Clothes treatment equipment, ozone peculiar smell removal method and control device

By combining ozone, foam and steam technology in clothing treatment equipment and selecting appropriate odor removal methods according to the type of odor, the problem of incomplete odor removal in the prior art is solved, and a more efficient odor removal effect is achieved and energy consumption is reduced.

CN119932871AActive Publication Date: 2025-05-06GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Application Number
CN202510095494.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-21
Publication Date
2025-05-06
Estimated Expiration
2045-01-21

AI Technical Summary

Technical Problem

Existing clothing treatment equipment fails to fully consider the type of odor when removing odor, resulting in incomplete removal.

Method used

A clothing treatment equipment is designed to select appropriate ozone deodorization methods according to the type of odor through an ozone generator, a foam generator and a steam generator. The control device is combined with a control device to select appropriate ozone deodorization methods according to the odor type, including mono-ozone gas deodorization, ozone gas combined with steam deodorization and ozone foam deodorization.

Benefits of technology

By selecting the appropriate ozone deodorization method according to the type of odor, the effect of odor removal is significantly improved, avoiding the removal effect by increasing the steam volume or increasing the temperature, and reducing energy consumption.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The embodiment of the invention provides clothes treatment equipment, an ozone peculiar smell removal method and a control device. The clothes treatment equipment comprises a shell; the clothes processing drum is arranged in the shell, and a mounting space is formed between the shell and the clothes processing drum; the ozone generating device is arranged in the mounting space, and the ozone generating device is provided with an ozone outlet; the foam generating device is arranged in the mounting space, the foam generating device is provided with an air inlet and a foam outlet, the air inlet is communicated with the ozone outlet, the foam outlet is communicated with the clothes processing drum, and the foam generating device can generate ozone foam by utilizing ozone generated by the ozone generating device; the steam generating device is arranged in the mounting space, and a steam outlet of the steam generating device is communicated with the clothes processing drum; and the control device is configured to determine an ozone odor removal mode according to the odor type of the clothes in the clothes treatment drum. According to the embodiment, different ozone deodorization strategies can be formulated according to different types of peculiar smells, and the removal effect on the peculiar smells of the clothes is improved.
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Description

Technical Field

[0001] The present application relates to the technical field of clothing processing, and in particular to a clothing processing device, an ozone deodorization method and a control device. Background Art

[0002] Common types of odors on clothes include smoke, alcohol, hot pot, mold, etc. Existing clothing processing equipment removes odors from clothes by physical methods such as high temperature or steam. Physical methods such as high temperature or steam can volatilize and dissolve odor molecules on the surface of clothes to a certain extent, but it is not easy to remove odor molecules that penetrate deep into the fibers of clothes, and may also cause secondary odors, and the odor removal is not thorough.

[0003] In the related art, a deodorization method is formulated based on information such as odor concentration. However, the difficulty of removing different types of odors varies. If the same conditions are used to remove the odors, the odor removal will not be complete. Summary of the invention

[0004] The embodiments of the present application provide a clothing processing device, an ozone deodorization method and a control device, so as to at least solve the technical problem that the odor removal method of the related art does not take the odor type into consideration, resulting in incomplete odor removal.

[0005] According to a first aspect of an embodiment of the present application, there is provided a clothes processing device, the clothes processing device comprising:

[0006] case;

[0007] A clothes processing drum is disposed in the housing, and an installation space is formed between the housing and the clothes processing drum;

[0008] an ozone generating device, which is disposed in the installation space, and an ozone outlet of the ozone generating device is connected to the clothes processing drum;

[0009] a foam generating device, which is arranged in the installation space, wherein a foam outlet of the foam generating device is connected to the clothes processing drum, and the foam generating device can generate ozone foam by using the ozone generated by the ozone generating device;

[0010] A steam generating device is arranged in the installation space, and a steam outlet of the steam generating device is communicated with the clothes processing drum;

[0011] A control device, the control device being configured to control an ozone deodorization mode according to the type of odor of the clothes in the clothes treatment drum;

[0012] Among them: the ozone deodorization methods include single ozone gas deodorization, ozone gas and steam combined deodorization and ozone foam deodorization.

[0013] By using the clothes treatment device of this embodiment, the ozone deodorization method can be determined according to the type of odor of the clothes, and different ozone deodorization strategies can be formulated for different types of odors to improve the effect of removing odors from clothes. In addition, the use of ozone deodorization can also avoid increasing the steam volume and the temperature in the drum to improve the odor removal effect, thereby reducing the energy consumption of deodorization.

[0014] In combination with the first aspect, in an optional implementation of the embodiment of the present application, the control device is further configured to control the deodorization parameters of the ozone deodorization mode according to the odor type and clothing properties;

[0015] The clothing attributes include clothing material and clothing style, and the deodorization parameters include ozone concentration and / or ozone action duration.

[0016] In combination with the first aspect, in an optional implementation of the embodiment of the present application, the clothing processing device further includes a clothing image acquisition device, and the clothing image acquisition device is used to acquire a clothing image;

[0017] The control device is further configured to determine the clothing attributes according to the clothing image.

[0018] According to a second aspect of an embodiment of the present application, an ozone deodorization method is provided for use in a clothing processing device, the ozone deodorization method comprising:

[0019] Determine the target ozone deodorization method according to the odor type of the clothes in the clothes treatment drum;

[0020] Controlling the clothes treatment equipment to run a deodorization program according to the target ozone deodorization mode;

[0021] The ozone deodorization methods include ozone gas deodorization alone, ozone gas and steam combined deodorization, and ozone foam deodorization.

[0022] In conjunction with the second aspect, in an optional implementation of the embodiment of the present application, the odor type and the ozone deodorization method have a preset corresponding relationship; wherein: the ozone deodorization method corresponding to the odor type with the least difficulty in odor removal is single ozone gas deodorization, and the ozone deodorization method corresponding to the odor type with the greatest difficulty in odor removal is ozone foam deodorization;

[0023] The step of determining a target ozone deodorization method according to the type of odor of the clothes in the clothes treatment drum includes: determining the target ozone deodorization method according to the preset corresponding relationship.

[0024] In conjunction with the second aspect, in an optional implementation of the embodiment of the present application, when there are multiple types of odors in the clothes, determining the target ozone deodorization method according to the odor type of the clothes in the clothes treatment drum includes:

[0025] Determine the odor type that is most difficult to remove among the multiple odor types;

[0026] The ozone deodorization method corresponding to the odor type that is most difficult to remove among the multiple odor types is used as the target ozone deodorization method.

[0027] In conjunction with the second aspect, in an optional implementation of the embodiment of the present application, after determining the ozone deodorization mode and before executing the deodorization program, the deodorization parameters are also controlled according to the odor type and clothing properties;

[0028] The clothing attributes include clothing material and clothing style, and the deodorization parameters include at least ozone concentration and ozone action duration.

