Cleaning machine drying device

CN224802088UActive Publication Date: 2026-09-25WUXI ZHONGBANG XINGTAI ENVIRONMENTAL PROTECTION TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202522126530.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-30
Publication Date
2026-09-25
Estimated Expiration
2035-09-30

AI Technical Summary

Technical Problem

[0003]目前,清洗机的干燥方式为:吹干干燥,即利用电机等驱动件驱动扇叶进行转动,以从上至下吹干所需干燥的物料或者工件,然而,由于物料或者工件上的水渍会在重力的作用下聚集在物料或者工件的下方,这种吹干干燥方式难以对物料或者工件下方的水渍进行干燥处理,会影响物料或者工件的干燥效率以及干燥效果

Benefits of technology

[0018]通过第一干燥机构从置物板的上方对物料或者工件进行干燥处理,通过第二干燥机构从置物板的下方对物料或者工件进行干燥处理,相比于现有从上至下吹干所需干燥的物料或者工件的方式,该方式结构简单,便于操作,能够实现物料或者工件上下两侧的双重干燥,能够避免物料或者工件下方的水渍难以被干燥,以提高物料或者工件的干燥效率以及干燥效果。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to cleaning machine technical field especially relates to a cleaning machine drying device, include: drying box, put material plate, first drying mechanism and second drying mechanism, put material plate installs in drying box, and put material plate is used for placing the material or work piece of waiting for drying processing, first drying mechanism, second drying mechanism all install in drying box, and first drying mechanism is located above put material plate, and second drying mechanism is located below put material plate. The utility model discloses a first drying mechanism is from the top of put material plate to material or work piece and carries out drying processing, through second drying mechanism is from the bottom of put material plate to material or work piece and carries out drying processing, compared to the drying material or work piece required to blow dry from top to bottom of prior art, this mode can realize the double drying of material or work piece upside and downside, can avoid the water mark below material or work piece to be difficult to be dried, to improve the drying efficiency and drying effect of material or work piece.
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Description

Technical Field

[0001] This utility model relates to the field of cleaning machine technology, and in particular to a cleaning machine drying device. Background Technology

[0002] Cleaning machines are used to flush and filter contaminants generated or introduced into hydraulic systems during manufacturing, assembly, use, and maintenance. They can also be used for electrical maintenance filtration of working oils to improve cleanliness, avoid or reduce malfunctions caused by contamination, and thus ensure the high performance, high reliability, and long service life of hydraulic system equipment.

[0003] Currently, the drying method of cleaning machines is blow-drying, which uses motors and other drive components to drive fan blades to rotate, so as to blow dry the materials or workpieces to be dried from top to bottom. However, since water stains on the materials or workpieces will accumulate at the bottom of the materials or workpieces under the action of gravity, this blow-drying method is difficult to dry the water stains at the bottom of the materials or workpieces, which will affect the drying efficiency and drying effect of the materials or workpieces. Utility Model Content

[0004] In response to the shortcomings of the existing production technology, the applicant provides a drying device for a cleaning machine. By improving the structure of the drying device, dual drying of the material or workpiece on both the top and bottom sides can be achieved, thereby improving the drying efficiency and effect of the material or workpiece.

[0005] The technical solution adopted in this utility model is as follows:

[0006] A drying device for a cleaning machine includes: a drying chamber, a shelf, a first drying mechanism, and a second drying mechanism. The shelf is installed inside the drying chamber and is used to place materials or workpieces to be dried. The first drying mechanism and the second drying mechanism are both installed inside the drying chamber, with the first drying mechanism located above the shelf and the second drying mechanism located below the shelf. The first drying mechanism dries the materials or workpieces from above the shelf, and the second drying mechanism dries the materials or workpieces from below the shelf.

