Water outlet control method and device of water outlet control device

By acquiring the water storage parameters of the water storage device and generating the target control coefficient, the problem of inaccurate water output from the water output control device was solved, achieving accurate water output control and meeting the water intake demand, thus improving the user experience.

CN117338162BActive Publication Date: 2026-04-28ZHONGSHAN MEIYANG ELECTRIC CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
ZHONGSHAN MEIYANG ELECTRIC CO LTD
Filing Date
2023-10-26
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

The existing water discharge control device is inaccurate in controlling the water discharge from the water storage device to the water inlet device, making it difficult to meet the water inlet requirements.

Method used

By acquiring the water storage parameters of the water storage device, a target control coefficient is generated based on the water inlet demand parameters. The water storage parameters are then controlled to generate target outlet parameters to meet the water inlet demand.

Benefits of technology

It improves the accuracy of water output control, meets the water intake requirements of the water inlet device, and enhances the user experience and user loyalty.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The application discloses a water outlet control method and device of a water outlet control device. The method comprises the following steps: when receiving a water inlet demand parameter of a water inlet device faced by the water outlet control device, obtaining a water storage parameter of a water storage device providing water for the water outlet control device; generating a target control coefficient of the water outlet control device for the water storage parameter according to the water inlet demand parameter and the water storage parameter; and controlling the water storage parameter according to the target control coefficient to obtain a target water outlet parameter, which is a parameter required by a water outlet control parameter for executing a water outlet operation on the water inlet device through the water storage device. It can be seen that the application can improve the water outlet control accuracy of the water outlet control device and is beneficial to meeting the water inlet demand of the water inlet device.
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Description

Technical Field

[0001] This invention relates to the field of intelligent water dispenser technology, and in particular to a water dispensing control method and device. Background Technology

[0002] Currently, when water dispensing devices (such as smart water dispensers) control the water storage device (such as a water tank) to dispense water into the water inlet device (such as a water cup), they often simply follow the water inlet device's demand (such as when the user presses a button for 75 degrees Celsius and 200 ml on the smart water dispenser's control panel) to control the water dispensing device to transfer water from the storage device to the inlet device. This can easily lead to inaccurate water dispensing results. Therefore, proposing a technical solution to improve the accuracy of water dispensing control devices is particularly important. Summary of the Invention

[0003] This invention provides a water outlet control method and apparatus for a water outlet control device, which can improve the accuracy of water outlet control and help meet the water inlet requirements of the water inlet device.

[0004] To address the aforementioned technical problems, the first aspect of this invention discloses a water outlet control method for a water outlet control device, the method comprising:

[0005] When the water demand parameters of the water inlet device to which the water outlet control device is facing are received, the water storage parameters of the water storage device that provides water outlet to the water outlet control device are obtained.

[0006] Based on the water inlet demand parameters and the water storage parameters, the target control coefficient of the water outlet control device for the water storage parameters is generated;

[0007] According to the target control coefficient, the water storage parameters are controlled to obtain the target water output parameters. The target water output parameters are the parameters required for the water output control parameters to perform water output operation from the water storage device to the water inlet device.

[0008] As an optional implementation, in the first aspect of the invention, before generating the target control coefficient of the outlet control device for the storage parameters based on the inlet water demand parameters and the storage parameters, the method further includes:

[0009] Based on the water inlet demand parameters and the water storage parameters, determine whether the water storage device meets the preset water outlet conditions;

[0010] When it is determined that the water storage device meets the water outlet conditions, the operation of generating the target control coefficient of the water outlet control device for the water storage parameters based on the water inlet demand parameters and the water storage parameters is triggered.

[0011] When it is determined that the water storage device does not meet the water outlet conditions, a water intake requirement modification prompt and / or a water storage re-storage prompt are generated based on the water intake requirement parameters and the water storage parameters. The water intake requirement modification prompt is used to indicate that the water intake requirement parameters should be modified, and the water storage re-storage prompt is used to indicate that the water storage parameters should be re-storaged.

[0012] As an optional implementation, in the first aspect of the present invention, the method further includes:

[0013] When only the water inlet demand modification prompt is generated, the first water inlet demand correction coefficient of the water inlet demand parameter is determined according to the water storage parameter, and the water inlet demand parameter is corrected according to the first water inlet demand correction coefficient to obtain the first water inlet demand parameter.

[0014] The water inlet demand parameter is updated to the first water inlet demand parameter, and the operation of generating the target control coefficient of the water outlet control device for the water storage parameter based on the water inlet demand parameter and the water storage parameter is triggered.

[0015] Furthermore, the method further includes:

[0016] When only the re-water storage prompt is generated, the first water storage control parameter of the water storage parameter is determined according to the water inlet demand parameter, and the re-water storage operation is performed on the water storage device according to the first water storage control parameter to obtain the first water storage parameter;

[0017] The water storage parameter is updated to the first water storage parameter, and the operation of generating the target control coefficient of the water outlet control device for the water storage parameter based on the water inlet demand parameter and the water storage parameter is triggered.

[0018] As an optional implementation, in the first aspect of the present invention, the method further includes:

[0019] When the water inlet demand modification prompt and the water storage re-storage prompt are generated, the modification requirement corresponding to the water inlet demand parameter and the water storage requirement corresponding to the water storage parameter are determined according to the water inlet demand parameter and the water storage parameter; and the second water inlet demand correction coefficient of the water inlet demand parameter is determined according to the modification requirement; and the second water storage control parameter of the water storage parameter is determined according to the water storage requirement.

[0020] The water inlet demand parameters are corrected according to the second water inlet demand correction coefficient to obtain the second water inlet demand parameters; and the water storage device is re-stored according to the second water storage control parameters to obtain the second water storage parameters.

[0021] The water inlet demand parameter is updated to the second water inlet demand parameter, and the water storage parameter is updated to the second water storage parameter. The operation of generating the target control coefficient of the water outlet control device for the water storage parameter based on the water inlet demand parameter and the water storage parameter is triggered.

[0022] As an optional implementation, in the first aspect of the present invention, determining whether the water storage device meets the preset water outlet conditions based on the water inlet demand parameters and the water storage parameters includes:

[0023] Determine whether the water storage parameters meet the water inlet requirement parameters;

[0024] When it is determined that the water storage parameters meet the water inlet requirements, the water storage device is determined to meet the preset water outlet conditions.

[0025] When it is determined that the water storage parameters do not meet the water inlet demand parameters, it is determined whether the historical number of modifications of the water inlet device to the water inlet demand parameters is greater than or equal to a preset number.

[0026] When it is determined that the number of historical modifications is greater than or equal to the preset number, the water storage device is determined to meet the preset water discharge conditions.

[0027] When it is determined that the water storage parameters do not meet the water inlet requirements and the number of historical modifications is less than the preset number, it is determined that the water storage device does not meet the preset water outlet conditions.

[0028] As an optional implementation, in the first aspect of the present invention, generating the target control coefficient of the outlet control device for the storage parameters based on the inlet water demand parameters and the storage parameters includes:

[0029] Obtain the parameter type of each of the at least one sub-influent demand parameters included in the influent demand parameters;

[0030] For each of the sub-inlet water demand parameters, based on the parameter type of the sub-inlet water demand parameter, a water storage parameter with the same parameter type as the sub-inlet water demand parameter is selected from the multiple sub-water storage parameters included in the water storage parameter, and used as the sub-water storage parameter of the same type corresponding to the sub-inlet water demand parameter;

[0031] When the number of sub-inlet water demand parameters included in the inlet water demand parameters is 1, the target control coefficient of the outlet water control device for the water storage parameter is generated according to the sub-inlet water demand parameters and the sub-storage water parameters of the same type corresponding to the sub-inlet water demand parameters.

