Laundry treating apparatus
By using xenon lamp components and pulse devices in the clothing treatment equipment to generate light that simulates sunlight, and combined with the reactive oxygen generation device, the existing clothing treatment equipment has solved the problems of poor sterilization and deodorization and easy damage, and achieved efficient sterilization and deodorization and improvement of sunlight smell.
Patent Information
- Application Number
- CN202311637408.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-01
- Publication Date
- 2025-06-03
AI Technical Summary
Existing clothing treatment equipment uses high-temperature treatment technology to sterilize and remove clothes with poor effect and is prone to damage materials that are afraid of high temperatures, resulting in damage to clothes.
It provides a clothing treatment equipment, using xenon lamp components and pulse devices, which discharge xenon gas through a high-voltage electromagnetic field, generates light of different wavelengths such as ultraviolet, visible light and infrared rays, simulates sunlight irradiation of clothing, realizes sterilization and deodorization, and provides active oxygen through the active oxygen generation device to promote the generation of hydroxyl radicals, and further enhances the sterilization effect and sunlight smell.
This device can efficiently and quickly inactivate all kinds of microorganisms on the surface of the clothing, achieving the purpose of sterilization and deodorization, and at the same time realize the sunlight smell generated by sunlight illuminating the clothing for a long time, improving the user's user experience, and not damaging the clothing.
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Figure CN120083036A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of clothing treatment, and particularly provides a clothing treatment device. Background Art
[0002] In real life, the clothes people wear come into contact with the outside world and will fall into a lot of bacteria. Bacteria are difficult to distinguish with the naked eye. If people are infected by bacteria, it will cause the body's immunity and resistance to decline, affecting people's physical health and increasing the risk of getting sick. Moreover, due to the secretion of human sweat or the long-term storage of clothes, it is easy to cause the clothes to produce peculiar smells, bringing an unpleasant experience to users.
[0003] Although high-temperature treatment of the clothes worn by users through a clothing treatment device can achieve the effects of sterilization and odor removal, its sterilization and odor removal effects are poor. And due to the different materials of the clothes, through high-temperature treatment, it may damage the materials that are afraid of high temperature, and thus damage the clothes.
[0004] In summary, the existing clothing treatment devices have poor sterilization and odor removal effects on clothes through high-temperature treatment technology and are easy to damage clothes.
[0005] Correspondingly, the field needs a new clothing treatment device to solve the above technical problems. Summary of the Invention
[0006] The present invention aims to solve the above technical problems, that is, to solve the problems that the existing clothing treatment devices have poor sterilization and odor removal effects on clothes and are easy to damage clothes.
[0007] The present invention provides a clothing treatment device, which includes a box body and a xenon lamp assembly.
[0008] A clothing accommodation cavity is formed in the box body. The xenon lamp assembly includes a connected xenon lamp and a pulse device. The xenon lamp is arranged to be able to irradiate light into the clothing accommodation cavity.
[0009] In a preferred technical solution of the above clothing treatment device, the pulse device includes a first inductance coil and a second inductance coil that are arranged side by side and close to each other. The first inductance coil is connected to a power supply, and the second inductance coil is electrically connected to the xenon lamp.
[0010] In a preferred technical solution of the above clothing treatment device, the clothing treatment device has a first inductance coil and a second inductance coil that are arranged side by side and close to each other. The first inductance coil is connected to a power supply, and the second inductance coil is connected to the pulse device.
[0011] In the preferred technical solution of the above-mentioned laundry treatment device, the xenon lamp assembly further includes a housing, a rotating body at least partially accommodated in the housing, and a driving member. The xenon lamp is disposed on the rotating body, and the irradiation direction faces the laundry receiving cavity. The rotating body is connected to the housing in a rotatable manner, and the driving member is configured to be able to drive the rotating body to rotate.
[0012] In the preferred technical solution of the above-mentioned laundry treatment device, the first inductance coil is disposed in the housing, and the second inductance coil is disposed at an end of the rotating body close to the first inductance coil.
