Air conditioner condensation detection method, device, equipment and storage medium
Patent Information
- Application Number
- CN202211256193.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-10-13
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2042-10-13
AI Technical Summary
[0003]相关技术中,一般是通过人为控制每一个测试流程步骤的切换,导致空调性能测试耗费过多人力资源
[0042]本申请提供空调凝露检测方法、装置、设备及存储介质,通过接收空调系统的凝露检测指令,响应所述凝露检测指令对应的第一凝露检测步骤;然后根据所述第一凝露检测步骤,以及包括所述第一凝露检测步骤的预设的凝露检测主流程,确定与所述第一凝露检测步骤关联的第二凝露检测步骤;并根据所述第一凝露检测步骤,以及所述第一凝露检测步骤的循环信息,控制空调系统切换至所述第二凝露检测步骤,直至所述凝露检测主流程执行完成。即,在接收空调系统的凝露检测指令,响应所述凝露检测指令控制所述凝露指令对应的第一凝露检测步骤运行,并且,根据所述第一凝露指令对应的预设的凝露检测主流程,确定与所述第一凝露检测步骤关联的第二凝露检测步骤,初步确定在凝露检测主流程中下一个待切换的凝露检测步骤,并结合第一凝露检测步骤的循环信息,判断第一凝露检测步骤对应的循环情况,根据第一凝露检测步骤对应的循环情况,控制空调系统对应凝露检测主流程中第一凝露检测步骤的切换,实现各个凝露检测步骤的自动化切换和自动循环检测,减少凝露检测的人力资源损耗,且提升凝露检测效率。
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Abstract
Description
Technical Field
[0001] This application relates to the field of air conditioning technology, specifically to a method, apparatus, equipment, and storage medium for detecting air conditioning condensation. Background Technology
[0002] With the increasing popularity of air conditioners, people are also pursuing higher and higher performance from them. During use, condensation can occur due to different usage environments or different air deflector angles, affecting the performance of air conditioners. Therefore, condensation performance testing is generally required during the air conditioner research and development process. However, since the conditions affecting condensation are diverse, it is necessary to set up different test steps for different influencing conditions.
[0003] In related technologies, each test process step is usually switched manually, which results in excessive human resources being consumed in air conditioning performance testing. Summary of the Invention
[0004] This application provides a method, apparatus, equipment, and storage medium for detecting condensation in air conditioners. It abandons the traditional technical solution of controlling condensation testing based on human intervention. By controlling the switching of the condensation testing process according to the main condensation testing process and the cycle information corresponding to the condensation testing steps, it avoids consuming too much human resources for air conditioner performance testing.
[0005] Firstly, this application provides a method for detecting air conditioning condensation, including:
[0006] Receive a condensation detection command from the air conditioning system and respond to the first condensation detection step corresponding to the condensation detection command;
[0007] Based on the first condensation detection step and the preset condensation detection main process including the first condensation detection step, determine the second condensation detection step associated with the first condensation detection step.
[0008] Based on the first condensation detection step and the cycle information of the first condensation detection step, the air conditioning system is controlled to switch to the second condensation detection step until the main condensation detection process is completed.
[0009] In one possible implementation of this application, the step of controlling the air conditioning system to switch to the second condensation detection step based on the loop information of the first condensation detection step in the main condensation detection process, until the main condensation detection process is completed, includes:
[0010] Based on the time information of each condensation detection step in the main condensation detection process and the correlation of each time information, the cyclic process included in the main condensation detection process and the number of cycles of each cyclic process are determined.
[0011] The condensation detection steps corresponding to the start and end points of each loop process in the main condensation detection process are set as node condensation steps.
[0012] The cycle information of the node condensation step is set by associating each cycle process to which the node condensation step belongs with the cycle number corresponding to each cycle process.
[0013] In one possible implementation of this application, the step of controlling the air conditioning system to switch to the second condensation detection step based on the first condensation detection step and the loop information of the first condensation detection step, until the main condensation detection process is completed, includes:
[0014] If the first condensation detection step is a node condensation step in the main condensation detection process, then extract each loop process in the loop information corresponding to the first condensation detection step, as well as the number of loops for each loop process.
[0015] If the first condensation detection step is the end point of the loop process, then the target loop process is determined based on the number of times the first condensation detection step is executed, the loop process, and the number of loops of each loop process.
[0016] If the air conditioning system executes the target number of cycles corresponding to the target cycle process according to the target cycle process, then the air conditioning system is controlled to switch to the second condensation detection step until the main condensation detection process is completed.
[0017] In one possible implementation of this application,
[0018] If the first condensation detection step is the end point of the loop process, then after determining the target loop process based on the number of times the first condensation detection step is executed, the loop processes, and the number of iterations of each loop process, the method includes:
[0019] If the number of target loop processes is at least two, then obtain the number of steps contained in each target loop process;
[0020] The process cycle sequence corresponding to each target cycle process is determined based on the number of condensation detection steps included in each target cycle process.
[0021] In one possible implementation of this application, the step of receiving a condensation detection command from the air conditioning system and responding to the first condensation detection step corresponding to the condensation detection command includes:
[0022] Receive the condensation detection command from the air conditioning system and obtain the air conditioning system identifier corresponding to the condensation detection command.
[0023] Based on the system identifier and the preset mapping relationship corresponding to the main detection process, find the condensation detection main process corresponding to the air conditioning system identifier;
[0024] The first condensation detection step is determined according to the main condensation detection process, and the air conditioning system is controlled to execute the first condensation detection step in response to the condensation detection command.
[0025] In one possible implementation of this application, after searching for the condensation detection main process corresponding to the air conditioning system identifier based on the system identifier and the preset mapping relationship corresponding to the main detection process, the process includes:
[0026] Based on the preset process configuration tool, a process configuration window including the main process of condensation detection is generated;
[0027] Based on the process configuration window, the modification information of the main process for condensation detection corresponding to the target user is collected;
[0028] Based on the modified information, the modified condensation detection main process is determined, and the first condensation detection step is determined according to the modified condensation detection main process. The air conditioning system is then controlled to execute the first condensation detection step in response to the condensation detection command.
[0029] In one possible implementation of this application, after determining the second condensation detection step associated with the first condensation detection step based on the first condensation detection step and a preset condensation detection main process including the first condensation detection step, the method further includes:
[0030] When it is detected that the execution time of the first condensation detection step reaches the preset execution time corresponding to the first condensation detection step, the condensation detection parameters corresponding to the first condensation detection step are obtained.
[0031] If the condensation detection parameter is greater than the preset condensation parameter threshold corresponding to the condensation detection step, the air conditioning system is controlled to enter the condensation drying step.
[0032] When the condensation drying step is detected to be completed, the air conditioning system is controlled to switch to the second condensation detection step based on the first condensation detection step and the cycle information of the first condensation detection step, until the main condensation detection process is completed.
