Heating method and device, electronic equipment and storage medium
By dynamically adjusting the heating power based on the weight and temperature difference of the target being heated, the problem of overheating in traditional food warmers is solved, achieving intelligent temperature control and improving heating efficiency and user experience.
Patent Information
- Application Number
- CN202410989263.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-23
- Publication Date
- 2026-01-23
AI Technical Summary
Traditional food warming boards are prone to overheating during the heating process, causing food temperatures to exceed the user's ideal temperature. Furthermore, manually adjusting the heating power is not convenient, which affects the user experience.
Intelligent control is achieved by dynamically adjusting the heating power based on the weight of the target object and the difference between the real-time temperature and the target temperature, including the initial heating power, target heating power, maintenance power, and power adjustment in constant temperature mode.
It improves heating efficiency, avoids overheating, saves energy, and provides a smarter and more convenient temperature control experience.
Smart Images

Figure CN121386973A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present disclosure relates to the technical field of heating control, and in particular, to a heating method, device, electronic device and storage medium. BACKGROUND
[0002] In order to control the temperature within a preset temperature range during use, the conventional warming plate usually heats food according to the gear selected by a user during heating, which is prone to over-heating and makes the food temperature higher than the ideal temperature of the user. In order to adjust the heating power, the user needs to manually adjust, which affects the user experience. SUMMARY
[0003] In order to solve the technical problems of over-heating caused by using constant heating power and inconvenient manual adjustment of power, the present disclosure provides a technical solution of a heating method, device, electronic device and storage medium.
[0004] In a first aspect, an embodiment of the present disclosure provides a heating method applied to a heating device, and the method comprises:
[0005] determining an initial heating power according to a target weight of a target to be heated;
[0006] obtaining a temperature difference between a real-time temperature and a target temperature of the target to be heated;
[0007] in a case where the heating device is in a first mode, determining a target heating power according to the temperature difference and the initial heating power;
[0008] heating the target to be heated to the target temperature based on the target heating power. In the above solution, the method further comprises:
[0009] determining an initial maintenance power according to a target weight of a target to be heated;
[0010] in a case where the heating device is in a second mode, obtaining a first time length, the first time length indicating a time length for reaching the temperature difference;
[0011] determining a target maintenance power according to the first time length and the initial maintenance power;
[0012] maintaining the target to be heated at the target temperature based on the target maintenance power.
[0013] In the above solution, in the case where the heating device is in the first mode, the target heating power is determined according to the temperature difference and the initial heating power, which comprises:
[0014] In a case where the heating device is in the first mode, a heating coefficient is determined according to the temperature difference value, the heating coefficient being proportional to the temperature difference value;
[0015] A target heating power is determined according to the heating coefficient and the initial heating power.
[0016] In the above solution, the first duration is obtained in a case where the heating device is in the second mode, including:
[0017] In the case where the heating device is in the second mode, if the temperature difference value reaches a preset difference value, the first duration is obtained;
[0018] The target maintenance power is determined according to the first duration and the initial maintenance power, including:
[0019] A regulation coefficient is determined according to the first duration;
[0020] The target maintenance power is determined based on the regulation coefficient and the initial maintenance power.
[0021] In the above solution, the preset difference value includes a first difference value, the first difference value being a difference value between the target temperature and a first temperature, the first temperature being greater than the target temperature;
[0022] In a case where the preset difference value is the first difference value, the regulation coefficient is proportional to the first duration.
[0023] In the above solution, the preset difference value further includes a second difference value, the second difference value being a difference value between the target temperature and a second temperature, the second temperature being less than the target temperature;
[0024] In a case where the preset difference value is the second difference value, the regulation coefficient is inversely proportional to the first duration.
[0025] In the above solution, the method further includes:
[0026] In a case where the heating device is in the first mode, if the real-time temperature reaches the target temperature, the first mode is switched to the second mode.
[0027] In a second aspect, the embodiments of the present disclosure further provide a heating device, applied to a heating device, the device including:
[0028] A first determination module is configured to determine an initial heating power according to a target weight of a target to be heated;
[0029] A first acquisition module is configured to obtain a temperature difference value between a real-time temperature and a target temperature of the target to be heated;
[0030] a second determining module, configured to determine a target heating power according to the temperature difference and the initial heating power when the heating device is in the first mode;
[0031] a heating module, configured to heat the target to be heated to the target temperature based on the target heating power.
