Control method of a portable temperature conditioning device and processing device

By acquiring the target parameters of the portable temperature control device, the remaining power of the power supply module, and environmental parameters, the total power consumption demand is determined, and the device is controlled to operate in the target mode. This solves the problem of insufficient power for outdoor air conditioners, ensures continuous operation of the device with limited power, and improves the user experience.

CN114623574BActive Publication Date: 2025-10-21ECOFLOW INC
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Patent Information

Application Number
CN202210326704.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-03-30
Publication Date
2025-10-21
Estimated Expiration
2042-03-30

AI Technical Summary

Technical Problem

Outdoor air conditioners lack flexible control modes, which means that the power of mobile power banks or internal power modules cannot meet the operating requirements, affecting the user experience.

Method used

By acquiring the target parameters of the portable temperature control device, the remaining power of the power supply module, and environmental parameters, the total power consumption demand is determined. Based on the relationship between the remaining power and the total power consumption demand, the device is controlled to operate in the target mode to make full use of the remaining power to meet user needs.

Benefits of technology

To ensure the device can run continuously for the target duration when the remaining battery power is limited, thus improving the user experience.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The application discloses a control method of a portable temperature regulating device, and belongs to the field of temperature regulation. The method comprises the following steps: obtaining a target parameter of the portable temperature regulating device, a remaining power of a power supply module, and an environmental parameter; determining a total demand consumption power of the device when the device operates according to the target parameter according to the space size of the working area of the device, the target parameter and the environmental parameter; and then controlling the device to operate in a target operation mode based on the relationship between the remaining power and the total demand consumption power. In the application, the target operation mode of the portable device is different when the remaining power meets and does not meet the total demand consumption power, and the power required by different operation modes is different, so that the remaining power can support the device to work at the target parameter when the remaining power cannot meet the total demand consumption power. Not only can the remaining power be fully utilized, but also the user experience can be improved.
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Description

Technical Field

[0001] The present application relates to the field of temperature regulation technology, and in particular to a control method and processing device for a portable temperature regulation device. Background Art

[0002] Since outdoor air conditioners are used outdoors, such as in camping and tents, there is no fixed power supply to power the outdoor air conditioners. Therefore, outdoor air conditioners usually need to use a mobile power supply or an internal power module to power them to support the operation of the outdoor air conditioners.

[0003] The existing outdoor air conditioner control mode is simple and cannot adjust the working mode according to actual conditions. It is easy for the power of the mobile power supply or the internal power module to fail to match the operating requirements of the outdoor air conditioner, resulting in failure to meet user needs. Summary of the Invention

[0004] The present application provides a control method and processing device for a portable temperature control device, which is used to determine a target operating mode that meets target parameters for the portable temperature control device based on the remaining power of the device, so as to fully utilize the remaining power of the device and meet user needs.

[0005] The technical solution is as follows:

[0006] In a first aspect, a method for controlling a portable temperature regulating device is provided, comprising:

[0007] acquiring target parameters set for the portable temperature regulating device, the target parameters including a target operating time and a target temperature;

[0008] Obtaining the remaining power of a power supply module that supplies power to the portable temperature regulating device;

[0009] Acquiring environmental parameters of a working area of ​​the portable temperature regulating device, wherein the environmental parameters include an ambient temperature and an ambient wind speed of the working area;

[0010] determining, based on the size of the working area, the target parameters, and the environmental parameters, the total power consumption required when the portable temperature adjustment device operates according to the target parameters;

[0011] According to the relationship between the remaining power and the total required power consumption, the portable temperature regulation device is controlled to operate in a target operating mode, wherein when the portable temperature regulation device operates in the target operating mode, the power consumed during the target operating time is less than or equal to the remaining power.

[0012] An embodiment of the present application provides a control method for a portable temperature control device. In this method, the target parameters of the temperature control device, the remaining power of the power supply module, and the environmental parameters are obtained. Then, based on the spatial size of the working area of ​​the portable temperature control device, the target parameters, and the environmental parameters, the total required power consumption of the portable temperature control device when operating according to the target parameters is determined. Then, based on the relationship between the remaining power and the total required power consumption, the portable temperature control device is controlled to operate in a target operating mode. The target operating mode is the power required for the portable temperature control device to operate in the target operating mode when the target parameters are met. Since the scheme controls the operating mode of the portable temperature control device differently when the remaining power meets or does not meet the total required power consumption, and the power required for different operating modes is different, when the remaining power does not meet the total required power consumption, the remaining power can be guaranteed to support the target operating time of the portable temperature control device. This not only makes full use of the remaining power, but also improves the user experience.

[0013] Optionally, controlling the portable temperature adjustment device to operate in a target operating mode according to a relationship between the remaining power and the total required power consumption includes:

[0014] When the remaining power does not meet the total required power consumption, the temperature control module of the portable temperature adjustment device is controlled to be turned on during the start time period of the target operating time, and the temperature control module is controlled to be turned off during other time periods of the target operating time.

[0015] Optionally, controlling the portable temperature regulating device to operate in a target operating mode according to a relationship between the remaining power and the total required power consumption includes:

[0016] When the remaining power does not meet the total required power consumption, obtaining a temperature change trend in the environmental parameter;

[0017] determining an operating time period of a temperature control module of the portable temperature adjustment device according to the temperature change trend and the target temperature, wherein the operating time period is within the target operating time;

[0018] Controlling the temperature control module to be turned on during the operating time period, and controlling the temperature control module to be turned off during time periods outside the operating time period;

[0019] The operating time period of the temperature control module at least includes a start time period of the target operating time.

[0020] Optionally, the control method further includes: controlling a fan module of the portable temperature adjustment device to turn on when controlling the temperature control module to turn off.

[0021] Optionally, the control method further includes: controlling the fan module of the portable temperature adjustment device to turn on according to a preset time interval when controlling the temperature control module to turn off.

[0022] Optionally, the control method further comprises: controlling a fan module of the portable temperature regulating device to turn on within a starting time period of the target operating time;

[0023] Obtain oxygen demand information;

[0024] When the oxygen demand information is higher than the first demand information, controlling the fan module to operate at a first power;

[0025] When the oxygen demand information is lower than or equal to the first demand information and higher than the second demand information, controlling the fan module to operate at a second power;

[0026] When the oxygen demand information is lower than or equal to the second demand information, controlling the fan module to turn off;

[0027] The first power is higher than the second power.

[0028] Optionally, controlling the portable temperature adjustment device to operate in a target operating mode according to a relationship between the remaining power and the total required power consumption includes:

[0029] When the remaining power meets the total required power consumption, controlling the portable temperature adjustment device to operate in a normal operation mode;

[0030] The normal operation mode includes: controlling the temperature control module of the portable temperature adjustment device to be turned off when the ambient temperature meets the target temperature, and controlling the temperature control module to be turned on when the ambient temperature does not meet the target temperature.

