Automatic drying system for mesh assembly

By dividing the drying process into surface drying and deep drying, using flipping and airflow to achieve uniform flow of the anti-corrosion liquid, and using temperature control components for thorough drying, the problems of uneven and cracked anti-corrosion layer during the drying process of aerated concrete slab steel mesh are solved, and the drying efficiency and anti-corrosion effect are improved.

CN120714872APending Publication Date: 2025-09-30YOUBO LUOKE NEW BUILDING MATERIALS (SUQIAN) CO LTD
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Patent Information

Application Number
CN202510980402.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-16
Publication Date
2025-09-30

AI Technical Summary

Technical Problem

The existing aerated concrete slab steel mesh is prone to uneven anti-corrosion layer and cracking of the anti-corrosion layer at the welding nodes during the drying process.

Method used

By setting up a circulation mechanism and a curing mechanism, the drying process is divided into surface drying and deep drying. The turning and airflow are used to achieve uniform flow of the anti-corrosion liquid to prevent the anti-corrosion layer from cracking at the welding nodes. The dipping mechanism is used for uniform coating and throwing out excess anti-corrosion liquid. The curing mechanism is used for thorough drying in a low-temperature-high-temperature-low-temperature environment.

Benefits of technology

It improves the coating effect of the preservative, reduces the dripping and cracking of the anti-corrosion layer, saves energy, occupies less space, and improves drying efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of mesh drying, in particular to an automatic drying system for a mesh assembly, which comprises a drying oven, a drying device and a control system, the traction mechanism is arranged above the anti-corrosion pool and is used for assisting the meshes to enter and exit from the drying oven; the dip-coating mechanism is arranged in the anti-corrosion pool and is used for dipping the mesh and throwing out redundant anti-corrosion liquid; the circulation mechanism is arranged above the anti-corrosion pool, is used for primarily drying the just dipped meshes, and comprises a fixing assembly which is vertically and slidably connected to the upper part of the anti-corrosion pool and a uniform assembly which is arranged on the fixing assembly; and the curing mechanism is arranged behind the circulation mechanism and used for deeply drying the meshes, and the curing mechanism comprises a moving assembly arranged behind the circulation mechanism and a temperature control assembly arranged in the middle of the moving assembly. The technical problems that an anti-corrosion layer is not uniform, and the anti-corrosion layer at the welding joint is prone to cracking are solved.
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Description

Technical Field

[0001] The present invention relates to the field of mesh drying, and in particular to an automatic drying system for mesh components. Background Art

[0002] Aerated concrete panels are a high-end aerated concrete product, particularly in today's China, where prefabricated construction is being vigorously promoted. They represent a key development direction for the aerated concrete industry. Furthermore, aerated concrete panels are a high-value, high-profit, and premium building material, widely used in important structural applications such as exterior walls, partitions, and roofing for industrial and residential buildings, as well as in the enclosure, infill, and surface decoration of new steel structures. A key difference between aerated concrete panels and aerated concrete blocks is that aerated concrete panels require different internal reinforcement designs, generally referred to as steel mesh, depending on the application and specifications. The steel mesh used in aerated concrete panels must undergo corrosion protection and drying to ensure the longevity of the panels and the bond between the aerated concrete and the mesh. Complete sets of equipment for manufacturing steel mesh fall under another category of mechanical equipment, and aerated concrete companies generally source these equipment from specialized domestic equipment manufacturers.

[0003] Patent document CN108890863B discloses an automated drying system for aerated concrete plate mesh, including a drying main body, which includes a box-out crane, an anti-corrosion impregnation tank, a hanging crane, a hanging conveyor, a roller buffer rack, a drying conveyor, an impregnation crane and a mesh transport vehicle. Mesh transport vehicles are provided at both ends of the drying main body, and a hanging crane is provided on one side of the mesh transport vehicle; the crane combination in the drying system is composed of a hanging crane, an impregnation crane and a box-out crane.

[0004] However, in actual use, quality problems such as uneven anti-corrosion layer and cracking of the anti-corrosion layer at the mesh welding nodes are likely to occur during the mesh impregnation and drying process. Summary of the Invention

[0005] The purpose of the present invention is to address the shortcomings of the existing technology. By setting up a circulation mechanism and a curing mechanism, the drying process is divided into surface drying and deep drying. For surface drying, the anti-corrosion liquid is uniformly flowed through flipping and airflow, and deep drying causes the anti-corrosion layer at the gap to actively crack, thereby solving the technical problems of uneven anti-corrosion layer and easy cracking of the anti-corrosion layer at the welding node.