[0032] When the number of sub-inlet water demand parameters included in the inlet water demand parameter is greater than 1, for each sub-inlet water demand parameter, a type control coefficient corresponding to the sub-inlet water demand parameter is generated based on the sub-inlet water demand parameter and the corresponding sub-storage water parameter of the same type; and based on the type control coefficients corresponding to all the sub-inlet water demand parameters and the preset type association relationship, a target control coefficient for the storage water parameter is generated by the water outlet control device.

[0033] As an optional implementation, in the first aspect of the present invention, generating the target control coefficient of the outlet control device for the storage parameters based on the sub-inlet water demand parameters and the corresponding sub-storage parameters of the same type includes:

[0034] Obtain the first pipe parameters of the first pipe between the water outlet control device and the water inlet device, and obtain the second pipe parameters of the second pipe between the water outlet control device and the water storage device;

[0035] By analyzing the parameters of the first pipeline and the sub-inlet water demand parameters, the water outlet control device obtains the water outlet demand of the first pipeline.

[0036] By analyzing the parameters of the second pipeline and the corresponding sub-storage parameters of the same type as the sub-inlet water demand parameters, the water inlet water demand of the outlet control device for the second pipeline is obtained.

[0037] Based on the water outflow demand and the water inflow demand of the pipeline, the target control coefficient for the water storage parameters is generated by the water outflow control device.

[0038] A second aspect of the present invention discloses a water outlet control device, the device comprising:

[0039] The acquisition module is used to acquire the water storage parameters of the water storage device that provides water to the water outlet control device when it receives the water inlet demand parameters of the water outlet control device facing the water inlet device.

[0040] The generation module is used to generate the target control coefficient of the water outlet control device for the water storage parameters based on the water inlet demand parameters and the water storage parameters.

[0041] The control module is used to control the water storage parameters according to the target control coefficient to obtain the target water output parameters. The target water output parameters are the parameters required by the water output control parameters to perform water output operation from the water storage device to the water inlet device.

[0042] As an optional implementation, in a second aspect of the invention, the apparatus further includes:

[0043] The judgment module is used to determine whether the water storage device meets the preset water discharge conditions based on the water inlet demand parameters and the water storage parameters before the generation module generates the target control coefficient of the water discharge control device for the water storage parameters based on the water inlet demand parameters and the water storage parameters; when it is determined that the water storage device meets the water discharge conditions, the generation module is triggered to perform the operation of generating the target control coefficient of the water discharge control device for the water storage parameters based on the water inlet demand parameters and the water storage parameters.

[0044] The generation module is further configured to, when the judgment module determines that the water storage device does not meet the water outlet conditions, generate a water inlet demand modification prompt for the water inlet device and / or a water storage re-storage prompt for the water storage device based on the water inlet demand parameters and the water storage parameters. The water inlet demand modification prompt is used to indicate that the water inlet demand parameters should be modified, and the water storage re-storage prompt is used to indicate that the water storage parameters should be re-stored.

[0045] As an optional implementation, in a second aspect of the invention, the apparatus further includes:

[0046] The determination module is used to determine the first water inlet demand correction coefficient of the water inlet demand parameter based on the water storage parameter when only the water inlet demand modification prompt is generated;

[0047] The correction module is used to correct the water inlet demand parameters according to the first water inlet demand correction coefficient to obtain the first water inlet demand parameters;

[0048] The update module is used to update the water inlet demand parameter to the first water inlet demand parameter, and trigger the generation module to perform the operation of generating the target control coefficient of the water outlet control device for the water storage parameter based on the water inlet demand parameter and the water storage parameter.

[0049] The determining module is further configured to, when only the re-water storage prompt is generated, determine a first water storage control parameter for the water storage parameters based on the water inflow demand parameters; and the device further includes:

[0050] A water storage module is used to perform a re-water storage operation on the water storage device according to the first water storage control parameters to obtain the first water storage parameters;

[0051] The update module is further configured to update the water storage parameter to the first water storage parameter, and trigger the generation module to perform the operation of generating the target control coefficient of the water outlet control device for the water storage parameter based on the water inlet demand parameter and the water storage parameter.

[0052] As an optional implementation, in a second aspect of the present invention, the determining module is further configured to, when generating the water inlet demand modification prompt and the water storage prompt, determine the modification demand corresponding to the water inlet demand parameter and the water storage demand corresponding to the water storage parameter based on the water inlet demand parameter and the water storage parameter; and determine a second water inlet demand correction coefficient for the water inlet demand parameter based on the modification demand; and determine a second water storage control parameter for the water storage parameter based on the water storage demand.

[0053] The correction module is further configured to correct the water inlet demand parameters according to the second water inlet demand correction coefficient to obtain the second water inlet demand parameters;

[0054] The water storage module is also used to perform a re-water storage operation on the water storage device according to the second water storage control parameters to obtain the second water storage parameters;

[0055] The update module is further configured to update the inlet water demand parameter to the second inlet water demand parameter and the storage water parameter to the second storage water parameter, and trigger the generation module to perform the operation of generating the target control coefficient of the outlet water control device for the storage water parameter based on the inlet water demand parameter and the storage water parameter.

[0056] As an optional implementation, in a second aspect of the present invention, the method by which the determining module determines whether the water storage device meets the preset water outlet conditions based on the water inlet demand parameters and the water storage parameters specifically includes:

[0057] Determine whether the water storage parameters meet the water inlet requirement parameters;

[0058] When it is determined that the water storage parameters meet the water inlet requirements, the water storage device is determined to meet the preset water outlet conditions.

[0059] When it is determined that the water storage parameters do not meet the water inlet demand parameters, it is determined whether the historical number of modifications of the water inlet device to the water inlet demand parameters is greater than or equal to a preset number.

[0060] When it is determined that the number of historical modifications is greater than or equal to the preset number, the water storage device is determined to meet the preset water discharge conditions.

[0061] When it is determined that the water storage parameters do not meet the water inlet requirements and the number of historical modifications is less than the preset number, it is determined that the water storage device does not meet the preset water outlet conditions.

[0062] As an optional implementation, in a second aspect of the present invention, the method by which the generating module generates the target control coefficient of the water outlet control device for the water storage parameters based on the water inlet demand parameters and the water storage parameters specifically includes:

[0063] Obtain the parameter type of each of the at least one sub-influent demand parameters included in the influent demand parameters;

[0064] For each of the sub-inlet water demand parameters, based on the parameter type of the sub-inlet water demand parameter, a water storage parameter with the same parameter type as the sub-inlet water demand parameter is selected from the multiple sub-water storage parameters included in the water storage parameter, and used as the sub-water storage parameter of the same type corresponding to the sub-inlet water demand parameter;

[0065] When the number of sub-inlet water demand parameters included in the inlet water demand parameters is 1, the target control coefficient of the outlet water control device for the water storage parameter is generated according to the sub-inlet water demand parameters and the sub-storage water parameters of the same type corresponding to the sub-inlet water demand parameters.

