A gas water heater control method
By acquiring the flue pipe parameters and location information of the gas water heater, and using a cloud platform to calculate and adjust the operating parameters, the problem of low combustion efficiency of gas water heaters under actual working conditions is solved, achieving more efficient combustion and reduced exhaust emissions.
Patent Information
- Application Number
- CN202511212763.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-28
- Publication Date
- 2026-01-09
- Estimated Expiration
- 2045-08-28
AI Technical Summary
Existing gas water heaters suffer from low combustion efficiency and increased exhaust emissions because their preset operating parameters are not applicable under actual working conditions.
By acquiring the flue pipe parameter information and location information of the gas water heater, the cloud platform calculates and sends the operation parameter correction value, and combines it with the preset empirical formula to adjust the actual operation parameters of the gas water heater to adapt to the actual environment.
Improve the combustion efficiency of gas water heaters, reduce exhaust emissions, and ensure optimal operation of gas water heaters in different environments.
Smart Images

Figure CN120740216B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of gas water heaters, and more particularly to a gas water heater control method. Background Technology
[0002] In the field of gas water heaters, combustion performance is a core indicator for measuring the energy efficiency and safety of gas water heaters. To ensure complete combustion and reduce exhaust emissions, it is necessary to adjust operating parameters such as fan speed and gas supply to determine the optimal air-gas matching scheme for the gas water heater.
[0003] In existing technologies, gas water heaters typically undergo full-load testing in the local environment during the production stage. Specifically, by adjusting operating parameters such as fan speed and gas supply, the optimal airflow matching scheme for each load segment is determined.
[0004] However, the actual working environment of gas water heaters differs significantly from the production and testing environment. The original preset operating parameters are not applicable to actual working conditions, resulting in incomplete combustion of gas water heaters, which in turn reduces combustion efficiency and increases exhaust emissions. Summary of the Invention
[0005] This application provides a gas water heater control method to solve the technical problem of low combustion efficiency of gas water heaters caused by preset operating parameters being unsuitable for actual working conditions.
[0006] In a first aspect, embodiments of this application provide a gas water heater control method, the method being applied to a gas water heater, comprising:
[0007] Obtain the first flue pipe parameter information and the first position information of the gas water heater;
[0008] Send the first flue parameter information and the first location information to the cloud platform;
[0009] The cloud platform receives a first operating parameter correction value, which is determined by the cloud platform based on the first flue parameter information and the first position information.
[0010] The first actual operating parameter value of the gas water heater is calculated based on the first operating parameter correction value and the preset empirical formula, wherein the preset empirical formula is used to calculate the actual operating parameter value of the gas water heater;
[0011] The operating status of the gas water heater is adjusted according to the first actual operating parameter value.
[0012] Optionally, the method further includes:
[0013] If the flue gas parameter information of the gas water heater changes, second flue gas parameter information of the gas water heater is acquired;
[0014] The second flue gas parameter information is sent to the cloud platform;
[0015] The second running parameter correction value returned by the cloud platform is received, the second running parameter correction value being determined by the cloud platform according to the second flue gas parameter information and the first location information;
[0016] A second actual running parameter value of the gas water heater is calculated according to the second running parameter correction value and the preset empirical formula;
[0017] The running state of the gas water heater is adjusted according to the second actual running parameter value.
[0018] Optionally, the method further comprises:
[0019] If the location information of the gas water heater changes, second location information of the gas water heater is acquired;
[0020] The second location information is sent to the cloud platform;
[0021] A third running parameter correction value returned by the cloud platform is received, the third running parameter correction value being determined by the cloud platform according to the first flue gas parameter information and the second location information;
[0022] A third actual running parameter value of the gas water heater is calculated according to the third running parameter correction value and the preset empirical formula;
[0023] The running state of the gas water heater is adjusted according to the third actual running parameter value.
[0024] Optionally, the method further comprises:
[0025] If the temperature and humidity of the environment in which the gas water heater is located change, a fourth running parameter correction value returned by the cloud platform is received, the fourth running parameter correction value being determined by the cloud platform according to the first flue gas parameter information and the second location information;
[0026] A fourth actual running parameter value of the gas water heater is calculated according to the fourth running parameter correction value and the preset empirical formula;
[0027] The running state of the gas water heater is adjusted according to the fourth actual running parameter value.
[0028] Optionally, the first running parameter correction value comprises three groups of compensation values, each group of compensation values comprises a gas consumption compensation value, a fan speed compensation value and an adjustment rate compensation value, the first actual running parameter value comprises a gas consumption, a fan speed and an adjustment rate, and the calculation of the first actual running parameter value of the gas water heater according to the first running parameter correction value and a preset empirical formula comprises:
[0029] The gas consumption, the fan speed and the adjustment rate of the gas water heater are calculated according to the gas consumption compensation value, the fan speed compensation value and the adjustment rate compensation value in each group of compensation values through a preset empirical formula.
[0030] In a second aspect, the embodiments of the present application provide a gas water heater control method, which is applied to a cloud platform and comprises:
[0031] receiving first flue parameter information and first location information from a gas water heater;
[0032] obtaining a first altitude and a first temperature and humidity of an environment where the gas water heater is located according to the first location information;
[0033] determining a first running parameter correction value of the gas water heater according to the first flue parameter information, the first altitude and the first temperature and humidity;
[0034] sending the first running parameter correction value to the gas water heater, so that the gas water heater calculates an actual running parameter value of the gas water heater according to the first running parameter correction value.
