Drying sink, control method of drying sink, medium, and program product

CN117627118BActive Publication Date: 2026-08-21HANGZHOU ROBAM APPLIANCES CO LTD
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Patent Information

Application Number
CN202311623647.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-11-29
Publication Date
2026-08-21
Estimated Expiration
2043-11-29

AI Technical Summary

Technical Problem

[0002]目前,在用户使用水槽的过程中,由于水滴飞溅的缘故,水槽内部槽壁上会残留大量水渍,如不及时清理,水渍则会形成水垢并堆积在水槽内壁上,从而导致水槽存在一定的卫生隐患

Benefits of technology

[0020] The drying tank, the control method for the drying tank, the medium, and the program product provided in this application embodiment can, on the one hand, blow hot air into the tank body 110 using the air guide structure 120 sleeved on the tank body 110 to achieve the drying effect on the inner wall of the tank body 110; on the other hand, the hot air blown out by the air guide structure 120 is generated by heating the air using the power component 123, and the air heating operation ensures the stability of the drying effect to a certain extent, while reducing the drying cost.

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Abstract

The application discloses a drying sink, a control method of the drying sink, a medium and a program product, and generally relates to the technical field of drying. The drying sink 100 comprises a sink body 110 and a wind guide structure 120 sleeved with the sink body 110, the wind guide structure 120 is a double-layer cavity structure matched with the sink body 110, the wind guide structure 120 comprises an air inlet 1211 opened in an outer layer cavity 121, an air outlet 1221 opened in an inner layer cavity 122 and a power assembly 123, and the air outlet 1221 is connected with the sink body 110; the power assembly 123 is specifically used for sucking air into a space formed by the outer layer cavity 121 and the inner layer cavity 122 through the air inlet 1211, heating the sucked air and blowing out the heated air through the air outlet 1221. Through the wind guide structure 120 sleeved on the sink body 110, the heated air can be blown into the inside of the drying sink 100, so that the drying effect of the inner wall of the sink body 110 is realized.
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Description

Technical Field

[0001] This application generally relates to the field of drying technology, and more particularly to a drying tank, a control method for the drying tank, a medium, and a program product. Background Technology

[0002] Currently, during the use of the sink, a large amount of water stains will remain on the inner wall of the sink due to water splashing. If not cleaned in time, the water stains will form limescale and accumulate on the inner wall of the sink, thus causing certain hygiene hazards to the sink.

[0003] Therefore, the treatment of residual water stains on the inner wall of the sink has become an urgent problem to be solved. Summary of the Invention

[0004] In view of the above-mentioned defects or deficiencies in the prior art, it is desirable to provide a drying water tank, a control method for the drying water tank, a medium and a program product, in which heated air can be blown into the interior of the drying water tank 100 through the air guide structure 120 sleeved on the tank body 110, so as to achieve the drying effect on the inner wall of the tank body 110.

[0005] In a first aspect, a drying tank 100 is provided, including a tank body 110 and an air guide structure 120 sleeved with the tank body 110. The air guide structure 120 is a double-layer cavity structure that matches the tank body 110. The air guide structure 120 includes an air inlet 1211 opened in the outer cavity 121, an air outlet 1221 opened in the inner cavity 122, and a power component 123. The air outlet 1221 is connected to the tank body 110.

[0006] The power assembly 123 is used to draw air into the space formed by the outer cavity 121 and the inner cavity 122 through the air inlet 1211, heat the drawn air and blow it out through the air outlet 1221.

[0007] In conjunction with the first aspect, in one possible implementation, the drying tank 100 also includes a water supply assembly 130 and an energy conversion assembly 140;

[0008] The energy conversion component 140 is used to convert the mechanical energy generated by the water flow in the water supply component 130 into electrical energy and supply it to the power component 123.

[0009] In conjunction with the first aspect, in one possible implementation, the power assembly 123 includes a fan 1231 and a heating module 1232. The air outlet 12311 of the fan 1231 is connected to the air inlet 12321 of the heating module 1232. The air outlet 12322 of the heating module 1232 is arranged opposite to the air inlet 1211, so that air is drawn in through the air inlet 12312 of the fan 1231, heated by the heating module 1232, and then input into the air guide structure 120 through the air inlet 1211.

