Method, device and system for testing output power of atomizer and medium

By controlling the host to automatically obtain and process the load voltage value of the atomizer, a success rate curve is generated, and the test inaccuracy problem caused by manual recording in the prior art is solved, and efficient and accurate atomizer output power testing is achieved.

CN120458316APending Publication Date: 2025-08-12HG INNOVATION LTD
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Patent Information

Application Number
CN202510749259.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-05
Publication Date
2025-08-12

AI Technical Summary

Technical Problem

The output power test of existing atomizers relies on manual recording, which is time-consuming and labor-intensive, and is prone to less recording, missed recording, and inaccurate recording, affecting the accuracy of the test results.

Method used

By controlling the host to automatically obtain multiple load voltage values of the atomizer, pre-process it to obtain the target voltage value, calculate the output power, and generate a success rate curve to realize automated test data recording and processing.

Benefits of technology

It improves the efficiency and accuracy of test data recording, improves the accuracy of the atomizer output power test results, and reduces the need for manual operation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention provides a method, a device and a system for testing the output power of an atomizer and a medium. The method comprises the following steps: acquiring a plurality of load voltage values of the atomizer for executing the current atomization test work; preprocessing the plurality of load voltage values to obtain a target voltage value of current atomization; according to the target voltage value, the output power of current atomization is determined; and generating a power curve of the atomizer according to the output power of the multiple times of atomization. Through the embodiment of the invention, the test work of the atomizer is automatically controlled through the control host, and the test data is automatically recorded and processed without manual operation, so that the recording efficiency and accuracy of the test data are improved, and the accuracy of the test result of the output power of the atomizer is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of atomizers, and in particular to a method, device, system and medium for testing the output power of an atomizer. Background Art

[0002] At present, the atomizer realizes atomization operation by heating the heating element and other loads to generate high temperature, thereby atomizing the atomizing medium into aerosol. The heating element and other loads need to control the output power of the atomizer, and the output power of the atomizer affects the atomization effect of the atomizer.

[0003] In the prior art, the test of atomizer output power usually relies on manual recording, which is time-consuming and labor-intensive. In addition, the atomizer heating time is very short, and a lot of data needs to be recorded. This is prone to omissions, omissions, and inaccurate recording, affecting the accuracy of the atomizer output power test results. Summary of the Invention

[0004] In view of the above problems, a method, device, system and medium for testing the output power of an atomizer are proposed to overcome the above problems or at least partially solve the above problems.

[0005] The present application provides a method for testing the output power of an atomizer, which is applied to a control host. The method includes:

[0006] Acquire multiple load voltage values of the atomizer when performing the atomization test;

[0007] Preprocessing the multiple load voltage values to obtain a target voltage value for atomization;

[0008] Determining the output power of atomization at that time according to the target voltage value;

[0009] A power curve of the atomizer is generated according to the output powers of the multiple atomizations.

[0010] Optionally, the control host is connected to an air pump, and the air pump is connected to an atomizer.

[0011] Before obtaining a plurality of load voltage values of the atomizer performing the current atomization test, the method further includes:

[0012] The air pump is controlled to perform the current suction work so that the atomizer performs the current atomization test work.

[0013] Optionally, the method further includes:

[0014] After the air pump stops pumping for a first preset time period, the air pump is controlled to start pumping again;

[0015] or,

[0016] When the air pump stops suctioning for a time and it is determined based on the output power of the atomization that the battery of the atomizer is exhausted, the air pump is controlled to end the suction work.

[0017] Optionally, the control host is connected to an oscilloscope, and the atomizer includes at least one heating element.

[0018] The step of obtaining multiple load voltage values of the atomizer during the atomization test includes:

[0019] After the heating element is preheated for a second preset time period, the load voltage value across at least one of the heating elements is collected multiple times by the oscilloscope.

[0020] Optionally, the pre-processing of the plurality of load voltage values to obtain a target voltage value for atomization at that time includes:

[0021] Noise filtering is performed on the multiple load voltage values, and / or averaging is performed on the multiple load voltage values to obtain the target voltage value.

[0022] Optionally, performing noise filtering on the multiple load voltage values and / or performing averaging processing on the multiple load voltage values to obtain the target voltage value includes:

[0023] When at least two load voltage values are within a preset voltage range, averaging the at least two load voltage values within the preset voltage range to obtain a target voltage value for the current atomization;

[0024] When only one load voltage value is within the preset voltage range, the load voltage value within the preset voltage range is determined as the target voltage value for the current atomization;

[0025] When the multiple load voltage values are not within the preset voltage range, the target voltage value obtained from the previous atomization is determined as the target voltage value for the current atomization.

[0026] Optionally, determining the output power of atomization according to the target voltage value includes:

[0027] The output power of the heating element for atomization is calculated according to the resistance value of at least one heating element in the atomizer and the target voltage value across the heating element.