[0013] In the preferred technical solution of the above-mentioned laundry treatment device, the driving member is connected with a driving gear, a rotating gear is disposed on the rotating body, the driving gear and the rotating gear are meshed and connected, and the driving member drives the rotating gear to rotate through the driving gear, thereby driving the rotating body to rotate.
[0014] In the preferred technical solution of the above-mentioned laundry treatment device, an arc-shaped chute is disposed on one of the rotating body and the housing, and a slider is disposed on the other of the rotating body and the housing. The slider is located in the chute and can slide in the chute.
[0015] In the preferred technical solution of the above-mentioned laundry treatment device, the laundry treatment device is a washing machine, and the washing machine includes the cabinet, an outer tub disposed in the cabinet, an inner tub disposed in the outer tub, a door body, and a seal for sealing the gap between the outer tub and the door body. The laundry receiving cavity is formed in the inner tub.
[0016] The xenon lamp is disposed on the seal or the door body.
[0017] In the preferred technical solution of the above-mentioned laundry treatment device, the laundry treatment device further includes an ozone generation device configured to be able to supply ozone to the laundry receiving cavity.
[0018] In the preferred technical solution of the above-mentioned laundry treatment device, the laundry treatment device is a washing machine, a dryer, a washer-dryer, a garment care machine, a shoe washing and care device, or a storage cabinet.
[0019] In the case of adopting the above technical solution, the clothing treatment device of the present invention includes a box body and a xenon lamp assembly. A clothing accommodating cavity is formed in the box body. The xenon lamp assembly includes a connected xenon lamp and a pulse device. The xenon lamp is arranged to be able to irradiate light into the clothing accommodating cavity. The present invention utilizes the high-voltage electromagnetic field generated by the pulse device to discharge rare gases such as xenon, generating light of different wavelengths such as ultraviolet light, visible light, and infrared light, simulating sunlight irradiating clothes, simulating photochemical reactions, and being able to efficiently and quickly inactivate various microorganisms on the surface of clothes, achieving the purpose of sterilization and odor removal, and being able to realize the sunlight smell generated by long-term sunlight irradiation of clothes, improving the user experience.
[0020] Furthermore, in the present invention, the xenon lamp is arranged on a rotating body, and the rotating body can rotate relative to the housing, enabling large-range irradiation of clothes, making the irradiation effect more uniform, and helping to improve the sterilization effect and the sunlight smell.
[0021] Furthermore, in the present invention, through the arrangement of an arc-shaped chute and a slider, it not only satisfies the normal rotation of the rotating body but also prevents the rotating body from falling off.
[0022] Furthermore, in the present invention, through the arrangement of an ozone generation device, ozone is provided into the clothing accommodating cavity. In the air, ozone (O 3 ) can generate hydroxyl radicals (·OH) under the irradiation of sunlight. Hydroxyl radicals can comprehensively sterilize and remove odors from clothes, and can promote the generation of the sunlight smell on clothes, playing a promoting role, and can achieve the effect of long-term irradiation of clothes in a short time, improving the user experience. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The following describes the preferred embodiments of the present invention with reference to the drawings. In the drawings:
[0024] Figure 1 is a schematic structural diagram of a clothing treatment device according to a preferred embodiment of the present invention;
[0025] Figure 2 is Figure 1 an enlarged view of the structure at A in
[0026] Figure 3 is an enlarged view of the connection part between the driving member and the rotating body;
[0027] Figure 4 is a schematic diagram of the inner wall on one side of the housing;
[0028] Reference numerals:
[0029] 1. Cabinet; 2. Clothing accommodation cavity; 3. Clothing treatment barrel; 31. Outer barrel; 32. Inner barrel; 4. Xenon lamp assembly; 41. Xenon lamp; 411. Irradiation end face; 42. Pulse device; 421. First inductance coil; 422. Second inductance coil; 43. Housing; 431. First cavity; 432. Second cavity; 433. First rotation hole; 434. Second rotation hole; 435. Arc-shaped chute; 44. Rotating body; 441. Rotating gear; 442. First rotating shaft; 443. Second rotating shaft; 444. Slide block; 45. Driving member; 451. Transmission shaft; 452. Driving gear; 5. Door body; 6. Sealing member. Detailed implementation manners
[0030] The preferred implementation manners of the present invention will be described below with reference to the accompanying drawings. Those skilled in the art should understand that these implementation manners are only used to explain the technical principle of the present invention and are not intended to limit the protection scope of the present invention. Those skilled in the art can make adjustments according to needs to adapt to specific application scenarios.
