An air conditioner control method, electronic device, storage medium and system
By acquiring human physiological indicators to control the operating parameters of air conditioning terminal equipment, the problem that existing air conditioners cannot take into account users' thermal comfort has been solved, enabling personalized temperature adjustment and improving the comfort of office seats.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- HUNAN UNIV
- Filing Date
- 2023-09-13
- Publication Date
- 2026-07-21
AI Technical Summary
Existing air conditioning terminal equipment cannot meet the unique thermal comfort needs of each user in a large space. Radiative heat transfer is slow to respond, while convective heat transfer creates a drafty feeling, affecting comfort.
By acquiring users' physiological indicators, the operating parameters of convection and radiative heat transfer devices are controlled to match the set threshold range, thereby achieving personalized temperature regulation.
It improves the fit of office seating environment temperature, enhances user thermal comfort, reduces draft sensation, and improves overall comfort.
Smart Images

Figure CN117167939B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of air conditioning technology, and in particular to an air conditioning control method, electronic device, storage medium and system. Background Technology
[0002] In related technologies, most new air conditioning terminals are based on large-space terminal devices to improve indoor temperature uniformity. There are relatively few new personal comfort systems designed for individual, localized comfort. Furthermore, existing new air conditioning terminals often consider only single aspects such as structure, energy storage, materials, and control in their design, lacking personalized new air conditioning terminal products that combine multiple innovative types. Moreover, terminal designs based on large spaces cannot take into account the unique thermal comfort needs of each user within the space. In addition, terminals using radiant heat transfer methods respond slowly to users' dynamic thermal demands, while terminals using convective heat transfer methods inevitably experience a draft, affecting comfort. Summary of the Invention
[0003] This application aims to address at least one of the technical problems existing in the prior art. To this end, this application proposes an air conditioning control method, electronic device, storage medium, and system that controls the operating parameters of convection and radiative heat transfer devices based on the human physiological indicators of users in office seats, so that the ambient temperature in the office seat is more in line with the user's thermal comfort needs, thereby improving comfort.
[0004] According to an embodiment of the air conditioning control method of this application, the air conditioner includes a convection device and a radiative heat transfer device. The convection device is used to supply air to the office seat, and the radiative heat transfer device is used to radiate heat to the office seat. The control method includes the following steps:
[0005] The system acquires the user's physiological indicators and detects the current operating mode of the air conditioner; wherein the operating mode includes cooling mode and / or heating mode.
[0006] Once the human physiological index is determined to be greater than a first threshold and the operating mode is determined, the convection device and / or the radiative heat transfer device are controlled to adjust their operating parameters so that the human physiological index matches the set threshold range.
[0007] The system determines that the human physiological index is less than a second threshold and determines the operating mode. Based on the operating mode, it controls the convection device and / or the radiative heat transfer device to adjust their operating parameters so that the human physiological index matches the set threshold range.
[0008] Furthermore, the human physiological indicators include pulse rate, wrist temperature, heart rate, or blood oxygen saturation.
[0009] Furthermore, if the operating mode is determined to be cooling mode and the human physiological index is greater than the first threshold: control the convection device to increase the air supply speed; or control the radiative heat transfer device to turn on and / or control the convection device to operate at the lowest air speed setting.
[0010] Furthermore, if the operating mode is determined to be cooling mode and the human physiological index is less than the second threshold: reduce the fan speed of the convection device or turn off the convection device; or, turn off the radiative heat transfer device.
[0011] Furthermore, if the operating mode is determined to be a heating mode, and the human physiological index is greater than the first threshold: reduce the wind speed of the convection device or turn off the convection device; or at least partially turn off the radiative heat transfer device.
[0012] Further, if the operating mode is determined to be a heating mode, and the human physiological index is less than the second threshold: control the convection device to operate at the lowest fan speed; or turn on at least part of the radiant heat transfer device. In another embodiment of this application, an electronic device includes a storage device and a processor. The storage device stores a computer program, and the processor executes the computer program to implement the air conditioning control method as described above.
[0013] In another embodiment of this application, a storage medium stores a plurality of instructions for being loaded by a processor and executed as described above in the air conditioning control method.
