WO2016188139A1 - 一种智能空气控制盒 - Google Patents

一种智能空气控制盒 Download PDF

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Publication number
WO2016188139A1
WO2016188139A1 PCT/CN2016/072563 CN2016072563W WO2016188139A1 WO 2016188139 A1 WO2016188139 A1 WO 2016188139A1 CN 2016072563 W CN2016072563 W CN 2016072563W WO 2016188139 A1 WO2016188139 A1 WO 2016188139A1
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indoor air
air conditioning
unit
communication unit
control box
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PCT/CN2016/072563
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English (en)
French (fr)
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杨燕辉
曹敏峰
郭国良
丘自拔
黄一山
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深圳市新联锋科技有限公司
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Publication of WO2016188139A1 publication Critical patent/WO2016188139A1/zh

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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements

Definitions

  • the present invention relates to the field of Internet of Things technologies, and more particularly to an intelligent air control box.
  • home appliances tend to be intelligently developed.
  • the goal is to realize information interaction and remote control between human and machine on the basis of traditional home appliances.
  • the user's control of the indoor air conditioning device also needs to be networked and intelligent, and the user may wish that the indoor air environment can simulate a certain target air environment. Therefore, it is necessary to provide an overall intelligent technical solution for controlling a plurality of indoor air conditioning devices while adjusting the indoor air environment to simulate a target air environment.
  • the invention provides an intelligent air control box, comprising: a main control unit, a first communication unit, a second communication unit, a storage unit, and a sensor unit; the main control unit is connected with other units to control other units Operating; the first communication unit is configured to download target air data from a server; the sensor unit is configured to sense indoor air to obtain indoor air data; and the storage unit is configured to store the target air data, the indoor air data And an ID and a type of the indoor air conditioning device; the main control unit is configured to compare the target air data and the indoor air data and generate a method for adjusting an indoor air state to a target air state according to a preset algorithm.
  • An air conditioning command wherein the air conditioning command includes an ID of the indoor air conditioning device; and the second communication unit is configured to send the air conditioning command to the corresponding indoor air conditioning device according to the ID of the indoor air conditioning device.
  • the smart air control box further includes a third communication unit; the third communication list The element is configured to receive a command of the terminal and send the execution result of the command to the terminal; the main control unit is further configured to execute a command of the terminal.
  • the third communication unit comprises a first SOCKET or HTTP server that establishes a connection with a SOCKET or HTTP client of the terminal.
  • the second communication unit comprises a second SOCKET or HTTP server that establishes a connection with a SOCKET or HTTP client of the indoor air conditioning device.
  • the main control unit and the sensor unit are connected by a communication bus;
  • the communication bus is any one of the following: an I2C bus, an SPI bus, a UART bus, an RS 485 bus, and a Modbus bus.
  • the sensor unit comprises any one or combination of the following: a temperature sensor, a humidity sensor, a PM2.5 sensor, a formaldehyde concentration sensor, a CO 2 concentration sensor, and an odor sensor.
  • the invention also provides an intelligent air control box, comprising: a main control unit, a first communication unit, a second communication unit, and a storage unit; the main control unit is connected with other units to control the operation of the other units;
  • the first communication unit is configured to download target air data from a server;
  • the second communication unit is configured to receive indoor air data sensed by an indoor air conditioning device;
  • the storage unit is configured to store the target air data, the Indoor air data, and ID and type of indoor air conditioning device;
  • the main control unit is configured to compare the target air data and the indoor air data and generate a target for adjusting indoor air status according to a preset algorithm
  • An air conditioning command in an air state wherein the air conditioning command includes an ID of an indoor air conditioning device;
