Operating parameter selection method and device of electrical equipment and air conditioning system

By obtaining the model indication information of the air-conditioning equipment and the index value to be adjusted, determining the corresponding storage area, and using it as operating parameters, the problems of waste of storage space and low operating efficiency in the prior art are solved, and adaptive adjustment of the index value and saving of storage space are achieved.

CN120160263APending Publication Date: 2025-06-17GREE ELECTRIC APPLIANCE INC OF ZHUHAI
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Patent Information

Application Number
CN202510521980.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2025-06-17

AI Technical Summary

Technical Problem

While the prior art meets the adjustable demand for air-conditioning equipment index values, it leads to waste of storage space and low equipment operation efficiency.

Method used

By obtaining the model indication information of the electrical equipment and the value of the to-adjustment, the data in the corresponding storage area is read from the storage module, the storage area corresponding to the value of the to-adjustment is determined, and it is used as the operating parameters of the electrical equipment.

Benefits of technology

It realizes that while meeting the adjustable index value requirements, it saves the storage space of electrical equipment, and improves the operating efficiency and user experience of the equipment through adaptive adjustment of operating parameters.

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Abstract

The invention provides an operation parameter selection method and device of electrical equipment and an air conditioning system, and relates to the technical field of air conditioners. The method comprises the following steps: acquiring model indication information of the electrical equipment and a to-be-adjusted index value of the electrical equipment; data in a storage area corresponding to the machine type indication information is read from a storage module, the storage module comprises a plurality of storage areas, and the data in each storage area comprises the corresponding relation between the index value under one machine type and the storage area indication information and unit parameters of one machine type; determining a storage area corresponding to the to-be-adjusted index value according to the to-be-adjusted index value and data in the storage area corresponding to the type indication information; and taking the unit parameters in the storage area corresponding to the to-be-adjusted index values as the operation parameters of the electrical equipment. By means of the method, the requirement for adjusting the index value can be met, meanwhile, self-adaptive selection of the operation parameters can be achieved, and the storage space of the electrical equipment can be effectively saved.
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Description

Technical Field

[0001] The present disclosure relates to the technical field of air conditioners, and particularly to a method and device for selecting operating parameters of an electrical device and an air conditioning system. Background Art

[0002] For an electrical device (such as an air conditioner), the same housing and the same system configuration may be shared by multiple models (or types). For example, when classifying air conditioner models by the capacity index, air conditioner models of 09K, 12K, and 18K can share the same housing and the same system configuration, and air conditioner models of 24K and 36K can share the same housing and the same system configuration. Although the system configurations are basically the same, the unit parameters (or system parameters) of electrical devices of different models are different. In view of this, in the related art, jumpers are usually used to distinguish electrical devices of different models, and each jumper number corresponds to a storage area to store the unit parameters of the corresponding model. For example, jumper 1 is used to represent air conditioner model 09K, jumper 2 is used to represent air conditioner model 12K, storage area 1 corresponding to jumper 1 is used to store the unit parameters of model 09K, storage area 2 corresponding to jumper 2 is used to store the unit parameters of model 12K, and so on.

[0003] However, for some markets, too many models are not conducive to the storage and sales of products. Therefore, they will put forward the requirement that the device index value (such as the capacity of an air conditioner) is adjustable. For example, customers place orders for 18K air conditioners of the capacity model uniformly, and then for different application scenarios, the air conditioner can be adjusted to other capacities. There are various ways to adjust the capacity, such as DIP switch operation, parameter setting, etc. Summary of the Invention

[0004] The present disclosure provides a method and device for selecting operating parameters of an electrical device and an air conditioning system.

[0005] According to a first aspect of the present disclosure, a method for selecting operating parameters of an electrical device is provided, including: obtaining model indication information of the electrical device and a target index value of the electrical device; reading data in a storage area corresponding to the model indication information from a storage module, where the storage module includes a plurality of storage areas, and the data in each storage area includes a correspondence between an index value and storage area indication information under a model and unit parameters of the model; determining a storage area corresponding to the target index value according to the target index value and the data in the storage area corresponding to the model indication information; and using the unit parameters in the storage area corresponding to the target index value as the operating parameters of the electrical device.

[0006] In some embodiments, the storage area indication information is the identifier of the storage area, or the number of the jumper cap associated with the storage area, and / or the metric value is the power, capacity, refrigerating capacity, or heating capacity of the electrical device.

[0007] In some embodiments, the correspondence between the metric value and the storage area indication information is the correspondence between the capacity and the number of the jumper cap.

[0008] In some embodiments, the correspondence between the capacity and the number of the jumper cap is represented by the information stored in multiple bytes. Each byte in the multiple bytes is used to store the number of the jumper cap corresponding to a certain capacity, and different bytes are used to store the numbers of the jumper caps corresponding to different capacities.

[0009] In some embodiments, the model indication information of the electrical device is the number of the jumper cap in the electrical device.

[0010] In some embodiments, determining the storage area corresponding to the to-be-adjusted metric value according to the to-be-adjusted metric value and the data in the storage area corresponding to the model indication information includes: determining the number of the jumper cap corresponding to the to-be-adjusted capacity according to the to-be-adjusted capacity of the electrical device and the correspondence between the capacity and the number of the jumper cap in the storage area corresponding to the model indication information; in the case where the number of the jumper cap corresponding to the to-be-adjusted capacity is different from the number of the jumper cap in the electrical device, determining the storage area corresponding to the to-be-adjusted capacity according to the number of the jumper cap corresponding to the to-be-adjusted capacity and the correspondence between the number of the jumper cap and the storage area.

