Intelligent refrigerated cabinet control method, device and equipment and computer storage medium
Through the combination of intelligent refrigerator control method and semiconductor thermoelectric effect module, the problem of temperature instability of refrigerators in remote distribution is solved, precise temperature control and energy-saving effects are achieved, and transportation costs are reduced.
Patent Information
- Application Number
- CN202510104369.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-23
- Publication Date
- 2025-05-06
Smart Images

Figure CN119937694A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of energy-saving refrigeration equipment, and in particular to a smart refrigerator control method, device, equipment and computer storage medium. Background Art
[0002] As a branch of the logistics industry, the pharmaceutical cold chain refers to a systematic project from the producer to the user to refrigerate the physical medicines for the purpose of disease prevention, diagnosis and treatment. In the process of long-distance distribution, the physical medicines need to be refrigerated to meet the storage and transportation of medicines. Among them, in order to better refrigerate and transport medicines, the frequency of use of refrigerators is increasing.
[0003] In the related art, refrigerators generally use compressor refrigeration to achieve cooling and refrigeration. Although it can basically meet the storage needs of medicines, it is difficult to maintain stable control of the temperature when using a compressor for cooling and refrigeration. Over-refrigeration is prone to occur, resulting in waste of electricity. In addition, the compressor is large in size and heavy in weight, which invisibly increases the transportation cost during transportation. Summary of the invention
[0004] In order to more stably control the temperature, save energy, and reduce transportation costs, the present application provides a smart refrigerator control method, device, equipment and computer storage medium.
[0005] In the first aspect, the present application provides a smart refrigerator control method using the following technical solutions: A method for controlling an intelligent refrigerator, comprising: Get the preset target temperature value and the current temperature detection value; Acquire a temperature adjustment strategy based on the target temperature value and the current temperature detection value; Sending a control signal to a temperature control module based on the temperature control strategy; The temperature adjustment module includes a semiconductor thermoelectric effect module; Determine in real time whether the current temperature detection value is equal to the target temperature value; If the current temperature detection value is equal to the target temperature value, a maintaining electrical signal is sent to the temperature adjustment module.
[0006] By adopting the above technical solution, the electronic device obtains the target temperature value and the current temperature detection value, and then obtains the corresponding temperature adjustment strategy based on the target temperature value and the current temperature detection value, that is, better control is performed so that the temperature in the refrigerator reaches the target temperature value, that is, the current temperature detection value is controlled to be equal to the target temperature value. The electronic device sends a control signal to the temperature adjustment module based on the temperature adjustment strategy, that is, the semiconductor thermoelectric effect module is controlled to work to control the temperature in the refrigerator. The electronic device determines in real time whether the current temperature detection is equal to the target temperature value. If the current temperature detection value is equal to the target temperature value, the electronic device sends a holding electrical signal to the temperature adjustment module. Compared with the method of using a compressor in the related art, the semiconductor thermoelectric effect module is used for refrigeration, which can obtain a better and more accurate temperature control effect, that is, it can better maintain a more accurate temperature, that is, better maintain the target temperature value. When the temperature can be accurately controlled, unnecessary refrigeration waste can be reduced, thereby achieving energy saving. At the same time, in the process of temperature adjustment, it can also be more accurately controlled. Automatic control is achieved in the process of controlling temperature changes and maintaining temperature.
[0007] Optionally, the temperature adjustment strategy includes: Calculating a first difference between the current temperature detection value and the target temperature value; A corresponding first power is acquired based on a preset range to which the first difference belongs.
[0008] By adopting the above technical solution, the previous temperature values are different, that is, the first difference of the temperature to be adjusted is different. At this time, it is necessary to judge the preset range to which the first difference belongs. In this way, the purpose of quickly adjusting the temperature in the refrigerator to the target temperature value is achieved.
[0009] Optionally, the method further includes: Real-time judgment of whether the cabinet door is open; If the cabinet door is open, obtaining the opening value of the cabinet door; Acquire a corresponding first adjustment value based on the opening value; Acquire a corresponding first position based on the opened cabinet door; A first adjustment electrical signal is output based on the first position and the first adjustment value to adjust the temperature adjustment module.
