Deinsectization control method and system and electronic equipment

By installing insect sensors and protective heating grids at the air conditioner drain pipe, combined with a self-cleaning mode and fan, the problem of pests entering the air conditioner by flowing backwards is solved, achieving efficient pest control and self-cleaning, and improving the user experience.

CN121297129APending Publication Date: 2026-01-09NINGBO AUX ELECTRIC CO LTD +1
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Patent Information

Application Number
CN202511849798.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-09
Publication Date
2026-01-09

AI Technical Summary

Technical Problem

Pests can enter the air conditioner through the drain pipe, causing hygiene problems, equipment malfunctions, and odors, thus affecting the user experience.

Method used

A mosquito sensor and insect-killing module are installed at the air conditioner drain pipe. The protective heating grid kills mosquitoes, and the mosquitoes are carbonized in the self-cleaning mode. The residue is discharged by the fan, thus achieving self-cleaning.

Benefits of technology

It effectively prevents pests from entering the air conditioner, keeps the equipment clean, avoids equipment malfunctions and odors, and provides all-weather intelligent protection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a deinsectization control method and system and electronic equipment, and relates to the technical field of deinsectization. The control method is applied to a controller of the deinsectization control system, the deinsectization control system further comprises a mosquito sensor and a deinsectization execution module, the controller is electrically connected with the mosquito sensor and the deinsectization execution module, and the mosquito sensor and the deinsectization execution module are both installed at a drainage pipe of the electronic equipment. Controlling the deinsectization execution module to rise to a first temperature, so that the deinsectization execution module enters a deinsectization mode; when a set time passes, the temperature of the deinsectization execution module is controlled to rise to a second temperature, so that the deinsectization execution module enters a self-cleaning mode; wherein the second temperature is higher than the first temperature, and the second temperature is the temperature for carbonizing the mosquitoes. The deinsectization control method and system and the electronic equipment provided by the invention have the effect of preventing mosquitoes from retrograding into the air conditioner through the drainage pipe.
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Description

Technical Field

[0001] This application relates to the field of pest control technology, and more specifically, to a pest control method, system, and electronic device. Background Technology

[0002] With economic development and technological advancements, people's demands for a higher standard of living are constantly increasing. Currently, air conditioning has become an essential appliance for most households.

[0003] Air conditioners require drain pipes to remove cooling water during operation. During installation, these drain pipes are typically connected directly to the sewer or left exposed outdoors. Regardless of the method, pests can easily travel up the drain pipe into the air conditioner. Furthermore, the heat generated inside air conditioners provides ideal habitats for pests, making this process of pests traveling up the drain pipe into the air conditioner increasingly common.

[0004] The invasion of pests not only causes psychological discomfort and hygiene problems for users, but also leads to equipment malfunctions, performance degradation, and unpleasant odors, affecting product evaluation and reputation.

[0005] In summary, existing technologies have the problem of pests traveling backwards through drain pipes into the air conditioner. Summary of the Invention

[0006] The purpose of this application is to provide a pest control method, system, and electronic device to solve the problem of pests traveling back into the air conditioner through the drain pipe, which exists in the prior art.

[0007] To address the aforementioned problems, in a first aspect, this application provides a pest control method. The pest control method is applied to the controller of a pest control system, which further includes a mosquito sensor and a pest control execution module. The controller is electrically connected to both the mosquito sensor and the pest control execution module. Both the mosquito sensor and the pest control execution module are installed at the drain pipe of the electronic device. The method includes: When mosquito information transmitted by the mosquito sensor is acquired, the insect removal execution module is controlled to rise to the first temperature so that the insect removal execution module enters the insect removal mode. When a set time has elapsed, the insect-removal execution module is controlled to rise to a second temperature so that the insect-removal execution module enters a self-cleaning mode; wherein, the second temperature is greater than the first temperature, and the second temperature is the temperature at which mosquitoes are carbonized.

