WO2020073476A1 - 温控器控制方法和系统、主控温控器和被控温控器 - Google Patents
温控器控制方法和系统、主控温控器和被控温控器 Download PDFInfo
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- WO2020073476A1 WO2020073476A1 PCT/CN2018/120619 CN2018120619W WO2020073476A1 WO 2020073476 A1 WO2020073476 A1 WO 2020073476A1 CN 2018120619 W CN2018120619 W CN 2018120619W WO 2020073476 A1 WO2020073476 A1 WO 2020073476A1
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- thermostat
- temperature controller
- controlled
- control
- main control
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- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05B—CONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
- G05B19/00—Program-control systems
- G05B19/02—Program-control systems electric
- G05B19/418—Total factory control, i.e. centrally controlling a plurality of machines, e.g. direct or distributed numerical control [DNC], flexible manufacturing systems [FMS], integrated manufacturing systems [IMS] or computer integrated manufacturing [CIM]
- G05B19/4185—Total factory control, i.e. centrally controlling a plurality of machines, e.g. direct or distributed numerical control [DNC], flexible manufacturing systems [FMS], integrated manufacturing systems [IMS] or computer integrated manufacturing [CIM] characterised by the network communication
- G05B19/4186—Total factory control, i.e. centrally controlling a plurality of machines, e.g. direct or distributed numerical control [DNC], flexible manufacturing systems [FMS], integrated manufacturing systems [IMS] or computer integrated manufacturing [CIM] characterised by the network communication by protocol, e.g. MAP, TOP
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- G—PHYSICS
- G08—SIGNALLING
- G08C—TRANSMISSION SYSTEMS FOR MEASURED VALUES, CONTROL OR SIMILAR SIGNALS
- G08C17/00—Arrangements for transmitting signals characterised by the use of a wireless electrical link
- G08C17/02—Arrangements for transmitting signals characterised by the use of a wireless electrical link using a radio link
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02P—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
- Y02P90/00—Enabling technologies with a potential contribution to greenhouse gas [GHG] emissions mitigation
- Y02P90/02—Total factory control, e.g. smart factories, flexible manufacturing systems [FMS] or integrated manufacturing systems [IMS]
Definitions
- the present disclosure relates to the field of thermostats, and in particular, to a thermostat control method and system, a main control thermostat, and a controlled thermostat.
- one thermostat can only control one fan coil, and there may be multiple fan coils in a room area. Sometimes, the fan coils in the room do not need to be fully opened and closed.
- a method for controlling a thermostat including:
- the main control thermostat obtains the identification parameter value of the surrounding thermostat
- the master temperature controller will use the temperature controller with the identification parameter value greater than or equal to the predetermined value as the controlled temperature controller;
- the main control thermostat sends control parameters to the controlled thermostat to realize the control of the controlled thermostat.
- the thermostat control method further includes:
- the main control thermostat executes the step of acquiring the identification parameter value of the surrounding thermostat when the group control enable switch is turned on.
- the master thermostat and the controlled thermostat form a group network with a point-to-point structure.
- the master thermostat and the controlled thermostat are directly connected through a wireless network.
- the identification parameter value is the distance between the master temperature controller and the controlled temperature controller.
- the identification parameter value is the wireless signal strength between the master temperature controller and the controlled temperature controller.
- the master temperature controller including the temperature controller with the identification parameter value greater than or equal to the predetermined value as the controlled temperature controller includes:
- the master temperature controller will use the temperature controller with the identification parameter value greater than or equal to the predetermined value as the pending temperature controller;
- the master temperature controller determines whether the group control enable switch of the pending temperature controller is turned on;
- the master temperature controller uses the pending temperature controller without the group control enable switch as the controlled temperature controller.
- the sending of the control parameters to the controlled thermostat by the master thermostat includes:
- the master temperature controller sends control parameters to the controlled temperature controller in a multicast manner.
- control of the controlled thermostat by the master thermostat includes:
- the main control thermostat realizes the setting of the control parameters of the controlled thermostat.
- control parameter includes at least one of temperature, wind speed, and operation mode.
- a method for controlling a thermostat including:
- the control parameters of the controlled temperature controller are set according to the control parameters.
- the setting of the control parameters of the controlled thermostat according to the control parameters includes:
- control parameters of the controlled temperature controller are set according to the last received control parameters.
- a main control thermostat including:
- the identification parameter value acquisition module is used to acquire the identification parameter value of the surrounding thermostat
- the identification parameter judgment module is used to use the temperature controller with the identification parameter value greater than or equal to the predetermined value as the controlled temperature controller;
- the parameter sending module is used to send control parameters to the controlled temperature controller to realize the control of the controlled temperature controller.
- the master thermostat is used to perform operations for implementing the thermostat control method described in any of the above embodiments.
- a main control thermostat including:
- the main control thermostat memory is used to store instructions
- the master temperature controller processor is configured to execute the instruction, so that the master temperature controller performs operations for implementing the temperature controller control method described in any of the above embodiments.
- a controlled temperature controller including:
- the identification parameter sending module is used to send the identification parameter value to the main control thermostat, so that the main control thermostat uses the thermostat with the identification parameter value greater than or equal to the predetermined value as the controlled temperature controller;
- Network establishment module used to form a point-to-point structure network with the main control thermostat
- Control parameter receiving module used to receive the control parameters sent by the main control thermostat
- the control parameter setting module is used for setting the control parameters of the controlled temperature controller according to the control parameters.
- the controlled thermostat is used to perform operations for implementing the thermostat control method described in any of the above embodiments.
- a controlled temperature controller including:
- Controlled thermostat memory for storing instructions
- the controlled temperature controller processor is configured to execute the instructions, so that the controlled temperature controller executes operations for implementing the temperature controller control method described in any of the above embodiments.
- a thermostat control system including a main control thermostat as described in any of the above embodiments, and a controlled thermostat as described in any of the above embodiments.
- a computer-readable storage medium that stores computer instructions that when executed by a processor implements the thermostat as described in any of the above embodiments Control Method.
- FIG. 1 is a schematic diagram of some embodiments of a thermostat control system of the present disclosure.
- FIG. 2 is a schematic diagram of other embodiments of the thermostat control system of the present disclosure.
- FIG. 3 is a schematic diagram of some embodiments of the disclosed thermostat control method.
- FIG. 4 is a schematic diagram of some embodiments of the main control thermostat of the present disclosure.
- FIG. 5 is a schematic diagram of some other embodiments of the main control thermostat of the present disclosure.
- FIG. 6 is a schematic diagram of other embodiments of the disclosed thermostat control method.
- FIG. 7 is a schematic diagram of some embodiments of a controlled temperature controller of the present disclosure.