[0006] In response to the above technical problems, the technical solutions adopted are as follows: An automated drying system for mesh components, comprising: An oven, wherein an anti-corrosion tank is provided in the oven; A traction mechanism, which is arranged above the anti-corrosion tank and is used to assist the mesh in entering and exiting the oven; A dipping mechanism, which is arranged in the anti-corrosion tank and is used to immerse the mesh and throw away excess anti-corrosion liquid; A circulation mechanism is provided above the anti-corrosion tank and is used for preliminary drying of the mesh that has just been impregnated. The circulation mechanism includes a fixing assembly for vertical sliding connection above the anti-corrosion tank and a uniform component provided on the fixing assembly. The fixing assembly fixes the mesh and continuously rotates, so that the unsolidified anti-corrosion liquid can be evenly coated on the surface of the mesh. At the same time, the uniform component further assists the flow of the anti-corrosion liquid and prevents the anti-corrosion liquid from collecting and dripping. The curing mechanism is arranged behind the circulation mechanism and is used to deeply dry the mesh. It includes a moving component arranged behind the circulation mechanism and a temperature control component arranged in the middle of the moving component. The moving component stacks and moves the mesh horizontally, and completes the drying in the low-temperature-high-temperature environment formed by the temperature control component.

[0007] Preferably, the traction mechanism includes a telescopic plate arranged on both sides of the oven inlet and outlet and horizontally slidably connected above the anti-corrosion pool, a plurality of groups of short rollers arranged on the telescopic plate, a push-pull plate horizontally slidably connected in the anti-corrosion pool, a roller table arranged on the side of the push-pull plate close to the oven inlet, and a pull rod rotatably connected to the roller table.

[0008] Preferably, the dipping mechanism includes a lifting frame vertically slidably connected to the anti-corrosion tank, a shaking plate arranged on the lifting frame, multiple groups of positioning blocks arranged around the shaking plate, and a pressure rod rotatably connected to the positioning blocks.

[0009] Preferably, the shaking plate is fixed to the output end of the motor through a universal joint, and the dipping mechanism also includes a wave ring arranged on the outside of the universal joint at the center of the shaking plate, and a limit rod fixed on the lifting frame and the upper end of which contacts the wave ring.

[0010] Preferably, the fixed assembly includes a mobile frame vertically slidably connected above the anti-corrosion pool, a flip frame rotatably connected in the middle of the mobile frame, a fixed rod fixedly connected in the middle of the flip frame, multiple groups of anti-bending rods arranged on the fixed rods, multiple groups of fixing clamps arranged on the fixed rods, two groups of hinged rods rotatably connected on both sides of the flip frame, and pressure rollers arranged on the hinged rods.

[0011] Preferably, the uniform component includes two sets of slide rails arranged on the upper and lower sides of the flip frame, a sliding rod slidably connected to the slide rails, an air duct rotatably connected to the sliding rod, and a weight fixed at the other end of the air duct outlet.

[0012] Preferably, the moving assembly includes a hanging part arranged above the circulation mechanism and a translation part arranged behind the hanging part, the hanging part includes a hanging frame horizontally slidably connected to the top of the oven, a plurality of clamps arranged on the side of the hanging frame, a magnetic rod fixed on the hanging frame toward the four corners, and a pressure block arranged on the inside of the magnetic rod and sliding vertically.

[0013] Preferably, the translation member includes four groups of chains arranged at the lower rear portion of the lifting member, multiple groups of mounting blocks fixed on the chains, fixing hooks rotatably connected to the mounting blocks, and a locking rod arranged above the fixing hooks.

[0014] Preferably, the temperature control assembly includes a high-temperature box arranged in the middle of the chain, multiple groups of air outlets arranged in the high-temperature box, and temperature locking parts arranged on the upper and lower sides of the high-temperature box.

[0015] As another preferred embodiment, the temperature locking component includes a reel slidably connected to the edge of the high temperature box, gears fixed at both ends of the reel, a rack fixed to the edge of the high temperature box and meshing with the gears, an insulation felt fixed at one end to the edge of the high temperature box and the other end fixed to the reel, and a magnet is provided on the edge of the insulation felt.

