Calibration test system and calibration test equipment
By integrating the calibration test system, efficient calibration testing of multiple aerosol generating devices and electronic atomization devices is achieved, solving the problem of low efficiency of traditional calibration tools and ensuring the accuracy of calibration results and visual management of data.
Patent Information
- Application Number
- CN202510637330.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-16
- Publication Date
- 2025-09-16
AI Technical Summary
In the existing technology, traditional calibration tools are inefficient in calibrating and testing aerosol generating equipment and electronic atomization equipment, and are unable to effectively display and analyze calibration information, making it difficult to improve product quality and troubleshoot problems.
A calibration test system is adopted, which combines the calibration test equipment with the control equipment. It can calibrate and test multiple products to be calibrated and tested at the same time, and display the calibration results on the user interaction interface to realize operations such as firmware upgrade, parameter configuration and calibration curve burning.
It significantly improves the efficiency and accuracy of calibration testing, reduces interference between multiple products, facilitates data management and analysis, and enhances users' understanding of product status and decision-making capabilities.
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Figure CN120652946A_ABST
Abstract
Description
Technical Field
[0001] The present application belongs to the field of calibration and testing technology, and more specifically, relates to a calibration and testing system and calibration and testing equipment. Background Art
[0002] In the current calibration and testing field of aerosol generating equipment, electronic atomization equipment, etc., traditional calibration tools are generally used to perform single-channel calibration on a single product, resulting in low calibration efficiency and huge time consumption when calibrating and testing multiple test products.
[0003] In addition, traditional calibration systems have limited capabilities in data feedback and data analysis, and are unable to display and conduct in-depth analysis of calibration information, which is not conducive to improving product quality and troubleshooting. Summary of the Invention
[0004] The purpose of the embodiments of the present application is to provide a calibration test system and calibration test equipment, aiming to solve the technical problem in the prior art of using traditional calibration tools to calibrate products one by one in a single-channel manner, resulting in low calibration test efficiency and huge time consumption.
[0005] To achieve the above object, according to a first aspect of the present application, a calibration test system is provided, the calibration test system comprising: a calibration test device, a control device, and a plurality of test products to be calibrated;
[0006] A calibration test device is connected to the control device and to a plurality of products to be calibrated and tested, and is configured to: in response to receiving a calibration instruction issued by the control device, simultaneously perform calibration tests on the plurality of products to be calibrated and test, and obtain a calibration result corresponding to each product to be calibrated and test;
[0007] The control device is configured to execute: upon receiving the calibration result corresponding to each test product to be calibrated uploaded by the calibration test device, display the calibration result corresponding to each test product to be calibrated in the user interaction interface.
[0008] In a possible implementation, the control device is further configured to execute: in response to the start-up of the calibration test device, triggering initialization processing of the calibration test device;
[0009] The calibration test device is also configured to perform: after completing the initialization processing, detect whether the connection status between the calibration test device and each product to be calibrated and tested meets the connection requirements, and upload connection success information to the control device if the connection status between the calibration test device and each product to be calibrated and tested meets the connection requirements.
[0010] In one possible implementation, the control device is further configured to: upon receiving a connection success message, issue an upgrade instruction to the calibration and testing device; and during a firmware upgrade of each product to be calibrated and tested, display upgrade time information corresponding to each product to be calibrated and tested on a user interface;
[0011] The calibration test equipment is also configured to execute: in response to receiving an upgrade instruction, perform firmware upgrades on multiple products to be calibrated and tested respectively; when each product to be calibrated and tested starts the firmware upgrade, trigger each product to be calibrated and tested to give a corresponding prompt; and when multiple products to be calibrated and tested have completed the firmware upgrade, upload the upgrade completion information to the control device.
[0012] In one possible implementation, the control device is further configured to: upon receiving the upgrade completion information, determine the calibration parameters corresponding to each product to be calibrated and tested based on the product information of each product to be calibrated and tested, and send the calibration parameters corresponding to each product to be calibrated and tested to the calibration and testing device;
[0013] The calibration test equipment is also configured to perform: upon receiving the calibration parameters corresponding to each product to be calibrated, respectively configure the corresponding calibration parameters for each product to be calibrated, and upon completing the calibration parameter configuration for each product to be calibrated, upload first configuration completion information to the control device.
[0014] In one possible implementation, the control device is further configured to: upon receiving the first configuration completion information, determine a standard temperature curve corresponding to each product to be calibrated and tested based on the product information of each product to be calibrated and tested, and send the standard temperature curve corresponding to each product to be calibrated and tested to the calibration and testing device;
[0015] The calibration test equipment is also configured to perform: upon receiving the standard temperature curve corresponding to each product to be calibrated and tested, burn the corresponding standard temperature curve for each product to be calibrated and tested, and upon completing the temperature curve burning for each product to be calibrated and tested, upload the burning completion information to the control device.
[0016] In one possible implementation, the control device is further configured to: upon receiving the burning completion information, display an insertion prompt on the user interface, wherein the insertion prompt is used to prompt the user to insert the aerosol generating medium for each test product to be calibrated;
[0017] The control device is further configured to: determine the infrared parameters corresponding to each product to be calibrated and tested according to the product information of each product to be calibrated and tested, and send the infrared parameters corresponding to each product to be calibrated and tested to the calibration and testing device;
[0018] The calibration test equipment is also configured to perform: when it is identified that each test product to be calibrated is respectively inserted into the aerosol generating medium and the infrared parameters corresponding to each test product to be calibrated are received, respectively configure the corresponding infrared parameters for each test product to be calibrated; and when the infrared parameter configuration is completed for each test product to be calibrated, upload the second configuration completion information to the control device.
[0019] In one possible implementation, the control device is further configured to: upon receiving the second configuration completion information, display an unplugging prompt message on the user interface, wherein the unplugging prompt message is used to prompt the user to unplug the aerosol generating medium from each test product to be calibrated;
[0020] The control device is further configured to: determine the power parameter corresponding to each product to be calibrated and tested according to the product information of each product to be calibrated and tested, and send the power parameter corresponding to each product to be calibrated and tested to the calibration and testing device;
[0021] The calibration test device is further configured to: upon receiving the power parameters corresponding to each test product to be calibrated, perform power parameter calibration for each test product to be calibrated according to the power parameters corresponding to each test product to be calibrated; and upon completing the power parameter calibration for each test product to be calibrated, upload the calibration result corresponding to each test product to be calibrated to the control device;
[0022] The control device is also configured to execute: upon receiving the calibration result corresponding to each test product to be calibrated, determine the calibration curve corresponding to each test product to be calibrated according to the calibration result corresponding to each test product to be calibrated, and display the calibration curve corresponding to each test product to be calibrated on the user interaction interface.
[0023] In a possible implementation, the calibration test equipment is provided with a plurality of test channels, and each test channel is provided with a corresponding connection interface, and each connection interface is used for detachably plugging a test product to be calibrated;
[0024] The calibration test equipment is further configured to execute: in response to the calibration instruction, simultaneously perform calibration tests on a product to be calibrated connected to each of the multiple test channels, and obtain calibration results corresponding to each product to be calibrated.
[0025] In a possible implementation, the calibration test equipment is provided with a plurality of test calibration modules, each test calibration module is provided with a plurality of connection interfaces, and each connection interface is used for detachably plugging a test product to be calibrated;
[0026] The calibration test equipment is further configured to execute: in response to the calibration instruction, simultaneously perform calibration tests on multiple test products to be calibrated connected to the multiple test calibration modules, and obtain calibration results corresponding to each test product to be calibrated.
[0027] In one possible implementation, the test product to be calibrated includes at least one of an aerosol generating device and an electronic atomization device.
[0028] According to a second aspect of the present application, a calibration test device is provided. The calibration test device is connected to a control device and a plurality of products to be calibrated and tested, and is configured to perform:
[0029] In response to receiving a calibration instruction issued by the control device, calibration tests are performed on multiple products to be calibrated and tested at the same time, and calibration results corresponding to each product to be calibrated and tested are obtained respectively;
[0030] The calibration result corresponding to each test product to be calibrated is uploaded to the control device, wherein the control device is used to display the calibration result corresponding to each test product to be calibrated in a user interaction interface.
[0031] In one possible implementation, the calibration test equipment is further configured to perform:
[0032] After the initialization process is completed, the connection status between the calibration test equipment and each product to be calibrated and tested meets the connection requirements;
[0033] When the connection status between the calibration test device and each product to be calibrated and tested meets the connection requirements, the connection success information is uploaded to the control device, wherein the control device is used to send an upgrade instruction to the calibration test device when receiving the connection success information.
[0034] In one possible implementation, the calibration test equipment is further configured to perform:
[0035] In response to receiving the upgrade instruction, performing firmware upgrade on the plurality of products to be calibrated and tested respectively;
[0036] When each product to be calibrated and tested starts to upgrade its firmware, each product to be calibrated and tested will be prompted accordingly, and
[0037] When the firmware upgrade of multiple products to be calibrated and tested is completed, the upgrade completion information is uploaded to the control device, wherein the control device is used to determine the calibration parameters corresponding to each product to be calibrated and tested according to the product information of each product to be calibrated and tested after receiving the upgrade completion information.
[0038] In one possible implementation, the calibration test equipment is further configured to perform:
[0039] Upon receiving the calibration parameters corresponding to each test product to be calibrated, respectively configure the corresponding calibration parameters for each test product to be calibrated, and
[0040] When the calibration parameter configuration of each product to be calibrated is completed, first configuration completion information is uploaded to the control device, wherein the control device is also used to determine the standard temperature curve corresponding to each product to be calibrated based on the product information of each product to be calibrated upon receiving the first configuration completion information.
[0041] In one possible implementation, the calibration test equipment is further configured to perform:
[0042] Upon receiving the standard temperature curve corresponding to each product to be calibrated, the corresponding standard temperature curve is burned for each product to be calibrated, and
[0043] When the temperature curve burning is completed for each test product to be calibrated, the burning completion information is uploaded to the control device, wherein the control device is further used to display an insertion prompt information on the user interaction interface when the burning completion information is received, and determine the infrared parameters corresponding to each test product to be calibrated based on the product information of each test product to be calibrated. The insertion prompt information is used to prompt the user to insert the aerosol generating medium for each test product to be calibrated.
[0044] In one possible implementation, the calibration test equipment is further configured to perform:
[0045] Upon identifying that each test product to be calibrated is respectively inserted into the aerosol generating medium and receiving infrared parameters corresponding to each test product to be calibrated, configuring corresponding infrared parameters for each test product to be calibrated; and
[0046] When the infrared parameter configuration of each test product to be calibrated is completed, the second configuration completion information is uploaded to the control device, wherein the control device is also used to display an unplug prompt message on the user interaction interface when the second configuration completion information is received, and determine the power parameter corresponding to each test product to be calibrated based on the product information of each test product to be calibrated, and the unplug prompt message is used to prompt the user to unplug the aerosol generating medium from each test product to be calibrated.
[0047] In one possible implementation, the calibration test equipment is further configured to perform:
[0048] Upon receiving the power parameter corresponding to each test product to be calibrated, calibrate the power parameter for each test product to be calibrated according to the power parameter corresponding to each test product to be calibrated; and
[0049] When the power parameter calibration of each test product to be calibrated is completed, the calibration result corresponding to each test product to be calibrated is uploaded to the control device.
[0050] In a possible implementation, the calibration test equipment is provided with a plurality of test channels, and each test channel is provided with a corresponding connection interface, and each connection interface is used for detachably plugging a test product to be calibrated;
[0051] The calibration test equipment is further configured to execute: in response to the calibration instruction, simultaneously perform calibration tests on a product to be calibrated connected to each of the multiple test channels, and obtain calibration results corresponding to each product to be calibrated.
