A control method, storage medium and system of a blowing and sucking integrated machine
By detecting the user-installed components and automatically switching the touch panel status, the problem of excessive energy consumption in blow-vacuum combos under different usage conditions is solved, thus improving both safety and energy efficiency.
Patent Information
- Application Number
- CN202310474675.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-04-26
- Publication Date
- 2026-01-13
- Estimated Expiration
- 2043-04-26
AI Technical Summary
Existing blow-and-suction air conditioners can cause excessive energy consumption and safety hazards if the user forgets to turn off the function module, especially since the function module continues to work after switching from blowing mode to suction mode, which may lead to overheating and malfunction.
By detecting the user-installed components, the system automatically switches the touch panel state and cuts off power to functional modules, reducing energy consumption.
It enables automatic adjustment of power supply to functional modules under different usage conditions, reducing energy loss, avoiding overheating and malfunctions, and improving equipment safety and energy efficiency.
Smart Images

Figure CN116636769B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of pet cleaning equipment, in particular to a control method, a storage medium and a system of a blowing and sucking integrated machine. BACKGROUND
[0002] At present, with the improvement of people's living standards, many families raise multi-hair pets such as cats and dogs. These multi-hair pets have the phenomenon of hair loss, and people need to clean pet hair frequently. The use of cleaning equipment such as pet vacuum cleaners, pet blowers, and brush tools can improve cleaning efficiency.
[0003] The existing pet blowing and sucking integrated machine usually has a function module (such as a heating member, a negative ion generator, etc.) in the shell. The function module is used to process the airflow blown by the working unit (such as heating, adding negative ions to the airflow, etc.). The function module needs to be controlled by the user through the touch panel to open and close. When the working unit is in the air suction state, the function module does not need to work. If the user forgets to turn off the function module, the function module will continue to work after the working unit switches from the air blowing state to the air suction state. If the function module heats the airflow, the working unit will easily overheat after sucking hot air, causing the working unit to malfunction or explode, and the continuous working of the function module will cause the blowing and sucking integrated machine to consume too much energy. SUMMARY
[0004] In view of the problem that the user forgets to control the touch panel in the prior art, the function module in the blowing and sucking integrated machine continues to work, causing high energy consumption, the present application provides a control method, a storage medium and a system of a blowing and sucking integrated machine. By detecting the matching components installed by the user, the touch panel is automatically switched, the power supply of the function module is automatically cut off, and energy loss is reduced.
[0005] The technical solution adopted by the present application to solve the technical problem is a control method of a blowing and sucking integrated machine, which comprises the following steps:
[0006] S1, starting the blowing and sucking integrated machine;
[0007] S2, detecting that the user installs a matching component on the blowing and sucking integrated machine and issuing a detection signal;
[0008] S3, controlling the state of the touch panel according to the detection signal;
[0009] S4, the user operates the touch panel to control the blowing and sucking integrated machine.
[0010] Further, the matching component includes a suction nozzle and / or a blowing nozzle.
[0011] Further, the S2 step specifically includes:
[0012] S21, the user installs a suction nozzle or a blowing nozzle on the blowing and sucking integrated machine;
[0013] S22, the blowing and sucking integrated machine detects the installation of the suction nozzle or the blowing nozzle according to the installation position;
[0014] S23, a detection signal is sent according to the detection result.
[0015] Further, the S3 step specifically comprises:
[0016] S31, an installation detection result is obtained according to the detection signal;
[0017] S32, the switch of the functional component is controlled according to the detection result, and the state of the touch panel is controlled.
[0018] Further, after the step S4, the S5 step is further included:
[0019] S5, the blowing and sucking integrated machine blows out constant temperature according to the air volume and the temperature controlled by the user.
[0020] Further, the S5 step specifically comprises:
[0021] S51, the set temperature of the user is obtained;
[0022] S52, the temperature at the blowing outlet of the blowing and sucking integrated machine is detected according to the set air volume;
[0023] S53, the power of the heating wire in the blowing and sucking integrated machine is controlled according to the temperature at the blowing outlet.
[0024] Further, the state of the touch panel includes a first display state and a second display state; the first display state includes a switch for displaying the air volume, and the second display state includes a switch for displaying the air volume, a switch for displaying the temperature and a negative ion key.