[0029] In conjunction with the second aspect, in an optional implementation of the embodiment of the present application, controlling the deodorization parameters according to the odor type and clothing attributes includes:

[0030] Determine initial deodorization parameters based on odor type;

[0031] Adjusting the initial deodorization parameters according to clothing attributes to determine target deodorization parameters;

[0032] The clothes treating device is controlled to operate according to the target deodorization parameter.

[0033] In conjunction with the second aspect, in an optional implementation of the embodiment of the present application, determining the initial deodorization parameter according to the odor type includes:

[0034] Among the various odor types corresponding to different ozone deodorization methods, the more difficult the odor removal is, the higher the ozone concentration in the initial deodorization parameters corresponding to the odor type is, and the longer the ozone action time is;

[0035] And / or, among the multiple odor types corresponding to the same ozone deodorization method, the odor type that is more difficult to remove has a larger parameter value of the initial deodorization parameter.

[0036] In conjunction with the second aspect, in an optional implementation of the embodiment of the present application, adjusting the initial deodorization parameter according to clothing attributes includes:

[0037] In the deodorization method combining ozone and steam, the deodorization parameter also includes the steam action time, and the clothing material that is more susceptible to the steam has a shorter steam action time in the deodorization parameter;

[0038] And / or, the clothing material with stronger adsorption capacity for odor molecules has a higher ozone concentration and a longer ozone action time in the deodorization parameters corresponding to the clothing material;

[0039] And / or, the more complex the clothing style, the higher the ozone concentration in the deodorization parameters corresponding to the clothing and the longer the ozone action time.

[0040] According to a third aspect of an embodiment of the present application, an ozone deodorization method is provided, characterized in that the ozone deodorization method is applied to the clothes processing device of the first aspect of the present invention, and the ozone deodorization method comprises:

[0041] Determine the target ozone deodorization method according to the odor type of the clothes in the clothes treatment drum;

[0042] Controlling the clothes treatment equipment to run a deodorization program according to the target ozone deodorization mode;

[0043] The ozone deodorization methods include ozone gas deodorization alone, ozone gas and steam combined deodorization, and ozone foam deodorization.

[0044] In conjunction with the third aspect, in an optional implementation of the embodiment of the present application, after determining the ozone deodorization mode and before executing the deodorization program, the deodorization parameters are also controlled according to the odor type and clothing properties;

[0045] The clothing attributes include clothing material and clothing style, and the deodorization parameters include ozone concentration and / or ozone action duration.

[0046] According to a fourth aspect of an embodiment of the present application, a control device is provided, which includes a memory and a processor, wherein the memory stores the ozone deodorization method of the second aspect of the present invention or the ozone deodorization method of the third aspect of the present invention, and the processor is used to adopt the ozone deodorization method of the second aspect of the present invention or the ozone deodorization method of the third aspect of the present invention when performing ozone deodorization. BRIEF DESCRIPTION OF THE DRAWINGS

[0047] Figure 1 It is a sectional view of a side view of a clothing processing device provided in an embodiment of the present application.

[0048] Figure 2 It is a sectional view of the main view of the clothing processing device provided in an embodiment of the present application.

[0049] Figure 3 It is a schematic diagram of the structure of the foam generating device provided in an embodiment of the present application.

[0050] Figure 4 This is one of the ozone deodorization flow charts provided in the embodiments of the present application.

[0051] Figure 5 This is the second ozone deodorization flow chart provided in the embodiment of the present application.

[0052] Figure 6This is a flow chart of ozone deodorization provided in the embodiment of the present application.

[0053] Figure 7 This is a flow chart of removing hot pot odor using ozone provided in an embodiment of the present application.

[0054] Figure 8 This is a flow chart of ozone smoke odor removal provided in an embodiment of the present application.

[0055] Fig. 9 This is a flow chart of ozone odor removal provided in an embodiment of the present application.

[0056] Fig.10 This is a flow chart of removing odor from raw food using ozone provided in an embodiment of the present application.

[0057] Fig.11 This is a flow chart of ozone deodorization provided in an embodiment of the present application.

[0058] Fig.12 It is a structural block diagram of the control device provided in an embodiment of the present application.

[0059] Figure numerals: 1. shell; 2. clothing treatment drum; 3. door seal; 4. air pump; 5. ozone generator; 6. air intake hose; 7. foam generating device; 71. foaming component; 711. foaming net; 72. air inlet; 73. containing box; 731. containing chamber; 74. liquid inlet; 75. water inlet; 76. foam outlet; 8. bubble outlet pipe; 9. foam inlet; 200. communication bus; 300. user interface; 400. external communication interface; 500. memory. Specific embodiments

[0060] In order to enable those skilled in the art to better understand the solution of the present application, the technical solution in the embodiments of the present application will be clearly and completely described below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without creative work should fall within the scope of protection of the present application.

[0061] It should be understood that the "plurality" mentioned in this article refers to two or more. In the description of the embodiments of the present application, unless otherwise specified, " / " means or, for example, A / B can mean A or B; "and / or" in this article is only a description of the association relationship of associated objects, indicating that there can be three relationships, for example, A and / or B can mean: A exists alone, A and B exist at the same time, and B exists alone. In addition, in order to facilitate the clear description of the technical solutions of the embodiments of the present application, in the embodiments of the present application, the words "first", "second" and so on are used to distinguish between the same items or similar items with basically the same functions and effects. Those skilled in the art can understand that the words "first", "second" and so on do not limit the quantity and execution order, and the words "first", "second" and so on do not limit certain different

[0062] In addition, the terms "comprises," "comprising," and "having," and any variations thereof, are intended to cover non-exclusive inclusions. For example, a process, method, system, product, or apparatus that includes a series of steps or elements is not necessarily limited to those steps or elements explicitly listed, but may include other steps or elements not explicitly listed or inherent to such process, method, product, or apparatus.

[0063] Common odors on clothing include smoke, alcohol, hot pot, mold, and raw food odors. Different types of odors have different degrees of difficulty in removing. For example, smoke and hot pot are more difficult to remove than alcohol. They are not completely removed under the same conditions, and increasing the amount of steam or the duration of steam action will increase energy consumption and damage to clothing. Mold contains mold, and it takes 70℃ to 80℃ to completely remove the mold, which also increases energy consumption. Raw food odor sources such as raw meat, egg liquid, fish, etc. are prone to odor and are more difficult to remove. The odor source must be removed before deodorization can be effective.

[0064] In the related art, different deodorization plans are customized according to information such as odor concentration, specifically, the corresponding deodorization care plan is determined according to the current odor concentration of the clothes, the residual duration of the odor, and the type of clothing material. However, the related art ignores the impact of the odor type on the deodorization effect, and tends to adjust the steam volume and the operating rhythm of the clothing treatment drum, resulting in incomplete odor removal.