- FIG. 8 is a schematic diagram of other embodiments of the controlled temperature controller of the present disclosure.
- thermostats with WIFI on the market are generally used to access the Internet for remote monitoring, which is inseparable from the transfer of access points.
- a server or mobile terminal is required, and the networking cost is quite high.
- the present disclosure provides a method and system for controlling a thermostat, a main control thermostat and a controlled thermostat, which can realize group control of a certain area thermostat.
- FIG. 1 is a schematic diagram of some embodiments of a thermostat control system of the present disclosure.
- the thermostat control system may include a main control thermostat 10 and at least one controlled thermostat 20, where:
- the main control thermostat 10 is used to obtain the identification parameter value of the surrounding thermostat when the group control enable switch is turned on; the thermostat with the identification parameter value greater than or equal to the predetermined value is used as the controlled thermostat 20 ; Send control parameters to the controlled temperature controller 20, to achieve control of the controlled temperature controller 20.
- the controlled temperature controller 20 is used to receive the control parameters sent by the main control temperature controller 10; the control parameters of the controlled temperature controller 20 are set according to the control parameters.
- the main control thermostat 10 may specifically be used to identify a thermostat with a parameter value greater than or equal to a predetermined value as a pending thermostat; to determine whether the group control enable switch of the pending thermostat Turn on; take the pending thermostat without the group control enable switch as the controlled thermostat 20.
- the identification parameter value may be the distance between the master temperature controller and the controlled temperature controller; the predetermined value may be a predetermined distance value.
- the distance between the master temperature controller and the controlled temperature controller may be obtained by infrared distance detectors, ultrasonic distance detectors, GPS distance measurement, and the like.
- the identification parameter value may be the wireless signal strength between the master temperature controller and the controlled temperature controller; the predetermined value may be a predetermined signal strength value.
- the master thermostat 10 and the controlled thermostat 20 form a group network with a point-to-point structure.
- the master thermostat 10 and the controlled thermostat 20 are directly connected through a wireless network.
- the wireless network is a WIFI network; a WIFI peer-to-peer connection is made between the master thermostat 10 and the controlled thermostat 20, wherein the WIFI peer-to-peer connection refers to WIFI Direct (WIFI direct connection), and WIFI direct connection refers to allowing devices in a wireless network to connect to each other without going through a wireless router.
- WIFI Direct WIFI Direct connection
- the above embodiment of the present disclosure does not require a server, router, mobile terminal device, etc.
- the above embodiment of the present disclosure can utilize the WIFI peer-to-peer connection of the thermostat and the signal strength of the WIFI to implement group control of the thermostat in a certain area.
- the master temperature controller 10 is used to send control parameters to the controlled temperature controller 20 in a multicast manner, so as to implement the setting of the control parameters of the controlled temperature controller 20. Therefore, the above-mentioned embodiments of the present disclosure can realize the control of a plurality of controlled temperature controllers by one master temperature controller at the same time, thereby avoiding repeated setting of the temperature controllers b, c, etc.
- control parameters may include at least one of parameters such as temperature, wind speed, and operating mode. Therefore, the master temperature controller of the above embodiment of the present disclosure can control multiple temperature controllers within a certain radius by using the temperature controller with the identification parameter value greater than or equal to the predetermined value as the temperature controller, Furthermore, the main control thermostat can realize the control of multiple (but not all) fan coils within a certain distance radius, and realize the control of rapid cooling, heating or air supply.
- the determination that the thermostat is the master thermostat 10 and the controlled thermostat 20 may be determined by determining whether the group control enable switch of the thermostat is turned on. Specifically, if the group control enable switch of the thermostat is turned on, the thermostat is the master control thermostat 10; if the group control enable switch of the thermostat is not turned on, the temperature control The controller is a controlled temperature controller.
- the thermostats b and c (around the area around this thermostat can be realized by setting the parameters of a thermostat a (main control thermostat))
- the controlled thermostat can follow this thermostat a to achieve the same parameter settings and realize group control of the thermostat in a certain area.
- the above embodiments of the present disclosure can avoid the fan coil being fully opened, and at the same time realize a certain distance radius around the thermostat a to realize the work of multiple (not all) fan coils, and realize rapid cooling, heating, or air supply, etc. It also avoids the repeated setting of thermostats b, c, etc.
- the above embodiments of the present disclosure can realize the control of multiple controlled temperature controllers within a certain distance radius by using a temperature controller with a recognition parameter value greater than or equal to a predetermined value as a controlled temperature controller, thereby avoiding multiple controlled Repeat setting of thermostat.
- FIG. 2 is a schematic diagram of other embodiments of the thermostat control system of the present disclosure. As shown in FIG. 2, the thermostat control system includes three zones (zone 1, zone 2, and zone 3); the thermostat control system includes seven thermostats (thermostat 1 to thermostat) 7), Each thermostat is connected to a fan coil.
- the thermostat control system includes three zones (zone 1, zone 2, and zone 3); the thermostat control system includes seven thermostats (thermostat 1 to thermostat) 7), Each thermostat is connected to a fan coil.
- a thermostat 2 in zone 1 is set as the group control enable switch of the thermostat 2 is turned on at this time, then the thermostat 2 serves as the main control thermostat.
- the thermostat 2 will form a group network based on the WIFI Ad-Hoc (point-to-point) structure with the thermostat 1 and the thermostat 3 that are close to the strong signal, and use the thermostat 2 as the host (main Thermostat), thermostats 1, 3 are slaves (controlled thermostat).
- the thermostat 2 has set control parameters such as temperature, wind speed, operating mode, etc.
- the thermostat 2 will send these control parameters to the thermostats 1, 3 in a multicast manner to achieve a temperature setting in zone 1. Controller 2 and thermostat 2 and 3 are consistent with the purpose of parameter setting.
- the thermostat 7 in the area 3 is provided. Since the distance between the thermostats 4 and 5 is closer and the signal is stronger, the thermostat 4 with the thermostat 7 as the center will be formed. 5 is the value network of the WIFI-based Ad-Hoc structure of the slave. The parameters of the thermostats 4 and 5 will change in unison with the changes of the thermostat 7. Although the thermostat 6 is in the same area 3, the signal strength is weak due to the distance from the thermostat 7 and the thermostat 7 does not form a WIFI-based Ad-Hoc structure network with it. The parameters of the thermostat 6 do not follow The parameters of the thermostat 7 change uniformly.
- the thermostat 4 will be formed as the host, the thermostats 5, 6 It is a network based on the WIFI Ad-Hoc structure of the slave, and a network with the thermostat 7 as the master and the temperature controller 5 as the slave WIFI-based Ad-Hoc structure.
