Electrical equipment and control method of electrical equipment
By using a microcontroller and a preset instruction set in electrical equipment, and combining touch signals to control light emitting devices and working parts, the problems of high hardware cost and difficult control coordination in the prior art are solved, and the effect of reducing hardware costs and simplifying the control structure is achieved.
Patent Information
- Application Number
- CN202510238483.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2025-06-20
AI Technical Summary
Due to the use of complex operating systems for control chips in existing electrical equipment, hardware costs are high, and the difficulty of controlling coordination of various device structures is increased.
A single chip computer is used as the control core, a preset instruction set is used, and the light emitting devices and working components are controlled through touch signals, so as to control the display module and working components, reducing the dependence on complex operating system chips.
It effectively reduces the hardware cost of electrical equipment, simplifies the control structure of electrical equipment, and improves the flexibility and cost-effectiveness of control.
Smart Images

Figure CN120178722A_ABST
Abstract
Description
Technical Field
[0001] This application belongs to the technical field of electrical appliances, and particularly relates to an electrical appliance device and a control method for the electrical appliance device. Background Art
[0002] With the development of technology, display modules are more and more widely used in electrical appliance devices, and more and more functions can be realized on electrical appliance devices. As a result, the difficulty of controlling and coordinating the structures of various components in the electrical appliance device is getting higher and higher. It is often necessary to set a control chip with a complex operating system in the electrical appliance device to control the structures of various components in the electrical appliance device, which is not conducive to reducing the cost of the electrical appliance device. Summary of the Invention
[0003] Embodiments of this application provide an electrical appliance device and a control method for the electrical appliance device, aiming to reduce the hardware cost of the electrical appliance device.
[0004] An embodiment of the first aspect of this application provides an electrical appliance device, including: a single-chip microcomputer, which is preset with an instruction set; a working component, which is communicatively connected to the single-chip microcomputer; a display module, which is communicatively connected to the single-chip microcomputer and includes a light-emitting device and a touch control component, and the touch control component is used to sense the touch of a user and generate a corresponding touch control signal; wherein, the single-chip microcomputer is configured to determine a display signal according to a control signal and the instruction set and output the display signal to the display module to control the light emission of the light-emitting device, and the single-chip microcomputer is configured to determine a driving signal according to the control signal and the instruction set and output the driving signal to the working component to control the operation of the working component, and the control signal includes the touch control signal.
[0005] An embodiment of the second aspect of this application provides a control method for an electrical appliance device, and the control method is applied to the single-chip microcomputer in the electrical appliance device in any of the above embodiments. The control method includes:
[0006] Receiving a control signal;
[0007] Determining a display signal and a driving signal according to the control signal and the preset instruction set;
[0008] Outputting the display signal to the display module and outputting the driving signal to the working component.
[0009] In an electrical appliance device provided by an embodiment of this application, the electrical appliance device includes a single-chip microcomputer, a working component and a display module. The working component can be used to realize the operation of the electrical appliance device. The display module includes a light-emitting device and a touch control component. The light-emitting device of the display module can be used to display the operation information of the electrical appliance device to the user, and the touch control component of the display module can be used to sense the touch of the user and generate a corresponding touch control signal, so that the user can interact with the electrical appliance device through the display module.
[0010] The working component is communicatively connected to the single-chip microcomputer, and the display module is communicatively connected to the single-chip microcomputer. By presetting an instruction set in the single-chip microcomputer, the single-chip microcomputer is configured to determine a display signal according to a control signal and the instruction set and output the display signal to the display module to control the light emission of the light-emitting device, and the single-chip microcomputer is configured to determine a driving signal according to the control signal and the instruction set and output the driving signal to the working component to control the operation of the working component. The control signal is set to include a touch signal, so that the single-chip microcomputer can, without a complex operating system being provided, control the working component and the light-emitting device of the display module through the preset instruction set and the touch signal generated under user touch in the control signal. That is, the working component and the display module in the electrical device can be controlled by a single-chip microcomputer without a built-in complex operating system and at a lower cost, thereby reducing the degree of use of a chip that is costly to control through a complex operating system in the electrical device, and thus being able to better reduce the hardware cost of the electrical device. Description of the Drawings
[0011] To more clearly illustrate the technical solutions of the embodiments of the present application, the drawings required for use in the embodiments of the present application will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present application. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0012] Figure 1 is a user interface diagram of a display module provided by an embodiment of the present application;
[0013] Figure 2 is a partial cross-sectional view of a display module provided by an embodiment of the present application;
[0014] Figure 3 is a framework diagram of an electrical device provided by an embodiment of the present application;
[0015] Figure 4 is a framework diagram of an electrical device provided by another embodiment of the present application;
[0016] Figure 5 is a user interface diagram of a display module provided by another embodiment of the present application;
[0017] Figure 6 is a framework diagram of an electrical device provided by still another embodiment of the present application;
[0018] Figure 7 is a user interface diagram of a display module provided by still another embodiment of the present application;
[0019] Figure 8 is a framework diagram of an electrical device provided by yet another embodiment of the present application;
[0020] Figure 9 It is a user interface diagram of a display module provided by another embodiment of the present application;
[0021] Figure 10 It is a user interface diagram of a display module provided by still another embodiment of the present application;
[0022] Figure 11 It is a user interface diagram of a display module provided by still another embodiment of the present application;
[0023] Figure 12 It is a framework diagram of an electrical device provided by still another embodiment of the present application;
[0024] Figure 13 It is a user interface diagram of a display module provided by still another embodiment of the present application;
[0025] Figure 14 It is a user interface diagram of a display module provided by still another embodiment of the present application;
[0026] Figure 15 It is a framework diagram of an electrical device provided by still another embodiment of the present application;
[0027] Figure 16 It is a user interface diagram of a display module provided by still another embodiment of the present application;
[0028] Figure 17 It is a framework diagram of an electrical device provided by still another embodiment of the present application;
[0029] Figure 18 It is a framework diagram of an electrical device provided by still another embodiment of the present application;
[0030] Figure 19 It is a framework diagram of an electrical device provided by still another embodiment of the present application;
[0031] Figure 20 It is a partial cross-sectional view of an electrical device provided by an embodiment of the present application;
[0032] Figure 21 It is a schematic flowchart of a control method for an electrical device provided by an embodiment of the present application.
[0033] Explanation of reference numerals:
[0034] MCU, single-chip microcomputer;
[0035] W, working component; Wa, moving component; Wb, temperature control component; W1, washing component; W2, drying component; W3, grinding component; W4, extraction component;
[0036] WS, working sensor;
[0037] MS, functional sensor;
[0038] WM, wireless communication module;
[0039] UM, interactive communication module;
[0040] SM, power supply module;
[0041] P, display module;
[0042] 10, display panel;
[0043] 100, substrate; 110, base; 120, first insulating layer; 130, second insulating layer; 140, third insulating layer; 150, driving circuit; 151, transistor; 151a, gate; 151b, source-drain; 152, storage capacitor; 152a, first electrode plate; 152b, second electrode plate;
[0044] 200, pixel definition layer; 200a, pixel opening
[0045] 300, light-emitting device; 310, first electrode; 320, light-emitting functional layer; 330, second electrode;
[0046] 400, encapsulation layer; 410, first encapsulation layer; 420, second encapsulation layer; 430, third encapsulation layer;
[0047] 500, touch control component;
[0048] 20, cover plate;
[0049] 30, fixing part; 30a, receiving groove; 30b, communication opening; 31, first fixing part; 32, second fixing part;
[0050] 40, side sealant;
[0051] 50, foam adhesive;
[0052] 60, circuit board;
[0053] 70, housing;
[0054] AA, display area; AA1, status display area; TPA, touch control area; TPAa, motion touch control area; TPAb, temperature control touch control area; TPA1, washing touch control area; TPA1a, washing initial setting area; TPA1b, washing advanced setting area; TPA2, drying touch control area; TPA2a, drying initial setting area; TPA2b, drying advanced setting area; TPA3, grinding touch control area; TPA4, extraction touch control area; NA, non-display area. Detailed implementation manners
[0055] The features and exemplary embodiments of various aspects of the present application will be described in detail below. To make the objectives, technical solutions, and advantages of the present application clearer and more understandable, the present application will be further described in detail below in conjunction with the accompanying drawings and specific embodiments. It should be understood that the specific embodiments described herein are only configured to explain the present application and are not configured to limit the present application. For those skilled in the art, the present application can be implemented without some of these specific details. The following description of the embodiments is only to provide a better understanding of the present application by showing examples of the present application.
[0056] It should be noted that in this document, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device. Without further limitation, the elements defined by the statement "comprising..." do not exclude the existence of additional identical elements in the process, method, article or device comprising the elements.
[0057] It should be understood that when describing the structure of a component, when a layer or a region is referred to as being "above" or "over" another layer or another region, it may mean directly above the other layer or another region, or there may be other layers or regions between it and the other layer or another region. And if the component is flipped, this layer or region will be "below" or "beneath" the other layer or region.
[0058] With the development of technology, display modules are more and more widely used in electrical devices, and more and more functions can be realized on electrical devices. Exemplarily, electrical devices often have a display module for interacting with users and working components that can perform corresponding operations under the interactive operations of users on the display module. As a result, the control and coordination of the structures of various components in electrical devices become more and more difficult, and it is often necessary to set a control chip with a complex operating system in the electrical device to control the structures of various components in the electrical device, which is not conducive to reducing the cost of the electrical device.
[0059] To solve the above problems, embodiments of the present application provide an electrical device and a control method for an electrical device. The embodiments of the electrical device and the control method for the electrical device will be described below in conjunction with the accompanying drawings.
[0060] Figure 1It is a user interface diagram of a display module P provided by an embodiment of the present application. Figure 2 It is a partial cross-sectional view of a display module P provided by an embodiment of the present application. Figure 3 It is a framework diagram of an electrical device provided by an embodiment of the present application.
[0061] As Figures 1 to 3 shown, an embodiment of the first aspect of the present application provides an electrical device, including: a single-chip microcomputer MCU, and the single-chip microcomputer MCU is preset with an instruction set; a working component W, communicatively connected to the single-chip microcomputer MCU; a display module P, communicatively connected to the single-chip microcomputer MCU and including a light-emitting device 300 and a touch control component 500, and the touch control component 500 is used to sense a user's touch and generate a corresponding touch control signal; wherein, the single-chip microcomputer MCU is configured to determine a display signal according to a control signal and the instruction set and output the display signal to the display module P to control the light emission of the light-emitting device 300, and the single-chip microcomputer MCU is configured to determine a driving signal according to the control signal and the instruction set and output the driving signal to the working component W to control the operation of the working component W, and the control signal includes the touch control signal.
[0062] In an electrical device provided by an embodiment of the present application, the electrical device includes a single-chip microcomputer MCU, a working component W and a display module P.
[0063] Optionally, the electrical device provided by an embodiment of the present application can be any electrical device applied to the consumer field. Exemplarily, the electrical device provided by an embodiment of the present application can be any electrical device applied to the home field. For example, the electrical device provided by an embodiment of the present application can include at least one of electrical appliances such as a washing machine, a dryer, a coffee machine, a refrigerator, a range hood, a water heater, a gas stove, a dishwasher, a lamp, a sound, a vacuum cleaner, an electric toothbrush or an electronic cigarette.