[0066] When the number of sub-inlet water demand parameters included in the inlet water demand parameter is greater than 1, for each sub-inlet water demand parameter, a type control coefficient corresponding to the sub-inlet water demand parameter is generated based on the sub-inlet water demand parameter and the corresponding sub-storage water parameter of the same type; and based on the type control coefficients corresponding to all the sub-inlet water demand parameters and the preset type association relationship, a target control coefficient for the storage water parameter is generated by the water outlet control device.

[0067] As an optional implementation, in a second aspect of the present invention, the method by which the generating module generates the target control coefficient of the water outlet control device for the water storage parameters based on the sub-inlet water demand parameters and the corresponding sub-storage parameters of the same type includes:

[0068] Obtain the first pipe parameters of the first pipe between the water outlet control device and the water inlet device, and obtain the second pipe parameters of the second pipe between the water outlet control device and the water storage device;

[0069] By analyzing the parameters of the first pipeline and the sub-inlet water demand parameters, the water outlet control device obtains the water outlet demand of the first pipeline.

[0070] By analyzing the parameters of the second pipeline and the corresponding sub-storage parameters of the same type as the sub-inlet water demand parameters, the water inlet water demand of the outlet control device for the second pipeline is obtained.

[0071] Based on the water outflow demand and the water inflow demand of the pipeline, the target control coefficient for the water storage parameters is generated by the water outflow control device.

[0072] A third aspect of the present invention discloses another water outlet control device, the device comprising:

[0073] Memory containing executable program code;

[0074] A processor coupled to the memory;

[0075] The processor calls the executable program code stored in the memory to execute the water outlet control method of the water outlet control device disclosed in the first aspect of the present invention.

[0076] The fourth aspect of the present invention discloses a computer storage medium storing computer instructions, which, when invoked, are used to execute the water outlet control method of the water outlet control device disclosed in the first aspect of the present invention.

[0077] Compared with the prior art, the embodiments of the present invention have the following beneficial effects:

[0078] In this embodiment of the invention, when the water inlet demand parameters of the water outlet control device are received from the water inlet device to which the water outlet is directed, the water storage parameters of the water storage device that provides water to the water outlet control device are obtained. Based on the water inlet demand parameters and the water storage parameters, a target control coefficient for the water storage parameters is generated. Based on the target control coefficient, the water storage parameters are adjusted to obtain the target water outlet parameters. The target water outlet parameters are the parameters required for the water outlet control device to perform the water outlet operation through the water storage device to the water inlet device. Therefore, implementing this invention enables the water outlet control device to obtain the water storage parameters of the water storage device when it receives the water inlet demand from the water inlet device, and to generate a target control coefficient for the water storage parameters based on the water inlet demand and the water storage parameters. This improves the accuracy of generating the target control coefficient. Furthermore, adjusting the water storage parameters based on the accurately generated target control coefficient to obtain the target water outlet parameters improves the accuracy of the target water outlet parameter adjustment. This, in turn, helps to meet the water inlet demand of the water inlet device, and enhances the user experience and user loyalty of the water inlet device holder. Attached Figure Description

[0079] To more clearly illustrate the technical solutions in the embodiments of the present invention, 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.

[0080] Figure 1 This is a schematic flowchart of a water outlet control method for a water outlet control device disclosed in an embodiment of the present invention;

[0081] Figure 2 This is a schematic flowchart of a water outlet control method for another water outlet control device disclosed in an embodiment of the present invention;

[0082] Figure 3 This is a schematic diagram of the structure of a water outlet control device disclosed in an embodiment of the present invention;

[0083] Figure 4 This is a schematic diagram of the structure of another water outlet control device disclosed in an embodiment of the present invention;

[0084] Figure 5 This is a schematic diagram of the structure of another water outlet control device disclosed in the embodiments of the present invention. Detailed Implementation

[0085] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. 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.

[0086] The terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this invention are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, apparatus, product, or end that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or ends.

[0087] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of the invention. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.

[0088] This invention discloses a water outlet control method and apparatus. Upon receiving a water inlet request from a water inlet device, the water outlet control device acquires the water storage parameters of a water storage device. Based on the water inlet request and the water storage parameters, it generates a target control coefficient for the water storage parameters, improving the accuracy of the target control coefficient generation. Furthermore, based on the accurately generated target control coefficient, the water storage parameters are adjusted to obtain the target water outlet parameters, further enhancing the accuracy of the target water outlet parameter control. This improves the water outlet control accuracy of the water outlet control device, thereby better meeting the water inlet device's inlet requirements and enhancing the user experience and user loyalty. Detailed descriptions follow.

[0089] Example 1

[0090] Please see Figure 1 , Figure 1 This is a schematic flowchart of a water outlet control method for a water outlet control device disclosed in an embodiment of the present invention. Figure 1 The described water outlet control method can be applied to the water outlet control device, wherein the device may include a control unit or a control server, and the control server may include a cloud server or a local server; this embodiment of the invention is not limited thereto. Figure 1 As shown, the water outlet control method of this water outlet control device may include the following operations:

[0091] 101. When the water demand parameters of the water inlet device to which the water outlet control device is directed are received, the water storage parameters of the water storage device that provides water to the water outlet control device are obtained.

[0092] In this embodiment of the invention, the water dispensing control device can be a smart water dispenser, the water storage device can be the water tank of the smart water dispenser, and the water inlet device can be a container placed at the water inlet of the smart water dispenser, such as a water cup. This embodiment of the invention does not limit the scope of the invention.

[0093] In this embodiment of the invention, optionally, the water inlet requirements parameters of the water inlet device may include one or more combinations of the water inlet quantity, water inlet temperature, and water inlet duration. Optionally, the water storage parameters of the water storage device may include one or more combinations of the water storage level, water storage temperature, and water storage capacity; this embodiment of the invention does not impose any limitations on these parameters.

[0094] 102. Based on the inlet water demand parameters and the storage water parameters, generate the target control coefficient of the outlet water control device for the storage water parameters.

[0095] For example, suppose the owner of the water inlet device requires the water temperature to be 100 degrees Celsius, while the water temperature in the storage device is 25 degrees Celsius, then the stored water needs to be heated to 75 degrees Celsius.

[0096] 103. Adjust the water storage parameters according to the target control coefficient to obtain the target water output parameters.

[0097] The target effluent parameters are the effluent control parameters required by the water storage device to execute the effluent operation on the water inlet device.

[0098] It is evident that implementation Figure 1 The described water outlet control method can obtain the water storage parameters of the storage device when the water outlet control device receives the water inlet demand from the water inlet device, and generate a target control coefficient for the water storage parameters based on the water inlet demand and the water storage parameters. This improves the accuracy of the target control coefficient generation. Furthermore, the water storage parameters are controlled based on the accurately generated target control coefficient to obtain the target water outlet parameters, which improves the accuracy of the target water outlet parameter control. This, in turn, helps to meet the water inlet demand of the water inlet device, and also helps to improve the user experience and increase user stickiness of the water inlet device holder.

[0099] In an optional embodiment, step 102 above, which generates the target control coefficient for the water outlet control device based on the water inlet demand parameters and the water storage parameters, may include:

[0100] Obtain the parameter type of each sub-influent demand parameter in at least one sub-influent demand parameter included in the influent demand parameter;

[0101] For each sub-inlet water demand parameter, based on the parameter type of the sub-inlet water demand parameter, select the water storage parameter with the same parameter type as the sub-inlet water demand parameter from the multiple sub-water storage parameters included in the water storage parameter, and use it as the sub-water storage parameter of the same type corresponding to the sub-inlet water demand parameter.

