Ceramic tile soaking equipment for constructional engineering

Through the multi-angle heat-feeding drum blow drying technology designed by the heating box and limiting plate, and the combination of multi-layer filtration and water-swalking mechanism, the problem of slow drying speed of traditional tile soaking equipment is solved, and an efficient, uniform and energy-saving tile drying effect is achieved, meeting the construction needs of construction projects.

CN120384623AInactive Publication Date: 2025-07-29LUOJIANG MEILI JU BUILDING MATERIALS CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510621370.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-14
Publication Date
2025-07-29
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Traditional ceramic tile soaking equipment relies on natural ambient temperature or the slow drying speed of the fan, which causes uneven moisture evaporation on the surface of the ceramic tile, affecting the construction progress and may cause quality problems.

Method used

The heating box and limiting plate design are adopted, combined with a multi-angle heat transfer cylinder and a fan to achieve uniform blow-drying of hot air; combined with a multi-layer filtration system, including a filter and an activated carbon filter, to achieve efficient purification and environmentally friendly emissions; the water-shelting mechanism is used to remove surface moisture through centrifugal force.

Benefits of technology

Significantly shortens drying time, improves drying efficiency and quality, ensures uniform drying of the tiles surface, reduces moisture residue, improves construction progress and treatment quality, and has the advantages of energy saving and environmental protection.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120384623A_ABST
    Figure CN120384623A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of constructional engineering, and discloses constructional engineering ceramic tile soaking equipment which comprises an L-shaped supporting plate and a soaking barrel, the soaking barrel is fixedly connected to the top of the L-shaped supporting plate, a moving mechanism is arranged on the outer side of the L-shaped supporting plate, the moving mechanism is connected with a water throwing mechanism, and the water throwing mechanism is connected with the soaking barrel. A water throwing mechanism is arranged on the outer side of the soaking barrel, a plurality of placing mechanisms are arranged on the outer side of the water throwing mechanism, a blow-drying mechanism is arranged on the outer side of the soaking barrel, and a filtering mechanism is arranged outside the L-shaped supporting plate and connected with the soaking barrel. And the blow-drying mechanism comprises a heating box and a limiting plate, the heating box is installed on the outer side of the L-shaped supporting plate, and a heating wire is installed in the heating box. Air is sucked in and preheated through the second draught fan, after the air is heated through the heating wire in the heating box, hot air is evenly conveyed to the surfaces of the ceramic tiles through the heat conveying barrel and the first draught fan, and efficient blow-drying is achieved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the technical field of construction engineering, in particular to a ceramic tile soaking device for construction engineering. Background Art

[0002] Ceramic tiles are made from refractory metal oxides and semi-metal oxides through a process of grinding, mixing, pressing, and glazing to create an acid- and alkali-resistant porcelain or stone material for construction and decoration. After construction is complete, tiles are laid to enhance the building's aesthetics. They are typically soaked in water before laying to allow the pores to absorb moisture. This prevents hollowing, falling off, cracking, or poor adhesion.

[0003] Traditional tile soaking equipment usually adopts a relatively simple structure and method. Generally, the tiles are placed in a soaking bucket, and after a certain period of soaking, they are taken out and dried naturally or simply blown dry with a fan.

[0004] Traditional tile drying equipment relies solely on natural ambient temperature or a breeze from a fan. This slows the evaporation of moisture from the tile surface, significantly prolonging the drying process and severely impacting the construction schedule. Furthermore, single-directional airflow cannot guarantee uniform heating and drying of all tile surfaces, leading to uneven moisture retention on the tile surface. This not only further prolongs drying time but can also cause quality issues such as loose adhesion, hollowing, and even tile shedding during subsequent tiling, compromising tile quality. Summary of the invention

[0005] In response to the shortcomings of the existing technology, the present invention provides a tile soaking equipment for construction projects, which solves the problem that traditional equipment relies only on natural ambient temperature or fan breeze when drying tiles, resulting in slow evaporation of moisture on the tile surface, greatly extending the drying time and seriously affecting the construction progress of the construction project.

