High-speed water blowing air dryer
By designing a high-speed water-blowing air dryer, and utilizing high-temperature, high-speed airflow and water-absorbing components, the problem of difficult-to-remove moisture from the surface and bottom of tiles is solved, achieving efficient drying of tiles.
Patent Information
- Application Number
- CN202520952952.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-15
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2035-05-15
AI Technical Summary
In existing technologies, it is difficult to quickly dry the moisture on the surface of ceramic tiles, which affects subsequent processing steps.
A high-speed water-blowing dryer was designed, comprising a water-blowing platform, a conveying component, a high-speed hot air component, and a water-absorbing component. It uses high-temperature, high-speed airflow to dry the surface moisture of the tiles and cleans water stains from the bottom of the tiles using the water-absorbing component.
It enables rapid removal of moisture from the surface and bottom of the tiles, ensuring smooth subsequent processing.
Smart Images

Figure CN223939873U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of ceramic tile processing equipment technology, and in particular to a high-speed water blowing dryer. Background Technology
[0002] In the tile processing technology, tiles need to be cut and shaped, and the surface and end faces of tiles need to be ground and chamfered, which generates a lot of chips and dust. The generated dust or chips will adhere to and be absorbed on the tiles. In the current technology, the surface of the tile is usually washed with water to remove chips and dust, but wet tiles will affect subsequent processing steps. Therefore, it is necessary to design a drying device to dry the tiles after washing with water. Utility Model Content
[0003] The purpose of this invention is to provide a high-speed water-blowing dryer with a simple and reasonable structural design, stable and reliable operation, and convenient use. It can efficiently and quickly remove moisture from the surface of ceramic tiles, facilitating their subsequent transportation and processing.
[0004] To solve the above-mentioned technical problems, the technical solution of this utility model is as follows:
[0005] A high-speed water-blowing dryer includes a water-blowing platform, a conveying assembly, a high-speed hot air assembly, and a water-absorbing assembly;
[0006] The water blowing platform is a mounting frame, horizontally set, with a conveying component horizontally mounted on it; a high-speed hot air component is mounted above the conveying component, and a water suction component is mounted below it;
[0007] The conveying assembly includes a power unit, rollers, bearings, and rubber sleeves. Several rollers are spaced apart and horizontally positioned on the water-blowing platform. Bearings are fitted at both ends of each roller, and the bearings are fixed to the platform. Several rubber sleeves are fitted in the middle of the rollers to increase friction and prevent them from hitting the tiles. The rear end of each roller is connected to the power unit, which drives the rollers to rotate. The power unit includes a motor, a drive sprocket, a driven sprocket, a chain, a drive shaft, and bevel gears. The motor output shaft has a drive sprocket fitted on it. The drive shaft is horizontally positioned behind the water-blowing platform, with a driven sprocket fitted at one end. The chain has its two ends fitted onto the drive and driven sprockets, respectively. The motor drives the drive shaft to rotate. Several bevel gears are fitted onto the drive shaft, and a second bevel gear is fitted at the rear end of the roller. The bevel gears and the second bevel gear are perpendicular and mesh with each other. The drive shaft drives the rollers to rotate.
[0008] The high-speed hot air assembly includes a frame, a fan, heating elements, a hot air chamber, an exhaust duct, and a blower head. The frame is a vertically mounted housing with an internal mounting cavity. The fan is located within the mounting cavity, and its outlet is connected to the hot air chamber. The hot air chamber is an open-end structure with a cavity in the middle, containing several heating elements electrically connected to a control circuit board and a power supply. The other end of the hot air chamber is connected to the blower head via an air duct. The blower head is horizontally positioned above the conveying assembly, with an air outlet at its bottom, an inner cavity in its middle, and an exhaust duct at its top. The air outlet is thin and strip-shaped. The exhaust duct connects the inner cavity and the air outlet. The fan blows air, and the high-speed airflow is heated by the hot air chamber into a high-temperature, high-speed airflow. This high-temperature, high-speed airflow enters the blower head through the air duct and is further accelerated by the thin air outlet, causing the blower head to expel the high-temperature, high-speed airflow. This high-temperature, high-speed airflow blown onto the surface of the tiles on the conveying assembly allows the surface moisture to dry quickly.