[0010] In conjunction with the first aspect, in one possible implementation, the power assembly 123 includes a fan 1231 and a heating module 1232. The air inlet 12312 of the fan 1231 is arranged opposite to the air inlet 1211, and the air outlet 12311 of the fan 1231 is connected to the air inlet 12321 of the heating module 1232, so that air is drawn into the air guide structure 120 through the air inlet 12312 of the fan 1231, and the air drawn into the air guide structure 120 is heated by the heating module 1232.

[0011] In conjunction with the first aspect, in one possible implementation, the drying tank also includes a detection module 150;

[0012] The detection module 150 is used to obtain the water residue status of the tank 110 and control the drying parameters of the air guide structure 120 based on the water residue status.

[0013] In conjunction with the first aspect, in one possible implementation, the detection module 150 includes at least one of an image acquisition module and a humidity sensor.

[0014] Secondly, a method for controlling a drying tank is provided, specifically applied to the drying tank 100 described in the first aspect above, the method comprising:

[0015] Obtain the water residue status of the tank 110; control the drying parameters of the air guide structure 120 based on the water residue status; the drying parameters include at least one of drying temperature, drying air volume, and drying level.

[0016] In conjunction with the second aspect, in one possible implementation, obtaining the water residue status in tank 110 includes:

[0017] The water residue in the tank 110 is determined based on at least one of the images in the drying tank 100 and the humidity in the drying tank 100.

[0018] Thirdly, a computer-readable storage medium is provided having a computer program stored thereon for implementing the method provided in the second aspect above.

[0019] Fourthly, a computer program product is provided, the computer program product containing instructions, characterized in that the instructions are executed by a processor to implement the method provided in the second aspect above.

[0020] The drying tank, the control method for the drying tank, the medium, and the program product provided in this application embodiment can, on the one hand, blow hot air into the tank body 110 using the air guide structure 120 sleeved on the tank body 110 to achieve the drying effect on the inner wall of the tank body 110; on the other hand, the hot air blown out by the air guide structure 120 is generated by heating the air using the power component 123, and the air heating operation ensures the stability of the drying effect to a certain extent, while reducing the drying cost.

[0021] Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0022] Other features, objects, and advantages of this application will become more apparent from the following detailed description of non-limiting embodiments with reference to the accompanying drawings:

[0023] Figure 1 This is a schematic diagram of a drying tank 100 provided in an embodiment of this application;

[0024] Figure 2 This is another schematic diagram of the drying tank 100 provided in the embodiments of this application;

[0025] Figure 3 This is another schematic diagram of the drying tank 100 provided in the embodiments of this application;

[0026] Figure 4 This is a schematic diagram of the working operation of the air guide structure 120 provided in an embodiment of this application;

[0027] Figure 5 This is another schematic diagram of the drying tank 100 provided in the embodiments of this application;

[0028] Figure 6 A flowchart illustrating the control method for the drying tank provided in an embodiment of this application;

[0029] Figure 7 This is a schematic diagram of the structure of a computer device according to an embodiment of this application;

[0030] In the above image:

[0031] 100-Drying water tank; 110-Tank body; 120-Air guide structure; 121-Outer cavity; 122-Inner cavity; 1211-Air inlet of outer cavity 121; 1221-Air outlet of inner cavity 122; 123-Power component; 130-Water supply component; 140-Energy conversion component; 1401-Generator; 1402-Energy storage module; 1231-Fan; 1232-Heating module; 12311-Air outlet of fan 1231; 12321-Air inlet of heating module 1232; 12322-Air outlet of heating module 1232; 12312-Air inlet of fan 1231; 150-Detection module. Detailed Implementation

[0032] The present application will now be described in further detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the invention and not intended to limit it. Furthermore, it should be noted that, for ease of description, only the parts relevant to the invention are shown in the accompanying drawings.

[0033] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present application will now be described in detail with reference to the accompanying drawings and embodiments. Furthermore, the term "and / or" in this document is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A existing alone, A and B existing simultaneously, or B existing alone. The terms "first" and "second," etc., in the specification and claims of the embodiments of this application are used to distinguish different objects, not to describe a specific order of objects.

