Laundry treating apparatus
By using a wireless power receiving module to power the heating element in the dryer and setting the heating element on the clothes drum to achieve rapid heat transfer, the problem of slow initial heating of the dryer is solved, improving drying efficiency and user experience.
Patent Information
- Application Number
- CN202520195536.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-07
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-02-07
AI Technical Summary
Existing dryers heat up slowly in the initial stage, resulting in longer drying times for clothes and affecting the user experience.
The heating element is powered by a wireless power receiving module. The heating element is located inside or on the outer surface of the clothes drum and comes into contact with the clothes through lifting ribs, achieving rapid heat transfer and heat radiation effects and avoiding wire tangling.
It improves clothes drying efficiency, enhances user experience, ensures stable power transmission during heating element rotation, and avoids wire tangling issues.
Smart Images

Figure CN223893093U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of clothing processing technology, and more particularly to a clothing processing device. Background Technology
[0002] To meet consumers' growing demand for functional clothing processing equipment, more and more clothing processing equipment on the market are equipped with drying functions to reduce the time clothes need to be air-dried.
[0003] Currently, most existing dryers use heat pump systems, which heat the air to dry clothes. The hot air comes into contact with the clothes, evaporating the moisture and drying them. However, the initial heating is slow, resulting in a longer drying time and affecting the customer experience. Utility Model Content
[0004] To address the aforementioned technical problems, this application provides a garment processing device.
[0005] This application provides a garment processing device, comprising:
[0006] A clothes-holding tube, which includes a clothes-holding compartment;
[0007] A heating element is disposed inside or on the outer surface of the clothes-holding tube, and the heating element rotates with the clothes-holding tube.
[0008] A wireless power receiving module, disposed on or inside the clothes container, is used for non-contact reception of electrical energy and is configured to power the heating element.
[0009] In some embodiments, the heating element is a graphene heating element.
[0010] In some embodiments, the garment handling device further includes lifting ribs disposed on the garment holding tube, and the heating element is disposed on the lifting ribs.
[0011] In some embodiments, the lifting rib is formed with a receiving groove;
[0012] The garment processing device also includes a cable that passes through the receiving slot and connects the wireless power receiving module and the heating element.
[0013] In some embodiments, the wireless power receiving module is disposed on the rear side of the clothes container, and the clothes container has a cable passage hole for the cable to pass through.
[0014] The lifting rib covers the wire hole.
[0015] In some embodiments, the lifting rib includes a main body and an extension connected to the main body, the main body having the receiving groove, and the extension covering the wire hole.
[0016] In some embodiments, a plurality of lifting ribs are provided, and the plurality of lifting ribs are spaced apart along the circumference of the clothes-holding tube, and each lifting rib is provided with a heating element.
[0017] In some embodiments, the garment processing device further includes a housing and a wireless power transmission module, wherein the garment tube is rotatably disposed within the housing, and the wireless power transmission module is disposed on the housing to supply power to the heating element via the wireless power receiving module.
[0018] In some embodiments, the garment processing device further includes a support shaft assembly, which includes a support shaft and a support base. The support base is disposed on the housing, and the support shaft is connected to the garment container and supported by the support base, and is capable of rotating relative to the support base with the garment container.
[0019] The wireless power receiving module includes a receiving coil, which is arranged around the support shaft;
[0020] The wireless power transmission module includes a transmission coil, which is arranged around or on the support base.
[0021] In some embodiments, the garment handling equipment further includes a detection module disposed in the garment holding room.
[0022] The technical solution provided in this application has the following advantages compared with the prior art:
[0023] This garment processing equipment, by incorporating a heating element located inside or on the outer surface of the garment drum and powered by a wireless power receiving module, allows the heat generated by the heating element as the drum rotates to be rapidly transferred to the garments, creating a thermal radiation effect that improves drying efficiency and enhances the user experience. Furthermore, the heating element's power supply via the wireless power receiving module on the drum avoids the problem of tangled wiring during rotation, thus enabling direct heating to dry the garments and ensuring high drying efficiency. Attached Figure Description
[0024] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.