[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: A tile soaking device for construction engineering, comprising an L-shaped support plate and a soaking bucket, wherein the soaking bucket is fixedly connected to the top of the L-shaped support plate, a moving mechanism is provided on the outside of the L-shaped support plate, the moving mechanism is connected to a water-spraying mechanism, the water-spraying mechanism is connected to the soaking bucket, a plurality of placement mechanisms are provided on the outside of the water-spraying mechanism, a drying mechanism is provided on the outside of the soaking bucket, a filtering mechanism is provided on the outside of the L-shaped support plate, and the filtering mechanism is connected to the soaking bucket; The drying mechanism includes a heating box and a limit plate. The heating box is installed on the outside of the L-shaped support plate. A heating wire is installed inside the heating box. The bottom of the heating box is connected to a spring tube. The spring tube is connected to a heat supply tube. The outside of the heat supply tube is fixedly connected to the limit plate through a mounting rod. A blower 1 is installed inside the heat supply tube. A motor 2 is installed on the top of the limit plate. The output end of the motor 2 is fixedly connected to a gear. The outside of the soaking barrel is fixedly connected to a gear ring. The gear is meshed with the gear ring. The outside of the soaking barrel is fixedly connected to a limit block. A limit groove is provided on the inside of the limit block. The limit plate is cross-shaped at one end close to the soaking barrel, and the limit plate is slidably connected to the limit groove.

[0007] Preferably, the top of the heating box is connected to a conveying cylinder, and a second fan is installed inside the conveying cylinder.

[0008] Preferably, one end of the heat delivery cylinder close to the soaking barrel and the top of the conveying cylinder are both fixedly connected with a central cover, and the inner walls of the heat delivery cylinder and the conveying cylinder are both installed with a barrier net.

[0009] Preferably, the moving mechanism includes motor 1, which is installed on the outside of the L-shaped support plate. The output end of motor 1 is fixedly connected to a screw, the external thread of the screw is connected to a threaded block, and the threaded block is fixedly connected to a connecting plate on the side close to the soaking barrel. A limit assembly is provided on the outside of the threaded block, and the limit assembly is used to limit the threaded block when it moves.

[0010] Preferably, the limiting assembly includes a limiting block, which is fixedly connected to the side of the threaded block close to the L-shaped support plate. A limiting groove is opened on the side of the L-shaped support plate close to the threaded block, and the limiting block is slidably connected to the limiting groove.

[0011] Preferably, the water-throwing mechanism includes a connecting cylinder and a connecting column, the connecting cylinder is rotatably connected to the end of the connecting plate, the connecting column is fixedly connected to the inner bottom wall of the soaking barrel, the connecting cylinder is sleeved on the outside of the connecting column, a ball is installed at the bottom end of the connecting cylinder, a guide groove is opened on the outside of the connecting column, and the ball is arranged to roll with the guide groove.

[0012] Preferably, the placement mechanism includes a placement box, which is fixedly connected to the outside of the connecting tube. The outside of the placement box is rotatably connected to two box doors, and the two box doors are connected by door pins. The upper and lower sides of the interior of the placement box are fixedly connected to multiple sets of fixed plates, and the placement box and the outside of the placement box are both provided with multiple through holes.

[0013] Preferably, the filtering mechanism includes a filtering box, a first filter screen, a second filter screen, a first activated carbon filter screen, and a second activated carbon filter screen. The filtering box is fixedly connected to the outside of the L-shaped support plate through a bracket. Two partition plates are fixedly connected to the inner wall of the filtering box. The first filter screen is inserted between the two partition plates, and two first activated carbon filter screens are inserted between the two partition plates. The two second filter screens are inserted between the filtering box and the partition plates, and the four second activated carbon filter screens are inserted between the filtering box and the partition plates. The filtering box is communicated with the soaking barrel through a conveying pipe. A water outlet pipe is communicated with one side of the filtering box away from the L-shaped support plate. A detector is arranged on the outer side of the water outlet pipe. The water outlet pipe is communicated with the conveying pipe through a return pipe. Control valves are arranged on the outer sides of the conveying pipe, the water outlet pipe, and the return pipe.

[0014] The present invention provides a tile soaking device for construction engineering. It has the following beneficial effects: 1. In the present invention, the air is inhaled and preheated by the second blower. After the heating wire in the heating box heats the air, the hot air is evenly conveyed to the tile surface through the heat delivery cylinder and the first blower, realizing efficient air drying. The limiting plate rotates around the soaking barrel, enabling the hot air to act on the tile surface from multiple angles, further accelerating the evaporation of moisture. The design of multi-angle and uniform air drying significantly shortens the drying time, improves the efficiency, and at the same time avoids moisture residue, improving the drying effect and the quality of tile treatment.

[0015] 2. In the present invention, through the multi-layer filtering and adsorption purification system, the first filter screen and the second filter screen are used to intercept large particle impurities and avoid blocking the subsequent filter screens. At the same time, deep purification is carried out through the first activated carbon filter screen and the second activated carbon filter screen, effectively removing organic impurities, odors, and heavy metal ions, ensuring the high cleanliness of the soaking liquid. The detector monitors the indexes of the soaking liquid in real time, and intelligent discharge or return circulation is realized through the control valve, ensuring that the discharged liquid meets the standards, improving the filtering efficiency and reducing pollution emissions, with excellent environmental protection performance.

