Electric standing wave resonance atomization method, device, equipment, medium and product

Through the electric standing wave resonance atomization method, the standing wave frequency and amplitude are determined, the equipment parameters are adjusted, and combined with monitoring feedback, the problems of uneven atomization particle size and high energy consumption are solved, and precise control and efficient atomization are achieved.

CN120394272APending Publication Date: 2025-08-01BEIFANG WEIJIAMAO COAL POWER CO LTD
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Patent Information

Application Number
CN202510414846.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-03
Publication Date
2025-08-01

AI Technical Summary

Technical Problem

It is difficult for existing atomization technology to achieve precise control of atomization particle size in high-precision scenarios, resulting in uneven atomization effect and high energy consumption, especially insufficient applicability to substances with specific resonance frequencies.

Method used

By determining the standing wave frequency and amplitude of the electric standing wave, using the electric standing wave resonance to atomize the substance to be atomized, and adjust the equipment parameters, such as standing wave intensity, frequency and waveform during the atomization process, combined with spectral and particle size analysis and monitoring, the precise control of the atomized particle size is achieved.

Benefits of technology

It realizes precise control of atomization particle size, improves the accuracy of atomization effect, reduces energy consumption, and expands the scope of atomization application.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides an electric standing wave resonance atomization method, device and equipment, a medium and a product, and the method comprises the steps that the standing wave frequency and the standing wave amplitude of electric standing waves are determined based on the resonance frequency of a to-be-atomized substance, and the electric standing waves are generated by preset electric equipment; based on the electric standing wave, atomizing the to-be-atomized substance to obtain a first atomization result; based on the first atomization effect result of the to-be-atomized substance, a first equipment parameter of the preset electric equipment is adjusted to be a second equipment parameter, so that a second atomization result is obtained; and monitoring the second atomization result to adjust the second equipment parameter. According to the method, the substance to be atomized and the standing wave resonate, accurate control over the atomization particle size can be achieved, the accuracy of the atomization effect is improved, and the high practical value and the good application prospect are achieved.
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Description

Technical Field

[0001] The present disclosure relates to the field of automatic control, and particularly to an electric standing wave resonance atomization method, device, equipment, medium and product. Background Art

[0002] Atomization technology is the process of converting liquid or solid substances into tiny particles, which is widely used in fields such as medical treatment, chemical engineering, environmental protection and materials science. In industrial production and scientific research experiments, atomization can promote the mixing, reaction and drying of substances, etc., and is one of the key technologies to achieve fine chemical engineering and improve material properties. The efficiency and effect of the atomization process directly affect product quality and energy consumption.

[0003] In related technologies, pressure, rotation, pneumatic and other methods are usually used to achieve the atomization of substances. However, these atomization methods have certain limitations in high-precision scenarios and are difficult to accurately control the atomization particle size, resulting in uneven atomization effects. Summary of the Invention

[0004] The present disclosure provides an electric standing wave resonance atomization method, device, equipment, medium and product to solve the problems in related technologies, improve the accurate control of the atomization particle size, and improve the accuracy of the atomization effect.

[0005] The first aspect embodiment of the present disclosure proposes an electric standing wave resonance atomization method, including: determining the standing wave frequency and standing wave amplitude of an electric standing wave based on the resonance frequency of a substance to be atomized, where the electric standing wave is generated by a preset electric device; atomizing the substance to be atomized based on the electric standing wave to obtain a first atomization result; adjusting the first device parameters of the preset electric device to second device parameters based on the first atomization effect result of the substance to be atomized to obtain a second atomization result; monitoring the second atomization result to adjust the second device parameters.

[0006] In some embodiments of the present disclosure, atomizing the substance to be atomized based on the electric standing wave to obtain a first atomization result includes: atomizing the substance to be atomized using an auxiliary catalyst based on the electric standing wave to obtain a first atomization result.

[0007] In some embodiments of the present disclosure, adjusting the first device parameters of the preset electric device to second device parameters based on the first atomization effect result of the substance to be atomized to obtain a second atomization result includes: adjusting at least one of the standing wave intensity parameter, standing wave frequency parameter and standing wave waveform parameter of the preset electric device based on the first atomization effect result of the substance to be atomized to obtain a second atomization result.

[0008] In some embodiments of the present disclosure, monitoring the second atomization result to adjust the second device parameters includes: monitoring the second atomization result using spectral analysis method and / or particle size analysis method, and adjusting the second device parameters according to the monitoring result.

