WO2024046232A1 - 一种衣物处理设备 - Google Patents

一种衣物处理设备 Download PDF

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Publication number
WO2024046232A1
WO2024046232A1 PCT/CN2023/114994 CN2023114994W WO2024046232A1 WO 2024046232 A1 WO2024046232 A1 WO 2024046232A1 CN 2023114994 W CN2023114994 W CN 2023114994W WO 2024046232 A1 WO2024046232 A1 WO 2024046232A1
Authority
WO
WIPO (PCT)
Prior art keywords
air inlet
drum
inlet channel
module
laundry treatment
Prior art date
Application number
PCT/CN2023/114994
Other languages
English (en)
French (fr)
Inventor
段传林
黄積佰
杨志敏
刘通
齐杭
全刚
Original Assignee
深圳洛克创新科技有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 深圳洛克创新科技有限公司 filed Critical 深圳洛克创新科技有限公司
Publication of WO2024046232A1 publication Critical patent/WO2024046232A1/zh

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Classifications

    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F25/00Washing machines with receptacles, e.g. perforated, having a rotary movement, e.g. oscillatory movement, the receptacle serving both for washing and for centrifugally separating water from the laundry and having further drying means, e.g. using hot air 
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F58/00Domestic laundry dryers
    • D06F58/20General details of domestic laundry dryers 
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F58/00Domestic laundry dryers
    • D06F58/20General details of domestic laundry dryers 
    • D06F58/24Condensing arrangements
    • DTEXTILES; PAPER
    • D06TREATMENT OF TEXTILES OR THE LIKE; LAUNDERING; FLEXIBLE MATERIALS NOT OTHERWISE PROVIDED FOR
    • D06FLAUNDERING, DRYING, IRONING, PRESSING OR FOLDING TEXTILE ARTICLES
    • D06F58/00Domestic laundry dryers
    • D06F58/20General details of domestic laundry dryers 
    • D06F58/26Heating arrangements, e.g. gas heating equipment
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B40/00Technologies aiming at improving the efficiency of home appliances, e.g. induction cooking or efficient technologies for refrigerators, freezers or dish washers

Definitions

  • the present application relates to the field of household appliances, and specifically to a clothing treatment device.
  • clothing processing equipment with dehumidification function can dehumidify the laundry after washing, and is increasingly favored by consumers.
  • the purpose of this application is to provide a clothes processing device to solve the problem that existing clothes processing devices are difficult to process the lint generated by the clothes in the drum.
  • this application provides a clothes processing equipment, including a drum, a drying module and an air inlet channel;
  • One end of the air inlet channel is connected to the drum, and the other end is connected to the drying module;
  • the drum is provided with an air outlet, the air inlet channel is connected to the air outlet, and a filter is arranged obliquely in the air inlet channel.
  • the filter screen covers the first section of the air inlet channel
  • the first section has a first preset angle with the axis of the air inlet channel.
  • the first preset included angle is greater than or equal to 20 degrees and less than or equal to 90 degrees.
  • the drying module is disposed above the drum, and the air inlet channel is disposed at the rear end of the drum.
  • the air inlet channel includes a vertical channel connected to the drying module and an arc channel connected to the drum.
  • the arc of the arcuate channel is less than or equal to the arc of the drum side.
  • a self-cleaning component is provided at one end of the air inlet channel that communicates with the drying module
  • the self-cleaning component is used to clean the lint adhered to the filter, and the self-cleaning component is used to spray water on the filter.
  • the self-cleaning assembly includes an air inlet channel water pipe, a first nozzle and/or a second nozzle;
  • the air inlet channel water pipe is used to supply water to the first nozzle and/or the second nozzle;
  • the first nozzle and/or the second nozzle are respectively arranged on both sides of the filter screen;
  • the first nozzle and/or the second nozzle are used to spray water to both sides of the filter screen.
  • the drying module includes a circulation fan, a dehumidification module, a regeneration fan, a condensation module and an air outlet channel;
  • the air inlet of the circulating fan is connected to the air outlet of the air inlet channel, and the air outlet of the circulating fan is connected to the air inlet of the moisture absorption area of the dehumidification module;
  • the air outlet of the moisture absorption area of the dehumidification module is connected to the drum through the air outlet channel;
  • the air inlet of the condensation module is connected to the air outlet of the dehumidification area of the dehumidification module, and the air outlet of the condensation module is connected to the air inlet of the regeneration fan;
  • the air outlet of the regeneration fan is connected with the air inlet of the dehumidification area of the dehumidification module.
  • the circulation fan, the regeneration fan and the condensation module are located on one side of the rotation axis of the drum and are arranged in sequence from the rear end to the front end of the drum.
  • a cleaning agent delivery box is further included, and the cleaning agent delivery box is used to provide cleaning liquid to the drum;
  • the detergent delivery box and the condensation module are respectively arranged on both sides of the air outlet channel.
  • the self-cleaning assembly includes a transition portion and an extension portion
  • the conversion part is connected with the water outlet of the air inlet channel water pipe;
  • the extension part extends toward the direction of the filter screen.
  • the extension includes multiple water spray angles
  • the water spray area of the self-cleaning component covers at least part of the width direction of the filter screen.
  • the extension portion is duckbill-shaped, and the width of the extension portion gradually increases in a direction away from the self-cleaning component.
  • the angle between the extension part and the filter screen is greater than 0 degrees and less than or equal to 45 degrees.
  • the self-cleaning assembly further includes an angle adjustment member for adjusting the bending angle of the conversion part.
  • the air inlet of the regeneration fan is connected to the external environment.
  • the air outlet channel is provided at the front end of the drum
  • the air inlet channel extends from the rear end of the drum to the front end of the drum.
  • a housing and a filter box are also included;
  • the surface of the housing is provided with a first opening
  • the air inlet channel is provided with a second opening
  • the filter box is inserted into the air inlet channel through the first opening and the second opening.
  • the drum door of the drum is provided at the front end of the housing
  • the first opening is provided at the front end of the housing.
  • the filter box forms a sealing fit with the air inlet channel after being inserted into the second opening
  • the part of the filter box located in the air inlet channel is provided with a filter screen.
  • Figure 1 is a schematic structural diagram of a clothes treatment device provided by the first embodiment of the present application.
  • Figure 2 is a schematic structural diagram of an air inlet channel of a clothes treatment device provided by a second embodiment of the present application;
  • Figure 3 is a schematic structural diagram of an air inlet channel of a clothes treatment device provided by a third embodiment of the present application.
  • Figure 4 is a schematic structural diagram of an air inlet channel of a clothes treatment device provided by the fourth embodiment of the present application.
  • Figure 5 is a schematic structural diagram of an air inlet channel of a clothes treatment device provided by the fifth embodiment of the present application.
  • Figure 6 is a schematic structural diagram of a self-cleaning nozzle of a laundry treatment equipment provided in the sixth embodiment of the present application.
  • Figure 7 is a schematic structural diagram of a conversion part of a clothes treatment device provided by the seventh embodiment of the present application.
  • Figure 8 is a schematic structural diagram of a clothes treatment device provided by the eighth embodiment of the present application.
  • Figure 9 is a schematic structural diagram of a drying module of a clothes treatment device provided by the ninth embodiment of the present application.
  • Figure 10 is a schematic structural diagram of a clothes treatment device provided by the tenth embodiment of the present application.
  • Figure 11 is a schematic structural diagram of a clothes treatment device provided by the eleventh embodiment of the present application.
  • Figure 12 is a schematic structural diagram of an air inlet channel of a clothes treatment device provided by the twelfth embodiment of the present application.
  • FIG. 13 is a schematic structural diagram of a drying module of a clothes treatment device provided in the thirteenth embodiment of the present application.
  • FIG. 1 is a schematic structural diagram of a clothes treatment device provided in the first embodiment of the present application.
  • a clothes processing device provided by the first embodiment of the present application includes a drum A, a drying module B and an air inlet channel 102 .
  • One end of the air inlet channel 102 is connected to the drum A, and the other end is connected to the drying module B.
  • Drum A is provided with an air outlet 60.
  • the air inlet channel 102 is connected with the air outlet 60, and a filter 103 is provided at an angle in the air inlet channel 102.
  • the water-containing airflow in drum A flows to the drying module B through the air inlet channel 102.