- the original thermostat 7 can set the thermostat 4 synchronously, because the thermostat 4 turns on the group control enable switch and cancels the multicast of the thermostat 7 to the thermostat 4; at the same time, the thermostat 5 will be simultaneously controlled by the temperature
- the control of devices 4, 7 is subject to the last setting.
- the above-mentioned embodiments of the present disclosure can avoid the fan coil being fully opened, and at the same time realize a certain distance radius around the thermostat a to realize the work of multiple (not all) fan coils, realize rapid cooling, heating or air supply, etc. In order to set the repeated setting of the thermostat b, c, etc.
- the above embodiment of the present disclosure does not require a server, router, mobile terminal device, etc.
- the above embodiment of the present disclosure can utilize the WIFI peer-to-peer connection of the thermostat and the signal strength of the WIFI to implement group control of the thermostat in a certain area.
- FIG. 3 is a schematic diagram of some embodiments of the disclosed thermostat control method. Preferably, this embodiment can be executed by the main control thermostat of the present disclosure. The method includes the following steps:
- Step 31 The main control thermostat 10 obtains the identification parameter value of the surrounding thermostat.
- step 31 may include: the main control thermostat 10 obtains the identification parameter value of the surrounding thermostat when the group control enable switch is turned on.
- the identification parameter value may be the distance between the master temperature controller and the controlled temperature controller; the predetermined value may be a predetermined distance value.
- the distance between the master temperature controller and the controlled temperature controller may be obtained by infrared distance detectors, ultrasonic distance detectors, GPS distance measurement, and the like.
- the identification parameter value may be the wireless signal strength between the master temperature controller and the controlled temperature controller; the predetermined value may be a predetermined signal strength value.
- step 32 the master thermostat 10 uses the thermostat with the identification parameter value greater than or equal to the predetermined value as the controlled thermostat 20.
- the master thermostat 10 and the controlled thermostat 20 form a point-to-point group network.
- the master thermostat 10 and the controlled thermostat 20 are directly connected through a wireless network.
- the wireless network is a WIFI network; a WIFI peer-to-peer connection is made between the master thermostat 10 and the controlled thermostat 20.
- step 32 may include:
- step 321 the main thermostat 10 uses the thermostat with the identification parameter value greater than or equal to the predetermined value as the pending thermostat.
- step 322 the master thermostat 10 determines whether the group control enable switch of the pending thermostat is turned on.
- step 323 the master temperature controller 10 uses the pending temperature controller without the group control enable switch as the controlled temperature controller 20.
- step 33 the master temperature controller 10 sends control parameters to the controlled temperature controller 20 to realize the control of the controlled temperature controller 20.
- control parameters may include at least one of parameters such as temperature, wind speed, and operating mode.
- step 33 may include: the master temperature controller 10 sends the control parameters to the controlled temperature controller 20 in a multicast manner under the condition of setting its own control parameters, so as to realize the control of the controlled The thermostat 20 controls the group setting of parameters.
- the temperature controllers b and c (around the area around this temperature controller can be realized by setting the parameters of a temperature controller a (main control temperature controller)
- the controlled thermostat can follow this thermostat a to achieve the same parameter settings and realize group control of the thermostat in a certain area.
- the above embodiments of the present disclosure can avoid the fan coil being fully opened, and at the same time realize a certain distance radius around the thermostat a to realize the work of multiple (not all) fan coils, and realize rapid cooling, heating, or air supply, It also avoids the repeated setting of thermostats b, c, etc.
- the above embodiment of the present disclosure does not require a server, router, mobile terminal device, etc.
- the above embodiment of the present disclosure can utilize the WIFI peer-to-peer connection of the thermostat and the signal strength of the WIFI to implement group control of the thermostat in a certain area.
- FIG. 4 is a schematic diagram of some embodiments of the main control thermostat of the present disclosure.
- the main control thermostat of the present disclosure may include an identification parameter value acquisition module 101, an identification parameter judgment module 102, and a parameter transmission module 103, wherein :
- the identification parameter value acquisition module 101 is used to acquire the identification parameter value of the surrounding thermostat when the group control enable switch is turned on.
- the identification parameter judgment module 102 is configured to use a temperature controller with an identification parameter value greater than or equal to a predetermined value as the controlled temperature controller 20.
- the identification parameter judgment module 102 may be used to use a thermostat with a identification parameter value greater than or equal to a predetermined value as the pending thermostat; to determine whether the group control enable switch of the pending thermostat is turned on; The pending thermostat without the group control enable switch is used as the controlled thermostat 20.
- the master thermostat 10 and the controlled thermostat 20 form a group network with a point-to-point structure.
- the master thermostat 10 and the controlled thermostat 20 are directly connected through a wireless network.
- the wireless network is a WIFI network; a WIFI peer-to-peer connection is made between the master thermostat 10 and the controlled thermostat 20.
- the parameter sending module 103 is used to send control parameters to the controlled temperature controller 20 to realize the control of the controlled temperature controller 20.
- the parameter sending module 103 may be used to send the control parameters to the controlled temperature controller 20 by multicast in the case of setting its own control parameters, so as to realize the control of the controlled temperature controller 20 Group setting of control parameters.
- the master thermostat 10 is used to perform operations for implementing the thermostat control method described in any of the above embodiments (eg, the embodiment of FIG. 3).
- the thermostats b and c (around the area around this thermostat) can be realized
- the controlled thermostat can follow this thermostat a to achieve the same parameter settings and realize group control of the thermostat in a certain area.
- the above embodiments of the present disclosure can avoid the fan coil being fully opened, and at the same time realize a certain distance radius around the thermostat a to realize the work of multiple (not all) fan coils, and realize rapid cooling, heating, or air supply, etc. It also avoids the repeated setting of thermostats b, c, etc.
- FIG. 5 is a schematic diagram of some other embodiments of the main control thermostat of the present disclosure.
- the main control thermostat of the present disclosure may include a main control thermostat memory 108 and a main control thermostat processor 109, where:
- the main control thermostat memory 108 is used to store instructions.
- the master thermostat processor 109 is configured to execute the instruction so that the master thermostat 10 executes the operation of implementing the thermostat control method described in any of the above embodiments (for example, the embodiment of FIG. 3) .
- the above embodiment of the present disclosure does not require a server, router, mobile terminal device, etc.
- the above embodiment of the present disclosure can utilize the WIFI peer-to-peer connection of the thermostat and the signal strength of the WIFI to implement group control of the thermostat in a certain area.
- FIG. 6 is a schematic diagram of other embodiments of the disclosed thermostat control method. Preferably, this embodiment can be executed by the temperature controlled thermostat of the present disclosure. The method includes the following steps:
- Step 61 The controlled temperature controller 20 sends the identification parameter value to the main control temperature controller, so that the main control temperature controller uses the temperature controller whose identification parameter value is greater than or equal to a predetermined value as the controlled temperature controller.