[0031] It should be noted that in the description of the present invention, the terms indicating the direction or positional relationship such as "upper", "lower", "left", "right", "front", "rear", etc. are based on the direction or positional relationship shown in the drawings. This is only for convenience of description and does not indicate or imply that the device or element must have a specific orientation, be constructed and operated in a specific orientation, so it cannot be understood as a limitation of the present invention. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance.
[0032] In addition, it should also be noted that in the description of the present invention, unless otherwise clearly specified and limited, the terms "connected", "connected to", and "communicated with" should be understood in a broad sense. For example, it can be a fixed connection or a detachable connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those skilled in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0033] First Figure 1 , as Figure 1As shown in the figure, the clothing treatment device of the present invention includes a cabinet 1 and a xenon lamp assembly 4. A clothing receiving cavity 2 is formed inside the cabinet 1. The xenon lamp assembly 4 includes a connected xenon lamp 41 and a pulse device 42. The xenon lamp 41 is arranged to be able to irradiate light into the clothing receiving cavity 2. The present invention utilizes the high-voltage electromagnetic field generated by the pulse device 42 to discharge rare gases such as xenon, generating light of different wavelengths such as ultraviolet light, visible light, and infrared light, enabling the xenon lamp 41 to simulate sunlight irradiating clothing, simulating photochemical reactions, being able to efficiently and quickly inactivate various microorganisms on the clothing surface, achieving the purpose of sterilization and odor removal, and being able to achieve the sunlight smell generated by long-term sunlight irradiation of clothing, enhancing the user experience.
[0034] Next, refer to Figure 2 , as Figure 2 shown, the pulse device 42 includes a first inductance coil 421 and a second inductance coil 422 that are juxtaposed and close to each other. The first inductance coil 421 is connected to a power supply (not shown in the figure), and the second inductance coil 422 is electrically connected to the xenon lamp 41. The number of turns of the first inductance coil 421 is less than the number of turns of the second inductance coil 422, and the ratio of the number of turns of the two can meet the requirement of generating a high-voltage pulse. Controlling the current change in the first inductance coil 421 (which can be achieved by changing the power supply voltage of the first inductance coil 421) will generate an induced electromotive force in the second inductance coil 422. Utilizing the induced electromotive force, a pulse voltage is thus generated. With the pulsed change of the current, high-frequency pulsed electrical energy is generated, and the generated pulsed electrical energy is finally transmitted to the xenon lamp 41. In the xenon lamp 41, these pulses generate a high-voltage electromagnetic field to discharge rare gases such as xenon, generating light of different wavelengths such as ultraviolet light, visible light, and infrared light, enabling the xenon lamp 41 to simulate sunlight irradiating clothing, simulating photochemical reactions.
[0035] In another preferred embodiment, the clothing treatment device includes a first inductance coil 421 and a second inductance coil 422 that are juxtaposed and close to each other. The first inductance coil 421 is connected to a power supply, and the second inductance coil 422 is connected to another pulse device (not shown in the figure). The other pulse device is connected to the xenon lamp 41. The first inductance coil 421 and the second inductance coil 422 are only used for wireless power transmission, enabling the other pulse device to be powered on. The pulse device 42 can cause the xenon lamp 41 to discharge.
