Drying module and clothes processing equipment

By optimizing the design of the fan and drying turntable, and combining the drive ring and capacitor mounting structure, the problem of low efficiency in existing drying modules has been solved, achieving fast and effective clothing drying and stable working performance.

CN120945644APending Publication Date: 2025-11-14NANJING ROBOROCK INNOVATION TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202410559113.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2024-05-07
Publication Date
2025-11-14

AI Technical Summary

Technical Problem

Existing drying modules have low drying efficiency and poor drying effect, and cannot dry clothes quickly and effectively.

Method used

A drying module comprising a housing, a fan, a drying disc, and a disc driver was designed. The impeller height of the fan is 1.2 to 3 times the thickness of the drying disc, and the diameter ratio of the impeller to the drying disc is greater than 0.5. The rotational speed and torque transmission stability are improved by a drive ring and a drive gear. Combined with a capacitor mounting structure, the installation and removal of the capacitor are facilitated.

Benefits of technology

It improves drying efficiency and effect, ensures that the fan air volume matches the drying turntable, achieves fast and effective clothes drying, reduces the equipment installation space requirements and the difficulty of capacitor installation, and improves working stability.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120945644A_ABST
    Figure CN120945644A_ABST
Patent Text Reader

Abstract

The invention relates to a drying module and clothes processing equipment. The drying module comprises a shell provided with a containing cavity; the fan is arranged in the containing cavity, and the fan comprises a first rotating shaft and an impeller arranged around the first rotating shaft; the drying rotating disc is arranged in the containing cavity, the drying rotating disc and the fan are arranged in a spaced mode, and the direction where the central axis of the drying rotating disc is located is parallel to the extending direction of the first rotating shaft; the turntable driver is used for driving the drying turntable to rotate; and in the direction of the central axis of the drying turntable, the height of the impeller is 1.2-3 times of the thickness of the drying turntable. The drying module is higher in drying efficiency and better in drying effect.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This disclosure relates to the field of garment processing equipment manufacturing technology, and in particular to a drying module and garment processing equipment. Background Technology

[0002] In the field of garment processing equipment manufacturing technology, existing drying modules have low drying efficiency and poor drying effect, which makes it impossible to dry clothes quickly and effectively.

[0003] It should be noted that the information disclosed in the background section above is only used to enhance the understanding of the background of this disclosure, and therefore may include information that does not constitute prior art known to those skilled in the art. Summary of the Invention

[0004] The purpose of this disclosure is to provide a drying module and a garment processing device. This drying module and garment processing device have higher drying efficiency and better drying effect.

[0005] This disclosure provides a drying module, characterized in that it includes:

[0006] The shell has a receiving cavity;

[0007] A fan is disposed within the receiving cavity, the fan comprising a first rotating shaft and an impeller arranged around the first rotating shaft;

[0008] A drying turntable is disposed within the receiving cavity and spaced apart from the fan. The direction of the central axis of the drying turntable is parallel to the extension direction of the first rotating shaft.

[0009] A turntable driver is used to drive the drying turntable to rotate;

[0010] In the direction of the central axis of the drying turntable, the height of the impeller is 1.2 to 3 times the thickness of the drying turntable.

[0011] In one exemplary embodiment of this disclosure, the ratio of the diameter of the impeller to the diameter of the drying disc is greater than or equal to 0.5.

[0012] In one exemplary embodiment of this disclosure, the drying turntable includes:

[0013] Molecular sieves;

[0014] A drive ring is arranged around the molecular sieve and is connected to the rotary disk driver to rotate the drying rotary disk;

[0015] In the direction of the central axis of the drying turntable, the height of the impeller is 1.5 to 2.5 times the thickness of the molecular sieve.

[0016] In one exemplary embodiment of this disclosure, the ratio of the diameter of the impeller to the diameter of the molecular sieve is greater than 0.5.

[0017] In one exemplary embodiment of this disclosure, the drive ring includes a ring portion and a toothed portion, the ring portion being disposed around the molecular sieve, and the toothed portion being disposed on the side of the ring portion facing away from the molecular sieve;

[0018] The turntable driver includes a drive unit and a drive gear, wherein the drive unit is connected to the drive gear, and the drive gear meshes with the toothed part.

[0019] In one exemplary embodiment of this disclosure, the housing is provided with a rotating shaft clamp, and the drying turntable is sleeved on the rotating shaft clamp.

[0020] In one exemplary embodiment of this disclosure, the drying module further includes:

[0021] A capacitor mounting structure is disposed in the housing, and the capacitor mounting structure has a first plug-in structure;

[0022] A capacitor includes: a capacitor body and a second insertion structure, the second insertion structure being connected to the capacitor body, the first insertion structure and the second insertion structure being a insertion slot and a insertion block, respectively, and at least a portion of the insertion block being able to be inserted into the insertion slot.

[0023] In one exemplary embodiment of this disclosure, the first insertion structure is the insertion slot, the second insertion structure is the insertion block, and the insertion block is inserted into the insertion slot along the direction of the central axis of the drying turntable.

[0024] In one exemplary embodiment of this disclosure, the plug slot includes at least a first sub-plug slot and a second sub-plug slot; the capacitor mounting structure includes a first limiting portion and a second limiting portion, the first sub-plug slot is located at the first limiting portion, the second limiting portion is spaced apart from the first limiting portion, and the second sub-plug slot is located at the second limiting portion;

[0025] The plug block includes a first plug portion and a second plug portion, both of which are connected to the capacitor body. At least a portion of the first plug portion can be inserted into the first sub-plug slot, and at least a portion of the second plug portion can be inserted into the second sub-plug slot.

[0026] In one exemplary embodiment of this disclosure, the first limiting portion has a first opening, the second limiting portion has a second opening, and the first opening and the second opening are disposed opposite to each other.

[0027] In one exemplary embodiment of this disclosure, the capacitor mounting structure further includes:

[0028] A limiting plate connects the first limiting part and the second limiting part, and the first limiting part, the second limiting part, and the limiting plate form the insertion groove.

[0029] In an exemplary embodiment of this disclosure, the limiting plate is provided with a first stop and a second stop on the side near the insertion slot, and the first stop is closer to the first limiting portion than the second stop.

[0030] The plug-in block further includes: a first protrusion and a second protrusion, wherein the first protrusion contacts the first stop and the second protrusion contacts the second stop.

[0031] In an exemplary embodiment of this disclosure, the first protrusion is disposed on the side of the first insertion portion near the limiting plate, and the second protrusion is disposed on the side of the second insertion portion near the limiting plate.

[0032] In an exemplary embodiment of this disclosure, the side of the first stop portion near the first limiting portion is a first inclined surface, and the first inclined surface is inclined toward the second limiting portion; the first protrusion is located at least between the first inclined surface and the first limiting portion, and the first protrusion contacts the first inclined surface.

