output shaft of the fifth servo motor 106 is fixedly sleeved with a fourth rotating shaft 107,A second fixed sleeve block 108 is movably sleeved in the middle of the outer surface of the fourth rotating shaft 107. The second fixed sleeve block 108 is fixedly installed on one side of the liquid passing box 104. A second rotating disk 109 is fixedly installed at the bottom of the fourth rotating shaft 107. A connecting shaft 1011 is fixedly installed at the bottom of the second rotating disk 109. A second movable sleeve rod 1012 is movably sleeved on the outer surface of the connecting shaft 1011. A translation column 1014 is movably sleeved on one side of the second movable sleeve rod 1012. A liquid outlet groove 1013 is fixedly installed at one side of the bottom of the clamping plate 103. The quantitative liquid taking structure 10 further includes a translation plate 1015, a vertical rod 1016, a bottom guide rail 1017, a multi-size card slot 1018, a top guide rail 1019, a liquid outlet 1020, and a liquid passing frame 1021. The translation plate 1015 is fixedly installed at the top of the translation column 1014. A multi-size card slot 1018 is fixedly installed on one side of the translation plate 1015. Top guide rails 1019 are arranged on both sides of the multi-size card slot 1018. The top guide rails 1019 are fixedly installed on both sides of the bottom of the liquid passing box 104. A liquid outlet 1020 is formed in the bottom of the liquid passing box 104. Vertical rods 1016 are fixedly installed on both sides of the bottom of the translation plate 1015. Bottom guide rails 1017 are fixedly installed on both sides of the bottom of the vertical rods 1016.,
[0031] By clamping the liquid passing frame 1021 matching the required liquid volume in the multi-size card slot 1018, and then starting the fifth servo motor 106 to rotate the fourth rotating shaft 107, the second rotating disk 109 and the connecting shaft 1011, so as to drive the second movable sleeve rod 1012 to move. Since the multi-size card slot 1018 is limited by the top guide rail 1019, the multi-size card slot 1018 will drive the liquid passing frame 1021 to translate. When translating to the top of the liquid outlet groove 1013, the liquid in the liquid passing frame 1021 automatically flows into the liquid outlet groove 1013 and finally enters the prepared storage tool, so as to achieve the effect of quantitative liquid taking.
[0032] The technical solution provided by the present invention is as follows. Firstly, when processing building plates is required, the liquid in the liquid tank 1 is transported to the left drain port of the tubular liquid outlet member 6 through the flow dividing valve 13. At this time, the liquid material enters the building material mold 74, and then the plate conveying roller 71 transports the building material mold 74 to the bottom of the connecting plate 76. At this time, the dryer 77 is started to dry and solidify the liquid. After the plate becomes solid, the building material mold 74 is continuously transported to the bottom of the first top plate 711. At this time, the cleaning roller 716 sprays the cleaning liquid inside the liquid storage tank 719 onto the formed plate inside the building material mold 74 for cooling. Then, after the building material mold 74 is transported to one end of the plate conveying roller 71, the second air cylinder 85 is started to make the second air pressure rod 86 drive the second top plate 88 to descend. When the suction cup 811 is tightly attached to the surface of the processed solid building material, the adsorber 810 is started for adsorption. At this time, the third servo motor 82 is started to rotate the threaded column 83, so that the threaded sleeve block 84 drives the top structure and the building material to translate. When translating to the top of the grinding structure 9, the building material is placed on the top of the carrier plate 918. At this time, the fourth servo motor 93 is started to drive the third rotating shaft 94, the first rotating disk 95 and the two second connecting columns 96 to rotate, thereby driving the first movable sleeve rod 919 to move. The rotating sleeve rod 98 is limited by the fixed column 99, so that the two rotating sleeve rods 98 drive the second grinding member 913 at the top to clamp inward. At this time, the second grinding member 913 and the first grinding sandpaper 815 are started to grind the surface of the building material. Then, the building material is placed on the top of the building material conveyor belt 12 