Testing device and testing method of air conditioner, electronic equipment and storage medium

Through the test device and method of the air conditioner, the control module and the environment module are used to solve the problem that the power consumption test in the prior art cannot reflect the power consumption of the air conditioner under dynamic load, and a more accurate power consumption test is achieved.

CN119984888APending Publication Date: 2025-05-13XIAOMI TECH (WUHAN) CO LTD +2
View PDF 0 Cites 1 Cited by

Patent Information

Application Number
CN202510218513.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-25
Publication Date
2025-05-13

AI Technical Summary

Technical Problem

In the prior art, the power consumption test of the air conditioner is mainly carried out under steady-state operating conditions, which cannot accurately reflect the power consumption of the air conditioner under dynamically changing loads.

Method used

It provides a test device and method for an air conditioner, including a control module and an environmental module, which is used to determine the operating parameters and power consumption of the air conditioner in multiple temperature control stages, and the environmental module is used to execute environmental parameters and provide an operating environment closer to the actual use scenario.

Benefits of technology

By testing the power consumption of the air conditioner under the operating parameters of multiple temperature control stages, the power consumption of the air conditioner under dynamically changing load can be more accurately reflected, improving the accuracy of the test.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119984888A_ABST
    Figure CN119984888A_ABST
Patent Text Reader

Abstract

The invention relates to an air conditioner testing device and method, electronic equipment and a storage medium, and relates to the technical field of testing, the air conditioner testing device comprises a control module and an environment module, and the control module is in communication connection with an air conditioner and the environment module; the control module is used for determining environmental parameters of the air conditioner in the testing process and operating parameters of the air conditioner in a plurality of temperature control stages, and determining power consumption of the air conditioner after executing the operating parameters; the environment module is used for executing the environment parameters so as to provide the operation environment of the air conditioner in the testing process. By using the testing device of the air conditioner provided by the invention, the power consumption of the air conditioner under the dynamic load can be tested.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present disclosure relates to the field of testing technology, and in particular to a testing device, a testing method, an electronic device and a storage medium for an air conditioner. Background Art

[0002] Air conditioning energy consumption refers to the amount of electricity consumed by the air conditioner during operation. The higher the air conditioning energy consumption, the more electricity the air conditioner consumes.

[0003] In the related art, most air conditioner manufacturers will provide users of the air conditioner with the power consumption of the air conditioner after running for a period of time, so that users can understand the power consumption of the air conditioner. However, the power consumption provided is the power consumption of the air conditioner under steady-state conditions. Summary of the invention

[0004] In order to overcome the problems existing in the related art, the present disclosure provides a testing device, a testing method, an electronic device and a storage medium for an air conditioner.

[0005] According to a first aspect of an embodiment of the present disclosure, there is provided a test device for an air conditioner, comprising: a control module and an environment module, wherein the control module is communicatively connected with the air conditioner and the environment module respectively;

[0006] The control module is used to determine the environmental parameters of the air conditioner during the test and the operating parameters of the air conditioner in multiple temperature control stages, and determine the power consumption of the air conditioner after executing the operating parameters;

[0007] The environment module is used to execute the environment parameters to provide an operating environment for the air conditioner during the test.

[0008] Optionally, the control module is also communicatively connected with the first configuration module and the second configuration module respectively;

[0009] The first configuration module is used to generate the environmental parameters according to the test mode and / or generate the environmental parameters according to the user configuration, and send the environmental parameters to the control module;

[0010] The second configuration module is used to generate the operating parameters according to the test mode and / or generate the operating parameters according to the user configuration, and send the operating parameters to the control module.

[0011] Optionally, the environmental parameters include at least one of the following:

[0012] The initial inner ring temperature of the air conditioner, the initial outer ring temperature of the air conditioner, and the outdoor temperature control curve after the outdoor temperature of the air conditioner reaches the initial outer ring temperature.

[0013] Optionally, the environment module includes a first regulation module, and the first regulation module is communicatively connected with the control module;

[0014] The control module is used to encapsulate the environmental parameters into a first operating instruction, and send the first operating instruction to the first regulating module;

[0015] The first control module is used to control the indoor generator to adjust the indoor environment of the air conditioner to the initial inner ambient temperature, and control the outdoor generator to adjust the outdoor environment of the air conditioner to the initial outer ambient temperature according to the first operation instruction.

[0016] Optionally, the environment module further includes a first stability judgment module, the first stability judgment module is used to send a power-on instruction to the control module when it is determined that the indoor environment and the outdoor environment of the air conditioner meet a first preset condition, the power-on instruction is used to instruct the control module to start the test of the air conditioner;

[0017] The first preset condition includes at least one of the following:

[0018] The indoor environment of the air conditioner maintains a first state for a time period greater than a first preset time period, wherein the first state includes a difference between the temperature of the indoor environment and the initial internal ring temperature being less than a first preset difference;

[0019] The outdoor environment of the air conditioner maintains a second state for a time period greater than a second preset time period, and the second state includes a difference between the temperature of the outdoor environment and the initial external ring temperature being less than a second preset difference.

[0020] Optionally, the control module is also used to respond to the power-on instruction, control the indoor generator to stop working, start the air conditioner and control the outdoor generator to continue running the environmental parameters.

[0021] Optionally, the operating parameters of the multiple temperature control stages include time periods and target internal ring temperatures corresponding to the multiple temperature control stages, and the target internal ring temperatures corresponding to the multiple temperature control stages gradually decrease or gradually increase.

[0022] Optionally, the control module is used to encapsulate the operating parameters into a second operating instruction; the second operating instruction is used to call the second operating instruction after the air conditioner is started to execute the operating parameters.

[0023] Optionally, the multiple temperature control stages include a first temperature control stage and a second temperature control stage that are adjacent to each other, and the first temperature control stage corresponds to a first target inner ring temperature;

[0024] The control module is further configured to control the air conditioner to enter the second temperature control stage when the indoor temperature provided by the air conditioner satisfies a second preset condition and the first temperature control stage is completed; wherein the indoor temperature provided by the air conditioner satisfies the second preset condition including at least one of the following:

[0025] The indoor temperature provided by the air conditioner within a third preset time period reaches the first target indoor ambient temperature;

[0026] After the indoor temperature provided by the air conditioner reaches the first target internal ambient temperature, the difference between the indoor temperature provided by the air conditioner and the first target internal ambient temperature is less than a third preset difference.

[0027] Optionally, the environment module further comprises a second stability judging module, the second stability judging module being used to send a test instruction to the control module when it is determined that the indoor temperature provided by the air conditioner satisfies the second preset condition and the first temperature control stage is completed;

[0028] The control module is further configured to respond to the test instruction and control the air conditioner to enter the second temperature control stage.

[0029] According to a second aspect of an embodiment of the present disclosure, there is provided a method for testing an air conditioner, which is applied to the testing device for the air conditioner provided in the first aspect of an embodiment of the present disclosure;

[0030] Determining the environmental parameters of the air conditioner during the test and the operating parameters of the air conditioner in multiple temperature control stages through the control module, and determining the power consumption of the air conditioner after executing the operating parameters;

[0031] The environmental parameters are executed by the environmental module to provide an operating environment for the air conditioner during the test.

[0032] According to a third aspect of an embodiment of the present disclosure, there is provided an electronic device, including:

[0033] processor;

[0034] a memory for storing processor-executable instructions;

[0035] Wherein, the processor is configured to:

[0036] Execute the steps of the air conditioner testing method provided in the second aspect of the embodiment of the present disclosure.