[0016] 3. In the present invention, the rolling ball rolls in the guide groove, enabling the connecting cylinder to drive the placing box to rotate synchronously. The soaking liquid on the tile surface is quickly thrown out through the through holes by centrifugal force and flows back to the bottom of the soaking barrel. It efficiently removes the excess moisture on the tile surface, significantly reducing the water content, and provides preparation for the subsequent drying process. This process improves the overall working efficiency, reduces the energy consumption and time cost required for drying, and at the same time ensures the quality of tile treatment, with the advantages of energy conservation, environmental protection, and economy. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is a three-dimensional view of the present invention; Figure 2 is a side view of the present invention; Figure 3 is a structural diagram of the limiting groove of the present invention; Figure 4Schematic diagram of the internal structure of the soaking barrel of the present invention; Figure 5 Schematic diagram of the structure of the placement mechanism of the present invention; Figure 6 For the present invention Figure 5 Enlarged view of part A in; Figure 7 Schematic diagram of the structure of the fixing plate of the present invention; Figure 8 Schematic diagram of the structure of the guide groove of the present invention; Figure 9 Schematic diagram of the structure of the spring tube of the present invention; Figure 10 Schematic diagram of the internal structure of the heating box of the present invention; Figure 11 Schematic diagram of the structure of the limit block of the present invention; Figure 12 Schematic diagram of the structure of the filtering mechanism of the present invention; Figure 13 Schematic diagram of the structure of the filter net of the present invention; Figure 14 Schematic diagram of the structure of the activated carbon filter net of the present invention.

[0018] Wherein, 1, L-shaped support plate; 2, soaking barrel; 3, moving mechanism; 301, motor one; 302, screw rod; 303, threaded block; 304, limit block; 305, limit groove; 306, connecting plate; 4, water throwing mechanism; 401, connecting cylinder; 402, connecting column; 403, ball; 404, guide groove; 5, placement mechanism; 501, placement box; 502, box door; 503, fixing plate; 504, through hole; 505, door bolt; 6, air drying mechanism; 601, heating box; 602, heating wire; 603, spring tube; 604, heat delivery tube; 605, fan one; 606, concentrated cover; 607, mounting rod; 608, limit plate; 609, motor two; 6010, gear; 6011, toothed ring; 6012, limiting block; 6013, limiting groove; 6014, conveying tube; 6015, fan two; 6016, barrier net; 7, filtering mechanism; 701, filter box; 702, conveying pipe; 703, partition board; 704, filter net one; 705, filter net two; 706, detector; 707, activated carbon filter net one; 708, activated carbon filter net two; 709, water outlet pipe; 7010, return pipe; 7011, control valve. Detailed implementation manners

[0019] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0020] Please refer to Figure 1 - Figure 14 , an embodiment of the present invention provides a tile soaking device for construction engineering, including an L-shaped support plate 1 and a soaking barrel 2. The L-shaped support plate 1 provides a stable support structure for the entire device, ensuring that components such as the soaking barrel 2, the moving mechanism 3, the air-drying mechanism 6, and the filtering mechanism 7 can be stably installed and operated. The soaking barrel 2 is fixedly connected to the top of the L-shaped support plate 1. The soaking barrel 2 serves as the main place for tile soaking. Fixed to the top of the L-shaped support plate 1, it can hold a sufficient amount of soaking liquid so that the tiles can be completely immersed therein. A moving mechanism 3 is arranged on the outside of the L-shaped support plate 1. The moving mechanism 3 enables the placement mechanism 5 to be driven into the soaking barrel 2 through the water-slinging mechanism 4, and then the tiles placed in the placement mechanism 5 can be soaked. The moving mechanism 3 is connected to a water-slinging mechanism 4, and the water-slinging mechanism 4 is connected to the soaking barrel 2. The water-slinging mechanism 4 enables the residual soaking liquid on the surface of the tiles to be thrown out by centrifugal force after the tiles are soaked, which can quickly reduce the water content of the tiles, shorten the time and energy consumption required for subsequent drying, and improve the overall tile processing efficiency. A plurality of placement mechanisms 5 are arranged on the outside of the water-slinging mechanism 4. The placement mechanism 5 provides a special placement space for the tiles. The internal fixing plate 503 can fix the tiles to prevent the tiles from colliding and falling during soaking, water-slinging, and air-drying processes, ensuring the safety and stability of the tile processing process. An air-drying mechanism 6 is arranged on the outside of the soaking barrel 2. The air-drying mechanism 6 dries the tiles by heating and blowing. It can quickly remove the moisture remaining on the surface of the tiles after soaking and water-slinging, accelerate the drying speed of the tiles, improve the overall efficiency of tile pretreatment, shorten the time interval from soaking to usability of the tiles, and thus speed up the construction progress of the construction project. A filtering mechanism 7 is arranged outside the L-shaped support plate 1. The filtering mechanism 7 is connected to the soaking barrel 2 and can filter and purify the used soaking liquid in the soaking barrel 2. The discharged filtered soaking liquid can reduce environmental pollution, meet environmental protection requirements, achieve sustainable development of tile soaking treatment in construction engineering, and improve the environmental friendliness and economic benefits of the entire production process.