[0065] In order to solve the above technical problems, an embodiment of the present application provides a clothes processing device, the clothes processing device comprising:

[0066] case;

[0067] A clothes processing drum is arranged in the housing, and an installation space is formed between the housing and the clothes processing drum;

[0068] An ozone generator is arranged in the installation space, and an ozone outlet of the ozone generator is connected to the clothes processing drum;

[0069] A foam generating device is arranged in the installation space, a foam outlet of the foam generating device is connected to the clothes processing drum, and the foam generating device can generate ozone foam by using the ozone generated by the ozone generating device;

[0070] A steam generating device is arranged in the installation space, and a steam outlet of the steam generating device is connected to the clothes processing drum;

[0071] A control device, the control device being configured to control an ozone deodorization mode according to the type of odor of the clothes in the clothes treatment drum;

[0072] Among them: ozone deodorization methods include single ozone gas deodorization, ozone gas and steam combined deodorization and ozone foam deodorization.

[0073] The clothes treatment device of this embodiment can control the ozone deodorization mode according to the type of odor of the clothes, and can formulate different ozone deodorization strategies for different types of odors to improve the odor removal effect. In addition, the use of ozone deodorization can also avoid increasing the steam volume and the temperature in the drum to improve the odor removal effect, thereby reducing the deodorization energy consumption.

[0074] Furthermore, this embodiment also combines the odor type with the clothing properties to control the deodorization parameters, which can achieve the complete removal of odors from clothing with high adsorption capacity for odor molecules and clothing with complex shapes, and prevent the occurrence of residual odors.

[0075] The technical solution of this embodiment is described in detail below in conjunction with the accompanying drawings. The following embodiments and examples can be combined with each other if there is no conflict.

[0076] According to an exemplary embodiment of the present application, this embodiment proposes a clothing processing device, which can be a washing machine, a dryer or a washer-dryer with a clothing care function. The structural type of the clothing processing device can be a pulsator-type clothing processing device or a drum-type clothing processing device.

[0077] like Figure 1 and Figure 2As shown, the clothing treatment device includes a housing 1, a clothing treatment drum 2, an ozone generator, a foam generator 7 and a steam generator. The clothing treatment drum 2 is arranged in the housing 1, and an installation space is formed between the housing 1 and the clothing treatment drum 2. The ozone generator is arranged in the installation space, and the ozone outlet of the ozone generator is communicated with the clothing treatment drum 2. The foam generator 7 is arranged in the installation space, and the foam outlet 76 of the foam generator 7 is communicated with the clothing treatment drum 2. The foam generator 7 can generate ozone foam using the ozone generated by the ozone generator. The steam generator is arranged in the installation space, and the steam outlet of the steam generator is communicated with the clothing treatment drum 2.

[0078] Specifically, refer to Figure 1 and Figure 2 The clothing treatment device of the present invention comprises an ozone generator 5 and an air pump 4. The ozone generator 5 and the air pump 4 are both installed at the bottom of the housing 1, and can be optionally installed at the left position of the bottom of the housing 1. The ozone generator 5 and the air pump 4 can be an independently separated split structure or an integral structure integrated in a sealed box. The ozone generator 5 is connected to the air pump 4. The ozone generator 5 can be installed in front of the air pump 4 or behind the air pump 4. The ozone generator 5 can be a ceramic sheet ozone generator 5, a tubular ozone generator 5 or an ultraviolet ozone generator 5. Exemplarily, the ozone generator 5 is a ceramic sheet ozone generator 5. The ozone generator 5 comprises a generating sheet and a high-voltage power supply. The high-voltage power supply outputs high voltage electricity to the generating sheet. The generating sheet generates a high-voltage corona discharge to ionize the oxygen-containing air flowing through the generating sheet and recombine to generate ozone. The ozone generator has an ozone outlet, and the ozone outlet is connected to the clothing treatment barrel 2.

[0079] The foam generating device 7 is arranged on the upper part of the clothes processing device, referring to Figure 3The foam generating device 7 comprises a containing box 73 and a foaming component 71. The containing box 73 is provided with a containing chamber 731. The containing box 73 comprises a liquid inlet 74, a water inlet 75 and a foam outlet 76. The liquid inlet 74 is connected to a foaming agent storage box (not shown in the figure). The foaming agent storage box stores liquid containing foaming active substances. A delivery pump (not shown in the figure) is provided in the passage between the liquid inlet 74 and the foaming agent storage box. The water inlet 75 is connected to the water inlet pipeline of the clothing processing device. The water in the water inlet pipeline can enter the containing chamber 731 from the water inlet 75 to dilute the liquid containing foaming active substances in the containing chamber 731. The foam outlet 76 is connected to the foam inlet 9 located at the door seal 3 through the foam outlet pipe 8. The foaming component 71 comprises a foaming net 711. The foaming component 71 is also provided with an air inlet 72 at a position opposite to the foaming net 711. The ozone outlet of the ozone generator 5 is connected to the air inlet 72 through the air inlet hose 6. When it is necessary to generate ozone foam, the delivery pump sucks liquid from the foaming agent storage box and then injects liquid into the receiving box 73. The ozone gas passes through the foaming net 711 component and reacts with the liquid in the receiving box 73 to generate ozone foam. The generated foam enters the clothing treatment tub 2 through the bubble outlet pipe 8 to remove odor from the clothes. When it is not necessary to generate ozone foam, it is not necessary to inject liquid into the receiving box 73. The ozone gas directly passes through the foam generating device 7 and enters the clothing treatment tub 2 through the bubble outlet pipe 8 to remove odor from the clothes.

[0080] The clothing processing equipment of this embodiment also includes a control device (not shown in the figure), which is configured to control the deodorization mode according to the type of odor of the clothing in the clothing processing drum 2, wherein: the ozone deodorization mode includes single ozone gas deodorization, ozone gas and steam combined deodorization and ozone foam deodorization.

[0081] Since ozone has high oxidizing properties, it can decompose odorous organic molecules into water and carbon dioxide through its oxidizing properties for deodorization, thereby avoiding the need to increase the steam volume and the temperature in the drum to improve the odor removal effect and reduce the energy consumption for deodorization. In addition, considering that different types of odors have different levels of difficulty in removing odors, if the same ozone deodorization method is used for all odors, it may result in that the odors that are difficult to remove cannot be completely removed, and secondary odors are likely to occur. Therefore, this embodiment combines the ozone deodorization method with the odor type, and adopts different ozone deodorization methods for different odor types.

[0082] For odor types that are relatively easy to remove, only ozone gas can be used for deodorization; for odor types that are difficult to remove, ozone foam can be used for deodorization, and foam can be used to promote ozone solvent to achieve the effect of removing dirt and dust; for odor types that are generally difficult to remove, a deodorization method combining ozone gas and steam can be used, and steam can be used to improve the uniform distribution of ozone in the clothing treatment drum 2, and steam also has a certain deodorization ability, which can reduce steam energy consumption while ensuring the odor removal effect. The odor type can be directly selected by the user through the control panel of the clothing treatment device, or detected by the odor sensor.

[0083] In an optional implementation of an embodiment of the present application, the control device is also configured to control the deodorization parameters of the ozone deodorization method according to the type of odor and the properties of the clothing; the clothing properties include the material of the clothing and the shape of the clothing, and the deodorization parameters include at least the ozone concentration and the duration of the ozone action.