[0032] In a third aspect, the embodiments of the present disclosure further provide an electronic device, comprising a processing device and a memory, the memory storing at least one instruction or at least one program, the at least one instruction or the at least one program being loaded and executed by the processing device to implement the heating method according to any one of the above.
[0033] In a fourth aspect, the embodiments of the present disclosure further provide a computer readable storage medium, the readable storage medium storing an executable program, wherein the executable program is executed by a processor to implement the heating method according to any one of the above.
[0034] The present disclosure has the following beneficial effects:
[0035] After determining the initial heating power according to the weight of the target to be heated, the heating power is adjusted based on the temperature difference between the real-time temperature of the target to be heated and the target temperature until the target to be heated reaches the target temperature, which realizes dynamic adjustment of the heating power, improves the heating efficiency, and saves energy while avoiding over-heating of the target to be heated.
[0036] It should be understood that the above general description and the following detailed description are only exemplary and explanatory, but not limiting the present disclosure.
[0037] Other features and aspects of the present disclosure will become apparent from the following detailed description of exemplary embodiments with reference to the drawings. BRIEF DESCRIPTION OF DRAWINGS
[0038] In order to more clearly illustrate the technical solutions and advantages of the embodiments of the present disclosure or the prior art, the drawings required for use in the embodiments or prior art description will be briefly introduced below. Obviously, the drawings in the following description are only some embodiments of the present disclosure, and for those skilled in the art, other drawings can also be obtained without creative labor on the basis of these drawings.
[0039] Figure 1 a flowchart showing a heating method according to an embodiment of the present disclosure;
[0040] Figure 2 a flowchart showing a method for determining a target heating power according to an embodiment of the present disclosure;
[0041] Figure 3A flowchart showing another heating method according to an embodiment of the present disclosure is shown.
[0042] Figure 4 A flowchart showing determination of target maintenance power according to an embodiment of the present disclosure is shown.
[0043] Figure 5 A block diagram of a heating device according to an embodiment of the present disclosure is shown. DETAILED DESCRIPTION
[0044] The technical solutions in the embodiments of the present disclosure will be described clearly and completely below with reference to the drawings in the embodiments of the present disclosure. Obviously, the described embodiments are only part of the embodiments of the present disclosure, rather than all the embodiments. Based on the embodiments in the present disclosure, all other embodiments obtained by those skilled in the art without creative work fall within the scope of the present disclosure.
[0045] It should be noted that the terms "first", "second", and the like in the description and claims of the present disclosure and the above-mentioned drawings are used to distinguish similar objects, and do not necessarily indicate a specific order or a chronological sequence. It should be understood that the data thus used can be interchanged under appropriate circumstances, so that the embodiments of the present disclosure described herein can be implemented in an order other than that illustrated or described herein. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion, for example, a process, method, system, product or server including a series of steps or units does not necessarily have to include those steps or units clearly listed, but can include other steps or units not clearly listed or inherent to the process, method, product or device.
[0046] Various exemplary embodiments, features and aspects of the present disclosure will be described in detail below with reference to the accompanying drawings. The same reference numbers in the drawings represent functionally the same or similar elements. Although various aspects of the embodiments are shown in the drawings, the drawings are not necessarily drawn to scale unless specifically indicated.
[0047] The word "exemplary" is used herein in the sense of being an example, illustration or instance. Any embodiment described herein as "exemplary" is not necessarily to be construed as preferred or advantageous over other embodiments.
[0048] The term "and / or", used in the present document, only describes the association relationship of the associated objects, which means that there can be three relationships, for example, A and / or B can mean that A exists alone, A and B exist together, and B exists alone. In addition, the term "at least one" in the present document means any one of a plurality of combinations or any combination of at least two of a plurality of combinations, for example, including at least one of A, B and C, which means including any one or more elements selected from the set consisting of A, B and C.