[0011] In some embodiments, determining the storage area corresponding to the to-be-adjusted metric value according to the to-be-adjusted metric value and the data in the storage area corresponding to the model indication information further includes: in the case where the number of the jumper cap corresponding to the to-be-adjusted capacity of the electrical device is the same as the number of the jumper cap in the electrical device, using the storage area corresponding to the number of the jumper cap in the electrical device as the storage area corresponding to the to-be-adjusted capacity.

[0012] In some embodiments, the method for selecting the operating parameters of the electrical device further includes: in the case where the number of the jumper cap corresponding to the to-be-adjusted capacity is empty, using the storage area corresponding to the number of the jumper cap in the electrical device as the storage area corresponding to the to-be-adjusted capacity, and / or outputting an exception prompt message to the user.

[0013] In some embodiments, the method for selecting operating parameters of an electrical appliance further includes: before determining the storage area corresponding to the to-be-adjusted index value according to the to-be-adjusted index value and the data in the storage area corresponding to the model indication information, determining that the default index value corresponding to the model indication information is different from the value of the to-be-adjusted index value.

[0014] In some embodiments, the method for selecting operating parameters of an electrical appliance further includes: in a case where the default index value corresponding to the model indication information is the same as the value of the to-be-adjusted index value, using the storage area corresponding to the model indication information as the storage area corresponding to the to-be-adjusted index value.

[0015] In some embodiments, the method for selecting operating parameters of an electrical appliance further includes: after the electrical appliance operates according to the operating parameters, determining an actual characterization value of the operating effect of the electrical appliance; and adjusting the operating parameters of the electrical appliance according to the actual characterization value and the expected characterization value of the operating effect.

[0016] In some embodiments, the index value is capacity, the actual characterization value of the operating effect is the actual time taken for the temperature of the environment to change to a specified value, the expected characterization value of the operating effect is the expected time taken for the temperature of the environment to change to the specified value, and the adjustment of the operating parameters of the electrical appliance includes: in a case where the actual time is less than the expected time and the absolute value of the deviation between the actual time and the expected time exceeds the deviation threshold, reducing the to-be-adjusted capacity and using the unit parameters in the storage area corresponding to the reduced capacity as the operating parameters of the electrical appliance; in a case where the actual time is greater than the expected time and the absolute value of the deviation between the actual time and the expected time exceeds the deviation threshold, increasing the to-be-adjusted capacity and using the unit parameters in the storage area corresponding to the increased capacity as the operating parameters of the electrical appliance.

[0017] In some embodiments, the method for selecting operating parameters of an electrical appliance further includes: before adjusting the operating parameters of the electrical appliance, determining that the duration of the state where the absolute value of the deviation exceeds the deviation threshold is greater than a set duration.

[0018] According to a second aspect of the present disclosure, there is provided an apparatus for selecting operating parameters of an electrical appliance, including: a module for executing the method for selecting operating parameters of an electrical appliance as described above.

[0019] According to a third aspect of the present disclosure, there is provided an apparatus for selecting operating parameters of an electrical appliance, including: a memory; and a processor coupled to the memory, the processor being configured to execute the method for selecting operating parameters of an electrical appliance as described above based on instructions stored in the memory.

[0020] According to a fourth aspect of the present disclosure, an air conditioning system is provided, including: a running parameter selection device for electrical equipment as described above.

[0021] According to a fifth aspect of the present disclosure, a computer-readable storage medium is provided, on which computer program instructions are stored, and when the instructions are executed by a processor, the method for selecting running parameters of electrical equipment as described above is implemented.

[0022] According to a sixth aspect of the present disclosure, a computer program product is provided, on which computer program instructions are stored, and when the instructions are executed by a processor, the method for selecting running parameters of electrical equipment as described above is implemented.

[0023] Other features and advantages of the present disclosure will become clear through the following detailed description of exemplary embodiments of the present disclosure with reference to the accompanying drawings. Description of the Drawings

[0024] The drawings forming a part of the specification depict embodiments of the present disclosure and, together with the specification, are used to explain the principles of the present disclosure.

[0025] Figure 1 is a schematic diagram of a unit parameter storage scheme in the related art;

[0026] Figure 2 is a schematic diagram of a unit parameter storage scheme in the related art;

[0027] Figure 3 is a schematic flowchart of a method for selecting running parameters of electrical equipment according to some embodiments of the present disclosure;

[0028] Figure 4 is a schematic flowchart of a method for selecting running parameters of electrical equipment according to other embodiments of the present disclosure;

[0029] Figure 5 is a schematic flowchart of a method for selecting running parameters of electrical equipment according to still other embodiments of the present disclosure;

[0030] Figure 6 is a schematic diagram of a unit parameter storage scheme according to some embodiments;

[0031] Figure 7 is a schematic diagram of a unit parameter storage scheme according to some embodiments;

[0032] Figure 8 is a schematic structural diagram of a running parameter selection device for electrical equipment according to some embodiments of the present disclosure;

[0033] Figure 9 is a schematic structural diagram of a running parameter selection device for electrical equipment according to other embodiments of the present disclosure;

[0034] Figure 10 It is a schematic structural diagram of an air-conditioning system according to some embodiments of the present disclosure.

[0035] With reference to the accompanying drawings and according to the following detailed description, the present disclosure can be more clearly understood. Detailed embodiments

[0036] Various exemplary embodiments of the present disclosure will now be described in detail with reference to the accompanying drawings. It should be noted that: unless otherwise specifically stated, the relative arrangements of components and steps, numerical expressions, and numerical values set forth in these embodiments do not limit the scope of the present disclosure.

[0037] At the same time, it should be understood that, for the sake of convenience of description, the dimensions of the various parts shown in the drawings are not drawn in actual proportional relationship.