[0021] The drying mechanism 6 includes a heating box 601 and a limiting plate 608. The heating box 601 is installed on the outer side of the L-shaped support plate 1. A heating wire 602 is installed inside the heating box 601. A spring tube 603 is connected to the bottom of the heating box 601. The spring tube 603 is connected to a heat delivery cylinder 604. The outer side of the heat delivery cylinder 604 is fixedly connected to the limiting plate 608 through a mounting rod 607. A first blower 605 is installed inside the heat delivery cylinder 604. A second motor 609 is installed on the top of the limiting plate 608. The output end of the second motor 609 is fixedly connected to a gear 6010. A toothed ring 6011 is fixedly connected to the outer side of the soaking barrel 2. The gear 6010 is meshed with the toothed ring 6011. A limiting block 6012 is fixedly connected to the outside of the soaking barrel 2. A limiting groove 6013 is formed inside the limiting block 6012. One end of the limiting plate 608 close to the soaking barrel 2 is cross-shaped. The limiting plate 608 is slidably connected to the limiting groove 6013.

[0022] The heating wire 602 inside the heating box 601 heats the air, and cooperates with the first blower 605 in the heat delivery cylinder 604. The first blower 605 promotes the accelerated flow of the hot air and uniformly blows the hot air onto the ceramic tiles through the concentrating hood 606, realizing the rapid gasification and evaporation of the moisture on the surface of the ceramic tiles and improving the drying efficiency. The second motor 609 drives the gear 6010 to rotate, which meshes with the toothed ring 6011 fixed to the outer side of the soaking barrel 2, driving the limiting plate 608 to slide in the limiting groove 6013 of the limiting block 6012 outside the soaking barrel 2, thereby driving the heat delivery cylinder 604 connected to the limiting plate 608 through the mounting rod 607 to rotate around the soaking barrel 2, enabling the hot air blown by the first blower 605 to dry the ceramic tiles from multiple different directions, realizing the all-round acceleration of the evaporation rate of the moisture on the surface of the ceramic tiles, ensuring that the ceramic tiles reach the dry state in a short time, avoiding drying dead corners, improving the uniformity and integrity of the drying of the ceramic tiles, ensuring the stable and reliable quality of the ceramic tiles after drying, meeting the strict requirements of the subsequent construction of the building project for the drying degree of the ceramic tiles, and improving the efficiency and practicality of the entire ceramic tile pretreatment process. The toothed ring 6011 is an incomplete toothed ring 6011, so that the gear 6010 will not touch the connecting plate 306 during the movement and cause damage.

[0023] Please refer to Figure 9 , a delivery tube 6014 is connected to the top of the heating box 601. A second blower 6015 is installed inside the delivery tube 6014.

[0024] Through the second blower 6015 inside the delivery tube 6014 and in cooperation with the external environment, the surrounding air is inhaled and delivered into the heating box 601, realizing the effect of providing a sufficient air source for subsequent drying; through the airflow pushing effect generated by the second blower 6015 and in cooperation with the heating wire 602 inside the heating box 601, the air is quickly heated when passing through the heating wire 602, realizing the effect of quickly converting the normal temperature air into hot air and providing heat for the drying of the ceramic tiles.

[0025] See also Figure 9 The end of the heat supply tube 604 close to the soaking barrel 2 and the top of the conveying tube 6014 are fixedly connected with a central cover 606, and the inner walls of the heat supply tube 604 and the conveying tube 6014 are both installed with a barrier net 6016.

[0026] By cooperating with the fan 1 605 in the heat supply tube 604 and the barrier net 6016, a pure heat flow is provided to the tiles through the centralized cover 606, thereby enhancing local drying and avoiding the influence of impurities; by cooperating with the fan 2 6015 in the conveying tube 6014 and the barrier net 6016, the tiles are widely and evenly dried through the top centralized cover 606, thereby improving the overall drying efficiency and uniformity, reducing quality problems, meeting construction requirements, and optimizing equipment efficiency.