[0031] Optionally, determining, based on the space size of the working area, the target parameter, and the ambient temperature, the total power consumption required when the portable temperature adjustment device operates according to the target parameter includes:

[0032] obtaining the power consumed by the portable temperature regulating device when operating within the working area for a preset time;

[0033] The total required power consumption is calculated according to the power, the temperature difference of the working area during the preset time, and the power consumed by the portable temperature adjustment device during the preset time.

[0034] Optionally, the control method further includes: when the remaining power is lower than a preset power threshold or cannot match the target operating mode, sending a first prompt message, the first prompt message being used to prompt that the remaining power cannot meet the total required power consumption and whether to modify the target parameter;

[0035] When new target parameters are obtained, the total required power consumption is recalculated according to the new target parameters.

[0036] In a second aspect, a processing device is provided, which includes a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor implements the control method of the portable temperature regulating device as described above when executing the computer program.

[0037] In a third aspect, a temperature control system is provided, comprising: a portable temperature control device, and a control device for communicating with the portable temperature control device, wherein the control device is used to execute the method described in the first aspect or various possible implementations of the first aspect.

[0038] It can be understood that the beneficial effects of the second and third aspects mentioned above can be found in the relevant description of the first aspect mentioned above, and will not be repeated here. BRIEF DESCRIPTION OF THE DRAWINGS

[0039] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0040] Figure 1 This is a structural diagram of a portable temperature adjustment device provided in an embodiment of the present application;

[0041] Figure 2 This is a flow chart of a method for controlling a portable temperature regulating device provided by an embodiment of the present application;

[0042] Figure 3 This is an input and display interface of a portable temperature control device provided in an embodiment of the present application;

[0043] Figure 4 This is a message prompt interface diagram of a portable temperature control device provided in an embodiment of the present application;

[0044] Figure 5 This is a message prompt selection interface diagram of a portable temperature adjustment device provided in an embodiment of the present application;

[0045] Figure 6 This is a schematic diagram of the structure of a portable temperature control device provided in an embodiment of the present application;

[0046] Figure 7 It is a structural diagram of a processing device provided in an embodiment of the present application. DETAILED DESCRIPTION

[0047] In order to make the objectives, technical solutions and advantages of this application clearer, the implementation methods of this application will be further described in detail below with reference to the accompanying drawings.

[0048] It should be understood that the “multiple” mentioned in this application refers to two or more. In the description of this application, unless otherwise specified, “ / ” means or, for example, A / B can mean A or B; “and / or” in this article is merely a description of the association relationship of associated objects, indicating that there can be three relationships, for example, A and / or B can mean: A exists alone, A and B exist at the same time, and B exists alone. In addition, in order to facilitate the clear description of the technical solution of this application, words such as “first” and “second” are used to distinguish between identical or similar items with basically the same functions and effects. Those skilled in the art can understand that words such as “first” and “second” do not limit the quantity and execution order, and words such as “first” and “second” do not necessarily limit them to be different.

[0049] Before explaining the embodiments of the present application in detail, the application scenarios of the embodiments of the present application are first explained.

[0050] The portable temperature control device provided by the present application (such as an outdoor air conditioner, also known as a camping air conditioner or a tent air conditioner) includes an air conditioner body and a power module. The air conditioner body also includes a temperature control module, a fan module, a control module, etc. The power module is used to provide working power for the air conditioner body. In the prior art, during operation, outdoor air conditioners can only operate according to the temperature, time, and mode set by the user. When the power supply cannot meet the operating requirements, it will shut down directly. When a user uses a tent for outdoor activities and sleeps at night, if the outdoor air conditioner shuts down during sleep, it will cause the tent to be unable to be ventilated or cooled, affecting the user's experience.

[0051] The portable temperature control device referred to in the embodiments of the present application refers to a device that has its own power supply module and can adjust the temperature without an AC power supply, or a portable temperature control device refers to a device that has its own power supply module or can use the power provided by an energy storage device (such as a mobile power supply) to adjust the temperature without a power supply module. It is understood that the portable temperature control device also has the function of using the power provided by the AC power supply to adjust the temperature.

[0052] like Figure 1 As shown, Figure 1 This is a structural diagram of a portable temperature adjustment device provided in an embodiment of the present application. The portable temperature adjustment device includes: a temperature control module 101 , a control module 102 , and a power supply module 104 .

[0053] Optionally, the portable temperature regulating device may further include a fan module 103 .

[0054] Among them, the control module 102 is respectively connected to the temperature control module 101, the fan module 103 and the power supply module 104. The power supply module 104 is also connected to the temperature control module 101 and the fan module 103. The power supply module 104 is used to supply power to the various modules in the portable temperature regulating device. The power supply module 104 can be a module fixed inside the portable temperature regulating device. Optionally, the power supply module 104 can be detachably connected to the portable temperature regulating device. The power supply module 104 can also be a battery, a solar cell, a rechargeable battery, etc. Of course, the power supply module 104 can also be charged by an external power supply. After the power supply module 104 is charged, it can supply power to the various modules of the portable temperature regulating device anytime and anywhere. Or the power supply module 104 may not belong to the portable temperature regulating device.

[0055] Of course, optionally, the portable temperature regulating device further has a communication interface, and the user can also connect a mobile charging device through the communication interface to supply power to various modules of the portable temperature regulating device through the power supply module 104 .

[0056] The temperature control module 101 is used to achieve cooling and / or heating functions. In other words, the portable temperature control device in the embodiment of the present application can not only heat but also cool. Specifically, the temperature control module 101 may include a cooling module and / or a heating module.

[0057] In one possible embodiment of the present application, to facilitate temperature adjustment, the portable temperature adjustment device may further include a temperature detection module 105 connected to the control module 102. The temperature detection module 105 is configured to detect the ambient temperature of the operating area of ​​the portable temperature adjustment device. For example, the temperature detection module 105 may be implemented by a temperature sensor.

[0058] In one possible embodiment of the present application, the portable temperature control device may further include a communication module 106 connected to the control module 102. The communication module 106 is used to enable the portable temperature control device to obtain the temperature change trend of the working area of ​​the portable temperature control device from other devices (such as a server or the user's mobile phone or wearable device), or to obtain the user's work and rest parameters from the user's mobile phone or wearable device. The work and rest parameters are used to determine the user's work and rest time, such as the time to fall asleep, the time to fall asleep, and the time to wake up. The communication module 106 can be a Bluetooth module or a near field communication (NFC) module.

[0059] In one possible embodiment of the present application, to facilitate user operation of the portable temperature control device, the portable temperature control device may further include an interaction module 107 connected to the control module 102, through which the user may input target parameters to the portable temperature control device, and / or modify target parameters, or specify an operating mode or display relevant prompt information. For example, to more intuitively display relevant prompt information or input target parameters to the user, the interaction module 107 may be a display screen. Alternatively, the interaction module 107 may be a voice interaction device, through which the user may input target parameters to the portable temperature control device, and the portable temperature control device may also provide feedback of relevant prompt information to the user via the voice interaction device.