[0052] In a possible implementation, the calibration test equipment is provided with a plurality of test calibration modules, each test calibration module is provided with a plurality of connection interfaces, and each connection interface is used for detachably plugging a test product to be calibrated;
[0053] The calibration test equipment is further configured to execute: in response to the calibration instruction, simultaneously perform calibration tests on multiple test products to be calibrated connected to the multiple test calibration modules, and obtain calibration results corresponding to each test product to be calibrated.
[0054] The second aspect and any implementation of the second aspect correspond to the first aspect and any implementation of the first aspect, respectively. The technical effects corresponding to the second aspect and any implementation of the second aspect can be referred to the technical effects corresponding to the first aspect and any implementation of the first aspect, and will not be repeated here.
[0055] Compared with the prior art, the embodiments of the present application have the following beneficial effects:
[0056] The calibration test system provided in this application example uses a single calibration test device to simultaneously perform calibration tests on multiple products to be calibrated. Compared to the traditional method of calibrating each product individually, this shortens the overall calibration test time and significantly improves production efficiency. This advantage is particularly evident in large-scale production scenarios. Furthermore, the calibration test device performs independent calibration tests on each product to be calibrated and obtains its own calibration results. This independent calibration method avoids mutual interference between multiple products to be calibrated and ensures the accuracy of each calibration result.
[0057] Furthermore, the control device centrally manages the calibration results of each product under test, facilitating data storage, query, display, and analysis. The user interface intuitively displays the calibration results for each product under test, allowing users to quickly understand the product's calibration status and make timely decisions based on the results. BRIEF DESCRIPTION OF THE DRAWINGS
[0058] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the embodiments or descriptions of the prior art. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0059] Figure 1 is a schematic structural diagram of a calibration test system provided in an embodiment of the present application;
[0060] Figure 2 This is a flow chart of an optional calibration test method provided in an embodiment of the present application;
[0061] Figure 3 This is a flow chart of an optional calibration test method provided in an embodiment of the present application;
[0062] Figure 4 This is a flow chart of an optional calibration test method provided in an embodiment of the present application;
[0063] Figure 5 This is a flow chart of an optional calibration test method provided in an embodiment of the present application;
[0064] Figure 6a is a schematic structural diagram of an optional calibration test device provided in another embodiment of the present application;
[0065] Figure 6b is a schematic structural diagram of an optional calibration test device provided in an embodiment of the present application;
[0066] Figure 7It is a structural diagram of a control device provided in an embodiment of the present application. DETAILED DESCRIPTION
[0067] In the following description, specific details such as specific system structures and techniques are provided for purposes of illustration rather than limitation to facilitate a thorough understanding of the embodiments of the present application. However, it will be apparent to those skilled in the art that the present application may be implemented in other embodiments without these specific details. In other cases, detailed descriptions of well-known systems, devices, circuits, and methods are omitted to avoid obscuring the description of the present application with unnecessary detail.
[0068] It should be understood that when used in the present specification and the appended claims, the term "comprising" indicates the presence of described features, integers, steps, operations, elements and / or components, but does not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components and / or collections thereof.
[0069] It should also be understood that in the description of this application, unless otherwise specified, the “ / ” used in the specification of this application and the appended claims indicates that the objects associated with each other are in an “or” relationship. For example, A / B can represent A or B. The “and / or” in this application is merely a description of the association relationship of the associated objects, indicating that three relationships can exist. For example, A and / or B can represent: A exists alone, A and B exist at the same time, and B exists alone, where A and B can be singular or plural. In addition, in the description of this application, unless otherwise specified, “multiple” means two or more than two. “At least one of the following items” or similar expressions refers to any combination of these items, including any combination of single or plural items. For example, at least one of a, b, or c can represent: a, b, c, ab, ac, bc, or abc, where a, b, c can be single or plural.
[0070] In addition, to facilitate a clear description of the technical solutions of the embodiments of the present application, in the embodiments of the present application, words such as "first" and "second" are used to distinguish between identical or similar items with substantially the same functions and effects. Those skilled in the art will understand that words such as "first" and "second" do not limit the quantity or execution order, but are only used to distinguish the description. In addition, words such as "first" and "second" do not necessarily define differences, nor should they be understood to indicate or imply relative importance.
[0071] As used in this specification and the appended claims, the term "if" can be interpreted as "when" or "upon" or "in response to determining" or "in response to detecting," depending on the context. Similarly, the phrase "if it is determined" or "if [described condition or event] is detected" can be interpreted as meaning "upon determination" or "in response to determining" or "upon detection of [described condition or event]" or "in response to detecting [described condition or event]," depending on the context.
[0072] References to "one embodiment" or "some embodiments" in this specification mean that one or more embodiments of the present application include a particular feature, structure, or characteristic described in conjunction with that embodiment. Thus, phrases such as "in one embodiment," "in some optional embodiments," "in some other optional embodiments," and "in some other optional embodiments" appearing in various places in this specification do not necessarily refer to the same embodiment, but rather mean "one or more but not all embodiments," unless otherwise specifically emphasized. The terms "including," "comprising," "having," and variations thereof all mean "including but not limited to," unless otherwise specifically emphasized.
[0073] This application example provides an example of a calibration test system, please refer to Figure 1 As shown, Figure 1 The schematic structural diagram of a calibration test system provided by the present application is shown. The calibration test system includes: a calibration test device 101, a control device 102 and a plurality of products to be calibrated and tested 103a, 103b, ..., 103n; wherein:
[0074] Calibration test device 101 is connected to a control device 102 and to multiple products to be calibrated and tested 103a, 103b, ..., 103n. Calibration test device 101 is configured to, in response to receiving a calibration instruction from the control device, simultaneously perform calibration tests on the multiple products to be calibrated and obtain a calibration result corresponding to each product to be calibrated.
[0075] The control device 102 is configured to: upon receiving the calibration result corresponding to each product to be calibrated and tested uploaded by the calibration and testing device, display the calibration result corresponding to each product to be calibrated and tested in a user interaction interface.
[0076] In some optional embodiments, the product to be calibrated and tested can be connected to the calibration and testing equipment using a standardized interface to ensure reliable data transmission and communication between different types of products and the calibration and testing equipment. For example, the standardized interface can be a USB interface or an Ethernet interface, allowing the calibration and testing equipment to quickly identify and connect to the product to be calibrated and tested, thereby improving the compatibility and scalability of the test.
[0077] Accordingly, the calibration and testing equipment can be equipped with multiple connection interfaces to simultaneously connect multiple products to be calibrated and tested. For example, a serial port, USB interface, or other dedicated data interface can be used. Furthermore, the calibration and testing equipment should have sufficient processing power and storage capacity to support simultaneous calibration and testing of multiple products to be calibrated and tested.
[0078] In some optional embodiments, the calibration test device may be provided with multiple independent test channels, each test channel works independently and can be connected to a product to be calibrated, and multiple test channels perform calibration tests on their connected products to be calibrated in parallel. For example, each test channel is equipped with a data acquisition module and a signal processing module. In this way, when the calibration test device receives a calibration instruction (the instruction may include information such as calibration type, calibration curve, calibration parameters, etc.), each test channel can simultaneously perform calibration operations such as data acquisition and parameter adjustment on the corresponding product to be calibrated. For example, when a calibration test device is used to perform calibration tests on multiple electronic devices (such as electronic atomization devices, aerosol generating devices, etc.), each electronic device is calibrated simultaneously through the corresponding test channel, saving time cost and improving calibration efficiency.
[0079] In some optional embodiments, multiple test channels within the calibration test equipment simultaneously perform calibration tests on multiple products to be calibrated, enabling independent control and data collection for each product to be calibrated, ensuring that the calibration processes of each product do not interfere with each other. For example, through multi-threading or multi-processing technology, an independent test channel is assigned to each product to be calibrated, enabling parallel calibration testing of multiple products to be calibrated.
[0080] Furthermore, it's important to note that calibration testing equipment can come pre-installed with multiple calibration algorithms and parameter libraries, among other things. When performing calibration tests on different types of products, the appropriate calibration algorithm and parameters can be automatically selected based on the type, specifications, and other information of each product. For example, when a test channel is connected to aerosol-generating device A for calibration testing, the calibration testing equipment can select an appropriate calibration algorithm based on the model and performance indicators of aerosol-generating device A, and select matching calibration parameters from the parameter library. Calibration testing of aerosol-generating device A can then be performed using the corresponding calibration algorithm and parameters, ensuring the accuracy and reliability of the calibration test.
[0081] In some optional embodiments, the control device can be a computer, a host computer, an industrial control machine, or other electronic device with strong computing power and display functions. The control device can establish a communication connection with the calibration test equipment through a network (Ethernet, Wi-Fi, etc.) or a serial port.
[0082] In some optional embodiments, after receiving the calibration results corresponding to each product to be calibrated and tested, uploaded by the calibration and testing device, the control device can clearly display the calibration results for each product to be calibrated to the user in a form such as a chart or data list. For example, for temperature calibration results, a line chart can be used to display the calibration data of the product at different temperature points. The user can then conveniently view detailed information such as the calibration curve and calibration parameters for each product through an interactive interface. Furthermore, the user can also perform operations such as setting calibration parameters and starting or stopping calibration tests through the user interface.
[0083] The calibration test system provided in this application example uses a single calibration test device to simultaneously perform calibration tests on multiple products to be calibrated. Compared to the traditional method of calibrating each product individually, this shortens the overall calibration test time and significantly improves production efficiency. This advantage is particularly evident in large-scale production scenarios. Furthermore, the calibration test device performs independent calibration tests on each product to be calibrated and obtains its own calibration results. This independent calibration method avoids mutual interference between multiple products to be calibrated and ensures the accuracy of each calibration result.
[0084] Furthermore, the control device centrally manages the calibration results of each product under test, facilitating data storage, query, display, and analysis. The user interface intuitively displays the calibration results for each product under test, allowing users to quickly understand the product's calibration status and make timely decisions based on the results.
[0085] In one possible implementation, Figure 2 This is a flow chart of an optional calibration test method provided in an embodiment of the present application, such as Figure 2As shown, the control device 102 is further configured to perform the following method steps:
[0086] S201 , in response to the start-up of the calibration test device, triggering initialization processing of the calibration test device.
[0087] Still Figure 2 As shown, the calibration test device 101 is further configured to perform:
[0088] S202, when the initialization process is completed, the calibration test equipment and each product to be calibrated and tested are detected ( Figure 2 Taking the products to be calibrated and tested as an example (including, but not limited to, 103a, 103b, ..., 103n), whether the connection status meets the connection requirements.
[0089] S203 : When the connection status between the calibration test device and each product to be calibrated and tested meets the connection requirements, upload connection success information to the control device.
[0090] In some optional embodiments, the calibration test equipment is provided with a hardware circuit for detecting the connection status. For example, there is a corresponding connection detection module for different types of interfaces (such as serial ports, USB interfaces, etc.), which can sense whether a stable and reliable connection is established between the product to be calibrated and tested.
[0091] In some optional embodiments, the control device has a hardware interface for communicating with the calibration test device to send initialization instructions and receive connection status information.
[0092] In some optional embodiments, the control device may continuously monitor the startup status of the calibration test device. For example, the control device may poll the calibration test device for a startup signal, or the calibration test device may proactively send a startup signal. If the control device detects that the calibration test device has successfully started, it immediately triggers an initialization process for the calibration test device. For example, according to a preset initialization process, a series of initialization instructions are sent to the calibration test device, including parameters and configuration information required for initializing the calibration test device, such as setting the communication baud rate and initializing internal registers.
