An integrated stove heat dissipation control method and device, an integrated stove, and a storage medium
By installing a cooling fan in the integrated stove and adjusting its speed according to the temperature, the problem of poor heat dissipation at high temperatures in the integrated stove has been solved, thereby improving the safety and functionality of the internal components.
Patent Information
- Application Number
- CN202210064514.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-01-20
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2042-01-20
AI Technical Summary
Existing integrated cooktops have poor heat dissipation when operating at high temperatures, which can damage internal parts and pose safety hazards, while also increasing the cost of parts and limiting functionality.
By installing a cooling fan between the cooktop and the steam oven in the integrated stove, the fan speed is adjusted according to the internal ambient temperature to achieve adaptive heat dissipation.
It effectively reduces internal temperature, improves component reliability, avoids heat accumulation, ensures the normal function of stoves and steam ovens, and reduces safety hazards.
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Figure CN114383158B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The embodiment of the present application relates to the technical field of integrated cooker, and particularly relates to an integrated cooker heat dissipation control method and device, an integrated cooker and a storage medium. BACKGROUND
[0002] The integrated cooker is a kind of kitchen appliance integrating the functions of oil extractor, gas stove, steaming oven, disinfection cabinet and storage cabinet, and has the advantages of space saving, good oil extraction effect, energy saving, low consumption, environmental protection and the like.
[0003] When the gas stove part of the integrated cooker is ignited and burns, heat is transmitted to the lower machine through the panel glass of the integrated cooker, so that the ambient temperature around the lower machine is increased. Especially for the integrated cooker with the steaming and baking function, when the steaming and baking function is also started, the ambient temperature around the internal parts (such as the electric control board and connecting wire) of the integrated cooker is at a very high temperature (about 80 DEG C or above), which greatly affects the function and reliability of the internal parts, and even causes safety hazards.
[0004] However, the current integrated cookers on the market can only dissipate heat naturally, use high-temperature-resistant parts inside the integrated cooker, or limit the maximum working temperature of the steaming oven, which not only has poor heat dissipation effect and easily causes damage to the internal parts, but also increases the cost of the parts and limits the function. SUMMARY
[0005] The present application provides an integrated cooker heat dissipation control method and device, an integrated cooker and a storage medium, which can reduce the ambient temperature of the internal parts under the condition of ensuring high-temperature working of the integrated cooker, and improve the reliability thereof.
[0006] In a first aspect, the embodiment of the present application provides an integrated cooker heat dissipation control method, a heat dissipation fan is arranged between the gas stove part and the steaming oven of the integrated cooker, and the heat dissipation control method comprises the following steps.
[0007] Obtaining the current internal ambient temperature of the integrated cooker;
[0008] According to the current internal ambient temperature of the integrated cooker, the rotating speed of the heat dissipation fan is regulated, wherein the rotating speed of the heat dissipation fan is positively correlated with the current internal ambient temperature of the integrated cooker.
[0009] Optionally, according to the current internal ambient temperature of the integrated cooker, the rotating speed of the heat dissipation fan is regulated, comprising the following steps.
[0010] Judging the preset temperature interval in which the current internal ambient temperature of the integrated cooker is located;
[0011] According to the preset temperature interval in which the current internal ambient temperature of the integrated cooker is located, the heat dissipation fan is regulated to work at the rotating speed gear corresponding to the preset temperature interval.
[0012] Optionally, the current internal environment temperature of the integrated cooker is acquired, comprising:
[0013] The cavity temperature of the steam oven in the integrated cooker is acquired.
[0014] The speed of the heat dissipation fan is regulated according to the current internal environment temperature of the integrated cooker, comprising:
[0015] The speed of the heat dissipation fan is regulated according to the cavity temperature of the steam oven in the integrated cooker; wherein the speed of the heat dissipation fan is positively correlated with the cavity temperature of the steam oven in the integrated cooker.
[0016] Optionally, before the speed of the heat dissipation fan is regulated according to the current internal environment temperature of the integrated cooker, comprising:
[0017] It is judged whether the current internal environment temperature of the integrated cooker is greater than a first temperature threshold.
[0018] When the current internal environment temperature of the integrated cooker is greater than the first temperature threshold, the heat dissipation fan is started.