[0060] The following is a detailed explanation of a method for controlling a portable temperature regulating device provided in an embodiment of the present application.

[0061] Figure 2 A method for controlling a portable temperature control device is provided in an embodiment of the present application. The method can be performed by a first device, which can be the portable temperature control device or a device used in the portable temperature control device, such as a control module 102 or a chip. The first device can also be a device for managing the portable temperature control device, such as a server or a user's mobile phone. For example, after the user's mobile phone establishes a connection with the portable temperature control device, the user's mobile phone can control the operating mode of the portable temperature control device.

[0062] like Figure 2 As shown, the present application provides a method for controlling a portable temperature regulating device, the method comprising the following steps:

[0063] Step 201: The first device obtains target parameters set for the portable temperature adjustment device, where the target parameters include a target operating time and a target temperature.

[0064] For example, take the first device as a portable temperature control device with a display screen, such as Figure 3 As shown, step 201 can be implemented in the following manner: detecting an operation instruction input by the user on the display screen, the operation instruction carrying a target operating time (such as 6 hours) and a target temperature (such as 25 degrees Celsius).

[0065] For example, taking a portable temperature control device as an outdoor air conditioner (also known as a camping air conditioner or tent air conditioner), the target runtime represents the duration the user expects the outdoor air conditioner to operate. The runtime setting can be a time period. For example, if the user sets the outdoor air conditioner to start operating at 12:00 AM and end operating at 8:00 AM the next day, the runtime setting can also be a time period. For example, if the user sets the outdoor air conditioner to operate at 12:00 AM and set the operating time to operate for 8 hours, the outdoor air conditioner will need to operate until 8:00 AM the next day.

[0066] For example, the target temperature indicates the temperature that the outdoor air conditioner needs to set the ambient temperature in the working area to. For example, if the target temperature is 25°C, the outdoor air conditioner needs to adjust the ambient temperature to 25°C.

[0067] For another example, taking the first device as a portable temperature control device, regardless of whether the portable temperature control device has a display screen, the portable temperature control device can use a mobile phone connected to the portable temperature control device to set the target operating time and target temperature. For example, if the mobile phone is running an application software corresponding to the portable temperature control device, the user can enter the target operating time and target temperature in the application software. This improves the convenience of the user using the portable temperature control device when the portable temperature control device does not have the interaction module 107. Specifically, the portable temperature control device can establish a communication connection with the mobile phone via a communication interface.

[0068] Assuming the first device is the user's mobile phone, step 201 can be implemented in the following manner: the first device can obtain the target operating time and target temperature set by the user in the application software running on the mobile phone communicating with the first device.

[0069] Step 202: The first device obtains the remaining power of the power supply module 104 that supplies power to the portable temperature adjustment device.

[0070] When step 202 is performed by a device other than the portable temperature control device, step 202 can be implemented as follows: the first device obtains the remaining power of the power supply module 104 that provides power to the portable temperature control device from the portable temperature control device. Alternatively, the user can input the remaining power of the portable temperature control device into the first device, which is not limited in this embodiment of the present application. It is worth noting that for the portable temperature control device, the portable temperature control device can monitor the remaining power of its power supply module 104. This process is prior art and will not be repeated here.

[0071] Step 203: The first device obtains environmental parameters of the working area of ​​the portable temperature adjustment device, where the environmental parameters include the ambient temperature and ambient wind speed of the working area.

[0072] It is worth noting that if the portable temperature regulating device operates in a closed space (e.g., a tent or indoors), the environmental parameters of the working area may refer to the ambient temperature of the tent or indoors, rather than the ambient temperature outside the closed space. Of course, the working area may also refer to the interior space of the tent or the indoor space. Environmental parameters also include ambient wind force. In this embodiment, the portable temperature regulating device operates in a tent, and a vent is provided at the lower end of the tent. Air outside the tent can enter the tent through the vent to achieve air convection in the tent. In this step, the environmental parameters of the working area of ​​the portable temperature regulating device are obtained, and the opening or closing of the temperature control module 101 or the fan module 103 of the portable temperature regulating device can be determined based on the ambient temperature and ambient wind force in the environmental parameters.

[0073] As an example, taking the first device as a portable temperature control device, the portable temperature control device can use its own temperature detection module 105 to detect the ambient temperature of the working area of ​​the portable temperature control device. Alternatively, if the portable temperature control device does not have a temperature detection module 105, the user can input the ambient temperature of the working area of ​​the portable temperature control device into the portable temperature control device, or the first device can obtain the ambient temperature of the working area of ​​the portable temperature control device from the user's mobile phone. Of course, when the first device is not a portable temperature control device, the user can also provide the ambient temperature of the working area of ​​the portable temperature control device to the first device. This embodiment of the present application is not limited to this.

[0074] As another example, taking the first device as a portable temperature control device, the portable temperature control device may use its own anemometer or sensor to detect the ambient wind speed in the working area of ​​the portable temperature control device.

[0075] In addition to the above methods, the first device may also obtain the environmental parameters of the portable temperature control device's operating area through the following methods: for example, the first device may obtain the environmental parameters of the portable temperature control device's operating area from a weather server or other device. For example, the portable temperature control device may send a query request message to the weather server or other device (a user's mobile phone), where the query request message includes the portable temperature control device's current location information. The weather server or other device may then provide feedback to the first device based on the query request message regarding the environmental parameters of the portable temperature control device's operating area.

[0076] Step 204: The first device determines the total power consumption required when the portable temperature adjustment device operates according to the target parameters based on the space size of the working area, the target parameters, and the ambient temperature.

[0077] It can be understood that the total required power consumption specifically refers to: in order to meet the target parameters, the portable temperature adjustment device needs to consume power when operating in a normal operation mode.

[0078] It is worth noting that the normal operation mode refers to an operation mode with the lowest power consumption in order to ensure that the portable temperature adjustment device reaches the target temperature within the target time.

[0079] For example, in a cooling scenario, the normal operating mode includes cooling for a target operating time, stopping cooling after the temperature in the working area drops to the target temperature, and resuming cooling after the temperature in the working area exceeds the target temperature. At this time, the fan module 103 of the portable temperature control device can be turned off. Alternatively, the normal operating mode includes cooling for a period of time, stopping cooling after the temperature in the working area drops to the target temperature, performing ventilation during the cooling stop period, and resuming cooling after the temperature in the working area exceeds the target temperature, with ventilation stopped during the cooling period.

[0080] In the heating scenario, the normal operation mode includes running only heating for a period of time, adjusting the temperature in the working area to the target temperature (for example, 25°C), stopping heating, and continuing heating after the temperature in the working area drops to 15°C.

[0081] As another example, the normal operation mode refers to an operation mode that consumes the most power to ensure that the portable temperature control device reaches the target temperature within the target duration. For example, the normal operation mode includes the portable temperature control device being in cooling / heating mode for the target duration.

[0082] Optionally, in order to save power, when the portable temperature regulating device stops cooling or heating, the temperature control module 101 of the portable temperature regulating device is in a closed state.

