Clothes dryer

By using the power detection of an anemometer and exhaust motor in the clothes dryer and performing the filter detection program, the problem of poor accuracy of filter clogging detection in existing clothes dryers is solved, and accurate detection and timely reminder of filter clogging is achieved, which improves the drying effect of clothes.

CN120099773AActive Publication Date: 2025-06-06HISENSE(SHANDONG)REFRIGERATOR CO LTD
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Patent Information

Application Number
CN202311667355.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-12-06
Publication Date
2025-06-06
Estimated Expiration
2043-12-06

AI Technical Summary

Technical Problem

The accuracy of filter clogging detection in existing clothes dryers is poor, which affects the drying effect of clothes.

Method used

A clothes dryer is designed to perform a filter detection program through the power detection of the anemometer and exhaust motor to determine whether the filter is blocked. The specific steps include controlling the exhaust motor to reach a preset speed, detecting the wind speed value and power value, and determining whether the filter is blocked based on these data.

Benefits of technology

Accurate detection of filter clogging is achieved, ensuring the improvement of clothing drying effect, and promptly reminding users to clean the filter to avoid affecting the normal use of the dryer.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention provides a clothes dryer. The clothes dryer comprises a box body; a drying barrel and an air circulation system; an air inlet assembly and an air exhaust assembly; a heater, an air inlet pipeline and an anemometer; the filter screen, the air exhaust pipeline, the air exhaust fan, the air exhaust motor and the fan are arranged in the shell; the controller is connected with the anemometer and the exhaust motor and used for executing a clothes dryer filter screen detection program, and the program comprises the following steps that the exhaust motor is controlled to reach the preset rotating speed and operates at the preset rotating speed; the current power value of the exhaust motor in the process of keeping the preset rotating speed to operate and the historical power value detected in the process of historically executing the clothes dryer filter screen detection program are detected, and whether the filter screen is blocked or not is judged based on the current power value and the historical power value; and / or acquiring a wind speed value of the anemometer, and judging whether the filter screen is blocked or not based on the wind speed value; and if at least one judgment is yes, determining that the filter screen is blocked. The accuracy of cleaning detection of the filter screen can be improved.
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Description

Technical Field

[0001] The present application relates to the technical field of clothes dryers, and in particular to a clothes dryer. Background Art

[0002] A clothes dryer is a drying device that can dry wet clothes. During the operation of the clothes dryer, the heater located at the front end of the air inlet duct heats the air and then sucks it into the drying barrel through the air inlet duct, so that the wet clothes exchange heat with the high-temperature dry gas in the drying barrel. The gas after the heat exchange often carries the lint or fine impurities and dust left in the dried clothes. After passing through the filter, the gas will retain the lint or fine impurities and dust on the filter, which can easily cause the filter to be blocked.

[0003] Once the filter is clogged, it will affect the normal operation of the dryer, and further affect the final drying effect of the clothes, so it is extremely important to ensure that the filter is not clogged. However, the accuracy of detecting whether the filter is clogged is currently poor.

[0004] Therefore, there is an urgent need for a clothes dryer that can accurately detect whether the filter is clogged. Summary of the invention

[0005] In order to solve the above technical problems, an embodiment of the present application provides a clothes dryer.

[0006] According to one aspect of an embodiment of the present application, the embodiment of the present application provides a clothes dryer, comprising: a housing; a drying barrel and an air circulation system arranged in the housing; the air circulation system comprises an air intake assembly and an air exhaust assembly; the air intake assembly comprises a heater and an air intake duct, which are used to allow heated air to enter the drying barrel to exchange heat with the clothes in the drying barrel, and an anemometer is also arranged in the air intake duct; the exhaust assembly comprises a filter, an exhaust duct and an exhaust fan, and the gas after heat exchange is discharged from the exhaust duct after passing through the filter under the action of the exhaust fan, and the exhaust fan comprises an exhaust motor and a fan; a controller is respectively connected to the The anemometer is electrically connected to the exhaust motor and is used to execute a dryer filter detection program, which includes the following steps: controlling the exhaust motor to reach a preset speed and maintaining the preset speed; detecting a current power value of the exhaust motor while maintaining the preset speed, and a historical power value detected during the historical execution of the dryer filter detection program, and determining whether the filter is clogged based on the current power value and the historical power value; and / or obtaining the wind speed value of the anemometer and determining whether the filter is clogged based on the wind speed value; if at least one of the above judgments is yes, determining that the filter is clogged.