- the identification parameter value may be the distance between the master temperature controller and the controlled temperature controller; the predetermined value may be a predetermined distance value.
- the distance between the master temperature controller and the controlled temperature controller may be obtained by infrared distance detectors, ultrasonic distance detectors, GPS distance measurement, and the like.
- the identification parameter value may be the wireless signal strength between the master temperature controller and the controlled temperature controller; the predetermined value may be a predetermined signal strength value.
- Step 62 The controlled temperature controller 20 and the main control temperature controller form a network that establishes a point-to-point structure.
- Step 63 The controlled thermostat 20 receives the control parameters sent by the main control thermostat 10.
- Step 64 Set the control parameters of the controlled thermostat 20 according to the control parameters.
- step 62 may include: in the case of receiving control parameters sent by a plurality of master thermostats 10, controlling the controlled thermostat 20 according to the last received control parameters Parameter setting.
- the temperature controllers b and c (around the area around this temperature controller can be realized by setting the parameters of a temperature controller a (main control temperature controller)
- the controlled thermostat can follow this thermostat a to achieve the same parameter settings and realize group control of the thermostat in a certain area.
- the above embodiments of the present disclosure can avoid the fan coil being fully opened, and at the same time realize a certain distance radius around the thermostat a to realize the work of multiple (not all) fan coils, and realize rapid cooling, heating, or air supply, etc. It also avoids the repeated setting of thermostats b, c, etc.
- the above embodiment of the present disclosure does not require a server, router, mobile terminal device, etc.
- the above embodiment of the present disclosure can utilize the WIFI peer-to-peer connection of the thermostat and the signal strength of the WIFI to implement group control of the thermostat in a certain area.
- the controlled temperature controller of the present disclosure may include an identification parameter sending module 201, a network establishing module 202, a control parameter receiving module 203, and control parameters Setting module 204, in which:
- the identification parameter sending module 201 is configured to send the identification parameter value to the main control temperature controller, so that the main control temperature controller uses the temperature controller with the identification parameter value greater than or equal to the predetermined value as the controlled temperature controller.
- the network establishment module 202 is used to form a point-to-point network with the main temperature controller.
- the control parameter receiving module 203 is used to receive the control parameters sent by the main control thermostat. .
- the control parameter setting module 204 is configured to set the control parameters of the controlled temperature controller 20 according to the control parameters.
- control parameter setting module 204 may be used to control the controlled temperature according to the last received control parameter when receiving the control parameters sent by the plurality of main control thermostats 10
- the controller 20 controls the setting of parameters.
- the controlled thermostat is used to perform operations for implementing the thermostat control method described in any of the above embodiments (for example, the FIG. 6 embodiment).
- the temperature controllers b and c (around the area around this temperature controller can be realized by setting the parameters of a temperature controller a (main control temperature controller)
- the controlled thermostat can follow this thermostat a to achieve the same parameter settings and realize group control of the thermostat in a certain area.
- the above embodiments of the present disclosure can avoid the fan coil being fully opened, and at the same time realize a certain distance radius around the thermostat a to realize the work of multiple (not all) fan coils, and realize rapid cooling, heating, or air supply, etc. It also avoids the repeated setting of thermostats b, c, etc.
- FIG. 8 is a schematic diagram of other embodiments of the controlled temperature controller of the present disclosure.
- the controlled temperature controller (for example, the controlled temperature controller in the embodiment of FIG. 1 or FIG. 2) of the present disclosure may include a controlled temperature controller memory 208 and a controlled temperature controller processor 209, where:
- the controlled thermostat memory 208 is used to store instructions.
- the controlled thermostat processor 209 is configured to execute the instructions so that the controlled thermostat executes the operation of implementing the thermostat control method described in any of the above embodiments (for example, FIG. 6 embodiment).
- the above embodiment of the present disclosure does not require a server, router, mobile terminal device, etc.
- the above embodiment of the present disclosure can utilize the WIFI peer-to-peer connection of the thermostat and the signal strength of the WIFI to implement group control of the thermostat in a certain area.
- a computer-readable storage medium storing computer instructions, which when executed by a processor implements any of the above embodiments (eg, FIG. 3 or FIG. 6 embodiment) the thermostat control method.
- the temperature controllers b and c (around the area around the temperature controller can be realized by setting the parameters of a temperature controller a (main control temperature controller)
- the controlled thermostat can follow this thermostat a to achieve the same parameter settings and realize group control of the thermostat in a certain area.
- the above embodiments of the present disclosure can avoid the fan coil being fully opened, and at the same time realize a certain distance radius around the thermostat a to realize the work of multiple (not all) fan coils, and realize rapid cooling, heating, or air supply, etc. It also avoids the repeated setting of thermostats b, c, etc.
- the above embodiment of the present disclosure does not require a server, router, mobile terminal device, etc.
- the above embodiment of the present disclosure can utilize the WIFI peer-to-peer connection of the thermostat and the signal strength of the WIFI to implement group control of the thermostat in a certain area.
- the master temperature controller and the controlled temperature controller described above can be implemented as a general-purpose processor, programmable logic controller (PLC), digital signal processor (DSP), dedicated for performing the functions described in this application Integrated circuit (ASIC), field programmable gate array (FPGA) or other programmable logic device, discrete gate or transistor logic device, discrete hardware component, or any suitable combination thereof.
- PLC programmable logic controller
- DSP digital signal processor
- ASIC application Integrated circuit
- FPGA field programmable gate array
- the method and system of the present disclosure may be implemented in many ways.
- the method and system of the present disclosure may be implemented by software, hardware, firmware, or any combination of software, hardware, and firmware.
- the above order of steps for the method is for illustration only, and the steps of the method of the present disclosure are not limited to the order specifically described above unless specifically stated otherwise.
- the present disclosure may also be implemented as programs recorded in a recording medium, and these programs include machine-readable instructions for implementing the method according to the present disclosure.
- the present disclosure also covers the recording medium storing the program for executing the method according to the present disclosure.
