Laundry treatment device

By installing a humidity detection integrated board on the lifter in the dryer and using wireless power supply or DC power generation technology to power the humidity detection integrated board, the problem of incomplete humidity data collection is solved, achieving more accurate clothing humidity judgment and energy saving.

WO2025223126A1PCT designated stage Publication Date: 2025-10-30QINGDAO JIAOZHOU HAIER WASHING APPLIANCE CO LTD +1
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Patent Information

Application Number
PCT/CN2025/084452
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-04-26
Filing Date
2025-03-24
Publication Date
2025-10-30

AI Technical Summary

Technical Problem

Existing dryers suffer from incomplete humidity data collection and inaccurate humidity assessment.

Method used

By installing a humidity detection integrated board inside the drum and mounting it on the lifter so that it rotates with the drum, and combining it with a power supply module using wireless power supply or DC power generation technology to power the humidity detection integrated board, the frequency of contact with clothing and the comprehensiveness of data collection are increased.

Benefits of technology

It improves the accuracy and comprehensiveness of clothing humidity assessment, avoids the problem of tangled wires, and saves energy.

✦ Generated by Eureka AI based on patent content.

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Abstract

A laundry treatment device, comprising a fixed base, a drum (2), a humidity detection integrated board (3), and a power supply module (4) electrically connected to the humidity detection integrated board (3), wherein a rotating shaft (21) is arranged at one end of the drum (2); the drum (2) is rotatably arranged in the fixed base by means of the rotating shaft (21); a lifter is arranged on an inner wall of the drum (2); the humidity detection integrated board (3) is installed on the lifter (22); and the power supply module (4) supplies power to the humidity detection integrated board (3) in a wireless power supply manner, or the power supply module (4) supplies power to the humidity detection integrated board (3) in a direct-current power generation manner. By means of the arrangement, the frequency and probability of contact between a humidity detection integrated board (3) and laundry inside a drum (2) can be increased, thereby improving the comprehensiveness of humidity data collection for the laundry inside the drum (2) and the accuracy of humidity determination for the laundry inside the drum (2).
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Description

Clothing processing equipment This application claims priority to Chinese patent application CN202410516342.2, filed on April 26, 2024, entitled “Clothing Processing Equipment”, the entire contents of which are incorporated herein by reference. Technical Field

[0001] This application relates to the field of humidity detection equipment technology, specifically providing a clothing processing device. Background Technology

[0002] As people's living standards improve, warm air dryers are becoming increasingly common in homes, especially in areas with frequent rain and humidity. Clothes are difficult to dry quickly by simply hanging them to air dry after washing, while warm air dryers can dry clothes in a shorter time after washing. Therefore, dryers have become almost an essential household appliance.

[0003] Whether a clothes dryer has finished drying clothes is determined by detecting the moisture content of the clothes inside. The working principle of the moisture detection in a clothes dryer is as follows: two isolated metal strips are placed inside the dryer drum as the cathode and anode. When the clothes come into contact with both electrodes simultaneously, the resistance value between the electrodes can be detected. The resistance value varies depending on the moisture content of the clothes. The resistance value increases as the moisture content of the clothes decreases; therefore, the degree of dryness of the clothes can be determined by the magnitude of the resistance value.

[0004] Current dryers typically use two isolated metal strips fixed to the front support of the drum. As the drum rotates, clothes are thrown up and fall, coming into contact with the metal strips. Data is collected by measuring the resistance between the two strips. However, because the front support is at a certain height from the bottom of the drum, clothes only come into contact with the metal strips when they accumulate to a certain height or are thrown onto the support. Furthermore, due to the drum's reverse rotation, clothes inside the drum cannot always fully contact the metal strips. This results in incomplete humidity data collection and inaccurate humidity readings.

[0005] Therefore, a new technical solution is needed in this field to solve the above problems. (Application Content)

[0006] This application aims to solve the aforementioned technical problems, namely, to address the issues of incomplete humidity data collection and inaccurate humidity judgment in existing dryers.

[0007] This application provides a garment processing device, including a fixed base and a roller. One end of the roller is provided with a rotating shaft, and the roller is rotatably disposed in the fixed base via the rotating shaft. An elevator is provided on the inner wall of the roller. The garment processing device also includes a humidity detection integrated plate and a power supply module electrically connected to the humidity detection integrated plate. The power supply module supplies power to the humidity detection integrated plate wirelessly, or the power supply module supplies power to the humidity detection integrated plate via DC power generation. The humidity detection integrated plate is mounted on the elevator and can detect and transmit the humidity of the garments inside the roller.