[0035] Optionally, the method further comprises:
[0036] receiving second flue parameter information from the gas water heater;
[0037] determining a second running parameter correction value of the gas water heater according to the second flue parameter information, the first altitude and the first temperature and humidity;
[0038] sending the second running parameter correction value to the gas water heater, so that the gas water heater calculates an actual running parameter value of the gas water heater according to the second running parameter correction value.
[0039] Optionally, the method further comprises:
[0040] receiving second location information from the gas water heater;
[0041] obtaining a second altitude and a second temperature and humidity of an environment where the gas water heater is located according to the second location information;
[0042] determine a third running parameter correction value of the gas water heater according to the first flue parameter information, the second altitude and the second temperature and humidity;
[0043] send the third running parameter correction value to the gas water heater, so that the gas water heater calculates an actual running parameter value of the gas water heater according to the third running parameter correction value.
[0044] Optionally, the method further comprises:
[0045] if the first temperature and humidity changes, obtaining a third temperature and humidity of an environment where the gas water heater is located according to the first location information;
[0046] determine a fourth running parameter correction value of the gas water heater according to the first flue parameter information, the first altitude and the third temperature and humidity;
[0047] send the fourth running parameter correction value to the gas water heater, so that the gas water heater calculates an actual running parameter value of the gas water heater according to the fourth running parameter correction value.
[0048] Optionally, the first running parameter correction value comprises a first group of compensation values, a second group of compensation values and a third group of compensation values, each group of compensation values comprises a gas consumption compensation value, a fan speed compensation value and an adjustment rate compensation value, and the determining of the first running parameter correction value of the gas water heater according to the first flue parameter information, the first altitude and the first temperature and humidity comprises:
[0049] according to the first flue parameter information, searching a preset installation mode compensation table to obtain the first group of compensation values;
[0050] according to the first altitude, searching a preset altitude compensation table to obtain the second group of compensation values;
[0051] according to the first temperature and humidity, searching a preset temperature and humidity compensation table to obtain the third group of compensation values.
[0052] In a third aspect, the embodiments of the present application further provide a gas water heater control device, which is applied to a gas water heater and comprises units for executing the above-mentioned gas water heater control method.
[0053] In a fourth aspect, the embodiments of the present application further provide a gas water heater control device, which is applied to a cloud platform and comprises units for executing the above-mentioned gas water heater control method.
[0054] In a fifth aspect, the embodiments of the present application further provide a computer device, comprising a memory and a processor, wherein the memory stores a computer program, and the processor implements the above method when executing the computer program.
[0055] In a sixth aspect, the embodiments of the present application further provide a computer readable storage medium, which stores a computer program, and the computer program can implement the above method when being executed by a processor.
[0056] The embodiments of the present application provide a gas water heater control method. Wherein, the method comprises: obtaining first flue parameter information and first position information of the gas water heater; sending the first flue parameter information and the first position information to a cloud platform; receiving a first running parameter correction value returned by the cloud platform, the first running parameter correction value being determined by the cloud platform according to the first flue parameter information and the first position information; calculating a first actual running parameter value of the gas water heater according to the first running parameter correction value and a preset empirical formula, the preset empirical formula being used to calculate the actual running parameter value of the gas water heater; and adjusting the running state of the gas water heater according to the first actual running parameter value. It can be seen that, in the technical scheme of the present application, the first flue parameter information and the first position information of the gas water heater are obtained and sent to the cloud platform. Then, the first running parameter correction value returned by the cloud platform is received. The first running parameter correction value is determined by the cloud platform according to the first flue parameter information and the first position information. Finally, the first actual running parameter value of the gas water heater is calculated according to the first running parameter correction value and the preset empirical formula, and the running state of the gas water heater is adjusted according to the first actual running parameter value. It can be seen that, the running parameter value of the gas water heater is not fixed. The cloud platform determines the running parameter correction value of the gas water heater according to the flue parameter information and the position information of the gas water heater. The position information and the flue parameter information of the gas water heater can truly reflect the actual working environment of the gas water heater. Therefore, the actual running parameter value of the gas water heater calculated according to the first running parameter correction value and the preset empirical formula can be accurately matched with the actual working environment of the gas water heater, so as to improve the combustion efficiency of the gas water heater and effectively reduce the exhaust emission. BRIEF DESCRIPTION OF DRAWINGS
[0057] The accompanying drawings, which are incorporated herein and form part of the specification, illustrate embodiments consistent with the present application and, together with the description, further serve to explain the principles behind the present application.
[0058] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the accompanying drawings needed to be used in the description of the embodiments or the prior art will be briefly introduced. Obviously, for those of ordinary skill in the art, the drawings needed to be obtained based on these drawings without any creative work can also obtain other drawings.
[0059] One or more embodiments are illustrated by way of example with reference to the drawings, which are schematic and not drawn to scale, wherein the same or similar components of the drawings are denoted by the same reference numerals, and the drawings constitute a part of the specification, and do not constitute a limitation on the embodiments.
[0060] Figure 1a One of the flowcharts of a gas water heater control method provided by the embodiments of the present application;
[0061] Figure 1b A schematic diagram of a gas water heater connected with a cloud platform provided by the embodiments of the present application;
[0062] Figure 2 The second flowchart of a gas water heater control method provided by the embodiments of the present application;
[0063] Figure 3 The first schematic block diagram of a gas water heater control device provided by the embodiments of the present application;
[0064] Figure 4 The second schematic block diagram of a gas water heater control device provided by the embodiments of the present application;
[0065] Figure 5 A computer device provided by the embodiments of the present application. DETAILED DESCRIPTION
[0066] In order to make the objects, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be described clearly and completely below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are a part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without any creative work belong to the scope of protection of the present application.