[0009] Because water stains tend to form droplets on the bottom of tiles due to gravity (while water stains tend to spread out in patches on the top surface of tiles), high-temperature, high-speed airflow cannot easily remove these droplets. Therefore, when cleaning water stains on the bottom of tiles, a water-absorbing component is used.
[0010] The water absorption assembly includes an exhaust fan, a water suction head, an exhaust pipe, a water suction pipe, and a drain pipe. The exhaust fan is located inside the frame, and its exhaust port is connected to the water suction pipe through the exhaust pipe. The water suction pipe is horizontally positioned below the conveying assembly, with an air duct connector and a water pipe connector at its bottom, and a water suction port at its top, with an inner cavity in its middle. The water suction port is thin and strip-shaped. The upper end of the exhaust pipe is connected to the air duct connector, and the lower end is connected to the exhaust fan. A water tank is located at the bottom of the frame, and a drain pipe is installed inside the water tank. The upper end of the water suction pipe is connected to the water pipe connector, and the lower end is connected to the water tank.
[0011] Preferably, to accommodate tiles of different thicknesses and adjust the height of the blower head, an adjustment component is also included; the adjustment component includes a screw and a nut; the screw is vertically inserted into the water blowing platform, the blower head is fixed to the bottom of the screw, and a nut is fitted on the screw, with the bottom of the nut fitting against the water blowing platform; turning the nut can vertically adjust the rise and fall of the screw, i.e., adjust the height of the blower head.
[0012] Preferably, the upper end of the air duct connector is inserted into the inner cavity of the water suction head by 3-5 cm, and its upper opening is higher than the water pipe connector, so that the water in the water suction head does not enter the air suction pipe, but enters the water suction pipe and water tank, and is then discharged through the drain pipe.
[0013] Preferably, the right end of the water blowing platform is provided with a rubber sheet, which is located above the output component and can be used to wipe the surface of the ceramic tile.
[0014] Preferably, a rubber strip is provided on the right edge of the water inlet. The rubber strip can flexibly fit the bottom of the tile and wipe the bottom of the tile (during tile transport) so that water can be better guided into the water inlet.
[0015] Here's a brief explanation of its working principle: The tiles are conveyed on the conveying assembly. When they pass through the high-speed hot air assembly, the fan blows air, which is heated into a high-temperature, high-speed airflow through the hot air chamber. This high-temperature, high-speed airflow enters the blower head through the air pipe and is further accelerated through the thin air outlet, causing the blower head to blow out a high-temperature, high-speed airflow. This high-temperature, high-speed airflow blown onto the tile surface quickly dries the moisture. Meanwhile, the bottom water-absorbing assembly creates negative pressure at the water-absorbing head. When the water-absorbing head (water inlet) comes into contact with water droplets on the bottom of the tile, the water droplets are sucked into the water-absorbing head. Simultaneously, the negative pressure causes the surrounding air above the water-absorbing head to be rapidly drawn in, creating a high-speed airflow that dries the water stains on the bottom of the tile.
[0016] The beneficial effects of this utility model are:
[0017] Its structural design is simple and reasonable, and its operation is stable and reliable. It is easy to use and can efficiently and quickly remove moisture from the surface of ceramic tiles, facilitating their subsequent transportation and processing. Attached Figure Description
[0018] Figure 1 This is a front view of a high-speed water-blowing dryer according to the present invention;
[0019] Figure 2 This is a structural schematic diagram of a high-speed water-blowing dryer according to the present invention;
[0020] Figure 3 This is a schematic diagram of the structure of the water blowing platform and conveying components of this utility model;
[0021] Figure 4 This is a structural schematic diagram of the water blowing platform and conveying assembly of this utility model (with the shielding cover omitted);
[0022] Figure 5 This is a schematic diagram of the frame structure of this utility model;
[0023] Figure 6 This is a front view of the frame of this utility model;
[0024] Figure 7 for Figure 6 A cross-sectional view along the DD direction;
[0025] Figure 8 This is a schematic diagram of the frame structure of this utility model (with the shielding cover omitted);
[0026] Figure 9 This is a schematic diagram of the structure of the blower head and water suction head of this utility model. Detailed Implementation
[0027] The specific embodiments of this utility model will be further described below with reference to the accompanying drawings. It should be noted that these descriptions are for the purpose of aiding understanding of this utility model, but do not constitute a limitation thereof. Furthermore, the technical features involved in the various embodiments of this utility model described below can be combined with each other as long as they do not conflict with each other.
