Device and method for testing endurance of wearable equipment
By using biomimetic models and automated detection technology, the problem of simulating human wearing scenarios in the temperature rise test of wearable devices has been solved, achieving more accurate temperature rise data collection and more reliable test results.
Patent Information
- Application Number
- CN202511796326.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-01
- Publication Date
- 2026-02-27
AI Technical Summary
In existing technologies, temperature rise testing of wearable devices cannot accurately reproduce the heat dissipation conditions under human wearing conditions, resulting in discrepancies between the temperature rise data and actual usage.
The biomimetic model simulates the thermophysical properties of human tissue. Combined with a temperature sensor and a running status detection module, it automatically identifies the running status and keeps track of time. The temperature of the biomimetic model is maintained by a constant temperature control device to simulate the temperature rise test in a real wearing environment.
This improves the reliability and comparability of temperature rise test data, ensures the accuracy and consistency of test results, reduces human interference, and improves test efficiency.
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Figure CN121577175A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of product testing technology, and in particular to a device and method for testing the battery life of wearable devices. Background Technology
[0002] As wearable electronic products become increasingly functional, their temperature rise and battery life during operation have become key indicators affecting user experience. Current technology typically measures the operating temperature by directly attaching a temperature-sensing element to the surface of the wearable product's casing. However, wearable products are usually worn in close contact with the skin or on specific body parts during actual use, resulting in heat exchange with human tissue. Relying solely on surface temperature measurements taken when the product is unused makes it difficult to accurately represent the actual heat dissipation conditions under wear, leading to discrepancies between the temperature rise data and the actual wearing scenario.
[0003] Therefore, improvements to existing technologies are necessary. Summary of the Invention
[0004] This invention provides a device and method for testing the battery life of wearable devices to solve the problems existing in the prior art.
[0005] To achieve the above objectives, the present invention provides the following technical solution:
[0006] A wearable device battery life testing device, comprising:
[0007] A biomimetic model, featuring a wearable component for assembling the wearable product under test;
[0008] The temperature acquisition module includes a temperature sensor disposed in the area where the wearable product under test and the bionic model fit together, and a temperature recording device connected to the temperature sensor.
[0009] The operation status detection module is used to acquire the current operation status and status operation signal of the wearable product under test;
[0010] A timing component, connected to the running status detection module, is used to start timing when a running status signal indicating the start of running is received, and to stop timing when a running status signal indicating the stop of running is received, so that the timing time recorded by the timing component is used as the running duration of the wearable product under test.
[0011] Optionally, the biomimetic model is made of a material with thermophysical properties similar to human tissue, including specific heat capacity, thermal conductivity, and / or density.
[0012] Optionally, the biomimetic model is equipped with a heating component for heating and a constant temperature control device connected to the heating component. The constant temperature control device is used to control the heating component to adjust and maintain the temperature of the biomimetic model within a preset range.
[0013] Optionally, the operating status detection module includes a signal receiving component for receiving the operating signal of the wearable product under test, and a signal processing circuit connected to the signal receiving component;
[0014] The signal processing circuit is used to compare the strength of the running signal with a preset threshold to generate the status running signal indicating the start or stop of running.
[0015] Optionally, the wearable product under test is a TWS earphone;
[0016] The wearable part of the bionic model includes an auricular structure and an ear canal structure for assembling the wearable product under test;
[0017] The signal receiving component is an audio receiving component for receiving sound played by the wearable product under test; the signal processing circuit includes a filtering circuit, an audio decoder connected to the audio receiving component, and an audio processing component connected to the audio decoder.
[0018] The filtering circuit is used to filter the operating signal converted from the sound signal received by the sound receiving component. The audio processing component is used to compare the strength of the filtered operating signal with a preset threshold, and generate a corresponding operating signal indicating the start or stop of operation based on the appearance and disappearance of the electrical signal of the playing sound.
[0019] Optionally, the wearable device battery life testing device further includes a constant temperature chamber, in which at least a portion of the bionic model, the wearable product under test, and the temperature acquisition module are disposed.
[0020] Optionally, the biomimetic model is equipped with a biomimetic temperature sensor for monitoring its body temperature.
[0021] Optionally, the temperature sensor is a thermocouple or a thermistor.
[0022] The present invention also provides a method for testing the battery life of wearable devices, comprising:
[0023] The wearable product to be tested was assembled onto a bionic model with a wearable part;
[0024] A temperature sensor is placed in the contact area between the wearable product under test and the bionic model, and the temperature data of the wearable product under test during operation is recorded by a temperature recording device.