[0028] The present application also provides an output power test device for an atomizer, which is applied to a control host, and the device comprises:

[0029] A load voltage value acquisition module, used to obtain multiple load voltage values of the atomizer during the atomization test;

[0030] A target voltage value obtaining module is used to pre-process the multiple load voltage values to obtain the target voltage value of the current atomization;

[0031] An output power determination module, configured to determine the output power of the current atomization according to the target voltage value;

[0032] The power curve generating module is used to generate the power curve of the atomizer according to the output power of multiple atomizations.

[0033] The present application also provides an atomizer output power testing system, comprising:

[0034] A control host, comprising: a processor, a memory, and a computer program stored in the memory and capable of running on the processor, wherein the computer program implements the method described above when executed by the processor;

[0035] An atomizer, wherein a heating element is provided inside the atomizer;

[0036] an oscilloscope, connected to the atomizer and the control host, respectively, for collecting the load voltage value of the heating element and outputting it to the control host;

[0037] The air pump is connected to the atomizer and the control host respectively, and is used to start or stop the suction of the atomizer according to the control signal output by the control host.

[0038] The present application also provides a computer-readable storage medium, on which a computer program is stored. When the computer program is executed by a processor, the method described above is implemented.

[0039] The embodiments of the present invention have the following advantages:

[0040] In an embodiment of the present invention, the control host obtains multiple load voltage values of the atomizer when performing the current atomization test, pre-processes the multiple load voltage values, obtains the target voltage value of the current atomization, determines the output power of the current atomization based on the target voltage value, and generates the power curve of the atomizer based on the output power of multiple atomizations. This realizes automatic control of the atomizer test by the control host and automatic recording and processing of the test data without manual operation, thereby improving the efficiency and accuracy of test data recording and the accuracy of the atomizer output power test results. BRIEF DESCRIPTION OF THE DRAWINGS

[0041] In order to more clearly illustrate the technical solution of the present invention, the following briefly introduces the drawings required for use in the description of the present invention. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0042] Figure 1 is a flowchart of the steps of a method for testing the output power of an atomizer provided by some embodiments of the present invention;

[0043] Figure 2 is a schematic structural diagram of an output power testing system for an atomizer provided by some embodiments of the present invention;

[0044] Figure 3 is a flowchart of the steps of another method for testing the output power of an atomizer provided by some embodiments of the present invention;

[0045] Figure 4 is a power curve diagram provided by some embodiments of the present invention;

[0046] Figure 5 is another power curve diagram provided by some embodiments of the present invention;

[0047] Figure 6 is another power curve diagram provided by some embodiments of the present invention;

[0048] Figure 7 is another power curve diagram provided by some embodiments of the present invention;

[0049] Figure 8 is a flowchart of the steps of another method for testing the output power of an atomizer provided by some embodiments of the present invention;

[0050] Figure 9 This is a structural block diagram of an output power testing device for an atomizer provided in some embodiments of the present invention. DETAILED DESCRIPTION

[0051] To make the above-mentioned objects, features, and advantages of the present invention more clearly understood, the present invention is further described in detail below with reference to the accompanying drawings and specific embodiments. It should be understood that the embodiments described are only a portion of the embodiments of the present invention, not all of them. All other embodiments derived by persons of ordinary skill in the art based on the embodiments of the present invention without inventive effort are also within the scope of protection of the present invention.

[0052] Reference Figure 1, shows a flowchart of the steps of a method for testing the output power of an atomizer provided by some embodiments of the present invention. The method can be applied to a control host, for example, the control host is a PC (Personal Computer), a host computer, a server, and other devices.

[0053] Among them, the nebulizer is a device that can atomize the atomizing medium into an aerosol.

[0054] Specifically, the following steps may be included:

[0055] Step 101: obtaining a plurality of load voltage values of the atomizer when performing the current atomization test.

[0056] In practical applications, multiple atomization test operations may be performed on the atomizer. For a single atomization test operation, load voltage collection may be performed multiple times to obtain multiple load voltage values.

[0057] The atomizer includes at least one heating element (e.g., a heating wire), such as one, two, three, four, or even more heating elements, and the load voltage value is the voltage value of the heating element in the atomizer. For example, if there are two heating elements in the atomizer, the load voltage value may include the voltage values of the two heating elements.

[0058] In some examples, such as Figure 2 The control host 21 is connected to the air pump 22, the air pump 22 is connected to the atomizer 23, and the control host 21 controls the atomization test by controlling the start and stop of the air pump 22 suction. The control host 21 is also connected to the oscilloscope 24, the oscilloscope 24 is connected to the atomizer 23, and the control host 21 collects the load voltage value of the atomizer through the oscilloscope 24.

[0059] In some embodiments of the present invention, before obtaining multiple load voltage values of the atomizer performing the current atomization test, the method further includes: controlling the air pump to perform the current suction operation, so that the atomizer performs the current atomization test.