[0019] Optionally, after it is judged whether the current internal environment temperature of the integrated cooker is greater than a first temperature threshold, further comprising:
[0020] When the current internal environment temperature of the integrated cooker is less than or equal to the first temperature threshold, the internal environment temperature of the integrated cooker is continuously acquired.
[0021] Optionally, the speed of the heat dissipation fan is regulated according to the current internal environment temperature of the integrated cooker, comprising:
[0022] It is judged whether the current internal environment temperature of the integrated cooker is less than the first temperature threshold.
[0023] When the current internal environment temperature of the integrated cooker is greater than or equal to the first temperature threshold, the speed of the heat dissipation fan is regulated according to the current internal environment temperature of the integrated cooker.
[0024] Optionally, the speed of the heat dissipation fan is regulated according to the current internal environment temperature of the integrated cooker, further comprising:
[0025] When the current internal environment temperature of the integrated cooker is less than the first temperature threshold, the heat dissipation fan is turned off.
[0026] In a second aspect, the embodiment of the present application further provides a heat dissipation control device of an integrated cooker, comprising:
[0027] An information acquisition module is configured to acquire the current internal environment temperature of the integrated cooker.
[0028] The control module is configured to control the rotating speed of the heat dissipation fan according to the current internal environment temperature of the integrated cooker, wherein the rotating speed of the heat dissipation fan is positively correlated with the current internal environment temperature of the integrated cooker.
[0029] In a third aspect, an embodiment of the present application further provides an integrated cooker, comprising:
[0030] one or more processors;
[0031] a memory configured to store one or more programs;
[0032] a temperature sensor configured to collect the current internal environment temperature of the integrated cooker;
[0033] When the one or more programs are executed by the one or more processors, the one or more processors are caused to implement the integrated cooker heat dissipation control method according to any one of the first aspect.
[0034] In a fourth aspect, an embodiment of the present application further provides a storage medium, which stores computer instructions, and the computer instructions are configured to cause a processor to implement the integrated cooker heat dissipation control method according to any one of the first aspect when executed.
[0035] In the embodiment, the current internal environment temperature of the integrated cooker is first acquired, and then the rotating speed of the heat dissipation fan is controlled according to the current internal environment temperature of the integrated cooker, wherein the rotating speed of the heat dissipation fan is positively correlated with the current internal environment temperature of the integrated cooker, so that the heat dissipation fan can adapt to the current heat production of the integrated cooker to provide more appropriate heat dissipation capacity, and the problem of damage of electrical devices caused by excessively high internal temperature of the integrated cooker is solved. The integrated cooker can not only dissipate heat to avoid heat accumulation, effectively reduce the temperature inside the cavity, improve the function and reliability of internal components, and reduce safety hazards, but also can ensure the normal function of the cooker and the steaming oven, and meet the use requirements of users. BRIEF DESCRIPTION OF DRAWINGS
[0036] Other characteristics, objects and advantages of the present application will become more apparent from the following detailed description of the non-restrictive embodiments, made with reference to the accompanying drawings:
[0037] Figure 1 is a flowchart of an integrated cooker heat dissipation control method provided by an embodiment of the present application;
[0038] Figure 2 is a structural schematic diagram of an integrated cooker provided by an embodiment of the present application;
[0039] Figure 3 is a flowchart of another integrated cooker heat dissipation control method provided by an embodiment of the present application;
[0040] Figure 4A flow chart of a heat dissipation control method of an integrated cooker provided in Embodiment Two of the present application;
[0041] Figure 5 is a structural schematic diagram of an integrated cooker provided in Embodiment Two of the present application;
[0042] Figure 6 A flow chart of a heat dissipation control method of an integrated cooker provided in Embodiment Three of the present application;
[0043] Figure 7 is a structural schematic diagram of a heat dissipation control device of an integrated cooker provided in Embodiment Four of the present application;
[0044] Figure 8 is a structural schematic diagram of an integrated cooker provided in Embodiment Five of the present application. DETAILED DESCRIPTION
[0045] The present application will be further described below in conjunction with the accompanying drawings and embodiments. It can be understood that the specific embodiments described herein are only used to explain the present application, but not to limit the present application. In addition, it should be noted that, for the convenience of description, only the parts related to the present application are shown in the drawings, but not all the structures.