[0007] In the above embodiment, by detecting the wind speed value of the exhaust motor while maintaining a preset speed, it is possible to accurately determine whether the filter is blocked based on the wind speed value; and by detecting the current power value of the exhaust motor while maintaining a preset speed and the historical power value obtained during the historical execution of the dryer filter detection program, it is also possible to accurately determine whether the filter is blocked. If at least one of the two judgments is yes, it can be accurately determined that the filter is blocked and the filter needs to be cleaned.

[0008] In one embodiment of the present application, based on the aforementioned scheme, the dryer filter detection program also includes the following steps: first determine whether the filter is blocked by using the wind speed value, and if the judgment is no, then determine whether the filter is blocked based on the current power value and the historical power value.

[0009] In the above embodiment, whether the filter is blocked is first determined by the wind speed value when the exhaust motor is running at a preset speed. When it is initially determined that the filter is not blocked, a second determination is made based on the current power value and the historical power value. Only when the second determination is no can it be finally determined that the filter is not blocked. Whether the filter is blocked can be accurately determined by two consecutive determinations.

[0010] In one embodiment of the present application, based on the aforementioned scheme, in the dryer filter detection program, the step of judging whether the filter is blocked based on the wind speed value includes: if the wind speed value is below a preset wind speed value, determining that the filter is blocked, and the preset wind speed value represents the minimum wind speed value in the air inlet duct when the filter is blocked; if the wind speed value reaches above the preset wind speed value, determining that the filter is not blocked.

[0011] In the above embodiment, the preset wind speed value represents the minimum wind speed value in the air inlet duct when the filter is blocked, and because the exhaust motor maintains a preset speed, the higher the blockage degree of the filter, the smaller the reflected wind speed value. Therefore, if the wind speed value reaches above the preset wind speed value, it can be accurately determined that the filter is not blocked, and if the wind speed value is below the preset wind speed value, it can be accurately determined that the filter is blocked.

[0012] In one embodiment of the present application, based on the aforementioned scheme, in the dryer filter detection program, the step of judging whether the filter is blocked based on the current power value and the historical power value includes: calculating the difference between the current power value and the historical power value; if the difference is below a preset value, determining that the filter is blocked, the preset value represents the minimum power difference when the filter is blocked, and the preset value is a positive number; if the difference reaches above the preset value, determining that the filter is not blocked.

[0013] In the above embodiment, since clothes may continuously drop lint during the drying process, the degree of filter blockage in the current dryer filter detection program will only increase compared to the previous filter blockage degree. Therefore, if the difference between the current power value and the historical power value is below the preset value, indicating that the amount of lint increased in the subsequent drying process is unlikely to affect the air intake, then it can be accurately determined that the filter is blocked; if the difference between the current power value and the historical power value reaches above the preset value, indicating that the amount of lint increased in the subsequent drying process can still handle the air intake, then it can be accurately determined that the filter is not blocked.

[0014] In one embodiment of the present application, based on the aforementioned solution, the step of judging whether the filter is clogged based on the current power value and the historical power value further includes: if the difference is a negative value, determining that the filter is not clogged.

[0015] In the above embodiment, in order to prevent the filter from being cleaned due to human intervention, which may cause the filter that is not blocked to be judged as blocked, it is determined whether the difference is a negative value. If the difference is a negative value, it can be accurately determined that the filter is not blocked and does not need to be cleaned.

[0016] In one embodiment of the present application, based on the aforementioned scheme, the control is further configured to perform the following steps: before starting the execution of the dryer filter detection program, determine whether the current program execution corresponds to the first detection after the filter is cleaned; if the judgment is yes, then during the execution of the dryer filter detection program this time, determine whether the filter is blocked only based on the wind speed value, and record the power of the exhaust motor while maintaining the preset speed; if the judgment is no, execute the dryer filter detection program normally.

[0017] In the above embodiment, before starting the dryer filter detection program, it is determined whether this program corresponds to the first detection after the filter is cleaned. If it is the first detection after the filter is cleaned, whether the filter is blocked is determined only based on the wind speed value, and the power of the exhaust motor while maintaining the preset speed is recorded, so that the power recorded in this detection is used as the historical power value for the next detection, thereby simplifying the detection process while ensuring the accuracy of detecting whether the dryer is blocked.