[0008] Because the insect control system provided in this application is equipped with a mosquito sensor and an insect removal execution module, when mosquitoes are detected entering the drain pipe, the insect removal execution module can remove them, thereby preventing mosquitoes from entering the air conditioner through the drain pipe. At the same time, the insect removal execution module of this application also has a self-cleaning mode. By carbonizing the mosquitoes in the self-cleaning mode, the mosquitoes can be removed more easily, preventing them from clogging the drain pipe.

[0009] Optionally, the insect-removing execution module includes a power drive circuit and a protective heating grid. The power drive circuit is electrically connected to the controller and the protective heating grid, respectively, and the protective heating grid is installed at the drain pipe of the electronic device. The step of controlling the insect-removing execution module to rise to the first temperature includes: The power drive circuit is controlled to apply a first current to the protective heating grid for 2-5 seconds, so that the surface temperature of the protective heating grid rises to a first temperature. The steps of controlling the insect-removal execution module to rise to the second temperature include: The power drive circuit is controlled to apply a second current to the protective heating grid for 8 to 15 seconds, so that the surface temperature of the protective heating grid rises to a second temperature.

[0010] By setting up a power drive circuit and a protective heating grid, the protective heating grid can be heated quickly. At the same time, the grid can prevent mosquitoes from entering the air conditioner and will not affect the drain pipe, which is conducive to the efficient removal of mosquitoes.

[0011] Optionally, the first temperature is 100℃~150℃, and the second temperature is 400℃~550℃.

[0012] By setting a first temperature and a second temperature with a large temperature difference, it is possible to ensure that mosquitoes are killed at the first temperature and that their bodies are carbonized at the second temperature, thus achieving better self-cleaning.

[0013] Optionally, the pest control system further includes a communication module electrically connected to the controller, and the communication module is used for communication with a terminal device; after the step of controlling the pest control execution module to rise to the first temperature, the method further includes: The system acquires the operating parameters and pest control logs of the pest control system and sends the operating parameters and pest control logs to the terminal device through the communication module.

[0014] By setting up a communication module, it is easier to communicate with the user's terminal devices, allowing users to more easily monitor the operation of the pest control system in real time.

[0015] Optionally, the pest control system further includes a flow rate sensor, which is installed near the pest control execution module and electrically connected to the controller; the method further includes: Obtain the flow velocity information sent by the flow velocity sensor; When the flow rate information is less than a set threshold, an early warning message is generated and sent to the terminal device through the communication module.

[0016] By installing a flow rate sensor, it is possible to determine whether the drain pipe is blocked. When the drain pipe is blocked, a warning message is sent to the terminal device in real time via the communication module so that the user can deal with it in a timely manner.

[0017] Optionally, the pest control system further includes a fan connected to the drain pipe and electrically connected to the controller; after the step of controlling the pest control execution module to rise to the second temperature, the method further includes: Control the operation of the fan to exhaust air outward through the drain pipe.

[0018] By installing a fan, after the insect-killing module enters the self-cleaning mode, the fan can blow the carbonized mosquito corpses out of the drain pipe, ensuring a more thorough self-cleaning process.

[0019] Secondly, this application also provides an insect control system, which includes a mosquito sensor, an insect control execution module, and a controller. The controller is electrically connected to the mosquito sensor and the insect control execution module, respectively. Both the mosquito sensor and the insect control execution module are installed at the drain pipe of the electronic device. The controller is used to execute the above-mentioned insect control method.

[0020] Optionally, the pest control system further includes an independent power supply, which is electrically connected to the controller and the pest control execution module respectively, and supplies power to the controller and the pest control execution module.

[0021] Optionally, the independent power source includes a rechargeable battery, and the pest control system further includes a photovoltaic module connected to the rechargeable battery, which is charged via the photovoltaic module or mains power.

[0022] Thirdly, this application also provides an electronic device, which includes a memory for storing one or more programs; a processor; and when the one or more programs are executed by the processor, the above-described pest control method is implemented. Attached Figure Description

[0023] Figure 1This is a schematic diagram of the modules of the pest control system provided in the embodiments of this application.