[0034] Currently, during the use of sinks, water splashes often leave a large amount of water stains on the inner walls. If not cleaned promptly, these stains can form limescale and accumulate on the sink walls, posing a hygiene risk. To prevent this limescale buildup, a drying device (e.g., a dryer) can be used to dry the remaining water stains on the sink walls. However, due to the high cost of drying devices, the current technology for treating residual water stains on sink walls remains relatively ineffective.

[0035] Based on this, this application proposes a drying water tank, which can blow heated air into the interior of the drying water tank 100 through the air guide structure 120 sleeved on the tank body 110, so as to achieve the drying effect on the inner wall of the tank body 110.

[0036] Figure 1 This is a schematic diagram of a drying tank 100 provided in an embodiment of this application. For example... Figure 1As shown, the drying tank 100 includes a tank body 110 and an air guide structure 120 fitted onto the tank body 110.

[0037] Specifically, the air guide structure 120 is a double-layer cavity structure that matches the trough 110. The air guide structure 120 includes an air inlet 1211 opened in the outer cavity 121, an air outlet 1221 opened in the inner cavity 122, and a power component 123. The air outlet 1221 is connected to the trough 110. The power component 123 is used to draw air into the space formed by the outer cavity 121 and the inner cavity 122 through the air inlet 1211, and heat the drawn air before blowing it out through the air outlet 1221.

[0038] In one possible implementation, the air guide structure 120 can be a double-layer cavity structure that matches the trough 110.

[0039] For example, the air guiding structure 120 may include an outer cavity 121 and an inner cavity 122. Specifically, the outer cavity 121 and the inner cavity 122 are arranged in parallel, and there is a preset interval between the two cavities, so that a double-cavity structure can be formed by utilizing the space between the outer cavity 121 and the inner cavity 122 under the preset interval.

[0040] In one possible implementation, the air guide structure 120 can be matched with the tank 110 by specifically setting the structural parameters of the double-layer cavity structure. For example, the structural parameters of the double-layer cavity structure can be matched with the structural parameters of the tank 110.

[0041] For example, the length of the double-layer cavity structure can be consistent with the length of the circumference of the tank 110, specifically it can be fitted onto the outer or inner wall of the tank 110.

[0042] Optionally, the length of the double-layer cavity structure can be consistent with the length of any side of the groove 110, specifically it can be set at the side wall of the groove 110 corresponding to the side length.

[0043] Optionally, the height of the double-layer cavity structure can be consistent with the depth of the groove 110, specifically it can be set at the side wall of the groove 110 corresponding to that depth.

[0044] Optionally, the bottom area of ​​the double-layer cavity structure can be consistent with the bottom wall area of ​​the tank 110, specifically it can be set at the bottom wall of the tank 110.

[0045] In one possible implementation, the air guiding structure 120 may include an outer cavity 121 and an air inlet 1211 formed in the outer cavity 121, an inner cavity 122 and an air outlet 1221 formed in the inner cavity 122, and a power assembly 123.

[0046] For example, under the action of the power component 123, air can enter the space between the outer cavity 121 and the inner cavity 122 through the air inlet 1211 of the outer cavity 121, and be heated by the power component 123. Then, the heated air can be blown into the tank 110 through the air outlet 1221 of the inner cavity 122 to dry the tank 110.

[0047] It should be noted that when the air guide structure 120 is fitted on the inner wall of the tank 110, the air entering the air inlet 1211 is mainly the air inside the tank, while the hot air exiting from the air outlet 1221 can be directly blown to the inner wall surface of the tank 110 to dry the tank 110.

[0048] Optionally, when the air guide structure 120 is fitted onto the outer wall of the tank 110, the air entering the air inlet 1211 is mainly air from outside the tank, while the hot air exiting the air outlet 1221 can be blown onto the outer surface of the tank 110. At this time, the side wall temperature rises, and the tank 110 uses the heat generated after the temperature rise to dry the tank 110. Secondly, the hot air exiting the air outlet 1221 can also enter the interior of the tank 110 through the opening in the side wall of the tank 110 to dry the tank 110; wherein, the opening in the side wall of the tank 110 needs to be consistent with the specifications and dimensions of the air outlet 1221.