[0018] In one embodiment of the present application, based on the aforementioned scheme, the dryer filter detection program also includes the following steps: when the start instruction of the dryer filter detection program is detected, determining whether the door of the dryer is closed; if it is determined to be yes, controlling the filter detection indicator light to display a detection state, and executing the step of controlling the exhaust motor to reach a preset speed and maintaining the preset speed.

[0019] In one embodiment of the present application, based on the aforementioned scheme, the dryer filter detection program also includes the following steps: when it is determined that the filter is not blocked, controlling the filter detection indicator light to display an end state, and controlling the exhaust motor to stop running; when it is determined that the filter is blocked, controlling the filter detection indicator light to display a prompt state.

[0020] In the above embodiment, when it is determined that the filter is clogged, the prompt status displayed by the filter detection indicator light can promptly remind the user to clean the filter to avoid affecting the subsequent normal use of the dryer.

[0021] In one embodiment of the present application, based on the aforementioned scheme, the controller also performs the following steps: if it is detected that after the drying program is completed, the dryer door is opened and then closed, then the filter detection candidate state is entered after waiting for a preset period of time; in the filter detection candidate state, the temperature value of the heater is detected, and when the temperature value is below the preset temperature value, the dryer filter detection program is started.

[0022] In one embodiment of the present application, based on the above-mentioned solution, the controller further performs the following steps: when it is determined that the filter is clogged, a reminder message is generated, and the reminder message is sent to a pre-bound user terminal.

[0023] In the above embodiment, when it is determined that the filter is clogged, a reminder message is generated and sent to a pre-bound user terminal, so that the user can be reminded to clean the filter in time to avoid affecting the normal use of the subsequent dryer.

[0024] It should be understood that the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the present application. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] The drawings herein are incorporated into the specification and constitute a part of the specification, showing embodiments consistent with the present application, and together with the specification, are used to explain the principles of the present application. Obviously, the drawings described below are only some embodiments of the present application, and for those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative work. In the drawings:

[0026] Figure 1 is a three-dimensional structural schematic diagram of a clothes dryer provided by an exemplary embodiment of the present application;

[0027] Figure 2 is a side structural schematic diagram of a clothes dryer provided by an exemplary embodiment of the present application;

[0028] Figure 3 is a flowchart of the steps of foreign body detection provided by an exemplary embodiment of the present application;

[0029] Figure 4 is a flowchart of the steps of a clothes dryer filter detection procedure provided by an exemplary embodiment of the present application;

[0030] Figure 5 is a flowchart of steps executable by a controller in a clothes dryer provided by an exemplary embodiment of the present application. DETAILED DESCRIPTION

[0031] Here, exemplary embodiments will be described in detail, examples of which are shown in the accompanying drawings. When the following description refers to the drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The implementations described in the following exemplary embodiments do not represent all implementations consistent with the present application. Instead, they are only examples of devices and methods consistent with some aspects of the present application as detailed in the attached claims.

[0032] The block diagrams shown in the accompanying drawings are merely functional entities and do not necessarily correspond to physically independent entities. That is, these functional entities may be implemented in software form, or in one or more hardware modules or integrated circuits, or in different networks and / or processor devices and / or microcontroller devices.

[0033] The flowcharts shown in the accompanying drawings are only exemplary and do not necessarily include all the contents and operations / steps, nor must they be executed in the order described. For example, some operations / steps can be decomposed, and some operations / steps can be combined or partially combined, so the actual execution order may change according to actual conditions.

[0034] It should also be noted that the "multiple" mentioned in this application refers to two or more than two. "And / or" describes the association relationship of the associated objects, indicating that there can be three relationships. For example, A and / or B can mean: A exists alone, A and B exist at the same time, and B exists alone. The character " / " generally indicates that the previous and next associated objects are in an "or" relationship.

[0035] The terms "first", "second", "third" and "fourth" etc. in the specification and claims of the present application and the drawings are used to distinguish different objects, rather than to describe a specific order. The terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions. For example, a process, method, system, product or device comprising a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units that are not listed, or may optionally include other steps or units inherent to these processes, methods, products or devices.

[0036] In order to solve the current technical problem of poor accuracy in detecting whether a filter is clogged, the present application proposes a clothes dryer that can accurately detect whether a filter is clogged. Figure 1 FIG. 1 is a three-dimensional structural diagram of a clothes dryer provided by an exemplary embodiment of the present application. Figure 1 As shown, the clothes dryer 100 includes a drying barrel 101, an exhaust fan 102, a valve 103, an air duct 104, a heating pipe 105 and a filter 106. The following will introduce each part of the clothes dryer 100 one by one.