[0025] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, for those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0026] Figure 1 This is a schematic diagram of the garment processing equipment described in the embodiments of this application;
[0027] Figure 2 for Figure 1 A front view diagram of the garment processing equipment in the middle;
[0028] Figure 3 for Figure 1 A partial disassembly diagram of the garment processing equipment in the diagram;
[0029] Figure 4 for Figure 1 A rear view of the garment handling equipment's collection drum;
[0030] Figure 5 This is a schematic diagram of the lifting rib from one perspective of an embodiment of this application;
[0031] Figure 6 for Figure 5 A structural schematic diagram of the lifting rib from another perspective.
[0032] Among them, 1. Clothes holding tube; 1a. Clothes holding chamber; 11. Tube body; 12. Rear end cap; 121. Wire passage hole;
[0033] 2. Lifting rib; 21. Main body; 21a. Receiving groove; 211. Side plate; 212. Top plate; 213. End plate; 22. Extension; 23. Reinforcing part;
[0034] 3. Heating element;
[0035] 4. Wireless power receiving module;
[0036] 5. Cables;
[0037] 6. Wireless power transmission module;
[0038] 7. Support shaft;
[0039] 8. Box body. Detailed Implementation
[0040] To better understand the above-mentioned objectives, features, and advantages of this application, the solution of this application will be further described below. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.
[0041] Many specific details are set forth in the following description in order to provide a full understanding of this application, but this application may also be implemented in other ways different from those described herein; obviously, the embodiments in the specification are only some embodiments of this application, and not all embodiments.
[0042] like Figures 1 to 6 As shown in the figure, this application embodiment provides a garment processing device, which includes a garment container 1, a heating element 3, and a wireless power receiving module 4. The garment container 1 has a garment chamber 1a, the heating element 3 is disposed inside or on the outer surface of the garment container 1, and the wireless power receiving module 4 is disposed on or inside the garment container 1 for non-contact reception of electrical energy and supplying power to the heating element 3.
[0043] The garment handling equipment includes a drying function, which can be a dryer or a washer-dryer combo. A dryer is a device with a drying function, and the garment compartment 1a can be used for drying. A washer-dryer combo is a device that integrates drying and washing functions; the garment compartment 1a can be used for washing and drying, and washing can include rinsing and spin-drying.
[0044] The rotation axis of the aforementioned clothes drum 1 can extend horizontally, in which case the clothes processing equipment can be a drum-type clothes processing equipment. Taking the rotation axis of the clothes drum 1 as horizontal as an example, during the rotation of the clothes drum 1, the clothes are moved from the bottom to the top; under the action of gravity, the clothes fall from the top to the bottom. In this way, the clothes are dispersed, shaken and changed in posture under the combined action of the clothes drum 1 and gravity.
[0045] Furthermore, the aforementioned garment container 1 is generally hollow and cylindrical, and can be a single-tube structure, meaning the garment processing equipment consists of only this one container. Alternatively, an outer tube can be fitted around the garment container 1, in which case the garment processing equipment has two tubes. Additionally, the garment container 1 can be made of metal, such as stainless steel.
[0046] In summary, this garment processing equipment, by incorporating a heating element 3 on the lifting rib 2 and powering it via a wireless power receiving module 4, enables the heat generated by the heating element 3 to be rapidly transferred to the garments as the lifting rib 2 rotates with the garment drum 1, generating a thermal radiation effect. This improves drying efficiency and enhances the user experience. Furthermore, the heating element 3 is powered by the wireless power receiving module 4 on the garment drum 1, preventing wiring entanglement during rotation and allowing for direct heating to dry the garments, thus ensuring high drying efficiency.