[0049] In addition, the specific number of air inlets 1211 and air outlets 1221 can be set according to the structural parameters of the air guide structure 120 or the drying requirements inside the tank 110, and no specific restrictions are imposed here.

[0050] The drying tank 100 provided in this application embodiment can, on the one hand, blow hot air into the tank body 110 using the air guide structure 120 sleeved on the tank body 110 to achieve the drying effect on the inner wall of the tank body 110; on the other hand, the hot air blown out by the air guide structure 120 is generated by heating the air using the power component 123, and the heating operation of the air ensures the stability of the drying effect to a certain extent, while reducing the drying cost.

[0051] In another embodiment of this application, another specific structure of the drying tank 100 is also provided. For example, Figure 2 This is another schematic diagram of the drying tank 100 provided in an embodiment of this application. For example... Figure 2 As shown, the drying tank 100 also includes a water supply component 130 and an energy conversion component 140; the energy conversion component 140 is used to convert the mechanical energy generated by the water flow in the water supply component 130 into electrical energy and provide it to the power component 123.

[0052] In this embodiment, the mechanical energy generated by the water flow in the water supply component 130 can be converted into electrical energy by the energy conversion component 140, so that the power component 123 can use the converted electrical energy to heat the air, thereby reducing energy consumption and reducing the drying cost of drying the tank 110.

[0053] In one possible implementation, the drying tank 100 may include a water supply component 130, which may include an inlet pipe, an outlet, etc. The inlet pipe can be located anywhere in the external space of the tank body 110. For example, it can be located on the back panel of the tank body 110 or in the bottom space of the tank body 110; no specific limitation is made here. It should be noted that the outlet of the water supply component 130 can be a faucet for the drying tank 100.

[0054] In one possible implementation, the drying tank 100 may also include an energy conversion component 140, which can convert the mechanical energy generated by the water flow in the water supply component 130 into electrical energy.

[0055] For example, such as Figure 2 As shown, the energy conversion component 140 may include a generator 1401. For example, the generator 1401 may be a hydroelectric generator. Specifically, the hydroelectric generator can cause the water flowing into the water supply component 130's inlet pipe to pass through the internal turbine of the hydroelectric generator, thereby driving the turbine to rotate and thus driving the generator 1401 to rotate and generate electrical energy.

[0056] For example, the water supply assembly 130 may include multiple water inlet pipes, and the generator 1401 in the energy conversion assembly 140 may be installed on each water inlet pipe, for example, at the water inlet end of the water inlet pipe. The water inlet pipes may include cold water inlet pipes and hot water inlet pipes. It should be noted that, to avoid damage to the generator due to excessively high water temperature, the generator 1401 is preferably installed at the water inlet end of the cold water inlet pipe.

[0057] For example, such as Figure 2 As shown, the energy conversion component 140 may also include an energy storage module 1402. Specifically, when the generator 1401 in the energy conversion component 140 converts the potential energy generated by the water flow into electrical energy, the energy storage module 1402 can be used to store the electrical energy.

[0058] For example, the energy storage module 1402 can be a battery that converts electrical energy into chemical energy for storage; it can be an energy storage device that converts electrical energy into thermal energy for storage; or it can be a charging device that directly stores electrical energy, etc.; the embodiments of this application do not impose specific limitations on this.

[0059] In another embodiment of this application, a connection method between the air guide structure 120 and the power assembly 123 is also provided. For example, Figure 3 This is another schematic diagram of the drying tank 100 provided in an embodiment of this application. For example... Figure 3 As shown, the power assembly 123 includes a fan 1231 and a heating module 1232.

[0060] Specifically, Figure 4 This is a schematic diagram of the operation of the air guide structure 120 provided in an embodiment of this application. Figure 4 As shown, the air outlet 12311 of the fan 1231 is connected to the air inlet 12321 of the heating module 1232. The air outlet 12322 of the heating module 1232 is arranged opposite to the air inlet 1211, so that air is drawn in through the air inlet 12312 of the fan 1231, heated by the heating module 1232, and then input into the air guide structure 120 through the air inlet 1211 of the air guide structure 120.