[0027] See also Figure 1 - Figure 2 The moving mechanism 3 includes a motor 301, which is installed on the outside of the L-shaped support plate 1. The output end of the motor 301 is fixedly connected to a screw 302, and the external thread of the screw 302 is connected to a threaded block 303. The threaded block 303 is fixedly connected to a connecting plate 306 on the side close to the soaking barrel 2.

[0028] The motor 301 drives the screw 302 to rotate, and cooperates with the threaded block 303 to make it move linearly, thereby driving the connecting plate 306 to move synchronously, thereby converting the motor's rotational motion into linear motion to accurately control the position of the connecting plate 306, completing the automation of processes such as tile soaking and water removal, improving efficiency, reducing manual labor intensity and the risk of improper operation, ensuring the safety and stability of tile processing, and improving the practicality and reliability of the equipment.

[0029] See also Figure 1 - Figure 2 A limit assembly is set on the outside of the threaded block 303, which is used to limit the threaded block 303 when it moves. The limit assembly includes a limit block 304, which is fixedly connected to the side of the threaded block 303 close to the L-shaped support plate 1. A limit groove 305 is opened on the side of the L-shaped support plate 1 close to the threaded block 303, and the limit block 304 is slidably connected to the limit groove 305.

[0030] Through the limit block 304, which cooperates with the limit groove 305, when the threaded block 303 moves driven by the screw rod 302, the limit block 304 slides in the limit groove 305, thereby achieving the effect of accurately limiting the moving direction of the threaded block 303; through this precise limiting effect, the threaded block 303 is avoided from deflecting, shaking or rotating due to uneven force or other factors during the movement process, ensuring that the threaded block 303 always moves stably along the predetermined straight line trajectory.

[0031] See alsoFigure 4 , Figure 5 , Figure 6 and Figure 8 , the water throwing mechanism 4 includes a connecting cylinder 401 and a connecting column 402. The connecting cylinder 401 is rotatably connected to the end of the connecting plate 306, the connecting column 402 is fixedly connected to the inner bottom wall of the soaking barrel 2, the connecting cylinder 401 is sleeved outside the connecting column 402, a ball 403 is installed at the bottom end of the connecting cylinder 401, a guide groove 404 is formed outside the connecting column 402, and the ball 403 is arranged to roll in the guide groove 404.

[0032] Through the connecting cylinder 401 and the connecting column 402, the connecting cylinder 401 is sleeved outside the connecting column 402, and with the cooperation of the ball 403 at the bottom end of the connecting cylinder 401 and the guide groove 404 outside the connecting column 402 for rolling arrangement, when the connecting cylinder 401 is driven to rotate by an external force, the ball 403 rolls smoothly in the guide groove 404, achieving the effect that the connecting cylinder 401 can rotate stably and flexibly around the connecting column 402; through the rotation of the connecting cylinder 401 and the connecting plate 306, when the connecting plate 306 drives the connecting cylinder 401 to rise out of the soaking liquid, the connecting cylinder 401 can quickly respond to the external rotational power, achieving the effect of quickly starting the rotational water throwing action; through the coordinated operation of the above structures, the tiles placed in the placement box 501 fixed on the connecting cylinder 401 can rotate, and the soaking liquid on the surface of the tiles is quickly thrown out through the through holes 504 of the placement box 501 by centrifugal force and flows back to the bottom of the soaking barrel 2, efficiently removing the excess water on the surface of the tiles, significantly reducing the water content, and greatly reducing the energy consumption and time cost for the subsequent drying process.

[0033] Please refer to Figure 4 , Figure 5 and Figure 7 , the placement mechanism 5 includes a placement box 501. The placement box 501 is fixedly connected to the outside of the connecting cylinder 401. Two box doors 502 are rotatably connected to the outside of the placement box 501. The two box doors 502 are connected by a door pin 505. Multiple groups of fixing plates 503 are fixedly connected to the upper and lower sides inside the placement box 501. Multiple through holes 504 are formed in both the placement box 501 and the outside of the placement box 501.

[0034] By cooperating with the placement box 501 and the connecting tube 401, the placement box 501 is firmly fixed on the outside of the connecting tube 401. When the connecting tube 401 is lifted and rotated, the placement box 501 can move and rotate synchronously with it, thereby providing a stable carrying space for the tiles, ensuring that the tiles are always in the preset position during the processes of soaking, water-shedding and drying, and avoiding poor treatment effects due to position offset; the two box doors 502 that rotate on the outside of the placement box 501 cooperate with the door pins 505. When placing and taking out the tiles, the box doors 502 are opened and closed by the door pins 505, which realizes the effect of convenient and quick operation of taking and placing tiles, thereby improving work efficiency. At the same time, the box doors 502 are closed during the treatment process. It can prevent tiles from falling accidentally and ensure safe operation; through the multiple groups of fixing plates 503 on the upper and lower sides of the placement box 501, and the multiple through holes 504 on the outside of the placement box 501, during soaking, the soaking liquid fully contacts the tiles through the through holes 504, and the fixing plates 503 fix the tiles to prevent them from displacement, so that the tiles can be fully contacted with the soaking liquid and maintain stability during the soaking process, thereby improving the uniformity and thoroughness of the soaking. When shaking off water and blowing dry, the through holes 504 ensure the smooth circulation of water and hot air, accelerate the drying and dehydration of the tiles, improve the processing efficiency and quality, meet the requirements of construction projects for efficient, stable and high-quality tile pretreatment, and optimize the functionality and practicality of the entire tile soaking equipment.