[0010] By adopting the above technical solution, the electronic device determines whether the cabinet door is open, that is, determines whether the cabinet door of the refrigerator is open. If the cabinet door is open, the electronic device obtains the opening value of the cabinet door, that is, the electronic device learns the opening degree of the cabinet door, and then the electronic device obtains the corresponding first adjustment value based on the opening value. After the cabinet door is opened, the air in the refrigerator will exchange heat with the outside, that is, the temperature in the refrigerator will drop to a certain extent, so the electronic device obtains the corresponding first position based on the opened cabinet door, and then the electronic device outputs the first adjustment electrical signal based on the first position and the first adjustment value, thereby increasing the cooling capacity of the temperature control module, thereby offsetting the temperature loss and reducing the possibility of temperature changes in the refrigerator.
[0011] Optionally, when the cabinet door is opened, it also includes: Determine in real time whether storage products have been added; If the stored product is added, obtaining the second position of the added stored product; Acquire a corresponding first temperature adjustment module based on the second position; obtaining the increased quantity of the stored product; Obtaining a corresponding power increase based on the quantity; A first control signal is sent to the first temperature adjustment module based on the power increase amount.
[0012] By adopting the above technical solution, when the cabinet door is opened, the electronic device determines whether a stored product is added, that is, whether a stored product is added in the refrigerator. If a stored product is added, it indicates that there is a stored product moved from the outside to the refrigerator at this time, so the electronic device obtains the second position of the added stored product, and then the electronic device obtains the corresponding first temperature control module based on the second position, the electronic device obtains the number of added stored products, and then the electronic device obtains the corresponding power increase based on the number, and the electronic device sends a first control signal to the first temperature control module based on the power increase, that is, controls the power increase of the first temperature control module to increase the cooling capacity, thereby accelerating the temperature change of the stored products newly placed in the refrigerator, so that they reach the target temperature value faster, and at the same time, it can also reduce the impact of the temperature of the added stored products on the surrounding area to avoid large temperature fluctuations.
[0013] Optionally, before sending a first control signal to the first temperature adjustment module based on the power increase, the method further includes: Acquire an edge range based on the second position; Acquire a corresponding second temperature adjustment module based on the edge range; Acquire an adjacent third temperature adjustment module based on the second temperature adjustment module; calculating a power reduction amount based on the power increase amount; After sending the first control signal to the first temperature adjustment module based on the power increase, the method further includes: A second control signal is sent to the third temperature adjustment module based on the power reduction amount.
[0014] By adopting the above technical solution, before sending the first control signal to the first temperature control module, the electronic device obtains the edge range based on the second position, then obtains the corresponding second temperature control module based on the edge range, obtains the adjacent third temperature control module based on the second temperature control module, calculates the power reduction based on the power increase, and then the electronic device sends a second control signal to the third temperature control module based on the power reduction, that is, controls the third temperature control module close to the second temperature control module to reduce the cooling capacity. Since the second temperature control module will increase the cooling capacity, in order to reduce the large temperature changes in the vicinity, the cooling capacity of the third temperature control module is reduced to a certain extent.
[0015] Optionally, the method further includes: Get the preset humidity range and current humidity detection value; If the current humidity detection value is less than the lower limit of the humidity range, a working signal is sent to the humidification module; If the current humidity detection value is greater than the upper limit of the humidity range, a temperature control module corresponding to the non-stored product is obtained, and the obtained temperature control module is used as the fourth temperature control module; A cooling control signal is sent to the fourth temperature adjustment module.
[0016] By adopting the above technical solution, the electronic device obtains the preset humidity range and the current humidity detection value, and then makes a judgment. If the current humidity detection value is lower than the lower limit of the temperature range, it indicates that the humidity in the refrigerator is too low at this time, so the electronic device sends a working signal to the humidification module, that is, controls the driving module to work, thereby increasing the humidity in the refrigerator. If the current humidity detection value is greater than the upper limit of the humidity range, it indicates that the humidity in the refrigerator is too high at this time, so the electronic device obtains the temperature control module corresponding to the product that is not stored and uses the obtained temperature control module as the fourth temperature control module, and then sends a cooling control signal to the fourth temperature control module. That is, since there is no product stored at the position of the fourth temperature control module, the temperature change of the fourth temperature control module has a relatively small impact on the stored product. At this time, the fourth temperature control module is controlled to cool to make its temperature lower, so as to achieve the effect of condensing water vapor in the air, thereby reducing humidity.