[0049] In addition, in order to better illustrate the present disclosure, numerous specific details are given in the specific embodiments below. Those skilled in the art should understand that the present disclosure can also be implemented without certain specific details. In some examples, methods, means, elements and circuits well known to those skilled in the art are not described in detail, in order to highlight the main idea of the present disclosure.
[0050] Please refer to Figure 1 , Figure 1 A flowchart of a heating method according to an embodiment of the present disclosure is shown, and the heating method of the present embodiment can be applied to a heating device; the heating device can be a warming plate, a constant temperature dining table, a constant temperature lunch box and the like, which are devices with heating and constant temperature functions. In the present embodiment, the heating device is a warming plate. As shown in Figure 1 The above heating method includes:
[0051] S101: determining an initial heating power according to a target weight of a target to be heated;
[0052] Specifically, a weighing device is arranged in the heating device, which is used to determine the target weight of the target to be heated placed on the heating device; the weighing device can be a pressure sensor, a weighing sensor or any device that can determine the weight of an object, which is not limited here.
[0053] Before the above step S101, the method further includes: obtaining a preset first mapping relationship; the first mapping relationship indicates the corresponding relationship between the target weight and the initial heating power, and the target weight is proportional to the initial heating power.
[0054] Specifically, in the step S101, the initial heating power is determined according to the target weight of the target to be heated and the first mapping relationship. For example, the greater the target weight, the greater the initial heating power; the smaller the target weight, the smaller the initial heating power.
[0055] By adjusting the initial heating power according to the weight of the object to be heated, the initial heating power is increased when the object is heavy, so that the object can be heated to the target temperature quickly, thus improving the heating rate; when the object is light, the initial heating power is reduced to avoid overheating the object and causing it to exceed the target temperature, which would affect the user experience.
[0056] S102: Obtain the temperature difference between the real-time temperature of the target to be heated and the target temperature;
[0057] For example, the target temperature can be set by the user; for example, the target temperature can also use the default value set by the heating device. The heating device is equipped with a temperature sensor, which is used to acquire the real-time temperature of the target to be heated.
[0058] In one possible embodiment, step S102 can be performed at a certain frequency, that is, the temperature difference between the real-time temperature and the target temperature is obtained once every preset time interval.
[0059] Optionally, the preset time can be any preset value such as 1 minute, 3 minutes, 10 minutes, etc.
[0060] Optionally, the preset time can be dynamically adjusted based on the external temperature, and the preset time is inversely proportional to the external temperature; for example, when the external temperature is 28 degrees, the above step S102 can be executed once every 8 minutes; for example, when the external temperature is 5 degrees, the above step S102 can be executed once every 1 minute.
[0061] S103: When the heating device is in the first mode, determine the target heating power based on the temperature difference and the initial heating power;
[0062] Specifically, the first mode is a heating mode, used to heat the target to be heated to the target temperature; in the first mode, the real-time temperature is less than or equal to the target temperature.
[0063] In an alternative embodiment, such as Figure 2 As shown, Figure 2 This diagram illustrates a process for determining a target heating power according to an embodiment of the present disclosure; step S103 includes:
[0064] S1031: When the heating device is in the first mode, a heating coefficient is determined based on the temperature difference, wherein the heating coefficient is proportional to the temperature difference;
[0065] Optionally, the heating coefficient is determined based on the temperature difference and a preset second mapping relationship, the second mapping relationship indicating a corresponding relationship between the heating coefficient and the temperature difference.
[0066] In specific implementation, the target heating power is adjusted by adjusting the heating coefficient, without manual adjustment by the user, and the target heating power is adjusted according to the temperature difference between the real-time temperature and the target temperature of the object to be heated, thereby reducing temperature fluctuation, making the heating device more intelligent, and improving user experience.
[0067] S1032: Determine a target heating power according to the heating coefficient and the initial heating power.
[0068] Specifically, the heating coefficient is denoted as A, the initial heating power is denoted as P1, and the target heating power is denoted as P2. r If P2=A*P1, then P2=A*P1. r
[0069] In this embodiment, the heating coefficient decreases as the temperature difference decreases, so that the object to be heated can be quickly heated to the target temperature in the early stage of heating, and the heating coefficient gradually decreases when the real-time temperature of the object to be heated gradually approaches the target temperature, so that the target heating power also gradually decreases, preventing the object to be heated from being overheated and exceeding the ideal temperature of the user, thereby affecting user experience.
