Rapid drying device for textile production
By designing a closed cavity structure and transmission structure, combined with hot air blowing and clamping conveyor wheels, the problems of rapid drying and temperature control in existing textile production drying devices have been solved, achieving rapid, uniform, and continuous drying of fabrics.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-29
- Publication Date
- 2026-03-03
AI Technical Summary
Existing textile drying equipment cannot achieve continuous and rapid drying, heat dissipates quickly, and cannot guarantee uniform drying of the fabric during transport.
A rapid drying device comprising an outer chamber and an inner chamber is designed. The inner chamber is equipped with a hot air cavity and an exhaust cavity. Through the cooperation of the hot air blowing structure and the transmission structure, a closed cavity is formed to maintain the temperature. The long and round drying boxes are used to increase the contact area between the fabric and the hot air, and the temperature is adjusted by clamping the conveyor wheels to achieve constant temperature drying.
It enables rapid, uniform, and continuous drying of fabrics, reduces heat loss, improves drying efficiency, and avoids temperature fluctuations of fabrics during transport.
Smart Images

Figure CN223965811U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of textile production equipment technology, specifically a rapid drying device for textile production. Background Technology
[0002] In fabric production, drying is often required. Existing drying equipment typically involves transferring the fabric into the equipment and drying it with hot air. However, this method of drying is inefficient and cannot achieve rapid drying, thus affecting the overall progress of fabric production.
[0003] To achieve rapid drying, Chinese patent CN222352819U, a fabric drying device with rapid feeding function, describes a method that, by setting up a hanging structure, mounting frame, rotating rod, cylinder, guide rod, first motor, first moving block, hot air blower, sliding structure, threaded rod, second motor, second moving block, third moving block, sliding plate, corrugated pipe, and nozzle, can fully unfold the fabric according to its size, resulting in more uniform drying and concentrating the drying heat to reduce heat loss and improve drying efficiency. This patent does indeed achieve relatively rapid drying. While the patent boasts high efficiency in drying fabrics, it has several shortcomings. First, the drying device described in the patent cannot maintain heat, resulting in significant heat loss. Second, the patent dries the fabric by spreading it on an inclined surface and then using a hot air blower. Although spreading the fabric increases the contact area with the hot air blower, modern fabrics are often already spread out due to the tight clamping of the transmission structure. Furthermore, a simple inclined surface cannot guarantee the drying effect. Third, the patent cannot continuously dry the fabric, resulting in a long drying time. Therefore, the patent requires further improvement.
[0004] Therefore, in order to achieve continuous drying and lock in some of the heat to prevent the rapid dissipation of a large amount of heat source, thereby improving the drying effect on the fabric, a rapid drying device for textile production is proposed to solve the technical problems in the prior art. Utility Model Content
[0005] To address the shortcomings of existing technologies, this utility model provides a rapid drying device for textile production, which solves the problems of existing drying devices being unable to achieve rapid drying of fabrics during continuous feeding and preventing excessive heat loss.
[0006] To achieve the above objectives, this utility model provides the following technical solution: A rapid drying device for textile production, comprising an outer casing, a hot air blowing structure, a heat dissipation structure, and a drive structure. The hot air blowing structure is installed on the upper and rear sides of the outer casing, the drive structure is installed on the rear side of the outer casing, and the heat dissipation structure is installed on the front side of the outer casing. An inner casing is also installed inside the outer casing, and a transmission structure is provided inside the inner casing. The drive structure is connected to the transmission structure. A baffle structure is provided between the inner casing and the outer casing, which divides the inner part of the outer casing into two cavities, namely a hot air cavity and an exhaust cavity. A drying structure capable of rapid drying is also installed inside the inner casing. The inner casing includes an inner shell and a connecting plate. The upper end face and the front side of the inner shell are provided with elongated openings. The transmission structure includes a first rotating shaft, a second rotating shaft, a clamping conveyor wheel, and a stop block. The drying structure includes an elongated drying box and a circular drying box. The baffle structure includes an upper baffle and a closed box. The inner shell is installed inside the outer casing through the connecting plate, and the closed box is installed in the openings on the left and right sides of the inner shell. The upper baffle is installed on the upper and lower end faces of the inner shell. The two end faces of the upper baffle are in contact with the surface of the closed box, dividing the interior of the outer box and the inner shell into two cavities. The cavity on the right side of the upper baffle is the hot air cavity, while the cavity on the left side of the upper baffle is the exhaust cavity. The long drying box and the round drying box are both installed on the inner surface of the inner shell and correspond to the hot air blowing structure respectively. Multiple sets of bearing seats are installed on the front and rear sides of the inner shell. The first rotating shaft and the second rotating shaft are connected to the inner ring of the bearing seats respectively. The first rotating shaft is installed on the inner surface of the inner shell and is distributed around the round drying box and the long drying box. The second rotating shaft is located on the inner surface of the inner shell near the opening. An opening is formed on the surface of the second rotating shaft. A stop is provided in the middle of the inner wall of the second rotating shaft. An opening is also provided on the rear end surface of the second rotating shaft, and it is connected to the drive structure through a connecting bushing on the rear end face. Furthermore, transmission gears are installed on the rear end surfaces of the two corresponding sets of second rotating shafts to form a gear transmission. The clamping transmission wheel is installed on the surface of the second rotating shaft.
