Control circuit of equipment for preparing double electrolyzed water based on O3 and H2O2 in parallel and control method thereof

By using O3 and H2O2 parallel preparation technology and control circuit in dual electrolytic water preparation equipment, the scale degree is monitored in real time and the inverted frequency is dynamically adjusted, the problem of complex water quality in the existing technology is solved, and high-quality and stable electrolytic water preparation is achieved.

CN119937437AActive Publication Date: 2025-05-06NINGBO YUANPAI MEDICAL TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510438543.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-09
Publication Date
2025-05-06
Estimated Expiration
2045-04-09

AI Technical Summary

Technical Problem

The existing dual electrolytic water preparation technology can easily lead to poor taste, odor or cause the electrolytic water to stop running, and it is difficult to promote worldwide.

Method used

The equipment for preparing double electrolytic water in parallel based on O3 and H2O2 is adopted to monitor the scale degree in real time through the control circuit and dynamically adjust the inverter frequency to prevent scale accumulation and automatically adapt to scale changes.

Benefits of technology

Effectively prevent scale accumulation, improve the quality and stability of electrolytic water, reduce the impact on the equipment, and enhance the reliability and adaptability of the equipment.

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Abstract

The invention discloses a control circuit of equipment for preparing double electrolyzed water based on O3 and H2O2 in parallel connection and a control method of the control circuit, relates to a control circuit, and aims to solve the problems that after the electrolyzed water preparation equipment runs, scale exists on an electrode, the working efficiency is influenced, and the scale is difficult to clean. The controller interacts with an operator so as to output a starting signal or a closing signal when responding to the action of the operator; the load driving module is connected with the touch key module and is used for acquiring the starting signal or the closing signal to start or stop a load; and the self-cleaning maintenance module is connected with the load driving module and is used for controlling the output electrode of the load driving module to invert and maintaining the normal operation of the load. The scale degree is monitored in real time through a resistance detection method, the pole reversal frequency is dynamically adjusted, so that accumulation of the scale is effectively prevented, the pole reversal frequency can be automatically and adaptively adjusted according to the scale degree, and the influence on equipment is reduced.
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Description

Technical Field

[0001] The present invention relates to a control circuit, and more specifically, to a control circuit and a control method of a device for preparing double electrolyzed water based on O3 and H2O2 in parallel. Background Art

[0002] In the market, electrolyzed pure water prepared by dual electrolysis is widely used in semiconductor, pharmaceutical, laboratory, power and other industries. For example, in semiconductor manufacturing, ultrapure water is a key raw material for cleaning wafers and preparing chemicals, and any trace impurities may affect chip performance; in the pharmaceutical field, high-purity water is a prerequisite for the production of injections and biological preparations; in laboratories, ultrapure water is used for precision experiments and analysis. In addition, with the improvement of environmental protection requirements and industrial upgrading, the application prospects of dual electrolysis technology in the field of water treatment are broad, especially in high-end manufacturing and scientific research fields with extremely high requirements for water quality, and its market demand continues to grow. In the future, with technological progress and cost optimization, the technology of preparing electrolyzed pure water by dual electrolysis is expected to be applied on a large scale in more fields.

[0003] However, due to the migration of ions and chemical reactions that occur during the electrolysis process, if the water quality is relatively complex, such as if the water contains rust, hardness exceeding a certain value, organic matter, etc., the drinking water after electrolysis will have a poor taste, odor, and precipitation, and may even cause the electrolyzer to stop working. This natural defect of the electrolyzer makes it difficult for the electrolyzer to be accepted by more consumers and difficult to promote worldwide.