[0014] Another embodiment of the workstation-type integrated system of this application includes the storage medium as described above, and further includes:
[0015] Office seating;
[0016] The heat exchange assembly includes a convection device and a radiative heat transfer device. The convection device has an air outlet for supplying air to the office seat. The radiative heat transfer device includes at least one radiant plate disposed on the office seat.
[0017] A detection device for detecting the human physiological indicators of the user of the office seat;
[0018] A control device is electrically connected to the detection device, the convection device, and the radiative heat transfer device. The detection device is used to acquire the human physiological indicators of the user of the office seat and to control the convection device and the radiative heat transfer device based on the human physiological indicators.
[0019] Furthermore, the workstation-based integrated system also includes:
[0020] A noise meter and a silencer are both connected to the control device. The noise meter is used to detect the noise level in decibels at the office seat, and the silencer is used to eliminate ambient noise at the office seat; and / or,
[0021] A photosensitive sensor and a light strip are both electrically connected to the control device. The photosensitive sensor is used to identify the illumination level of the office seat, and the control device controls the illuminance of the light strip based on the illumination level obtained by the photosensitive sensor; and / or,
[0022] A face recognition camera electrically connected to the control device.
[0023] The aforementioned air conditioning control method, electronic equipment, storage medium, and system have at least the following beneficial effects: By monitoring the physiological indicators of users in office seats and detecting the current operating mode of the air conditioner, the operating parameters of the air conditioner's convection and radiative heat transfer devices are controlled according to the physiological indicators and the current operating mode, so that the physiological indicators are re-matched with the set threshold range. Since physiological indicators change with the ambient temperature of the office seat, this application, by monitoring the physiological indicators of users in office seats and controlling the operating parameters of the convection and radiative heat transfer devices accordingly, can make the ambient temperature of the office seat more closely match the user's thermal comfort needs. Simultaneously, using convection and radiative heat transfer devices to regulate the ambient temperature of the office seat can improve the problem of slow response to the dynamic thermal demands of users at the end of a single radiative heat transfer method, and also helps to reduce the drafty feeling at the end of a single convective heat transfer method, thereby improving the comfort of the office seat.
[0024] Additional aspects and advantages of this application will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this application. Attached Figure Description
[0025] The present application will be further described below with reference to the accompanying drawings and embodiments, wherein:
[0026] Figure 1 This is a schematic diagram of the structure of a workstation-type integrated system in one embodiment;
[0027] Figure 2 for Figure 1 A partial structural diagram of the workstation-type integrated system in China;
[0028] Figure 3 for Figure 2 A frontal view diagram;
[0029] Figure 4 for Figure 3 Rear view diagram;
[0030] Figure 5 Here is a flowchart of an air conditioning control method in one embodiment;
[0031] Figure 6 Here is a control flowchart of an air conditioning control method in one embodiment;
[0032] Figure 7 Here is a control flowchart of an air conditioning control method in one embodiment;
[0033] Figure 8 Here is a control flowchart of an air conditioning control method in one embodiment;
[0034] Figure 9 Here is a control flowchart of an air conditioning control method in one embodiment;
[0035] Figure 10 This is a schematic diagram of the control connection of a workstation-type integrated system in one embodiment.
[0036] Figure label:
[0037] 100. Office seat; 110. Desktop radiant panel; 120. Left side of the desk radiant panel; 130. Front of the desk radiant panel; 140. Right side of the desk radiant panel; 150. Guide rail; 160. Lower movable desk radiant panel;
[0038] 200. Heat exchanger assembly; 211. Air terminal unit; 2111. Air outlet; 212. Air duct module; 213. Retractable air duct;
[0039] 300. Heat exchange and energy storage components; 310. Refrigeration unit; 320. Energy storage tank; 331. First control valve; 332. Second control valve; 333. Third control valve; 334. Fourth control valve; 335. Fifth control valve; 336. Sixth control valve; 341. First circuit; 342. Second circuit; 351. First water pump; 352. Second water pump;
[0040] 410. Speaker; 420. Facial recognition camera; 430. Muffler; 440. Photosensitive sensor; 450. Noise meter;
[0041] 500. Control device. Detailed Implementation
[0042] The embodiments of this application are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting this application.