[0017] Optionally, before sending the cooling control signal to the fourth temperature adjustment module, the method further includes: Inputting the humidity range into a calculation model to obtain a temperature variation range; Calculating a second difference between the lower limit value of the temperature variation range and the current temperature detection value; Determining whether the second difference is less than a preset temperature value; If the second difference is less than the preset temperature value, continue to execute the step of sending a cooling control signal to the fourth temperature adjustment module; If the second difference is greater than the preset temperature value, obtaining a temperature control module adjacent to the fourth temperature control module, and using the obtained temperature control module as the fifth temperature control module; Determining whether there is a temperature adjustment module corresponding to the stored product in the fifth temperature adjustment module; If so, stop executing the step of sending a cooling control signal to the fourth temperature adjustment module.
[0018] By adopting the above technical solution, before sending the cooling control signal to the fourth temperature adjustment module, the electronic device inputs the humidity range into the value calculation model to obtain the temperature change range, that is, calculates the range of values that the current temperature detection value needs to change so that the current humidity detection value falls within the preset humidity range, and the electronic device calculates the second difference between the lower limit value of the temperature change range and the current temperature detection value, and the electronic device determines whether the second difference is less than the temperature preset value. If the second difference is less than the temperature preset value, it indicates that the amplitude of the temperature change is very small at this time, then the step of sending the cooling control signal to the fourth temperature adjustment module is continued at this time. When the second difference is greater than the temperature preset value, it indicates that the amplitude of the temperature change is large at this time, so the electronic device obtains the fifth temperature adjustment module adjacent to the fourth temperature adjustment module, and then the electronic device determines whether there is a corresponding temperature adjustment module for the additional storage product in the fifth temperature adjustment module. If there is, the electronic device stops executing the above steps. Since the temperature change amplitude is large at this time, the fourth temperature adjustment module is adjusted to cool at this time, that is, the temperature of the fourth temperature adjustment module drops significantly, and there is still a corresponding storage product in the adjacent fifth temperature adjustment module, then the fourth temperature adjustment module will have a greater impact on the storage product at this time, so the above steps are not executed.
[0019] In the second aspect, the present application provides an intelligent patrol monitoring control device adopting the following technical solution: A first acquisition module, used to acquire a preset target temperature value and a current temperature detection value; A second acquisition module, used for acquiring a temperature adjustment strategy based on the target temperature value and the current temperature detection value; A first sending module, used to send a control signal to a temperature control module based on the temperature control strategy; the temperature control module includes a semiconductor thermoelectric effect module; A judgment module, used for judging in real time whether the current temperature detection value is equal to the target temperature value; if the current temperature detection value is equal to the target temperature value, then transferring to the second sending module; The second sending module is used to send a maintaining electrical signal to the temperature adjustment module.
[0020] In a third aspect, the present application provides an electronic device that adopts the following technical solution: An electronic device comprises a processor, wherein the processor is coupled to a memory; the processor is used to execute a computer program stored in the memory, so that the electronic device executes the method described in the first aspect.
[0021] In a fourth aspect, the present application provides a computer-readable storage medium that adopts the following technical solution: A computer-readable storage medium includes a computer program or an instruction. When the computer program or the instruction is executed on a computer, the computer is caused to execute the method according to the first aspect. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 It is a flow chart of the intelligent patrol monitoring control method of an embodiment of the present application.
[0023] Figure 2 It is a block diagram of the intelligent patrol monitoring control device of an embodiment of the present application.
[0024] Figure 3 It is a block diagram of an electronic device according to an embodiment of the present application. DETAILED DESCRIPTION
[0025] This specific embodiment is merely an explanation of the present application and is not a limitation of the present application. Technical users in this field can make non-creative modifications to the present embodiment as needed after reading this specification. However, as long as it is within the scope of the claims of the present application, it is protected by the patent law.
[0026] In order to make the purpose, technical solution and advantages of the embodiments of the present application clearer, the technical solution in the embodiments of the present application will be clearly and completely described below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technical users in the field without creative work are within the scope of protection of this application.
[0027] In addition, the term "and / or" in this article is only a description of the association relationship of associated objects, indicating that there can be three relationships. For example, A and / or B can represent: A exists alone, A and B exist at the same time, and B exists alone. In addition, the character " / " in this article, unless otherwise specified, generally means that the associated objects before and after are in an "or" relationship.