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Abstract
一种温控器控制方法和系统、主控温控器(10)和被控温控器(20)。温控器控制方法包括:主控温控器(10)获取周围温控器的识别参数值(步骤31);主控温控器(10)将识别参数值大于等于预定值的温控器作为被控温控器(20)(步骤32);主控温控器(10)向被控温控器(20)发送控制参数,实现对被控温控器(20)的控制(步骤33)。通过将识别参数值大于等于预定值的温控器作为被控温控器(20),可以实现对一定距离半径内多个被控温控器(20)的控制,从而避免了对多个被控温控器(20)的重复设置。
Description
相关申请的交叉引用
本申请是以CN申请号为201811169968.1,申请日为2018年10月9日的申请为基础,并主张其优先权,该CN申请的公开内容在此作为整体引入本申请中。
本公开涉及温控器领域,特别涉及一种温控器控制方法和系统、主控温控器和被控温控器。
相关技术中一台温控器只能控制一台风机盘管,一个房间区域可能存在多台风机盘管,房间内的风机盘管有时并非需要全开全关。
发明内容
根据本公开的一个方面,提供一种温控器控制方法,包括:
主控温控器获取周围温控器的识别参数值;
主控温控器将识别参数值大于等于预定值的温控器作为被控温控器;
主控温控器向被控温控器发送控制参数,实现对被控温控器的控制。
在本公开的一些实施例中,所述温控器控制方法还包括:
主控温控器在群组控制使能开关开启的情况下,执行获取周围温控器的识别参数值的步骤。
在本公开的一些实施例中,主控温控器与被控温控器构成点对点结构的群组网络。
在本公开的一些实施例中,主控温控器与被控温控器之间通过无线网络进行直连。
在本公开的一些实施例中,所述识别参数值为主控温控器与被控温控器之间的距离。
在本公开的一些实施例中,所述识别参数值为主控温控器与被控温控器之间的无线信号强度。
在本公开的一些实施例中,所述主控温控器将识别参数值大于等于预定值的温控器作为被控温控器包括:
主控温控器将识别参数值大于等于预定值的温控器作为待定温控器;
主控温控器判断待定温控器的群组控制使能开关是否开启;
主控温控器将未开启群组控制使能开关的待定温控器作为被控温控器。
在本公开的一些实施例中,所述主控温控器向被控温控器发送控制参数包括:
主控温控器以组播方式向被控温控器发送控制参数。
在本公开的一些实施例中,所述主控温控器实现对被控温控器的控制包括:
主控温控器实现对被控温控器控制参数的设置。
在本公开的一些实施例中,所述控制参数包括温度、风速和运行模式中的至少一项。
根据本公开的另一方面,提供一种温控器控制方法,包括:
向主控温控器发送识别参数值,以便主控温控器将识别参数值大于等于预定值的温控器作为被控温控器;
与主控温控器构成建立点对点结构的网络;
接收主控温控器发送的控制参数;
根据所述控制参数实现对被控温控器控制参数的设置。
在本公开的一些实施例中,所述根据所述控制参数实现对被控温控器控制参数的设置包括:
在接收到多个主控温控器发送的控制参数的情况下,根据最后一次接收到的控制参数实现对被控温控器控制参数的设置。
根据本公开的另一方面,提供一种主控温控器,包括:
识别参数值获取模块,用于获取周围温控器的识别参数值;
识别参数判断模块,用于将识别参数值大于等于预定值的温控器作为被控温控器;
参数发送模块,用于向被控温控器发送控制参数,实现对被控温控器的控制。
在本公开的一些实施例中,所述主控温控器用于执行实现如上述任一实施例所述的温控器控制方法的操作。
根据本公开的另一方面,提供一种主控温控器,包括:
主控温控器存储器,用于存储指令;
主控温控器处理器,用于执行所述指令,使得所述主控温控器执行实现如上述任一实施例所述的温控器控制方法的操作。
根据本公开的另一方面,提供一种被控温控器,包括:
识别参数发送模块,用于向主控温控器发送识别参数值,以便主控温控器将识别参数值大于等于预定值的温控器作为被控温控器;
网络建立模块,用于与主控温控器构成建立点对点结构的网络;
控制参数接收模块,用于接收主控温控器发送的控制参数;
控制参数设置模块,用于根据所述控制参数实现对被控温控器控制参数的设置。
在本公开的一些实施例中,所述被控温控器用于执行实现如上述任一实施例所述的温控器控制方法的操作。
根据本公开的另一方面,提供一种被控温控器,包括:
被控温控器存储器,用于存储指令;
被控温控器处理器,用于执行所述指令,使得所述被控温控器执行实现如上述任一实施例所述的温控器控制方法的操作。
根据本公开的另一方面,提供一种温控器控制系统,包括如上述任一实施例所述的主控温控器、以及如上述任一实施例所述的被控温控器。
根据本公开的另一方面,提供一种计算机可读存储介质,所述计算机可读存储介质存储有计算机指令,所述指令被处理器执行时实现如上述任一实施例所述的温控器控制方法。
为了更清楚地说明本公开实施例或相关技术中的技术方案,下面将对实施例或相关技术描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本公开的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动性的前提下,还可以根据这些附图获得其他的附图。
图1为本公开温控器控制系统一些实施例的示意图。
图2为本公开温控器控制系统另一些实施例的示意图。
图3为本公开温控器控制方法一些实施例的示意图。
图4为本公开主控温控器一些实施例的示意图。
图5为本公开主控温控器另一些实施例的示意图。
图6为本公开温控器控制方法另一些实施例的示意图。
图7为本公开被控温控器一些实施例的示意图。
图8为本公开被控温控器另一些实施例的示意图。
申请人发现:相关技术的联网型温控器一般是采用有线的RS485接口实现多台温控器的群组控制。而目前市场上带WIFI的温控器一般用于接入互联网实现远程监控,离不开接入点(Access Point)的中转,实现群组控制需要服务器或移动终端,组网成本相当高。
鉴于以上技术问题,本公开提供了一种温控器控制方法和系统、主控温控器和被控温控器,可以实现一定区域温控器的群组控制。
图1为本公开温控器控制系统一些实施例的示意图。如图1所示,所述温控器控制系统可以包括主控温控器10和至少一个被控温控器20,其中:
主控温控器10,用于在群组控制使能开关开启的情况下,获取周围温控器的识别参数值;将识别参数值大于等于预定值的温控器作为被控温控器20;向被控温控器20发送控制参数,实现对被控温控器20的控制。
被控温控器20,用于接收主控温控器10发送的控制参数;根据所述控制参数实现对被控温控器20控制参数的设置。