[0035] See also Figure 1 、 Figure 2 、 Figure 12 、 Figure 13 and Figure 14 The filter mechanism 7 includes a filter box 701, a filter screen 1 704, a filter screen 2 705, an activated carbon filter screen 1 707 and an activated carbon filter screen 2 708. The filter box 701 is fixedly connected to the outside of the L-shaped support plate 1 through a bracket. The inner wall of the filter box 701 is fixedly connected to two partitions 703. The filter screen 1 704 is inserted between the two partitions 703. The two activated carbon filter screens 1 707 are inserted between the two partitions 703. The two filter screens 2 705 are inserted between the filter box 701 and the partition. 703, four activated carbon filter screens 708 are inserted between the filter box 701 and the partition 703, the filter box 701 is connected to the soaking bucket 2 through the delivery pipe 702, and the side of the filter box 701 away from the L-shaped support plate 1 is connected to the water outlet pipe 709, and a detector 706 is provided on the outside of the water outlet pipe 709. The water outlet pipe 709 is connected to the delivery pipe 702 through the return pipe 7010, and the delivery pipe 702, the water outlet pipe 709 and the return pipe 7010 are all provided with a control valve 7011 on the outside.

[0036] Through the filter box 701, in cooperation with the bracket, it is stably fixed outside the L-shaped support plate 1, providing a solid support and accommodation space for the internal filter components, achieving the effect of constructing a stable filtration environment; through the two partition plates 703, in cooperation with the first filter screen 704, when the immersion liquid enters the filter box 701 from the delivery pipe 702, it first passes through the first filter screen 704, and the partition plate 703 positions and fixes it. The first filter screen 704 intercepts large particle impurities in the immersion liquid, achieving the effect of initially filtering impurities and preventing large particles from clogging subsequent filter screens; through the cooperation of the partition plate 703 and the two first activated carbon filter screens 707, the preliminarily filtered immersion liquid then flows through the first activated carbon filter screen 707. The porous structure of the activated carbon adsorbs harmful substances such as organic impurities and some heavy metal ions in the immersion liquid, achieving the effect of deeply purifying the immersion liquid and improving water quality; through the two second filter screens 705 between the filter box 701 and the partition plate 703, it further intercepts the smaller particle impurities remaining after passing through the first activated carbon filter screen 707, cooperating with the previous filtration steps, achieving the effect of further fine filtration and improving the cleanliness of the immersion liquid; through the four second activated carbon filter screens 708, it deeply adsorbs the remaining trace impurities and odor substances in the immersion liquid again, acting together with the previous multi-layer filtration and adsorption, achieving the effect of ensuring that the immersion liquid meets the high cleanliness standard; through the detector 706 outside the water outlet pipe 709, in cooperation with the control valve 7011, the detector 706 real-time monitors various indicators of the immersion liquid after multi-layer filtration and purification. According to the detection results, by controlling the control valves 7011 on the delivery pipe 702, the water outlet pipe 709 and the return pipe 7010, it achieves the effect of intelligently judging whether the immersion liquid meets the requirements for reuse or discharge standards, which can not only ensure that the discharged liquid meets the standards and reduce environmental pollution, but also improve the recycling rate of the immersion liquid and reduce production costs, reflecting the dual benefits of environmental protection and economy, meeting the requirements of the construction project for the efficient, environmental protection and economic treatment of the tile immersion liquid, and optimizing the sustainability and stability of the entire tile immersion equipment.

[0037] Working principle: Place the tiles between the four fixed plates 503, then close the box door 502, and lock the box door 502 through the door lock 505 to prevent the tiles from falling. When the tiles are placed, start the first motor 301 to drive the screw 302 to rotate. The rotation of the screw 302 drives the threaded block 303 to move. At the same time, when the threaded block 303 moves, it will drive the limit block 304 to slide in the limit groove 305, and the connecting plate 306 will also move with the rotation of the screw 302. The connecting cylinder 401 at the end of the connecting plate 306 drops accordingly, and the placement box 501 drops stably with the connecting cylinder 401 into the immersion liquid in the immersion barrel 2. The immersion liquid contacts the tiles through the through holes 504 of the placement box 501, realizing tile immersion, and allowing the tiles to fully absorb the components in the immersion liquid to achieve pretreatment effects such as cleaning the surface and improving adhesion.