[0004] A Chinese patent with publication number CN105923858A discloses a water electrolysis device consisting of an RO membrane and an electrolytic cell. The technical key points are: the RO membrane is located before the electrolytic cell of a dual-path water inlet structure; the clean water end of the RO membrane is connected to the main water inlet end of the electrolytic cell through the electrolytic cell water inlet assembly, and the concentrated water end of the RO membrane is connected to the RO membrane pre-water inlet assembly, the electrolytic cell's secondary water inlet end, and the water inlet end of the flushing assembly through the return water assembly, the drainage assembly, and the flushing assembly. When preparing alkaline electrolyzed water, the raw water is purified by the RO membrane pre-purification assembly and the RO membrane purification to obtain pure water and concentrated water. The pure water enters the first water inlet of the electrolytic cell through the electrolytic cell water inlet assembly, and the concentrated water enters the second water inlet of the electrolytic cell through the drainage assembly. A DC voltage is applied to the electrode plates of the electrolytic cell, wherein the electrode plate on the first water inlet side of the electrolytic cell is the cathode, and the electrode plate on the second water inlet side is the anode. The following electrolysis reactions occur in the electrolytic cell: Anode side: 2H2O-4 e = O2 ↑ +4H (acidic, oxygen-rich water) Cathode side: 4H2O+4e = 2H2↑ + 4OH- (alkaline, hydrogen-rich water) Under the action of the DC electric field, a part of the mineral ions in the concentrate (such as positive ions such as calcium, magnesium, iron, sodium, zinc, etc.) are transferred to the cathode side through the cationic membrane, so that the mineral ions in the pure water on the cathode side are increased to a certain extent, while other impurities in the concentrate, such as bacteria, anions, residual chlorine, etc. are blocked by the high-density cationic membrane. Although mineral ions such as calcium and iron in the concentrate are isolated by the RO membrane, these mineral ions are easy to attach to the electrode to form scale under the electrode reaction. When the scale accumulates to a certain extent, it will also affect the electrolysis efficiency. Summary of the invention

[0005] In view of the deficiencies in the prior art, the object of the present invention is to provide a control circuit and a control method for a device for preparing double electrolyzed water based on O3 and H2O2 in parallel.

[0006] The above technical objectives of the present invention are achieved through the following technical solutions: A control circuit for a device for preparing dual electrolytic water based on O3 and H2O2 in parallel, which is used to control the operation of the device for preparing dual electrolytic water based on O3 and H2O2 in parallel, comprising: A touch button module interacts with an operator to output a start signal or a shut down signal in response to an operator's action; A load driving module, connected to the touch key module, for obtaining a start signal or a shutdown signal to start or stop a load, wherein the load includes an ozone generator; A self-cleaning maintenance module is connected to the load driving module and is used to control the output electrode of the load driving module to reverse polarity and maintain the normal operation of the load; A voltage-stabilized power supply module is connected to the touch key module, the load driving module and the self-cleaning maintenance module to output a multi-level driving voltage required to supply the touch key module, the load driving module and the self-cleaning maintenance module; The voltage-stabilized power supply module supplies multi-level driving voltage to power on the load driving module, and when the operator operates the touch button module to output a start signal to the load driving module, the ozone generator is started to electrolyze water to produce ozone and hydrogen peroxide. When the self-cleaning and maintenance module is started, the output of the self-cleaning and maintenance module is reversed, and the load is driven to operate normally.

[0007] The present invention is further configured to include a pressure switch module, which is used to obtain the pressure in the pipeline to which the device is connected, and respond to the increase in pressure in the pipeline to output a channel signal to the load driving module. When the pressure is greater than the set reference pressure, a power-off signal is sent to the load driving module to shut down the device. When the pressure is less than the set reference pressure, a power-on signal is sent to the load driving module to resume device operation.

[0008] The present invention is further configured as follows: the load driving module includes a main control circuit and a reverse switch circuit, the main control circuit is connected to the touch key module and the reverse switch circuit module, the reverse switch circuit includes a positive input switch circuit and a reverse input switch circuit, the positive input switch circuit and the reverse input switch circuit include a photoelectric coupler connected to the main control circuit, the output end of the photoelectric coupler is respectively connected to a power supply electrode and a switch transistor, the collector of the switch transistor is connected in series with a relay switch to the power supply electrode, the emitter of the switch transistor is grounded and electrically connected to the base with a fixed resistor; The two control ends of the two relay switches are respectively electrically connected to the power supply or ground at the positive or negative pole of the load to form a power supply circuit. The main control circuit intermittently controls the two relay switches to work alternately to reverse the positive and negative electrodes of the ozone generator.