[0033] Secondly, this application provides an air conditioner condensation detection device, the air conditioner condensation detection device comprising:
[0034] Receive and respond module: used to receive condensation detection instructions from the air conditioning system and respond to the first condensation detection step corresponding to the condensation detection instructions;
[0035] Step processing module: used to determine the second condensation detection step associated with the first condensation detection step based on the first condensation detection step and the preset condensation detection main process including the first condensation detection step.
[0036] Control module: Used to control the air conditioning system to switch to the second condensation detection step according to the first condensation detection step and the cycle information of the first condensation detection step, until the main condensation detection process is completed.
[0037] Thirdly, this application provides an air conditioning condensation detection device, the air conditioning condensation detection device comprising:
[0038] One or more processors;
[0039] Memory; and
[0040] One or more applications, wherein the one or more applications are stored in the memory and configured to be executed by the processor to implement any one of the air conditioning condensation detection methods.
[0041] Fourthly, this application provides a computer-readable storage medium having a computer program stored thereon, the computer program being loaded by a processor to perform the steps in any of the air conditioning condensation detection methods described above.
[0042] This application provides a method, apparatus, device, and storage medium for detecting condensation in air conditioners. It receives a condensation detection command from an air conditioning system and responds to a first condensation detection step corresponding to the command. Then, based on the first condensation detection step and a preset condensation detection main process including the first condensation detection step, it determines a second condensation detection step associated with the first condensation detection step. Finally, based on the first condensation detection step and its loop information, it controls the air conditioning system to switch to the second condensation detection step until the main condensation detection process is completed. That is, upon receiving a condensation detection command from the air conditioning system, the system responds to the command by controlling the execution of the first condensation detection step corresponding to the command. Furthermore, based on the preset condensation detection main process corresponding to the first condensation command, the system determines the second condensation detection step associated with the first condensation detection step, initially determines the next condensation detection step to be switched in the main condensation detection process, and, combined with the loop information of the first condensation detection step, determines the loop status corresponding to the first condensation detection step. Based on the loop status corresponding to the first condensation detection step, the system controls the switching of the first condensation detection step in the corresponding main condensation detection process of the air conditioning system. This achieves automated switching and automatic loop detection of each condensation detection step, reducing the human resource consumption for condensation detection and improving condensation detection efficiency. Attached Figure Description
[0043] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying 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.
[0044] Figure 1 This is a schematic diagram of a scenario for the air conditioning condensation detection method provided in the embodiments of this application;
[0045] Figure 2 This is a schematic flowchart of an embodiment of the air conditioning condensation detection method provided in this application.
[0046] Figure 3 This is a schematic flowchart of another embodiment of the air conditioning condensation detection method provided in this application;
[0047] Figure 4 This is a schematic flowchart of one implementation of the air conditioning system switching condensation detection step in the air conditioning condensation detection method provided in this application embodiment;
[0048] Figure 5 This is a schematic flowchart of one implementation scheme of the condensation detection command response in the air conditioning condensation detection method provided in this application embodiment;
[0049] Figure 6 This is a schematic flowchart of another implementation scheme of the air conditioning condensation detection method provided in the embodiments of this application;
[0050] Figure 7 This is a schematic diagram of an embodiment of the air conditioning condensation detection transposition provided in this application.
[0051] Figure 8 This is a schematic diagram of an embodiment of the air conditioning condensation detection device provided in this application. Detailed Implementation
[0052] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0053] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, are only for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the invention. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined with "first" and "second" may explicitly or implicitly include one or more of the stated features. In the description of this invention, "a plurality of" means two or more, unless otherwise explicitly specified.
[0054] In this application, the term "exemplary" is used to mean "serving as an example, illustration, or description." Any embodiment described as "exemplary" in this application is not necessarily to be construed as being more preferred or advantageous than other embodiments. The following description is provided to enable any person skilled in the art to make and use the invention. Details are set forth in the following description for purposes of explanation. It should be understood that those skilled in the art will recognize that the invention can be made without using these specific details. In other instances, well-known structures and processes will not be described in detail to avoid obscuring the description of the invention with unnecessary detail. Therefore, the invention is not intended to be limited to the embodiments shown, but is consistent with the broadest scope of the principles and features disclosed in this application.
[0055] This application provides a method, apparatus, device, and computer-readable storage medium for detecting air conditioning condensation, which will be described in detail below.
[0056] The air conditioning condensation detection method in this embodiment of the invention is applied to an air conditioning condensation detection device. The air conditioning condensation detection device is set in an air conditioning condensation detection equipment. The air conditioning condensation detection equipment is equipped with one or more processors, a memory, and one or more application programs. The one or more application programs are stored in the memory and configured to be executed by the processor to implement the air conditioning condensation detection method. The air conditioning condensation detection equipment can be a terminal, such as an air conditioner, a computer, or an experimental control console. The air conditioning condensation detection equipment can also be a server or a service cluster composed of multiple servers.
[0057] like Figure 1 As shown, Figure 1This is a schematic diagram of a scenario for the air conditioning condensation detection method according to an embodiment of this application. The air conditioning condensation detection scenario in this embodiment includes an air conditioning condensation detection device 100 (the air conditioning condensation detection device 100 integrates an air conditioning condensation detection unit). The air conditioning condensation detection device 100 runs a computer-readable storage medium corresponding to the air conditioning condensation detection to perform the steps of air conditioning condensation detection.
[0058] Understandable Figure 1 The air conditioning condensation detection equipment in the scenario of the air conditioning condensation detection method shown, or the devices included in the air conditioning condensation detection equipment, do not constitute a limitation on the embodiments of the present invention. That is, the number or type of equipment included in the scenario of the air conditioning condensation detection method, or the number or type of devices included in each equipment, do not affect the overall implementation of the technical solution in the embodiments of the present invention, and can all be considered as equivalent substitutions or derivatives of the technical solutions claimed in the embodiments of the present invention.
[0059] In this embodiment of the invention, the air conditioning condensation detection device 100 is mainly used for: receiving a condensation detection command from the air conditioning system and responding to a first condensation detection step corresponding to the condensation detection command; determining a second condensation detection step associated with the first condensation detection step based on the first condensation detection step and a preset condensation detection main process including the first condensation detection step; and controlling the air conditioning system to switch to the second condensation detection step based on the first condensation detection step and the loop information of the first condensation detection step, until the condensation detection main process is completed.
[0060] In this embodiment of the invention, the air conditioning condensation detection device 100 can be an independent air conditioning condensation detection device, or it can be a network or cluster of air conditioning condensation detection devices. For example, the air conditioning condensation detection device 100 described in this embodiment includes, but is not limited to, computers, network hosts, single network air conditioning condensation detection devices, multiple network air conditioning condensation detection device sets, or cloud air conditioning condensation detection devices composed of multiple air conditioning condensation detection devices. The cloud air conditioning condensation detection device is composed of a large number of computers or network air conditioning condensation detection devices based on cloud computing.