[0028] The embodiment of the present application discloses an intelligent patrol monitoring control method. The intelligent patrol monitoring control method can be executed by an electronic device. The electronic device can be a server or a terminal device, wherein the server can be an independent physical server, a server cluster or a distributed system composed of multiple physical servers, or a cloud server providing cloud computing services. The terminal device can be a smart phone, a tablet computer, a desktop computer, etc., but is not limited thereto.
[0029] The present application embodiment discloses an intelligent patrol monitoring control method. Figure 1 , an intelligent patrol monitoring control method includes the following main processes (S100~S500): Step S100, obtaining a preset target temperature value and a current temperature detection value; Step S200, obtaining a temperature adjustment strategy based on the target temperature value and the current temperature detection value; Step S300, sending a control signal to a temperature control module based on a temperature control strategy; the temperature control module includes a semiconductor thermoelectric effect module; Step S400, determining in real time whether the current temperature detection value is equal to the target temperature value; if the current temperature detection value is equal to the target temperature value, proceeding to step S500; Step S500: sending a maintaining electrical signal to the temperature adjustment module.
[0030] The electronic device obtains a preset target temperature value and a current temperature detection value. The current temperature detection value can be detected by a temperature sensor in the refrigerator. After that, the electronic device obtains a temperature control strategy based on the target temperature value and the current temperature detection value. The electronic device sends a control signal to the temperature control module based on the temperature control strategy so that the temperature control module works to finally achieve the preset target temperature value. In this embodiment, the temperature control module uses a semiconductor thermoelectric effect module. Then the electronic device determines in real time whether the current temperature detection value is equal to the target temperature value. If the current temperature detection value is equal to the target temperature value, that is, the temperature in the refrigerator has reached the required temperature, so at this time the electronic device sends a holding electrical signal to the temperature control module so that the temperature in the refrigerator can be maintained at the target temperature value. Since the temperature can be controlled more accurately, the refrigeration waste can be reduced, that is, excessive refrigeration can be reduced, thereby achieving an energy-saving effect; using a semiconductor thermoelectric effect module to replace the refrigeration method of the compressor in the related technology can also reduce the volume weight, reduce the transportation weight, and thus reduce the transportation cost.
[0031] Specifically, the temperature adjustment strategy includes calculating a first difference between a current temperature detection value and a target temperature value; and acquiring a corresponding first power based on a preset range to which the first difference belongs.
[0032] The electronic device calculates a first difference between a current temperature detection value and a target temperature value, and then determines a preset range to which the first difference belongs. Thereafter, the electronic device obtains a corresponding first power based on the preset range to which the first difference belongs.
[0033] For example, the preset range includes zero to five degrees, five to ten degrees, the first difference falls between zero and five degrees, and the first power corresponding to zero to five degrees is ten watts. Then the electronic device controls the temperature control module to operate at a power of ten watts.
[0034] The larger the value in the preset range, the larger the corresponding first power, that is, the greater the difference between the current temperature detection value and the target temperature value, the greater the power of the temperature control module, so that the temperature in the refrigerator can change rapidly to quickly reach the target temperature value.
[0035] As an optional implementation of the embodiment of the present application, it also includes: determining in real time whether the cabinet door is open; if the cabinet door is open, obtaining the cabinet door opening value; obtaining the corresponding first adjustment value based on the opening value; obtaining the corresponding first position based on the open cabinet door; outputting a first adjustment electrical signal based on the first position and the first adjustment value to adjust the temperature control module.
[0036] The electronic device determines in real time whether the door of the refrigerator is open. If the door is open, the cold air in the refrigerator will have a greater heat exchange with the outside world, causing the temperature in the refrigerator to drop to a certain extent. Therefore, in order to reduce the impact of the door opening on the stored products in the refrigerator, the electronic device obtains the door opening value, that is, the opening value can enable the electronic device to know the degree of door opening. The electronic device obtains the corresponding first adjustment value based on the opening value. At the same time, the electronic device obtains the corresponding first position based on the opened door. After that, the electronic device outputs a first adjustment signal to the temperature control module based on the first position and the first adjustment value, so that the temperature control module changes its working state, compensates for the heat loss generated, and reduces the possibility of large temperature fluctuations due to the door opening.