[0025] The operating status of the wearable product under test is obtained by the operating status detection module, and a status operating signal indicating the start or stop of operation is generated.
[0026] The timing is started or stopped according to the status operation signal, and the time obtained from the timing is taken as the operating duration of the wearable product under test.
[0027] Optionally, before placing a temperature sensor in the contact area between the wearable product under test and the bionic model, and before recording the temperature data of the wearable product under test during operation using a temperature recording device, the method further includes:
[0028] At least a portion of the bionic model, the wearable product under test, and the temperature sensor are placed in a constant temperature environment, and the temperature of the constant temperature environment is adjusted to a preset temperature range.
[0029] Before starting or stopping the timing according to the state operation signal, and using the time obtained from the timing as the operating duration of the wearable product under test, the method further includes:
[0030] The operating signal acquired by the operating status detection module is filtered to eliminate background noise;
[0031] The strength of the filtered running signal is compared with a preset threshold to determine whether to generate the status running signal indicating the start or stop of running.
[0032] Compared with the prior art, the present invention has the following beneficial effects:
[0033] The present invention provides a device and method for testing the battery life of wearable devices. By setting up a simulation model with a wearable part, the temperature rise change of the wearable product under test during the test process is closer to the real wearing situation, thereby improving the reliability, comparability and engineering reference value of the temperature rise test data.
[0034] The present invention has other features and advantages, which will be apparent from or will be set forth in detail in the accompanying drawings and the following detailed description, which together serve to explain the particular principles of the invention. Attached Figure Description
[0035] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0036] Figure 1 This is a schematic diagram of the structure of a wearable device battery life testing device provided in an embodiment of the present invention;
[0037] Figure 2 This is another structural schematic diagram of a wearable device battery life testing device provided in an embodiment of the present invention;
[0038] Figure 3 This is a flowchart of a wearable device battery life testing method provided in an embodiment of the present invention.
[0039] Reference numerals: 10, Bionic model; 11, Wearable product under test; 21, Temperature sensor; 22, Temperature recording device; 30, Operating status detection module; 31, Sound receiving component; 32, Audio decoder; 33, Audio processing component; 40, Controller; 51, Heating component; 52, Constant temperature control device; 53, Constant temperature chamber. Detailed Implementation
[0040] To illustrate the possible application scenarios, technical principles, implementable specific solutions, and achievable objectives and effects of this application in detail, the following description, in conjunction with the listed specific embodiments and accompanying drawings, provides a detailed explanation. The embodiments described herein are merely illustrative of the technical solutions of this application and are therefore intended to limit the scope of protection of this application.
[0041] In this document, the term "embodiment" means that a specific feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The term "embodiment" appearing in various places throughout the specification does not necessarily refer to the same embodiment, nor does it specifically limit its independence or connection with other embodiments. In principle, in this application, as long as there are no technical contradictions or conflicts, the technical features mentioned in each embodiment can be combined in any way to form corresponding implementable technical solutions.
[0042] Unless otherwise defined, the technical terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains; the use of related terms herein is merely for the purpose of describing particular embodiments and is not intended to limit this application.
[0043] In the description of this application, the term "and / or" is used to describe the logical relationship between objects, indicating that three relationships can exist. For example, A and / or B means: A exists, B exists, and A and B exist simultaneously. Additionally, the character " / " in this document generally indicates that the preceding and following objects have an "or" logical relationship.
[0044] In this application, terms such as “first” and “second” are used only to distinguish one entity or operation from another, and do not necessarily require or imply any actual quantity, hierarchy or order relationship between these entities or operations.
[0045] Unless otherwise specified, the use of terms such as “comprising,” “including,” “having,” or other similar expressions in this application is intended to cover non-exclusive inclusion, which does not exclude the presence of additional elements in a process, method, or product that includes the stated elements, such that a process, method, or product that includes a list of elements may include not only those defined elements but also other elements not expressly listed, or elements inherent to such a process, method, or product.
[0046] Similar to the understanding in the Examination Guidelines, in this application, expressions such as "greater than," "less than," and "exceeding" are understood to exclude the stated number; expressions such as "above," "below," and "within" are understood to include the stated number. Furthermore, in the description of the embodiments in this application, "multiple" means two or more (including two), and similar expressions related to "multiple" are also understood in this way, such as "multiple groups" and "multiple times," unless otherwise explicitly specified.