[0007] Therefore, by using the first drying mechanism to dry the material or workpiece from above the shelf, and the second drying mechanism to dry the material or workpiece from below the shelf, compared with the existing method of drying the material or workpiece from top to bottom, this method has a simple structure, is easy to operate, and can achieve dual drying of the material or workpiece from both the top and bottom. It can avoid the water stains on the bottom of the material or workpiece being difficult to dry, thereby improving the drying efficiency and drying effect of the material or workpiece.

[0008] As a further improvement to the above technical solution: the first drying mechanism includes a first driving component, a first connecting rod, and a plurality of first rotating rods. The driving end of the first driving component is connected to the first connecting rod. The plurality of first rotating rods are distributed in a ring at equal intervals. The first rotating rods are installed on the side of the first connecting rod away from the first driving component. The first driving component is installed on the side wall of the drying chamber via a first support plate. Thus, when the first driving component is activated, it drives the first rotating rods to rotate, thereby generating airflow to dry the material or workpiece.

[0009] As a further improvement to the above technical solution: both the first connecting rod and the first rotating rod are hollow structures. The first rotating rod has multiple first through holes on its side near the placement plate, arranged at equal intervals. The first connecting rod is also connected to a first connecting pipe, which extends to the outside of the drying chamber. Thus, heat source gas is injected into the first connecting pipe, and this heat source gas is ejected through the first through holes and acts on the surface of the material or workpiece to dry it with heat source gas. The dual drying process of air drying by the first rotating rod and heat source gas drying through the first through holes further improves the drying efficiency and effect of the material or workpiece.

[0010] As a further improvement to the above technical solution: the first drying mechanism further includes two second driving members, which are located on the side of the first support plate away from the first driving member, and are respectively located at both ends of the first support plate. The second driving members are connected to the drying chamber, and the telescopic ends of the second driving members are connected to the first support plate. The second driving members are used to drive the first rotating rod to move closer to or further away from the placement plate, so as to adjust the distance between the first rotating rod and the placement plate. Thus, the position of the first rotating rod relative to the placement plate can be adjusted by the second driving members, so that the first rotating rod can adapt to materials or workpieces of different sizes, ensuring that the first rotating rod is always in the optimal drying position.

[0011] As a further improvement to the above technical solution: the second drying mechanism includes a third driving component, a second connecting rod, and multiple second rotating rods. The driving end of the third driving component is connected to the second connecting rod. The multiple second rotating rods are distributed in a ring at equal intervals. The second rotating rods are installed on the side of the second connecting rod away from the third driving component. The third driving component is installed on the side wall of the drying chamber via a second support plate. Thus, activating the third driving component drives the second rotating rods to rotate, thereby generating airflow to dry the material or workpiece.

[0012] As a further improvement to the above technical solution: both the second connecting rod and the second rotating rod are hollow structures. The second rotating rod has multiple second through holes on its side near the placement plate, arranged at equal intervals. The second connecting rod is also connected to a second connecting pipe, which extends to the outside of the drying chamber. Thus, heat source gas is injected into the second connecting pipe, and this heat source gas is ejected through the second through holes, acting on the surface of the material or workpiece to dry it with heat source gas. This dual drying process of air blowing from the second rotating rod and heat source gas drying through the second through holes further improves the drying efficiency and effect of the material or workpiece.

[0013] As a further improvement to the above technical solution, the second drying mechanism further includes two protective covers, each with a hollow structure. The hollow structures of the two protective covers together form a receiving space, within which the third driving component is located. The driving end of the third driving component penetrates through the protective cover, and the two protective covers are connected by a locking member. Thus, the protective covers protect the third driving component, ensuring it is not wetted by water from materials or workpieces, thereby improving its service life.

[0014] As a further improvement to the above technical solution, the shelf is provided with multiple third through holes. Thus, through these third through holes, the second drying mechanism can act on the lower surface of the material or workpiece.