  • the inner drum of drum A is driven by the drum drive motor to rotate around the drum axis. Drying module B is used to dry the wet clothes in the drum after cleaning.
  • Drum A includes an inner drum and an outer drum, or may be an integrated structure.
  • the air outlet 60 is provided on the outer drum, the inner drum is rotated and set inside the outer drum, and the inner drum is provided with water-permeable and air-permeable holes. Made of waterproof and breathable material.
  • the drum is provided with an air outlet 60, which can be provided on the inner cylinder, the outer cylinder, or both the inner and outer cylinders.
  • the air outlet 60 of the inner cylinder is a water-permeable air hole
  • the air outlet 60 of the outer cylinder is a through hole provided on the outer cylinder, and the through hole is connected with the air inlet channel.
  • the clothes processing equipment provided by the embodiment of the present application can filter out the lint produced by the clothes in the drum A by disposing the filter 103 in the air inlet channel 102 connecting the drum A and the drying module B, and prevent the lint from entering the dryer. Module B improves drying stability and safety.
  • the laundry treatment device may be a dryer, a laundry treatment device, or a split washer or dryer.
  • the air inlet channel 102 includes a vertical channel 1021 connected with the drying module B and an arc channel 1022 connected with the drum A.
  • the curvature of the arc-shaped channel 1022 is less than or equal to the curvature of the side of drum A.
  • the filter screen 103 covers the first section of the air inlet channel 102, and the first section has a first preset angle with the axis of the vertical channel 1021 of the air inlet channel 102.
  • the first preset angle is greater than or equal to 20 degrees and less than or equal to 90 degrees.
  • the first included angle may be 30, 35, or 40 degrees.
  • This embodiment provides a clothes treatment equipment by arranging the filter screen 103 to extend obliquely in the air inlet channel 102. On the one hand, it can increase the area of the filter screen 103 to prevent the air flow efficiency from being affected if blockage occurs when the area is small. On the other hand, during the self-cleaning process, if there are unclean areas, it will not have a significant impact on the subsequent air flow efficiency; on the other hand, the difference between the filter 103 and the first circulating air flow in the air inlet channel 102 The flow direction forms a certain angle, for example, the angle is greater than or equal to 20 degrees, which can effectively filter the lint, and at the same time, the lint embedded in the holes of the filter screen 103 can be removed by flushing.
  • FIG 2 is a schematic structural diagram of an air inlet channel of a clothes treatment device provided in the second embodiment of the present application.
  • the end of the air inlet channel 102 of the clothes processing equipment provided in this embodiment that communicates with the drying module B is also provided with a self-cleaning component.
  • the self-cleaning component can clean the dust adhered to the filter screen 103.
  • the lint is automatically cleaned.
  • the self-cleaning assembly is used to spray water onto the filter screen 103 .
  • the self-cleaning assembly includes an air inlet channel water pipe 107 (refer to Figure 6), a first nozzle 104 and a second nozzle 105; the air inlet channel water pipe 107 is used to supply water to the first nozzle 104 and the second nozzle 105; the first nozzle 104 and the second nozzle 105.
  • Two nozzles are respectively provided on both sides of the filter screen 103; the first nozzle 104 and the second nozzle are used to spray water on both sides of the filter screen 103.
  • the clothes processing equipment provided by the embodiment of the present application sprays water from both sides to the filter 103 through the first nozzle 104 and the second nozzle provided on both sides of the filter 103, which helps to improve the cleaning efficiency of the filter 103 and avoid lint. Clogged.
  • the self-cleaning assembly may also include only the first nozzle 104 or the second nozzle 105.
  • the first nozzle 104 or the second nozzle 105 is opened to flush the filtering surface or the filtered surface of the filter 103. The lint attached to it is taken away to complete the self-cleaning of the filter.
  • Fig. 3 is a schematic structural diagram of an air inlet channel of a clothes treatment device provided in the third embodiment of the present application.
  • Figure 4 is a schematic structural diagram of an air inlet channel of a clothes treatment device provided by the fourth embodiment of the present application.
  • a setting for condensing the water-carrying airflow flowing through the air inlet channel 102 is also included.
  • one end of the air inlet channel 102 connected to the drying module B is provided with an air inlet channel water pipe 107 (refer to Figure 6); the air inlet channel water pipe 107 is connected to the water inlet of the condensate water channel, so as to To supply water to the condensation water channel, the air inlet channel water pipe 107 optionally supplies water to the condensation water channel through the condensation nozzle 109 .
  • the end of the air inlet channel 102 connected to the drying module B is also provided with a self-cleaning component; the self-cleaning component includes a self-cleaning nozzle 108; the air inlet channel water pipe 107 is connected to the self-cleaning nozzle 108 to supply water to the self-cleaning nozzle 108; The cleaning nozzle 108 is used to spray water onto the filter screen 103 .
  • the self-cleaning nozzle 108 may include multiple water spray angles. Specifically, it may include multiple water distribution holes, and the water spray angles of each water distribution hole are different.
  • a filter 103 is provided in the air inlet channel 102 . There are multiple filter holes on the surface of the filter screen 103.
  • the diameters of the filter holes are all the same or gradually increase or decrease in the direction away from the self-cleaning nozzle 108; they can also be irregularly distributed, such as from the middle of the filter screen to both sides. Gradient between filter holes.
  • the water spray area of the self-cleaning nozzle 108 covers the filter screen 103, or the water outlet end of the self-cleaning nozzle 108 is flat and spans the approximate width of the filter screen, so that the water flow from the water outlet end can flow from the overall width direction of the filter screen, from above It flows down through the entire filter screen, thereby taking away the lint attached to the filter screen.
  • the water outlet end of the self-cleaning nozzle 108 can be disposed on the actual surface of the filter screen 103.
  • the filter surface can clean the lint on the entire filter surface; and the condensation nozzle 109 is close to the pipe wall of the air inlet channel 102, or is located at the outer wall of the pipe wall of the air inlet channel 102.
  • FIG. 5 is a schematic structural diagram of an air inlet channel of a clothes treatment device provided by the fifth embodiment of the present application.
  • the air inlet channel 102 provided in the fifth embodiment of the present application is provided with an air inlet channel water pipe 107 at one end connected to the drying module B; the air inlet channel water pipe 107 is connected to the water inlet of the condensate water channel, so as to To supply water to the condensation water channel, the air inlet channel water pipe 107 can optionally supply water to the condensation water channel through the condensation nozzle 109 .
  • the end of the air inlet channel 102 connected to the drying module B is also provided with a self-cleaning component; the self-cleaning component includes a self-cleaning nozzle 108; the air inlet channel water pipe 107 is connected to the self-cleaning nozzle 108 to supply water to the self-cleaning nozzle 108; The cleaning nozzle 108 is used to spray water onto the filter screen 103 .
  • the self-cleaning nozzle 108 and the condensation nozzle 109 can be connected to two separate water inlet pipes, where the first water inlet pipe is used to supply water to the self-cleaning nozzle 108 and the second water inlet pipe is used to supply water to the condensation nozzle 109 .
  • the opening timings of the self-cleaning nozzle 108 and the condensing nozzle 109 are not exactly the same, that is, the self-cleaning nozzle 108 is opened at a specific time or when it detects that the filter 103 needs to be cleaned, while the condensing nozzle 109 may be opened during the drying process. Turn it on all the time or for a specific period of time.
  • switches such as electromagnetic switches, can be set at the two nozzles to control the opening timing; and when separate water inlet pipes are used When supplying water to the condensation nozzle 109 and the self-cleaning nozzle 108 respectively, switches can be respectively provided on the first water inlet pipe and the second water inlet pipe for opening and closing control.
  • the outer wall of the air inlet channel 102 is covered with a condensation sleeve 106; a condensation water channel is formed between the inner wall of the condensation sleeve 106 and the outer wall of the air inlet channel 102.
  • the water outlet of the condensate water channel can be connected with the water outlet of drum A, or can also be connected with the external environment.
  • the condensed water flows through the condensed water channel, it will have a certain cooling effect on the steam-carrying airflow flowing through the air inlet channel 102, so that part of the water vapor is condensed into liquid water when flowing through the air inlet channel 102. Expelled in the opposite direction to the air flow. This reduces the moisture content in the airflow and can significantly improve the water removal efficiency of the drying module.