[0016] Beneficial effects of the present invention: (1) In the present invention, an oven is provided, and related equipment such as an anti-corrosion tank, a circulation mechanism, and a curing mechanism are all arranged inside the oven. At the same time, the circulation mechanism and the curing mechanism are used to vertically convey the mesh, which greatly reduces the floor space of the entire drying device and reduces the hoisting steps in the drying process, thereby saving energy and improving efficiency. (2) The present invention provides a dipping mechanism, and uses a perforated plate to cause the mesh to vibrate while rotating back and forth in a small amplitude. The vibration allows the antiseptic liquid to quickly impregnate the mesh, reducing the impregnation dead corners caused by cavitation. After the impregnation is completed, the excess antiseptic liquid can be quickly thrown away by centrifugation and vibration, avoiding dripping during the subsequent drying process. (3) The present invention continuously flips the mesh through the flow mechanism, and at the same time cooperates with the air flow that is always blown upward. On the one hand, the anti-corrosion liquid can flow to other positions as the mesh flips, rather than gathering at a certain position, resulting in uneven thickness of the anti-corrosion layer. On the other hand, it avoids the anti-corrosion liquid from gathering and dripping due to its high fluidity, resulting in a thinner upper part and thicker lower part of the mesh anti-corrosion layer, and reduces nipple-shaped paint droplets. (4) In the present invention, a curing mechanism is provided to actively bend the mesh inside first, and the anti-corrosion liquid is actively cracked by utilizing the high viscosity of the anti-corrosion liquid in the mesh gaps at this time, and then it is quickly dried at high temperature. On the one hand, the drying efficiency is improved, and on the other hand, the possibility of cracking of the anti-corrosion layer at the mesh welding nodes due to vibration bending after thorough drying is reduced.

[0017] In summary, the equipment has the advantages of high drying efficiency, simple structure and small space occupation, and is particularly suitable for the field of mesh drying technology. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for use in describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0019] Figure 1 The figure is a structural diagram of an automatic drying system for mesh components.

[0020] Figure 2 The figure is a schematic diagram of the internal structure of an automated drying system for mesh components.

[0021] Figure 3 It is a structural diagram of the traction mechanism.

[0022] Figure 4 It is a structural diagram of the dipping mechanism.

[0023] Figure 5 It is a structural diagram of the circulation mechanism.

[0024] Figure 6 It is a cross-sectional schematic diagram of the circulation mechanism.

[0025] Figure 7 Schematic diagram of the status of fixed components.

[0026] Figure 8 Schematic diagram of the working status of the uniform component.

[0027] Figure 9 A schematic diagram of the structure of the mobile component.

[0028] Figure 10 This is a structural diagram of the lifting parts.

[0029] Figure 11 Schematic diagram of the cracking state of the anti-corrosion layer at the gap.

[0030] Figure 12 It is a structural diagram of the storage component translation part.

[0031] Figure 13 Schematic diagram of the structure of the temperature control component.

[0032] Figure 14 Schematic diagram of the internal state of the temperature control component. DETAILED DESCRIPTION

[0033] The technical solutions in the embodiments of the present invention are clearly and completely described below with reference to the accompanying drawings.

[0034] Example 1 like Figure 1 、 Figure 2 As shown, an automatic drying system for mesh components includes: An oven 1, wherein an anti-corrosion tank 11 is provided in the oven 1; A traction mechanism 2 is provided above the anti-corrosion tank 11 and is used to assist the mesh in entering and exiting the oven 1; A dipping mechanism 3, which is disposed in the anti-corrosion tank 11 and is used to immerse the mesh and remove excess anti-corrosion liquid; A circulation mechanism 4 is provided above the antiseptic tank 11 and is used for preliminary drying of the mesh that has just been impregnated. The circulation mechanism 4 includes a fixing component 41 for vertical sliding connection above the antiseptic tank 11 and a uniform component 42 provided on the fixing component 41. The fixing component 41 fixes the mesh and then continuously rotates, so that the externally solidified antiseptic liquid can be evenly coated on the surface of the mesh. At the same time, the uniform component 42 further assists the flow of the antiseptic liquid and prevents the antiseptic liquid from collecting and dripping. The curing mechanism 5 is arranged behind the circulation mechanism 4 and is used to deeply dry the mesh. It includes a moving component 51 arranged behind the circulation mechanism 4 and a temperature control component 52 arranged in the middle of the moving component 51. The moving component 51 stacks and moves the mesh horizontally, and completes thorough drying in the low-temperature-high-temperature environment formed by the temperature control component 52.