[0037] According to a fourth aspect of an embodiment of the present disclosure, a computer-readable storage medium is provided, on which a computer program is stored. When the computer program is executed by a processor, the steps of the air conditioner testing method provided by the second aspect of the embodiment of the present disclosure are implemented.

[0038] The technical solution provided by the embodiments of the present disclosure may have the following beneficial effects:

[0039] First, the operating parameters of multiple temperature control stages can be provided for the air conditioner, and the power consumption of the air conditioner under the operating parameters of multiple temperature control stages can be tested to obtain the power consumption of the air conditioner under dynamically changing loads;

[0040] Secondly, the control module will also send the environmental parameters of the air conditioner during the test to the environmental module for execution, providing an outdoor environment that is closer to the actual usage scenario for the air conditioner to perform the test, making the power consumption test of the air conditioner more accurate.

[0041] It is to be understood that the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the present disclosure. BRIEF DESCRIPTION OF THE DRAWINGS

[0042] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present disclosure and, together with the description, serve to explain the principles of the present disclosure.

[0043] Figure 1 The diagram is a schematic diagram showing the interaction among a control module, an environment module and an air conditioner according to an exemplary embodiment.

[0044] Figure 2 The figure is a schematic diagram showing a configuration operation parameter and an environmental parameter according to an exemplary embodiment.

[0045] Figure 3 The figure is a control flow diagram according to an exemplary embodiment.

[0046] Figure 4 is a schematic diagram of a test bench according to an exemplary embodiment.

[0047] Figure 5 is a schematic diagram of an indoor temperature control curve according to an exemplary embodiment.

[0048] Figure 6 is a schematic diagram of an outdoor temperature control curve according to an exemplary embodiment.

[0049] Figure 7 The present invention is a flowchart showing a method for testing an air conditioner according to an exemplary embodiment.

[0050] Figure 8 The invention is a block diagram showing a testing device for an air conditioner according to an exemplary embodiment.

[0051] Fig. 9 is a block diagram of a chip system according to an exemplary embodiment. DETAILED DESCRIPTION

[0052] Exemplary embodiments will be described in detail herein, examples of which are shown in the accompanying drawings. When the following description refers to the drawings, the same numbers in different drawings represent the same or similar elements unless otherwise indicated. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with the present disclosure. Instead, they are merely examples of devices and methods consistent with some aspects of the present disclosure as detailed in the appended claims.

[0053] It should be noted that all actions of acquiring signals, information or data in the present disclosure are carried out in compliance with the relevant data protection laws and policies of the country where the device is located and with the authorization given by the owner of the corresponding device.

[0054] Figure 1 The present invention is a schematic block diagram of a test device for an air conditioner according to an exemplary embodiment. The test device for an air conditioner includes a control module and an environment module.

[0055] For the control module, the control module is the control center for regulating the environmental module and the air conditioner. The control module can communicate with the air conditioner and the environmental module respectively. The control module is used to determine the environmental parameters of the air conditioner during the test and the operating parameters of the air conditioner in multiple temperature control stages, and send the operating parameters to the air conditioner to determine the power consumption of the air conditioner after executing the operating parameters; the control module can also send the environmental parameters to the environmental module to indicate the operating environmental parameters of the environmental module and provide the air conditioner with a test operating environment.

[0056] See also Figure 3 As shown, the control module can also be connected to the control program in communication, and the control module is used to receive program instructions sent by the control program to adjust the environment module and the air conditioner. The control program can be a test main control program installed in a terminal device, and the terminal device can be a mobile phone, tablet, computer or other terminal.

[0057] Optionally, during the test, the air conditioner needs to execute an indoor temperature control curve to complete the test. The indoor temperature control curve has operating parameters for multiple temperature control stages. Multiple temperature control stages refer to stages with different temperatures. The load of the air conditioner is different in multiple temperature control stages. The operating parameters of multiple temperature control stages include time periods and target internal ambient temperatures corresponding to multiple temperature control stages. The target internal ambient temperatures corresponding to multiple temperature control stages gradually decrease or increase. The target internal ambient temperature corresponding to a temperature control stage refers to the target indoor ambient temperature expected to be achieved in the temperature control stage during the test of the air conditioner. For two adjacent temperature control stages in the multiple temperature control stages, the end time point of the time period corresponding to the previous temperature control stage is the initial time point of the time period corresponding to the next temperature control stage.

[0058] For example, see Figure 5 As shown, taking the multiple temperature control stages on the indoor temperature control curve including temperature control stage A, temperature control stage B and temperature control stage C as an example, the target inner ring temperature corresponding to temperature control stage A, the target inner ring temperature corresponding to temperature control stage B and the target inner ring temperature corresponding to temperature control stage C gradually decrease, and the indoor temperature control curve shows a downward trend. The time period corresponding to temperature control stage A is t0~t1 and the corresponding target inner ring temperature is T in 1; The time period corresponding to the temperature control stage B is t1~t2 and the corresponding target internal temperature is T in 2; The time period corresponding to the temperature control stage C is t2~t3 and the corresponding target internal temperature is T in 3.

[0059] If you need to simulate the power consumption of the air conditioner under the dynamic condition of continuous cooling, you can control the air conditioner to operate in a way that the target internal temperature corresponding to multiple temperature control stages gradually decreases, and when the target internal temperature gradually decreases, the load of the air conditioner gradually increases. For example, refer to Figure 5 The indoor temperature control curve is shown; on the contrary, if it is necessary to simulate the power consumption of the air conditioner under the dynamic condition of continuous heating, the air conditioner can be controlled to operate in a manner where the target internal ambient temperature gradually increases corresponding to multiple temperature control stages; and when the target internal ambient temperature gradually increases, the load of the air conditioner also gradually increases.

[0060] Optionally, the environmental parameters of the air conditioner during the test process include initial environmental parameters required before the air conditioner is started and outdoor environmental parameters required after the air conditioner is started, the initial environmental parameters include an initial inner ring temperature of the air conditioner and an initial outer ring temperature of the air conditioner, the initial inner ring temperature is the initial indoor environmental temperature before the air conditioner is tested, and the initial outer ring temperature is the initial outdoor environmental temperature before the air conditioner is tested; the outdoor environmental parameters required after the air conditioner is started include an outdoor temperature control curve after the outdoor temperature of the air conditioner reaches the initial outer ring temperature, the outdoor temperature control curve includes the target outer ring temperature of the air conditioner in multiple temperature control stages, and the target outer ring temperature is the target outdoor environmental temperature during the air conditioner test.

[0061] For example, see Figure 4As shown, the air conditioner includes an indoor unit and an outdoor unit. The indoor unit is installed indoors and is used to adjust the temperature and humidity of the indoor air. The initial internal temperature of the air conditioner includes the initial indoor temperature and initial indoor humidity of the indoor unit. The indoor environment of the indoor unit can be adjusted to the initial internal temperature by the indoor generator. The outdoor unit is installed outdoors and is used to dissipate the heat in the indoor air to the outdoors, or absorb and transfer the outdoor heat to the indoors, so as to realize the cooling and heating functions of the air conditioner. The initial external temperature of the air conditioner includes the initial outdoor temperature and initial outdoor humidity of the outdoor unit. The outdoor environment of the outdoor unit can be adjusted to the initial external temperature by the outdoor generator.

[0062] The outdoor environmental parameter required after the air conditioner is started is the target external temperature that the outdoor load generator needs to continuously provide during the test of the air conditioner when the outdoor environment where the air conditioner outdoor unit is located reaches the initial external temperature.

[0063] As for the environment module, the environment module is used to execute the above environment parameters to provide the operating environment of the air conditioner during the test. The environment module can be a test bench, see Figure 4 As shown, two spaces, an indoor environment and an outdoor environment, are provided in the test bench. An indoor air conditioner indoor unit and an indoor generator are installed in the indoor environment; an outdoor air conditioner outdoor unit and an outdoor generator are installed in the outdoor environment.