[0024] Figure 2 An exemplary flowchart of the pest control method provided in the embodiments of this application.

[0025] Figure 3 Another schematic diagram of the insect control system provided in this application embodiment.

[0026] Figure 4 A schematic diagram of the modules of an electronic device provided in an embodiment of this application.

[0027] Explanation of reference numerals in the attached figures: 110-Controller; 120-Insect control module; 121-Power drive circuit; 122-Protective heating grid; 130-Mosquito sensor; 140-Communication module; 150-Status indicator module; 160-Independent power supply; 170-Flow rate sensor; 180-Fan; 190-Register; 200-Electronic device; 210-Memory; 220-Processor; 230-Communication interface. Detailed Implementation

[0028] To make the above-mentioned objectives, features and advantages of this application more apparent and understandable, specific embodiments of this application will be described in detail below with reference to the accompanying drawings.

[0029] As described in the background section, during the use of air conditioners, insects such as mosquitoes, cockroaches, and centipedes may enter the air conditioner from the drain pipe. Because the internal structure of an air conditioner easily generates heat, these insects can easily enter and inhabit the unit. Furthermore, the intrusion of these insects can cause hygiene problems, lead to equipment malfunctions, performance degradation, and unpleasant odors.

[0030] In view of this, in order to solve the above problems, this application provides an insect control method. By setting an insect control execution module and realizing insect control and self-cleaning based on the insect control mode and self-cleaning mode of the insect control execution module, insects can be effectively prevented from entering the air conditioner from the drain pipe.

[0031] It should be noted that the pest control method described in this application can be applied to the controller 110 of the pest control system. Please refer to [link / reference]. Figure 1 The insect control system includes a controller 110, a mosquito sensor 130, and an insect control execution module 120. The controller 110 is electrically connected to the mosquito sensor 130 and the insect control execution module 120 respectively. The mosquito sensor 130 and the insect control execution module 120 are both installed at the drain pipe of the electronic device 200.

[0032] The electronic device 200 described in this application can be a device with a drain pipe, such as an air conditioner or a washing machine. By installing both the mosquito sensor 130 and the insect removal execution module 120 at the drain pipe of the electronic device 200, mosquitoes can be monitored at the drain pipe location, and the insect removal execution module 120 can remove the mosquitoes, thereby effectively preventing mosquitoes from entering the electronic device 200 through the drain pipe.

[0033] As one implementation method, please refer to Figure 2 The method includes: S102, when mosquito information transmitted by the mosquito sensor is obtained, the insect removal execution module is controlled to rise to the first temperature so that the insect removal execution module enters the insect removal mode.

[0034] S104, when the set time has elapsed, the insect removal execution module is controlled to rise to the second temperature so that the insect removal execution module enters the self-cleaning mode; wherein, the second temperature is greater than the first temperature, and the second temperature is the temperature at which mosquitoes are carbonized.

[0035] Optionally, the mosquito sensor 130 provided in this application can be an infrared sensor or a vibration sensor, which can detect whether mosquitoes are present in the drain pipe. Furthermore, the mosquito sensor 130 is generally positioned close to the insect removal execution module 120, so that when mosquito information is detected, the mosquito has already entered the vicinity of the insect removal execution module 120. At this time, the controller 110 can control the insect removal execution module 120 until it heats up, thereby entering the insect removal mode to kill the mosquitoes.

[0036] Furthermore, the insect control system provided in this application can be set to a low-power sleep mode. In this mode, only the mosquito sensor 130 ensures basic detection capabilities. After receiving a mosquito activity signal, it wakes up the controller 110 and then starts the insect control execution module 120. When no mosquito activity signal is received, both the controller 110 and the insect control execution module 120 are in sleep mode, so the overall power consumption is low.