[0070] S104: Heat the object to be heated to the target temperature based on the target heating power.
[0071] In this embodiment, after the initial heating power is determined according to the weight of the object to be heated, the heating power is adjusted based on the temperature difference between the real-time temperature and the target temperature of the object to be heated until the object to be heated reaches the target temperature. Dynamic adjustment of the heating power can not only improve the heating efficiency of heating the object to be heated to the target temperature, but also save energy while avoiding over-heating of the object to be heated.
[0072] It should be noted that after the object to be heated is heated to the target temperature, in order to maintain the object to be heated at the target temperature, the heating mode needs to be switched to a constant temperature mode. However, the traditional constant temperature mode usually stops working after the real-time temperature reaches the target temperature, and the heating mode is started again when the real-time temperature drops to a certain range. This will cause the real-time temperature of the object to be heated to fluctuate all the time, and the object to be heated cannot be constantly controlled at the ideal target temperature of the user. Therefore, to solve the problem of large temperature fluctuation and constant temperature of the object to be heated, the heating method in the second mode is disclosed in this embodiment, as shown in Figure 3
[0073] In one possible embodiment, if the real-time temperature reaches the target temperature when the heating device is in the first mode, the first mode is switched to the second mode.
[0074] In another possible embodiment, the first mode and the second mode can also be controlled by user operation. The user can trigger a mode switching command based on the mode switching button or touch key set on the heating device; the control device of the heating device responds to the mode switching command to switch the working mode of the heating device.
[0075] In this embodiment, after the heating device heats the object to be heated to the target temperature in the first mode, it automatically switches to the second mode. Figure 3 The diagram illustrates a flow chart of another heating method according to an embodiment of the present disclosure, the method further comprising:
[0076] S301: Determine the initial sustaining power based on the target weight of the target to be heated;
[0077] Before step S301 above, the method further includes: obtaining a preset third mapping relationship; the third mapping relationship indicates the correspondence between the target weight and the initial maintenance power, wherein the target weight and the initial maintenance power are proportional.
[0078] Specifically, in step S301, the initial sustaining power is determined based on the target weight of the target to be heated and the third mapping relationship. The larger the target weight, the larger the initial sustaining power; the smaller the target weight, the smaller the initial sustaining power.
[0079] In this way, when the object to be heated is heavy, the initial holding power is increased so that the temperature of the object can be maintained within the target temperature range; when the object to be heated is light, the initial holding power is reduced to avoid using too much power during the constant temperature stage, which would cause the object to be heated to be overheated and exceed the target temperature range, thus affecting the user experience.
[0080] In this embodiment, the initial sustaining power is determined based on the weight of the object to be heated. Unlike using a fixed sustaining power, the initial sustaining power can be dynamically adjusted according to the amount of the object to be heated, making the heating device more intelligent and adaptable to different situations.
[0081] S302: When the heating device is in the second mode, a first duration is obtained, the first duration indicating the time required to reach the temperature difference value;
[0082] Specifically, the second mode is a constant temperature mode, used to keep the real-time temperature of the object to be heated constant in a target temperature range, the target temperature range indicating a temperature interval with a temperature less than or equal to a first temperature and greater than or equal to a second temperature, wherein the first temperature is greater than the target temperature, and the second temperature is less than the target temperature.
[0083] Optionally, in the case that the heating device is in the second mode, the step S302 includes: acquiring the first time length if the temperature difference reaches a preset difference value.
[0084] Specifically, the preset difference value includes a first difference value, the first difference value being a difference value between the target temperature and a first temperature, the first temperature being greater than the target temperature.
[0085] Specifically, when the object to be heated is heated to the target temperature, the heating device is switched from the first mode to the second mode; when it is determined that the real-time temperature reaches the first temperature, the temperature difference reaches the first difference value, and a time length for reaching the first difference value, i.e., a time length for the real-time temperature to reach the first temperature from the target temperature, is acquired, which is the first time length.