[0084] Since different clothing materials have different adsorption capacities for odor molecules, the stronger the odor adsorption capacity of clothing materials, the more difficult it is to remove odor. At the same time, the more complex the shape of clothing, the more difficult it is to remove local odor molecules. This embodiment controls the deodorization parameters by combining the odor type with the clothing properties to ensure that a good odor removal effect can be achieved for clothing of different materials and different shapes.

[0085] In an optional implementation of an embodiment of the present application, the clothing processing device also includes a clothing image acquisition device, which is used to acquire clothing images. The control device is also configured to determine clothing attributes based on clothing images. The image acquisition device is, for example, a camera device, which can be arranged at the front panel of the housing 1. When the user puts in the clothing, he can take a photo of the clothing in front of the camera device, and the camera device transmits the taken photo to the control device, which analyzes and processes the photo to determine the clothing attributes. In other achievable methods, the clothing attributes can be determined based on the clothing material and clothing style selected by the user through the control panel.

[0086] According to an exemplary embodiment of the present application, this embodiment provides an ozone deodorization method for a clothes processing device, referring to Figure 4 The ozone deodorization method includes the following steps:

[0087] S41 , determining a target ozone deodorization method according to the type of odor of the clothes in the clothes processing drum 2 .

[0088] Specifically, before entering the deodorization program, the clothes treatment device first determines the type of odor of the clothes in the clothes treatment drum 2. There are multiple ways to determine the type of odor. One way to determine the type of odor is that there is an odor type selection item in the control panel of the clothes treatment device, and the type of odor can be determined according to the result selected by the user through the control panel. Another way to determine the type of odor is to detect it according to the odor sensor set in the clothes treatment drum 2. After the odor sensor detects the odor in the clothes treatment drum 2, it compares it with the odor database stored in the control device of the clothes treatment device, and the type of odor can be determined according to the comparison result.

[0089] After determining the type of odor, the target ozone deodorization method can be determined based on the odor type. Ozone deodorization methods include single ozone gas deodorization, ozone gas and steam combined deodorization, and ozone foam deodorization.

[0090] In one example, there is a preset correspondence between the odor type and the ozone deodorization method; wherein: the ozone deodorization method corresponding to the odor type with the least difficulty in odor removal is single ozone gas deodorization, and the ozone deodorization method corresponding to the odor type with the greatest difficulty in odor removal is ozone foam deodorization. Determining a target ozone deodorization method according to the odor type of the clothes in the clothes treatment drum 2 includes: determining the target ozone deodorization method according to the preset correspondence.

[0091] For example, the difficulty of removing common odors in daily life can be roughly ranked from difficult to easy as raw food odor > musty odor > smoke odor > hot pot odor > alcohol odor > sweat odor. If the odor type is sweat odor, choose ozone gas alone for deodorization; if the odor type is alcohol odor, hot pot odor, smoke odor, etc., choose ozone and steam combined for deodorization; if the odor type is raw food odor, musty odor, etc., choose ozone foam for deodorization and cleaning.

[0092] In a specific example, the odor types include the first odor, the second odor, and the third odor, which are difficult to remove in ascending order. The ozone deodorization method corresponding to the first odor is ozone gas deodorization alone, the ozone deodorization method corresponding to the second odor is a combination of ozone gas and steam deodorization, and the ozone deodorization method corresponding to the third odor is ozone foam deodorization. The first odor is, for example, sweat, the second odor is, for example, wine, hot pot, and cigarettes, and the third odor is, for example, raw food odor, moldy odor, etc.

[0093] S42, controlling the clothes processing equipment to run a deodorization program according to the determined target ozone deodorization method.

[0094] Specifically, after determining the target ozone deodorization mode, the deodorization program is entered. If the target ozone deodorization mode is single ozone gas deodorization, the ozone generator is controlled to start to generate ozone. If the target ozone deodorization mode is ozone gas and steam combined deodorization, both the ozone generator and the steam generator are controlled to start. If the target ozone deodorization mode is ozone foam deodorization, the ozone generator is controlled and liquid is added to the bubble generating device. After the ozone passes through the foaming part 71 of the bubble generating device, it reacts with the liquid in the containing box 73 to generate ozone foam, and the generated ozone foam enters the clothing treatment drum 2. In other achievable methods, three different ozone deodorization methods can also be achieved by an ozone generator, a foam generating device 7 and a steam generating device externally connected to the clothing treatment equipment. In the deodorization program, the clothing treatment drum 2 can be controlled to rotate to improve the uniformity of ozone dispersion in the drum, and a circulating airflow can be further introduced into the drum to further deodorize the clothes evenly.

[0095] Furthermore, in the case where there are multiple types of odors on clothes, the target ozone deodorization method is determined according to the odor type of the clothes in the clothing processing drum 2, including: determining the odor type that is most difficult to remove among the multiple odor types; using the ozone deodorization method corresponding to the odor type that is most difficult to remove among the multiple odor types as the target ozone deodorization method, thereby ensuring the removal effect of all types of odors.

[0096] In an optional implementation of an embodiment of the present application, after determining the ozone deodorization method and before executing the deodorization program, the deodorization parameters are also controlled according to the type of odor and clothing attributes; clothing attributes include clothing material and clothing shape, and the deodorization parameters include at least ozone concentration and ozone action duration.

[0097] Specifically, the present embodiment also combines the odor type with the clothing properties to control the deodorization parameters. Specifically, the initial deodorization parameters can be determined first according to the odor type. Among the various odor types corresponding to different ozone deodorization methods, the odor type with greater difficulty in odor removal has a higher ozone concentration in the initial deodorization parameters and a longer ozone action time; and / or, among the various odor types corresponding to the same ozone deodorization method, the odor type with greater difficulty in odor removal has a larger parameter value of the initial deodorization parameters. For example, if the odor is smoke, hot pot, wine, etc., the initial ozone concentration and ozone action time of the smoke can be used as a reference. If the odor is hot pot or wine, the initial ozone concentration or ozone action time can be appropriately reduced; if the odor is raw food odor, moldy, etc., the initial ozone concentration and ozone action time of raw meat odor can be used as a reference. If the odor is moldy, the initial foam ozone concentration or ozone action time can be appropriately reduced.

[0098] After determining the initial deodorization parameters, the initial deodorization parameters are adjusted according to the clothing properties to determine the target deodorization parameters. Finally, the clothing treatment device is controlled to operate according to the target deodorization parameters.

[0099] Specifically, there are multiple ways to determine the attributes of clothing, one of which is to determine based on clothing information selected by the user through the control panel, and another is to determine based on clothing image information captured by an image acquisition device disposed on the front panel of the clothing treatment drum 2. The higher the adsorption capacity of clothing materials for odor molecules, the higher the ozone concentration in the deodorization parameters and the longer the ozone action time; and / or, the more complex the clothing shape, the higher the ozone concentration in the deodorization parameters and the longer the ozone action time.