[0007] Furthermore, through the above technical solution, the external housing includes an outer shell, a bottom mounting plate, support legs, and an upper mounting plate; the bottom mounting plate is mounted on the lower end surface of the outer shell, the support legs are mounted on the lower end surface of the bottom mounting plate, the upper mounting plate is mounted on the upper end surface of the outer shell, the drive structure is mounted on the rear side of the outer shell, the hot air blowing structure is mounted on the upper end surface and the rear side of the outer shell, and the heat dissipation structure is mounted on the front side of the outer shell.
[0008] Furthermore, an inclined baffle is installed on the lower end face of the upper mounting plate, and the lower end face of the upper mounting plate contacts the upper baffle, while the upper baffle located at the lower end of the inner shell contacts the upper end face of the bottom mounting plate. A set of hot air blowing structures is correspondingly set with the opening on the upper end face of the inner shell.
[0009] As a preferred technical solution, the hot air blowing structure includes a first centrifugal fan and an electric heater; the electric heater is respectively installed on the upper end face and the rear side of the outer shell, and the first centrifugal fan is installed on the outer side of the electric heater by bolts. One set of hot air blowing structures is correspondingly set with the inclined baffle box, and the other set of hot air blowing structures is correspondingly set with the circular drying box.
[0010] Furthermore, multiple sets of baffles are installed on the inner wall surface of the outer shell, and the upper end of the baffles is inclined and chamfered.
[0011] As a preferred technical solution, the heat dissipation structure includes a second centrifugal fan, which is mounted on the front side of the housing.
[0012] Furthermore, the drive structure includes a servo motor, which is mounted on the rear side of the housing, and the output end of the servo motor is bolted to the connecting shaft sleeve.
[0013] Compared with the prior art, this utility model provides a rapid drying device for textile production, which has the following beneficial effects:
[0014] 1. This drying device, through a closed box, upper baffle, inner shell, and upper mounting plate, forms two sets of cavities between the outer and inner shells. (See also...) Figure 9 As can be seen, the combination of the hot air blowing structure ensures that the right cavity is always kept warm, thus preventing the heat from dissipating too quickly. This allows the outer surface temperature of the inner shell to be maintained at a certain level, which helps to dry the fabric inside the inner shell.
[0015] 2. This drying device includes a hot air blowing structure, a long drying box, and a round drying box. The hot air blowing structure corresponds to the long drying box and the round drying box, respectively. Please refer to [reference needed]. Figure 3 and Figure 11 As can be seen, this combination of transmission structure for fabric transport is illustrated in the diagram. Figure 6 It is evident that hot air can make full contact with the fabric surface, thus enabling the fabric to be dried quickly. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the structure of this utility model;
[0017] Figure 2 This is a schematic diagram of the right-side structure of this utility model;
[0018] Figure 3 This is a schematic diagram of the left-side structure of this utility model;
[0019] Figure 4 This is a top view of the structure of this utility model;
[0020] Figure 5This is a three-dimensional structural diagram of the present invention;
[0021] Figure 6 This utility model Figure 1 A schematic diagram of the AA cross-sectional structure;
[0022] Figure 7 This utility model Figure 2 Schematic diagram of the BB cross-section structure;
[0023] Figure 8 This is a schematic diagram of the second assembly structure of this utility model;
[0024] Figure 9 This is a schematic diagram of the inclined baffle structure of this utility model;
[0025] Figure 10 This utility model Figure 9 A top-view structural diagram;
[0026] Figure 11 This is a schematic diagram of the internal structure of the inner shell of this utility model;
[0027] Figure 12 This is a schematic diagram of the baffle structure of this utility model;
[0028] Figure 13 This utility model Figure 12 A magnified schematic diagram of the structure at point A.