[0043] In the description of this application, it should be understood that the orientation descriptions, such as up, down, front, back, left, right, etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.
[0044] In the description of this application, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.
[0045] In the description of this application, unless otherwise expressly defined, terms such as "setup," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this application in conjunction with the specific content of the technical solution.
[0046] In the description of this application, the terms "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., refer to specific features, structures, materials, or characteristics described in connection with that embodiment or example, which are included in at least one embodiment or example of this application. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0047] Another embodiment of this application discloses a workstation-type integrated system controlled by the air conditioning control method of this application, and also includes an office seat 100, a heat exchange component 200, a detection device and a control device 500.
[0048] Specifically, the office seat 100 includes a desk, which is assembled from one or more radiant panels. It should be understood that the radiant panels can also be installed on various walls of the desk, and this is not limited thereto. The heat exchange assembly 200 includes a convection device and a radiant heat transfer device. The convection device has an air outlet 2111 for supplying air to the office seat 100. The radiant heat transfer device includes at least one radiant panel installed on the office seat 100. The heat exchange assembly 200 has cooling and heating functions and can regulate the ambient temperature of the office seat 100 through the convection device and the radiant heat transfer device. A detection device is used to detect the human physiological indicators of the user of the office seat 100. A control device 500 is electrically connected to the detection device, the convection device, and the radiant heat transfer device. The detection device is used to acquire the human physiological indicators of the user of the office seat 100 and to control the convection device and the radiant heat transfer device based on these indicators.
[0049] In one specific implementation, the office seat 100 is equipped with a heat exchange component 200 and a heat exchange and energy storage component 300. The heat exchange component 200 includes a convection device and a radiative heat transfer device, which can simultaneously regulate the temperature of the office seat 100 area. The heat exchange and energy storage component 300 provides cooling or heating to the convection device and the radiative heat transfer device. The radiative heat transfer device does not generate convective airflow when regulating the temperature. With the heat exchange demand remaining constant, the radiative heat transfer device can share some of the heat exchange demand, helping to reduce the heat exchange demand of the convection device. Therefore, the blowing intensity of the convection device can be effectively reduced, thereby reducing the feeling of draft and effectively improving the comfort of the office environment. In this embodiment, the convection device includes an air terminal device 211, which has an air outlet 2111.
[0050] It is worth understanding that heat exchange demand includes both cooling and heating demand. That is to say, the workstation-type air conditioning integrated system of this application embodiment includes a cooling mode and a heating mode, which can regulate the temperature of the office seat 100 through cooling or heating.
[0051] Further, see Figure 1As shown, the heat exchange and energy storage assembly 300 includes a refrigeration unit 310, an energy storage tank 320, and a control valve group. The refrigeration unit 310 and the energy storage tank 320 are connected in parallel, and the main circuits of both the refrigeration unit 310 and the energy storage tank 320 are connected to the convection device and the radiant heat transfer device. During normal operation, the refrigeration unit 310 provides heat or cooling to the convection device and the radiant heat transfer device, which can change the temperature of the air blown out by the convection device and the temperature of the radiant panel, thereby regulating the temperature of the office seating area 100. When the convection device and the radiant heat transfer device are not in use or are at a low power consumption period, the cold or hot water prepared by the refrigeration unit 310 does not flow through the convection device or the radiant panel, but is instead transported to the energy storage tank 320 and stored therein. During peak electricity consumption periods or when there is a power shortage, the cold or hot water stored in the energy storage tank 320 is delivered to the air terminal device 211 and / or the radiant panel. The energy stored in the energy storage tank 320 is used to continue to provide cooling or heating to users, so as to maintain the ambient temperature of the office seating area 100 and ensure the comfort of the office seating area 100.