[0009] In some embodiments of the present disclosure, the substance to be atomized includes a liquid and / or a solid powder.

[0010] In some embodiments of the present disclosure, the electric device is an electromagnetic oscillator and / or an electric motor.

[0011] An embodiment of the second aspect of the present disclosure provides an electric standing wave resonance atomization device, including: a determination unit configured to determine the standing wave frequency and the standing wave amplitude of an electric standing wave based on the resonance frequency of the substance to be atomized, the electric standing wave being generated by a preset electric device; an atomization unit configured to atomize the substance to be atomized based on the electric standing wave to obtain a first atomization result; a first adjustment unit configured to adjust a first device parameter of the preset electric device to a second device parameter based on the first atomization effect result of the substance to be atomized to obtain a second atomization result; and a second adjustment unit configured to monitor the second atomization result to adjust the second device parameter.

[0012] An embodiment of the third aspect of the present disclosure provides an electronic device, including: a processor and a memory for storing a computer program that can run on the processor, wherein the processor is configured to execute the method described in the embodiment of the second aspect of the present disclosure when running the computer program.

[0013] An embodiment of the fourth aspect of the present disclosure provides a non-transitory computer-readable storage medium storing computer instructions, wherein the computer instructions are configured to cause a computer to execute the method described in the embodiment of the second aspect of the present disclosure.

[0014] An embodiment of the fifth aspect of the present disclosure provides a computer program product, including a computer program that implements the method described in the embodiment of the second aspect of the present disclosure when executed by a processor.

[0015] In summary, an electric standing wave resonance atomization method proposed according to the present disclosure includes: determining the standing wave frequency and the standing wave amplitude of an electric standing wave based on the resonance frequency of the substance to be atomized, the electric standing wave being generated by a preset electric device; atomizing the substance to be atomized based on the electric standing wave to obtain a first atomization result; adjusting a first device parameter of the preset electric device to a second device parameter based on the first atomization effect result of the substance to be atomized to obtain a second atomization result; and monitoring the second atomization result to adjust the second device parameter. The method of the present disclosure can achieve precise control of the atomization particle size by making the substance to be atomized resonate with the standing wave, improve the accuracy of the atomization effect, and has strong practical value and good application prospects.

[0016] It should be understood that the above general description and the following detailed description are only exemplary and explanatory, and cannot limit the present disclosure. Description of the Drawings

[0017] The accompanying drawings here are incorporated into the specification and form a part of this specification, showing embodiments consistent with the present disclosure, and are used together with the specification to explain the principles of the present disclosure, and do not constitute an undue limitation on the present disclosure.

[0018] Figure 1 A flowchart of an electric standing wave resonance atomization method provided for an embodiment of the present disclosure;

[0019] Figure 2 Another flowchart of an electric standing wave resonance atomization method provided for an embodiment of the present disclosure;

[0020] Figure 3 A schematic structural diagram of an electric standing wave resonance atomization device provided for an embodiment of the present disclosure;

[0021] Figure 4 A schematic structural diagram of an electronic device provided for an embodiment of the present disclosure. Detailed Description of the Embodiment

[0022] The embodiments of the present disclosure will be described in detail below. The examples of the embodiments are shown in the accompanying drawings, where the same or similar reference numerals denote the same or similar elements or elements with the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to explain the present disclosure, and should not be construed as a limitation on the present disclosure.

[0023] Atomization technology is the process of converting liquid or solid substances into tiny particles, which is widely used in fields such as medical treatment, chemical engineering, environmental protection, and materials science. In industrial production and scientific research experiments, atomization can promote the mixing, reaction, and drying of substances, etc., and is one of the key technologies for realizing fine chemical engineering and improving material properties. The efficiency and effect of the atomization process directly affect product quality and energy consumption.

[0024] In related technologies, methods such as pressure, rotation, and pneumatics are usually used to achieve atomization of substances. However, these atomization methods have certain limitations in high-precision scenarios and are difficult to precisely control the atomization particle size, resulting in uneven atomization effects. This is particularly problematic in application scenarios that require highly uniform atomized particles, such as drug delivery, fine spraying, etc. At the same time, traditional atomization methods often consume high energy, and for substances such as sewage containing tiny particulate matter that are difficult to handle, the applicability of conventional atomization technologies is not strong.