[0015] As a further improvement to the above technical solution, it also includes: a vibration mechanism, wherein the shelf is connected to the drying chamber via the vibration mechanism; the vibration mechanism includes: a fourth driving member, a third support plate, a support rod, and a spring, wherein the telescopic end of the fourth driving member is connected to the third support plate, the support rod and the spring are both located on the side of the third support plate away from the fourth driving member, one end of the support rod is inserted into the third support plate and slidably connected to the third support plate, the other end of the support rod is connected to the shelf, the spring is sleeved on the outside of the support rod, and both ends of the spring are respectively connected to the third support plate and the shelf. Therefore, the fourth drive unit is activated, which moves the shelf up and down, causing it to vibrate. This applies force to the shelf to accelerate the dripping of water from the material or workpiece, thereby improving the drying efficiency and effect. In addition, the spring causes the shelf to vibrate a second time, further accelerating the dripping of water from the material or workpiece, thus further improving the drying efficiency and effect.

[0016] As a further improvement to the above technical solution: a sliding groove is formed on the side wall of the drying chamber relative to the position of the vibration mechanism; the vibration mechanism further includes a slider, the fourth driving member is connected to the slider, and the slider is slidably connected to the sliding groove. Thus, through the cooperation of the slider and the sliding groove, the shelf can move relative to the drying chamber to facilitate the handling of materials or workpieces.

[0017] The beneficial effects of this utility model are as follows:

[0018] The material or workpiece is dried from above the shelf by the first drying mechanism and from below the shelf by the second drying mechanism. Compared with the existing method of drying the material or workpiece from top to bottom, this method has a simple structure, is easy to operate, and can achieve dual drying of the material or workpiece from both the top and bottom. It can avoid the water stains on the bottom of the material or workpiece being difficult to dry, thereby improving the drying efficiency and drying effect of the material or workpiece.

[0019] This utility model also has the following advantages:

[0020] 1. This utility model drives a first rotating rod to rotate via a first driving component, thereby generating airflow to dry materials or workpieces; heat source gas is injected into a first connecting pipe, and the heat source gas is ejected through a first through hole and acts on the surface of the material or workpiece to dry it; the dual drying process of airflow drying via the first rotating rod and heat source gas drying via the first through hole further improves the drying efficiency and effect of the material or workpiece.

[0021] 2. This utility model uses a third driving component to drive the second rotating rod to rotate, thereby generating airflow to dry the material or workpiece; heat source gas is injected into the second connecting pipe, and the heat source gas is ejected through the second through hole and acts on the surface of the material or workpiece to dry it with heat source gas; the dual drying of airflow drying by the second rotating rod and heat source gas drying by the second through hole further improves the drying efficiency and drying effect of the material or workpiece.

[0022] 3. This utility model uses a fourth driving component to move the shelf up and down, causing it to vibrate. This applies force to the shelf to accelerate the dripping of water from the material or workpiece, thereby improving the drying efficiency and effect. Furthermore, the spring causes the shelf to vibrate a second time, further accelerating the dripping of water from the material or workpiece, thus further improving the drying efficiency and effect. Attached Figure Description

[0023] Figure 1 This is a first-view structural schematic diagram of the drying device of the cleaning machine of this utility model in the open state;

[0024] Figure 2 This is a second-view structural schematic diagram of the drying device of the cleaning machine of this utility model in the open state;

[0025] Figure 3 This is a schematic diagram of the drying device of the cleaning machine in the closed state of this utility model.

[0026] Figure 4 This is a schematic diagram of the structure of the first drying mechanism of this utility model;

[0027] Figure 5 This is a schematic diagram of the second drying mechanism of this utility model;

[0028] Figure 6 This is a schematic diagram of the structure of the storage plate and vibration mechanism of this utility model.

