Electrode cleaning method, device, electronic device, and readable storage medium
By introducing a dust detection and cleaning module into the glow discharge odor removal device, the location of dust is detected by an infrared sensor and cleaned by laser or air blowing, which solves the problem of electrode dust accumulation affecting the odor removal effect and achieves efficient electrode cleaning and stable odor removal effect.
Patent Information
- Application Number
- CN202410731323.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-06
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2044-06-06
AI Technical Summary
Dust can easily accumulate on the electrodes after prolonged use, affecting the odor removal effect of glow discharge.
A dust detection module uses an infrared sensor to detect the location of dust on the electrode surface. A laser generator or a blower module is used to clean the dust on the electrode surface. Combined with guide rails and guide shafts, the electrodes can be rotated and moved to precisely clean the dust locations.
It effectively removes dust from the electrode surface, ensuring the continuous and efficient operation of the glow discharge odor removal device.
Smart Images

Figure CN118719708B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] Embodiments of the present application relate to the technical field of electrical appliances, and in particular to an electrode cleaning method, an electrode cleaning device, an electronic device, and a computer readable storage medium. BACKGROUND
[0002] It has been found through research that the use of electrodes to remove odors from the air can be effectively achieved by controlling electrode discharge using the principle of glow discharge. Specifically, the principle of glow discharge is to provide a high-voltage alternating current of 3-4 KV (kilo-volt) to the electrode, so that the cell structure of TVOC (Total Volatile Organic Compounds) and VOC (Volatile Organic Compounds) gases in the air is destroyed by high-voltage ionization to achieve the effect of removing odors.
[0003] However, if the electrodes are used to remove odors from the air for too long, dust and stains will accumulate on the electrodes, thereby affecting the odor removal effect of the electrodes. SUMMARY
[0004] Embodiments of the present application provide an electrode cleaning method, device, electronic device, and computer readable storage medium to solve the problem of dust accumulation on the electrodes affecting the odor removal effect of the electrodes.
[0005] An electrode cleaning method is disclosed in embodiments of the present application, which is applied to a glow discharge odor removal device, the glow discharge odor removal device comprising an odor removal module, a dust cleaning module, a dust detection module, and a guide rail, the odor removal module comprising the electrode, the dust cleaning module and the dust detection module being installed on the guide rail, the electrode being installed in the middle of the guide rail, one end of the electrode being installed with a guide shaft, the method comprising:
[0006] detecting whether there is dust on the electrode;
[0007] when it is detected that there is dust on the electrode, rotating the electrode by the guide shaft, and moving the dust detection module by moving the guide rail to detect the dust position of the electrode where there is dust by the dust detection module;
[0008] controlling the dust cleaning module to align with the dust position of the electrode to clean the dust on the dust position of the electrode.
[0009] Optionally, the detection of whether there is dust on the electrode comprises:
[0010] detecting the feedback current value of the electrode by a current sampling circuit;
[0011] If the feedback current value of the electrode is lower than the preset feedback current value, it is determined that dust exists on the electrode.
[0012] Optionally, the dust detection module comprises at least an infrared sensor; the infrared sensor comprises an infrared generator and an infrared receiver; the infrared receiver is placed on the guide rail above the electrode, and the infrared generator and the dust cleaning module are placed on the guide rail above the electrode.
[0013] Optionally, the moving of the dust detection module by moving the guide rails above and below the electrode to detect the dust position of the dust existing in the electrode by the dust detection module comprises:
[0014] The moving of the infrared generator and the infrared receiver by moving the guide rails above and below the electrode to detect the dust position of the dust existing in the entire electrode by the infrared generator and the infrared receiver.
[0015] Optionally, the moving of the infrared generator and the infrared receiver by moving the guide rails above and below the electrode to detect the dust position of the dust existing in the entire electrode by the infrared generator and the infrared receiver comprises:
[0016] When the infrared generator and the infrared receiver are moved by moving the guide rails above and below the electrode, the infrared generator is controlled to emit an infrared light beam outward, and an infrared feedback value of the infrared light beam received by the infrared receiver after passing through the electrode is acquired;
[0017] The dust position of the dust existing in the entire electrode is detected according to the infrared feedback value.
[0018] Optionally, the control of the infrared generator to emit an infrared light beam outward comprises:
[0019] Current environment information is determined, the emission characteristics of the infrared generator to emit an infrared light beam outward are determined according to the current environment information, and the infrared generator is controlled to emit an infrared light beam outward according to the emission characteristics; wherein the emission characteristics at least include intensity and frequency.
[0020] Optionally, the detection of the dust position of the dust existing in the entire electrode according to the infrared feedback value comprises:
[0021] When the infrared feedback value is greater than a preset infrared feedback value, the position of the electrode pointed to by the infrared generator and the infrared receiver is determined as the dust position of the dust existing in the electrode.
[0022] Optionally, the controlling the dust detection module to move by moving the guide rail comprises:
[0023] controlling the dust detection module to move by moving the guide rail;
[0024] stopping moving the guide rail when the time of controlling the dust detection module to move by moving the guide rail reaches a preset moving time or the distance of controlling the dust detection module to move by moving the guide rail reaches a preset moving distance, and continuing to control the dust detection module to move by moving the guide rail when the time of stopping moving the guide rail reaches a preset staying time.
[0025] Optionally, the controlling the electrode to rotate by the guide shaft comprises:
[0026] controlling the electrode to rotate 360 degrees by the guide shaft.
[0027] Optionally, the dust cleaning module at least comprises a laser generator, and the controlling the dust cleaning module to align the dust position of the electrode to clean the dust on the dust position of the electrode comprises:
[0028] controlling the laser generated by the laser generator to align the dust position of the electrode to clean the dust on the dust position of the electrode by heating.
[0029] Optionally, the dust cleaning module at least comprises a blowing module, and the controlling the dust cleaning module to align the dust position of the electrode to clean the dust on the dust position of the electrode comprises:
[0030] controlling the wind force generated by the blowing module to align the dust position of the electrode to clean the dust on the dust position of the electrode by wind force.