[0025] In addition, existing atomization devices usually have insufficient adaptability to the physical properties of substances to be atomized and cannot effectively meet the atomization requirements of different substances. Especially for substances with specific resonance frequencies, it is difficult for traditional atomization methods to utilize the resonance effect to improve the atomization efficiency.

[0026] Therefore, it is of great significance to develop a new atomization technology that can improve the atomization efficiency, optimize the atomization effect, and precisely control the atomization particle size. For this purpose, the present disclosure proposes an electro - standing - wave resonance atomization method to solve the above problems.

[0027] The following further elaborates on the present disclosure in detail with reference to the accompanying drawings and specific embodiments.

[0028] Figure 1 The flowchart of an electro - standing - wave resonance atomization method provided by an embodiment of the present disclosure is as follows. As Figure 1 shown, it includes the following steps.

[0029] Step 101: Determine the standing - wave frequency and standing - wave amplitude of the electro - standing - wave based on the resonance frequency of the substance to be atomized.

[0030] In some embodiments, the substance to be atomized may include liquid and / or solid powder.

[0031] In some embodiments, the physical properties of the substance to be atomized can be analyzed, for example, by experimentally measuring the resonance frequency of the substance to be atomized, but it is not limited thereto, and the present disclosure does not limit this.

[0032] In some embodiments, a standing - wave can be generated by a preset electric device, where the preset electric device can be an electromagnetic oscillator, an electric motor, etc.

[0033] In some embodiments, the standing - wave frequency and standing - wave amplitude can be determined according to the resonance frequency. For example, the frequency value of the resonance frequency can be used as the frequency value of the standing - wave frequency, and the amplitude corresponding to the resonance frequency can be used as the amplitude of the standing - wave frequency. However, it is not limited thereto. The frequency values within the preset range of the resonance frequency can also be determined as the standing - wave frequency, and the amplitude corresponding to the standing - wave frequency can be determined as the standing - wave amplitude.

[0034] Step 102: Atomize the substance to be atomized based on the electro - standing - wave to obtain a first atomization result.

[0035] In some examples, the electro - standing - wave can be used to drive the substance to be atomized to vibrate, thereby realizing the atomization of the substance to be atomized, and the atomization effect of the substance to be atomized can be determined as the first atomization effect.

[0036] In some alternative embodiments, the atomization effect of the substance to be atomized can be improved by adding an auxiliary catalyst during the atomization process.

[0037] Step 103: Adjust the first device parameter of the preset electric device to a second device parameter based on the first atomization result of the substance to be atomized to obtain a second atomization result.

[0038] In some embodiments, the first device parameter may be at least one of a standing wave intensity parameter, a standing wave frequency parameter, and a standing wave waveform parameter.

[0039] For example, by adjusting the operating parameters of a preset electric device, such as voltage, current, power, etc., the intensity of the standing wave can be adjusted, thereby adjusting the atomization efficiency.

[0040] For example, by increasing the frequency of the standing wave, the atomization uniformity can be improved, further improving the atomization efficiency.

[0041] For example, by adjusting the waveform of the standing wave, such as a sine wave, a square wave, and a triangular wave, the atomization effect can be optimized to achieve finer and more uniform atomization particle sizes, improving the atomization quality.

[0042] In some embodiments, when the device parameter of the preset electric device is the second device parameter, the atomization effect of the substance to be atomized is determined as the second atomization result.

[0043] Step 104, monitor the second atomization result to adjust the second device parameter.

[0044] In some embodiments, by monitoring the atomization effect, such as atomization particle size and atomization uniformity, the second device parameter of the preset electric device can be feedback-adjusted to achieve the optimal atomization effect, realize precise control of the atomization particle size, and meet different usage requirements.

[0045] In some embodiments, by adjusting the second device parameter, staged atomization of the substance to be atomized is realized, thereby improving the uniformity of the atomization result.

[0046] In summary, the electric standing wave resonance atomization method proposed according to the present disclosure includes: determining the standing wave frequency and standing wave amplitude of the electric standing wave based on the resonance frequency of the substance to be atomized, where the electric standing wave is generated by a preset electric device; atomizing the substance to be atomized based on the electric standing wave to obtain a first atomization result; adjusting the first device parameter of the preset electric device to a second device parameter based on the first atomization effect result of the substance to be atomized to obtain a second atomization result; monitoring the second atomization result to adjust the second device parameter. The method of the present disclosure can achieve precise control of the atomization particle size by making the substance to be atomized resonate with the standing wave, improve the accuracy of the atomization effect, and has strong practical value and good application prospects.