[0061] Those skilled in the art will understand that Figure 1 The application environment shown is merely one application scenario of the solution in this application and does not constitute a limitation on the application scenario of the solution in this application. Other application environments may include those that are more specific to this application. Figure 1 The number of more or fewer air conditioning condensation detection devices shown, or the network connection relationship of air conditioning condensation detection devices, for example... Figure 1Only one air conditioning condensation detection device is shown in the diagram. It is understood that the scenario of this air conditioning condensation detection method may also include one or more other air conditioning condensation detection devices, which are not specifically limited here. The air conditioning condensation detection device 100 may also include a memory for storing data, such as storing image information obtained by shooting.
[0062] Furthermore, in the scenario of the air conditioning condensation detection method of this application, the air conditioning condensation detection device 100 can be equipped with a display device, or the air conditioning condensation detection device 100 can be connected to an external display device 200 without a display device. The display device 200 is used to output the results of the air conditioning condensation detection method executed in the air conditioning condensation detection device. The air conditioning condensation detection device 100 can access the background database 300 (the background database can be in the local storage of the air conditioning condensation detection device, or it can be set in the cloud). The background database 300 stores information related to air conditioning condensation detection, such as the preset condensation detection main process in the background database 300, or the pre-set air conditioning system.
[0063] It should be noted that, Figure 1 The schematic diagram of the air conditioning condensation detection method shown is merely an example. The scenario of the air conditioning condensation detection method described in this embodiment of the invention is for the purpose of more clearly illustrating the technical solution of this embodiment of the invention, and does not constitute a limitation on the technical solution provided by this embodiment of the invention.
[0064] Based on the scenarios described above for air conditioner condensation detection methods, an embodiment of the air conditioner condensation detection method is proposed.
[0065] like Figure 2 The diagram shown is a flowchart of an embodiment of the air conditioner condensation detection method in this application. The air conditioner condensation detection method includes steps S201-S203:
[0066] S201. Receive the condensation detection command from the air conditioning system and respond to the first condensation detection step corresponding to the condensation detection command.
[0067] The condensation detection command is a command to control the air conditioning system to perform condensation detection. It is understood that the air conditioning system may include an indoor unit, an outdoor unit, and refrigerant pipes connecting the indoor unit and the outdoor unit. It is also understood that in some implementation schemes, the air conditioning system may also include a fresh air unit and a fresh air duct connecting the indoor unit. In particular, the specific structure of the air conditioning system is not specifically limited in this application.
[0068] It is understood that the condensation detection command can be obtained from the command acquisition device corresponding to the condensation detection device, such as by acquiring it through the condensation detection button set on the air conditioner condensation detection device, or by acquiring it through the command acquisition device that communicates with the air conditioner condensation detection device.
[0069] The first condensation detection step is one of the steps in the air conditioning system to detect condensation, such as the air conditioning air deflector directing airflow or the air deflector sweeping air up and down.
[0070] It is understandable that the method for determining the first condensation detection step can be varied and can be designed according to actual needs, for example:
[0071] One feasible solution: After receiving the condensation detection command, the air conditioner condensation detection equipment parses the first condensation detection step carried in the condensation detection command.
[0072] Option 2: Upon receiving a condensation detection command, the air conditioning condensation detection equipment sends a condensation detection step acquisition window to acquire the first condensation detection step.
[0073] Option 3: When the air conditioning condensation detection equipment receives a condensation detection command, it searches for the corresponding condensation detection process based on the air conditioning system parameters corresponding to the condensation detection command, and then determines the first condensation detection step corresponding to the condensation detection process.
[0074] Specifically, in the implementation scheme of this application, the air conditioning condensation detection device is communicatively connected to the air conditioning system. The air conditioning condensation detection device receives the condensation detection instruction from the air conditioning system, determines the first condensation detection step to be executed by the air conditioning system according to the condensation detection instruction, generates the control instruction corresponding to the first condensation detection step, and the air conditioning system responds to the control instruction corresponding to the first condensation detection step to execute the first condensation detection step.
[0075] S202. Based on the first condensation detection step and the preset condensation detection main process including the first condensation detection step, determine the second condensation detection step associated with the first condensation detection step.
[0076] The first condensation detection step is a preset condensation detection main process based on different air conditioning systems to be tested. Specifically, the condensation detection main process includes multiple different condensation detection steps. For example, the condensation detection main process includes the following steps in sequence: directional airflow at a preset low temperature in air conditioning cooling mode, vertical airflow at a preset low temperature in air conditioning cooling mode, vertical airflow at a preset maximum fresh air temperature in air conditioning cooling mode, directional airflow with a preset maximum fresh air temperature in air conditioning cooling mode, directional airflow with a preset minimum fresh air temperature in air conditioning cooling mode, and vertical airflow with a preset minimum fresh air temperature in air conditioning cooling mode. That is, it can be understood that the first condensation detection step can be directional airflow at a preset low temperature in air conditioning cooling mode, or vertical airflow with a preset low temperature in air conditioning cooling mode, etc. In other words, this application does not specifically limit the setting of the first condensation detection step.
[0077] The second condensation detection step associated with the first condensation detection step, that is, the condensation detection step ordered after the first condensation detection step in the main condensation detection process, can be understood to be a condensation detection step that is simply ordered after the first condensation detection step in the main condensation detection process, and is not a condensation detection step that will be executed immediately after the first condensation detection step is completed.
[0078] S203. Based on the first condensation detection step and the cycle information of the first condensation detection step, control the air conditioning system to switch to the second condensation detection step until the main condensation detection process is completed.
[0079] The cycle information includes: the node condensation steps included in the main process of condensation detection, and the cycle process and cycle information of each cycle process corresponding to the node condensation step.
[0080] It is understandable that, in order to ensure the accuracy of each condensation detection step, a step may be cyclically tested. Alternatively, to ensure the rationality of condensation detection, multiple condensation detection processes may be combined based on the main condensation detection process to form a cyclic process corresponding to a condensation detection step. The node condensation step refers to the condensation detection step corresponding to the start and end points of each cyclic process in the main condensation detection process. It is understood that node condensation step identifiers can be set for the corresponding condensation detection steps in the main condensation detection process.
[0081] It is understood that, in one embodiment of this application, if the first condensation detection step is a node condensation step in the main condensation detection process, then, after determining the corresponding target loop process, the air conditioning condensation detection device will prioritize controlling the air conditioning system to enter the condensation detection step corresponding to the target loop process for loop execution. After the air conditioning system has completed the loop number corresponding to the target loop process, it will exit the loop execution logic and control the air conditioning system to switch to the second condensation detection step according to the main condensation detection process. Then, the air conditioning condensation detection will be controlled according to the above logic until the main condensation detection process is completed.