[0035] In this embodiment, by setting up a dipping mechanism 3, a circulation mechanism 4 and a curing mechanism 5, after the mesh is dipped, the drying process is divided into two steps: surface drying and deep drying. The circulation mechanism 4 and the curing mechanism 5 are used to avoid problems such as dripping of the antiseptic liquid and cracking of the antiseptic liquid during surface drying and deep drying, thereby improving the coating effect of the preservative.

[0036] In detail, the mesh is dipped by the dipping mechanism 3. During the dipping process, the antiseptic liquid can be fully immersed into the gaps of the mesh when needed, and the excess antiseptic liquid can be thrown out after the dipping is completed. Then it enters the circulation mechanism 4, so that the mesh is continuously turned over, and gravity is used to make the antiseptic liquid that has not yet solidified on the mesh flow to achieve uniform coating, and the surface is dried, and then it is transported to the curing mechanism 5. The temperature difference is used to achieve thorough and rapid drying while avoiding cracking.

[0037] It should be noted that the mesh is made of multiple steel bars welded in a horizontal and vertical cross-arrangement. It passes through the anti-corrosion pool 11 and is coated with a layer of anti-corrosion liquid on the surface to improve its anti-corrosion performance. If the anti-corrosion layer is too thick, it will crack due to vibration, and if it is too thin, it will affect the anti-corrosion performance. Since the mesh is welded by steel bars, there are bound to be a large number of defects such as protrusions or grooves on its surface, and vibration is bound to occur during movement. These factors will affect the formation of the mesh anti-corrosion layer.

[0038] It is worth mentioning that the dipping mechanism 3, the circulation mechanism 4 and the curing mechanism 5 are all arranged inside the oven 1, and the circulation mechanism 4 moves the dipped mesh upward, and the curing mechanism 5 moves the mesh that has undergone preliminary drying downward. During the entire drying process, the mesh does not need to be moved over a long distance, and continuous drying can be carried out, saving a lot of floor space.

[0039] Further, if Figure 3 As shown, the traction mechanism 2 includes a telescopic plate 21 arranged on both sides of the inlet and outlet of the oven 1 and horizontally slidably connected above the anti-corrosion tank 11, a plurality of groups of short rollers 22 arranged on the telescopic plate 21, a push-pull plate 23 horizontally slidably connected in the anti-corrosion tank 11, a roller table 24 arranged on the push-pull plate 23 near the inlet of the oven 1, and a pull rod 25 rotatably connected to the roller table 24.

[0040] In this embodiment, by providing a telescopic plate 21, a short roller 22 and a push-pull plate 23, the mesh can be moved into and out of the oven 1, and can cooperate with the subsequent movement of the circulation mechanism 4 and the curing mechanism 5 to avoid interference.

[0041] In detail, the mesh is input from the inlet of the oven 1, and the end first contacts the roller table 24. The pull rod 25 on the roller table 24 is controlled by the motor to rotate downward, clamping the mesh. The push-pull plate 23 is driven to rotate by the screw to pull the mesh into the oven 1. At this time, the telescopic plate 21 is in an extended state under the control of the cylinder, and the short rollers 22 are located at the lower part of both sides of the mesh to realize the movement of the mesh. When dipping is required, the short rollers 22 on both sides are retracted and the push-pull plate 23 is moved out. At this time, the mesh can be moved down and immersed in the anti-corrosion tank 11.

[0042] It should be noted that when the push-pull plate 23 pulls a mesh into the oven 1, the mesh presses against the push-pull plate 23, which can realize the positioning of the mesh, making it easier to grab the mesh during subsequent movement. At the same time, when the mesh needs to be dipped, the push-pull plate 23 continues to move. At this time, the push-pull plate 23 moves to the west of the curing mechanism 5 and pushes the cured mesh out of the oven 1.

[0043] It is worth mentioning that the push-pull plate 23 is arranged in the anti-corrosion pool 11. The movement of the push-pull plate 23 can achieve stirring of the anti-corrosion pool 11 to avoid sedimentation.

[0044] Further, if Figure 4As shown, the dipping mechanism 3 includes a lifting frame 31 vertically slidably connected to the anti-corrosion tank 11, a shaking plate 32 arranged on the lifting frame 31, multiple groups of positioning blocks 33 arranged around the shaking plate 32, and a pressure rod 34 rotatably connected to the positioning block 33.