在本公开的一些实施例中,主控温控器10具体可以用于将识别参数值大于等于预定值的温控器作为待定温控器;判断待定温控器的群组控制使能开关是否开启;将未开启群组控制使能开关的待定温控器作为被控温控器20。
在本公开的一些实施例中,所述识别参数值可以为主控温控器与被控温控器之间的距离;预定值可以为预定距离值。
在本公开的一些实施例中,主控温控器与被控温控器之间的距离可以通过红外距离探测器、超声波距离探测器、GPS测距等方式获取。
在本公开的一些实施例中,所述识别参数值可以为主控温控器与被控温控器之间的无线信号强度;预定值可以为预定信号强度值。
在本公开的一些实施例中,主控温控器10与被控温控器20构成点对点结构的群组网络。
在本公开的一些实施例中,主控温控器10与被控温控器20之间通过无线网络进行直连。
在本公开的一些实施例中,所述无线网络为WIFI网络;主控温控器10与被控温控器20之间进行WIFI对等连接,其中所述WIFI对等连接指的是WIFI Direct(WIFI直连),而WIFI直连是指允许无线网络中的设备无需通过无线路由器即可相互连接。
本公开上述实施例实现不需要服务器、路由器、移动终端设备等,本公开上述实施例可以利用温控器的WIFI对等连接及WIFI的信号强弱实现一定区域温控器的群组控制。
在本公开的一些实施例中,所述主控温控器10用于以组播方式向被控温控器20发送控制参数,以实现对被控温控器20控制参数的设置。由此本公开上述实施例可以实现一个主控温控器同时对多个被控温控器的控制,从而避免了去设置温控器b、c等的重复设置。
在本公开的一些实施例中,所述控制参数可以包括温度、风速和运行模式等参数中的至少一项。由此本公开上述实施例的主控温控器通过将识别参数值大于等于预定值的温控器作为被控温控器,可以实现对一定距离半径内多个被控温控器的控制,进而主控温控器可以在一定距离半径内实现对多台(而非全部)风机盘管的控制,实现快速制冷、制热或送风等控制。
在本公开的一些实施例中,判断温控器为主控温控器10和被控温控器20可以通过判断该温控器的群组控制使能开关是否开启来判定。具体而言,若该温控器的群组控制使能开关开启,则该温控器为主控温控器10;若该温控器的群组控制使能开关未开启,则该温控器为被控温控器。
基于本公开上述实施例提供的温控器控制系统,可以通过设置一台温控器a(主控温控器)的参数,实现围绕这台温控器周围区域的温控器b、c(被控温控器)能跟随这台温控器a实现一样的参数设置,实现一定区域温控器的群组控制。
由此本公开上述实施例可以避免风机盘管全开,同时实现围绕温控器a的一定距离半径实现多台(而非全部)风机盘管工作,实现快速制冷、制热或送风等,也避免了去设置温控器b、c等的重复设置。
本公开上述实施例通过将识别参数值大于等于预定值的温控器作为被控温控器,可以实现对一定距离半径内多个被控温控器的控制,从而避免了对多个被控温控器的重复设置。
图2为本公开温控器控制系统另一些实施例的示意图。如图2所示,所述温控器控制系统包括三个区域(区域1、区域2和区域3);所述温控器控制系统包括七个温控器(温控器1至温控器7),每个温控器连接一台风机盘管。
如图2所示,区域1的一台温控器2,如果此时设置温控器2的群组控制使能开关打开,则温控器2作为主控温控器。此时温控器2将与之距离近、信号强的温控器1和温控器3形成基于WIFI的Ad-Hoc(点对点)结构的群组网络,并且以温控器2为主机(主控温控器),温控器1、3为从机(被控温控器)。当温控器2有设置如温度、风速、运行模式等控制参数的情况下,温控器2将以组播的方式发送这些控制参数至温控器1、3,实 现区域1设置一台温控器2同时温控器2、3一致参数设置的目的。
又如图2所示,设置区域3的温控器7,由于温控器4、5距离与之距离较近、信号较强,将形成以温控器7为中心的,温控器4、5为从机的基于WIFI的Ad-Hoc结构的取值网络。温控器4、5的参数将随同温控器7的变化而一致变化。而温控器6虽然在同一区域3,由于距离温控器7距离较远,信号强度弱,温控器7不与之形成基于WIFI的Ad-Hoc结构的网络,温控器6的参数不随温控器7的参数一致变化。
如图2所示,如果在区域2和3中,温控器4与温控器7同时开启群组控制使能开关,此时将形成以温控器4为主机、温控器5、6为从机基于WIFI的Ad-Hoc结构的网络,以及以温控器7为主机、温控器5为从机基于WIFI的Ad-Hoc结构的网络。原来温控器7可以同步设置温控器4,因温控器4开启群组控制使能开关而取消温控器7对温控器4的组播;同时温控器5将同时受到温控器4、7的控制,以最后设置为准。
本公开上述实施例可以避免风机盘管全开,同时实现围绕温控器a的一定距离半径实现多台(而非全部)风机盘管工作,实现快速制冷、制热或送风等,也避免了去设置温控器b、c等的重复设置。
本公开上述实施例实现不需要服务器、路由器、移动终端设备等,本公开上述实施例可以利用温控器的WIFI对等连接及WIFI的信号强弱实现一定区域温控器的群组控制。
图3为本公开温控器控制方法一些实施例的示意图。优选的,本实施例可由本公开主控温控器执行。该方法包括以下步骤:
步骤31,主控温控器10获取周围温控器的识别参数值。
在本公开的一些实施例中,步骤31可以包括:主控温控器10在群组控制使能开关开启的情况下,获取周围温控器的识别参数值。
在本公开的一些实施例中,所述识别参数值可以为主控温控器与被控温控器之间的距离;预定值可以为预定距离值。
在本公开的一些实施例中,主控温控器与被控温控器之间的距离可以通过红外距离探测器、超声波距离探测器、GPS测距等方式获取。
在本公开的一些实施例中,所述识别参数值可以为主控温控器与被控温控器之间的无线信号强度;预定值可以为预定信号强度值。
步骤32,主控温控器10将识别参数值大于等于预定值的温控器作为被控温控器20。
在本公开的一些实施例中,主控温控器10与被控温控器20构成点对点结构的群组网 络。
在本公开的一些实施例中,主控温控器10与被控温控器20之间通过无线网络进行直连。
在本公开的一些实施例中,所述无线网络为WIFI网络;主控温控器10与被控温控器20之间进行WIFI对等连接。
在本公开的一些实施例中,步骤32可以包括:
步骤321,主控温控器10将识别参数值大于等于预定值的温控器作为待定温控器。
步骤322,主控温控器10判断待定温控器的群组控制使能开关是否开启。
步骤323,主控温控器10将未开启群组控制使能开关的待定温控器作为被控温控器20。
步骤33,主控温控器10向被控温控器20发送控制参数,实现对被控温控器20的控制。