[0082] It is understood that in another embodiment of this application, if the first condensation detection step is not a node condensation step in the main condensation detection process, the air conditioning system is controlled to switch to the second condensation detection step after the first condensation detection step is completed, and then the air conditioning condensation detection is controlled according to the above logic until the main condensation detection process is completed.
[0083] Furthermore, based on the above implementation plan, see [link to relevant documentation]. Figure 3 , Figure 3 This is a flowchart illustrating another implementation scheme of the air conditioning condensation detection method of this application, including steps S301-S308:
[0084] S301. Obtain the condensation detection steps corresponding to the air conditioning system, and the time information corresponding to each condensation detection step.
[0085] The condensation detection step corresponding to the air conditioning system refers to the condensation detection step designed for the air conditioning system. The time information corresponding to each condensation detection step may include, for example, the execution time of each condensation detection step, the interval start time, and the preset execution duration of each condensation detection step.
[0086] Understandably, the condensation detection steps and their corresponding time information can be obtained through the condensation detection step design window. For example, after receiving the detection design instruction from the air conditioning system, the air conditioning condensation detection equipment will provide feedback to the condensation detection step design window and collect the condensation detection steps and their corresponding time based on the condensation detection window.
[0087] S302. Based on the condensation detection steps and the time information, sort the condensation detection steps to generate a main process flow that includes all condensation detection steps.
[0088] Specifically, after receiving the condensation detection steps and time information corresponding to the condensation detection equipment, the air conditioning condensation detection equipment sorts the condensation detection steps according to the time information corresponding to the condensation detection steps in chronological order, generates a main process flow including all condensation detection steps, and associates the main process flow with the corresponding air conditioning system. For example, it creates a mapping relationship between the air conditioning system identifier and the main process flow.
[0089] S303. Based on the time information of each condensation detection step in the main condensation detection process and the correlation of each time information, determine the cyclic process included in the main condensation detection process and the number of cycles for each cyclic process.
[0090] The correlation of the time information refers to the correlation between different time information included in the same condensation detection step on the time axis, and the correlation between the time information of different condensation detection steps on the time axis.
[0091] It is understandable that, since the condensation detection process may include smaller cyclical steps in addition to the main process, that is, it is understandable that the same condensation detection step may correspond to multiple time periods. Specifically, after determining the main condensation detection process based on the time information of the condensation detection steps, the cyclical processes included in the main process will be further analyzed based on the time information. Based on the correlation of the time information of each condensation detection step, the condensation detection cyclical processes included in the main condensation detection process will be determined, for example:
[0092] The main process for condensation detection includes: directional airflow under a preset low temperature in air conditioning cooling mode; vertical airflow under a preset low temperature in air conditioning cooling mode; vertical airflow under a preset maximum fresh air temperature in air conditioning cooling mode; directional airflow with a preset maximum fresh air temperature in air conditioning cooling mode; directional airflow with a preset minimum fresh air temperature in air conditioning cooling mode; and vertical airflow with a preset minimum fresh air temperature in air conditioning cooling mode. The directional airflow under a preset low temperature in air conditioning cooling mode, vertical airflow under a preset low temperature in air conditioning cooling mode, and vertical airflow with a preset maximum fresh air temperature in air conditioning cooling mode can form a cyclic process. It is understood that the number of cycles for each cyclic process can also be derived from time information.
[0093] S304. Set the condensation detection steps corresponding to the start and end points of each loop process in the main condensation detection process as node condensation steps.
[0094] The starting point of the cyclic process is the earliest condensation detection step in the main condensation detection process, and the ending point of the cyclic process is the latest condensation detection step in the main condensation detection process. It can be understood that the earliest and latest are based on the time axis.
[0095] Specifically, in the main process of condensation detection, node condensation step identifiers can be set for the condensation detection steps corresponding to the start and end points of each of the loop processes. For example, the condensation detection steps corresponding to the start point of each of the loop processes in the main process of condensation detection can be set as start point node condensation detection steps, and the condensation detection steps corresponding to the end point of each of the loop processes in the main process of condensation detection can be set as end point node condensation detection steps.
[0096] S305. Associate each cycle process to which the node condensation step belongs with the cycle number corresponding to each cycle process and set it as the cycle information of the node condensation step.
[0097] Specifically, in some embodiments of this application, the air conditioning condensation detection device stores the number of cycles corresponding to each cycle, the node condensation detection step corresponding to the starting point of the cycle, and the node condensation detection step corresponding to the ending point of the cycle.
[0098] In other embodiments of this application, the air conditioning condensation detection device may also store the number of cycles corresponding to each cycle, the process start identifier of the cycle, the node condensation detection steps corresponding to the process end in the cycle, and the node condensation detection steps associated with the process start of the cycle.
[0099] It is understood that, in some embodiments of this application, the cycle information includes the cycle process corresponding to the node condensation step, the process end point identifier / process start point identifier corresponding to the cycle process, and the number of cycles of the cycle process.
[0100] It is understood that in some other embodiments of this application, when the loop information is only associated with the condensation step of the node corresponding to the end point of the loop process, the loop information may not include the end point identifier / start point identifier of the loop process.
[0101] S306. Receive the condensation detection command from the air conditioning system and respond to the first condensation detection step corresponding to the condensation detection command.
[0102] S307. Based on the first condensation detection step and the preset condensation detection main process including the first condensation detection step, determine the second condensation detection step associated with the first condensation detection step.
[0103] S308. Based on the first condensation detection step and the cycle information of the first condensation detection step, control the air conditioning system to switch to the second condensation detection step until the main condensation detection process is completed.
[0104] Specifically, the implementation schemes for steps S306-S308 are described in the above implementation scheme.
[0105] Furthermore, based on the above implementation plan, see [link to relevant documentation]. Figure 4 , Figure 4 This is a flowchart illustrating one implementation of the condensation detection step during air conditioning system switching in the air conditioning condensation detection method of this application, including steps S401-S403:
[0106] S401. If the first condensation detection step is a node condensation step in the main condensation detection process, then extract each loop process in the loop information corresponding to the first condensation detection step, and the number of loops for each loop process.
[0107] Specifically, in the embodiments of this application, after the air conditioning condensation detection device determines the second condensation detection step associated with the first condensation detection step based on the first condensation detection step and the preset condensation detection main process including the first condensation detection step, it determines whether the first condensation detection step is a node condensation step in the condensation detection main process. If the first condensation detection step is not a node condensation step in the condensation detection main process, it obtains the loop information associated with the node condensation step. The loop information includes: the node condensation steps included in the condensation detection main process, and each loop process corresponding to the node condensation step and the loop information of the loop process.
[0108] S402. If the first condensation detection step is the end point of the loop process, then the target loop process is determined based on the number of times the first condensation detection step is executed, the loop process, and the number of loops of each loop process.