[0045] Furthermore, the shaking plate 32 is fixed to the motor output end through a universal joint, and the dipping mechanism 3 also includes a wave ring 35 arranged on the outside of the central universal joint of the shaking plate 32, and a limiting rod 36 fixed on the lifting frame 31 and the upper end of which contacts the wave ring 35.

[0046] In this embodiment, the mesh is fixed by setting a shaking plate 32 and vibration is used to promote the antiseptic liquid to penetrate into the mesh, and to throw away the excess antiseptic liquid after the dipping is completed.

[0047] In detail, after the mesh is pulled into the oven 1, the lifting frame 31 rises and the mesh is placed on the shaking plate 32. The pressure rod 34 on the positioning block 33 is initially in a vertical state. At this time, the motor is used to rotate and cooperate with the positioning block 33 to fix the mesh so that the mesh moves with the shaking plate 32. At the same time, a motor is set on the lifting frame 31, and the output end of the motor is connected to the shaking plate 32 through a universal joint. A wave ring 35 is fixed on the periphery of the shaking plate 32, and a limit rod 36 is below the wave ring 35. When the motor drives When the shaking plate 32 rotates, the shaking plate 32 will shake up and down. After the lifting plate moves down to move the mesh out of the anti-corrosion pool 11, the motor drives the shaking plate 32 to pull back and rotate downward to make the mesh vibrate. The vibration is used to make the anti-corrosion liquid quickly enter the gaps in the mesh. After the dipping is completed, the lifting frame 31 rises. At this time, the motor drives the shaking plate 32 to rotate back and forth in a small amplitude again. The centrifugal force and vibration during rotation are used to quickly shake off the excess anti-corrosion liquid on the mesh to avoid residue and the formation of droplet piles.

[0048] It should be noted that the mesh is shaken in the anti-corrosion liquid. On the one hand, the shaking can allow the anti-corrosion liquid to be completely immersed in the gaps of the mesh. On the other hand, it can keep the anti-corrosion liquid in a uniform state, further avoiding the precipitation of the anti-corrosion liquid, resulting in an uneven anti-corrosion layer formed after the mesh is dried, affecting its anti-corrosion performance.

[0049] Further, if Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 As shown, the fixed assembly 41 includes a movable frame 411 vertically slidably connected above the anti-corrosion tank 11, a flip frame 412 rotatably connected in the middle of the movable frame 411, a fixed rod 413 fixedly connected in the middle of the flip frame 412, multiple groups of anti-bending rods 414 arranged on the fixed rod 413, multiple groups of fixing clamps 415 arranged on the fixed rod 413, two groups of hinged rods 416 rotatably connected on both sides of the flip frame 412, and a pressure roller 417 arranged on the hinged rod 416.

[0050] The uniform component 42 includes two sets of slide rails 421 arranged on the upper and lower sides of the flip frame 412, a sliding rod 422 slidably connected to the slide rails 421, an air duct 423 rotatably connected to the sliding rod 422, and a weight 424 fixed to the other end of the air outlet of the air duct 423.

[0051] In this embodiment, the mesh is fixed and flipped by setting a flip frame 412 and an anti-bending rod 414. The flipping and airflow are used to make the fluidity of the mesh surface so that the anti-corrosion can flow evenly without gathering at a certain position, resulting in an uneven anti-corrosion layer.

[0052] In detail, after the dipping is completed, the movable frame 411 moves down to make the fixed rod 413 and the anti-bending rod 414 fit the mesh, and the hinged rods 416 at both ends rotate, so that the pressure roller 417 presses the mesh onto the anti-bending rod 414 from the lower end of the mesh. At the same time, the fixed frame on the fixed rod 413 clamps the steel bar in the middle of the mesh. After fixing, the movable frame 411 rises and the flipping frame 412 continues to rotate, so that the mesh is slowly flipped. During the flipping process, the anti-corrosion liquid on the surface flows. At the same time, the sliding rod 422 moves back and forth on the slide rail 421, and the air duct 423 is rotated and connected to the sliding rod 422. Due to the setting of the weight block 424, the air duct 423 can continue to blow air upward, and the continuous upward wind is used to prevent the anti-corrosion liquid from gathering and dripping due to gravity during the flipping process.