[0009] The present invention is further configured as follows: the pressure switch module includes a pressure sensor for monitoring pipeline pressure, and the pressure sensor is electrically connected to a main control circuit through a coupler for outputting a cut-off signal to the main control circuit when the pressure increases to a set threshold.

[0010] The present invention is further configured as follows: the pressure sensor is connected to a voltage divider circuit and a diode clamp circuit in sequence via a diode, the voltage divider circuit includes a voltage divider resistor R7 and a voltage divider resistor R6 connected in series to ground, and the output voltage formula of the voltage divider circuit is: The connection end of the voltage dividing resistor R7 and the voltage dividing resistor R6 is connected to a current limiting resistor R9.

[0011] The present invention is further configured as follows: the diode clamping circuit comprises two clamping diodes arranged in series, the two clamping diodes are arranged in series in sequence, and the common end of the two clamping diodes is connected to the current limiting resistor R9 and is electrically connected to the analog-to-digital converter.

[0012] The present invention is further configured as follows: the pressure switch module also includes a switch coupler, the switch coupler is connected to the touch button module, the output end of the switch coupler and the coupler are respectively connected to the main control circuit, one output end of the switch coupler and the coupler are connected to the ground, the other output ends of the switch coupler and the coupler are respectively electrically connected to the pull-up resistor and then connected to the power supply, and a number of filter capacitors are connected in parallel between the power supply and the ground.

[0013] The present invention is further configured to include a scale detection module, which includes a rated resistor connected in series to the load electrode end, the rated resistor is connected in series to the load electrode end and then grounded, and the rated resistor and the load electrode end are commonly connected to a detector for detecting voltage or current conditions.

[0014] The present invention is further configured as follows: the main control circuit is connected to the scale detection module, which is used to obtain the scale condition of the load electrode end to adjust the frequency of the reverse pole descaling and jointly control the self-cleaning maintenance module: firstly, the scale degree S on the load electrode end is obtained by the scale detection module, , where R X is the resistance after scale accumulation, R0 is the resistance of the load electrode in the non-scale state, and then the scale level threshold T is set. When S>T, the reversal frequency f is increased. , where f min is the set minimum frequency, f max is the maximum frequency set, the inversion frequency f is [f min ,f max ] range, when S≤T, the inversion frequency f is f min .

[0015] The control method of the device for preparing dual electrolytic water based on O3 and H2O2 in parallel adopts the control circuit of the device for preparing dual electrolytic water based on O3 and H2O2 in parallel, and the control steps include: Startup: The operator outputs a switch signal through the touch key module. When it is the first interaction, the switch signal as the start signal is output to the main control circuit. The main control circuit simultaneously outputs a pulse signal set as a mirror image to the positive input switch circuit and the reverse input switch circuit. When the positive input switch circuit receives a low-level signal and the reverse input switch circuit receives a high-level signal, the main control circuit starts the load, the ozone generator and the hydrogen peroxide generator start working, and electrolyzes water to generate O3 and H2O 2; Scale monitoring: After the equipment is started, the main control circuit uses the scale detection module to monitor the resistance of the electrodes of the ozone generator and hydrogen peroxide generator, that is, R X The value is monitored in real time and Calculate and provide real-time feedback on the scale level on the load electrode end; Reversal control: According to the real-time feedback of the scaling degree S, the main control circuit dynamically adjusts the reversal frequency f. When S≤T, the reversal frequency f is f min , when S>T, increase the inversion frequency f to f max , increase the frequency of inversion, adjust the k value according to the sensitivity requirements, ; Pressure monitoring: After the equipment is started, the pressure conditions in the input pipeline or the output pipeline are obtained through the pressure switch module. When the pressure conditions in the input pipeline or the output pipeline increase and exceed the set threshold, a low-level cutoff signal is output to the switch coupler, and the main control circuit receives a high-level power-off signal to stop the load drive module. When the pressure conditions in the input pipeline or the output pipeline decrease and are less than the set threshold, a high-level passage signal is output to the switch coupler to resume the operation of the load drive module.