[0046] Embodiment One
[0047] Figure 1 is a flow chart of a heat dissipation control method of an integrated cooker provided in Embodiment One of the present application, Figure 2 is a structural schematic diagram of an integrated cooker provided in Embodiment One of the present application, first referring to Figure 2 , the present application is applicable to an integrated cooker, and the structure of the integrated cooker will be briefly introduced below. The integrated cooker comprises an integrated cooker body 1, a steaming and baking oven 2, a heat dissipation fan 3, a main control panel 4 and a cavity temperature sensor 5. The integrated cooker body 1 comprises a cooker part 11, a heat dissipation air duct 12, a smoke machine cavity 13, a smoke exhaust air duct 14 and a smoke machine display control panel 15. The steaming and baking oven 2 comprises a steaming and baking oven display control panel 21. The cooker part 11 comprises a pulse igniter 110. The steaming and baking oven 2 is installed inside the integrated cooker body 1. The heat dissipation fan 3 is arranged between the cooker part 11 and the steaming and baking oven 2. The smoke machine cavity 13 and the smoke exhaust air duct 14 are multiplexed as the heat dissipation air duct 12. The heat dissipation control method of the integrated cooker provided in the present embodiment can be executed by a heat dissipation control device. The heat dissipation control device can be realized in the form of hardware and / or software. The heat dissipation control device can be configured in the main control panel 4. As shown in the figure, the heat dissipation control method of the integrated cooker comprises the following steps. Figure 1
[0048] S110, acquiring the current internal environment temperature of the integrated cooker;
[0049] This step is essentially provided by the cavity temperature sensor 5 arranged in the integrated cooker, which can directly monitor the internal environment temperature of the integrated cooker, so that when the internal temperature is too high due to heat accumulation, feedback adjustment can be directly performed.
[0050] In the specific implementation process, this step can be replaced by judging the preset temperature interval in which the current internal environment temperature of the integrated cooker is located. In other words, the internal environment temperature can be divided into a plurality of preset temperature intervals, and the current internal environment temperature of the integrated cooker is judged to be located in the preset temperature interval. Illustratively, every 5℃ can be set as a preset temperature interval, and when the current internal environment temperature of the integrated cooker is 42℃, it can be determined that it is located in the preset temperature interval of 40-45℃.
[0051] S120, according to the current internal environment temperature of the integrated cooker, the speed of the heat dissipation fan is regulated; wherein the speed of the heat dissipation fan is positively correlated with the current internal environment temperature of the integrated cooker.
[0052] This step is to provide a corresponding heat dissipation fan speed according to the current internal environment temperature according to the preset adjustment relationship, so as to ensure adaptive heat dissipation. Wherein, the speed of the heat dissipation fan is positively correlated with the current internal environment temperature of the integrated cooker, which means that the higher the internal environment temperature, the higher the speed required by the heat dissipation fan. On the contrary, when the internal environment temperature is lower, the heat dissipation fan only needs to be controlled to run at a lower speed. Thus, the internal environment of the integrated cooker at high temperature can be circulated with the outside air in time, so as to reduce the internal temperature and realize effective and timely heat dissipation.
[0053] Similarly, in the specific implementation process, a corresponding speed gear can be set for each preset temperature interval, and when the current internal environment temperature of the integrated cooker is determined to be located in the preset temperature interval, the heat dissipation fan is controlled to work according to the corresponding speed gear. Illustratively, when the internal environment temperature is in the preset temperature interval of 40-45℃, according to the preset corresponding relationship, the speed gear corresponding to the preset temperature interval of 40-45℃ is X revolutions / second, and the heat dissipation fan is controlled to work at X revolutions / second. It should be noted that in order to achieve effective and timely heat dissipation effect, the length of each preset temperature interval and the speed value corresponding to each preset temperature interval can be obtained through multiple tests, which is not limited here.