[0033] In one exemplary embodiment of this disclosure, the side of the second stop portion near the second limiting portion is a second inclined surface, and the second inclined surface is inclined toward the first limiting portion; the second protrusion is located at least between the second inclined surface and the second limiting portion, and the second protrusion contacts the second inclined surface.

[0034] In one exemplary embodiment of this disclosure, the first plug-in portion includes:

[0035] A first connecting plate and a first plug-in plate, wherein the first connecting plate connects the capacitor body and the first plug-in plate, and at least a portion of the first plug-in plate can be inserted into the first sub-plug slot.

[0036] In one exemplary embodiment of this disclosure, the second plug-in portion includes:

[0037] The second connecting plate and the second plug-in plate are connected together. At least a portion of the second plug-in plate can be inserted into the second sub-plug slot.

[0038] In an exemplary embodiment of this disclosure, the capacitor mounting structure further includes: a first connecting portion connected to the first limiting portion and the second limiting portion, wherein the first connecting portion is disposed opposite to the limiting plate, and the first limiting portion, the second limiting portion, the limiting plate and the first connecting portion form the insertion groove;

[0039] The plug-in block further includes a second connecting part, which is connected to the first connecting part.

[0040] In one exemplary embodiment of this disclosure, the second connecting portion includes a third connecting plate and a buckle. The third connecting plate is connected to the capacitor body, and the buckle engages with any edge of the first connecting portion in the direction of the central axis of the drying turntable.

[0041] In one exemplary embodiment of this disclosure, the third connecting plate is located between the first connecting portion and the limiting plate, and the buckle is located on the side of the third connecting plate closer to the capacitor body; or, the third connecting plate is located on the side of the first connecting portion away from the limiting plate, and the buckle is located on the side of the third connecting plate away from the capacitor body.

[0042] In one exemplary embodiment of this disclosure, the third connecting plate is located between the first plug-in portion and the second connecting plug-in portion, and is connected to the first plug-in portion and the second plug-in portion.

[0043] In one exemplary embodiment of this disclosure, the capacitor is a fan capacitor, which is electrically connected to the fan and is located near the fan.

[0044] In one exemplary embodiment of this disclosure, the capacitor mounting structure is disposed on the side of the fan away from the drying turntable.

[0045] In one exemplary embodiment of this disclosure, the capacitor mounting structure is located upstream of the airflow of the fan, and the fan is an AC fan.

[0046] In one exemplary embodiment of this disclosure, the housing includes:

[0047] A first housing and a second housing are arranged opposite each other in the direction of the central axis of the drying turntable to form the receiving cavity; the fan and the capacitor mounting structure are both mounted on the first housing.

[0048] In one exemplary embodiment of this disclosure, the receiving cavity includes: a first sub-receiving cavity and a second sub-receiving cavity; the second housing includes: a turntable protective housing and a fan protective housing; the turntable protective housing and the first housing form the first sub-receiving cavity, and the drying turntable is located within the first sub-receiving cavity; the fan protective housing and the first housing form the second sub-receiving cavity, and at least the fan is located within the second sub-receiving cavity.

[0049] In one exemplary embodiment of this disclosure, the impeller and at least a portion of the first shaft are located within the second sub-receiving cavity, and the fan further includes:

[0050] The mounting structure is located on the side of the fan protective housing opposite to the first housing and is connected to the fan protective housing;

[0051] The connecting structure extends through the fan protective housing along the direction of the central axis of the drying turntable, and the connecting structure connects the first rotating shaft and the mounting structure.

[0052] This disclosure also provides a garment processing device, which includes the drying module described in any one of the above claims.

[0053] In one exemplary embodiment of this disclosure, the garment processing device further includes:

[0054] Box;

[0055] A cylindrical body is disposed inside the box; the drying module is disposed inside the box and located above the cylindrical body.

[0056] The technical solution provided in this disclosure can achieve the following beneficial effects:

[0057] The drying module disclosed herein includes: a housing, a fan, a drying disc, and a disc drive. The height of the fan impeller is 1.2 to 3 times the thickness of the drying disc.

[0058] This configuration allows for a larger airflow from the fan, and the fan's airflow can be matched to the thickness of the drying disc. This ensures that the fan has sufficient airflow to quickly transfer the moisture-laden air to the drying disc, while the drying disc also has the ability to absorb a corresponding amount of moisture. This allows the drying disc to absorb enough moisture in a short time, maximizing the balance between drying efficiency and the drying disc's moisture absorption capacity. Consequently, it improves the drying efficiency and effect of the drying module, enabling it to quickly and effectively dry clothes and other items.

[0059] Furthermore, the direction of the central axis of the drying turntable provided in this disclosure is parallel to the extension direction of the first shaft of the impeller, thereby reducing the space required for the drying module in the direction of the central axis of the drying turntable, which facilitates the installation of the drying module on equipment with drying functions.

[0060] It should be understood that the above general description and the following detailed description are exemplary and explanatory only, and are not intended to limit this disclosure. Attached Figure Description

[0061] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this disclosure and, together with the description, serve to explain the principles of this disclosure. It is obvious that the drawings described below are merely some embodiments of this disclosure, and those skilled in the art can obtain other drawings based on these drawings without any inventive effort.

[0062] Figure 1 A schematic diagram of the structure of a drying module according to an exemplary embodiment of the present disclosure is shown;

[0063] Figure 2 An exemplary embodiment according to this disclosure is shown. Figure 1 Partial structural diagram;

[0064] Figure 3 An exemplary embodiment according to this disclosure is shown. Figure 2 A schematic diagram of the cross-sectional structure;

[0065] Figure 4 A partial structural schematic diagram of a drying module according to an exemplary embodiment of the present disclosure is shown;

[0066] Figure 5 A schematic structural view of a capacitor according to an exemplary embodiment of the present disclosure is shown;

[0067] Figure 6 A schematic structural view of a capacitor according to an exemplary embodiment of the present disclosure is shown from a second perspective.

[0068] Figure 7 A schematic diagram of a capacitor mounting structure according to an exemplary embodiment of the present disclosure is shown.