  • This embodiment provides a clothing processing equipment that sets a condensation sleeve 106 on the outer wall of the air inlet channel 102, so that a condensation water channel is formed between the inner wall of the condensation sleeve 106 and the outer wall of the air inlet channel 102.
  • Water spraying not only plays the role of condensation and dehumidification, but also ensures that condensed water will not be scattered.
  • a condenser in order to pre-dehumidify the water-laden airflow flowing from drum A to drying module B, can also be provided inside or outside the air inlet channel 102, or between the air inlet channel 102 and the air inlet section of the circulation fan 101.
  • a condensation device is installed in the room to reduce the moisture content in the airflow entering drying module B and improve the dehumidification efficiency of drying module B.
  • FIG. 6 is a schematic structural diagram of a self-cleaning nozzle of a laundry treatment equipment provided in the sixth embodiment of the present application.
  • the self-cleaning nozzle 108 provided in the sixth embodiment of the present application includes a conversion part 1081 and an extension part 1082; the conversion part 1081 is connected with the water outlet of the air inlet channel water pipe 107; the extension part 1082 is in the direction of the filter screen 103 extend.
  • the conversion part 1081 is used to make a smooth transition between the air inlet channel water pipe 107 and the extension part 1082, so that the water flow can smoothly flow from the outlet of the air inlet channel water pipe 107 into the extension part 1082 with a certain span.
  • the conversion part 1081 is set in the air inlet channel water pipe.
  • the outer wall of 107 or the water outlet end of the air inlet channel water pipe 107 is connected to form a stable connection.
  • the extension part 1082 is duckbill-shaped, and the extension part 1082 The width gradually increases along the direction away from the self-cleaning nozzle 108 , and the water outlet end of the extension portion 1082 has a width that is substantially equal to the width of the filter screen.
  • the thickness of the extension 1082 gradually decreases in a direction away from the self-cleaning nozzle 108 .
  • the extension part 1082 and the filter screen 103 have a certain angle, for example, a range greater than 0 degrees and less than or equal to 45 degrees, so that the water jetted from the outlet end of the extension part 1082 can spray or flow evenly across the entire filter screen surface.
  • the extension part 1082 of the self-cleaning nozzle 108 provided in the fourth embodiment of the present application is flat, so that the water flow can cover the entire width of the filter screen 103 and increase the water spray area of the self-cleaning nozzle 108.
  • the distance between the extension part 1082 and the filter screen 103 is The tilt angle can further improve cleaning efficiency.
  • Figure 7 is a schematic structural diagram of a conversion part of a laundry treatment device provided by the seventh embodiment of the present application.
  • the conversion part 1081 provided by the seventh embodiment of the present application is a hose;
  • the self-cleaning nozzle 108 also includes an angle adjustment piece 1083.
  • the angle adjustment piece 1083 is used to adjust the bending angle of the conversion part 1081.
  • the angle adjustment piece 1083 is set on the outer wall of the conversion part 1081.
  • the angle adjustment piece 1083 is connected with the air inlet channel water pipe 107. Turn the connection.
  • the angle adjustment member 1083 can be a rotating pipe sleeve, and the angle adjustment member 1083 can also be a sliding connection member.
  • the conversion part 1081 provided in the sixth embodiment of the present application can adjust the direction of water spraying of the extension part 1082 by rotating. During the process of cleaning the filter screen 103, by rotating the cleaning filter 103, compared with the fixed conversion part 1081, a On the one hand, it can ensure that the cleaning area covers the entire filter screen 103; on the other hand, it can prevent the water flow from blocking the entire filter screen 103 at the same time during cleaning and affecting the flow of the first circulating air flow.
  • FIG. 8 is a schematic structural diagram of a clothes treatment device provided by the eighth embodiment of the present application.
  • a clothes processing device provided by the eighth embodiment of the present application includes a housing E, a drum A, a drying module B, an air inlet channel 102 and a filter box 50; one end of the air inlet channel 102 is connected to the drum A The other end is connected with the drying module B; the surface of the housing E is provided with a first opening 70; the air inlet channel 102 is provided with a second opening 80, and the first opening 70 and the second opening 80 can cooperate with each other; the filter box 50 The air inlet channel 102 is inserted through the first opening 70 and the second opening 80 .
  • the drum door of the drum A is provided at the front end of the housing E; the first opening 70 is provided at the front end of the housing E. At least part of the air inlet channel 102 is in contact with the front end of the casing E; the second opening 80 is provided in the area where the air inlet channel 102 is in contact with the casing E. Or the air inlet channel 102 does not fit the casing E, and there is a certain distance between them.
  • the first opening 70 is still provided at the front end of the casing E, and the second opening 80 is provided on the air inlet channel 102 at a position corresponding to the first opening 70 .
  • the top and bottom surfaces of the filter box 50 are provided with openings; the filter box 50 is provided with a filter screen 103 .
  • the top surface of the filter box 50 is open; the filter screen 103 is provided on the bottom surface of the filter box 50 .
  • the filter screen 103 is provided on both the top and bottom surfaces of the filter box 50 .
  • the filter box 50 extends into the second opening 80 to form a sealing fit with the air inlet channel, and an inclined filter screen 103 is provided in the portion located within the air inlet channel 102.
  • the part of the filter box 50 that extends into the second opening 80 and is located in the air inlet channel 102 forms a part of the air inlet channel 102 , and due to the arrangement of the filter screen 103 , the air flows out from the drum A Flying catkins and other debris in the air flow are filtered by the filter, and the filtered air flow is then Enter the drying module B along the air inlet channel 102.
  • the air inlet channel 102 is provided at the front end of the drum A, and the air outlet channel 203 is provided at the rear end of the drum A.
  • the air outlet channel 203 is provided at the front end of the drum A; the air inlet channel 102 extends from the rear end of the drum A to the front end of the drum A.
  • the above air outlet channel 203 is the air flow channel through which the airflow flows out of the drying module B and enters the drum A.
  • the air inlet channel 102 and the air outlet channel 203 can also be arranged at one end of the drum A, or at a certain distance apart.
  • FIG. 9 is a schematic structural diagram of a drying module of a clothes treatment device provided in the ninth embodiment of the present application.
  • the ninth embodiment of the present application provides a drying module B of a clothes treatment equipment.
  • the drying module B includes a circulation fan 101, a dehumidification module 20, a regeneration fan 301, a condensation module 40 and Air outlet channel 203.
  • the air outlet of the dehumidification module 20 is connected with the drum A through the air outlet channel 203.
  • a drum door is provided at the front end of the drum A, the drying module B is arranged above the drum A, and the air inlet channel 102 is arranged at the rear end of the drum A.
  • the air inlet of the circulation fan 101 is connected with the air outlet of the air inlet channel 102
  • the air outlet of the circulation fan 101 is connected with the air inlet of the dehumidification module 20 .
  • the circulation fan 101 is used to create an air pressure difference between the air inlet and the air outlet of the circulation fan 101 through rotation, and push the gas in the drum A to flow into the circulation fan 101 through the air inlet channel 102, and then flow into the dehumidification mold from the air outlet of the circulation fan 101.
  • Group 20 finally flows from the dehumidification module 20 into the drum A through the air outlet channel 203, thereby forming a first circulating air flow between the drum A and the dehumidification module 20.
  • the air outlet of the regeneration fan 301 is connected to the dehumidification module 20
  • the air inlet of the regeneration fan 301 is connected to the air outlet of the condensation module 40
  • the air inlet of the condensation module 40 is connected to the dehumidification module 20 .
  • the regeneration fan 301 is used to create an air pressure difference between the air inlet and the air outlet of the regeneration fan 301 through rotation, pushing the gas in the dehumidification module 20 to flow into the condensation module 40, and then flow into the regeneration fan 301 from the air outlet of the condensation module 40.
  • the flow direction of the second circulating air flow is shown by the arrow in Figure 9.
  • the dehumidification module 20 includes a dehumidification component shell and a dehumidification turntable 200.
  • the dehumidification turntable 200 is installed in the dehumidification component housing through a rotating shaft and rotation.
  • the dehumidification turntable 200 can be a porous structure covered with dehumidification material.
  • the dehumidification material can be cotton cloth, fiber, zeolite, Lithium chloride, molecular sieve, etc.