[0037] It should be noted that, in practical applications, the structure of the clothes dryer can also be adjusted according to actual needs, for example, Figure 1 The structure of the clothes dryer shown in the figure is increased / reduced / replaced. The structure of the clothes dryer is not limited to Figure 1 The structure shown.

[0038] The drying barrel 101 is disposed inside the dryer 100 and is usually made of stainless steel. It is used to accommodate and dry the clothes to be dried. The clothes to be dried are evenly heated by rotating so as to remove moisture from the clothes to be dried.

[0039] The exhaust fan 102 is used to exhaust moisture and heat from the drying barrel, maintain a suitable environment in the drying barrel 101, and improve the drying efficiency.

[0040] The valve 103 controls the flow of hot air in the drying barrel 101 by opening or closing and adjusting the opening of the valve 103 to meet different drying requirements.

[0041] The air duct 104 is responsible for transmitting the generated hot air from the heating pipe 105 to the drying barrel, and exhausting the dehumidified air from the drying barrel 101.

[0042] The heating pipe 105 is responsible for generating hot air by heating the air so that it can be transported to the drying barrel 101, providing the heat energy required for the drying process, ensuring that the clothes in the drying barrel receive sufficient heat and achieving a rapid drying effect.

[0043] The filter 106 is used to prevent fine fibers, dust and other particles from entering the air circulation system to maintain the normal operation of the equipment and the cleanliness of the user environment.

[0044] Please continue reading Figure 2 , Figure 2 FIG. 1 is a side view of a clothes dryer provided by an exemplary embodiment of the present application. Figure 2 As shown, the clothes dryer 200 includes a lifting rib 201, an anemometer 202, an air inlet duct 203, an exhaust duct 204, an exhaust motor 205, a box 206, a filter 207, a door 208, a drying barrel 209, a main control board 210, a filter indicator light 211 and a controller. The following will introduce each part of the clothes dryer 200 one by one.

[0045] Similarly, in practical applications, the structure of the dryer can also be adjusted according to actual needs, for example Figure 2 The structure of the clothes dryer shown in the figure is increased / reduced / replaced. The structure of the clothes dryer is not limited to Figure 2 The structure shown.

[0046] The lifting ribs 201 are used to support and fix the structural components of the drying barrel 209 to ensure that the drying barrel 209 remains stable during operation and to prevent the drying barrel 209 from shaking.

[0047] The anemometer 202 is arranged in the air inlet duct 203 to monitor the wind speed of air entering the air inlet duct 203, and can provide real-time wind speed data to help the control system adjust the air intake and exhaust to ensure that the temperature and humidity during the drying process are controlled within an appropriate range.

[0048] The air inlet duct 203 is connected to the external air channel and to air inlet components such as a heater, and is responsible for introducing fresh air into the air circulation system for drying clothes.

[0049] The exhaust duct 204 is responsible for discharging the moist air generated during the drying process out of the dryer 200 to maintain a dry environment in the drying barrel 209 .

[0050] The exhaust motor 205 is responsible for providing power to drive the electric fan, pushing air out of the dryer 200 through the exhaust duct 204 to maintain a dry environment in the drying barrel 209.

[0051] The housing 206 is the outer structure of the clothes dryer 200, and is used to fix and protect the internal components. The housing 206 is usually made of metal or plastic. A door 208 is usually provided on the housing 206 for putting clothes into or taking out the drying barrel 209, and the door 208 is usually equipped with a sealing ring to prevent water leakage.

[0052] A main control panel 210 is usually also provided on the box body 206, and buttons, knobs or touch screens are provided on the main control panel 210. The main control panel 210 is connected to various components of the dryer 200 and is responsible for controlling the operation and drying process of the entire dryer 200. The filter indicator light 211 is used to display the cleaning status of the filter 207, reminding the user whether the filter needs to be cleaned or replaced.

[0053] The filter 207 is installed on the exhaust duct to filter dust, fibers and other impurities in the air exhausted during the drying process to prevent the impurities from entering the external environment and ensure that the exhausted air is relatively clean.

[0054] The drying barrel 209 is disposed inside the dryer 200 and is usually made of stainless steel. It is used to accommodate and dry the clothes to be dried. The clothes to be dried are evenly heated by rotating so as to remove moisture from the clothes to be dried.