[0038] The following description of at least one exemplary embodiment is merely illustrative in nature and in no way serves as a limitation to the present disclosure and its application or use.

[0039] Techniques, methods, and devices known to those of ordinary skill in the relevant art may not be discussed in detail, but where appropriate, the techniques, methods, and devices should be regarded as part of the authorization specification.

[0040] In all the examples shown and discussed here, any specific value should be construed as merely exemplary and not as a limitation. Therefore, other examples of the exemplary embodiments may have different values.

[0041] It should be noted that: similar reference numerals and letters denote similar items in the following drawings, and thus, once an item is defined in one drawing, it does not need to be further discussed in subsequent drawings.

[0042] To make the purpose, technical solution, and advantages of the present disclosure clearer and more understandable, the present disclosure will be further described in detail below with reference to specific embodiments and the accompanying drawings.

[0043] In the related art, for electrical equipment that does not have the need to adjust equipment index values (such as capacity), the adopted unit parameter storage scheme is as Figure 1 shown. For example, the storage space of the memory chip is divided into N (for example, N is 8) regions, each jumper cap number corresponds to a storage region, and each storage region is used to store the unit parameters of a model. After the unit is powered on, first read the jumper cap number, and then read the unit parameters from the storage region corresponding to the jumper cap number in the memory chip, and use the read unit parameters as the operating parameters.

[0044] In the related art, for electrical appliances that require adjustment of device index values (such as capacity), the unit parameter storage scheme adopted is as follows Figure 2 shown. For example, the storage space of the memory chip is divided into N (for example, N is 4) regional segments. Assuming that the number of adjustable capacities for each model is M (for example, M is 2), then each jumper cap number corresponds to a regional segment, and each regional segment contains M regions, and each region is used to store the unit parameters for one capacity. After the unit is powered on, first read the jumper cap number, then determine the regional segment corresponding to the jumper cap number, then find the region corresponding to the read capacity from the M regions included in this regional segment, and then read the unit parameters from this region.

[0045] From Figure 2 it can be seen that the adjustable index value means that the electrical appliance needs to memorize multiple sets of operating parameters at the same time, and each set of operating parameters needs to be stored in a storage area, which also means that each jumper cap needs to correspond to multiple storage areas, resulting in fewer actually available storage areas for the electrical appliance. Moreover, since the number of adjustable index values for different models of electrical appliances is uncertain, the number of storage areas corresponding to each jumper cap needs to be reserved according to the maximum number of adjustable index values, which will further reduce the available storage space.

[0046] In view of this, the present disclosure proposes a method and device for selecting operating parameters of an electrical appliance and an air conditioning system, which can not only realize the adaptive selection of operating parameters while meeting the demand for adjustable index values, but also effectively save the storage space of the electrical appliance.

[0047] Figure 3 is a schematic flowchart of a method for selecting operating parameters of an electrical appliance according to some embodiments of the present disclosure. As Figure 3 shown, the method for selecting operating parameters of an electrical appliance includes steps S31 to S34.

[0048] In step S31, obtain the model indication information of the electrical appliance and the index value to be adjusted of the electrical appliance.

[0049] The model indication information is used to indicate the model of the electrical appliance. The model indication information can be the jumper cap number of the electrical appliance, or other information that can be used to indicate the model. For example, the jumper cap number 1 can be used to represent model one of the electrical appliance, the jumper cap number 2 can be used to represent model two of the electrical appliance, and the jumper cap number 3 can be used to represent model three of the electrical appliance. For another example, the model number can be directly used to represent the model of the electrical appliance.

[0050] In some examples, the model indication information is the jumper cap number of the electrical device. In these examples, the jumper cap number of the electrical device can be detected in advance by a detection circuit, and the jumper cap number of the electrical device can be stored. When step S31 is executed, the stored jumper cap number of the electrical device is read. In other examples, the jumper cap number of the electrical device can also be detected in real time by the detection circuit when step S31 is executed. By making the model indication information be the jumper cap number of the electrical device, the model of the electrical device can be represented more simply and conveniently. Moreover, since the acquisition of the jumper cap number of the electrical device is very convenient, the entire method flow is more convenient and efficient.

[0051] Among them, the target value of the index to be adjusted for the electrical device refers to the target index value that the user wants to set, which can be capacity, refrigerating capacity, heating capacity, power, etc. In specific implementation, with the difference in the types of electrical devices, the target value of the index to be adjusted can be set flexibly. For example, for an air-conditioning system, the user can set the capacity number through various methods such as setting on the display screen and capacity DIP switches. After the user sets the capacity number, the operating parameters of the electrical device can read this capacity number.

[0052] In step S32, the data in the storage area corresponding to the model indication information is read from the storage module.

[0053] The storage module includes multiple storage areas. The data in each storage area includes the correspondence between the index values under one model and the storage area indication information, as well as the unit parameters of this one model. Different storage areas are used to store data of different models. For example, assuming that there are 5 models of a certain electrical device, 5 storage areas can be divided from the storage module of the electrical device, and each storage area is used to store the data of one model.

[0054] In the above correspondence stored in the storage area, the index value can be capacity, power, refrigerating capacity, or heating capacity, etc. The storage area indication information can be the identifier of the storage area, or the number of the jumper cap associated with the storage area, or other information that can indicate the storage area. For example, the above correspondence is the correspondence between capacity and the number of the jumper cap.

[0055] In the embodiments of the present disclosure, by defining the index value and the storage area indication information as above, while meeting the actual index adjustment requirements, the convenience of the overall method flow can be improved. Further, by making the above correspondence be the correspondence between capacity and the number of the jumper cap, while meeting the adjustable capacity requirements of the electrical device, it is convenient to adaptively select the operating parameters of the electrical device according to the capacity value actually set by the user and the above correspondence.