[0067] The disclosure below provides many different embodiments or examples for implementing different structures of the application. For the sake of simplicity, the description below of a particular embodiment or example does not necessarily include all features of the application. It is intended, however, that the application include all possible combinations of features that would be dependent upon the particular embodiment or example described in the disclosure when read in the light of the disclosure. It is also contemplated that features described in the context of one embodiment or example can be provided in the context of another embodiment or example, and vice versa, to the extent not inconsistent with the particular embodiment or example.
[0068] It should be understood that the terms "comprises" and "comprising" when used in this specification and the following claims, indicate the presence of the described features, integers, steps, operations, elements, and / or components, but do not preclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof.
[0069] It should also be understood that the terms "comprises", "comprising", "includes", "including", "has", "having" and "contains", "containing" when used in this specification and the following claims, shall be construed as non-limiting.
[0070] It should also be understood that the terms "and / or", "and / or" when used in this specification and the following claims, shall be construed to mean any one of the items in the list, or combinations of one or more of the items in the list.
[0071] As used in this specification and the appended claims, the terms "if" and "when" can each be interpreted to mean "upon determination" or "in response to a determination" or "in response to detecting," depending on the context. Similarly, the phrase "if determined" or "if detected [the described condition or event]" can be interpreted to mean "upon determining" or "in response to determining" or "upon detecting [the described condition or event]" or "in response to detecting [the described condition or event]," depending on the context.
[0072] In order to solve the technical problem of low combustion efficiency of the gas water heater caused by the fact that the preset operating parameters cannot be applied to the actual working conditions in the prior art, the application provides a gas water heater control device, which can improve the combustion efficiency of the gas water heater.
[0073] Figure 1a A flowchart of a gas water heater control method provided by an embodiment of the application is shown in Figure 1. In an embodiment, the method is applied to a gas water heater, and the method comprises steps S101-S105.
[0074] S101, acquiring first flue pipe parameter information and first position information of the gas water heater.
[0075] The first flue parameter information is flue parameter information of the gas water heater. The flue parameter information is used to indicate the installation mode of the flue. For example, the flue parameter information is 1 meter 1 bend, which indicates that the length of the flue is 1 meter and there is one bend. It should be noted that the length of the flue and the number of bends of the flue affect the exhaust rate of air, and in turn affect the combustion efficiency of the gas.
[0076] The first position information is installation position information of the gas water heater. The installation position information includes but is not limited to the latitude and longitude information of the gas water heater. It should be noted that different locations have different environmental temperature and humidity and altitude. The temperature and humidity and altitude of the environment are crucial to the full combustion of the gas water heater.
[0077] S102, send the first flue parameter information and the first position information to the cloud platform.
[0078] Please refer to Figure 1b , Figure 1b is a schematic diagram of the connection between the gas water heater and the cloud platform provided by an embodiment of the present application. The gas water heater is built-in with a wireless communication module. When the gas water heater is installed for the first time, the installer sets it through the background to make the gas water heater connect with the cloud platform through the wireless network. Then, the gas water heater sends the first flue parameter information and the first position information to the cloud platform.
[0079] It should be noted that the cloud platform is a cloud server.
[0080] S103, receive the first running parameter correction value returned by the cloud platform.
[0081] The first running parameter correction value is determined by the cloud platform according to the first flue parameter information and the first position information. The cloud platform receives the first flue parameter information and the first position information. Then, the cloud platform obtains the altitude and temperature and humidity of the environment where the gas water heater is located according to the first position information. Further, the first running parameter correction value of the gas water heater is determined according to the first flue parameter information, the altitude and temperature and humidity of the environment where the gas water heater is located.
[0082] S104, calculate the first actual running parameter value of the gas water heater according to the first running parameter correction value and a preset empirical formula.
[0083] The preset empirical formula is used to calculate actual operation parameter values of the gas water heater. The first actual operation parameter value is an actual operation parameter value of the gas water heater in the environment in which the gas water heater is located. The actual operation parameter values include gas consumption, fan speed, and adjustment rate. The first operation parameter correction value includes three groups of compensation values. Each group of compensation values includes a gas consumption compensation value, a fan speed compensation value, and an adjustment rate compensation value. According to the gas consumption compensation value, the fan speed compensation value, and the adjustment rate compensation value in each group of compensation values, the gas consumption, the fan speed, and the adjustment rate of the gas water heater are calculated by the preset empirical formula.
[0084] It should be noted that the embodiments of the present application select a commonly used model of gas water heater, and construct a test environment including three test conditions of altitude, temperature and humidity, and exhaust pipe length. Specifically, two test conditions are fixed in the three test conditions, and the commonly used model of gas water heater is used to measure the gas consumption compensation value, the fan speed compensation value, and the adjustment rate compensation value, respectively. The test data obtained is sorted out and introduced into a data analysis tool to obtain an empirical formula based on altitude, temperature and humidity, and exhaust pipe parameter information. The data analysis tool includes but is not limited to MATLAB data analysis tool. Preferably, the gas consumption, the fan speed, and the adjustment rate of the gas water heater are obtained by substituting the three groups of compensation values into the empirical formula and taking the average of the substitution results.
[0085] S105, adjusting the operation state of the gas water heater according to the first actual operation parameter value.
[0086] It should be noted that in the embodiments of the present application, when the gas water heater is first installed, the actual operation parameters of the gas water heater need to be modified to adjust the operation state of the gas water heater, so that the gas water heater can better adapt to the current environment, and thus ensure that the gas water heater can fully burn. At each subsequent operation, the gas water heater can be started according to the current modified actual operation parameters.