[0054] In the embodiment, the current internal environment temperature of the integrated cooker is first acquired, and then the rotating speed of the heat dissipation fan is regulated according to the current internal environment temperature of the integrated cooker, wherein the rotating speed of the heat dissipation fan is positively correlated with the current internal environment temperature of the integrated cooker, so that the heat dissipation fan can adapt to the current heat production of the integrated cooker to provide more appropriate heat dissipation capacity, thereby solving the problem of damage of electrical devices caused by the excessively high internal temperature of the integrated cooker, and not only can the internal cavity of the integrated cooker be cooled to avoid heat accumulation, effectively reduce the temperature inside the cavity, improve the function and reliability of internal components, and reduce safety hazards, but also can ensure the normal function of the cooktop and the steaming oven, and meet the use demand of the user.
[0055] Figure 3 is a flowchart of another heat dissipation control method of an integrated cooker provided by the embodiment one of the present application, referring to Figure 3 , the heat dissipation control method comprises the following steps:
[0056] S310, acquiring the current internal environment temperature of the integrated cooker;
[0057] S320, judging whether the current internal environment temperature of the integrated cooker is greater than a first temperature threshold value;
[0058] S330, starting the heat dissipation fan when the current internal environment temperature of the integrated cooker is greater than the first temperature threshold value;
[0059] S340, regulating the rotating speed of the heat dissipation fan according to the current internal environment temperature of the integrated cooker, wherein the rotating speed of the heat dissipation fan is positively correlated with the current internal environment temperature of the integrated cooker.
[0060] In the steps S320 and S330, the first temperature threshold value is the minimum temperature value that needs to be cooled, and it can be understood that the heat dissipation fan needs to be started to cool when the actual internal environment temperature exceeds the minimum temperature value that needs to be cooled. Therefore, the step S320 is essentially the setting of the starting condition of the heat dissipation fan, and the setting of the starting condition can also make the heat dissipation fan realize effective heat dissipation through air convection when the temperature of the integrated cooker is too high and needs to be cooled, and avoid ineffective cooling of the heat dissipation fan when the temperature is low.
[0061] Further, the step parallel to the step S330 is: S331, continuously acquiring the internal environment temperature of the integrated cooker when the current internal environment temperature of the integrated cooker is less than or equal to the first temperature threshold value.
[0062] In addition, in the process of executing the step S340, considering that real-time regulation is needed, the step S340 can be specifically set as:
[0063] S341, judging whether the current internal environment temperature of the integrated cooker is less than the first temperature threshold value.
[0064] S342, when the current internal environment temperature of the integrated cooker is greater than or equal to the first temperature threshold, adjusting the rotating speed of the heat dissipation fan according to the current internal environment temperature of the integrated cooker.
[0065] S343, when the current internal environment temperature of the integrated cooker is less than the first temperature threshold, turning off the heat dissipation fan.
[0066] Thus, the adjustment process of the heat dissipation fan also controls the shutdown of the integrated cooker by taking the first temperature threshold as the comparison condition, so that the heat dissipation fan is prevented from dissipating heat at a low temperature, and the waste of electric energy resources is avoided.
[0067] Embodiment Two
[0068] Figure 4 A flowchart of an integrated cooker heat dissipation control method provided by Embodiment Two of the present application, Figure 5 is a structural schematic diagram of an integrated cooker provided by Embodiment Two of the present application. First refer to Figure 5 The difference between the above embodiment and this embodiment is that the steam oven 2 in this embodiment is provided with a steam oven temperature sensor 22, and the integrated cooker is not provided with a cavity temperature sensor. Based on the structure of the integrated cooker, the replacement scheme of the above embodiment is introduced as follows. As shown in the figure, the method can specifically include: Figure 4
[0069] S410, acquiring the cavity temperature of the steam oven in the integrated cooker;
[0070] This process is essentially a process in which the steam oven temperature sensor 22 collects the cavity temperature of the steam oven. In this embodiment, the cavity temperature sensor is replaced by the steam oven temperature sensor 22, which can save costs. At the same time, the cavity temperature of the steam oven can to some extent be used as the cavity temperature of the integrated cooker to judge and trigger whether the integrated cooker needs to dissipate heat.
[0071] S420, adjusting the rotating speed of the heat dissipation fan according to the cavity temperature of the steam oven in the integrated cooker; wherein the rotating speed of the heat dissipation fan is positively correlated with the cavity temperature of the steam oven in the integrated cooker.