[0064] The working component W can be used to implement the operation of the electrical device. Exemplarily, when the electrical device includes a washing machine, the working component W can be a component used to implement the washing operation of the washing machine; when the electrical device includes a dryer, the working component W can be a component used to implement the drying operation of the dryer; when the electrical device includes a coffee machine, the working component W can be a component used to implement the grinding operation and extraction operation of the coffee machine.
[0065] The display module P includes a light-emitting device 300 and a touch control component 500. The light-emitting device 300 of the display module P can be used to display the operation information of the electrical device to the user, and the touch control component 500 of the display module P can be used to sense a user's touch and generate a corresponding touch control signal, so that the user can interact with the electrical device through the display module P.
[0066] Optionally, the display module P may have a display area AA, and the light-emitting device 300 may be disposed in the display area AA. The light-emitting device 300 located in the display area AA may be used to realize the light-emitting display of the display module P.
[0067] Optionally, the display module P may further include a non-display area NA.
[0068] Optionally, the touch control component 500 may be used to sense the touch of a user in the display area AA and / or the non-display area NA and generate a corresponding touch control signal, that is, the user can interact with the electrical device by touching in the display area AA and / or the non-display area NA.
[0069] For ease of description, in the following embodiments, it is taken as an example that the touch control component 500 can be used to sense the touch of a user in the display area AA and generate a corresponding touch control signal.
[0070] Optionally, the touch control component 500 may include at least one of a self-capacitive touch electrode and a mutual-capacitive touch electrode.
[0071] Optionally, the display area AA includes a plurality of touch control areas TPA. The touch control component 500 is used to sense the touch of a user in the touch control area TPA and generate a corresponding touch control signal, so that the user can choose whether to touch according to the information displayed by the display module P at the touch control area TPA, thereby facilitating the user to interact with the electrical device through the display module P.
[0072] Exemplarily, different pictures may be displayed in the display area AA. For different pictures, the number and setting positions of the touch control areas TPA may be different. In different pictures, the user can choose whether to touch according to the information displayed by the touch control area TPA, thereby facilitating the user to interact with the electrical device through the display module P.
[0073] Optionally, the display module P may be a display module P that emits light based on the principle of liquid crystal display (LCD), or the display module P may be a display module P that emits light based on the principle of organic light emitting diode display (OLED). The present application does not make specific limitations on it.
[0074] For ease of description, in the following embodiments, it is taken as an example that the display module P may be a display module P that emits light based on the principle of organic light emitting diode display. Exemplarily, the display module P may be a display module P that emits light based on the structure of active matrix organic light emitting diode (AMOLED).
[0075] Optionally, there are various ways to set the shape of the display area AA in the display module P. For example, the shape of the display area AA in the display module P can be square, circular, etc. This application does not make specific limitations on it.
[0076] Optionally, the display module P can be a flexible display module P, which is convenient for setting a display module P with a specific styling style.
[0077] Optionally, the light-emitting device 300 may include a stacked first electrode 310, a light-emitting functional layer 320, and a second electrode 330.
[0078] Optionally, the light-emitting functional layer 320 may include a hole injection layer (Hole Inject Layer, HIL), a hole transport layer (Hole Transport Layer, HTL), a light-emitting structure, an electron injection layer (Electron Inject Layer, EIL), and an electron transport layer (Electron Transport Layer, ETL).
[0079] Optionally, the first electrode 310 and the second electrode 330 can be used as pixel electrodes of the display module P. One of the first electrode 310 and the second electrode 330 can be used as the anode, and the other can be used as the cathode to drive the light-emitting functional layer 320 to emit light. In the embodiments of this application, the first electrode 310 is used as the anode of the display module P, and the second electrode 330 is used as the cathode of the display module P as an example for illustration.
[0080] Optionally, the display module P may include a display panel 10, and the display panel 10 may include a light-emitting device 300. Exemplarily, the display panel 10 can be an organic light-emitting diode display panel 10.
[0081] Optionally, the display panel 10 may further include a substrate 100, and the light-emitting device 300 may be disposed on one side of the substrate 100.
[0082] Optionally, there are various ways to set the substrate 100. The substrate 100 may include, for example, a substrate 110 and a driving circuit 150 disposed on the substrate 110. Optionally, the substrate 100 includes a first insulating layer 120, a second insulating layer 130, and a third insulating layer 140 stacked. Exemplarily, the driving circuit 150 may include a transistor 151, a storage capacitor 152, and driving signal lines for connecting various devices. The transistor 151 may include a semiconductor, a gate 151a, and source / drain electrodes 151b. The storage capacitor 152 includes a first electrode plate 152a and a second electrode plate 152b.
[0083] As an example, the gate 151a and the first plate 152a may be located on the side of the first insulating layer 120 facing the substrate 110, the second plate 152b may be located between the first insulating layer 120 and the second insulating layer 130, and the source-drain 151b may be located between the second insulating layer 130 and the third insulating layer 140.
[0084] Optionally, the display panel 10 may further include a pixel definition layer 200 disposed on the side of the first electrode 310 facing away from the substrate 100. The pixel definition layer 200 may be provided with a pixel opening 200a. The light-emitting functional layer 320 and the second electrode 330 may be at least partially located within the pixel opening 200a, and a portion of the first electrode 310 may be exposed from the pixel opening 200a and connected to the light-emitting functional layer 320.
[0085] Optionally, the display panel 10 may further include a packaging layer 400 disposed on the side of the light-emitting device 300 facing away from the substrate 100. The packaging layer 400 may be used to package the light-emitting device 300. Exemplarily, the packaging layer 400 may include a first packaging layer 410, a second packaging layer 420 disposed on the side of the first packaging layer 410 facing away from the substrate 100, and a third packaging layer 430 disposed on the side of the second packaging layer 420 facing away from the substrate 100.
[0086] Optionally, the first packaging layer 410 and the third packaging layer 430 may be prepared by a Chemical Vapor Deposition (CVD) process, and the second packaging layer 420 may be prepared by an Inkjet Printing (IJP) process.
[0087] Optionally, the touch control component 500 may be disposed independently of the display panel 10. That is, after the preparation of the touch control component 500 and the display panel 10 are completed separately and independently, the display panel 10 and the touch control component 500 may be assembled and connected.
[0088] Or optionally, as Figure 2 shown, the touch control component 500 may be integrated into the display panel 10, that is, the display panel 10 may include the touch control component 500, so that during the preparation process of the electrical device, the assembly process between the display panel 10 and the touch control component 500 can be omitted, and the preparation efficiency of the electrical device can be improved.
[0089] Exemplarily, the touch control component 500 may be disposed on the side of the packaging layer 400 facing away from the substrate 100.
[0090] The working component W is communicatively connected to the single-chip microcomputer MCU, and the display module P is communicatively connected to the single-chip microcomputer MCU.
[0091] Optionally, in the embodiments of the present application, the communication connection between one entity and another entity may refer to the communication connection between one entity and another entity achieved through wireless communication. For example, in the embodiments of the present application, the communication connection between one entity and another entity may refer to the communication connection between one entity and another entity achieved through at least one of Wi-Fi, Bluetooth, and Near Field Communication (NFC).
[0092] Alternatively, in the embodiments of the present application, the communication connection between one entity and another entity may refer to the communication connection between one entity and another entity achieved through electrical connection.
[0093] For ease of description, in the following embodiments, the example of "the communication connection between one entity and another entity may refer to the communication connection between one entity and another entity achieved through electrical connection" is used for illustration.
[0094] Optionally, the microcontroller unit (MCU) may have at least one of an input / output interface (I / O), a Mobile Industry Processor Interface (MIPI), a Serial Peripheral Interface (SPI), and an Inter-Integrated Circuit (I2C).
[0095] As an example, the working component W may be electrically connected to the input / output interface of the MCU to achieve the communication connection between the working component W and the MCU, and the display module P may be electrically connected to at least one of the Mobile Industry Processor Interface, Serial Peripheral Interface, and Inter-Integrated Circuit of the MCU to achieve the communication connection between the display module P and the MCU.
[0096] By presetting an instruction set in the microcontroller unit (MCU), the MCU is configured to determine a display signal according to a control signal and the instruction set and output the display signal to the display module P to control the lighting of the lighting device 300, and the MCU is configured to determine a driving signal according to the control signal and the instruction set and output the driving signal to the working component W to control the operation of the working component W. The control signal is set to include a touch signal, so that the MCU can, without a complex operating system, control the working component W and the lighting device 300 of the display module P through the preset instruction set and the touch signal generated under user touch in the control signal. That is, the working component W and the display module P in the electrical device can be controlled by the MCU without a built-in complex operating system at a lower cost, thereby reducing the degree of use of chips that implement control through a complex operating system with higher costs in the electrical device, and thus better reducing the hardware cost of the electrical device.
[0097] Optionally, the MCU can receive a control signal. When the MCU receives a specific control signal, the instruction corresponding to the specific control signal in the preset instruction set in the MCU will be activated. The activated instruction can be used to determine the corresponding display signal and control the MCU to output the determined display signal to the corresponding display module P, and / or the activated instruction can be used to determine the corresponding driving signal and control the MCU to output the determined driving signal to the corresponding working component W.
[0098] Exemplarily, when the MCU receives a control signal for controlling a certain working component W in the electrical device to operate, the instruction corresponding to the control signal for controlling a certain working component W in the electrical device to operate in the preset instruction set in the MCU will be activated. The activated instruction can be used to determine the corresponding driving signal and control the MCU to output the determined driving signal to the corresponding working component W to make the working component W perform a certain operation. At the same time, the activated instruction can also be used to determine the corresponding display signal and control the MCU to output the determined display signal to the corresponding display module P, so that the display module P can display the working state of the electrical device and / or different function options of the electrical device, facilitating the user's understanding of the working conditions of the electrical device and also facilitating the interaction between the user and the electrical device.
[0099] Optionally, different control signals can activate different instructions in the instruction set, and different instructions can be used to determine different driving signals and / or different display signals.
[0100] Among them, different drive signals can be used to drive different working components W to perform different operations, and / or different drive signals can be used to drive the same working component W to work according to different working parameters (such as parameters like working time, working temperature, working speed, and working force, etc.). Different display signals can be used to drive the display module P to display different pictures.
[0101] Optionally, the control signal includes a touch signal, which can refer to the touch signal generated when the user touches a certain touch area TPA being used as a control signal to activate the corresponding instruction in the instruction set.
[0102] Optionally, when the user touches different touch areas TPA, the touch component 500 will generate different touch signals (i.e., control signals).
[0103] Optionally, under the action of some touch signals, the single-chip microcomputer MCU can simultaneously output corresponding drive signals to the working component W and corresponding display signals to the display module P to make the display module P display the corresponding working state of the electrical device while driving the working component W to work.
[0104] Optionally, under the action of some touch signals, the single-chip microcomputer MCU can only output corresponding display signals to the display module P to make the display module P display the corresponding picture, so as to display different functions of the electrical device and / or display different working states of the electrical device on the display module P. For example, under the action of some touch signals, the single-chip microcomputer MCU can only output corresponding display signals to the display module P to make the display module P display the home page picture, the setting picture, or the working state picture, etc.
[0105] In some optional embodiments, the instruction set includes an initial display instruction, and the single-chip microcomputer MCU is configured to output an initial display signal to the display module P according to the initial display instruction after power-on and before the user touches to control the display area AA to present an initial picture.