[0037] As one implementation method, please refer to Figure 3The insect-killing execution module 120 includes a power drive circuit 121 and a protective heating grid 122. The power drive circuit 121 is electrically connected to the controller 110 and the protective heating grid 122, respectively. The protective heating grid 122 is installed at the drain pipe of the electronic device 200. The protective heating grid 122 can be made of a high-resistance heating material, but generally, it is made of metal. Furthermore, the protective heating grid 122 can be configured as a disc-shaped structure with multiple small through holes. This structure physically prevents mosquitoes from entering the electronic device 200, and simultaneously, heating effectively kills mosquitoes. Based on this, the steps for controlling the insect-killing execution module 120 to rise to the first temperature include: The control power drive circuit 121 applies a first current to the protective heating grid 122 for 2 to 5 seconds to raise the surface temperature of the protective heating grid 122 to a first temperature. The steps for controlling the insect control module 120 to rise to the second temperature include: The control power drive circuit 121 applies a second current to the protective heating grid 122 for a continuous period of 8 to 15 seconds, so that the surface temperature of the protective heating grid 122 rises to a second temperature.

[0038] In one implementation, the first temperature can be 100℃~150℃, and the second temperature can be 400℃~550℃. Furthermore, the first current can be a large current; after the power drive circuit 121 applies a first current to the protective heating grid 122 for 2~5 seconds, the surface of the protective heating grid 122 instantly rises to 100℃~150℃, effectively killing mosquitoes. The second current can be a controlled current, generally greater than the first current. When entering self-cleaning mode, the controller 110 applies a controlled current to the protective heating grid 122 for 8~15 seconds via the power drive circuit 121, raising its surface temperature to 400℃~550℃, carbonizing and removing insect carcasses and other organic residues attached to the grid.

[0039] To achieve more thorough self-cleaning and ensure that the carbonized ash does not clog the protective heating grid 122, the pest control system also includes a fan 180, which is connected to a drain pipe and electrically connected to a controller 110. After controlling the pest control execution module 120 to rise to the second temperature, the method further includes: Control the operation of the fan to exhaust air outward through the drain pipe.

[0040] Once the insect carcass is carbonized into ash, the controller 110 can control the fan 180 to start, thereby blowing the ash out from the outlet of the drain pipe to prevent the ash from clogging the protective heating grid 122.

[0041] In addition, the pest control system also includes a communication module 140, which is electrically connected to the controller 110 and is used for communication with terminal devices. For example, the communication module 140 can be a Bluetooth module, a WIFI module, etc. After the step of controlling the pest control execution module 120 to rise to the first temperature, the method further includes: The system acquires the operating parameters and pest control logs of the pest control system and sends them to the terminal device via the communication module 140.

[0042] The pest control system provided in this application also includes an independent power supply 160, which is electrically connected to the controller 110 and the pest control execution module 120, respectively, and supplies power to both. Based on this, the operating parameters described in this application include the remaining power of the independent power supply 160, the operating mode of the pest control execution module 120, etc. The pest control log described in this application refers to the corresponding operating log generated by the controller 110 when the pest control execution module 120 enters the pest control mode or self-cleaning mode, and the log and operating parameters are sent to the terminal device via the communication module 140. The terminal device described in this application refers to a user's mobile phone, computer, or other device, which can provide feedback via an APP. Of course, users can also achieve remote control via an APP; for example, a user can control the pest control execution module 120 to enter the self-cleaning mode via the APP on the terminal device.

[0043] Of course, the controller 110 can also upload early warning information via the communication module 140. For example, the pest control system also includes a flow rate sensor 170, which is installed near the pest control execution module 120 and is electrically connected to the controller 110. The method also includes: Acquire flow velocity information sent by the flow velocity sensor; When the flow rate is less than the set threshold, an early warning message is generated and sent to the terminal device through the communication module.

[0044] In this application, in order to prevent the protective heating grid 122 from becoming clogged, a flow rate sensor 170 is also provided. Once the protective heating grid 122 becomes clogged, the flow rate in the drain pipe will decrease. When the flow rate drops below a set threshold, an early warning message will be generated and sent to the terminal device through the communication module 140 to remind the user to handle the situation in a timely manner.