[0008] In the preferred technical solution of the above-mentioned clothing processing equipment, the power supply module includes a stator mechanism and a rotor mechanism. The stator mechanism is fixedly installed on the fixed base, and the rotor mechanism is installed on the rotating shaft and rotatably connected to the stator mechanism. The rotating shaft can drive the rotor mechanism to rotate to cut magnetic field lines and generate current. The rotor mechanism is electrically connected to the humidity detection integrated board.

[0009] In the preferred technical solution of the above-mentioned clothing processing equipment, the power supply module includes a wireless power supply transmitter and a wireless power supply receiver. The wireless power supply transmitter is fixedly installed on the fixed base, and the wireless power supply receiver is installed on the rotating shaft. The wireless power supply transmitter can emit electromagnetic waves to provide wireless power, and the wireless power supply receiver can receive electromagnetic waves to generate current. The wireless power supply receiver is electrically connected to the humidity detection integrated board.

[0010] In the preferred technical solution of the above-mentioned garment processing equipment, the humidity detection integrated board is provided with a battery module, a humidity acquisition module and a humidity transmission module. The battery module is electrically connected to the power supply module, the humidity acquisition module and the humidity transmission module respectively. The humidity acquisition module and the humidity transmission module are communicatively connected. The humidity acquisition module can detect the humidity of the roller-rolled garment, and the humidity transmission module can receive and transmit the humidity of the roller-rolled garment detected by the humidity acquisition module.

[0011] In the preferred embodiment of the above-mentioned clothing processing equipment, the humidity acquisition module includes a first humidity sensor and a first humidity receiver, the first humidity sensor is electrically connected to the first humidity receiver, and the first humidity receiver is communicatively connected to the humidity transmission module.

[0012] In the preferred embodiment of the above-mentioned clothing processing equipment, the first humidity sensor is a 3D transparent humidity sensor, and the first humidity receiver is a 3D transparent humidity receiver.

[0013] In the preferred embodiment of the above-mentioned clothing processing equipment, the roller is further provided with a support member, and the humidity acquisition module further includes a second humidity sensor disposed on the support member, and a second humidity receiver disposed on the humidity detection integrated plate and electrically connected to the second humidity sensor, the second humidity receiver being electrically connected to the humidity transmission module.

[0014] In the preferred embodiment of the above-mentioned clothing processing equipment, the second humidity sensor is a bimetallic electrode humidity sensor, and the second humidity receiver is a bimetallic humidity receiver.

[0015] In the preferred technical solution of the above-mentioned clothing processing equipment, the battery module includes a power input terminal, a voltage regulator and a battery. The power input terminal is electrically connected to the power supply module and the voltage regulator, and the battery is electrically connected to the humidity acquisition module and the humidity transmission module.

[0016] In the preferred embodiment of the above-mentioned garment processing equipment, the garment processing equipment is a washing machine, a dryer, or a washer-dryer combo; and / or

[0017] The fixing base is the box or outer cylinder of the clothing processing equipment.

[0018] Those skilled in the art will understand that the technical solution of this application provides a garment processing device, including a fixed base and a roller. A rotating shaft is provided at one end of the roller, which is rotatably mounted in the fixed base via the shaft. A lifter is provided on the inner wall of the roller. The garment processing device also includes a humidity detection integrated board and a power supply module electrically connected to the humidity detection integrated board. The power supply module supplies power to the humidity detection integrated board wirelessly, or it supplies power to the humidity detection integrated board via DC power generation. The humidity detection integrated board is mounted on the lifter and can detect and transmit the humidity of the garments inside the roller. By adopting the above technical solution, this application can improve the comprehensiveness of humidity data collection from the garments inside the roller, thereby improving the accuracy of humidity judgment. Specifically, by mounting the humidity detection integrated board on the lifter, the humidity detection integrated board can rotate along with the roller during rotation, thereby increasing the frequency and probability of contact with the garments inside the roller. This allows the humidity detection integrated board to acquire more humidity data from the garments, achieving comprehensive humidity collection and improving the accuracy of humidity judgment. Furthermore, since powering the humidity detection integrated board becomes a significant issue when it rotates, this application addresses this by incorporating a power supply module. This module utilizes DC power generation technology or wireless power generation technology to supply power to the humidity detection integrated board, ensuring it can still be powered even when rotating, thus enabling the board to function normally and collect and transmit clothing humidity data.