[0029] In the diagram: 1. Outer shell; 2. Bottom mounting plate; 3. Support leg; 4. Upper mounting plate; 5. Inner shell; 6. Enclosed box; 7. Long drying box; 8. Circular drying box; 9. First rotating shaft; 10. Servo motor; 11. Electric heater; 12. First centrifugal fan; 13. Second centrifugal fan; 14. Second rotating shaft; 15. Transmission gear; 16. Connecting bushing; 17. Baffle; 18. Connecting plate; 19. Clamping conveyor wheel; 20. Stop block; 21. Inclined baffle box; 22. Upper baffle. Detailed Implementation
[0030] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0031] Example
[0032] Please see Figure 1-13This utility model provides the following technical solution: a rapid drying device for textile production, comprising an outer casing, a hot air blowing structure, a heat dissipation structure, and a drive structure. The hot air blowing structure is installed on the upper and rear sides of the outer casing, the drive structure is installed on the rear side of the outer casing, and the heat dissipation structure is installed on the front side of the outer casing. An inner casing is also installed inside the outer casing, and a transmission structure is provided inside the inner casing. The drive structure is connected to the transmission structure. A baffle structure is provided between the inner casing and the outer casing, which divides the inner part of the outer casing into two cavities, namely a hot air cavity. The inner chamber includes an exhaust cavity and a drying structure for rapid drying. The inner chamber comprises an inner shell 5 and a connecting plate 18. The upper surface and front side of the inner shell 5 have elongated openings. The transmission structure includes a first rotating shaft 9, a second rotating shaft 14, a clamping conveyor wheel 19, and a stop block 20. The drying structure includes an elongated drying chamber 7 and a circular drying chamber 8. The baffle structure includes an upper baffle 22 and a closed chamber 6. The inner shell 5 is installed inside the outer chamber via the connecting plate 18. The closed chamber 6 is installed at the openings on the left and right sides of the inner shell 5, and the upper baffle 22 is installed on the inner shell 5. On the upper and lower ends of the inner shell 5, the two ends of the upper baffle 22 contact the surface of the enclosed box 6, dividing the outer box into two cavities between the inner shell 5 and the outer box. The cavity on the right side of the upper baffle 22 is the hot air cavity, while the cavity on the left side of the upper baffle 22 is the exhaust cavity. The elongated drying box 7 and the circular drying box 8 are both installed on the inner surface of the inner shell 5 and correspond to the hot air blowing structure. Multiple sets of bearing seats are installed on the front and rear sides of the inner shell 5, and the first rotating shaft 9 and the second rotating shaft 14 are respectively connected to the inner ring of the bearing seat. The first rotating shaft 9 is installed on the inner shell 5. The inner surface of the inner shell 5 is distributed around the circular drying box 8 and the long drying box 7. The second rotating shaft 14 is located on the inner surface of the inner shell 5 near the opening. An opening is provided through the surface of the second rotating shaft 14. A stop block 20 is provided in the middle of the inner wall of the second rotating shaft 14. An opening is also provided on the rear end surface of the second rotating shaft 14. The rear end surface is connected to the drive structure through the connecting bushing 16. Furthermore, two sets of corresponding rear end surfaces of the second rotating shaft 14 are also equipped with transmission gears 15 to form a gear transmission. The clamping transmission wheel 19 is installed on the surface of the second rotating shaft 14.
[0033] In this implementation plan, the specific working principle is as follows: the fabric is conveyed into the inner chamber via a transmission structure. Through the cooperation of the elongated drying chamber 7, the circular drying chamber 8, and the hot air blowing structure, and with the fabric circulating around the elongated drying chamber 7 and the circular drying chamber 8 via the transmission structure, the surface of the fabric can be dried when the hot air blowing structure is activated. (See reference...) Figure 6It is evident that by winding, the contact area between the fabric and the hot air can be increased, thus enabling rapid drying of the fabric without reducing the conveying speed. Secondly, the cavity formed between the outer shell 1 and the inner shell 5 has an insulating effect, ensuring that the temperature of the inner shell 5 remains constant, preventing excessive heat loss. This helps maintain a constant internal temperature within the inner shell 5, effectively increasing the dissipation of moisture from the fabric surface. Furthermore, the enclosed box 6 and the upper baffle 22 create two cavities between the inner shell 5 and the outer shell 1. This, combined with the hot air blowing and heat dissipation structures, maintains a stable heating and cooling process while keeping the internal temperature constant. Additionally, to allow for appropriate temperature increases during the fabric feeding and discharging phases, please refer to [reference needed]. Figure 8 As can be seen, hot air enters through the opening on the rear surface of the second rotating shaft 14 within the hot air blowing cavity, and then begins to dissipate heat outward through the opening on the middle surface of the second rotating shaft 14, raising the temperature of the clamping conveyor wheel 19. At this point, the hot air is then dissipated into the exhaust cavity through the opening and extracted through the heat dissipation structure. This allows the fabric to undergo a preheating stage, which is beneficial for the drying process. Secondly, the clamping conveyor wheel 19 at the outlet plays a crucial role. During the drying process, the fabric needs to maintain a certain temperature to ensure the drying effect. The preheated clamping conveyor wheel 19 can fine-tune the temperature of the fabric as it enters and leaves the drying device, maintaining a stable temperature throughout the drying process. When the fabric leaves the drying device, its temperature may still be relatively high. The clamping conveyor wheel 19 at the outlet provides a slow cooling effect, preventing wrinkles or deformation of the fabric due to sudden temperature drops.