[0106] Optionally, power-on can specifically refer to the power-on of the single-chip microcomputer MCU and the display module P in the electrical device, that is, the single-chip microcomputer MCU can be configured to output an initial display signal to the display module P according to the initial display instruction after both the single-chip microcomputer MCU and the display module P are powered on and before the user touches to control the display area AA to present an initial picture.
[0107] Optionally, the initial picture can include a home page picture. Under the home page picture, the display area AA can include multiple touch areas TPA.
[0108] As an example, the initial screen may include a power-on screen and a home screen. The microcontroller unit (MCU) is configured to output an initial display signal to the display module P according to an initial display instruction after power-on and before being touched by the user, so as to control the display area AA to sequentially present the power-on screen and the home screen.
[0109] In these alternative embodiments, by setting that the MCU is configured to output an initial display signal to the display module P according to an initial display instruction after power-on and before being touched by the user, so as to control the display area AA to present the initial screen, the MCU can control the display module P to display the initial screen before the user performs touch interaction, so as to facilitate displaying a corresponding screen within the touch area TPA under the initial screen, thereby enabling the user to easily choose whether to touch according to the information displayed by the display module P at the touch area TPA, and further facilitating the user to perform interactive control with the electrical device through the display module P.
[0110] Figure 4 is a framework diagram of an electrical device provided by another embodiment of the present application, Figure 5 is a user interface diagram of a display module P provided by another embodiment of the present application.
[0111] In some alternative embodiments, as Figure 4 and Figure 5 shown, the display area AA includes a status display area AA1. The electrical device further includes a working sensor WS communicatively connected to the MCU. The instruction set includes a status instruction. The working sensor WS is used to obtain the working status of at least some device structures in the electrical device. The MCU is configured to control the light-emitting device 300 within the status display area AA1 to emit light according to the working status and its corresponding status instruction.
[0112] Exemplarily, the working sensor WS can be electrically connected to the input / output interface of the MCU to achieve communicative connection between the working sensor WS and the MCU.
[0113] Optionally, when the MCU receives the working status transmitted from the working sensor WS, the corresponding status instruction within the MCU will be activated. The activated status instruction can be used to determine a corresponding display signal and control the MCU to output the determined display signal to the corresponding display module P, so that the display module P can display the working status of the electrical device.
[0114] Optionally, the working state may include an abnormal state, the state instruction may include an abnormal state instruction, and the microcontroller MCU is configured to control the lighting of the light-emitting device 300 in the status display area AA1 according to the abnormal state and its corresponding abnormal state instruction, so as to display the abnormal operation of the electrical device in the status display area AA1 (for example, the abnormal operation of the electrical device such as the working temperature of the electrical device being too high or the device structure in the electrical device starting abnormally can be displayed in the status display area AA1).
[0115] Optionally, the working state may further include a device structure startup state, the state instruction may include a device structure startup state instruction, and the microcontroller MCU is configured to control the lighting of the light-emitting device 300 in the status display area AA1 according to the device structure startup state and its corresponding device structure startup state instruction, so as to display the startup state of at least part of the device structure in the electrical device in the status display area AA1 (for example, the startup situation of each working component W in the electrical device can be displayed in the status display area AA1).
[0116] In these alternative embodiments, by setting the microcontroller MCU to be configured to control the lighting of the light-emitting device 300 in the status display area AA1 according to the working state and its corresponding state instruction, it is convenient for the user to view the working state of the electrical device, thereby better enhancing the interaction experience between the user and the electrical device.
[0117] Optionally, the status display area AA1 may also include a touch area TPA, so that the user can further view the working state of the electrical device by touching the touch area TPA in the status display area AA1.
[0118] In some embodiments of the present application, when different working components W need to be provided in the electrical device to meet different functional requirements, corresponding instructions can be set in the instruction set preset in the microcontroller MCU, so that the microcontroller MCU can better control different working components W and can better control the display module P to display different pictures, making the microcontroller MCU in the electrical device provided by the embodiments of the present application have high adaptability in different application scenarios.
[0119] Figure 6 is a framework diagram of an electrical device provided by another embodiment of the present application, Figure 7 is a user interface diagram of a display module P provided by another embodiment of the present application.
[0120] Such as Figure 6 and Figure 7As shown, in some alternative embodiments, the instruction set includes motion instructions, the working component W includes a motion component Wa, and the microcontroller MCU is configured to determine a first type of drive signal based on the control signal and the motion instructions and output the first type of drive signal to the motion component Wa to control the motion of the motion component Wa.
[0121] Optionally, the motion component Wa can implement some functions of the electrical device through motion. For example, the motion component Wa can include at least one of a rotary motor and a linear motor, that is, the motion of the motion component Wa can include at least one of rotary motion and linear motion.
[0122] Exemplarily, when the electrical device includes a washing machine, the motion component Wa can implement the washing work of the electrical device on the target laundry (such as clothes) through rotary motion and / or linear motion. Exemplarily, when the electrical device includes a dryer, the motion component Wa can implement the flipping work of the electrical device on the target drying object (such as clothes) through rotary motion and / or linear motion. Exemplarily, when the electrical device includes a coffee machine, the motion component Wa can implement the grinding work and extraction work of the electrical device on coffee through rotary motion and / or linear motion.
[0123] Optionally, different control signals can activate different motion instructions, different motion instructions can be used to determine different first type of drive signals, and different first type of drive signals can be used to drive the motion component Wa to perform motions with different motion speeds, different motion start times, and / or different motion durations.
[0124] Optionally, the touch area TPA can include a motion touch area TPAa for generating touch signals participating in controlling the motion of the motion component Wa. The user can touch the motion touch area TPAa to enable the touch component 500 to generate different touch signals to activate different motion instructions, so that the moving part can perform motions with different motion speeds, different motion start times, and / or different motion durations.
[0125] In these alternative embodiments, by setting the microcontroller MCU to be configured to determine a first type of drive signal based on the control signal and the motion instructions and output the first type of drive signal to the motion component Wa to control the motion of the motion component Wa, the user can control the motion of the motion component Wa in the electrical device through the microcontroller MCU, so as to implement the corresponding functions of the electrical device.
[0126] In some alternative embodiments, the instruction set includes temperature instructions, the working component W includes a temperature control component Wb, and the microcontroller MCU is configured to determine a second type of drive signal based on the control signal and the temperature instructions and output the second type of drive signal to the temperature control component Wb to control the temperature control work of the temperature control component Wb.
[0127] Optionally, the temperature control component Wb can implement some functions of the electrical device by adjusting the temperature of the electrical device.
[0128] Exemplarily, when the electrical device includes a washing machine, the temperature control component Wb can implement the temperature adjustment work of the electrical device when washing the target laundry by adjusting the temperature of the electrical device. Exemplarily, when the electrical device includes a dryer, the temperature control component Wb can implement the temperature adjustment work of the electrical device when drying the target dried item by adjusting the temperature of the electrical device. Exemplarily, when the electrical device includes a coffee machine, the temperature control component Wb can implement the temperature adjustment work of the electrical device when grinding or extracting coffee by adjusting the temperature of the electrical device.
[0129] Optionally, different control signals can activate different temperature instructions, different temperature instructions can be used to determine different second type drive signals, and different second type drive signals can be used to drive the temperature control component Wb to adjust the electrical device to reach different temperatures, the start time of reaching different temperatures, and / or the maintenance time at different temperatures.
[0130] Optionally, the touch area TPA can include a temperature control touch area TPAb for generating touch signals participating in controlling the temperature adjustment work of the temperature control component Wb. The user can touch the temperature control touch area TPAb to enable the touch component 500 to generate different touch signals to activate different temperature instructions, so that the temperature control component Wb can adjust the electrical device to reach different temperatures, the start time of reaching different temperatures, and / or the maintenance time at different temperatures.
[0131] In these alternative embodiments, by setting the microcontroller MCU to be configured to determine the second type drive signal according to the control signal and the temperature instruction and output the second type drive signal to the temperature control component Wb to control the temperature control work of the temperature control component Wb, the user can control the temperature control work of the temperature control component Wb in the electrical device through the microcontroller MCU, so as to implement the corresponding functions of the electrical device.
[0132] Figure 8 is a framework diagram of an electrical device provided by another embodiment of the present application, Figure 9 is a user interface diagram of a display module P provided by another embodiment of the present application.
[0133] As Figure 8 and Figure 9 shown, in some alternative embodiments, the electrical device includes a washing machine, the instruction set includes a washing instruction set, the working component W includes a washing component W1, and the microcontroller MCU is configured to determine a washing drive signal according to the control signal and the washing instruction set and output the washing drive signal to the washing component W1 to control the washing work of the washing component W1.
[0134] Optionally, the washing instruction set includes a motion instruction and a temperature instruction. The washing component W1 includes a motion assembly Wa and a temperature control assembly Wb, such that the microcontroller MCU can be configured to determine a first type of drive signal and a second type of drive signal according to the control signal and the washing instruction set, and output the first type of drive signal and the second type of drive signal to the motion assembly Wa and the temperature control assembly Wb respectively to control the washing component W1 to perform a washing operation.
[0135] Exemplarily, different control signals can activate different washing instruction sets. Different washing instruction sets can be used to determine different washing drive signals. Different washing drive signals can be used to control the washing component W1 to wash the target laundry at different washing speeds, different washing start times, and / or different washing durations. And / or, different washing drive signals can be used to control the washing component W1 to adjust the washing liquid in the electrical appliance to reach different water temperatures, the start times of reaching different water temperatures, and / or the maintenance times at different water temperatures.
[0136] Optionally, the touch area TPA can include a washing touch area TPA1 for generating touch signals participating in controlling the washing operation. The user can touch the washing touch area TPA1 to enable the touch component 500 to generate different touch signals to activate different washing instruction sets.
[0137] For example, the washing touch area TPA1 can include a motion touch area TPAa to enable the touch component 500 to generate different touch signals to activate different motion instructions, such that the washing component W1 of the washing machine can wash the target laundry at different washing speeds, different washing start times, and / or different washing durations. Also for example, the washing touch area TPA1 can include a temperature control touch area TPAb to enable the touch component 500 to generate different touch signals to activate different temperature control instructions, such that the washing component W1 of the washing machine can adjust the washing liquid in the electrical appliance to reach different water temperatures, the start times of reaching different water temperatures, and / or the maintenance times at different water temperatures.
[0138] In these optional embodiments, by setting the microcontroller MCU to be configured to determine the washing drive signal according to the control signal and the washing instruction set and output the washing drive signal to the washing component W1 to control the washing operation of the washing component W1, the user can control the washing operation of the washing machine through the microcontroller MCU.
[0139] In some optional embodiments, the electrical appliance includes a dryer, the instruction set includes a drying instruction set, the working component W includes a drying component W2, and the microcontroller MCU is configured to determine a drying drive signal according to the control signal and the drying instruction set and output the drying drive signal to the drying component W2 to control the drying operation of the drying component W2.
[0140] Optionally, the drying instruction set includes a motion instruction and a temperature instruction, and the drying component W2 includes a motion component Wa and a temperature control component Wb, such that the single-chip microcomputer MCU can be configured to determine a first type of drive signal and a second type of drive signal according to a control signal and the drying instruction set, and output the first type of drive signal and the second type of drive signal to the motion component Wa and the temperature control component Wb respectively to control the drying operation of the drying component W2.