[0047] In some embodiments, the heating element 3 is selected as a graphene heating element. Graphene heating elements have good electrical conductivity, can heat up rapidly after being energized, and graphene material has good elasticity and ductility, can be used on curved surfaces, has a large and uniform heating area, and is highly efficient and energy-saving. Of course, in other embodiments, the heating element 3 can also be selected as a PTC heater or other structures that can be energized and heated.
[0048] In some embodiments, refer to Figure 1 and Figure 3 The garment processing equipment includes a housing 8 and a wireless power transmission module 6. The garment drum 1 is rotatably installed inside the housing 8, and the wireless power transmission module 6 is installed on the housing 8 to supply power to the heating element 3 via the wireless power receiving module 4.
[0049] Understandably, the wireless power transmitting module 6 and the wireless power receiving module 4 can achieve contactless power transmission, meaning that power can be transmitted between them without the need for a connecting wire. Thus, even when the clothes drum 1 is rotating, the wireless power transmitting module 6 and the wireless power receiving module 4 can still supply power to the heating element 3, meeting the power requirements of the heating element 3.
[0050] For example, the wireless power transmitting module 6 includes a transmitting coil, and the wireless power receiving module 4 includes a receiving coil. Energy is transferred between the transmitting coil and the receiving coil via a magnetic field. For instance, the transmitting coil can generate a changing magnetic field, and the receiving coil can generate current through magnetic induction, thereby realizing the transfer of electrical power.
[0051] For example, in one specific implementation, the above-mentioned clothing processing equipment further includes a support shaft assembly, which includes a support shaft 7 and a support seat. The support seat is disposed on the housing 8, and the support shaft 7 is connected to the clothes container 1 and supported on the support seat, and can rotate with the clothes container 1 relative to the support seat.
[0052] The wireless power receiving module 4 includes a receiving coil that surrounds the support shaft 7. The wireless power transmitting module 6 includes a transmitting coil that surrounds the support base or is mounted on the support base.
[0053] Understandably, the receiving coil rotates with the clothes drum 1, while the transmitting coil is mounted on the housing 8 and remains relatively stationary. Thus, the receiving coil rotates relative to the transmitting coil. By arranging the receiving coil around the support shaft 7, the relative position between the receiving coil and the transmitting coil can be kept stable when the receiving coil rotates with the clothes drum 1, thereby ensuring stable transmission of electrical energy between the transmitting coil and the receiving coil.
[0054] In some embodiments, the garment handling apparatus further includes a lifting rib 2 disposed on the garment holding tube 1, and a heating element 3 disposed on the lifting rib 2, for example, on the surface or inside of the lifting rib 2.
[0055] The garment holding chamber 1a can be used to place and dry clothes. The garment holding tube 1 can rotate, and the lifting rib 2 can contact the clothes in the garment holding chamber 1a and drive the clothes to rotate with the garment holding tube 1. For example, the clothes move upward under the action of the lifting rib 2, and then move downward under the action of gravity and / or centrifugal force, so that the clothes constantly change their posture in the garment holding chamber 1a.
[0056] The heating element 3 is preferably disposed on the outer side of the lifting rib 2, so that it can directly contact the clothes in the clothes holding chamber 1a and generate a heat radiation effect, thereby deeply heating the clothes through infrared rays and improving the drying efficiency.
[0057] It should be noted that there are multiple lifting ribs 2, which are spaced apart along the circumference of the clothes-holding tube 1, and each lifting rib 2 is provided with a heating element 3.
[0058] Understandably, by setting multiple lifting ribs 2, the lifting effect on the clothes can be improved, and multiple heating elements 3 can improve the drying effect on the clothes and increase the drying efficiency.
[0059] For example, refer to Figure 1 There are two lifting ribs 2, which are symmetrically arranged on the clothes-holding tube 1.
[0060] Reference Figures 3 to 6 The aforementioned lifting rib 2 forms a receiving groove 21a. The garment processing device also includes a cable 5, which passes through the receiving groove 21a and is connected to the wireless power receiving module 4 and the heating element 3.
