Clothes airing machine capable of generating high-speed drying airflow
By setting up a pressurizing component inside the airflow cavity of the clothes dryer to form a narrow air duct, and using a fan to accelerate the airflow, combined with a heating element and a guide plate, the problem of low drying efficiency in existing clothes dryers is solved, achieving a highly efficient and uniform clothes drying effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHEJIANG HOOEASY SMART TECH
- Filing Date
- 2025-04-25
- Publication Date
- 2026-05-01
AI Technical Summary
Existing clothes drying racks have low drying efficiency, and bottom-mounted drying modules have problems such as complex structure and safety hazards.
By setting a pressurizing component in the airflow cavity to form a narrow pressurized air duct, the airflow generated by the fan passes through the pressurized air duct to form a high-speed airflow. Combined with the heating element and the air guide plate, efficient and uniform clothes drying is achieved.
It significantly improves clothes drying efficiency, ensures airflow stability and uniformity, reduces energy consumption, and has a compact structure that adapts to the internal space layout of the clothes dryer.
Smart Images

Figure CN224186473U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to a clothes drying machine, and more particularly to a clothes drying machine that can generate a high-speed drying airflow, which can improve the drying efficiency of clothes. Background Technology
[0002] Existing clothes drying racks have a drying module on the main unit. The drying module generates hot airflow to dry the clothes on the drying rod below the main unit. The hot airflow tends to flow upward, which makes the drying efficiency of existing clothes drying racks relatively low.
[0003] There is also a bottom-mounted drying module, which is placed below the drying rod. The hot air generated by the drying module flows upwards over the drying rod, which can improve the drying efficiency of clothes. However, considering the introduction of power supply and storage, it will make the structure of the clothes dryer more complicated. On the other hand, the bottom-mounted drying module has certain safety hazards. Utility Model Content
[0004] The technical problem to be solved by this utility model is to provide a clothes drying machine that can generate high-speed drying airflow, thereby improving the drying efficiency of clothes. By setting a pressurizing component in the airflow cavity to form a narrow pressurized air duct, the airflow generated by the fan is accelerated and pressurized. Combined with the functions of the heating element and the air guide plate, a highly efficient, uniform, and energy-saving clothes drying effect is achieved.
[0005] The technical solution of this utility model to solve the above-mentioned technical problems is: a clothes drying rack that can generate high-speed drying airflow, characterized in that:
[0006] It includes a main unit equipped with a drying module and a clothes drying rod; the drying module generates hot airflow that blows onto the clothes on the drying rod; the drying module includes a fan, an airflow pressurization device, a heating element, and an air guide plate;
[0007] The airflow pressurization device is an airflow cavity with an air inlet and an air outlet, and the airflow cavity is formed by a front plate, a rear plate, a left plate and a right plate.
[0008] A pressurizing component is provided inside the airflow cavity, which forms a narrow pressurized air duct inside the airflow cavity; the airflow generated by the fan passes through the pressurized air duct to form a high-speed airflow, and the high-speed airflow passes through the heating element and is blown out after passing through the air guide plate.
[0009] A further preferred embodiment of this utility model is that both the front plate and the rear plate are elongated, so that the airflow cavity extends along the lateral length direction.
[0010] The front end face of the airflow cavity is provided with a cover plate, and the air inlet is located at the center of the cover plate;
[0011] The fan is connected to the air inlet via a retractable elbow.
[0012] A further preferred embodiment of this utility model is that the cross-section of the pressurizing component is teardrop-shaped, located at the center of the airflow cavity, and forming narrowed pressurizing ducts on both sides of the airflow cavity.
[0013] A further preferred embodiment of this invention is that the pressurizing component has a hollow structure, and the hollow structure is filled with sound-absorbing sponge.
[0014] A further preferred embodiment of this utility model is that the pressurizing component is a streamlined pressurizing component, which is surrounded by a smooth annular wall;
[0015] The annular wall includes a first cutting wall and a second cutting wall. The first end of the first cutting wall and the second cutting wall that meet forms an airflow cutting edge, and the second end of the first cutting wall and the second cutting wall that meet is a smooth bottom wall with a continuous transition. The airflow cutting edge faces the air inlet, and the smooth bottom wall is close to the air outlet.
[0016] A further preferred embodiment of this utility model is as follows: near the air inlet, a first horn inlet is formed between the first cut wall and the front panel, and a second horn inlet is formed between the second cut wall and the rear panel.