[0019] Furthermore, the power supply module of this application includes a stator mechanism and a rotor mechanism. The stator mechanism is fixedly mounted on a fixed base, and the rotor mechanism is mounted on a rotating shaft and rotatably connected to the stator mechanism. The rotating shaft can drive the rotor mechanism to rotate to cut magnetic field lines and generate current. The rotor mechanism is electrically connected to the humidity detection integrated board. With this arrangement, as the drum rotates through the rotating shaft, it can drive the rotor mechanism to rotate together. The rotor mechanism cuts the magnetic field of the stator mechanism during rotation to generate direct current, which powers the humidity detection integrated board. This structural arrangement not only solves the problem of the humidity detection integrated board not being able to supply power when rotating, but also enables DC power generation by the rotation of the drum, saving energy.

[0020] Furthermore, the power supply module of this application may also include a wireless power supply transmitter and a wireless power supply receiver. The wireless power supply transmitter is fixedly mounted on a fixed base, and the wireless power supply receiver is mounted on a rotating shaft. The wireless power supply transmitter can emit electromagnetic waves to provide wireless power, and the wireless power supply receiver can receive electromagnetic waves to generate current. The wireless power supply receiver is electrically connected to the humidity detection integrated board. With this configuration, when the wireless power supply receiver rotates with the shaft, it can receive the electromagnetic waves emitted by the wireless power supply transmitter, thereby generating alternating current to power the humidity detection integrated board. This also solves the problem of the humidity detection integrated board being unable to provide power when rotating and saves energy.

[0021] Furthermore, the humidity acquisition module includes a first humidity sensor and a first humidity receiver. The first humidity sensor and the first humidity receiver are electrically connected, and the first humidity receiver is communicatively connected to the humidity transmission module. During the rotation of the drum, the first humidity sensor comes into contact with the clothes inside the drum, thereby acquiring the humidity data of the clothes. The first humidity sensor transmits the acquired humidity data to the first humidity receiver, which then transmits the acquired humidity data to the humidity transmission module. Thus, the dryer system can obtain the humidity of the clothes through the humidity transmission module and adjust the drying temperature and time according to different data for each garment. Specifically, the first humidity sensor in this application is a 3D perspective humidity sensor, and the first humidity receiver is a 3D perspective humidity receiver. This improves the accuracy of humidity judgment for the clothes inside the drum.

[0022] Furthermore, a support component is also installed within the drum, on which a second humidity sensor is mounted. A second humidity receiver, electrically connected to the second humidity sensor, is also mounted on the humidity detection integrated board. This second humidity receiver is electrically connected to the humidity transmission module. This structural design further improves the accuracy of humidity detection for the clothing inside the drum. Specifically, the second humidity sensor on the support component transmits the humidity data of the clothing to the second humidity receiver, which then transmits the same data to the humidity transmission module. Thus, the humidity transmission module can acquire humidity data from both the first and second humidity receivers. This dual-method approach to humidity data collection provides a more comprehensive assessment and further enhances the accuracy of humidity detection for the clothing inside the drum. Attached Figure Description

[0023] The preferred embodiments of this application are described below with reference to the accompanying drawings, in which:

[0024] Figure 1 is a structural schematic diagram of a first embodiment of the garment processing device of this application;

[0025] Figure 2 is a schematic diagram of the structure of Embodiment 2 of the clothing processing equipment of this application;

[0026] Figure 3 is a schematic diagram of the humidity detection integrated board provided in the embodiment of this application.