[0061] Since the heating element 3 is located on the outer side of the lifting rib 2, the part where the cable 5 passes through the lifting rib 2 needs to be sealed to prevent moisture from entering the receiving groove 21a. Of course, when the heating element 3 is located inside the receiving groove 21a, the cable 5 does not need to pass through the lifting rib 2.
[0062] Furthermore, the garment processing device may also include a control board (not shown in the figure) disposed in the receiving tank 21a, a cable 5 connected to the wireless power receiving module 4 and the control board, and the control board connected to the heating element 3.
[0063] The cable 5 can transmit electrical signals, and the control board can control the power supply. For example, it can conduct or cut off the power transmission between the wireless power receiving module 4 and the heating element 3, that is, control the start and stop of the heating element 3. The control board is set in the receiving groove 21a of the lifting rib 2, and the heating element 3 is set on the lifting rib 2, which facilitates the electrical connection between the control board and the heating element 3.
[0064] The aforementioned control board may include an MCU, or Microcontroller Unit. It can be used to perform input functions such as signal acquisition and processing, as well as output functions such as issuing commands to control the operation of actuators. For example, the control board can control the power supply.
[0065] In this embodiment, the wireless power receiving module 4, control board, cable 5, and heating element 3 all move synchronously with the clothes tub 1, thus preventing the cable 5 from becoming tangled due to the rotation of the clothes tub 1. The cable 5 transmits electrical energy from the wireless power receiving module 4 to the control board and heating element 3, ensuring high reliability.
[0066] For example, in one specific implementation, the wireless power receiving module 4 is located on the rear side of the clothes container 1, and a cable passage hole 121 is provided on the rear side wall of the clothes container 1 for the cable 5 to pass through. The lifting rib 2 covers the cable passage hole 121.
[0067] The cable passage 121 is located on the rear side wall of the clothes container 1, and the wireless power receiving module 4 is located on the rear side wall of the clothes container 1. One end of the cable 5 is connected to the wireless power receiving module 4, and the other end passes through the cable passage 121 into the receiving groove 21a to connect to the control board, which can reduce the possibility of the cable 5 getting tangled. Moreover, the lifting rib 2 covers the cable passage 121, which can prevent the cable 5 from being exposed inside and outside the clothes container 1a, thereby preventing the clothes from coming into contact with the cable 5.
[0068] In addition, the cable 5 is sealed through the cable hole 121, for example by sealing the gap between the cable 5 and the cable hole 121 by sealing ring, sealant or other sealing structure, so as to prevent water or air leakage in the cable hole 121 when the clothing processing equipment is a washer-dryer combo.
[0069] Specifically, refer to Figure 3 and Figure 4 The aforementioned clothes container 1 includes a connected body 11 and a rear end cover 12. The front side of the body 11 has a clothes inlet, and the rear end cover 12 closes the rear end opening of the body 11. The rear end cover 12 has the aforementioned wire hole 121. The wireless power receiving module 4 is disposed on the rear end cover 12 and located outside the clothes container 1a. The aforementioned lifting rib 2 is disposed on the body 11 and extends to the rear end cover 12 to cover the aforementioned wire hole 121.
[0070] Reference Figure 5 and Figure 6 The lifting rib 2 includes a main body 21 and an extension 22 connected to the main body 21. The main body 21 has a receiving groove 21a, and the extension 22 covers the wire hole 121.
[0071] The extension 22 is provided with a cable routing cavity for the cable 5 to pass through, and the rearward surface of the extension 22 is in contact with the rear surface of the garment chamber 1a. The rear surface of the garment chamber 1a can be used to seal the cable routing cavity, preventing water or lint from entering the cable routing cavity.