[0017] A further preferred embodiment of this utility model is as follows: the air inlet includes a guide section with a consistent diameter, and the airflow cutting edge is located at the end of the guide section.
[0018] A further preferred embodiment of this utility model is: the front plate includes a first guide wall and a first diversion wall, and the rear plate includes a second guide wall and a second diversion wall;
[0019] Both the first guide wall and the second guide wall are straight walls, while the first diversion wall and the second diversion wall are arc-shaped walls.
[0020] A guide section forming an air inlet is formed between the first guide wall and the second guide wall;
[0021] The first horn inlet and the first pressurized air duct are formed between the first diversion wall and the first cutting wall, and the second horn inlet and the second pressurized air duct are formed between the second diversion wall and the second cutting wall.
[0022] A further preferred embodiment of this utility model is that the diameter of the air inlet is larger than the diameter of the air outlet.
[0023] A further preferred embodiment of this utility model is as follows: a first mounting step is formed between the first guide wall and the outwardly bent first diversion wall, and a second mounting step is formed between the second guide wall and the outwardly bent second diversion wall; the cover plate is placed inside the mounting step.
[0024] Compared with existing technologies, the advantages of this invention are: the drying module of this clothes dryer forms a narrowed pressurized air duct within the airflow cavity through a pressurizing component in the airflow pressurization device. After passing through this pressurized air duct, the airflow generated by the fan significantly increases its speed and pressure, forming a high-speed airflow. This technology not only improves the acceleration efficiency of the airflow but also ensures its stability after passing through the pressurized air duct. The high-speed and stable airflow can more effectively penetrate clothing fibers, accelerating moisture evaporation and thus significantly improving drying efficiency. Simultaneously, stable airflow output also helps reduce uneven drying caused by airflow fluctuations, ensuring that clothes are dried evenly.
[0025] The airflow cavity of the drying module is enclosed by a front plate, rear plate, left plate, and right plate. This compact structural design allows the entire drying module to better adapt to the internal space layout of the clothes dryer main unit. The placement of the pressurizing components within the airflow cavity forms a narrowed pressurized air duct, which not only improves the acceleration efficiency of the airflow but also makes the compact design of the entire drying module possible. This compact structure not only improves space utilization efficiency but also provides greater flexibility for the diverse design of the clothes dryer. Attached Figure Description
[0026] The present invention will be further described in detail below with reference to the accompanying drawings and preferred embodiments. However, those skilled in the art will understand that these drawings are drawn only for the purpose of explaining the preferred embodiments and therefore should not be construed as limiting the scope of the present invention. Furthermore, unless specifically indicated, the drawings are only schematic representations of the composition or structure of the described objects and may contain exaggerated depictions, and the drawings are not necessarily drawn to scale.
[0027] Figure 1 This is a schematic diagram of the overall structure of the clothes drying rack in this embodiment. Figure 1 ;
[0028] Figure 2 This is a schematic diagram of the overall structure of the clothes drying rack in this embodiment. Figure 2 ;
[0029] Figure 3 This is a schematic diagram of the overall structure of the drying module in this embodiment. Figure 1 ;
[0030] Figure 4 This is a structural disassembly diagram of the drying module in this embodiment;
[0031] Figure 5 This is a schematic diagram of the airflow path through the airflow pressurization device.
[0032] Figure 6 This is a partial structural disassembly diagram of the drying module in this embodiment;
[0033] Figure 7 This is a schematic diagram of the overall structure of the drying module in this embodiment. Figure 2 . Detailed Implementation
[0034] The preferred embodiments of the present invention will now be described in detail with reference to the accompanying drawings. Those skilled in the art will appreciate that these descriptions are merely descriptive and exemplary and should not be construed as limiting the scope of protection of the present invention.
[0035] It should be noted that similar labels in the following figures indicate similar items; therefore, once an item is defined in one figure, it will not be further defined and explained in subsequent figures.
[0036] In the description of this utility model, it should be noted that the terms "upper," "lower," "front," "rear," "left," "right," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the product of this utility model is in use. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. Similarly, "first" and "second" are only for ease of understanding and have no other directional meaning, and should not be considered as limitations on this utility model.