[0027] List of reference numerals in the attached diagram:

[0028] 1. Box body;

[0029] 2. Drum; 21. Shaft; 22. Elevator; 23. Support component;

[0030] 3. Humidity detection integrated board; 31. Battery module; 311. Power input terminal; 312. Voltage regulator; 313. Battery; 32. Humidity acquisition module; 321. First humidity sensor; 322. First humidity receiver; 323. Second humidity sensor; 324. Second humidity receiver; 33. Humidity transmission module;

[0031] 4. Power supply module; 41. Stator mechanism; 42. Rotor mechanism; 43. Wireless power supply transmitter; 44. Wireless power supply receiver. Detailed Implementation

[0032] Preferred embodiments of this application are described below with reference to the accompanying drawings. Those skilled in the art should understand that these embodiments are merely illustrative of the technical principles of this application and are not intended to limit the scope of protection of this application. For example, although the following embodiments are described in conjunction with a clothes dryer, the technical solutions provided by this application are equally applicable to other clothing processing equipment, such as washer-dryer combos and washing machines.

[0033] It should be noted that, in the description of this application, unless otherwise expressly specified and limited, the terms "set" and "connection" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, an integral connection, a mechanical connection, or an electrical connection. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.

[0034] Based on the background art, existing clothes dryers suffer from incomplete humidity data collection and inaccurate humidity judgment. This application provides a clothes dryer that aims to improve the comprehensiveness of humidity data collection on the clothes inside the drum 2 by increasing the frequency and probability of contact with the clothes inside the drum 2, thereby effectively solving the problem of low accuracy in determining the humidity of clothes.

[0035] First, refer to Figures 1 and 2, where Figure 1 is a structural schematic diagram of Embodiment 1 of the dryer of this application; and Figure 2 is a structural schematic diagram of Embodiment 2 of the dryer of this application.

[0036] As shown in Figures 1 and 2, this application provides a clothes dryer, including a fixed base and a drum 2. A rotating shaft 21 is provided at one end of the drum 2, and the drum 2 is rotatably mounted in the fixed base 1 via the rotating shaft 21. A lifter 22 is provided on the inner wall of the drum 2. When the rotating shaft 21 rotates, it drives the drum 2 to rotate. The drum 2 can be used to collect clothes that need to be dried, such as clothes, sheets, and duvet covers. The lifter 22 can lift the wet clothes to a certain height during the rotation of the drum 2 and then drop them down, thus dispersing the wet clothes and facilitating drying.

[0037] It should be noted that the fixed base can be the dryer housing 1, or it can be the dryer outer drum. The following will take the dryer housing 1 as the fixed base as an example to continue to introduce the technical solution of this application.

[0038] Preferably, as shown in Figures 1 and 2, the dryer of this application further includes a humidity detection integrated board 3 and a power supply module 4 electrically connected to the humidity detection integrated board 3. The power supply module 4 supplies power to the humidity detection integrated board 3 wirelessly, or the power supply module 4 supplies power to the humidity detection integrated board 3 by DC power generation. The humidity detection integrated board 3 is installed on the lifter 22 and can detect and transmit the humidity of the clothes in the roller 2.

[0039] This application installs a humidity detection integrated board 3 on the lifter 22. The humidity detection integrated board 3 rotates with the rotation of the roller 2. Since the wet clothes inside the roller 2 also rotate with the roller 2, the frequency and probability of contact between the humidity detection integrated board 3 and the wet clothes are increased. This allows the humidity detection integrated board 3 to comprehensively acquire the humidity data of the clothes, improving the comprehensiveness of the humidity data collection and thus improving the accuracy of the humidity judgment. Furthermore, since the humidity detection integrated board 3 rotates with the roller 2, traditional wiring methods for powering the humidity detection integrated board 3 have the problem of wire harness tangling as the roller 2 rotates. This application solves this problem by setting a power supply module 4, which powers the humidity detection integrated board 3 wirelessly (as shown in Figure 2) or through DC power generation (as shown in Figure 1), thereby enabling the humidity detection integrated board 3 to collect and transmit the humidity data of the clothes and effectively avoiding the problem of wire harness tangling.

[0040] In a first preferred embodiment, as shown in FIG1, the power supply module 4 of this application includes a stator mechanism 41 and a rotor mechanism 42. The stator mechanism 41 is fixedly installed on the housing 1, and the rotor mechanism 42 is installed on the rotating shaft 21 and rotatably connected to the stator mechanism 41. The rotating shaft 21 can drive the rotor mechanism 42 to rotate to cut the magnetic field lines and generate current. The rotor mechanism 42 is electrically connected to the humidity detection integrated board 3.