[0100] Clothing materials include wool, cotton, linen, chemical fiber, etc. The adsorption of odor molecules is ranked from large to small as follows: wool material>cotton and linen material≈chemical fiber. The ozone concentration and action time of cotton and linen materials are used as a reference. If the material is wool, the ozone concentration or action time should be appropriately increased. If the material is chemical fiber, the ozone concentration or action time should be appropriately reduced. In addition, the overall shape of the clothing has a certain influence on the local removal of odor molecules. The more complex the shape, the more difficult it is to remove local odor molecules. For example, hooded sweatshirts or jackets and clothing with additional local shapes will increase the difficulty of removing odor molecules. When the clothing has these complex shapes, the ozone concentration or action time should be appropriately increased to increase the uniformity of deodorization and avoid incomplete local deodorization.

[0101] In the deodorization method that combines ozone and steam, the deodorization parameters also include the steam action time, and the more susceptible the clothing material is to the steam, the shorter the steam action time in the deodorization parameters. This is because high-temperature steam has different effects on clothing made of different materials. For example, high-temperature steam has little effect on cotton, chemical fibers, etc., but for fabrics such as wool and silk that are prone to shrinkage, deformation, and high-temperature damage, the steam action time of wool is shorter than that of cotton and chemical fibers to reduce the damage of high-temperature steam to wool. The effects of high-temperature steam on materials such as cotton and chemical fibers are similar, so the steam action time of cotton and chemical fibers can be set to the same.

[0102] The ozone concentration in this embodiment refers to the content of ozone per unit volume. An increase in ozone concentration means an increase in the content of ozone per unit volume. When ozone gas is used for deodorization, the ozone concentration in the clothing treatment drum 2 can be directly determined by an ozone detector or a test paper. When ozone foam deodorization is used for deodorization, the ozone concentration in the clothing treatment drum 2 can be determined by an ozone detector or a test paper after the foam in the drum is defoamed into liquid to release ozone.

[0103] Furthermore, in the case where there are multiple types of clothing odors, the ozone deodorization mode is first controlled according to the odor type that is most difficult to remove among the multiple odor types, and then the deodorization parameters are controlled according to the combination of the odor type that is most difficult to remove and the clothing attributes. Furthermore, the parameter value of the deodorization parameter can be further increased based on the deodorization parameter determined according to the combination of the odor type that is most difficult to remove and the clothing attributes, so as to further improve the removal effect of all odor types in clothing.

[0104] According to an exemplary embodiment of the present application, this embodiment provides an ozone deodorization method, which is applied to the clothes processing device of the above embodiment, and the ozone deodorization method includes:

[0105] Determine the target ozone deodorization mode according to the odor type of the clothes in the clothes treatment drum 2;

[0106] Controlling the clothes treatment equipment to run a deodorization program according to a determined target ozone deodorization method;

[0107] Ozone deodorization methods include single ozone gas deodorization, ozone gas and steam combined deodorization, and ozone foam deodorization.

[0108] In an optional implementation of the embodiment of the present application, after determining the ozone deodorization mode and before executing the deodorization program, the deodorization parameters are also controlled according to the odor type and clothing properties;

[0109] Clothing attributes include clothing material and clothing style, and deodorization parameters include at least ozone concentration and ozone action duration.

[0110] The specific operation of the ozone deodorization method of the above embodiment has been described in detail above and will not be repeated here.

[0111] The ozone deodorization method of this embodiment is described in detail below with reference to specific examples.

[0112] Reference Figure 5, before putting in the clothes, the user first presses the power button of the clothes processing device to put the clothes image acquisition device in working state, and then takes the clothes to the clothes image acquisition device to take pictures. The clothes image acquisition device takes pictures of the clothes and records the clothes conditions (process S1). The clothes conditions include clothes material and clothes shape. This process can also be replaced by the user to select and input the clothes conditions. The setting position of the clothes image acquisition device is not specifically limited, and can be set on the front panel of the housing 1 of the clothes processing device. After the clothes image is taken, the user puts the clothes into the clothes processing drum 2 (process S2). The user can choose to select the deodorization program on the operation panel according to the odor of the clothes, and select the odor type (process S3). Specifically, the odor type selection items are set under the deodorization program. The odor type selection items include sweat, mold, smoke, hot pot, wine, raw food odor, etc. After the user selects the deodorization program, the odor type can be selected according to the actual odor of the clothes (S41~S46). The odor type can be selected in one or more combinations. After the user selects the odor type, the clothes treating device will match the ozone deodorization mode and deodorization parameters according to the odor type (process S5).

[0113] The following is a detailed introduction to the deodorization process for different types of odors.

[0114] like Figure 6 As shown in the flowchart, when the odor type is wine (process S41), a combination of ozone gas and steam is selected for deodorization. Then the clothing material is determined according to the previously entered clothing conditions (process S5). If the clothing material is cotton, the optional steam action time is t11, the ozone concentration is C11, and the ozone action time is T11 (process S61); if the clothing material is wool, the optional steam action time is t12, the ozone concentration is C12, and the ozone action time is T12 (process S62); if the clothing material is chemical fiber, the optional steam action time is t13, the ozone concentration is C13, and the ozone action time is T13 (process S63). The relationship between the steam action time is t13>t11>t12, the ozone concentration is C12>C11>C13, and T12>T11=T13.

[0115] Then, according to the previously entered clothing conditions, determine whether the clothing has a complex shape (process S7). If there is a complex shape, appropriately increase the ozone concentration or increase the ozone action time (process S8), without increasing the steam action time or energy consumption. Specifically, if the clothing is made of cotton, the ozone concentration is C11' and the ozone action time is T11'; if the clothing is made of wool, the ozone concentration is C12' and the ozone action time is T12'; if the clothing is made of chemical fiber, the ozone concentration is C13' and the ozone action time is T13'. Then start the deodorization program. If there is no complex shape, start the deodorization program directly.

[0116] For example, when the load is 1kg, the steam action time t11 can be selected as 6min-9min, preferably 7min; the ozone concentration C11 can be selected as 5ppm-9ppm, preferably 6ppm, and the ozone action time T11 can be selected as 5min-12min, preferably 6min; the steam action time t12 can be selected as 3min-7min, preferably 5min; the ozone concentration C12 can be selected as 7ppm-12ppm, preferably 8ppm, and the ozone action time T12 can be selected as 6min-16min, preferably 7min; the steam action time t13 can be selected as 6min-9min, preferably 7min; the ozone concentration C13 can be selected as It is 4ppm-8ppm, preferably 5ppm, and the ozone action time T13 can be selected as 5min-12min, preferably 6min; the ozone concentration C11' can be selected as 6ppm-10ppm, preferably 7ppm, and the ozone action time T11' can be selected as 6min-13min, preferably 7min; the ozone concentration C12' can be selected as 8ppm-13ppm, preferably 9ppm, and the ozone action time T12' can be selected as 7min-17min, preferably 8min; the ozone concentration C13' can be selected as 5-9ppm, preferably 6ppm, and the ozone action time T13' can be selected as 6min-13min, preferably 7min.