[0045] Furthermore, in one implementation, the pest control system also includes a status indicator module 150, which can indicate whether the pest control system has malfunctioned. For example, the status indicator module 150 can be an LED. When the flow rate drops below a set threshold, the controller 110 not only sends a warning message to the terminal device through the communication module 140, but also controls the status indicator module 150 to work, such as controlling the LED to flash.

[0046] In addition, the insect control system also includes a register 190, which is electrically connected to the controller 110. The register 190 is used to store the insect control program, which the controller 110 can call to execute the insect control method described in this application. Based on this, when the insect control system is working, it first needs to perform initial preparations, such as powering on the system, completing self-tests of each device, loading control logic into the controller 110, calibrating the insect control temperature parameters and working time parameters, and then entering a low-power working state, running only basic monitoring functions. Simultaneously, the system includes a storage system, with the register 190 storing a configuration database to maintain the system's working parameters and operating logic. The insect control program is encrypted, packaged, and stored in the controller 110. These working parameters include at least a temperature configuration structure, which includes instantaneous insect control temperature, carbonization cleaning temperature, insect control working time, and carbonization working time. Afterwards, the system acquires insect activity signals in the monitored area in real time, corresponding to the monitoring information of the mosquito sensor 130; it also acquires the system's working status, battery level, and queries the system configuration report. The aforementioned working status includes all operating characteristics of the system. Next, based on the insect activity signals in the monitored area, the system configuration report is queried to determine whether a pest control program needs to be initiated in the monitored area. If so, pest control is performed in the monitored area, namely, the protective heating grid 122 is heated to the first temperature, the system operating status and operation log are updated, and a pest control operation integrity report for the monitored area is generated. This integrity report can be sent to the terminal device via the communication module 140. If a pest control program does not need to be initiated, the process ends.

[0047] Understandably, the pest control method provided in this application can, on the one hand, be set with dual working modes, that is, automatically switching working modes based on different triggering conditions (mosquito activity signals / fixed cycles), to achieve intelligent management of "timely protection + long-term maintenance," solving the pain point of incomplete system protection. Simultaneously, this application can be equipped with an independent power supply 160 to achieve all-weather protection. Specifically, this application adopts a standardized replaceable battery and an event-driven ultra-low power consumption design to achieve true 7×24-hour protection. On the other hand, this application uses high-temperature carbonization cleaning technology: the same heating element achieves both pest control and cleaning functions, fundamentally solving the problem of equipment failure caused by the accumulation of insect carcasses. Furthermore, modular intelligent control can be achieved. By setting up a mosquito sensor 130, the system is in a low-power sleep state under normal circumstances. Only when a mosquito signal is detected will the protective heating grid 122 be actively controlled to enter pest control mode, reducing the overall power consumption of the system.

[0048] Based on the above implementation method, please refer to Figure 3 This application embodiment also provides an insect control system, which includes a mosquito sensor 130, an insect control execution module 120, and a controller 110. The controller 110 is electrically connected to the mosquito sensor 130 and the insect control execution module 120 respectively. The mosquito sensor 130 and the insect control execution module 120 are both installed at the drain pipe of the electronic device 200. The controller 110 is used to execute the above-mentioned insect control method.

[0049] The insect-repelling execution module 120 includes a power drive circuit 121 and a protective heating grid 122. The power drive circuit 121 is electrically connected to both the controller 110 and the protective heating grid 122, and the protective heating grid 122 is installed at the drain pipe of the electronic device 200. By setting a protective heating grid 122 with insect-repelling function at the drain pipe, such as a fine metal mesh, mosquitoes can be eliminated by electric shock or clockwise heating. Of course, mosquitoes can also be eliminated by high-voltage current impact, or by combining heating and ultrasonic waves to repel mosquitoes; this is not limited to these methods.