[0109] Then, based on the loop information, the target loop flow corresponding to the first condensation detection step is determined, specifically including the following steps:
[0110] (1) If the first condensation detection step is a node condensation step in the main condensation detection process, then the position information of the first condensation detection step in the corresponding loop process is determined according to the loop process associated with the node condensation step.
[0111] Understandably, when the air conditioning condensation detection device detects that the first condensation detection step is a node condensation step in the main condensation detection process, it obtains the loop information associated with the first condensation detection step, determines the loop process corresponding to the first condensation detection step, and determines whether the first condensation detection step is located at the end or beginning of each loop process based on the loop information, that is, determines the position information of the first condensation detection step in the corresponding loop process.
[0112] (2) Filter out the target loop flow where the location information is located at the end point of the loop flow and the number of loops of the loop flow is not zero.
[0113] Furthermore, the air conditioning condensation detection equipment filters out the cyclic process that is located at the end of the cyclic process in the first condensation detection step, and determines whether the number of cycles of the filtered cyclic process is 0. If so, it is discarded, and the target cyclic process is further determined.
[0114] (3) Determine the process cycle sequence corresponding to each target cycle process based on the number of condensation detection steps included in each target cycle process.
[0115] Furthermore, if the number of target loop processes is at least two, the number of steps contained in each target loop process is obtained. Based on the number of condensation detection steps included in each target loop process, the loop order corresponding to each target loop process is determined. Specifically, based on the loop information corresponding to each target loop process, the starting point of each target loop process is determined. Based on the condensation detection steps corresponding to the starting point and the first condensation detection step, the number of condensation detection steps in the main condensation detection process corresponding to the target loop process is determined. Specifically, according to the principle of prioritizing smaller numbers, the process with the fewest condensation detection steps is placed in the first position, and so on. The air conditioning system is then controlled to execute the loop process according to the priority of the first position.
[0116] It is understandable that if the number of processes in the target loop is 1, then no sorting process is performed, and step S402 is executed directly.
[0117] S403. If the air conditioning system executes the target number of cycles corresponding to the target cycle process according to the target cycle process, then the air conditioning system is controlled to switch to the second condensation detection step until the main condensation detection process is completed.
[0118] Specifically, if the number of processes in the target loop is greater than 1, then according to the sorted loop order, the air conditioning system is controlled to execute the loop processes corresponding to the loop order in sequence, specifically including:
[0119] (1) Determine the target node condensation step corresponding to the starting point of the target cycle process, control the air conditioning system to switch to the target node condensation step, and update the cycle number of the target cycle process;
[0120] (2) Control the air conditioning system to cycle according to the condensation detection steps corresponding to the target cycle process; until the number of cycles after the target cycle process is updated is zero, the current target cycle process is completed; control the air conditioning system to enter the cycle process corresponding to the next cycle sequence, until all target cycle cycles are completed.
[0121] (3) Control the air conditioning system to exit the loop logic of the loop process and enter the execution logic of the condensation main process, that is, control the air conditioning system to switch to the second condensation detection step until the condensation detection main process is completed.
[0122] It is understood that in some other embodiments of this application, if there is no corresponding target loop process for the first condensation detection step, the air conditioning system is controlled to switch to the second condensation detection step after the first condensation detection step is completed, until the main condensation detection process is completed.
[0123] Furthermore, based on the above implementation plan, see [link to relevant documentation]. Figure 5 , Figure 5 This is a flowchart illustrating one implementation of the condensation detection command response in the air conditioning condensation detection method of this application, including steps S501-S503:
[0124] S501. Receive the condensation detection command of the air conditioning system and obtain the air conditioning system identifier corresponding to the condensation detection command of the air conditioning system.
[0125] The air conditioning system identifier refers to information that identifies the air conditioning system, such as the configuration information of the components of the air conditioning system, and the preset unique identifier information of the air conditioning system.
[0126] S502. Based on the system identifier and the preset mapping relationship corresponding to the main detection process, find the condensation detection main process corresponding to the air conditioning system identifier.
[0127] The system identifier and the preset mapping relationship corresponding to the main detection process can be a preset relationship group including at least one set of air conditioning system identifiers and condensation detection main processes, or it can be a preset mapping table including at least one set of air conditioning system identifiers and condensation detection main processes.
[0128] S503. Determine the first condensation detection step according to the main condensation detection process, and control the air conditioning system to execute the first condensation detection step in response to the condensation detection command.
[0129] Specifically, after receiving a condensation detection command from the air conditioning system, the air conditioning condensation detection device obtains the air conditioning system identifier corresponding to the condensation detection command. Based on the system identifier and the preset mapping relationship corresponding to the main detection process, it searches for the main condensation detection process corresponding to the air conditioning system identifier and determines the corresponding first condensation detection step according to the main condensation detection process. It can be understood that the low-pressure condensation detection step can be the first condensation detection step in the main condensation detection process, or it can be one of the condensation detection steps in the main condensation detection process selected by the target user according to the main condensation detection process.
[0130] Furthermore, in some other embodiments of this application, after finding the condensation detection main process corresponding to the air conditioning system identifier based on the system identifier and the preset mapping relationship corresponding to the main detection process, the method further includes:
[0131] (1) Generate a process configuration window including the main process of condensation detection according to the preset process configuration tool;
[0132] (2) Based on the process configuration window, collect the modification information of the main process for condensation detection corresponding to the target user;
[0133] (3) Based on the modified information, determine the modified condensation detection main process, and execute the first condensation detection step based on the modified condensation detection main process, and respond to the condensation detection command to control the air conditioning system to execute the first condensation detection step.
[0134] It is understood that the process configuration tool can be an editable page component. After obtaining the main condensation detection process, the air conditioning condensation detection device generates a process configuration window including the main condensation detection process according to the preset process configuration tool, and provides feedback to the target user. The target user can modify the main condensation detection process according to the process configuration window, such as changing the order of condensation detection steps, deleting condensation detection steps, adding condensation detection steps, etc. It is understood that if the design node condensation step is modified, the corresponding loop information configuration control will be provided, or the node condensation step will be restricted to non-modification permissions, etc.
[0135] Furthermore, based on the above implementation plan, see [link to relevant documentation]. Figure 6 , Figure 6 This is a flowchart illustrating another implementation scheme of the air conditioning condensation detection method of this application, including steps S601-S605:
[0136] S601. Receive the condensation detection command from the air conditioning system and respond to the first condensation detection step corresponding to the condensation detection command.
[0137] S602. Based on the first condensation detection step and the preset condensation detection main process including the first condensation detection step, determine the second condensation detection step associated with the first condensation detection step.
[0138] The implementation schemes for steps S601-S602 are described in any of the above implementation schemes.
[0139] S603. When it is detected that the execution time of the first condensation detection step reaches the preset execution time corresponding to the first condensation detection step, the condensation detection parameters corresponding to the first condensation detection step are obtained.