[0037] A clothes drying rack 100 capable of generating high-speed drying airflow includes a main unit 101 equipped with a drying module 102 and a drying rod 103 for drying clothes; the drying module 102 generates hot airflow that blows onto the clothes on the drying rod 103. Figure 1 and Figure 2 The drying rod 103 shown is preferably able to be extended downwards and placed below the drying module 102. This is a conventional technique in the prior art, and the essence of this utility model does not lie in this, so it will not be elaborated in detail.
[0038] Furthermore, preferably, such as Figure 2 As shown, a clothes drying frame 104 is provided below the drying module 102. Small items of clothing or clothing whose drying conditions are limited to being laid out can preferably be placed in the clothes drying frame 104 for drying. The clothes drying frame 104 is positioned below the drying module 102 to improve the efficiency of drying the clothes by the drying module 102. When not in use, the clothes drying frame 104 can be removed.
[0039] The clothes drying rack under this technical solution is a home appliance that integrates intelligent drying and efficient drying functions. The drying module adopts a unique heating technology and airflow circulation system, which can quickly generate a suitable and powerful hot airflow and accurately blow it onto the clothes hanging on the drying rod, thereby achieving uniform drying of clothes in a short time, greatly improving the drying efficiency, and is especially suitable for use in humid weather or in environments with limited space.
[0040] like Figures 3 to 7 As shown, the drying module includes a fan 10, an airflow pressurization device 20, a heating element 30, and an air guide plate 40.
[0041] Preferably, in the drying module of the clothes dryer, the fan 10 uses a high-speed brushless motor. As a core component, its speed typically needs to reach over 100,000 revolutions per minute. Brushless motors have high energy conversion efficiency, effectively reducing energy loss. In the drying module of the clothes dryer, this means the motor can provide powerful airflow with lower energy consumption, improving drying efficiency. Furthermore, high-speed brushless motors generate less noise during operation.
[0042] Furthermore, the airflow pressurization device 20 further enhances the pressure and velocity of the airflow. Through a special structural design, it compresses the airflow as it passes through, thereby gaining higher kinetic energy. This pressurized airflow can penetrate the clothing fibers more effectively, accelerate moisture evaporation, and improve drying efficiency.
[0043] The heating element 30 is the key heating element in the drying module, enabling the airflow to fully absorb heat and thus form a hot airflow. This hot airflow, driven by the fan, blows onto the clothes on the drying rack, achieving rapid drying of the clothes.
[0044] The main function of an air deflector is to guide and optimize the direction of airflow. Through a special structural design, such as multiple ventilation holes and air guide channels, it evenly distributes hot airflow onto the surface of the clothes on the drying rack. The air deflector can also adjust the distribution and intensity of airflow according to different drying needs.
[0045] During the drying process of the clothes dryer, the fan 10 is activated first, generating a powerful airflow. As the airflow passes through the airflow pressurization device 20, it is further compressed and accelerated. Subsequently, the airflow passes through the heating element 30, absorbing heat to form a hot airflow. Finally, the air guide plate 40 evenly guides the hot airflow onto the surface of the clothes on the drying rack. Throughout the process, all components work closely together to ensure efficient generation, heating, and distribution of airflow, thereby achieving rapid drying of the clothes.
[0046] The present invention will further elaborate on the specific technical means of the airflow pressurization device 20, as follows:
[0047] like Figure 5 and Figure 6 As shown, the airflow pressurization device 20 is an airflow cavity 23 with an air inlet 21 and an air outlet 22. The airflow cavity 23 is enclosed by a front plate 2a, a rear plate 2b, a left plate 2c, and a right plate 2d. A pressurization component 50 is provided inside the airflow cavity 23, which forms a narrowed pressurized air duct h within the airflow cavity 23. When the fan 10 generates airflow, it forms a high-speed airflow after passing through the pressurized air duct h. The high-speed airflow passes through the heating element 30 and is then blown out through the air guide plate 40.
[0048] In addition, an air inlet 21 is provided at the center of the cover plate 25 on the front end face of the airflow cavity 23. This technology allows the airflow generated by the fan 10 to enter the airflow cavity 23 in a more concentrated and uniform manner. Since the air inlet 21 is located at the center of the cover plate 25, the airflow can quickly diffuse to the surroundings after entering the airflow cavity 23, reducing the uneven airflow distribution caused by the offset of the air inlet position, thereby improving the uniformity of airflow distribution throughout the cavity.