[0050] Furthermore, the pest control system also includes an independent power supply 160, which is electrically connected to both the controller 110 and the pest control execution module 120, and supplies power to both. As one implementation, the independent power supply 160 includes a rechargeable battery, which the user can manually replace with a standard battery to ensure that the electronic device 200 can continue operating for months or even a year when powered off. Additionally, the pest control system may include a photovoltaic module connected to the rechargeable battery, which can be charged via the photovoltaic module or mains power. Charging the independent power supply 160 via the photovoltaic module or mains power improves the overall battery life of the pest control system. Moreover, even when the electronic device stops operating, the independent power supply 160 can still power the entire system, achieving both pest control and self-cleaning.

[0051] When the pest control module 120 enters self-cleaning mode, residual insect carcasses on the mesh are carbonized at high temperatures and converted into ash, automatically falling off to maintain the mesh's long-term unobstructed and effective operation. Employing an event-driven operating mode, the system remains in sleep mode most of the time, only performing pest control tasks when insect activity is detected. Furthermore, the pest control system integrates a communication module 140, such as a Bluetooth or Wi-Fi module, enabling remote control via a mobile app, including battery level detection and an alarm mechanism (app push notifications + LED indicators).

[0052] Understandably, the insect control system provided in this application includes a controller 110, an independent power supply 160, a mosquito sensor 130, an insect control execution module 120, a communication module 140, and a status indication module 150. The controller 110 is used to maintain and execute the core control logic, including insect control mode and periodic self-cleaning mode, and also to maintain the work log, battery power data, and user settings. The independent power supply 160 provides all the power required by the device, with a user-replaceable battery compartment at its core. It also detects battery power and sends a signal to the controller 110 when the battery is low. The mosquito sensor 130 detects insect activity near the protective net. This sensor is an infrared sensor or a vibration sensor, which is in a low-power sleep state while the device is in operation, ensuring basic detection capabilities, and wakes up the controller 110 upon receiving an insect activity signal. The insect control execution module 120 consists of a protective heating grid 122 made of high-resistance electrothermal material and a power drive circuit 121 capable of providing high-current heating. The communication module 140 establishes wireless communication with the user's mobile terminal, receives user commands, and reports device status, work logs, and alarm information. The status indicator module 150 uses multi-color LED indicators to provide users with feedback on the current operating status of the device, the occurrence of events, and fault conditions.

[0053] In practical use, when an insect activity signal is received from the insect sensor 130, a large current is immediately applied to the protective heating grid 122 for 2-15 seconds via the power drive circuit 121, causing its surface temperature to rise instantly to 100℃-150℃, effectively killing the insects. After a set time, the controller 110 calls the insect removal execution module 120 to execute the cycle self-cleaning mode. This is done by sending a self-cleaning signal via an internally installed timer or a remote command from the user terminal. The controller 110 receives the signal and applies a controlled current to the protective heating grid 122 for 8-15 seconds via the power drive circuit 121, causing its surface temperature to rise to 400℃-550℃, carbonizing the insect carcasses and other organic residues attached to the grid into ash and causing them to fall off.

[0054] The user's terminal device receives status information and alarms from the communication module 140, and can send instructions to the communication module 140, such as forcibly starting the self-cleaning mode or adjusting operating parameters. The system provides local status indications to the user through the status indication module 150, such as low battery or pest control event triggering.

[0055] The pest control system provided in this application has at least the following beneficial effects: 1. Highly effective pest control: It has obvious effects, reacts quickly, and fundamentally prevents insect invasion.

[0056] 2. All-weather protection: Independent battery and low-power design ensure uninterrupted intelligent protection under any circumstances.

[0057] 3. Long-term effectiveness: The self-cleaning function ensures that the mesh remains clean for a long time, avoiding functional degradation caused by the accumulation of insect carcasses.

[0058] 4. Safe and reliable: Pure solid-state design. Long lifespan; physical insect-killing heating, no chemical pollution.

[0059] 5. Excellent user experience: Long maintenance cycle, simple operation (manual battery replacement only), clear audible and visual alarms + APP push notifications, and visual status display.

[0060] 6. Excellent cost-effectiveness: It adopts standardized batteries and mature Bluetooth solutions, resulting in low hardware costs and easy promotion.