[0031] Optionally, after the controlling the dust cleaning module to align the dust position of the electrode to clean the dust on the dust position of the electrode, the method further comprises:
[0032] after cleaning the dust on the dust position of the electrode, returning to execute the steps of controlling the electrode to rotate by the guide shaft and controlling the dust detection module to move by moving the guide rail to detect the dust position of the electrode where the dust exists by the dust detection module.
[0033] This invention also discloses an electrode cleaning device applied to a glow discharge odor removal device. The glow discharge odor removal device includes an odor removal module, a dust cleaning module, a dust detection module, and a guide rail. The odor removal module includes the electrode. The dust cleaning module and the dust detection module are mounted on the guide rail. The electrode is mounted in the middle of the guide rail, and a guide shaft is mounted at one end of the electrode. The device includes:
[0034] A dust detection module is used to detect whether dust is present on the electrodes;
[0035] A dust location determination module is used to control the rotation of the electrode via the guide shaft when dust is detected on the electrode, and to control the movement of the dust detection module via the moving guide rail, so as to detect the location of dust in the electrode by the dust detection module.
[0036] A dust cleaning module is used to control the dust cleaning module to align with the dust position of the electrode in order to clean the dust on the dust position of the electrode.
[0037] Optionally, the dust detection module is used for:
[0038] The feedback current value of the electrode is detected by a current sampling circuit;
[0039] If the feedback current value of the electrode is lower than the preset feedback current value, it is determined that dust is detected on the electrode.
[0040] Optionally, the dust detection module includes at least an infrared sensor; the infrared sensor includes an infrared generator and an infrared receiver; the infrared receiver is placed on the guide rail above the electrode, and the infrared generator and the dust cleaning module are placed on the guide rail above the electrode.
[0041] Optionally, the dust location determination module is used for:
[0042] The infrared generator and the infrared receiver are moved by moving the guide rails above and below the electrode to detect the location of dust in the entire electrode.
[0043] Optionally, the dust location determination module is used for:
[0044] When the infrared generator and the infrared receiver are moved by moving the guide rails above and below the electrodes, the infrared generator is controlled to emit an infrared beam outward, and the infrared receiver is controlled to receive the infrared feedback value sensed by the infrared beam after passing through the electrodes.
[0045] The location of dust within the entire electrode is detected based on the infrared feedback value.
[0046] Optionally, the dust location determination module is used for:
[0047] The current environmental information is determined, and the emission characteristics of the infrared generator emitting an infrared beam are determined based on the current environmental information, so as to control the infrared generator to emit an infrared beam based on the emission characteristics; wherein, the emission characteristics include at least intensity and frequency.
[0048] Optionally, the dust location determination module is used for:
[0049] When the infrared feedback value is greater than the preset infrared feedback value, the position of the electrode pointed to by the infrared generator and the infrared receiver is determined as the dust position where dust exists in the electrode.
[0050] Optionally, the dust location determination module is used for:
[0051] The dust detection module is moved by moving the guide rail;
[0052] When the time for which the dust detection module is moved by moving the guide rail reaches a preset moving time or the distance for which the dust detection module is moved by moving the guide rail reaches a preset moving distance, the movement of the guide rail is stopped, and when the time for which the movement of the guide rail is stopped reaches a preset dwell time, the movement of the dust detection module is resumed by moving the guide rail.
[0053] Optionally, the dust location determination module is used for:
[0054] The electrode is rotated 360 degrees by the guide shaft.
[0055] Optionally, the dust cleaning module includes at least a laser generator, and the dust cleaning module is used for:
[0056] The laser generated by the laser generator is controlled to be aimed at the dust location on the electrode, so as to clean the dust on the electrode by heating.
[0057] Optionally, the dust cleaning module includes at least a blower module, the dust cleaning module being used for:
[0058] The airflow generated by the blower module is directed towards the dust location on the electrode to clean the dust on the electrode using airflow.
[0059] Optionally, the device further includes: a circulation module, used for:
[0060] After cleaning the dust from the dust location on the electrode, the process returns to the steps of controlling the electrode to rotate via the guide shaft and controlling the movement of the dust detection module via the moving guide rail, so as to detect the dust location on the electrode where dust exists via the dust detection module.
[0061] This invention also discloses an electronic device, including a processor, a communication interface, a memory, and a communication bus, wherein the processor, the communication interface, and the memory communicate with each other through the communication bus;
[0062] The memory is used to store computer programs;
[0063] When the processor executes a program stored in the memory, it implements the method described in the embodiments of the present invention.
[0064] This invention also discloses a computer program product stored in a storage medium, which is executed by at least one processor to implement the method described in this invention.
[0065] This invention also discloses a computer-readable storage medium storing instructions that, when executed by one or more processors, cause the processors to perform the methods described in this invention.
[0066] The embodiments of the present invention have the following advantages:
[0067] This invention provides an electrode cleaning method applied to a glow discharge odor removal device. The device includes an odor removal module, a dust cleaning module, a dust detection module, and a guide rail. The odor removal module includes the electrode. The dust cleaning module and the dust detection module are mounted on the guide rail, with the electrode positioned in the middle. A guide shaft is mounted on one end of the electrode. Specifically, first, the presence of dust on the electrode is detected. When dust is detected, the electrode is rotated via the guide shaft. Simultaneously, the dust detection module is moved via the guide rail. This allows the dust detection module to pinpoint the dust locations on the electrode. Subsequently, the dust cleaning module is positioned to clean the dust at those locations. This invention allows for simultaneous electrode rotation via the guide shaft and the movement of the dust detection module mounted on the guide rail. Therefore, it comprehensively detects all dust locations on the electrode, enabling the dust cleaning module to precisely clean the dust at those locations, ensuring effective odor removal. Attached Figure Description
[0068] Figure 1This is a flowchart of the steps of an electrode cleaning method provided in an embodiment of the present invention;
[0069] Figure 2 This is a schematic diagram of the structure of a glow discharge odor removal device provided in an embodiment of the present invention;
[0070] Figure 3 This is a flowchart illustrating the operation of a glow discharge odor removal device provided in an embodiment of the present invention.