[0036] It should be noted that the present invention does not impose any restrictions on the specific structures of the pulse device 42 and the other pulse device. It can also be a pulse power supply or a pulse generator, or other devices that can generate pulses, as long as they can meet the requirement of causing the xenon lamp 41 to discharge and light up.
[0037] Those skilled in the art can understand that, to achieve the functions of the first inductance coil 421 and the second inductance coil 422, those skilled in the art can set the winding direction of the first inductance coil 421 and the winding direction of the second inductance coil 422 by themselves, as long as they can play the roles described in the present invention.
[0038] Continue to refer to Figure 1 and Figure 2 In this preferred embodiment, the xenon lamp assembly 4 further includes a housing 43, a rotating body 44 at least partially accommodated in the housing 43, and a driving member 45. The xenon lamp 41 is disposed on the rotating body 44, and the irradiation direction is towards the clothing receiving cavity 2. The rotating body 44 is connected to the housing 43 in a rotatable manner, and the driving member 45 is configured to drive the rotating body 44 to rotate.
[0039] Specifically, the housing 43 is fixed to the inner wall of the clothing receiving cavity 2 or fixed at a certain position, as long as it can enable the xenon lamp 41 to irradiate the light onto the clothes in the clothing receiving cavity 2. Taking Figure 2 the direction shown as the reference direction, most of the rotating body 44 is located inside the housing 43, a part of the lower part of the rotating body 44 is located outside the housing 43, and the xenon lamp 41 is disposed at the lowermost end of the rotating body 44. The irradiation end face 411 of the xenon lamp 41 is an inclined surface, so that the xenon lamp 41 can irradiate towards the inside of the clothing receiving cavity 2. The driving member 45 passes through the housing 43 and is connected to the rotating body 44, so that the rotating body 44 can rotate by a certain angle around an axis. In Figure 2 it, it swings back and forth by a certain angle in the direction perpendicular to the paper surface. The rotation of the rotating body 44 drives the rotation of the xenon lamp 41, which can irradiate the clothes in the clothing receiving cavity 2 in a larger range, so as to ensure that the light evenly covers different parts of the clothes, avoid over-irradiation in some areas and insufficient irradiation in other areas, and enable as many clothes as possible to be irradiated by the light source, thereby improving the irradiation effect on the clothes.
[0040] The driving member 45 is a driving motor. The driving member 45 is fixedly connected to the housing 43, or is fixed by connecting to the box body 1 through a separate fixing frame or fixing rod. Of course, other fixing methods can also be used, as long as it can ensure that the driving member 45 does not rotate by itself during operation. Those skilled in the art can set it according to the actual situation.
[0041] In addition, the lamp cover or the irradiation end face 411 of the xenon lamp 41 uses a quartz cover. Quartz has very good permeability in the ultraviolet and visible light ranges, which enables the xenon lamp 41 to effectively transmit the generated light. The xenon lamp 41 generates a relatively high temperature during operation, and quartz has good high-temperature stability and can withstand such a working environment. Quartz is relatively stable to many chemical substances, which helps to protect the xenon filling inside the xenon lamp 41. The use of the quartz cover in the xenon lamp 41 helps to improve the performance and lifespan of the lamp while protecting its internal components.
[0042] Furthermore, the first inductance coil 421 is arranged inside the housing 43, and the second inductance coil 422 is located at the end of the rotating body 44 away from the xenon lamp 41 and is arranged close to the first inductance coil 421. Specifically, a first cavity 431 and a second cavity 432 are formed inside the housing 43. The first cavity 431 is located above the second cavity 432. The first inductance coil 421 is arranged inside the first cavity 431, and the power line passes through the inner wall of the first cavity 431 and is connected to the first inductance coil 421. A part of the rotating body 44 is located inside the second cavity 432, and the second inductance coil 422 is arranged at the upper end of the rotating body 44. When the rotating body 44 rotates, the first inductance coil 421 and the second inductance coil 422 can still induce each other. Of course, this is only a preferred arrangement. It can also be that the first cavity 431 and the second cavity 432 are one cavity, and the first inductance coil 421 and the second inductance coil 422 are arranged side by side vertically. By arranging a plurality of limiting members on the inner wall of the cavity to carry the first inductance coil 421 and the second inductance coil 422, in this case, the second inductance coil 422 may not be connected to the end of the rotating body 44, and those skilled in the art can set it according to the actual situation.