[0061] Please see Figure 4This application provides an electronic device 200, which includes at least one processor 220 and at least one memory 210. The processor 220 and memory 210 are directly connected to each other, or communicate with each other through a communication interface 230, or are electrically connected through one or more communication buses or signal lines to achieve data transmission or interaction. The memory 210 stores program instructions executable by the processor 220, which can call the program instructions to execute them, thereby implementing a pest control method according to various embodiments of this application as described in the "Exemplary Methods" section above. For example, implementing: When mosquito information is acquired from the mosquito sensor, the insect removal execution module is controlled to rise to the first temperature so that the insect removal execution module enters the insect removal mode. When the set time has elapsed, the insect-removal module is controlled to rise to a second temperature so that the insect-removal module enters a self-cleaning mode; wherein, the second temperature is greater than the first temperature, and the second temperature is the temperature at which mosquitoes are carbonized.

[0062] The memory 210 may be, but is not limited to, random access memory (RAM), read-only memory (ROM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), etc.

[0063] The processor 220 can be an integrated circuit chip with signal processing capabilities. The processor 220 can be a general-purpose processor 220, including a central processing unit (CPU), a network processor (NP), etc.; it can also be a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA), or other programmable logic devices, discrete gate or transistor logic devices, or discrete hardware components.

[0064] Understandable. Figure 4 The structure shown is for illustrative purposes only; the electronic device 200 may also include components that are more advanced than those shown. Figure 4 The more or fewer components shown, or having the same Figure 4 The different configurations shown. Figure 4 The components shown can be implemented using hardware, software, or a combination thereof.

[0065] Furthermore, this application provides a computer-readable storage medium having a computer program stored thereon, which, when executed by processor 220, implements a pest control method according to various embodiments of this application as described in the "Exemplary Methods" section above. For example, it implements: When mosquito information is acquired from the mosquito sensor, the insect removal execution module is controlled to rise to the first temperature so that the insect removal execution module enters the insect removal mode. When the set time has elapsed, the insect-removal module is controlled to rise to a second temperature so that the insect-removal module enters a self-cleaning mode; wherein, the second temperature is greater than the first temperature, and the second temperature is the temperature at which mosquitoes are carbonized.

[0066] The computer-readable storage medium may be any combination of one or more readable media. A readable medium may be a readable signal medium or a readable storage medium. A readable storage medium may be, for example, an electrical, magnetic, optical, electromagnetic, infrared, or semiconductor system, apparatus, or device, or any combination thereof. More specific examples of readable storage media (a non-exhaustive list) include: an electrical connection having one or more wires, a portable disk, a hard disk, random access memory 210 (RAM), read-only memory 210 (ROM), erasable programmable read-only memory 210 (EPROM or flash memory), optical fiber, portable compact disk read-only memory 210 (CD-ROM), optical storage device 210, magnetic storage device 210, or any suitable combination thereof.

[0067] Furthermore, embodiments of this application can also be computer program products, comprising computer program instructions that, when executed by processor 220, implement the steps of a pest control method according to various embodiments of this application as described in the "Exemplary Methods" section above. For example, implementing: When mosquito information is acquired from the mosquito sensor, the insect removal execution module is controlled to rise to the first temperature so that the insect removal execution module enters the insect removal mode. When the set time has elapsed, the insect-removal module is controlled to rise to a second temperature so that the insect-removal module enters a self-cleaning mode; wherein, the second temperature is greater than the first temperature, and the second temperature is the temperature at which mosquitoes are carbonized.

[0068] The computer program product can be written in any combination of one or more programming languages ​​to perform the operations of the embodiments of this application. The programming languages ​​include object-oriented programming languages ​​such as Java and C++, as well as conventional procedural programming languages ​​such as C or similar languages. The program code can be executed entirely on the user's computing device, partially on the user's computing device, as a standalone software package, partially on the user's computing device and partially on a remote computing device, or entirely on a remote computing device or server.