[0053] It should be noted that the pressure roller 417 and the anti-bending rod 414 fix the two ends of the mesh, and the fixing frame on the fixing rod 413 fixes the middle position of the mesh. Through this arrangement, the mesh is prevented from bending and tilting due to its own gravity. Due to the bending of the mesh, the anti-corrosion liquid on the mesh gathers to the lower part of the bending position and then drips, so that the anti-corrosion liquid can be evenly distributed and the thickness of the anti-corrosion layer is guaranteed.

[0054] Further, if Figure 9 、 Figure 10 、 Figure 11 As shown, the moving assembly 51 includes a hanging part 511 arranged above the circulation mechanism 4 and a translation part 512 arranged behind the hanging part 511, the hanging part 511 includes a hanging frame 5111 horizontally slidably connected to the top of the oven 1, a plurality of clamps 5112 arranged on the side of the hanging frame 5111, magnetic rods 5113 fixed on the hanging frame 5111 toward the four corners, and a pressure block 5114 arranged on the inner side of the magnetic rod 5113 and sliding vertically.

[0055] In this embodiment, a hoisting member 511 is provided to transfer the mesh from the circulation mechanism 4 to the curing mechanism 5. During the transportation process, the mesh is shaken to disperse the antiseptic liquid collected in the gaps of the mesh.

[0056] In detail, the flip assembly rises to the top, at which time the fixed rod 413 is located at the bottom of the mesh, the clamping claw 5112 on the lifting frame 5111 clamps the mesh and moves it, and an electromagnet is set on the magnetic rod 5113. The electromagnet starts to absorb the mesh, and at the same time the cylinder drives the pressure block 5114 to press down, and the magnetic rod 5113 sucks the mesh. Here the magnetic rod 5113 is equivalent to a lever, and the pressure block 5114 is pressed down to lift the four corners of the outside of the mesh. Since the four corners of the mesh are in a drooping state due to gravity, the two offset each other, so that the four corners of the mesh remain in a relatively horizontal state.

[0057] It should be noted that after the flipping mechanism, the anti-corrosion liquid on the surface of the mesh has been preliminarily dried. However, the anti-corrosion liquid at the welding node of the mesh is not dried because it is in the gap or the tension makes the anti-corrosion liquid thicker. In addition, due to the evaporation of water, the fluidity of the anti-corrosion liquid decreases and it is in a viscous state. After the mesh is dried, once the mesh vibrates, the anti-corrosion liquid at the welding node will crack, resulting in internal anti-corrosion failure. Therefore, the pressure block 5114 and the magnetic rod 5113 are used to make the mesh moderately bend. When bending, the gap of its welding node will change. When the gap becomes larger, the viscous anti-corrosion liquid in the gap will crack from the middle. When the gap becomes smaller, part of the anti-corrosion liquid will be squeezed out and cracks will occur after the horizontal state is restored. Because the anti-corrosion liquid is still in a viscous state that is not completely dried, the anti-corrosion liquid will not separate from the surface of the mesh steel bar, thereby leaving a buffer space in the middle of the steel bar that can adapt to the vibration of the mesh, avoiding the cracks caused by the anti-corrosion liquid drying and then cracking directly to the steel bar surface. Ensure the anti-corrosion performance of steel bars, especially the gaps in welding nodes.

[0058] It is worth mentioning that the arrangement of the magnetic rod 5113 and the pressure block 5114 is used to keep the four corners of the mesh in a horizontal state, which facilitates the subsequent fixing of the mesh by the component.

[0059] Further, if Figure 12 As shown, the translation member 512 includes four groups of chains 5121 arranged at the rear lower part of the lifting member 511, multiple groups of mounting blocks 5122 fixed on the chains 5121, fixing hooks 5123 rotatably connected to the mounting blocks 5122, and a locking rod 5124 arranged above the fixing hooks 5123.

[0060] In this embodiment, by providing fixing hooks 5123, the four corners of the mesh are fixed, and the mesh is moved from top to bottom to complete the drying.

[0061] In detail, the lifting part 511 moves the mesh to the top of the translation part 512, and the four groups of fixing hooks 5123 hook the four corners of the mesh and move downward synchronously. After the fixing hooks 5123 hook the four corners of the mesh, the locking rod 5124 extends to prevent the mesh from detaching from the fixing hooks 5123. Then the four groups of fixing hooks 5123 rotate at the same time. The rotation of the four groups of fixing hooks 5123 is equivalent to pulling the mesh from the four corners at the same time, prompting the mesh to remain horizontal and not bend in the middle due to gravity.