[0055] The controller is electrically connected to the anemometer and the exhaust motor, respectively, and is used to execute the dryer filter detection program. In order to determine whether the dryer filter detection program can be executed normally, the controller can perform the following steps to make a judgment:

[0056] If it is detected that the door of the dryer is opened and then closed after the drying process is finished, the filter detection candidate state is entered after waiting for a preset time;

[0057] In the filter detection candidate state, the temperature value of the heater is detected. When the temperature value is below the preset temperature value, the dryer filter detection program is started.

[0058] These two steps are described in detail below.

[0059] The door is opened and then closed, which is the first time to determine that the clothes in the drying barrel have been taken out. The purpose of waiting for the preset time is to reduce the temperature value of the heater in the dryer. If the temperature value of the heater is too high, it will heat the air in the drying barrel, thereby affecting the normal operation of the subsequent dryer filter detection program. Therefore, after waiting for the preset time, the filter detection candidate state is entered, and the temperature value of the heater is detected in the filter detection candidate state. When the temperature value of the heater is below the preset temperature value, the dryer filter detection program is started.

[0060] Since the presence of foreign matter in the drying tub will affect the normal operation of the dryer filter detection program, a second determination is required to accurately determine whether there is no foreign matter in the drying tub. Preferably, before executing the dryer filter detection program, a foreign matter detection program is executed to detect whether there is foreign matter in the drying tub. Foreign matter includes but is not limited to living things, metal objects, plastic objects, and sharp objects.

[0061] See also Figure 3 , Figure 3 This is a flowchart of the steps of foreign matter detection provided by an exemplary embodiment of the present application. The methods of detecting whether there is foreign matter in the drying barrel include but are not limited to using infrared sensors, weight sensors, vibration sensors, and current sensors. After the sensor is used to initially detect that there is no foreign matter in the drying barrel, the drum motor is started and the instantaneous current Ix when the drum motor is started is detected. The instantaneous current Ix is compared with the maximum current Io during multiple simulated no-load starts. If it is determined that the instantaneous current Ix reaches or exceeds the maximum current Io, it is finally determined that there is foreign matter in the drying barrel; if it is determined that the instantaneous current Ix is below the maximum current Io, it is again determined that there is no foreign matter in the drying barrel.

[0062] After determining that there is foreign matter in the drying drum, the filter indicator light is controlled to flash slowly to indicate that the subsequent dryer filter detection program cannot be performed normally. Preferably, the reminder information is pushed to the pre-bound user terminal to promptly remind the user to clean the foreign matter in the drying drum to avoid affecting the subsequent dryer filter detection program. If the user chooses to ignore it on the user terminal or does not handle it within the preset time period, the indicator light goes out and the foreign matter detection program is terminated.

[0063] After the foreign object detection procedure is completed and there is no foreign object in the drying drum, perform the dryer filter detection procedure. Figure 4 , Figure 4 1 is a flowchart of the steps of a dryer filter detection procedure provided by an exemplary embodiment of the present application. Figure 4 As shown, the dryer filter detection procedure includes the following S410-S440:

[0064] S410, controlling the exhaust motor to reach a preset speed and maintaining the preset speed;

[0065] S420, obtaining a wind speed value from an anemometer, and determining whether the filter is clogged based on the wind speed value;

[0066] S430, detecting a current power value of the exhaust motor in the process of maintaining a preset speed, and a historical power value detected in the process of executing a dryer filter detection program in the past, and determining whether the filter is clogged based on the current power value and the historical power value;

[0067] S440: If at least one of the above judgments is yes, it is determined that the filter is clogged.

[0068] These four steps are described in detail below.

[0069] Before S410, it is necessary to ensure that the door of the clothes dryer is in a closed state, because if the door of the clothes dryer is in an open state, it will cause a large misjudgment in the subsequent clothes dryer filter detection program. Therefore, when the present embodiment detects the start instruction of the clothes dryer filter detection program, it first determines whether the door of the clothes dryer is closed. If it is determined that the door of the clothes dryer is closed, the filter detection indicator light is controlled to display the detection state, and the exhaust motor is controlled to reach a preset speed and maintain the preset speed. If it is determined that the door of the clothes dryer is open, the clothes dryer filter detection program is stopped.

[0070] In S410, the exhaust motor is controlled to maintain the preset speed after reaching the preset speed, thereby ensuring that the exhaust motor runs at the preset speed each time the dryer filter detection program is run, and the clogging degree of the filter is used as the only variable in the entire control process.