[0060] When the atomizer is to be tested for atomization, the control host can output a control signal to the air pump, and the air pump can then perform the suction work of the atomizer according to the control signal.

[0061] In some embodiments of the present invention, the method further comprises:

[0062] After the air pump stops pumping for the current time and a first preset time interval has passed, the air pump is controlled to start the suction operation again; or, when the air pump stops pumping for the current time and it is determined that the battery power of the atomizer is exhausted based on the output power of the atomization for the current time, the air pump is controlled to end the suction operation.

[0063] In practical applications, the atomizer may be subjected to multiple atomization tests. Each atomization test requires controlling the air pump to perform one suction. A reference duration is set for each suction, such as 2 seconds.

[0064] During a puffing process, the heating element in the atomizer needs to be heated to achieve atomization of the atomizing medium, and a first preset time length (for example, the first preset time length is 15 seconds) needs to be left between two adjacent puffs to ensure stable operation of the heating element. After the puffing is stopped and the atomizer is allowed to rest for a preset time length, the air pump can be controlled to restart the puffing for the next atomization test.

[0065] As the atomization test progresses, the battery power of the atomizer will gradually be exhausted. After the puffing corresponding to a certain atomization test stops, if it is detected that the output power of the atomization at that time is a preset value (such as the preset value is 0), it can be determined that the battery power of the atomizer is exhausted, and the air pump is controlled to end the puffing work, and the subsequent atomization test will not continue.

[0066] In some embodiments of the present invention, obtaining multiple load voltage values of the atomizer performing the current atomization test includes: after the heating element is preheated for a second preset time, multiple times collecting the load voltage values across at least one heating element through an oscilloscope.

[0067] For example, the reference duration of one puff is 2 seconds, and the second preset duration of preheating is 1.4 seconds.

[0068] During a single atomization test, the atomizer will preheat the heating element. After the preheating is completed, the load voltage value across each heating element in the atomizer can be collected multiple times using an oscilloscope. There is a time interval between the multiple collections, such as a time interval of 0.1s.

[0069] The following Figure 3 The following is an example of the atomization test process:

[0070] Assume that the first preset time interval between two adjacent puffs is 15 seconds. In a single atomization test, the base time of a puff is 2 seconds, and the second preset time of preheating is 1.4 seconds.

[0071] After starting the puff, after waiting for the second preset preheating time of 1.4s, data can be collected for the first time (i.e., the load voltage value). When it reaches 1.5s after an interval of 0.1s, data can be collected for the second time, and when it reaches 1.6s after an interval of 0.1s, data can be collected for the third time.

[0072] When the reference time of 2 seconds is reached from the start of the puffing, the puffing can be stopped, and the puffing work can be restarted after waiting for the first preset time of 15 seconds, that is, a new atomization test work is started.

[0073] In addition, after each puff stops, multiple load voltage values can be pre-processed such as noise processing and averaging. The output power of the atomization at that time can be calculated based on the pre-processed data and archived to generate a power curve. When the output power of the atomization at that time is 0, it can be determined that the battery of the atomizer is exhausted, and the air pump can be controlled to end the puffing work, and the subsequent atomization test will not continue.

[0074] Step 102 : Pre-process the multiple load voltage values to obtain the target voltage value for the current atomization.

[0075] For a single atomization test, since multiple load voltage values are collected, the multiple collected load voltage values can be preprocessed to retain the accurate target voltage value.

[0076] In some embodiments of the present invention, preprocessing is performed on multiple load voltage values to obtain a target voltage value for atomization, including:

[0077] Noise filtering is performed on the multiple load voltage values, and / or averaging is performed on the multiple load voltage values to obtain a target voltage value.

[0078] In an embodiment of the present invention, by precisely controlling the heating time for each puff, an oscilloscope collects data multiple times during the heating process, filters out out-of-range noise values, and then averages the data to obtain a balanced value, thereby accurately calculating the output power. This improves the accuracy of the output power calculation.

[0079] In some embodiments of the present invention, performing noise filtering on a plurality of load voltage values and / or performing averaging processing on a plurality of load voltage values to obtain a target voltage value includes:

[0080] When at least two load voltage values are within a preset voltage range, averaging the at least two load voltage values within the preset voltage range to obtain a target voltage value for the current atomization;

[0081] When only one load voltage value is within the preset voltage range, the load voltage value within the preset voltage range is determined as the target voltage value for the current atomization;

[0082] When the multiple load voltage values are not within the preset voltage range, the target voltage value obtained from the previous atomization is determined as the target voltage value for the current atomization.

[0083] In practical applications, a preset voltage range of the load voltage can be set in advance, such as a preset voltage range between 0 and 4.3. Then, it can be determined whether the collected load voltage value is within the preset voltage range, and the load voltage value that is not within the preset voltage range can be excluded to achieve noise filtering.

[0084] First, if at least two load voltage values remain after noise filtering of the load voltage values collected multiple times, the target voltage value for the current atomization can be obtained by taking an average of the at least two load voltage values.