[0093] In some optional embodiments, after executing the aforementioned initialization process, the control device waits to receive connection status information uploaded by the calibration test device. Upon receiving the connection status information, the control device analyzes and determines whether the connection between the calibration test device and each product to be calibrated and tested is successful.
[0094] In some optional embodiments, for the calibration test equipment, after receiving the initialization instruction issued by the control device, it initializes itself according to the instruction content of the initialization instruction. For example, the initialization process may, but is not limited to, involve the initialization of hardware resources, such as resetting sensors, initializing communication interfaces, etc.; it may also involve the initialization of software parameters, such as loading default calibration parameters, etc.
[0095] After completing initialization, the calibration test equipment checks the connection status with each product under test. Optionally, different detection methods can be used for different interface types. For example, for a serial port connection, a test signal can be sent and a response signal received to determine whether the connection is normal. For a USB port connection, the enumeration status of the product under test can be checked.
[0096] Afterwards, when the connection status between the calibration test device and each product to be calibrated and tested meets the connection requirements, a connection success message is uploaded to the control device. Optionally, the connection success message may include detailed information such as the identification of each product to be calibrated and tested and the connection status.
[0097] Through the above-mentioned embodiment of the present application, the control device automatically triggers the initialization processing of the calibration test device and receives the connection status information uploaded by the calibration test device, thereby realizing the automation of system startup and connection detection. Specifically, the control device performs initialization processing on the calibration test device, which can ensure that the calibration test device is in the correct state before starting work, avoids calibration errors caused by abnormal hardware or software parameters, and reduces failures caused by improper initialization. In addition, before performing the calibration test, the connection status between the calibration test device and each product to be calibrated and tested is first detected, and subsequent calibration operations are only performed when the connection status meets the requirements. In this way, the problem of inaccurate calibration results due to unstable or incorrect connections can be avoided.
[0098] It's also important to note that if the connection status doesn't meet requirements, the calibration and testing equipment can promptly detect and report the problem, helping to quickly locate the fault point. For example, if a connection fails with a product under calibration and testing, the user can be prompted on the control device's human-computer interface to check the connection line or interface between the product and the calibration and testing equipment, improving troubleshooting efficiency.
[0099] In one possible implementation, Figure 2 As shown, the control device 102 is further configured to execute:
[0100] S204, when receiving the connection success information, sending an upgrade instruction to the calibration test device; and S205, during the process of performing firmware upgrade on each product to be calibrated and tested, displaying the upgrade time information corresponding to each product to be calibrated and tested in the user interaction interface.
[0101] Still Figure 2 As shown, the calibration test device 101 is further configured to perform:
[0102] S206 , in response to receiving the upgrade instruction, performing firmware upgrade on each of the plurality of products to be calibrated and tested;
[0103] S207, when each product to be calibrated and tested starts to upgrade its firmware, trigger each product to be calibrated and tested to give a corresponding prompt, and
[0104] S208 : When the firmware upgrade of the plurality of products to be calibrated and tested is completed, the upgrade completion information is uploaded to the control device.
[0105] Among them, the execution order of S206, S207 and S205 is not particular. The order is used as an example for easy understanding in the accompanying drawings, but S205 can also be executed first, and then S206 and S207, which does not affect the technical effect that can be achieved.
[0106] In some optional embodiments, the product to be calibrated and tested is configured with a memory (such as a flash memory, which can be used to store firmware) and an interface for receiving firmware upgrade data (such as a USB interface, a Type-C interface, etc.). For example, the product to be calibrated and tested also has a built-in vibration module to vibrate when a trigger signal is received. For another example, the product to be calibrated and tested is also provided with an indicator light to flash when a trigger signal is received.
[0107] In some optional embodiments, upon receiving a connection success message uploaded by the calibration and testing device, the control device sends an upgrade instruction to the calibration and testing device. This instruction may include information such as the firmware file's version information and storage location. During the firmware upgrade process for each product to be calibrated and tested, the control device obtains the upgrade start time and real-time status of each product to be calibrated and tested through communication with the calibration and testing device. Based on this information, the upgrade duration for each product to be calibrated and tested is calculated and displayed in real time on the user interface.
[0108] In some optional embodiments, upon receiving the upgrade completion information uploaded by the calibration and testing equipment, the control device confirms that the firmware upgrade of all products to be calibrated and tested has been completed.
[0109] In some optional embodiments, the calibration and testing device responds to an upgrade instruction issued by the control device and initiates a firmware upgrade for each of the multiple products under calibration and testing. For example, the device handles the transfer and writing of firmware files to ensure that each product under calibration and testing correctly receives and installs the new firmware. Furthermore, when each product under calibration and testing begins its firmware upgrade, the calibration and testing device sends a vibration trigger signal to the corresponding product, causing it to vibrate.
[0110] A vibration prompt is triggered when each product under calibration begins its firmware upgrade, allowing users to intuitively understand the product's upgrade status. Simultaneously, the control device displays upgrade elapsed time information on the user interface, enhancing user interaction with the system.
[0111] In some optional embodiments, the calibration test device is further configured to monitor in real time the upgrade status of each product to be calibrated and tested, and upload upgrade completion information to the control device when all products to be calibrated and tested have completed the firmware upgrade.
[0112] Through the embodiments of the present application, the calibration test equipment simultaneously performs firmware upgrades on multiple products to be calibrated and tested, greatly shortening the overall upgrade time and improving production efficiency. The control device centrally manages the upgrade process and displays the upgrade time information of each product to be calibrated and tested in real time, making it convenient for operators to monitor and manage the upgrade progress. During the upgrade process, the calibration test equipment independently manages and monitors each product to be calibrated and tested, ensuring that the firmware file is correctly transferred and written to each product to be calibrated and tested, and after all products to be calibrated and tested have completed the upgrade, the upgrade completion information is uploaded to the control device, ensuring the integrity and accuracy of the upgrade process.
[0113] In one possible implementation, Figure 3 This is a flow chart of an optional calibration test method provided in an embodiment of the present application, such as Figure 3 As shown, the control device 102 is further configured to execute:
[0114] S209, when the upgrade completion information is received, determining the calibration parameters corresponding to each product to be calibrated according to the product information of each product to be calibrated;
[0115] S210: Send the calibration parameters corresponding to each product to be calibrated and tested to the calibration and testing equipment.
[0116] Still Figure 3 As shown, the calibration test device 101 is further configured to perform:
[0117] S211, upon receiving the calibration parameters corresponding to each test product to be calibrated, respectively configure the corresponding calibration parameters for each test product to be calibrated, and
[0118] S212 : When the calibration parameter configuration of each product to be calibrated and tested is completed, first configuration completion information is uploaded to the control device.
[0119] In some optional embodiments, the product to be calibrated and tested is configured with a memory (such as a flash memory, etc., for receiving and storing calibration parameters) and an interface for data communication with the calibration and testing equipment.
[0120] In some optional embodiments, the control device can store detailed information about each product to be calibrated and tested, such as product model, batch, and production date, in a database for easy management and subsequent query and use. After receiving the upgrade completion information uploaded by the calibration and testing device, the control device can determine the corresponding calibration parameters from a preset calibration parameter mapping table or calibration algorithm based on the product information of each product to be calibrated and tested. For example, different calibration parameters such as voltage and current can be set for different product models.
[0121] The control device then sends the calibration parameters for each product to be calibrated to the calibration test device. During the sending process, each calibration parameter can also be pre-formatted and encrypted to ensure the accuracy and security of the transmitted data.
[0122] Through the embodiments of the present application, the calibration parameters are determined according to the specific product information of each product to be calibrated and tested, and an adaptive calibration scheme can be tailored for each product to be calibrated and tested, avoiding the errors that may be caused by using uniform parameters for calibration, thereby significantly improving the accuracy of calibration.
[0123] In some optional embodiments, the calibration test device receives calibration parameters corresponding to each product to be calibrated and tested, issued by the control device, and parses and verifies each calibration parameter to ensure its integrity and accuracy. The calibration test device then configures the corresponding calibration parameters for each product to be calibrated based on the received calibration parameters. For example, the calibration test device communicates with the product to be calibrated and writes the corresponding calibration parameters into the memory of the product to be calibrated. Furthermore, by monitoring the calibration parameter configuration status of each product to be calibrated in real time, when all products to be calibrated have completed configuration, the calibration test device uploads a first configuration completion message to the control device.
[0124] Through the embodiments of the present application, the control device automatically determines the calibration parameters based on the product information and sends them to the calibration test device. The calibration test device automatically configures the calibration parameters for each product without manual intervention, thereby improving the degree of automation of the calibration test.
[0125] In one possible implementation, Figure 3 As shown, the control device 102 is further configured to execute:
[0126] S213, when the first configuration completion information is received, determining a standard temperature curve corresponding to each product to be calibrated and tested according to the product information of each product to be calibrated and tested;
[0127] S214: Send the standard temperature curve corresponding to each product to be calibrated and tested to the calibration and testing equipment.
[0128] Still Figure 3 As shown, the calibration test device 101 is further configured to perform:
[0129] S215, when receiving the standard temperature curve corresponding to each product to be calibrated, burn the corresponding standard temperature curve for each product to be calibrated, and
[0130] S216 , when the temperature curve programming of each product to be calibrated and tested is completed, the programming completion information is uploaded to the control device.
[0131] In some optional embodiments, the calibration test equipment can burn the standard temperature curve into the storage medium of each product to be calibrated and tested via a connection interface compatible with the product to be calibrated and tested. Furthermore, the calibration test equipment can also be configured with a status monitoring circuit for real-time monitoring of the status of the burning process, but this is not limited to this and is not specifically limited to this example in this application.
[0132] In some optional embodiments, the product to be calibrated and tested may also use a non-volatile memory such as flash memory to store the standard temperature curve. At the same time, the burned standard temperature curve is received and stored via a communication interface that matches the connection interface of the calibration and testing equipment.
[0133] In some optional embodiments, the control device may maintain a database that uses a mapping data table to associate product information (such as model, specification, and production batch) for each product to be calibrated and tested with a corresponding standard temperature curve. Upon receiving the first configuration completion message, the control device extracts the corresponding standard temperature curve for each product to be calibrated and tested from the database based on the product information. The control device then uses an appropriate communication protocol and data format to transmit the determined standard temperature curve via a communication interface to the calibration and testing equipment to ensure stable and reliable data transmission.
[0134] In some optional embodiments, the calibration test device receives the standard temperature curve corresponding to each product to be calibrated and tested, issued by the control device, and performs an integrity check and verification on the standard temperature curve. If any data errors are found, the error information is promptly fed back to the control device. Based on the received standard temperature curve data, the control connection interface performs the burn operation of the standard temperature curve for each product to be calibrated and tested. During the burn process, the burn progress and status are monitored in real time to ensure that the burn process proceeds smoothly. In addition, the calibration test device continuously monitors the burn status of the temperature curve of each product to be calibrated and tested. When all products to be calibrated and tested have completed the burn, the burn completion information is uploaded to the control device.
[0135] By using the embodiments of the present application, a corresponding standard temperature curve is burned into each product to be calibrated and tested based on its specific product information. This allows each product to achieve more precise temperature control, thereby improving the consistency and stability of product performance and reducing product performance fluctuations caused by temperature differences. Furthermore, the control equipment and calibration test equipment record the burned-in information of each product's standard temperature curve, including the curve content and burn-in time. If any product encounters temperature-related problems during subsequent calibration or use, these records can be used to trace and analyze the root cause of the problem.
[0136] In one possible implementation, Figure 4 This is a flow chart of an optional calibration test method provided in an embodiment of the present application, such as Figure 4 As shown, the control device 102 is further configured to execute:
[0137] S217 , when the burning completion information is received, an insertion prompt information is displayed on the user interaction interface, wherein the insertion prompt information is used to prompt the user to insert an aerosol generating medium for each test product to be calibrated.