[0037] As an optional implementation of the embodiment of the present application, when the cabinet door is opened, it also includes: determining in real time whether a storage product has been added; if a storage product has been added, obtaining a second position of the added storage product; obtaining a corresponding first temperature control module based on the second position; obtaining the number of added storage products; obtaining a corresponding power increase based on the number; and sending a first control signal to the first temperature control module based on the power increase.
[0038] When the cabinet door is opened, the electronic device determines in real time whether storage products are added, that is, whether storage products are placed in the refrigerator after the cabinet door is opened. If storage products are added, the electronic device obtains the second position of the added storage products. Since they are moved from the outside to the refrigerator, the temperature of the added storage products will be higher than the temperature in the refrigerator. In order to cool them down quickly and to offset the large local temperature changes in the refrigerator caused by the heat exchange of the newly added storage products, the electronic device obtains the corresponding first temperature control module based on the second position. At the same time, the electronic device obtains the number of added storage products, and obtains the corresponding power increase based on the number. The electronic device sends a first control signal to the first temperature control module based on the power increase, that is, controls the first temperature control module to increase the power to speed up the temperature regulation of the storage products at the corresponding position.
[0039] As an optional implementation manner of an embodiment of the present application, before sending a first control signal to the first temperature control module based on the power increase, it also includes: obtaining an edge range based on the second position; obtaining a corresponding second temperature control module based on the edge range; obtaining an adjacent third temperature control module based on the second temperature control module; calculating a power reduction based on the power increase; after sending a first control signal to the first temperature control module based on the power increase, it also includes: sending a second control signal to the third temperature control module based on the power reduction.
[0040] Before sending the first control signal to the first temperature control module based on the power increase, the electronic device obtains the edge range based on the second position, and obtains the corresponding second temperature control module based on the edge range. The above description can be understood as that there are multiple first temperature control modules corresponding to a certain area, and the edge range is the first temperature control module at the edge position within this area, and the first temperature control module at the edge position is used as the second temperature control module. Then, based on the second temperature control module, the adjacent third temperature control module is obtained, and the third temperature control module is not in the second position. The electronic device calculates the power reduction based on the power increase, and then after the electronic device sends the first control signal to the first temperature control module based on the power increase, the electronic device sends the second control signal to the third temperature control module based on the power reduction. Since the corresponding temperature control module in the first position needs to increase power, the cooling capacity will increase at this time. Therefore, in order to reduce the impact on the surroundings, the third temperature control module is obtained, and the power reduction is calculated based on the power increase, thereby avoiding a large temperature change around the first position.
[0041] As an optional implementation of the embodiment of the present application, it also includes: obtaining a preset humidity range and a current humidity detection value; if the current humidity detection value is less than the lower limit of the humidity range, sending a working signal to the humidification module; if the current humidity detection value is greater than the upper limit of the humidity range, obtaining a temperature control module corresponding to a product not stored, and using the obtained temperature control module as a fourth temperature control module; sending a cooling control signal to the fourth temperature control module.
[0042] The electronic device obtains the preset humidity range and the current humidity detection value, and then determines whether the current humidity detection value is less than the lower limit of the humidity range. If the current humidity detection value is less than the lower limit of the humidity range, the electronic device sends a working module to the driving module, that is, the humidity in the refrigerator is too low, so the humidification module needs to work to increase the humidity in the refrigerator. If the current humidity detection value is greater than the upper limit of the humidity range, the electronic device obtains a temperature control module that does not correspond to the stored product, and uses the obtained temperature control module as the fourth temperature control module, and then sends a cooling control signal to the fourth temperature control module, that is, condenses the water vapor in the air by cooling to a certain extent, thereby reducing the humidity value. At the same time, there is no corresponding storage product at the cooling position, which can reduce the impact on the stored products.
[0043] As an optional implementation of an embodiment of the present application, before sending a cooling control signal to the fourth temperature control module, it also includes: inputting the humidity range into a calculation model to obtain a temperature change range; calculating a second difference between the lower limit value of the temperature change range and the current temperature detection value; judging whether the second difference is less than a preset temperature value; if the second difference is less than the preset temperature value, continuing to execute the step of sending a cooling control signal to the fourth temperature control module; if the second difference is greater than the preset temperature value, obtaining a temperature control module adjacent to the fourth temperature control module, and using the obtained temperature control module as the fifth temperature control module; judging whether there is a temperature control module corresponding to the stored product in the fifth temperature control module; if so, stopping executing the step of sending a cooling control signal to the fourth temperature control module.