[0087] The embodiment of the present application provides a gas water heater control method. Wherein, the method comprises: obtaining first flue parameter information and first position information of the gas water heater; sending the first flue parameter information and the first position information to a cloud platform; receiving a first running parameter correction value returned by the cloud platform, wherein the first running parameter correction value is determined by the cloud platform according to the first flue parameter information and the first position information; calculating a first actual running parameter value of the gas water heater according to the first running parameter correction value and a preset empirical formula, wherein the preset empirical formula is used to calculate the actual running parameter value of the gas water heater; and adjusting the running state of the gas water heater according to the first actual running parameter value. Therefore, in the technical scheme of the present application, the first flue parameter information and the first position information of the gas water heater are obtained and sent to the cloud platform. Then, the first running parameter correction value returned by the cloud platform is received. The first running parameter correction value is determined by the cloud platform according to the first flue parameter information and the first position information. Finally, the first actual running parameter value of the gas water heater is calculated according to the first running parameter correction value and the preset empirical formula, and the running state of the gas water heater is adjusted according to the first actual running parameter value. As can be seen, the running parameter value of the gas water heater is not fixed. The cloud platform determines the running parameter correction value of the gas water heater according to the flue parameter information and the position information of the gas water heater. The position information and the flue parameter information of the gas water heater can truly reflect the actual working environment of the gas water heater. Therefore, the actual running parameter value of the gas water heater calculated according to the first running parameter correction value and the preset empirical formula can accurately match the actual working environment of the gas water heater, thereby improving the combustion efficiency of the gas water heater and effectively reducing the exhaust emission.
[0088] In an embodiment, the method further comprises: 106-S110.
[0089] S106, obtaining second flue parameter information of the gas water heater.
[0090] If the flue parameter information of the gas water heater changes, S106 needs to be performed. The second flue parameter information is the flue parameter information of the gas water heater. The second flue parameter information is similar to the first flue parameter information, which will not be described herein.
[0091] When the flue parameter information of the gas water heater changes, the first actual running parameter cannot make the gas water heater fully combust. Therefore, the embodiment of the present application needs to obtain the latest flue parameter information of the gas water heater and send it to the cloud platform.
[0092] S107, sending the second flue parameter information to the cloud platform.
[0093] It should be noted that S107 and S102 are the same or similar. Here, the present application will not be described again.
[0094] S108, receiving the second running parameter correction value returned by the cloud platform.
[0095] The second running parameter correction value is determined by the cloud platform according to the second flue parameter information and the first position information.
[0096] It should be noted that the second running parameter correction value is similar to the first running parameter correction value, and S108 is the same or similar to S103. Here, the present application will not be described again.
[0097] S109, calculating a second actual running parameter value of the gas water heater according to the second running parameter correction value and a preset empirical formula.
[0098] It should be noted that the second actual running parameter value is similar to the first actual running parameter value, and S109 is the same or similar to S104. Here, the present application will not be described again.
[0099] S110, adjusting the running state of the gas water heater according to the second actual running parameter value.
[0100] It should be noted that S110 is the same or similar to S105. Here, the present application will not be described again.
[0101] In an embodiment, the method further comprises S111-S115.
[0102] S111, obtaining second position information of the gas water heater.
[0103] If the position information of the gas water heater changes, S111 is executed. When the same gas water heater changes the installation address, the temperature and humidity or the altitude of the surrounding environment of the gas water heater changes at this time, and the first actual running parameter value cannot make the gas water heater fully burn. Therefore, the embodiment of the present application needs to obtain the latest position information of the gas water heater and send it to the cloud platform. It should be noted that the second position information is the latest installation position information of the gas water heater. The second position information is similar to the first position. Here, the present application will not be described again.
[0104] S112, sending the second position information to the cloud platform.
[0105] It should be noted that S112 is the same or similar to S102. Here, the present application will not be described again.
[0106] S113, receiving a third running parameter correction value returned by the cloud platform.
[0107] The third operation parameter correction value is determined by the cloud platform according to the first flue parameter information and the second location information.
[0108] It should be noted that the third operation parameter correction value is similar to the first operation parameter correction value, and S113 is the same as or similar to S103. Herein, the present application will not be repeated.
[0109] S114, calculating a third actual operation parameter value of the gas water heater according to the third operation parameter correction value and a preset empirical formula.
[0110] It should be noted that the third actual operation parameter value is similar to the first actual operation parameter value, and S114 is the same as or similar to S104. Herein, the present application will not be repeated.
[0111] S115, adjusting the operation state of the gas water heater according to the third actual operation parameter value.
[0112] It should be noted that S115 is the same as or similar to S105. Herein, the present application will not be repeated.
[0113] In an embodiment, the method further comprises S116-S118.
[0114] S116, receiving a fourth operation parameter correction value returned by the cloud platform.
[0115] If the temperature and humidity of the environment where the gas water heater is located change, S116 is performed. The fourth operation parameter correction value is determined by the cloud platform according to the first flue parameter information and the second location information.
[0116] It should be noted that the cloud platform stores the location information of the gas water heater. In the embodiment of the present application, the cloud platform monitors the temperature and humidity of the gas water heater, and when the temperature and humidity of the gas water heater change, the cloud platform further determines a fourth operation parameter correction value according to the latest temperature and humidity value of the gas water heater. The fourth operation parameter correction value is similar to the first operation parameter correction value. Herein, the present application will not be repeated.
[0117] S117, calculating a fourth actual operation parameter value of the gas water heater according to the fourth operation parameter correction value and a preset empirical formula.