[0038] After the soaking is completed, the first motor 301 rotates in reverse to raise the connecting cylinder 401 away from the soaking liquid. At this time, the ball 403 at the bottom end of the connecting cylinder 401 rolls in the guide groove 404 of the connecting column 402, and the rotation of the connecting cylinder 401 drives the placing box 501 to rotate synchronously. Due to the centrifugal force, the residual soaking liquid on the surface of the ceramic tile is thrown out. The soaking liquid separated from the ceramic tile through the through hole 504 of the placing box 501 flows back to the bottom of the barrel under the obstruction of the inner wall of the soaking barrel 2, realizing the water throwing of the ceramic tile, reducing the water content of the ceramic tile, preparing for subsequent processes such as drying, improving the overall working efficiency and the quality of ceramic tile treatment, and reducing the energy consumption and time cost of subsequent drying.

[0039] By operating the second fan 6015, the air in the surrounding environment is inhaled and conveyed to the heating box 601 through the conveying cylinder 6014. The heating wire 602 in the heating box 601 heats the incoming air. The hot air is conveyed to the heat delivery cylinder 604 through the spring tube 603. A first fan 605 is installed inside the heat delivery cylinder 604, and the first fan 605 further promotes the flow of the hot air. The hot air enters the concentration hood 606 from the heat delivery cylinder 604, and the concentration hood 606 evenly blows the hot air onto the ceramic tile, causing the moisture on the surface of the ceramic tile to start vaporizing and evaporating, drying the surface of the ceramic tile, and performing preliminary hot air drying. At the same time, the second motor 609 drives the gear 6010 to rotate, which meshes with the gear ring 6011 to make the limiting plate 608 slide on the inner wall of the limiting groove 6013 and rotate around the soaking barrel 2. The limiting plate 608 drives the heat delivery cylinder 604 to move through the mounting rod 607. During the movement of the limiting plate 608, the hot air blown by the first fan 605 can dry the ceramic tile from multiple different directions, greatly accelerating the evaporation rate of the moisture on the surface of the ceramic tile and enabling the ceramic tile to reach the dry state in a shorter time.

[0040] When the soaking liquid in the soaking barrel 2 needs to be discharged, by opening the control valve 7011 on the delivery pipe 702, the soaking liquid will first pass through the first filter screen 704 and the second filter screen 705 to intercept larger particulate impurities in the soaking liquid, preventing these large particulate impurities from entering the subsequent filtration process and avoiding clogging the subsequent filter screens, ensuring the smooth progress of the filtration process. When the soaking liquid reaches the first activated carbon filter screen 707 and the second activated carbon filter screen 708, the adsorption characteristics of activated carbon are used to deeply purify the soaking liquid, further removing possible residual organic impurities, odor substances, and a small amount of heavy metal ions, etc., to ensure that the soaking liquid meets a high cleanliness standard. The soaking liquid after multi-layer filtration and adsorption purification will flow to the outlet pipe 709. The detector 706 provided on the outer side of the outlet pipe 709 will detect various indicators of the soaking liquid, such as pH value, turbidity, impurity content, etc. If the various indicators of the soaking liquid meet the standards, the control valve 7011 on the outlet pipe 709 will be opened to discharge the soaking liquid. If the various indicators of the soaking liquid do not meet the standards, the control valve 7011 on the outlet pipe 709 will not be opened, and the control valve 7011 on the return pipe 7010 will be opened to re-filter the soaking liquid, and it can only be discharged when the discharge requirements are met.