[0052] Further, see Figure 1 As shown, the main circuit includes a first circuit 341 and a second circuit 342. The heat exchange and energy storage assembly 300 also includes a first water pump 351 and a second water pump 352. The control valve group includes a first control valve 331, a second control valve 332, a third control valve 333, a fourth control valve 334, a fifth control valve 335, and a sixth control valve 336. The first circuit 341 is equipped with the first control valve 331. The two ends of the refrigeration unit 310 are respectively equipped with the second control valve 332 and the third control valve 333. The second circuit 342 is equipped with the second water pump 352 and the fourth control valve 334. The first water pump 351 and the fifth control valve 335 are connected in series with the energy storage tank 320. The sixth control valve 336 is connected in parallel with the first water pump 351 and the second control valve 332.
[0053] During normal operation, the first control valve 331, the second control valve 332, the third control valve 333, the fourth control valve 334, and the second water pump 352 are opened, and the chilled / hot water prepared by the refrigeration unit 310 flows in the refrigeration unit 310 and the air terminal device 211 or the radiant panel to drive the air terminal device 211 and / or the radiant panel to perform cooling or heating operations.
[0054] When the terminal equipment is not in use or during off-peak hours, the first control valve 331, the fourth control valve 334 and the second water pump 352 are closed, while the second control valve 332, the third control valve 333, the fifth control valve 335 and the first water pump 351 are open. Cold / hot water flows between the chiller unit 310 and the energy storage tank 320. At this time, the cold or hot water prepared by the chiller unit 310 does not flow through the air terminal device 211 or the radiant panel, but is stored in the energy storage tank 320.
[0055] During peak electricity consumption periods or when there is a power shortage, the second control valve 332, the third control valve 333, the fifth control valve 335, and the first water pump 351 are closed, while the first control valve 331, the fourth control valve 334, the sixth control valve 336, and the second water pump 352 are opened. At this time, the cold or hot water stored in the energy storage tank 320 is transported to the air terminal device 211 and / or the radiant panel to regulate the temperature of the office seat 100 area, which helps to maintain the comfort of the microenvironment around the office seat 100.
[0056] In this embodiment, see Figure 2 As shown, the convection device includes an air terminal device 211, a retractable air duct 213, and an air duct module 212. The air terminal device 211 is located on one side of the office seat 100 and has at least one air outlet 2111. The retractable air duct 213 connects the air terminal device 211 and the air duct module 212.
[0057] Furthermore, the heat exchange and energy storage assembly 300 also includes a power supply component for providing electrical energy to the heat exchange and energy storage assembly 300. Specifically, the power supply component can provide power to the second water pump 352 and various control valves, so that the heat exchange and energy storage assembly 300 can deliver cold or hot water stored in the energy storage tank 320 to the air terminal device 211 and / or radiant panel in the event of a power outage or power shortage, thereby maintaining the continued operation of the heat exchange assembly 200.
[0058] It is understandable that the refrigeration unit 310 prepares chilled or hot water according to the temperature of the current season. For example, when the current season is summer, the refrigeration unit 310 prepares chilled water to meet the cooling needs of the office seat 100; when the current season is winter, the refrigeration unit 310 prepares hot water to meet the heating needs of the office seat 100.
[0059] In this embodiment, see Figures 2 to 4 As shown, the radiant panel includes a front table radiant panel 130, a right table radiant panel 140, a left table radiant panel 120, a desktop radiant panel 110, a lower movable table radiant panel 160, and a guide rail 150. The guide rail 150 is installed below the desktop radiant panel 110, and the lower movable table radiant panel 160 can move along the guide rail 150. By moving the lower movable table radiant panel 160, the distance between the lower movable table radiant panel 160 and the user can be changed, thereby changing the intensity of temperature regulation.
[0060] In some embodiments, the workstation integrated system also includes a noise meter 450 and a silencer 430, both connected to the control device 500. The noise meter 450 is used to detect the noise decibel value of the office seat 100, and the silencer 430 is used to eliminate the ambient noise of the office seat 100.
[0061] In some embodiments of this application, see Figure 4 As shown, the office seat 100 is also equipped with a noise tester 450, a silencer 430 and a speaker 410, all of which are electrically connected to the control device 500.