[0029] Among them: 1. Drying chamber;

[0030] 101. Slide rail; 102. Box door; 103. Handle; 104. Lock; 105. Buckle;

[0031] 2. Shelf;

[0032] 201. Third through hole;

[0033] 3. First drying unit;

[0034] 301. First driving component; 302. First connecting rod; 303. First rotating rod; 304. First support plate; 305. First through hole; 306. First connecting pipe; 307. Second driving component; 308. First connecting block;

[0035] 4. Second drying mechanism;

[0036] 401. Third driving component; 402. Second connecting rod; 403. Second rotating rod; 404. Second support plate; 405. Second through hole; 406. Second connecting pipe; 407. Protective cover; 408. Locking component; 409. Second connecting block;

[0037] 5. Vibration mechanism;

[0038] 501. Fourth driving component; 502. Third support plate; 503. Support rod; 504. Spring; 505. Slider. Detailed Implementation

[0039] The specific embodiments of this utility model are described below with reference to the accompanying drawings.

[0040] like Figures 1 to 6 The diagram shows the preferred embodiment of this utility model. The drying device for the cleaning machine in this embodiment includes: a drying chamber 1, a shelf 2, a first drying mechanism 3, and a second drying mechanism 4. The shelf 2 is installed inside the drying chamber 1 and is used to place the material or workpiece to be dried. The first drying mechanism 3 and the second drying mechanism 4 are both installed inside the drying chamber 1, with the first drying mechanism 3 located above the shelf 2 and the second drying mechanism 4 located below the shelf 2. The first drying mechanism 3 dries the material or workpiece from above the shelf 2, and the second drying mechanism 4 dries the material or workpiece from below the shelf 2. Therefore, the material or workpiece is dried from above the shelf 2 by the first drying mechanism 3 and from below the shelf 2 by the second drying mechanism 4. Compared with the existing method of drying the material or workpiece from top to bottom, this method has a simple structure, is easy to operate, and can achieve dual drying of the material or workpiece from both the top and bottom. It can avoid the water stains on the bottom of the material or workpiece being difficult to dry, thereby improving the drying efficiency and drying effect of the material or workpiece.

[0041] In other words, this application provides a second drying mechanism 4 below the storage plate 2. The second drying mechanism 4 can directly act on the lower part of the material or workpiece. This drying method, which dries the material or workpiece from below, can avoid the formation of drying dead corners during drying and prevent these dead corners from being difficult to dry. Thus, it can improve the drying efficiency and drying effect of the material or workpiece.

[0042] In this embodiment, the first drying mechanism 3 includes: a first driving member 301, a first connecting rod 302, a plurality of first rotating rods 303, and two second driving members 307. The driving end of the first driving member 301 is connected to the first connecting rod 302. The plurality of first rotating rods 303 are distributed in a ring at equal intervals. The first rotating rods 303 are installed on the side of the first connecting rod 302 away from the first driving member 301. The first driving member 301 is installed on the side wall of the drying chamber 1 through a first support plate 304. The second driving members 307 are located on the side of the first support plate 304 away from the first driving member 301, and the two second driving members 307 are respectively located at both ends of the first support plate 304. The second driving component 307 is connected to the drying chamber 1. The telescopic end of the second driving component 307 is connected to the first support plate 304. The second driving component 307 is used to drive the first rotating rod 303 to move closer to or further away from the shelf 2, so as to adjust the distance between the first rotating rod 303 and the shelf 2. The first connecting rod 302 and the first rotating rod 303 are both hollow structures. The first rotating rod 303 has multiple first through holes 305 on the side closer to the shelf 2. The multiple first through holes 305 are arranged at equal intervals on the first rotating rod 303. The first connecting rod 302 is also connected to a first connecting pipe 306, which extends to the outside of the drying chamber 1. Therefore, the first driving component 301 is activated, which drives the first rotating rod 303 to rotate, thereby generating airflow to dry the material or workpiece. Heat source gas is injected into the first connecting pipe 306, and this heat source gas is ejected through the first through hole 305, acting on the surface of the material or workpiece to dry it. This dual drying process of airflow drying by the first rotating rod 303 and heat source gas drying by the first through hole 305 further improves the drying efficiency and effect of the material or workpiece. The second driving component 307 can adjust the position of the first rotating rod 303 relative to the placement plate 2, allowing the first rotating rod 303 to adapt to materials or workpieces of different sizes, ensuring that the first rotating rod 303 is always in the optimal drying position.