[0047] Figure 2 It is a flowchart of an electric standing wave resonance atomization method provided by an embodiment of the present disclosure. As Figure 2 shown, it includes the following steps.

[0048] Step 201, determine the standing wave frequency and standing wave amplitude of the electric standing wave based on the resonance frequency of the substance to be atomized.

[0049] In some embodiments, the principle of step 201 is the same as that of step 101. For relevant embodiments and descriptions of step 101, reference can be made, and details will not be elaborated here.

[0050] Step 202: Based on the electro - standing wave, use an auxiliary catalyst to atomize the material to be atomized to obtain a first atomization result.

[0051] In some embodiments, the auxiliary catalyst can be a biocatalyst or a nanocatalyst, and the present disclosure does not limit this.

[0052] In some embodiments, the auxiliary catalyst can be added during the atomization process to increase the activity of the material to be atomized, thereby improving the atomization effect of the material to be atomized.

[0053] In some embodiments, the electro - standing wave can be used to drive the material to be atomized to vibrate, and an auxiliary catalyst is added during the atomization process, thereby realizing the atomization of the material to be atomized and determining the atomization effect of the material to be atomized as the first atomization effect.

[0054] Step 203: Based on the first atomization result of the material to be atomized, adjust at least one of the standing - wave intensity parameter, standing - wave frequency parameter, and standing - wave waveform parameter of the preset electric device to obtain a second atomization result.

[0055] In some embodiments, the working parameters of the electric device, such as voltage, current, power, etc., can be adjusted to adjust the intensity of the standing wave, and further adjust the atomization efficiency. For example, when it is found that the atomization effect is not good, the voltage or current can be appropriately increased to enhance the intensity of the standing wave and improve the atomization efficiency.

[0056] In some embodiments, the atomization uniformity can be improved by increasing the frequency of the standing wave, and further improve the atomization efficiency.

[0057] In some embodiments, the atomization effect can be optimized by adjusting the waveform of the standing wave, for example, changing the sine wave to a square wave.

[0058] Step 204: Use spectral analysis and / or particle - size analysis to monitor the second atomization result, and adjust the second device parameter according to the monitoring result.

[0059] In some embodiments, the working parameters of the electric device can be feedback - adjusted by monitoring the atomization effect, for example, measuring the atomization particle size and atomization uniformity through a spectral analyzer, to achieve the optimal atomization effect.

[0060] In summary, the electro - acoustic standing - wave resonance atomization method proposed according to the present disclosure includes: determining the standing - wave frequency and standing - wave amplitude of the electro - acoustic standing - wave based on the resonance frequency of the substance to be atomized, where the electro - acoustic standing - wave is generated by a preset electro - device; atomizing the substance to be atomized using an auxiliary catalyst based on the electro - acoustic standing - wave to obtain a first atomization result; adjusting at least one of the standing - wave intensity parameter, standing - wave frequency parameter, and standing - wave waveform parameter of the preset electro - device based on the first atomization effect result of the substance to be atomized to obtain a second atomization result; monitoring the second atomization result using spectral analysis and / or particle - size analysis, and adjusting the second device parameters according to the monitoring results. The method of the present disclosure can achieve precise control of the atomization particle size by making the substance to be atomized resonate with the standing - wave, improve the accuracy of the atomization effect, and has strong practical value and good application prospects.

[0061] The following is an exemplary description of the method of the present disclosure:

[0062] To achieve the above - mentioned object, the technical solution of the present disclosure is realized as follows: An electro - acoustic standing - wave resonance atomization method includes the following steps:

[0063] First, set and control the frequency and amplitude of the electro - acoustic standing - wave to match the resonance frequency of the substance to be atomized, and determine its optimal resonance frequency by analyzing the properties of the substance to be atomized.

[0064] Second, generate a standing - wave through an electro - device. The standing - wave generates resonance in the substance, causing the substance molecules to vibrate, thereby forming an atomization phenomenon. At the same time, an auxiliary atomizing agent is added during the atomization process to improve the atomization efficiency.

[0065] Then, adjust the working parameters of the electro - device, such as voltage, current, power, etc., to adjust the intensity of the standing - wave, and further adjust the atomization efficiency.