[0140] The preset execution time corresponding to the first condensation detection step is the preset execution time of the air conditioning system executing the first condensation detection step. The condensation detection parameters are the air conditioning condensation parameters corresponding to the first condensation detection step, such as condensation data of the air guide plate and condensation data of the heat exchanger, which can be collected by a humidity sensor.
[0141] S604. If the condensation detection parameter is greater than the preset condensation parameter threshold corresponding to the condensation detection step, control the air conditioning system to enter the condensation drying step.
[0142] Specifically, after the air conditioning condensation detection equipment obtains the condensation detection parameters corresponding to the first condensation detection step, it compares them with the preset condensation parameter threshold. If the condensation detection parameters are greater than the preset condensation parameter threshold corresponding to the condensation detection step, it indicates that the condensation is too large. In order to avoid the condensation affecting the next detection step, the air conditioning system is controlled to enter the condensation drying step, for example, the air conditioning is controlled to heat and dry.
[0143] S605. When the condensation drying step is detected to be completed, the air conditioning system is controlled to switch to the second condensation detection step according to the first condensation detection step and the cycle information of the first condensation detection step, until the main process of condensation detection is completed.
[0144] Specifically, after the air conditioning condensation detection device detects that the condensation drying step has been completed, for example, after detecting that the condensation parameters of the air guide plate and the heat exchanger are less than the preset condensation parameter threshold, or after the drying has reached the preset time, the condensation drying step is completed. The air conditioning system is then controlled to switch to the second condensation detection step based on the first condensation detection step and the cycle information of the first condensation detection step, until the main condensation detection process is completed. For specific implementation schemes, please refer to any of the above descriptions.
[0145] This application provides a method for detecting condensation in an air conditioner. The method involves receiving a condensation detection command from the air conditioning system, responding to a first condensation detection step corresponding to the command, then determining a second condensation detection step associated with the first condensation detection step based on the first condensation detection step and a preset condensation detection main process including the first condensation detection step, and controlling the air conditioning system to switch to the second condensation detection step based on the first condensation detection step and its loop information, until the condensation detection main process is completed. That is, upon receiving a condensation detection command from the air conditioning system, the system responds to the command by controlling the execution of the first condensation detection step corresponding to the command. Furthermore, based on the preset condensation detection main process corresponding to the first condensation command, the system determines the second condensation detection step associated with the first condensation detection step, initially determines the next condensation detection step to be switched in the main condensation detection process, and, combined with the loop information of the first condensation detection step, determines the loop status corresponding to the first condensation detection step. Based on the loop status corresponding to the first condensation detection step, the system controls the switching of the first condensation detection step in the corresponding main condensation detection process of the air conditioning system. This achieves automated switching and automatic loop detection of each condensation detection step, reducing the human resource consumption for condensation detection and improving condensation detection efficiency.
[0146] To better implement the air conditioner condensation detection method in this application embodiment, based on the air conditioner condensation detection method, this application embodiment also provides an air conditioner condensation detection device, such as... Figure 7 As shown, the air conditioning condensation detection device includes modules 701-703:
[0147] Receiver / response module 701: Used to receive a condensation detection command from the air conditioning system and respond to the first condensation detection step corresponding to the condensation detection command;
[0148] Step processing module 702: is used to determine a second condensation detection step associated with the first condensation detection step based on the first condensation detection step and a preset condensation detection main process including the first condensation detection step.
[0149] Control module 703: Used to control the air conditioning system to switch to the second condensation detection step according to the first condensation detection step and the cycle information of the first condensation detection step, until the main process of condensation detection is completed.
[0150] In one possible implementation of this application, a step preprocessing module is further included, for:
[0151] Based on the time information of each condensation detection step in the main condensation detection process and the correlation of each time information, the cyclic process included in the main condensation detection process and the number of cycles of each cyclic process are determined.
[0152] The condensation detection steps corresponding to the start and end points of each loop process in the main condensation detection process are set as node condensation steps.
[0153] The cycle information of the node condensation step is set by associating each cycle process to which the node condensation step belongs with the cycle number corresponding to each cycle process.
[0154] In one possible implementation of this application, the control module 703 is configured to control the air conditioning system to switch to the second condensation detection step based on the first condensation detection step and the cycle information of the first condensation detection step, until the main condensation detection process is completed. Specifically, this includes:
[0155] If the first condensation detection step is a node condensation step in the main condensation detection process, then extract each loop process in the loop information corresponding to the first condensation detection step, as well as the number of loops for each loop process.
[0156] If the first condensation detection step is the end point of the loop process, then the target loop process is determined based on the number of times the first condensation detection step is executed, the loop process, and the number of loops of each loop process.
[0157] If the air conditioning system executes the target number of cycles corresponding to the target cycle process according to the target cycle process, then the air conditioning system is controlled to switch to the second condensation detection step until the main condensation detection process is completed.
[0158] In one possible implementation of this application, the control module 703 is configured to: after determining the target loop based on the number of times the first condensation detection step is executed, the loop processes, and the number of iterations of each loop process if the first condensation detection step is the end point of the loop process, specifically includes:
[0159] If the number of target loop processes is at least two, then obtain the number of steps contained in each target loop process;
[0160] The process cycle sequence corresponding to each target cycle process is determined based on the number of condensation detection steps included in each target cycle process.
[0161] In one possible implementation of this application, the receiving response module 701 is configured to receive a condensation detection command from the air conditioning system and respond to the first condensation detection step corresponding to the condensation detection command, specifically including:
[0162] Receive the condensation detection command from the air conditioning system and obtain the air conditioning system identifier corresponding to the condensation detection command.
[0163] Based on the system identifier and the preset mapping relationship corresponding to the main detection process, find the condensation detection main process corresponding to the air conditioning system identifier;
[0164] The first condensation detection step is determined according to the main condensation detection process, and the air conditioning system is controlled to execute the first condensation detection step in response to the condensation detection command.
[0165] In one possible implementation of this application, the receiving response module 701 is configured to: locate the condensation detection main process corresponding to the air conditioning system identifier based on the system identifier and the preset mapping relationship corresponding to the detection main process; and further includes:
[0166] Based on the preset process configuration tool, a process configuration window including the main process of condensation detection is generated;
[0167] Based on the process configuration window, the modification information of the main process for condensation detection corresponding to the target user is collected;
[0168] Based on the modified information, the modified condensation detection main process is determined, and the first condensation detection step is determined according to the modified condensation detection main process. The air conditioning system is then controlled to execute the first condensation detection step in response to the condensation detection command.
[0169] In one possible implementation of this application, the step processing module 702 is configured to determine a second condensation detection step associated with the first condensation detection step based on the first condensation detection step and a preset condensation detection main process including the first condensation detection step. Then, the control module 703 further includes:
[0170] When it is detected that the execution time of the first condensation detection step reaches the preset execution time corresponding to the first condensation detection step, the condensation detection parameters corresponding to the first condensation detection step are obtained.