[0062] As one implementation method, see Figure 4 and Figure 10 A noise meter 450 is installed behind the desk directly in front of the workstation and is connected to the control device 500 to detect the noise level in decibels around the workstation. A silencer 430 is also placed behind the desk. According to design standards, the decibel level in an office environment should be below 45 decibels. When the noise meter 450 detects that the decibel level around the workstation exceeds 45 decibels, it sends a signal to the control device 500. After receiving and processing the signal, the control device 500 transmits an electrical signal to the silencer 430, which automatically activates upon receiving the signal to eliminate ambient noise. Simultaneously, users can connect to the control device 500 via Bluetooth and manually adjust their personal acceptable decibel threshold settings on their mobile phones. Furthermore, users can select different types of white noise according to their preferences, sending these preferences to the control device 500 for playback through the desktop speaker 410. Figure 10 The control system in this embodiment is the control device 500.
[0063] In some embodiments, the workstation integrated system also includes a photosensitive sensor 440 and a light strip, both electrically connected to the control device 500. The photosensitive sensor 440 is used to identify the illumination level of the office seat 100, and the control device 500 controls the illumination level of the light strip based on the illumination level obtained by the photosensitive sensor 440.
[0064] In some embodiments, the workstation-based integrated system also includes a face recognition camera 420 electrically connected to the control device 500.
[0065] Another embodiment of this application discloses an air conditioning control method. The air conditioner includes a convection device and a radiant heat transfer device. The convection device is used to supply air to an office seat 100, and the radiant heat transfer device is used to radiate heat to the office seat 100. Specifically, the convection device includes an air terminal device 211, which has an air outlet 2111 for supplying air to the office seat 100. The radiant heat transfer device includes at least one radiant plate disposed on the office seat 100.
[0066] Figure 5 This is a flowchart of an air conditioning control method in one embodiment. See also... Figure 5 The air conditioning control method in this application includes, but is not limited to, steps S610, S620 and S630.
[0067] Step S610: Obtain the human physiological indicators of the user located at office seat 100 and detect the current operating mode of the air conditioner.
[0068] Specifically, human physiological indicators include pulse rate, wrist temperature, heart rate, or blood saturation, but are not limited to these. The air conditioner's operating modes include cooling mode and / or heating mode. This application uses pulse rate as an example to describe the air conditioner control method in this embodiment of the application in detail.
[0069] Step S620: Determine that the human physiological index is greater than the first threshold, determine the operating mode, and control the convection device and / or radiation heat transfer device to adjust the operating parameters so that the human physiological index matches the set threshold range.
[0070] Specifically, the human pulse rate changes with ambient temperature. Therefore, by monitoring the user's pulse rate, the user's thermal sensation can be predicted. When the user's pulse rate varies within the range of 80 bpm to 84 bpm, the thermal sensation varies within the range of -1 to 1, which is within an acceptable comfort range. The pulse rate also increases when the thermal sensation increases. Specifically, in this embodiment, the user's pulse rate is between 80 bpm and 84 bpm, and the thermal sensation is within an acceptable comfort range. In this embodiment, the set threshold range for the pulse rate is 80 bpm to 84 bpm; when the pulse rate is greater than the first threshold (i.e., greater than 84 bpm), the user feels too hot, and the ambient temperature of the office seat 100 needs to be lowered; when the pulse rate is less than the second threshold (i.e., less than 80 bpm), the user feels too cold, and the ambient temperature of the office seat 100 needs to be raised.
[0071] Step S630: Determine that the human physiological index is less than the second threshold, and determine the current operating mode of the air conditioner. According to the operating mode, control the convection device and / or radiant heat transfer device to adjust the operating parameters so that the human physiological index matches the set threshold range.
[0072] In steps S620 and S630, the operating parameters of the convection device include, but are not limited to, the supply air velocity, supply air temperature, or supply air angle. The operating parameters of the radiant heat transfer device include, but are not limited to, the temperature of the heat transfer medium inside each radiant plate, the flow rate of the heat transfer medium, and the number of radiant plates that are open.
[0073] In this embodiment of the application, the convection device includes an air terminal device 211, which has multiple air supply baffles, each with a different air supply speed; the radiation heat transfer device includes at least one radiation plate, and when there are multiple radiation plates, the heat exchange capacity of the radiation heat transfer device can be changed by controlling the number of radiation plates that are turned on.