from the blanking frame 11 for transmission. Then, when processing building liquid, several building materials liquids to be mixed are added into the liquid tank 1 through the feed port 3. Then, the first servo motor 21 is started to rotate the first rotating shaft 23 and the connecting sleeve rod 24, so that the self-rotating shaft 25 drives the transmission gear 26 to rotate around the first rotating shaft 23. Through the meshing transmission of the transmission gear 26 and the fixed inner ring gear 27, the transmission gear 26 and the self-rotating shaft 25 drive the stirring rod 29 to rotate, so that the processing liquid can be stirred more evenly. After processing, the liquid is transported to the right drain port of the tubular liquid outlet member 6 through the flow dividing valve 13. At this time, the liquid passing frame 1021 with a size matching the required liquid volume is stuck in the multi-size card slot 1018. Then, the fifth servo motor 106 is started to rotate the fourth rotating shaft 107, the second rotating disk 109 and the connecting shaft 1011, thereby driving the second movable sleeve rod 1012 to move. Since the multi-size card slot 1018 is limited by the top guide rail 1019, the multi-size card slot 1018 will drive the liquid passing frame 1021 to translate. When translating to the top of the liquid outlet groove 1013, the liquid in the liquid passing frame 1021 automatically flows into the liquid outlet groove 1013 and finally into the prepared storage tool. Finally, when cleaning the processing device, when the cleaning liquid is placed in the liquid tank 1 through the liquid injection port 4, the stirring structure 2 is started to rotate and clean the inner wall of the liquid tank 1.Then, while the flow dividing valve 13 allows the cleaning liquid in the liquid tank 1 to flow out through the tubular liquid outlet member 6, it flushes the inside of the tubular liquid outlet member 6. After the building materials in the building materials mold 74 are sucked away by the suction cup 811, when the building materials mold 74 returns and passes through the bottom of the liquid storage tank 719, the first pneumatic cylinder 79 is activated to lower the first top plate 711. When the cleaning roller 716 descends into the building materials mold 74, the second servo motor 713 is activated to rotate the second rotating shaft 714, thereby driving the two cleaning rollers 716 to rotate and cooperate with the cleaning liquid in the liquid storage tank 719 to scour the inside of the building materials mold 74, and drying the inside of the building materials mold 74 through the connecting plate 76 for the next processing; Finally, through the movement of the above device, it can ultimately achieve the effect of integrating the processing of liquid building materials and solid building materials on one processing line, greatly saving the processing cost. Moreover, when processing liquid building materials, the device can automatically measure the liquid in a fixed quantity, and when processing solid building materials, it can automatically solidify, cool, grind, and discharge the building materials, and can automatically clean the inside of the mold after each processing.
[0033] The present invention covers any substitutions, modifications, equivalent methods, and solutions made within the spirit and scope of the present invention. To enable the public to have a thorough understanding of the present invention, specific details are described in detail in the following preferred embodiments of the present invention. However, those skilled in the art can fully understand the present invention without the description of these details. Additionally, to avoid unnecessary confusion to the essence of the present invention, well-known methods, processes, procedures, components, and circuits are not described in detail.
[0034] Those of ordinary skill in the art can understand that all or part of the steps in implementing the methods of the above embodiments can be completed by instructing relevant hardware through a program, and this program can be stored in a computer-readable storage medium, such as ROM / RAM, magnetic disks, optical discs, etc.
[0035] The above are only the preferred embodiments of the present invention. It should be noted that for those of ordinary skill in the art, without departing from the principle of the present invention, several improvements and refinements can be made, and these improvements and refinements should also be regarded as the protection scope of the present invention.