[0066] Next, increase the frequency of the standing - wave to improve the atomization uniformity and further improve the atomization efficiency. At the same time, adjust the waveform of the standing - wave, such as sine wave, square wave, and triangular wave, to optimize the atomization effect.

[0067] Finally, monitor the atomization effect, such as atomization particle size and atomization uniformity, and feedback - adjust the working parameters of the electro - device to achieve the optimal atomization effect.

[0068] Preferably, the electro - device includes, but is not limited to, an electromagnetic oscillator and an electric motor.

[0069] Preferably, the substance to be atomized includes liquids and solid powders.

[0070] Preferably, precise control of the atomization particle size is achieved by adjusting the working parameters of the electro - device.

[0071] Preferably, the method for monitoring the atomization effect includes, but is not limited to, spectral analysis and particle size analysis.

[0072] Preferably, a multi-stage atomization strategy is adopted to perform atomization in stages to improve the atomization efficiency and atomization uniformity.

[0073] Preferably, during the atomization process, the temperature and pressure of the substance to be atomized are adjusted to further improve the atomization efficiency.

[0074] Example embodiments:

[0075] The present disclosure provides an electric standing wave resonance atomization method, specifically as follows:

[0076] First, select the substance to be atomized, such as water. Analyze the physical properties of water, such as experimentally determining its resonance frequency. Then, set and control the frequency and amplitude of the electric standing wave to match its resonance frequency. In this way, resonance can be generated in water by the standing wave, causing water molecules to vibrate, thereby forming an atomization phenomenon.

[0077] Second, generate a standing wave through an electric device. This electric device can be an electromagnetic oscillator or an electric motor. During the atomization process, an auxiliary atomizing agent, such as a surfactant, can be added to improve the atomization efficiency.

[0078] Then, by adjusting the working parameters of the electric device, such as voltage, current, power, etc., the intensity of the standing wave is adjusted, and thus the atomization efficiency is adjusted. For example, when it is found that the atomization effect is not good, the voltage or current can be appropriately increased to enhance the intensity of the standing wave and improve the atomization efficiency.

[0079] Next, by increasing the frequency of the standing wave, the atomization uniformity is improved, and the atomization efficiency is further enhanced. At the same time, by adjusting the waveform of the standing wave, such as changing the sine wave to a square wave, the atomization effect is optimized.

[0080] Finally, by monitoring the atomization effect, such as measuring the atomization particle size and atomization uniformity through a spectral analyzer, the working parameters of the electric device are feedback-adjusted to achieve the optimal atomization effect.

[0081] Therefore, the present solution has the following beneficial effects:

[0082] 1. Improve the atomization efficiency: By setting and controlling the frequency and amplitude of the electric standing wave to match the resonance frequency of the substance to be atomized, and adding an auxiliary atomizing agent during the atomization process, the atomization efficiency can be effectively improved.

[0083] 2. Optimize the atomization effect: By adjusting the intensity, frequency, and waveform of the standing wave, the atomization effect can be further optimized, achieving a finer and more uniform atomization particle size and improving the atomization quality.

[0084] 3. Precise control of the atomization particle size: By adjusting the operating parameters of the electric device, precise control of the atomization particle size can be achieved to meet different usage requirements.

[0085] 4. Real-time monitoring and feedback: By monitoring the atomization effect in real time and feeding back to adjust the operating parameters of the electric device, the stability of the atomization effect can be ensured to achieve the optimal atomization effect.

[0086] 5. Wide range of applicable substances: This method is not only applicable to the atomization of liquids, but also can atomize solid powders, with a wider application range.

[0087] 6. Efficient multi-stage atomization strategy: Adopting a strategy of atomizing in stages can improve the atomization efficiency and ensure the uniformity of atomization.

[0088] 7. Flexible process adjustment: During the atomization process, by adjusting the temperature and pressure of the substance to be atomized, the atomization process can be flexibly adjusted according to the actual situation to further improve the atomization efficiency.

[0089] Generally speaking, this method can effectively improve the atomization efficiency and optimize the atomization effect, with advantages such as real-time monitoring and feedback, precise control of the atomization particle size, wide range of applicable substances, and efficient multi-stage atomization strategy, having strong practical value and good application prospects.