[0056] In step S33, based on the value of the index to be adjusted and the data in the storage area corresponding to the model indication information, determine the storage area corresponding to the value of the index to be adjusted.

[0057] The following provides an exemplary illustration of step S33 in combination with two alternative examples.

[0058] In the first alternative example, the storage area stores the correspondence between the index value and the storage area identifier. In this example, based on the value of the index to be adjusted, query the above correspondence in the storage area corresponding to the model indication information, so as to determine the identifier of the storage area corresponding to the value of the index to be adjusted. In this way, the storage area corresponding to the value of the index to be adjusted can be quickly determined.

[0059] In the second alternative example, the storage area stores the correspondence between the index value and the jumper cap number. In this example, based on the value of the index to be adjusted, query the above correspondence in the storage area corresponding to the model indication information, so as to determine the jumper cap number corresponding to the value of the index to be adjusted. Then, based on the jumper cap number corresponding to the value of the index to be adjusted and the correspondence between the jumper cap number and the storage area, determine the storage area corresponding to the value of the index to be adjusted.

[0060] In some embodiments, the method for selecting the operating parameters of the electrical equipment further includes: before executing step S33, determine whether the default index value corresponding to the model indication information is the same as the value of the index to be adjusted, and the determination result is that the two are different. In addition, the method for selecting the operating parameters of the electrical equipment further includes: when the default index value corresponding to the model indication information is the same as the value of the index to be adjusted, use the storage area corresponding to the model indication information as the storage area corresponding to the value of the index to be adjusted.

[0061] For example, assume that the value of the index to be adjusted is capacity number 9, and the default index value corresponding to the model indication information is capacity number 10. Then it can be determined that these two capacity numbers are different, and then step S33 is executed; assume that the value of the index to be adjusted is capacity number 10, and the default index value corresponding to the model indication information is capacity number 10. Then it can be determined that these two capacity numbers are the same, and then the storage area corresponding to the model indication information is used as the storage area corresponding to the value of the index to be adjusted.

[0062] In the embodiments of the present disclosure, by first determining whether the execution condition that the value of the index to be adjusted is different from the default index value is met before executing step S33, and when this execution condition is not met, directly using the storage area corresponding to the model indication information as the storage area corresponding to the value of the index to be adjusted. In this way, there is no need to search for the storage area twice, which helps to improve the processing efficiency of the method for selecting the operating parameters of the electrical equipment and reduce the system overhead.

[0063] In step S34, the unit parameters in the storage area corresponding to the to-be-adjusted index value are used as the operating parameters of the electrical equipment.

[0064] For example, if the storage area corresponding to the to-be-adjusted index value is storage area two, the unit parameters stored in storage area two are used as the operating parameters of the electrical equipment.

[0065] Considering that the above to-be-adjusted index values set by the user may not match the actual usage environment. Taking an air conditioner as an example, the capacity set by the user may not match the actual usage environment. For example, a small-capacity air conditioner unit parameter is used in a large room, and a large-capacity air conditioner unit parameter is used in a small room. In this way, it may lead to problems such as poor operating effect or high energy consumption of the electrical equipment. To solve the above problems, an adaptive adjustment process of the operating parameters can be added to the above method.

[0066] In some embodiments, the method for selecting the operating parameters of the electrical equipment further includes the following adaptive adjustment process of the operating parameters: after the electrical equipment operates according to the operating parameters determined in step S34, determine the actual characterization value of the operating effect of the electrical equipment; adjust the operating parameters of the electrical equipment according to the actual characterization value and the expected characterization value of the operating effect. By automatically adjusting the operating parameters of the electrical equipment according to the actual operating effect and the expected operating effect of the electrical equipment, it is possible to intelligently adjust the operating parameters of the electrical equipment when the index values set by the user are unreasonable, thereby helping to improve the operating effect of the electrical equipment, enhance the user experience, and be more energy-efficient.

[0067] In some examples, adjusting the operating parameters of the electrical equipment according to the actual characterization value and the expected characterization value of the operating effect may include: adjusting the operating parameters of the electrical equipment when the absolute value of the deviation between the actual characterization value and the expected characterization value of the operating effect exceeds the deviation threshold. In addition, in some other examples, the adjustment of the operating parameters may also be performed when the ratio of the actual characterization value to the expected characterization value of the operating effect meets the set conditions.

[0068] Further, in some of the above examples, the index value may be the capacity, the actual characterization value of the operation effect may be the actual time taken for the temperature change of the environment to reach the specified value, and the desired characterization value is the desired time taken for the temperature change of the environment to reach the specified value. In these examples, the operation parameters of the electrical equipment can be adjusted in the following manner: when the actual time taken for the temperature change of the environment to reach the specified value is less than the desired time and the absolute value of the deviation between the actual time and the desired time exceeds the deviation threshold, the capacity to be adjusted is reduced, and the unit parameters in the storage area corresponding to the reduced capacity are used as the operation parameters of the electrical equipment; when the actual time is greater than the desired time and the absolute value of the deviation between the actual time and the desired time exceeds the deviation threshold, the capacity to be adjusted is increased, and the unit parameters in the storage area corresponding to the increased capacity are used as the operation parameters of the electrical equipment. Among them, reducing the capacity to be adjusted can be updating the capacity number to a capacity number that is a set step smaller than the capacity number set by the user, such as one or two numbers smaller than the capacity number set by the user; increasing the capacity to be adjusted can be updating the capacity number to a capacity number that is a set step larger than the capacity number set by the user, such as one or two numbers larger than the capacity number set by the user. Through the above steps, the adaptive adjustment of the capacity and operation parameters can be achieved, and thus while improving the operation effect of the electrical equipment, it can be more energy-efficient.