[0141] Exemplarily, different control signals can activate different drying instruction sets, different drying instruction sets can be used to determine different drying drive signals, and different drying drive signals can be used to control the drying component W2 to flip the target drying object at different flipping speeds, different flipping start times, and / or different flipping durations, and / or different drying drive signals can be used to control the drying component W2 to adjust the drying temperature in the electrical device, the start time of reaching different drying temperatures, and / or the maintaining time at different drying temperatures.
[0142] Optionally, the touch area TPA can include a drying touch area TPA2 for generating touch signals participating in controlling the drying operation. The user can touch the drying touch area TPA2 to enable the touch component 500 to generate different touch signals to activate different drying instruction sets.
[0143] For example, the drying touch area TPA2 can include a motion touch area TPAa to enable the touch component 500 to generate different touch signals to activate different motion instructions, such that the drying component W2 of the dryer can flip the target drying object at different flipping speeds, different flipping start times, and / or different flipping durations. Also for example, the drying touch area TPA2 can include a temperature control touch area TPAb to enable the touch component 500 to generate different touch signals to activate different temperature control instructions, such that the drying component W2 of the dryer can adjust the electrical device to reach different drying temperatures, the start time of reaching different drying temperatures, and / or the maintaining time at different drying temperatures.
[0144] In these optional embodiments, the single-chip microcomputer MCU is configured to determine a drying drive signal according to a control signal and a drying instruction set and output the drying drive signal to the drying component W2 to control the drying operation of the drying component W2, such that the user can control the drying operation of the dryer through the single-chip microcomputer MCU.
[0145] Figure 10 It is a user interface diagram of a display module P provided by still another embodiment of the present application. Figure 11 It is a user interface diagram of a display module P provided by still another embodiment of the present application.
[0146] Such as Figure 10 and Figure 11As shown, in some alternative embodiments, the washing instruction set includes a washing mode setting instruction, and the microcontroller MCU is configured to determine a washing mode setting signal based on a control signal and the washing mode setting instruction and output the washing mode setting signal to the washing component W1 to control the washing component W1 to operate in the corresponding mode.
[0147] Optionally, the washing mode setting instruction may include a motion instruction and a temperature instruction, such that the microcontroller MCU can be configured to determine a first type of drive signal and a second type of drive signal based on the control signal and the washing mode setting instruction and output the first type of drive signal and the second type of drive signal to the washing component W1 to control the washing component W1 to perform a washing operation in the corresponding mode.
[0148] Optionally, the washing mode setting instruction includes at least one of a washing time sub-instruction, a washing start time sub-instruction, a washing rotation speed selection sub-instruction, and a washing temperature selection sub-instruction. Further optionally, both the washing time sub-instruction and the washing start time sub-instruction may include a motion instruction and a temperature instruction, the washing rotation speed selection sub-instruction may include a motion instruction, and the washing temperature selection sub-instruction may include a temperature instruction.
[0149] Exemplarily, different control signals can activate corresponding washing time sub-instructions in different washing instruction sets. Different washing instruction sets can be used to determine different washing drive signals. Different washing drive signals can be used to control the washing component W1 to wash the target laundry for different preset washing durations, and / or different washing drive signals can be used to control the washing component W1 to adjust the preset maintenance time of the electrical equipment at different water temperatures.
[0150] Exemplarily, different control signals can activate corresponding washing start time sub-instructions in different washing instruction sets. Different washing instruction sets can be used to determine different washing drive signals. Different washing drive signals can be used to control the washing component W1 to wash the target laundry at different preset washing start times, and / or different washing drive signals can be used to control the washing component W1 to adjust the preset start time to reach different water temperatures in the electrical equipment.
[0151] Exemplarily, different control signals can activate corresponding washing rotation speed selection sub-instructions in different washing instruction sets. Different washing instruction sets can be used to determine different washing drive signals. Different washing drive signals can be used to control the washing component W1 to wash the target laundry at different preset washing rotation speeds.
[0152] Exemplarily, different control signals can activate corresponding washing temperature selection sub-instructions in different washing instruction sets. Different washing instruction sets can be used to determine different washing drive signals, and different washing drive signals can be used to control the washing component W1 to adjust the washing liquid in the electrical appliance to reach different preset water temperatures.
[0153] Optionally, the user can touch the washing touch area TPA1 corresponding to different washing modes to enable the touch component 500 to generate different touch signals to activate different washing mode setting instructions.
[0154] For example, after the user activates different washing mode setting instructions by touching the washing touch area TPA1 corresponding to different washing modes, the washing component W1 of the washing machine can wash the target laundry at the preset washing speed, washing start time, and / or washing duration in different washing modes. For another example, after the user activates different washing mode setting instructions by touching the washing touch area TPA1 corresponding to different washing modes, the washing component W1 of the washing machine can wash the target laundry at the preset water temperature, the start time to reach the preset water temperature, and / or the maintenance time at the preset water temperature in different washing modes.
[0155] In these alternative embodiments, the microcontroller MCU is configured to determine a washing mode setting signal based on the control signal and the washing mode setting instruction and output the washing mode setting signal to the washing component W1 to control the washing component W1 to work in the corresponding mode, so that the user can control the washing machine to wash according to the preset washing mode through the microcontroller MCU, which can better reduce the complexity and difficulty of the interaction between the user and the electrical appliance.
[0156] In some alternative embodiments, the microcontroller MCU is configured to determine the corresponding washing mode setting instruction based on the control signal corresponding to different types of target laundry materials.
[0157] Optionally, the washing mode setting instruction includes at least one of a denim washing mode instruction, a wool washing mode instruction, a down washing mode instruction, a silk washing mode instruction, a woolen washing mode instruction, a chemical fiber washing mode instruction, and a mixed washing mode instruction.
[0158] Optionally, the washing time sub-instructions, washing start time sub-instructions, washing speed selection sub-instructions, and washing temperature selection sub-instructions of any two of the denim washing mode instruction, the wool washing mode instruction, the down washing mode instruction, the silk washing mode instruction, the woolen washing mode instruction, the chemical fiber washing mode instruction, and the mixed washing mode instruction are not completely the same.
[0159] In these alternative embodiments, by setting that the microcontroller MCU is configured to determine corresponding washing mode setting instructions based on control signals corresponding to different types of target laundry materials, the washing machine can implement the washing operation according to different types of target laundry materials, thereby being able to better improve the working effect of the washing machine.
[0160] In some alternative embodiments, as Figure 10 and Figure 11 shown, the washing mode setting instructions may include washing initial setting instructions and washing advanced setting instructions, and the washing touch area TPA1 may include a washing initial setting area TPA1a and a washing advanced setting area TPA1b. The user can first touch the washing initial setting area TPA1a corresponding to a specific washing mode to make the touch component 500 generate a corresponding touch signal (as shown in the figure, the user can touch the washing initial setting area TPA1a corresponding to the mixed washing mode to make the touch component 500 generate a corresponding touch signal) to activate the corresponding washing initial setting instructions (for example, to activate the washing initial setting instructions corresponding to the mixed washing mode). The activated washing initial setting instructions can be used to determine the corresponding display signal and control the microcontroller MCU to output the determined display signal to the corresponding display module P, so that the display module P displays a screen including the washing advanced setting area TPA1b as Figure 11 shown.
[0161] Then the user can touch the washing advanced setting area TPA1b corresponding to different washing times, washing start times, washing speed selections, and washing temperature selections to make the touch component 500 generate different touch signals to activate the corresponding washing advanced setting instructions. The washing advanced setting instructions may include the washing time sub-instructions, washing start time sub-instructions, washing speed selection sub-instructions, and washing temperature selection sub-instructions selected by the user, thereby completing the user's presetting of the washing time, washing start time, washing speed selection, and washing temperature selection under a specific washing mode. The washing advanced setting instructions preset by the user can be used to determine the corresponding washing mode setting signal and output the washing mode setting signal to the washing component W1 to control the washing component W1 to work in a mode including the user's preset washing time, preset washing start time, preset washing speed selection, and preset washing temperature selection.
[0162] Figure 12 is a framework diagram of an electrical device provided by still another embodiment of the present application.
[0163] As Figure 12As shown, in some alternative embodiments, the electrical appliance further includes a functional sensor MS communicatively connected to the microcontroller MCU. The functional sensor MS is capable of obtaining specific parameters of the target laundry item, and the microcontroller MCU is configured to determine a corresponding washing mode setting instruction from a set of washing instructions based on the specific parameters and a control signal.
[0164] Exemplarily, the functional sensor MS can be electrically connected to the input / output interface of the microcontroller MCU to achieve the communicative connection between the functional sensor MS and the microcontroller MCU.
[0165] Optionally, the specific parameters include the type of material of the target laundry item.
[0166] Optionally, the functional sensor MS can include an infrared sensor. The infrared sensor can be used to emit infrared rays onto the target laundry item, and the infrared sensor can determine the type of material of the target laundry item based on the transmittance of the infrared rays on the target laundry item.
[0167] Exemplarily, the microcontroller MCU is configured to determine a corresponding washing mode setting instruction from the denim washing mode instruction, wool washing mode instruction, down washing mode instruction, silk washing mode instruction, woolen washing mode instruction, chemical fiber washing mode instruction, and mixed washing mode instruction in the set of washing instructions based on the specific parameters and a control signal.
[0168] Optionally, the control signal includes an automatic washing mode control signal and multiple conventional washing mode control signals. For example, a part of the washing touch area TPA1 can be used to sense user touch and generate an automatic washing mode control signal, and another part of the washing touch area TPA1 can be used to sense user touch and generate a conventional washing mode control signal.
[0169] Optionally, the microcontroller MCU is configured to determine a washing mode setting signal based on the conventional washing mode control signal and the washing mode setting instruction and output the washing mode setting signal to the washing component W1 to control the washing component W1 to operate in the corresponding mode.
[0170] For example, when the microcontroller MCU receives a certain conventional washing mode control signal, the washing mode setting instruction corresponding to the conventional washing mode control signal among the denim washing mode instruction, wool washing mode instruction, down washing mode instruction, silk washing mode instruction, woolen washing mode instruction, chemical fiber washing mode instruction, and mixed washing mode instruction will be activated. The activated washing mode setting instruction can be used to determine the washing mode setting signal and output the washing mode setting signal to the washing component W1 to control the washing component W1 to operate in the corresponding mode.
[0171] Optionally, the microcontroller unit (MCU) is configured to determine a washing mode setting signal based on an automatic washing mode control signal and a washing mode setting instruction determined from a washing instruction set by specific parameters and the automatic washing mode control signal, and output the washing mode setting signal to the washing component W1 to control the washing component W1 to operate in the corresponding mode.
[0172] For example, when the microcontroller unit (MCU) receives the automatic washing mode control signal, the washing mode setting instruction corresponding to the specific parameters obtained by the function sensor MS among the denim washing mode instruction, wool washing mode instruction, down washing mode instruction, silk washing mode instruction, woolen washing mode instruction, chemical fiber washing mode instruction, and mixed washing mode instruction will be determined and activated. The activated washing mode setting instruction can be used to determine the washing mode setting signal and output the washing mode setting signal to the washing component W1 to control the washing component W1 to operate in the corresponding mode.