[0061] In this embodiment of the application, when the power component 123 is located outside the air guide structure 120, the fan 1231 can be used to directly draw outside air into the heating module 1232 so that the heating module 1232 can heat the air and input the heated air into the air guide structure 120 through the air inlet 1211.

[0062] In one possible implementation, the power assembly 123 further includes an electrical control assembly. This electrical control assembly can be a device for controlling electrical equipment, consisting of circuit boards, switches, relays, etc.; for example, it can be an electrical control box.

[0063] For example, the power control component can control the fan 1231 and the heating module 1232 by connecting and operating devices such as solenoid valves, motors, fans, and lights. For instance, the working status and operation mode of the fan 1231 and the heating module 1232 can be flexibly controlled and adjusted by setting and adjusting the relevant parameters of the power control component.

[0064] In one possible implementation, the energy storage module 1402 can provide its stored electrical energy to the power component 123, so that the fan 1231, heating module 1232 and power control component inside the power component 123 can all operate normally.

[0065] For example, the energy storage module 1402 can be connected to an electrical control component, which can be connected to the fan 1231 and the heating module 1232 respectively, so as to provide the electrical energy in the energy storage module 1402 to the various components of the power assembly 123.

[0066] It should be noted that the energy storage module 1402 can also provide electrical energy to various components of the power assembly 123 via an external power source.

[0067] In another embodiment of this application, a different connection method between the air guide structure 120 and the power assembly 123 is also provided. For example, the power assembly 123 includes a fan 1231 and a heating module 1232.

[0068] Specifically, the air inlet 12312 of the fan 1231 is arranged opposite to the air inlet 1211, and the air outlet 12311 of the fan 1231 is connected to the air inlet 12321 of the heating module 1232, so that air is drawn into the air guide structure 120 through the air inlet 12312 of the fan 1231, and the air drawn into the air guide structure 120 is heated by the heating module 1232.

[0069] In this embodiment of the application, when the air inlet 12312 of the fan 1231 in the power assembly 123 is arranged opposite to the air inlet 1211 of the air guide structure 120, the fan 1231 can directly draw external air into the cavity space of the air guide structure 120, and then the heating module 1232 heats the air, and blows the heated air into the tank 110 through the air outlet 1221 of the air guide structure 120 to dry the tank 110.

[0070] In another embodiment of this application, another specific structure of the drying tank 100 is also provided. For example, Figure 5 This is another schematic diagram of the drying tank 100 provided in an embodiment of this application. For example... Figure 5 As shown, the drying tank also includes a detection module 150.

[0071] Specifically, the detection module 150 is used to obtain the water residue status of the tank 110 and control the drying parameters of the air guide structure 120 based on the water residue status.

[0072] In this embodiment, the detection module 150 can be used to monitor the water residue in the tank 110 in real time, so as to determine the appropriate drying parameters of the air guide structure 120 based on the actual water residue inside the tank 110, thereby ensuring the drying effect of the tank 110 and avoiding unnecessary energy consumption.

[0073] In one possible implementation, the water residue status of the tank 110 can be obtained through the detection module 150. For example, the water residue status of the tank 110 can be determined based on the water stains or humidity status on the inner wall of the tank 110 obtained by the detection module 150.

[0074] For example, when there are water stains on the inner wall of the tank 110, it can be determined that there is water residue in the tank 110; when the humidity in the tank 110 is greater than a preset threshold, it can be determined that there is water residue in the tank 110; when the humidity in the tank 110 is less than a preset threshold, the water stains on the inner wall of the tank 110 can be further determined to determine the water residue in the tank 110.

[0075] In one possible implementation, the drying parameters of the air guide structure 120 can be determined based on the actual water residue inside the tank 110. These drying parameters may include the temperature, airflow, and airflow level of the hot air blown out from the air outlet 1221.

[0076] For example, the power of the fan 1231 and the heating module 1232 can be adjusted by setting the relevant parameters of the power control component, thereby controlling the drying parameters of the air guide structure 120.

[0077] In another embodiment of this application, a specific manifestation of the detection module 150 is also provided. For example, the detection module 150 includes at least one of an image acquisition module and a humidity sensor.

