Flushing control assembly, flushing control system and intelligent closestool

By replacing external batteries or supercapacitors with an inductive power supply module, and using inductive power and energy storage voltage to control the flush valve, the complex configuration and safety risks of smart toilets during power outages are solved, realizing a simple and portable power outage flushing function.

CN223867365UActive Publication Date: 2026-02-03TAKA TECH CO LTD
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Patent Information

Application Number
CN202520433621.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-11
Publication Date
2026-02-03
Estimated Expiration
2035-03-11

AI Technical Summary

Technical Problem

Adding a flushing function to a smart toilet during a power outage is complex and poses safety risks, and there are also charging issues with existing external batteries or supercapacitors.

Method used

An inductive power supply module replaces an external battery or supercapacitor. It generates a power outage flushing control command by sensing power, storing energy, and collecting voltage, thereby controlling the opening or closing of the flushing valve and realizing the flushing function during power outages.

Benefits of technology

The configuration of the flushing function during power outages has been simplified, reducing safety risks and enabling the smart toilet to flush easily and conveniently during power outages, thus solving safety hazards in the bathroom.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a flushing control assembly, a flushing control system and an intelligent closestool. The flushing control assembly comprises an induction power supply module, a control module and a power failure flushing control module. The control module is electrically connected with the induction power supply module and the power failure flushing control module, and is used for collecting the energy storage voltage of the induction power supply module after judging that the mains supply electrically connected with the intelligent closestool is powered off, and generating a power failure flushing control instruction according to the energy storage voltage; the power failure flushing control module is electrically connected with a flushing valve in the intelligent closestool and used for controlling the flushing valve to be opened or closed based on the power failure flushing control instruction. The intelligent closestool solves the problems that an additional flushing function of an existing intelligent closestool in a power-off state is complex to achieve and has safety risks, the simple and portable power-off flushing function is achieved, and meanwhile the safety in a bathroom is guaranteed to a certain degree.
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Description

Technical Field

[0001] This utility model relates to the field of smart toilet technology, and in particular to a flushing control component, a flushing control system, and a smart toilet. Background Technology

[0002] A smart toilet is a modern bathroom appliance that integrates multiple functions such as heated seat, warm water washing, warm air drying, and sterilization. With its convenience, comfort, and hygiene, smart toilets are gradually becoming a new choice for modern family bathroom spaces.

[0003] As a type of home appliance, smart toilets are typically designed to operate by connecting to the mains power in the household circuit. If the mains power fails, the smart toilet uses an external battery or supercapacitor as a backup power source to enable the flushing function. However, external batteries take up space, and there are also certain safety risks associated with using external batteries or supercapacitors to charge smart toilets. Utility Model Content

[0004] This invention provides a flushing control component, a flushing control system, and a smart toilet to solve the problems of complexity and safety risks associated with configuring additional flushing functions in current smart toilets during power outages.

[0005] According to one aspect of the present invention, a flushing control component is provided, the flushing control component including an inductive power supply module, a control module and a power failure flushing control module;

[0006] The control module is electrically connected to the inductive power supply module and the power outage flushing control module, respectively. It is used to collect the energy storage voltage of the inductive power supply module after determining that the mains power connected to the smart toilet is out of service, and generate a power outage flushing control command based on the energy storage voltage.

[0007] The power outage flushing control module is electrically connected to the flushing valve in the smart toilet and is used to control the flushing valve to open or close based on the power outage flushing control command.

[0008] Optionally, the inductive power supply module includes an inductive power extraction unit, an inductive energy storage unit, and an inductive acquisition unit;

[0009] The inductive power collection unit is used to obtain electrical energy;

[0010] The inductive energy storage unit and the inductive power extraction unit are electrically connected and are used to store the electrical energy provided by the inductive power extraction unit.

[0011] The sensing acquisition unit is electrically connected to the sensing energy storage unit and is used to acquire the energy storage voltage of the sensing energy storage unit.

[0012] Optionally, the inductive power-gathering unit is also used to provide power to the control module;

[0013] The inductive energy storage unit is electrically connected to the power outage flushing control module and is used to provide power to the power outage flushing control module.

[0014] Optionally, the power outage flushing control module includes a power outage flushing pressure boosting unit and a flushing valve drive unit;

[0015] The power outage flushing pressure boosting unit is electrically connected to the flushing valve drive unit and is used to supply power to the flushing valve drive unit based on the power outage flushing control command.