[0090] Figure 3 FIG. is a schematic structural diagram of an electric standing wave resonance atomization device 300 provided by an embodiment of the present disclosure. As Figure 3 shown, the electric standing wave resonance atomization device includes:

[0091] A determination unit 310, configured to determine the standing wave frequency and standing wave amplitude of the electric standing wave based on the resonance frequency of the substance to be atomized, and the electric standing wave is generated by a preset electric device;

[0092] An atomization unit 320, configured to atomize the substance to be atomized based on the electric standing wave to obtain a first atomization result;

[0093] A first adjustment unit 330, configured to adjust the first device parameters of the preset electric device to second device parameters based on the first atomization effect result of the substance to be atomized to obtain a second atomization result;

[0094] A second adjustment unit 340, configured to monitor the second atomization result to adjust the second device parameters.

[0095] In some embodiments of the present disclosure, the atomization unit 320 is further configured to atomize the substance to be atomized using an auxiliary catalyst based on the electric standing wave to obtain a first atomization result.

[0096] In some embodiments of the present disclosure, the first adjustment unit 330 is further configured to adjust at least one of the standing wave intensity parameter, the standing wave frequency parameter, and the standing wave waveform parameter of the preset electric device based on the first atomization effect result of the substance to be atomized, so as to obtain a second atomization result.

[0097] In some embodiments of the present disclosure, the second adjustment unit 340 is further configured to monitor the second atomization result by using spectral analysis and / or particle size analysis, so as to adjust the second device parameter according to the monitoring result.

[0098] In some embodiments of the present disclosure, the substance to be atomized includes liquid and / or solid powder.

[0099] In some embodiments of the present disclosure, the electric device is an electromagnetic oscillator and / or an electric motor.

[0100] In summary, the electric standing wave resonance atomization device proposed according to the present disclosure includes: a determination unit configured to determine the standing wave frequency and the standing wave amplitude of the electric standing wave based on the resonance frequency of the substance to be atomized, the electric standing wave being generated by a preset electric device; an atomization unit configured to atomize the substance to be atomized based on the electric standing wave to obtain a first atomization result; a first adjustment unit configured to adjust the first device parameter of the preset electric device to a second device parameter based on the first atomization effect result of the substance to be atomized to obtain a second atomization result; and a second adjustment unit configured to monitor the second atomization result to adjust the second device parameter. The device of the present disclosure can achieve precise control of the atomization particle size and improve the accuracy of the atomization effect by making the substance to be atomized resonate with the standing wave, and has strong practical value and good application prospects.

[0101] It should be noted that: when the electric standing wave resonance atomization device provided in the above embodiment performs electric standing wave resonance atomization, only the above division of each program module is used for illustration. In practical applications, the above processing can be allocated to different program modules according to needs, that is, the internal structure of the electric standing wave resonance atomization device is divided into different program modules to complete all or part of the above description of the processing.

[0102] Since the device provided in the embodiment of the present disclosure corresponds to the methods provided in the above several embodiments, the implementation manners of the methods are also applicable to the device provided in this embodiment, and will not be described in detail in this embodiment.

[0103] In the embodiments provided in the present application above, the methods and devices provided in the embodiments of the present application are introduced. To implement each function in the methods provided in the embodiments of the present application above, an electronic device may include a hardware structure and software modules, and implement the above functions in the form of a hardware structure, software modules, or a combination of a hardware structure and software modules. A certain function among the above functions may be executed in the form of a hardware structure, software modules, or a combination of a hardware structure and software modules.

[0104] Figure 4 FIG. is a schematic diagram of the hardware composition structure of the electronic device provided in the embodiments of the present disclosure. As Figure 4 shown, the electronic device 400 includes at least one processor 402; and a memory 401 communicatively connected to the at least one processor 402; wherein, the memory 401 stores instructions executable by the at least one processor 402, and the instructions are executed by the at least one processor 402 to implement the steps of the electric standing wave resonance atomization method provided in the embodiments of the present disclosure; or, the instructions are executed by the at least one processor 402 to implement the steps of the electric standing wave resonance atomization method provided in the embodiments of the present disclosure.

[0105] It can be understood that a communication interface is further included in the electronic device. Each component in the electronic device is coupled together through a bus system. It can be understood that the bus system is used to realize the connection and communication between these components. In addition to the data bus, the bus system further includes a power bus, a control bus, and a status signal bus.