[0072] The main body 21 includes two side plates 211, a top plate 212, and an end plate 213. The two side plates 211 are spaced apart circumferentially along the clothes-holding tube 1, and the bottom ends of both side plates 211 are connected to the peripheral side wall of the clothes-holding tube 1. The top plate 212 is connected to the top ends of the two side plates 211, and the end plate 213 is connected to the front ends of the two side plates 211. The top plate 212, end plate 213, and two side plates 211 together define a receiving groove 21a. The rear ends of the two side plates 211 are connected to the extension 22.
[0073] It should be noted that the side plate 211 and end plate 213 are both sealed to the circumferential wall of the clothes container 1 to ensure the sealing of the receiving groove 21a.
[0074] Furthermore, the aforementioned lifting rib 2 also includes a reinforcing portion 23 disposed within the receiving groove 21a to improve the structural strength of the lifting rib 2. The reinforcing portion 23 includes a partition and a reinforcing rib plate disposed within the receiving groove 21a.
[0075] In some embodiments, the garment processing apparatus further includes a detection module (not shown) disposed within the garment holding chamber 1a. The aforementioned wireless power receiving module 4 is capable of supplying power to the detection module.
[0076] The detection module is used to detect sensor parameters of the clothing in the garment holding chamber 2a, such as temperature, humidity, pressure, or color. The clothing processing equipment can determine the characteristic information or drying degree of the clothing based on the sensor parameters detected by the detection module. For example, the principle of the detection module can be: the clothing in the garment holding chamber 2a comes into contact with the two electrodes of the detection module, making the detection circuit conductive. Different clothing has different resistance values, thereby detecting the characteristic information of the clothing.
[0077] For example, the detection module could be a conductivity detection module, which can detect the conductivity of the clothes in the garment holding chamber 1a. The garment processing equipment can determine the degree of drying of the clothes based on the conductivity detected by the conductivity detection module. For instance, the principle of the conductivity detection module could be: the clothes in the garment holding chamber 1a come into contact with the two electrodes of the conductivity detection module, causing the conductivity detection circuit to conduct. Clothes with different levels of moisture have different resistance values; that is, the conductivity is related to the moisture level of the clothes, and the degree of drying of the clothes is determined based on the conductivity of the clothes.
[0078] The aforementioned conductivity detection module can be installed on the outer surface of the lifting rib 2, allowing it to come into contact with the clothes inside the garment chamber 1a. This enables close-range sensing of the clothes' drying status, effectively improving the accuracy of determining the dryness of the clothes in the garment chamber 1a. Alternatively, the conductivity detection module can also be installed on the garment drum 1, achieving conductivity detection in the same way.
[0079] Optionally, in one specific implementation, the conductivity detection module may include a first electrode and a second electrode. The first electrode includes a first connecting portion and a first tooth connected to the first connecting portion. The second electrode includes a second connecting portion and a second tooth connected to the second connecting portion. The first tooth and the second tooth are spaced apart. The first tooth may extend toward the second connecting portion, and the second tooth may extend toward the second connecting portion. The distance between the first tooth and the second tooth is greater than zero.
[0080] The first and second electrodes are both located on the outer surface of the lifting rib 2. A first tooth and a second tooth constitute an electrode pair; the distance between the first and second teeth can be small to improve the accuracy and sensitivity of the conductivity detection module.
[0081] Furthermore, the number of first teeth and second teeth is at least two, and the first teeth and second teeth are alternately arranged along the axial direction of the garment cylinder 1. That is, there is a second tooth between any two adjacent first teeth.
[0082] The first and second teeth are either evenly or unevenly distributed along the axial direction of the clothes-holding tube 1. The distance between adjacent first and second teeth is L. Even distribution of the first and second teeth along the axial direction of the clothes-holding tube 1 means that any two distances L are equal. Uneven distribution of the first and second teeth along the axial direction of the clothes-holding tube 1 means that at least two distances L are unequal.