[0083] The normal operating mode may be built into the portable temperature control device or set by the user, and this embodiment of the present application does not limit this.

[0084] It is understandable that even if a normal operating mode is set by default inside the portable temperature control device, the user can also modify the normal operating mode. When the user modifies the normal operating mode inside the portable temperature control device, the power required to consume when the portable temperature control device is running will be calculated based on the user-modified normal operating mode to meet the target parameters.

[0085] As another example, the total required power consumption is determined by the maximum power consumption and the minimum power consumption required to ensure that the portable temperature adjustment device reaches the target temperature within the target time. For example, the total required power consumption is the average of the maximum power consumption and the minimum power consumption.

[0086] Step 205: The first device controls the portable temperature control device to operate in a target operating mode based on the relationship between the remaining power and the total required power consumption, and the remaining power satisfies the power required for the portable temperature control device to operate in the target operating mode, wherein when the portable temperature control device operates in the target operating mode, the power consumed during the target operating time is less than or equal to the remaining power.

[0087] It is worth noting that the portable temperature regulating device has multiple operating modes, and the amount of electricity required for the operation of the portable temperature regulating device is different for different operating modes. According to the relationship between the remaining power of the portable temperature regulating device and the total required power consumption, the target operating mode is determined from the multiple operating modes. In order to ensure that the remaining power can support the portable temperature regulating device to operate at the target temperature for the target time when the remaining power does not meet the total required power consumption; the power consumed by the portable temperature regulating device in the target operating mode, when the remaining power meets the total required power consumption, is greater than when the remaining power does not meet the total required power consumption. When the remaining power meets the total required power consumption, the target operating mode can be a conventional operating mode. Of course, when the remaining power meets the total required power consumption, the target operating mode can also be other operating modes. The embodiments of the present application do not limit this.

[0088] When the first device is not a portable temperature control device, the portable temperature control device is controlled to operate in the target operating mode, specifically: the first device sends a control instruction to the portable temperature control device, and the control instruction includes the target operating mode. Accordingly, after the portable temperature control device receives the control instruction, it controls the internal modules (such as the temperature control module 101 and / or the fan module 103 and / or the power supply module 104) to operate according to the target operating mode carried by the control instruction.

[0089] In the case where the first device is a portable temperature control device, the portable temperature control device is controlled to operate in a target operating mode. Specifically, the control module 102 of the portable temperature control device sends a working instruction to each internal module according to the target operating mode, so that each module is turned on or off according to the working instruction. For example, if the target operating mode is cooling for the target operating time, the control module 102 of the portable temperature control device sends a cooling start instruction to the temperature control module 101. After receiving the start instruction, the temperature control module 101 turns on and begins cooling. When the target operating time ends, the control module 102 sends a shutdown instruction to the temperature control module 101 to trigger the temperature control module 101 to shut down.

[0090] It is worth noting that the target operating mode refers to cooling within a certain time period of the target operating time, which means that the temperature control module 101 needs to be turned on for cooling within a certain time period of the target operating time. If the target operating mode refers to heating within a certain time period of the target operating time, the temperature control module 101 needs to be turned on for heating within a certain time period of the target operating time. This is explained here and will not be repeated later.

[0091] An embodiment of the present application provides a control method for a portable temperature control device. The method obtains target parameters of the portable temperature control device, the remaining power of the power supply module 104, and environmental parameters, and then determines the total required power consumption of the portable temperature control device when operating according to the target parameters based on the spatial size of the working area of ​​the portable temperature control device, the target parameters, and the ambient temperature. Then, based on the relationship between the remaining power and the total required power consumption, the portable temperature control device is controlled to operate in a target operating mode. The target operating mode is the power required for the portable temperature control device to operate in the target operating mode when the target parameters are met. Since the scheme controls the operating mode of the portable temperature control device differently when the remaining power meets or does not meet the total required power consumption, and the power required for different operating modes is different, when the remaining power does not meet the total required power consumption, the remaining power can be guaranteed to support the target operating time of the portable temperature control device. This not only fully utilizes the remaining power but also improves the user experience.

[0092] Since the remaining power meets or does not meet the total required power consumption, there are differences in the manner in which the first device controls the portable temperature adjustment device to operate in the target operation mode, which will be described separately below:

[0093] (1) When the remaining power does not meet the total power consumption demand.

[0094] In one possible implementation of the present application, step 205 in the embodiment of the present application may be implemented in the following manner:

[0095] If the remaining power does not meet the total required power consumption, the first device controls the temperature control module 101 of the portable temperature control device to turn on during the start time period of the target operating time, and to turn off during other time periods of the target operating time, based on the target operating mode. In other words, the target operating mode may be cooling / heating during the start time period of the target operating time, and stopping cooling / heating during other time periods of the target operating time excluding the start time period.

[0096] The start time period refers to the period starting from the start time of the target runtime, and the other time periods refer to the period from the target runtime excluding the start time period.

[0097] As an example, the target operating mode determined by the first device refers to cooling or heating within a start time period of the target operating time.

[0098] In one possible implementation of the present application, the first device controls the temperature control module 101 of the portable temperature adjustment device to turn on during the start time period of the target operating time according to the target operating mode, and controls the temperature control module 101 to turn off during other time periods of the target operating time, including:

[0099] The first device controls the temperature control module 101 of the portable temperature adjustment device to be in the on state during the start time period, and at least controls the temperature control module 101 to be turned off during other time periods except the start time period within the target operating time. The temperature control module 101 is used to realize the cooling function and / or heating function.

[0100] For example, taking the first device as a portable temperature control device, starting from 12 noon, if the target operating time is 4 hours, the portable temperature control device can control the temperature control module 101 of the portable temperature control device to start working for cooling or heating within 1 hour starting from 12 noon, and the temperature control module 101 of the portable temperature control device is controlled to be turned off for the remaining 3 hours, that is, cooling or heating is stopped.

[0101] In one possible implementation of the present application, step 205 in the embodiment of the present application may be implemented in the following manner:

[0102] Step 1: The first device obtains the temperature change trend of the environmental parameters.

[0103] The temperature change trend specifically refers to the temperature change outside the operating area during the target operating time. Determining the target operating mode based on the temperature change trend can more accurately assign a more reasonable operating mode to the portable temperature control device that meets user expectations. The first device can obtain the temperature change trend through weather forecast information from a meteorological server.

[0104] In which case, when the remaining power does not meet the total required power consumption, the first device obtains the temperature change trend in the environmental parameters.

[0105] Step 2: The first device determines a target operating mode according to the temperature change trend and the target temperature. When the portable temperature adjustment device operates in the target operating mode, the operating time period of the temperature control module 101 of the portable temperature adjustment device is within the target operating time period.

[0106] Step 3: The first device controls the temperature control module 101 to turn on during the operation time period according to the determined target operation mode, and controls the temperature control module 101 to turn off during the time period outside the operation time period. The operation time period of the temperature control module 101 at least includes the start time period of the target operation time.