[0043] Continue to refer to Figure 3 and 4 , as Figure 3 and 4 shown, the driving member 45 is connected with a driving gear 452, and a rotating gear 441 is arranged on the rotating body 44. The driving gear 452 and the rotating gear 441 are meshed and connected. The driving member 45 drives the rotating gear 441 to rotate through the driving gear 452, and then drives the rotating body 44 to rotate. Specifically, taking Figure 3The indicated direction is the reference direction. A first rotation hole 433 is provided on the left side of the housing 43. The driving member 45 is connected to a transmission shaft 451. The transmission shaft 451 passes through the first rotation hole 433, and the right end of the transmission shaft 451 is connected to a driving gear 452. The driving gear 452 does not contact and is not connected to the rotating body 44. Second rotation holes 434 are provided on the left and right sides of the housing 43. A first rotation shaft 442 is provided in the second rotation hole 434 on the left side. The right end of the first rotation shaft 442 is connected to a rotating gear 441. The rotating gear 441 is fixedly connected to the rotating body 44, and the rotating gear 441 meshes with the driving gear 452. A second rotation shaft 443 is provided in the second rotation hole 434 on the right side. The second rotation shaft 443 is connected to the rotating body 44, and the first rotation shaft 442 and the second rotation shaft 443 are symmetric with each other and have the same axis; based on the above structural settings, the driving member 45 drives the transmission shaft 451 to rotate, the transmission shaft 451 drives the driving gear 452 to rotate coaxially, the driving gear 452 drives the rotating gear 441 to rotate, and the rotating gear 441 is arranged coaxially with both the first rotation shaft 442 and the second rotation shaft 443. Therefore, when the rotating gear 441 rotates, the first rotation shaft 442 and the second rotation shaft 443 also rotate coaxially, enabling the rotating body 44 to rotate around the axis of the first rotation shaft 442, thereby realizing the reciprocating rotation of the xenon lamp 41 and performing multi-angle and large-range irradiation.
[0044] Those skilled in the art can understand that the driving member 45 of the present invention can be arranged inside the housing 43, fixed on the inner wall of the housing 43, directly connected to the driving gear 452 to drive the rotating body 44 to rotate. It can also be that the first rotation shaft 442 and the second rotation shaft 443 are not provided, and rotating gears 441 are arranged on both the left and right sides of the rotating body 44. The rotating gears 441 on both sides are fixedly connected to the rotating body 44. A cylindrical protrusion extends from the side of the rotating gear 441 away from the rotating body 44. Cylindrical grooves are provided at corresponding positions on the inner walls of both sides of the housing 43. The protrusion and the groove can rotate relative to each other, and the rotation of the rotating body 44 can still be realized; it can also be that the transmission shaft 451 penetrates the housing 43 and the rotating body 44. The transmission shaft 451 can rotate relative to the housing 43, and the transmission shaft 451 cannot rotate relative to the rotating body 44. In this case, the driving member 45 directly drives the transmission shaft 451 to rotate, and the rotation of the rotating body 44 can also be realized. Those skilled in the art can set it according to the actual situation.
[0045] It should be noted that the rotating body 44 of the present invention can be either a solid structure or a sleeve-like structure. In the case of a sleeve-like structure, the pulse generator can be arranged inside the rotating body 44.
[0046] Refer to Figure 2 and 4 , in this preferred embodiment, withFigure 2 The indicated direction is the reference direction. Arc-shaped chutes 435 are provided on the left and right inner walls of the housing 43, and corresponding sliders 444 are provided on the rotating body 44. When the rotating body 44 rotates around the axis, the slider 444 can slide in the arc-shaped chute 435, and the slider 444 is snapped into the arc-shaped chute 435, which is convenient for installation, can prevent the rotating body 44 from falling off downward, and at the same time, the sliding of the slider 444 in the arc-shaped chute 435 does not hinder the normal rotation of the rotating body 44.