[0047] In the description of the embodiments of this application, the space-related expressions used, such as "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "vertical," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential," indicate the orientation or positional relationship based on the orientation or positional relationship shown in the specific embodiments or drawings. They are only for the purpose of describing the specific embodiments of this application or for the reader's understanding, and do not indicate or imply that the device or component referred to must have a specific position, a specific orientation, or be constructed or operated in a specific orientation. Therefore, they should not be construed as limitations on the embodiments of this application.
[0048] Unless otherwise expressly specified or limited, the terms "installation," "connection," "linking," "fixing," and "setting," as used in the description of the embodiments of this application, should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral setting; it can be a mechanical connection, an electrical connection, or a communication connection; it can be a direct connection or an indirect connection through an intermediate medium; it can be the internal connection of two components or the interaction between two components. For those skilled in the art to which this application pertains, the specific meaning of the above terms in the embodiments of this application can be understood according to the specific circumstances.
[0049] Please refer to Figure 1 This invention provides a wearable device battery life testing device, including a biomimetic model 10, a temperature acquisition module, an operating status detection module 30, and a timing component.
[0050] The biomimetic model 10 has a wearable part for assembling the wearable product 11 under test. This wearable part geometrically simulates the wearing structure of the wearable product on the human body, ensuring that the wearable product 11 is fixed in a realistic fit during testing. Because existing tests often use a bare-body method, they cannot reflect the heat exchange mechanism between the device and human tissue, resulting in temperature rise behavior deviating from actual usage conditions. By introducing the biomimetic model 10 with a similar wearing contact relationship, the heat dissipation path, force distribution, and operating load of the wearable product during testing are made closer to the human wearing scenario, providing a foundation for obtaining accurate temperature rise data.
[0051] The temperature acquisition module includes a temperature sensor 21 located in the area where the wearable product 11 and the bionic model 10 are in contact, and a temperature recording device 22 connected to the temperature sensor 21. During the operation of the wearable product, its outer shell temperature will dynamically change due to factors such as internal battery discharge, power output, and heat accumulation.
[0052] In this embodiment, by placing the temperature sensor 21 on the bonding interface, the temperature rise at this critical location can be monitored in real time. The temperature recording device 22 is used to continuously record the temperature curve of the entire operating cycle, avoiding the discontinuity and discrete errors that are easily caused by manual reading, thereby making the temperature rise data more continuous, real and reproducible.
[0053] Please refer to Figure 2 In order to accurately determine the operating status of wearable products, this device is also equipped with an operating status detection module 30, which is used to obtain the current operating status and operating status signals of the wearable product 11 under test.
[0054] Specifically, the operation status detection module 30 determines the running and stopping status of the wearable product 11 based on the operation signals emitted by the wearable product 11 during operation.
[0055] It is understandable that for different types of wearable products, the operating signal may be an acoustic signal emitted by a speaker, an electrical signal output by internal circuitry, or other characteristic signals. The operating status detection module 30 collects these signals and converts them into electrical signals suitable for subsequent judgment. Unlike traditional methods that rely on manual listening or observation of external device indicators, this embodiment can automatically identify changes in operating signals, making the determination of the operating status more timely, accurate, and free from human interference.
[0056] The timing component, connected to the operation status detection module 30, is used to start timing when a status operation signal indicating the start of operation is received, and to stop timing when a status operation signal indicating the stop of operation is received, so that the timing time recorded by the timing component is taken as the operation duration of the wearable product 11 under test.
[0057] When the operation status detection module 30 detects the presence of an operation signal, the timing component immediately starts timing; when the operation signal disappears, the timing component immediately stops, and the obtained timing time is taken as the operating duration of the wearable product. It can be understood that this operating duration can be used as a characterization of the battery life of the wearable product 11 under test.
[0058] In this embodiment, timing is triggered by electrical signals instead of manual judgment, resulting in higher accuracy and consistency in the measurement of the operating cycle. Since endurance tests often last for a long time, manual methods are easily affected by fatigue, delays, and environmental noise, while automated timing can provide stable and unbiased data throughout the entire operating cycle.
[0059] In some alternative implementations, the biomimetic model 10 is made of a material with thermophysical properties similar to human tissue, including specific heat capacity, thermal conductivity, and / or density. Because human heat dissipation is taken into account, the actual usage scenario of the wearable product 11 is simulated, and the measured temperature value is very close to the actual temperature value of the wearable product 11 when it is used.