[0071] In S420, the wind speed value of the air entering the air inlet duct is obtained by an anemometer. It should be noted that due to different blockage degrees of the filter, the wind speed value of the air entering the air inlet duct will be different when the preset speed is reached, wherein the smaller the wind speed value of the air entering the air inlet duct when the preset speed is reached, the higher the blockage degree of the filter.

[0072] In the dryer filter detection program, the steps of determining whether the filter is clogged based on the wind speed value include:

[0073] If the wind speed value is below the preset wind speed value, it is determined that the filter is clogged, and the preset wind speed value represents the minimum wind speed value in the air inlet duct when the filter is clogged;

[0074] If the wind speed value reaches above the preset wind speed value, it is determined that the filter is not blocked.

[0075] These two steps are described in detail below.

[0076] The preset wind speed value refers to the minimum wind speed value in the air inlet duct when the filter is completely blocked. If the wind speed value is below the preset wind speed value, it means that the filter is completely blocked or the blocking degree is higher than the blocking degree corresponding to the preset wind speed value, so it is determined that the filter is blocked and needs to be cleaned; if the wind speed value reaches above the preset current value, it means that the filter is not blocked and does not need to be cleaned.

[0077] In S430, similarly, when the exhaust motor is running at a preset speed, the blockage degree of the filter will also affect the power value of the exhaust motor. Different blockage degrees of the filter will result in different power values ​​of the exhaust motor. Among them, the greater the power value of the exhaust motor when running at the preset speed, the higher the blockage degree of the filter.

[0078] The historical power value is the power value recorded after the filter is cleaned and before the current program is executed. Exemplarily, the power value recorded in the first test after the filter is cleaned is marked as the power value recorded for the first time, and the power value recorded in the second test after the filter is cleaned is marked as the power value recorded for the second time, and so on. If the power value recorded in this test is the power value recorded for the third time, then the power values ​​recorded in the first test and the second test are all historical power values; if the power value recorded in this test is the power value recorded for the fourth time, then the power values ​​recorded in the first test, the second test, and the third test are all historical power values. Historical power values ​​are usually recorded and stored in the data storage unit of the system for subsequent query and analysis.

[0079] The historical power values ​​are weighted accordingly in chronological order. Preferably, the historical power values ​​closer to the current detection can be weighted higher. For example, the historical power values ​​include the power values ​​recorded by the first detection, the power values ​​recorded by the second detection, and the power values ​​recorded by the third detection. The weights can be assigned in sequence as 2:3:5, or 1:3:6. In addition, the historical power value closest to the current detection can be weighted the highest, and the remaining historical power values ​​can be weighted the same. Similarly, taking the above embodiment as an example, the weights can be assigned in sequence as 2:2:6, or 3:3:4.

[0080] After calculating the weighted average value based on the historical power values ​​after setting the corresponding weights, the weighted average value is compared with the current power value to accurately determine whether the filter is blocked. If the current power value reaches above the weighted average value, it is determined that the filter is blocked; if the current power value is below the weighted average value, it is determined that the filter is not blocked.

[0081] In another exemplary embodiment, in the clothes dryer filter detection program, the step of determining whether the filter is clogged based on the current power value and the historical power value includes:

[0082] Calculate the difference between the current power value and the historical power value;

[0083] If the difference is below a preset value, it is determined that the filter is clogged. The preset value represents the minimum power difference when the filter is clogged, and the preset value is a positive number.

[0084] If the difference reaches above the preset value, it is determined that the filter is not blocked.

[0085] These three steps are described in detail below.

[0086] In this embodiment, the historical power value represents the power value recorded by the most recent program execution. For example, if the power value recorded by the current program execution is the power value recorded by the third detection after the filter is cleaned, then the historical power value is the power value recorded by the second detection after the filter is cleaned; if the power value recorded by the current program execution is the power value recorded by the second detection after the filter is cleaned, then the historical power value is the power value recorded by the first detection after the filter is cleaned.

[0087] It should be noted that since the filter will filter and accumulate a large amount of cotton wool and impurities during each clothes drying process, the cotton wool and impurity content accumulated by the filter each time is higher than the cotton wool and impurity content accumulated last time, and the power value detected each time will inevitably be greater than the power value detected last time.

[0088] As can be seen from the above, the minimum power difference when the filter is blocked is used as a preset value, and the preset value is a positive number. If the difference between the current power value and the historical power value is below the preset value, it indicates that when the exhaust motor speed remains unchanged, the power of the air inlet duct has little or no change, and it can be accurately determined that the filter is blocked; if the difference between the current power value and the historical power value reaches above the preset value, it indicates that the filter is still filtering more cotton wool and impurities during each drying process, and it can be accurately determined that the filter is not blocked and does not need to be cleaned temporarily.