[0069] Explanation of reference numerals in the attached figures:

[0070] 1. Housing; 11. Receiving cavity; 111. First sub-receiving cavity; 112. Second sub-receiving cavity; 12. Rotary shaft clamp; 13. First housing; 14. Second housing; 141. Turntable protective housing; 142. Fan protective housing;

[0071] 2. Fan; 21. First shaft; 22. Impeller; 23. Mounting structure; 24. Connecting structure;

[0072] 3. Drying turntable; 31. Molecular sieve; 32. Drive ring; 321. Ring part; 322. Toothed part;

[0073] 4. Turntable driver; 41. Drive unit; 42. Drive gear;

[0074] 5. Capacitor mounting structure; 50. First plug-in structure; 51. Plug-in slot; 511. First sub-plug-in slot; 512. Second sub-plug-in slot; 52. First limiting part; 521. First side plate; 522. First bottom plate; 523. Second side plate; 53. Second limiting part; 531. Third side plate; 532. Second bottom plate; 533. Fourth side plate; 54. Limiting plate; 541. First stop part; 5411. First inclined surface; 542. Second stop part; 5421. Second inclined surface; 55. First connecting part;

[0075] 6. Capacitor; 60. Second plug-in structure; 61. Capacitor body; 62. Plug-in block; 621. First plug-in part; 6211. First connecting plate; 6212. First plug-in plate; 622. Second plug-in part; 6221. Second connecting plate; 6222. Second plug-in plate; 623. First protrusion; 624. Second protrusion; 625. Second connecting part; 6251. Third connecting plate; 6252. Buckle;

[0076] 7. Lug; 71. Support plate; 711. First reinforcing part; 72. Mounting plate; 721. Second reinforcing part; 722. Third connecting part;

[0077] X, the first direction; Y, the second direction; Z, the direction of the central axis. Detailed Implementation

[0078] Exemplary embodiments will now be described more fully with reference to the accompanying drawings. However, these exemplary embodiments can be implemented in many forms and should not be construed as limited to the embodiments set forth herein; rather, they are provided so that this disclosure will be thorough and complete, and will fully convey the concept of the exemplary embodiments to those skilled in the art. The same reference numerals in the drawings denote the same or similar structures, and therefore their detailed description will be omitted.

[0079] Although relative terms such as "up" and "down" are used in this specification to describe the relative relationship of one component of an icon to another, these terms are used only for convenience, such as according to the orientation of the examples shown in the accompanying drawings. It is understood that if the device of the icon is flipped upside down, the component described as "up" will become the component described as "down." When a structure is "up" of another structure, it may mean that the structure is integrally formed on the other structure, or that the structure is "directly" mounted on the other structure, or that the structure is "indirectly" mounted on the other structure through another structure.

[0080] The terms “a,” “one,” “the,” and “the” are used to indicate the existence of one or more elements / components / etc.; the terms “including” and “having” are used to indicate an open-ended inclusion meaning and that there may be other elements / components / etc. in addition to the listed elements / components / etc.; the terms “first” and “second” are used only as markers and are not a limitation on the number of objects.

[0081] like Figures 1 to 7 As shown, this disclosure first provides a drying module. This drying module can be applied to clothing processing equipment to dry clothing and other items. However, it is not limited to this; the drying module can also be applied to other equipment with drying functions, and can be configured according to actual needs, all of which are within the scope of protection of this disclosure. Furthermore, this drying module has higher drying efficiency and better drying effect.

[0082] The drying module disclosed herein includes a housing 1, a fan 2, and a drying turntable 3. The housing 1 may have a receiving cavity 11; the fan 2 may be disposed within the receiving cavity 11, and the fan 2 may include a first rotating shaft 21 and an impeller 22 arranged around the first rotating shaft 21; the drying turntable 3 may be disposed within the receiving cavity 11 and spaced apart from the fan 2. Thus, the fan 2 can provide drying air to the drying turntable 3, allowing the drying turntable 3 to absorb the moisture in the drying air, thereby achieving the drying function.

[0083] In one embodiment, the direction Z of the central axis of the drying turntable 3 can be parallel to the extension direction of the first rotating shaft 21. This reduces the space required for the drying module in the direction Z of the central axis of the drying turntable 3, facilitating its installation on a device with drying functionality. The central axis of the drying turntable 3 mentioned here refers to the line containing the rotation center of the drying turntable 3.

[0084] In one embodiment of this disclosure, such as Figure 3As shown, in the Z direction where the central axis of the drying turntable 3 is located, the height H1 of the impeller 22 can be 1.2 to 3 times the thickness H2 of the drying turntable 3. For example, the height H1 of the impeller 22 can be 1.2, 1.5, 1.8, 2.1, 2.4, 2.7, or 3 times the thickness H2 of the drying turntable 3. This setting allows for a larger air volume from the fan 2, and the air volume of the fan 2 can be matched to the thickness of the drying turntable 3 within this range. This ensures that the fan 2 has sufficient air volume to quickly transfer the moisture-laden air to the drying turntable 3, while the drying turntable 3 also has the ability to absorb a corresponding amount of moisture. This allows the drying turntable 3 to absorb sufficient moisture in a short time, maximizing the balance between drying efficiency and the moisture absorption capacity of the drying turntable 3. Consequently, it improves the drying efficiency and effect of the drying module, enabling the drying module to quickly and effectively dry clothes and other items.

[0085] Table 1 lists the height H1 of some impellers 22 and the thickness H2 of drying discs 3.

[0086] Table 1

[0087]

[0088]

[0089] It should be noted that Table 1 above only lists some embodiments to explain the height H1 of the impeller 22 and the thickness H2 of the drying disc 3, and does not include all embodiments. The above values ​​can be adjusted according to actual needs, and all of this is within the scope of protection of this disclosure.

[0090] In one embodiment of this disclosure, the ratio of the diameter D1 of the impeller 22 to the diameter D2 of the drying disc 3 can be greater than or equal to 0.5. For example, the ratio of the diameter D1 of the impeller 22 to the diameter D2 of the drying disc 3 can be 0.5, 0.6, 0.7, 0.8, 0.9, 1.0, etc. This setting can further increase the air volume of the fan 2 and further ensure that the air volume of the fan 2 can match the drying disc 3, so as to ensure that the fan 2 has sufficient air volume to quickly transfer the air containing moisture to be dried to the drying disc 3. At the same time, the drying disc 3 can also have the ability to absorb a corresponding amount of moisture, thereby increasing the amount of water absorbed by the drying disc 3 in a short time, maximizing the balance between drying efficiency and the moisture absorption capacity of the drying disc 3, and further improving the drying efficiency and drying effect of the drying module, so that the drying module can quickly and effectively dry clothes and other items waiting to be dried.

[0091] Table 2 lists some of the diameters D1 of the impeller 22 and D2 of the drying disc 3.

[0092] Table 2

[0093]

[0094]

[0095] It should be noted that Table 2 above only lists some embodiments to explain the diameter D1 of the impeller 22 and the diameter D2 of the drying disc 3, and does not include all embodiments. The above values ​​can be adjusted according to actual needs, and all of this is within the scope of protection of this disclosure.

[0096] In one embodiment of this disclosure, such as Figures 1 to 3 As shown, the drying module may further include a rotary driver 4. The rotary driver 4 can drive the drying rotary table 3 to rotate. The rotary driver 4 can be disposed in the housing 1.

[0097] The drying turntable 3 may include a molecular sieve 31 and a drive ring 32. The molecular sieve 31 can be used to absorb moisture from the items to be dried. The drive ring 32 can be arranged around the molecular sieve 31 and can be connected to the turntable driver 4 so that the drying turntable 3 can be rotated by the turntable driver 4.