[0049] At the same time, such as Figure 3 As shown, the extendable bend 11 connects the fan 10 and the air inlet 21. Its length and angle can be flexibly adjusted according to the actual installation space and requirements to ensure the smoothness of airflow when entering the air inlet, avoid airflow resistance or turbulence caused by the limitation of the connecting pipe, and further improve the efficiency of airflow introduction.
[0050] Furthermore, the retractable bend 11 greatly facilitates the installation and maintenance of the fan 10. During installation, the length and curvature of the bend 11 can be flexibly adjusted according to the structure and spatial layout of the clothes drying rack main unit, enabling the fan 10 to more accurately connect with the air inlet 21 of the airflow pressurization device 20, thereby improving the convenience and accuracy of installation.
[0051] Preferably, such as Figure 7 As shown, both the front plate 2a and the rear plate 2b are elongated to extend the airflow cavity 23 along its lateral length. This significantly improves the uniformity of airflow distribution within the cavity. When airflow enters the cavity from the inlet 21, the elongated front and rear plates guide the airflow to diffuse evenly along the length of the cavity, reducing airflow accumulation or turbulence in localized areas. This uniform airflow distribution helps to form a stable airflow field, ensuring that the airflow is pressurized more evenly when passing through the pressurizing component 50, thereby improving the efficiency and stability of the entire airflow pressurization process.
[0052] Furthermore, the elongated design of the front panel 2a and the rear panel 2b allows the airflow cavity 23 to better adapt to the internal structural layout of the clothes drying rack's main unit. The cavity extending in the lateral direction fully utilizes the lateral space inside the main unit, avoiding space waste caused by an unreasonable cavity shape.
[0053] Preferably, the pressurizing component 50 has a teardrop-shaped cross-section, located at the center of the airflow cavity 23, and forms narrowing pressurized air channels h on both sides of the airflow cavity 23. This technique allows the airflow to form a streamlined flow path along the surface of the teardrop shape when passing through the pressurizing component. The teardrop shape is narrower at the front and gradually widens at the rear, effectively guiding the airflow to form two narrowing pressurized air channels h within the cavity. When the airflow passes through these two pressurized air channels h, due to the reduction in the cross-sectional area of the channels, according to Bernoulli's principle, the airflow velocity will increase significantly, and the pressure will also increase accordingly. This acceleration and pressurization effect allows the airflow to form a high-speed, high-pressure airflow after passing through the pressurized air channels, providing stronger power for the subsequent drying process.
[0054] Moreover, because it is located in the center of the cavity, the airflow entering from the air inlet will be evenly distributed into the pressurized air ducts h on both sides. This uniform distribution method can avoid local accumulation or turbulence of airflow in the cavity, ensuring that the airflow in the entire cavity is more stable and uniform.
[0055] Specifically, such as Figure 5 As shown, the pressurizing component 50 adopts a streamlined design, surrounded by a smooth annular wall 51. This technology effectively reduces airflow resistance and improves acceleration efficiency. The annular wall 51 includes a first cutting wall 51a and a second cutting wall 51b, which form an airflow cutting ridge 51c at the first joint end, while the second joint end is a smooth bottom wall 51d with a continuous transition. The airflow cutting ridge 51c faces the air inlet 21, and the smooth bottom wall 51d is close to the air outlet 22. This unique structural design allows the airflow to be rapidly cut and accelerated when entering the pressurizing component, while transitioning smoothly when leaving, reducing turbulence and energy loss.
[0056] Near the air inlet 21, a first horn inlet r1 is formed between the first cutting wall 51a and the front plate 2a, and a second horn inlet r2 is formed between the second cutting wall 51b and the rear plate 2b. The front plate 2a includes a first guide wall a1 and a first diverting wall a2, and the rear plate 2b includes a second guide wall b1 and a second diverting wall b2, wherein both the first diverting wall a2 and the second diverting wall b2 are arc-shaped walls. These techniques not only effectively guide airflow into the pressurizing component, but also further accelerate the airflow through the gradually narrowing effect of the horn inlet. The first horn inlet r1 and the first pressurizing duct h1 connected to the first diverting wall a2 are formed between the first cutting wall 51a, and the second horn inlet r2 and the second pressurizing duct h2 connected to the second diverting wall b2 and the second cutting wall 51b are formed between the second diverting wall b2 and the second cutting wall 51b. This dual-channel design allows the airflow to be accelerated on both sides, improving the airflow acceleration efficiency and stability of the entire system.