[0171] If the condensation detection parameter is greater than the preset condensation parameter threshold corresponding to the condensation detection step, the air conditioning system is controlled to enter the condensation drying step.
[0172] When the condensation drying step is detected to be completed, the air conditioning system is controlled to switch to the second condensation detection step based on the first condensation detection step and the cycle information of the first condensation detection step, until the main condensation detection process is completed.
[0173] This application provides an air conditioning condensation detection device, which receives a condensation detection command from an air conditioning system, responds to a first condensation detection step corresponding to the condensation detection command, then determines a second condensation detection step associated with the first condensation detection step based on the first condensation detection step and a preset condensation detection main process including the first condensation detection step, and controls the air conditioning system to switch to the second condensation detection step based on the first condensation detection step and the loop information of the first condensation detection step, until the condensation detection main process is completed. That is, upon receiving a condensation detection command from the air conditioning system, the system responds to the command by controlling the execution of the first condensation detection step corresponding to the command. Furthermore, based on the preset condensation detection main process corresponding to the first condensation command, the system determines the second condensation detection step associated with the first condensation detection step, initially determines the next condensation detection step to be switched in the main condensation detection process, and, combined with the loop information of the first condensation detection step, determines the loop status corresponding to the first condensation detection step. Based on the loop status corresponding to the first condensation detection step, the system controls the switching of the first condensation detection step in the corresponding main condensation detection process of the air conditioning system. This achieves automated switching and automatic loop detection of each condensation detection step, reducing the human resource consumption for condensation detection and improving condensation detection efficiency.
[0174] This invention also provides an air conditioning condensation detection device, such as... Figure 8 As shown, Figure 8 This is a schematic diagram of an embodiment of the air conditioning condensation detection device provided in this application.
[0175] The air conditioning condensation detection device integrates any of the air conditioning condensation detection devices provided in the embodiments of the present invention, and the air conditioning condensation detection device includes:
[0176] One or more processors;
[0177] Memory; and
[0178] One or more applications, wherein the one or more applications are stored in the memory and configured to be executed by the processor in the steps of the system permission management method described in any of the embodiments of the above system permission management method.
[0179] Specifically, an air conditioning condensation detection device may include components such as a processor 801 with one or more processing cores, a memory 802 with one or more computer-readable storage media, a power supply 803, and an input unit 804. Those skilled in the art will understand that... Figure 8 The structure of the air conditioning condensation detection device shown does not constitute a limitation on the air conditioning condensation detection device. It may include more or fewer components than shown, or combine certain components, or have different component arrangements. Wherein:
[0180] The processor 801 is the control center of the air conditioning condensation detection device. It connects various parts of the device via interfaces and lines, and executes software programs and / or modules stored in the memory 802, as well as calling data stored in the memory 802, to perform various functions and process data, thereby providing overall monitoring of the device. Optionally, the processor 801 may include one or more processing cores; preferably, it may integrate an application processor and a modem processor. The application processor primarily handles the operating system, user interface, and applications, while the modem processor primarily handles wireless communication. It is understood that the modem processor may not be integrated into the processor 801.
[0181] The memory 802 can be used to store software programs and modules. The processor 801 executes various functional applications and data processing by running the software programs and modules stored in the memory 802. The memory 802 may mainly include a program storage area and a data storage area. The program storage area may store the operating system, application programs required for at least one function (such as sound playback function, image playback function, etc.), etc.; the data storage area may store data created based on the use of the air conditioning condensation detection device, etc. In addition, the memory 802 may include high-speed random access memory, and may also include non-volatile memory, such as at least one disk storage device, flash memory device, or other volatile solid-state storage device. Accordingly, the memory 802 may also include a memory controller to provide the processor 801 with access to the memory 802.
[0182] In some embodiments of this application, the air conditioning control device can be implemented as a computer program, and the computer program can be implemented as follows: Figure 8 The air conditioning condensation detection device shown is running. The memory of the air conditioning condensation detection device can store the various program modules that make up the air conditioning control device, for example, Figure 7 The receiving response module 701, step processing module 702, and control module 703 are shown. The computer program composed of these various program modules causes the processor to execute the steps in the air conditioning control methods of the various embodiments of this application described in this specification.
[0183] For example, Figure 8 The air conditioning condensation detection equipment shown can detect condensation through, for example... Figure 7 The receiving response module 701 in the air conditioning control device shown executes step S201. The air conditioning condensation detection device can execute step S202 through the step processing module 702. The air conditioning condensation detection device can execute step S203 through the control module 703. The air conditioning condensation detection device includes a processor, a memory, and a network interface connected via a system bus. The processor of the air conditioning condensation detection device provides computing and control capabilities. The memory of the air conditioning condensation detection device includes a non-volatile storage medium and internal memory. The non-volatile storage medium stores an operating system and computer programs. The internal memory provides an environment for the operation of the operating system and computer programs in the non-volatile storage medium. The network interface of the air conditioning condensation detection device is used to communicate with external air conditioning condensation detection devices via a network connection. When the computer program is executed by the processor, it implements an air conditioning control method.
[0184] The air conditioning condensation detection device also includes a power supply 803 that supplies power to various components. Preferably, the power supply 803 can be logically connected to the processor 801 through a power management system, thereby enabling functions such as charging, discharging, and power consumption management through the power management system. The power supply 803 may also include one or more DC or AC power supplies, recharging systems, power fault detection circuits, power converters or inverters, power status indicators, and other arbitrary components.
[0185] The air conditioning condensation detection device may also include an input unit 804, which can be used to receive input digital or character information, and generate keyboard, mouse, joystick, optical or trackball signal inputs related to user settings and function control.
[0186] Although not shown, the air conditioning condensation detection device may also include a display unit, etc., which will not be described in detail here. Specifically, in this embodiment, the processor 801 in the air conditioning condensation detection device loads the executable files corresponding to the processes of one or more application programs into the memory 802 according to the following instructions, and the processor 801 runs the application programs stored in the memory 802 to realize various functions, as follows:
[0187] Receive a condensation detection command from the air conditioning system and respond to the first condensation detection step corresponding to the condensation detection command;
[0188] Based on the first condensation detection step and the preset condensation detection main process including the first condensation detection step, determine the second condensation detection step associated with the first condensation detection step.
[0189] Based on the first condensation detection step and the cycle information of the first condensation detection step, the air conditioning system is controlled to switch to the second condensation detection step until the main condensation detection process is completed.
[0190] Those skilled in the art will understand that all or part of the steps in the various methods of the above embodiments can be performed by instructions, or by instructions controlling related hardware. These instructions can be stored in a computer-readable storage medium and loaded and executed by a processor.