[0072] This step is essentially to adjust the rotating speed of the heat dissipation fan according to the cavity temperature of the steam oven. When the cavity temperature of the steam oven is high, the rotating speed of the heat dissipation fan is increased accordingly; when the cavity temperature of the steam oven is low, the rotating speed of the heat dissipation fan is decreased accordingly. Thus, the appropriate heat dissipation power can be provided according to the current internal temperature of the integrated cooker, the waste of electric energy resources is avoided, and effective heat dissipation is achieved. In this embodiment, the cavity temperature of the steam oven is used to replace the internal temperature of the integrated cooker for heat dissipation adjustment. The specific implementation and working process can refer to Embodiment One described above, and will not be described here.
[0073] Embodiment Three
[0074] Figure 6 is a flow chart of an integrated cooker heat dissipation control method provided by Embodiment Three of the present application, referring to Figure 6 , in this embodiment, the integrated cooker can refer to the structural diagram of Embodiment One of the present application Figure 2 , and the specific working process can include the following steps:
[0075] S610, the device is started, and the temperature sensor is started;
[0076] S620, the temperature sensor acquires the environment temperature of the working internal components in real time, and transmits the environment temperature to the main control panel;
[0077] S630, the main control panel judges whether the temperature is greater than the temperature threshold T1;
[0078] S640, if the temperature is greater than T1, the heat dissipation fan is started; if the temperature is not greater than T1, no operation is made, and the monitoring is continued; after the heat dissipation fan is started, the main control panel adjusts the fan speed according to the temperature detected by the temperature sensor in real time, for example, when the environment temperature is T1-T2, the corresponding fan speed is 1 gear, when the environment temperature is T2-T3, the corresponding fan speed is 2 gears, and so on, when the environment temperature is TN-1-TN, the corresponding fan speed is N gears. The data corresponding relationship between the fan speed gear and the temperature threshold can be obtained through multiple tests, and is preset when the product is shipped.
[0079] S650, the main control panel judges whether the temperature is less than the temperature threshold T1;
[0080] S660, if the temperature is less than T1, the heat dissipation fan is turned off, and if the temperature is greater than T1, the fan speed is continuously adjusted according to the temperature.
[0081] Embodiment Four
[0082] Figure 7 is a structural diagram of an integrated cooker heat dissipation control device provided by Embodiment Four of the present application, referring to Figure 7 , the integrated cooker heat dissipation control device includes: an information acquisition module 71, configured to acquire the current internal environment temperature of the integrated cooker; a regulation and control module 72, configured to regulate and control the speed of the heat dissipation fan according to the current internal environment temperature of the integrated cooker; wherein the speed of the heat dissipation fan is positively correlated with the current internal environment temperature of the integrated cooker.
[0083] Optionally, the regulation and control module 72 is specifically configured to judge the preset temperature interval in which the current internal environment temperature of the integrated cooker is located; and regulate and control the heat dissipation fan to work at the speed gear corresponding to the preset temperature interval according to the preset temperature interval in which the current internal environment temperature of the integrated cooker is located.
[0084] Optionally, the information acquisition module 71 is specifically configured to acquire the temperature in the cavity of the steam oven in the integrated cooker; and the regulation module 72 is specifically configured to regulate the rotating speed of the heat dissipation fan according to the temperature in the cavity of the steam oven in the integrated cooker; wherein the rotating speed of the heat dissipation fan is positively correlated with the temperature in the cavity of the steam oven in the integrated cooker.
[0085] Further, the integrated cooker heat dissipation control device further comprises a comparison module, which is configured to judge whether the current internal environment temperature of the integrated cooker is greater than a first temperature threshold; and the regulation module 72 is configured to start the heat dissipation fan when the current internal environment temperature of the integrated cooker is greater than the first temperature threshold.
[0086] In addition, the information acquisition module 71 is further configured to continuously acquire the internal environment temperature of the integrated cooker when the current internal environment temperature of the integrated cooker is less than or equal to the first temperature threshold.