  • a turntable motor for driving the dehumidification turntable 200 is provided in the dehumidification component housing. When humid gas flows through the dehumidification turntable 200, the moisture is adsorbed by the dehumidification disk, causing the humidity of the gas to decrease.
  • the dehumidification component shell includes a water absorption area 201 and a drainage area 202.
  • the water absorption area 201 is located in the first circulating air flow channel, and the drainage area 202 is located in the second circulating air flow channel.
  • the drainage area 202 is provided with a regeneration component, such as a heater.
  • the part of the dehumidification turntable 200 that rotates to the water absorption area 201 absorbs moisture in the first circulating air flow, and the part of the dehumidification turntable 200 that rotates to the drainage area 202 desorbs and adsorbs under the action of the heater.
  • the desorbed moisture flows into the condensation module 40 along with the second circulating air flow.
  • the condensation module 40 is used to cool down the second circulating air flow, so that part of the second circulating air flow The moisture condenses into liquid, and the condensed liquid is discharged through the water outlet.
  • the water outlet of the condensation module 40 can be connected to the water outlet of the drum A, or can also be directly connected to the external environment.
  • the laundry treatment device further includes a detergent delivery box, the detergent delivery box is disposed above the drum A, and the detergent delivery box is used to supply cleaning liquid to the drum A.
  • the laundry treatment device further includes a water inlet pipe, and the water inlet pipe includes a first water outlet, a second water outlet, and a third water outlet.
  • the first water outlet is provided with a first solenoid valve switch, the first solenoid valve switch is used to control the opening and closing of the first water outlet;
  • the second water outlet is provided with a second solenoid valve switch, the second solenoid valve switch is used to control the second Opening and closing of the water outlet;
  • the third water outlet is provided with a third solenoid valve switch, and the third solenoid valve switch is used to control the opening and closing of the third water outlet.
  • the first water outlet, the second water outlet and the third water outlet may be arranged side by side or in two rows.
  • the first water outlet is connected with the cleaning water pipe to supply water to the water inlet of drum A.
  • the cleaning water pipe is also used to supply water to the detergent delivery box to dilute the detergent in the detergent delivery box and bring it into drum A.
  • the second water outlet is connected with the condenser water pipe to supply water to the condenser of the condensation module 40 .
  • the third water outlet is connected with the air inlet channel water pipe 107 to supply water to the air inlet channel 102 .
  • One end of the air inlet channel 102 connected to the drying module B is provided with a self-cleaning nozzle 108; the air inlet channel water pipe 107 is connected to the self-cleaning nozzle 108 to supply water to the self-cleaning nozzle 108; the self-cleaning nozzle 108 is used to supply water to the filter screen 103 squirt.
  • the end of the air inlet channel 102 that communicates with the drying module B can also be provided with a condensation nozzle 109; the air inlet channel water pipe 107 is connected with the condensation nozzle 109 to supply water to the condensation nozzle 109; the condensation nozzle 109 is used to supply water to the inner wall of the air inlet channel 102 Or spray water on the outer wall.
  • the bottom surfaces of the circulation fan 101, the regeneration fan 301 and the condensation module 40 may be substantially in the same plane.
  • the circulation fan 101, the regeneration fan 301 and the condensation module 40 are generally disposed on one side of the dehumidification module 20.
  • FIG 10 is a schematic structural diagram of a clothes treatment device provided by the tenth embodiment of the present application.
  • the air inlet channel 102 is set at the right rear of drum A; the water inlet of the water inlet pipe is set at the right rear of drum A, and the water inlet pipe is directly connected to the self-cleaning The water inlet of the component.
  • This arrangement eliminates the need to extend the water inlet pipe across drum A, thereby reducing damage to the water inlet pipe caused by vibration during the operation of drum A.
  • FIG 11 is a schematic structural diagram of a clothes treatment device provided by the eleventh embodiment of the present application.
  • the air inlet channel 102 is provided at the left rear of the drum A.
  • the water inlet of the water inlet pipe is arranged at the right rear of drum A, and the water inlet pipe crosses drum A and is connected to the water inlet of the self-cleaning component.
  • the condensation module 40 is disposed on the left side of the air outlet channel 203
  • the cleaning agent delivery box is disposed on the right side of the air outlet channel 203 .
  • drying module B also includes an auxiliary condensation module; the air outlet of the air inlet channel 102 is connected to the air inlet of the auxiliary condensation module; the air inlet of the circulation fan 101 is connected to the air outlet of the auxiliary condensation module. . It is used to further dehumidify the water-carrying airflow flowing out of the air inlet channel 102, so that the airflow entering the drying module B has a lower moisture content, which can improve the drying efficiency.
  • FIG 12 is a schematic structural diagram of the air inlet channel 102 of a clothes treatment device provided by the twelfth embodiment of the present application.
  • an air inlet channel 102 provided by the twelfth embodiment of the present application is provided with a self-cleaning component, a filter screen 103 and a cold water pipe 51.
  • the cold water pipe 51 is provided above the filter screen 103.
  • the self-cleaning component It is arranged above the cold water pipe 51.
  • the clothes processing equipment provided in this embodiment can condense the hot and humid airflow with a relatively high temperature first by setting the cold water pipe 51 to reduce the water content, and then enter the drying module B for subsequent dehumidification treatment, which helps to improve Dehumidification efficiency.
  • FIG. 13 is a schematic structural diagram of a drying module of a clothes treatment device provided in the thirteenth embodiment of the present application.
  • the thirteenth embodiment of the present application provides a drying module B of a clothes treatment equipment.
  • the drying module B includes a circulation fan 101, a dehumidification module 20, a regeneration fan 301, and a condensation module 40.
  • the air inlet of the circulation fan 101 is connected with the air outlet of the air inlet channel 102, and the air outlet of the circulation fan 101 is connected with the air inlet of the moisture absorption area of the dehumidification module 20; the air outlet of the moisture absorption area 20 of the dehumidification module passes through
  • the air outlet channel 203 is connected to the drum A; the air inlet of the regeneration fan 301 is connected to the external environment; the air outlet of the regeneration fan 301 is connected to the air inlet of the dehumidification area of the dehumidification module 20; the air inlet of the condensation module 40 is connected to the dehumidification module 20.
  • the air outlet of the area is connected, and the air outlet of the condensation module 40 is connected with the external environment.
  • the air inlet of the circulation fan 101 is connected with the air outlet of the air inlet channel 102, and the air outlet of the circulation fan 101 is connected with the air inlet of the moisture absorption area of the dehumidification module 20.
  • the circulation fan 101 is used to create an air pressure difference between the air inlet and the air outlet of the circulation fan 101 through rotation, and push the gas in the drum A to flow into the circulation fan 101 through the air inlet channel 102, and then flow into the dehumidification module from the air outlet of the circulation fan 101. 20 moisture absorption area, and finally flows from the dehumidification module 20 into the drum A through the air outlet channel 203, and then forms a first circulating air flow between the drum A and the dehumidification module 20.
  • the air inlet of the regeneration fan 301 is connected to the external environment
  • the air outlet of the regeneration fan 301 is connected to the air inlet of the dehumidification area of the dehumidification module 20
  • the air inlet of the condensation module 40 is connected to the air outlet of the dehumidification area of the dehumidification module 20, and the condensation module 40
  • the air outlet is connected to the external environment.
  • the regeneration fan 301 is used to create an air pressure difference between the air inlet and the air outlet of the regeneration fan 301 through rotation, and push the air in the external environment to flow into the regeneration fan 301, and then flow into the dehumidification area of the dehumidification module 20 from the air outlet of the regeneration fan 301.