[0016] In summary, the present invention has the following beneficial effects: The resistance detection method is used to monitor the degree of scale in real time and dynamically adjust the reversal frequency, thereby effectively preventing the accumulation of scale. The reversal frequency can be automatically and adaptively adjusted according to the degree of scale to reduce the impact on the equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is a system block diagram of the present invention; Figure 2 This is a circuit diagram of the touch key module in the present invention; Figure 3 It is a circuit schematic diagram of the voltage-stabilized power supply module in the present invention; Figure 4 It is a circuit principle diagram of the main control circuit in the present invention; Figure 5 is a circuit schematic diagram of the inverting switch circuit in the present invention; Figure 6 This is a circuit schematic diagram of the pressure switch module in the present invention. DETAILED DESCRIPTION

[0018] The following will be combined with the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention. Embodiment 1

[0019] like Figure 1 As shown, a control circuit of a device for preparing dual electrolytic water based on O3 and H2O2 in parallel is applied to control the operation of the device for preparing dual electrolytic water based on O3 and H2O2 in parallel, comprising: A touch button module interacts with an operator to output a start signal or a shut down signal in response to an operator's action; A load driving module, connected to the touch key module, for obtaining a start signal or a shutdown signal to start or stop a load, wherein the load includes an ozone generator; A self-cleaning maintenance module is connected to the load driving module and is used to control the output electrode of the load driving module to reverse polarity and maintain the normal operation of the load; A voltage-stabilized power supply module is connected to the touch key module, the load driving module and the self-cleaning maintenance module to output a multi-level driving voltage required to supply the touch key module, the load driving module and the self-cleaning maintenance module; The voltage-stabilized power supply module supplies multi-level driving voltage to power on the load driving module, and when the operator operates the touch button module to output a start signal to the load driving module, the ozone generator is started to electrolyze water to produce ozone and hydrogen peroxide. When the self-cleaning and maintenance module is started, the output of the self-cleaning and maintenance module is reversed, and the load is driven to operate normally.

[0020] like Figure 3 As shown, in this embodiment, the voltage-stabilized power supply module includes a power management chip, and the power management chip has a VIN terminal, an EN pin, a SW pin, an FB pin and a GND terminal. Specifically, a plurality of filter capacitors are arranged between the VIN terminal and the GND terminal of the power management chip, and a Schottky diode is connected in parallel to prevent reverse connection, thereby avoiding damage to the power management chip caused by reverse connection, and the VIN terminal and the GND terminal of the power management chip are connected to an energy storage component. In this embodiment, the energy storage component is a lithium battery, and is electrically connected to a Type-C interface for connecting a power adapter and a driver chip of the Type-C interface.

[0021] like Figure 6 As shown, it also includes a pressure switch module, which is used to obtain the pressure in the pipeline connected to the device, respond to the increase in pressure in the pipeline to output a channel signal to the load driving module, and when the pressure is greater than the set reference pressure, send a power-off signal to the load driving module to shut down the device, and when the pressure is less than the set reference pressure, send a power-on signal to the load driving module to restore the operation of the device. In this embodiment, the pressure switch module includes a pressure sensor for monitoring the pipeline pressure, and the pressure sensor is electrically connected to the main control circuit with a coupler, and is used to obtain the pressure when it increases to a set threshold, and output a cut-off signal to the main control circuit. The pressure switch module uses a pressure sensor to obtain the pressure in the pipeline through the pressure sensor, but the pipeline is blocked by bending, and the electrolysis instrument can be automatically shut down when the pressure is too high, or as an application control, the user can also turn on or off the electrolysis instrument through the water on-off switch of the handheld shower during use, so as to achieve flexible control of the working state of the electrolysis instrument through the pipeline switch control.

[0022] The pressure sensor is connected to a voltage divider circuit and a diode clamp circuit in sequence through a diode. The voltage divider circuit includes a voltage divider resistor R7 and a voltage divider resistor R6 connected in series to ground. The output voltage formula of the voltage divider circuit is: The connection end of the voltage-dividing resistor R7 and the voltage-dividing resistor R6 is connected to the current-limiting resistor R9, wherein the diode clamping circuit includes two clamping diodes arranged in series, the two clamping diodes are arranged in series in sequence, and the common end of the two clamping diodes is connected to the current-limiting resistor R9 and is electrically connected to the analog-to-digital converter.