[0107] For example, if the temperature change trend within the target operating time indicates that the temperature changes in different time periods are very small, the target operating mode can be continuous cooling or continuous heating within the target operating time. For example, in a cooling scenario, if the user sets a target operating time of 3 hours and the target operating time starts at 12 noon, and the temperature from 12 noon to 3 pm is between 35°C and 37°C with very little temperature change, the target operating mode can be continuous cooling.

[0108] If the temperature trend indicates significant temperature variations between different time periods within the target operating time, the target operating mode can be continuous cooling or continuous heating for a period of time, followed by no cooling or heating for the remainder of the time. For example, in a cooling scenario, if the user sets a target operating time of 5 hours and the target operating time starts at 10 pm, if the temperature trend indicates that the ambient temperature drops from 35°C to 27°C from 10 pm to 1 am the next morning, and the temperature is between 27°C and 25°C after 1 am the next morning, indicating a significant temperature variation, the target operating mode can be cooling from 10 pm to 1 am the next morning, with no cooling from 1 am the next morning until the end of the target operating time.

[0109] The above temperature ranges are for illustration only and are not intended to be limiting.

[0110] In another possible embodiment of the present application, when the first device controls the temperature control module 101 to be turned off, and the portable temperature control device further includes a fan module 103, the method provided in this embodiment of the present application further includes: the first device controls the fan module 103 of the portable temperature control device to be turned on. Specifically, the first device controls the fan module 103 of the portable temperature control device to be turned on during time periods other than the start time period within the target operating time and / or during the start time period to provide ventilation.

[0111] For example, the target operating mode determined by the first device includes cooling / heating and ventilation during the initial period, and ventilation during the remaining period. For example, if the first device is a portable thermostat, and the target operating time is four hours, the portable thermostat can control cooling or heating and ventilation within one hour starting from the target operating time. For the remaining three hours, the portable thermostat stops cooling or heating and begins ventilation. Specifically, for example, the control module 102 controls the temperature control module 101 to turn on for cooling or heating within one hour starting from the target operating time. For the remaining three hours, the control module 102 controls the temperature control module 101 to turn on for cooling or heating. For the remaining three hours, the control module 102 controls the temperature control module 101 to turn off and the fan module 103 to turn on. In this embodiment, the fan module 103 is used to provide both air supply and ventilation functions. The portable thermostat has an air duct disposed between the working area and the external area. When the fan module 103 is turned on, ventilation is achieved through the duct. During specific use, the working area is the area inside the tent, and the external area is the area outside the tent.

[0112] In one embodiment of the present application, the start time period includes a first sub-time period and a second sub-time period. The target operating mode determined by the first device specifically includes cooling / heating + ventilation in the first sub-time period and cooling / heating + ventilation in the second sub-time period. The target operating mode also includes cooling / heating in the end time period of the operating time, or turning off the portable temperature control device.

[0113] In this embodiment, "shutdown" refers to powering off, not hibernation or standby. When the portable temperature control device is shut down, all modules except the temperature detection module 105 are shut down, while the temperature detection module 105 remains powered on. When the ambient temperature detected by the temperature detection module 105 exceeds the target temperature, the temperature detection module 105 sends an activation signal to the control module 102, which then activates the corresponding modules according to the corresponding operating mode. In other embodiments, "shutdown" may also refer to hibernation or standby.

[0114] The control method provided in the embodiment of the present application further includes: when the temperature control module 101 is controlled to be off, the first device controls the fan module 103 of the portable temperature adjustment device to be turned on according to a preset time interval.

[0115] For example, taking the first device as a portable temperature control device, the portable temperature control device controls the temperature control module 101 to turn off at 12 noon, and sets the preset time interval to 15 minutes. Then, the portable temperature control device controls the fan module 103 to turn on at 12:15 for ventilation.

[0116] Since the amount of oxygen required by users at different stages is different, for example, the amount of oxygen consumed by users in the early stages of falling asleep is higher than the amount of oxygen consumed by users in deep sleep, based on this, in one embodiment of the present application, the control method further includes:

[0117] During the start time period of the target operating time, the first device controls the fan module 103 of the portable temperature adjustment device to turn on.

[0118] The first device obtains oxygen demand information, and when the oxygen demand information is higher than the first demand information, controls the fan module 103 to operate at a first power, wherein the first power is higher than the second power.

[0119] Among them, oxygen demand information can be obtained based on the oxygen sensor built into the portable temperature control device, or through a wearable smart device worn by the user, such as a smart bracelet. The smart bracelet can monitor the user's pulse, heartbeat and other physiological parameters to obtain oxygen demand information.

[0120] The first demand information is a threshold of the user's oxygen demand when the user is not asleep, set by the user. When the oxygen demand information is higher than the first demand information, the portable temperature adjustment device controls the fan module 103 to operate at the first power to meet the user's oxygen demand.

[0121] When the oxygen demand information is lower than or equal to the first demand information and higher than the second demand information, the fan module 103 is controlled to operate at the second power. When the oxygen demand information is lower than the second demand information, the fan module 103 is controlled to be turned off. The first power is higher than the second power. The second demand information is a user-set oxygen level threshold for the initial onset of sleep. When the oxygen demand information is lower than or equal to the first demand information and higher than the second demand information, the portable temperature control device controls the fan module 103 to operate at the second power to meet the user's oxygen level requirement for the initial onset of sleep. When the oxygen demand information is lower than or equal to the second demand information, indicating that the user is in deep sleep, the portable temperature control device turns off the fan module 103. In other words, in this embodiment of the present application, the first device can control the operating power of the fan module 103 when it is turned on based on the user's oxygen demand at different time periods. In other embodiments, if the oxygen demand information is lower than the second demand information, the fan module 103 can be controlled to turn on at preset time intervals and operate at the lowest power during the on-time period to achieve a quiet effect while meeting the user's oxygen demand.

[0122] In one possible implementation of the present application, the method provided in an embodiment of the present application may further include: the first device obtaining an oxygen content in the work area, and accordingly, the first device controlling the fan module 103 to turn on, including: when the oxygen content is lower than a preset threshold, controlling the fan module 103 to turn on during a time period within the target operating time, excluding the first time period. Exemplarily, the preset threshold may be determined by the total number of users in the work area and the average oxygen consumption of each user.

[0123] In order to provide the user with a more comfortable environment, the above-mentioned starting time period can be determined by the user's sleeping stage and waking stage. For example, the temperature control module 101 can be controlled to turn on for cooling or heating in the time periods corresponding to the user's sleeping stage and waking stage, and the temperature control module 101 can be controlled to turn off in the time period corresponding to the deep sleep stage between the sleeping stage and the waking stage. Therefore, the following will describe the process of how to determine the first time period.

[0124] As an example, the first time period can be set by the user, for example, the user can set the user's schedule on the portable temperature control device or on a mobile phone connected to the portable temperature control device, such as what time to go to bed and the planned time to get up.