[0025] Further, before the S1 step, the S0 step is further included:
[0026] S0, the blowing and sucking integrated machine is powered on, and the blowing and sucking integrated machine is initialized.
[0027] The technical solution adopted by the present application to solve the technical problem is a storage medium, wherein instructions are stored in the storage medium, and when the instructions are run on a computer, the computer executes the control method of the blowing and sucking integrated machine.
[0028] The technical solution adopted by the present application to solve the technical problem is a control system of a blowing and sucking integrated machine, the control system comprising:
[0029] A starting module is used to start the blowing and sucking integrated machine.
[0030] Detection module: for detecting that the user installs the matching assembly of the blowing and sucking integrated machine, and issuing a detection signal;
[0031] Control module: for controlling the state of the touch panel according to the detection signal;
[0032] Operation module: for the user to operate the touch panel to regulate and control the blowing and sucking integrated machine.
[0033] The present application has the beneficial effects that the present application provides a control method, a storage medium and a system of a blowing and sucking integrated machine, which realizes automatic switching of the touch panel, automatic cutting off of power supply of the function module, and reduction of energy loss by detecting the matching assembly installed by the user. BRIEF DESCRIPTION OF DRAWINGS
[0034] Figure 1 is a flow chart of the control method of the blowing and sucking integrated machine provided by the present application;
[0035] Figure 2 is a circuit block diagram of the blowing and sucking integrated machine provided by the present application;
[0036] Figure 3 is a circuit principle diagram of the main control module provided by the present application;
[0037] Figure 4 is a circuit principle diagram of the heating module provided by the present application;
[0038] Figure 5 is a circuit principle diagram of the temperature detection module provided by the present application;
[0039] Figure 6 is a circuit principle diagram of the motor module provided by the present application;
[0040] Figure 7 is a circuit principle diagram of the rectifier unit provided by the present application;
[0041] Figure 8 is a circuit principle diagram of the first voltage reduction unit provided by the present application;
[0042] Figure 9 is a circuit principle diagram of the second voltage reduction unit provided by the present application;
[0043] Figure 10 is a circuit principle diagram of the inverter unit provided by the present application;
[0044] Figure 11 is a circuit principle diagram of the nixie tube module provided by the present application;
[0045] Figure 12 is a circuit principle diagram of the LED lamp module provided by the present application;
[0046] Figure 13The circuit schematic of the temperature key adjusting unit is provided by the application;
[0047] Figure 14 The circuit schematic of the motor key adjusting unit is provided by the application;
[0048] Figure 15 The circuit schematic of the buzzer module is provided by the application. DETAILED DESCRIPTION
[0049] For the purpose, technical solutions and effects of the application to be clearer and more explicit, the application is further described in detail below with reference to the drawings and examples. It should be understood that the specific examples described herein are only used to explain the application and do not limit the application.
[0050] Please refer to Figure 1 The control method of the blowing and sucking integrated machine provided by the application includes the following steps:
[0051] S1, starting the blowing and sucking integrated machine.
[0052] The user starts the blowing and sucking integrated machine. Before starting the blowing and sucking integrated machine, the blowing and sucking integrated machine is powered on, the blowing and sucking integrated machine is initialized and detected, the touch panel is detected through full lighting of the touch panel. In the specific implementation, the touch panel can be first fully lit for 0.5s, then extinguished for 0.2s, then fully lit for 0.5s, and finally the touch panel is fully extinguished. At the same time, the blowing and sucking integrated machine can also be provided with a buzzer and a touch panel, and the lighting time of the touch panel is synchronized to perform alarm reminding. Thus, it is ensured that the power-on is successful, and it is convenient for the user to check the normal state of the blowing and sucking integrated machine.
[0053] S2, detecting that the user installs a matched component on the blowing and sucking integrated machine and issuing a detection signal.