[0083] In this embodiment, the first and second teeth are arranged alternately to form an interdigitated structure. One first tooth and one second tooth constitute an electrode pair. The conductivity detection module has at least two electrode pairs. The clothing contacts at least two electrode pairs. The conduction between each electrode pair can be regarded as a resistor. At least two electrode pairs can be regarded as at least two resistors in parallel, which makes the detection of conductivity changes more sensitive. This improves the accuracy and sensitivity of the conductivity detection module and can avoid problems such as inadequate drying or over-drying to a certain extent, thereby improving drying performance.
[0084] For example, in another specific implementation, the conductivity detection module described above may consist of two metal strips. When damp clothing comes into contact with the two metal strips, the circuit is made conductive, thereby determining the degree of drying of the clothing.
[0085] In some embodiments, the garment handling apparatus includes a circulating air duct, wherein at least one air inlet communicating with a garment chamber 1a is formed on the rear sidewall of the garment drum 1, and the circulating air duct connects the air inlet and the air outlet of the garment chamber 1a. For example, an air inlet is formed on the rear sidewall of the garment drum. The circulating air duct is used to provide circulating airflow that repeatedly flows through the garment chamber 1a. The airflow in the circulating air duct can enter the garment chamber 1a through the air inlet, and the airflow in the garment chamber 1a can enter the circulating air duct through the air outlet. The airflow can circulate between the circulating air duct and the garment chamber 1a.
[0086] Understandably, the number of air inlets can be one or more, such as two, three, four, or five, etc.
[0087] In one embodiment, the garment handling equipment includes a housing 8, a fan hood, and a base. The base is located inside the housing and below the garment drum 1. A return air inlet and a supply air inlet connected to the air inlet are formed on the rear side wall of the housing 8. The height of the return air inlet is lower than the height of the supply air inlet. A heat exchange channel is formed on the base, with its two ends connected to the air outlet and the return air inlet, respectively. The fan hood surrounds the air outlet and the return air inlet, and together with the rear side wall of the housing 8, defines the supply air channel. The heat exchange channel and the supply air channel together constitute a circulating air duct. The heat exchange channel is located upstream of the supply air channel along the airflow direction within the circulating air duct, and the airflow sequentially flows through the air outlet, the heat exchange channel, the return air inlet, the supply air channel, the supply air inlet, and the air inlet. The housing 8 can be approximately hexahedral in shape, for example, a cube or a cuboid.
[0088] There is no limit to the number of air outlets; there can be one or more air outlets, for example, two, three, four, or five air outlets, etc.
[0089] Furthermore, the garment processing equipment includes a heat exchange component located within a heat exchange channel. The heat exchange component is used to exchange heat with the airflow within the heat exchange channel, thereby dehumidifying and heating. The humid and hot airflow in the garment holding chamber 1a can enter the heat exchange channel through the air outlet, and after exchanging heat and mass with the heat exchange component, it is converted into dry and hot airflow. The dry and hot airflow enters the air supply channel through the return air inlet, and then flows back into the garment holding chamber 1a through the air supply outlet and the air inlet.
[0090] The aforementioned heat exchange components include a condenser and an evaporator. The garment handling equipment also includes a compressor and a throttling device. The compressor, condenser, throttling device, and evaporator are connected by pipes to form a heat pump system, within which the refrigerant can circulate. The airflow in the circulating duct exchanges heat with the refrigerant in the evaporator and condenser to form a dry, hot airflow. The evaporator cools and dehumidifies the humid, hot airflow from the garment storage chamber 1a into a dry, cold airflow; the condenser heats the dry, cold airflow into a dry, hot airflow and returns it to the garment storage chamber 1a.