[0089] In addition, the present application takes into account the situation that the user cleans the filter between two filter detection procedures. Since the user cleans the filter, the current power value will be less than the historical power value, making the difference a negative number less than the preset value, which will lead to an erroneous judgment that the filter is clogged. In order to avoid misjudgment due to the user cleaning the filter, if the difference between the current power value and the historical power value is a negative value, it can be accurately determined that the filter is not clogged and does not need to be cleaned again.

[0090] In S440, if S420 determines that the filter is clogged, it can be determined that the filter is clogged; if S430 determines that the filter is clogged, it can also be determined that the filter is clogged; if both S420 and S430 determine that the filter is clogged, it can be determined without a doubt that the filter is clogged, and only when both S420 and S430 determine that the filter is not clogged, can it be determined that the filter is not clogged.

[0091] When it is determined that the filter is not blocked, the filter detection indicator light is controlled to display the end state, for example, the filter detection indicator light is off, and the exhaust motor is controlled to stop running, indicating that the dryer filter detection program is ended.

[0092] When it is determined that the filter is clogged, the filter detection indicator light is controlled to display a prompt state, such as the filter detection indicator light flashing quickly, and a reminder message can also be sent to the pre-bound user terminal to remind the user to check or clean the filter in time to avoid affecting the normal use of the subsequent dryer.

[0093] In summary, S410-S440 described above, this embodiment detects the wind speed value of the exhaust motor while maintaining a preset speed, and can accurately determine whether the filter is blocked based on the wind speed value; and based on the current power value of the exhaust motor while maintaining a preset speed and the historical power value obtained during the historical execution of the dryer filter detection program, it can also accurately determine whether the filter is blocked. If at least one of the two judgments is yes, it can be accurately determined that the filter is blocked and the filter needs to be cleaned.

[0094] In another exemplary embodiment, whether the filter is blocked is first determined by the current value, and if the current value is negative, whether the filter is blocked is determined based on the current power value and the historical power value.

[0095] See also Figure 5 , Figure 5 1 is a flowchart of steps that can be executed by a controller in a clothes dryer provided by an exemplary embodiment of the present application. The controller can also be configured to execute the following S510-S530:

[0096] S510, controlling the exhaust motor to reach a preset speed and maintaining the preset speed;

[0097] S520, obtaining a wind speed value from an anemometer, and determining whether the filter is clogged based on the wind speed value;

[0098] S530: If the judgment is no, determine whether the filter is clogged based on the current power value and the historical power value.

[0099] In S510-S530, this embodiment first determines whether the filter is blocked by the wind speed value when the exhaust motor maintains a preset speed. When it is initially determined that the filter is not blocked, a second judgment is made on whether the filter is blocked based on the current power value and the historical power value. Only when the second judgment is also no can it be finally determined that the filter is not blocked. Whether the filter is blocked can be accurately determined through two consecutive judgments.

[0100] In another exemplary embodiment, the controller further performs the following steps:

[0101] Before starting the dryer filter test program, determine whether the current program execution corresponds to the first test after the filter is cleaned;

[0102] If the answer is yes, during the execution of the dryer filter detection procedure, the filter is only judged to be blocked based on the wind speed value, and the power of the exhaust motor is recorded while the motor is running at the preset speed.

[0103] If the judgment is no, the dryer filter detection procedure is performed normally.

[0104] If it is the first test after the filter is cleaned, there will be no historical power value, and it is impossible to judge whether the filter is blocked based on the current power value and the historical power value. It is only possible to judge whether the filter is blocked based on the wind speed value, and record the power of the exhaust motor while maintaining the preset speed, so that the power recorded in this test is used as the historical power value for the next test, thereby ensuring the accuracy of the dryer blockage detection and simplifying the detection process. If it is not the first test after the filter is cleaned, the dryer filter detection procedure is performed normally.

[0105] Those skilled in the art will readily appreciate other embodiments of the present application after considering the specification and practicing the embodiments disclosed herein. The present application is intended to cover any variations, uses or adaptations of the present application, which follow the general principles of the present application and include common knowledge or customary technical means in the art that are not disclosed in the present application.