[0028] like Figures 1-9 As shown, a high-speed water-blowing dryer includes a water-blowing platform 1, a conveying assembly 2, a high-speed hot air assembly 3, and a water-absorbing assembly 4;
[0029] The water blowing platform 1 is a mounting frame, which is horizontally set, and a conveying component 2 is horizontally mounted on it; a high-speed hot air component 3 is mounted above the conveying component 2, and a water suction component 4 is mounted below it;
[0030] The conveying assembly 2 includes a power assembly 20, rollers 21, bearings 22, and rubber sleeves 23. Several rollers 21 are spaced apart and horizontally positioned on the water blowing platform 1. Bearings 22 are fitted at both ends of each roller, and the bearings 22 are fixed to the water blowing platform 1. Several rubber sleeves 23 are fitted in the middle section of each roller 21 to increase friction and prevent the rollers 21 from hitting the tiles 5. The rear end of each roller 21 is connected to the power assembly 20, which drives the rollers 21 to rotate. The power assembly 20 includes a motor 201, a drive sprocket 202, a driven sprocket 203, a chain 204, a drive shaft 205, and bevel gears. The drive sprocket 202 is mounted on the output shaft of the motor 201. The drive shaft 205 is horizontally positioned at the rear of the water blowing platform 1, with the driven sprocket 203 mounted on one end. The two ends of the chain 204 are respectively mounted on the drive sprocket 202 and the driven sprocket 203. The motor 201 drives the drive shaft 205 to rotate. Several bevel gears are mounted on the drive shaft 205, and a second bevel gear is mounted on the rear end of the roller 21. The bevel gears and the second bevel gear are perpendicularly arranged and mesh with each other. The drive shaft 205 drives the roller 21 to rotate through the bevel gears and the second bevel gear. This is prior art and will not be described in detail here. The bevel gears and the second bevel gear are not shown in the figure.
[0031] The high-speed hot air assembly 3 includes a frame 31, a fan 32, heating elements 33, a hot air chamber 34, an exhaust pipe 35, and a blower head 36. The frame 31 is a vertically mounted housing with an internal mounting cavity. The fan 32 is located within the mounting cavity, and its outlet is connected to the hot air chamber 34. The hot air chamber 34 is a chamber with openings at both ends and a cavity in the middle. Several heating elements 33 are installed within the cavity, and the heating elements 33 are electrically connected to a control circuit board and a power supply. The other end of the hot air chamber 34 is connected to the blower head 36 via the duct 35. The blower head 36 is horizontally positioned above the conveying assembly 2, with an air outlet 361 at its bottom, an inner cavity in its middle, and an exhaust pipe 35 connected to its top. The air outlet 361 is a thin strip. The exhaust pipe 35 connects the inner cavity and the air outlet 361. The blower 32 blows air, and the high-speed airflow is heated into a high-temperature, high-speed airflow through the hot air chamber 34. The high-temperature, high-speed airflow enters the blower head 36 through the air pipe, and is further accelerated through the thin air outlet 361, causing the blower head 36 to blow out the high-temperature, high-speed airflow. The high-temperature, high-speed airflow blows onto the surface of the ceramic tile 5 on the conveying assembly 2, which can quickly dry the moisture on the surface of the ceramic tile 5.