[0062] It should be noted that multiple groups of fixed hooks 5123 are provided on the chain 5121, so that a large number of mesh sheets can be arranged horizontally from top to bottom in the curing mechanism 5, and the curing is completed in sequence to achieve continuous operation, reduce the footprint of the device, improve the drying efficiency, and facilitate the control of the drying time.

[0063] Further, if Figure 13 、 Figure 14 As shown, the temperature control component 52 includes a high temperature box 521 arranged in the middle of the chain 5121, multiple groups of air outlets 522 arranged in the high temperature box 521, and temperature locking parts 523 arranged on the upper and lower sides of the high temperature box 521.

[0064] The heat-locking element 523 includes a reel 5231 slidably connected to the edge of the high-temperature box 521, gears 5232 fixed to both ends of the reel 5231, a rack 5233 fixed to the edge of the high-temperature box 521 and meshing with the gears 5232, and a heat-insulating felt 5234 with one end fixed to the edge of the high-temperature box 521 and the other end fixed to the reel 5231. Magnets are provided on the edge of the heat-insulating felt 5234.

[0065] In this embodiment, a high temperature box 521 is provided, the temperature inside the high temperature box 521 is relatively high, and the device itself is provided inside the oven 1 and has a certain drying temperature. The high temperature box 521 is used to further increase the temperature and promote rapid drying of the mesh.

[0066] In detail, since the front of the mesh has undergone preliminary surface drying and the thicker part of the antiseptic liquid has cracked, there is no need to worry about the antiseptic liquid cracking due to the fast drying rate. Therefore, a high temperature box 521 is set up to use high temperature to accelerate the drying rate.

[0067] Temperature locking parts 523 are set at the upper and lower ends of the high-temperature box 521 to control the escape of heat. That is, when closed, the thermal insulation felt 5234 seals the upper and lower openings of the high-temperature box 521. When the mesh needs to be moved in or out of the high-temperature box 521, the cylinder is used to control the reel 5231 to move to both sides. While the reel 5231 moves to both sides, the gear 5232 and the rack 5233 rotate, thereby rolling up the thermal insulation felt 5234, and then opening the high-temperature box 521 is opened, and the mesh can be moved in or out of the high-temperature box 521. After the mesh enters the high-temperature box 521, an air outlet 522 is set inside it to discharge air horizontally, which speeds up the drying rate while ensuring that the drying rate of each part of the mesh is the same.

[0068] It should be noted that due to the gap in the high-temperature box 521 itself and the opening of the temperature-locking component 523, high-temperature gas will overflow, which can serve as one of the sources of temperature of the oven 1. Outside the high-temperature box 521, the oven 1 can also be provided with an air flow device to keep the temperature of various parts of the oven 1 balanced, and at the same time allow the heat dissipated in the high-temperature box 521 to diffuse as quickly as possible.

[0069] In the description of the present invention, it should be understood that the terms "front and back", "left and right", etc., indicating directions or positional relationships, are based on the directions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the equipment or components referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, they cannot be understood as limitations on the invention.

[0070] Of course, in this technical solution, those skilled in the art should understand that the term "one" should be understood as "at least one" or "one or more", that is, in one embodiment, the number of an element may be one, while in another embodiment, the number of the element may be multiple, and the term "one" should not be understood as a limitation on the quantity.

[0071] The above description is merely a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art based on the technical guidance of the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be based on the scope of protection of the claims.

Claims

1. An automated drying system for mesh components, characterized in that: include: An oven (1), wherein an anti-corrosion tank (11) is provided in the oven (1); A traction mechanism (2), the traction mechanism (2) being arranged above the anti-corrosion tank (11) and being used to assist the mesh in entering and exiting the oven (1); A dipping mechanism (3), the dipping mechanism (3) being arranged in the anti-corrosion tank (11) and being used to immerse the mesh in the fixing assembly (41) and to throw away excess anti-corrosion liquid; A circulation mechanism (4), wherein the circulation mechanism (4) is arranged above the antiseptic tank (11) and is used for preliminary drying of the mesh that has just been impregnated, and comprises a fixing component (41) for vertical sliding connection above the antiseptic tank (11) and a uniform component (42) arranged on the fixing component (41), wherein the fixing component (41) continuously rotates after fixing the mesh, and the rotation is used to allow the unsolidified antiseptic liquid to be evenly coated on the surface of the mesh, and the uniform component (42) is used to further assist the flow of the antiseptic liquid and prevent the antiseptic liquid from gathering and dripping; The curing mechanism (5) is arranged behind the circulation mechanism (4) and is used to deeply dry the mesh, comprising a moving component (51) arranged behind the circulation mechanism (4) and a temperature control component (52) arranged in the middle of the moving component (51). The moving component (51) stacks and moves the mesh horizontally, and completes the drying in the dry environment formed by the temperature control component (52).