[0069] In addition, if after adjusting the operation parameters, there is always a certain deviation between the actual characterization value and the desired characterization value of the operation effect, making it impossible to meet the deviation range requirement, then the electrical equipment can also be made to operate according to the operation parameters that minimize the absolute value of the deviation. In addition, in specific implementation, in addition to using the time taken for the temperature change of the environment to reach the specified value as the operation effect characterization value, other system operation parameters can also be combined for auxiliary judgment, such as the pipe temperatures of the unit condenser and evaporator, the compressor discharge and suction temperatures, the unit outlet air temperature, the system pressure, etc.

[0070] Further, in some of the above examples, the method for selecting the operation parameters of the electrical equipment may further include: before adjusting the operation parameters of the electrical equipment, determining that the duration of the state where the absolute value of the deviation exceeds the deviation threshold is greater than the set duration. By further limiting the execution conditions for adjusting the operation parameters, the reliability of the overall method can be improved, and the stability of the operation of the electrical equipment can be enhanced.

[0071] In the embodiments of the present disclosure, by storing not only the unit parameters of one model but also the correspondence between the index values and the storage area indication information of one model in each storage area, and using the above correspondence to determine the storage area corresponding to the index value to be adjusted, and then determining the operating parameters of the electrical equipment, in this way, not only can the adaptive selection of the operating parameters of the electrical equipment be realized on the basis of meeting the adjustable requirement of the index value, but also the problem of repeated storage of unit parameters can be effectively alleviated, and the storage space of the electrical equipment can be saved.

[0072] Figure 4 FIG. 4 is a schematic flowchart of a method for selecting operating parameters of an electrical equipment according to some other embodiments of the present disclosure. In these embodiments, the electrical equipment is an air conditioner, the index value is capacity, and the model indication information and the storage area indication information are jumper cap numbers. As Figure 4 shown, the method for selecting operating parameters of the electrical equipment includes steps S41 to S45.

[0073] In step S41, the unit is powered on.

[0074] In some embodiments, the method for selecting operating parameters of the electrical equipment can be executed by the controller of the air conditioner. In step S41, the power supply of the air conditioner unit can be turned on by an automatic control method of the controller. In addition, the power supply of the air conditioner unit can also be turned on manually.

[0075] In step S42, the number of the jumper cap of the air conditioner and the capacity to be adjusted are obtained.

[0076] For example, the number of the jumper cap of the air conditioner can be detected by a jumper cap number detection circuit first, and then the number of the jumper cap of the air conditioner is reported to the controller, so that the controller can obtain the number of the jumper cap of the air conditioner.

[0077] For example, the user can set the capacity to be adjusted by means of a display screen or a capacity DIP switch first, and then report the capacity to be adjusted to the controller, so that the controller can obtain the capacity to be adjusted.

[0078] In step S43, according to the number of the jumper cap, the data in the corresponding storage area is read.

[0079] The storage module (such as a memory chip) includes a plurality of storage areas, and the data stored in each storage area includes the correspondence between the capacity and the jumper cap number of one model and the unit parameters of the one model. Different storage areas store data of different models.

[0080] In some examples, the correspondence between the capacity and the jumper cap number is represented by information stored in multiple bytes. Among them, each byte in the multiple bytes is used to store the number of the jumper cap corresponding to a kind of capacity, and different bytes are used to store the numbers of the jumper caps corresponding to different capacities.

[0081] For example, assume there are a total of 8 bytes, and bytes 1 - 8 represent different capacities. For example, byte 1 represents the smallest capacity number 1, and this byte is used to store the jumper cap number corresponding to capacity number 1. Byte 2 represents the second smallest capacity number 2, and this byte is used to store the jumper cap number corresponding to capacity number 2. And so on, byte 8 is used to represent the largest capacity number 8, and this byte is used to store the jumper cap number corresponding to capacity number 8.

[0082] In the embodiments of the present disclosure, representing the correspondence between the capacity and the jumper cap number through the information stored in multiple bytes can more conveniently represent the above - mentioned correspondence and can more save the storage space required for storing the above - mentioned correspondence.

[0083] Specifically, in step S43, the controller reads the data in the storage area corresponding to the jumper cap number of the air conditioner from the storage module. This data includes: the correspondence between the capacity and the jumper cap number in the storage area corresponding to the jumper cap number of the air conditioner.

[0084] In step S44, according to the data in the storage area, determine the jumper cap number corresponding to the capacity to be adjusted.

[0085] Specifically, in this step, the controller can determine the jumper cap number corresponding to the capacity to be adjusted according to the capacity to be adjusted and the correspondence between the capacity and the jumper cap number in the storage area corresponding to the jumper cap number of the air conditioner.

[0086] In some embodiments, the method for selecting the operating parameters of the electrical equipment further includes: before executing step S44 and step S45, determine whether the default capacity corresponding to the jumper cap number of the air conditioner is the same as the capacity to be adjusted, and the determination result is different. In addition, the method for selecting the operating parameters of the electrical equipment further includes: in the case where the default capacity corresponding to the jumper cap number of the air conditioner is the same as the capacity to be adjusted, directly use the unit parameters in the storage area corresponding to the jumper cap number of the air conditioner as the operating parameters of the air conditioner.

[0087] In step S45, according to the jumper cap number corresponding to the capacity to be adjusted, read the unit parameters in the corresponding storage area and use the unit parameters as the operating parameters of the air conditioner.