[0016] The flush valve drive unit is electrically connected to the flush valve and is used to control the flush valve to open or close.

[0017] Optionally, the power outage flushing booster unit is electrically connected to the inductive power supply module, and the power outage flushing booster unit is used to start based on the electrical energy provided by the inductive power supply module.

[0018] Optionally, the power outage flushing control module further includes a voltage reduction unit;

[0019] The step-down unit is electrically connected to the power outage flushing pressure boosting unit and the control module, respectively, and is used to provide a fixed working power supply to the control module.

[0020] Optionally, the inductive power supply module further includes a communication unit;

[0021] The communication unit is electrically connected to the control module and is used to receive the power outage flushing control command, so as to start the power outage flushing control module based on the power outage flushing control command.

[0022] Optionally, the flushing control assembly further includes a charging remote control module;

[0023] The charging remote control module is communicatively connected to both the inductive power supply module and the power outage flushing control module, and is used to supply power to the inductive power supply module; it is also used to generate the power outage flushing control command and feed the power outage flushing control command back to the power outage flushing control module, so as to control the power outage flushing control module to control the flushing valve to open or close based on the power outage flushing control command.

[0024] According to another aspect of the present invention, a flushing control system is provided, the flushing control system including the flushing control component described in any embodiment of the present invention.

[0025] According to another aspect of the present invention, a smart toilet is provided, the smart toilet including the flushing control system described in any embodiment of the present invention.

[0026] The technical solution of this utility model embodiment includes a flushing control component comprising an inductive power supply module, a control module, and a power outage flushing control module. The inductive power supply module replaces the existing external battery or supercapacitor method for power outage flushing in smart toilets. That is, the inductive power supply module replaces the complex charging circuit of an external battery or supercapacitor and can supply power to the smart toilet when the mains power fails. Furthermore, the control module is electrically connected to both the inductive power supply module and the power outage flushing control module. Upon detecting a power outage in the mains power connected to the smart toilet, the control module collects the energy storage voltage of the inductive power supply module and generates a power outage flushing control command based on the energy storage voltage. The power outage flushing control module is electrically connected to the flushing valve in the smart toilet and controls the flushing valve to open or close based on the power outage flushing control command, thereby enabling the smart toilet to flush during a power outage and mitigating safety risks in the bathroom to some extent. This provides a simple and convenient power outage flushing function for the smart toilet during a power outage.

[0027] It should be understood that the description in this section is not intended to identify key or essential features of the embodiments of this utility model, nor is it intended to limit the scope of this utility model. Other features of this utility model will become readily apparent from the following description. Attached Figure Description

[0028] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0029] Figure 1 This is a schematic diagram of a flushing control component according to an embodiment of the present utility model;

[0030] Figure 2 This is a schematic diagram of a flushing control component according to an embodiment of the present utility model;

[0031] Figure 3 This is a schematic diagram of an exemplary flushing control component that uses NFC sensing to obtain power, according to an embodiment of the present utility model.

[0032] Figure 4 This is a schematic diagram of an exemplary flushing control component that uses an electromagnetic induction coil to obtain power, according to an embodiment of the present utility model. Detailed Implementation

[0033] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort should fall within the protection scope of the present invention.

[0034] Figure 1 This utility model provides a structural schematic diagram of a flushing control component. This embodiment is applicable to situations where a smart toilet can still flush after a power outage. The flushing control component can be configured in the smart toilet.

[0035] like Figure 1 As shown, the flushing control component includes an inductive power supply module 100, a control module 200, and a power outage flushing control module 300. The control module 200 is electrically connected to both the inductive power supply module 100 and the power outage flushing control module 300. After determining that the mains power connected to the smart toilet has failed, the control module 200 collects the energy storage voltage of the inductive power supply module 100 and generates a power outage flushing control command based on the energy storage voltage. The power outage flushing control module 300 is electrically connected to the flushing valve in the smart toilet and controls the flushing valve to open or close based on the power outage flushing control command.

[0036] The inductive power supply module 100 can utilize wireless inductive communication to obtain and store power, thereby providing power to the control module 200 and the power outage flushing control module 300. This replaces the complex charging circuit of an external battery or supercapacitor, saving costs and space. After a power outage, the power provided by the inductive power supply module 100 enables the smart toilet to still perform flushing, night light, or deodorization functions, and can also supply power to related loads of the smart toilet.