[0102] When the number of sub-inlet water demand parameters included in the inlet water demand parameters is 1, the target control coefficient of the outlet water control device for the storage parameters is generated based on the sub-inlet water demand parameters and the corresponding sub-storage water parameters of the same type.

[0103] When the number of sub-inlet water demand parameters included in the inlet water demand parameter is greater than 1, for each sub-inlet water demand parameter, a type control coefficient corresponding to the sub-inlet water demand parameter is generated based on the sub-inlet water demand parameter and the corresponding sub-storage water parameter of the same type; and based on the type control coefficients corresponding to all sub-inlet water demand parameters and the preset type association relationship, a target control coefficient for the storage water parameter is generated by the outlet water control device.

[0104] In this embodiment of the invention, optionally, the parameter types of the sub-inlet water demand parameters and the water storage parameters may include one or more combinations of temperature type, water volume type, duration type, and water flow velocity type, and this embodiment of the invention does not limit this. For example, suppose the inlet water demand parameters only include sub-inlet water demand parameters of the water volume type, and the water storage parameters of the same type corresponding to the water volume in the water storage parameters are water storage parameters.

[0105] In this embodiment of the invention, optionally, the preset type association relationship may include one or more combinations of a first association relationship between temperature type and water volume type, a second association relationship between temperature type and duration type, a third association relationship between temperature type and water flow rate type, a fourth association relationship between water volume type and duration type, a fifth association relationship between water volume type and water flow rate type, and a sixth association relationship between duration type and water flow rate type. This embodiment of the invention does not limit the type association relationship.

[0106] As can be seen, this optional embodiment can obtain the parameter type of at least one sub-intake demand parameter included in the intake demand parameters, and select sub-storage parameters of the same type from multiple sub-storage parameters included in the storage parameters according to the parameter type of each sub-intake demand parameter, thereby improving the selection accuracy and matching accuracy of sub-intake demand parameters and sub-storage parameters of the same type. A coefficient generation process is also set accordingly. When the intake demand parameters include one type of sub-intake demand parameter, only the sub-intake demand parameter and sub-storage parameter of that type are used to generate the control coefficient of that type, which serves as the target control coefficient, improving the generation speed and convenience of the target control coefficient. When the intake demand parameters include multiple types of sub-intake demand parameters, the control coefficient of each type is generated first, and then the target control coefficient is generated based on all types of control coefficients and the preset type association relationship, improving the generation accuracy and reliability of the target control coefficient. Furthermore, it can intelligently select the appropriate control coefficient generation process based on the number of types of sub-intake demand parameters included in the intake demand parameters, increasing the diversity and flexibility of the target control coefficient generation method.

[0107] In this optional embodiment, as an optional implementation method, a target control coefficient for the water storage parameters is generated based on the sub-inlet water demand parameters and the corresponding sub-storage parameters of the same type, including:

[0108] Obtain the first pipe parameters of the first pipe of the water outlet control device and the water inlet device, and obtain the second pipe parameters of the second pipe of the second pipe of the water outlet control device and the water storage device.

[0109] By analyzing the parameters of the first pipeline and the sub-inlet water demand parameters, the water outlet control device can obtain the water outlet demand of the first pipeline.

[0110] By analyzing the parameters of the second pipeline and the corresponding sub-storage parameters of the same type, the water inlet control device can obtain the pipeline water inlet requirements of the second pipeline.

[0111] Based on the water outflow and inflow requirements of the pipeline, the target control coefficients for the water storage parameters of the water outflow control device are generated.

[0112] In this embodiment of the invention, the first pipe parameters of the first pipe and the second pipe parameters of the second pipe can both include one or more combinations of pipe length, pipe diameter and pipe opening height, and this embodiment of the invention does not limit them.

[0113] For example, suppose the pipe opening of the first pipe is high, making the distance between the first pipe and the inlet of the water inlet device far. In this case, the water outlet speed of the water outlet control device should not be too high, so as to avoid the water outlet speed being too high during the water outlet process, causing the water to splash outside the water inlet device.

[0114] It should be noted that when the number of sub-influent demand parameter types included in the influent demand parameters is greater than one, the generation method of the type control coefficient corresponding to each type of sub-influent demand parameter is the same as the generation method of the target control coefficient corresponding to one type of sub-influent demand parameter in this optional embodiment. The generation method of the type control coefficient corresponding to each type of sub-influent demand parameter for multiple parameter types will not be elaborated further in this embodiment.

[0115] As can be seen, this optional implementation can obtain the first pipeline parameters of the first pipeline of the water outlet control device and the water inlet device, and the second pipeline parameters of the second pipeline of the second pipeline of the water outlet control device and the water storage device. It can also analyze the first pipeline parameters and the sub-inlet demand parameters to obtain the pipeline water outlet demand for the first pipeline, and analyze the second pipeline parameters and the same type of sub-storage parameters to obtain the pipeline water inlet demand for the second pipeline. This improves the accuracy of the analysis of pipeline water outlet demand and pipeline water inlet demand. Subsequently, based on the pipeline water outlet demand and pipeline water inlet demand, the target control coefficient of the water outlet control device for the water storage parameters is generated, which can improve the accuracy of the generation of the target control coefficient.

[0116] Example 2

[0117] Please see Figure 2 , Figure 2 This is a schematic flowchart of a water outlet control method for a water outlet control device disclosed in an embodiment of the present invention. Figure 2 The described water outlet control method can be applied to the water outlet control device, which may include a control unit or a control server. The control server may include a cloud server or a local server; this embodiment of the invention is not limited to any particular type. Figure 2 As shown, the water outlet control method of this water outlet control device may include the following operations:

[0118] 201. When the water demand parameters of the water inlet device to which the water outlet control device is directed are received, the water storage parameters of the water storage device that provides water to the water outlet control device are obtained.

[0119] 202. Based on the water inlet demand parameters and water storage parameters, determine whether the water storage device meets the preset water outlet conditions.

[0120] In this embodiment of the invention, the preset water outlet conditions can be used to represent the conditions corresponding to the water outlet environment of the water outlet control device. Specifically, when it is determined that the water storage device meets the preset water outlet conditions, it indicates that the water outlet environment of the water outlet control device is stable and reliable; when it is determined that the water storage device does not meet the preset water outlet conditions, it indicates that the water outlet environment of the water outlet control device is unstable. This embodiment of the invention does not impose any limitations on this.

[0121] In this embodiment of the invention, when step 202 determines that the water storage device meets the water discharge conditions, step 203 is triggered; when step 202 determines that the water storage device does not meet the water discharge conditions, step 205 is triggered.

[0122] 203. Based on the inlet water demand parameters and the storage water parameters, generate the target control coefficient of the outlet water control device for the storage water parameters.

[0123] 204. Adjust the water storage parameters according to the target control coefficient to obtain the target water output parameters.

[0124] In this embodiment of the invention, for other descriptions of steps 201, 203 and 204, please refer to the specific descriptions of steps 101-103 in Embodiment 1. These descriptions will not be repeated in this embodiment of the invention.

[0125] 205. Based on the water inlet demand parameters and water storage parameters, generate a prompt to modify the water inlet demand for the water inlet device and / or a prompt to re-store water for the water storage device.

[0126] In this embodiment of the invention, the water inlet demand modification prompt is used to indicate that the water inlet demand parameters should be modified. The water storage re-storage prompt is used to indicate that the water storage parameters should be re-stored.