[0054] In a specific implementation, the user can install a matching component on the blowing and sucking integrated machine according to the actual use, wherein the matching component includes a sucking nozzle, a blowing nozzle, a dust cup, an extension tube and other components, and the blowing and sucking integrated machine can be used more through these components. For example, when the user installs the sucking nozzle or the blowing nozzle on the blowing and sucking integrated machine, the blowing and sucking integrated machine detects whether the sucking nozzle or the blowing nozzle is installed in the installation position, and then sends a detection signal according to the detection result. For example, in a specific implementation, a micro switch can be arranged on one end of the sucking nozzle or the blowing nozzle of the blowing and sucking integrated machine. When the user installs the sucking nozzle, the micro switch arranged on one end of the sucking nozzle of the blowing and sucking integrated machine is triggered, and a detection signal is sent. When the user installs the blowing nozzle, the micro switch arranged on one end of the blowing nozzle of the blowing and sucking integrated machine is triggered, and a detection signal is sent. Thus, the blowing and sucking integrated machine can identify which end of the user installs the matching component. In addition, in a specific implementation, a micro switch can be arranged on one end of the sucking nozzle of the blowing and sucking integrated machine, and no micro switch is arranged on one end of the blowing nozzle. When the user installs the sucking nozzle, the micro switch is triggered, and a detection signal is sent. When the user does not install the sucking nozzle, it is considered that the blowing nozzle is installed.
[0055] S3, controlling the state of the touch panel according to the detection signal.
[0056] In a specific implementation, the installation detection result is obtained according to the detection signal, so as to determine whether the user installs the sucking nozzle or the blowing nozzle. The switch of the functional component is controlled according to the detection result, and the state of the touch panel is controlled. Preferably, the state of the touch panel includes a first display state and a second display state. The first display state includes a switch for displaying the air volume, and the second display state includes a switch for displaying the air volume, a switch for displaying the temperature and a button for displaying the negative ions. In a specific implementation, the touch panel can also be provided with a constant power switch, air volume display, temperature display and the like, which can be set according to the specific use environment.
[0057] S4, the user operates the touch panel to control the blowing and sucking integrated machine.
[0058] In a specific implementation, when it is detected that the sucking nozzle is installed on one end of the blowing and sucking integrated machine, the touch panel displays the first display state, so that the user can only adjust the air volume. When it is detected that the blowing nozzle is installed on one end of the blowing and sucking integrated machine, the touch panel displays the second display state, so that the user can adjust the air volume, the temperature and the negative ions. Thus, different matching components can be selected according to the user, the touch panel is automatically switched, the power supply of the functional module is automatically cut off, the energy loss is reduced, and the user's misoperation is reduced.
[0059] In the embodiment, a constant temperature system is used. When it is detected that the user uses the blowing nozzle on the blowing and sucking integrated machine, the blowing and sucking integrated machine blows out constant temperature according to the air volume and the temperature adjusted by the user. Thus, the constant temperature is blown out, and the comfort of the pet is improved.
[0060] In the embodiment, the set temperature of the user is acquired, the temperature at the blowing port of the blowing and sucking integrated machine is detected according to the set air volume, and the power of the heating wire in the blowing and sucking integrated machine is regulated according to the temperature at the blowing port, so that the constant temperature of the blown air is achieved.
[0061] In the embodiment, the blowing and sucking integrated machine can be provided with separate blowing air volume gears and sucking air volume gears, for example, the blowing air volume gears are provided with five gears, for example, the first gear is 100W, the second gear is 200W, the third gear is 400W, etc., to realize different blowing air volumes, and the sucking air volume gears are provided with two gears, for example, the first gear is 300W, and the second gear is 500W, to realize different sucking air volumes, so that the user can be prevented from using in confusion.
[0062] In the embodiment, the temperature of the blowing and sucking integrated machine can be provided with multiple gears, for example, three gears, for example, the first gear is no heating, the second gear is low heating (45℃), and the third gear is high heating (55℃), or the temperature can be adjusted to display, add or subtract the temperature.
[0063] In the embodiment, if the blowing and sucking integrated machine is regulated, for example, the air volume is regulated, the buzzer will ring to remind the user that the operation is successful.
[0064] Specifically, referring to 2-15, the constant temperature system in the embodiment includes a main control module, a heating module, a temperature detection module, a motor module and a power module, the first control signal output end of the main control module is connected with the control signal input end of the heating module, the detection signal output end of the temperature detection module is connected with the detection signal input end of the main control module, the second control signal output end of the main control module is connected with the control signal input end of the motor module, and the power module is used for power supply.