[0037] Optionally, the inductive power supply module 100 may adopt wireless communication technologies with certain inductive communication characteristics, such as NFC (Near Field Communication), RFID (Radio Frequency Identification), or electromagnetic induction wireless functions. This embodiment does not impose any special restrictions on this.

[0038] The energy storage voltage of the inductive power supply module 100 is the voltage across the energy storage capacitor in the inductive power supply module 100. The energy storage voltage indicates whether the electrical energy stored in the current inductive power supply module 100 can meet the power supply requirements for the smart toilet to continue flushing after a power outage.

[0039] As is known, smart toilets are powered by AC mains electricity under normal operating conditions. (See [link to relevant documentation]). Figures 2 to 4 The control module 200 is electrically connected to the mains power acquisition circuit. The control module 200 determines whether the mains power connected to the smart toilet is interrupted through the mains power acquisition circuit. The mains power acquisition circuit can be an existing acquisition circuit, which can be reasonably selected and designed based on the power supply requirements of the smart toilet. This embodiment does not impose any restrictions on this.

[0040] The power outage flushing control command is generated by the control module 200 after the smart toilet loses power, provided that the inductive power supply module 100 can provide stable starting power. The power outage flushing control command is sent from the control module 200 to the power outage flushing control module 300. It can be seen that the command type of the power outage flushing control command can be determined by the communication attributes of the control module 200 and the power outage flushing control module 300. This embodiment does not impose any restrictions on this.

[0041] In this embodiment, the control module 200 determines whether the mains power connected to the smart toilet is interrupted through feedback from the mains power acquisition circuit, and provides stable power to it through the inductive power supply module 100 after the mains power is interrupted, thereby ensuring that the smart toilet can continue to control the opening or closing of the flush valve and realize the flushing function of the smart toilet in the event of a power outage.

[0042] Based on the above embodiments, see below. Figure 2 As shown, the inductive power supply module 100 includes an inductive power extraction unit 110, an inductive energy storage unit 120, and an inductive acquisition unit 130; the inductive power extraction unit 110 is used to extract electrical energy; the inductive energy storage unit 120 is electrically connected to the inductive power extraction unit 110 and is used to store the electrical energy provided by the inductive power extraction unit 110; the inductive acquisition unit 130 is electrically connected to the inductive energy storage unit 120 and is used to acquire the energy storage voltage of the inductive energy storage unit 120.

[0043] The inductive power collection unit 110 can use wireless induction to achieve power collection. The inductive power collection unit 110 is used to collect electrical energy and provides electrical energy input to the inductive energy storage unit 120. In addition, after the mains power fails, but before the power failure flushing control module 300 is started, the inductive power collection unit 110 is also used to provide electrical energy to the control module 200. That is, the initial power supply of the control module 200 can be provided by the inductive power collection unit 110.

[0044] For example, see [link to example]. Figure 2 and Figure 3It can be seen that the inductive power-gathering unit 110 can be implemented using an NFC inductive power-gathering circuit. In the NFC inductive power-gathering circuit, the NFC Tag IC can realize NFC communication and energy harvesting through the NFC communication antenna. That is, the inductive power-gathering unit 110 obtains power from this, realizing the simple and portable smart toilet power outage flushing function. In addition, after the mains power fails, but before the power outage flushing control module 300 is started, the initial power supply of the control module 200 is provided by the output of the NFCTag IC in the NFC inductive power-gathering circuit.

[0045] The inductive energy storage unit 120 can store electrical energy through capacitors such as energy storage capacitors. This embodiment does not impose special restrictions on its energy storage implementation method. The inductive power extraction unit 110 provides electrical energy input to the capacitors such as energy storage capacitors in the inductive energy storage unit 120. Based on the above, see... Figure 2 and Figure 3 It can be seen that the inductive energy storage unit 120 can be implemented using an NFC inductive energy storage circuit, and the NFC inductive power supply circuit provides power input to capacitors such as energy storage capacitors in the NFC inductive energy storage circuit.

[0046] Based on the above, please continue to refer to Figure 2 It is known that the inductive energy storage unit 120 is electrically connected to the power outage flushing control module 300. When the power outage flushing control module 300 receives a power outage flushing control command and starts, the inductive energy storage unit 120 provides power to the power outage flushing control module 300 so that the power outage flushing control module 300 controls the flushing valve to open or close.