[0173] In these alternative embodiments, by setting the microcontroller unit (MCU) to be configured to determine the corresponding washing mode setting instruction from the washing instruction set according to specific parameters and control signals, the electrical appliance can automatically and more intelligently select the washing mode of the washing machine according to the specific parameters detected by the function sensor MS, thereby better improving the intelligence level of the electrical appliance and reducing the operation difficulty of the user for the electrical appliance.
[0174] Figure 13 It is a user interface diagram of a display module P provided by another embodiment of the present application. Figure 14 It is a user interface diagram of a display module P provided by another embodiment of the present application.
[0175] As Figure 13 and Figure 14 As shown, in some alternative embodiments, the drying instruction set includes a drying mode setting instruction. The microcontroller unit (MCU) is configured to determine a drying mode setting signal based on a control signal and the drying mode setting instruction, and output the drying mode setting signal to the drying component W2 to control the drying component W2 to operate in the corresponding mode.
[0176] Optionally, the drying mode setting signal may include a motion instruction and a temperature instruction, so that the microcontroller unit (MCU) can be configured to determine a first type of driving signal and a second type of driving signal based on the control signal and the drying mode setting instruction, and output the first type of driving signal and the second type of driving signal to the drying component W2 to control the drying component W2 to perform drying work in the corresponding mode.
[0177] Optionally, the drying mode setting instruction includes at least one of a drying time sub-instruction, a drying start time sub-instruction, a drying rotation speed selection sub-instruction, and a drying temperature selection sub-instruction. Further optionally, both the drying time sub-instruction and the drying start time sub-instruction may include a motion instruction and a temperature instruction, the drying rotation speed selection sub-instruction may include a motion instruction, and the drying temperature selection sub-instruction may include a temperature instruction.
[0178] Exemplarily, different control signals may activate corresponding drying time sub-instructions in different drying instruction sets. Different drying instruction sets may be used to determine different drying drive signals. Different drying drive signals may be used to control the drying component W2 to flip the target drying object with different preset flipping durations, and / or different drying drive signals may be used to control the drying component W2 to adjust the preset maintenance time of different drying temperatures in the electrical equipment.
[0179] Exemplarily, different control signals may activate corresponding drying start time sub-instructions in different drying instruction sets. Different drying instruction sets may be used to determine different drying drive signals. Different drying drive signals may be used to control the drying component W2 to dry the target drying object at different preset drying start times, and / or different drying drive signals may be used to control the drying component W2 to adjust the preset start time to reach different drying temperatures in the electrical equipment.
[0180] Exemplarily, different control signals may activate corresponding drying rotation speed selection sub-instructions in different drying instruction sets. Different drying instruction sets may be used to determine different drying drive signals. Different drying drive signals may be used to control the drying component W2 to flip the target drying object at different preset flipping speeds.
[0181] Exemplarily, different control signals may activate corresponding drying temperature selection sub-instructions in different drying instruction sets. Different drying instruction sets may be used to determine different drying drive signals. Different drying drive signals may be used to control the drying component W2 to adjust the electrical equipment to reach different preset drying temperatures.
[0182] Optionally, the user may touch the drying touch area TPA2 corresponding to different drying modes to enable the touch component 500 to generate different touch signals to activate different drying mode setting instructions.
[0183] For example, after the user activates different drying mode setting instructions by touching the drying touch area TPA2 corresponding to different drying modes, the drying component W2 of the dryer can dry the target drying object at the preset drying rotation speed, drying start time, and / or drying duration in different drying modes. Another example is that after the user activates different drying mode setting instructions by touching the drying touch area TPA2 corresponding to different drying modes, the drying component W2 of the dryer can dry the target drying object at the preset drying temperature, the start time to reach the preset drying temperature, and / or the maintenance time at the preset drying temperature.
[0184] In these alternative embodiments, the microcontroller MCU is configured to determine a drying mode setting signal based on the control signal and the drying mode setting instruction and output the drying mode setting signal to the drying component W2 to control the drying component W2 to operate in the corresponding mode, enabling the user to control the dryer to dry in the preset drying mode through the microcontroller MCU, which can better reduce the complexity and difficulty of the interaction between the user and the electrical equipment.
[0185] In some alternative embodiments, the microcontroller MCU is configured to determine the corresponding drying mode setting instruction based on the control signal corresponding to different types of target drying object materials.
[0186] Optionally, the drying mode setting instruction includes at least one of a denim drying mode instruction, a wool drying mode instruction, a down drying mode instruction, a silk drying mode instruction, a woolen fabric drying mode instruction, a chemical fiber drying mode instruction, and a mixed drying mode instruction.
[0187] Optionally, the drying time sub-instruction, the drying start time sub-instruction, the drying rotation speed selection sub-instruction, and the drying temperature selection sub-instruction of any two of the denim drying mode instruction, the wool drying mode instruction, the down drying mode instruction, the silk drying mode instruction, the woolen fabric drying mode instruction, the chemical fiber drying mode instruction, and the mixed drying mode instruction are not completely the same.
[0188] In these alternative embodiments, by setting the microcontroller MCU to be configured to determine the corresponding drying mode setting instruction based on the control signal corresponding to different types of target drying object materials, the dryer can perform the drying work according to different types of target drying object materials, thereby better improving the working effect of the dryer.
[0189] In some alternative embodiments, such as Figure 13 and Figure 14As shown, the drying mode setting instruction may include a drying initial setting instruction and a drying advanced setting instruction. The drying touch area TPA2 may include a drying initial setting area TPA2a and a drying advanced setting area TPA2b. The user can first touch the drying initial setting area TPA2a corresponding to a specific drying mode to make the touch component 500 generate a corresponding touch signal (as shown in the figure, the user can touch the drying initial setting area TPA2a corresponding to the mixed drying mode to make the touch component 500 generate a corresponding touch signal), so as to activate the corresponding drying initial setting instruction (for example, to activate the drying initial setting instruction corresponding to the mixed drying mode). The activated drying initial setting instruction can be used to determine the corresponding display signal and control the single-chip microcomputer MCU to output the determined display signal to the corresponding display module P, so that the display module P displays a screen including the drying advanced setting area TPA2b as shown in Figure 14 the figure.
[0190] Then the user can touch the drying advanced setting area TPA2b corresponding to different drying times, drying start times, drying speed selections, and drying temperature selections to make the touch component 500 generate different touch signals, so as to activate the corresponding drying advanced setting instructions. The drying advanced setting instructions may include the drying time sub-instruction, drying start time sub-instruction, drying speed selection sub-instruction, and drying temperature selection sub-instruction selected by the user's touch, thereby completing the user's pre-setting of the drying time, drying start time, drying speed selection, and drying temperature selection under a specific drying mode. The drying advanced setting instructions pre-set by the user can be used to determine the corresponding drying mode setting signal and output the drying mode setting signal to the drying component W2 to control the drying component W2 to work in a mode including the user's pre-set drying time, pre-set drying start time, pre-set drying speed selection, and pre-set drying temperature selection.
[0191] As shown in Figure 12 the figure, in some alternative embodiments, the electrical device further includes a function sensor MS communicatively connected to the single-chip microcomputer MCU. The function sensor MS can obtain specific parameters of the target drying object. The single-chip microcomputer MCU is configured to determine the corresponding drying mode setting instruction from the drying instruction set according to the specific parameters and the control signal.
[0192] Exemplarily, the function sensor MS can be electrically connected to the input / output interface of the single-chip microcomputer MCU to realize the communication connection between the function sensor MS and the single-chip microcomputer MCU.
[0193] Optionally, the specific parameter includes the type of the target drying object material.
[0194] Optionally, the functional sensor MS may include an infrared sensor, which can be used to emit infrared rays onto the target drying object. The infrared sensor can determine the material type of the target drying object based on the transmittance of the infrared rays on the target drying object.
[0195] Exemplarily, the microcontroller MCU is configured to determine a corresponding drying mode setting instruction from the denim drying mode instruction, wool drying mode instruction, down drying mode instruction, silk drying mode instruction, woolen fabric drying mode instruction, chemical fiber drying mode instruction, and mixed drying mode instruction in the drying instruction set according to specific parameters and control signals.
[0196] Optionally, the control signals include an automatic drying mode control signal and multiple conventional drying mode control signals. For example, a part of the drying touch area TPA2 can be used to sense user touch and generate an automatic drying mode control signal, and another part of the drying touch area TPA2 can be used to sense user touch and generate a conventional drying mode control signal.
[0197] Optionally, the microcontroller MCU is configured to determine a drying mode setting signal according to the conventional drying mode control signal and the drying mode setting instruction, and output the drying mode setting signal to the drying component W2 to control the drying component W2 to work in the corresponding mode.
[0198] For example, when the microcontroller MCU receives a certain conventional drying mode control signal, the drying mode setting instruction corresponding to the conventional drying mode control signal among the denim drying mode instruction, wool drying mode instruction, down drying mode instruction, silk drying mode instruction, woolen fabric drying mode instruction, chemical fiber drying mode instruction, and mixed drying mode instruction will be activated. The activated drying mode setting instruction can be used to determine the drying mode setting signal and output the drying mode setting signal to the drying component W2 to control the drying component W2 to work in the corresponding mode.
[0199] Optionally, the microcontroller MCU is configured to determine a drying mode setting signal according to the automatic drying mode control signal and the drying mode setting instruction determined from the drying instruction set by specific parameters and the automatic drying mode control signal, and output the drying mode setting signal to the drying component W2 to control the drying component W2 to work in the corresponding mode.
[0200] For example, when the microcontroller MCU receives an automatic drying mode control signal, the drying mode setting instructions corresponding to the specific parameters obtained by the function sensor MS among the denim drying mode instruction, wool drying mode instruction, down drying mode instruction, silk drying mode instruction, woolen fabric drying mode instruction, chemical fiber drying mode instruction, and mixed drying mode instruction will be determined and activated. The activated drying mode setting instruction can be used to determine the drying mode setting signal and output the drying mode setting signal to the drying component W2 to control the drying component W2 to work in the corresponding mode.
[0201] In these alternative embodiments, by setting the microcontroller MCU to be configured to determine the corresponding drying mode setting instruction from the drying instruction set according to the specific parameters and control signals, the electrical appliance can automatically and more intelligently select the drying mode of the dryer according to the specific parameters detected by the function sensor MS, thereby being able to better improve the intelligence level of the electrical appliance and reduce the operation difficulty of the user for the electrical appliance.
[0202] Figure 15 is a framework diagram of an electrical appliance provided by another embodiment of the present application, Figure 16 is a user interface diagram of a display module P provided by another embodiment of the present application.
[0203] Such as Figure 15 and Figure 16 As shown, in some alternative embodiments, the electrical appliance includes a coffee machine, the instruction set includes a grinding instruction set, the working component W includes a grinding component W3, and the microcontroller MCU is configured to determine a grinding drive signal from the control signal and the grinding instruction set and output the grinding drive signal to the grinding component W3 to control the grinding work of the grinding component W3.
[0204] Optionally, the grinding instruction set includes a motion instruction and a temperature instruction, and the grinding component W3 includes a motion component Wa and a temperature control component Wb, so that the microcontroller MCU can be configured to determine a first type of drive signal and a second type of drive signal from the control signal and the grinding instruction set and output the first type of drive signal and the second type of drive signal to the motion component Wa and the temperature control component Wb respectively to control the grinding component W3 to perform grinding work.