[0086] Specifically, the preset difference value further includes a second difference value, the second difference value being a difference value between the target temperature and a second temperature, the second temperature being less than the target temperature.
[0087] Specifically, when the object to be heated is heated to the target temperature, the heating device is switched from the first mode to the second mode; when it is determined that the real-time temperature reaches the second temperature, the temperature difference reaches the second difference value, and a time length for reaching the temperature difference, i.e., a time length for the real-time temperature to reach the second temperature from the target temperature, is acquired, which is the first time length.
[0088] It should be noted that the first difference value and the second difference value can be user-defined values or default values. The first difference value can be equal to or not equal to the second difference value. For example, when the target temperature is 75 degrees, the first temperature can be 95 degrees, and the second temperature can be 60 degrees, the first difference value is 20 degrees, and the second difference value is 15 degrees, and the first difference value is not equal to the second difference value. For another example, when the target temperature is 75 degrees, the first temperature can be 90 degrees, and the second temperature can be 60 degrees, the first difference value is equal to the second difference value, and both are 15 degrees.
[0089] Therefore, by setting the preset difference value in the case that the real-time temperature is higher than the target temperature and the case that the real-time temperature is lower than the target temperature respectively, a single temperature limit value is not used, the different acceptance degrees of the user to the two cases that the temperature of the object to be heated is too high and too low are solved, the constant temperature mode is more humanized, and the user experience is improved.
[0090] S303: determining a target maintenance power according to the first time length and the initial maintenance power;
[0091] In an optional embodiment, Figure 4 A flowchart for determining a target maintenance power according to an embodiment of the present disclosure is shown. As Figure 4 As shown, the step S303 includes:
[0092] S3031: determining an adjustment coefficient according to the first time length;
[0093] Specifically, the adjustment coefficient is determined based on the first time length and a preset fourth mapping relationship, and the fourth mapping relationship indicates a corresponding relationship between the adjustment coefficient and the first time length.
[0094] In a possible embodiment, in the case that the preset difference value is a first difference value, the adjustment coefficient is greater than 0 and less than 1, and the adjustment coefficient is directly proportional to the first time length.
[0095] For example, when the preset difference value is the first difference value, it indicates that the real-time temperature rises to the first temperature, at this time, the maintenance power needs to be reduced to cool the object to be heated, so the adjustment coefficient is a value greater than 0 and less than 1, and the longer the first time length, the closer the current maintenance power to the target maintenance power, and the greater the adjustment coefficient.
[0096] In another possible embodiment, in the case that the preset difference value is a second difference value, the adjustment coefficient is a value greater than 1, and the adjustment coefficient is inversely proportional to the first time length.
[0097] For example, when the preset difference value is the second difference value, it indicates that the real-time temperature drops to the second temperature, at this time, the maintenance power needs to be increased to heat the object to be heated, so the adjustment coefficient is a value greater than 1, and the longer the first time length, the closer the current maintenance power to the target maintenance power, and the smaller the adjustment coefficient.
[0098] S3032: determining the target maintenance power based on the adjustment coefficient and the initial maintenance power.
[0099] Specifically, the maintenance coefficient is represented by F, the initial maintenance power is represented by P2, and the target maintenance power is represented by P b , then Pb = F * P2.
[0100] S304: based on the target maintenance power, keeping the target to be heated at the target temperature.
[0101] In this embodiment, after determining the initial maintenance power according to the weight of the target to be heated, when the temperature difference between the real-time temperature of the target to be heated and the target temperature reaches a preset difference, the target maintenance power is adjusted according to the time length of reaching the temperature difference, and the target to be heated is kept at the target temperature. In this way, the heating power is dynamically adjusted according to the time of reaching the temperature difference, the temperature of the target to be heated is kept constant in the target temperature range, and the temperature fluctuation of the target to be heated is slowed down.
[0102] In the following, the heating method of the embodiment of the application is described with a specific example:
[0103] Step 1: determine the current working mode of the warming plate;
[0104] Specifically, in the case of the working mode being the first mode, i.e. the heating mode, step 2 is executed; in the case of the working mode being the second mode, i.e. the constant temperature mode, step 3 is executed.