Landscapes

  • Engineering & Computer Science (AREA)
  • Textile Engineering (AREA)
  • Detail Structures Of Washing Machines And Dryers (AREA)
  • Drying Of Gases (AREA)
  • Drying Of Solid Materials (AREA)
  • Accessory Of Washing/Drying Machine, Commercial Washing/Drying Machine, Other Washing/Drying Machine (AREA)
  • Main Body Construction Of Washing Machines And Laundry Dryers (AREA)
  • Control Of Washing Machine And Dryer (AREA)

Abstract

一种衣物处理装置,该衣物处理装置包括滚筒(A)、烘干模组(B)和进风通道(102);进风通道(102)的一端与滚筒(A)连通,另一端与烘干模组(B)连通;滚筒(A)包括内筒和外筒,内筒在驱动电机驱动下旋转;外筒设有出气口(60),进风通道(102)与出气口(60)对接,且进风通道(102)内设置有滤网(103);该衣物处理装置,通过在连接滚筒(A)和烘干模组(B)的进风通道(102)内设置滤网(103),能够滤除滚筒(A)内衣物产生的毛絮,避免毛絮进入烘干模组(B),提高烘干的稳定性和安全性。

Description

一种衣物处理设备
本申请要求于2022年08月31日提交中国专利局、申请号为202222305027.4,发明名称为“一种衣物处理设备”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
本申请要求于2022年08月31日提交中国专利局、申请号为202222320973.6,发明名称为“一种洗烘一体机”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本申请涉及家用电器领域,具体而言涉及一种衣物处理设备。
背景技术
随着人们的生活水平提高,生活方式也在不断的变化,对消费品已不再满足于其基本功能。对于洗衣机行业而言,具有除湿功能的衣物处理设备可在洗涤结束后对洗涤物进行除湿处理,越来越受到消费者的青睐。
现有的衣物处理设备通常难以处理滚筒内的衣物产生的毛絮。毛絮易进入烘干区,影响除湿效果,甚至黏附在加热机构表面进而被引燃。
申请内容
(一)申请目的
本申请的目的是提供一种衣物处理设备,用于解决现有的衣物处理设备难以处理滚筒内的衣物产生的毛絮的问题。
(二)技术方案
为解决上述问题,本申请提供了一种衣物处理设备,包括滚筒、烘干模组和进风通道;
所述进风通道的一端与所述滚筒连通,另一端与所述烘干模组连通;
所述滚筒设有出气口,所述进风通道与所述出气口对接,且所述进风通道内倾斜设置有滤网。
在一些实施例中,所述滤网覆盖所述进风通道的第一截面;
所述第一截面与所述进风通道的轴线具有第一预设夹角。
在一些实施例中,所述第一预设夹角大于或等于20度且小于或等于90度。
在一些实施例中,所述烘干模组设置在所述滚筒的上方,所述进风通道设置在所述滚筒的后端。
在一些实施例中,所述进风通道包括与所述烘干模组连通的竖直通道和与所述滚筒连通的弧形通道。
在一些实施例中,所述弧形通道的弧度小于或等于所述滚筒侧面的弧度。
在一些实施例中,所述进风通道与所述烘干模组连通的一端还设有自清洁组件;
所述自清洁组件用于清洁粘附于滤网上的毛絮,所述自清洁组件用于向所述滤网喷水。
在一些实施例中,所述自清洁组件包括进风通道水管、第一喷嘴和/或第二喷嘴;
所述进风通道水管用于向所述第一喷嘴和/或所述第二喷嘴供水;
所述第一喷嘴和/或所述第二喷嘴分别设置在所述滤网的两侧;
所述第一喷嘴和/或所述第二喷嘴用于向所述滤网的两侧喷水。
在一些实施例中,所述烘干模组包括循环风机、除湿模组、再生风机、冷凝模组和出风通道;
所述循环风机的进风口与所述进风通道的出风口连通,所述循环风机的出风口与所述除湿模组吸湿区的进风口连通;
所述除湿模组吸湿区的出风口通过所述出风通道与所述滚筒连通;
所述冷凝模组的进风口与所述除湿模组除湿区的出风口连通,所述冷凝模组的出风口与所述再生风机的进风口连通;
所述再生风机的出风口与所述除湿模组除湿区的进风口连通。
在一些实施例中,所述循环风机、所述再生风机和所述冷凝模组位于所述滚筒的旋转轴线一侧且沿所述滚筒后端到前端的方向依次排列设置。
在一些实施例中,还包括清洁剂投放盒,清洁剂投放盒用于向所述滚筒提供清洁液;
所述清洁剂投放盒和所述冷凝模组分别设置在所述出风通道的两侧。
在一些实施例中,所述自清洁组件包括转换部和延伸部;
所述转换部与所述进风通道水管的出水口连通;
所述延伸部向所述滤网的方向延伸。
在一些实施例中,所述延伸部包括多个喷水角度;
所述自清洁组件的喷水区域至少覆盖所述滤网的部分宽度方向。
在一些实施例中,所述延伸部为鸭嘴状,所述延伸部沿着远离自清洁组件的方向宽度逐渐增大。
在一些实施例中,所述延伸部与滤网的夹角大于0度且小于或等于45度。
在一些实施例中,所述自清洁组件还包括角度调节件,所述角度调节件用于调整所述转换部的弯折角度。
在一些实施例中,所述再生风机的进风口与外部环境连通。
在一些实施例中,所述出风通道设置在所述滚筒的前端;
所述进风通道从所述滚筒的后端延伸至所述滚筒的前端。
在一些实施例中,还包括外壳和过滤盒;
所述外壳的表面设置有第一开口;
所述进风通道设有第二开口;
所述过滤盒穿过所述第一开口和所述第二开口插入所述进风通道。
在一些实施例中,所述滚筒的筒门设置在所述外壳的前端;
所述第一开口设置在所述外壳的前端。
在一些实施例中,所述过滤盒插入所述第二开口后形成与所述进风通道的密封配合;
所述过滤盒位于所述进风通道内的部分设置有滤网。
附图说明
图1是本申请第一实施例提供的一种衣物处理设备的结构示意图;
图2是本申请第二实施例提供的一种衣物处理设备的进风通道的结构示意图;
图3是本申请第三实施例提供的一种衣物处理设备的进风通道的结构示意图;
图4是本申请第四实施例提供的一种衣物处理设备的进风通道的结构示意图;
图5是本申请第五实施例提供的一种衣物处理设备的进风通道的结构示意图;
图6是本申请第六实施例提供的一种衣物处理设备的自清洁喷嘴的结构示意图;
图7是本申请第七实施例提供的一种衣物处理设备的转换部的结构示意图;
图8是本申请第八实施例提供的一种衣物处理设备的结构示意图;
图9是本申请第九实施例提供的一种衣物处理设备的烘干模组的结构示意图;
图10是本申请第十实施例提供的一种衣物处理设备的结构示意图;
图11是本申请第十一实施例提供的一种衣物处理设备的结构示意图;
图12是本申请第十二实施例提供的一种衣物处理设备的进风通道的结构示意图;
图13是本申请第十三实施例提供的一种衣物处理设备的烘干模组的结构示意图。
滚筒A;烘干模组B;外壳E;
烘干模组B;除湿模组20;冷凝模组40;
循环风机101;进风通道102;竖直通道1021;弧形通道1022;
滤网103;第一喷嘴104;第二喷嘴105;冷凝套管106;进风通道水管
107;自清洁喷嘴108;转换部1081;延伸部1082;角度调节件1083;冷凝喷嘴109;
除湿转盘200;吸水区201;排水区202;出风通道203;
再生风机301;
冷凝模组40;
过滤盒50;冷水管51;出气口60;第一开口70;第二开口80。
具体实施方式
在下文的描述中,给出了大量具体的细节以便提供对本申请更为彻底的理解。然而,对于本领域技术人员而言显而易见的是,本申请可以无需一个或多个这些细节而得以实施。在其他的例子中,为了避免与本申请发生混淆,对于本领域公知的一些技术特征未进行描述。