[0074] In the air conditioning control method of this application embodiment, the physiological indicators of the user in the office seat 100 are monitored and the current operating mode of the air conditioner is detected. Based on the physiological indicators and the current operating mode, the operating parameters of the convection and radiative heat transfer devices of the air conditioner are controlled to re-match the physiological indicators with the set threshold range. Since the physiological indicators change with the ambient temperature of the office seat 100, this application, by monitoring the physiological indicators of the user in the office seat 100 and controlling the operating parameters of the convection and radiative heat transfer devices accordingly, can make the ambient temperature of the office seat 100 more suitable for the user's thermal comfort needs. Simultaneously, using the convection and radiative heat transfer devices to adjust the ambient temperature of the office seat 100 can improve the problem of slow response to the user's dynamic thermal needs at the end of a single radiative heat transfer method, and also helps to reduce the drafty feeling at the end of a single convective heat transfer method, thereby improving the comfort of the office seat 100.
[0075] In step S620, the operating mode is determined to be cooling mode, and the human physiological indicator is greater than a first threshold: the convection device is controlled to increase the airflow speed; or, the radiant heat transfer device is controlled to turn on and / or the convection device is controlled to operate at the lowest airflow speed. Specifically, the human physiological indicator is pulse rate, and the first threshold is 84 bpm. In cooling mode, if the user's pulse rate is greater than 84 bpm, meaning the user feels too hot, the ambient temperature within the office seat 100 needs to be lowered to improve temperature comfort. At this time, if both the convection device and the radiant heat transfer device are turned on, the airflow speed of the convection device is increased; if both the convection device and the radiant heat transfer device are turned off, or if one of them is turned off, the unactivated radiant heat transfer device is turned on and / or the convection device is turned on while simultaneously adjusting the airflow speed of the convection device to the lowest setting. Using both the convection device and the radiant heat transfer device to simultaneously regulate the ambient temperature within the office seat 100 helps reduce the draft sensation generated when the convection device adjusts the temperature, thus improving comfort.
[0076] Figure 6 This is a flowchart of an air conditioning control method according to one specific implementation. For example... Figure 6 As shown, in cooling mode, if the user's pulse rate is still greater than 84 bpm even after both the convection and radiant heat transfer devices are activated, it indicates that the user still feels too hot. In this case, the airflow speed of the convection device is gradually increased until the user's pulse rate drops to a comfortable range. If either the radiant or convection device is not activated, either the deactivated radiant device or the deactivated convection device is activated and operated at the lowest airflow setting. The airflow speed of the convection device can be gradually increased to lower the user's pulse rate to a comfortable range, i.e., between 80 and 84 bpm. When the user's pulse rate is between 80 and 84 bpm, the air conditioner maintains its current operating state.
[0077] In step S630, the operating mode is determined to be cooling mode, and the human physiological indicators are below the second threshold: the fan speed of the convection device is reduced or the convection device is turned off; or, the radiant heat transfer device is turned off. Specifically, the human physiological indicator is pulse rate, and the second threshold is 80 bpm. In cooling mode, if the user's pulse rate is less than 80 bpm, meaning the user feels too cold, the ambient temperature in the office seat 100 area needs to be increased to improve the temperature comfort within the office seat 100.
[0078] Figure 7 This is a flowchart of an air conditioning control method according to one specific embodiment. See also... Figure 7 If the convection device is already on, the fan speed of the convection device will be reduced or the convection device will be turned off. Specifically, if the airflow speed of the convection device is at its lowest setting, the convection device will be turned off; if the airflow speed is not at its lowest setting, the convection device will be gradually reduced or even turned off to raise the user's pulse rate to a comfortable range. In this embodiment, the comfortable pulse rate range is 80 bpm to 84 bpm. If the convection device is turned off and the user's pulse rate is still less than 80 bpm, meaning the user still feels too cold, the radiant heat transfer device will be turned off.
[0079] In step S620, the operating mode is determined to be heating mode, and the human physiological indicators are greater than the first threshold: the fan speed of the convection device is reduced or the convection device is turned off; or at least the radiant heat transfer device is partially turned off. Specifically, the human physiological indicator is pulse rate, and the first threshold is 84 bpm; there are multiple radiant heat transfer devices, which can be partially or fully turned on.