[0105] Step 2: heat the target food to the target temperature.
[0106] Step 2.1: obtain the target weight of the target food and the first mapping relationship, and determine the initial heating power P1.
[0107] Specifically, the first mapping relationship indicates the corresponding relationship between the target weight and the initial heating power, and the target weight is proportional to the initial heating power. The greater the target weight, the greater the initial heating power; the smaller the target weight, the smaller the initial heating power.
[0108] Step 2.2: determine the temperature difference according to the real-time temperature and the target temperature of the target food.
[0109] Specifically, the target temperature can be set by the user, and the target temperature can also use the default value set by the heating device.
[0110] Step 2.3: determine the heating coefficient A according to the temperature difference and the preset second mapping relationship.
[0111] Specifically, the heating coefficient is determined based on the temperature difference and the preset second mapping relationship, and the second mapping relationship indicates the corresponding relationship between the heating coefficient and the temperature difference, and the heating coefficient is proportional to the temperature difference.
[0112] Step 2.4: determining a target heating power P according to a heating coefficient and an initial heating power r ;
[0113] Specifically, the target heating power is denoted as P r , then P r =A*P1.
[0114] Step 2.5: heating the object to be heated based on the target heating power;
[0115] Step 2.6: repeating steps 2.2 to 2.5 according to a preset frequency until the food to be heated reaches a target temperature, at which time the working mode is switched to a constant temperature mode, and step 3 is performed;
[0116] Specifically, the preset frequency is 10 minutes / time, and can also be 5 minutes / time. The preset frequency can be a pre-set default value or can be dynamically adjusted based on the external temperature.
[0117] Step 3: constant temperature heating of the food to be heated within a target temperature range.
[0118] Specifically, the target temperature range indicates a temperature interval in which the temperature is less than or equal to a first temperature and greater than or equal to a second temperature, wherein the first temperature is greater than the target temperature and the second temperature is less than the target temperature.
[0119] Step 3.1: determining an initial maintenance power P2 according to a target weight of the food to be heated and a preset third mapping relationship;
[0120] Specifically, the third mapping relationship indicates a corresponding relationship between the target weight and the initial maintenance power, and the target weight and the initial maintenance power are directly proportional. The greater the target weight, the greater the initial maintenance power. The smaller the target weight, the smaller the initial maintenance power.
[0121] Step 3.2: determining a temperature difference between a real-time temperature of the food to be heated and a target temperature, and determining a first time length when the temperature difference reaches a preset difference value, the first time length indicating the time taken to reach the temperature difference.
[0122] Specifically, the preset difference value includes a first difference value, which is the difference between the target temperature and a first temperature.
[0123] Specifically, when the real-time temperature rises to the first temperature, the temperature difference also reaches the first difference value, at which time the time taken to reach the first difference value is determined.
[0124] Specifically, the preset difference further includes a second difference, the second difference being a difference between the target temperature and a second temperature.
[0125] Specifically, when the real-time temperature drops to the second temperature, the temperature difference also reaches the second difference, and a time for reaching the second difference is determined.
[0126] Step 3.3: determining an adjustment coefficient F according to the first time length and a fourth mapping relationship;
[0127] Specifically, the fourth mapping relationship indicates a corresponding relationship between the adjustment coefficient F and the first time length; in a case where the preset difference is a first difference, the adjustment coefficient F is greater than 0 and less than 1, and the adjustment coefficient F is directly proportional to the first time length; in a case where the preset difference is a second difference, the adjustment coefficient F is greater than 0 and less than 1, and the adjustment coefficient F is inversely proportional to the first time length.
[0128] Step 3.4: determining a target maintenance power P according to the adjustment power F and the initial maintenance power P2. b ;
[0129] Specifically, the target maintenance power is represented by P b , and P b =F*P2.
[0130] Step 3.5: maintaining the food to be heated at a constant temperature based on the target maintenance power.
[0131] Specifically, the food to be heated is maintained at a constant temperature by the warming plate based on a target maintenance temperature, and if the real-time temperature of the food to be heated reaches the target temperature, step 3.2 is performed, so as to achieve the effect of maintaining the food to be heated at a target temperature range.