[0065] The power module includes a power supply unit, a rectifier unit, a first voltage reduction unit, a second voltage reduction unit and an inverter unit. The power supply unit can output 110V alternating voltage. The power output end of the power supply unit is connected with the power input end of the rectifier unit. The rectifier unit includes a transformer and a full-wave rectifier bridge chip. The model of the full-wave rectifier bridge chip is MB10S. The transformer and the full-wave rectifier bridge chip can make the rectifier unit output 310V direct current voltage after boosting and rectifying the 110V alternating voltage output by the power supply unit. The power output end of the rectifier unit is connected with the power input end of the first voltage reduction unit. The first voltage reduction unit includes a power chip. The model of the power chip is SDH8302S. The first voltage reduction unit can output 12V direct current voltage after reducing the 310V direct current voltage through the power chip. The power output end of the first voltage reduction unit is connected with the power input end of the second voltage reduction unit. The power output end of the first voltage reduction unit is the second power output end of the power module. The second voltage reduction unit includes a voltage stabilizing chip. The model of the voltage stabilizing chip is 78L05 SOT89. The second voltage reduction unit can output 5V direct current voltage after reducing the 12V direct current voltage output by the first voltage reduction unit through the voltage stabilizing chip. The power output end of the second voltage reduction unit is connected with the power input end of the inverter unit. The power output end of the second voltage reduction unit is the first power output end of the power module. The third control signal output end of the main control module is connected with the control signal input end of the inverter unit. The inverter unit includes an optical coupling chip with the model of PC817. The power output end of the second voltage reduction unit is connected with the power input end of the optical coupling chip. The third control signal output end of the main control module is connected with the control signal input end of the optical coupling chip. The optical coupling chip can make the inverter unit output 110V alternating voltage after inverting the 5V direct current voltage. The firewire end of the inverter unit output voltage is the first power end of the power module. The zero line end of the inverter unit output voltage is the second power end of the power module.
[0066] In the embodiment, the temperature detection module comprises a temperature detection unit, a resistor R6, a resistor R8 and a capacitor C4, one end of the temperature detection unit is connected with the first power output end of the power module, the other end of the temperature detection unit is connected with one end of the resistor R6, the other end of the resistor R6 is grounded, the common end of the temperature detection unit and the resistor R6 is connected with the resistor R8, the other end of the resistor R8 is connected with the detection signal input end of the main control module, the temperature detection unit adopts an NTC thermistor, the resistances of the resistor R6 and the resistor R8 are equal, and are both 10KV. When the temperature rises, the resistance of the NTC thermistor decreases, the detection signal output end of the temperature detection unit outputs a higher level to the main control module, when the temperature decreases, the resistance of the NTC thermistor increases, the NTC thermistor outputs a lower level to the main control module, and the main control module judges the temperature of the wind blown by the blowing and sucking integrated machine according to the voltage input by the detection signal input end, so as to control the heating module to adjust the temperature of the wind blown by the blowing and sucking integrated machine correspondingly.
[0067] In the embodiment, the heating module comprises a first switch control unit, a first optocoupler transmission unit, a first bidirectional thyristor unit and a heating unit, the input positive pole of the first optocoupler transmission unit is connected with the second power output end of the power module, the input negative pole of the first optocoupler transmission unit is connected with the controlled conduction input end of the first switch control unit, the controlled conduction output end of the first switch control unit is grounded, the control conduction end of the first switch control unit is connected with the first control signal output end of the main control module, the output end of the first optocoupler transmission unit is connected with the control end of the first bidirectional thyristor unit, the first power end of the power module is connected with the first end of the first bidirectional thyristor unit, one end of the heating unit is connected with the second end of the first bidirectional thyristor unit, and the other end of the heating unit is connected with the second power end of the power module.