[0098] In this embodiment, the drive ring 32 may include a ring portion 321 and a toothed portion 322. The ring portion 321 may be disposed around the molecular sieve 31, and the toothed portion 322 may be disposed on the side of the ring portion 321 facing away from the molecular sieve 31. The turntable driver 4 may include a drive portion 41 and a drive gear 42. The drive portion 41 may be connected to the drive gear 42 to drive the drive gear 42 to rotate. The drive gear 42 may mesh with the toothed portion 322 of the drive ring 32 to drive the drive ring 32 to rotate.

[0099] Furthermore, by configuring the drive ring 32 and drive gear 42, this disclosure ensures that a larger torque can be transmitted when they mesh, thereby increasing the rotational speed of the drive ring 32 and further improving the drying efficiency and drying effect of the drying module. Simultaneously, the meshing of the drive ring 32 and drive gear 42 ensures the continuous stability of torque transmission, allowing the drive ring 32 to rotate more stably and guaranteeing the stability of the drying module's operation.

[0100] The aforementioned drive unit 41 can be a drive motor. This configuration can reduce the noise and vibration of the drive unit 41 during operation and enable the drive unit 41 to use clean energy, reducing its environmental pollution. This allows the drying module to be used in small and enclosed environments such as residences. However, it is not limited to this; the drive unit 41 can also be other devices with driving capabilities, which can be configured according to actual conditions, and all of these are within the scope of protection of this disclosure.

[0101] In one embodiment, the ratio of the diameter D1 of the impeller 22 to the diameter D3 of the molecular sieve 31 can be greater than 0.5. For example, the ratio of the diameter D1 of the impeller 22 to the diameter D3 of the molecular sieve 31 can be 0.55, 0.6, 0.7, 0.8, 0.9, 1.0, etc. This setting can further ensure that the air volume of the fan 2 can match that of the molecular sieve 31, so as to ensure that the fan 2 has sufficient air volume to quickly deliver the air containing moisture to be dried to the molecular sieve 31. At the same time, it can ensure that the molecular sieve 31 within this diameter range can also have the ability to absorb a corresponding amount of moisture, thereby increasing the amount of water absorbed by the molecular sieve 31 in a short time, maximizing the balance between drying efficiency and the moisture absorption capacity of the molecular sieve 31, and further improving the drying efficiency and drying effect of the drying module, so that the drying module can quickly and effectively dry clothes and other items waiting to be dried.

[0102] Table 3 lists the diameter D1 of some impellers 22 and the diameter D3 of molecular sieves 31.

[0103] Table 3

[0104]

[0105] It should be noted that Table 2 above only lists some embodiments to explain the diameter D1 of the impeller 22 and the diameter D3 of the molecular sieve 31, and does not include all embodiments. The above values ​​can be adjusted according to actual needs, and all of this is within the scope of protection of this disclosure.

[0106] In one embodiment of this disclosure, such as Figure 3 As shown, in the direction of the central axis of the drying turntable, the height H1 of the impeller 22 can be 1.5 to 2.5 times the thickness H3 of the molecular sieve 31. For example, the height H1 of the impeller 22 can be 1.5, 1.8, 2.1, 2.4, or 2.5 times the thickness H3 of the drying turntable 3. This setting allows for a larger airflow from the fan 2, and the airflow from the fan 2 can be matched to the molecular sieve 31 within this thickness range. This ensures that the fan 2 has sufficient airflow to quickly deliver the moisture-laden air to the molecular sieve 31, while also ensuring that the molecular sieve 31 within this thickness range can absorb a corresponding amount of moisture. This further enables the molecular sieve 31 to absorb sufficient moisture in a short time, maximizing the balance between drying efficiency and the moisture absorption capacity of the molecular sieve 31. Consequently, this further improves the drying efficiency and effect of the drying module, allowing it to quickly and effectively dry clothes and other items.

[0107] Table 4 lists the height H1 of some impellers 22 and the thickness H3 of molecular sieves 31.

[0108] Table 4

[0109]

[0110] It should be noted that Table 1 above only lists some embodiments to explain the height H1 of the impeller 22 and the thickness H3 of the molecular sieve 31, and does not include all embodiments. The above values ​​can be adjusted according to actual needs, and all of this is within the scope of protection of this disclosure.

[0111] In one embodiment of this disclosure, the housing 1 may be provided with a rotating shaft clamp 12, and the drying turntable 3 may be fitted onto the rotating shaft clamp 12. By providing the rotating shaft clamp 12, the drying turntable 3 can be limited, preventing displacement of the drying turntable 3 during rotation.

[0112] The axis of the rotating shaft clamp 12 can be collinear with the axis of the drying turntable 3. This arrangement can further ensure that the drying turntable 3 can rotate stably around the rotating shaft clamp 12.

[0113] In one embodiment of this disclosure, such as Figures 1 to 2 , Figures 4 to 7 As shown, the drying module may further include a capacitor mounting structure 5 and a capacitor 6. The capacitor mounting structure 5 may be disposed on the housing 1 and may have a first plug-in structure 50. The capacitor 6 may include a capacitor body 61 and a second plug-in structure 60. The second plug-in structure 60 can be connected to the capacitor body 61. The first plug-in structure 50 and the second plug-in structure 60 may be a plug-in slot 51 and a plug-in block 62, respectively, and at least a portion of the plug-in block 62 can be inserted into the plug-in slot 51. With this configuration, when the capacitor 6 needs to be installed, only the plug-in block 62 needs to be inserted into the plug-in slot 51; when the capacitor 6 needs to be disassembled, only the plug-in block 62 needs to be pulled out of the plug-in slot 51. Therefore, this configuration facilitates the installation and disassembly of the capacitor 6, improving the efficiency of installation and disassembly.

[0114] Meanwhile, due to the high stability of the plug-in connection, the above-mentioned settings can improve the stability of the capacitor 6 installed on the capacitor mounting structure 5, and prevent the capacitor 6 from falling off during the operation of the drying module, thereby greatly improving the working stability of the drying module.

[0115] Furthermore, since the capacitor 6 provided in this disclosure can be securely mounted on the capacitor mounting structure 5, the problem of the capacitor 6 falling off due to excessive shaking can be effectively avoided. Therefore, compared to the prior art, the drying module provided in this disclosure can be placed above the drum of the clothing processing equipment, thereby reducing the overall height of the clothing processing equipment and avoiding problems such as washing water leakage that could affect the safety and service life of the drying module.

[0116] In one embodiment, the first insertion structure 50 can be an insertion slot 51, and the second insertion structure 60 can be an insertion block 62. The insertion block 62 can be inserted into the insertion slot 51 along the Z-direction of the central axis of the drying turntable 3. Since there are no other structures that can block the capacitor mounting structure 5 along the Z-direction of the central axis of the drying turntable 3, this disclosure, through the above-mentioned arrangement, can facilitate the installation of the capacitor 6 and avoid other structural components in the drying module from obstructing the installation of the capacitor 6. However, it is not limited to this; the insertion block 62 can also be inserted into the insertion slot 51 in other directions, and can be selected and set according to actual needs, all of which are within the protection scope of this disclosure.