[0125] As another example, the first time period can be determined by the first device based on physiological parameter information obtained from a wearable device worn by the user. For example, the wearable device is a smart watch, which can monitor the user's pulse, heartbeat and other physiological parameter information. The physiological parameter information is used to determine the time period when the user is in a deep sleep stage. Of course, the physiological parameter information can include the time period at the beginning of falling asleep, the time period in the deep sleep stage, and the time period in the waking stage. The specific process is as follows: the first device obtains the user's physiological parameter information through the wearable device worn by the user, and the first device determines the first time period based on the physiological parameter information. The first time period does not include the time period when the user is in a deep sleep stage, and the time period other than the first time period within the running time includes the time period when the user is in a deep sleep stage. For example, if the running time is 8 hours and the start time is 11 pm, then the time period when the user is in a deep sleep stage is from 2 am to 5 am. Then the first time period is the time period from 11 pm to before 2 am, and the time period from 5 pm to 7 am.

[0126] (2) The situation where the remaining power meets the total power consumption demand.

[0127] The target operating mode determined by the first device is the normal operating mode. According to the relationship between the remaining power and the total required power consumption, the first device controls the portable temperature control device to operate in the normal operating mode, including: when the ambient temperature meets the target temperature, the first device controls the temperature control module 101 of the portable temperature control device to turn off, and when the ambient temperature does not meet the target temperature, controls the temperature control module 101 to turn on.

[0128] In one embodiment of the present application, when the remaining power meets the total required power consumption, the normal operation mode includes repeatedly executing the following process within the target operating time: the portable temperature adjustment device stops cooling or heating when the ambient temperature reaches the target temperature, and performs the cooling or heating function when the ambient temperature is different from the target temperature; accordingly, the above step 205 can be implemented in the following way: controlling the temperature control module 101 to turn on for a period of time during the operating time, controlling the temperature control module 101 to turn off when the ambient temperature reaches the target temperature, and re-controlling the temperature control module 101 to turn on when the ambient temperature exceeds or is lower than the target temperature.

[0129] It is worth noting that in the cooling scenario, the ambient temperature reaching the target temperature can mean that the ambient temperature is lower than or equal to the target temperature. The ambient temperature exceeding the target temperature means that the ambient temperature is higher than the target temperature. At this time, the temperature control module 101 is turned on for cooling.

[0130] In one embodiment of the present application, the portable temperature control device is an outdoor air conditioner, and the working area is a tent. The current temperature in the tent is 30°C, the remaining power of the outdoor air conditioner is 80%, the target temperature set by the user is 25°C, and the operating time is 8 hours. The outdoor air conditioner determines that the remaining power meets the set requirements, and then the outdoor air conditioner operates: first, the outdoor air conditioner operates the cooling module, and when the temperature in the tent drops to 25°C, the cooling module stops working, and the fan module 103 starts to ventilate. After a period of time, when the temperature in the tent exceeds 25°C again, the outdoor air conditioner turns on the cooling module again, turns off the fan module 103, and stops ventilating. This cycle continues for the set time of 8 hours.

[0131] In the heating scenario, the ambient temperature reaching the target temperature may mean that the ambient temperature is equal to or higher than the target temperature. The ambient temperature being lower than the target temperature means that the ambient temperature is lower than the target temperature. At this time, the temperature control module 101 is turned on to perform heating.

[0132] For example, the operating time is 8 hours, the starting time is 11 o'clock in the evening, and the target temperature is 25°C. Taking the first device as controlling a portable temperature control device and the cooling scenario as an example, the control module 102 of the portable temperature control device starts to trigger the temperature control module 101 to cool from 11 o'clock in the evening. After the temperature control module 101 cools for a period of time, the temperature detection module 105 determines that the ambient temperature is lower than or equal to 25°C, and then reports the temperature reaching the target to the control module 102. After the ambient temperature is lower than or equal to 25°C for a while (for example, 5 minutes or 10 minutes), the control module 102 controls the temperature control module 101 to turn off. When the temperature control module 101 is turned off, the temperature detection module 105 continues to detect the ambient temperature and reports the detected ambient temperature to the control module 102. When the control module 102 determines that the ambient temperature is higher than 25°C or higher than 25°C + a preset temperature difference threshold (for example, 5°), the control module 102 controls the temperature control module 101 to turn on again.

[0133] In another embodiment of the present application, the target operating mode determined by the first device refers to cooling or heating during the operating period. Accordingly, step 205 can be implemented in the following manner: the first device controls the temperature control module 101 to turn on during the operating period to cool or heat.

[0134] Taking the first device as a portable temperature control device as an example, specifically, the first device controls the temperature control module 101 to turn on during the operating period for cooling or heating in the following manner: the control module 102 sends a start-operation instruction to the temperature control module 101, and the start-operation instruction instructs the temperature control module 101 to start cooling or heating. Taking the first device as an example of a device other than a portable temperature control device, then the first device controls the temperature control module 101 to turn on during the operating period for cooling or heating in the following manner: the first device sends a determined target operating mode to the portable temperature control device, the communication module 106 of the portable temperature control device receives the target operating mode, and then the control module 102 sends a start-operation instruction to the temperature control module 101 based on the target operating mode.

[0135] Specifically, after the operating time period, the first device controls the portable temperature adjustment device to turn off.

[0136] In one embodiment of the present application, to save power, the fan module 103 of the portable temperature control device is controlled to be turned on during the time period when the temperature control module 101 is turned off; and / or, the fan module 103 of the portable temperature control device is controlled to be turned off during the time period when the temperature control module 101 is turned on. In other words, in a cooling scenario, if the temperature control module 101 is turned on for cooling, the fan module 103 can be turned off to save power. During the time period when the temperature control module 101 is turned off, the fan module 103 can be turned on to lower the ambient temperature of the working area, thereby utilizing the fan module 103 to reduce the ambient temperature.

[0137] In one embodiment of the present application, step 204 specifically includes: the first device obtains the power consumed by the portable temperature control device during operation within the working area for a preset time. The first device calculates the total required power consumption based on the power, the temperature difference between the working area and the preset time, and the power consumed by the portable temperature control device during the preset time.

[0138] In one embodiment of the present application, step 204 may be implemented by the following method 1 or method 2:

[0139] Method 1 includes steps A and B. Method 1 can also be called manual mode. Method 2 includes steps C and D. Method 2 can also be called automatic mode.

[0140] Step A: The first device obtains the cooling / heating space of the working area.

[0141] For example, taking the first device as a portable temperature control device, the user can input the dimensional parameters of the working area, such as length, width, and height, into the interactive module 107 or a mobile phone connected to the portable temperature control device. The portable temperature control device can then determine the cooling / heating volume of the working area based on the dimensional parameters of the working area. Cooling / heating volume V = length of working area * width of working area * height of working area. Alternatively, the user can input the cooling / heating volume value they have measured into the portable temperature control device via the interactive module 107 or a mobile phone connected to the portable temperature control device.