[0091] The working principle of a heat pump system is as follows: The compressor draws in low-pressure gaseous refrigerant and compresses it into high-pressure air before discharging it. The discharged high-pressure refrigerant enters the condenser, where it transfers heat to the airflow, causing it to condense into a high-pressure liquid. The high-pressure liquid refrigerant then flows through a throttling device to reduce pressure, becoming a low-pressure, low-temperature gas-liquid two-phase mixture that enters the evaporator. The refrigerant in the evaporator absorbs heat from the airflow, becoming a low-pressure gas. This low-pressure gaseous refrigerant is then drawn back into the compressor. This cycle repeats, achieving heat exchange. In other words, the evaporator cools and dehumidifies the humid airflow from the clothes compartment 1a, forming a dry, cool airflow. The condenser heats the dry, cool airflow into a dry, hot airflow, which then flows back into the clothes compartment 1a. The dry, hot airflow returning to the clothes compartment 1a comes into contact with the damp clothes, forming a humid, hot airflow again, completing one drying cycle. By repeatedly running the drying cycle, circulating airflow is continuously supplied to the clothes compartment 1a to dry the clothes.
[0092] For example, both the evaporator and the condenser can be finned tube heat exchangers.
[0093] For example, throttling devices include, but are not limited to, electronic expansion valves, etc.
[0094] Furthermore, the garment processing equipment includes a fan wheel for driving airflow. Exemplarily, the fan wheel is located within a heat exchange channel and between the heat exchange components and the return air vent. During the drying process, the fan wheel drives the airflow passing through the garment sequentially through the evaporator and condenser before blowing it onto the garment to create a circulating airflow. The fan wheel can accelerate airflow and improve drying efficiency.
[0095] It should be noted that, in this document, relational terms such as "first" and "second" are used merely to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.
[0096] The above description is merely a specific embodiment of this application, enabling those skilled in the art to understand or implement this application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of this application. Therefore, this application is not to be limited to the embodiments described herein, but is to be accorded the widest scope consistent with the principles and novel features claimed herein.
Claims
1. A garment processing device, characterized in that, include: A clothes-holding tube, which includes a clothes-holding compartment; A heating element is disposed inside or on the outer surface of the clothes-holding tube, and the heating element rotates with the clothes-holding tube. A wireless power receiving module, disposed on or inside the clothes container, is used for non-contact reception of electrical energy and is configured to power the heating element.
2. The garment processing equipment according to claim 1, characterized in that, The heating element is a graphene heating element.
3. The garment processing equipment according to claim 1, characterized in that, The garment processing equipment also includes lifting ribs, which are disposed on the garment holding tube, and the heating element is disposed on the lifting ribs.
4. The garment processing equipment according to claim 3, characterized in that, The lifting rib is formed with a receiving groove; The garment processing device also includes a cable that passes through the receiving slot and connects the wireless power receiving module and the heating element.
5. The garment processing equipment according to claim 4, characterized in that, The wireless power receiving module is located on the rear side of the clothes container, and the clothes container has a cable passage hole for the cable to pass through. The lifting rib covers the wire hole.
6. The garment processing equipment according to claim 5, characterized in that, The lifting rib includes a main body and an extension connected to the main body. The main body has the receiving groove, and the extension covers the wire hole.
7. The garment processing equipment according to claim 3, characterized in that, The lifting ribs are provided in multiple ways, and the multiple lifting ribs are arranged at intervals along the circumference of the clothes-holding tube, and each lifting rib is provided with a heating element.
8. The garment processing equipment according to claim 1, characterized in that, The garment processing equipment also includes a housing and a wireless power transmission module. The garment tube is rotatably disposed inside the housing, and the wireless power transmission module is disposed on the housing to supply power to the heating element via the wireless power receiving module.
9. The garment processing equipment according to claim 8, characterized in that, The garment processing equipment also includes a support shaft assembly, which includes a support shaft and a support base. The support base is disposed on the housing, and the support shaft is connected to the garment holding tube and supported by the support base, and can rotate relative to the support base with the garment holding tube. The wireless power receiving module includes a receiving coil, which is arranged around the support shaft; The wireless power transmission module includes a transmission coil, which is arranged around or on the support base.
10. The garment processing equipment according to claim 1, characterized in that, The garment processing equipment also includes a detection module, which is located in the garment holding chamber.