[0064] In some cases, see Figure 1 and Figure 3 As shown, the control program in the terminal sends the test program required for the test process to the control module, the control module sends the environmental parameters required for the test process to the environment module, and sends the operating parameters to the air conditioner.

[0065] See also Figure 4 As shown, the indoor environment can be adjusted to the initial inner temperature through the indoor generator, and adjusted to the initial outer temperature through the outdoor generator. When the indoor environment reaches the initial inner temperature and the outdoor environment reaches the initial outer temperature, the indoor generator can be controlled to stop working, and then the air conditioner can be controlled to start. At this time, the air conditioner runs according to the operating parameters to execute the test process, generating Figure 5 The indoor temperature control curve of multiple temperature control stages in the room is shown; it is also necessary to control the outdoor generator to continue working to produce Figure 6 The outdoor temperature control curves of multiple temperature control stages are shown. In this way, the indoor unit of the air conditioner continues to cool / heat under the dynamic working conditions of multiple temperature control stages, and the outdoor generator provides a more realistic outdoor environment for the outdoor unit of the air conditioner, so that the simulated test environment of the air conditioner is more in line with the actual situation of user use, and the power consumption obtained is also closer to the power consumption when the user uses the air conditioner.

[0066] In the related art, the power consumption provided by air conditioner manufacturers to users is the power consumption of the air conditioner under steady-state conditions. For example, the power consumption of the air conditioner to continuously provide an indoor environment with an indoor temperature of 26°C and a cooling time of 6 hours is the power consumption of the air conditioner under the steady-state condition where the indoor temperature output by the air conditioner is 26°C.

[0067] In the present disclosure, the operating parameters of multiple temperature control stages can be provided for the air conditioner, and the power consumption of the air conditioner under the operating parameters of multiple temperature control stages can be tested. Figure 5 As shown, the operating parameters of multiple temperature control stages include the target inner ambient temperature of 30°C from t0 to t1, the target inner ambient temperature of 28°C from t1 to t2, and the target inner ambient temperature of 26°C from t2 to t3. When the air conditioner executes the operating parameters of multiple stages, the indoor temperature will be controlled to reach 30°C during the time period of t0 to t1, the indoor temperature will be controlled to reach 28°C during the time period of t1 to t2, and the indoor temperature will be controlled to reach 26°C during the time period of t2 to t3. After the operating parameters of multiple temperature control stages are executed, the power consumption of the air conditioner can be obtained, and then the power consumption required for the air conditioner to change the indoor environment from 30°C, 28°C, and 26°C under dynamic conditions can be obtained, which provides the power consumption of the air conditioner under dynamic conditions / dynamic loads.

[0068] In addition, the control module will send the environmental parameters of the air conditioner during the test to the environmental module for execution, providing an outdoor environment that is closer to the actual usage scenario for the air conditioner to perform the test, making the power consumption test of the air conditioner more accurate.

[0069] Figure 2 It is a schematic diagram of a module for configuring environmental parameters and operating parameters involved in the present disclosure, which includes a first configuration module and a second configuration module, and the first configuration module and the second configuration module are both communicatively connected to the control module.

[0070] Optionally, see Figure 2 As shown, the first configuration module and the second configuration module are both communicatively connected to the operating condition configuration module, and the operating condition configuration module is communicatively connected to the control module.

[0071] Among them, under the working condition configuration module, the tester can select and / or configure the test conditions under the working condition configuration module according to the test requirements.

[0072] After the tester selects the dynamic working condition in the first configuration module to which the working condition configuration module is communicatively connected, the second configuration module will select the operating parameters associated with the dynamic working condition to perform the power consumption test of the air conditioner.

[0073] For example, see Figure 2As shown, the dynamic working condition 1 and the dynamic working condition 2 under the first configuration module belong to the built-in operating conditions set in the system. The tester can select at least one of the dynamic working condition 1 and the dynamic working condition 2 under the working condition configuration module according to the test requirements to perform the test of the air conditioner. The corresponding operating parameter 1 associated with the dynamic working condition 1 and the operating parameter 2 associated with the dynamic working condition 2 in the second configuration module are also built-in operating conditions set in the system. After the tester selects the dynamic working condition 1, the second configuration module will automatically select the operating parameter 1 associated with the dynamic working condition 1 to perform the power consumption test of the air conditioner. After the tester selects the dynamic working condition 2, the second configuration module will also automatically select the operating parameter 2 associated with the dynamic working condition 2 to perform the power consumption test of the air conditioner.

[0074] After the tester configures the custom working condition in the first configuration module, the tester can also configure the custom operating parameters associated with the custom working condition in the second configuration module.

[0075] For example, see Figure 2 As shown, the custom working condition under the first configuration module is a custom working condition that the system opens to the tester and can be freely set. After the tester configures the custom working condition under the first configuration module, the system will prompt the tester to enter the custom operating parameters of the air conditioner under the second configuration module according to fixed rules. The custom operating parameters include the target inner ambient temperature, operating wind speed and time period of each temperature control stage. After the tester sets the target inner ambient temperature and other parameters of each temperature control stage, the system will automatically associate the custom operating parameters with the custom working condition.

[0076] Optionally, the first configuration module is used to generate environmental parameters according to the test mode and / or generate environmental parameters according to user configuration, and send the environmental parameters to the control module.

[0077] After the first configuration module generates the environmental parameters, the environmental parameters may be directly sent to the control module, or the environmental parameters may be forwarded to the second regulation module and fed back to the control module through the second regulation module.

[0078]

[0079] Table 1

[0080] In Table 1, T in Represents the indoor temperature, RH in Represents indoor humidity; T out Represents outdoor temperature, RH out Represents outdoor humidity.

[0081] One example of the first configuration module generating environmental parameters related to the operating environment of the air conditioner according to the test mode: As shown in Table 1, the first configuration module can generate environmental parameters in dynamic working condition 1 according to test mode 1, and the environmental parameters in dynamic working condition 1 include the initial internal ring temperature T of indoor environment 1. in 1-0 / RH in 1. Initial external ring temperature T of outdoor environment 1 out 1-0 / RH out 1 and the outdoor temperature control curve in each temperature control stage, the outdoor temperature control curve in each temperature control stage has a target external temperature T_ at multiple time points out 1.

[0082] Among them, the setting value of the initial internal temperature of indoor environment 1 is T in 1-0 / RH in 1. T in The value range of 1-0 is 32℃~35℃, and the optional value is 32℃; RH in The optional value range of 1 is 80% ± 5%. The initial external temperature setting value of indoor environment 1 is T out 1-0 / RH out 1. T in The value range of 1-0 is 35℃~38℃, the optional value is 35℃, RH in The optional value range of 1 is 45%±5%.

[0083] Example 2 of the first configuration module generating environmental parameters related to the operating environment of the air conditioner according to the test mode: As shown in Table 1, the first configuration module can generate environmental parameters in dynamic working condition 2 according to test mode 2, and the environmental parameters in dynamic working condition 2 include the initial inner ring temperature T of indoor environment 2. in 2-0 / RH in 2. Initial external temperature T of outdoor environment 2 out 2-0 / RH out 2 and the outdoor temperature control curve in each temperature control stage, the outdoor temperature control curve in each temperature control stage has a target external temperature T_ at multiple time points out 2.