[0142] In one possible embodiment of the present application, the user enters the length, width, and height of the tent through the outdoor air conditioner's operating panel. The outdoor air conditioner then calculates the tent's temperature-control space based on the length, width, and height of the tent, i.e., the temperature-control space is calculated as length * width * height. The outdoor air conditioner estimates power consumption based on this temperature-control space, the ambient temperature in the tent, the user-set target temperature, and the target operating duration, thereby determining whether the current remaining power can meet the user's set temperature and operating duration requirements. It is worth noting that this temperature-control space is an estimate because, in actual applications, tents are conical in shape, and their actual space is smaller than the calculated space.

[0143] Step B: The first device calculates the total required power consumption according to the cooling / heating space, environmental parameters and target temperature.

[0144] During the specific operation process, if the total required power consumption is calculated through steps A and B, in order to more accurately estimate the power consumption and control the subsequent operation mode, the precise power consumption can be determined based on the length, width and height input by the user.

[0145] It is understood that if the first device is a portable temperature control device, due to the limited processing capabilities of the control module 102 of the portable temperature control device, the portable temperature control device can also obtain the total power consumption demand through the following methods. For example, the portable temperature control device reports the cooling / heating space in the working area to the mobile phone or server, which then calculates the total power consumption demand based on the cooling / heating space in the working area. The mobile phone or server then feeds the total power consumption demand back to the portable temperature control device.

[0146] In one embodiment of the present application, the above step 204 may be implemented in the following manner:

[0147] Step C: The first device obtains the power consumed by the portable temperature adjustment device when it runs in the working area for a preset time.

[0148] Step D: The first device calculates the total required power consumption according to the power, the temperature difference of the working area during the preset time, and the power consumed by the portable temperature adjustment device during the preset time.

[0149] In another possible embodiment of the present application, the portable thermostat further includes a first control and a second control. When the first control is triggered, the portable thermostat prompts the user to enter parameters for determining the cooling / heating space of the operating area, such as length, width, and height, or specific area values. When the second control is triggered, the portable thermostat determines the total required power consumption in automatic mode.

[0150] In a possible embodiment of the present application, the outdoor air conditioner is set to a preset time of 5 minutes, and the outdoor air conditioner runs for 5 minutes. Then, based on the power consumed by the outdoor air conditioner within 5 minutes, the temperature difference in the tent and the power consumption, the total power consumption for the running time set by the user is estimated.

[0151] In a possible embodiment of the present application, the method provided in the embodiment of the present application further includes: when the remaining power of the first device is lower than a preset power threshold or cannot match the target operating mode, the first prompt message is sent. The first prompt message is used to prompt whether the remaining power cannot meet the total required power consumption and whether to modify the target parameters. For example, the control module 102 of the portable temperature adjustment device sends the first prompt message through the interactive module 107. The first prompt information can be displayed on the display screen, or it can be prompted to the user in the interactive module 107 by voice. When the new target parameters are obtained, the total required power consumption is recalculated according to the new target parameters.

[0152] Specifically, when the remaining power cannot meet the total required power consumption, and the operating mode that makes the remaining power meet the total required power consumption has not been determined, the portable temperature control device sends a first prompt message, which is also used to prompt whether to modify the target parameters. Optionally, if the user modifies the target parameters, such as changing the target duration from 8 hours to 6 hours, and / or changing the target temperature from 25°C to 28°C, the portable temperature control device determines the total required power consumption based on the modified target parameters.

[0153] In a possible implementation of the present application, when the remaining power cannot meet the total power consumption demand, the prompt message sent is also used to prompt the user whether to modify the target parameters of the outdoor air conditioner, in the form of a dialog box on the display interface of the outdoor air conditioner or the application software of the terminal, such as Figure 4 and Figure 5 The dialog box contains two options: "Yes" and "No". If "Yes" is selected, the target parameter setting interface will be redisplayed on the display interface of the outdoor air conditioner or the terminal application software, allowing the user to reset the target parameters. If "No" is selected, the outdoor air conditioner will operate according to the previously set candidate operation mode.

[0154] Optionally, if the user does not perform any operation after a certain period of time (e.g., 10 seconds) after a dialog box prompting the user whether to modify the target parameters of the outdoor air conditioner appears, the outdoor air conditioner will select "No" by default and calculate the total power consumption according to the originally set target parameters.

[0155] In one possible embodiment of the present application, the method provided in the embodiment of the present application further includes: after the portable temperature control device determines a candidate operating mode for the portable temperature control device, the portable temperature control device prompts the user with the candidate operating mode through a second prompt message. When the portable temperature control device detects that the user has triggered a modification of the candidate operating mode, if the remaining power can meet the power required to operate in the modified candidate operating mode, the target operating mode is the modified operating mode. When the portable temperature control device detects that the user has determined the candidate operating mode, the target operating mode is the candidate operating mode.

[0156] It can be understood that the candidate operating modes may include one or more operating modes, which makes it convenient for the user to select an operating mode from the one or more operating modes as the target operating mode.

[0157] Figure 6 The present application provides a control device 30 for a portable temperature regulating device, comprising:

[0158] The receiving module 301 is configured to obtain target parameters set for the portable temperature adjustment device, where the target parameters include a target operating time and a target temperature.

[0159] The acquisition module 302 is configured to acquire the remaining power of a power supply module for supplying power to the portable temperature control device; and acquire environmental parameters of a working area of ​​the portable temperature control device, wherein the environmental parameters include the ambient temperature of the working area.

[0160] The calculation module 303 is used to determine the total power consumption required when the portable temperature adjustment device operates according to the target parameters based on the space size of the working area, the target parameters and the ambient temperature.

[0161] The operation module 304 controls the portable temperature control device to operate in a target operation mode according to the relationship between the remaining power and the total required power consumption, wherein the power consumed by the portable temperature control device when operating in the target operation mode for a target operation time is less than or equal to the remaining power.

[0162] It should be noted that the device for controlling a portable temperature regulating device provided in the above embodiment is only illustrated by the division of the above functional modules. In actual applications, the above functions can be assigned to different functional modules as needed, that is, the internal structure of the device can be divided into different functional modules to complete all or part of the functions described above.

[0163] Figure 7 A processing device 40 provided in this application includes a memory 401, a processor 402, and a computer program 403 stored in the memory 401 and executable on the processor 402. When the processor 402 executes the computer program 403, the control method of the portable temperature regulating device described above is implemented.

[0164] The processor 402 may be a central processing unit (CPU), or may be another general-purpose processor, a digital signal processor (DSP), an application-specific integrated circuit (ASIC), an off-the-shelf programmable gate array (FPGA), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. A general-purpose processor may be a microprocessor or any conventional processor.