[0127] It is evident that implementation Figure 2 The described water outlet control method can obtain the water storage parameters of the storage device when the water outlet control device receives the water inlet demand from the water inlet device, and generate a target control coefficient for the water storage parameters based on the water inlet demand and the water storage parameters. This improves the accuracy of the target control coefficient generation. Furthermore, the water storage parameters are controlled based on the accurately generated target control coefficient to obtain the target water outlet parameters, which improves the accuracy of the target water outlet parameter control. This, in turn, helps to meet the water inlet demand of the water inlet device, and also helps to improve the user experience and increase user stickiness of the water inlet device holder. Furthermore, it can generate target control coefficients based on inlet water demand parameters and storage parameters only when the water storage device meets the outlet water conditions. This helps improve the accuracy of target control coefficient generation and provides a reliable and stable outlet water environment for the outlet water control device, thereby improving the control accuracy and stability of the outlet water control device. In addition, when the water storage device does not meet the outlet water conditions, it generates prompts to modify the inlet water demand of the inlet water device and / or prompts to re-store water for the water storage device. It can modify the outlet water environment of the outlet water control device based on the prompts to modify the inlet water demand and / or prompts to re-store water, thereby improving the reliability and stability of the modified outlet water environment.

[0128] In an optional embodiment, the method may further include:

[0129] When only a water inlet demand modification prompt is generated, the first water inlet demand correction coefficient is determined based on the water storage parameters, and the water inlet demand parameters are corrected based on the first water inlet demand correction coefficient to obtain the first water inlet demand parameters.

[0130] The water inlet demand parameter is updated to the first water inlet demand parameter, and step 203 is triggered to generate the target control coefficient of the water outlet control device for the water storage parameter based on the water inlet demand parameter and the water storage parameter.

[0131] For example, suppose the water demand is 200 ml and the water storage is 150 ml; at this time, the first water demand correction factor can be -50 ml. The first water demand correction factor and the water demand parameter can be added together to obtain the first water demand parameter of 150 ml; at this time, the water demand parameter is updated from the original 200 ml to 150 ml.

[0132] In this optional embodiment, the method may further include:

[0133] When only a re-storage water prompt is generated, the first water storage control parameter is determined based on the water inlet demand parameter, and the re-storage water operation is performed on the water storage device based on the first water storage control parameter to obtain the first water storage parameter;

[0134] The water storage parameters are updated to the first water storage parameters, and step 203 is triggered to generate the target control coefficient of the water outlet control device for the water storage parameters based on the water inlet demand parameters and the water storage parameters.

[0135] For example, suppose the water demand is 200 ml and the water storage capacity is 150 ml. At this time, the first water storage control parameter can be 50 ml, 60 ml, or any other value greater than 50 (in milliliters). When the first water storage control parameter is 50 ml, the first water storage parameter obtained after performing a re-water storage operation on the water storage device through the first water storage control parameter can be 200 ml. At this time, the water storage parameter is updated from the original 150 ml to 200 ml.

[0136] In this optional embodiment, the method may further include:

[0137] When a water inlet demand modification prompt and a water storage re-storage prompt are generated, the modification requirements corresponding to the water inlet demand parameters and the water storage requirements corresponding to the water storage parameters are determined based on the water inlet demand parameters and the water storage parameters; the second water inlet demand correction coefficient of the water inlet demand parameters is determined based on the modification requirements; and the second water storage control parameter of the water storage parameters is determined based on the water storage requirements.

[0138] Based on the second water intake demand correction coefficient, the water intake demand parameters are corrected to obtain the second water intake demand parameters; and based on the second water storage control parameters, the water storage device is re-stored to obtain the second water storage parameters.

[0139] The water inlet demand parameter is updated to the second water inlet demand parameter, and the water storage parameter is updated to the second water storage parameter. Then, step 203 is triggered to generate the target control coefficient of the water outlet control device for the water storage parameter based on the water inlet demand parameter and the water storage parameter.

[0140] For example, assuming the water demand is 200 ml and the water storage capacity is 150 ml, the water demand can be reduced by 25 ml while the water storage device is increased by 25 ml or more to meet the water discharge conditions; the water demand can also be reduced by 30 ml while the water storage device is increased by 30 ml or more to meet the water discharge conditions; or the water demand can also be reduced by 20 ml while the water storage device is increased by 30 ml or more to meet the water discharge conditions. This embodiment of the invention does not limit the scope of the invention.

[0141] As can be seen, this optional embodiment can correspondingly set up a water environment modification process. When a water inlet demand modification prompt is generated, the water inlet demand parameters are updated based on the correction of the water inlet demand parameters. When a water storage re-storage prompt is generated, the water storage parameters are updated based on the water storage device's water storage re-storage operation. When both water inlet demand modification prompts and water storage re-storage prompts are generated, the water inlet demand parameters and water storage parameters are updated synchronously based on the correction of the water inlet demand parameters and the water storage device's water storage re-storage operation. This is beneficial for improving the accuracy of updating the water inlet demand parameters and / or water storage parameters based on diverse prompt content, thereby helping to ensure that the target control coefficient generated based on the updated water inlet demand parameters and / or water storage parameters meets the water inlet demand parameters / updated water inlet demand parameters.

[0142] In another optional embodiment, step 202 above, which involves determining whether the water storage device meets the preset water outlet conditions based on the water inlet demand parameters and the water storage parameters, may include:

[0143] Determine whether the water storage parameters meet the water inlet requirements.

[0144] When it is determined that the water storage parameters meet the water inlet requirements, the water storage device is confirmed to meet the preset water outlet conditions.

[0145] When it is determined that the water storage parameters do not meet the water inlet requirements, it is determined whether the number of times the water inlet device has modified the water inlet requirements parameters in history is greater than or equal to the preset number.

[0146] When it is determined that the number of historical modifications is greater than or equal to the preset number, the water storage device is determined to meet the preset water discharge conditions.

[0147] When it is determined that the water storage parameters do not meet the water inlet requirements and the number of historical modifications is less than the preset number, it is determined that the water storage device does not meet the preset water outlet conditions.

[0148] For example, when a user places a water cup on the water inlet of the water dispensing device and sends a command to the device requesting 200 ml of water, if the device detects that the cup has been modified 5 times in the past to request 200 ml of water, which is more than the prescribed 3 times, then the device determines that the user's water dispensing command is modifiable and modifies it. The modified command will then ensure that the water storage device meets the preset water dispensing conditions.

[0149] As can be seen, this optional embodiment can determine that the water storage device meets the preset water outlet conditions only when it is determined that the water storage parameters meet the water inlet requirements, or, after determining that the water storage parameters do not meet the water inlet requirements and further determining that the number of historical modifications of the water inlet device to the water inlet requirements is greater than or equal to a preset number. This enriches the methods for determining whether the preset water outlet conditions are met and improves the flexibility and accuracy of determining whether the preset water outlet conditions are met. Furthermore, after determining that the water storage parameters do not meet the water inlet requirements, it can determine that the water storage device does not meet the preset water outlet conditions only when it is determined that the number of historical modifications of the water inlet device to the water inlet requirements is less than a preset number. This improves the accuracy of determining whether the preset water outlet conditions are not met.

[0150] In yet another optional embodiment, before step 204 above, where the water storage parameters are adjusted according to the target control coefficient to obtain the target effluent parameters, the method may further include:

[0151] Obtain the historical control coefficients of the water outlet control device;

[0152] Based on the historical control coefficients, the target control coefficients are corrected to obtain the corrected target control coefficients.