在本公开的一些实施例中,所述控制参数可以包括温度、风速和运行模式等参数中的至少一项。
在本公开的一些实施例中,步骤33可以包括:主控温控器10在设置自身控制参数的情况下,以组播方式向被控温控器20发送所述控制参数,实现对被控温控器20控制参数的群组设置。
基于本公开上述实施例提供的温控器控制方法,可以通过设置一台温控器a(主控温控器)的参数,实现围绕这台温控器周围区域的温控器b、c(被控温控器)能跟随这台温控器a实现一样的参数设置,实现一定区域温控器的群组控制。
由此本公开上述实施例可以避免风机盘管全开,同时实现围绕温控器a的一定距离半径实现多台(而非全部)风机盘管工作,实现快速制冷、制热或送风等,也避免了去设置温控器b、c等的重复设置。
本公开上述实施例实现不需要服务器、路由器、移动终端设备等,本公开上述实施例可以利用温控器的WIFI对等连接及WIFI的信号强弱实现一定区域温控器的群组控制。
图4为本公开主控温控器一些实施例的示意图。如图4所示,本公开主控温控器(例如图1或图2实施例的主控温控器)可以包括识别参数值获取模块101、识别参数判断模块102和参数发送模块103,其中:
识别参数值获取模块101,用于在群组控制使能开关开启的情况下,获取周围温控器 的识别参数值。
识别参数判断模块102,用于将识别参数值大于等于预定值的温控器作为被控温控器20。
在本公开的一些实施例中,识别参数判断模块102可以用于将识别参数值大于等于预定值的温控器作为待定温控器;判断待定温控器的群组控制使能开关是否开启;将未开启群组控制使能开关的待定温控器作为被控温控器20。
在本公开的一些实施例中,主控温控器10与被控温控器20构成点对点结构的群组网络。
在本公开的一些实施例中,主控温控器10与被控温控器20之间通过无线网络进行直连。
在本公开的一些实施例中,所述无线网络为WIFI网络;主控温控器10与被控温控器20之间进行WIFI对等连接。
参数发送模块103,用于向被控温控器20发送控制参数,实现对被控温控器20的控制。
在本公开的一些实施例中,参数发送模块103可以用于在设置自身控制参数的情况下,以组播方式向被控温控器20发送所述控制参数,实现对被控温控器20控制参数的群组设置。
在本公开的一些实施例中,所述主控温控器10用于执行实现如上述任一实施例(例如图3实施例)所述的温控器控制方法的操作。
基于本公开上述实施例提供的主控温控器,可以通过设置一台温控器a(主控温控器)的参数,实现围绕这台温控器周围区域的温控器b、c(被控温控器)能跟随这台温控器a实现一样的参数设置,实现一定区域温控器的群组控制。
由此本公开上述实施例可以避免风机盘管全开,同时实现围绕温控器a的一定距离半径实现多台(而非全部)风机盘管工作,实现快速制冷、制热或送风等,也避免了去设置温控器b、c等的重复设置。
图5为本公开主控温控器另一些实施例的示意图。如图5所示,本公开主控温控器(例如图1或图2实施例的主控温控器)可以包括主控温控器存储器108和主控温控器处理器109,其中:
主控温控器存储器108,用于存储指令。
主控温控器处理器109,用于执行所述指令,使得所述主控温控器10执行实现如上述 任一实施例(例如图3实施例)所述的温控器控制方法的操作。
本公开上述实施例实现不需要服务器、路由器、移动终端设备等,本公开上述实施例可以利用温控器的WIFI对等连接及WIFI的信号强弱实现一定区域温控器的群组控制。
图6为本公开温控器控制方法另一些实施例的示意图。优选的,本实施例可由本公开被控温控器执行。该方法包括以下步骤:
步骤61,被控温控器20向主控温控器发送识别参数值,以便主控温控器将识别参数值大于等于预定值的温控器作为被控温控器。
在本公开的一些实施例中,所述识别参数值可以为主控温控器与被控温控器之间的距离;预定值可以为预定距离值。
在本公开的一些实施例中,主控温控器与被控温控器之间的距离可以通过红外距离探测器、超声波距离探测器、GPS测距等方式获取。
在本公开的一些实施例中,所述识别参数值可以为主控温控器与被控温控器之间的无线信号强度;预定值可以为预定信号强度值。
步骤62,被控温控器20与主控温控器构成建立点对点结构的网络。
步骤63,被控温控器20接收主控温控器10发送的控制参数。
步骤64,根据所述控制参数实现对被控温控器20控制参数的设置。
在本公开的一些实施例中,步骤62可以包括:在接收到多个主控温控器10发送的控制参数的情况下,根据最后一次接收到的控制参数实现对被控温控器20控制参数的设置。
基于本公开上述实施例提供的温控器控制方法,可以通过设置一台温控器a(主控温控器)的参数,实现围绕这台温控器周围区域的温控器b、c(被控温控器)能跟随这台温控器a实现一样的参数设置,实现一定区域温控器的群组控制。
由此本公开上述实施例可以避免风机盘管全开,同时实现围绕温控器a的一定距离半径实现多台(而非全部)风机盘管工作,实现快速制冷、制热或送风等,也避免了去设置温控器b、c等的重复设置。
本公开上述实施例实现不需要服务器、路由器、移动终端设备等,本公开上述实施例可以利用温控器的WIFI对等连接及WIFI的信号强弱实现一定区域温控器的群组控制。
图7为本公开被控温控器一些实施例的示意图。如图7所示,本公开被控温控器(例如图1或图2实施例的被控温控器)可以包括识别参数发送模块201、网络建立模块202、 控制参数接收模块203和控制参数设置模块204,其中:
识别参数发送模块201,用于向主控温控器发送识别参数值,以便主控温控器将识别参数值大于等于预定值的温控器作为被控温控器。
网络建立模块202,用于与主控温控器构成建立点对点结构的网络。
控制参数接收模块203,用于接收主控温控器发送的控制参数。。
控制参数设置模块204,用于根据所述控制参数实现对被控温控器20控制参数的设置。
在本公开的一些实施例中,控制参数设置模块204可以用于在接收到多个主控温控器10发送的控制参数的情况下,根据最后一次接收到的控制参数实现对被控温控器20控制参数的设置。
在本公开的一些实施例中,所述被控温控器用于执行实现如上述任一实施例(例如图6实施例)所述的温控器控制方法的操作。
基于本公开上述实施例提供的被控温控器,可以通过设置一台温控器a(主控温控器)的参数,实现围绕这台温控器周围区域的温控器b、c(被控温控器)能跟随这台温控器a实现一样的参数设置,实现一定区域温控器的群组控制。
由此本公开上述实施例可以避免风机盘管全开,同时实现围绕温控器a的一定距离半径实现多台(而非全部)风机盘管工作,实现快速制冷、制热或送风等,也避免了去设置温控器b、c等的重复设置。