[0088] In the embodiments of the present disclosure, through the above process, it can meet the demand for adjustable capacity of the air conditioner while realizing the adaptive selection of the operating parameters of the air conditioner, and can also effectively save the storage space in the storage module of the air conditioner.

[0089] Figure 5 It is a flowchart of the method for selecting the operating parameters of the electrical equipment according to still some other embodiments of the present disclosure. As Figure 5 shown, the method for selecting the operating parameters of the electrical equipment includes steps S41 to S47.

[0090] In step S41, the unit is powered on.

[0091] In step S42, obtain the number of the jumper cap of the air conditioner and the capacity to be adjusted.

[0092] In step S43, according to the number of the jumper cap, read the data in the corresponding storage area.

[0093] The storage module (such as a memory chip) includes multiple storage areas. The data stored in each storage area includes the correspondence between the capacity and the jumper cap number under one model, and the unit parameters under that one model. Different storage areas store data of different models. In step S43, read the data in the storage area corresponding to the jumper cap number of the air conditioner from the storage module. This data includes: the correspondence between the capacity and the jumper cap number in the storage area corresponding to the jumper cap number of the air conditioner.

[0094] In step S44, according to the data in the storage area, determine the number of the jumper cap corresponding to the capacity to be adjusted.

[0095] Specifically, in this step, the controller can determine the number of the jumper cap corresponding to the capacity to be adjusted according to the capacity to be adjusted and the correspondence between the capacity and the jumper cap number in the storage area corresponding to the jumper cap number of the air conditioner.

[0096] After step S44, first judge whether the number of the jumper cap corresponding to the capacity to be adjusted is empty. If the number of the jumper cap corresponding to the capacity to be adjusted is not empty, judge whether the number of the jumper cap corresponding to the capacity to be adjusted is the same as the number of the jumper cap of the air conditioner. If the number of the jumper cap corresponding to the capacity to be adjusted is different from the number of the jumper cap of the air conditioner, execute step S45. If the number of the jumper cap corresponding to the capacity to be adjusted is the same as the number of the jumper cap of the air conditioner, execute step S47. If the number of the jumper cap corresponding to the capacity to be adjusted is empty, execute step S46.

[0097] In addition, in some other embodiments, after step S44, it can also be judged whether the number of the jumper cap corresponding to the capacity to be adjusted is empty, and when it is judged to be empty, execute step S46, and when it is judged not to be empty, execute step S45. In still some other embodiments, after step S44, it can also be judged whether the number of the jumper cap corresponding to the capacity to be adjusted is the same as the number of the jumper cap of the air conditioner. If they are the same, execute step S47; if they are different, execute step S45.

[0098] In step S45, according to the number of the jumper cap corresponding to the capacity to be adjusted, read the unit parameters in the corresponding storage area and use these unit parameters as the operating parameters of the air conditioner.

[0099] In step S46, the unit parameters in the storage area corresponding to the jumper cap number of the air conditioner are used as the operating parameters of the air conditioner, and the user is prompted. For example, an exception prompt message can be output to the user through the display screen. For example, the following message can be output to the user: This model does not support adjustment to this capacity. In addition, in some other embodiments, after determining that the number of the jumper cap corresponding to the capacity to be adjusted is empty, only the operation of using the unit parameters in the storage area corresponding to the jumper cap number of the air conditioner as the operating parameters of the air conditioner can be performed in step S46, or only the operation of outputting an exception prompt message to the user can be performed.

[0100] In step S47, the unit parameters in the storage area corresponding to the jumper cap number of the air conditioner are used as the operating parameters of the air conditioner.

[0101] In the embodiments of the present disclosure, through the above process, not only can the adaptive selection of the operating parameters of the air conditioner be realized while meeting the demand for adjustable capacity, but also the storage space of the air conditioner can be effectively saved. Further, by judging whether the number of the jumper cap corresponding to the capacity to be adjusted is empty and performing different operations according to different judgment results, the integrity of the overall method process can be improved, which helps to improve the user experience. Further, by judging whether the jumper cap number of the air conditioner is the same as the jumper cap number corresponding to the capacity to be adjusted and performing different process branches according to different judgment results, the process of unnecessary secondary search of the storage area can be reduced, which helps to improve the execution efficiency of the overall method.

[0102] The following combines Figure 6 and Figure 7 to further illustrate the technical effect of saving storage space that can be achieved by the method proposed in the present disclosure.

[0103] Figure 6 is a schematic diagram of a unit parameter storage scheme according to some embodiments. In this embodiment, the adjustable index value under the same model is the capacity. As Figure 6 shown, the storage module (such as a memory chip) includes four storage areas, and one jumper cap number corresponds to one storage area. Specifically, jumper cap number 1 corresponds to area one, jumper cap number 2 corresponds to area two, jumper cap number 3 corresponds to area three, and jumper cap number 4 corresponds to area four.

[0104] Moreover, each storage area is used to store data of one model. Specifically, Area 1 is used to store the unit parameters of Model 1 and the corresponding relationship between the capacity and the jumper cap number under Model 1, including: the jumper cap number 2 corresponding to the capacity 2, and the jumper cap number 3 corresponding to the capacity 3. Area 2 is used to store the unit parameters of Model 2 and the corresponding relationship between the capacity and the jumper cap number under Model 2, including: the jumper cap number 1 corresponding to the capacity 1, and the jumper cap number 3 corresponding to the capacity 3. Area 3 is used to store the unit parameters of Model 3 and the corresponding relationship between the capacity and the jumper cap number under Model 3, including: the jumper cap number 1 corresponding to the capacity 1, and the jumper cap number 4 corresponding to the capacity 4. Area 4 is used to store the unit parameters of Model 4 and the corresponding relationship between the capacity and the jumper cap number under Model 4, including: the jumper cap number 1 corresponding to the capacity 1, and the jumper cap number 2 corresponding to the capacity 2.