  • the second communication unit is configured to send the air conditioning command to a corresponding indoor air according to an ID of the indoor air conditioning device Adjustment device.
  • the smart air control box further includes a third communication unit; the third communication unit is configured to receive a command of the terminal and send an execution result of the command to the terminal; the main control unit is further configured to execute the terminal The command.
  • the third communication unit comprises a first SOCKET or HTTP server that establishes a connection with a SOCKET or HTTP client of the terminal.
  • the second communication unit comprises a second SOCKET or HTTP server that establishes a connection with a SOCKET or HTTP client of the indoor air conditioning device.
  • the inventors of the present invention have found that in the prior art, there is no one that regulates the indoor air environment. A technical solution to simulate the target air environment. Therefore, the technical task to be achieved by the present invention or the technical problem to be solved is not thought of or expected by those skilled in the art, so the present invention is a new technical solution.
  • the present invention it is possible to integrally control a plurality of indoor air conditioning devices, and it is possible to adjust the indoor air environment to simulate a target air environment.
  • FIG. 1 is a connection diagram of a first embodiment of a smart air control box.
  • FIG. 2 is a connection diagram of a second embodiment of a smart air control box.
  • the terminal mentioned in the present invention may be, for example, a smartphone, a tablet, etc., and is mounted thereon.
  • Software that controls the smart air control box such as an application APP or the like.
  • the indoor air conditioning apparatus mentioned in the present invention refers to a device capable of adjusting the state of indoor air, such as an air conditioner, a humidifier, a dehumidifier, an air purifier, a full heat ventilating fan, and the like.
  • a first embodiment of a smart air control box includes a main control unit 11, a first communication unit 14, a second communication unit 15, a third communication unit 16, a storage unit 12, and a sensor unit 13.
  • the main control unit 1 is connected to other units to control the operation of the other units.
  • a two-way communication link is established between the first communication unit 14 and the cloud server 2, between the second communication unit 15 and the indoor air conditioning device 4, and between the third communication unit 16 and the terminal 3.
  • the first communication unit 14 of the intelligent air control box 1 is connected to the router, and then activates the first SOCKET or HTTP server for the terminal 3 to connect and activates the second SOCKET or HTTP server for the indoor air conditioning device 4 to connect;
  • Terminal 3 connects to the same router, and then sends the router information in the form of a UDP broadcast packet;
  • Each indoor air conditioning device 4 has a communication module built in. After receiving the UDP broadcast packet sent by the terminal 3, the UDP broadcast packet is parsed to obtain the information of the router, and then connected to the router. The communication module of the indoor air conditioning device 4 then activates a SOCKET or HTTP server;
  • the terminal 3 newly starts a SOCKET or HTTP client to connect to the first SOCKET or HTTP server of the intelligent air control box 1, and sends a command to notify the unique ID of the communication module of the indoor air conditioning device 4 to be connected to the smart air control box 1.
  • Terminal 3 creates a SOCKET or HTTP client to connect the SOCKET or HTTP server of the communication module of the indoor air conditioning device 4;
  • the terminal 3 sends a command to the communication module of the indoor air conditioning device 4 to cause the communication module to establish a SOCKET or HTTP connection with the smart air control box 1, and the communication module of the indoor air conditioning device 4 creates a new SOCKET or HTTP client and a smart air control box. 1 second SOCKET or HTTP server connection.
  • the above process describes the connection of the intelligent air control box to the terminal and the indoor air conditioning unit.
  • the process is not limited to the above implementation manner, and those skilled in the art may also set other connection processes according to application requirements and hardware and software environments.
  • the first communication unit 14 actively goes to the designated cloud server 2 to download the target air data and stores it in the storage unit 12, if the subsequent user manually modifies the target air data or customizes a target.