[0043] It should be noted that: a first connecting block 308 is sleeved at the connection between the first driving component 301 and the first connecting rod 302. The first connecting pipe 306, the first connecting block 308 and the first connecting rod 302 are connected in sequence. The heat source gas flows into the first connecting component through the first connecting pipe 306 and the first connecting block 308. The first driving component 301 and the first connecting rod 302 are rotatably connected to the first connecting component.

[0044] For example, the first driving component 301 is an electric motor, and the second driving component 307 is a cylinder.

[0045] In this embodiment, the second drying mechanism 4 includes: a third driving member 401, a second connecting rod 402, a plurality of second rotating rods 403, and two protective covers 407. The driving end of the third driving member 401 is connected to the second connecting rod 402. The plurality of second rotating rods 403 are distributed in a ring at equal intervals. The second rotating rods 403 are installed on the side of the second connecting rod 402 away from the third driving member 401. The third driving member 401 is installed on the side wall of the drying chamber 1 through a second support plate 404. The protective covers 407 are hollow structures. The hollow structures of the two protective covers 407 are... The components together form a receiving space, and the third driving component 401 is located in the receiving space. The driving end of the third driving component 401 passes through the protective cover 407. The two protective covers 407 are connected by a locking component 408. The second connecting rod 402 and the second rotating rod 403 are both hollow structures. The second rotating rod 403 has multiple second through holes 405 on the side near the shelf 2. The multiple second through holes 405 are arranged at equal intervals on the second rotating rod 403. The second connecting rod 402 is also connected to a second connecting pipe 406, which extends to the outside of the drying chamber 1. Therefore, the third driving component 401 is activated, which drives the second rotating rod 403 to rotate, thereby generating airflow to dry the material or workpiece. Heat source gas is injected into the second connecting pipe 406, and this heat source gas is ejected through the second through hole 405, acting on the surface of the material or workpiece to dry it. This dual drying process of airflow drying by the second rotating rod 403 and heat source gas drying by the second through hole 405 further improves the drying efficiency and effect of the material or workpiece. The third driving component 401 is protected by a protective cover 407 to ensure it is not wetted by water from the material or workpiece, thus extending its service life.

[0046] It should be noted that: a second connecting block 409 is sleeved at the connection between the third driving component 401 and the second connecting rod 402. The second connecting pipe 406, the second connecting block 409 and the second connecting rod 402 are connected in sequence. The heat source gas flows into the second connecting component through the second connecting pipe 406 and the second connecting block 409. The third driving component 401 and the second connecting rod 402 are rotatably connected to the second connecting component.

[0047] For example, the third drive unit 401 uses a motor.

[0048] In this embodiment, the shelf 2 has multiple third through holes 201. Thus, through the third through holes 201 in the shelf 2, the second drying mechanism 4 can act on the lower surface of the material or workpiece.