[0044] Before sending a cooling control signal to the fourth temperature control module, the electronic device sends the humidity change range to the calculation model to obtain the temperature change range, that is, the temperature change of the fourth temperature control module, thereby reducing the humidity. The electronic device calculates the second difference between the lower limit value of the temperature change range and the current temperature detection value. The calculated second difference is the minimum temperature change value of the fourth temperature control module. Then the electronic device determines whether the second difference is less than the temperature preset value. If the second difference is less than the temperature preset value, the electronic device continues to execute the step of sending a cooling control signal to the fourth temperature control module. That is, at this time, the temperature change value of the fourth temperature control module is small, and the impact on the stored products is small, so the electronic device controls the temperature change of the fourth temperature control module. If the second difference is greater than the temperature preset value, the temperature changes greatly at this time, and the electronic device obtains the temperature control module adjacent to the fourth temperature control module, and uses the obtained temperature control module as the fifth temperature control module. The electronic device then determines whether there is a corresponding temperature control module for the stored product in the fifth temperature control module. If so, the electronic device stops the step of sending a cooling control signal to the fourth temperature control module, that is, the fifth temperature control module is adjacent to the fourth temperature control module, and there is a corresponding stored product in the fifth temperature control module. Then, it is determined that the fourth temperature control module may have a greater impact on the stored product, so the step of controlling the fourth temperature control module is stopped.
[0045] Figure 2 A block diagram of a smart refrigerator control device 600 provided in an embodiment of the present application is shown in FIG. Figure 2 As shown, the intelligent refrigerator control device 600 includes: The first acquisition module 601 is used to acquire a preset target temperature value and a current temperature detection value; A second acquisition module 602 is used to acquire a temperature adjustment strategy based on a target temperature value and a current temperature detection value; A first sending module 603 is used to send a control signal to a temperature control module based on a temperature control strategy; the temperature control module includes a semiconductor thermoelectric effect module; The judgment module 604 is used to judge in real time whether the current temperature detection value is equal to the target temperature value; if the current temperature detection value is equal to the target temperature value, the second sending module 605 is entered; The second sending module 605 is used to send a maintaining electrical signal to the temperature adjustment module.
[0046] Specifically, the temperature control strategies include: Calculating a first difference between a current temperature detection value and a target temperature value; The corresponding first power is acquired based on the preset range to which the first difference belongs.
[0047] In this optional embodiment, the intelligent refrigerator control device 600 further includes: The first judgment submodule is used to judge in real time whether the cabinet door is open; if the cabinet door is open, the opening value of the cabinet door is obtained; A first acquisition submodule, used for acquiring a corresponding first adjustment value based on the opening value; A second acquisition submodule, used to acquire the corresponding first position based on the opened cabinet door; The first output submodule is used to output a first adjustment electrical signal based on the first position and the first adjustment value to adjust the temperature adjustment module.
[0048] In this optional embodiment, the intelligent refrigerator control device 600 further includes: The second judgment submodule is used to judge in real time whether a stored product is added when the cabinet door is opened; if a stored product is added, obtain the second position of the added stored product; A third acquisition submodule, used to acquire the corresponding first temperature adjustment module based on the second position; A fourth acquisition submodule is used to acquire the quantity of the increased stored product; A fifth acquisition submodule, configured to acquire a corresponding power increase based on the quantity; The first sending submodule is used to send a first control signal to the first temperature adjustment module based on the power increase amount.
[0049] In this optional embodiment, the intelligent refrigerator control device 600 further includes: a sixth acquisition submodule, configured to acquire an edge range based on the second position before sending a first control signal to the first temperature adjustment module based on the power increase amount; A seventh acquisition submodule, used for acquiring a corresponding second temperature adjustment module based on the edge range; an eighth acquisition submodule, configured to acquire an adjacent third temperature adjustment module based on the second temperature adjustment module; A first calculation submodule, configured to calculate a power reduction amount based on a power increase amount; The second sending submodule is used to send a second control signal to the third temperature adjustment module based on the power reduction amount after sending the first control signal to the first temperature adjustment module based on the power increase amount.