[0087] The comparison module is further configured to judge whether the current internal environment temperature of the integrated cooker is less than the first temperature threshold; and the regulation module 72 is configured to regulate the rotating speed of the heat dissipation fan according to the current internal environment temperature of the integrated cooker when the current internal environment temperature of the integrated cooker is greater than or equal to the first temperature threshold; and to turn off the heat dissipation fan when the current internal environment temperature of the integrated cooker is less than the first temperature threshold.
[0088] Embodiment five
[0089] Figure 8 is a structural schematic diagram of an integrated cooker provided by Embodiment five of the present application, referring to Figure 8 The integrated cooker comprises a processor 801, a memory 802 and a temperature sensor 803, wherein the number of the processor 801 can be one or more, Figure 8 Taking one processor 801 as an example. The memory 802 is configured to store one or more programs; and the temperature sensor 803 is configured to collect the current internal environment temperature of the integrated cooker. The processor 801, the memory 802 and the temperature sensor 803 in the integrated cooker can be connected through a bus or other ways, Figure 8 Taking the connection through the bus as an example in the above.
[0090] The memory 802 is a kind of computer readable storage medium, which can be used to store software programs, computer executable programs and modules, such as program instructions / modules (for example, the information acquisition module 71 and the regulation module 72 in the integrated cooker heat dissipation control device) corresponding to the integrated cooker heat dissipation control method in the present embodiment. The processor 801 executes the software programs, instructions and modules stored in the memory 802, thereby performing various functional applications and data processing of the terminal, i.e. realizing the integrated cooker heat dissipation control method described above.
[0091] The integrated stove provided in the embodiment can adapt the heat dissipation fan to the current heat production of the integrated stove to provide more appropriate heat dissipation capacity, solve the problem of damage of electrical devices caused by the excessively high temperature in the integrated stove, not only can dissipate heat in the cavity of the integrated stove to avoid heat accumulation, effectively reduce the temperature in the cavity, improve the function and reliability of the internal parts, reduce the safety hazard, but also can ensure the normal function of the stove and the steaming oven, and meet the use demand of the user.
[0092] Embodiment six
[0093] The embodiment six of the present application also provides a storage medium containing computer executable instructions, which are used to execute an integrated stove heat dissipation control method when executed by a computer processor, and the method comprises the following steps of:
[0094] acquiring the current internal environment temperature of the integrated stove;
[0095] controlling the rotating speed of the heat dissipation fan according to the current internal environment temperature of the integrated stove, wherein the rotating speed of the heat dissipation fan is positively correlated with the current internal environment temperature of the integrated stove.
[0096] Of course, the computer executable instructions of the storage medium provided by the embodiment of the present application are not limited to the method operations described above, and can also perform the related operations in the integrated stove heat dissipation control method provided by any embodiment of the present application.
[0097] From the above description of the embodiments, those skilled in the art can clearly understand that the present application can be realized by means of software and necessary general hardware, and of course can also be realized by hardware, but in many cases the former is a better embodiment. Based on such understanding, the technical solutions of the present application can be embodied in the form of a software product, which can be stored in a computer readable storage medium, such as a floppy disk, a read-only memory (ROM), a random access memory (RAM), a FLASH, a hard disk or an optical disk, etc., including a plurality of instructions to make a computer device (which can be a personal computer, a server, or a network device, etc.) execute the methods described in various embodiments of the present application.
[0098] It should be noted that in the above embodiment of the search device, each unit and module included is only divided according to the function logic, but is not limited to the above division, as long as the corresponding function can be realized; in addition, the specific name of each functional unit is only for easy mutual distinction, and does not limit the protection scope of the present application.
[0099] Note that the above merely describes preferred embodiments of the present application and the principles of the technology applied. Those skilled in the art will understand that the present application is not limited to the specific embodiments described herein, and that various obvious changes, modifications, combinations and substitutions can be made by those skilled in the art without departing from the scope of the present application. Therefore, although the present application has been described in detail through the above embodiments, the present application is not limited to the above embodiments, and can include more other equivalent embodiments without departing from the concept of the present application, and the scope of the present application is determined by the scope of the claims.