[0057] This unique pressurizing component 50 structure, including a streamlined annular wall 51 and a horn-shaped inlet structure, significantly improves the acceleration and pressurization of the airflow. The airflow cutting edge 51c effectively cuts the incoming airflow, rapidly accelerating it, while the smooth bottom wall 51d ensures a smooth transition upon exit, reducing energy loss. The design of the first horn-shaped inlet r1 and the second horn-shaped inlet r2 further optimizes the airflow guidance and acceleration process, enabling the airflow to achieve higher speeds and pressures upon entering the pressurized ducts h1 and h2.
[0058] In addition, the front plate 2a and the rear plate 2b diversion walls work closely with the cutting wall and horn inlet of the pressurizing component 50 to optimize the airflow introduction and acceleration process, ensuring that the airflow can obtain higher speed and pressure when entering the pressurizing duct.
[0059] Preferably, the first diversion wall a2 and the second diversion wall b2 are arc-shaped walls. The arc shape of the first diversion wall a2 and the second diversion wall b2 can more smoothly divert the airflow to the pressurized air ducts h1 and h2 on both sides. The arc-shaped walls can reduce the energy loss of the airflow during the acceleration process. Since the arc-shaped walls can guide the airflow more smoothly, the collision and turbulence of the airflow when passing through the diversion walls are reduced, thereby reducing energy loss. Moreover, the curvature trajectory of the arc-shaped walls cooperates with the annular wall 51 of the teardrop-shaped pressurization structure 50, aiming to form a bell mouth and pressurized air duct h with a reasonable diameter.
[0060] Preferably, the air inlet 21 includes a guide section 211 with a consistent diameter, and an airflow cutting ridge 51c is located at the end of the guide section 211. The consistent diameter of the guide section 211 ensures that the airflow maintains a stable velocity and pressure before entering the airflow cavity 23, allowing the airflow to enter the pressurizing component 50 more evenly. The airflow cutting ridge 51c, located at the end of the guide section 211, precisely cuts the incoming airflow, causing it to form smaller airflow units before entering the pressurizing ducts h1 and h2, thus making it easier to accelerate.
[0061] The uniform diameter of the guide section 211 and the coordinated action of the airflow cutting edge 51c work together to make the airflow more stable when entering the pressurization component, reducing irregular fluctuations in the airflow and thus reducing noise and vibration.
[0062] Preferably, both the first guide wall a1 and the second guide wall b1 are straight walls, and a guide section 211 for the air inlet 21 is formed between the first guide wall a1 and the second guide wall b1. The straight wall design of the first guide wall a1 and the second guide wall b1 can ensure that the airflow maintains a stable flow rate and pressure when entering the guide section 211.
[0063] Furthermore, the straight-wall design of the first guide wall a1 and the second guide wall b1 provides more stable structural support. Compared to curved or other complex shapes, the straight-wall design better disperses pressure and reduces structural deformation when subjected to airflow impact. This is particularly effective for mounting the cover plate 25. Specifically, a first mounting step v1 is formed between the first guide wall a1 and the outwardly curved first diversion wall a2, and a second mounting step v2 is formed between the second guide wall b1 and the outwardly curved second diversion wall b2; the cover plate 25 is placed within the mounting step v2. The technical means of the first mounting step v1 and the second mounting step v2 provide a precise mounting position for the cover plate 25 and other related components. This technical means ensures that the cover plate 25 can be accurately positioned during installation, reducing installation errors. The mounting steps increase the contact area between components, thereby improving the stability of the entire structure.
[0064] Preferably, the diameter of the air inlet 21 is larger than the diameter of the air outlet 22. The larger diameter of the air inlet 21 allows more airflow to enter the airflow cavity 23, thus providing more gas per unit time for acceleration and heating. This provides a sufficient air source for the subsequent airflow acceleration process, ensuring that the airflow achieves higher speed and pressure when passing through the pressurizing component 50. Conversely, due to the smaller diameter of the air outlet 22, according to the continuity equation in fluid mechanics, the airflow velocity increases significantly when passing through the outlet. This design effectively improves the airflow acceleration efficiency, enabling the airflow to achieve higher speeds in a short time, thereby improving drying efficiency.