[0071] Figure 4 This is a structural block diagram of an electrode cleaning device provided in an embodiment of the present invention;
[0072] Figure 5 This is a schematic diagram of the hardware structure of an electronic device that implements various embodiments of the present invention. Detailed Implementation
[0073] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0074] Reference Figure 1 This diagram illustrates a flowchart of an electrode cleaning method provided in an embodiment of the present invention, applied to a glow discharge odor removal device. The glow discharge odor removal device includes an odor removal module, a dust cleaning module, a dust detection module, and a guide rail. The odor removal module includes the electrode. The dust cleaning module and the dust detection module are mounted on the guide rail. The electrode is mounted in the middle of the guide rail, and a guide shaft is mounted at one end of the electrode. The method may specifically include the following steps:
[0075] Step 101: Detect whether there is dust on the electrode.
[0076] The glow discharge odor removal device in this embodiment of the invention can be applied to air purification systems with high-voltage electrodes that require purification using the glow discharge principle and have cleaning needs. The air purification system is an electrical appliance used to improve air quality. It can remove pollutants from the air, such as dust, pollen, smoke, odors, TVOC, and VOC.
[0077] Specifically, the glow discharge odor removal device may include an odor removal module, a dust cleaning module, a dust detection module, and a guide rail. The odor removal module may include electrodes (glow discharge high-voltage electrodes or discharge electrodes). The dust cleaning module and the dust detection module are mounted on the guide rail so that they can move with the guide rail. The electrodes can be mounted in the middle of the guide rail, and a guide shaft is mounted on one end of the electrodes (e.g., the tail end). This allows the electrodes to rotate with the rotation of the guide shaft, for example, the electrodes can rotate 360 degrees with the guide shaft.
[0078] In this embodiment of the invention, the presence of dust on the electrode can be detected periodically or in real time. For example, the presence of dust on the electrode can be detected at a fixed time every day, or the presence of dust on the electrode can be detected in real time. The frequency of detecting the presence of dust on the electrode can be set according to actual needs, and this embodiment of the invention does not impose any limitations on this.
[0079] Step 102: When dust is detected on the electrode, the electrode is rotated by the guide shaft, and the dust detection module is moved by moving the guide rail, so as to detect the location of dust in the electrode by the dust detection module.
[0080] Step 103: Control the dust cleaning module to align with the dust position of the electrode to clean the dust on the dust position of the electrode.
[0081] In this embodiment of the invention, when dust is detected on the electrode, the electrode can be rotated by the guide shaft. At the same time, the dust detection module can be moved by the moving guide rail. In this way, the dust detection module can comprehensively detect the dust locations on the electrode. Then, the dust cleaning module can be controlled to align with the dust locations on the electrode to clean the accumulated dust, thereby preventing the accumulated dust from affecting the odor removal effect of the electrode.
[0082] In one specific embodiment of the present invention, the dust detection module may include at least an infrared sensor; the infrared sensor may include an infrared generator for emitting an infrared beam and an infrared receiver for receiving the infrared beam passing through the electrode; the infrared receiver is placed on the guide rail above the electrode, and the infrared generator and the dust cleaning module are placed on the guide rail above the electrode; the dust cleaning module may be a laser generator, and the principle of the laser generator to remove dust is to use laser technology to focus the laser on the electrode, and to locally heat the dust and dirt on the electrode surface to make it fall off or melt, thereby achieving the effect of cleaning the dust on the electrode.
[0083] For example, refer to Figure 2This is a schematic diagram of a glow discharge odor removal device provided in an embodiment of the present invention. The structure consists of an odor removal module including an electrode, a laser generator, an infrared sensor, and a guide rail. A guide shaft is provided at the tail of the electrode, allowing the electrode to rotate 360 degrees. An infrared receiver is placed on the upper guide rail of the electrode, and an infrared generator and a laser generator are placed on the lower guide rail of the electrode. The upper and lower guide rails of the electrode move simultaneously. At this time, in conjunction with the electrode rotating 360 degrees with the guide shaft, the dust situation at each point on the electrode can be detected. If dust is found at a certain point on the electrode, that point can be taken as the location of the dust. Using laser cutting technology, the laser generated by the laser generator is focused on the electrode to locally heat the dust on the electrode surface, causing it to fall off or melt, thereby achieving the effect of removing dust.
[0084] This invention provides an electrode cleaning method applied to a glow discharge odor removal device. The device includes an odor removal module, a dust cleaning module, a dust detection module, and a guide rail. The odor removal module includes the electrode. The dust cleaning module and the dust detection module are mounted on the guide rail, with the electrode positioned in the middle. A guide shaft is mounted on one end of the electrode. Specifically, first, the presence of dust on the electrode is detected. When dust is detected, the electrode is rotated via the guide shaft. Simultaneously, the dust detection module is moved via the guide rail. This allows the dust detection module to pinpoint the dust locations on the electrode. Subsequently, the dust cleaning module is positioned to clean the dust at those locations. This invention allows for simultaneous electrode rotation via the guide shaft and the movement of the dust detection module mounted on the guide rail. Therefore, it comprehensively detects all dust locations on the electrode, enabling the dust cleaning module to precisely clean the dust at those locations, ensuring effective odor removal.
[0085] In one embodiment of the present invention, step 101, detecting whether dust is present on the electrode, may include:
[0086] The feedback current value of the electrode is detected by a current sampling circuit;
[0087] If the feedback current value of the electrode is lower than the preset feedback current value, it is determined that dust is detected on the electrode.
[0088] In this embodiment of the invention, when the deodorization module in the glow discharge deodorization device is working, the feedback current value of the electrode in the deodorization module can be detected by the current sampling circuit, and then the deodorization efficiency of the electrode and whether the deodorization module can work normally can be determined based on the feedback current value.
[0089] Through research and experimental verification, when dust accumulates on the electrode, the feedback current value of the electrode during operation will decrease due to the change in conductivity on the electrode. Therefore, the feedback current value of the electrode during normal operation will not be lower than the preset feedback current value (A value). When the feedback current value (X value) of the electrode is detected to be lower than the A value, the main control system of the glow discharge odor removal device determines that there may be dust accumulation on the electrode and needs to determine the location of the dust in the electrode for precise cleaning.