[0153] In this embodiment of the invention, the similarity between the historical influent demand parameter corresponding to the historical control coefficient and the influent demand parameter is greater than or equal to a preset similarity. The preset similarity can be 80%, 85%, or any other pre-defined value; this embodiment of the invention does not impose any limitations.

[0154] In this optional embodiment, as an optional implementation method, adjusting the water storage parameters according to the target control coefficient to obtain the target water output parameters may include:

[0155] Based on the corrected target control coefficient, the water storage parameters are adjusted to obtain the target water output parameters.

[0156] As can be seen, this optional embodiment can obtain historical control coefficients of historical water inflow demand parameters that are highly similar to the water inflow demand parameters, and correct the target control coefficients based on the historical control coefficients to obtain the corrected target control coefficients. This improves the accuracy of the target control coefficients and reduces the occurrence of interference caused by inaccurate target control coefficients when subsequently controlling the water storage parameters. It is beneficial to improve the accuracy and reliability of water storage parameter control through the corrected target control coefficients.

[0157] Example 3

[0158] Please see Figure 3 , Figure 3 This is a schematic diagram of the structure of a water outlet control device disclosed in an embodiment of the present invention. Figure 3 The described water outlet control device may include a control equipment or a control server, wherein the control server may include a cloud server or a local server, and the embodiments of the present invention are not limited thereto. Figure 3 As shown, the water outlet control device may include:

[0159] The acquisition module 301 is used to acquire the water storage parameters of the water storage device that provides water to the water outlet control device when it receives the water inlet demand parameters of the water outlet control device facing the water inlet device.

[0160] The generation module 302 is used to generate the target control coefficient of the water outlet control device for the water storage parameters based on the water inlet demand parameters and the water storage parameters.

[0161] The control module 303 is used to control the water storage parameters according to the target control coefficient to obtain the target water output parameters. The target water output parameters are the parameters required by the water storage device to perform the water output operation to the water inlet device.

[0162] It is evident that implementation Figure 3 The described water outlet control device can obtain the water storage parameters of the storage device when it receives the water inlet demand from the water inlet device. Based on the water inlet demand and the water storage parameters, it generates a target control coefficient for the water storage parameters, improving the accuracy of the target control coefficient generation. Based on the accurately generated target control coefficient, it controls the water storage parameters to obtain the target water outlet parameters, thereby improving the accuracy of the target water outlet parameter control. This helps to improve the water outlet control accuracy of the water outlet control device, which in turn helps to meet the water inlet demand of the water inlet device, and also helps to improve the user experience and increase user stickiness of the water inlet device owner.

[0163] In an optional embodiment, such as Figure 4As shown, the device may further include:

[0164] The judgment module 304 is used to determine whether the water storage device meets the preset water discharge conditions based on the water inlet demand parameters and the water storage parameters before the generation module 302 generates the target control coefficient of the water discharge control device for the water storage parameters based on the water inlet demand parameters and the water storage parameters. When it is determined that the water storage device meets the water discharge conditions, the generation module 302 is triggered to perform the above-mentioned operation of generating the target control coefficient of the water discharge control device for the water storage parameters based on the water inlet demand parameters and the water storage parameters.

[0165] The generation module 302 is also used to generate a water inlet demand modification prompt and / or a water storage re-storage prompt for the water inlet device based on the water inlet demand parameters and the water storage parameters when the judgment module 304 determines that the water storage device does not meet the water outlet conditions. The water inlet demand modification prompt is used to indicate that the water inlet demand parameters should be modified, and the water storage re-storage prompt is used to indicate that the water storage parameters should be re-stored.

[0166] It is evident that implementation Figure 4 The described device can generate a target control coefficient based on the inlet water demand parameters and storage parameters only when the water storage device meets the outlet water conditions. This improves the accuracy of the target control coefficient generation and provides a reliable and stable outlet water environment for the outlet water control device, thereby improving the control accuracy and stability of the outlet water control device. Furthermore, when the water storage device does not meet the outlet water conditions, it generates a prompt to modify the inlet water demand for the inlet water device and / or a prompt to re-store water for the storage device. This allows for modification of the outlet water environment of the outlet water control device based on the inlet water demand modification prompt and / or re-store water prompt, thereby improving the reliability and stability of the modified outlet water environment.

[0167] In this optional embodiment, as an optional implementation method, such as Figure 4 As shown, the device may further include:

[0168] The determination module 305 is used to determine the first water demand correction coefficient of the water demand parameter based on the water storage parameters when only a water demand modification prompt is generated.

[0169] The correction module 306 is used to correct the water intake demand parameters according to the first water intake demand correction coefficient to obtain the first water intake demand parameters.

[0170] The update module 307 is used to update the inlet water demand parameters to the first inlet water demand parameters, and trigger the generation module 302 to perform the above-mentioned operation of generating the target control coefficient of the outlet water control device for the storage parameters based on the inlet water demand parameters and the storage parameters.

[0171] In this optional implementation, optionally, the determining module 305 is further configured to, when only a re-storage water prompt is generated, determine a first water storage control parameter based on the water inflow demand parameter. And, as... Figure 4 As shown, the device may further include:

[0172] The water storage module 308 is used to perform a re-water storage operation on the water storage device according to the first water storage control parameters to obtain the first water storage parameters.

[0173] The update module 307 is also used to update the water storage parameters to the first water storage parameters and trigger the generation module 302 to perform the above-mentioned operation of generating the target control coefficient of the water outlet control device for the water storage parameters based on the water inlet demand parameters and the water storage parameters.

[0174] In this optional implementation, the determining module 305 is further configured to, when generating a water inlet demand modification prompt and a water storage re-storage prompt, determine the modification demand corresponding to the water inlet demand parameters and the water storage demand corresponding to the water storage parameters based on the water inlet demand parameters and the water storage parameters; determine the second water inlet demand correction coefficient of the water inlet demand parameters based on the modification demand; and determine the second water storage control parameter of the water storage parameters based on the water storage demand.

[0175] The correction module 306 is also used to correct the water inlet demand parameters according to the second water inlet demand correction coefficient to obtain the second water inlet demand parameters.

[0176] The water storage module 308 is also used to perform a re-water storage operation on the water storage device according to the second water storage control parameters, so as to obtain the second water storage parameters.

[0177] The update module 307 is also used to update the inlet water demand parameters to the second inlet water demand parameters and the storage parameters to the second storage parameters, and to trigger the generation module 302 to perform the above-mentioned operation of generating the target control coefficient of the outlet water control device for the storage parameters based on the inlet water demand parameters and the storage parameters.

[0178] As can be seen, this optional implementation can be configured with a corresponding water environment modification process. When a water intake demand modification prompt is generated, the water intake demand parameters are updated based on the correction of the water intake demand parameters. When a water storage re-storage prompt is generated, the water storage parameters are updated based on the water storage re-storage operation of the water storage device. When both water intake demand modification prompts and water storage re-storage prompts are generated, the water intake demand parameters and water storage parameters are updated synchronously based on the correction of the water intake demand parameters and the water storage re-storage operation of the water storage device. This is beneficial for improving the accuracy of updating the water intake demand parameters and / or water storage parameters based on diverse prompt content, thereby helping to ensure that the target control coefficient generated based on the updated water intake demand parameters and / or water storage parameters meets the water intake demand parameters / updated water intake demand parameters.