[0118] It should be noted that the fourth actual operation parameter value is similar to the first actual operation parameter value, and S117 is the same as or similar to S104. Herein, the present application will not be repeated.
[0119] S118, adjusting the operation state of the gas water heater according to the fourth actual operation parameter value.
[0120] It should be noted that S118 is the same as or similar to S105. Herein, the present application will not be repeated.
[0121] Referring to Figure 2 , Figure 2 FIG. 2 is a flowchart of a control method of a gas water heater according to an embodiment of the present disclosure. In an embodiment, the method is applied to a cloud platform, and the method comprises steps S201-S204.
[0122] S201, receiving first flue parameter information and first location information from the gas water heater.
[0123] The first flue parameter information and the first location information are the same as the first flue parameter information and the first location information in S101, respectively. The present disclosure will not be repeated here.
[0124] S202, obtaining a first altitude and a first temperature and humidity of an environment in which the gas water heater is located according to the first location information.
[0125] The first altitude is the altitude of the installation environment of the gas water heater. The first temperature and humidity is the temperature and humidity of the installation environment of the gas water heater.
[0126] S203, determining a first running parameter correction value of the gas water heater according to the first flue parameter information, the first altitude and the first temperature and humidity.
[0127] The first running parameter correction value is the same as the first running parameter correction value in S103. The present disclosure will not be repeated here.
[0128] In an embodiment, the first running parameter correction value comprises a first set of compensation values, a second set of compensation values and a third set of compensation values, each set of compensation values comprising a gas consumption compensation value, a fan speed compensation value and an adjustment rate compensation value. S203 specifically comprises steps S2031-S2033.
[0129] S2031, according to the first flue parameter information, searching a preset installation mode compensation table to obtain the first set of compensation values.
[0130] It should be noted that the preset installation mode compensation table is obtained by the present applicant according to actual experience testing. The preset installation mode compensation table is shown in Table 1 as follows:
[0131] Table 1
[0132]
[0133] For example, when the first flue parameter information is 1 meter 1 bend, the first set of compensation values comprises a gas consumption compensation value, a fan speed compensation value and an adjustment rate compensation value. According to Table 1, the gas consumption compensation value is A23, the fan speed compensation value is B23, and the adjustment rate compensation value is C23.
[0134] S2032, according to the first altitude, searching a preset altitude compensation table to obtain a second set of compensation values.
[0135] It should be noted that the preset altitude compensation table is obtained by the applicant according to actual experience test. The preset altitude compensation table is shown in Table 2 as follows:
[0136] Table 2
[0137]
[0138] For example, when the first altitude is 1300 meters, the second set of compensation values includes the gas consumption compensation value, the fan speed compensation value and the adjustment rate compensation value. According to Table 2, the gas consumption compensation value is A3, the fan speed compensation value is B3, and the adjustment rate compensation value is C3.
[0139] S2033, according to the temperature and humidity, searching a preset temperature and humidity compensation table to obtain a third set of compensation values.
[0140] It should be noted that the preset temperature and humidity compensation table is obtained by the applicant according to actual experience test. The preset temperature and humidity compensation table is shown in Table 3 as follows:
[0141] Table 3
[0142]
[0143] For example, when the first temperature and humidity is temperature 20 degrees Celsius and humidity 30%, the third set of compensation values includes the gas consumption compensation value, the fan speed compensation value and the adjustment rate compensation value. According to Table 3, the gas consumption compensation value is A32, the fan speed compensation value is B32, and the adjustment rate compensation value is C32.
[0144] S204, sending the first running parameter correction value to the gas water heater, so that the gas water heater calculates the actual running parameter value of the gas water heater according to the first running parameter correction value.
[0145] It should be noted that the above S104 has been described in detail that the gas water heater calculates the actual running parameter value of the gas water heater according to the first running parameter correction value. Here, the present application will not be repeated.
[0146] In an embodiment, the method further comprises S205-S207.
[0147] S205, receiving the second flue pipe parameter information from the gas water heater.
[0148] The second flue pipe parameter information is the same as the second flue pipe parameter information in S106. Here, the present application will not be repeated.
[0149] When the flue gas parameter information of the gas water heater changes, the gas water heater sends second flue gas parameter information to the cloud platform.
[0150] S206, determine a second running parameter correction value of the gas water heater according to the second flue gas parameter information, the first altitude and the first temperature and humidity.
[0151] It should be noted that S206 is the same as or similar to S203, and the second running parameter correction value is the same as the second running parameter correction value in S108z. Here, the present application will not be repeated.
[0152] S207, send the second running parameter correction value to the gas water heater, so that the gas water heater calculates the actual running parameter value of the gas water heater according to the second running parameter correction value.
[0153] It should be noted that S207 is the same as or similar to S204. Here, the present application will not be repeated.
[0154] In an embodiment, the method further comprises S208-S211.
[0155] S208, receive second location information from the gas water heater.
[0156] Wherein, the second location information is the same as the second location information in S111. Here, the present application will not be repeated.
[0157] S209, obtain a second altitude and a second temperature and humidity of the environment where the gas water heater is located according to the second location information;
[0158] The second altitude is the altitude of the current environment where the gas water heater is located. The second temperature and humidity is the temperature and humidity of the current environment where the gas water heater is located.
[0159] It should be noted that S209 is the same as or similar to S202. Here, the present application will not be repeated.
[0160] S210, determine a third running parameter correction value of the gas water heater according to the first flue gas parameter information, the second altitude and the second temperature and humidity.
[0161] It should be noted that S210 is the same as or similar to S203. Here, the present application will not be repeated.