[0117] In one embodiment, such as Figures 4 to 7 As shown, the insertion slot 51 may include at least a first sub-insertion slot 511 and a second sub-insertion slot 512. The capacitor mounting structure 5 may include a first limiting portion 52 and a second limiting portion 53. The first sub-insertion slot 511 may be located within the space defined by the first limiting portion 52, the second limiting portion 53 may be spaced apart from the first limiting portion 52, and the second sub-insertion slot 512 may be located within the space defined by the second limiting portion 53.

[0118] The aforementioned plug-in block 62 may include a first plug-in portion 621 and a second plug-in portion 622. Both the first plug-in portion 621 and the second plug-in portion 622 may be connected to the capacitor body 61 to ensure a stable connection between them. At least a portion of the first plug-in portion 621 can be inserted into the first sub-plug slot 511, and at least a portion of the second plug-in portion 622 can be inserted into the second sub-plug slot 512.

[0119] Therefore, through the above-mentioned arrangement, the first limiting part 52 and the second limiting part 53 can limit the plug block 62 in the first direction X, so as to further improve the stability of the capacitor 6 installed on the capacitor mounting structure 5, and further avoid the problem of the capacitor 6 falling off during the operation of the drying module, thereby further improving the working stability of the drying module.

[0120] It should be noted that the first direction X can be the direction from the first limiting part 52 toward the second limiting part 53.

[0121] The first limiting part 52 may have a first opening, and the second limiting part 53 may have a second opening, with the first and second openings being arranged opposite to each other. With this arrangement, when the first plug-in part 621 needs to be inserted into the first sub-plug slot 511, precise alignment is no longer required, thus reducing the difficulty of inserting the first plug-in part 621 into the first sub-plug slot 511. Similarly, when the second plug-in part 622 needs to be inserted into the second sub-plug slot 512, precise alignment is also no longer required, thus reducing the difficulty of inserting the second plug-in part 622 into the second sub-plug slot 512.

[0122] In this embodiment, as Figure 7 As shown, the first limiting part 52 may include: a first side plate 521, a first bottom plate 522, and a second side plate 523. The first side plate 521, the first bottom plate 522, and the second side plate 523 can be connected sequentially, and the first side plate 521 and the second side plate 523 can be arranged opposite to each other. Thus, the first opening is the area between the end of the first side plate 521 away from the first bottom plate 522 and the end of the second side plate 523 away from the first bottom plate 522. This arrangement increases the area of ​​the first opening, further reducing the difficulty of inserting the first insertion part 621.

[0123] The second limiting part 53 may include a third side plate 531, a second bottom plate 532, and a fourth side plate 533. The third side plate 531, the second bottom plate 532, and the fourth side plate 533 can be connected sequentially, and the third side plate 531 and the fourth side plate 533 can be arranged opposite to each other. Thus, the second opening is the area between the end of the third side plate 531 away from the second bottom plate 532 and the end of the fourth side plate 533 away from the second bottom plate 532. This arrangement increases the area of ​​the second opening, further reducing the difficulty of inserting the second insertion part 622.

[0124] The first base plate 522 and the second base plate 532 can be arranged relative to each other, so as to ensure that the first opening and the second opening can be arranged relative to each other.

[0125] In one embodiment, the capacitor mounting structure 5 may further include a limiting plate 54. The limiting plate 54 can connect the first limiting part 52 and the second limiting part 53. Furthermore, the first limiting part 52, the second limiting part 53, and the limiting plate 54 can form a insertion groove 51. With this configuration, the limiting plate 54 can be used to further limit the capacitor 6, thereby further improving the stability of the capacitor 6 installation.

[0126] The first side plate 521 and the third side plate 531 can be located on the same side of the insertion slot 51 in the second direction Y, and the second side plate 523 and the fourth side plate 533 can be located on the same side of the insertion slot 51 in the second direction Y. The limiting plate 54 can be located between the first side plate 521 and the third side plate 531, and connect the first side plate 521 and the third side plate 531; or, the limiting plate 54 can be located between the second side plate 523 and the fourth side plate 533, and connect the second side plate 523 and the fourth side plate 533. That is, it can be understood that the limiting plate 54 can be located on one side of the insertion slot 51 in the second direction Y. This arrangement avoids the limiting plate 54 occupying space in the insertion slot 51.

[0127] It should be noted that the second direction Y can be the direction from the first side plate 521 to the second side plate 523, or the second direction Y can be the direction from the third side plate 531 to the fourth side plate 533.

[0128] In one embodiment, such as Figures 4 to 7 As shown, the side of the limiting plate 54 near the insertion slot 51 may be provided with a first stop portion 541 and a second stop portion 542, and the first stop portion 541 may be close to the first limiting portion 52 relative to the second stop portion 542. That is, it can be understood that the first stop portion 541 and the second stop portion 542 may be provided at intervals along the first direction X.

[0129] The plug-in block 62 may further include a first protrusion 623 and a second protrusion 624. The first protrusion 623 can contact the first stop 541, and the second protrusion 624 can contact the second stop 542. This arrangement allows the first stop 541 and the second stop 542 to limit the movement of the first protrusion 623 and the second protrusion 624, further improving the stability of the capacitor installation and further reducing the possibility of the capacitor 6 falling off during the drying module's operation.

[0130] The first protrusion 623 can abut against the first stop 541, and the second protrusion 624 can abut against the second stop 542. It should be noted that the abutment here refers to an interaction force between the two abutting parts; that is, there is an interaction force between the first protrusion 623 and the first stop 541, and there is an interaction force between the second protrusion 624 and the second stop 542. This arrangement effectively prevents the capacitor 6 from shaking, ensuring that the capacitor 6 can always be stably mounted on the capacitor mounting structure 5.

[0131] In one embodiment, the side of the first stop portion 541 near the first limiting portion 52 can be a first inclined surface 5411, which can be inclined toward the second limiting portion 53; the first protrusion 623 can be located at least between the first inclined surface 5411 and the first limiting portion 52, and the first protrusion 623 can contact the first inclined surface 5411. This configuration can improve the stopping effect of the first stop portion 541 and facilitate the insertion of the plug block 62.

[0132] The side of the second stop portion 542 near the second limiting portion 53 can be a second inclined surface 5421, which can be inclined towards the first limiting portion 52; the second protrusion 624 can be located at least between the second inclined surface 5421 and the second limiting portion 53, and the second protrusion 624 can contact the second inclined surface 5421. This configuration can improve the stopping effect of the second stop portion 542 and further facilitate the insertion of the plug block 62.

[0133] In one embodiment, the first insertion portion 621 may include a first connecting plate 6211 and a first insertion plate 6212. The first connecting plate 6211 may connect the capacitor body 61 and the first insertion plate 6212, and at least a portion of the first insertion plate 6212 may be inserted into the first sub-insertion slot 511. The aforementioned first protrusion 623 may be located on the side of the first insertion plate 6212 near the limiting plate 54.