[0090] In one embodiment of the present invention, step 102, controlling the movement of the dust detection module by moving the guide rail, so as to detect the location of dust in the electrode by the dust detection module, includes:
[0091] The infrared generator and the infrared receiver are moved by moving the guide rails above and below the electrode to detect the location of dust in the entire electrode.
[0092] The dust detection module can be an infrared sensor, which may include a paired infrared generator for emitting an infrared beam and an infrared receiver for receiving the infrared beam passing through the electrode. The infrared sensor and the infrared receiver are respectively mounted on the guide rail above the electrode and the guide rail below the electrode. In this embodiment of the invention, the infrared generator and the infrared receiver can be moved by moving the guide rails above and below the electrode, thereby detecting the location of dust in the entire electrode. Specifically, in one embodiment of the invention, controlling the movement of the infrared generator and the infrared receiver by moving the guide rails above and below the electrode to detect the location of dust in the entire electrode may include:
[0093] When the infrared generator and the infrared receiver are moved by moving the guide rails above and below the electrodes, the infrared generator is controlled to emit an infrared beam outward, and the infrared receiver is controlled to receive the infrared feedback value sensed by the infrared beam after passing through the electrodes.
[0094] The location of dust within the entire electrode is detected based on the infrared feedback value.
[0095] In this embodiment of the invention, the infrared generator and the infrared receiver are respectively mounted on the guide rail above and below the electrode, allowing the infrared generator and the infrared receiver to move accordingly above and below the electrode along the guide rail. This ensures comprehensive detection of every point on the electrode. Specifically, when the infrared generator and the infrared receiver are moved by moving the guide rail above and below the electrode, the infrared generator emits an infrared beam. The infrared beam passes through the electrode surface, and the infrared receiver receives the infrared beam after it has passed through the electrode surface and generates an infrared feedback value. The magnitude of the infrared feedback value is affected by the state of the electrode surface. For example, if there is dust on the electrode surface, the dust on the electrode surface will scatter or absorb part of the infrared beam, causing a change in the infrared feedback value received by the infrared receiver. Subsequently, by analyzing the infrared feedback value, the location of dust on the electrode surface can be determined, and the electrode can be cleaned accurately based on the location of the dust.
[0096] In one embodiment of the present invention, controlling the infrared generator to emit an infrared beam includes:
[0097] The current environmental information is determined, and the emission characteristics of the infrared generator emitting an infrared beam are determined based on the current environmental information, so as to control the infrared generator to emit an infrared beam based on the emission characteristics; wherein, the emission characteristics include at least intensity and frequency.
[0098] In practical implementation, the infrared beam may be affected by the current environment. For example, the concentration of particles in the air can affect the propagation of the infrared beam in the air, thus affecting the accuracy of the dust location detection results based on the infrared sensor. Therefore, in this embodiment of the invention, the main control system of the glow discharge odor removal device can acquire relevant information about the current environment, such as lighting conditions and the concentration of particles in the air, and determine the emission characteristics of the infrared beam emitted by the infrared generator based on the current environmental information. The emission characteristics may include at least intensity and frequency. For example, in an environment with a high concentration of particles in the air, the intensity of the infrared beam emitted by the infrared generator can be increased; in an environment with strong lighting, the frequency of the infrared beam emitted by the infrared generator can be adjusted to reduce interference from the lighting.
[0099] In one embodiment of the present invention, detecting the location of dust in the entire electrode based on the infrared feedback value includes:
[0100] When the infrared feedback value is greater than the preset infrared feedback value, the position of the electrode pointed to by the infrared generator and the infrared receiver is determined as the dust position where dust exists in the electrode.
[0101] In this embodiment of the invention, during the movement of the guide rail, the infrared sensor continuously detects the dust condition at each point on the electrode surface. When the infrared receiver receives an infrared feedback value (T value) generated by the infrared beam sent by the infrared generator through the electrode surface, which is greater than the preset infrared feedback value (B value), it indicates that there is a lot of dust on the electrode surface and cleaning is required. The larger the T value, the more dust on the electrode surface. Of course, if the infrared feedback value (T value) is less than or equal to the preset infrared feedback value (B value), it indicates that there is no dust or very little dust on the electrode surface, and cleaning is not required.
[0102] In one embodiment of the present invention, controlling the movement of the dust detection module by moving the guide rail includes:
[0103] The dust detection module is moved by moving the guide rail;
[0104] When the time for which the dust detection module is moved by moving the guide rail reaches a preset moving time or the distance for which the dust detection module is moved by moving the guide rail reaches a preset moving distance, the movement of the guide rail is stopped, and when the time for which the movement of the guide rail is stopped reaches a preset dwell time, the movement of the dust detection module is resumed by moving the guide rail.
[0105] In this embodiment of the invention, the main control system can control the dust detection module to move and pause via a guide rail. Specifically, the main control system moves the dust detection module by controlling the movement of the guide rail, thereby comprehensively detecting the electrode surface. The main control system can preset a movement time and a pause time. The movement time needs to ensure that the electrode rotates 360 degrees via the guide rail. During the process of controlling the movement of the dust detection module via the guide rail, the movement of the guide rail can be stopped when the movement time reaches the preset movement time (e.g., 3 seconds) or the distance moved by the dust detection module reaches the preset movement distance (e.g., 3 centimeters). Subsequently, if the time of stopping the movement of the guide rail reaches the preset pause time (e.g., 3 seconds), the movement of the dust detection module can be resumed via the guide rail. This cycle continues until the comprehensive detection of the electrode is completed.
[0106] In one embodiment of the present invention, the dust cleaning module includes at least a laser generator and a blower module. Controlling the dust cleaning module to align with the dust location of the electrode to clean the dust at that location includes:
[0107] The laser generated by the laser generator is controlled to be aimed at the dust location on the electrode, so as to clean the dust on the dust location on the electrode by heating.
[0108] The airflow generated by the blower module is directed towards the dust location on the electrode to clean the dust on the electrode using airflow.