[0050] In this optional embodiment, the intelligent refrigerator control device 600 further includes: The ninth acquisition submodule is used to obtain a preset humidity range and a current humidity detection value; if the current humidity detection value is less than the lower limit of the humidity range, a working signal is sent to the humidification module; if the current humidity detection value is greater than the upper limit of the humidity range, a temperature control module corresponding to the non-stored product is obtained, and the obtained temperature control module is used as the fourth temperature control module; The third sending submodule is used to send a cooling control signal to the fourth temperature adjustment module.
[0051] In this optional embodiment, the intelligent refrigerator control device 600 further includes: a first input submodule, for inputting the humidity range into the calculation model to obtain the temperature variation range before sending the cooling control signal to the fourth temperature adjustment module; A second calculation submodule, used for calculating a second difference between the lower limit value of the temperature variation range and the current temperature detection value; a third judgment submodule, for judging whether the second difference is less than a preset temperature value; if the second difference is less than the preset temperature value, continuing to execute the step of sending a cooling control signal to the fourth temperature adjustment module; if the second difference is greater than the preset temperature value, acquiring a temperature adjustment module adjacent to the fourth temperature adjustment module, and using the acquired temperature adjustment module as the fifth temperature adjustment module; The fourth judgment submodule is used to judge whether there is a temperature adjustment module corresponding to the stored product in the fifth temperature adjustment module; if so, stop executing the step of sending a refrigeration control signal to the fourth temperature adjustment module.
[0052] Figure 3 The electronic device 700 is a block diagram of a structure of an electronic device 700 provided in an embodiment of the present application. The electronic device 700 may be a mobile phone, a tablet computer, a PC, a server, etc. Figure 3 As shown, the electronic device 700 includes a memory 701, a processor 702 and a communication bus 703; the memory and the processor 702 are connected via the communication bus 703. The memory 701 stores a computer program that can be loaded by the processor 702 and execute the intelligent refrigerator control method provided in the above embodiment.
[0053] The memory 701 may be used to store instructions, programs, codes, code sets or instruction sets. The memory 701 may include a program storage area and a managed data storage area, wherein the program storage area may store instructions for implementing an operating system, instructions for at least one function, and instructions for implementing the intelligent refrigerator control method provided in the above embodiment, etc.; the managed data storage area may store managed data involved in the intelligent refrigerator control method provided in the above embodiment, etc.
[0054] The processor 702 may include one or more processing cores. The processor 702 calls the managed data stored in the memory 701 by running or executing the instructions, programs, code sets or instruction sets stored in the memory 701, performs various functions of the present application and processes the managed data. The processor 702 may be at least one of an application-specific integrated circuit (ASIC), a digital signal processor (DSP), a digital signal processing device (DSPD), a programmable logic device (PLD), a field programmable gate array (FPGA), a central processing unit (CPU), a controller, a microcontroller and a microprocessor. It is understandable that for different devices, the electronic device used to implement the above-mentioned processor 702 function can also be other, and the embodiment of the present application is not specifically limited.
[0055] The communication bus 703 may include a path to transmit information between the above components. The communication bus 703 may be a PCI (Peripheral Component Interconnect) bus or an EISA (Extended Industry Standard Architecture) bus. The communication bus 703 may be divided into an address bus, a managed data bus, a control bus, etc. For ease of representation, Figure 3 Only one double arrow is used in the diagram, but this does not mean that there is only one bus or only one type of bus.
[0056] An embodiment of the present application provides a computer storage medium storing a computer program that can be loaded by a processor and execute the intelligent refrigerator control method provided in the above embodiment.
[0057] In this embodiment, the computer storage medium may be a tangible device that holds and stores instructions used by the instruction execution device. The computer storage medium may be, but is not limited to, an electrical storage device, a magnetic storage device, an optical storage device, an electromagnetic storage device, a semiconductor storage device, or any combination thereof. Specifically, the computer storage medium may be a portable computer disk, a hard disk, a USB flash drive, a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or flash memory), a podium random access memory (SRAM), a portable compact disk read-only memory (CD-ROM), a digital versatile disk (DVD), a memory stick, a floppy disk, an optical disk, a magnetic disk, a mechanical encoding device, and any combination thereof.
[0058] The terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion such that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not expressly listed, or also includes elements inherent to such process, method, article, or apparatus.