[0065] More preferably, the pressurizing component 50 has a hollow structure, and the hollow structure is filled with sound-absorbing sponge. The sound-absorbing sponge has an extremely high porosity and a three-dimensional mesh structure, which can effectively absorb sound waves and convert them into vibrational energy, thereby significantly reducing the noise generated when airflow passes through. In addition, the hollow structure itself has a certain sound insulation effect, which can further reduce the propagation of noise. Combined with the sound-absorbing sponge, this composite structure performs excellently in noise reduction.
[0066] This invention introduces a clothes drying rack capable of generating high-speed drying airflow. Specific examples are used to illustrate the principles and implementation methods of this invention. The descriptions of the embodiments are merely for the purpose of helping to understand this invention and its core concepts. It should be noted that those skilled in the art can make various improvements and modifications to this invention without departing from its principles, and these improvements and modifications also fall within the protection scope of the claims of this invention.
Claims
1. A clothes drying rack capable of generating high-speed drying airflow, characterized in that: Includes a main unit equipped with a drying module and a clothes drying rack; the drying module generates hot airflow that blows onto the clothes on the drying rack; The drying module includes a fan, an airflow pressurization device, a heating element, and an air guide plate; The airflow pressurization device is an airflow cavity with an air inlet and an air outlet, and the airflow cavity is formed by a front plate, a rear plate, a left plate and a right plate. A pressurizing component is provided inside the airflow cavity, which forms a narrow pressurized air duct inside the airflow cavity; The airflow generated by the fan passes through the pressurized air duct to form a high-speed airflow, which then passes through the heating element and is blown out through the air guide plate.
2. The clothes drying rack capable of generating high-speed drying airflow according to claim 1, characterized in that: Both the front plate and the rear plate are elongated to allow the airflow cavity to extend along the lateral length direction. The front end face of the airflow cavity is provided with a cover plate, and the air inlet is located at the center of the cover plate; The fan is connected to the air inlet via a retractable elbow.
3. The clothes drying rack capable of generating high-speed drying airflow according to claim 2, characterized in that: The pressurizing component has a teardrop-shaped cross-section, is located at the center of the airflow cavity, and forms narrowed pressurizing ducts on both sides of the airflow cavity.
4. The clothes drying rack capable of generating high-speed drying airflow according to claim 3, characterized in that: The pressurizing component has a hollow structure, and the hollow structure is filled with sound-absorbing sponge.
5. The clothes drying rack capable of generating high-speed drying airflow according to claim 3, characterized in that: The pressurizing component is a streamlined pressurizing component, formed by a smooth annular wall; The annular wall includes a first cutting wall and a second cutting wall. The first end where the first cutting wall and the second cutting wall meet forms an airflow cutting edge, and the second end where the first cutting wall and the second cutting wall meet is a smooth bottom wall with a continuous transition. The airflow cutting edge faces the air inlet, and the smooth bottom wall is close to the air outlet.
6. The clothes drying rack capable of generating high-speed drying airflow according to claim 5, characterized in that: Near the air inlet, a first horn inlet is formed between the first cut wall and the front panel, and a second horn inlet is formed between the second cut wall and the rear panel.
7. The clothes drying rack capable of generating high-speed drying airflow according to claim 5, characterized in that: The air inlet includes a guide section with a consistent diameter, and the airflow cutting edge is located at the end of the guide section.
8. The clothes drying rack capable of generating high-speed drying airflow according to claim 6, characterized in that: The front plate includes a first guide wall and a first diversion wall, and the rear plate includes a second guide wall and a second diversion wall; Both the first guide wall and the second guide wall are straight walls, while the first diversion wall and the second diversion wall are arc-shaped walls. A guide section forming an air inlet is formed between the first guide wall and the second guide wall; The first horn inlet and the first pressurized air duct are formed between the first diversion wall and the first cutting wall, and the second horn inlet and the second pressurized air duct are formed between the second diversion wall and the second cutting wall.
9. The clothes drying rack capable of generating high-speed drying airflow according to claim 1, characterized in that: The diameter of the air inlet is larger than the diameter of the air outlet.
10. The clothes drying rack capable of generating high-speed drying airflow according to claim 8, characterized in that: A first mounting step is formed between the first guide wall and the outwardly curved first diversion wall, and a second mounting step is formed between the second guide wall and the outwardly curved second diversion wall; The cover plate is inserted into the mounting step.