[0023] like Figure 6 As shown, the pressure switch module also includes a switch coupler, which is connected to the touch button module, and the output end of the switch coupler and the coupler are respectively connected to the main control circuit, and one output end of the switch coupler and the coupler are connected to the ground, and the other output ends of the switch coupler and the coupler are respectively electrically connected to the pull-up resistor and then connected to the power supply, and a number of filter capacitors are connected in parallel between the power supply and the ground.

[0024] like Figure 4 and Figure 5 As shown, the load driving module includes a main control circuit and a reversing switch circuit. The main control circuit is connected to the touch button module and the reversing switch circuit module. The reversing switch circuit includes a positive input switch circuit and a reversing input switch circuit. The positive input switch circuit and the reversing input switch circuit include a photoelectric coupler connected to the main control circuit. The output ends of the photoelectric coupler are respectively connected to a power supply electrode and a switching transistor. The collector of the switching transistor is connected in series with a relay switch to the power supply electrode. The emitter of the switching transistor is grounded and electrically connected to the base with a fixed resistor. Among them, the two control ends of the two relay switches are respectively electrically connected to the power supply or ground at the positive or negative pole of the load to form a power supply circuit. The main control circuit intermittently controls the two relay switches to work alternately to reverse the positive and negative electrodes of the ozone generator.

[0025] It also includes a scale detection module, which includes a rated resistor connected in series with the load electrode end, the rated resistor is connected in series with the load electrode end and then grounded, the rated resistor and the load electrode end are jointly connected with a detector for detecting voltage or current conditions, the main control circuit is connected to the scale detection module, and is used to obtain the scale condition of the load electrode end to adjust the frequency of reverse pole descaling and jointly control the self-cleaning maintenance module: first, the scale degree S on the load electrode end is obtained through the scale detection module, , where R X is the resistance after scale accumulation, R0 is the resistance of the load electrode in the non-scale state, and then the scale level threshold T is set. When S>T, the reversal frequency f is increased. , where f min is the set minimum frequency, f max is the maximum frequency set, the inversion frequency f is [f min ,f max ] range, when S≤T, the inversion frequency f is f min . Embodiment 2

[0026] The control method of the device for preparing dual electrolytic water based on O3 and H2O2 in parallel adopts the control circuit as described in Example 1, and the control steps include: Startup: The operator outputs a switch signal through the touch key module. When it is the first interaction, the switch signal as the start signal is output to the main control circuit. The main control circuit simultaneously outputs a pulse signal set as a mirror image to the positive input switch circuit and the reverse input switch circuit. When the positive input switch circuit receives a low-level signal and the reverse input switch circuit receives a high-level signal, the main control circuit starts the load, the ozone generator and the hydrogen peroxide generator start working, and electrolyzes water to generate O3 and H2O 2; Scale monitoring: After the equipment is started, the main control circuit uses the scale detection module to monitor the resistance of the electrodes of the ozone generator and hydrogen peroxide generator, that is, R X The value is monitored in real time and Calculate and provide real-time feedback on the scale level on the load electrode end; Reversal control: According to the real-time feedback of the scaling degree S, the main control circuit dynamically adjusts the reversal frequency f. When S≤T, the reversal frequency f is f min , when S>T, increase the inversion frequency f to f max , increase the frequency of inversion, adjust the k value according to the sensitivity requirements, ; Pressure monitoring: After the equipment is started, the pressure conditions in the input pipeline or the output pipeline are obtained through the pressure switch module. When the pressure conditions in the input pipeline or the output pipeline increase and exceed the set threshold, a low-level cutoff signal is output to the switch coupler, and the main control circuit receives a high-level power-off signal to stop the load drive module. When the pressure conditions in the input pipeline or the output pipeline decrease and are less than the set threshold, a high-level passage signal is output to the switch coupler to resume the operation of the load drive module.