[0117] like Figure 7 As shown in the flowchart, when the odor type is hot pot smell (process S42), the combination of ozone gas and steam is selected for deodorization. Then the clothing material is determined according to the previously entered clothing situation (process S5). If the clothing material is cotton, the optional steam action time is t21, the ozone concentration is C21, and the ozone action time is T21 (process S64); if the clothing material is wool, the optional steam action time is t22, the ozone concentration is C22, and the ozone action time is T22 (process S65); if the clothing material is chemical fiber, the optional steam action time is t23, the ozone concentration is C23, and the ozone action time is T23 (process S66). The relationship between the steam action time is t23>t21>t22, the ozone concentration is C22>C21>C23, and T22>T21=T23.

[0118] Then, according to the previously entered clothing conditions, determine whether the clothing has a complex shape (process S7). If there is a complex shape, appropriately increase the ozone concentration or increase the ozone action time (process S8), specifically: if the clothing material is cotton, the ozone concentration is C21', and the ozone action time is T21'; if the clothing material is wool, the ozone concentration is C22', and the ozone action time is T22'; if the clothing material is chemical fiber, the ozone concentration is C23', and the ozone action time is T23'. Then start the deodorization program. If there is no complex shape, start the deodorization program directly.

[0119] For example, when the load is 1kg, the steam action time t21 can be selected as 7min-9min, preferably 8min; the ozone concentration C21 can be selected as 6ppm-10ppm, preferably 8ppm, and the ozone action time T21 can be selected as 5min-14min, preferably 7min; the steam action time t22 can be selected as 4min-7min, preferably 6min; the ozone concentration C22 can be selected as 9ppm-14ppm, preferably 10ppm, and the ozone action time T22 can be selected as 8min-18min, preferably 9min; the steam action time t23 can be selected as 7min-9min, preferably 8min; the ozone concentration C23 can be selected as 4p pm-9ppm, preferably 7ppm, the ozone action time T23 can be selected as 5min-14min, preferably 7min; the ozone concentration C21' can be selected as 7ppm-11ppm, preferably 9ppm, and the ozone action time T21' can be selected as 6min-15min, preferably 8min; the ozone concentration C22' can be selected as 10ppm-15ppm, preferably 11ppm, and the ozone action time T22' can be selected as 9min-19min, preferably 10min; the ozone concentration C23' can be selected as 5ppm-10ppm, preferably 8ppm, and the ozone action time T23' can be selected as 6min-15min, preferably 8min.

[0120] like Figure 8As shown in the flowchart, when the odor type is smoke (process S43), a combination of ozone gas and steam is selected for deodorization. Then the clothing material is determined according to the previously entered clothing conditions (process S5). If the clothing material is cotton, the optional steam action time is t31, the ozone concentration is C31, and the ozone action time is T31 (process S67); if the clothing material is wool, the optional steam action time is t32, the ozone concentration is C32, and the ozone action time is T32 (process S68); if the clothing material is chemical fiber, the optional steam action time is t33, the ozone concentration is C33, and the ozone action time is T33 (process S69). The relationship between the steam action time is t33>t31>t32, the ozone concentration is C32>C31>C33, and T32>T31=T33.

[0121] Then, according to the previously entered clothing conditions, determine whether the clothing has a complex shape (process S7). If there is a complex shape, appropriately increase the ozone concentration or increase the ozone action time (process S8), specifically: if the clothing material is cotton, the ozone concentration is C31', and the ozone action time is T31'; if the clothing material is wool, the ozone concentration is C32', and the ozone action time is T32'; if the clothing material is chemical fiber, the ozone concentration is C33', and the ozone action time is T33'. Then start the deodorization program. If there is no complex shape, start the deodorization program directly.

[0122] Exemplarily, when the load is 1kg, the steam action time t31 can be selected as 7min-9min, preferably 8min; the ozone concentration C31 can be selected as 8ppm-12ppm, preferably 10ppm, and the ozone action time T31 can be selected as 6min-15min, preferably 8min; the steam action time t32 can be selected as 4min-7min, preferably 6min; the ozone concentration C32 can be selected as 10ppm-15ppm, preferably 12ppm, and the ozone action time T32 can be selected as 8min-20min, preferably 10min; the steam action time t33 can be selected as 7min-9min, preferably 8min; the ozone concentration C33 can be selected as 5ppm-10ppm, preferably 8ppm, and the ozone action time T33 can be selected as 6min-15min, preferably 8min. The ozone concentration C31' can be selected as 9ppm-14ppm, preferably 11ppm, and the ozone action time T31' can be selected as 7ppm-17min, preferably 9min. C32' may be 11ppm-16ppm, preferably 13ppm, T32' may be 9min-22min, preferably 11min; C33' may be 6ppm-11ppm, preferably 9ppm, T33' may be 7min-17min, preferably 9min.

[0123] like Fig. 9 In the flowchart shown, when the odor type is musty (process S44), ozone foam is selected for deodorization, and then the clothing material is determined according to the previously entered clothing conditions (process S5). If the clothing material is cotton, the optional ozone concentration is C41, and the ozone foam action time is T41 (process S610); if the clothing material is wool, the optional ozone concentration is C42, and the ozone foam action time is T42 (process S611); if the clothing material is chemical fiber, the optional ozone concentration is C43, and the ozone foam action time is T43 (process S612). Among them, C42>C41>C43, T42>T41=T43.

[0124] Then, according to the previously entered clothing conditions, determine whether the clothing has a complex shape (process S7). If there is a complex shape, appropriately increase the ozone concentration or increase the ozone action time (process S8), specifically: if the clothing material is cotton, the ozone concentration is C41', and the ozone foam action time is T41'; if the clothing material is wool, the ozone concentration is C42', and the ozone foam action time is T42'; if the clothing material is chemical fiber, the ozone concentration is C43', and the ozone foam action time is T43'. Then start the deodorization program. If there is no complex shape, start the deodorization program directly.

[0125] For example, when the load is 1kg, the ozone concentration C41 can be selected from 9ppm-13ppm, preferably 10ppm-11ppm, and the ozone foam action time T41 can be selected from 7min-13min, preferably 9min; the ozone concentration C42 can be selected from 10ppm-15ppm, preferably 12ppm-13ppm, and the ozone foam action time T42 can be selected from 9min-15min, preferably 11min; the ozone concentration C43 can be selected from 7ppm-11ppm, preferably 8ppm-9ppm, and the ozone foam action time 43 can be selected from 7min-13min, preferably 9mi n; the ozone concentration C41' can be selected as 10ppm-14ppm, preferably 11ppm-12ppm, and the ozone foam action time T41' can be selected as 7min-13min, preferably 9min; the ozone concentration C42' can be selected as 11ppm-16ppm, preferably 13ppm-14ppm, and the ozone foam action time T42' can be selected as 9min-15min, preferably 11min; the ozone concentration C43' can be selected as 8ppm-12ppm, preferably 9ppm-10ppm, and the ozone foam action time T43' can be selected as 7min-13min, preferably 9min.