  • the terminal 3 sends a command to notify the smart air control box 1 to go to the cloud server 2 to download the updated target air data.
  • the smart air control box 1 can request target air data from the cloud server 2 at intervals and is stored in the storage unit 12.
  • the sensor unit 13 senses indoor air to obtain indoor air data, and transmits the indoor air data to the main control unit 11 through a communication bus.
  • the main control unit 11 can periodically acquire indoor air data from the sensor unit 13 while being stored in the storage unit 12.
  • the communication bus can be an I2C bus, an SPI bus, a UART bus, an RS485 bus, a Modbus bus, or the like.
  • the sensor unit 13 may include any one or combination of the following: a temperature sensor, a humidity sensor, a PM2.5 sensor, a formaldehyde concentration sensor, a CO 2 concentration sensor, an odor sensor, and the like.
  • the main control unit 11 stores the target air data and the indoor air data in the storage unit 12.
  • the storage unit 12 further stores the ID and type of the indoor air conditioning device 4, and the ID of the indoor air conditioning device 4 may be the indoor air conditioning device 4.
  • the unique ID of the communication module is the unique ID of the communication module.
  • the main control unit 11 is configured to generate an air conditioning command for simulating target air according to a predetermined series of algorithms according to the target air data, the indoor air data, and the type of the indoor air conditioning device, where the air conditioning command includes The ID of the indoor air conditioning unit 4.
  • the second communication unit 15 sends the air conditioning command to the corresponding indoor air conditioning device 4 according to the ID of the indoor air conditioning device, for example, sends a cooling command to the air conditioning device, sends a dehumidification command to the dehumidifier, and indoor air conditioning
  • the device 4 performs corresponding actions to achieve the purpose of controlling the indoor air environment to simulate the target air environment.
  • a second embodiment of the intelligent air control box is shown, which differs from the first embodiment in that since the indoor air conditioning unit 4 is usually provided with a sensor, the sensor unit is no longer disposed in the smart air box 1. Instead, the indoor air data is taken from the indoor air conditioning unit 4 via the second communication unit 15.
  • the intelligent air control box 1 and the indoor air conditioning unit 4 are connected to the same router and are in the same LAN class; TCP communication can be used between them.
  • the intelligent air control box 1 can send a command for inquiring the state of the indoor air conditioning device 4 to each indoor air conditioning device 4 at intervals of 10 s, and the indoor air conditioning device 4 returns all of its own state to the smart air control box 1 after receiving the command.
  • the indoor air data measured by the sensors of the indoor air conditioning unit 4 is included therein; likewise, the intelligent air control box 1 stores the received indoor air data in the storage unit 12.
  • the terminal 3 sends a control command to the smart air control box 1, which may include a command to simulate the target air environment, and the main control unit 11 of the intelligent air control box 1 follows a preset series.
  • the algorithm generates an air conditioning command simulating the target air, and controls the indoor air conditioning device 4 to operate through the second communication unit 15; and may further include an inquiry command for querying the state of the intelligent air control box, for example, sending a message to the intelligent air control box 1 at intervals of 10 s
  • the command of the state of the intelligent air control box 1 is queried, and the smart air control box 1 returns the current control state to the terminal.
  • the present invention it is possible to control a plurality of indoor air conditioning devices intelligently as a whole, and it is possible to adjust the indoor air environment to simulate a target air environment.
  • each unit in the intelligent air control box can be implemented in various ways including software and hardware, or some units can be combined, for example, the first, second, and third units can be implemented.
  • the communication units are implemented together.
  • the present invention can be a hardware in conjunction with a computer program product, which can include a computer readable storage medium embodying computer readable program instructions for implementing various aspects of the present invention.