[0162] S211, send the third running parameter correction value to the gas water heater, so that the gas water heater calculates the actual running parameter value of the gas water heater according to the third running parameter correction value.
[0163] It should be noted that S211 is the same as or similar to S204. Here, the present application will not be repeated.
[0164] In an embodiment, the method further comprises: S212-S214.
[0165] S212, obtaining a third temperature and humidity of an environment where the gas water heater is located according to the first location information.
[0166] If the first temperature and humidity changes, S212 is performed.
[0167] It should be noted that the temperature and humidity of the environment where the gas water heater is located is different at different time periods. When the temperature and humidity of the environment where the gas water heater is located changes, the running parameter correction value of the gas water heater needs to be recalculated in the embodiment of the application to ensure that the gas water heater can fully burn under the new temperature and humidity environment.
[0168] S213, determining a fourth running parameter correction value of the gas water heater according to the first flue parameter information, the first altitude and the third temperature and humidity.
[0169] The fourth running parameter correction value is the same as the fourth running parameter correction value in S116. S213 is the same as or similar to S203. Here, the application will not be described again.
[0170] S214, sending the fourth running parameter correction value to the gas water heater, so that the gas water heater calculates an actual running parameter value of the gas water heater according to the fourth running parameter correction value.
[0171] It should be noted that S214 is the same as or similar to S204. Here, the application will not be described again.
[0172] Referring to Figure 3 , Figure 3 is one of the schematic block diagrams of a gas water heater control device provided by the embodiment of the application. Corresponding to the above gas water heater control method, the application further provides a gas water heater control device. The gas water heater control device includes units for executing the above gas water heater control method, and the gas water heater control device can be configured in a desktop computer, a tablet computer, a laptop computer and the like. Specifically, the gas water heater control device is applied to a gas water heater, and includes:
[0173] The obtaining unit 301 is configured to obtain first flue parameter information and first location information of the gas water heater.
[0174] The sending unit 302 is configured to send the first flue parameter information and the first location information to a cloud platform.
[0175] The receiving unit 303 is configured to receive a first running parameter correction value returned by the cloud platform, wherein the first running parameter correction value is determined by the cloud platform according to the first flue parameter information and the first location information.
[0176] The computing unit 304 is configured to calculate a first actual operation parameter value of the gas water heater according to the first operation parameter correction value and a preset empirical formula used for calculating an actual operation parameter value of the gas water heater.
[0177] The adjusting unit 305 is configured to adjust an operation state of the gas water heater according to the first actual operation parameter value.
[0178] In an embodiment, the obtaining unit 301 is further configured to obtain second flue parameter information of the gas water heater if the flue parameter information of the gas water heater is changed.
[0179] The sending unit 302 is further configured to send the second flue parameter information to the cloud platform.
[0180] The receiving unit 303 is further configured to receive a second operation parameter correction value returned by the cloud platform, the second operation parameter correction value being determined by the cloud platform according to the second flue parameter information and the first location information.
[0181] The computing unit 304 is further configured to calculate a second actual operation parameter value of the gas water heater according to the second operation parameter correction value and the preset empirical formula.
[0182] The adjusting unit 305 is further configured to adjust the operation state of the gas water heater according to the second actual operation parameter value.
[0183] In an embodiment, the obtaining unit 301 is further configured to obtain second location information of the gas water heater if the location information of the gas water heater is changed.
[0184] The sending unit 302 is further configured to send the second location information to the cloud platform.
[0185] The receiving unit 303 is further configured to receive a third operation parameter correction value returned by the cloud platform, the third operation parameter correction value being determined by the cloud platform according to the first flue parameter information and the second location information.
[0186] The computing unit 304 is further configured to calculate a third actual operation parameter value of the gas water heater according to the third operation parameter correction value and the preset empirical formula.
[0187] The adjusting unit 305 is further configured to adjust the operation state of the gas water heater according to the third actual operation parameter value.
[0188] In an embodiment, the receiving unit 303 is further configured to receive a fourth running parameter correction value returned by the cloud platform if the temperature and humidity of the environment where the gas water heater is located changes, and the fourth running parameter correction value is determined by the cloud platform according to the first flue parameter information and the second location information.
[0189] The computing unit 304 is further configured to calculate a fourth actual running parameter value of the gas water heater according to the fourth running parameter correction value and the preset empirical formula.
[0190] The adjusting unit 305 is further configured to adjust the running state of the gas water heater according to the fourth actual running parameter value.
[0191] In an embodiment, the first running parameter correction value includes three groups of compensation values, each group of compensation values includes a gas consumption compensation value, a fan speed compensation value and an adjustment rate compensation value, the first actual running parameter value includes a gas consumption, a fan speed and an adjustment rate, and the computing unit 304 is specifically configured to calculate the gas consumption, the fan speed and the adjustment rate of the gas water heater according to the gas consumption compensation value, the fan speed compensation value and the adjustment rate compensation value in each group of compensation values by using a preset empirical formula.
[0192] Referring to Figure 4 , Figure 4 is a schematic block diagram of a gas water heater control device provided by an embodiment of the present application. Corresponding to the above gas water heater control method, the present application further provides a gas water heater control device. The gas water heater control device includes units for executing the above gas water heater control method, and the gas water heater control device can be configured in a terminal such as a desktop computer, a tablet computer, a laptop computer, etc. Specifically, the gas water heater control device includes:
[0193] A first receiving unit 401 is configured to receive first flue parameter information and first location information from a gas water heater.
[0194] A first obtaining unit 402 is configured to obtain a first altitude and a first temperature and humidity of an environment where the gas water heater is located according to the first location information.