[0138] Still Figure 4 As shown, the control device 102 is further configured to execute: S218, determining the infrared parameters corresponding to each to-be-calibrated test product according to the product information of each to-be-calibrated test product;
[0139] S219: Send the infrared parameters corresponding to each product to be calibrated and tested to the calibration and testing equipment.
[0140] Still Figure 4 As shown, the calibration test device 101 is further configured to perform:
[0141] S220, when it is identified that each test product to be calibrated is respectively inserted into an aerosol generating medium and infrared parameters corresponding to each test product to be calibrated are received, configuring corresponding infrared parameters for each test product to be calibrated; and
[0142] S221 : When the infrared parameter configuration of each product to be calibrated and tested is completed, upload second configuration completion information to the control device.
[0143] Among them, the execution order of S217 and S218 is not particular, and the order is used as an example description in the accompanying drawings for ease of understanding, but S217 can also be executed first and then S218, which does not affect the technical effect that can be achieved.
[0144] In some optional embodiments, a large amount of product information of products to be calibrated and tested and the corresponding infrared parameter mapping relationship are stored, and powerful computing capabilities are provided, so that the corresponding infrared parameters can be quickly determined based on the product information.
[0145] In some optional embodiments, each test product to be calibrated is provided with a slot for inserting an aerosol generating medium, and the slot is adapted to the detection mechanism of the calibration test device, and each test product to be calibrated has a memory for receiving and storing infrared parameters and a communication interface for communicating with the calibration test device.
[0146] In some optional embodiments, after receiving the burning completion information, the control device displays an insertion prompt information on the user interaction interface, for example, in the form of text, icons, etc., to clearly inform the user to insert the aerosol generating medium for each test product to be calibrated.
[0147] In addition, considering that different products to be calibrated and tested may require different infrared parameters to be set, the control device also determines the infrared parameters corresponding to the product information from the stored mapping relationship based on the product information of each product to be calibrated and tested. Optionally, the product information may include product model, functional characteristics, etc., and sends the infrared parameters corresponding to each product to be calibrated and tested to the calibration and testing device.
[0148] In some optional embodiments, the calibration test device can also monitor in real time whether each product to be calibrated is inserted into the aerosol-generating medium. If it detects that all products to be calibrated are inserted, it prepares to configure the infrared parameters. Specifically, the calibration test device receives the infrared parameters corresponding to each product to be calibrated from the control device and analyzes and verifies each infrared parameter to ensure its integrity and accuracy.
[0149] Through the embodiments of the present application, the insertion prompt information is displayed on the user interaction interface, which can guide the user to correctly insert the aerosol generating medium for each test product to be calibrated, avoiding the subsequent calibration and use of the product affected by improper operation, and improving the standardization and accuracy of the operation.
[0150] Furthermore, after confirming that all products to be calibrated are inserted into the aerosol-generating medium and receiving the infrared parameters, the calibration test device can also configure the corresponding infrared parameters for each product to be calibrated. Specifically, during the configuration process, the calibration test device communicates with the product to be calibrated and writes the corresponding infrared parameters into the memory of the product to be calibrated. Furthermore, the calibration test device monitors the infrared parameter configuration status of each product to be calibrated in real time. When all products are configured, the calibration test device uploads a second configuration completion message to the control device.
[0151] Through the embodiments of the present application, the corresponding infrared parameters are determined and configured according to the product information of each product to be calibrated and tested, so that the product to be calibrated and tested can achieve optimal performance in terms of infrared function, thereby improving the accuracy and stability of the product's infrared detection or control.
[0152] In one possible implementation, Figure 4 As shown, the control device 102 is further configured to execute:
[0153] S222 : When the second configuration completion information is received, an unplugging prompt message is displayed on the user interaction interface, wherein the unplugging prompt message is used to prompt the user to unplug the aerosol generating medium from each test product to be calibrated.
[0154] In one possible implementation, Figure 5 This is a flow chart of an optional calibration test method provided in an embodiment of the present application, such as Figure 5 As shown, the control device 102 is further configured to execute:
[0155] S223, determining a power parameter corresponding to each product to be calibrated and tested according to the product information of each product to be calibrated and tested;
[0156] S224: Send the power parameters corresponding to each product to be calibrated and tested to the calibration and testing equipment.
[0157] Among them, the execution order of S222 and S223 is not particular, and the order is used as an example description in the accompanying drawings for ease of understanding, but S222 can also be executed first and then S223, which does not affect the technical effect that can be achieved.
[0158] Still Figure 5 As shown, the calibration test device 101 is further configured to perform:
[0159] S225, upon receiving the power parameter corresponding to each test product to be calibrated, calibrate the power parameter for each test product to be calibrated according to the power parameter corresponding to each test product to be calibrated; and
[0160] S226 , when power parameter calibration of each test product to be calibrated is completed, the calibration result corresponding to each test product to be calibrated is uploaded to the control device.
[0161] Still Figure 5 As shown, the control device 102 is further configured to execute:
[0162] S227, upon receiving the calibration result corresponding to each test product to be calibrated, determining the calibration curve corresponding to each test product to be calibrated according to the calibration result corresponding to each test product to be calibrated, and S228, displaying the calibration curve corresponding to each test product to be calibrated on the user interaction interface.
[0163] In some optional embodiments, the power detection and adjustment circuit provided in the calibration test equipment is used to perform a power calibration operation on each product to be calibrated and tested according to the received power parameters.
[0164] In some optional embodiments, after receiving the second configuration completion message, the control device displays a removal prompt on the user interface, prompting the user to remove the aerosol-generating medium from each test product to be calibrated. Displaying the removal prompt on the user interface prevents the user from removing the aerosol-generating medium at inappropriate times or failing to remove the aerosol-generating medium, thereby ensuring a smooth calibration process and product safety.
[0165] Furthermore, the control device is used to search and determine the corresponding power parameters from a pre-stored database based on the product information of each product to be calibrated and tested. Because product information includes model, specifications, and performance requirements, different product information corresponds to different power parameters. Determining and issuing the corresponding power parameters based on the product information of each product to be calibrated and tested enables the calibration and testing equipment to accurately calibrate the power of each product, improving product power stability and performance consistency.
[0166] In some optional embodiments, the control device sends the power parameters corresponding to each product to be calibrated to the calibration test device. The calibration test device receives the power parameters corresponding to each product to be calibrated sent by the control device, and can analyze and verify the power parameters corresponding to each product to be calibrated to ensure the integrity and accuracy of the parameters.
[0167] Furthermore, the calibration test equipment can calibrate the power parameters of each product under test based on the received power parameters. During the calibration process, the power changes of the product are monitored in real time and adjustments are made based on the feedback until the calibration requirements are met. When the power parameter calibration of each product under test is completed, the calibration test equipment uploads the calibration results for each product to the control device. For example, the calibration results include information such as the power calibration value and calibration error.
[0168] In some optional embodiments, the control device receives the calibration results corresponding to each test product to be calibrated uploaded by the calibration test device, and uses a preset calibration algorithm or model to determine the calibration curve corresponding to each test product to be calibrated based on the calibration results corresponding to each test product to be calibrated. After that, the calibration curve corresponding to each test product to be calibrated is displayed on the user interaction interface, and can be displayed in an intuitive manner such as charts and graphs to facilitate user viewing and analysis, which helps users to promptly discover problems with the product.
[0169] In one possible implementation, Figure 6a As shown, the calibration test equipment 101 is provided with a plurality of test channels (such as 201a, 201b, ..., 201n), and each test channel (such as 201a, 201b, ..., 201n) is provided with a corresponding connection interface (such as 301a, 301b, ..., 301n), and each connection interface (such as 301a, 301b, ..., 301n) is used for detachably plugging a test product to be calibrated (such as 101a, 101b, ..., 101n).
[0170] The calibration test equipment is further configured to execute: in response to the calibration instruction, simultaneously perform calibration tests on a product to be calibrated connected to each of the multiple test channels, and obtain calibration results corresponding to each product to be calibrated.
[0171] Optionally, the calibration and testing equipment is equipped with multiple independent test channels, each corresponding to a connection interface. It should be understood that each connection interface must physically meet the requirements of a removable plug-in for the calibration and testing product. For example, the connection interface can be a standard interface type, such as USB, serial port, or dedicated plug-in interface, to ensure connection stability and signal transmission reliability.
[0172] Optionally, each test channel has independent signal processing and control circuitry within the tool, independently acquiring, analyzing, and calibrating the signals of the test product connected to the corresponding port, thus preventing signal interference between different channels. The calibration test equipment also includes a central control unit (CPU) that coordinates the operations of the various test channels, receives commands from the control device, and provides feedback on calibration results.
[0173] Optionally, the product to be calibrated and tested uses a communication interface that matches the connection interface of the calibration and testing equipment to achieve removable plug-in. Furthermore, the electrical characteristics and communication protocol of the connection and communication interface must be compatible with the test channels of the calibration and testing equipment to ensure normal data transmission and calibration testing.
[0174] The detachable design of each connection port provides the calibration and testing equipment with high flexibility. Operators can replace or add products to the calibration and testing system at any time as needed, facilitating calibration and testing of different product types. Furthermore, the calibration and testing equipment can be expanded by increasing the number of test channels and connection ports to meet growing production needs.
[0175] In some optional embodiments, when the calibration test device receives a calibration instruction from the control device, it simultaneously initiates calibration test processes for multiple test channels based on the instruction content, thereby achieving parallel control of multiple test channels. For example, an independent processing thread or task is assigned to each test channel, allowing each channel to simultaneously perform calibration tests on its connected products to be calibrated. During the test process, the operating status of each test channel is monitored in real time to ensure the test progress and accuracy of the test results of each test channel.
[0176] After each test channel completes the calibration test on the corresponding test product to be calibrated, the calibration test device will organize and format the collected calibration results of each test product to be calibrated, and then upload them to the control device.
[0177] Through the embodiments of the present application, multiple test channels are set up and parallel calibration tests are supported. The calibration test equipment can calibrate multiple products to be calibrated at the same time, shortening the overall calibration time. In particular, in large-scale production scenarios, parallel processing of calibration tests can significantly improve production capacity. Specifically, each test channel operates independently, which can avoid mutual interference between different products to be calibrated, ensure the accuracy and independence of the calibration results of each product to be calibrated, help improve the quality consistency of the products to be calibrated, and reduce the product defect rate caused by inaccurate calibration.
[0178] Since each test channel and connection interface is relatively independent, when a test channel or connection port fails, only that part needs to be repaired or replaced, which will not affect the normal operation of other test channels, reducing the maintenance difficulty and cost of the calibration test equipment and improving the availability and reliability of the calibration test equipment.
[0179] In one possible implementation, Figure 6b As shown, the calibration test equipment 101 is provided with a plurality of test calibration modules (such as 401a, 401b, ..., 401n), but it should be noted that, Figure 6b Taking the test and calibration module 401a as an example, other test and calibration modules (such as 401b, ..., 401n) may have the same configuration or connection relationship as the test and calibration module 401a, and are not enumerated here.
[0180] Each test calibration module (such as 401a) is correspondingly provided with multiple connection interfaces (such as 501a, 501b, ..., 501n), and each connection interface (such as 501a, 501b, ..., 501n) is used for detachably plugging a test product to be calibrated (such as 103a, 103b, ..., 103n).
[0181] The calibration test equipment is further configured to execute: in response to the calibration instruction, simultaneously perform calibration tests on multiple test products to be calibrated connected to the multiple test calibration modules, and obtain calibration results corresponding to each test product to be calibrated.