Claims
1. A special equipment for producing high-efficiency building composite materials, characterized in that, It includes a liquid tank (1), a stirring structure (2) is arranged in the inner cavity of the liquid tank (1), a liquid delivery pipe (5) is communicated with one side of the liquid tank (1), a tubular liquid outlet part (6) is communicated with the top of the liquid delivery pipe (5), a building material processing structure (7) is arranged at the left bottom of the tubular liquid outlet part (6), an adsorption structure (8) is installed on one side of the building material processing structure (7), a grinding structure (9) is arranged in the middle of one side of the adsorption structure (8), and a quantitative liquid taking structure (10) is arranged at the right bottom of the tubular liquid outlet part (6); The stirring structure (2) includes a first servo motor (21), a fixing plate (22), a first rotating shaft (23), a connecting sleeve rod (24), a self-rotating shaft (25), a transmission gear (26), an inner ring gear (27), a limiting disc (28) and a stirring rod (29). The first servo motor (21) is arranged at the bottom of the inner cavity of the liquid tank (1), one end of the output shaft of the first servo motor (21) is fixedly installed with a first rotating shaft (23), the outer surface of the first rotating shaft (23) is movably sleeved with a fixing plate (22), the middle part of the outer surface of the first rotating shaft (23) is fixedly sleeved with a connecting sleeve rod (24), both sides of the connecting sleeve rod (24) are movably sleeved with a self-rotating shaft (25), both sides of the outer surface of the self-rotating shaft (25) are provided with stirring rods (29), both ends of the self-rotating shaft (25) are fixedly installed with limiting discs (28), both sides of the outer surface of the self-rotating shaft (25) are fixedly sleeved with transmission gears (26), and the inner ring gear (27) is fixedly installed on both sides of the inner cavity of the liquid tank (1); The building material processing structure (7) includes a plate conveying roller (71), a support frame (72), a liquid passing hopper (73), a building material mold (74), a support arm (75), a connecting plate (76) and a dryer (77). The plate conveying roller (71) is arranged at the left bottom of the tubular liquid outlet part (6), both sides of the top of the plate conveying roller (71) are fixedly installed with support frames (72), a liquid passing hopper (73) is fixedly installed in the inner cavity of the support frame (72), a building material mold (74) is fixedly installed on one side of the top of the plate conveying roller (71), both sides of the middle part of the plate conveying roller (71) are fixedly installed with support arms (75), a connecting plate (76) is fixedly installed on the inner side of the support arm (75), and a dryer (77) is fixedly installed at the bottom of the connecting plate (76).
2. The special equipment for producing an efficient building composite material according to claim 1, characterized in that, The building material processing structure (7) further includes a support plate (78), a first pneumatic cylinder (79), a first pneumatic rod (710), a first top plate (711), an auxiliary telescopic rod (712), a second servo motor (713), a second rotating shaft (714), a transmission belt (715), a cleaning roller (716), a first motor support base (717), a liquid outlet pipe (718), and a liquid storage tank (719). The support plate (78) is fixedly installed on both sides of the middle part of the sheet conveying roller (71). The middle part of the top of the support plate (78) is fixedly installed with a first pneumatic cylinder (79). The inner cavity of the first pneumatic cylinder (79) is movably sleeved with a first pneumatic rod (710). The top of the first pneumatic rod (710) is fixedly installed with a first top plate (711). Both sides of the bottom of the first top plate (711) are fixedly installed with auxiliary telescopic rods (712). The bottom of the first top plate (711) is fixedly installed with a first motor support base (717). The inner cavity of the first motor support base (717) is fixedly sleeved with a second servo motor (713). One end of the output shaft of the second servo motor (713) is fixedly sleeved with a second rotating shaft (714). One side of the second rotating shaft (714) is movably sleeved with a transmission belt (715). The middle part of the outer surface of the second rotating shaft (714) is fixedly installed with a cleaning roller (716). The top of the first top plate (711) is fixedly installed with a liquid storage tank (719). Both sides of the bottom of the liquid storage tank (719) are communicated with a liquid outlet pipe (718).