[0034] Based on the above, the specific details of the external enclosure structure can be found in [reference needed]. Figure 5 and Figure 6 As can be seen, the outer casing includes an outer shell 1, a bottom mounting plate 2, a support leg 3, and an upper mounting plate 4; the bottom mounting plate 2 is mounted on the lower end face of the outer shell 1, the support leg 3 is mounted on the lower end face of the bottom mounting plate 2, the upper mounting plate 4 is mounted on the upper end face of the outer shell 1, the drive structure is mounted on the rear side of the outer shell 1, the hot air blowing structure is mounted on the upper end face and the rear side face of the outer shell 1, and the heat dissipation structure is mounted on the front side face of the outer shell 1.
[0035] Based on the above, since there is no longer an entry point for concentrated hot air, please refer to [link / reference]. Figure 6 and Figure 9As can be seen, an inclined baffle 21 is also installed on the lower end face of the upper mounting plate 4. Furthermore, the lower end face of the upper mounting plate 4 contacts the upper baffle 22, while the upper baffle 22 located at the lower end of the inner shell 5 contacts the upper end face of the bottom mounting plate 2. One set of hot air blowing structures is correspondingly set with the opening on the upper end face of the inner shell 5. Thus, when the hot air blowing structure blows, the hot air can be concentrated through the inclined baffle 21 and directly enter the opening on the upper surface of the inner shell 5 through the opening on the surface of the outer shell 1, thereby allowing the hot air to directly enter the long drying oven 7, which helps to improve drying efficiency.
[0036] Based on the above, please refer to the specific structure of the hot air blower. Figure 5 , Figure 6 , Figure 11 As can be seen, the hot air blowing structure includes a first centrifugal fan 12 and an electric heater 11. The electric heater 11 is installed on the upper end face and the rear side of the outer shell 1 respectively. The first centrifugal fan 12 is installed on the outer side of the electric heater 11 by bolts. One set of hot air blowing structure is corresponding to the inclined baffle box 21, and the other set of hot air blowing structure is corresponding to the circular drying box 8. The hot air blowing structure located on the rear side of the outer shell 1 blows hot air into the interior of the outer shell 1. Most of the hot air will directly enter the circular drying box 8, but some hot air will remain in the cavity and then enter the second rotating shaft 14.
[0037] To facilitate the installation of the inner shell 5 during installation, the installation of the inner shell 5 is restricted, thereby simplifying the installation operation. For details, please refer to [reference needed]. Figure 12 As can be seen, multiple sets of baffles 17 are installed on the inner wall surface of the outer shell 1, and the upper end of the baffles 17 is inclined and chamfered.
[0038] For details on the heat dissipation structure, please refer to [link / reference]. Figure 11 As can be seen, the heat dissipation structure includes a second centrifugal fan 13, which is installed on the front side of the outer casing 1. The second centrifugal fan 13 is connected to the exhaust cavity to draw out air, thereby achieving airflow with the hot air blowing structure.
[0039] See Figure 11 and Figure 12 As can be seen, the drive structure includes a servo motor 10, which is mounted on the rear side of the housing 1. The output end of the servo motor 10 is bolted to the connecting bushing 16.