[0078] For example, the detection module 150 may include an image acquisition module disposed at the water outlet of the faucet, or a humidity sensor disposed on the inner wall of the tank 110.

[0079] In one possible implementation, the image acquisition module can be used to acquire internal images of the tank 110 and determine the water residue status of the tank 110 based on the images.

[0080] For example, the image acquisition module can transmit the internal image of the tank 110 to the central processing unit (CPU). After image processing, the CPU uses a water stain recognition model to determine the water residue status in the tank 110. For example, the water stain recognition model can be a machine learning model, a neural network model, etc.

[0081] For example, the humidity sensor can transmit the humidity value of the inner wall of the tank 110 to the central processing unit, which compares the actual humidity value of the inner wall of the tank 110 with a preset humidity threshold, and determines that there is water residue in the tank 110 when the actual humidity value is greater than the preset humidity threshold.

[0082] It should be noted that after determining that there is water residue in the tank 110, the water stain recognition model can be used again to determine the degree of water stain residue in order to determine the drying parameters of the air guide structure 120.

[0083] This application also provides a method for controlling a drying tank, which is applied to the aforementioned drying tank. Figure 6This is a flowchart illustrating the control method for the drying tank provided in an embodiment of this application, as shown below. Figure 6 As shown, the method includes the following steps:

[0084] S601. Obtain the water residue status in tank 110;

[0085] In one possible implementation, the water residue status in the tank 110 can be obtained through the detection module 150.

[0086] For example, the water residue in the tank 110 can be determined based on the water stains or humidity on the inner wall of the tank 110 obtained by the detection module 150.

[0087] For example, when there are water stains on the inner wall of the tank 110, it can be determined that there is water residue in the tank 110; when the humidity in the tank 110 is greater than a preset threshold, it can be determined that there is water residue in the tank 110; when the humidity in the tank 110 is less than a preset threshold, the water stains on the inner wall of the tank 110 can be further determined to determine the water residue in the tank 110.

[0088] S602. The drying parameters of the air guide structure 120 are controlled based on the water residue situation; the drying parameters include at least one of drying temperature, drying air volume, and drying level.

[0089] In one possible implementation, the drying parameters of the air guide structure 120 can be determined based on the actual water residue inside the tank 110. These drying parameters may include the temperature, airflow, and airflow level of the hot air blown out from the air outlet 1221.

[0090] For example, the power of the fan 1231 and the heating module 1232 can be adjusted by setting the relevant parameters of the power control component, thereby controlling the drying parameters of the air guide structure 120.

[0091] The control method for the drying tank provided in this application embodiment can, on the one hand, use the air guide structure 120 sleeved on the tank body 110 to blow hot air into the tank body 110 to achieve the drying effect on the inner wall of the tank body 110; on the other hand, the drying parameters of the air guide structure 120 can be determined based on the specific water residue inside the tank body 110, thereby improving the drying effect on the inner wall of the tank body 110 and reducing the drying cost.

[0092] In another embodiment of this application, a specific method for obtaining the water residue status inside the tank 110 is also provided. For example, the "obtaining the water residue status inside the tank 110" mentioned above includes: the water residue status inside the tank 110 is determined based on at least one of the images inside the drying water tank 100 and the humidity status inside the drying water tank 100.

[0093] In one possible implementation, the detection module 150 may include an image acquisition module disposed at the water outlet of the faucet, or a humidity sensor disposed on the inner wall of the tank 110.

[0094] For example, the image acquisition module can transmit the internal image of the tank 110 to the central processing unit (CPU). After image processing, the CPU uses a water stain recognition model to determine the water residue status in the tank 110. For example, the water stain recognition model can be a machine learning model, a neural network model, etc.

[0095] For example, the humidity sensor can transmit the humidity value of the inner wall of the tank 110 to the central processing unit, which compares the actual humidity value of the inner wall of the tank 110 with a preset humidity threshold, and determines that there is water residue in the tank 110 when the actual humidity value is greater than the preset humidity threshold.

[0096] Optionally, when the humidity inside the tank 110 is less than a preset threshold, the image acquisition module can be used to further determine the water stains on the inner wall of the tank 110 in order to determine the water residue in the tank 110.