3. An efficient special equipment for producing building composite materials according to claim 1, characterized in that, The adsorption structure (8) includes a second motor support base (81), a third servo motor (82), a threaded column (83), a building material mold (74), a second pneumatic cylinder (85), a second pneumatic rod (86), an auxiliary sleeve plate (87), a second top plate (88), a reinforcing rib (89), and a fixing groove (816). The second motor support base (81) is fixedly installed on one side of the sheet conveying roller (71). The inner cavity of the second motor support base (81) is fixedly sleeved with a third servo motor (82). One end of the output shaft of the third servo motor (82) is fixedly sleeved with a threaded column (83). The outer surface of the threaded column (83) is threadedly sleeved with a threaded sleeve block (84). Both ends of the outer surface of the threaded sleeve block (84) are movably sleeved with a fixing groove (816). The top of the threaded sleeve block (84) is fixedly installed with a second pneumatic cylinder (85). The inner cavity of the second pneumatic cylinder (85) is movably sleeved with a second pneumatic rod (86). The top of the second pneumatic rod (86) is fixedly installed with a second top plate (88). One end of the outer surface of the second pneumatic rod (86) is fixedly installed with an auxiliary sleeve plate (87). Both sides of the auxiliary sleeve plate (87) are fixedly installed with a reinforcing rib (89).
4. An efficient special equipment for producing building composite materials according to claim 1, characterized in that, The adsorption structure (8) further includes an adsorber (810), a suction cup (811), a first grinding member (812), a limit connection disk (813), a first connection column (814), and a first grinding sandpaper (815). The adsorber (810) is fixedly installed on the top of the second top plate (88). Suction cups (811) are communicated with both sides of the bottom of the adsorber (810). A first grinding member (812) is fixedly installed on the top of the second top plate (88). A first connection column (814) is arranged at the bottom of the first grinding member (812). A limit connection disk (813) is fixedly installed on the outer surface of the first connection column (814). A first grinding sandpaper (815) is fixedly installed at the bottom of the first connection column (814).
5. An efficient special equipment for producing building composite materials according to claim 1, characterized in that, The grinding structure (9) includes a fixed box (91), a third motor support seat (92), a fourth servo motor (93), a third rotating shaft (94), a first rotating disk (95), a second connection column (96), a third connection column (97), a rotating sleeve rod (98), and a first movable sleeve rod (919). The fixed box (91) is fixedly installed on one side of the fixed groove (816). A third motor support seat (92) is fixedly installed on one side of the fixed box (91). A fourth servo motor (93) is fixedly installed in the inner cavity of the third motor support seat (92). One end of the output shaft of the fourth servo motor (93) is fixedly installed with a third rotating shaft (94). One end of the third rotating shaft (94) is fixedly installed with a first rotating disk (95). Second connection columns (96) are fixedly installed on both sides of the first rotating disk (95). The outer surface of the second connection column (96) is movably sleeved with a first movable sleeve rod (919). The inner cavity of the bottom of the first movable sleeve rod (919) is fixedly sleeved with a third connection column (97). The outer surface of the third connection column (97) is movably sleeved with a rotating sleeve rod (98).
6. An efficient special equipment for producing building composite materials according to claim 1, characterized in that, The grinding structure (9) further includes a fixed column (99), a first fixed sleeve block (910), a fourth connection column (911), a rotating sleeve block (912), a second grinding member (913), and a second grinding sandpaper (914). The fixed column (99) is movably sleeved in the middle of the rotating sleeve rod (98). A first fixed sleeve block (910) is fixedly sleeved in the middle of the outer surface of the fixed column (99). The first fixed sleeve block (910) is fixedly installed on the inner side of the fixed box (91). A fourth connection column (911) is fixedly sleeved on the outer surface of the top of the rotating sleeve rod (98). The outer surface of both sides of the fourth connection column (911) is movably sleeved with a rotating sleeve block (912). A second grinding member (913) is fixedly installed on one side of the rotating sleeve block (912). A second grinding sandpaper (914) is arranged on the inner side of the second grinding member (913).