[0084] Among them, the setting value of the initial internal temperature of indoor environment 2 is T in 2-0 / RH in 2, where T in The value range of 2-0 is 28℃~30℃, the optional value is 30℃, RH in The optional value range of 2 is 80% ± 5%. The initial external temperature setting value of indoor environment 2 is T out 2-0 / RH out 2, where T inThe value range of 2-0 is 30℃~35℃, the optional value is 32℃, RH in The optional value range of 1 is 45%±5%.

[0085] An example of the first configuration module generating environmental parameters related to the operating environment of the air conditioner according to the user configuration: As shown in Table 1, the first configuration module can generate environmental parameters in a custom working condition according to the user configuration, and the environmental parameters in the custom working condition include the initial inner ring temperature T of the indoor environment 3. in 3-0 / RH in 3. Initial external ring temperature T of outdoor environment 3 out 3-0 / RH out 3 and the outdoor temperature control curve in each temperature control stage, the outdoor temperature control curve in each temperature control stage has a target external temperature T_ at multiple time points out 3.

[0086] Among them, the initial inner ring temperature T in 3-0 / RH in 3 can be set by the test technician; initial outer ring temperature T out 3-0 / RH out 3 Can be set by the test technician.

[0087] Optionally, the second configuration module is used to generate operating parameters according to the test mode and / or generate operating parameters according to user configuration, and send the operating parameters to the control module.

[0088] After the second configuration module generates the operating parameters, the operating parameters may be forwarded to the second regulation module, and then fed back to the control module through the second regulation module.

[0089] Referring to Table 1, when the control module determines that the tester has selected dynamic condition 1, it will automatically determine that the air conditioner should operate according to operating parameter 1 under the test condition of dynamic condition 1, and operate according to the target internal ambient temperature of each temperature control stage under dynamic condition 1 shown in Table 1; when the control module determines that the tester has selected dynamic condition 2, it will automatically determine that the air conditioner should operate according to operating parameter 2 under the test condition of dynamic condition 2, and operate according to the target internal ambient temperature of each temperature control stage under dynamic condition 2 shown in Table 2; when the control module determines that the tester has selected a custom condition, it will automatically determine that the air conditioner should operate according to custom operating parameters under the test condition of the custom condition, and operate according to the target internal ambient temperature of each temperature control stage under the custom condition shown in Table 1.

[0090] One example of the second configuration module generating operating parameters of the air conditioner according to the test mode: As shown in Table 1, the second configuration module can generate operating parameters in dynamic working condition 1 according to test mode 1, and the operating parameters include the target internal temperature T of indoor environment 1 in each temperature control stage.in 1-1, T in 1-1-△T1-1 and T in 1-1-△T1-2, etc.

[0091] Among them, the target inner ring temperature T under dynamic condition 1 in The selectable value range of 1-1 is T in 1-0-△T1-0, the optional value of △T1-0 is 4℃; the selectable value range of △T1-1 is 2℃~4℃, and the optional value is 3℃; the selectable value range of △T1-2 is 4℃~6℃, and the optional value is 5℃.

[0092] Example 2 of the second configuration module generating the operating parameters of the air conditioner according to the test mode: As shown in Table 1, the second configuration module can generate the operating parameters in the dynamic working condition 2 according to the test mode 2, and the operating parameters include the target internal temperature T of the indoor environment 2 in each temperature control stage. in 2-1, T in 2-1-△T2-1 and T in 2-1-△T2-2, etc.

[0093] Among them, the target inner ring temperature T under dynamic condition 2 in The selectable value range of 2-1 is T in 2-0-△T2-0, the optional value of △T2-0 is 2℃; the selectable value range of △T2-1 is 1℃~3℃, and the optional value is 2℃; the selectable value range of △T2-2 is 3℃~5℃, and the optional value is 4℃.

[0094] An example of the second configuration module generating the operating parameters of the air conditioner according to the user configuration: As shown in Table 1, the second configuration module can generate the operating parameters in the custom working condition according to the tester configuration, and the operating parameters include the target internal temperature T of the indoor environment 3 in each temperature control stage. in 3-1, T in 3-1-△T3-1 and T in 3-1-△T3-2, etc.

[0095] Among them, the target inner ring temperature T under the custom working condition in 3-1 can be set by the tester; the selectable value range and optional values ​​of △T3-1 and △T3-2 can be set by the tester.

[0096] In some scenarios, taking custom working conditions as an example, the tester can configure the custom working conditions under the first configuration module, and the custom working conditions include the environmental parameters in which the air conditioner is running, such as the initial inner ring temperature of the indoor environment, the initial outer ring temperature of the outdoor environment, and the outdoor temperature control curve after the outdoor environment temperature reaches the initial outer ring temperature under the custom working conditions, and the outdoor temperature control curve includes the target outer ring temperature under multiple temperature control stages; the tester can also configure the operating parameters associated with the custom working conditions under the second configuration module, such as the indoor temperature control curve after the indoor environment reaches the initial inner ring temperature, and the indoor temperature control curve includes the target inner ring temperature under multiple temperature control stages.

[0097] Through the above technical solution, users can select or configure environmental parameters under dynamic conditions, or select or configure operating parameters associated with dynamic conditions, thereby providing the air conditioner with a variety of test environments or diverse test requirements, and also enabling the air conditioner's power consumption test to adaptively change according to user settings.

[0098] Figure 3 It is shown that after the environmental parameters are configured, the control module still needs to adjust the environmental parameters of the air conditioner to the initial environmental parameters before executing the power consumption test of the air conditioner.

[0099] See also Figure 3 As shown, the environment module also includes a first regulation module, and the first regulation module is communicatively connected with the control module.

[0100] The control module is used to encapsulate the environmental parameters into a first operating instruction and send the first operating instruction to the first regulation module. According to the first operating instruction, the first regulation module controls the indoor generator to adjust the indoor environment of the air conditioner to the initial inner ring temperature, and controls the outdoor generator to adjust the outdoor environment of the air conditioner to the initial outer ring temperature.

[0101] The environment module also includes an outdoor temperature control module and an indoor temperature control module, and both the outdoor temperature control module and the indoor temperature control module are connected to the first control module. After receiving the first operation instruction, the first control module parses the outdoor temperature control instruction and the indoor temperature control instruction in the first operation instruction, and sends the outdoor temperature control instruction to the outdoor temperature control module. The outdoor temperature control module responds to the outdoor temperature control instruction to mobilize the outdoor generator to work and adjust the outdoor environment to the initial external temperature. The first control module also sends the indoor temperature control instruction to the indoor temperature control module. The indoor temperature control module responds to the indoor temperature control instruction to mobilize the indoor generator to work and adjust the indoor environment to the initial internal temperature.

[0102] In some scenarios, if you want to simulate the power consumption of the air conditioner in a cooling scenario in summer, you can adjust the indoor environment to an initial inner ring temperature of 40°C, and adjust the outdoor environment to an initial outer ring temperature of 42°C. Since the initial inner ring temperature of 40°C is close to the actual indoor temperature, and the initial outer ring temperature of 42°C is also close to the actual outdoor temperature, it can more accurately simulate the power consumption of the air conditioner in continuous cooling in real indoor and outdoor environments.

[0103] Through the above technical scheme, the indoor environment can be adjusted to the initial inner ring temperature, thereby simulating the real indoor environment before cooling / heating, so that the air conditioner in the indoor environment can perform cooling / heating based on the real indoor environment when cooling / heating is performed subsequently; the outdoor environment can also be adjusted to the initial outer ring temperature, thereby simulating the real outdoor environment before cooling / heating, so that the environmental parameters of the air conditioner are closer to the actual scene.

[0104] Figure 3 It shows that after the indoor environment is adjusted to the initial inner ring temperature and the outdoor environment is adjusted to the initial outer ring temperature, the power consumption test of the air conditioner will not be started until it is determined that the indoor environment is at a stable initial inner ring temperature and the outdoor environment is at a stable initial outer ring temperature.