[0165] If the integrated unit is implemented as a software functional unit and sold or used as a standalone product, it can be stored in a computer-readable storage medium. Based on this understanding, the present application can implement all or part of the processes in the above-mentioned method embodiments by using a computer program to instruct the relevant hardware. The computer program can be stored in a computer-readable storage medium. When executed by a processor, the computer program can implement the steps of each of the above-mentioned method embodiments. The computer program includes computer program code, which can be in source code form, object code form, executable file, or some intermediate form. The computer-readable medium can at least include: any entity or device capable of carrying the computer program code to the camera / terminal device, recording medium, computer memory, ROM (Read-Only Memory), RAM (Random Access Memory), CD-ROM (Compact Disc Read-Only Memory), magnetic tape, floppy disk, and optical data storage device. The computer-readable storage medium mentioned in the present application can be a non-volatile storage medium, in other words, a non-transitory storage medium.

[0166] The functional units and modules in the above embodiments may be integrated into a single processing unit, or each unit may exist physically separately, or two or more units may be integrated into a single unit. The above integrated units may be implemented in the form of hardware or software functional units. In addition, the specific names of the functional units and modules are only for the purpose of distinguishing them from each other and are not intended to limit the scope of protection of the embodiments of this application.

[0167] The control device of the portable temperature regulating device provided in the above embodiment and the control method embodiment of the portable temperature regulating device belong to the same concept. The specific working process of the units and modules in the above embodiment and the technical effects brought about can be found in the method embodiment part and will not be repeated here.

[0168] In the above embodiments, the description of each embodiment has its own focus. For parts that are not described or recorded in detail in a certain embodiment, reference can be made to the relevant description of other embodiments.

[0169] Those skilled in the art will appreciate that the units and algorithm steps of each example described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are performed in hardware or software depends on the specific application and design constraints of the technical solution. Professional and technical personnel can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of this application.

[0170] In the embodiments provided in this application, it should be understood that the disclosed apparatus / computer equipment and methods can be implemented in other ways. For example, the apparatus / computer equipment embodiments described above are merely schematic. For example, the division of modules or units is merely a logical function division. In actual implementation, there may be other division methods, such as multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be through some interfaces, indirect coupling or communication connection of the apparatus or unit, which can be electrical, mechanical or other forms.

[0171] Units described as separate components may or may not be physically separate, and components shown as units may or may not be physical units, that is, they may be located in one place or distributed across multiple network units. Some or all of these units may be selected to achieve the purpose of this embodiment according to actual needs.

[0172] The above-described embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them. Although the present application has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. These modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present application, and should all be included in the scope of protection of the present application.

Claims

1. A method for controlling a portable temperature regulating device, characterized in that: include: acquiring target parameters set for the portable temperature regulating device, the target parameters including a target operating time and a target temperature; Obtaining the remaining power of a power supply module that supplies power to the portable temperature regulating device; Acquiring environmental parameters of a working area of ​​the portable temperature regulating device, wherein the working area includes an enclosed space, and the environmental parameters include an ambient temperature of the working area, ambient wind speed, and a temperature change trend outside the working area, wherein the temperature change trend is acquired through weather forecast information; determining, based on the size of the working area, the target parameters, and the environmental parameters, the total power consumption required when the portable temperature adjustment device operates according to the target parameters; controlling the portable temperature control device to operate in a target operating mode according to a relationship between the remaining power and the total required power consumption, and when the portable temperature control device operates in the target operating mode, turning on a temperature control module of the portable temperature control device during an operating time period within the target operating duration, and turning off the temperature control module during time periods other than the operating time period; the operating time period being less than or equal to the target operating duration; In which, the portable temperature control device has multiple operating modes, and different operating modes require different amounts of power; when the portable temperature control device operates in the target operating mode, it sends work instructions to each module inside it according to the target operating mode, so that each module is turned on or off according to the work instructions; when the portable temperature control device operates in the target operating mode, the power consumed during the target operating time is less than or equal to the remaining power.

2. The control method according to claim 1, characterized in that: The controlling the portable temperature adjustment device to operate in a target operation mode according to the relationship between the remaining power and the total required power consumption includes: When the remaining power does not meet the total required power consumption, the starting time period of the target operating time is used as the operating time period, and the temperature control module is controlled to be turned on during the operating time period, and the temperature control module is controlled to be turned off during other time periods of the target operating time.

3. The control method according to claim 1, wherein: The controlling the portable temperature adjustment device to operate in a target operation mode according to the relationship between the remaining power and the total required power consumption includes: When the remaining power does not meet the total required power consumption, obtaining a temperature change trend in the environmental parameter; determining the operating time period of the temperature control module of the portable temperature adjustment device according to the temperature change trend and the target temperature, wherein the operating time period is within the target operating time; Controlling the temperature control module to be turned on during the operating time period, and controlling the temperature control module to be turned off during time periods outside the operating time period; The operating time period of the temperature control module at least includes a start time period of the target operating time.

4. The control method according to claim 3, characterized in that: The control method further includes: When the temperature control module is controlled to be turned off, the fan module of the portable temperature regulating device is controlled to be turned on.

5. The control method according to claim 3, characterized in that: The control method further includes: When the temperature control module is controlled to be turned off, the fan module of the portable temperature regulating device is controlled to be turned on according to a preset time interval.

6. The control method according to claim 2, characterized in that: The control method further includes: Controlling the fan module of the portable temperature regulating device to turn on within a starting time period of the target operating time; Obtain oxygen demand information; When the oxygen demand information is higher than the first demand information, controlling the fan module to operate at a first power; When the oxygen demand information is lower than or equal to the first demand information and higher than the second demand information, controlling the fan module to operate at the second power; When the oxygen demand information is lower than or equal to the second demand information, controlling the fan module to turn off; The first power is higher than the second power.

7. The control method according to claim 1, characterized in that: The target operating mode is a normal operating mode, and controlling the portable temperature adjustment device to operate in the target operating mode according to the relationship between the remaining power and the total required power consumption includes: When the remaining power meets the total required power consumption, controlling the portable temperature control device to operate in a normal operation mode; the normal operation mode includes: controlling the temperature control module of the portable temperature control device to turn off when the ambient temperature meets the target temperature, and controlling the temperature control module to turn on when the ambient temperature does not meet the target temperature; Correspondingly, the operating time period is a time period during which the ambient temperature does not meet the target temperature.

8. The control method according to any one of claims 1 to 6, characterized in that: The determining, based on the space size of the working area, the target parameter, and the ambient temperature, the total power consumption required when the portable temperature adjustment device operates according to the target parameter includes: obtaining the power consumed by the portable temperature regulating device when operating within the working area for a preset time; The total required power consumption is calculated according to the power, the temperature difference of the working area during the preset time, and the power consumed by the portable temperature adjustment device during the preset time.

9. The control method according to any one of claims 1 to 6, characterized in that: The control method further includes: When the remaining power is lower than a preset power threshold or cannot match the target operating mode, a first prompt message is sent, wherein the first prompt message is used to prompt that the remaining power cannot meet the total required power consumption and whether to modify the target parameter; When new target parameters are obtained, the total required power consumption is recalculated according to the new target parameters.

10. A processing device, characterized in that The device includes a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the control method of the portable temperature regulating device according to any one of claims 1 to 9 is implemented.

Citation Information

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