[0085] The following is an exemplary description (the atomizer has two load paths and three acquisitions are performed in a single test):

[0086] The first collection: the load voltage value of the first load: 2.128, the load voltage value of the second load: 3.2017; the second collection: the load voltage value of the first load: 2.1084, the load voltage value of the second load: 3.1824; the third collection: the load voltage value of the first load: 2.1057, the load voltage value of the second load: 3.2004.

[0087] The load voltage values collected three times are all between 0 and 4.3, that is, within the preset voltage range. The average of the load voltage values collected three times can be taken to obtain the target voltage values: the target voltage value of the first load: 2.108, the target voltage value of the second load: 3.200.

[0088] The following is an exemplary description (the atomizer has two load paths and three acquisitions are performed in a single test):

[0089] The first collection: the load voltage value of the first load: 9.91, the load voltage value of the second load: 3.2039; the second collection: the load voltage value of the first load: 2.1317, the load voltage value of the second load: 3.2002; the third collection: the load voltage value of the first load: 2.1512, the load voltage value of the second load: 3.2001.

[0090] Two of the three collected load voltage values are between 0 and 4.3, that is, within the preset voltage range. The average of the two collected load voltage values can be taken to obtain the target voltage values: the target voltage value of the first load is 2.141, and the target voltage value of the second load is 3.200.

[0091] Secondly, if only one load voltage value remains after noise filtering of the load voltage values collected multiple times, then this load voltage value is directly used as the target voltage value of the atomization test.

[0092] The following is an exemplary description (the atomizer has two load paths and three acquisitions are performed in a single test):

[0093] The first collection: the load voltage value of the first load: 2.1227, the load voltage value of the second load: 9.91; the second collection: the load voltage value of the first load: 2.0939, the load voltage value of the second load: 9.91; the third collection: the load voltage value of the first load: 2.0923, the load voltage value of the second load: 3.1991.

[0094] Among the three collected load voltage values, only one collected load voltage value is between 0 and 4.3, that is, within the preset voltage range. In this case, this load voltage value can be directly used as the target voltage value: the target voltage value of the first load is 2.0923, and the target voltage value of the second load is 3.1991.

[0095] Third, if the load voltage values collected multiple times are subjected to noise filtering and all load voltage values are filtered out, that is, all load voltage values are not within the preset voltage range, then the target voltage value obtained by the previous atomization can be obtained, that is, the target voltage value obtained by the atomization before the current atomization test, such as the target voltage value obtained by the last or the previous atomization, as the target voltage value of the current atomization.

[0096] In some examples, the atomizer has two characteristics: one is to output the same power every time, and the other is to output different powers alternately. In order to accommodate these two situations, the data of the second atomization before the current atomization can be selected, and its target voltage value can be used as the target voltage value of the current atomization.

[0097] The following is an exemplary description (the atomizer has two load paths and three acquisitions are performed in a single test):

[0098] The first atomization test:

[0099] The first collection: the load voltage value of the first load: 3.1076, the load voltage value of the second load: 2.184; the second collection: the load voltage value of the first load: 3.0957, the load voltage value of the second load: 2.1807; the third collection: the load voltage value of the first load: 3.1134, the load voltage value of the second load: 2.168.

[0100] It can be seen that the load voltage values collected three times are within the preset voltage range. After taking the average, the target voltage values obtained are: the target voltage value of the first load: 3.108, and the target voltage value of the second load: 2.181.

[0101] Second atomization test

[0102] The first collection: the load voltage value of the first load: 2.1021, the load voltage value of the second load: 3.2024; the second collection: the load voltage value of the first load: 2.1021, the load voltage value of the second load: 3.2024; the third collection: the load voltage value of the first load: 2.0976, the load voltage value of the second load: 3.2017.

[0103] It can be seen that the load voltage values collected three times are within the preset voltage range. After taking the average, the target voltage values obtained are: the target voltage value of the first load: 2.102, and the target voltage value of the second load: 3.202.

[0104] The third atomization test

[0105] The first collection: the load voltage value of the first load: 9.91, the load voltage value of the second load: 2.1816; the second collection: the load voltage value of the first load: 9.91, the load voltage value of the second load: 2.1816; the third collection: the load voltage value of the first load: 9.91, the load voltage value of the second load: 2.1951.

[0106] It can be seen that the load voltage values collected three times are not within the preset voltage range and the data is unavailable. In this case, the target voltage value of the first atomization test can be used as the target voltage value of the third atomization test: the target voltage value of the first load: 3.108, the target voltage value of the second load: 2.181.

[0107] Step 103: Determine the output power of the current atomization according to the target voltage value.

[0108] After the target voltage value is obtained, the output power of the atomization at that time can be determined according to the target voltage value.

[0109] In some embodiments of the present invention, determining the output power of atomization according to the target voltage value includes: calculating the output power of the heating element for atomization according to the resistance of at least one heating element in the atomizer and the target voltage value across the heating element.