[0109] In one alternative embodiment, the dust cleaning module can be a laser generator. The principle of the laser generator to remove dust is to use laser technology to focus the laser on the dust position of the electrode, and to locally heat the dust and dirt on the electrode surface to make it fall off or melt, thereby achieving the effect of cleaning the dust on the electrode by heating.
[0110] In another alternative embodiment, the dust cleaning module can be a blower module. The blower module can generate high-speed airflow through a fan and concentrate the airflow on the dusty area of the electrode, causing the dust and dirt on the electrode surface to loosen, deform and fall off, thereby achieving the effect of cleaning the dust on the electrode by airflow.
[0111] It should be noted that the dust cleaning module in this embodiment of the invention is not limited to the laser generator and the blower module. Other methods can also be used to clean the dust on the electrodes. Furthermore, one or more dust cleaning modules can be installed. When multiple dust cleaning modules are available, one or more dust cleaning modules can be selected to clean the electrodes based on the current environment, the amount of dust, or user selection, thereby achieving a better cleaning effect.
[0112] In one embodiment of the present invention, after controlling the dust cleaning module to align with the dust position of the electrode to clean the dust on the dust position of the electrode, the method further includes:
[0113] After cleaning the dust from the dust location on the electrode, the process returns to the steps of controlling the electrode to rotate via the guide shaft and controlling the movement of the dust detection module via the moving guide rail, so as to detect the dust location on the electrode where dust exists via the dust detection module.
[0114] In this embodiment of the invention, after detecting a dusty location on the electrode, the dust at that location can be cleaned. After cleaning the dust at that location, for example, assuming the dust detection module is an infrared sensor, if the infrared feedback value detected by the infrared sensor is less than or equal to a preset infrared feedback value, it can be considered that the dust at that location has been cleaned. The dust detection module can then be moved by controlling the moving guide rail to detect other dusty locations on the electrode until all the dust on the electrode has been cleaned.
[0115] Of course, in this embodiment of the invention, all dusty locations in the electrodes can be detected and then cleaned together by the dust cleaning module. This embodiment of the invention does not impose any limitations on this.
[0116] In order to solve the problem that the electrodes in the odor removal module of the glow discharge odor removal device in the prior art are prone to dust accumulation due to long service time, which affects the odor removal effect of the odor removal module, the present invention adopts a combination of dust detection and laser cutting dust removal technology, so as to achieve the purpose of not affecting the odor removal effect of the electrodes due to surface dust.
[0117] To enable those skilled in the art to better understand the embodiments of the present invention, a complete example of electrode cleaning is described below. (Refer to...) Figure 3 This is a flowchart illustrating the operation of a glow discharge odor removal device provided in an embodiment of the present invention. The specific process is as follows:
[0118] When the odor removal module of the glow discharge odor removal device is working, the odor removal efficiency and whether the odor removal module is working properly can be detected by the feedback current value of the electrodes in the odor removal module through the current sampling circuit. When the electrodes are working normally, the feedback current value (X value) will not be lower than the preset feedback current value (A value). When the feedback current value is lower than the feedback current value A value, the main control system judges that there may be dust accumulation on the electrode and it needs to be cleaned. At this time, the motor moves the guide rail to control the movement of the infrared sensor. When the guide rail moves, it needs to pause for a preset time (e.g., 3 seconds) after every preset movement distance (e.g., 3 cm) to ensure that the electrode rotates one revolution. During the movement of the guide rail, the infrared sensor continuously detects the dust situation at each point on the electrode. When the infrared feedback value (T value) obtained by the infrared sensor is greater than the preset infrared feedback value (B value), it indicates that there is more dust on the electrode surface at this point. The larger the infrared feedback value (T value), the more dust there is. At this time, the laser generator is turned on simultaneously, and the laser is focused on this point to locally heat the dust on the electrode surface, causing it to fall off or melt. The heating time for each round can be t. After each round of heating, the infrared feedback value (T value) of the infrared sensor is judged. This cycle continues until the infrared feedback value (T value) is less than or equal to the preset infrared feedback value (B value). Then, the guide rail continues to move forward to detect the remaining position of the electrode until the detection and cleaning are completed.
[0119] It should be noted that, for the sake of simplicity, the method embodiments are all described as a series of actions. However, those skilled in the art should understand that the embodiments of the present invention are not limited to the described order of actions, because according to the embodiments of the present invention, some steps can be performed in other orders or simultaneously. Furthermore, those skilled in the art should also understand that the embodiments described in the specification are preferred embodiments, and the actions involved are not necessarily essential to the embodiments of the present invention.
[0120] Reference Figure 4 This diagram illustrates a structural block diagram of an electrode cleaning device provided in an embodiment of the present invention. The device is applied to a glow discharge odor removal device, which includes an odor removal module, a dust cleaning module, a dust detection module, and a guide rail. The odor removal module includes the electrode. The dust cleaning module and the dust detection module are mounted on the guide rail. The electrode is mounted in the middle of the guide rail, and a guide shaft is mounted at one end of the electrode. Specifically, the device may include the following modules:
[0121] Dust detection module 401 is used to detect whether dust is present on the electrode;
[0122] The dust location determination module 402 is used to control the rotation of the electrode via the guide shaft when dust is detected on the electrode, and to control the movement of the dust detection module via the moving guide rail, so as to detect the location of dust in the electrode by the dust detection module.
[0123] The dust cleaning module 403 is used to control the dust cleaning module to align with the dust position of the electrode in order to clean the dust on the dust position of the electrode.
[0124] In one embodiment of the present invention, the dust detection module is used for:
[0125] The feedback current value of the electrode is detected by a current sampling circuit;
[0126] If the feedback current value of the electrode is lower than the preset feedback current value, it is determined that dust is detected on the electrode.
[0127] In one embodiment of the present invention, the dust detection module includes at least an infrared sensor; the infrared sensor includes an infrared generator and an infrared receiver; the infrared receiver is placed on the guide rail above the electrode, and the infrared generator and the dust cleaning module are placed on the guide rail above the electrode.
[0128] In one embodiment of the present invention, the dust location determination module 402 is used for:
[0129] The infrared generator and the infrared receiver are moved by moving the guide rails above and below the electrode to detect the location of dust in the entire electrode.