[0041] As the drum 2 rotates via the shaft 21, it drives the rotor mechanism 42 to rotate as well. During this process, the stator mechanism 41, which is mounted on the housing 1, remains stationary. The rotor mechanism 42, during its rotation, cuts the magnetic field of the stator mechanism 41 to generate direct current, which powers the humidity detection integrated board 3. This not only solves the problem of the humidity detection integrated board 3 not being able to supply power during rotation, but also enables DC power generation using the rotation of the drum 2, saving energy.

[0042] Specifically, in this embodiment, the stator mechanism 41 includes a set of stator magnets fixed at intervals on the housing 1, and the rotor mechanism 42 includes a rotor shaft core fixed on the rotating shaft 21. A rotor coil is wound on the rotor shaft core. When the rotating shaft 21 rotates, the rotor coil rotates between the two stator magnets to cut the magnetic field lines and generate current. More specifically, conductive plates are provided on the rotor coil, and the humidity detection integrated board 3 is connected to the conductive plates through a wire harness. Thus, during the rotation of the drum 2, the wire harness rotates together with the rotor mechanism 42, which not only stably supplies power to the humidity detection integrated board 3, saving energy, but also avoids the problem of wire harness entanglement. Therefore, this embodiment can achieve power supply to the humidity detection integrated board 3 by DC power generation through the above structure.

[0043] In the second preferred embodiment, as shown in FIG2, the power supply module 4 of this application includes a wireless power supply transmitter 43 and a wireless power supply receiver 44. The wireless power supply transmitter 43 is fixedly installed on the housing 1, and the wireless power supply receiver 44 is installed on the rotating shaft 21. The wireless power supply transmitter 43 can emit electromagnetic waves to provide wireless power, and the wireless power supply receiver 44 can receive electromagnetic waves to generate current. The wireless power supply receiver 44 is electrically connected to the humidity detection integrated board 3.

[0044] The wireless power transmitter 43 can emit alternating current at a certain frequency, which generates a corresponding alternating current in the wireless power receiver 44 through electromagnetic induction. Thus, the wireless power transmitter 43 and the wireless power receiver 44 can transfer electrical energy from the wireless power transmitter 43 to the wireless power receiver 44 without contact. This method can also supply power to the humidity detection integrated board 3 as it rotates with the roller 2. Specifically, in this embodiment, the wireless power transmitter 43 includes a transmitting coil, and the wireless power receiver 44 includes a receiving coil. The transmitting coil emits alternating current at a moving frequency, and the receiving coil receives and generates a certain alternating current. Furthermore, those skilled in the art are familiar with the transmission principle of the transmitting coil and the reception principle of the receiving coil, which will not be elaborated here. More specifically, the wireless power receiver 44 is provided with a conductive sheet, and the humidity detection integrated board 3 is connected to the conductive sheet via a wire harness. The wireless power receiver 44 and the wire harness rotate together with the roller 2. Therefore, this embodiment can achieve wireless power supply to the humidity detection integrated board 3 through the above structure.

[0045] Preferably, as shown in Figure 3, the humidity detection integrated board 3 is provided with a battery module 31, a humidity acquisition module 32 and a humidity transmission module 33. The battery module 31 is electrically connected to the power supply module 4, the humidity acquisition module 32 and the humidity transmission module 33 respectively. The humidity acquisition module 32 and the humidity transmission module 33 are communicatively connected. The humidity acquisition module 32 can detect the humidity of the underwear in the roller 2, and the humidity transmission module 33 can receive and transmit the humidity of the underwear in the roller 2 detected by the humidity acquisition module 32.

[0046] The battery module 31 is electrically connected to the power supply module 4. The power supply module 4 can store some electrical energy in the battery module 31. The battery module 31 supplies power to the humidity acquisition module 32 and the humidity transmission module 33 to ensure their normal operation. The humidity acquisition module 32 can detect the humidity of the clothes in the drum 2 and transmit the humidity data to the humidity transmission module 33. Thus, the dryer system can obtain the humidity of the clothes through the humidity transmission module 33 and adjust the drying temperature and time according to different data of the clothes. Specifically, when the battery module 31 is powered by DC power generation, the battery module 31 is connected to the rotor mechanism 42. When the battery module 31 is powered by wireless power supply, the battery module 31 is connected to the wireless power supply receiver 44. More specifically, the communication connection between the humidity acquisition module 32 and the humidity transmission module 33 can be wired or wireless; the specific connection method is not specifically limited here.