[0205] Exemplarily, different control signals can activate different grinding instruction sets, different grinding instruction sets can be used to determine different grinding drive signals, different grinding drive signals can be used to control the grinding component W3 to grind the target grind at different grinding speeds, different grinding start times, and / or different grinding durations, and / or, different grinding drive signals can be used to control the grinding component W3 to adjust the electrical appliance to reach different grinding temperatures, the start time of reaching different grinding temperatures, and / or the maintenance time at different grinding temperatures.
[0206] Optionally, the touch area TPA may include a grinding touch area TPA3 for generating touch signals involved in controlling the grinding operation. The user can touch the grinding touch area TPA3 to make the touch component 500 generate different touch signals to activate different grinding instruction sets.
[0207] For example, the grinding touch area TPA3 may include a motion touch area TPAa to make the touch component 500 generate different touch signals to activate different motion instructions, so that the grinding component W3 of the coffee machine can grind the target grind at different grinding speeds, different grinding start times, and / or different grinding durations. Another example, the grinding touch area TPA3 may include a temperature control touch area TPAb to make the touch component 500 generate different touch signals to activate different temperature control instructions, so that the grinding component W3 of the coffee machine can adjust the electrical device to reach different grinding temperatures, the start time of reaching different grinding temperatures, and / or the maintenance time at different grinding temperatures.
[0208] In these alternative embodiments, by setting the microcontroller MCU to be configured to determine a grinding drive signal based on the control signal and the grinding instruction set and output the grinding drive signal to the grinding component W3 to control the grinding operation of the grinding component W3, the user can control the grinding operation of the coffee machine through the microcontroller MCU.
[0209] In some alternative embodiments, the electrical device includes a coffee machine, the instruction set includes an extraction instruction set, the working component W includes an extraction component W4, and the microcontroller MCU is configured to determine an extraction drive signal based on the control signal and the extraction instruction set and output the extraction drive signal to the extraction component W4 to control the extraction operation of the extraction component W4.
[0210] Optionally, the extraction instruction set includes a motion instruction and a temperature instruction, and the extraction component W4 includes a motion component Wa and a temperature control component Wb, so that the microcontroller MCU can be configured to determine a first type of drive signal and a second type of drive signal based on the control signal and the extraction instruction set and output the first type of drive signal and the second type of drive signal to the motion component Wa and the temperature control component Wb respectively to control the extraction component W4 to perform an extraction operation.
[0211] Exemplarily, different control signals can activate different extraction instruction sets, different extraction instruction sets can be used to determine different extraction drive signals, different extraction drive signals can be used to control the extraction component W4 to extract the target extract at different extraction speeds, different extraction start times, and / or different extraction durations, and / or, different extraction drive signals can be used to control the extraction component W4 to adjust the electrical device to reach different extraction temperatures, the start time of reaching different extraction temperatures, and / or the maintenance time at different extraction temperatures.
[0212] Optionally, the touch area TPA may include an extraction touch area TPA4 for generating touch signals participating in controlling the extraction operation. The user can touch the extraction touch area TPA4 to enable the touch component 500 to generate different touch signals to activate different extraction instruction sets.
[0213] For example, the extraction touch area TPA4 may include a motion touch area TPAa to enable the touch component 500 to generate different touch signals to activate different motion instructions, so that the extraction component W4 of the coffee machine can extract the target extract at different extraction speeds, different extraction start times, and / or different extraction durations. For another example, the extraction touch area TPA4 may include a temperature control touch area TPAb to enable the touch component 500 to generate different touch signals to activate different temperature control instructions, so that the extraction component W4 of the coffee machine can adjust the electrical device to reach different extraction temperatures, the start time of reaching different extraction temperatures, and / or the maintenance time at different extraction temperatures.
[0214] In these alternative embodiments, by setting the single-chip microcomputer MCU to be configured to determine an extraction drive signal according to the control signal and the extraction instruction set and output the extraction drive signal to the extraction component W4 to control the extraction operation of the extraction component W4, the user can control the extraction operation of the coffee machine through the single-chip microcomputer MCU.
[0215] Figure 17 It is a framework diagram of an electrical device provided by another embodiment of the present application.
[0216] As Figure 17 shown, in some alternative embodiments, the electrical device further includes a wireless communication module WM communicatively connected to the single-chip microcomputer MCU.
[0217] Optionally, the wireless communication module WM is used to receive a wireless control signal sent by an external device. The control signal includes the wireless control signal, so that the user can control the working component W in the electrical device to perform corresponding operations or the display module P in the electrical device to perform corresponding displays through the external device.
[0218] Optionally, the single-chip microcomputer MCU is configured to determine a display signal according to the control signal and the instruction set and output the display signal to the wireless communication module WM. The wireless communication module WM is configured to determine a wireless display signal according to the display signal and output the wireless display signal to the external device. The wireless display signal can be used to drive the working state of the electrical device and / or different function options of the electrical device to be displayed on the screen of the external device, so that the user can control the working component W in the electrical device to perform corresponding operations through the external device.
[0219] Exemplarily, the wireless communication module WM can be electrically connected to the input / output interface of the microcontroller MCU to enable communication connection between the wireless communication module WM and the microcontroller MCU.
[0220] Optionally, the wireless communication module WM can receive wireless control signals sent by an external device or output wireless display signals to the external device by at least one of Wi-Fi, Bluetooth, and Near Field Communication (NFC).
[0221] Optionally, the external device can be any kind of movable device. For example, the external device can be a movable device such as a mobile phone or a remote control.
[0222] Figure 18 It is a framework diagram of an electrical device provided by another embodiment of the present application.
[0223] As Figure 18 shown, in some alternative embodiments, the electrical device further includes an interactive communication module UM communicatively connected to the microcontroller MCU.
[0224] Optionally, the interactive communication module UM includes a voice communication module that is used to sense the user's voice information and generate corresponding voice control signals. The control signals include voice control signals, enabling the user to control the working component W in the electrical device to perform corresponding operations or the display module P in the electrical device to perform corresponding displays by voice control.
[0225] Optionally, the interactive communication module UM includes a gesture communication module that is used to sense the user's gesture information and generate corresponding gesture control signals. The control signals include gesture control signals, enabling the user to control the working component W in the electrical device to perform corresponding operations or the display module P in the electrical device to perform corresponding displays by gesture control.
[0226] Exemplarily, the interactive communication module UM can be electrically connected to the input / output interface of the microcontroller MCU to enable communication connection between the interactive communication module UM and the microcontroller MCU.
[0227] Figure 19 It is a framework diagram of an electrical device provided by another embodiment of the present application.
[0228] As Figure 19 shown, in some alternative embodiments, the electrical device further includes a power supply module SM.
[0229] Optionally, the power module SM may be electrically connected to the single-chip microcomputer MCU, so that the power module SM can supply power to the single-chip microcomputer MCU. Exemplarily, the power module SM may have the functions of converting AC power into DC power, reducing voltage, rectifying, filtering and stabilizing voltage, and the power module SM may have the function of protecting the single-chip microcomputer MCU in the event of overcurrent, overvoltage and short circuit, so that the power module SM provides a relatively stable current to the single-chip microcomputer MCU.
[0230] Exemplarily, the power module SM can supply power to other device structures of the electrical device through the single-chip microcomputer MCU. For example, the power module SM can supply power to the working parts W, display module P, wireless communication module WM and interactive communication module UM in the electrical device through the single-chip microcomputer MCU.
[0231] Optionally, the power module SM may include a ground terminal, and the display module P includes a ground circuit. The ground circuit of the display module P may be electrically connected to the ground terminal, which is beneficial to limiting the static electricity accumulation problem in the display module P, making the display module P less likely to be damaged due to static electricity accumulation, and also making it less likely for users to be hit by static electricity when interacting with the display module P.
[0232] Optionally, the single-chip microcomputer MCU may also include a grounding circuit, and the grounding circuit of the single-chip microcomputer MCU may also be electrically connected to the ground terminal, which is beneficial to limiting the static electricity accumulation problem in the single-chip microcomputer MCU, making the single-chip microcomputer MCU less likely to be damaged by static electricity accumulation.
[0233] Optionally, the display module P further includes a power protection circuit. For example, the display module P may include positive voltage and negative voltage power protection circuits, so that the display module P is not easily damaged by voltage fluctuations.
[0234] Figure 20 It is a partial cross-sectional view of an electrical device provided in an embodiment of the present application.
[0235] like Figure 20 As shown, in some optional embodiments, the electrical device also includes a cover plate 20 and a fixing member 30, the cover plate 20 is arranged on the light-emitting side of the display module P, and the fixing member 30 and the display module P are both located on the same side of the cover plate 20, the fixing member 30 includes a first fixing portion 31 and a second fixing portion 32 connected to each other, the first fixing portion 31 is connected to the cover plate 20, the second fixing portion 32 is located on the side of the display module P away from the cover plate 20, and the single-chip microcomputer MCU is arranged on the side of the second fixing portion 32 away from the display module P.
[0236] Optionally, the electrical device further includes a housing 70, and the fixing member 30 can be connected to the housing 70, so that the cover plate 20, the display module P and the single-chip microcomputer MCU can be fixed to the housing 70 through the fixing member 30. Exemplarily, the first fixing portion 31 of the fixing member 30 can be connected to the housing 70.
[0237] Optionally, the first fixing portion 31 and the second fixing portion 32 can enclose to form a receiving groove 30a, and at least a part of the display module P is located in the receiving groove 30a, so as to arrange the display module P between the second fixing portion 32 and the cover plate 20, so that the display module P can be better close to the single-chip microcomputer MCU, facilitating the communication connection between the display module P and the single-chip microcomputer MCU.
[0238] Exemplarily, the second fixing portion 32 can protrude from the first fixing portion 31 toward the side away from the cover plate 20, so that a surface of the second fixing portion 32 facing the cover plate 20 and the first fixing portion 31 can enclose to form the receiving groove 30a, that is, the receiving groove 30a can be formed on the side of the second fixing portion 32 facing the cover plate 20.
[0239] Optionally, the display module P further includes a circuit board 60 disposed on the side of the display panel 10 away from the cover plate 20. The second fixing portion 32 is provided with a communication opening 30b, and the circuit board 60 is electrically connected to the single-chip microcomputer MCU through the communication opening 30b.
[0240] Exemplarily, the circuit board 60 can be electrically connected to at least one of a mobile industry processor interface, a serial peripheral interface, and an integrated circuit bus of the single-chip microcomputer MCU through the communication opening 30b.
[0241] Optionally, the circuit board 60 can include a grounding circuit, and the grounding circuit of the circuit board 60 can be electrically connected to a grounding terminal.
[0242] Optionally, the electrical device further includes a foam adhesive 50. The first fixing portion 31 can be connected to the cover plate 20 through the foam adhesive 50. The foam adhesive 50 disposed between the first fixing portion 31 and the cover plate 20 can be used to relieve external impacts, so that the single-chip microcomputer MCU disposed on the side of the second fixing portion 32 away from the display module P is not easily damaged under the influence of external impacts.
[0243] In these optional embodiments, the cover plate 20 can be used to protect the display module P, and the cover plate 20 can be used to allow the light emitted by the display module P to be transmitted outward. The fixing member 30 can be used to fix the relative positional relationship between the single-chip microcomputer MCU and the display module P, and can better improve the stability of the communication connection between the single-chip microcomputer MCU and the display module P.