[0182] In some optional embodiments, the calibration and testing equipment includes multiple test and calibration modules, each with independent functionality and circuit design for performing specific calibration and testing tasks. Each test and calibration module is equipped with multiple connection interfaces, each of which is physically convenient for removable insertion of the product to be calibrated and tested, such as using a standard plug-in interface to ensure connection stability and good electrical contact.
[0183] Furthermore, each connection port can be removably connected to a test product to be calibrated, allowing operators to flexibly replace or add test products to be calibrated based on actual needs. Furthermore, different test and calibration modules can be combined and adjusted according to production requirements, further enhancing the flexibility and scalability of the calibration and testing equipment.
[0184] By setting up multiple test calibration modules, each test calibration module can process multiple test products to be calibrated at the same time. Compared with the calibration method of a single test calibration module or a single test channel, it can significantly shorten the overall calibration time and greatly improve production efficiency, which is especially suitable for large-scale production scenarios.
[0185] In some optional embodiments, a reasonable communication and control architecture is implemented between the various test and calibration modules to enable parallel operation and data exchange. A main control unit within the calibration test device is responsible for coordinating the operations of the various test and calibration modules, receiving calibration instructions from the control device, and transmitting these instructions to the corresponding test and calibration modules. The main control unit can also collect calibration results uploaded by the various test and calibration modules and feed them back to the control device.
[0186] In some optional embodiments, when the calibration test device receives a calibration instruction from the control device, it accurately distributes the calibration instruction to the corresponding test calibration module based on the instruction content and the functions of each test calibration module. Because each test calibration module is assigned independent tasks and resources, each test calibration module can simultaneously perform calibration tests on multiple connected test products to be calibrated. In addition, during the test process, the working status and progress of each test calibration module are monitored in real time to ensure the efficiency of the entire calibration test process.
[0187] After each test calibration module completes the calibration test on the corresponding test product to be calibrated, the calibration test equipment collects the calibration results of each test product to be calibrated and uploads the calibration results of each test product to be calibrated to the control device to facilitate subsequent processing and display by the control device.
[0188] In this application example, different test and calibration modules can be specifically designed for different types of calibration and testing tasks, allowing the calibration and testing equipment to handle a variety of types of products to be calibrated, thereby improving the versatility and applicability of the calibration and testing equipment. For example, one test and calibration module can be responsible for power calibration, while another test and calibration module can be responsible for temperature calibration, etc.
[0189] Because each test and calibration module is relatively independent, interference between different calibrated products and between different types of calibration tests can be effectively avoided. Furthermore, the calibration process for each calibrated product is relatively independent, ensuring the accuracy and reliability of the calibration results for each calibrated product. Furthermore, if a test and calibration module malfunctions, it can be easily repaired or replaced without affecting the normal operation of other test and calibration modules, improving the availability and stability of the calibration equipment.
[0190] In one possible implementation, the test product to be calibrated includes at least one of an aerosol generating device and an electronic atomization device.
[0191] For example, if the product to be calibrated and tested is an aerosol-generating device, the aerosol-generating device includes a heating element, an aerosol-generating substrate storage unit, a control circuit, and the like. In this calibration and testing system, the aerosol-generating device is connected to the connection interface of the calibration and testing device via its connection interface. For example, the performance parameters of the heating element (such as heating temperature and power) can be tested and calibrated using the calibration and testing device. The control circuit can receive instructions from the calibration and testing device and adjust its own operating parameters to achieve the purpose of calibration. Relevant parameters of the aerosol-generating substrate storage unit (such as substrate residual detection, etc.) can also be checked and calibrated during the calibration and testing process.
[0192] For example, if the product to be calibrated and tested is an electronic atomization device, the electronic atomization device includes an atomizer, a power module, a control chip, etc. The atomization effect of the atomizer (such as the atomization volume and the size of the atomized particles) can be detected and calibrated using calibration test equipment. The output parameters of the power module (such as voltage and current) can also be adjusted during the calibration test. The control chip can communicate with the calibration test equipment, receive calibration instructions, and provide feedback on the device's status. For example, the control chip can send the actual output parameters of the power module to the calibration test equipment to determine the calibration parameters.
[0193] This application example provides an example of a calibration test device, which is connected to a control device and multiple products to be calibrated. The calibration test device is configured to perform:
[0194] In response to receiving the calibration instruction issued by the control device, calibration tests are performed on multiple products to be calibrated at the same time, and calibration results corresponding to each product to be calibrated are obtained respectively; the calibration results corresponding to each product to be calibrated are uploaded to the control device, wherein the control device is used to display the calibration results corresponding to each product to be calibrated in the user interaction interface.
[0195] In some optional embodiments, the calibration test device may be provided with multiple independent test channels, each test channel works independently and can be connected to a product to be calibrated, and multiple test channels perform calibration tests on their connected products to be calibrated in parallel. For example, each test channel is equipped with a data acquisition module and a signal processing module. In this way, when the calibration test device receives a calibration instruction (the instruction may include information such as calibration type, calibration curve, calibration parameters, etc.), each test channel can simultaneously perform calibration operations such as data acquisition and parameter adjustment on the corresponding product to be calibrated. For example, when a calibration test device is used to perform calibration tests on multiple electronic devices (such as electronic atomization devices, aerosol generating devices, etc.), each electronic device is calibrated simultaneously through the corresponding test channel, saving time cost and improving calibration efficiency.
[0196] In some optional embodiments, multiple test channels within the calibration test equipment simultaneously perform calibration tests on multiple products to be calibrated, enabling independent control and data collection for each product to be calibrated, ensuring that the calibration processes of each product do not interfere with each other. For example, through multi-threading or multi-processing technology, an independent test channel is assigned to each product to be calibrated, enabling parallel calibration testing of multiple products to be calibrated.
[0197] Furthermore, it's important to note that calibration testing equipment can come pre-installed with multiple calibration algorithms and parameter libraries, among other things. When performing calibration tests on different types of products, the appropriate calibration algorithm and parameters can be automatically selected based on the type, specifications, and other information of each product. For example, when a test channel is connected to aerosol-generating device A for calibration testing, the calibration testing equipment can select an appropriate calibration algorithm based on the model and performance indicators of aerosol-generating device A, and select matching calibration parameters from the parameter library. Calibration testing of aerosol-generating device A can then be performed using the corresponding calibration algorithm and parameters, ensuring the accuracy and reliability of the calibration test.
[0198] In some optional embodiments, the control device can be a computer, a host computer, an industrial control machine, or other electronic device with strong computing power and display functions. The control device can establish a communication connection with the calibration test equipment through a network (Ethernet, Wi-Fi, etc.) or a serial port.
[0199] In some optional embodiments, after receiving the calibration results corresponding to each product to be calibrated and tested, uploaded by the calibration and testing device, the control device can clearly display the calibration results for each product to be calibrated to the user in a form such as a chart or data list. For example, for temperature calibration results, a line chart can be used to display the calibration data of the product at different temperature points. The user can then conveniently view detailed information such as the calibration curve and calibration parameters for each product through an interactive interface. Furthermore, the user can also perform operations such as setting calibration parameters and starting or stopping calibration tests through the user interface.
[0200] The calibration and testing equipment provided in this application example can simultaneously perform calibration tests on multiple products to be calibrated. Compared with the traditional method of calibrating each product individually, this shortens the overall calibration and testing time and significantly improves production efficiency. This advantage is particularly evident in large-scale production scenarios. Furthermore, the calibration and testing equipment performs independent calibration tests on each product to be calibrated and obtains its own calibration results. This independent calibration method avoids mutual interference between multiple products to be calibrated and ensures the accuracy of each calibration result.
[0201] In one possible implementation, the calibration test equipment is further configured to perform:
[0202] When the initialization process is completed, check whether the connection status between the calibration test device and each product to be calibrated meets the connection requirements; when the connection status between the calibration test device and each product to be calibrated meets the connection requirements, upload the connection success information to the control device, wherein the control device is used to send an upgrade instruction to the calibration test device when receiving the connection success information.
[0203] In some optional embodiments, the calibration test equipment is provided with a hardware circuit for detecting the connection status. For example, there is a corresponding connection detection module for different types of interfaces (such as serial ports, USB interfaces, etc.), which can sense whether a stable and reliable connection is established between the product to be calibrated and tested.
[0204] In some optional embodiments, the control device has a hardware interface for communicating with the calibration test device to send initialization instructions and receive connection status information.
[0205] In some optional embodiments, the control device may continuously monitor the startup status of the calibration test device. For example, the control device may poll the calibration test device for a startup signal, or the calibration test device may proactively send a startup signal. If the control device detects that the calibration test device has successfully started, it immediately triggers an initialization process for the calibration test device. For example, according to a preset initialization process, a series of initialization instructions are sent to the calibration test device, including parameters and configuration information required for initializing the calibration test device, such as setting the communication baud rate and initializing internal registers.
[0206] In some optional embodiments, after executing the aforementioned initialization process, the control device waits to receive connection status information uploaded by the calibration test device. Upon receiving the connection status information, the control device analyzes and determines whether the connection between the calibration test device and each product to be calibrated and tested is successful.
[0207] In some optional embodiments, for the calibration test equipment, after receiving the initialization instruction issued by the control device, it initializes itself according to the instruction content of the initialization instruction. For example, the initialization process may, but is not limited to, involve the initialization of hardware resources, such as resetting sensors, initializing communication interfaces, etc.; it may also involve the initialization of software parameters, such as loading default calibration parameters, etc.
[0208] After completing initialization, the calibration test equipment checks the connection status with each product under test. Optionally, different detection methods can be used for different interface types. For example, for a serial port connection, a test signal can be sent and a response signal received to determine whether the connection is normal. For a USB port connection, the enumeration status of the product under test can be checked.
[0209] Afterwards, when the connection status between the calibration test device and each product to be calibrated and tested meets the connection requirements, a connection success message is uploaded to the control device. Optionally, the connection success message may include detailed information such as the identification of each product to be calibrated and tested and the connection status.
[0210] Through the above-mentioned embodiment of the present application, the control device automatically triggers the initialization processing of the calibration test device and receives the connection status information uploaded by the calibration test device, thereby realizing the automation of system startup and connection detection. Specifically, the control device performs initialization processing on the calibration test device, which can ensure that the calibration test device is in the correct state before starting work, avoids calibration errors caused by abnormal hardware or software parameters, and reduces failures caused by improper initialization. In addition, before performing the calibration test, the connection status between the calibration test device and each product to be calibrated and tested is first detected, and subsequent calibration operations are only performed when the connection status meets the requirements. In this way, the problem of inaccurate calibration results due to unstable or incorrect connections can be avoided.
[0211] It's also important to note that if the connection status doesn't meet requirements, the calibration and testing equipment can promptly detect and report the problem, helping to quickly locate the fault point. For example, if a connection fails with a product under calibration and testing, the user can be prompted on the control device's human-computer interface to check the connection line or interface between the product and the calibration and testing equipment, improving troubleshooting efficiency.
[0212] In one possible implementation, the calibration test equipment is further configured to perform:
[0213] In response to receiving the upgrade instruction, the firmware of multiple products to be calibrated and tested is upgraded respectively; when each product to be calibrated and tested starts the firmware upgrade, each product to be calibrated and tested is triggered to vibrate and prompt; and when the firmware upgrade of multiple products to be calibrated and tested is completed, the upgrade completion information is uploaded to the control device.
[0214] The control device is used to determine the calibration parameters corresponding to each product to be calibrated according to the product information of each product to be calibrated when the upgrade completion information is received.
[0215] In some optional embodiments, the product to be calibrated and tested is equipped with a memory (such as flash memory, which can be used to store firmware) and an interface (such as a USB interface, Type-C interface, etc.) for receiving firmware upgrade data. Furthermore, the product to be calibrated and tested also has a built-in vibration module to provide a vibration prompt when a trigger signal is received.