[0049] In this embodiment, a groove 101 is provided on the side wall of the drying chamber 1 relative to the position of the vibration mechanism 5; it also includes: the vibration mechanism 5, and the shelf 2 is connected to the drying chamber 1 through the vibration mechanism 5; the vibration mechanism 5 includes: a fourth driving member 501, a third support plate 502, a support rod 503, a spring 504, and a slider 505. The telescopic end of the fourth driving member 501 is connected to the third support plate 502. The support rod 503 and the spring 504 are both located on the side of the third support plate 502 away from the fourth driving member 501. One end of the support rod 503 is inserted into the third support plate 502 and is slidably connected to the third support plate 502. The other end of the support rod 503 is connected to the shelf 2. The spring 504 is sleeved on the outside of the support rod 503, and both ends of the spring 504 are respectively connected to the third support plate 502 and the shelf 2. The fourth driving member 501 is connected to the slider 505, and the slider 505 is slidably connected to the groove 101. Therefore, the fourth driving component 501 is activated, which drives the shelf 2 to move up and down, causing the shelf 2 to vibrate. This applies force to the shelf 2 to accelerate the dripping of water from the material or workpiece, thereby improving the drying efficiency and effect. In addition, the spring 504 causes the shelf 2 to vibrate a second time, further accelerating the dripping of water from the material or workpiece, thus further improving the drying efficiency and effect. Through the cooperation of the slider 505 and the slide groove 101, the shelf 2 can move relative to the drying chamber 1 to facilitate the removal of materials or workpieces.

[0050] Specifically, there are four fourth driving components 501, support rods 503, and springs 504, and two third support plates 502 and sliders 505. Two fourth driving components 501, two support rods 503, two springs 504, one third support plate 502, and one slider 505 form a group, which are located on both sides of the shelf 2. The two fourth driving components 501, two support rods 503, and two springs 504 share one third support plate 502, and the two fourth driving components 501 share one slider 505.

[0051] For example, the fourth drive component 501 uses a cylinder.

[0052] It should be noted that: the exterior of the drying chamber 1 is equipped with a door 102, a handle 103, and a latch 104. The drying chamber 1 is equipped with a buckle 105. The door 102 is opened and closed relative to the drying chamber 1 by the cooperation of the latch 104 and the buckle 105.

[0053] The drying process of this utility model for materials or workpieces is as follows: First, open the chamber door 102 and pull out the shelf 2. Place the material or workpiece to be dried on the shelf 2. After the material or workpiece is placed, push the shelf 2 into the drying chamber 1 and close the chamber door 102. Next, adjust the position of the first drying mechanism 3 relative to the material or workpiece according to the size of the material or workpiece to be dried. Then, start the first driving component 301 and the third driving component 401 so that the first rotating rod 303 rotates to generate airflow and the second rotating rod 403 rotates to generate airflow, which is directed towards the first connecting pipe 306 and the second connecting pipe. Heat source gas is introduced into 406 so that heat source gas is blown out through the first through hole 305 and the second through hole 405. The material or workpiece is dried by the dual drying of the first drying mechanism 3 (air drying and heat source gas drying) and the second drying mechanism 4 (air drying and heat source gas drying). At the same time, the fourth driving component 501 is activated so that the shelf 2 moves up and down and vibrates to shake off the water stains under the material or workpiece, thereby drying the material or workpiece. Finally, after the material or workpiece is dried, the box door 102 is opened and the shelf 2 is pulled out to remove the dried material or workpiece from the shelf 2.

[0054] In summary, this utility model dries materials or workpieces from above the shelf 2 via the first drying mechanism 3 and from below the shelf 2 via the second drying mechanism 4. Compared to existing methods that dry materials or workpieces from top to bottom, this method has a simpler structure, is easier to operate, and can achieve dual drying of the material or workpiece from both the top and bottom. It can also prevent water stains on the bottom of the material or workpiece from being difficult to dry, thereby improving the drying efficiency and effect of the material or workpiece.

[0055] The above description is an explanation of the present utility model and not a limitation thereof. The scope of the present utility model is defined by the claims. Within the protection scope of the present utility model, any form of modification may be made.

Claims

1. A drying device for a washing machine, characterized in that, include: Drying chamber (1), and A shelf (2) is installed inside the drying chamber (1) and is used to place materials or workpieces to be dried. The first drying mechanism (3) and the second drying mechanism (4) are both installed inside the drying chamber (1). The first drying mechanism (3) is located above the shelf (2), and the second drying mechanism (4) is located below the shelf (2). The first drying mechanism (3) dries the material or workpiece from above the shelf (2), and the second drying mechanism (4) dries the material or workpiece from below the shelf (2).