[0134] The first connector 621 can be a one-piece structure, meaning that the first connecting plate 6211 and the first connector 6212 can be manufactured using an integrated process, without the need for welding, riveting, or other connection methods. This design reduces the number of connection points between the first connecting plate 6211 and the first connector 6212, thereby improving the connection strength and structural strength between them and reducing the probability of breakage.

[0135] However, this is not the only option. The first plug-in part 621 can also be a split structure, that is, the first connecting plate 6211 and the first plug-in plate 6212 can be manufactured separately and then connected by welding, riveting or other connection methods. This arrangement can reduce the manufacturing difficulty of the first plug-in part 621.

[0136] In addition, the first protrusion 623 may also be an integral structure with the first connecting plate 6211 and the first plug-in plate 6212, but is not limited to this.

[0137] The second insertion portion 622 may include a second connecting plate 6221 and a second insertion plate 6222. The second connecting plate 6221 can connect the capacitor body 61 and the second insertion plate 6222, and at least a portion of the second insertion plate 6222 can be inserted into the second sub-insertion slot 512. The aforementioned second protrusion 624 may be located on the side of the second insertion plate 6222 near the limiting plate 54.

[0138] The second connector 622 can also be an integral structure. This arrangement reduces the number of connection points between the second connecting plate 6221 and the second connector 6222, thereby improving the connection strength and structural strength between the second connecting plate 6221 and the second connector 6222, and reducing the probability of breakage between the second connecting plate 6221 and the second connector 6222.

[0139] However, this is not the only option. The second connector 622 can also be a separate structure, meaning that the second connecting plate 6221 and the second connector 6222 can be manufactured separately and then connected by welding, riveting, or other connection methods. This arrangement can reduce the manufacturing difficulty of the second connector 622.

[0140] In addition, the second protrusion 624 may also be an integral part of the second connecting plate 6221 and the second plug-in plate 6222, but is not limited thereto.

[0141] In one embodiment of this disclosure, such as Figure 7 As shown, the capacitor mounting structure 5 may further include a first connecting portion 55. The first connecting portion 55 may be connected to the first limiting portion 52 and the second limiting portion 53, and the first connecting portion 55 may be disposed opposite to the limiting plate 54. The first limiting portion 52, the second limiting portion 53, the limiting plate 54 and the first connecting portion 55 may form the aforementioned insertion groove 51.

[0142] For example, when the limiting plate 54 is connected to the first side plate 521 and the third side plate 531, the first connecting part 55 can be connected to the second side plate 523 and the fourth side plate 533; when the limiting plate 54 is connected to the second side plate 523 and the fourth side plate 533, the first connecting part 55 can be connected to the first side plate 521 and the third side plate 531. The first connecting part 55 can be the fourth connecting plate, but is not limited to this.

[0143] like Figure 5 and Figure 6 As shown, the plug-in block 62 may further include a second connecting part 625. The second connecting part 625 can be connected to the first connecting part 55. The capacitor 6 can not only be plugged into the capacitor mounting structure 5, but also connected through the first connecting part 55 and the second connecting part 625. This provides double protection for the installation of the capacitor 6 and further prevents the capacitor 6 from detaching from the capacitor mounting structure 5.

[0144] In one embodiment, the second connecting portion 625 may include a third connecting plate 6251 and a snap fastener 6252. The third connecting plate 6251 can be connected to the capacitor body 61, and the snap fastener 6252 can engage with any edge of the first connecting portion 55 in the Z direction along the central axis of the drying turntable 3. Thus, this disclosure allows the first connecting portion 55 and the second connecting portion 625 to be connected by a snap-fit ​​mechanism, thereby enabling quick connection and disassembly between the first connecting portion 55 and the second connecting portion 625, ensuring that the capacitor 6 can be easily installed in the capacitor mounting structure 5.

[0145] like Figures 4 to 7 As shown, the third connecting plate 6251 can be located between the first connecting part 55 and the limiting plate 54, and the buckle 6252 can be located on the side of the third connecting plate 6251 closer to the capacitor body 61. With this arrangement, when the first connecting part 55 and the second connecting part 625 are engaged, the first connecting part 55 can be located between the third connecting plate 6251 and the capacitor body 61, thereby enabling the first connecting part 55 to further limit the capacitor 6.

[0146] However, it is not limited to this. The third connecting plate 6251 can also be located on the side of the first connecting part 55 away from the limiting plate 54, and the buckle 6252 can be located on the side of the third connecting plate 6251 away from the capacitor body 61. It can be selected and set according to the actual situation, and all of these are within the protection scope of this disclosure.

[0147] In one embodiment, the third connecting plate 6251 may be located between the first plug-in portion 621 and the second plug-in portion 622, and the third connecting plate 6251 may be connected to the first plug-in portion 621 and the second plug-in portion 622. This arrangement can improve the structural strength of the first plug-in portion 621, the second plug-in portion 622, and the second connecting portion 625, and prevent them from breaking during use, thus affecting the installation stability of the capacitor 6.

[0148] In one embodiment of this disclosure, the plug-in block 62 can be a one-piece structure, meaning that all components of the plug-in block 62 can be manufactured using an integrated process. This design ensures that the plug-in block 62 has high structural strength.

[0149] However, it is not limited to this. The various components of the plug-in block 62 can be partially integrated or manufactured separately. They can be selected and set according to actual needs, and all of this is within the protection scope of this disclosure.

[0150] In one embodiment of this disclosure, such as Figure 1 and Figure 2 As shown, capacitor 6 can be a fan capacitor. This fan capacitor can be electrically connected to fan 2 to drive fan 2 to start.

[0151] In one embodiment, capacitor 6 can be positioned close to fan 2. This arrangement allows capacitor 6 to be closer to fan 2, thereby improving capacitor 6's control over fan 2, reducing the length of the wire connecting capacitor 6 and fan 2, saving wire material, and lowering the manufacturing cost of the drying module.

[0152] The capacitor mounting structure 5 can be positioned on the side of the fan 2 away from the drying turntable 3. Since the drying turntable 3 absorbs moisture, the humidity is higher near the drying turntable 3. This arrangement avoids the capacitor 6 being affected by moisture after being mounted on the capacitor mounting structure 5, thus preventing it from operating normally.

[0153] The capacitor mounting structure 5 described above can be positioned upstream of the airflow from the fan 2. Since the airflow upstream does not pass through the drying turntable 3, the humidity at this location is relatively low. Therefore, this arrangement avoids the impact of high-humidity airflow on the operation of the capacitor 6 after it is installed in the capacitor mounting structure 5, ensuring the stability of the capacitor 6's operation and improving the overall stability of the drying module.

[0154] In one embodiment, the aforementioned fan 2 can be an AC fan 2, which can operate using alternating current. Compared to a DC fan 2, the AC fan 2 has higher production and operating costs. Therefore, by setting the aforementioned fan 2 to an AC fan 2, the production and operating costs of the drying module can be reduced.