2. The automatic drying system for mesh components according to claim 1, characterized in that: The traction mechanism (2) includes a telescopic plate (21) arranged on both sides of the inlet and outlet of the oven (1) and horizontally slidably connected to the top of the anti-corrosion tank (11), a plurality of short rollers (22) arranged on the telescopic plate (21), a push-pull plate (23) horizontally slidably connected in the anti-corrosion tank (11), a roller table (24) arranged on the push-pull plate (23) near the inlet of the oven (1), and a pull rod (25) rotatably connected to the roller table (24).

3. The automatic drying system for mesh components according to claim 1, characterized in that: The dipping mechanism (3) includes a lifting frame (31) vertically slidably connected to the anti-corrosion tank (11), a shaking plate (32) arranged on the lifting frame (31), a plurality of positioning blocks (33) arranged around the shaking plate (32), and a pressure rod (34) rotatably connected to the positioning blocks (33).

4. The automatic drying system for mesh components according to claim 3, characterized in that: The shaking plate (32) is fixed to the output end of the motor via a universal joint. The dipping mechanism (3) further comprises a wave ring (35) arranged outside the central universal joint of the shaking plate (32), and a limiting rod (36) fixed to the lifting frame (31) and having its upper end in contact with the wave ring (35).

5. The automatic drying system for mesh components according to claim 1, characterized in that: The fixing assembly (41) includes a moving frame (411) vertically slidably connected above the anti-corrosion tank (11), a turnover frame (412) rotatably connected to the middle of the moving frame (411), a fixing rod (413) fixedly connected to the middle of the turnover frame (412), multiple groups of anti-bending rods (414) arranged on the fixing rod (413), multiple groups of fixing clamps (415) arranged on the fixing rod (413), two groups of hinged rods (416) rotatably connected to both sides of the turnover frame (412), and a pressure roller (417) arranged on the hinged rod (416).

6. The automatic drying system for mesh components according to claim 5, characterized in that: The uniform assembly (42) includes two sets of slide rails (421) arranged on the upper and lower sides of the flip frame (412), a sliding rod (422) slidably connected to the slide rails (421), an air duct (423) rotatably connected to the sliding rod (422), and a weight (424) fixed to the other end of the air outlet of the air duct (423).

7. The automatic drying system for mesh components according to claim 1, characterized in that: The moving assembly (51) comprises a hanging member (511) arranged above the circulation mechanism (4) and a translation member (512) arranged behind the hanging member (511), wherein the hanging member (511) comprises a hanging frame (5111) horizontally slidably connected to the top of the oven (1), a plurality of clamping claws (5112) arranged at the side of the hanging frame (5111), magnetic rods (5113) fixed to the hanging frame (5111) at the four corners, and a pressing block (5114) arranged inside the magnetic rod (5113) and vertically sliding.

8. The automatic drying system for mesh components according to claim 7, characterized in that: The translation member (512) comprises four groups of chains (5121) arranged at the rear lower part of the hanging member (511), multiple groups of mounting blocks (5122) fixed to the chains (5121), fixing hooks (5123) rotatably connected to the mounting blocks (5122), and a locking rod (5124) arranged above the fixing hooks (5123).

9. The automatic drying system for mesh components according to claim 7, characterized in that: The temperature control assembly (52) comprises a high-temperature box (521) arranged in the middle of the chain (5121), multiple groups of air outlets (522) arranged in the high-temperature box (521), and temperature locking components (523) arranged on the upper and lower sides of the high-temperature box (521).

10. The automatic drying system for mesh components according to claim 9, characterized in that: The temperature-locking component (523) comprises a reel (5231) slidably connected to the edge of the high-temperature box (521), gears (5232) fixed to both ends of the reel (5231), a rack (5233) fixed to the edge of the high-temperature box (521) and meshing with the gear (5232), and a thermal insulation felt (5234) having one end fixed to the edge of the high-temperature box (521) and the other end fixed to the reel (5231), with magnets being provided on the edge of the thermal insulation felt (5234).

Citation Information

Patent Citations

  • Automated drying system for aerated concrete panels

    CN108890863B