[0060] Specifically, the biomimetic model 10 is made of a material with specific heat capacity, thermal conductivity, and density similar to human soft tissue. Since the thermal diffusion characteristics of human tissue affect the temperature rise evolution of the wearable product's outer shell, if the biomimetic model 10 only has a similar shape but mismatched thermal properties, it cannot effectively reproduce the heat transfer behavior during actual wear. By using materials with human-like thermal properties, the heat generated during the wearable product's operation can diffuse into the model in a manner similar to human heat dissipation, thereby improving the realism of the temperature rise test.
[0061] In some alternative embodiments, the biomimetic model 10 is provided with a heating element 51 for heating and a constant temperature control device 52 connected to the heating element 51. The constant temperature control device 52 is used to control the heating element 51 to adjust and maintain the temperature of the biomimetic model 10 within a preset range.
[0062] Generally, human skin temperature is typically between approximately 33°C and 37°C. This temperature range significantly impacts the battery performance, radio frequency output, audio power, and thermal management of wearable products. Therefore, by actively controlling the temperature of the bionic model 10 using the thermostat 52, a thermal environment consistent with that of the real human body can be provided for the wearable product. Furthermore, by coordinating with the internally arranged bionic temperature sensor 21 to form a closed-loop regulation, the model temperature can be kept stable throughout the testing period, thereby ensuring test repeatability.
[0063] In some optional implementations, the operation status detection module 30 includes a signal receiving component for receiving operation signals from the wearable product 11 under test, and a signal processing circuit connected to the signal receiving component; the signal processing circuit is used to compare the strength of the operation signal with a preset threshold to generate a status operation signal indicating the start or stop of operation.
[0064] In some implementations, the operating status detection module 30 may include a signal receiving component and a signal processing circuit connected thereto. The signal receiving component is used to acquire the operating signal output by the wearable product in its operating state, while the signal processing circuit amplifies, filters, and performs threshold comparison on the signal to generate a status operating signal indicating the start or stop of operation. By using a threshold comparison mechanism to determine the operating status based on the strength of the operating signal, the detection process does not rely on manual observation, thereby significantly improving the automation level of battery life testing and helping to ensure the accuracy of test results.
[0065] In this embodiment, the wearable product 11 under test is a TWS earphone.
[0066] Based on this, the wearable part of the bionic model 10 includes an auricular structure and an ear canal structure for assembling the wearable product 11 under test, so as to simulate the contact method of headphones being worn on the human ear.
[0067] For example, a bionic ear model is used as bionic model 10. This bionic ear model, used to house and accommodate the tested TWS earphones, has a geometry and thermophysical properties (such as specific heat capacity, thermal conductivity, density, etc.) close to those of a real human ear (including the auricle, ear canal entrance, and part of the ear canal structure), and / or can be regulated to and maintained at a temperature close to that of the human ear (e.g., 33°C-37°C). Furthermore, the bionic ear model is preferably made of silicone, a bionic material similar to the thermal properties of human tissue, to more realistically simulate the heat exchange process between the earphones and the human ear during earphone wear. Internal or external temperature regulation and maintenance mechanisms can be integrated into it.
[0068] Please refer to this again. Figure 2 Furthermore, the signal receiving component is a sound receiving component 31 used to receive the sound played by the wearable product 11 under test; for example, the signal receiving component can be a sound receiving component 31, i.e., a microphone, used to receive the sound wave signal generated by the sound played by the headphones.
[0069] In practical applications, the sound receiving component 31 is a sound collector. The sound collector is set at a position that can collect the sound played by the TWS earphone under test (preferably close to the ear canal outlet or earphone sound outlet of the bionic ear model) to collect the sound signal emitted by the earphone under test.
[0070] The signal processing circuit includes a filtering circuit, an audio decoder 32 connected to the sound receiving component 31, and an audio processing component 33 connected to the audio decoder 32.
[0071] The filtering circuit is used to filter the operating signal converted from the sound signal received by the sound receiving unit 31. The audio processing unit 33 is used to compare the strength of the filtered operating signal with a preset threshold, and generate a corresponding operating signal indicating the start or stop of operation based on the appearance and disappearance of the electrical signal of the playing sound.