[0216] In some optional embodiments, upon receiving a connection success message uploaded by the calibration and testing device, the control device sends an upgrade instruction to the calibration and testing device. This instruction may include information such as the firmware file's version information and storage location. During the firmware upgrade process for each product to be calibrated and tested, the control device obtains the upgrade start time and real-time status of each product to be calibrated and tested through communication with the calibration and testing device. Based on this information, the upgrade duration for each product to be calibrated and tested is calculated and displayed in real time on the user interface.
[0217] In some optional embodiments, upon receiving the upgrade completion information uploaded by the calibration and testing equipment, the control device confirms that the firmware upgrade of all products to be calibrated and tested has been completed.
[0218] In some optional embodiments, the calibration and testing device responds to an upgrade instruction issued by the control device and initiates a firmware upgrade for each of the multiple products under calibration and testing. For example, the device handles the transfer and writing of firmware files to ensure that each product under calibration and testing correctly receives and installs the new firmware. Furthermore, when each product under calibration and testing begins its firmware upgrade, the calibration and testing device sends a vibration trigger signal to the corresponding product, causing it to vibrate.
[0219] A vibration prompt is triggered when each product under calibration begins its firmware upgrade, allowing users to intuitively understand the product's upgrade status. Simultaneously, the control device displays upgrade elapsed time information on the user interface, enhancing user interaction with the system.
[0220] In some optional embodiments, the calibration test device is further configured to monitor in real time the upgrade status of each product to be calibrated and tested, and upload upgrade completion information to the control device when all products to be calibrated and tested have completed the firmware upgrade.
[0221] Through the embodiments of the present application, the calibration test equipment simultaneously performs firmware upgrades on multiple products to be calibrated and tested, greatly shortening the overall upgrade time and improving production efficiency. The control device centrally manages the upgrade process and displays the upgrade time information of each product to be calibrated and tested in real time, making it convenient for operators to monitor and manage the upgrade progress. During the upgrade process, the calibration test equipment independently manages and monitors each product to be calibrated and tested, ensuring that the firmware file is correctly transferred and written to each product to be calibrated and tested, and after all products to be calibrated and tested have completed the upgrade, the upgrade completion information is uploaded to the control device, ensuring the integrity and accuracy of the upgrade process.
[0222] In one possible implementation, the calibration test equipment is further configured to perform:
[0223] When the calibration parameters corresponding to each product to be calibrated are received, the corresponding calibration parameters are configured for each product to be calibrated, and when the calibration parameter configuration is completed for each product to be calibrated, first configuration completion information is uploaded to the control device.
[0224] The control device is further configured to determine, upon receiving the first configuration completion information, a standard temperature curve corresponding to each product to be calibrated and tested according to the product information of each product to be calibrated and tested.
[0225] In some optional embodiments, the product to be calibrated and tested is configured with a memory (such as a flash memory, etc., for receiving and storing calibration parameters) and an interface for data communication with the calibration and testing equipment.
[0226] In some optional embodiments, the control device can store detailed information about each product to be calibrated and tested, such as product model, batch, and production date, in a database for easy management and subsequent query and use. After receiving the upgrade completion information uploaded by the calibration and testing device, the control device can determine the corresponding calibration parameters from a preset calibration parameter mapping table or calibration algorithm based on the product information of each product to be calibrated and tested. For example, different calibration parameters such as voltage and current can be set for different product models.
[0227] The control device then sends the calibration parameters for each product to be calibrated to the calibration test device. During the sending process, each calibration parameter can also be pre-formatted and encrypted to ensure the accuracy and security of the transmitted data.
[0228] Through the embodiments of the present application, the calibration parameters are determined according to the specific product information of each product to be calibrated and tested, and an adaptive calibration scheme can be tailored for each product to be calibrated and tested, avoiding the errors that may be caused by using uniform parameters for calibration, thereby significantly improving the accuracy of calibration.
[0229] In some optional embodiments, the calibration test device receives calibration parameters corresponding to each product to be calibrated and tested, issued by the control device, and parses and verifies each calibration parameter to ensure its integrity and accuracy. The calibration test device then configures the corresponding calibration parameters for each product to be calibrated based on the received calibration parameters. For example, the calibration test device communicates with the product to be calibrated and writes the corresponding calibration parameters into the memory of the product to be calibrated. Furthermore, by monitoring the calibration parameter configuration status of each product to be calibrated in real time, when all products to be calibrated have completed configuration, the calibration test device uploads a first configuration completion message to the control device.
[0230] Through the embodiments of the present application, the control device automatically determines the calibration parameters based on the product information and sends them to the calibration test device. The calibration test device automatically configures the calibration parameters for each product without manual intervention, thereby improving the degree of automation of the calibration test.
[0231] In one possible implementation, the calibration test equipment is further configured to perform:
[0232] When the standard temperature curve corresponding to each product to be calibrated is received, the corresponding standard temperature curve is burned for each product to be calibrated, and when the temperature curve burning is completed for each product to be calibrated, the burning completion information is uploaded to the control device.
[0233] Among them, the control device is also used to display an insertion prompt message on the user interaction interface when receiving the burning completion information, and determine the infrared parameters corresponding to each product to be calibrated based on the product information of each product to be calibrated. The insertion prompt message is used to prompt the user to insert the aerosol generating medium for each product to be calibrated.
[0234] In some optional embodiments, the calibration test equipment can burn the standard temperature curve into the storage medium of each product to be calibrated and tested via a connection interface compatible with the product to be calibrated and tested. Furthermore, the calibration test equipment can also be configured with a status monitoring circuit for real-time monitoring of the status of the burning process, but this is not limited to this and is not specifically limited to this example in this application.
[0235] In some optional embodiments, the product to be calibrated and tested may also use a non-volatile memory such as flash memory to store the standard temperature curve. At the same time, the burned standard temperature curve is received and stored via a communication interface that matches the connection interface of the calibration and testing equipment.
[0236] In some optional embodiments, the control device may maintain a database that uses a mapping data table to associate product information (such as model, specification, and production batch) for each product to be calibrated and tested with a corresponding standard temperature curve. Upon receiving the first configuration completion message, the control device extracts the corresponding standard temperature curve for each product to be calibrated and tested from the database based on the product information. The control device then uses an appropriate communication protocol and data format to transmit the determined standard temperature curve via a communication interface to the calibration and testing equipment to ensure stable and reliable data transmission.
[0237] In some optional embodiments, the calibration test device receives the standard temperature curve corresponding to each product to be calibrated and tested, issued by the control device, and performs an integrity check and verification on the standard temperature curve. If any data errors are found, the error information is promptly fed back to the control device. Based on the received standard temperature curve data, the control connection interface performs the burn operation of the standard temperature curve for each product to be calibrated and tested. During the burn process, the burn progress and status are monitored in real time to ensure that the burn process proceeds smoothly. In addition, the calibration test device continuously monitors the burn status of the temperature curve of each product to be calibrated and tested. When all products to be calibrated and tested have completed the burn, the burn completion information is uploaded to the control device.
[0238] By using the embodiments of the present application, a corresponding standard temperature curve is burned into each product to be calibrated and tested based on its specific product information. This allows each product to achieve more precise temperature control, thereby improving the consistency and stability of product performance and reducing product performance fluctuations caused by temperature differences. Furthermore, the control equipment and calibration test equipment record the burned-in information of each product's standard temperature curve, including the curve content and burn-in time. If any product encounters temperature-related problems during subsequent calibration or use, these records can be used to trace and analyze the root cause of the problem.
[0239] In one possible implementation, the calibration test equipment is further configured to perform:
[0240] When it is identified that each test product to be calibrated is respectively inserted into the aerosol generating medium and the infrared parameters corresponding to each test product to be calibrated are received, the corresponding infrared parameters are configured for each test product to be calibrated; and when the infrared parameter configuration is completed for each test product to be calibrated, the second configuration completion information is uploaded to the control device.
[0241] Among them, the control device is also used to display an unplugging prompt message on the user interaction interface when receiving the second configuration completion information, and determine the power parameters corresponding to each product to be calibrated based on the product information of each product to be calibrated. The unplugging prompt message is used to prompt the user to unplug the aerosol generating medium from each product to be calibrated.
[0242] In some optional embodiments, a large amount of product information of products to be calibrated and tested and the corresponding infrared parameter mapping relationship are stored, and powerful computing capabilities are provided, so that the corresponding infrared parameters can be quickly determined based on the product information.
[0243] In some optional embodiments, each test product to be calibrated is provided with a slot for inserting an aerosol generating medium, and the slot is adapted to the detection mechanism of the calibration test device, and each test product to be calibrated has a memory for receiving and storing infrared parameters and a communication interface for communicating with the calibration test device.
[0244] In some optional embodiments, after receiving the burning completion information, the control device displays an insertion prompt information on the user interaction interface, for example, in the form of text, icons, etc., to clearly inform the user to insert the aerosol generating medium for each test product to be calibrated.
[0245] In addition, considering that different products to be calibrated and tested may require different infrared parameters to be set, the control device also determines the infrared parameters corresponding to the product information from the stored mapping relationship based on the product information of each product to be calibrated and tested. Optionally, the product information may include product model, functional characteristics, etc., and sends the infrared parameters corresponding to each product to be calibrated and tested to the calibration and testing device.
[0246] In some optional embodiments, the calibration test device can also monitor in real time whether each product to be calibrated is inserted into the aerosol-generating medium. If it detects that all products to be calibrated are inserted, it prepares to configure the infrared parameters. Specifically, the calibration test device receives the infrared parameters corresponding to each product to be calibrated from the control device and analyzes and verifies each infrared parameter to ensure its integrity and accuracy.
[0247] Through the embodiments of the present application, the insertion prompt information is displayed on the user interaction interface, which can guide the user to correctly insert the aerosol generating medium for each test product to be calibrated, avoiding the subsequent calibration and use of the product affected by improper operation, and improving the standardization and accuracy of the operation.
[0248] Furthermore, after confirming that all products to be calibrated are inserted into the aerosol-generating medium and receiving the infrared parameters, the calibration test device can also configure the corresponding infrared parameters for each product to be calibrated. Specifically, during the configuration process, the calibration test device communicates with the product to be calibrated and writes the corresponding infrared parameters into the memory of the product to be calibrated. Furthermore, the calibration test device monitors the infrared parameter configuration status of each product to be calibrated in real time. When all products are configured, the calibration test device uploads a second configuration completion message to the control device.
[0249] Through the embodiments of the present application, the corresponding infrared parameters are determined and configured according to the product information of each product to be calibrated and tested, so that the product to be calibrated and tested can achieve optimal performance in terms of infrared function, thereby improving the accuracy and stability of the product's infrared detection or control.
[0250] In some optional embodiments, after receiving the second configuration completion message, the control device displays a removal prompt on the user interface, prompting the user to remove the aerosol-generating medium from each test product to be calibrated. Displaying the removal prompt on the user interface prevents the user from removing the aerosol-generating medium at inappropriate times or failing to remove the aerosol-generating medium, thereby ensuring a smooth calibration process and product safety.
[0251] Furthermore, the control device is used to search and determine the corresponding power parameters from a pre-stored database based on the product information of each product to be calibrated and tested. Because product information includes model, specifications, and performance requirements, different product information corresponds to different power parameters. Determining and issuing the corresponding power parameters based on the product information of each product to be calibrated and tested enables the calibration and testing equipment to accurately calibrate the power of each product, improving product power stability and performance consistency.