[0027] For example, in this embodiment, the resistance of R0 is set to 10Ω, and the scale level threshold T is set to 20%, f min is 0.1Hz, f max The frequency is 10Hz, the value of k is 0.1, and when the scale is less, the resistance R X The value is 11Ω. The scale degree S = ((11-10) / 10)*100%=10%, at this time S<T, the reversal frequency is f=fmin=0.1Hz, when the scale is more, the measured resistance R XThe resistance is 15Ω, the scaling degree S=((15-10) / 10)*100%=50%, the measured S=50%>20%, the reversal frequency f=0.1+0.1×(50−20)=3.1 Hz.

[0028] The resistance detection method is used to monitor the degree of scale in real time and dynamically adjust the reversal frequency, thereby effectively preventing the accumulation of scale. The reversal frequency can be automatically and adaptively adjusted according to the degree of scale to reduce the impact on the equipment.

[0029] The above is only a preferred embodiment of the present invention, and the protection scope of the present invention is not limited to the above embodiments. All technical solutions under the concept of the present invention belong to the protection scope of the present invention. It should be pointed out that for ordinary technicians in this technical field, some improvements and modifications without departing from the principle of the present invention should also be regarded as the protection scope of the present invention.

Claims

1. A control circuit for a device for preparing double electrolytic water based on O3 and H2O2 in parallel, characterized in that: Applied to control the operation of the dual electrolytic water preparation equipment for parallel preparation of O3 and H2O2, including: A touch button module interacts with an operator to output a start signal or a shut down signal in response to an operator's action; A load driving module, connected to the touch key module, for obtaining a start signal or a shutdown signal to start or stop a load, wherein the load includes an ozone generator; A self-cleaning maintenance module is connected to the load driving module and is used to control the output electrode of the load driving module to reverse polarity and maintain the normal operation of the load; A voltage-stabilized power supply module is connected to the touch key module, the load driving module and the self-cleaning maintenance module to output a multi-level driving voltage required to supply the touch key module, the load driving module and the self-cleaning maintenance module; The voltage-stabilized power supply module supplies multi-level driving voltage to power on the load driving module, and when the operator operates the touch button module to output a start signal to the load driving module, the ozone generator is started to electrolyze water to produce ozone and hydrogen peroxide. When the self-cleaning and maintenance module is started, the output of the self-cleaning and maintenance module is reversed, and the load is driven to operate normally.

2. The control circuit of the device for preparing double electrolyzed water based on O3 and H2O2 in parallel according to claim 1, characterized in that: It also includes a pressure switch module, which is used to obtain the pressure in the pipeline connected to the device, and respond to the increase in pressure in the pipeline to output a channel signal to the load driving module. When the pressure is greater than the set reference pressure, a power-off signal is sent to the load driving module to shut down the device. When the pressure is less than the set reference pressure, a power-on signal is sent to the load driving module to resume device operation.

3. The control circuit of the device for preparing double electrolytic water based on O3 and H2O2 in parallel according to claim 2, characterized in that: The load driving module includes a main control circuit and a reverse switch circuit, the main control circuit is connected to the touch key module and the reverse switch circuit module, the reverse switch circuit includes a positive input switch circuit and a reverse input switch circuit, the positive input switch circuit and the reverse input switch circuit include a photoelectric coupler connected to the main control circuit, the output end of the photoelectric coupler is respectively connected to a power supply electrode and a switch transistor, the collector of the switch transistor is connected in series with a relay switch to the power supply electrode, the emitter of the switch transistor is grounded and electrically connected to the base with a fixed resistor; The two control ends of the two relay switches are respectively electrically connected to the power supply or ground at the positive or negative pole of the load to form a power supply circuit. The main control circuit intermittently controls the two relay switches to work alternately to reverse the positive and negative electrodes of the ozone generator.

4. The control circuit of the device for preparing double electrolytic water based on O3 and H2O2 in parallel according to claim 3, characterized in that: The pressure switch module includes a pressure sensor for monitoring pipeline pressure. The pressure sensor is electrically connected to the main control circuit through a coupler and is used to output a cut-off signal to the main control circuit when the pressure increases to a set threshold.