[0068] In this embodiment, the first switch control unit is a high-level conducting switch element, which is an S8085 NPN transistor Q3. The controlled conduction input terminal of the high-level conducting switch element is the collector of the NPN transistor Q3, the controlled conduction output terminal of the high-level conducting switch element is the emitter of the NPN transistor Q3, and the control conduction terminal of the high-level conducting switch element is the base of the NPN transistor Q3. Of course, other types of transistors or MOSFETs can also be used for the high-level conducting switch element. The first optocoupler transmission unit is an optocoupler chip, which is an MOC3021. The first bidirectional thyristor unit is a bidirectional thyristor chip. The bidirectional thyristor chip is model BTA41, the heating unit is a heating wire, the second power output terminal of the power module is connected to pin 1 of the optocoupler chip, pin 2 of the optocoupler chip is connected to the collector of the NPN transistor Q3, the emitter of the NPN transistor Q3 is grounded, the first control signal output terminal of the main control module is connected to the base of the NPN transistor Q3, the output terminal of the optocoupler chip is connected to the control terminal of the bidirectional thyristor chip, the first power terminal of the power module is connected to the first terminal of the bidirectional thyristor chip, the second terminal of the bidirectional thyristor chip is connected to one end of the heating wire, and the other end of the heating wire is connected to the second power terminal of the power module.
[0069] In this embodiment, when the first control signal output terminal of the main control module outputs a high level, the NPN transistor Q3 is turned on, transmitting the signal to the input terminal of the optocoupler chip. The control signal is then output from the output terminal of the optocoupler chip to the control terminal of the bidirectional thyristor chip, turning on the bidirectional thyristor chip. The first and second power supply terminals of the power module output 110V AC voltage to activate the heating wire. The main control module can determine the temperature of the air blown out by the blower based on the voltage input at the detection signal input terminal. When the temperature of the air blown out by the blower is higher or lower than the set value, the main control module controls the first control signal output terminal to output different waveform PWM signals, thereby adjusting the temperature of the heating wire to regulate the temperature of the air blown out by the blower. When the temperature detection module detects a temperature deviation from the set value, it feeds back to the main control module, causing the main control module to adjust the temperature of the heating module, ensuring that the air blown out by the blower always maintains a constant temperature. This ensures that the pet's fur can be dried quickly while also ensuring the pet's safety, preventing the pet from being burned by the air blown out by the blower during the drying process.
[0070] In this embodiment, the constant temperature system further includes a digital tube module, which includes a digital tube of model JM-S05022. The second set of control signal output terminals of the main control module is connected to a set of control signal input terminals of the digital tube module. The main control module can determine the temperature of the air blown out by the blower and suction unit according to the voltage input at the detection signal input terminal and display it on the digital tube for easy viewing.
[0071] In this embodiment, the motor module includes a second switch control unit, a second optocoupler transmission unit, a second bidirectional thyristor unit, and a motor unit. The second power output terminal of the power module is connected to the positive input terminal of the second optocoupler transmission unit, the negative input terminal of the second optocoupler transmission unit is connected to the controlled conduction input terminal of the second switch control unit, the controlled conduction output terminal of the second switch control unit is grounded, the second control signal output terminal of the main control module is connected to the control conduction terminal of the second switch control unit, the output terminal of the second optocoupler transmission unit is connected to the control terminal of the first bidirectional thyristor unit, the first power terminal of the power module is connected to the first terminal of the second bidirectional thyristor unit, the second terminal of the second bidirectional thyristor unit is connected to one end of the motor unit, and the other end of the motor unit is connected to the second power terminal of the power module.
[0072] In this embodiment, the second switch control unit is an NPN transistor Q1 of model S8085. The controlled conduction input terminal of the second switch control unit is the collector of the NPN transistor Q1, the controlled conduction output terminal of the second switch control unit is the emitter of the NPN transistor Q1, and the control conduction terminal of the second switch control unit is the base of the NPN transistor Q1. Of course, the second switch control unit can also use other types of transistors or MOSFETs. The second optocoupler transmission unit is an optocoupler chip, model MOC3021. The second bidirectional thyristor unit is a bidirectional thyristor chip, model [missing information]. BTA41, the motor unit is a motor. The second power output terminal of the power module is connected to pin 1 of the optocoupler chip. Pin 2 of the optocoupler chip is connected to the collector of NPN transistor Q1. The emitter of NPN transistor Q1 is grounded. The second control signal output terminal of the main control module is connected to the base of NPN transistor Q1. The output terminal of the optocoupler chip is connected to the control terminal of the bidirectional thyristor chip. The first power terminal of the power module is connected to the first terminal of the bidirectional thyristor chip. The second terminal of the bidirectional thyristor chip is connected to one end of the motor. The other end of the motor is connected to the second power terminal of the power module.