[0105] Adopt Figure 6 The storage scheme shown can meet the adjustable capacity requirements of 4 models through four storage areas. If Figure 2 the storage scheme shown is adopted, eight storage areas are required to meet the adjustable capacity requirements of 4 models. It can be seen that through the unit parameter storage scheme proposed in the present disclosure, the storage space of electrical equipment can be saved.

[0106] Figure 7 is a schematic diagram of a unit parameter storage scheme according to some embodiments. The storage scheme shown in this figure is only different from Figure 6 the storage scheme shown in the index values. Adopt Figure 7 the storage scheme shown, and the adjustable heating capacity requirements of 4 models can be met through four storage areas. If Figure 2 the storage scheme shown is adopted, eight storage areas are required to meet the adjustable heating capacity requirements of 4 models. It can be seen that through the unit parameter storage scheme proposed in the present disclosure, the storage space of electrical equipment can be saved.

[0107] Figure 8 is a schematic structural diagram of an operating parameter selection device of an electrical equipment according to some embodiments of the present disclosure. As Figure 8 shown, the operating parameter selection device 80 of the electrical equipment is used to execute the operating parameter selection method of the electrical equipment as described above, including an acquisition module 81, a reading module 82, an area determination module 83, and a parameter determination module 84.

[0108] The acquisition module 81 is configured to acquire the model indication information of the electrical equipment and the to-be-adjusted index value of the electrical equipment.

[0109] A reading module 82 is configured to read data in a storage area corresponding to the model indication information from a storage module. The storage module includes a plurality of storage areas, and the data in each storage area includes the correspondence between the index values under a model and the storage area indication information, as well as the unit parameters of a model.

[0110] A region determination module 83 is configured to determine the storage area corresponding to the index value to be adjusted according to the index value to be adjusted and the data in the storage area corresponding to the model indication information.

[0111] A parameter determination module 84 is configured to use the unit parameters in the storage area corresponding to the index value to be adjusted as the operating parameters of the electrical equipment.

[0112] In the embodiments of the present disclosure, through the above device, not only can the adaptive selection of the operating parameters of the electrical equipment be realized while meeting the adjustable requirement of the index value, but also the storage space of the electrical equipment can be effectively saved.

[0113] Figure 9 It is a schematic structural diagram of a device for selecting operating parameters of an electrical equipment according to some other embodiments of the present disclosure. As Figure 9 shown, the device 90 for selecting operating parameters of an electrical equipment includes a memory 91 and a processor 92 coupled to the memory 91. The memory 91 is used to store instructions corresponding to the embodiments of the method for selecting operating parameters of the electrical equipment. The processor 92 is configured to execute the method for selecting operating parameters of the electrical equipment in any of the embodiments in the present disclosure based on the instructions stored in the memory 91.

[0114] Figure 10 It is a schematic structural diagram of an air conditioning system according to some embodiments of the present disclosure. As Figure 10 shown, the air conditioning system 100 includes the device 90 for selecting operating parameters of the electrical equipment.

[0115] The device 90 for selecting operating parameters of the electrical equipment is configured to execute the method for selecting operating parameters of the electrical equipment in any of the previous embodiments.

[0116] In some embodiments, the air conditioning system 100 includes a controller and a storage module. Among them, the controller includes the device 90 for selecting operating parameters of the electrical equipment.

[0117] The storage module can be, for example, a memory chip. The storage module is divided into a plurality of storage areas, and each storage area is used to store the correspondence between the index values under a model and the storage area indication information, as well as the unit parameters of a model.

[0118] For example, the index value is the capacity of the air conditioner, the storage area indication information is the jumper cap number, and each storage area in the storage module is used to store the jumper cap numbers corresponding to the adjustable capacities under a model and the unit parameters of a model. In addition, the index value can also be the power, cooling capacity, or heating capacity of the air conditioner, etc.

[0119] In the embodiments of the present disclosure, through the above system, not only can the adaptive selection of the operating parameters of the air conditioner system be realized while meeting the adjustable demand of the index value, but also the storage space of the air conditioner system can be effectively saved.

[0120] Here, various aspects of the present disclosure are described with reference to the flowcharts and / or block diagrams of the method, device, and computer program product for selecting the operating parameters of an electrical device according to the embodiments of the present disclosure. It should be understood that each block of the flowchart and / or block diagram, and the combination of blocks, can be implemented by computer-readable program instructions.

[0121] These computer-readable program instructions can be provided to the processor of a general-purpose computer, a special-purpose computer, or other programmable devices to generate a machine, such that the device implementing the functions specified in one or more blocks in the flowchart and / or block diagram is generated by executing the instructions by the processor.

[0122] These computer-readable program instructions can also be stored in a computer-readable memory, and these instructions cause the computer to work in a specific manner, thereby generating a manufactured article including the instructions implementing the functions specified in one or more blocks in the flowchart and / or block diagram.

[0123] The present disclosure can take the form of a complete hardware embodiment, a complete software embodiment, or an embodiment combining software and hardware aspects.

[0124] So far, the method, device, and air conditioner system for selecting the operating parameters of an electrical device according to the present disclosure have been described in detail. To avoid obscuring the concept of the present disclosure, some details well known in the art are not described. Those skilled in the art can clearly understand how to implement the technical solutions disclosed herein based on the above description.