[0130] In one embodiment of the present invention, the dust location determination module 402 is used for:
[0131] When the infrared generator and the infrared receiver are moved by moving the guide rails above and below the electrodes, the infrared generator is controlled to emit an infrared beam outward, and the infrared receiver is controlled to receive the infrared feedback value sensed by the infrared beam after passing through the electrodes.
[0132] The location of dust within the entire electrode is detected based on the infrared feedback value.
[0133] In one embodiment of the present invention, the dust location determination module 402 is used for:
[0134] The current environmental information is determined, and the emission characteristics of the infrared generator emitting an infrared beam are determined based on the current environmental information, so as to control the infrared generator to emit an infrared beam based on the emission characteristics; wherein, the emission characteristics include at least intensity and frequency.
[0135] In one embodiment of the present invention, the dust location determination module 402 is used for:
[0136] When the infrared feedback value is greater than the preset infrared feedback value, the position of the electrode pointed to by the infrared generator and the infrared receiver is determined as the dust position where dust exists in the electrode.
[0137] In one embodiment of the present invention, the dust location determination module 402 is used for:
[0138] The dust detection module is moved by moving the guide rail;
[0139] When the time for which the dust detection module is moved by moving the guide rail reaches a preset moving time or the distance for which the dust detection module is moved by moving the guide rail reaches a preset moving distance, the movement of the guide rail is stopped, and when the time for which the movement of the guide rail is stopped reaches a preset dwell time, the movement of the dust detection module is resumed by moving the guide rail.
[0140] In one embodiment of the present invention, the dust location determination module 402 is used for:
[0141] The electrode is rotated 360 degrees by the guide shaft.
[0142] In one embodiment of the present invention, the dust cleaning module includes at least a laser generator, and the dust cleaning module 403 is used for:
[0143] The laser generated by the laser generator is controlled to be aimed at the dust location on the electrode, so as to clean the dust on the electrode by heating.
[0144] In one embodiment of the present invention, the dust cleaning module includes at least a blower module, and the dust cleaning module 403 is used for:
[0145] The airflow generated by the blower module is directed towards the dust location on the electrode to clean the dust on the electrode using airflow.
[0146] In one embodiment of the present invention, the device further includes: a circulation module, used for:
[0147] After cleaning the dust from the dust location on the electrode, the process returns to the steps of controlling the electrode to rotate via the guide shaft and controlling the movement of the dust detection module via the moving guide rail, so as to detect the dust location on the electrode where dust exists via the dust detection module.
[0148] As the device embodiment is basically similar to the method embodiment, the description is relatively simple, and relevant parts can be found in the description of the method embodiment.
[0149] In addition, this invention also provides an electronic device, including: a processor, a memory, and a computer program stored in the memory and executable on the processor. When the computer program is executed by the processor, it implements the various processes of the above-described electrode cleaning method embodiments and achieves the same technical effect. To avoid repetition, it will not be described again here.
[0150] This invention also provides a computer-readable storage medium storing a computer program. When executed by a processor, the computer program implements the various processes of the above-described electrode cleaning method embodiments and achieves the same technical effects. To avoid repetition, it will not be described again here. The computer-readable storage medium may be a read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk.
[0151] This invention also provides a computer program product, which is stored in a storage medium and executed by at least one processor to implement the various processes of the electrode cleaning method embodiments described above, and can achieve the same technical effects. To avoid repetition, it will not be described again here.
[0152] Figure 5 A schematic diagram of the hardware structure of an electronic device for implementing various embodiments of the present invention.
[0153] The electronic device 500 includes, but is not limited to, components such as: a radio frequency unit 501, a network module 502, an audio output unit 503, an input unit 504, a sensor 505, a display unit 506, a user input unit 507, an interface unit 508, a memory 509, a processor 510, and a power supply 511. Those skilled in the art will understand that... Figure 5 The electronic device structures shown are not intended to limit the electronic device. An electronic device may include more or fewer components than shown, or combine certain components, or have different component arrangements. In embodiments of the present invention, the electronic device includes, but is not limited to, mobile phones, tablet computers, laptops, PDAs, in-vehicle terminals, wearable devices, and pedometers.
[0154] It should be understood that, in this embodiment of the invention, the radio frequency unit 501 can be used for receiving and transmitting signals during information transmission or calls. Specifically, it receives downlink data from the base station and processes it with the processor 510; additionally, it transmits uplink data to the base station. Typically, the radio frequency unit 501 includes, but is not limited to, an antenna, at least one amplifier, a transceiver, a coupler, a low-noise amplifier, a duplexer, etc. Furthermore, the radio frequency unit 501 can also communicate with networks and other devices through a wireless communication system.
[0155] The electronic device provides users with wireless broadband internet access through the network module 502, such as helping users send and receive emails, browse web pages, and access streaming media.
[0156] The audio output unit 503 can convert audio data received by the radio frequency unit 501 or the network module 502 or stored in the memory 509 into audio signals and output them as sound. Furthermore, the audio output unit 503 can also provide audio output related to specific functions performed by the electronic device 500 (e.g., call signal reception sound, message reception sound, etc.). The audio output unit 503 includes a speaker, a buzzer, and a receiver, etc.
[0157] Input unit 504 is used to receive audio or video signals. Input unit 504 may include a graphics processing unit (GPU) 5041 and a microphone 5042. The GPU 5041 processes image data of still images or videos acquired by an image capture device (such as a camera) in video capture mode or image capture mode. The processed image frames can be displayed on display unit 506. The image frames processed by GPU 5041 can be stored in memory 509 (or other storage medium) or transmitted via radio frequency unit 501 or network module 502. Microphone 5042 can receive sound and process such sound into audio data. The processed audio data can be converted into a format that can be transmitted to a mobile communication base station via radio frequency unit 501 in telephone call mode.