[0132] In this way, the difference between the current maintenance power and the target maintenance power is determined according to the time for reaching the temperature difference, the maintenance power is dynamically adjusted, the temperature of the food to be heated is maintained at a target temperature range, and the temperature fluctuation of the food to be heated is slowed down.
[0133] Please refer to Figure 5 , which shows a block diagram of a heating device provided by an embodiment of the present disclosure. The heating device has functions for implementing the above method examples, and the functions can be implemented by hardware or corresponding software executed by hardware. The heating device can include:
[0134] A first determining module 510 is configured to determine an initial heating power according to a target weight of a target to be heated.
[0135] The first obtaining module 520 is configured to obtain a temperature difference between a real-time temperature of the target to be heated and a target temperature.
[0136] The second determining module 530 is configured to, when the heating device is in the first mode, determine a target heating power according to the temperature difference and the initial heating power.
[0137] The heating module 540 is configured to heat the target to be heated to the target temperature based on the target heating power.
[0138] The apparatus further includes:
[0139] The third determining module 550 is configured to determine an initial maintaining power according to a target weight of the target to be heated.
[0140] The second obtaining module 560 is configured to, when the heating device is in the second mode, obtain a first time length, the first time length indicating a time length for reaching the temperature difference.
[0141] The fourth determining module 570 is configured to determine a target maintaining power according to the first time length and the initial maintaining power.
[0142] The constant temperature module 580 is configured to keep the target to be heated at the target temperature based on the target maintaining power.
[0143] In an optional implementation, the second determining module 530 is further configured to:
[0144] When the heating device is in the first mode, determine a heating coefficient according to the temperature difference, the heating coefficient being proportional to the temperature difference.
[0145] Determine a target heating power according to the heating coefficient and the initial heating power.
[0146] In an optional implementation, the second obtaining module 560 is further configured to:
[0147] When the heating device is in the second mode, obtain the first time length if the temperature difference reaches a preset difference value.
[0148] The fourth determining module 570 is further configured to:
[0149] Determine an adjustment coefficient according to the first time length.
[0150] Determine the target maintaining power based on the adjustment coefficient and the initial maintaining power.
[0151] In an optional implementation, the apparatus further includes:
[0152] The preset difference includes a first difference, the first difference being a difference between the target temperature and a first temperature, the first temperature being greater than the target temperature.
[0153] In a case where the preset difference is the first difference, the adjustment coefficient and the first time length are in direct proportion.
[0154] In an optional embodiment, the device further includes:
[0155] The preset difference further includes a second difference, the second difference being a difference between the target temperature and a second temperature, the second temperature being less than the target temperature.
[0156] In a case where the preset difference is the second difference, the adjustment coefficient and the first time length are in inverse proportion.
[0157] In an optional embodiment, the device further includes:
[0158] The switching module 590 is configured to, in a case where the heating device is in the first mode, switch the first mode to a second mode if the real-time temperature reaches the target temperature.
[0159] The present disclosure also provides another electronic device, which includes a processor and a memory, the memory storing at least one instruction or at least one program, the at least one instruction or at least one program being loaded and executed by the processor to implement the heating method as described in any of the above.
[0160] The present disclosure also provides a computer-readable storage medium, the storage medium storing at least one instruction or at least one program, the at least one instruction or at least one program being loaded and executed by a processor to implement the heating method as described in any of the above.
[0161] In some embodiments, the computer device (not shown) can include a processor, a memory and a network interface connected by a system bus. The processor of the computer device is configured to provide computing and control capabilities. The memory of the computer device includes a non-volatile storage medium and an internal memory. The non-volatile storage medium stores an operating system, a computer program and a database. The internal memory provides an environment for the operating system and the computer program in the non-volatile storage medium to run. The network interface of the computer device is configured to communicate with external terminals through network connection. The computer program is executed by the processor to implement a heating method.
[0162] It should be noted that the above-mentioned sequence of the embodiments of the present disclosure is only for description, and does not represent the advantages and disadvantages of the embodiments. And the above describes the specific embodiments of the present disclosure. Other embodiments are within the scope of the appended claims. In some cases, the actions or steps recited in the claims can be performed in a different order than the order in which they are recited and still achieve desirable results. In addition, the processes depicted in the figures do not necessarily require the particular order shown, or sequential order, to achieve the desired results. In some implementations, multitasking and parallel processing can be advantageous or possible.