Claims

1. A method for selecting operating parameters of an electrical device, comprising: Obtaining model indication information of an electrical device and an index value to be adjusted of the electrical device; Reading data in a storage area corresponding to the model indication information from a storage module, wherein the storage module includes a plurality of storage areas, and the data in each storage area includes a correspondence between an indicator value under a model and the storage area indication information, and a unit parameter of the model; Determine the storage area corresponding to the to-be-adjusted index value according to the to-be-adjusted index value and the data in the storage area corresponding to the model indication information; The unit parameters in the storage area corresponding to the index value to be adjusted are used as the operating parameters of the electrical equipment.

2. The method for selecting operating parameters of an electrical device according to claim 1, wherein: The storage area indication information is an identifier of the storage area, or a number of a jumper cap associated with the storage area, and / or the index value is power, capacity, cooling capacity, or heating capacity of the electrical equipment.

3. The method for selecting operating parameters of an electrical device according to claim 2, wherein: The corresponding relationship between the indicator value and the storage area indication information is the corresponding relationship between the capacity and the number of the jumper cap.

4. The method for selecting operating parameters of an electrical device according to claim 3, wherein: The correspondence between the capacity and the jumper cap number is represented by information stored in multiple bytes, each of the multiple bytes is used to store the jumper cap number corresponding to a capacity, and different bytes are used to store the jumper cap numbers corresponding to different capacities.

5. The method for selecting operating parameters of an electrical device according to claim 3, wherein: The model indication information of the electrical device is the number of the jumper cap in the electrical device.

6. The method for selecting operating parameters of an electrical device according to claim 5, wherein: The determining, according to the to-be-adjusted index value and the data in the storage area corresponding to the model indication information, the storage area corresponding to the to-be-adjusted index value comprises: Determine the number of the jumper cap corresponding to the capacity to be adjusted according to the capacity to be adjusted of the electrical device and the correspondence between the capacity in the storage area corresponding to the model indication information and the number of the jumper cap; When the number of the jumper cap corresponding to the capacity to be adjusted is different from the number of the jumper cap in the electrical device, the storage area corresponding to the capacity to be adjusted is determined according to the number of the jumper cap corresponding to the capacity to be adjusted and the correspondence between the number of the jumper cap and the storage area.

7. The method for selecting operating parameters of an electrical device according to claim 6, wherein: The step of determining the storage area corresponding to the to-be-adjusted index value according to the to-be-adjusted index value and the data in the storage area corresponding to the model indication information further comprises: When the number of the jumper cap corresponding to the capacity to be adjusted of the electrical device is the same as the number of the jumper cap in the electrical device, the storage area corresponding to the number of the jumper cap in the electrical device is used as the storage area corresponding to the capacity to be adjusted.

8. The method for selecting operating parameters of an electrical device according to claim 6, further comprising: When the number of the jumper cap corresponding to the capacity to be adjusted is empty, the storage area corresponding to the number of the jumper cap in the electrical device is used as the storage area corresponding to the capacity to be adjusted, and / or an abnormal prompt message is output to the user.

9. The method for selecting operating parameters of an electrical device according to any one of claims 1 to 5, further comprising: Before determining the storage area corresponding to the to-be-adjusted index value according to the to-be-adjusted index value and data in the storage area corresponding to the model indication information, it is determined that the default index value corresponding to the model indication information is different from the to-be-adjusted index value.

10. The method for selecting operating parameters of an electrical device according to claim 9, further comprising: In the case that the default index value corresponding to the machine type indication information is the same as the value of the index value to be adjusted, the storage area corresponding to the machine type indication information is used as the storage area corresponding to the index value to be adjusted.

11. The method for selecting operating parameters of an electrical device according to any one of claims 1 to 5, further comprising: After the electrical device is operated according to the operating parameters, determining an actual representation value of the operating effect of the electrical device; The operating parameters of the electrical equipment are adjusted according to the actual characterization value and the expected characterization value of the operating effect.

12. The method for selecting operating parameters of an electrical device according to claim 11, wherein: The index value is capacity, the actual characterization value of the operating effect is the actual time taken for the temperature change of the environment to reach the specified value, the expected characterization value is the expected time taken for the temperature change of the environment to reach the specified value, and the adjusting of the operating parameters of the electrical equipment includes: When the actual time is less than the expected time and the absolute value of the deviation between the actual time and the expected time exceeds the deviation threshold, the capacity to be adjusted is reduced, and the unit parameters in the storage area corresponding to the reduced capacity are used as the operating parameters of the electrical equipment; When the actual time is greater than the expected time and the absolute value of the deviation between the actual time and the expected time exceeds the deviation threshold, the capacity to be adjusted is increased, and the unit parameters in the storage area corresponding to the increased capacity are used as the operating parameters of the electrical equipment.

13. The method for selecting operating parameters of an electrical device according to claim 12, further comprising: Before adjusting the operating parameters of the electrical equipment, it is determined that the duration of the state in which the absolute value of the deviation exceeds the deviation threshold is greater than a set duration.

14. An operating parameter selection device for an electrical device, comprising: A module for executing the method for selecting operating parameters of an electrical device as claimed in any one of claims 1 to 13.

15. An operating parameter selection device for an electrical device, comprising: Memory; as well as A processor coupled to the memory, the processor being configured to execute the method for selecting operating parameters of an electrical device according to any one of claims 1 to 13 based on instructions stored in the memory.

16. An air conditioning system, comprising: An operating parameter selection device for an electrical device as claimed in claim 14 or 15.

17. A computer-readable storage medium having computer program instructions stored thereon, wherein when the instructions are executed by a processor, the method for selecting operating parameters of an electrical device according to any one of claims 1 to 13 is implemented.

18. A computer program product having computer program instructions stored thereon, wherein when the instructions are executed by a processor, the method for selecting operating parameters of an electrical device according to any one of claims 1 to 13 is implemented.