[0097] It should be noted that after determining that there is water residue in the tank 110, the water stain recognition model can be used again to determine the degree of water stain residue in order to determine the drying parameters of the air guide structure 120.

[0098] The following is for reference. Figure 7 , Figure 7 A schematic diagram of a computer device suitable for implementing embodiments of this application is shown, such as... Figure 7 As shown, the computer system 700 includes a central processing unit (CPU) 701, which can perform various appropriate actions and processes based on programs stored in read-only memory (ROM) 702 or programs loaded from storage section 708 into random access memory (RAM) 703. RAM 703 also stores various programs and data required for the system's operating instructions. The CPU 701, ROM 702, and RAM 703 are interconnected via bus 704. Input / output (I / O) interface 705 is also connected to bus 704.

[0099] The following components are connected to I / O interface 705: an input section 706 including a keyboard, mouse, etc.; an output section 707 including a cathode ray tube (CRT), liquid crystal display (LCD), etc., and speakers, etc.; a storage section 708 including a hard disk, etc.; and a communication section 709 including a network interface card such as a LAN card, modem, etc. The communication section 709 performs communication processing via a network such as the Internet. A drive 710 is also connected to I / O interface 705 as needed. A removable medium 711, such as a disk, optical disk, magneto-optical disk, semiconductor memory, etc., is installed on drive 710 as needed so that computer programs read from it can be installed into storage section 708 as needed.

[0100] Specifically, according to embodiments of this application, the flowchart above refers to... Figure 6 The described process can be implemented as a computer software program. For example, embodiments of this application include a computer program product comprising a computer program carried on a computer-readable medium, the computer program containing program code for performing the methods shown in the flowchart. In such an embodiment, the computer program contains program code for performing the methods shown in the flowchart. In such an embodiment, the computer program can be downloaded and installed from a network via communication section 709, and / or installed from removable medium 711. When the computer program is executed by central processing unit (CPU) 701, it performs the functions defined in the system of this application.

[0101] It should be noted that the computer-readable medium shown in this application can be a computer-readable signal medium or a computer-readable storage medium, or any combination of the two. A computer-readable storage medium can be, for example,—but not limited to—an electrical, magnetic, optical, electromagnetic, infrared, or semiconductor system, apparatus, or device, or any combination thereof. More specific examples of a computer-readable storage medium may include, but are not limited to: an electrical connection having one or more wires, a portable computer disk, a hard disk, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), optical fiber, portable compact disk read-only memory (CD-ROM), optical storage device, magnetic storage device, or any suitable combination thereof. In this application, a computer-readable storage medium can be any tangible medium containing or storing a program that can be used by or in conjunction with an instruction execution system, apparatus, or device. In this application, a computer-readable signal medium can include a data signal propagated in baseband or as part of a carrier wave, carrying computer-readable program code. Such propagated data signals can take various forms, including but not limited to electromagnetic signals, optical signals, or any suitable combination thereof. Computer-readable signal media can also be any computer-readable medium other than computer-readable storage media, which can send, propagate, or transmit a program for use by or in connection with an instruction execution system, apparatus, or device. The program code contained on the computer-readable medium can be transmitted using any suitable medium, including but not limited to: wireless, wire, optical fiber, RF, etc., or any suitable combination thereof.

[0102] The flowcharts and block diagrams in the accompanying drawings illustrate the architecture, functionality, and operational instructions of possible implementations of systems, methods, and computer program products according to various embodiments of this application. In this regard, each block in a flowchart or block diagram may represent a module, segment, or portion of code containing one or more executable instructions for implementing a specified logical function. It should also be noted that in some alternative implementations, the functions indicated in the blocks may occur in a different order than those indicated in the drawings. For example, two connected blocks may actually be executed substantially in parallel, or they may sometimes be executed in reverse order, depending on the functions involved. It should also be noted that each block in the block diagrams and / or flowcharts, and combinations of blocks in the block diagrams and / or flowcharts, can be implemented using a dedicated hardware-based system that performs the specified functions or operational instructions, or using a combination of dedicated hardware and computer instructions.