[0105] The environment module also includes a first stability judgment module, which is communicatively connected with the outdoor temperature control module and the indoor temperature control module.

[0106] The first stability determination module is used to send a power-on instruction to the control module when it is determined that the indoor environment and the outdoor environment of the air conditioner meet the first preset condition. The power-on instruction instructs the control module to start the test of the air conditioner.

[0107] The first preset condition includes at least one of the following conditions (1) and (2):

[0108] (1) The indoor environment of the air conditioner maintains a first state for a time period greater than a first preset time period, and the first state includes that the difference between the temperature of the indoor environment and the initial internal ring temperature is less than the first preset difference.

[0109] The first stability determination module can send a power-on instruction to the control module when the temperature of the indoor environment where the air conditioner indoor unit of the air conditioner is located maintains a first state for a period longer than a first preset period.

[0110] Taking the first preset difference of 0.3℃ and the first preset time of 30min as an example, when the difference between the temperature of the indoor environment of the air-conditioning indoor unit provided by the indoor generator and the initial internal ring temperature is less than 0.3℃, and the first state is maintained for more than 30min, it is considered that the indoor environment has reached the initial internal ring temperature required for the test, and a power-on command can be sent to the control module.

[0111] The difference between the temperature of the indoor environment where the indoor unit of the air conditioner is located and the initial inner ring temperature refers to the absolute value of the difference between the two.

[0112] (2) The outdoor environment of the air conditioner maintains the second state for a time period greater than a second preset time period, and the second state includes that the difference between the temperature of the outdoor environment and the initial external ring temperature is less than the second preset difference.

[0113] The first stability determination module can send a power-on instruction to the control module when the temperature of the outdoor environment where the air conditioner outdoor unit in the air conditioner is located remains in the second state for a period longer than a second preset period.

[0114] Taking the second preset difference of 0.3℃ and the second preset time of 30min as an example, when the difference between the temperature of the outdoor environment where the air-conditioning outdoor unit is located provided by the outdoor generator and the initial external ring temperature is less than 0.3℃, and the second state is maintained for more than 30min, it is considered that the outdoor environment has reached the initial external ring temperature required for the test, and a power-on command can be sent to the control module at this time.

[0115] The difference between the temperature of the outdoor environment where the air conditioner outdoor unit is located and the initial external ring temperature refers to the absolute value of the difference between the two.

[0116] Optionally, see Figure 3 As shown, the first stability judgment module is also used to send a first operating condition adjustment instruction to the first control module when it is determined that the indoor environment and outdoor environment of the air conditioner do not meet the first preset condition. The first control module mobilizes the indoor temperature control module and the outdoor temperature control module to continue to adjust the indoor environment and the outdoor environment, and adjusts the temperature of the indoor environment to the initial inner ring temperature, and adjusts the temperature of the outdoor environment to the initial outer ring temperature.

[0117] It can be known that if the difference between the temperature of the indoor environment provided by the indoor generator and the initial internal ring temperature is large, it is impossible to obtain the required power consumption of the air conditioner in the cooling / heating process from the initial internal ring temperature to the final target internal ring temperature. For example, if the initial internal ring temperature required for the test is 30°C and the target internal ring temperature is 26°C, then what needs to be obtained is the power consumption consumed by the air conditioner to cool from 30°C to 26°C. When the temperature provided by the indoor generator for the indoor environment is 35°C and the difference between it and the initial internal ring temperature is large, the final power consumption is the power consumption required from 35°C to 26°C, which cannot reflect the power consumption consumed by the air conditioner to cool from the initial internal ring temperature of 30°C to the target internal ring temperature of 26°C.

[0118] In addition, if the difference between the temperature of the indoor environment and the initial inner ring temperature is less than the preset difference and cannot be stabilized for a certain period of time, it also means that the temperature provided by the indoor generator for the indoor environment is dynamically changing, and the power consumption consumed from the required initial inner ring temperature to the target inner ring temperature cannot be accurately obtained. For example, if the temperature provided by the indoor generator for the indoor environment changes dynamically between 30°C, 31°C, and 32°C, then in the end it is impossible to know which temperature among 30°C, 31°C, and 32°C is the power consumption consumed to reach the target inner ring temperature.

[0119] Through the above technical solution, the control module will control the air conditioner to start and perform the power consumption test of the air conditioner only when the temperature of the indoor environment is maintained at the initial inner ring temperature and the temperature of the outdoor environment is maintained at the initial outer ring temperature through the first stability judgment module.

[0120] Firstly, the power consumption test of the air conditioner will be started only when the temperature of the indoor environment is maintained near the initial inner ring temperature. This means that the temperature provided by the indoor generator to the indoor environment is the initial inner ring temperature required for this power consumption test. It can accurately obtain the power consumption of the air conditioner from the initial inner ring temperature to the target inner ring temperature.

[0121] Secondly, when the temperature of the indoor environment is maintained near the initial inner ring temperature and maintained for a certain period of time, the power consumption test of the air conditioner is started, so that the initial environmental parameters of the air conditioner power consumption test are stable rather than changing. Then the power consumption obtained can clearly be the power consumption from the initial inner ring temperature to the target inner ring temperature.

[0122] Figure 3 It shows the process of the control module starting the power consumption test of the air conditioner when the temperature of the indoor environment is stable near the initial inner ring temperature and the temperature of the outdoor environment is stable near the initial outer ring temperature.

[0123] The control module is used to respond to the power-on instruction sent by the first stability judgment module, control the indoor transmitter to stop working, control the air conditioner to start, and control the outdoor generator to continue to operate the environmental parameters.

[0124] The control module responds to the power-on instruction and sends the second working condition adjustment instruction to the first control module. After receiving the second working condition adjustment instruction, the first control module sends the working instruction to the outdoor temperature control module and the indoor temperature control module respectively. After receiving the working instruction, the outdoor temperature control module sends the working instruction to the outdoor generator. The outdoor generator responds to the working instruction and performs the following steps: Figure 6 The outdoor temperature control curve shown continues to provide the target external temperature for the outdoor environment; after the indoor temperature control module receives the working instruction, it sends the working instruction to the indoor generator, and the indoor generator stops working in response to the working instruction.

[0125] The control module also responds to the power-on instruction and sends a third operating condition adjustment instruction to the air conditioner. The air conditioner responds to the third operating condition instruction, retrieves the operating parameters of the air conditioner in each temperature control stage, and executes the test process according to the operating parameters. The control module is also used to encapsulate the operating parameters into a second operating instruction, and the second operating instruction is used to retrieve the second operating instruction after the air conditioner is started to execute the operating parameters; after receiving the third operating condition adjustment instruction, the air conditioner retrieves the second operating instruction, obtains the operating parameters of the air conditioner in each temperature control stage according to the second operating instruction, and executes the test process according to the operating parameters.

[0126] In some cases, see Figure 5 and Figure 6 As shown, the control module controls the indoor generator to adjust the indoor temperature to the initial inner temperature, and controls the outdoor generator to adjust the outdoor temperature to the initial outer temperature at time t0. At this time, the indoor generator can be controlled to stop working and the air conditioner can be controlled to start, so that the air conditioner can be set according to Figure 5 The various operating parameters on the indoor temperature control curve shown in the figure can also control the outdoor generator to continue working to provide the air conditioner with Figure 7 The outdoor temperature control curve shown provides a more realistic outdoor environment.