[0252] In one possible implementation, the calibration test equipment is further configured to perform:
[0253] Upon receiving the power parameters corresponding to each test product to be calibrated, power parameter calibration is performed for each test product to be calibrated according to the power parameters corresponding to each test product to be calibrated; and upon completing the power parameter calibration for each test product to be calibrated, the calibration result corresponding to each test product to be calibrated is uploaded to the control device.
[0254] In some optional embodiments, the power detection and adjustment circuit provided in the calibration test equipment is used to perform a power calibration operation on each product to be calibrated and tested according to the received power parameters.
[0255] In some optional embodiments, the control device sends the power parameters corresponding to each product to be calibrated to the calibration test device. The calibration test device receives the power parameters corresponding to each product to be calibrated sent by the control device, and can analyze and verify the power parameters corresponding to each product to be calibrated to ensure the integrity and accuracy of the parameters.
[0256] Furthermore, the calibration test equipment can calibrate the power parameters of each product under test based on the received power parameters. During the calibration process, the power changes of the product are monitored in real time and adjustments are made based on the feedback until the calibration requirements are met. When the power parameter calibration of each product under test is completed, the calibration test equipment uploads the calibration results for each product to the control device. For example, the calibration results include information such as the power calibration value and calibration error.
[0257] In some optional embodiments, the control device receives the calibration results corresponding to each test product to be calibrated uploaded by the calibration test device, and uses a preset calibration algorithm or model to determine the calibration curve corresponding to each test product to be calibrated based on the calibration results corresponding to each test product to be calibrated. After that, the calibration curve corresponding to each test product to be calibrated is displayed on the user interaction interface, and can be displayed in an intuitive manner such as charts and graphs to facilitate user viewing and analysis, which helps users to promptly discover problems with the product.
[0258] In one possible implementation, the calibration test equipment is provided with multiple test channels, and each test channel corresponds to a connection interface, and each connection interface is used to detachably plug in a product to be calibrated; the calibration test equipment is further configured to execute: in response to a calibration instruction, simultaneously perform calibration tests on a product to be calibrated connected to each of the multiple test channels, and obtain calibration results corresponding to each product to be calibrated.
[0259] Optionally, the calibration and testing equipment is equipped with multiple independent test channels, each corresponding to a connection interface. It should be understood that each connection interface must physically meet the requirements of a removable plug-in for the calibration and testing product. For example, the connection interface can be a standard interface type, such as USB, serial port, or dedicated plug-in interface, to ensure connection stability and signal transmission reliability.
[0260] Optionally, each test channel has independent signal processing and control circuitry within the tool, independently acquiring, analyzing, and calibrating the signals of the test product connected to the corresponding port, thus preventing signal interference between different channels. The calibration test equipment also includes a central control unit (CPU) that coordinates the operations of the various test channels, receives commands from the control device, and provides feedback on calibration results.
[0261] Optionally, the product to be calibrated and tested uses a communication interface that matches the connection interface of the calibration and testing equipment to achieve removable plug-in. Furthermore, the electrical characteristics and communication protocol of the connection and communication interface must be compatible with the test channels of the calibration and testing equipment to ensure normal data transmission and calibration testing.
[0262] The detachable design of each connection port provides the calibration and testing equipment with high flexibility. Operators can replace or add products to the calibration and testing system at any time as needed, facilitating calibration and testing of different product types. Furthermore, the calibration and testing equipment can be expanded by increasing the number of test channels and connection ports to meet growing production needs.
[0263] In some optional embodiments, when the calibration test device receives a calibration instruction from the control device, it simultaneously initiates calibration test processes for multiple test channels based on the instruction content, thereby achieving parallel control of multiple test channels. For example, an independent processing thread or task is assigned to each test channel, allowing each channel to simultaneously perform calibration tests on its connected products to be calibrated. During the test process, the operating status of each test channel is monitored in real time to ensure the test progress and accuracy of the test results of each test channel.
[0264] After each test channel completes the calibration test on the corresponding test product to be calibrated, the calibration test device will organize and format the collected calibration results of each test product to be calibrated, and then upload them to the control device.
[0265] Through the embodiments of the present application, multiple test channels are set up and parallel calibration tests are supported. The calibration test equipment can calibrate multiple products to be calibrated at the same time, shortening the overall calibration time. In particular, in large-scale production scenarios, parallel processing of calibration tests can significantly improve production capacity. Specifically, each test channel operates independently, which can avoid mutual interference between different products to be calibrated, ensure the accuracy and independence of the calibration results of each product to be calibrated, help improve the quality consistency of the products to be calibrated, and reduce the product defect rate caused by inaccurate calibration.
[0266] Since each test channel and connection interface is relatively independent, when a test channel or connection port fails, only that part needs to be repaired or replaced, which will not affect the normal operation of other test channels, reducing the maintenance difficulty and cost of the calibration test equipment and improving the availability and reliability of the calibration test equipment.
[0267] In one possible implementation, the calibration test equipment is provided with multiple test calibration modules, each test calibration module is provided with multiple connection interfaces, and each connection interface is used to detachably plug in a test product to be calibrated; the calibration test equipment is also configured to execute: in response to a calibration instruction, calibration tests are simultaneously performed on multiple test products to be calibrated connected to each of the multiple test calibration modules, and calibration results corresponding to each test product to be calibrated are obtained respectively.
[0268] In some optional embodiments, the calibration and testing equipment includes multiple test and calibration modules, each with independent functionality and circuit design for performing specific calibration and testing tasks. Each test and calibration module is equipped with multiple connection interfaces, each of which is physically convenient for removable insertion of the product to be calibrated and tested, such as using a standard plug-in interface to ensure connection stability and good electrical contact.
[0269] Furthermore, each connection port can be removably connected to a test product to be calibrated, allowing operators to flexibly replace or add test products to be calibrated based on actual needs. Furthermore, different test and calibration modules can be combined and adjusted according to production requirements, further enhancing the flexibility and scalability of the calibration and testing equipment.
[0270] By setting up multiple test calibration modules, each test calibration module can process multiple test products to be calibrated at the same time. Compared with the calibration method of a single test calibration module or a single test channel, it can significantly shorten the overall calibration time and greatly improve production efficiency, which is especially suitable for large-scale production scenarios.
[0271] In some optional embodiments, a reasonable communication and control architecture is implemented between the various test and calibration modules to enable parallel operation and data exchange. A main control unit within the calibration test device is responsible for coordinating the operations of the various test and calibration modules, receiving calibration instructions from the control device, and transmitting these instructions to the corresponding test and calibration modules. The main control unit can also collect calibration results uploaded by the various test and calibration modules and feed them back to the control device.
[0272] In some optional embodiments, when the calibration test device receives a calibration instruction from the control device, it accurately distributes the calibration instruction to the corresponding test calibration module based on the instruction content and the functions of each test calibration module. Because each test calibration module is assigned independent tasks and resources, each test calibration module can simultaneously perform calibration tests on multiple connected test products to be calibrated. In addition, during the test process, the working status and progress of each test calibration module are monitored in real time to ensure the efficiency of the entire calibration test process.
[0273] After each test calibration module completes the calibration test on the corresponding test product to be calibrated, the calibration test equipment collects the calibration results of each test product to be calibrated and uploads the calibration results of each test product to be calibrated to the control device to facilitate subsequent processing and display by the control device.
[0274] In this application example, different test and calibration modules can be specifically designed for different types of calibration and testing tasks, allowing the calibration and testing equipment to handle a variety of types of products to be calibrated, thereby improving the versatility and applicability of the calibration and testing equipment. For example, one test and calibration module can be responsible for power calibration, while another test and calibration module can be responsible for temperature calibration, etc.
[0275] Because each test and calibration module is relatively independent, interference between different calibrated products and between different types of calibration tests can be effectively avoided. Furthermore, the calibration process for each calibrated product is relatively independent, ensuring the accuracy and reliability of the calibration results for each calibrated product. Furthermore, if a test and calibration module malfunctions, it can be easily repaired or replaced without affecting the normal operation of other test and calibration modules, improving the availability and stability of the calibration equipment.
[0276] Figure 7This is a schematic diagram of the structure of a control device provided in an embodiment of the present application. The control device can be a mobile phone, a smart screen, a tablet computer, a wearable control device, an in-vehicle control device, an augmented reality (AR) device, a virtual reality (VR) device, a laptop computer, an ultra-mobile personal computer (UMPC), a netbook, a personal digital assistant (PDA), a projector, or a communication device such as a server, storage device, or a base station, or a smart car. The embodiments of the present application do not impose any restrictions on the specific type of control device.
[0277] The memory 701 can be used to store computer software programs 702 and modules. The processor 703 executes various functional applications and data processing of the control device by running the software programs and modules stored in the memory 701. The memory 701 can mainly include a program storage area and a data storage area. The program storage area can store an operating system, at least one application required for a function (such as a sound playback function, an image playback function, etc.), etc.; the data storage area can store data created based on the use of the control device (such as audio data, a phone book, etc.). In addition, the memory 701 can include a high-speed random access memory and a non-volatile memory, such as at least one disk storage device, a flash memory device, or other volatile solid-state storage device.
[0278] Among them, the processor 703 may include one or more processors such as a central processing unit, an application processor (AP), and a baseband processor. The processor can be the nerve center and command center of the wireless router. The processor 703 can generate operation control signals based on the instruction operation code and timing signals to complete the control of instruction fetching and execution. The memory 701 can be used to store computer executable program code, and the executable program code includes instructions. The processor 703 executes various functional applications and data processing of the network device by running the instructions stored in the memory. The memory 701 may include a program storage area and a data storage area, such as storing data of a sound signal to be played. For example, the memory can be a double data rate synchronous dynamic random access memory DDR or a flash memory.
[0279] An embodiment of the present application also provides a computer-readable storage medium, in which computer instructions are stored; when the computer-readable storage medium runs on a control device, the control device executes the functions or method steps shown above.
[0280] Computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another computer-readable storage medium. For example, computer instructions can be transmitted from one website, computer, server, or data center to another website, computer, server, or data center via a wired (e.g., coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) method. A computer-readable storage medium can be any available medium that can be accessed by a computer or a data storage device such as a server or data center that includes one or more available media. The available medium can be a magnetic medium (e.g., a floppy disk, a hard disk, a magnetic tape), an optical medium, or a semiconductor medium (e.g., a solid state disk (SSD)).
[0281] An embodiment of the present application further provides a computer program product comprising computer instructions, which enables the control device to perform the aforementioned functions or method steps when the computer program product is run on the control device.
[0282] The computer storage medium and computer program product provided in the above-mentioned embodiments of the present application are used to execute the method provided above. Therefore, the beneficial effects that can be achieved can refer to the corresponding beneficial effects of the method provided above, and will not be repeated here.
[0283] In the above embodiments, it can also be implemented in whole or in part by software, hardware, firmware or any combination thereof. When software is used for implementation, it can be implemented in whole or in part in the form of a computer program product. The computer program product includes one or more computer instructions. When the computer instructions are loaded and executed on a computer, the process or function described in the embodiment of the present application is generated in whole or in part. The computer can be a general-purpose computer, a special-purpose computer, a computer network or other programmable device. The computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another computer-readable storage medium. For example, the computer instructions can be transmitted from a website, computer, server or data center to another website, computer, server or data center via a wired (such as a coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (such as infrared, wireless, microwave, etc.) method. The computer-readable storage medium can be any available medium that a computer can access, or a data storage device such as a server or data center that includes one or more available media integrations. The storage medium may be a magnetic disk, an optical disk, a read-only memory (ROM), a random access memory (RAM), a flash memory (Flash Memory), a hard disk (HDD) or a solid-state drive (SSD), etc. The storage medium may also include a combination of the above types of memory.
[0284] In the above embodiments, the description of each embodiment has its own focus. For parts that are not described or recorded in detail in a certain embodiment, reference can be made to the relevant description of other embodiments.