[0073] In this embodiment, when the second control signal output terminal of the main control module outputs a high level, the NPN transistor Q1 is turned on, transmitting the signal to the input terminal of the optocoupler chip. The control signal is then output from the output terminal of the optocoupler chip to the control terminal of the bidirectional thyristor chip, turning on the bidirectional thyristor chip. The first and second power supply terminals of the power module output 110V AC voltage to make the motor work. The main control module can control the second control signal output terminal to output PWM signals of different waveforms, thereby adjusting the speed of the motor to regulate the airflow of the blow-and-vacuum combo machine.
[0074] In this embodiment, the constant temperature system further includes an LED light module, which includes multiple LEDs. The first power output terminal of the power module is connected to the positive terminal of the LED light module, and the negative terminal of the LED light module is connected to the first set of control signal output terminals of the main control module. The main control module can output control signals through the first set of control signal output terminals to light up one or more LEDs in the LED light module. By setting the LED light module, users can conveniently use this invention in places with poor lighting.
[0075] In this embodiment, the constant temperature system further includes a button module, which includes a temperature button adjustment unit and a motor button adjustment unit. The temperature control signal output terminal of the temperature button adjustment unit is connected to a set of temperature control signal input terminals of the main control module. The temperature button adjustment unit includes a first button, which allows the user to adjust the temperature of the blow-dryer by touching the first button, so that the temperature of the air blown out by the blow-dryer is the temperature adjusted by the user, i.e., the set value. The motor control signal output terminal of the motor button adjustment unit is connected to another set of motor control signal input terminals of the main control module. The motor button adjustment unit includes a second button, which allows the user to adjust the motor speed of the blow-dryer by touching the second button, thereby adjusting the airflow of the blow-dryer.
[0076] In this embodiment, the constant temperature system further includes a buzzer module, which comprises a buzzer and a third switch control unit. The third switch control unit is an S8085 NPN transistor Q1. The controlled conduction input terminal of the third switch control unit is the collector of the NPN transistor Q1, the controlled conduction output terminal of the third switch control unit is the emitter of the NPN transistor Q1, and the control conduction terminal of the third switch control unit is the base of the NPN transistor Q1. Of course, the third switch control unit can also use other types of transistors or MOSFETs. The first power output terminal of the power supply module is connected to the positive terminal of the buzzer, and the negative terminal of the buzzer... The control module is connected to the controlled on input terminal of the third switch control unit, and the controlled on output terminal of the third switch control unit is grounded. The third control signal output terminal of the main control module is connected to the control on terminal of the third switch control unit. When the main control module determines that the temperature of the air blown out by the blower exceeds a certain value set by the user based on the voltage input of the detection signal input terminal, the certain value is a value set by the user. In this invention, it is set to 10 degrees. The main control module outputs a control signal through the third control signal output terminal, which turns on the third switch control unit and makes the buzzer sound, thereby reminding the user to avoid scalding the pet due to the excessively high temperature of the air blown out by the blower.
[0077] This invention also provides a control system for a blow-and-vacuum combo machine, the control system comprising:
[0078] Start-up module: Used to start the blow-and-suction machine;
[0079] Detection module: Used to detect when the user installs the matching components on the blow-dry combo machine and send out a detection signal;
[0080] Control module: Used to control the state of the touch panel based on the detection signal;
[0081] Operation module: Used by the user to operate the touch panel to control the blow-and-vacuum combo machine.
[0082] This invention also provides a computer storage medium storing a processor-executable program that, when executed by the processor, implements the control method of the blow-and-suction machine as described in the above embodiments.