[0195] A determining unit 403 is configured to determine a first running parameter correction value of the gas water heater according to the first flue parameter information, the first altitude and the first temperature and humidity.
[0196] A first sending unit 404 is configured to send the first running parameter correction value to the gas water heater, so that the gas water heater calculates an actual running parameter value of the gas water heater according to the first running parameter correction value.
[0197] In an embodiment, the first receiving unit 401 is further configured to receive second flue parameter information from the gas water heater;
[0198] The determining unit 403 is further configured to determine a second running parameter correction value of the gas water heater according to the second flue parameter information, the first altitude and the first temperature and humidity;
[0199] The first sending unit 404 is further configured to send the second running parameter correction value to the gas water heater, so that the gas water heater calculates an actual running parameter value of the gas water heater according to the second running parameter correction value.
[0200] In an embodiment, the first receiving unit 401 is further configured to receive second location information from the gas water heater;
[0201] The first obtaining unit 402 is further configured to obtain a second altitude and a second temperature and humidity of an environment where the gas water heater is located according to the second location information;
[0202] The determining unit 403 is further configured to determine a third running parameter correction value of the gas water heater according to the first flue parameter information, the second altitude and the second temperature and humidity;
[0203] The first sending unit 404 is further configured to send the third running parameter correction value to the gas water heater, so that the gas water heater calculates an actual running parameter value of the gas water heater according to the third running parameter correction value.
[0204] In an embodiment, the first obtaining unit 402 is further configured to obtain a third temperature and humidity of an environment where the gas water heater is located according to the first location information if the first temperature and humidity changes;
[0205] The determining unit 403 is further configured to determine a fourth running parameter correction value of the gas water heater according to the first flue parameter information, the first altitude and the third temperature and humidity;
[0206] The first sending unit 404 is further configured to send the fourth running parameter correction value to the gas water heater, so that the gas water heater calculates an actual running parameter value of the gas water heater according to the fourth running parameter correction value.
[0207] In an embodiment, the first running parameter correction value includes a first group of compensation values, a second group of compensation values and a third group of compensation values, each group of compensation values includes a gas consumption compensation value, a fan speed compensation value and an adjustment rate compensation value, and the determining unit 403 is specifically configured to search a preset installation mode compensation table according to the first flue parameter information to obtain the first group of compensation values.
[0208] According to the first altitude, a preset altitude compensation table is searched to obtain the second set of compensation values;
[0209] According to the first temperature and humidity, a preset temperature and humidity compensation table is searched to obtain the third set of compensation values.
[0210] As shown in Figure 5 The embodiment of the present application provides a computer device, which comprises a processor 51, a communication interface 52, a memory 53 and a communication bus 54, wherein the processor 51, the communication interface 52 and the memory 53 complete mutual communication through the communication bus 54, and the memory 53 is used for storing a computer program.
[0211] In an embodiment of the present application, the processor 51 is used for executing the program stored in the memory 53, so as to realize the control method of the gas water heater control provided by any one of the preceding method embodiments.
[0212] Those skilled in the art can understand that all or part of the processes in the method of the above embodiment can be completed by a computer program instructing related hardware. The computer program can be stored in a storage medium, which is a computer readable storage medium. The computer program is executed by at least one processor in the computer system to realize the process steps of the above method embodiment.
[0213] Therefore, the embodiment of the present application further provides a computer readable storage medium, which stores a computer program, and the computer program is executed by a processor to realize the steps of the gas water heater control method provided by any one of the preceding method embodiments.
[0214] The storage medium is an entity, non-transient storage medium, for example, can be a U disk, a mobile hard disk, a read-only memory (Read-Only Memory, ROM), a magnetic disk or an optical disk and various entity storage media which can store program codes. The computer readable storage medium can be non-volatile or volatile.
[0215] Those skilled in the art can realize that the units and algorithm steps of the examples described in combination with the embodiments disclosed in the present application can be realized by electronic hardware, computer software or combination of the two. In order to clearly illustrate the interchangeability of hardware and software, the components and steps of the examples have been described in general in the above description. Whether the functions are realized in hardware or software depends on the specific application and design constraints of the technical solution. The skilled person can use different methods to realize the described functions for each specific application, but such implementation should not be considered beyond the scope of the present application.
[0216] In several embodiments provided in the present application, it should be understood that the disclosed apparatus and method can be implemented in other manners. For example, the described apparatus embodiments are merely schematic. For example, the division of the units is merely a logical function division. For example, a plurality of units or components can be combined or integrated into another system, or some features can be ignored or not executed. In a possible implementation process, the functions of the units can be implemented by using a process or a result of another process.
[0217] The steps in the method embodiments of the present application can be adjusted, combined and deleted according to actual needs. The units in the apparatus embodiments of the present application can be combined, divided and deleted according to actual needs. In addition, each functional unit in each embodiment of the present application can be integrated into a processing unit, or each unit can exist physically, or two or more units can be integrated into one unit.
[0218] The integrated unit, if realized in the form of a software functional unit and sold or used as an independent product, can be stored in a storage medium. Based on such understanding, the technical solutions of the present application essentially or say the part that contributes to the prior art, or the whole or part of the technical solutions can be embodied in the form of a software product. The computer software product is stored in a storage medium, and includes a number of instructions for causing a computer device (which can be a personal computer, a terminal or a network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of the present application.
[0219] In the above embodiments, the description of each embodiment is focused on, and the parts not described in detail in a certain embodiment can be referred to the relevant description of other embodiments.