[0080] Figure 8 This is a flowchart illustrating one specific embodiment of an air conditioning control method applicable to heating mode. See also... Figure 8If a user's pulse rate is greater than 84 bpm, indicating that the user feels too hot, the ambient temperature of office seat 100 needs to be lowered to improve temperature comfort within office seat 100. In this case, if the convection device is already on, the fan speed of the convection device should be reduced or the convection device should be turned off. Specifically, when the convection device's airflow setting is at its lowest, turning it off reduces the heat delivered to office seat 100, thus lowering the temperature within office seat 100. When the convection device's airflow setting is not at its lowest, the fan speed is gradually reduced until the user's pulse rate falls within a comfortable range. In this embodiment, the comfortable range for the user's pulse rate is 80 bpm to 84 bpm. If the convection device is not on, at least the radiant heat transfer device should be partially turned off. Specifically, when the radiant heat transfer device includes more than one radiant panel, the heating power of the radiant heat transfer device to the office seat 100 can be reduced by closing some of the radiant panels, thereby reducing the temperature inside the office seat 100 and lowering the user's pulse rate to a comfortable range.
[0081] In step S630, the operating mode is determined to be heating mode, and the human physiological indicator is determined to be less than the second threshold: the convection device is controlled to operate at the lowest fan speed; or, the radiative heat transfer device is at least partially turned on. Specifically, the human physiological indicator is pulse rate, and the second threshold is 84 bpm; there are multiple radiative heat transfer devices, which can be partially or fully turned on.
[0082] Figure 9 This is a flowchart of an air conditioning control method according to one embodiment, applicable to heating mode. See also... Figure 9 If the user's pulse rate is less than 80 bpm, indicating a feeling of coldness, the ambient temperature of the office seat 100 needs to be increased. In this case, if the radiant heat transfer device is already activated, the convection device is turned on and operates at its lowest fan speed. The fan speed of the convection device is gradually increased to raise the ambient temperature until the user's pulse rate reaches a comfortable range. In this embodiment, the comfortable range for the user's pulse rate is 80 bpm to 84 bpm. If the radiant heat transfer device is not activated, it is at least partially activated according to the user's needs. Specifically, if the radiant heat transfer device includes more than one radiant panel, opening some of the radiant panels increases the heating power of the radiant heat transfer device on the office seat 100, thereby raising the ambient temperature of the office seat 100 and bringing the user's pulse rate to a comfortable range.
[0083] Another embodiment of this application discloses an electronic device, including a storage device and a processor. The storage device stores a computer program, and the processor executes the computer program to implement the aforementioned air conditioning control method.
[0084] In this embodiment, the electronic device can be any terminal device such as a mobile phone, tablet computer, laptop computer, desktop computer, PDA (Personal Digital Assistant), POS (Point of Sales), or wearable device. The processor can include one or more processing units. The processor can be a CPU (Central Processing Unit) or DSP (Digital Signal Processor), etc. The memory can include non-volatile storage media and internal memory. The non-volatile storage media stores an operating system and computer programs. The computer programs can be executed by the processor to implement the air conditioning control methods provided in the above embodiments. The internal memory provides a cached operating environment for the operating system computer programs in the non-volatile storage media.
[0085] Another embodiment of this application discloses a storage medium storing multiple instructions for loading and executing the aforementioned air conditioning control method by a processor.
[0086] The embodiments of this application have been described in detail above with reference to the accompanying drawings. However, this application is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of this application. Furthermore, unless otherwise specified, the embodiments and features described in the embodiments of this application can be combined with each other.