图8为本公开被控温控器另一些实施例的示意图。如图8所示,本公开被控温控器(例如图1或图2实施例的被控温控器)可以包括被控温控器存储器208和被控温控器处理器209,其中:
被控温控器存储器208,用于存储指令。
被控温控器处理器209,用于执行所述指令,使得所述被控温控器执行实现如上述任一实施例(例如图6实施例)所述的温控器控制方法的操作。
本公开上述实施例实现不需要服务器、路由器、移动终端设备等,本公开上述实施例可以利用温控器的WIFI对等连接及WIFI的信号强弱实现一定区域温控器的群组控制。
根据本公开的另一方面,提供一种计算机可读存储介质,所述计算机可读存储介质存储有计算机指令,所述指令被处理器执行时实现如上述任一实施例(例如图3或图6实施例)所述的温控器控制方法。
基于本公开上述实施例提供的计算机可读存储介质,可以通过设置一台温控器a(主控温控器)的参数,实现围绕这台温控器周围区域的温控器b、c(被控温控器)能跟随这台温控器a实现一样的参数设置,实现一定区域温控器的群组控制。
由此本公开上述实施例可以避免风机盘管全开,同时实现围绕温控器a的一定距离半径实现多台(而非全部)风机盘管工作,实现快速制冷、制热或送风等,也避免了去设置温控器b、c等的重复设置。
本公开上述实施例实现不需要服务器、路由器、移动终端设备等,本公开上述实施例可以利用温控器的WIFI对等连接及WIFI的信号强弱实现一定区域温控器的群组控制。
在上面所描述的主控温控器和被控温控器可以实现为用于执行本申请所描述功能的通用处理器、可编程逻辑控制器(PLC)、数字信号处理器(DSP)、专用集成电路(ASIC)、现场可编程门阵列(FPGA)或者其他可编程逻辑器件、分立门或者晶体管逻辑器件、分立硬件组件或者其任意适当组合。
显然,本领域的技术人员可以对本公开实施例进行各种改动和变型而不脱离本公开的精神和范围。这样,倘若本公开的这些修改和变型属于本公开权利要求及其等同技术的范围之内,则本公开也意图包含这些改动和变型在内。
可能以许多方式来实现本公开的方法和系统。例如,可通过软件、硬件、固件或者软件、硬件、固件的任何组合来实现本公开的方法和系统。用于方法的步骤的上述顺序仅是为了进行说明,本公开的方法的步骤不限于以上具体描述的顺序,除非以其它方式特别说明。此外,在一些实施例中,还可将本公开实施为记录在记录介质中的程序,这些程序包括用于实现根据本公开的方法的机器可读指令。因而,本公开还覆盖存储用于执行根据本公开的方法的程序的记录介质。
本公开的描述是为了示例和描述起见而给出的,而并不是无遗漏的或者将本公开限于所公开的形式。很多修改和变化对于本领域的普通技术人员而言是显然的。选择和描述实施例是为了更好说明本公开的原理和实际应用,并且使本领域的普通技术人员能够理解本公开从而设计适于特定用途的带有各种修改的各种实施例。
Claims (18)
- 一种温控器控制方法,包括:主控温控器获取周围温控器的识别参数值;主控温控器将识别参数值大于等于预定值的温控器作为被控温控器;主控温控器向被控温控器发送控制参数,实现对被控温控器的控制。
- 根据权利要求1所述的温控器控制方法,还包括:主控温控器在群组控制使能开关开启的情况下,执行获取周围温控器的识别参数值的步骤。
- 根据权利要求1所述的温控器控制方法,其中,主控温控器与被控温控器构成点对点结构的群组网络;和/或,主控温控器与被控温控器之间通过无线网络进行直连。
- 根据权利要求1-3中任一项所述的温控器控制方法,其中,所述识别参数值为主控温控器与被控温控器之间的距离;或,所述识别参数值为主控温控器与被控温控器之间的无线信号强度。
- 根据权利要求1-3中任一项所述的温控器控制方法,其中,所述主控温控器将识别参数值大于等于预定值的温控器作为被控温控器包括:主控温控器将识别参数值大于等于预定值的温控器作为待定温控器;主控温控器判断待定温控器的群组控制使能开关是否开启;主控温控器将未开启群组控制使能开关的待定温控器作为被控温控器。
- 根据权利要求1-3中任一项所述的温控器控制方法,其中,所述主控温控器向被控温控器发送控制参数包括:主控温控器以组播方式向被控温控器发送控制参数。
- 根据权利要求1-3中任一项所述的温控器控制方法,其中,所述主控温控器实现对被控温控器的控制包括:主控温控器实现对被控温控器控制参数的设置。
- 根据权利要求1-3中任一项所述的温控器控制方法,其中,所述控制参数包括温度、风速和运行模式中的至少一项。
- 一种温控器控制方法,包括:向主控温控器发送识别参数值,以便主控温控器将识别参数值大于等于预定值的温控器作为被控温控器;与主控温控器构成建立点对点结构的网络;接收主控温控器发送的控制参数;根据所述控制参数实现对被控温控器控制参数的设置。
- 根据权利要求9所述的温控器控制方法,其中,所述根据所述控制参数实现对被控温控器控制参数的设置包括:在接收到多个主控温控器发送的控制参数的情况下,根据最后一次接收到的控制参数实现对被控温控器控制参数的设置。
- 一种主控温控器,包括:识别参数值获取模块,用于获取周围温控器的识别参数值;识别参数判断模块,用于将识别参数值大于等于预定值的温控器作为被控温控器;参数发送模块,用于向被控温控器发送控制参数,实现对被控温控器的控制。
- 根据权利要求11所述的主控温控器,其中,所述主控温控器用于执行实现如权利要求1-8中任一项所述的温控器控制方法的操作。
- 一种主控温控器,包括:主控温控器存储器,用于存储指令;主控温控器处理器,用于执行所述指令,使得所述主控温控器执行实现如权利要求 1-8中任一项所述的温控器控制方法的操作。
- 一种被控温控器,包括:识别参数发送模块,用于向主控温控器发送识别参数值,以便主控温控器将识别参数值大于等于预定值的温控器作为被控温控器;网络建立模块,用于与主控温控器构成建立点对点结构的网络;控制参数接收模块,用于接收主控温控器发送的控制参数;控制参数设置模块,用于根据所述控制参数实现对被控温控器控制参数的设置。
- 根据权利要求14所述的被控温控器,其中,所述被控温控器用于执行实现如权利要求9或10所述的温控器控制方法的操作。
- 一种被控温控器,包括:被控温控器存储器,用于存储指令;被控温控器处理器,用于执行所述指令,使得所述被控温控器执行实现如权利要求9或10所述的温控器控制方法的操作。
- 一种温控器控制系统,包括如权利要求11-13中任一项所述的主控温控器、以及如权利要求14-16中任一项所述的被控温控器。
- 一种计算机可读存储介质,其中,所述计算机可读存储介质存储有计算机指令,所述指令被处理器执行时实现如权利要求1-10中任一项所述的温控器控制方法。
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