[0179] In this optional embodiment, as another optional implementation, the method by which the determining module 304 determines whether the water storage device meets the preset water outlet conditions based on the water inlet demand parameters and the water storage parameters may specifically include:

[0180] Determine whether the water storage parameters meet the water inlet requirements.

[0181] When it is determined that the water storage parameters meet the water inlet requirements, the water storage device is confirmed to meet the preset water outlet conditions.

[0182] When it is determined that the water storage parameters do not meet the water inlet requirements, it is determined whether the number of times the water inlet device has modified the water inlet requirements parameters in history is greater than or equal to the preset number.

[0183] When it is determined that the number of historical modifications is greater than or equal to the preset number, the water storage device is determined to meet the preset water discharge conditions.

[0184] When it is determined that the water storage parameters do not meet the water inlet requirements and the number of historical modifications is less than the preset number, it is determined that the water storage device does not meet the preset water outlet conditions.

[0185] As can be seen, this optional implementation method can determine that the water storage device meets the preset water outlet conditions only when it is determined that the water storage parameters meet the water inlet requirements, or, after determining that the water storage parameters do not meet the water inlet requirements and further determining that the number of historical modifications of the water inlet device to the water inlet requirements is greater than or equal to a preset number. This enriches the methods for determining whether the preset water outlet conditions are met and improves the flexibility and accuracy of determining whether the preset water outlet conditions are met. Furthermore, after determining that the water storage parameters do not meet the water inlet requirements, it can determine that the water storage device does not meet the preset water outlet conditions only when it is determined that the number of historical modifications of the water inlet device to the water inlet requirements is less than a preset number. This improves the accuracy of determining whether the preset water outlet conditions are not met.

[0186] In another optional embodiment, the method by which the generation module 302 generates the target control coefficient for the water storage parameters based on the inlet water demand parameters and the water storage parameters may specifically include:

[0187] Obtain the parameter type of each sub-influent demand parameter in at least one sub-influent demand parameter included in the influent demand parameter;

[0188] For each sub-inlet water demand parameter, based on the parameter type of the sub-inlet water demand parameter, select the water storage parameter with the same parameter type as the sub-inlet water demand parameter from the multiple sub-water storage parameters included in the water storage parameter, and use it as the sub-water storage parameter of the same type corresponding to the sub-inlet water demand parameter.

[0189] When the number of sub-inlet water demand parameters included in the inlet water demand parameters is 1, the target control coefficient of the outlet water control device for the storage parameters is generated based on the sub-inlet water demand parameters and the corresponding sub-storage water parameters of the same type.

[0190] When the number of sub-inlet water demand parameters included in the inlet water demand parameter is greater than 1, for each sub-inlet water demand parameter, a type control coefficient corresponding to the sub-inlet water demand parameter is generated based on the sub-inlet water demand parameter and the corresponding sub-storage water parameter of the same type; and based on the type control coefficients corresponding to all sub-inlet water demand parameters and the preset type association relationship, a target control coefficient for the storage water parameter is generated by the outlet water control device.

[0191] As can be seen, this optional embodiment can obtain the parameter type of at least one sub-intake demand parameter included in the intake demand parameters, and select sub-storage parameters of the same type from multiple sub-storage parameters included in the storage parameters according to the parameter type of each sub-intake demand parameter, thereby improving the selection accuracy and matching accuracy of sub-intake demand parameters and sub-storage parameters of the same type. A coefficient generation process is also set accordingly. When the intake demand parameters include one type of sub-intake demand parameter, only the sub-intake demand parameter and sub-storage parameter of that type are used to generate the control coefficient of that type, which serves as the target control coefficient, improving the generation speed and convenience of the target control coefficient. When the intake demand parameters include multiple types of sub-intake demand parameters, the control coefficient of each type is generated first, and then the target control coefficient is generated based on all types of control coefficients and the preset type association relationship, improving the generation accuracy and reliability of the target control coefficient. Furthermore, it can intelligently select the appropriate control coefficient generation process based on the number of types of sub-intake demand parameters included in the intake demand parameters, increasing the diversity and flexibility of the target control coefficient generation method.

[0192] In this optional embodiment, as an optional implementation method, the generation module 302 generates the target control coefficient of the water outlet control device for the water storage parameters based on the sub-inlet water demand parameters and the corresponding sub-storage parameters of the same type. Specifically, this may include:

[0193] Obtain the first pipe parameters of the first pipe of the water outlet control device and the water inlet device, and obtain the second pipe parameters of the second pipe of the second pipe of the water outlet control device and the water storage device.

[0194] By analyzing the parameters of the first pipeline and the sub-inlet water demand parameters, the water outlet control device can obtain the water outlet demand of the first pipeline.

[0195] By analyzing the parameters of the second pipeline and the corresponding sub-storage parameters of the same type, the water inlet control device can obtain the pipeline water inlet requirements of the second pipeline.

[0196] Based on the water outflow and inflow requirements of the pipeline, the target control coefficients for the water storage parameters of the water outflow control device are generated.

[0197] As can be seen, this optional implementation can obtain the first pipeline parameters of the first pipeline of the water outlet control device and the water inlet device, and the second pipeline parameters of the second pipeline of the second pipeline of the water outlet control device and the water storage device. It can also analyze the first pipeline parameters and the sub-inlet demand parameters to obtain the pipeline water outlet demand for the first pipeline, and analyze the second pipeline parameters and the same type of sub-storage parameters to obtain the pipeline water inlet demand for the second pipeline. This improves the accuracy of the analysis of pipeline water outlet demand and pipeline water inlet demand. Subsequently, based on the pipeline water outlet demand and pipeline water inlet demand, the target control coefficient of the water outlet control device for the water storage parameters is generated, which can improve the accuracy of the generation of the target control coefficient.

[0198] Example 4

[0199] Please see Figure 5 , Figure 5 This is a schematic diagram of the structure of another water outlet control device disclosed in an embodiment of the present invention. (See attached diagram.) Figure 5 As shown, the water outlet control device may include:

[0200] Memory 401 storing executable program code;

[0201] Processor 402 coupled to memory 401;

[0202] The processor 402 calls the executable program code stored in the memory 401 to execute the steps in the water outlet control method of the water outlet control device described in Embodiment 1 or Embodiment 2 of the present invention.

[0203] Example 5

[0204] This invention discloses a computer storage medium storing computer instructions. When these computer instructions are invoked, they are used to execute the steps in the water outlet control method of the water outlet control device described in Embodiment 1 or Embodiment 2 of this invention.

[0205] Example 6

[0206] This invention discloses a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to cause a computer to perform the steps in the water outlet control method of the water outlet control device described in Embodiment 1 or Embodiment 2.

[0207] The device embodiments described above are merely illustrative. The modules described as separate components may or may not be physically separate. The components shown as modules may or may not be physical modules; that is, they may be located in one place or distributed across multiple network modules. Some or all of the modules can be selected to achieve the purpose of this embodiment according to actual needs. Those skilled in the art can understand and implement this without any creative effort.

[0208] Through the detailed description of the above embodiments, those skilled in the art can clearly understand that each implementation method can be implemented by means of software plus necessary general-purpose hardware platforms, and of course, it can also be implemented by hardware. Based on this understanding, the above technical solutions, in essence or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product can be stored in a computer-readable storage medium, including read-only memory (ROM), random access memory (RAM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), one-time programmable read-only memory (OTPROM), electrically-Erasable Programmable Read-Only Memory (EEPROM), compact disc read-only memory (CD-ROM) or other optical disc storage, disk storage, magnetic tape storage, or any other computer-readable medium that can be used to carry or store data.