[0126] like Fig.10As shown in the flowchart, when the odor type is raw food odor (process S45), ozone foam is selected for deodorization. Then the clothing material is determined according to the previously entered clothing situation (process S5). If the clothing material is cotton, the optional ozone concentration is C51, and the ozone foam action time is T51 (process S613); if the clothing material is wool, the optional ozone concentration is C52, and the ozone foam action time is T52 (process S614); if the clothing material is chemical fiber, the optional ozone concentration is C53, and the ozone foam action time is T53 (process S615). Among them, C52>C51>C53, T52>T51=T53.

[0127] Then, according to the previously entered clothing conditions, determine whether the clothing has a complex shape (process S7). If there is a complex shape, appropriately increase the ozone concentration or increase the ozone action time (process S8). Specifically, if the clothing is made of cotton, the ozone concentration is C51', and the ozone foam action time is T51'; if the clothing is made of wool, the ozone concentration is C52', and the ozone foam action time is T52'; if the clothing is made of chemical fiber, the ozone concentration is C53', and the ozone foam action time is T53'; then start the deodorization program.

[0128] For example, at a load of 1kg, the ozone concentration C51 can be selected as 10ppm-15ppm, preferably 11ppm-12ppm, and the duration of ozone foaming is T51, which can be selected as 8min-15min, preferably 11min; C52 can be selected as 12ppm-17ppm, preferably 13ppm-14ppm, and T52 can be selected as 10min-17min, preferably 13min; C53 can be selected as 8ppm-13ppm, preferably 9ppm-10ppm, and T53 can be selected as 8min-15min, preferably 11min. The ozone concentration C51' can be selected as 11ppm-16ppm, preferably 12ppm-13ppm, and the duration of ozone foaming is T51', which can be selected as 8min-15min, preferably 11min; C52' can be selected as 13ppm-18ppm, preferably

[0129] 14ppm-15ppm, T52' can be selected as 10min-17min, preferably 13min; C53' can be selected as 9ppm-14ppm, preferably 10ppm-11ppm, T53' can be selected as 8min-15min, preferably 11min.

[0130] like Fig.11As shown in the flowchart, when the odor type is sweat (process S46), single ozone is used for deodorization. Then the material of the clothing is determined according to the previously entered clothing conditions (process S5). If the clothing material is cotton, the ozone concentration C61 can be selected, and the ozone action time is T61 (process S616); if the clothing material is wool, the ozone concentration C62 can be selected, and the ozone action time is T62 (process S617); if the clothing material is chemical fiber, the steam action time t63, the ozone concentration C63, and the ozone action time T63 (process S618). C62>C61>C63, T62>T61=T63.

[0131] Then, according to the previously entered clothing conditions, determine whether the clothing has a complex shape (process S7). If there is a complex shape, appropriately increase the ozone concentration or increase the ozone action time (process S8). If the clothing material is cotton, the ozone concentration is C61' and the ozone action time is T61'; if the clothing material is wool, the ozone concentration is C62' and the ozone action time is T62'; if the clothing material is chemical fiber, the ozone concentration is C63' and the ozone action time is T63'.

[0132] For example, at a load of 1 kg, the ozone concentration C61 can be selected from 6ppm-10ppm, preferably 8ppm; the ozone action time T61 can be selected from 8min-15min, preferably 10min; the ozone concentration C62 can be selected from 8ppm-12ppm, preferably 10ppm; the ozone action time T62 can be selected from 10min-17min, preferably 12min; the ozone concentration C63 can be selected from 5ppm-9ppm, preferably 7ppm; the ozone action time T63 can be selected from 8min-15min, preferably 10m in; ozone concentration C61' can be selected from 7ppm-11ppm, preferably 9ppm; ozone action time T61' can be selected from 9min-16min, preferably 11min; ozone concentration C62' can be selected from 9ppm-13ppm, preferably 11ppm; ozone action time T62' can be selected from 11min-18min, preferably 13min; ozone concentration C63' can be selected from 6ppm-10ppm, preferably 8ppm; ozone action time T63' can be selected from 9min-16min, preferably 11min.

[0133] In general, this embodiment selects different ozone deodorization methods and deodorization parameters according to the different types of clothing odors, and optimizes the deodorization parameters in combination with clothing properties, so that different types of odors can be completely removed. At the same time, there is no need to increase the steam action time and the temperature in the drum to improve the odor removal effect, which effectively saves energy consumption.

[0134] An embodiment of the present application also provides a control device, including a memory and a processor, wherein the memory stores the aforementioned ozone deodorization method, and the processor is used to adopt the aforementioned ozone deodorization method when performing ozone deodorization.

[0135] Specifically, Fig.12 As shown, the control device includes a processor 100, at least one communication bus 200, a user interface 300, at least one external communication interface 400 and a memory 500. The communication bus 200 is configured to realize connection and communication between these components. The user interface 300 may include a display screen, and the external communication interface 400 may include a standard wired interface and a wireless interface. The memory 500 stores an ozone deodorization method. The processor 100 is used to adopt the above method when executing the ozone deodorization method stored in the memory 500.

[0136] In the above-mentioned embodiments of the present application, the description of each embodiment has its own emphasis. For parts that are not described in detail in a certain embodiment, please refer to the relevant description of other embodiments. The steps shown in the relevant flow chart can be executed in a computer system such as a set of computer executable instructions, and although the logical order is shown in the flow chart, in some cases, the steps shown or described can be executed in an order different from that here. In other words, the order of steps described in the foregoing embodiments is only an example, and it is also within the scope of protection of the embodiments of the present application to reasonably adjust the order of steps based on the content of the embodiments of the present application.

[0137] The sequence of serial numbers or introduction of the embodiments of the present application is for description only and does not represent the superiority or inferiority of the embodiments.

[0138] In the several embodiments provided in this application, it should be understood that the disclosed technical content can be implemented in other ways. Among them, the device embodiments described above are only schematic. For example, the division of the units can be a logical function division. There may be other division methods in actual implementation. For example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be through some interfaces, indirect coupling or communication connection of units or modules, which can be electrical or other forms.

[0139] The units described as separate components may or may not be physically separated, and the components shown as units may or may not be physical units, that is, they may be located in one place or distributed on multiple units. Some or all of the units may be selected according to actual needs to achieve the purpose of the present embodiment.

[0140] In addition, each functional unit in each embodiment of the present application may be integrated into one processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit. The above-mentioned integrated unit may be implemented in the form of hardware or in the form of software functional units.