应予以注意的是,这里所使用的术语仅是为了描述具体实施例,而非意图限制根据本申请的示例性实施例。如在这里所使用的,除非上下文另外明确指出,否则单数形式也意图包括复数形式。此外,还应当理解的是,当在本说明书中使用术语“包含”和/或“包括”时,其指明存在特征、整体、步骤、操作、元件和/或组件,但不排除存在或附加一个或多个其他特征、整体、步骤、操作、元件、组件和/或它们的组合。
现在,将参照附图更详细地描述根据本申请的示例性实施例。然而,这些示例性实施例可以多种不同的形式来实施,并且不应当被解释为只限于这里所阐述的实施例。应当理解的是,提供这些实施例是为了使得本申请的公开彻底且完整,并且将这些示例性实施例的构思充分传达给本领域普通技术人员。
图1是本申请第一实施例提供的一种衣物处理设备的结构示意图。如图1所示,本申请第一实施例提供的一种衣物处理设备包括滚筒A、烘干模组B和进风通道102。进风通道102的一端与滚筒A连通,另一端与烘干模组B连通。滚筒A设有出气口60,进风通道102与出气口60对接,且进风通道102内倾斜设置有滤网103,滚筒A内带水气流经过进风通道102流向烘干模组B。滚筒A的内筒通过滚筒驱动电机驱动绕滚筒轴线旋转,烘干模组B用于在清洗完之后对滚筒内的含湿衣物进行干燥处理。
滚筒A包括内筒和外筒,或为一体式结构,在一实施例中,出气口60设置于外筒,内筒转动设置于外筒内,且内筒上设置有透水透气孔,外筒为不透水透气材料制成。滚筒设置有出气口60,该出气口60可设置于内筒,也可设置于外筒上,或内外筒上均设置有出气口60。在一实施例中,内筒出气口60为内容透水透气孔,外筒出气口60为在外筒上设置的通孔,通孔与进风通道对接。
本申请实施例提供的衣物处理设备,通过在连接滚筒A和烘干模组B的进风通道102内设置滤网103,能够滤除滚筒A内衣物产生的毛絮,避免毛絮进入烘干模组B,提高烘干的稳定性和安全性。衣物处理设备可以是烘干机、衣物处理设备、或者分体式的洗衣机或烘干机。
具体地,进风通道102包括与烘干模组B连通的竖直通道1021和与滚筒A连通的弧形通道1022。弧形通道1022的弧度小于或等于滚筒A侧面的弧度。
滤网103覆盖进风通道102的第一截面,第一截面与进风通道102的竖直通道1021的轴线具有第一预设夹角。第一预设夹角大于或等于20度且小于或 等于90度。例如第一夹角可以为30、35、或40度。
本实施例提供的一种衣物处理设备通过设置滤网103在进风通道102内倾斜延伸,一方面能够增加滤网103面积,以防面积较小的情况下,一旦出现堵塞会影响气流通过效率;另一方面,在自清洗过程中,如果有清洗不干净的地方,也不至于对后续的气流通过效率产生明显影响;再一方面,滤网103与进风通道102中第一循环气流的流向形成一定的角度,例如形成为夹角大于或等于20度,能够有效过滤毛絮,同时嵌入到滤网103孔中的毛絮能够通过冲洗去除。
图2是本申请第二实施例提供的一种衣物处理设备的进风通道的结构示意图。如图2所示,本实施例提供的一种衣物处理设备的进风通道102与烘干模组B连通的一端还设有自清洁组件,自清洁组件能够对粘附于滤网103上的毛絮进行自动清洁。在该实施例中,自清洁组件用于向滤网103喷水。自清洁组件包括进风通道水管107(参考图6)、第一喷嘴104和第二喷嘴105;进风通道水管107用于向第一喷嘴104和第二喷嘴105供水;第一喷嘴104和第二喷嘴分别设置在滤网103的两侧;第一喷嘴104和第二喷嘴用于向滤网103的两侧喷水。
本申请实施例提供的一种衣物处理设备通过设置在滤网103两侧的第一喷嘴104和第二喷嘴从两侧向滤网103喷水有助于提高滤网103的清洗效率,避免毛絮堵塞。
当然,自清洁组件也可以仅包括第一喷嘴104或第二喷嘴105,在自清洁过程中,第一喷嘴104或第二喷嘴105开启,对滤网103的过滤面或被过滤面进行冲洗以将附着其上的毛絮带走,从而完成滤网自清洁。
图3是本申请第三实施例提供的一种衣物处理设备的进风通道的结构示意图。图4是本申请第四实施例提供的一种衣物处理设备的进风通道的结构示意图。在该第三和第四实施例中,还包括对流经进风通道102的带水气流进行冷凝的设置。如图3、图4所示,进风通道102与烘干模组B连通的一端设有进风通道水管107(参考图6);进风通道水管107与冷凝水流道的进水口连通,以向冷凝水流道供水,进风通道水管107可选地通过冷凝喷嘴109向冷凝水流道供水。进风通道102与烘干模组B连通的一端还设有自清洁组件;自清洁组件包括自清洁喷嘴108;进风通道水管107与自清洁喷嘴108连通,以向自清洁喷嘴108供水;自清洁喷嘴108用于向滤网103喷水。自清洁喷嘴108可以包括多个喷水角度,具体地,其可以包括多个分水孔,每个分水孔的喷水角度不同。进风通道102内设置有滤网103。滤网103表面设有多个滤孔,滤孔的直径均为相同或者沿着远离自清洁喷嘴108的方向逐渐增大或减小;也可以呈现不规则分布,例如从滤网中间向两边,滤孔之间渐变。自清洁喷嘴108的喷水区域覆盖滤网103、或自清洁喷嘴108的出水端呈扁平状,横跨滤网的大致宽度,以从出水端流出的水流能从滤网整体宽度方向、从上至下流过整面滤网,从而带走滤网上附着的毛絮。
在一个实施例中,可以将自清洁喷嘴108的出水端设置于滤网103的实际 过滤面,从而能清洗整个过滤面上的毛絮;而冷凝喷嘴109则靠近进风通道102的管壁、或者设于进风通道102的管壁外壁处。
图5是本申请第五实施例提供的一种衣物处理设备的进风通道的结构示意图。如图5所示,本申请第五实施例提供的进风通道102与烘干模组B连通的一端设有进风通道水管107;进风通道水管107与冷凝水流道的进水口连通,以向冷凝水流道供水,进风通道水管107可选通过冷凝喷嘴109向冷凝水流道供水。进风通道102与烘干模组B连通的一端还设有自清洁组件;自清洁组件包括自清洁喷嘴108;进风通道水管107与自清洁喷嘴108连通,以向自清洁喷嘴108供水;自清洁喷嘴108用于向滤网103喷水。当然,自清洁喷嘴108和冷凝喷嘴109可以分别对接分离的两路进水管,其中第一进水管用于向自清洁喷嘴108供水、第二进水管用于向冷凝喷嘴109供水。由于自清洁喷嘴108和冷凝喷嘴109的开启时机并不完全一致,即自清洁喷嘴108在特定的时机或者检测到需要对滤网103进行清洁时才开启,而冷凝喷嘴109可以是在烘干过程全程开启或特定的时间段开启。因此,当采用进风通道水管107给冷凝喷嘴109和自清洁喷嘴108供水时,可以分别在两个喷嘴处设置开关,例如电磁开关,来对开启时机进行控制;而当采用分离开的进水管分别对冷凝喷嘴109和自清洁喷嘴108进行供水时,可以分别在第一进水管和第二进水管路上设置开关进行开启关闭控制。
一种实施方式中,进风通道102外壁套设有冷凝套管106;冷凝套管106的内壁与进风通道102的外壁之间形成冷凝水流道。冷凝水流道的出水口可以与滚筒A的出水口连通,也可以与外部环境连通。当冷凝水流经冷凝水流道时,会对流经进风通道102的带蒸汽气流有一定的冷却作用,使得部分水蒸气在流经进风通道102时被冷凝成液态水,从进风通道102沿与气流相反的方向被排出。从而降低了气流中的水分含量,能够显著提升烘干模组的除水效率。
本实施例提供的一种衣物处理设备通过在进风通道102外壁套设冷凝套管106,使得冷凝套管106内壁与进风通道102外壁之间形成冷凝水流道,在实现进风通道102外壁喷水起到冷凝除湿作用的同时,能够保证冷凝水不会遗撒。
当然,为了对从滚筒A流向烘干模组B的带水气流进行预除湿,也可以在进风通道102内或外部设置冷凝器、或者在进风通道102和循环风机101的进气段之间设置冷凝装置,降低进入烘干模组B的气流中的水分含量,提升烘干模组B的除湿效率。