[0209] Finally, it should be noted that the water control method and apparatus disclosed in the embodiments of the present invention are merely preferred embodiments of the present invention and are only used to illustrate the technical solutions of the present invention, not to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A water outlet control method for a water outlet control device, characterized in that, The method includes: When the water demand parameters of the water inlet device to which the water outlet control device is facing are received, the water storage parameters of the water storage device that provides water outlet to the water outlet control device are obtained. Based on the water inlet demand parameters and the water storage parameters, the target control coefficient of the water outlet control device for the water storage parameters is generated; According to the target control coefficient, the water storage parameters are controlled to obtain the target water output parameters. The target water output parameters are the parameters required for the water output control parameters to perform water output operation from the water storage device to the water inlet device. And, before generating the target control coefficient of the outlet control device for the storage parameters based on the inlet water demand parameters and the storage parameters, the method further includes: Based on the water inlet demand parameters and the water storage parameters, determine whether the water storage device meets the preset water outlet conditions; When it is determined that the water storage device meets the water outlet conditions, the operation of generating the target control coefficient of the water outlet control device for the water storage parameters based on the water inlet demand parameters and the water storage parameters is triggered. When it is determined that the water storage device does not meet the water outlet conditions, a water inlet demand modification prompt and / or a water storage re-storage prompt are generated based on the water inlet demand parameters and the water storage parameters. The water inlet demand modification prompt is used to indicate that the water inlet demand parameters are modified, and the water storage re-storage prompt is used to indicate that the water storage parameters are re-storaged. The step of determining whether the water storage device meets the preset water outlet conditions based on the water inlet demand parameters and the water storage parameters includes: Determine whether the water storage parameters meet the water inlet requirement parameters; When it is determined that the water storage parameters meet the water inlet requirements, the water storage device is determined to meet the preset water outlet conditions. When it is determined that the water storage parameters do not meet the water inlet demand parameters, it is determined whether the historical number of modifications of the water inlet device to the water inlet demand parameters is greater than or equal to a preset number. When it is determined that the number of historical modifications is greater than or equal to the preset number, the water storage device is determined to meet the preset water discharge conditions. When it is determined that the water storage parameters do not meet the water inlet requirements and the number of historical modifications is less than the preset number, it is determined that the water storage device does not meet the preset water outlet conditions.

2. The water outlet control method of the water outlet control device according to claim 1, characterized in that, The method further includes: When only the water inlet demand modification prompt is generated, the first water inlet demand correction coefficient of the water inlet demand parameter is determined according to the water storage parameter, and the water inlet demand parameter is corrected according to the first water inlet demand correction coefficient to obtain the first water inlet demand parameter. The water inlet demand parameter is updated to the first water inlet demand parameter, and the operation of generating the target control coefficient of the water outlet control device for the water storage parameter based on the water inlet demand parameter and the water storage parameter is triggered. Furthermore, the method further includes: When only the re-water storage prompt is generated, the first water storage control parameter of the water storage parameter is determined according to the water inlet demand parameter, and the re-water storage operation is performed on the water storage device according to the first water storage control parameter to obtain the first water storage parameter; The water storage parameter is updated to the first water storage parameter, and the operation of generating the target control coefficient of the water outlet control device for the water storage parameter based on the water inlet demand parameter and the water storage parameter is triggered.

3. The water outlet control method of the water outlet control device according to claim 2, characterized in that, The method further includes: When the water inlet demand modification prompt and the water storage re-storage prompt are generated, the modification requirement corresponding to the water inlet demand parameter and the water storage requirement corresponding to the water storage parameter are determined according to the water inlet demand parameter and the water storage parameter; and the second water inlet demand correction coefficient of the water inlet demand parameter is determined according to the modification requirement; and the second water storage control parameter of the water storage parameter is determined according to the water storage requirement. The water inlet demand parameters are corrected according to the second water inlet demand correction coefficient to obtain the second water inlet demand parameters; and the water storage device is re-stored according to the second water storage control parameters to obtain the second water storage parameters. The water inlet demand parameter is updated to the second water inlet demand parameter, and the water storage parameter is updated to the second water storage parameter. The operation of generating the target control coefficient of the water outlet control device for the water storage parameter based on the water inlet demand parameter and the water storage parameter is triggered.

4. The water outlet control method of the water outlet control device according to any one of claims 1-3, characterized in that, The step of generating the target control coefficient of the water outlet control device for the water storage parameters based on the water inlet demand parameters and the water storage parameters includes: Obtain the parameter type of each of the at least one sub-influent demand parameters included in the influent demand parameters; For each of the sub-inlet water demand parameters, based on the parameter type of the sub-inlet water demand parameter, a water storage parameter with the same parameter type as the sub-inlet water demand parameter is selected from the multiple sub-water storage parameters included in the water storage parameter, and used as the sub-water storage parameter of the same type corresponding to the sub-inlet water demand parameter; When the number of sub-inlet water demand parameters included in the inlet water demand parameters is 1, the target control coefficient of the outlet water control device for the water storage parameter is generated according to the sub-inlet water demand parameters and the sub-storage water parameters of the same type corresponding to the sub-inlet water demand parameters. When the number of sub-inlet water demand parameters included in the inlet water demand parameter is greater than 1, for each sub-inlet water demand parameter, a type control coefficient corresponding to the sub-inlet water demand parameter is generated based on the sub-inlet water demand parameter and the corresponding sub-storage water parameter of the same type; and based on the type control coefficients corresponding to all the sub-inlet water demand parameters and the preset type association relationship, a target control coefficient for the storage water parameter is generated by the water outlet control device.

5. The water outlet control method of the water outlet control device according to claim 4, characterized in that, The step of generating the target control coefficient of the water outlet control device for the water storage parameters based on the sub-inlet water demand parameters and the corresponding sub-storage parameters of the same type includes: Obtain the first pipe parameters of the first pipe between the water outlet control device and the water inlet device, and obtain the second pipe parameters of the second pipe between the water outlet control device and the water storage device; By analyzing the parameters of the first pipeline and the sub-inlet water demand parameters, the water outlet control device obtains the water outlet demand of the first pipeline. By analyzing the parameters of the second pipeline and the corresponding sub-storage parameters of the same type as the sub-inlet water demand parameters, the water inlet water demand of the outlet control device for the second pipeline is obtained. Based on the water outflow demand and the water inflow demand of the pipeline, the target control coefficient for the water storage parameters is generated by the water outflow control device.

6. A water outlet control device, characterized in that, The device is used to perform the water outlet control method of the water outlet control device as described in any one of claims 1-5, and the device comprises: The acquisition module is used to acquire the water storage parameters of the water storage device that provides water to the water outlet control device when it receives the water inlet demand parameters of the water outlet control device facing the water inlet device. The generation module is used to generate the target control coefficient of the water outlet control device for the water storage parameters based on the water inlet demand parameters and the water storage parameters. The control module is used to control the water storage parameters according to the target control coefficient to obtain the target water output parameters. The target water output parameters are the parameters required by the water output control parameters to perform water output operation from the water storage device to the water inlet device.

7. A water outlet control device, characterized in that, The device includes: Memory containing executable program code; A processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the water outlet control method of the water outlet control device as described in any one of claims 1-5.

8. A computer storage medium, characterized in that, The computer storage medium stores computer instructions, which, when invoked, are used to execute the water outlet control method of the water outlet control device as described in any one of claims 1-5.

Citation Information

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