[0103] The units or modules described in the embodiments of this application can be implemented in software or hardware. The described units or modules can also be housed in a processor; for example, a processor may be described as including a semantic extraction unit, a weight allocation unit, and a determination unit. The names of these units or modules do not necessarily constitute a limitation on the unit or module itself.

[0104] On the other hand, this application also provides a computer-readable storage medium, which may be included in the computer device described in the above embodiments, or may exist independently and not assembled into the computer device. The aforementioned computer-readable storage medium stores one or more programs that, when used by one or more processors, execute the methods of this application. For example, it may execute... Figure 6 The steps of the method shown.

[0105] This application provides a computer program product including instructions that, when executed, cause the method described in this application to be performed. For example, it can execute... Figure 6 The steps of the method shown.

[0106] The above description is merely a preferred embodiment of this application and an explanation of the technical principles employed. Those skilled in the art should understand that the scope of disclosure in this application is not limited to technical solutions formed by specific combinations of the above-described technical features, but should also cover other technical solutions formed by arbitrary combinations of the above-described technical features or their equivalents without departing from the foregoing disclosed concept. For example, technical solutions formed by substituting the above features with (but not limited to) technical features with similar functions disclosed in this application.

Claims

1. A drying tank, the drying tank (100) comprising a tank body (110), characterized in that, It also includes an air guide structure (120) fitted with the trough (110). The air guide structure (120) is a double-layer cavity structure that matches the trough (110). The air guide structure (120) includes an air inlet (1211) opened in the outer cavity (121), an air outlet (1221) opened in the inner cavity (122), and a power assembly (123). The air outlet (1221) is connected to the trough (110). The power assembly (123) is used to draw air into the space formed by the outer cavity (121) and the inner cavity (122) through the air inlet (1211), and heat the drawn air before blowing it into the interior of the tank (110) through the air outlet (1221). The drying tank (100) also includes a detection module (150); the detection module (150) is used to obtain the water residue status of the tank (110) and control the drying parameters of the air guide structure (120) based on the water residue status.

2. The drying tank (100) according to claim 1, characterized in that, The drying tank (100) also includes a water supply component (130) and an energy conversion component (140). The energy conversion component (140) is used to convert the mechanical energy generated by the water flow in the water supply component (130) into electrical energy and provide it to the power component (123).

3. The drying tank (100) according to claim 2, characterized in that, The power assembly (123) includes a fan (1231) and a heating module (1232). The air outlet (12311) of the fan (1231) is connected to the air inlet (12321) of the heating module (1232). The air outlet (12322) of the heating module (1232) is arranged opposite to the air inlet (1211) so that air is drawn in through the air inlet (12312) of the fan (1231), heated by the heating module (1232), and then input into the air guide structure (120) through the air inlet (1211).

4. The drying tank (100) according to claim 2, characterized in that, The power assembly (123) includes a fan (1231) and a heating module (1232). The air inlet (12312) of the fan (1231) is arranged opposite to the air inlet (1211). The air outlet (12311) of the fan (1231) is connected to the air inlet (12321) of the heating module (1232) so that air is drawn into the air guide structure (120) through the air inlet (12312) of the fan (1231), and the air drawn into the air guide structure (120) is heated by the heating module (1232).

5. The drying tank (100) according to claim 1, characterized in that, The detection module (150) includes at least one of an image acquisition module and a humidity sensor.

6. A method for controlling a drying water tank, characterized in that, Applied to the drying tank (100) according to any one of claims 1-5, the method comprises: Obtain the water residue status in the tank (110); The drying parameters of the air guide structure (120) are controlled based on the water residue situation; the drying parameters include at least one of drying temperature, drying air volume, and drying level.

7. The control method for the drying tank according to claim 6, characterized in that, The process of obtaining the water residue status of the tank (110) includes: The water residue in the tank (110) is determined based on at least one of the images in the drying tank (100) and the humidity in the drying tank (100).

8. A computer-readable storage medium, characterized in that, It stores a computer program for implementing the control method of the drying tank as described in any one of claims 6-7.

9. A computer program product, characterized in that, The computer program product includes instructions that, when executed, implement the control method for the drying tank as described in any one of claims 6-7.

Citation Information

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