[0083] Those skilled in the art will understand that all or part of the processes in the above embodiments can be implemented by a computer program instructing related hardware. The computer program can be stored in a non-volatile computer-readable storage medium. When executed, the computer program can include the processes of the embodiments of the above-described methods for digital twins of heating furnaces. Any references to memory, storage, databases, or other media used in the embodiments provided in this application can include non-volatile and / or volatile memory. Non-volatile memory may include read-only memory (ROM), programmable ROM (PROM), electrically programmable ROM (EPROM), electrically erasable programmable ROM (EEPROM), or flash memory. Volatile memory may include random access memory (RAM) or external cache memory. By way of illustration and not limitation, RAM is available in a variety of forms, such as static RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), dual data rate SDRAM (DDRSDRAM), enhanced SDRAM (ESDRAM), synchronous link DRAM (SLDRAM), RAMbus direct RAM (RDRAM), direct memory bus dynamic RAM (DRDRAM), and memory bus dynamic RAM (RDRAM).
[0084] Alternatively, if the integrated units of this invention are implemented as software functional modules and sold or used as independent products, they can also be stored in a computer-readable storage medium. Based on this understanding, the technical solutions of the embodiments of this invention, or the parts that contribute to related technologies, 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, terminal, or network device, etc.) to execute all or part of the methods of the various embodiments of this invention. The aforementioned storage medium includes various media capable of storing program code, such as mobile storage devices, RAM, ROM, magnetic disks, or optical disks.
[0085] It should be understood that the application of the present invention is not limited to the examples above. Those skilled in the art can make improvements or modifications based on the above description, and all such improvements and modifications should fall within the protection scope of the appended claims.
Claims
1. A control method for a blow-and-suction integrated machine, characterized in that, The control method includes the following steps: S1. Start the blow-and-suction machine; S2. Detecting that the user has installed the accessories on the blow-and-vacuum combo machine, a detection signal is sent. The accessories include a suction nozzle and a blow nozzle. S3. Control the state of the touch panel according to the detection signal. The state of the touch panel includes a first display state and a second display state. The first display state includes a switch to display the air volume, and the second display state includes a switch to display the air volume, a switch to display the temperature, and a button to display negative ions. S4. Users can operate the touch panel to control the blow-and-vacuum combo machine; The S4 step includes: if a suction nozzle is detected at one end of the blower / vacuum combo machine, the touch panel displays the first display state, so that the user can only adjust the airflow. If a blower nozzle is detected at one end of the blower / vacuum combo machine, the touch panel displays the second display state, so that the user can adjust the airflow, temperature, and negative ions.
2. The control method for a blow-and-suction integrated machine according to claim 1, characterized in that, Step S2 specifically includes: S21. The user installs a suction nozzle or a blow nozzle on the blow-vacuum combo machine; S22. The blow-vacuum combo machine detects the installed nozzle or blow nozzle based on the installation location. S23. Issue a detection signal based on the detection results.
3. The control method for a blow-and-suction integrated machine according to claim 2, characterized in that, The S3 step specifically includes: S31. Obtain the installation test results based on the detection signals: S32. Control the switching of functional components based on the detection results, and control the state of the touch panel.
4. The control method for a blow-and-suction integrated machine according to claim 1, characterized in that, Following step S4, step S5 is also included: S5. Based on the air volume and temperature adjusted by the user, the blower and suction unit blows out a constant temperature.
5. The control method for a blow-and-suction integrated machine according to claim 4, characterized in that, The S5 step specifically includes: S51. Obtain the user's set temperature; S52. Detect the temperature at the air outlet of the blower / vacuum combo unit according to the set air volume; S53. Adjust the power of the heating wire inside the blower and suction unit according to the temperature at the air outlet.
6. The control method for a blow-and-suction integrated machine according to claim 1, characterized in that, Before step S1, step S0 is also included: S0. The blow-and-vacuum combo machine is powered on and initialized.
7. A storage medium, characterized in that, The storage medium stores instructions that, when executed on a computer, cause the computer to perform the control method for the blow-and-suction machine as described in any one of claims 1-6.
8. A control system for a blow-and-suction integrated machine, characterized in that, The control system executes the control method of the blow-and-suction machine as described in any one of claims 1-6, including: Start-up module: Used to start the blow-and-suction machine; Detection module: Used to detect when the user installs the matching components on the blow-dry combo machine and send out a detection signal; Control module: Used to control the state of the touch panel based on the detection signal; Operation module: Used by the user to operate the touch panel to control the blow-and-vacuum combo machine.
Citation Information
Patent Citations
Air blower with function of dust collector
CN109832754A
Hairdressing device
CN110893044A