7. An efficient special equipment for producing building composite materials according to claim 1, characterized in that, The grinding structure (9) further includes a fixed frame (915), a connecting spring (916), a guide post (917) and a carrier plate (918). The fixed frame (915) is arranged at the bottom of the inner cavity of the fixed box (91). Connecting springs (916) are connected to both sides of the top of the fixed frame (915). The top of the connecting spring (916) is connected to a fixed frame (915) identical to its bottom. Among them, a carrier plate (918) is fixedly installed at the top of the fixed frame (915). Guide posts (917) are fixedly installed on both sides of the top of the fixed frame (915). The guide posts (917) are movably sleeved with the fixed frame (915) at the top.
8. An efficient special equipment for producing building composite materials according to claim 1, characterized in that, The liquid metering and extraction structure (10) includes a bottom plate (101), a support rod (102), a clamping plate (103), a liquid passing box (104), a fourth motor support seat (105), a fifth servo motor (106), a fourth rotating shaft (107), a second fixed sleeve block (108), a second rotating disk (109), a connecting shaft (1011), a second movable sleeve rod (1012), a liquid outlet groove (1013) and a translation column (1014). The bottom plate (101) is arranged at the bottom of the right tubular liquid outlet part (6). The support rod (102) is fixedly sleeved in the inner cavity of the bottom plate (101). A clamping plate (103) is fixedly sleeved in the middle of the outer surface of the support rod (102). The liquid passing box (104) is fixedly installed at the top of the support rod (102). A fourth motor support seat (105) is fixedly installed on one side of the liquid passing box (104). The fifth servo motor (106) is fixedly sleeved in the inner cavity of the fourth motor support seat (105). One end of the output shaft of the fifth servo motor (106) is fixedly sleeved with the fourth rotating shaft (107). The middle of the outer surface of the fourth rotating shaft (107) is movably sleeved with the second fixed sleeve block (108). The second fixed sleeve block (108) is fixedly installed on one side of the liquid passing box (104). The second rotating disk (109) is fixedly installed at the bottom of the fourth rotating shaft (107). The connecting shaft (1011) is fixedly installed at the bottom of the second rotating disk (109). The outer surface of the connecting shaft (1011) is movably sleeved with the second movable sleeve rod (1012). The translation column (1014) is movably sleeved on one side of the second movable sleeve rod (1012). The liquid outlet groove (1013) is fixedly installed on one side of the bottom of the clamping plate (103).
9. The special equipment for producing an efficient building composite material according to claim 1, characterized in that, The liquid quantitative extraction structure (10) further includes a translation plate (1015), a vertical rod (1016), a bottom guide rail (1017), multi-size card slots (1018), a top guide rail (1019), a liquid outlet (1020), and a liquid passage frame (1021). The translation plate (1015) is fixedly installed at the top of the translation column (1014). One side of the translation plate (1015) is fixedly installed with multi-size card slots (1018). Both sides of the multi-size card slots (1018) are provided with top guide rails (1019). The top guide rails (1019) are fixedly installed on both sides of the bottom of the liquid passage box (104). A liquid outlet (1020) is opened at the bottom of the liquid passage box (104). Both sides of the bottom of the translation plate (1015) are fixedly installed with vertical rods (1016). Both sides of the bottom of the vertical rods (1016) are fixedly installed with bottom guide rails (1017).
10. An efficient special equipment for producing building composite materials according to claim 1, characterized in that, A liquid infusion port (4) is fixedly installed on the right side of the top of the liquid tank (1). A feed port (3) is fixedly installed on the left side of the top of the liquid tank (1). (13) is fixedly installed in the middle of the outer surface of (6). A blanking frame (11) is arranged on one side of the grinding structure (9). A building material conveyor belt (12) is arranged at the bottom of the blanking frame (11).