[0191] Therefore, embodiments of the present invention provide a computer-readable storage medium, which may include: read-only memory (ROM), random access memory (RAM), a disk, or an optical disk, etc. A computer program is stored thereon, which is loaded by a processor to execute the steps in any of the system permission management methods provided in the embodiments of the present invention. For example, the computer program loaded by the processor can execute the following steps:
[0192] Receive a condensation detection command from the air conditioning system and respond to the first condensation detection step corresponding to the condensation detection command;
[0193] Based on the first condensation detection step and the preset condensation detection main process including the first condensation detection step, determine the second condensation detection step associated with the first condensation detection step.
[0194] Based on the first condensation detection step and the cycle information of the first condensation detection step, the air conditioning system is controlled to switch to the second condensation detection step until the main condensation detection process is completed.
[0195] In the above embodiments, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the detailed descriptions of other embodiments above, which will not be repeated here.
[0196] In practice, each of the above units or structures can be implemented as an independent entity or can be arbitrarily combined to be implemented as the same or several entities. For the specific implementation of each of the above units or structures, please refer to the previous method embodiments, which will not be repeated here.
[0197] For details on the implementation of each of the above operations, please refer to the previous examples, which will not be repeated here.
[0198] The above provides a detailed description of an air conditioning condensation detection method, apparatus, device, and storage medium provided in the embodiments of this application. Specific examples have been used to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is only for the purpose of helping to understand the method and core ideas of the present invention. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of the present invention. Therefore, the content of this specification should not be construed as a limitation of the present invention.
Claims
1. A method for detecting condensation in air conditioners, characterized in that, include: Receive a condensation detection command from the air conditioning system and respond to the first condensation detection step corresponding to the condensation detection command; Based on the first condensation detection step and the preset condensation detection main process including the first condensation detection step, determine the second condensation detection step associated with the first condensation detection step. Based on the time information of each condensation detection step in the main condensation detection process and the correlation of each time information, the cyclic process included in the main condensation detection process and the number of cycles of each cyclic process are determined. The condensation detection steps corresponding to the start and end points of each loop process in the main condensation detection process are set as node condensation steps. Associate each cycle process to which the node condensation step belongs with the cycle number corresponding to each cycle process and set it as the cycle information of the node condensation step; If the first condensation detection step is a node condensation step in the main condensation detection process, then extract each loop process in the loop information corresponding to the first condensation detection step, as well as the number of loops for each loop process; wherein, the node condensation step includes the condensation detection steps corresponding to the start and end points of the loop process. If the first condensation detection step is the step corresponding to the end of the loop process, then the target loop process is determined based on the number of times the first condensation detection step is executed, the loop process, and the number of loops of each loop process. If the air conditioning system executes the target number of cycles corresponding to the target cycle process according to the target cycle process, then the air conditioning system is controlled to switch to the second condensation detection step until the main condensation detection process is completed.
2. The air conditioning condensation detection method according to claim 1, characterized in that, If the first condensation detection step is the step corresponding to the end of the loop process, then after determining the target loop process based on the number of times the first condensation detection step is executed, the loop processes, and the number of iterations of each loop process, the method includes: If the number of target loop processes is at least two, then obtain the number of steps contained in each target loop process; The process cycle sequence corresponding to each target cycle process is determined based on the number of condensation detection steps included in each target cycle process.
3. The air conditioning condensation detection method according to claim 1, characterized in that, The receiving of the condensation detection command from the air conditioning system, and the response to the first condensation detection step corresponding to the condensation detection command, includes: Receive the condensation detection command from the air conditioning system and obtain the air conditioning system identifier corresponding to the condensation detection command. Based on the system identifier and the preset mapping relationship corresponding to the main detection process, find the condensation detection main process corresponding to the air conditioning system identifier; The first condensation detection step is determined according to the main condensation detection process, and the air conditioning system is controlled to execute the first condensation detection step in response to the condensation detection command.
4. The air conditioning condensation detection method according to claim 3, characterized in that, After finding the condensation detection main process corresponding to the air conditioning system identifier based on the preset mapping relationship between the system identifier and the main detection process, the process includes: Based on the preset process configuration tool, a process configuration window including the main process of condensation detection is generated; Based on the process configuration window, the modification information of the main process for condensation detection corresponding to the target user is collected; Based on the modified information, the modified condensation detection main process is determined, and the first condensation detection step is determined according to the modified condensation detection main process. The air conditioning system is then controlled to execute the first condensation detection step in response to the condensation detection command.
5. The method for detecting air conditioning condensation according to any one of claims 1-4, characterized in that, After determining the second condensation detection step associated with the first condensation detection step based on the first condensation detection step and a preset condensation detection main process including the first condensation detection step, the method further includes: When it is detected that the execution time of the first condensation detection step reaches the preset execution time corresponding to the first condensation detection step, the condensation detection parameters corresponding to the first condensation detection step are obtained. If the condensation detection parameter is greater than the preset condensation parameter threshold corresponding to the condensation detection step, the air conditioning system is controlled to enter the condensation drying step. When the condensation drying step is detected to be completed, the air conditioning system is controlled to switch to the second condensation detection step based on the first condensation detection step and the cycle information of the first condensation detection step, until the main condensation detection process is completed.
6. An air conditioning condensation detection device, characterized in that, The air conditioning condensation detection device includes: Receive and respond module: used to receive condensation detection instructions from the air conditioning system and respond to the first condensation detection step corresponding to the condensation detection instructions; Step processing module: used to determine the second condensation detection step associated with the first condensation detection step based on the first condensation detection step and the preset condensation detection main process including the first condensation detection step. The preprocessing module is used to determine the cyclic processes included in the main dew detection process and the number of cycles for each cyclic process based on the time information of each dew detection step in the main dew detection process and the correlation of each time information; to set the dew detection steps corresponding to the start and end points of each cyclic process in the main dew detection process as node dew steps; and to associate each cyclic process to which the node dew step belongs with the number of cycles corresponding to each cyclic process as the cycle information of the node dew step. Control module: If the first condensation detection step is a node condensation step in the main condensation detection process, then extract each loop process in the loop information corresponding to the first condensation detection step, and the number of loops for each loop process; wherein, the node condensation step includes the condensation detection steps corresponding to the start and end points of the loop process. If the first condensation detection step is the step corresponding to the end of the loop process, then the target loop process is determined based on the number of times the first condensation detection step is executed, the loop process, and the number of loops of each loop process. If the air conditioning system executes the target number of cycles corresponding to the target cycle process according to the target cycle process, then the air conditioning system is controlled to switch to the second condensation detection step until the main condensation detection process is completed.
7. An air conditioning condensation detection device, characterized in that, The air conditioning condensation detection equipment includes: One or more processors; Memory; and One or more applications, wherein the one or more applications are stored in the memory and configured to be executed by the processor to implement the air conditioning condensation detection method according to any one of claims 1 to 5.
8. A computer-readable storage medium, characterized in that, It stores a computer program, which is loaded by a processor to execute the steps in the air conditioning condensation detection method according to any one of claims 1 to 5.
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