5. The control circuit of the device for preparing double electrolyzed water based on O3 and H2O2 in parallel according to claim 4, characterized in that: The pressure sensor is connected to a voltage divider circuit and a diode clamp circuit in sequence via a diode. The voltage divider circuit includes a voltage divider resistor R7 and a voltage divider resistor R6 connected in series to ground. The output voltage formula of the voltage divider circuit is: The connection end of the voltage dividing resistor R7 and the voltage dividing resistor R6 is connected to a current limiting resistor R9.

6. The control circuit of the device for preparing dual electrolytic water based on O3 and H2O2 in parallel according to claim 5, characterized in that: The diode clamping circuit includes two clamping diodes arranged in series, the two clamping diodes are arranged in series in sequence, and the common end of the two clamping diodes is connected to the current limiting resistor R9 and is electrically connected to the analog-to-digital converter.

7. The control circuit of the device for preparing double electrolyzed water based on O3 and H2O2 in parallel according to claim 4, characterized in that: The pressure switch module also includes a switch coupler, which is connected to the touch button module. The output end of the switch coupler and the coupler are respectively connected to the main control circuit. One output end of the switch coupler and the coupler is connected to the ground. The other output ends of the switch coupler and the coupler are respectively electrically connected to the pull-up resistor and then connected to the power supply. A number of filter capacitors are connected in parallel between the power supply and the ground.

8. The control circuit of the device for preparing dual electrolytic water based on O3 and H2O2 in parallel according to claim 3, characterized in that: It also includes a scale detection module, which includes a rated resistor connected in series to the load electrode end, the rated resistor is connected in series to the load electrode end and then grounded, and the rated resistor and the load electrode end are commonly connected to a detector for detecting voltage or current conditions.

9. The control circuit of the device for preparing dual electrolytic water based on O3 and H2O2 in parallel according to claim 8, characterized in that: The main control circuit is connected to the scale detection module, which is used to obtain the scale condition of the load electrode end to adjust the frequency of the reverse pole descaling and jointly control the self-cleaning maintenance module: first, the scale degree S on the load electrode end is obtained through the scale detection module, , where R X is the resistance after scale accumulation, R0 is the resistance of the load electrode in the non-scale state, and then the scale level threshold T is set. When S>T, the reversal frequency f is increased. , where f min is the set minimum frequency, f max is the maximum frequency set, the inversion frequency f is [f min ,f max ] range, when S≤T, the inversion frequency f is f min .

10. A control method for a device for preparing dual electrolytic water based on O3 and H2O2 in parallel, characterized in that: The control circuit of the device for preparing double electrolyzed water based on O3 and H2O2 in parallel as claimed in any one of claims 1 to 9 is adopted, and the control steps include: Startup: The operator outputs a switch signal through the touch key module. When it is the first interaction, the switch signal as the start signal is output to the main control circuit. The main control circuit simultaneously outputs a pulse signal set as a mirror image to the positive input switch circuit and the reverse input switch circuit. When the positive input switch circuit receives a low-level signal and the reverse input switch circuit receives a high-level signal, the main control circuit starts the load, the ozone generator and the hydrogen peroxide generator start working, and electrolyze water to generate O3 and H2O2; Scale monitoring: After the equipment is started, the main control circuit uses the scale detection module to monitor the resistance of the electrodes of the ozone generator and hydrogen peroxide generator, that is, R X The value is monitored in real time and Calculate and provide real-time feedback on the scale level on the load electrode end; Reversal control: According to the real-time feedback of the scaling degree S, the main control circuit dynamically adjusts the reversal frequency f. When S≤T, the reversal frequency f is f min , when S>T, increase the inversion frequency f to f max , increase the frequency of inversion, adjust the k value according to the sensitivity requirements, ; Pressure monitoring: After the equipment is started, the pressure conditions in the input pipeline or the output pipeline are obtained through the pressure switch module. When the pressure conditions in the input pipeline or the output pipeline increase and exceed the set threshold, a low-level cutoff signal is output to the switch coupler, and the main control circuit receives a high-level power-off signal to stop the load drive module. When the pressure conditions in the input pipeline or the output pipeline decrease and are less than the set threshold, a high-level passage signal is output to the switch coupler to resume the operation of the load drive module.

Citation Information

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