[0158] The electronic device 500 also includes at least one sensor 505, such as a light sensor, a motion sensor, and other sensors. Specifically, the light sensor includes an ambient light sensor and a proximity sensor. The ambient light sensor can adjust the brightness of the display panel 5061 according to the ambient light level, and the proximity sensor can turn off the display panel 5061 and / or backlight when the electronic device 500 is moved to the ear. As a type of motion sensor, an accelerometer sensor can detect the magnitude of acceleration in various directions (generally three axes). When stationary, it can detect the magnitude and direction of gravity and can be used to identify the posture of the electronic device (such as landscape / portrait switching, related games, magnetometer posture calibration), vibration recognition related functions (such as pedometer, tapping), etc. The sensor 505 may also include a fingerprint sensor, pressure sensor, iris sensor, molecular sensor, gyroscope, barometer, hygrometer, thermometer, infrared sensor, etc., which will not be described in detail here.
[0159] The display unit 506 is used to display information input by the user or information provided to the user. The display unit 506 may include a display panel 5061, which may be configured in the form of a liquid crystal display (LCD), an organic light-emitting diode (OLED), or the like.
[0160] User input unit 507 can be used to receive input numerical or character information, and to generate key signal inputs related to user settings and function control of electronic devices. Specifically, user input unit 507 includes a touch panel 5071 and other input devices 5072. Touch panel 5071, also known as a touch screen, can collect touch operations performed by the user on or near it (such as operations performed by the user using a finger, stylus, or any suitable object or accessory on or near touch panel 5071). Touch panel 5071 may include two parts: a touch detection device and a touch controller. The touch detection device detects the user's touch position and the signal generated by the touch operation, and transmits the signal to the touch controller; the touch controller receives touch information from the touch detection device, converts it into touch point coordinates, and sends it to the processor 510, which receives and executes commands from the processor 510. In addition, touch panel 5071 can be implemented using various types such as resistive, capacitive, infrared, and surface acoustic wave. Besides touch panel 5071, user input unit 507 may also include other input devices 5072. Specifically, other input devices 5072 may include, but are not limited to, physical keyboards, function keys (such as volume control buttons, power buttons, etc.), trackballs, mice, joysticks, etc., which will not be described in detail here.
[0161] Furthermore, the touch panel 5071 can cover the display panel 5061. When the touch panel 5071 detects a touch operation on or near it, it transmits the information to the processor 510 to determine the type of touch event. Subsequently, the processor 510 provides corresponding visual output on the display panel 5061 based on the type of touch event. Although in Figure 5 In this embodiment, the touch panel 5071 and the display panel 5061 are two independent components to realize the input and output functions of the electronic device. However, in some embodiments, the touch panel 5071 and the display panel 5061 can be integrated to realize the input and output functions of the electronic device. The specific implementation is not limited here.
[0162] Interface unit 508 serves as an interface for connecting external devices to electronic device 500. For example, external devices may include a wired or wireless headphone port, an external power supply (or battery charger) port, a wired or wireless data port, a memory card port, a port for connecting a device with an identification module, an audio input / output (I / O) port, a video I / O port, a headphone port, and so on. Interface unit 508 can be used to receive input from external devices (e.g., data, power, etc.) and transmit the received input to one or more components within electronic device 500, or it can be used to transmit data between electronic device 500 and external devices.
[0163] The memory 509 can be used to store software programs and various data. The memory 509 may primarily include a program storage area and a data storage area. The program storage area may store the operating system, applications required for at least one function (such as sound playback, image playback, etc.), etc.; the data storage area may store data created based on the use of the mobile phone (such as audio data, phonebook, etc.). Furthermore, the memory 509 may include high-speed random access memory, and may also include non-volatile memory, such as at least one disk storage device, flash memory device, or other volatile solid-state storage device.
[0164] The processor 510 is the control center of the electronic device. It connects various parts of the electronic device via various interfaces and lines. By running or executing software programs and / or modules stored in the memory 509, and by calling data stored in the memory 509, it performs various functions and processes data, thereby providing overall monitoring of the electronic device. The processor 510 may include one or more processing units; preferably, the processor 510 may integrate an application processor and a modem processor. The application processor mainly handles the operating system, user interface, and applications, while the modem processor mainly handles wireless communication. It is understood that the modem processor may not be integrated into the processor 510.
[0165] The electronic device 500 may also include a power supply 511 (such as a battery) for supplying power to various components. Preferably, the power supply 511 can be logically connected to the processor 510 through a power management system, thereby enabling functions such as managing charging, discharging, and power consumption through the power management system.
[0166] In addition, the electronic device 500 includes some functional modules not shown, which will not be described in detail here.
[0167] It should be noted that, in this document, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Unless otherwise specified, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element.
[0168] Through the above description of the embodiments, those skilled in the art can clearly understand that the methods of the above embodiments can be implemented by means of software plus necessary general-purpose hardware platforms. Of course, they can also be implemented by hardware, but in many cases the former is a better implementation method. Based on this understanding, the technical solution of the present invention, in essence, or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product is stored in a storage medium (such as ROM / RAM, magnetic disk, optical disk), and includes several instructions to cause a terminal (which may be a mobile phone, computer, server, air conditioner, or network device, etc.) to execute the methods described in the various embodiments of the present invention.
[0169] The embodiments of the present invention have been described above with reference to the accompanying drawings. However, the present invention is not limited to the specific embodiments described above. The specific embodiments described above are merely illustrative and not restrictive. Those skilled in the art can make many other forms under the guidance of the present invention without departing from the spirit and scope of the claims, and all of these forms are within the protection scope of the present invention.
[0170] Those skilled in the art will recognize that the units and algorithm steps of the various examples described in conjunction with the embodiments disclosed in this invention can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are implemented in hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementations should not be considered beyond the scope of this invention.
[0171] Those skilled in the art will understand that, for the sake of convenience and brevity, the specific working processes of the systems, devices, and units described above can be referred to the corresponding processes in the foregoing method embodiments, and will not be repeated here.
[0172] In the embodiments provided in this application, it should be understood that the disclosed apparatus and methods can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative. For instance, the division of units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces; the indirect coupling or communication connection between apparatuses or units may be electrical, mechanical, or other forms.
[0173] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.
[0174] In addition, the functional units in the various embodiments of the present invention can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit.
[0175] If the aforementioned functions are implemented as software functional units and sold or used as independent products, they can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of this invention, essentially, or the part that contributes to the prior art, or a portion of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of this invention. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, ROM, RAM, magnetic disks, or optical disks.