[0141] In the above embodiments, it can be implemented in whole or in part by software, hardware, firmware or any combination thereof. When implemented using software, it can be implemented in whole or in part in the form of a computer program product. The computer program product includes one or more computer instructions. When the computer instructions are loaded and executed on a computer, the process or function described in the embodiment of the present application is generated in whole or in part. The computer can be a general-purpose computer, a special-purpose computer, a computer network or other programmable device. The computer instructions can be stored in a computer-readable storage medium, or transmitted from one computer-readable storage medium to another computer-readable storage medium. For example, the computer instructions can be transmitted from a website site, computer, server or data center by wired (e.g., coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) mode to another website site, computer, server or data center. The computer-readable storage medium can be any available medium that a computer can access, or a data storage device such as a server or data center that includes one or more available media integrated. The available medium may be a magnetic medium (e.g., a floppy disk, a hard disk, a magnetic tape), an optical medium (e.g., a digital versatile disc (DVD)), or a semiconductor medium (e.g., a solid state disk (SSD)). It is worth noting that the computer-readable storage medium mentioned in the embodiment of the present application may be a non-volatile storage medium, in other words, a non-transient storage medium.

[0142] It should be noted that the information (including but not limited to user device information, user personal information, etc.), data (including but not limited to data for analysis, stored data, displayed data, etc.) and signals involved in the embodiments of this application are all authorized by the user or fully authorized by all parties, and the collection, use and processing of relevant data must comply with the relevant laws, regulations and standards of the relevant countries and regions. For example, the scene data of the current frame in the three-dimensional virtual scene, the device information of the client, and the scene interaction information involved in the embodiments of this application are all obtained with full authorization.

[0143] The above is only a preferred embodiment of the present application. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present application. These improvements and modifications should also be regarded as the scope of protection of the present application.

Claims

1. A clothes processing device, characterized in that: The laundry processing device comprises: case; A clothes processing drum, which is arranged in the housing, and an installation space is formed between the housing and the clothes processing drum; An ozone generator, which is arranged in the installation space, and has an ozone outlet; a foam generating device, which is arranged in the installation space, the foam generating device having an air inlet and a foam outlet, the air inlet is communicated with the ozone outlet, the foam outlet is communicated with the laundry treatment drum, and the foam generating device can generate ozone foam using the ozone generated by the ozone generating device; A steam generating device is arranged in the installation space, and a steam outlet of the steam generating device is communicated with the clothes processing drum; A control device, the control device being configured to control an ozone deodorization mode according to the type of odor of the clothes in the clothes treatment drum; Among them: the ozone deodorization methods include single ozone gas deodorization, ozone gas and steam combined deodorization and ozone foam deodorization.

2. The clothes processing device according to claim 1, characterized in that: The control device is further configured to control the deodorization parameters of the ozone deodorization mode according to the odor type and clothing properties; The clothing attributes include clothing material and clothing style, and the deodorization parameters include ozone concentration and / or ozone action duration.

3. The clothes processing device according to claim 2, characterized in that: The clothing processing device further comprises a clothing image acquisition device, wherein the clothing image acquisition device is used to acquire a clothing image; The control device is further configured to determine the clothing attributes according to the clothing image.

4. An ozone deodorization method for use in clothing processing equipment, characterized in that: The ozone deodorization method comprises: Determine the target ozone deodorization method according to the odor type of the clothes in the clothes treatment drum; Controlling the clothes treatment equipment to run a deodorization program according to the target ozone deodorization mode; The ozone deodorization methods include ozone gas deodorization alone, ozone gas and steam combined deodorization, and ozone foam deodorization.

5. The ozone deodorization method according to claim 4, characterized in that: The odor types and ozone deodorization methods have a preset corresponding relationship; wherein: the ozone deodorization method corresponding to the odor type with the least difficulty in odor removal is single ozone gas deodorization, and the ozone deodorization method corresponding to the odor type with the greatest difficulty in odor removal is ozone foam deodorization; The step of determining a target ozone deodorization method according to the type of odor of the clothes in the clothes treatment drum includes: determining the target ozone deodorization method according to the preset corresponding relationship.

6. The ozone deodorization method according to claim 5, characterized in that: In the case where there are multiple types of odors in the clothes, determining the target ozone deodorization method according to the odor types of the clothes in the clothes treatment drum includes: Determine the odor type that is most difficult to remove among the multiple odor types; The ozone deodorization method corresponding to the odor type that is most difficult to remove among the multiple odor types is used as the target ozone deodorization method.

7. The ozone deodorization method according to claim 4, characterized in that: After determining the ozone deodorization method and before executing the deodorization program, the deodorization parameters are controlled according to the odor type and clothing properties; The clothing attributes include clothing material and clothing style, and the deodorization parameters include at least ozone concentration and ozone action duration.

8. The ozone deodorization method according to claim 7, characterized in that: The control of deodorization parameters according to the odor type and clothing attributes includes: Determine initial deodorization parameters based on odor type; Adjusting the initial deodorization parameters according to the clothing attributes to determine the target deodorization parameters; The clothes treating device is controlled to operate according to the target deodorization parameter.

9. The ozone deodorization method according to claim 8, characterized in that: Determining the initial deodorization parameters according to the odor type includes: Among the various odor types corresponding to different ozone deodorization methods, the more difficult the odor removal is, the higher the ozone concentration in the initial deodorization parameters corresponding to the odor type is, and the longer the ozone action time is; And / or, among the multiple odor types corresponding to the same ozone deodorization method, the odor type that is more difficult to remove has a larger parameter value of the initial deodorization parameter.

10. The ozone deodorization method according to claim 8, characterized in that: The adjusting the initial deodorization parameters according to clothing attributes includes: In the deodorization method combining ozone and steam, the deodorization parameter also includes the steam action time, and the clothing material that is more susceptible to the steam has a shorter steam action time in the deodorization parameter; And / or, the clothing material with stronger adsorption capacity for odor molecules has a higher ozone concentration and a longer ozone action time in the deodorization parameters corresponding to the clothing material; And / or, the more complex the clothing style, the higher the ozone concentration in the deodorization parameters corresponding to the clothing and the longer the ozone action time.

11. An ozone deodorization method, characterized in that: The ozone deodorization method is applied to the clothes processing device according to any one of claims 1 to 3, and the ozone deodorization method comprises: Determine the target ozone deodorization method according to the odor type of the clothes in the clothes treatment drum; Controlling the clothes treatment equipment to run a deodorization program according to the target ozone deodorization mode; The ozone deodorization methods include ozone gas deodorization alone, ozone gas and steam combined deodorization, and ozone foam deodorization.

12. The ozone deodorization method according to claim 11, characterized in that: After determining the ozone deodorization method and before executing the deodorization program, the deodorization parameters are controlled according to the odor type and clothing properties; The clothing attributes include clothing material and clothing style, and the deodorization parameters include ozone concentration and / or ozone action duration.

13. A control device, characterized in that: It includes a memory and a processor, wherein the memory stores the ozone deodorization method described in any one of claims 4 to 10 or the ozone deodorization method described in claim 11 or 12, and the processor is used to adopt the ozone deodorization method described in any one of claims 4 to 10 or the ozone deodorization method described in claim 11 or 12 when performing ozone deodorization.

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