[0032] Because water stains on the bottom of tile 5 are easily formed into water droplets due to gravity (on the upper surface of tile 5, water stains tend to spread out in patches), high-temperature and high-speed airflow does not easily clean the water droplets quickly; therefore, when cleaning water stains on the bottom of tile 5, water absorption component 4 is used.
[0033] The water absorption assembly 4 includes an exhaust fan 41, a water suction head 42, an exhaust pipe 43, a water suction pipe 44, and a drain pipe 45. The exhaust fan 41 is located inside the frame 31, and its exhaust port is connected to the water suction pipe 44 through the exhaust pipe 43. The water suction pipe 44 is horizontally arranged below the conveying assembly 2, and its bottom is provided with an air duct connector 421 and a water pipe connector 422. Its top is provided with a water suction port 423, and its middle part is provided with an inner cavity. The water suction port 423 is strip-shaped. The upper end of the exhaust pipe 43 is connected to the air duct connector 421, and the lower end is connected to the exhaust fan 41. The bottom end of the frame 31 is provided with a water tank 46, and the drain pipe 45 is provided in the water tank 46. The upper end of the water suction pipe 44 is connected to the water pipe connector 422, and the lower end is connected to the water tank 46. Preferably, the exhaust fan 41 is also connected to the water tank 46 through the second suction pipe 47; except for the interfaces with the water suction pipe 44, the drain pipe 45 and the second suction pipe 47, the water tank 46 is sealed in all other places; when the exhaust fan 41 is working, it can draw away the air in the water tank 46 to form a negative pressure, which makes it easier to suck up water stains at the bottom of the tiles and form a high-speed suction airflow.
[0034] Preferably, to accommodate tiles 5 of different thicknesses and adjust the height of the blower head 36, an adjustment component is also included; the adjustment component includes a screw 61 and a nut 62; the screw 61 is vertically inserted into the water blowing platform 1, the blower head 36 is fixed to the bottom of the screw 61, and the nut 62 is sleeved on the screw 61, with the bottom of the nut 62 fitting against the water blowing platform 1; turning the nut 62 can vertically adjust the rise and fall of the screw 61, that is, adjust the height of the blower head 36.
[0035] Preferably, the upper end of the duct connector 421 is inserted into the inner cavity of the water suction head 42 by 3-5 cm, and its upper opening is higher than the water pipe connector 422, so that the water in the water suction head 42 does not enter the air suction pipe 43, but enters the water suction pipe 44 and the water tank 46, and is then discharged through the drain pipe 45.
[0036] Preferably, the right end of the water blowing platform 1 is provided with a rubber sheet 7, which is located above the output component 2 and can wipe the upper surface of the tile.
[0037] Preferably, a rubber strip is provided on the right edge of the water inlet 423. The rubber strip can flexibly fit the bottom of the tile 5 and wipe the bottom of the tile 5 during tile conveying, so that water can be better guided into the water inlet 42.
[0038] Briefly describing its working principle: The tile 5 is conveyed on the conveying assembly 2. When it passes through the high-speed hot air assembly 3, the fan 32 blows air, and the high-speed airflow is heated into a high-temperature, high-speed airflow through the hot air chamber 34. The high-temperature, high-speed airflow enters the blower head 36 through the air pipe, and is further accelerated through the thin air outlet 361, causing the blower head 36 to blow out a high-temperature, high-speed airflow. The high-temperature, high-speed airflow blows onto the surface of the tile 5, which can quickly dry the moisture on the surface of the tile 5. Meanwhile, the water absorption assembly 4 at the bottom creates a negative pressure at the water absorption head 42. When the water absorption head 42 (water intake 423) comes into contact with water droplets on the bottom of the tile 5, the water droplets are sucked into the water absorption head 42. At the same time, the negative pressure causes the surrounding air above the water absorption head 42 to be rapidly drawn into the water absorption head 42, forming a high-speed airflow, which can dry the water stains on the bottom of the tile 5.
[0039] The embodiments of this utility model have been described in detail above with reference to the accompanying drawings, but this utility model is not limited to the described embodiments. For those skilled in the art, various changes, modifications, substitutions, and alterations to these embodiments without departing from the principles and spirit of this utility model will still fall within the protection scope of this utility model.