[0106] It can be understood that the memory 401 can be a volatile memory or a non-volatile memory, or can include both volatile and non-volatile memories. Among them, the non-volatile memory can be a read-only memory (ROM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), a ferromagnetic random access memory (FRAM), a flash memory, a magnetic surface memory, an optical disc, or a compact disc read-only memory (CD-ROM); the magnetic surface memory can be a disk memory or a tape memory. The volatile memory can be a random access memory (RAM), which is used as an external cache. By way of example but not limitation, many forms of RAM are available, such as static random access memory (SRAM), synchronous static random access memory (SSRAM), dynamic random access memory (DRAM), synchronous dynamic random access memory (SDRAM), double data rate synchronous dynamic random access memory (DDR SDRAM), enhanced synchronous dynamic random access memory (ESDRAM), sync link dynamic random access memory (SLDRAM), and direct rambus random access memory (DRRAM).The memory 401 described in the embodiments of this solution is intended to include, but is not limited to, these and any other suitable types of memories.

[0107] The method disclosed in the above embodiments of the present disclosure can be applied to or implemented by the processor 402. The processor 402 may be an integrated circuit chip with signal processing capabilities. In the implementation process, each step of the above method can be completed by the integrated logic circuit in hardware or instructions in software form in the processor 402.

[0108] The above-mentioned processor 402 may be a general-purpose processor, DSP, or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The processor 402 can implement or execute the various methods, steps, and logic block diagrams disclosed in the embodiments of this solution. The general-purpose processor may be a microprocessor or any conventional processor, etc. Combining the steps of the method disclosed in the embodiments of this solution can be directly embodied as being executed by a hardware decoding processor, or completed by a combination of hardware and software modules in the decoding processor. The software module may be located in a storage medium, which is located in the memory 401. The processor 402 reads the information in the memory 401 and combines its hardware to complete the steps of the foregoing method.

[0109] In an exemplary embodiment, the electronic device can be implemented by one or more application-specific integrated circuits (ASICs), DSPs, programmable logic devices (PLDs), complex programmable logic devices (CPLDs), FPGAs, general-purpose processors, controllers, MCUs, microprocessors, or other electronic components for executing the foregoing method.

[0110] The embodiments of the present disclosure also provide a non-transitory computer-readable storage medium storing computer instructions, and the computer instructions are used to implement the steps of the electric standing wave resonance atomization method described in the embodiments of this solution when the computer instructions are executed.

[0111] It should be noted that the terms "first", "second", etc. in the description of the present disclosure, the claims and the above-mentioned drawings are used to distinguish similar objects and do not necessarily have to be used to describe a specific order or sequence. It should be understood that the data used in this way can be interchanged under appropriate circumstances so that the embodiments of the present disclosure described herein can be implemented in an order other than those illustrated or described herein. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with the present disclosure. On the contrary, they are merely examples of devices and methods consistent with some aspects of the present disclosure as detailed in the appended claims.

[0112] In the description of this specification, the description with reference to the terms "one embodiment", "some embodiments", "schematic embodiments", "examples", "specific examples" or "some examples", etc. means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present solution. In this specification, the schematic expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples.

[0113] Any process or method description shown in the flowchart or described in other ways herein can be understood as representing a module, segment or part of code including one or more executable instructions for implementing a specific logical function or process, and the scope of the preferred embodiments of the present solution includes additional implementations, where the functions can be executed in a manner that is not shown or discussed in the order, including in a substantially simultaneous manner or in the reverse order according to the functions involved, which should be understood by those skilled in the technical field to which the embodiments of the present solution belong.

[0114] The logic and / or steps represented in the flowchart or otherwise described herein, for example, can be considered as a definite sequence list of executable instructions for implementing logical functions, and can be specifically implemented in any computer-readable medium for use by an instruction execution system, apparatus, or device (such as a computer-based system, a system including a processing module, or other systems that can fetch and execute instructions from the instruction execution system, apparatus, or device), or used in conjunction with these instruction execution systems, apparatuses, or devices. For the purposes of this specification, a "computer-readable medium" can be any device that can contain, store, communicate, propagate, or transport a program for use by or in conjunction with an instruction execution system, apparatus, or device. More specific examples (non-exhaustive list) of computer-readable media include the following: an electrical connection portion with one or more wirings (control method), a portable computer diskette (magnetic device), a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or flash memory), an optical fiber device, and a portable compact disc read-only memory (CDROM). Additionally, a computer-readable medium can even be paper or other suitable media on which a program can be printed, because the program can be obtained electronically, for example, by optically scanning the paper or other media, followed by editing, interpretation, or other suitable processing as necessary, and then stored in a computer memory.