[0047] The sensing acquisition unit 130 can acquire voltage through a voltage sampling circuit such as an ADC sampling circuit. This embodiment does not impose special restrictions on its voltage acquisition implementation method. The sensing acquisition unit 130 acquires the energy storage voltage across the energy storage capacitors in the sensing energy storage unit 120. Based on the above, continue to refer to... Figure 2 and Figure 3 It can be seen that the sensing acquisition unit 130 can be implemented using an NFC sensing acquisition circuit, which acquires the energy storage voltage across the capacitors such as the energy storage capacitor in the NFC sensing energy storage circuit.

[0048] In this embodiment, see continue to refer to Figure 2 As shown, the control module 200 is electrically connected to the sensing and acquisition unit 130. The control module 200 can determine whether the energy storage voltage of the sensing energy storage unit 120 can meet the requirements for starting the power outage flushing control module 300 by collecting the energy storage voltage of the sensing energy storage unit 120 from the sensing and acquisition unit 130. When the requirements are met, a power outage flushing control command is generated to control the power outage flushing control module 300.

[0049] Based on the above embodiments, see below. Figure 2 As shown, the power outage flushing control module 300 includes a power outage flushing pressure boosting unit 310 and a flushing valve driving unit 320; the power outage flushing pressure boosting unit 310 is electrically connected to the flushing valve driving unit 320 and is used to supply power to the flushing valve driving unit 320 based on the power outage flushing control command; the flushing valve driving unit 320 is electrically connected to the flushing valve and is used to control the flushing valve to open or close.

[0050] The power outage flushing pressure boosting unit 310 can be implemented using an existing power outage flushing control circuit. This embodiment does not impose any special restrictions on its specific implementation method. The power outage flushing pressure boosting unit 310 is activated after receiving the power outage flushing control command sent by the control module 200.

[0051] Based on the above, please continue to refer to Figure 2 As shown, the power outage flushing booster unit 310 is electrically connected to the inductive energy storage unit 120. When the power outage flushing booster unit 310 receives a power outage flushing control command and starts, the inductive energy storage unit 120 provides power to the power outage flushing booster unit 310. Furthermore, after the power outage flushing booster unit 310 starts, it supplies power to the flushing valve drive unit 320.

[0052] The flush valve drive unit 320 can be implemented using an existing flush valve drive circuit. This embodiment does not impose any special restrictions on its specific implementation method. Please refer to [link to previous document]. Figure 2 As shown, the flush valve drive unit 320 is electrically connected to the control module 200. After the power failure flush pressure boosting unit 310 supplies power to the flush valve drive unit 320, the flush valve drive unit 320 opens or closes the flush valve according to the control command received from the control module 200, thereby realizing the flushing function of the smart toilet after a power failure.

[0053] Based on the above embodiments, see below. Figure 2 As shown, the power outage flushing control module 300 also includes a step-down unit 330; the step-down unit 330 is electrically connected to the power outage flushing boosting unit 310 and the control module 200 respectively, and is used to supply power to the control module 200.

[0054] The step-down unit 330 can provide a stable power supply to the control module 200 through a step-down conversion circuit such as an LDO step-down circuit. This embodiment does not impose any special restrictions on its specific implementation.

[0055] Specifically, after the power outage flushing booster unit 310 supplies power to the step-down unit 330, the step-down unit 330 converts the voltage of the electrical energy provided by the power outage flushing booster unit 310 into a fixed working power supply for the control module 200, thereby achieving a stable power supply from the step-down unit 330 to the control module 200. At the same time, after the step-down unit 330 supplies power to the control module 200, the inductive power supply unit 110 will stop supplying power to the control module 200.

[0056] Based on the above embodiments, the inductive power supply module also includes a communication unit; the communication unit is electrically connected to the control module and is used to receive a power outage flushing control command, so as to start the power outage flushing control module based on the power outage flushing control command.

[0057] The communication unit can be the built-in communication function of the inductive power supply module. The inductive power supply module communicates with the remote control terminal through the communication unit. That is, the remote control terminal can send control commands and other information to the inductive power supply module through the communication unit.

[0058] The remote control terminal has wireless communication capabilities. The remote control terminal can be, but is not limited to, a remote control or other control terminal with wireless communication capabilities that can control a smart toilet. This embodiment does not impose any restrictions on this.

[0059] In this embodiment, the inductive power supply module can transmit the power outage flushing control command generated by the control module through the communication unit to directly start the power outage flushing control module and simultaneously supply power to the power outage flushing control module, so that the power outage flushing control module controls the flushing valve to open or close based on the power outage flushing control command.