[0163] Each of the embodiments in the present specification is described in a progressive manner, and the same or similar parts between the embodiments can be referred to each other. Each embodiment focuses on the difference from other embodiments. In particular, the device and server embodiments are described simply because they are basically similar to the method embodiments, and the relevant parts can be referred to the part of the method embodiments.
[0164] A person of ordinary skill in the art can understand that all or part of the steps of the above-mentioned embodiments can be completed by hardware, or by program instructing relevant hardware, and the program can be stored in a computer readable storage medium, which can be read-only memory, magnetic disk or optical disk, etc.
[0165] The above is the preferred embodiment of the present disclosure. It should be noted that for those of ordinary skill in the art, without departing from the principles of the present disclosure, a number of improvements and refinements can be made, which are also considered within the protection scope of the present disclosure.
[0166] The above is only a specific embodiment of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any person skilled in the art can easily think of changes or replacements within the technical range disclosed by the present disclosure, which should be covered within the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure should be subject to the protection scope of the claims.
Claims
1. A heating method, characterized by, The method is applied to a heating device, and the method comprises: determining an initial heating power according to a target weight of a target to be heated; obtaining a temperature difference between a real-time temperature and a target temperature of the target to be heated; determining a target heating power according to the temperature difference and the initial heating power when the heating device is in a first mode; heating the target to be heated to the target temperature based on the target heating power.
2. The method of claim 1, wherein, The method further comprises: determining an initial maintaining power according to a target weight of a target to be heated; obtaining a first time length when the heating device is in a second mode, the first time length indicating a time length for reaching the temperature difference; determining a target maintaining power according to the first time length and the initial maintaining power; maintaining the target to be heated at the target temperature based on the target maintaining power.
3. The method of claim 1, wherein, The determining of the target heating power according to the temperature difference and the initial heating power when the heating device is in the first mode comprises: determining a heating coefficient according to the temperature difference when the heating device is in the first mode, the heating coefficient being proportional to the temperature difference; determining the target heating power according to the heating coefficient and the initial heating power.
4. The method of claim 2, wherein, The obtaining of the first time length when the heating device is in the second mode comprises: obtaining the first time length when the heating device is in the second mode if the temperature difference reaches a preset difference value. The determining of the target maintaining power according to the first time length and the initial maintaining power comprises: determining an adjustment coefficient according to the first time length; determining the target maintaining power based on the adjustment coefficient and the initial maintaining power.
5. The method of claim 4, wherein, The preset difference value comprises a first difference value, the first difference value being a difference between the target temperature and a first temperature, the first temperature being greater than the target temperature; the adjustment coefficient is proportional to the first time length when the preset difference value is the first difference value.
6. The method of claim 5, wherein, The preset difference value further comprises a second difference value, the second difference value being a difference between the target temperature and a second temperature, the second temperature being less than the target temperature; the adjustment coefficient is inversely proportional to the first time length when the preset difference value is the second difference value.
7. The method according to claim 1 or 2, characterized in that, The method further comprises: switching the first mode to a second mode if the real-time temperature reaches the target temperature when the heating device is in the first mode.
8. A heating device, characterized by The device is applied to a heating device, and the device comprises: a first determining module configured to determine an initial heating power according to a target weight of a target to be heated; a first obtaining module configured to obtain a temperature difference between a real-time temperature and a target temperature of the target to be heated; a second determining module configured to determine a target heating power according to the temperature difference and the initial heating power when the heating device is in a first mode; a heating module configured to heat the target to be heated to the target temperature based on the target heating power.
9. An electronic device, comprising: The device comprises a processor and a memory having stored therein at least one instruction or at least one program, which is loaded and executed by the processor to implement the heating method as claimed in any one of claims 1 to 7.
10. A computer-readable storage medium, characterized in that, The storage medium has stored therein at least one instruction or at least one program, which is loaded and executed by a processing apparatus to implement the heating method as claimed in any one of claims 1 to 7.