[0110] In practical applications, the formula for calculating output power can be: Output Power = Target Voltage Squared / Heating Element Resistance. The calculated output power reflects the energy output of the atomizer during a single atomization process, and thus reflects the atomization effect of the atomizer.

[0111] For example, the atomizer has two heating elements, and the resistance values of the two heating elements are R1 and R2. The oscilloscope collects the effective value of the voltage across heating element 1 (i.e., the target voltage value) as V1, and the effective value of the voltage across heating element 2 as V2. Then the effective power of heating element 1 is: P1=V1*V1 / R1, the effective power of heating element 2 is: P2=V2*V2 / R2, and the total effective power output of the atomizer is: P=P1+P2.

[0112] Step 104: Generate a power curve of the atomizer according to the output powers of the multiple atomizations.

[0113] After obtaining the output power of multiple atomization processes, a power curve can be generated according to the output power of the multiple atomization processes. By drawing a curve change trend chart, the change trend record can be displayed more intuitively.

[0114] In some examples, atomizer problems can be discovered based on the power curve, and can be solved by reducing output power, increasing battery capacity, etc.

[0115] like Figures 4 to 7 The horizontal axis is the number of puffs (one atomization test corresponds to one puff, i.e. one puff), and the vertical axis is the output power.

[0116] Among them, Figure 4 , the output power is higher than the target output power, such as Figure 5 , the output power is lower than the target output power, such as Figure 6 , the output power and the target output power are cross-variable, such as Figure 7 , the output power is basically the same as the target output power, which is a better result.

[0117] In some embodiments of the present invention, the present invention further includes:

[0118] Before the current puff is started, the collected battery voltage value is obtained.

[0119] In practical applications, before the start of a puff, the battery voltage value can be collected by an oscilloscope and recorded for subsequent analysis. Figures 4 to 7 , the battery voltage value can be integrated into the power change curve to reflect the impact of the battery voltage value on the output power.

[0120] In an embodiment of the present invention, the control host obtains multiple load voltage values of the atomizer when performing the current atomization test, pre-processes the multiple load voltage values, obtains the target voltage value of the current atomization, determines the output power of the current atomization based on the target voltage value, and generates the power curve of the atomizer based on the output power of multiple atomizations. This realizes automatic control of the atomizer test by the control host and automatic recording and processing of the test data without manual operation, thereby improving the efficiency and accuracy of test data recording and the accuracy of the atomizer output power test results.

[0121] Reference Figure 8 , shows a flowchart of the steps of another method for testing the output power of an atomizer provided by some embodiments of the present invention, which is applied to a control host, the control host is connected to an air pump and an oscilloscope, the air pump and the oscilloscope are connected to the atomizer, and the atomizer includes at least one heating element,

[0122] Specifically, the following steps may be included:

[0123] Step 801: Control the air pump to perform the current suction operation, so that the atomizer performs the current atomization test operation.

[0124] When the atomizer is to be tested for atomization, the control host can output a control signal to the air pump, and the air pump can then perform the suction work of the atomizer according to the control signal.

[0125] Step 802: After the heating element is preheated for a preset time, the load voltage value across at least one heating element is collected multiple times using an oscilloscope.

[0126] For example, the reference duration of one puff is 2 seconds, and the second preset duration of preheating is 1.4 seconds.

[0127] During a single atomization test, the atomizer will preheat the heating element. After the preheating is completed, the load voltage value across each heating element in the atomizer can be collected multiple times using an oscilloscope. There is a time interval between the multiple collections, such as a time interval of 0.1s.

[0128] Step 803 , pre-processing the multiple load voltage values to obtain the target voltage value for the current atomization.

[0129] For a single atomization test, since multiple load voltage values are collected, the multiple collected load voltage values can be preprocessed to retain the accurate target voltage value.

[0130] Step 804 : Calculate the output power of the heating element for atomization according to the resistance of at least one heating element in the atomizer and the target voltage across the heating element.

[0131] In practical applications, the formula for calculating output power can be: Output Power = Target Voltage Squared / Heating Element Resistance. The calculated output power reflects the energy output of the atomizer during a single atomization process, and thus reflects the atomization effect of the atomizer.

[0132] For example, the atomizer has two heating elements, and the resistance values of the two heating elements are R1 and R2. The oscilloscope collects the effective value of the voltage across heating element 1 (i.e., the target voltage value) as V1, and the effective value of the voltage across heating element 2 as V2. Then the effective power of heating element 1 is: P1=V1*V1 / R1, the effective power of heating element 2 is: P2=V2*V2 / R2, and the total effective power output of the atomizer is: P=P1+P2.

[0133] Step 805: Generate a power curve of the atomizer according to the output powers of the multiple atomizations.

[0134] After obtaining the output power of multiple atomization processes, a power curve can be generated according to the output power of the multiple atomization processes. By drawing a curve change trend chart, the change trend record can be displayed more intuitively.