[0155] In one embodiment of this disclosure, such as Figure 1 and Figure 2 As shown, the housing 1 may include a first housing 13 and a second housing 14. The first housing 13 and the second housing 14 may be arranged opposite each other in the direction Z where the central axis of the drying turntable 3 is located, to form the aforementioned receiving cavity 11. The fan 2 and the capacitor mounting structure 5 may both be mounted on the first housing 13.

[0156] In one embodiment, the capacitor mounting structure 5 and the first housing 13 can be an integral structure. This configuration can improve the connection strength between the capacitor mounting structure 5 and the first housing 13, further ensuring the stability of the capacitor 6 installation. However, this is not a limitation; the capacitor mounting structure 5 and the first housing 13 can also be separate structures, depending on the actual situation.

[0157] The aforementioned receiving cavity 11 may include a first sub-receiving cavity 111 and a second sub-receiving cavity 112. The second housing 14 may include a turntable protective housing 141 and a fan protective housing 142. The turntable protective housing 141 and the first housing 13 can form the first sub-receiving cavity 111, and the drying turntable 3 can be located within the first sub-receiving cavity 111; the fan protective housing 142 and the first housing 13 can form the second sub-receiving cavity 112, and at least a portion of the fan 2 can be located within the second sub-receiving cavity 112. This arrangement isolates the drying turntable 3 and the fan 2, preventing mutual interference between them. Furthermore, by dividing the second housing 14 into a turntable protective housing 141 and a fan protective housing 142, the amount of material used in manufacturing the second housing 14 can be saved, reducing the manufacturing cost of the second housing 14.

[0158] Meanwhile, when the large housing 1 is divided into two smaller housings 1, the two smaller housings 1 have higher structural strength. Thus, the above arrangement enables the turntable protective housing 141 and the fan protective housing 142 to have higher structural strength, providing better protection for the drying turntable 3 and the fan 2.

[0159] In one embodiment, such as Figures 1 to 3 As shown, the impeller 22 of the fan 2 and at least a portion of the first rotating shaft 21 can be located within the second sub-receiving cavity 112. The fan 2 may further include a mounting structure 23 and a connecting structure 24. The mounting structure 23 can be located on the side of the fan protective housing 142 opposite to the first housing 13 and connected to the fan protective housing 142; the connecting structure 24 can penetrate the fan protective housing 142 along the Z-direction of the central axis of the drying turntable 3, and the connecting structure 24 can connect the first rotating shaft 21 and the mounting structure 23. Since the impeller 22 of the fan 2 provided in this disclosure is relatively high, it occupies a large vertical space. Therefore, by placing the mounting structure 23 of the fan 2 outside the second sub-receiving cavity 112, this disclosure can minimize the height of the second sub-receiving cavity 112, thereby improving the structural strength between the fan protective housing 142 and the first housing 13. Furthermore, placing the mounting structure 23 outside the second sub-receiving cavity 112 also facilitates installation operations by the operator.

[0160] In one embodiment of this disclosure, such as Figure 1 and Figure 2 As shown, the drying module may further include: hooks 7. The hooks 7 can be connected to the edge of the housing 1 for mounting the drying module to a device to be installed. The device to be installed may be a structure such as the housing of a garment processing device, but is not limited thereto.

[0161] In one embodiment, the hanging ear 7 and the housing 1 can be an integral structure. This configuration can improve the connection strength between the hanging ear 7 and the housing 1, increase the load-bearing capacity of the hanging ear 7, and prevent the hanging ear 7 from breaking due to excessive weight of the drying module. However, it is not limited to this; the hanging ear 7 and the housing 1 can also be separate structures, depending on the actual situation.

[0162] In one embodiment, the hanging ear 7 may include a support plate 71 and a mounting plate 72. The support plate 71 may be connected to the edge of the housing 1 and may extend in the Z direction along the central axis of the drying turntable 3. The mounting plate 72 may be connected to the end of the support plate 71 away from the housing 1 and extends in a direction away from the support plate 71; the mounting plate 72 can be mounted on the equipment to be installed. With this configuration, the present disclosure can use the support plate 71 to raise the hanging ear 7 in the Z direction along the central axis of the drying turntable 3, facilitating the connection between the hanging ear 7 and the equipment to be installed.

[0163] In one embodiment, the lug 7 can be connected to the edge of the first housing 13. That is, the support plate 71 can be connected to the edge of the first housing 13.

[0164] A first reinforcing part 711 may be provided on the support plate 71. The first reinforcing part 711 can be connected to the support plate 71 and the first housing 13 to increase the structural strength of the support plate 71 and improve the load-bearing capacity of the support plate 71.

[0165] The first reinforcing part 711 mentioned above can be a first reinforcing rib, but is not limited to this. The first reinforcing part 711 can also be other structural components that can improve the structural strength, and can be set according to the actual situation.

[0166] The mounting plate 72 may be provided with a second reinforcing part 721, which may be located on the side of the mounting plate 72 away from the first housing 13, thereby increasing the structural strength of the mounting plate 72, improving the load-bearing capacity of the mounting plate 72, and thus improving the load-bearing capacity of the entire lug 7.

[0167] The aforementioned second reinforcing part 721 can be composed of multiple grooves. This arrangement allows reinforcing ribs to be formed between adjacent grooves, thereby improving the structural strength of the mounting plate 72. Furthermore, this arrangement can save material in manufacturing the mounting plate 72 and reduce its weight. However, this is not a limitation; the second reinforcing part 721 can also be other reinforcing structures, and can be configured according to actual conditions, which is also within the scope of this disclosure.

[0168] In one embodiment, the mounting plate 72 may be provided with a third connecting portion 722, through which the hanging ear 7 can be connected to the device to be installed, thereby improving the stability of the drying module installation. The third connecting portion 722 can be a connecting hole, allowing the connector to pass through and connect to the device to be installed. However, it is not limited to this; the third connecting portion 722 can also be a snap-fit, snap-fit ​​groove, or other connecting structure 24, which can be configured according to actual needs, all of which are within the protection scope of this disclosure.

[0169] This disclosure also provides a garment processing device. This garment processing device may include, but is not limited to, a washing machine. The garment processing device may include the drying module described above.

[0170] It should be noted that the specific structure and beneficial effects of the drying module have been described in detail in the foregoing embodiments. Therefore, in this embodiment, the specific structure and beneficial effects of the drying module will not be described again. Please refer to the specific description in the foregoing embodiments, which are all within the protection scope of this disclosure.

[0171] The garment processing equipment disclosed herein includes the aforementioned drying module, such as... Figures 1 to 7 As shown, the drying module may include: a housing 1, a fan 2, a drying turntable 3, and a turntable driver 4. The height of the impeller 22 of the fan 2 is 1.2 to 3 times the thickness of the drying turntable 3.