[0072] Specifically, the wearable device battery life testing device also includes a controller 40; an audio processing unit 33 is electrically connected to the audio decoder 32 and the timing unit respectively, and is used to receive the electrical signal output by the audio decoder 32; when the audio processing unit 33 receives a valid electrical signal, the controller 40 controls the timing unit to start timing; when the audio processing unit 33 does not receive a valid electrical signal (or the electrical signal strength is lower than a preset threshold), the controller 40 controls the timing unit to stop timing; the timing unit is used to record the duration of the test headphones from the start of playing sound to the stop of playing sound, i.e., the battery life.
[0073] In some alternative implementations, the wearable device battery life testing apparatus also includes a constant temperature chamber 53, in which at least a portion of the bionic model 10, the wearable product under test 11, and the temperature acquisition module are disposed, for simulating testing under different ambient temperature and / or humidity conditions.
[0074] During testing, the test headphones were placed in a constant temperature chamber 53. The temperature and humidity of the chamber were adjusted to further simulate the usage environment of the headphones. Thermocouples were attached to the contact points of the human ear model and the headphones, and both were placed in the constant temperature chamber to accurately simulate the usage scenario.
[0075] In addition, the constant temperature chamber 53 can also be a temperature and humidity chamber, providing the temperature and humidity environment required for the experiment.
[0076] Understandably, the constant temperature chamber 53 is used to provide a stable ambient temperature for the bionic model 10, wearable products, and some temperature acquisition modules, preventing external environmental fluctuations from interfering with temperature rise and battery life testing. Since wearable products are quite sensitive to ambient temperature, a constant temperature environment can improve data consistency across batches of testing.
[0077] In some optional embodiments, the biomimetic model 10 is equipped with a biomimetic temperature sensor 21 for monitoring its body temperature. The biomimetic temperature sensor 21 is used to monitor the actual internal temperature of the model and provide timely feedback to the constant temperature control device 52 to improve the temperature control accuracy.
[0078] In some alternative implementations, the temperature sensor 21 is a thermocouple or a thermistor, which has the advantages of fast response, high accuracy and suitability for temperature measurement, thereby improving the accuracy of temperature rise acquisition.
[0079] More specifically, in the embodiments, the bionic ear model integrates a heating component 51 (such as a micro heating element, heating wire, or flow channel heating module) and a constant temperature control device 52. The heating component 51 is used to uniformly or partition the bionic ear model. The constant temperature control device 52 is electrically connected to the heating component 51 and may include a temperature sensor 21 (such as an NTC thermistor, PT100, etc., which can be set at key positions on the surface or inside the bionic ear model to monitor its body temperature). This sensor is used to precisely regulate and maintain the temperature of the bionic ear model within a preset human ear temperature range (e.g., 33℃-37℃), thereby simulating the basic temperature environment of a living ear.
[0080] Furthermore, the wearable device battery life testing device also includes a display, which is electrically connected to the temperature recording device 22 and / or processing unit for real-time display or playback of temperature data and / or battery life.
[0081] Please refer to the figure. Based on the foregoing embodiments, this embodiment of the invention provides a method for testing the battery life of wearable devices, including:
[0082] S1. The wearable product 11 to be tested is assembled onto the bionic model 10 with a wearable part;
[0083] S2. A temperature sensor 21 is set in the contact area between the wearable product 11 under test and the bionic model 10, and the temperature data of the wearable product 11 under test during operation is recorded by the temperature recording device 22.
[0084] S3. The operating status of the wearable product 11 under test is obtained through the operating status detection module 30 and a status operating signal indicating the start or stop of operation is generated.
[0085] S4. Start or stop timing according to the status operation signal, and use the time obtained by timing as the operating duration of the wearable product 11 under test.
[0086] In this embodiment, the aforementioned steps fully automate the battery life test from operation recognition to timing, reducing the uncertainty caused by human intervention and improving test efficiency.
[0087] In some optional embodiments, the wearable product under test 11 is a TWS earphone. A temperature sensor 21 is set in the contact area between the wearable product under test 11 and the bionic model 10. Before the temperature data of the wearable product under test 11 during operation is recorded by the temperature recording device 22, at least a part of the bionic model 10, the wearable product under test 11 and the temperature sensor 21 are placed in a constant temperature environment and the temperature of the constant temperature environment is adjusted to a preset temperature range to ensure the consistency of the test environment.