Claims
1. A high-speed water-blowing dryer, characterized in that: Includes a water blowing platform, conveying components, high-speed hot air components, and water absorption components; The water blowing platform is a mounting frame, horizontally set, with a conveying component horizontally mounted on it; a high-speed hot air component is mounted above the conveying component, and a water suction component is mounted below it; The conveying assembly includes a power unit, rollers, bearings, and rubber sleeves; the rollers consist of several rollers, which are spaced apart and horizontally arranged on the water blowing platform, and bearings are fitted at both ends of the rollers, which are then fixed on the water blowing platform. The middle section of the roller is fitted with several rubber sleeves; the rear end of the roller is connected to a power component, which drives the roller to rotate. The high-speed hot air assembly includes a frame, a fan, heating elements, a hot air chamber, an exhaust duct, and a blower head. The frame is a vertically mounted housing with an internal mounting cavity. The fan is located within the mounting cavity, and its outlet is connected to the hot air chamber. The hot air chamber is a chamber with openings at both ends and a cavity in the middle, within which several heating elements are installed. The other end of the hot air chamber is connected to the blower head via an air duct. The blower head is horizontally positioned above the conveying assembly, with a blower opening at its bottom, an inner cavity in its middle, and an exhaust pipe connected to its top; the blower opening is a thin strip shape. The exhaust pipe connects the inner cavity and the air outlet.
2. The high-speed water-blowing dryer according to claim 1, characterized in that: The water absorption assembly includes a blower, a water suction head, a suction pipe, a water suction pipe, and a drain pipe; the blower is located inside the frame, and its exhaust port is connected to the water suction pipe through the suction pipe. The water suction pipe is horizontally positioned below the conveying assembly. It has an air duct connector and a water pipe connector at its bottom, and a water suction port at its top, with an inner cavity in the middle. The water suction port is strip-shaped. The upper end of the air suction pipe is connected to the air duct connector, and the lower end is connected to the exhaust fan. The bottom of the frame has a water tank with a drain pipe inside. The upper end of the water suction pipe is connected to the water pipe connector, and the lower end is connected to the water tank.
3. The high-speed water-blowing dryer according to claim 1, characterized in that: The power assembly includes a motor, a drive sprocket, a driven sprocket, a chain, a drive shaft, and bevel gears. The drive sprocket is mounted on the output shaft of the motor, and the drive shaft is horizontally positioned behind the water blowing platform, with a driven sprocket mounted on one end. The two ends of the chain are respectively mounted on the drive sprocket and the driven sprocket. The motor drives the drive shaft to rotate. Several bevel gears are mounted on the drive shaft, and a second bevel gear is mounted on the rear end of the roller. The bevel gears and the second bevel gear are perpendicularly arranged and mesh with each other. The drive shaft drives the roller to rotate.
4. The high-speed water-blowing dryer according to any one of claims 1-3, characterized in that: It also includes an adjustment component; the adjustment component includes a screw and a nut; the screw is vertically inserted into the water blowing platform, the blower head is fixed to the bottom of the screw, and a nut is sleeved on the screw, with the bottom of the nut fitting against the water blowing platform.
5. The high-speed water-blowing dryer according to claim 2, characterized in that: The upper end of the air duct connector is inserted into the inner cavity of the water suction head, and its upper opening is higher than the water pipe connector.
6. The high-speed water-blowing dryer according to claim 4, characterized in that: The right end of the water blowing platform is equipped with a rubber sheet, which is located above the output component.
7. The high-speed water-blowing dryer according to claim 2, characterized in that: A rubber strip is provided along the right edge of the water inlet, and the rubber strip is flexibly attached to the bottom of the tile.
8. The high-speed water-blowing dryer according to claim 2, characterized in that: The exhaust fan is also connected to the water tank through the second suction pipe; except for the interfaces with the water suction pipe, the drain pipe, and the second suction pipe, the water tank is sealed in all other places.