[0285] Those skilled in the art will appreciate that the units and algorithm steps of each example described in conjunction with the embodiments applied for herein can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are performed in hardware or software depends on the specific application and design constraints of the technical solution. Professional and technical personnel can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of this application.
[0286] In the embodiments provided in this application, it should be understood that the disclosed devices / network equipment and methods can be implemented in other ways. For example, the device / network equipment embodiments described above are merely illustrative. For example, the division of the modules or units is merely a logical function division. In actual implementation, there may be other division methods, such as multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be through some interfaces, indirect coupling or communication connection of devices or units, which can be electrical, mechanical or other forms.
[0287] The units described as separate components may or may not be physically separate, and the components shown as units may or may not be physical units, that is, they may be located in one place or distributed across multiple network units. Some or all of these units may be selected to achieve the purpose of this embodiment according to actual needs.
[0288] The above-described embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them. Although the present application has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. These modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present application, and should all be included in the scope of protection of the present application.
Claims
1. A calibration test system, characterized in that: include: Calibrate test equipment, control equipment, and multiple test products to be calibrated; The calibration test device is connected to the control device and to a plurality of products to be calibrated and tested, and is configured to: in response to receiving a calibration instruction issued by the control device, simultaneously perform calibration tests on the plurality of products to be calibrated and tested, and obtain a calibration result corresponding to each of the products to be calibrated and tested; The control device is configured to execute: upon receiving the calibration result corresponding to each of the test products to be calibrated uploaded by the calibration test device, displaying the calibration result corresponding to each of the test products to be calibrated in a user interaction interface.
2. The calibration test system according to claim 1, wherein: The control device is further configured to execute: in response to the start-up of the calibration test device, triggering initialization processing of the calibration test device; The calibration test device is also configured to perform: after completing the initialization process, detect whether the connection status between the calibration test device and each of the products to be calibrated and tested meets the connection requirements, and upload connection success information to the control device if the connection status between the calibration test device and each of the products to be calibrated and tested meets the connection requirements.
3. The calibration test system according to claim 2, wherein: The control device is further configured to execute: upon receiving the connection success information, send an upgrade instruction to the calibration test device; and displaying the upgrade time information corresponding to each of the products to be calibrated and tested in the user interaction interface during the process of performing firmware upgrade on each of the products to be calibrated and tested; The calibration and testing device is further configured to execute: in response to receiving the upgrade instruction, perform firmware upgrades on the multiple products to be calibrated and tested respectively; when each product to be calibrated and tested starts the firmware upgrade, trigger each product to be calibrated and tested to give a corresponding prompt; and when the firmware upgrade of the multiple products to be calibrated and tested is completed, upload the upgrade completion information to the control device.
4. The calibration test system according to claim 3, characterized in that: The control device is further configured to: upon receiving the upgrade completion information, determine the calibration parameters corresponding to each of the products to be calibrated and tested according to the product information of each of the products to be calibrated and tested, and send the calibration parameters corresponding to each of the products to be calibrated and tested to the calibration and testing device; The calibration test device is further configured to perform: upon receiving the calibration parameters corresponding to each of the products to be calibrated and tested, respectively configure the corresponding calibration parameters for each of the products to be calibrated and tested, and upon completing the calibration parameter configuration for each of the products to be calibrated and tested, upload first configuration completion information to the control device.
5. The calibration test system according to claim 4, characterized in that: The control device is further configured to: upon receiving the first configuration completion information, determine a standard temperature curve corresponding to each of the products to be calibrated and tested based on the product information of each of the products to be calibrated and tested, and send the standard temperature curve corresponding to each of the products to be calibrated and tested to the calibration and testing device; The calibration test device is further configured to perform: upon receiving the standard temperature curve corresponding to each of the products to be calibrated and tested, burn the corresponding standard temperature curve for each of the products to be calibrated and tested, and upon completing the temperature curve burning for each of the products to be calibrated and tested, upload the burning completion information to the control device.
6. The calibration test system according to claim 5, characterized in that: The control device is further configured to: upon receiving the burning completion information, display an insertion prompt message on the user interaction interface, wherein the insertion prompt message is used to prompt the user to insert the aerosol generating medium for each of the test products to be calibrated; The control device is further configured to: determine the infrared parameters corresponding to each of the products to be calibrated and tested according to the product information of each of the products to be calibrated and tested, and send the infrared parameters corresponding to each of the products to be calibrated and tested to the calibration and testing device; The calibration test device is also configured to perform: upon identifying that each of the test products to be calibrated is respectively inserted into the aerosol generating medium and receiving the infrared parameters corresponding to each of the test products to be calibrated, respectively configure the corresponding infrared parameters for each of the test products to be calibrated; and upon completing the infrared parameter configuration for each of the test products to be calibrated, upload the second configuration completion information to the control device.
7. The calibration test system according to claim 6, characterized in that: The control device is further configured to: upon receiving the second configuration completion information, display an unplugging prompt message on the user interaction interface, wherein the unplugging prompt message is used to prompt the user to unplug the aerosol generating medium from each of the test products to be calibrated; The control device is further configured to: determine a power parameter corresponding to each of the products to be calibrated and tested according to the product information of each of the products to be calibrated and tested, and send the power parameter corresponding to each of the products to be calibrated and tested to the calibration and testing device; The calibration test device is further configured to: upon receiving the power parameters corresponding to each of the test products to be calibrated, perform power parameter calibration for each of the test products to be calibrated according to the power parameters corresponding to each of the test products to be calibrated; and upon completing the power parameter calibration for each of the test products to be calibrated, upload the calibration result corresponding to each of the test products to be calibrated to the control device; The control device is further configured to execute: upon receiving the calibration result corresponding to each of the test products to be calibrated, determine the calibration curve corresponding to each of the test products to be calibrated according to the calibration result corresponding to each of the test products to be calibrated, and display the calibration curve corresponding to each of the test products to be calibrated on the user interaction interface.
8. The calibration test system according to any one of claims 1 to 7, characterized in that: The calibration test equipment is provided with a plurality of test channels, and each of the test channels is correspondingly provided with a connection interface, and each of the connection interfaces is used for detachably plugging in a product to be calibrated and tested; The calibration test device is further configured to execute: in response to the calibration instruction, simultaneously perform calibration tests on a product to be calibrated connected to each of the plurality of test channels, and obtain calibration results corresponding to each product to be calibrated.
9. The calibration test system according to any one of claims 1 to 7, characterized in that: The calibration test equipment is provided with a plurality of test calibration modules, each of which is provided with a plurality of connection interfaces, and each of the connection interfaces is used for detachably plugging in a test product to be calibrated; The calibration test device is further configured to execute: in response to the calibration instruction, simultaneously perform calibration tests on the multiple test products to be calibrated connected to the multiple test calibration modules, and obtain calibration results corresponding to each of the test products to be calibrated.
10. The calibration test system according to any one of claims 1 to 7, characterized in that: The test product to be calibrated includes at least one of an aerosol generating device and an electronic atomization device.
11. A calibration test device, characterized in that: The calibration test device is connected to the control device and a plurality of products to be calibrated and tested, and is configured to perform: In response to receiving a calibration instruction issued by the control device, calibration tests are performed on multiple products to be calibrated and tested at the same time, and calibration results corresponding to each of the products to be calibrated and tested are obtained respectively; The calibration result corresponding to each of the test products to be calibrated is uploaded to the control device, wherein the control device is used to display the calibration result corresponding to each of the test products to be calibrated in a user interaction interface.
12. The calibration test device according to claim 11, wherein: The calibration test equipment is further configured to perform: After the initialization process is completed, detecting whether the connection status between the calibration test device and each of the products to be calibrated and tested meets the connection requirements; When the connection status between the calibration test device and each of the products to be calibrated and tested meets the connection requirements, the connection success information is uploaded to the control device, wherein the control device is used to issue an upgrade instruction to the calibration test device when receiving the connection success information.
13. The calibration test device according to claim 12, wherein: The calibration test equipment is further configured to perform: In response to receiving the upgrade instruction, performing firmware upgrade on each of the plurality of products to be calibrated and tested; When each of the products to be calibrated and tested starts to upgrade its firmware, each of the products to be calibrated and tested is triggered to give a corresponding prompt, and When the firmware upgrade of multiple products to be calibrated and tested is completed, the upgrade completion information is uploaded to the control device, wherein the control device is used to determine the calibration parameters corresponding to each product to be calibrated and tested according to the product information of each product to be calibrated and tested when the upgrade completion information is received.
14. The calibration test device according to claim 13, wherein: The calibration test equipment is further configured to perform: Upon receiving the calibration parameters corresponding to each of the test products to be calibrated, respectively configure the corresponding calibration parameters for each of the test products to be calibrated, and When the calibration parameter configuration of each of the test products to be calibrated is completed, first configuration completion information is uploaded to the control device, wherein the control device is further used to determine the standard temperature curve corresponding to each of the test products to be calibrated according to the product information of each of the test products to be calibrated when the first configuration completion information is received.
15. The calibration test device according to claim 14, characterized in that The calibration test equipment is further configured to perform: Upon receiving the standard temperature curve corresponding to each of the test products to be calibrated, the corresponding standard temperature curve is burned for each of the test products to be calibrated, and When the temperature curve burning is completed for each of the test products to be calibrated, the burning completion information is uploaded to the control device, wherein the control device is further used to display an insertion prompt information on the user interaction interface when the burning completion information is received, and determine the infrared parameters corresponding to each of the test products to be calibrated based on the product information of each of the test products to be calibrated, and the insertion prompt information is used to prompt the user to insert the aerosol generating medium for each of the test products to be calibrated.
16. The calibration test device according to claim 15, characterized in that The calibration test equipment is further configured to perform: When it is identified that each of the test products to be calibrated is respectively inserted into the aerosol generating medium and infrared parameters corresponding to each of the test products to be calibrated are received, corresponding infrared parameters are respectively configured for each of the test products to be calibrated; as well as When the infrared parameter configuration of each of the test products to be calibrated is completed, the second configuration completion information is uploaded to the control device, wherein the control device is further used to display an unplugging prompt message on the user interaction interface when the second configuration completion information is received, and determine the power parameter corresponding to each of the test products to be calibrated based on the product information of each of the test products to be calibrated, and the unplugging prompt message is used to prompt the user to unplug the aerosol generating medium from each of the test products to be calibrated.
17. The calibration test device according to claim 16, wherein: The calibration test equipment is further configured to perform: Upon receiving the power parameter corresponding to each of the test products to be calibrated, calibrate the power parameter for each of the test products to be calibrated according to the power parameter corresponding to each of the test products to be calibrated; as well as When the power parameter calibration of each of the test products to be calibrated is completed, the calibration result corresponding to each of the test products to be calibrated is uploaded to the control device.
18. The calibration test device according to any one of claims 11 to 17, characterized in that The calibration test equipment is provided with a plurality of test channels, and each of the test channels is correspondingly provided with a connection interface, and each of the connection interfaces is used for detachably plugging in a product to be calibrated and tested; The calibration test device is further configured to execute: in response to the calibration instruction, simultaneously perform calibration tests on a product to be calibrated connected to each of the plurality of test channels, and obtain calibration results corresponding to each product to be calibrated.
19. The calibration test device according to any one of claims 11 to 17, characterized in that The calibration test equipment is provided with a plurality of test calibration modules, each of which is provided with a plurality of connection interfaces, and each of the connection interfaces is used for detachably plugging in a test product to be calibrated; The calibration test device is further configured to execute: in response to the calibration instruction, simultaneously perform calibration tests on the multiple test products to be calibrated connected to the multiple test calibration modules, and obtain calibration results corresponding to each of the test products to be calibrated.
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