[0106] It should be understood that the above content is only a preferred exemplary embodiment of the present application and is not intended to limit the implementation scheme of the present application. A person skilled in the art can easily make corresponding changes or modifications based on the main concept and spirit of the present application. Therefore, the scope of protection of the present application shall be based on the scope of protection required by the claims.

Claims

1. A clothes dryer, It is characterized in that include: Box; A drying barrel and an air circulation system are arranged in the box; The air circulation system comprises an air intake assembly and an air exhaust assembly; the air intake assembly comprises a heater and an air intake duct, which are used to allow heated air to enter the drying barrel to perform heat exchange with the clothes in the drying barrel, and an anemometer is also provided in the air intake duct; the air exhaust assembly comprises a filter, an exhaust duct and an exhaust fan, and the gas after heat exchange is discharged from the exhaust duct after passing through the filter under the action of the exhaust fan, and the exhaust fan comprises an exhaust motor and a fan; A controller is electrically connected to the anemometer and the exhaust motor, respectively, and is used to execute a dryer filter detection program, wherein the dryer filter detection program includes the following steps: Controlling the exhaust motor to reach a preset speed and maintaining the preset speed; Detecting a current power value of the exhaust motor in the process of maintaining the preset speed, and a historical power value detected in the process of historically executing the dryer filter detection program, and judging whether the filter is clogged based on the current power value and the historical power value; and / or, obtaining a wind speed value of the anemometer, and judging whether the filter is clogged based on the wind speed value; If at least one of the above judgments is yes, it is determined that the filter is clogged.

2. The clothes dryer according to claim 1, It is characterized in that The clothes dryer filter detection procedure also includes the following steps: First, the wind speed value is used to determine whether the filter is clogged. If the determination is no, then the current power value and the historical power value are used to determine whether the filter is clogged.

3. The clothes dryer according to claim 1 or 2, It is characterized in that In the clothes dryer filter detection program, the step of judging whether the filter is clogged based on the wind speed value includes: If the wind speed value is below a preset wind speed value, it is determined that the filter is clogged, and the preset wind speed value represents the minimum wind speed value in the air inlet duct when the filter is clogged; If the wind speed value reaches above the preset wind speed value, it is determined that the filter is not blocked.

4. The clothes dryer according to claim 1 or 2, It is characterized in that In the clothes dryer filter detection program, the step of judging whether the filter is clogged based on the current power value and the historical power value includes: Calculating a difference between the current power value and the historical power value; If the difference is below a preset value, it is determined that the filter is clogged, the preset value represents the minimum power difference when the filter is clogged, and the preset value is a positive number; If the difference reaches or exceeds the preset value, it is determined that the filter is not clogged.

5. The clothes dryer according to claim 4, It is characterized in that The step of judging whether the filter screen is clogged based on the current power value and the historical power value further includes: If the difference is a negative value, it is determined that the filter screen is not clogged.

6. The clothes dryer according to claim 1, It is characterized in that The control is also configured to perform the following steps: Before starting the dryer filter detection program, determining whether the current program execution corresponds to the first detection after the filter is cleaned; If the judgment is yes, during the execution of the dryer filter detection program, whether the filter is blocked is judged only based on the wind speed value, and the power of the exhaust motor in the process of maintaining the preset speed is recorded; If the judgment is no, the dryer filter detection procedure is performed normally.

7. The clothes dryer according to claim 1, It is characterized in that The clothes dryer filter detection procedure also includes the following steps: When a start instruction of the dryer filter detection program is detected, determining whether the door of the dryer is closed; If the judgment is yes, the filter detection indicator light is controlled to display the detection state, and the steps of controlling the exhaust motor to reach the preset speed and maintaining the preset speed are executed.

8. The clothes dryer according to claim 6, It is characterized in that The clothes dryer filter detection procedure also includes the following steps: When it is determined that the filter is not clogged, the filter detection indicator light is controlled to display an end state, and the exhaust motor is controlled to stop running; when it is determined that the filter is clogged, the filter detection indicator light is controlled to display a prompt state.

9. The clothes dryer according to claim 1, It is characterized in that The controller also performs the following steps: If it is detected that the door of the dryer is opened and then closed after the drying process is finished, the filter detection candidate state is entered after waiting for a preset time; In the filter detection candidate state, the temperature value of the heater is detected, and when the temperature value is below a preset temperature value, the dryer filter detection program is started.

10. The clothes dryer according to claim 1, It is characterized in that The controller also performs the following steps: When it is determined that the filter is clogged, a reminder message is generated and sent to a pre-bound user terminal.

Citation Information

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