[0047] Those skilled in the art can understand that although, in this preferred embodiment, arc-shaped chutes 435 are provided on the left and right inner walls of the housing 43, and corresponding sliders 444 are provided on the rotating body 44, this is not restrictive. It can also be that arc-shaped chute structures are provided on the left and right sides of the rotating body 44, and slider structures are provided on the left and right inner walls of the housing 43. Those skilled in the art can set it according to the actual situation.
[0048] Further, referring to Figure 1 and 2 , the laundry treatment device of this preferred embodiment is a washing machine. The washing machine includes a cabinet 1, a laundry treatment tub 3 provided in the cabinet 1. The laundry treatment tub 3 includes an outer tub 31 and an inner tub 32 provided in the outer tub 31. A laundry receiving cavity 2 is formed in the inner tub 32. The washing machine further includes a door body 5. The door body 5 can control the communication state between the laundry receiving cavity 2 and the outside. The washing machine further includes a seal 6. The seal 6 is located between the outer tub 31 and the door body 5 and is used to seal the gap between the outer tub 31 and the door body 5. The lower end of the housing 43 passes through the seal 6 so that the xenon lamp 41 can irradiate light into the laundry receiving cavity 2.
[0049] In another preferred embodiment, the xenon lamp assembly 4 only includes a pulse device 42 and a xenon lamp 41. The xenon lamp 41 is provided on the seal 6 or the door body 5, and the irradiation direction of the xenon lamp 41 faces the inside of the laundry receiving cavity 2. The pulse device 42 is arranged close to the xenon lamp 41 and can be electrically connected to the xenon lamp 41.
[0050] In another preferred embodiment, the laundry treatment tub 3 only includes an outer tub 31, and a rotatable agitator is provided in the outer tub 31.
[0051] Further, in the present invention, the laundry treatment device further includes an ozone generation device (not shown in the figure). The ozone generation device is configured to be able to supply ozone (O 3 ) into the laundry receiving cavity 2. The ozone generation device includes a connected drive power supply and an ozone generation component. The drive power supply is a high-voltage drive power supply or a high-voltage power board or a high-voltage coil drive device. The ozone generation component is an ozone generation sheet or an ozone generation needle. When the drive power supply is powered on, ozone can be generated at the ozone generation component, that is, oxygen is changed into O3 , the ozone generating device can be directly arranged on the inner wall of the clothing accommodating cavity 2. The spectrum of the light emitted by the xenon lamp 41 is similar to that of sunlight, and it is composed of ultraviolet light (wavelength band 100nm - 400nm), visible light (wavelength band 400nm - 700nm), and infrared light (700nm - 1100nm). By using its irradiation on the clothing, simulating the photochemical reaction of the sun, the clothing is sterilized and deodorized, making the clothing produce the smell after being irradiated by the sun for a long time. The ozone generating device provides ozone into the clothing accommodating cavity 2. In the air, ozone can generate hydroxyl radicals (·OH) under the irradiation of sunlight. Hydroxyl radicals can comprehensively sterilize and deodorize the clothing, and can promote the clothing to produce the smell of sunlight, playing a promoting role, and can achieve the effect of the clothing being irradiated for a long time in a short time, improving the user experience.
[0052] Those skilled in the art can understand that the ozone generating device can be the device described in the present invention or an ozone generator in the prior art, and those skilled in the art can set it according to the actual situation.
[0053] It should be noted that although the present invention only takes the laundry equipment as a washing machine as an example for illustration, this is not restrictive. The laundry equipment can also be a dryer, a washer-dryer, a clothing storage cabinet, a shoe washing and care device, or a clothing care machine. In other preferred embodiments, the difference from the washing machine is only the specific installation positions of the components forming the clothing accommodating cavity 2 and the xenon lamp assembly 4, except for the common knowledge differences in the prior art, and the rest of the installation methods are the same, which will not be elaborated here, and those skilled in the art can set it according to the actual situation.