[0127] Through the above technical scheme, when the temperature of the indoor environment is stable at the initial inner ring temperature and the temperature of the outdoor environment is stable at the initial outer ring temperature, the indoor generator can be controlled to stop working, thereby controlling the air conditioner to start, that is, the indoor generator stops providing temperature for the indoor environment, and the air conditioner provides temperature for the indoor environment, so as to test the power consumption of the air conditioner from the initial inner ring temperature to the final target inner ring temperature; the outdoor generator can also be controlled to continue working, so as to provide a more realistic outdoor environment for the operation of the air conditioner, making the power consumption test of the air conditioner more realistic.

[0128] Figure 3and Figure 5 The present disclosure shows a stability determination scheme in the test process of the air conditioner, which is used to control the air conditioner to stabilize the temperature of the indoor environment near the set operating parameters during the test process, so that the test process is consistent with the expected test process.

[0129] The multiple temperature control stages include an adjacent first temperature control stage and a second temperature control stage. The first temperature control stage corresponds to a first target inner ring temperature, and the second temperature control stage corresponds to a second target inner ring temperature. The first target inner ring temperature is the indoor temperature expected to be reached in the first temperature control stage, and the second target inner ring temperature is the indoor temperature expected to be reached in the second temperature control stage. During the power consumption test of the air conditioner's cooling, the second target inner ring temperature is lower than the first target inner ring temperature; during the power consumption test of the air conditioner's heating, the second target inner ring temperature is higher than the first target inner ring temperature.

[0130] The control module is also used to control the air conditioner to enter the second temperature control stage when the indoor temperature provided by the air conditioner meets the second preset condition, the first temperature control stage is completed, and the end time point of the test process has not been reached.

[0131] The indoor temperature provided by the air conditioner satisfies the second preset condition, which includes at least one of (3) and (4):

[0132] (3) The indoor temperature provided by the air conditioner within the third preset time period reaches the first target indoor ambient temperature.

[0133] (4) After the indoor temperature provided by the air conditioner reaches the first target internal ambient temperature, the difference between the indoor temperature provided by the air conditioner and the first target internal ambient temperature is less than a third preset difference.

[0134] The control module is also used to control the air conditioner to stop working and exit the current power consumption test and execute the next test condition when any of the above conditions (3) and (4) are not met; of course, the power consumption test can also be terminated when there is no subsequent test condition.

[0135] In some cases, see Figure 5 As shown, the first temperature control stage is Figure 5 The temperature control stage A shown (the temperature control stage corresponding to t0~t1), the second temperature control stage is Figure 5 Taking the temperature control stage B (the temperature control stage corresponding to t1 to t2) as an example, if the indoor temperature provided by the air conditioner reaches the first target indoor temperature T within the third preset time t01 from t1 to t1' in 1, and the indoor temperature reaches the first target inner ring temperature T in 1, the indoor temperature subsequently provided by the air conditioner is consistent with the first target internal temperature T in1 is less than the third preset difference Tc1, the air conditioner is controlled to enter the temperature control stage B from the temperature control stage A, and then continue to control the indoor temperature provided by the air conditioner to reach the second target inner ring temperature T corresponding to the temperature control stage B. in 2.

[0136] The indoor temperature provided by the air conditioner is the average temperature of the indoor environment. The selectable value range of the third preset time length t01 is 10min-60min, and the optional value is 25min; the selectable value range of the third preset difference value Tc1 is 0℃-1.5℃, and the optional value is 0.5℃.

[0137] In some cases, see Figure 5 As shown, the first temperature control stage is Figure 5 The temperature control stage B shown (the temperature control stage corresponding to t1 to t2), the second temperature control stage is Figure 5 Taking the temperature control stage C (the temperature control stage corresponding to t2 to t3) as an example, if the indoor temperature provided by the air conditioner reaches the first target indoor temperature T within the third preset time t02 from t2 to t2', in 2, and the indoor temperature reaches the first target inner ring temperature T in 2, the indoor temperature subsequently provided by the air conditioner is consistent with the first target internal temperature T in 2 is less than the third preset difference Tc2, the air conditioner is controlled to enter the temperature control stage C from the temperature control stage B, and then continue to control the indoor temperature provided by the air conditioner to reach the second target inner ring temperature T corresponding to the temperature control stage C. in 3.

[0138] Among them, the selectable value range of the third preset time length t02 is 10min~35min, and the optional value is 20min; the selectable value range of the third preset difference Tc2 is 0℃~1.2℃, and the optional value is 0.5℃.

[0139] Optionally, the control module is further configured to exit the test process to obtain the power consumption of the air conditioner or perform a power consumption test under the next test operation when the indoor temperature provided by the air conditioner meets the second preset condition and reaches the end time point of the test phase. Wherein, reaching the end time point of the test phase refers to the cumulative running time of the air conditioner reaching the preset end time point.

[0140] In some cases, see Figure 5 As shown, if the indoor temperature provided by the air conditioner within the third preset time t03 reaches the first target indoor temperature T in 3, and the indoor temperature reaches the first target inner ring temperature T in 3, the indoor temperature subsequently provided by the air conditioner is consistent with the first target internal temperature T in3 is less than the third preset difference Tc3, and when the end time point t3 of the test phase is reached, the test process is exited or the power consumption test under the next test condition is performed.

[0141] Among them, the selectable value range of the third preset time length t03 is 10min~35min, and the optional value is 20min; the selectable value range of the third preset difference Tc3 is 0℃~1.2℃, and the optional value is 0.5℃.

[0142] It can be understood that the third preset duration is shorter than the duration of the time period corresponding to each temperature control stage.

[0143] In some scenarios, multiple temperature control stages include temperature control stage A, temperature control stage B and temperature control stage C. For the control of the inner ring temperature: before the start time point t0 of the air conditioner, the indoor generator adjusts the temperature of the indoor environment to the initial inner ring temperature (with an allowable error of ±0.3°C); after the start time point t0 of the air conditioner, the indoor generator stops working and the air conditioner is turned on according to the temperature control stage. Figure 5 The indoor temperature control curve shown in the figure is working. Among them, the start time of the air conditioner is recorded as t0, the period from t0 to t1 is the temperature control stage A, the period from t1 to t2 is the temperature control stage B, and the period from t2 to t3 is the temperature control stage C. When the cumulative running time of the air conditioner reaches the time point t3, the experiment of this test condition is ended, and the next test condition is entered or the test is exited. Among them, the optional range of t0 to t1 is 3h to 5h; the optional range of t1 to t2 is 5h to 7h; the optional range of t2 to t3 is 6h to 9h.

[0144] For the control of the external temperature, before the start-up time t0 of the air conditioner, the outdoor generator adjusts the temperature of the outdoor environment to the initial external temperature (with an allowable error of ±0.3°C); after the start-up time t0 of the air conditioner, the outdoor generator continues to work. During the test of the air conditioner, the outdoor generator is operated according to Figure 6 The outdoor temperature control curve shown in the figure works. The start time of the air conditioner is recorded as t0, the period from t0 to t1 is the temperature control stage A, the period from t1 to t2 is the temperature control stage B, and the period from t2 to t3 is the temperature control stage C. When the accumulated running time of the air conditioner reaches the time point t3, the experiment of this test condition is ended, and the next test condition is entered or the test is exited. The values ​​of t1, t2 and t3 in the outdoor temperature control curve are synchronized with the time points in the indoor temperature control curve.

[0145] Optionally, the temperature of the outdoor environment provided by the outdoor generator changes dynamically, and the difference between the temperature of the provided outdoor environment and the target external ring temperature is less than a fourth preset difference.