[0244] In some optional embodiments, the electrical device further includes a side sealant 40 connected to the side walls of the cover plate 20 and the display module P. The side sealant 40 is disposed around the display module P.
[0245] Optionally, the side wall of the display module P can refer to the wall surface of the display module P facing the first fixing portion 31.
[0246] In these alternative embodiments, the side sealant 40 can be used to restrict the intrusion of water vapor from the sidewalls of the display module P into the interior of the display module P, which can better improve the waterproof performance of the electrical device, and thus can better improve the working stability of the electrical device.
[0247] Figure 21 It is a schematic flow diagram of a control method for an electrical device provided by an embodiment of the present application.
[0248] Please refer to the foregoing drawings and Figure 21 An embodiment of the second aspect of the present application provides a control method for an electrical device. The control method can be applied to the microcontroller MCU in the electrical device of any of the above embodiments. The control method includes:
[0249] Step S10: Receive a control signal.
[0250] Step S20: Determine a display signal and a driving signal according to the control signal and a preset instruction set.
[0251] Optionally, in step S20, the control signal received by the microcontroller MCU can activate the corresponding instruction in the preset instruction set, and the activated instruction can be used to determine the corresponding display signal and driving signal.
[0252] Step S30: Output the display signal to the display module P and output the driving signal to the working component W.
[0253] In the control method provided by the embodiment of the present application, by presetting an instruction set in the microcontroller MCU and setting in step S20 that the microcontroller MCU can determine the display signal and the driving signal according to the control signal and the preset instruction set, the microcontroller MCU can determine the display signal and the driving signal without passing through a complex operating system, so that the working component W and the display module P in the electrical device can be controlled by a microcontroller MCU without a built-in complex operating system with a lower cost, thereby reducing the usage degree of the chip that realizes control through a complex operating system with a higher cost in the electrical device, and further being able to better reduce the hardware cost of the electrical device.
[0254] In some alternative embodiments, in step S20, it includes: determining a first type of driving signal according to the control signal and the motion instruction in the instruction set.
[0255] In step S30, it includes: outputting the first type of driving signal to the motion component Wa in the working component W.
[0256] In this optional embodiment, the first type of driving signal output by the microcontroller MCU can be used to drive the moving component Wa to perform rotational motion, linear motion, or other motions, so as to implement the corresponding functions of the electrical device. For example, the first type of driving signal can be used to drive the moving component Wa to perform rotational motion and / or linear motion to implement the washing work of the electrical device on the target washing object (such as clothes) or to implement the flipping work of the electrical device on the target drying object (such as clothes).
[0257] In some optional embodiments, step S20 includes: determining a second type of driving signal according to the control signal and the temperature instruction in the instruction set;
[0258] Step S30 includes: outputting the second type of driving signal to the temperature control component Wb in the working component W.
[0259] In this optional embodiment, the second type of driving signal output by the microcontroller MCU can be used to drive the temperature control component Wb to adjust the temperature of the electrical device, so as to implement the corresponding functions of the electrical device. For example, the second type of driving signal can be used to drive the temperature control component Wb to adjust the temperature inside the electrical device to implement the temperature adjustment work of the electrical device when washing the target washing object or to implement the temperature adjustment work of the electrical device when drying the target drying object.
[0260] In some optional embodiments, the instruction set includes a washing instruction set, the working component W includes a washing component W1, and step S20 includes: determining a washing driving signal according to the control signal and the washing instruction set.
[0261] Step S30 includes: outputting the washing driving signal to the washing component W1.
[0262] Optionally, the washing instruction set includes the motion instruction and the temperature instruction in any of the foregoing embodiments, and the washing component W1 includes the moving component Wa and the temperature control component Wb in any of the embodiments.
[0263] In this optional embodiment, the washing driving signal output by the microcontroller MCU can be used to drive the washing component W1 to complete the washing work on the target washing object. For example, the washing driving signal output by the microcontroller MCU can be used to drive the washing component W1 to perform rotational motion and / or linear motion to implement the washing work on the target washing object, and / or, the washing driving signal output by the microcontroller MCU can be used to drive the washing component W1 to adjust the temperature inside the electrical device to implement the temperature adjustment work of the electrical device when washing the target washing object.
[0264] In some optional embodiments, the washing instruction set includes a washing mode setting instruction, and in the step of determining the washing driving signal according to the control signal and the washing instruction set, it includes: determining a washing mode setting signal according to the control signal and the washing mode setting instruction.
[0265] In the step of outputting a washing drive signal to the washing component W1, it includes: outputting a washing mode setting signal to the washing component W1.
[0266] Optionally, in the step of determining the washing mode setting signal according to the control signal and the washing mode setting instruction: the corresponding washing mode setting instruction can be determined based on the control signal corresponding to different target washing material types.
[0267] Optionally, the washing mode setting instruction can include the denim washing mode instruction, wool washing mode instruction, down washing mode instruction, silk washing mode instruction, woolen fabric washing mode instruction, chemical fiber washing mode instruction, and mixed washing mode instruction in any of the foregoing embodiments.
[0268] In these alternative embodiments, the washing mode setting signal output by the single-chip microcomputer MCU can drive the washing component W1 to work in the corresponding mode, which can better reduce the complexity and difficulty of the interaction between the user and the electrical equipment.
[0269] In some alternative embodiments, the control method may further include: receiving specific parameters from the function sensor MS.
[0270] In the step of determining the washing mode setting signal according to the control signal and the washing mode setting instruction: the corresponding washing mode setting instruction can be determined from the washing instruction set according to the specific parameters and the control signal.
[0271] Optionally, the step of receiving specific parameters from the function sensor MS can be located before step S20 or in step S20.
[0272] In these alternative embodiments, by setting that the single-chip microcomputer MCU can determine the corresponding washing mode setting instruction from the washing instruction set according to the specific parameters and the control signal, the electrical equipment can automatically and more intelligently select the washing mode of the washing machine according to the specific parameters detected by the function sensor MS, thereby being able to better improve the intelligence level of the electrical equipment and reduce the operation difficulty of the user for the electrical equipment.
[0273] In some alternative embodiments, the instruction set includes a drying instruction set, the working component W includes a drying component W2, and in step S20, it includes: determining a drying drive signal according to the control signal and the drying instruction set.
[0274] In step S30, it includes: outputting a drying drive signal to the drying component W2.
[0275] Optionally, the drying instruction set includes the movement instruction and temperature instruction in any of the foregoing embodiments, and the drying component W2 includes the movement component Wa and temperature control component Wb in any of the embodiments.
[0276] In this alternative embodiment, the drying drive signal output by the microcontroller MCU can be used to drive the drying component W2 to complete the drying work on the target object to be dried. For example, the drying drive signal output by the microcontroller MCU can be used to drive the drying component W2 to perform rotational motion and / or linear motion to realize the flipping work of the electrical equipment on the target object to be dried, and / or, the drying drive signal output by the microcontroller MCU can be used to drive the drying component W2 to adjust the temperature inside the electrical equipment to realize the temperature adjustment work of the electrical equipment when drying the target object to be dried.
[0277] In some alternative embodiments, the drying instruction set includes a drying mode setting instruction. In the step of determining the drying drive signal according to the control signal and the drying instruction set, it includes: determining the drying mode setting signal according to the control signal and the drying mode setting instruction.
[0278] In the step of outputting the drying drive signal to the drying component W2, it includes: outputting the drying mode setting signal to the drying component W2.
[0279] Optionally, in the step of determining the drying mode setting signal according to the control signal and the drying mode setting instruction: the corresponding drying mode setting instruction can be determined based on the control signals corresponding to different types of target object to be dried materials.
[0280] Optionally, the drying mode setting instruction can include the denim drying mode instruction, wool drying mode instruction, down drying mode instruction, silk drying mode instruction, woolen drying mode instruction, chemical fiber drying mode instruction, and mixed drying mode instruction in any of the foregoing embodiments.
[0281] In these alternative embodiments, the drying mode setting signal output by the microcontroller MCU can drive the drying component W2 to work in the corresponding mode, which can better reduce the complexity and difficulty of the interaction between the user and the electrical equipment.
[0282] In some alternative embodiments, the control method further includes: receiving specific parameters from the functional sensor MS.
[0283] In the step of determining the drying mode setting signal according to the control signal and the drying mode setting instruction: the corresponding drying mode setting instruction can be determined from the drying instruction set according to the specific parameters and the control signal.
[0284] Optionally, the step of receiving specific parameters from the functional sensor MS can be located before step S20 or in step S20.
[0285] In these alternative embodiments, by setting the microcontroller MCU to be able to determine the corresponding drying mode setting instruction from the drying instruction set according to specific parameters and control signals, the electrical appliance can automatically and more intelligently select the drying mode of the dryer according to the specific parameters detected by the function sensor MS, thereby being able to better improve the intelligence level of the electrical appliance and reduce the operation difficulty of the user for the electrical appliance.
[0286] In accordance with the embodiments of the present application as described above, these embodiments do not describe all the details in detail, nor do they limit the invention to only the specific embodiments. Obviously, according to the above description, many modifications and variations can be made. These embodiments are selected and specifically described in this specification in order to better explain the principles and practical applications of the present application, so that those skilled in the art can make good use of the present application and its modifications based on the present application. The present application is only limited by the claims and their full scope and equivalents.
Claims
1. An electrical device, characterized in that: include: A single-chip microcomputer, wherein the single-chip microcomputer is preset with an instruction set; A working component, communicatively connected with the single chip microcomputer; A display module, which is communicatively connected to the single-chip microcomputer and includes a light-emitting device and a touch component, wherein the touch component is used to sense a user's touch and generate a corresponding touch signal; Among them, the single-chip microcomputer is configured to determine a display signal according to the control signal and the instruction set and output the display signal to the display module to control the light emission of the light-emitting device, and the single-chip microcomputer is configured to determine a drive signal according to the control signal and the instruction set and output the drive signal to the working component to control the operation of the working component, and the control signal includes the touch signal.
2. The electrical equipment according to claim 1, characterized in that: The display module has a display area, the light emitting device is arranged in the display area, the display area includes a plurality of touch control areas, and the touch control component is used to sense the touch of the user in the touch control area and generate a corresponding touch control signal; Preferably, the instruction set includes an initial display instruction, and the single chip microcomputer is configured to output an initial display signal to the display module according to the initial display instruction after power-on and before the user touches the display module to control the display area to present an initial screen; Preferably, the display area includes a status display area, the electrical device also includes a working sensor communicatively connected to the single-chip microcomputer, the instruction set includes status instructions, the working sensor is used to obtain the working status of at least part of the device structure in the electrical device, and the single-chip microcomputer is configured to control the light emission of the light-emitting device in the status display area according to the working status and its corresponding status instructions.
3. The electrical device according to claim 1, characterized in that: The instruction set includes motion instructions, the working part includes a motion component, and the single chip microcomputer is configured to determine a first type of drive signal according to the control signal and the motion instruction and output the first type of drive signal to the motion component to control the motion of the motion component. And / or, the instruction set includes temperature instructions, the working part includes a temperature control component, and the single chip microcomputer is configured to determine a second type of drive signal based on the control signal and the temperature instruction and output the second type of drive signal to the temperature control component to control the temperature control operation of the temperature control component.