[0054] In summary, the present invention utilizes the principle of generating ultraviolet pulses by xenon, uses a special xenon lamp tube as the light source to generate high-intensity pulsed light, accumulates high energy in a short time, and instantaneously releases it in the form of light radiation. It utilizes the principle of high-voltage ionization and polarization luminescence of the pulsed xenon lamp, and through high-intensity full-spectrum light, inactivates various microorganisms on the clothing surface and in the air efficiently and quickly, achieving the purpose of disinfection and sterilization. The pulsed device 42 and the xenon lamp 41 work for a long time, and long-time irradiation of the clothing can also achieve the effect that the clothing has the smell of sunlight irradiation.
[0055] So far, the technical solutions of the present invention have been described in combination with the preferred embodiments shown in the drawings. However, those skilled in the art can easily understand that the protection scope of the present invention is obviously not limited to these specific embodiments. Without departing from the principle of the present invention, those skilled in the art can make equivalent changes or replacements to the relevant technical features, and the technical solutions after these changes or replacements will all fall within the protection scope of the present invention.
Claims
1. A clothing processing device, It is characterized in that The laundry processing device comprises a housing and a xenon lamp assembly. A clothing receiving cavity is formed in the box body, and the xenon lamp assembly comprises a connected xenon lamp and a pulse device, and the xenon lamp is configured to irradiate light into the clothing receiving cavity.
2. The laundry processing device according to claim 1, It is characterized in that The pulse device includes a first inductor coil and a second inductor coil which are arranged in parallel and close to each other. The first inductor coil is connected to a power source, and the second inductor coil is electrically connected to the xenon lamp.
3. The laundry processing device according to claim 1, It is characterized in that The clothes processing device comprises a first inductor coil and a second inductor coil which are arranged in parallel and close to each other, wherein the first inductor coil is connected to a power source, and the second inductor coil is connected to the pulse device.
4. The laundry processing apparatus according to any one of claims 1 to 3, It is characterized in that The xenon lamp assembly also includes a shell, a rotating body at least partially accommodated in the shell, and a driving component. The xenon lamp is arranged on the rotating body, and the irradiation direction is toward the clothing holding cavity. The rotating body is rotatably connected to the shell, and the driving component is configured to drive the rotating body to rotate.
5. The laundry processing device according to claim 4 as referred to claim 2, It is characterized in that The first inductor is arranged in the shell, and the second inductor is located at the end of the rotating body and is arranged close to the first inductor.
6. The laundry processing device according to claim 4, It is characterized in that The driving member is connected with a driving gear, and the rotating body is provided with a rotating gear. The driving gear and the rotating gear are meshed and connected. The driving member drives the rotating gear to rotate through the driving gear, thereby driving the rotating body to rotate.
7. The laundry processing device according to claim 4, It is characterized in that An arc-shaped slide groove is arranged on one of the rotating body and the shell, and a sliding block is arranged on the other of the rotating body and the shell. The sliding block is located in the slide groove and can slide in the slide groove.
8. The laundry processing apparatus according to claim 1, It is characterized in that The laundry processing device is a washing machine, which includes the housing, an outer barrel disposed in the housing, an inner barrel disposed in the outer barrel, a door, and a seal for sealing a gap between the outer barrel and the door, wherein the inner barrel forms the laundry accommodating cavity. The xenon lamp is arranged on the sealing member or the door body.
9. The laundry processing apparatus according to claim 1, It is characterized in that The clothing treatment device further comprises an active oxygen generating device, and the active oxygen generating device is configured to provide active oxygen into the clothing receiving cavity.
10. The laundry processing apparatus according to claim 1, It is characterized in that The clothing processing equipment is a washing machine, a dryer, an all-in-one washer-dryer, a clothing care machine, a shoe washing and care device or a storage cabinet.