[0047] More preferably, as shown in Figures 1 to 3, the humidity acquisition module 32 includes a first humidity sensor 321 and a first humidity receiver 322. The first humidity sensor 321 and the first humidity receiver 322 are electrically connected, and the first humidity receiver 322 is communicatively connected to the humidity transmission module 33.

[0048] As the roller 2 rotates, the first humidity sensor 321 comes into contact with the clothing inside the roller 2, thereby acquiring the humidity data of the clothing. The first humidity sensor 321 transmits the acquired humidity data of the clothing to the first humidity receiver 322, and the first humidity receiver 322 then transmits the acquired humidity data of the clothing to the humidity transmission module 33. This improves the comprehensiveness and accuracy of the humidity detection of the clothing. Specifically, the first humidity sensor 321 and the first humidity receiver 322 can be sensing elements with resistive or capacitive operating modes. The specific operating mode of the first humidity sensor 321 and the first humidity receiver 322 is not specifically limited in this application.

[0049] More specifically, in this embodiment, the first humidity sensor 321 is a 3D perspective humidity sensor, and the first humidity receiver 322 is a 3D perspective humidity receiver. This allows the detection of moisture content inside the clothing via an energy field, thereby further improving the accuracy of humidity assessment of the clothing inside the drum 2.

[0050] Preferably, as shown in Figures 1 to 3, the roller 2 is further provided with a support member 23, and the humidity acquisition module 32 also includes a second humidity sensor 323 disposed on the support member 23, and a second humidity receiver 324 disposed on the humidity detection integrated plate 3 and electrically connected to the second humidity sensor 323. The second humidity receiver 324 is electrically connected to the humidity transmission module 33. This structural arrangement can further improve the accuracy of humidity judgment of the clothes inside the roller 2.

[0051] It should be noted that in this embodiment, the support member 23 is located on the side of the roller 2 near the door, which can provide an installation position for the second humidity sensor 323; the lifter 22 is located on the inner wall of the roller 2, so the lifter 22 can drive the clothes to rotate from bottom to top during the rotation of the roller 2, lift the wet clothes to a certain height and then let the wet clothes fall down. The continuous rotation of the roller 2 realizes the up and down flipping of the clothes, thereby messing up and scattering the wet clothes in the roller 2.

[0052] More preferably, the second humidity sensor 323 is a bimetallic electrode humidity sensor, and the second humidity receiver 324 is a bimetallic humidity receiver. Specifically, the bimetallic electrode humidity sensor consists of two spaced-apart metal strips, one as the anode and the other as the cathode. When clothing comes into contact with both electrodes simultaneously, the resistance value between the two electrodes can be detected. The second humidity receiver 324 can receive this resistance value and transmit it to the humidity transmission module 33 to determine the humidity of the clothing.

[0053] Specifically, the second humidity sensor 323 can also be a 3D see-through humidity sensor, just like the first humidity sensor 321, and the second humidity receiver 324 can also be a 3D see-through humidity receiver, just like the first humidity receiver 322. This further improves the accuracy of clothing humidity detection. In this embodiment, the second humidity sensor 323 is set as a bimetallic electrode humidity sensor, and the second humidity receiver 324 is set as a bimetallic humidity receiver, which not only saves costs but also ensures the accuracy of clothing humidity detection.

[0054] In this embodiment, not only is a first humidity sensor 321 installed on the lifter 22, but a second humidity sensor 323 is also installed on the support 23. Therefore, the humidity transmission module 33 can acquire humidity data of the clothing received by both the first humidity receiver 322 and the second humidity receiver 324. This dual-method approach to collecting clothing humidity data provides a more comprehensive assessment and further improves the accuracy of humidity determination within the drum 2.

[0055] Preferably, as shown in FIG3, the battery module 31 includes a power input terminal 311, a voltage regulator 312 and a battery 313. The power input terminal 311 is electrically connected to the power supply module 4 and the voltage regulator 312 respectively, and the battery 313 is electrically connected to the voltage regulator 312, the humidity acquisition module 32 and the humidity transmission module 33 respectively.

[0056] Preferably, the garment processing equipment is a washing machine, a dryer, or a washer-dryer combo; and / or the fixing base is the housing or outer drum of the garment processing equipment.