[0115] It should be understood that each part of the implementation manner of the present solution can be implemented by hardware, software, firmware, or a combination thereof. In the above implementation manner, multiple steps or methods can be implemented by software or firmware stored in a memory and executed by a suitable instruction execution system. For example, if implemented by hardware, as in another implementation manner, any one or a combination of the following techniques well known in the art can be used: discrete logic circuits having logic gate circuits for implementing logical functions on data signals, application-specific integrated circuits having appropriate combinational logic gate circuits, programmable gate arrays (PGAs), field-programmable gate arrays (FPGAs), etc.

[0116] Those of ordinary skill in the art of this technology can understand that all or part of the steps carried by the method for implementing the above embodiments can be completed by a program instructing relevant hardware. The program can be stored in a computer-readable storage medium. When the program is executed, it includes one or a combination of the steps of the method embodiments.

[0117] In addition, each functional unit in the embodiments of the present solution can be integrated into a processing module, or each unit can exist physically alone, or two or more units can be integrated into one module. The above-mentioned integrated module can be implemented in the form of hardware or in the form of a software functional module. When the integrated module is implemented in the form of a software functional module and sold or used as an independent product, it can also be stored in a computer-readable storage medium. The above-mentioned storage medium can be a read-only memory, a magnetic disk or an optical disc, etc.

[0118] Although the embodiments of the present solution have been shown and described above, it can be understood that the above embodiments are exemplary and should not be construed as limiting the present solution. Those of ordinary skill in the art can make changes, modifications, substitutions, and variations to the above embodiments within the scope of the present solution.

Claims

1. An electric standing wave resonance atomization method, characterized in that, The method includes: Based on the resonance frequency of the substance to be atomized, determining the standing wave frequency and standing wave amplitude of an electric standing wave generated by a preset electric device; Atomizing the substance to be atomized based on the electric standing wave to obtain a first atomization result; Based on the first atomization effect result of the substance to be atomized, adjusting the first device parameters of the preset electric device to second device parameters to obtain a second atomization result; Monitoring the second atomization result to adjust the second device parameters.

2. The method according to claim 1, wherein Atomizing the substance to be atomized based on the electric standing wave to obtain a first atomization result includes: Atomizing the substance to be atomized with the aid of an auxiliary catalyst based on the electric standing wave to obtain a first atomization result.

3. The method according to claim 1, wherein Based on the first atomization effect result of the substance to be atomized, adjusting the first device parameters of the preset electric device to second device parameters to obtain a second atomization result includes: Based on the first atomization effect result of the substance to be atomized, adjusting at least one of the standing wave intensity parameter, standing wave frequency parameter, and standing wave waveform parameter of the preset electric device to obtain a second atomization result.

4. The method according to claim 1, characterized in that, Monitoring the second atomization result to adjust the second device parameters includes: Using spectral analysis and / or particle size analysis to monitor the second atomization result, and adjusting the second device parameters according to the monitoring result.

5. The method according to claim 1, wherein The substance to be atomized includes liquid and / or solid powder.

6. The method according to claim 1, wherein The electric device is an electromagnetic oscillator and / or an electric motor.

7. An electric standing wave resonance atomization device, characterized in that, The device includes: A determination unit for determining the standing wave frequency and standing wave amplitude of an electric standing wave generated by a preset electric device based on the resonance frequency of the substance to be atomized; An atomization unit for atomizing the substance to be atomized based on the electric standing wave to obtain a first atomization result; A first adjustment unit for adjusting the first device parameters of the preset electric device to second device parameters based on the first atomization effect result of the substance to be atomized to obtain a second atomization result; A second adjustment unit for monitoring the second atomization result to adjust the second device parameters.

8. An electronic device, characterized in that, Includes: A processor and a memory for storing a computer program capable of running on the processor, wherein when the processor is used to run the computer program, it executes the method described in any one of claims 1-6.

9. A non-transitory computer-readable storage medium storing computer instructions, characterized in that, The computer instruction is used to cause the computer to execute the method described in any one of claims 1-6.

10. A computer program product, characterized in that, Includes a computer program, and when the computer program is executed by a processor, it implements the method described in any one of claims 1-6.