[0135] In some examples, atomizer problems can be discovered based on the power curve, and can be solved by reducing output power, increasing battery capacity, etc.

[0136] It should be noted that for the sake of simplicity, the method embodiments are described as a series of actions. However, those skilled in the art should be aware that the embodiments of the present invention are not limited by the order of the actions described, because according to the embodiments of the present invention, certain steps can be performed in other orders or simultaneously. Secondly, those skilled in the art should also be aware that the embodiments described in this specification are all preferred embodiments, and the actions involved are not necessarily required by the embodiments of the present invention.

[0137] Reference Figure 9 , shows a schematic structural diagram of an output power test device for an atomizer provided by some embodiments of the present invention, which is applied to a control host and may specifically include the following modules:

[0138] The load voltage value acquisition module 901 is used to obtain multiple load voltage values of the atomizer when performing the current atomization test;

[0139] The target voltage value obtaining module 902 is used to pre-process multiple load voltage values to obtain the target voltage value of the current atomization;

[0140] The output power determination module 903 is used to determine the output power of the current atomization according to the target voltage value;

[0141] The power curve generating module 904 is configured to generate a power curve of the atomizer according to the output powers of multiple atomizations.

[0142] In some embodiments of the present invention, the control host is connected to the air pump, the air pump is connected to the atomizer, and the device further includes:

[0143] The suction execution control module is used to control the air pump to perform the current suction work, so that the atomizer can perform the current atomization test work.

[0144] In some embodiments of the present invention, the apparatus further comprises:

[0145] The suction restart control module is used to control the air pump to restart the suction work after the air pump stops suctioning and a first preset time interval has passed;

[0146] The suction end control module is used to control the air pump to end the suction work when the air pump stops suctioning and it is determined that the battery power of the atomizer is exhausted based on the output power of the atomization.

[0147] In some embodiments of the present invention, a control host is connected to an oscilloscope, the atomizer includes at least one heating element, and multiple load voltage values of the atomizer performing the current atomization test are obtained, including: after the heating element is preheated for a second preset time, the load voltage values across the at least one heating element are collected multiple times through the oscilloscope.

[0148] In some embodiments of the present invention, preprocessing is performed on multiple load voltage values to obtain a target voltage value for atomization, including:

[0149] Noise filtering is performed on the multiple load voltage values, and / or averaging is performed on the multiple load voltage values to obtain a target voltage value.

[0150] In some embodiments of the present invention, performing noise filtering on a plurality of load voltage values and / or performing averaging processing on a plurality of load voltage values to obtain a target voltage value includes:

[0151] When at least two load voltage values are within a preset voltage range, averaging the at least two load voltage values within the preset voltage range to obtain a target voltage value for the current atomization;

[0152] When only one load voltage value is within the preset voltage range, the load voltage value within the preset voltage range is determined as the target voltage value for the current atomization;

[0153] When the multiple load voltage values are not within the preset voltage range, the target voltage value obtained from the previous atomization is determined as the target voltage value for the current atomization.

[0154] In some embodiments of the present invention, determining the output power of atomization according to the target voltage value includes: calculating the output power of the heating element for atomization according to the resistance of at least one heating element in the atomizer and the target voltage value across the heating element.

[0155] In an embodiment of the present invention, the control host obtains multiple load voltage values of the atomizer when performing the current atomization test, pre-processes the multiple load voltage values, obtains the target voltage value of the current atomization, determines the output power of the current atomization based on the target voltage value, and generates the power curve of the atomizer based on the output power of multiple atomizations. This realizes automatic control of the atomizer test by the control host and automatic recording and processing of the test data without manual operation, thereby improving the efficiency and accuracy of test data recording and the accuracy of the atomizer output power test results.

[0156] Reference Figure 2 , shows a schematic structural diagram of an output power testing system for an atomizer provided by some embodiments of the present invention, which may specifically include:

[0157] The control host 21 includes: a processor, a memory, and a computer program stored in the memory and capable of running on the processor, and the computer program implements the above method when executed by the processor;

[0158] Atomizer 23, which has a heating element disposed therein;

[0159] an oscilloscope 24 , connected to the atomizer 23 and the control host 21 , respectively, for collecting the load voltage value of the heating element and outputting it to the control host 21 ;

[0160] The air pump 22 is connected to the atomizer 23 and the control host 21 respectively, and is used to start or stop the suction of the atomizer 23 according to the control signal output by the control host.

[0161] In some embodiments of the present invention, a method implemented when a computer program is executed by a processor includes:

[0162] Obtain multiple load voltage values of the atomizer when performing the current atomization test;

[0163] Pre-process multiple load voltage values to obtain the target voltage value for the current atomization;

[0164] Determine the output power of atomization according to the target voltage value;

[0165] The power curve of the atomizer is generated according to the output power of multiple atomizations.