[0220] Obviously, those skilled in the art can make various modifications and variations to the present application without departing from the spirit and scope of the present application. Thus, these modifications and variations of the present application are intended to be included within the scope of the present application, and the present application is intended to include these modifications and variations.
[0221] The above description is merely specific embodiments of the present application, but the protection scope of the present application is not limited thereto. Any skilled person in the art can easily think of various equivalent modifications or replacements within the technical scope disclosed in the present application, and these modifications or replacements should be included in the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. A gas water heater control method, characterized by, The method is applied to a gas water heater, and the method comprises: obtaining first flue parameter information and first position information of the gas water heater; sending the first flue parameter information and the first position information to a cloud platform; receiving a first running parameter correction value returned by the cloud platform, the first running parameter correction value being determined by the cloud platform according to the first flue parameter information and the first position information, the cloud platform obtaining an altitude and a temperature and humidity of an environment in which the gas water heater is located according to the first position information, and the cloud platform determining the first running parameter correction value according to the first flue parameter information, the altitude and the temperature and humidity; calculating a first actual running parameter value of the gas water heater according to the first running parameter correction value and a preset empirical formula, the preset empirical formula being used to calculate an actual running parameter value of the gas water heater; adjusting a running state of the gas water heater according to the first actual running parameter value; the first running parameter correction value comprises three groups of compensation values, each group of compensation values comprising a gas consumption compensation value, a fan speed compensation value and an adjustment rate compensation value, the first actual running parameter value comprises a gas consumption, a fan speed and an adjustment rate, and the calculating of the first actual running parameter value of the gas water heater according to the first running parameter correction value and the preset empirical formula comprises: calculating the gas consumption, the fan speed and the adjustment rate of the gas water heater according to the gas consumption compensation value, the fan speed compensation value and the adjustment rate compensation value in each group of compensation values through the preset empirical formula.
2. The method of claim 1, characterized in that, The method further comprises: if flue parameter information of the gas water heater is changed, obtaining second flue parameter information of the gas water heater; sending the second flue parameter information to the cloud platform; receiving a second running parameter correction value returned by the cloud platform, the second running parameter correction value being determined by the cloud platform according to the second flue parameter information and the first position information; calculating a second actual running parameter value of the gas water heater according to the second running parameter correction value and the preset empirical formula; adjusting a running state of the gas water heater according to the second actual running parameter value.
3. The method of claim 1, wherein, The method further comprises: if position information of the gas water heater is changed, obtaining second position information of the gas water heater; sending the second position information to the cloud platform; receiving a third running parameter correction value returned by the cloud platform, the third running parameter correction value being determined by the cloud platform according to the first flue parameter information and the second position information; calculating a third actual running parameter value of the gas water heater according to the third running parameter correction value and the preset empirical formula; adjusting a running state of the gas water heater according to the third actual running parameter value.
4. The method of claim 3, wherein, The method further comprises: if a temperature and humidity of an environment in which the gas water heater is located is changed, receiving a fourth running parameter correction value returned by the cloud platform, the fourth running parameter correction value being determined by the cloud platform according to the first flue parameter information and the second position information; According to the fourth running parameter correction value and the preset empirical formula, a fourth actual running parameter value of the gas water heater is calculated; According to the fourth actual running parameter value, the running state of the gas water heater is adjusted.
5. A gas water heater control method, characterized by, The method is applied to a cloud platform, and the method comprises: receiving first flue parameter information and first location information from a gas water heater; According to the first location information, a first altitude and a first temperature and humidity of an environment where the gas water heater is located are obtained; According to the first flue parameter information, the first altitude and the first temperature and humidity, a first running parameter correction value of the gas water heater is determined; The first running parameter correction value is sent to the gas water heater, so that the gas water heater calculates an actual running parameter value of the gas water heater according to the first running parameter correction value; The first running parameter correction value comprises a first group of compensation values, a second group of compensation values and a third group of compensation values, each group of compensation values comprising a gas consumption compensation value, a fan speed compensation value and an adjustment rate compensation value, and the first running parameter correction value of the gas water heater is determined according to the first flue parameter information, the first altitude and the first temperature and humidity, comprising: According to the first flue parameter information, a preset installation mode compensation table is searched to obtain the first group of compensation values; According to the first altitude, a preset altitude compensation table is searched to obtain the second group of compensation values; According to the first temperature and humidity, a preset temperature and humidity compensation table is searched to obtain the third group of compensation values.
6. The method of claim 5, wherein, The method further comprises: receiving second flue parameter information from the gas water heater; According to the second flue parameter information, the first altitude and the first temperature and humidity, a second running parameter correction value of the gas water heater is determined; The second running parameter correction value is sent to the gas water heater, so that the gas water heater calculates an actual running parameter value of the gas water heater according to the second running parameter correction value.
7. The method of claim 5, wherein, The method further comprises: receiving second location information from the gas water heater; According to the second location information, a second altitude and a second temperature and humidity of an environment where the gas water heater is located are obtained; According to the first flue parameter information, the second altitude and the second temperature and humidity, a third running parameter correction value of the gas water heater is determined; The third running parameter correction value is sent to the gas water heater, so that the gas water heater calculates an actual running parameter value of the gas water heater according to the third running parameter correction value.
8. The method of claim 5, wherein, The method further comprises: If the first temperature and humidity changes, according to the first location information, a third temperature and humidity of an environment where the gas water heater is located is obtained; According to the first flue parameter information, the first altitude and the third temperature and humidity, a fourth running parameter correction value of the gas water heater is determined; The fourth running parameter correction value is sent to the gas water heater, so that the gas water heater calculates an actual running parameter value of the gas water heater according to the fourth running parameter correction value.
Citation Information
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