图6是本申请第六实施例提供的一种衣物处理设备的自清洁喷嘴的结构示意图。如图6所示,本申请第六实施例提供的自清洁喷嘴108包括转换部1081和延伸部1082;转换部1081与进风通道水管107的出水口连通;延伸部1082向滤网103的方向延伸。转换部1081用于将进风通道水管107与延伸部1082进行平滑过渡,使得水流能平稳从进风通道水管107的出口流入具有一定跨度的延伸部1082,转换部1081套设在进风通道水管107的外壁或对接于进风通道水管107的出水端形成稳固连接。延伸部1082为鸭嘴状,延伸部1082 沿着远离自清洁喷嘴108的方向宽度逐渐增大,延伸部1082的出水端具有大致等同于滤网的宽度。延伸部1082沿着远离自清洁喷嘴108的方向厚度逐渐减小。延伸部1082与滤网103具有一定的夹角,例如为大于0度且小于或等于45度的范围,便于从延伸部1082出水端喷出的水流能够喷射或均匀流过整面滤网表面。
本申请第四实施例提供的自清洁喷嘴108的延伸部1082呈扁平状,从而水流能够覆盖滤网103的整个宽度,增加了自清洁喷嘴108的喷水面积,延伸部1082与滤网103的倾斜角度能够进一步提高清洗效率。
图7是本申请第七实施例提供的一种衣物处理设备的转换部的结构示意图。如图7所示,本申请第七实施例提供的转换部1081为软管;
自清洁喷嘴108还包括角度调节件1083,,角度调节件1083用于调整转换部1081的弯折角度,转换部1081的外壁套设有角度调节件1083,角度调节件1083与进风通道水管107转动连接。角度调节件1083可以为转动管套,角度调节件1083也可以为滑动连接件。
本申请第六实施例提供的转换部1081通过转动能够调整延伸部1082喷水的方向,在清洗滤网103的过程中,通过转动清洗滤网103,与固定设置的转换部1081相比,一方面能够确保清洗区域覆盖整个滤网103,另一方面能够避免清洗时,水流在同一时间堵塞整个滤网103影响第一循环气流的流动。
图8是本申请第八实施例提供的一种衣物处理设备的结构示意图。如图8所示,本申请第八实施例提供的一种衣物处理设备包括外壳E、滚筒A、烘干模组B、进风通道102和过滤盒50;进风通道102的一端与滚筒A连通,另一端与烘干模组B连通;外壳E的表面设置有第一开口70;进风通道102设有第二开口80,第一开口70与第二开口80可以相互配合;过滤盒50穿过第一开口70和第二开口80插入进风通道102。
滚筒A的筒门设置在外壳E的前端;第一开口70设置在外壳E的前端。进风通道102的至少部分与外壳E的前端贴合;第二开口80设置在进风通道102与外壳E贴合的区域。或者进风通道102与外壳E不贴合,它们之间有一定的间距,第一开口70仍设置于外壳E前端、第二开口80设置于进风通道102上与第一开口70对应的位置。
在一些实施例中,过滤盒50的顶面和底面均设有开口;过滤盒50内设有滤网103。
在一些实施例中,过滤盒50的顶面为开口状;过滤盒50的底面设置有滤网103。
在一些实施例中,过滤盒50的顶面和底面均设置有滤网103。
在一些实施例中,过滤盒50伸入第二开口80后形成与进风通道的密封配合,在位于进风通道102内的部分设置有倾斜的滤网103.
通过以上设置,当过滤盒50安装到位之后,过滤盒50伸入第二开口80后位于进风通道102内的部分形成进风通道102的一部分,而由于滤网103的设置,从滚筒A流出的气流中的飞絮等杂物被滤网过滤,经过滤后的气流再 沿进风通道102进入到烘干模组B。
在一些实施例中,进风通道102设置在滚筒A的前端,出风通道203设置在滚筒A的后端。
在一些实施例中,出风通道203设置在滚筒A的前端;进风通道102从滚筒A的后端延伸至滚筒A的前端。
以上出风通道203为气流流出烘干模组B进入到滚筒A的气流通道,通过将进风通道102和出风通道203的相对滚筒A的开口分别设置与滚筒A的前端和后端,能够促进气流在滚筒A内充分与待烘干衣物进行接触,提高烘干效率。当然,为了整体结构设计的便利,进风通道102和出风通道203也可以均设置于滚筒A的一端、或者间隔一定距离设置。
图9是本申请第九实施例提供的一种衣物处理设备的烘干模组的结构示意图。如图9所示,本申请第九实施例提供的一种衣物处理设备的烘干模组B,烘干模组B包括循环风机101、除湿模组20、再生风机301、冷凝模组40和出风通道203。除湿模组20的出风口通过出风通道203与滚筒A连通。滚筒A的前端设置有筒门,烘干模组B设置在滚筒A的上方,进风通道102设置在滚筒A的后端。
循环风机101的进风口与进风通道102的出风口连通,循环风机101的出风口与除湿模组20的进风口连通。循环风机101用于通过转动使得循环风机101的进风口和出风口之间形成气压差,推动滚筒A内的气体通过进风通道102流入循环风机101,再从循环风机101的出风口流入除湿模组20,最后通过出风通道203从除湿模组20流入滚筒A,进而在滚筒A和除湿模组20之间形成第一循环气流。
再生风机301的出风口与除湿模组20连通,再生风机301的进风口与冷凝模组40的出风口连通,冷凝模组40的进风口与除湿模组20连通。再生风机301用于通过转动使得再生风机301的进风口和出风口之间形成气压差,推动除湿模组20中的气体流入冷凝模组40,再从冷凝模组40的出风口流入再生风机301,最后从再生风机301流入除湿模组20,进而在除湿模组20、和冷凝模组40之间形成第二循环气流,第二循环气流的流向如图9中箭头所示。
除湿模组20包括除湿构件外壳和除湿转盘200,除湿转盘200通过转轴与转动安装于除湿构件外壳内,除湿转盘200可以为覆有除湿材料的多孔结构,除湿材料可以为棉布、纤维、沸石、氯化锂、分子筛等。除湿构件外壳内设有用于驱动除湿转盘200的转盘电机。潮湿的气体流经除湿转盘200时水分被除湿盘吸附,使得气体的湿度降低。
除湿构件外壳包括吸水区201和排水区202,吸水区201位于第一循环气流通道内、排水区202位于第二循环气流通道内。排水区202内设有再生构件,例如加热器,除湿转盘200旋转到吸水区201的部分吸附第一循环气流的水分,除湿转盘200旋转到排水区202的部分在加热器的作用下脱附吸附的水分,脱附的水分随着第二循环气流流入冷凝模组40。
冷凝模组40用于对第二循环气流进行降温,使得第二循环气流中的部分 水分凝结成液体,并将凝结的液体通过出水口排出。冷凝模组40的出水口可以与滚筒A的出水口连通,也可以直接与外部环境连通。
在一些实施例中,衣物处理设备还包括清洁剂投放盒,清洁剂投放盒设置在滚筒A的上方,清洁剂投放盒用于向滚筒A供清洁液。
在一些实施例中,衣物处理设备还包括进水管,进水管包括第一出水口、第二出水口和第三出水口。第一出水口设有第一电磁阀开关,第一电磁阀开关用于控制第一出水口的开闭;第二出水口设有第二电磁阀开关,第二电磁阀开关用于控制第二出水口的开闭;第三出水口设有第三电磁阀开关,第三电磁阀开关用于控制第三出水口的开闭。第一出水口、第二出水口和第三出水口可以并排设置、或者分两排设置。
第一出水口与清洗水管连通,以向滚筒A的进水口供水。清洗水管还用于向清洁剂投放盒供水,以将清洁剂投放盒内的清洁剂稀释带入滚筒A内。
第二出水口与冷凝器水管连通,以向冷凝模组40的冷凝器供水。
第三出水口与进风通道水管107连通,以向进风通道102供水。进风通道102与烘干模组B连通的一端设有自清洁喷嘴108;进风通道水管107与自清洁喷嘴108连通,以向自清洁喷嘴108供水;自清洁喷嘴108用于向滤网103喷水。进风通道102与烘干模组B连通的一端还可以设置冷凝喷嘴109;进风通道水管107与冷凝喷嘴109连通,以向冷凝喷嘴109供水;冷凝喷嘴109用于向进风通道102的内壁或外壁喷水。
循环风机101、再生风机301和冷凝模组40的底面可以大致处于同一平面内。循环风机101、再生风机301和冷凝模组40大体上设置与除湿模组20的一侧。