Claims
1. A workstation-type integrated system, characterized in that, include: Office seating; An air conditioner includes a heat exchange assembly comprising a convection device and a radiative heat transfer device. The convection device supplies air to the office seat, and the radiative heat transfer device radiates heat to the office seat. The convection device has an air outlet for supplying air to the office seat. The radiative heat transfer device includes multiple radiant panels disposed on the office seat. The heat exchange capacity of the radiative heat transfer device can be changed by controlling the number of radiant panels that are open. A detection device for detecting the human physiological indicators of the user of the office seat; A control device is electrically connected to the detection device, the convection device, and the radiative heat transfer device. The detection device is used to acquire the human physiological indicators of the user of the office seat and to control the convection device and the radiative heat transfer device according to the human physiological indicators. A heat exchange and energy storage assembly is used to provide cooling or heating to the convection device and the radiative heat transfer device. The heat exchange and energy storage assembly includes a refrigeration unit, an energy storage tank, and a control valve assembly. The refrigeration unit and the energy storage tank are connected in parallel, and the main circuits of both the refrigeration unit and the energy storage tank are connected to the convection device and the radiative heat transfer device. The heat exchange and energy storage assembly is configured as follows: During normal operation, the refrigeration unit provides heat or cooling to the convection device and the radiative heat transfer device; when the convection device and the radiative heat transfer device are not in use or are at a low electricity consumption period, the cold water or hot water prepared by the refrigeration unit is transported to the energy storage tank and stored therein. During peak electricity consumption periods or when there is a power shortage, the cold or hot water stored in the energy storage tank is transported to the convection device and / or the radiative heat transfer device. The main circuit includes a first circuit and a second circuit. The heat exchange and energy storage assembly also includes a first water pump and a second water pump. The control valve group includes a first control valve, a second control valve, a third control valve, a fourth control valve, a fifth control valve, and a sixth control valve. The first circuit is equipped with the first control valve. The two ends of the refrigeration unit are respectively equipped with the second control valve and the third control valve. The second circuit is equipped with the second water pump and the fourth control valve. The first water pump and the fifth control valve are connected in series with the energy storage tank. The sixth control valve is connected in parallel with the first water pump and the second control valve.
2. The workstation-type integrated system according to claim 1, characterized in that, Also includes: A noise meter and a silencer are both connected to the control device. The noise meter is used to detect the noise level in decibels at the office seat, and the silencer is used to eliminate ambient noise at the office seat; and / or, A photosensitive sensor and a light strip are both electrically connected to the control device. The photosensitive sensor is used to identify the illumination level of the office seat, and the control device controls the illuminance of the light strip based on the illumination level obtained by the photosensitive sensor; and / or, A face recognition camera electrically connected to the control device.
3. An air conditioning control method, characterized in that, Applied to the workstation-type integrated system as described in claim 1 or 2, the control method includes the following steps: The system acquires the user's physiological indicators and detects the current operating mode of the air conditioner; wherein the operating mode includes cooling mode and / or heating mode. Once the human physiological index is determined to be greater than a first threshold, the operating mode is determined, and the convection device and / or the radiative heat transfer device are controlled to adjust the operating parameters so that the human physiological index matches the set threshold range. Once the human physiological index is determined to be less than a second threshold, the operating mode is determined, and the operating parameters of the convection device and / or the radiative heat transfer device are adjusted according to the operating mode so that the human physiological index matches the set threshold range. in, When the operating mode is determined to be cooling mode, and the human physiological index is greater than the first threshold: Control the convection device to increase the air supply velocity; or, Control the radiative heat transfer device to open and / or control the convection device to operate at the lowest wind speed setting; When the operating mode is determined to be cooling mode, and the human physiological index is less than the second threshold: Lower the fan speed setting of the convection device or turn off the convection device; or, turn off the radiative heat transfer device. When the operating mode is determined to be heating mode, and the human physiological index is greater than the first threshold: Reduce the wind speed of the convection device or turn off the convection device; or at least partially turn off the radiant panel; When the operating mode is determined to be heating mode, and the human physiological index is less than the second threshold: Control the convection device to operate at the lowest wind speed setting; or, at least partially open the radiant panel.
4. The control method according to claim 3, characterized in that, The human physiological indicators include pulse rate, wrist temperature, heart rate, or blood oxygen saturation.
5. An electronic device comprising a storage unit and a processor, wherein the storage unit stores a computer program, characterized in that, When the processor executes the computer program, it implements the air conditioning control method as described in any one of claims 3 to 4.
6. A storage medium, characterized in that, The storage medium stores multiple instructions, which are used by a processor to load and execute the air conditioning control method as described in any one of claims 3 to 4.