2. The drying device for a cleaning machine as described in claim 1, characterized in that: The first drying mechanism (3) includes: The first driving component (301), the first connecting rod (302), and the plurality of first rotating rods (303) are arranged in a ring with equal spacing. The first rotating rods (303) are installed on the side of the first connecting rod (302) away from the first driving component (301). The first driving component (301) is installed on the side wall of the drying chamber (1) through the first support plate (304).

3. The drying device for a cleaning machine as described in claim 2, characterized in that: The first connecting rod (302) and the first rotating rod (303) are both hollow structures. The first rotating rod (303) has multiple first through holes (305) on the side near the shelf (2). The multiple first through holes (305) are arranged at equal intervals on the first rotating rod (303). The first connecting rod (302) is also connected to a first connecting pipe (306), which extends to the outside of the drying box (1).

4. The drying device for a cleaning machine as described in claim 2, characterized in that: The first drying mechanism (3) further includes: Two second driving members (307) are located on the side of the first support plate (304) away from the first driving member (301), and the two second driving members (307) are respectively located at both ends of the first support plate (304). The second driving members (307) are connected to the drying chamber (1), and the telescopic end of the second driving member (307) is connected to the first support plate (304). The second driving member (307) is used to drive the first rotating rod (303) to move closer to or away from the shelf (2) to adjust the distance between the first rotating rod (303) and the shelf (2).

5. The drying device for a cleaning machine as described in claim 1, characterized in that: The second drying mechanism (4) includes: The third driving component (401), the second connecting rod (402), and the plurality of second rotating rods (403) are arranged in a ring with equal spacing. The second rotating rods (403) are installed on the side of the second connecting rod (402) away from the third driving component (401). The third driving component (401) is installed on the side wall of the drying chamber (1) through the second support plate (404).

6. The drying device for a cleaning machine as described in claim 5, characterized in that: The second connecting rod (402) and the second rotating rod (403) are both hollow structures. The second rotating rod (403) has multiple second through holes (405) on the side near the shelf (2). The multiple second through holes (405) are arranged at equal intervals on the second rotating rod (403). The second connecting rod (402) is also connected to a second connecting pipe (406), which extends to the outside of the drying chamber (1).

7. The drying device for a cleaning machine as described in claim 5, characterized in that: The second drying mechanism (4) further includes: Two protective covers (407) are hollow structures. The hollow structures of the two protective covers (407) together form an accommodating space. The third driving member (401) is located in the accommodating space, and the driving end of the third driving member (401) passes through the protective cover (407). The two protective covers (407) are connected by a locking member (408).

8. The drying device for a cleaning machine as described in claim 1, characterized in that: The shelf (2) has multiple third through holes (201).

9. The drying device for a cleaning machine as described in claim 1, characterized in that: Also includes: Vibration mechanism (5), the shelf (2) is connected to the drying box (1) through the vibration mechanism (5); The vibration mechanism (5) includes: The fourth driving component (501), the third support plate (502), the support rod (503), and the spring (504) are provided. The telescopic end of the fourth driving component (501) is connected to the third support plate (502). The support rod (503) and the spring (504) are both located on the side of the third support plate (502) away from the fourth driving component (501). One end of the support rod (503) is inserted into the third support plate (502) and is slidably connected to the third support plate (502). The other end of the support rod (503) is connected to the shelf (2). The spring (504) is sleeved on the outside of the support rod (503), and both ends of the spring (504) are connected to the third support plate (502) and the shelf (2) respectively.

10. The drying apparatus for a cleaning machine as described in claim 9, characterized in that: The side wall of the drying chamber (1) is provided with a groove (101) relative to the position of the vibration mechanism (5); The vibration mechanism (5) further includes: The slider (505) is connected to the fourth driving member (501), and the slider (505) is slidably connected to the slide groove (101).