[0166] In some embodiments of the present invention, the control host is connected to the air pump, and the air pump is connected to the atomizer.

[0167] Before obtaining multiple load voltage values of the atomizer when performing the current atomization test, the method further includes:

[0168] The air pump is controlled to perform the suction work at that time, so that the atomizer performs the atomization test work at that time.

[0169] In some embodiments of the present invention, the method further comprises:

[0170] After the air pump stops pumping and a first preset time has passed, the air pump is controlled to start pumping again;

[0171] or,

[0172] When the air pump stops suctioning for the current time and it is determined based on the output power of the current atomization that the battery of the atomizer is exhausted, the air pump is controlled to end the suction work.

[0173] In some embodiments of the present invention, the control host is connected to the oscilloscope, the atomizer includes at least one heating element,

[0174] Obtain multiple load voltage values of the atomizer during the atomization test, including:

[0175] After the heating element is preheated for a second preset time period, the load voltage value across at least one heating element is collected multiple times using an oscilloscope.

[0176] In some embodiments of the present invention, preprocessing is performed on multiple load voltage values to obtain a target voltage value for atomization, including:

[0177] Noise filtering is performed on the multiple load voltage values, and / or averaging is performed on the multiple load voltage values to obtain a target voltage value.

[0178] In some embodiments of the present invention, performing noise filtering on a plurality of load voltage values and / or performing averaging processing on a plurality of load voltage values to obtain a target voltage value includes:

[0179] When at least two load voltage values are within a preset voltage range, averaging the at least two load voltage values within the preset voltage range to obtain a target voltage value for the current atomization;

[0180] When only one load voltage value is within the preset voltage range, the load voltage value within the preset voltage range is determined as the target voltage value for the current atomization;

[0181] When the multiple load voltage values are not within the preset voltage range, the target voltage value obtained from the previous atomization is determined as the target voltage value for the current atomization.

[0182] In some embodiments of the present invention, determining the output power of atomization according to the target voltage value includes:

[0183] The output power of the heating element during atomization is calculated based on the resistance of at least one heating element in the atomizer and the target voltage value across the heating element.

[0184] In an embodiment of the present invention, the control host obtains multiple load voltage values of the atomizer when performing the current atomization test, pre-processes the multiple load voltage values, obtains the target voltage value of the current atomization, determines the output power of the current atomization based on the target voltage value, and generates the power curve of the atomizer based on the output power of multiple atomizations. This realizes automatic control of the atomizer test by the control host and automatic recording and processing of the test data without manual operation, thereby improving the efficiency and accuracy of test data recording and the accuracy of the atomizer output power test results.

[0185] Some embodiments of the present invention further provide an electronic device, comprising a processor, a memory, and a computer program stored in the memory and capable of running on the processor, wherein the computer program implements the above method when executed by the processor.

[0186] Some embodiments of the present invention further provide a computer-readable storage medium, on which a computer program is stored. When the computer program is executed by a processor, the above method is implemented.

[0187] Some embodiments of the present invention further provide a computer program product, including a computer program, which implements the above method when executed by a processor.

[0188] As for the device embodiment, since it is basically similar to the method embodiment, the description is relatively simple, and the relevant parts can be referred to the partial description of the method embodiment.

[0189] It should be noted that the user information (including but not limited to user device information, user personal information, etc.) and data (including but not limited to data used for analysis, stored data, displayed data, etc.) involved in this application are all information and data authorized by the user or fully authorized by all parties, and the collection, use and processing of relevant data must comply with the relevant laws, regulations and standards of relevant countries and regions, and provide corresponding operation entrances for users to choose to authorize or refuse.

[0190] The various embodiments in this specification are described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same or similar parts between the various embodiments can be referenced to each other.

[0191] Those skilled in the art will appreciate that embodiments of the present invention may be provided as methods, apparatus, or computer program products. Thus, embodiments of the present invention may take the form of a complete hardware embodiment, a complete software embodiment, or an embodiment combining software and hardware. Furthermore, embodiments of the present invention may take the form of a computer program product implemented on one or more computer-usable storage media (including but not limited to magnetic disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.

[0192] The embodiments of the present invention are described with reference to the flowcharts and / or block diagrams of the methods, terminal devices (systems), and computer program products according to the embodiments of the present invention. It should be understood that each process and / or block in the flowchart and / or block diagram, as well as the combination of the processes and / or blocks in the flowchart and / or block diagram, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, a special-purpose computer, an embedded processor, or other programmable data processing terminal device to produce a machine, so that the instructions executed by the processor of the computer or other programmable data processing terminal device generate instructions for implementing the process in the flowchart and / or block diagram. Figure 1 a process or multiple processes and / or boxes Figure 1 A device that provides the functions specified in a block or multiple blocks.

[0193] These computer program instructions may also be stored in a computer readable memory that can direct a computer or other programmable data processing terminal device to operate in a specific manner, so that the instructions stored in the computer readable memory produce a manufactured product including an instruction device, which implements the process Figure 1 a process or multiple processes and / or boxes Figure 1 The function specified in one or more boxes.