图10是本申请第十实施例提供的一种衣物处理设备的结构示意图。如图10所示,以从滚筒A后端视角的方向来看,进风通道102设置在滚筒A的右后方;进水管的进水口设置在滚筒A的右后方,进水管直接连接至自清洁组件的进水口。如此设置可以不必将进水管跨越滚筒A,降低由于滚筒A工作过程中的振动对进水管造成的损坏。
图11是本申请第十一实施例提供的一种衣物处理设备的结构示意图。如图11所示,进风通道102设置在滚筒A的左后方。进水管的进水口设置在滚筒A的右后方,进水管跨过滚筒A连接至自清洁组件的进水口。冷凝模组40设置在出风通道203左侧,清洁剂投放盒设置在出风通道203的右侧。
在一些实施例中,烘干模组B还包括辅助冷凝模组;进风通道102的出风口与辅助冷凝模组的进风口连通;循环风机101的进风口与辅助冷凝模组的出风口连通。用于将从进风通道102流出的带水气流进一步除湿,从而进入到烘干模组B的气流含湿量更低,能够提高烘干效率。
图12是本申请第十二实施例提供的一种衣物处理设备的进风通道102的结构示意图。如图12所示,本申请第十二实施例提供的一种进风通道102内设有自清洁组件、滤网103和冷水管51,冷水管51设置在滤网103的上方,自清洁组件设置在冷水管51的上方。
本实施例提供的一种衣物处理设备通过设置冷水管51能够将温度相对较高的湿热气流先进行一次冷凝,降低含水量,再进入烘干模组B进行后续的除湿处理,有助于提高除湿效率。
图13是本申请第十三实施例提供的一种衣物处理设备的烘干模组的结构示意图。如图13所示,本申请第十三实施例提供的一种衣物处理设备的烘干模组B,烘干模组B包括循环风机101、除湿模组20、再生风机301、冷凝模组40和出风通道203;循环风机101的进风口与进风通道102的出风口连通,循环风机101的出风口与除湿模组20吸湿区的进风口连通;除湿模组吸湿区20的出风口通过出风通道203与滚筒A连通;再生风机301的进风口与外部环境连通,再生风机301的出风口与除湿模组20除湿区进风口连通;冷凝模组40的进风口与除湿模组20除湿区的出风口连通,冷凝模组40的出风口与外部环境连通。
循环风机101的进风口与进风通道102的出风口连通,循环风机101的出风口与除湿模组20吸湿区的进风口连通。循环风机101用于通过转动使得循环风机101的进风口和出风口之间形成气压差,推动滚筒A内的气体通过进风通道102流入循环风机101,再从循环风机101出风口流入除湿模组20吸湿区,最后通过出风通道203从除湿模组20流入滚筒A,进而在滚筒A和除湿模组20之间形成第一循环气流。
再生风机301的进风口与外部环境连通,再生风机301的出风口与除湿模组20除湿区进风口连通,冷凝模组40的进风口与除湿模组20除湿区出风口连通,冷凝模组40的出风口与外部环境连通。再生风机301用于通过转动使得再生风机301的进风口和出风口之间形成气压差,推动外部环境中的空气流入再生风机301,再从再生风机301的出风口流入除湿模组20除湿区,再从除湿模组20除湿区流入冷凝器,最后从冷凝器流入外部环境,进而在除湿模组20除湿区和冷凝模组40之间形成第二循环气流,第二循环气流的流向如图13中箭头所示。
应当理解的是,本申请的上述具体实施方式仅仅用于示例性说明或解释本申请的原理,而不构成对本申请的限制。因此,在不偏离本申请的精神和范围的情况下所做的任何修改、等同替换、改进等,均应包含在本申请的保护范围之内。此外,本申请所附权利要求旨在涵盖落入所附权利要求范围和边界、或者这种范围和边界的等同形式内的全部变化和修改例。

Claims (21)

  1. 一种衣物处理设备,包括滚筒、烘干模组和进风通道;
    所述进风通道的一端与所述滚筒连通,另一端与所述烘干模组连通;
    所述滚筒设有出气口,所述进风通道与所述出气口对接,且所述进风通道内倾斜设置有滤网。
  2. 根据权利要求1所述的一种衣物处理设备,其中,所述滤网覆盖所述进风通道的第一截面;
    所述第一截面与所述进风通道的轴线具有第一预设夹角。
  3. 根据权利要求2所述的一种衣物处理设备,其中,所述第一预设夹角大于或等于20度且小于或等于90度。
  4. 根据权利要求1所述的一种衣物处理设备,其中,所述烘干模组设置在所述滚筒的上方,所述进风通道设置在所述滚筒的后端。
  5. 根据权利要求1所述的一种衣物处理设备,其中,所述进风通道包括与所述烘干模组连通的竖直通道和与所述滚筒连通的弧形通道。
  6. 根据权利要求5所述的一种衣物处理设备,其中,所述弧形通道的弧度小于或等于所述滚筒侧面的弧度。
  7. 根据权利要求1所述的一种衣物处理设备,其中,所述进风通道与所述烘干模组连通的一端还设有自清洁组件;
    所述自清洁组件用于清洁粘附于滤网上的毛絮,所述自清洁组件用于向所述滤网喷水。
  8. 根据权利要求7所述的一种衣物处理设备,其中,所述自清洁组件包括进风通道水管、第一喷嘴和/或第二喷嘴;
    所述进风通道水管用于向所述第一喷嘴和/或所述第二喷嘴供水;
    所述第一喷嘴和/或所述第二喷嘴分别设置在所述滤网的两侧;
    所述第一喷嘴和/或所述第二喷嘴用于向所述滤网的两侧喷水。
  9. 根据权利要求1-8任一项所述的一种衣物处理设备,其中,所述烘干模组包括循环风机、除湿模组、再生风机、冷凝模组和出风通道;
    所述循环风机的进风口与所述进风通道的出风口连通,所述循环风机的出风口与所述除湿模组吸湿区的进风口连通;
    所述除湿模组吸湿区的出风口通过所述出风通道与所述滚筒连通;
    所述冷凝模组的进风口与所述除湿模组除湿区的出风口连通,所述冷凝模组的出风口与所述再生风机的进风口连通;
    所述再生风机的出风口与所述除湿模组除湿区的进风口连通。
  10. 根据权利要求9所述的一种衣物处理设备,其中,所述循环风机、所述再生风机和所述冷凝模组位于所述滚筒的旋转轴线一侧且沿所述滚筒后端到前端的方向依次排列设置。
  11. 根据权利要求9所述的一种衣物处理设备,其中,还包括清洁剂投放盒,清洁剂投放盒用于向所述滚筒提供清洁液;
    所述清洁剂投放盒和所述冷凝模组分别设置在所述出风通道的两侧。
  12. 根据权利要求7所述的一种衣物处理设备,其中,所述自清洁组件包括转换部和延伸部;
    所述转换部与所述进风通道水管的出水口连通;
    所述延伸部向所述滤网的方向延伸。
  13. 根据权利要求12所述的一种衣物处理设备,其中,所述延伸部包括多个喷水角度;
    所述自清洁组件的喷水区域至少覆盖所述滤网的部分宽度方向。
  14. 根据权利要求12所述的一种衣物处理设备,其中,所述延伸部为鸭嘴状,所述延伸部沿着远离自清洁组件的方向宽度逐渐增大。
  15. 根据权利要求12所述的一种衣物处理设备,其中,所述延伸部与滤网的夹角大于0度且小于或等于45度。
  16. 根据权利要求12所述的一种衣物处理设备,其中,所述自清洁组件还包括角度调节件,所述角度调节件用于调整所述转换部的弯折角度。
  17. 根据权利要求9所述的一种衣物处理设备,其中,
    所述再生风机的进风口与外部环境连通。
  18. 根据权利要求17所述的一种衣物处理设备,其中,所述出风通道设置在所述滚筒的前端;
    所述进风通道从所述滚筒的后端延伸至所述滚筒的前端。
  19. 根据权利要求7、12-18任一项所述的一种衣物处理设备,其中,还包括外壳和过滤盒;
    所述外壳的表面设置有第一开口;
    所述进风通道设有第二开口;
    所述过滤盒穿过所述第一开口和所述第二开口插入所述进风通道。
  20. 根据权利要求19所述的一种衣物处理设备,其中,所述滚筒的筒门设置在所述外壳的前端;
    所述第一开口设置在所述外壳的前端。
  21. 根据权利要求19所述的一种衣物处理设备,其中,所述过滤盒插入所述第二开口后形成与所述进风通道的密封配合;
    所述过滤盒位于所述进风通道内的部分设置有滤网。
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