[0176] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.
Claims
1. An electrode cleaning method, characterized in that, An application is made in a glow discharge odor removal device, the glow discharge odor removal device comprising an odor removal module, a dust cleaning module, a dust detection module, and a guide rail. The odor removal module includes the electrode. The dust cleaning module and the dust detection module are mounted on the guide rail. The dust detection module includes at least an infrared sensor. The infrared sensor includes an infrared generator and an infrared receiver. The infrared receiver is placed on the guide rail above the electrode, and the infrared generator and the dust cleaning module are placed on the guide rail below the electrode. The electrode is mounted in the middle of the guide rail, and a guide shaft is mounted at one end of the electrode. The method includes: Detect whether there is dust on the electrode; When dust is detected on the electrode, the electrode is rotated by the guide shaft, and the dust detection module is moved by moving the guide rail, so as to detect the location of dust in the electrode by the dust detection module, including: controlling the infrared generator and the infrared receiver to move by simultaneously moving the guide rails above and below the electrode, so as to detect the location of dust in the entire electrode by the infrared generator and the infrared receiver; The dust cleaning module is controlled to align with the dust location on the electrode in order to clean the dust on the dust location on the electrode.
2. The method according to claim 1, characterized in that, The detection of whether dust is present on the electrode includes: The feedback current value of the electrode is detected by a current sampling circuit; If the feedback current value of the electrode is lower than the preset feedback current value, it is determined that dust is detected on the electrode.
3. The method according to claim 1, characterized in that, The method of controlling the movement of the infrared generator and the infrared receiver by moving the guide rails above and below the electrode, so as to detect the location of dust in the entire electrode through the infrared generator and the infrared receiver, includes: When the infrared generator and the infrared receiver are moved by moving the guide rails above and below the electrodes, the infrared generator is controlled to emit an infrared beam outward, and the infrared receiver is controlled to receive the infrared feedback value sensed by the infrared beam after passing through the electrodes. The location of dust within the entire electrode is detected based on the infrared feedback value.
4. The method according to claim 1, characterized in that, The control of the infrared generator to emit an infrared beam includes: The current environmental information is determined, and the emission characteristics of the infrared generator emitting an infrared beam are determined based on the current environmental information, so as to control the infrared generator to emit an infrared beam based on the emission characteristics; wherein, the emission characteristics include at least intensity and frequency.
5. The method according to claim 3, characterized in that, The step of detecting the location of dust in the entire electrode based on the infrared feedback value includes: When the infrared feedback value is greater than the preset infrared feedback value, the position of the electrode pointed to by the infrared generator and the infrared receiver is determined as the dust position where dust exists in the electrode.
6. The method according to claim 1, characterized in that, The method of controlling the movement of the dust detection module by moving the guide rail includes: The dust detection module is moved by moving the guide rail; When the time for which the dust detection module is moved by moving the guide rail reaches a preset moving time or the distance for which the dust detection module is moved by moving the guide rail reaches a preset moving distance, the movement of the guide rail is stopped, and when the time for which the movement of the guide rail is stopped reaches a preset dwell time, the movement of the dust detection module is resumed by moving the guide rail.
7. The method according to claim 1, characterized in that, The control of the electrode rotation via the guide shaft includes: The electrode is rotated 360 degrees by the guide shaft.
8. The method according to claim 1, characterized in that, The dust cleaning module includes at least a laser generator. Controlling the dust cleaning module to align with the dust location on the electrode to clean the dust at that location includes: The laser generated by the laser generator is controlled to be aimed at the dust location on the electrode, so as to clean the dust on the electrode by heating.
9. The method according to claim 1, characterized in that, The dust cleaning module includes at least a blowing module. Controlling the dust cleaning module to align with the dust location on the electrode to clean the dust on the electrode includes: The airflow generated by the blower module is directed towards the dust location on the electrode to clean the dust on the electrode using airflow.
10. The method according to claim 1, characterized in that, After the dust cleaning module is aligned with the dust location of the electrode to clean the dust on the electrode, the method further includes: After cleaning the dust from the dust location on the electrode, the process returns to the steps of controlling the electrode to rotate via the guide shaft and controlling the movement of the dust detection module via the moving guide rail, so as to detect the dust location on the electrode where dust exists via the dust detection module.
11. An electrode cleaning device, characterized in that, An application is made in a glow discharge odor removal device, which includes an odor removal module, a dust cleaning module, a dust detection module, and a guide rail. The odor removal module includes an electrode. The dust cleaning module and the dust detection module are mounted on the guide rail. The dust detection module includes at least an infrared sensor. The infrared sensor includes an infrared generator and an infrared receiver. The infrared receiver is placed on the guide rail above the electrode, and the infrared generator and the dust cleaning module are placed on the guide rail below the electrode. The electrode is mounted in the middle of the guide rail, and a guide shaft is mounted on one end of the electrode. The device includes: A dust detection module is used to detect whether dust is present on the electrodes; A dust location determination module is used to control the rotation of the electrode via the guide shaft when dust is detected on the electrode, and to control the movement of the dust detection module by moving the guide rail, so as to detect the dust location of dust in the electrode by the dust detection module, including: controlling the movement of the infrared generator and the infrared receiver by simultaneously moving the guide rails above and below the electrode, so as to detect the dust location of dust in the entire electrode by the infrared generator and the infrared receiver; A dust cleaning module is used to control the dust cleaning module to align with the dust position of the electrode in order to clean the dust on the dust position of the electrode.
12. An electronic device, characterized in that, It includes a processor, a communication interface, a memory, and a communication bus, wherein the processor, the communication interface, and the memory communicate with each other through the communication bus; The memory is used to store computer programs; When the processor executes a program stored in the memory, it implements the method as described in any one of claims 1-10.
13. A computer-readable storage medium having instructions stored thereon that, when executed by one or more processors, cause the processors to perform the method as described in any one of claims 1-10.
Citation Information
Patent Citations
Cleaning system and method
CN103962347A
Ozone generator control method and device, electronic equipment and chopping board sterilizer
CN116281867A