4. The electrical equipment according to claim 3, characterized in that: The electrical device includes a washing machine, the instruction set includes a washing instruction set, the working component includes a washing component, and the single chip computer is configured to determine a washing drive signal according to the control signal and the washing instruction set and output the washing drive signal to the washing component to control the washing operation of the washing component; Preferably, the washing instruction set includes the motion instruction and the temperature instruction, and the washing component includes the motion component and the temperature control component.
5. The electrical equipment according to claim 4, characterized in that: The washing instruction set includes a washing mode setting instruction, and the single chip microcomputer is configured to determine a washing mode setting signal according to the control signal and the washing mode setting instruction and output the washing mode setting signal to the washing component to control the washing component to operate in a corresponding mode; Preferably, the washing mode setting instruction includes the motion instruction and the temperature instruction; Preferably, the single chip microcomputer is configured to determine corresponding washing mode setting instructions based on the control signals corresponding to different target laundry material types; Preferably, the washing mode setting instruction includes at least one of a denim washing mode instruction, a wool washing mode instruction, a down washing mode instruction, a silk washing mode instruction, a woolen washing mode instruction, a chemical fiber washing mode instruction and a mixed washing mode instruction; Preferably, the washing mode setting instruction includes at least one of a washing time sub-instruction, a washing start time sub-instruction, a washing speed selection sub-instruction, and a washing temperature selection sub-instruction; Preferably, the washing time sub-instructions, washing start time sub-instructions, washing speed selection sub-instructions and washing temperature selection sub-instructions of any two of the denim washing mode instructions, wool washing mode instructions, down washing mode instructions, silk washing mode instructions, woolen washing mode instructions, chemical fiber washing mode instructions and mixed washing mode instructions are not completely consistent.
6. The electrical equipment according to claim 5, characterized in that: The electrical device further comprises a function sensor in communication connection with the single chip microcomputer, the function sensor being capable of acquiring specific parameters of the target laundry, the single chip microcomputer being configured to determine a corresponding washing mode setting instruction from the washing instruction set according to the specific parameters and the control signal; Preferably, the specific parameters include the type of target laundry material; Preferably, the control signal includes an automatic washing mode control signal and a plurality of conventional washing mode control signals. The single chip microcomputer is configured to determine a washing mode setting signal according to the conventional washing mode control signal and the washing mode setting instruction and output the washing mode setting signal to the washing component to control the washing component to operate in a corresponding mode. The single chip computer is configured to determine a washing mode setting signal based on the automatic washing mode control signal and a washing mode setting instruction determined from the washing instruction set by the specific parameters and the automatic washing mode control signal, and output the washing mode setting signal to the washing component to control the washing component to operate in a corresponding mode.
7. The electrical equipment according to claim 3, characterized in that: The electrical device includes a dryer, the instruction set includes a drying instruction set, the working component includes a drying component, and the single chip microcomputer is configured to determine a drying drive signal according to the control signal and the drying instruction set and output the drying drive signal to the drying component to control the drying operation of the drying component; Preferably, the drying instruction set includes the motion instruction and the temperature instruction, and the drying component includes the motion component and the temperature control component.
8. The electrical equipment according to claim 7, characterized in that: The drying instruction set includes a drying mode setting instruction, and the single chip microcomputer is configured to determine a drying mode setting signal according to the control signal and the drying mode setting instruction and output the drying mode setting signal to the drying component to control the drying component to work in a corresponding mode; Preferably, the drying mode setting instruction includes the motion instruction and the temperature instruction; Preferably, the single chip microcomputer is configured to determine the corresponding drying mode setting instruction based on the control signal corresponding to different target drying material types; Preferably, the drying mode setting instruction includes at least one of a denim drying mode instruction, a wool drying mode instruction, a down drying mode instruction, a silk drying mode instruction, a wool drying mode instruction, a chemical fiber drying mode instruction and a mixed drying mode instruction; Preferably, the drying mode setting instruction includes at least one of a drying time sub-instruction, a drying start time sub-instruction, a drying speed selection sub-instruction, and a drying temperature selection sub-instruction; Preferably, the drying time sub-instructions, drying start time sub-instructions, drying speed selection sub-instructions and drying temperature selection sub-instructions of any two of the denim drying mode instructions, wool drying mode instructions, down drying mode instructions, silk drying mode instructions, woolen drying mode instructions, chemical fiber drying mode instructions and mixed drying mode instructions are not completely consistent.
9. The electrical device according to claim 8, characterized in that: The electrical device further comprises a function sensor in communication with the single chip microcomputer, the function sensor being capable of acquiring specific parameters of the target drying object, and the single chip microcomputer being configured to determine a corresponding drying mode setting instruction from the drying instruction set according to the specific parameters and the control signal; Preferably, the specific parameters include the type of material of the target drying object; Preferably, the control signal includes an automatic drying mode control signal and a plurality of conventional drying mode control signals. The single chip microcomputer is configured to determine a drying mode setting signal according to the conventional drying mode control signal and the drying mode setting instruction and output the drying mode setting signal to the drying component to control the drying component to operate in a corresponding mode. The single chip computer is configured to determine a drying mode setting signal based on the automatic drying mode control signal and a drying mode setting instruction determined from the drying instruction set by the specific parameters and the automatic drying mode control signal, and output the drying mode setting signal to the drying component to control the drying component to operate in a corresponding mode.
10. The electrical equipment according to claim 3, characterized in that: The electrical device includes a coffee machine, the instruction set includes a grinding instruction set, the working component includes a grinding component, and the single chip microcomputer is configured to determine a grinding drive signal according to the control signal and the grinding instruction set and output the grinding drive signal to the grinding component to control the grinding operation of the grinding component; Preferably, the grinding instruction set includes the motion instruction and the temperature instruction, and the grinding component includes the motion component and the temperature control component.
11. The electrical device according to claim 3, characterized in that: The electrical device includes a coffee machine, the instruction set includes an extraction instruction set, the working component includes an extraction component, and the single chip microcomputer is configured to determine an extraction drive signal according to the control signal and the extraction instruction set and output the extraction drive signal to the extraction component to control the extraction operation of the extraction component; Preferably, the extraction instruction set includes the motion instruction and the temperature instruction, and the extraction component includes the motion component and the temperature control component.
12. The electrical device according to claim 1, characterized in that: The electrical device also includes a wireless communication module connected to the single-chip microcomputer. Wherein, the wireless communication module is used to receive a wireless control signal sent by an external device, and the control signal includes a wireless control signal, And / or, the single chip microcomputer is configured to determine a display signal according to the control signal and the instruction set and output the display signal to the wireless communication module, and the wireless communication module is configured to determine a wireless display signal according to the display signal and output the wireless display signal to an external device.
13. The electrical device according to claim 1, characterized in that: The electrical device also includes an interactive communication module connected to the single-chip microcomputer. The interactive communication module includes a voice communication module, which is used to sense the user's voice information and generate a corresponding voice control signal, wherein the control signal includes a voice control signal. And / or, the interactive communication module includes a gesture communication module, the gesture communication module is used to sense the user's gesture information and generate a corresponding gesture control signal, and the control signal includes a gesture control signal.
14. The electrical device according to claim 1, characterized in that: The electrical device further comprises a power module, the power module comprises a ground terminal, the display module comprises a ground circuit, and the ground circuit of the display module is electrically connected to the ground terminal; Preferably, the display module also includes a power protection circuit.
15. The electrical device according to claim 1, characterized in that: The electrical device further comprises a cover plate and a fixing member, the cover plate is arranged on the light-emitting side of the display module, and the fixing member and the display module are both located on the same side of the cover plate, the fixing member comprises a first fixing portion and a second fixing portion connected to each other, the first fixing portion is connected to the cover plate, the second fixing portion is located on a side of the display module away from the cover plate, and the single-chip microcomputer is arranged on a side of the second fixing portion away from the display module; Preferably, the first fixing portion and the second fixing portion enclose a receiving groove, and at least a portion of the display module is located in the receiving groove; Preferably, the electrical device further comprises a side sealant connected to the cover plate and the side wall of the display module, and the side sealant is arranged around the display module; Preferably, the electrical device further comprises foam glue, and the first fixing part is connected to the cover plate via the foam glue; Preferably, the display module comprises a display panel and a circuit board arranged on a side of the display panel away from the cover plate, the display panel comprises a light emitting device, the second fixing portion is provided with a communication opening, and the circuit board is electrically connected to the single chip computer through the communication opening; Preferably, the touch control component is integrated into the display panel.
16. A control method for an electrical device, characterized in that: The control method is applied to the single chip microcomputer in the electrical equipment according to any one of claims 1 to 15, and the control method comprises: receiving a control signal; Determining a display signal and a drive signal according to the control signal and a preset instruction set; The display signal is output to the display module, and the drive signal is output to the working component.
17. The control method according to claim 16, characterized in that: The step of determining the display signal and the driving signal according to the control signal and the preset instruction set includes: Determine a first type of drive signal according to the control signal and the motion instruction in the instruction set; The step of outputting the driving signal to the working component includes: A first type of driving signal is output to a moving component in the working part.
18. The control method according to claim 16, characterized in that: The step of determining the display signal and the driving signal according to the control signal and the preset instruction set includes: Determine a second type of driving signal according to the control signal and the temperature instruction in the instruction set; The step of outputting the driving signal to the working component includes: A second type of driving signal is output to the temperature control component in the working part.
19. The control method according to any one of claims 16 to 18, characterized in that: The instruction set includes a washing instruction set, the working component includes a washing component, and the step of determining the display signal and the drive signal according to the control signal and the preset instruction set includes: determining a washing drive signal according to the control signal and the washing instruction set; The step of outputting the driving signal to the working component includes: outputting the washing drive signal to the washing component; Preferably, the washing instruction set includes a washing mode setting instruction, and the step of determining the washing drive signal according to the control signal and the washing instruction set includes: determining a washing mode setting signal according to the control signal and the washing mode setting instruction; The step of outputting the washing drive signal to the washing component includes: outputting the washing mode setting signal to the washing component; Preferably, in the step of determining the washing mode setting signal according to the control signal and the washing mode setting instruction: Determining corresponding washing mode setting instructions based on the control signals corresponding to different target laundry material types; Preferably, the control method further includes: receiving specific parameters from functional sensors; In the step of determining the washing mode setting signal according to the control signal and the washing mode setting instruction: A corresponding washing mode setting instruction is determined from the washing instruction set according to the specific parameter and the control signal.
20. The control method according to any one of claims 16 to 18, characterized in that: The instruction set includes a drying instruction set, the working component includes a drying component, and the step of determining the display signal and the drive signal according to the control signal and the preset instruction set includes: Determine a drying drive signal according to the control signal and the drying instruction set; The step of outputting the driving signal to the working component includes: outputting the drying drive signal to the drying component; Preferably, the drying instruction set includes a drying mode setting instruction, and the step of determining the drying drive signal according to the control signal and the drying instruction set includes: determining a drying mode setting signal according to the control signal and the drying mode setting instruction; The step of outputting the drying driving signal to the drying component includes: outputting the drying mode setting signal to the drying component; Preferably, in the step of determining the drying mode setting signal according to the control signal and the drying mode setting instruction: Determine the corresponding drying mode setting instruction based on the control signal corresponding to different target drying material types; Preferably, the control method further includes: receiving specific parameters from functional sensors; In the step of determining the drying mode setting signal according to the control signal and the drying mode setting instruction: A corresponding drying mode setting instruction is determined from the drying instruction set according to the specific parameter and the control signal.