[0060] See also Figure 4 As shown, taking the electromagnetic induction function of the inductive power supply module as an example, the inductive power extraction unit uses an electromagnetic induction coil power extraction circuit to realize the power extraction function, the inductive energy storage unit uses an electromagnetic induction energy storage circuit to realize the energy storage, the inductive acquisition unit uses an electromagnetic induction acquisition circuit to realize the energy storage voltage acquisition of the electromagnetic induction energy storage circuit, and the electromagnetic induction coil power extraction circuit provides power input to the electromagnetic induction energy storage circuit. In addition, after the mains power fails, but before the power failure flushing control module 300 is started, the electromagnetic induction coil power extraction circuit provides power to the control module 200. That is, the initial power supply of the control module 200 at this time can be provided by the electromagnetic induction coil power extraction circuit.

[0061] The electromagnetic induction energy storage circuit is electrically connected to the power outage flushing control module 300. When the power outage flushing control module 300 receives a power outage flushing control command and starts, the electromagnetic induction energy storage circuit provides power to the power outage flushing control module 300 so that the power outage flushing control module 300 controls the flushing valve to open or close.

[0062] The control module 200 is electrically connected to the electromagnetic induction acquisition circuit. The control module 200 can determine whether the energy storage voltage of the electromagnetic induction energy storage circuit can meet the requirements for starting the power outage flushing control module 300 by acquiring the energy storage voltage of the electromagnetic induction energy storage circuit through the electromagnetic induction acquisition circuit. When the requirements are met, the control module 200 generates a power outage flushing control command to control the power outage flushing control module 300.

[0063] Based on the above, please continue to refer to Figure 4 As shown, the power outage flushing booster unit 310 is electrically connected to the electromagnetic induction energy storage circuit. When the power outage flushing booster unit 310 receives a power outage flushing control command and starts, the electromagnetic induction energy storage circuit provides power to the power outage flushing booster unit 310.

[0064] It should also be noted that Figure 4 The implementation principles of the control module 200 and the power outage flushing control module 300 are the same as those described above, and will not be repeated here.

[0065] Based on the above embodiments, the flushing control component also includes a charging remote control module; the charging remote control module is communicatively connected to the inductive power supply module and the power outage flushing control module respectively, and is used to supply power to the inductive power supply module; it is also used to generate a power outage flushing control command and feed the power outage flushing control command back to the power outage flushing control module, so as to control the power outage flushing control module to control the flushing valve to open or close based on the power outage flushing control command.

[0066] The charging remote control module can be a remote control device for a smart toilet with wireless charging and communication functions. Optionally, the charging remote control module can be implemented in the form of a remote control or the like. This embodiment does not impose any restrictions on this.

[0067] Specifically, the charging remote control module can wirelessly charge the smart toilet, meaning the inductive power supply module obtains power from the charging remote control module, and it can also control the flushing of the smart toilet, meaning it sends a power outage flushing control command to the power outage flushing control module.

[0068] For example, the charging remote control module is combined with Figure 4 The induction power supply module uses electromagnetic induction to power the control module. The charging remote control module supplies power to the control module. Specifically, the charging remote control module stores energy in the electromagnetic induction energy storage circuit through the electromagnetic induction coil power supply circuit and provides the starting voltage to the control module. When the charging remote control module issues a power outage flushing control command, the control module receives the command and enables the power outage flushing control module. This allows the smart toilet to control the flushing valve to open or close when the mains power fails, thus achieving the power outage flushing function of the smart toilet during a mains power outage.

[0069] This utility model embodiment also provides a flushing control system, which includes the flushing control component provided in this utility model embodiment.

[0070] The flushing control system provided in this embodiment includes a flushing control component, which comprises an inductive power supply module, a control module, and a power outage flushing control module. The inductive power supply module replaces the existing external battery or supercapacitor method for power outage flushing in smart toilets. That is, the inductive power supply module replaces the complex charging circuit of an external battery or supercapacitor and can supply power to the smart toilet when the mains power fails. Furthermore, the control module is electrically connected to both the inductive power supply module and the power outage flushing control module. Upon detecting a power outage in the mains power connected to the smart toilet, the control module collects the energy storage voltage of the inductive power supply module and generates a power outage flushing control command based on the energy storage voltage. The power outage flushing control module is electrically connected to the flushing valve in the smart toilet and controls the flushing valve to open or close based on the power outage flushing control command, thereby enabling the smart toilet to flush during a power outage and mitigating some of the safety risks in the bathroom. This provides a simple and convenient power outage flushing function for the smart toilet during a power outage.