[0040] Finally, it should be noted that the above description is merely a preferred embodiment of this utility model and is not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A quick drying device for textile production, comprising an outer box, a hot air blowing structure, a heat dissipation structure, a driving structure, the hot air blowing structure is installed on the upper side and the rear side of the outer box, the driving structure is installed on the rear side of the outer box, and the heat dissipation structure is installed on the front side of the outer box, characterized in that: The external box is internally provided with an internal box, the internal box is internally provided with a transmission structure, a driving structure is connected with the transmission structure, a blocking body structure is arranged between the internal box and the external box, the blocking body structure divides the internal space of the external box into two cavities, i.e. a hot air cavity and an air extraction cavity, a rapid drying structure is further arranged in the internal box, the internal box comprises an inner shell (5) and a connecting plate (18), the upper end surface and the front side surface of the inner shell (5) are provided with elongated openings; the transmission structure comprises a first rotating shaft (9), a second rotating shaft (14), a clamping conveying wheel (19) and a blocking block (20); the drying structure comprises an elongated drying box (7) and a circular drying box (8); the blocking body structure comprises an upper blocking plate (22) and a closed box (6); the inner shell (5) is arranged in the internal space of the external box through the connecting plate (18), the closed box (6) is arranged at the openings on the left and right side surfaces of the inner shell (5), the upper blocking plate (22) is arranged on the upper end and the lower end surface of the inner shell (5), the two end surfaces of the upper blocking plate (22) are in contact with the surface of the closed box (6), so that the internal space of the external box and the inner shell (5) are divided into two cavities, the cavity on the right side of the upper blocking plate (22) is the hot air cavity, and the cavity on the left side of the upper blocking plate (22) is the air extraction cavity; the elongated drying box (7) and the circular drying box (8) are arranged on the inner surface of the inner shell (5) and correspond to the hot air blowing structure respectively, a plurality of bearing seats are arranged on the front and rear side surfaces of the inner shell (5), the first rotating shaft (9) and the second rotating shaft (14) are connected with the inner rings of the bearing seats respectively, the first rotating shaft (9) is arranged on the inner surface of the inner shell (5) and is arranged around the circular drying box (8) and the elongated drying box (7), the second rotating shaft (14) is arranged on the inner surface of the inner shell (5) close to the opening, an opening is arranged on the surface of the second rotating shaft (14), the blocking block (20) is arranged in the middle of the inner wall of the second rotating shaft (14), an opening is also arranged on the rear end surface of the second rotating shaft (14), the rear end surface is connected with the driving structure through a connecting shaft sleeve (16), and the rear end surfaces of the two corresponding second rotating shafts (14) are further provided with transmission gears (15) and constitute a gear transmission, and the clamping conveying wheel (19) is arranged on the surface of the second rotating shaft (14).
2. A rapid drying device for textile production according to claim 1 characterized in that: The external box comprises an outer shell (1), a bottom mounting plate (2), support legs (3) and an upper mounting plate (4); the bottom mounting plate (2) is arranged on the lower end surface of the outer shell (1), the support legs (3) are arranged on the lower end surface of the bottom mounting plate (2), and the upper mounting plate (4) is arranged on the upper end of the outer shell (1); the driving structure is arranged on the rear side surface of the outer shell (1), the hot air blowing structure is arranged on the upper end surface and the rear side surface of the outer shell (1), and the heat dissipation structure is arranged on the front side surface of the outer shell (1).
3. A rapid drying device for textile production according to claim 2 characterized in that: The lower end surface of the upper mounting plate (4) is further provided with an inclined baffle box (21), the lower end surface of the second upper mounting plate (4) is in contact with an upper baffle (22), the upper baffle (22) at the lower end of the inner shell (5) is in contact with the upper end surface of the bottom mounting plate (2), and a group of hot air blowing structures are arranged corresponding to the openings in the upper end surface of the inner shell (5).
4. A rapid drying device for textile production according to claim 1 characterized in that: The hot air blowing structure comprises a first centrifugal fan (12) and an electric heater (11), the electric heater (11) is mounted on the upper end surface and the rear surface of the outer shell (1), the first centrifugal fan (12) is mounted on the outer surface of the electric heater (11) through bolts, one group of hot air blowing structures are arranged corresponding to the inclined baffle box (21), and the other group of hot air blowing structures are arranged corresponding to the circular drying box (8).
5. A rapid drying device for textile production according to claim 2 characterized in that: A plurality of baffle plates (17) are mounted on the inner wall surface of the outer shell (1), and the upper end of the baffle plate (17) is inclined and chamfered.
6. A rapid drying device for textile production according to claim 1 characterized in that: The heat dissipation structure comprises a second centrifugal fan (13), and the second centrifugal fan (13) is mounted on the front surface of the outer shell (1).
7. A rapid drying device for textile production according to claim 1 characterized in that: The driving structure comprises a servo motor (10), and the servo motor (10) is mounted on the rear surface of the outer shell (1), and the output end of the servo motor (10) is bolted to the connecting shaft sleeve (16).