[0057] The technical solutions of this application have been described above with reference to the preferred embodiments shown in the accompanying drawings. However, it will be readily understood by those skilled in the art that the scope of protection of this application is obviously not limited to these specific embodiments. Without departing from the principles of this application, those skilled in the art can make equivalent changes or substitutions to the relevant technical features, and the technical solutions after these changes or substitutions will all fall within the scope of protection of this application.

Claims

1. A garment processing device, characterized in that, The device includes a fixed base and a roller (2). One end of the roller (2) is provided with a rotating shaft (21). The roller (2) is rotatably disposed in the fixed base through the rotating shaft (21). An elevator (22) is provided on the inner wall of the roller (2). The device is characterized in that the garment processing equipment further includes a humidity detection integrated plate (3) and a power supply module (4) electrically connected to the humidity detection integrated plate (3). The power supply module (4) supplies power to the humidity detection integrated plate (3) wirelessly or DC power to the humidity detection integrated plate (3). The humidity detection integrated plate (3) is installed on the elevator (22). The humidity detection integrated plate (3) can detect and transmit the humidity of the garment in the roller (2).

2. The garment processing equipment according to claim 1, characterized in that, The power supply module (4) includes a stator mechanism (41) and a rotor mechanism (42). The stator mechanism (41) is fixedly installed on the fixed base. The rotor mechanism (42) is installed on the rotating shaft (21) and rotatably connected to the stator mechanism (41). The rotating shaft (21) can drive the rotor mechanism (42) to rotate to cut magnetic field lines and generate current. The rotor mechanism (42) is electrically connected to the humidity detection integrated board (3).

3. The garment processing equipment according to claim 1, characterized in that, The power supply module (4) includes a wireless power supply transmitter (43) and a wireless power supply receiver (44). The wireless power supply transmitter (43) is fixedly installed on the fixed base, and the wireless power supply receiver (44) is installed on the rotating shaft (21). The wireless power supply transmitter (43) can emit electromagnetic waves to provide wireless power, and the wireless power supply receiver (44) can receive electromagnetic waves to generate current. The wireless power supply receiver (44) is electrically connected to the humidity detection integrated board (3).

4. The garment processing equipment according to claim 1, characterized in that, The humidity detection integrated board (3) is provided with a battery module (31), a humidity acquisition module (32) and a humidity transmission module (33). The battery module (31) is electrically connected to the power supply module (4), the humidity acquisition module (32) and the humidity transmission module (33) respectively. The humidity acquisition module (32) and the humidity transmission module (33) are communicatively connected. The humidity acquisition module (32) can detect the humidity of the underwear in the roller (2). The humidity transmission module (33) can receive and transmit the humidity of the underwear in the roller (2) detected by the humidity acquisition module (32).

5. The garment processing equipment according to claim 4, characterized in that, The humidity acquisition module (32) includes a first humidity sensor (321) and a first humidity receiver (322). The first humidity sensor (321) is electrically connected to the first humidity receiver (322), and the first humidity receiver (322) is communicatively connected to the humidity transmission module (33).

6. The garment processing equipment according to claim 5, characterized in that, The first humidity sensor (321) is a 3D perspective humidity sensor, and the first humidity receiver (322) is a 3D perspective humidity receiver.

7. The garment processing equipment according to claim 5, characterized in that, The roller (2) is also provided with a support member (23). The humidity acquisition module (32) further includes a second humidity sensor (323) disposed on the support member (23) and a second humidity receiver (324) disposed on the humidity detection integrated plate (3) and electrically connected to the second humidity sensor (323). The second humidity receiver (324) is electrically connected to the humidity transmission module (33).

8. The garment processing equipment according to claim 7, characterized in that, The second humidity sensor (323) is a bimetallic electrode humidity sensor, and the second humidity receiver (324) is a bimetallic humidity receiver.

9. The garment processing equipment according to claim 4, characterized in that, The battery module (31) includes a power input terminal (311), a voltage regulator (312), and a battery (313). The power input terminal (311) is electrically connected to the power supply module (4) and the voltage regulator (312), respectively. The battery (313) is electrically connected to the voltage regulator (312), the humidity acquisition module (32), and the humidity transmission module (33), respectively.

10. The garment processing apparatus according to any one of claims 1 to 9, characterized in that, The garment processing equipment is a washing machine, a dryer, or a washer-dryer combo; and / or The fixing base is the box or outer cylinder of the clothing processing equipment.

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