[0069] It will be apparent to those skilled in the art that this application is not limited to the details of the exemplary embodiments described above, and that this application can be implemented in other specific forms without departing from the spirit or essential characteristics of this application. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this application is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within this application. No reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A method for pest control, characterized in that, The insect control method is applied to the controller (110) of the insect control system, which further includes a mosquito sensor (130) and an insect control execution module (120). The controller (110) is electrically connected to the mosquito sensor (130) and the insect control execution module (120), respectively. Both the mosquito sensor (130) and the insect control execution module (120) are installed at the drain pipe of the electronic device (200). The method includes: When mosquito information transmitted by the mosquito sensor (130) is acquired, the insect removal execution module (120) is controlled to rise to the first temperature so that the insect removal execution module (120) enters the insect removal mode; When a set time has elapsed, the insect-removing execution module (120) is controlled to rise to a second temperature so that the insect-removing execution module (120) enters a self-cleaning mode; wherein, the second temperature is greater than the first temperature, and the second temperature is the temperature at which mosquitoes are carbonized.

2. The pest control method according to claim 1, characterized in that, The insect-removing execution module (120) includes a power drive circuit (121) and a protective heating grid (122). The power drive circuit (121) is electrically connected to the controller (110) and the protective heating grid (122), respectively, and the protective heating grid (122) is installed at the drain pipe of the electronic device (200). The step of controlling the insect-removing execution module (120) to rise to the first temperature includes: The power drive circuit (121) is controlled to apply a first current for 2 to 5 seconds to the protective heating grid (122) so that the surface temperature of the protective heating grid (122) rises to a first temperature; The steps of controlling the insect-removal execution module (120) to rise to the second temperature include: The power drive circuit (121) is controlled to apply a second current to the protective heating grid (122) for 8 to 15 seconds, so that the surface temperature of the protective heating grid (122) rises to a second temperature.

3. The pest control method according to claim 1, characterized in that, The first temperature is 100℃~150℃, and the second temperature is 400℃~550℃.

4. The pest control method according to claim 1, characterized in that, The pest control system further includes a communication module (140), which is electrically connected to the controller (110) and is used for communication with a terminal device; after the step of controlling the pest control execution module (120) to rise to the first temperature, the method further includes: The operating parameters and pest control log of the pest control system are obtained, and the operating parameters and pest control log are sent to the terminal device through the communication module (140).

5. The pest control method according to claim 4, characterized in that, The pest control system further includes a flow rate sensor (170), which is installed near the pest control execution module (120) and is electrically connected to the controller (110); the method further includes: Acquire the flow velocity information sent by the flow velocity sensor (170); When the flow rate information is less than the set threshold, an early warning message is generated and sent to the terminal device through the communication module (140).

6. The pest control method according to claim 1, characterized in that, The pest control system also includes a fan (180), which is connected to the drain pipe and electrically connected to the controller (110); After the step of controlling the insect-removing execution module (120) to rise to the second temperature, the method further includes: Control the operation of the fan (180) to exhaust air outward through the drain pipe.

7. A pest control system, characterized in that, The insect control system includes a mosquito sensor (130), an insect control execution module (120), and a controller (110). The controller (110) is electrically connected to the mosquito sensor (130) and the insect control execution module (120). Both the mosquito sensor (130) and the insect control execution module (120) are installed at the drain pipe of the electronic device (200). The controller (110) is used to execute the insect control method as described in any one of claims 1 to 6.

8. The pest control system according to claim 7, characterized in that, The pest control system also includes an independent power supply (160), which is electrically connected to the controller (110) and the pest control execution module (120) respectively, and supplies power to the controller (110) and the pest control execution module (120).

9. The pest control system according to claim 8, characterized in that, The independent power source (160) includes a rechargeable battery, and the pest control system also includes a photovoltaic module connected to the rechargeable battery, which is charged via the photovoltaic module or mains power.

10. An electronic device (200), characterized in that, The electronic device (200) includes a memory (210) for storing one or more programs; a processor (220); and when the one or more programs are executed by the processor (220), the pest control method as described in any one of claims 1-6 is implemented.