[0146] For example, see Figure 6As shown in the figure, after △t' after the start of each outdoor temperature control stage, the outdoor generator controls the outdoor ambient temperature to T at a time interval of △t". OUT 0.T OUT 1. T OUT 0.T OUT 2 and T OUT 0 and other target outer ring temperatures. Among them, the optional value of △t' in temperature control stage A is 3h, and the optional value of △t" in temperature control stage B and temperature control stage C is 1h. OUT The optional value of 1 is T OUT 0+△T OUT , T OUT The optional value of 2 is T OUT 0-△T OUT , △T OUT The value range is 0~5℃. By controlling the temperature of the outdoor environment at the target external temperature T OUT 0 changes dynamically up and down, which can simulate a more realistic outdoor temperature.

[0147] Optionally, the environment module further includes a second stability judgment module, which is used to determine that the indoor temperature provided by the air conditioner meets the second preset condition and the first temperature control stage is completed, and then send a test instruction to the control module; the control module is also used to respond to the test instruction and control the air conditioner to enter the second temperature control stage. The completion of the first temperature control stage represents that the current time point has reached the end time point of the time period corresponding to the first temperature control stage.

[0148] like Figure 3 As shown, the second stability judging module is connected to the air conditioner through the operation parameter control module, and the second stability judging module is also connected to the second control module. When the second stability judging module determines that the indoor temperature provided by the air conditioner meets the second preset condition and the first temperature control stage is completed, the test instruction is sent to the control module. The control module responds to the test instruction and sends the first control instruction to the air conditioner. The first control instruction instructs the air conditioner to enter the second temperature control stage from the first temperature control stage.

[0149] When the second stability judgment condition determines that the indoor temperature provided by the air conditioner does not meet the second preset condition, a stop test instruction is sent to the control module. The control module responds to the stop test instruction and sends a second control instruction to the air conditioner. The second control instruction instructs the air conditioner to stop working. The control module will also respond to the stop test instruction to control the second control module to exit the power consumption test.

[0150] Through the above technical scheme, on the first hand, since the indoor environment gradually rises or falls when the user uses the air conditioner, the air conditioner is controlled to reach the target internal ring temperature corresponding to each temperature control stage in each temperature control stage, so that the indoor temperature provided by the air conditioner for the indoor environment during the test process can be gradually reduced or increased according to the set target internal ring temperature. The simulated indoor environment is closer to the indoor environment in which the user actually uses the air conditioner, so the power consumption obtained from the test will be closer to the power consumption in the user's usage scenario; on the second hand, the air conditioners on the market are basically air conditioners with high cooling / heating capabilities, and some air conditioners that have not yet left the factory may have insufficient cooling / heating capabilities. If the power consumption of these air conditioners with insufficient cooling / heating capabilities is tested, it cannot reflect the cooling / heating capabilities on the market. In order to ensure sufficient power consumption of the air conditioner, the limit of the third preset time can be added. The indoor temperature provided by the air conditioner must reach the target internal temperature corresponding to the temperature control stage within the third preset time before entering the next temperature control stage. The indoor temperature provided by the air conditioner within the third preset time reaches the target internal temperature, which proves that the cooling / heating capacity of the air conditioner is sufficient, and the power consumption of the air conditioner will be tested, so that the power consumption obtained from the test can truly and accurately reflect the power consumption of the air conditioner used by the user; thirdly, after the indoor temperature provided by the air conditioner reaches the target internal temperature, the difference between the subsequent indoor temperature and the target internal temperature will be smaller, and the indoor temperature provided by the air conditioner will be stabilized near the target internal temperature without large fluctuations, thereby reducing the inaccurate power consumption caused by temperature fluctuations.

[0151] Figure 7 The present invention is a flowchart of a method for testing an air conditioner according to an exemplary embodiment. The method for testing an air conditioner is applied to the test device for the air conditioner proposed above. The method for testing an air conditioner comprises the following steps:

[0152] In step S10, the control module determines the environmental parameters of the air conditioner during the test and the operating parameters of the air conditioner in multiple temperature control stages, and determines the power consumption of the air conditioner after executing the operating parameters.

[0153] In step S20, the environmental parameters are executed by the environmental module to provide an operating environment for the air conditioner during the test.

[0154] The specific implementation of each step of the above method is the same as that provided in the previous embodiment and will not be repeated here.

[0155] Figure 8 FIG. 8 is a block diagram of a test device 800 for an air conditioner according to an exemplary embodiment. For example, the device 800 may be a test bench for testing an air conditioner.

[0156] Reference Figure 8 , the device 800 may include one or more of the following components: a processing component 802 , a memory 804 , a power component 806 , a multimedia component 808 , an audio component 810 , an input / output interface 812 , a sensor component 814 , and a communication component 816 .

[0157] The processing component 802 generally controls the overall operation of the device 800, such as operations associated with display, phone calls, data communications, camera operations, and recording operations. The processing component 802 may include one or more processors 820 to execute instructions to complete all or part of the steps of the above-mentioned air conditioner testing method. In addition, the processing component 802 may include one or more modules to facilitate the interaction between the processing component 802 and other components. For example, the processing component 802 may include a multimedia module to facilitate the interaction between the multimedia component 808 and the processing component 802.

[0158] The memory 804 is configured to store various types of data to support operations on the device 800. Examples of such data include instructions for any application or method operating on the device 800, contact data, phone book data, messages, pictures, videos, etc. The memory 804 can be implemented by any type of volatile or non-volatile storage device or a combination thereof, such as static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic memory, flash memory, magnetic disk or optical disk.

[0159] The power supply component 806 provides power to the various components of the device 800. The power supply component 806 may include a power management system, one or more power supplies, and other components associated with generating, managing, and distributing power for the device 800.

[0160] The multimedia component 808 includes a screen that provides an output interface between the device 800 and the user. In some embodiments, the screen may include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen may be implemented as a touch screen to receive input signals from the user. The touch panel includes one or more touch sensors to sense touch, slide, and gestures on the touch panel. The touch sensor may not only sense the boundaries of the touch or slide action, but also detect the duration and pressure associated with the touch or slide operation. In some embodiments, the multimedia component 808 includes a front camera and / or a rear camera. When the device 800 is in an operating mode, such as a shooting mode or a video mode, the front camera and / or the rear camera may receive external multimedia data. Each front camera and rear camera may be a fixed optical lens system or have a focal length and optical zoom capability.

[0161] The audio component 810 is configured to output and / or input audio signals. For example, the audio component 810 includes a microphone (MIC), and when the device 800 is in an operating mode, such as a call mode, a recording mode, and a speech recognition mode, the microphone is configured to receive an external audio signal. The received audio signal can be further stored in the memory 804 or sent via the communication component 816. In some embodiments, the audio component 810 also includes a speaker for outputting audio signals.

[0162] The input / output interface 812 provides an interface between the processing component 802 and the peripheral interface modules, which may be keyboards, click wheels, buttons, etc. These buttons may include but are not limited to: a home button, a volume button, a start button, and a lock button.

[0163] The sensor assembly 814 includes one or more sensors for providing various aspects of the status assessment of the device 800. For example, the sensor assembly 814 can detect the open / closed state of the device 800, the relative positioning of components, such as the display and keypad of the device 800, and the sensor assembly 814 can also detect the position change of the device 800 or a component of the device 800, the presence or absence of user contact with the device 800, the orientation or acceleration / deceleration of the device 800, and the temperature change of the device 800. The sensor assembly 814 may include a proximity sensor configured to detect the presence of a nearby object without any physical contact. The sensor assembly 814 may also include an optical sensor, such as a CMOS or CCD image sensor, for use in imaging applications. In some embodiments, the sensor assembly 814 may also include an accelerometer, a gyroscope sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.