[0088] Before starting or stopping the timing based on the status operation signal and using the time obtained from the timing as the operating duration of the wearable product under test 11, the operation signal acquired by the operation status detection module 30 is first filtered to eliminate background noise; then the strength of the filtered operation signal is compared with a preset threshold to determine whether to generate a status operation signal indicating the start or stop of operation.
[0089] Finally, it should be noted that although the above embodiments have been described in the text and drawings of this application, this should not be construed as limiting the scope of protection of this application. Any technical solutions resulting from equivalent structural or procedural substitutions or modifications made based on the essential concept of this application and utilizing the content described in the text and drawings of this application, as well as the direct or indirect application of the technical solutions of the above embodiments to other related technical fields, are all included within the scope of protection of this application.
Claims
1. A wearable device endurance test apparatus, characterized by, The application comprises: a bionic model with a wearing part for assembling a measured wearing product; a temperature acquisition module comprising a temperature sensor arranged at a contact area between the measured wearing product and the bionic model, and a temperature recording device connected with the temperature sensor; an operating state detection module for obtaining a current operating state of the measured wearing product and a state operating signal; a timing component connected with the operating state detection module, for starting timing when the state operating signal indicating the start of operation is received, and stopping timing when the state operating signal indicating the stop of operation is received, so that the timing time recorded by the timing component is taken as the operation duration of the measured wearing product.
2. The wearable device endurance testing apparatus of claim 1, wherein, The bionic model is made of a material with human body tissue thermal physical properties, including specific heat capacity, thermal conductivity and / or density.
3. The wearable device endurance testing apparatus of claim 1, wherein, The bionic model is internally provided with a heating component for heating, and a constant temperature control device connected with the heating component, which is used to control the heating component to adjust and maintain the temperature of the bionic model within a preset range.
4. The wearable device endurance testing apparatus of claim 1, wherein, The operating state detection module comprises a signal receiving component for receiving the operating signal of the measured wearing product, and a signal processing circuit connected with the signal receiving component; The signal processing circuit is used to compare the strength of the operating signal with a preset threshold to generate the state operating signal indicating the start or stop of operation.
5. The wearable device endurance testing apparatus of claim 4, wherein, The measured wearing product is a TWS earphone. The wearing part of the bionic model comprises an auricle structure and an ear canal structure for assembling the measured wearing product. The signal receiving component is a sound receiving component for receiving the playing sound of the measured wearing product; the signal processing circuit comprises a filter circuit, an audio decoder connected with the sound receiving component, and an audio processing component connected with the audio decoder; The filter circuit is used to filter the converted operating signal of the sound signal received by the sound receiving component, and the audio processing component is used to compare the strength of the filtered operating signal with a preset threshold, and generate the corresponding state operating signal indicating the start or stop of operation based on the appearance and disappearance of the electric signal of the playing sound.
6. The wearable device endurance testing apparatus of claim 1, wherein, A thermostat is further included, and at least a part of the bionic model, the measured wearing product and the temperature acquisition module are arranged in the thermostat.
7. The wearable device endurance testing apparatus of claim 1, wherein, The bionic model is internally provided with a bionic body temperature sensor for monitoring the temperature of the bionic model.
8. The wearable device endurance testing apparatus of claim 7, wherein, The temperature sensor is a thermocouple or a thermistor.
9. A method for testing the endurance of a wearable device, the method comprising: The application comprises: assembling a measured wearing product on a bionic model with a wearing part; arranging a temperature sensor at a contact area between the measured wearing product and the bionic model, and recording the temperature data of the measured wearing product during operation by a temperature recording device; obtaining the operating state of the measured wearing product by an operating state detection module and generating a state operating signal indicating the start or stop of operation; starting or stopping timing according to the state operating signal, and taking the time obtained by the timing as the operation duration of the measured wearing product. 10.The wearable device endurance test method of claim 9, wherein, Before the temperature sensor is arranged at the fitting area of the measured wearing product and the bionic model, and the temperature data of the measured wearing product during operation is recorded by the temperature recording device, the method further comprises the steps of: Placing the bionic model, the measured wearing product and at least a part of the temperature sensor in a constant temperature environment, and adjusting the temperature of the constant temperature environment to a preset temperature range; Before the time is started or stopped according to the state running signal, and the time obtained by the time is used as the running duration of the measured wearing product, the method further comprises the steps of: Filtering the running signal obtained by the running state detection module to eliminate background noise; Comparing the strength of the filtered running signal with a preset threshold to determine whether to generate the state running signal indicating the start or stop of operation.