[0071] This utility model embodiment also provides a smart toilet, which includes the flushing control system provided in this utility model embodiment.

[0072] The smart toilet provided in this embodiment includes a flushing control system, which includes a flushing control component. The flushing control component comprises an inductive power supply module, a control module, and a power outage flushing control module. The inductive power supply module replaces the existing external battery or supercapacitor method for power outage flushing in smart toilets. That is, the inductive power supply module replaces the complex charging circuit of an external battery or supercapacitor and can supply power to the smart toilet when the mains power fails. Furthermore, the control module is electrically connected to both the inductive power supply module and the power outage flushing control module. Upon detecting a power outage in the mains power connected to the smart toilet, the control module collects the energy storage voltage of the inductive power supply module and generates a power outage flushing control command based on the energy storage voltage. The power outage flushing control module is electrically connected to the flushing valve in the smart toilet and controls the flushing valve to open or close based on the power outage flushing control command, thereby enabling the smart toilet to flush during a power outage. This also addresses some of the safety risks present in the bathroom, providing a simple and convenient power outage flushing function for the smart toilet.

[0073] The specific embodiments described above do not constitute a limitation on the scope of protection of this utility model. Those skilled in the art should understand that various modifications, combinations, sub-combinations, and substitutions can be made according to design requirements and other factors. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this utility model should be included within the scope of protection of this utility model.

Claims

1. A flushing control component, characterized in that, The flushing control component includes an inductive power supply module, a control module, and a power outage flushing control module; The control module is electrically connected to the inductive power supply module and the power outage flushing control module, respectively. It is used to collect the energy storage voltage of the inductive power supply module after determining that the mains power connected to the smart toilet is out of service, and generate a power outage flushing control command based on the energy storage voltage. The power outage flushing control module is electrically connected to the flushing valve in the smart toilet and is used to control the flushing valve to open or close based on the power outage flushing control command.

2. The flushing control component according to claim 1, characterized in that, The inductive power supply module includes an inductive power extraction unit, an inductive energy storage unit, and an inductive data acquisition unit. The inductive power collection unit is used to obtain electrical energy; The inductive energy storage unit and the inductive power extraction unit are electrically connected and are used to store the electrical energy provided by the inductive power extraction unit. The sensing acquisition unit is electrically connected to the sensing energy storage unit and is used to acquire the energy storage voltage of the sensing energy storage unit.

3. The flushing control component according to claim 2, characterized in that, The inductive power-gathering unit is also used to provide power to the control module; The inductive energy storage unit is electrically connected to the power outage flushing control module and is used to provide power to the power outage flushing control module.

4. The flushing control component according to claim 1, characterized in that, The power outage flushing control module includes a power outage flushing pressure boosting unit and a flushing valve drive unit; The power outage flushing pressure boosting unit is electrically connected to the flushing valve drive unit and is used to supply power to the flushing valve drive unit based on the power outage flushing control command. The flush valve drive unit is electrically connected to the flush valve and is used to control the flush valve to open or close.

5. The flushing control component according to claim 4, characterized in that, The power outage flushing booster unit is electrically connected to the inductive power supply module, and the power outage flushing booster unit is used to start based on the power provided by the inductive power supply module.

6. The flushing control component according to claim 4, characterized in that, The power outage flushing control module also includes a pressure reduction unit; The step-down unit is electrically connected to the power outage flushing pressure boosting unit and the control module, respectively, and is used to provide a fixed working power supply to the control module.

7. The flushing control component according to claim 1, characterized in that, The inductive power supply module also includes a communication unit; The communication unit is electrically connected to the control module and is used to receive the power outage flushing control command, so as to start the power outage flushing control module based on the power outage flushing control command.

8. The flushing control component according to claim 1, characterized in that, The flushing control component also includes a charging remote control module; The charging remote control module is communicatively connected to both the inductive power supply module and the power outage flushing control module, and is used to supply power to the inductive power supply module; it is also used to generate the power outage flushing control command and feed the power outage flushing control command back to the power outage flushing control module, so as to control the power outage flushing control module to control the flushing valve to open or close based on the power outage flushing control command.

9. A flushing control system, characterized in that, The flushing control system includes the flushing control component as described in any one of claims 1-8.

10. A smart toilet, characterized in that, The smart toilet includes the flushing control system as described in claim 9.