[0041] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A tile soaking device for construction engineering, comprising an L-shaped support plate (1) and a soaking barrel (2), characterized in that, The soaking barrel (2) is fixedly connected to the top of the L-shaped support plate (1). A moving mechanism (3) is arranged on the outer side of the L-shaped support plate (1). The moving mechanism (3) is connected to a water throwing mechanism (4). The water throwing mechanism (4) is connected to the soaking barrel (2). A plurality of placing mechanisms (5) are arranged on the outer side of the water throwing mechanism (4). A drying mechanism (6) is arranged on the outer side of the soaking barrel (2). A filtering mechanism (7) is arranged outside the L-shaped support plate (1). The filtering mechanism (7) is connected to the soaking barrel (2). The drying mechanism (6) includes a heating box (601) and a limiting plate (608). The heating box (601) is installed on the outer side of the L-shaped support plate (1). A heating wire (602) is installed inside the heating box (601). A spring tube (603) is communicated with the bottom of the heating box (601). The spring tube (603) is communicated with a heat delivery cylinder (604). The outer side of the heat delivery cylinder (604) is fixedly connected to the limiting plate (608) through a mounting rod (607). A blower one (605) is installed inside the heat delivery cylinder (604). A motor two (609) is installed on the top of the limiting plate (608). The output end of the motor two (609) is fixedly connected to a gear (6010). A toothed ring (6011) is fixedly connected to the outer side of the soaking barrel (2). The gear (6010) is meshed with the toothed ring (6011). A limiting block (6012) is fixedly connected to the outside of the soaking barrel (2). A limiting groove (6013) is opened on the inner side of the limiting block (6012). One end of the limiting plate (608) close to the soaking barrel (2) is cross-shaped. The limiting plate (608) is slidably connected with the limiting groove (6013).

2. The tile soaking device for construction engineering according to claim 1, characterized in that, A conveying cylinder (6014) is communicated with the top of the heating box (601). A blower two (6015) is installed inside the conveying cylinder (6014).

3. The tile soaking equipment for construction engineering according to claim 1, wherein, Centralized covers (606) are fixedly connected to one end of the heat delivery cylinder (604) close to the soaking barrel (2) and the top of the conveying cylinder (6014). Blocking nets (6016) are installed on the inner walls of the heat delivery cylinder (604) and the conveying cylinder (6014).

4. An immersion device for tiles used in construction engineering according to claim 1, characterized in that, The moving mechanism (3) includes a motor one (301). The motor one (301) is installed on the outer side of the L-shaped support plate (1). The output end of the motor one (301) is fixedly connected to a screw rod (302). A threaded block (303) is threadedly connected to the outside of the screw rod (302). A connecting plate (306) is fixedly connected to one side of the threaded block (303) close to the soaking barrel (2). A limiting component is arranged on the outer side of the threaded block (303). The limiting component is used for limiting the threaded block (303) when it moves.

5. The tile soaking device for construction engineering according to claim 4, characterized in that, The limiting component includes a limiting block (304), the limiting block (304) is fixedly connected to the side of the threaded block (303) close to the L-shaped support plate (1), a limiting groove (305) is opened on the side of the L-shaped support plate (1) close to the threaded block (303), and the limiting block (304) is slidably connected to the limiting groove (305).

6. The soaking device for tiles used in construction projects according to claim 1, wherein, The water throwing mechanism (4) includes a connecting cylinder (401) and a connecting column (402), the connecting cylinder (401) is rotatably connected to the end of the connecting plate (306), the connecting column (402) is fixedly connected to the inner bottom wall of the soaking barrel (2), the connecting cylinder (401) is sleeved outside the connecting column (402), a ball (403) is installed at the bottom end of the connecting cylinder (401), a guide groove (404) is opened on the outside of the connecting column (402), and the ball (403) is arranged to roll in the guide groove (404).

7. The tile soaking equipment for construction engineering according to claim 1, wherein, The placing mechanism (5) includes a placing box (501), the placing box (501) is fixedly connected to the outside of the connecting cylinder (401), two box doors (502) are rotatably connected to the outside of the placing box (501), the two box doors (502) are connected by a door pin (505), multiple groups of fixing plates (503) are fixedly connected to both the upper and lower sides inside the placing box (501), and a plurality of through holes (504) are opened on both the placing box (501) and the outer side of the placing box (501).

8. The soaking device for tiles used in construction projects according to claim 1, characterized in that, The filtering mechanism (7) includes a filtering box (701), a first filter screen (704), a second filter screen (705), a first activated carbon filter screen (707) and a second activated carbon filter screen (708), the filtering box (701) is fixedly connected to the outside of the L-shaped support plate (1) through a bracket, two partition plates (703) are fixedly connected to the inner wall of the filtering box (701), the first filter screen (704) is inserted between the two partition plates (703), two first activated carbon filter screens (707) are inserted between the two partition plates (703), the two second filter screens (705) are inserted between the filtering box (701) and the partition plates (703), and the four second activated carbon filter screens (708) are inserted between the filtering box (701) and the partition plates (703). The filtering box (701) is communicated with the soaking barrel (2) through a conveying pipe (702), a water outlet pipe (709) is communicated with the side of the filtering box (701) away from the L-shaped support plate (1), a detector (706) is arranged on the outside of the water outlet pipe (709), the water outlet pipe (709) is communicated with the conveying pipe (702) through a return pipe (7010), and control valves (7011) are arranged on the outside of the conveying pipe (702), the water outlet pipe (709) and the return pipe (7010).