Claims
1. A method for controlling an intelligent refrigerator, characterized in that: include: Get the preset target temperature value and the current temperature detection value; Acquire a temperature adjustment strategy based on the target temperature value and the current temperature detection value; Sending a control signal to a temperature control module based on the temperature control strategy; The temperature adjustment module includes a semiconductor thermoelectric effect module; Determine in real time whether the current temperature detection value is equal to the target temperature value; If the current temperature detection value is equal to the target temperature value, a maintaining electrical signal is sent to the temperature adjustment module.
2. The intelligent refrigerator control method according to claim 1, characterized in that: The temperature adjustment strategy includes: Calculating a first difference between the current temperature detection value and the target temperature value; A corresponding first power is acquired based on a preset range to which the first difference belongs.
3. The intelligent refrigerator control method according to claim 1, characterized in that: The method further comprises: Real-time judgment of whether the cabinet door is open; If the cabinet door is open, obtaining the opening value of the cabinet door; Acquire a corresponding first adjustment value based on the opening value; Acquire a corresponding first position based on the opened cabinet door; A first adjustment electrical signal is output based on the first position and the first adjustment value to adjust the temperature adjustment module.
4. The intelligent refrigerator control method according to claim 3, characterized in that: When the cabinet door is opened, it also includes: Determine in real time whether storage products have been added; If the stored product is added, obtaining the second position of the added stored product; Acquire a corresponding first temperature adjustment module based on the second position; obtaining the increased quantity of the stored product; Obtaining a corresponding power increase based on the quantity; A first control signal is sent to the first temperature adjustment module based on the power increase amount.
5. The intelligent refrigerator control method according to claim 4, characterized in that: Before sending a first control signal to the first temperature adjustment module based on the power increase, the method further includes: Acquire an edge range based on the second position; Acquire a corresponding second temperature adjustment module based on the edge range; Acquire an adjacent third temperature adjustment module based on the second temperature adjustment module; calculating a power reduction amount based on the power increase amount; After sending the first control signal to the first temperature adjustment module based on the power increase, the method further includes: A second control signal is sent to the third temperature adjustment module based on the power reduction amount.
6. The intelligent refrigerator control method according to claim 1, characterized in that: The method further comprises: Get the preset humidity range and current humidity detection value; If the current humidity detection value is less than the lower limit of the humidity range, a working signal is sent to the humidification module; If the current humidity detection value is greater than the upper limit of the humidity range, a temperature control module corresponding to the non-stored product is obtained, and the obtained temperature control module is used as the fourth temperature control module; A cooling control signal is sent to the fourth temperature adjustment module.
7. The intelligent refrigerator control method according to claim 6, characterized in that: Before sending the cooling control signal to the fourth temperature adjustment module, the method further includes: Inputting the humidity range into a calculation model to obtain a temperature variation range; Calculating a second difference between the lower limit value of the temperature variation range and the current temperature detection value; Determining whether the second difference is less than a preset temperature value; If the second difference is less than the preset temperature value, continue to execute the step of sending a cooling control signal to the fourth temperature adjustment module; If the second difference is greater than the preset temperature value, obtaining a temperature control module adjacent to the fourth temperature control module, and using the obtained temperature control module as the fifth temperature control module; Determining whether there is a temperature adjustment module corresponding to the stored product in the fifth temperature adjustment module; If so, stop executing the step of sending a cooling control signal to the fourth temperature adjustment module.
8. An intelligent refrigerator control device, characterized in that: include: A first acquisition module, used to acquire a preset target temperature value and a current temperature detection value; A second acquisition module, used for acquiring a temperature adjustment strategy based on the target temperature value and the current temperature detection value; A first sending module, configured to send a control signal to a temperature adjustment module based on the temperature adjustment strategy; The temperature adjustment module includes a semiconductor thermoelectric effect module; A judgment module, used for judging in real time whether the current temperature detection value is equal to the target temperature value; If the current temperature detection value is equal to the target temperature value, then transfer to the second sending module; The second sending module is used to send a maintaining electrical signal to the temperature adjustment module.
9. An electronic device, characterized in that: The electronic device comprises a processor coupled to a memory; the processor is used to execute a computer program stored in the memory so that the electronic device executes the method according to any one of claims 1 to 7.
10. A computer-readable storage medium, characterized in that: The method comprises a computer program or an instruction, which, when executed on a computer, causes the computer to execute the method according to any one of claims 1 to 7.