[0172] This configuration allows for a larger airflow from the fan 2, and ensures that the airflow from the fan 2 matches the thickness of the drying disc 3. This guarantees that the fan 2 has sufficient airflow to quickly transfer the moisture-laden air to the drying disc 3, while the drying disc 3 also has the ability to absorb a corresponding amount of moisture. This allows the drying disc 3 to absorb enough moisture in a short time, maximizing the balance between drying efficiency and the moisture absorption capacity of the drying disc 3. Consequently, it improves the drying efficiency and effect of the drying module, enabling the drying module to quickly and effectively dry clothes and other items waiting to be dried.

[0173] In addition, the direction Z of the central axis of the drying turntable 3 provided in this disclosure is parallel to the extension direction of the first rotating shaft 21 of the impeller 33, thereby reducing the space of the drying module in the direction Z of the central axis of the drying turntable 3, so as to facilitate the installation of the drying module on equipment with drying function.

[0174] In one embodiment of this disclosure, the garment processing equipment may further include a housing and a drum. The drum is disposed within the housing, and the aforementioned drying module is disposed within the housing, positioned above the drum. This arrangement reduces the overall height of the garment processing equipment and prevents issues such as washing water leakage from affecting the safety and lifespan of the drying module.

[0175] Furthermore, in this embodiment, the drying module may include the capacitor mounting structure 5 and the capacitor 6 described above. The capacitor mounting structure 5 includes a first plug-in structure 50, and the capacitor 6 includes a second plug-in structure 60. The capacitor mounting structure 5 and the capacitor 6 can be connected by plugging in the first plug-in structure 50 and the second plug-in structure 60. Because the plug-in connection provides a high degree of stability, the capacitor 6 can be securely mounted on the capacitor mounting structure 5. Therefore, when the drying module is placed above the drum, the problem of the capacitor 6 falling off due to excessive shaking can be effectively avoided, ensuring the operational stability of the clothing processing equipment.

[0176] This disclosure also provides an electrical appliance. This electrical appliance may include, but is not limited to, a dishwasher or a garment processing device. The garment processing device may be a washing machine, a dry cleaning machine, a washer-dryer combo, or a dryer. This electrical appliance may include the drying module described above.

[0177] It should be noted that the specific structure and beneficial effects of the drying module have been described in detail in the foregoing embodiments. Therefore, in this embodiment, the specific structure and beneficial effects of the drying module will not be described again. Please refer to the specific description in the foregoing embodiments, which are all within the protection scope of this disclosure.

[0178] The electrical equipment provided in this disclosure includes the aforementioned drying module, such as Figures 1 to 7 As shown, the drying module may include: a housing 1, a fan 2, a drying turntable 3, and a turntable driver 4. The height of the impeller 22 of the fan 2 is 1.2 to 3 times the thickness of the drying turntable 3.

[0179] This configuration allows for a larger airflow from the fan 2, and ensures that the airflow from the fan 2 matches the thickness of the drying disc 3. This guarantees that the fan 2 has sufficient airflow to quickly transfer the moisture-laden air to the drying disc 3, while the drying disc 3 also has the ability to absorb a corresponding amount of moisture. This allows the drying disc 3 to absorb enough moisture in a short time, maximizing the balance between drying efficiency and the moisture absorption capacity of the drying disc 3. Consequently, it improves the drying efficiency and effect of the drying module, enabling the drying module to quickly and effectively dry clothes and other items waiting to be dried.

[0180] In addition, the direction Z of the central axis of the drying turntable 3 provided in this disclosure is parallel to the extension direction of the first rotating shaft 21 of the impeller 33, thereby reducing the space of the drying module in the direction Z of the central axis of the drying turntable 3, so as to facilitate the installation of the drying module on equipment with drying function.

[0181] Other embodiments of this disclosure will readily occur to those skilled in the art upon consideration of the specification and practice of the invention disclosed herein. This disclosure is intended to cover any variations, uses, or adaptations of this disclosure that follow the general principles of this disclosure and include common knowledge or customary techniques in the art not disclosed herein. The specification and examples are to be considered exemplary only, and the true scope and spirit of this disclosure are indicated by the appended claims.

Claims

1. A drying module, characterized in that, include: The shell has a receiving cavity; A fan is disposed within the receiving cavity, the fan comprising a first rotating shaft and an impeller arranged around the first rotating shaft; A drying turntable is disposed within the receiving cavity and spaced apart from the fan. The direction of the central axis of the drying turntable is parallel to the extension direction of the first rotating shaft. A turntable driver is used to drive the drying turntable to rotate; In the direction of the central axis of the drying turntable, the height of the impeller is 1.2 to 3 times the thickness of the drying turntable.

2. The drying module according to claim 1, characterized in that, The ratio of the diameter of the impeller to the diameter of the drying disc is greater than or equal to 0.

5.

3. The drying module according to claim 2, characterized in that, The drying turntable includes: Molecular sieves; A drive ring is arranged around the molecular sieve and is connected to the rotary disk driver to rotate the drying rotary disk; In the direction of the central axis of the drying turntable, the height of the impeller is 1.5 to 2.5 times the thickness of the molecular sieve.

4. The drying module according to claim 3, characterized in that, The ratio of the diameter of the impeller to the diameter of the molecular sieve is greater than 0.

5.

5. The drying module according to claim 3, characterized in that, The drive ring includes a ring portion and a toothed portion, the ring portion being disposed around the molecular sieve, and the toothed portion being disposed on the side of the ring portion facing away from the molecular sieve; The turntable driver includes a drive unit and a drive gear, wherein the drive unit is connected to the drive gear, and the drive gear meshes with the toothed part.

6. The drying module according to any one of claims 1 to 5, characterized in that, The housing is provided with a rotating shaft clamp, and the drying turntable is sleeved on the rotating shaft clamp.

7. The drying module according to claim 1, characterized in that, The drying module also includes: A capacitor mounting structure is disposed in the housing, and the capacitor mounting structure has a first plug-in structure; A capacitor includes: a capacitor body and a second insertion structure, the second insertion structure being connected to the capacitor body, the first insertion structure and the second insertion structure being a insertion slot and a insertion block, respectively, and at least a portion of the insertion block being able to be inserted into the insertion slot.

8. The drying module according to claim 7, characterized in that, The first insertion structure is the insertion slot, and the second insertion structure is the insertion block. The insertion block is inserted into the insertion slot along the direction of the central axis of the drying turntable.

9. The drying module according to claim 8, characterized in that, The plug slot includes at least a first sub-plug slot and a second sub-plug slot; the capacitor mounting structure includes a first limiting part and a second limiting part, the first sub-plug slot is located at the first limiting part, the second limiting part is spaced apart from the first limiting part, and the second sub-plug slot is located at the second limiting part; The plug block includes a first plug portion and a second plug portion, both of which are connected to the capacitor body. At least a portion of the first plug portion can be inserted into the first sub-plug slot, and at least a portion of the second plug portion can be inserted into the second sub-plug slot.

10. A garment processing device, characterized in that, The garment processing equipment includes the drying module described in any one of claims 1 to 9.