[0194] These computer program instructions can also be loaded onto a computer or other programmable data processing terminal device so that a series of operating steps are executed on the computer or other programmable terminal device to produce a computer-implemented process, thereby providing instructions for executing on the computer or other programmable terminal device to implement the process. Figure 1 a process or multiple processes and / or boxes Figure 1 A step that specifies a function in one or more boxes.

[0195] Although the preferred embodiments of the present invention have been described, those skilled in the art may make additional changes and modifications to these embodiments once they become aware of the basic creative concepts. Therefore, the appended claims are intended to be interpreted as including the preferred embodiments and all changes and modifications that fall within the scope of the embodiments of the present invention.

[0196] Finally, it should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "includes," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or terminal device that includes a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article, or terminal device. In the absence of further limitations, an element defined by the phrase "comprises a ..." does not exclude the presence of additional identical elements in the process, method, article, or terminal device that includes the above elements.

[0197] The above describes in detail the provided atomizer output power test method, device, system, and medium. Specific examples are used herein to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is intended only to facilitate understanding of the method and core concept of the present invention. Furthermore, those skilled in the art will appreciate that variations in the specific implementation methods and scope of application are possible based on the concepts of the present invention. Therefore, the contents of this specification should not be construed as limiting the present invention.

Claims

1. A method for testing the output power of an atomizer, characterized in that: Applied to a control host, the method includes: Acquire multiple load voltage values of the atomizer when performing the atomization test; Preprocessing the multiple load voltage values to obtain a target voltage value for atomization; Determining the output power of atomization at that time according to the target voltage value; A power curve of the atomizer is generated according to the output powers of the multiple atomizations.

2. The method according to claim 1, characterized in that The control host is connected to the air pump, and the air pump is connected to the atomizer. Before obtaining a plurality of load voltage values of the atomizer performing the current atomization test, the method further includes: The air pump is controlled to perform the current suction work so that the atomizer performs the current atomization test work.

3. The method according to claim 2, characterized in that The method further comprises: After the air pump stops pumping for a first preset time period, the air pump is controlled to start pumping again; or, When the air pump stops suctioning for a time and it is determined based on the output power of the atomization that the battery of the atomizer is exhausted, the air pump is controlled to end the suction work.

4. The method according to claim 1, wherein The control host is connected to the oscilloscope, and the atomizer includes at least one heating element. The step of obtaining multiple load voltage values of the atomizer during the atomization test includes: After the heating element is preheated for a second preset time period, the load voltage value across at least one of the heating elements is collected multiple times by the oscilloscope.

5. The method according to any one of claims 1 to 4, characterized in that The pre-processing of the plurality of load voltage values to obtain the target voltage value for atomization comprises: Noise filtering is performed on the multiple load voltage values, and / or averaging is performed on the multiple load voltage values to obtain the target voltage value.

6. The method according to claim 5, characterized in that The performing noise filtering on the plurality of load voltage values and / or performing averaging processing on the plurality of load voltage values to obtain the target voltage value includes: When at least two load voltage values are within a preset voltage range, averaging the at least two load voltage values within the preset voltage range to obtain a target voltage value for the current atomization; When only one load voltage value is within the preset voltage range, the load voltage value within the preset voltage range is determined as the target voltage value for the current atomization; When the multiple load voltage values are not within the preset voltage range, the target voltage value obtained from the previous atomization is determined as the target voltage value for the current atomization.

7. The method according to any one of claims 1 to 4, characterized in that The step of determining the output power of atomization according to the target voltage value includes: The output power of the heating element for atomization is calculated according to the resistance value of at least one heating element in the atomizer and the target voltage value across the heating element.

8. An output power test device for an atomizer, characterized in that: Applied to a control host, the device comprises: A load voltage value acquisition module, used to obtain multiple load voltage values of the atomizer during the atomization test; A target voltage value obtaining module is used to pre-process the multiple load voltage values to obtain the target voltage value of the current atomization; An output power determination module, configured to determine the output power of the current atomization according to the target voltage value; The power curve generating module is used to generate the power curve of the atomizer according to the output power of multiple atomizations.

9. An output power test system for an atomizer, characterized in that: include: A control host, comprising: a processor, a memory, and a computer program stored in the memory and capable of running on the processor, wherein the computer program implements the method according to any one of claims 1 to 7 when executed by the processor; An atomizer, wherein a heating element is provided inside the atomizer; an oscilloscope, connected to the atomizer and the control host, respectively, for collecting the load voltage value of the heating element and outputting it to the control host; The air pump is connected to the atomizer and the control host respectively, and is used to start or stop the suction of the atomizer according to the control signal output by the control host.

10. A computer-readable storage medium, characterized in that The computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the method according to any one of claims 1 to 7 is implemented.