[0164] The communication component 816 is configured to facilitate wired or wireless communication between the device 800 and other devices. The device 800 can access a wireless network based on a communication standard, such as WiFi, 2G or 3G, or a combination thereof. In an exemplary embodiment, the communication component 816 receives a broadcast signal or broadcast-related information from an external broadcast management system via a broadcast channel. In an exemplary embodiment, the communication component 816 also includes a near field communication (NFC) module to facilitate short-range communication. For example, the NFC module can be implemented based on radio frequency identification (RFID) technology, infrared data association (IrDA) technology, ultra-wideband (UWB) technology, Bluetooth (BT) technology and other technologies.

[0165] In an exemplary embodiment, the device 800 can be implemented by one or more application-specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable gate arrays (FPGAs), controllers, microcontrollers, microprocessors or other electronic components to perform the above-mentioned air conditioner testing method.

[0166] In an exemplary embodiment, a non-transitory computer-readable storage medium including instructions is also provided, such as a memory 804 including instructions, and the instructions can be executed by a processor 820 of the device 800 to complete the above-mentioned air conditioner test method. For example, the non-transitory computer-readable storage medium can be a ROM, a random access memory (RAM), a CD-ROM, a magnetic tape, a floppy disk, an optical data storage device, etc.

[0167] In another exemplary embodiment, a computer program product is also provided. The computer program product includes a computer program executable by a programmable device, and the computer program has a code portion for executing the above-mentioned air conditioner test method when executed by the programmable device.

[0168] Some embodiments of the present disclosure also provide a chip system, such as Fig. 9 As shown, the chip system includes at least one processor 901 and at least one interface circuit 902. The processor 901 and the interface circuit 902 can be interconnected through lines. For example, the interface circuit 902 can be used to receive signals from other devices (such as the memory of an electronic device). For another example, the interface circuit 902 can be used to send signals to other devices (such as the processor 901). Exemplarily, the interface circuit 902 can read the instructions stored in the memory and send the instructions to the processor 901. When the instructions are executed by the processor 901, the test device of the air conditioner can perform the various steps in the above embodiments. Of course, the chip system can also include other discrete devices, and some embodiments of the present disclosure do not specifically limit this.

[0169] In some embodiments of the present disclosure, the interface circuit 902 can obtain data, program instructions and / or information from the internal storage area of ​​the chip system; it can also obtain data, program instructions and / or information from outside the chip system.

[0170] Those skilled in the art may also understand that the various illustrative logical blocks and steps listed in the embodiments of the present application may be implemented by electronic hardware, computer software, or a combination of the two. Whether such functions are implemented by hardware or software depends on the specific application and the design requirements of the entire system. Those skilled in the art may use various methods to implement the functions described for each specific application, but such implementation should not be understood as exceeding the scope of protection of the embodiments of the present application.

Claims

1. A test device for an air conditioner, characterized in that: include: A control module and an environment module, wherein the control module is communicatively connected with the air conditioner and the environment module respectively; The control module is used to determine the environmental parameters of the air conditioner during the test and the operating parameters of the air conditioner in multiple temperature control stages, and determine the power consumption of the air conditioner after executing the operating parameters; The environment module is used to execute the environment parameters to provide an operating environment for the air conditioner during the test.

2. The testing device according to claim 1, characterized in that: The control module is also communicatively connected with the first configuration module and the second configuration module respectively; The first configuration module is used to generate the environmental parameters according to the test mode and / or generate the environmental parameters according to the user configuration, and send the environmental parameters to the control module; The second configuration module is used to generate the operating parameters according to the test mode and / or generate the operating parameters according to the user configuration, and send the operating parameters to the control module.

3. The testing device according to claim 1, characterized in that: The environmental parameters include at least one of the following: The initial inner ring temperature of the air conditioner, the initial outer ring temperature of the air conditioner, and the outdoor temperature control curve after the outdoor temperature of the air conditioner reaches the initial outer ring temperature.

4. The testing device according to claim 3, characterized in that: The environment module includes a first regulation module, and the first regulation module is communicatively connected with the control module; The control module is used to encapsulate the environmental parameters into a first operating instruction, and send the first operating instruction to the first regulating module; The first control module is used to control the indoor generator to adjust the indoor environment of the air conditioner to the initial inner ambient temperature, and control the outdoor generator to adjust the outdoor environment of the air conditioner to the initial outer ambient temperature according to the first operation instruction.

5. The testing device according to claim 4, characterized in that: The environment module further comprises a first stability judging module, wherein the first stability judging module is used to send a power-on instruction to the control module when it is determined that the indoor environment and the outdoor environment of the air conditioner meet a first preset condition, wherein the power-on instruction is used to instruct the control module to start the test of the air conditioner; The first preset condition includes at least one of the following: The indoor environment of the air conditioner maintains a first state for a time period greater than a first preset time period, wherein the first state includes a difference between the temperature of the indoor environment and the initial internal ring temperature being less than a first preset difference; The outdoor environment of the air conditioner maintains a second state for a time period greater than a second preset time period, and the second state includes a difference between the temperature of the outdoor environment and the initial external ring temperature being less than a second preset difference.

6. The testing device according to claim 5, characterized in that: The control module is also used to respond to the power-on instruction, control the indoor generator to stop working, start the air conditioner and control the outdoor generator to continue running the environmental parameters.

7. The testing device according to claim 1, characterized in that: The operating parameters of the multiple temperature control stages include time periods and target inner ring temperatures corresponding to the multiple temperature control stages. The target inner ring temperatures corresponding to the multiple temperature control stages gradually decrease or gradually increase.

8. The testing device according to claim 1, characterized in that: The control module is used to encapsulate the operating parameters into a second operating instruction; the second operating instruction is used to call the second operating instruction after the air conditioner is started to execute the operating parameters.

9. The testing device according to claim 7, characterized in that: The multiple temperature control stages include a first temperature control stage and a second temperature control stage that are adjacent to each other, and the first temperature control stage corresponds to a first target inner ring temperature; The control module is further configured to control the air conditioner to enter the second temperature control stage when the indoor temperature provided by the air conditioner satisfies a second preset condition and the first temperature control stage is completed; wherein the indoor temperature provided by the air conditioner satisfies the second preset condition including at least one of the following: The indoor temperature provided by the air conditioner within a third preset time period reaches the first target indoor ambient temperature; After the indoor temperature provided by the air conditioner reaches the first target internal ambient temperature, the difference between the indoor temperature provided by the air conditioner and the first target internal ambient temperature is less than a third preset difference.

10. The testing device according to claim 9, characterized in that: The environment module further comprises a second stability judging module, wherein the second stability judging module is used to send a test instruction to the control module when it is determined that the indoor temperature provided by the air conditioner meets the second preset condition and the first temperature control stage is completed; The control module is further configured to respond to the test instruction and control the air conditioner to enter the second temperature control stage.

11. A method for testing an air conditioner, characterized in that: A test device for an air conditioner according to any one of claims 1 to 10; Determining the environmental parameters of the air conditioner during the test and the operating parameters of the air conditioner in multiple temperature control stages through the control module, and determining the power consumption of the air conditioner after executing the operating parameters; The environmental parameters are executed by the environmental module to provide an operating environment for the air conditioner during the test.

12. An electronic device, characterized in that: include: processor; a memory for storing processor-executable instructions; Wherein, the processor is configured to: Execute the air conditioner testing method as claimed in claim 11.

13. A computer-readable storage medium having a computer program stored thereon, characterized in that: When the computer program is executed by a processor, the air conditioner testing method according to claim 11 is implemented.

Citation Information

Cited By

  • Air conditioner testing method and device and electronic equipment

    CN121703495A