Claims
1. An integrated stove heat dissipation control method, characterized in that, The integrated cooker comprises an integrated cooker body, a steam oven and a heat dissipation fan, the integrated cooker body comprises a cooker part, a smoke machine cavity and a smoke exhaust air duct, the heat dissipation fan is arranged between the cooker part and the steam oven of the integrated cooker, and the smoke machine cavity and the smoke exhaust air duct are multiplexed as a heat dissipation air duct; the heat dissipation control method comprises: acquiring a current internal environment temperature of the integrated cooker; controlling the rotating speed of the heat dissipation fan according to the current internal environment temperature of the integrated cooker; wherein the rotating speed of the heat dissipation fan is positively correlated with the current internal environment temperature of the integrated cooker; acquiring a current internal environment temperature of the integrated cooker comprises: acquiring a cavity internal temperature of the steam oven in the integrated cooker; controlling the rotating speed of the heat dissipation fan according to the current internal environment temperature of the integrated cooker comprises: controlling the rotating speed of the heat dissipation fan according to the cavity internal temperature of the steam oven in the integrated cooker; wherein the rotating speed of the heat dissipation fan is positively correlated with the cavity internal temperature of the steam oven in the integrated cooker.
2. The integrated cooker heat dissipation control method of claim 1, wherein, controlling the rotating speed of the heat dissipation fan according to the current internal environment temperature of the integrated cooker comprises: judging a preset temperature interval in which the current internal environment temperature of the integrated cooker is located; controlling the heat dissipation fan to work at a rotating speed gear corresponding to the preset temperature interval according to the preset temperature interval in which the current internal environment temperature of the integrated cooker is located.
3. The integrated cooker heat dissipation control method of claim 1, wherein, controlling the rotating speed of the heat dissipation fan according to the current internal environment temperature of the integrated cooker comprises: judging whether the current internal environment temperature of the integrated cooker is greater than a first temperature threshold value; starting the heat dissipation fan when the current internal environment temperature of the integrated cooker is greater than the first temperature threshold value.
4. The integrated cooker heat dissipation control method of claim 3, wherein, controlling the rotating speed of the heat dissipation fan according to the current internal environment temperature of the integrated cooker further comprises: judging whether the current internal environment temperature of the integrated cooker is less than the first temperature threshold value; 5. The integrated stove heat dissipation control method of claim 3, wherein, controlling the rotating speed of the heat dissipation fan according to the current internal environment temperature of the integrated cooker when the current internal environment temperature of the integrated cooker is greater than or equal to the first temperature threshold value. controlling the rotating speed of the heat dissipation fan according to the current internal environment temperature of the integrated cooker further comprises: turning off the heat dissipation fan when the current internal environment temperature of the integrated cooker is less than the first temperature threshold value.
6. The integrated stove heat dissipation control method of claim 5, wherein, The integrated cooker comprises an integrated cooker body, a steam oven and a heat dissipation fan, the integrated cooker body comprises a cooker part, a smoke machine cavity and a smoke exhaust air duct, the heat dissipation fan is arranged between the cooker part and the steam oven of the integrated cooker, and the smoke machine cavity and the smoke exhaust air duct are multiplexed as a heat dissipation air duct; the integrated cooker heat dissipation control device comprises:
7. An integrated stove heat dissipation control device, characterized in that, an information acquisition module for acquiring a current internal environment temperature of the integrated cooker; a control module for controlling the rotating speed of the heat dissipation fan according to the current internal environment temperature of the integrated cooker; wherein the rotating speed of the heat dissipation fan is positively correlated with the current internal environment temperature of the integrated cooker; The information acquisition module is further configured to acquire a cavity temperature of the steam oven in the integrated cooker; and the regulation module is further configured to regulate the rotating speed of the heat dissipation fan according to the cavity temperature of the steam oven in the integrated cooker, wherein the rotating speed of the heat dissipation fan is positively correlated with the cavity temperature of the steam oven in the integrated cooker.
8. An integrated hob, characterized in that The integrated cooker comprises: one or more processors; a memory configured to store one or more programs; a temperature sensor configured to collect a current internal environment temperature of the integrated cooker; when the one or more programs are executed by the one or more processors, the one or more processors are caused to implement the integrated cooker heat dissipation control method according to any one of claims 1-6.
9. A storage medium, characterized by The storage medium stores computer instructions, and the computer instructions are used to cause the processor to implement the integrated cooker heat dissipation control method according to any one of claims 1-6 when executed.
Citation Information
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