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  • Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Air Conditioning Control Device (AREA)
  • Ventilation (AREA)

Abstract

一种智能空气控制盒,包括:主控单元(11)、第一通信单元(14)、第二通信单元(15)、存储单元(12)以及传感器单元(13);主控单元(11)与其它各个单元连接以控制其它各个单元的运作;主控单元(11)用于比较目标空气数据和室内空气数据并按照预先设定的算法生成用于将室内空气状态调节为目标空气状态的空气调节指令,空气调节指令中包含室内空气调节装置(4)的ID;第二通信单元(15)用于根据室内空气调节装置(4)的ID将空气调节指令发送至相应的室内空气调节装置(4)。

Description

一种智能空气控制盒 技术领域
本发明涉及物联网技术领域,更具体地,涉及一种智能空气控制盒。
背景技术
随着物联网、三网合一等技术概念的提出,家居家电趋向于智能化发展,目标是在传统家电的基础上实现人机之间的信息交互和远程控制。其中,用户对室内空气调节装置的控制也要求趋向于联网化和智能化,用户可能会希望室内空气环境能够模拟某种目标空气环境。因此有必要提供一种整体的智能的控制多个室内空气调节装置的技术方案,同时调节室内空气环境模拟目标空气环境。
发明内容
本发明的目的是提供一种调节室内空气环境以模拟目标空气环境的新的技术方案。
本发明提供了一种智能空气控制盒,包括:主控单元、第一通信单元、第二通信单元、存储单元、以及传感器单元;所述主控单元与其它各个单元连接以控制其它各个单元的运作;所述第一通信单元用于从服务器下载目标空气数据;所述传感器单元用于感测室内空气取得室内空气数据;所述存储单元用于存储所述目标空气数据、所述室内空气数据、以及室内空气调节装置的ID和类型;所述主控单元用于比较所述目标空气数据和所述室内空气数据并按照预先设定的算法生成用于将室内空气状态调节为目标空气状态的空气调节指令,所述空气调节指令中包含室内空气调节装置的ID;所述第二通信单元用于根据所述室内空气调节装置的ID将所述空气调节指令发送至相应的室内空气调节装置。
优选的,所述智能空气控制盒还包括第三通信单元;所述第三通信单 元用于接收终端的命令以及将命令的执行结果发送至所述终端;所述主控单元还用于执行终端的命令。
优选的,所述第三通信单元包括与终端的SOCKET或HTTP客户端建立连接的第一SOCKET或HTTP服务端。
优选的,所述第二通信单元包括与室内空气调节装置的SOCKET或HTTP客户端建立连接的第二SOCKET或HTTP服务端。
优选的,所述主控单元与所述传感器单元通过通信总线连接;所述通信总线为下列任一:I2C总线、SPI总线、UART总线、RS 485总线、Modbus总线。
优选的,所述传感器单元包括以下任一或组合:温度传感器、湿度传感器、PM2.5传感器、甲醛浓度传感器、CO2浓度传感器、异味传感器。
本发明还提供了一种智能空气控制盒,包括:主控单元、第一通信单元、第二通信单元、以及存储单元;所述主控单元与其它各个单元连接以控制其它各个单元的运作;所述第一通信单元用于从服务器下载目标空气数据;所述第二通信单元用于接收室内空气调节装置感测的室内空气数据;所述存储单元用于存储所述目标空气数据、所述室内空气数据、以及室内空气调节装置的ID和类型;所述主控单元用于比较所述目标空气数据和所述室内空气数据并按照预先设定的算法生成用于将室内空气状态调节为目标空气状态的空气调节指令,所述空气调节指令中包含室内空气调节装置的ID;所述第二通信单元用于根据所述室内空气调节装置的ID将所述空气调节指令发送至相应的室内空气调节装置。
优选的,所述智能空气控制盒还包括第三通信单元;所述第三通信单元用于接收终端的命令以及将命令的执行结果发送至所述终端;所述主控单元还用于执行终端的命令。
优选的,所述第三通信单元包括与终端的SOCKET或HTTP客户端建立连接的第一SOCKET或HTTP服务端。
优选的,所述第二通信单元包括与室内空气调节装置的SOCKET或HTTP客户端建立连接的第二SOCKET或HTTP服务端。
本发明的发明人发现,在现有技术中,还没有一种调节室内空气环境 以模拟目标空气环境的技术方案。因此,本发明所要实现的技术任务或者所要解决的技术问题是本领域技术人员从未想到的或者没有预期到的,故本发明是一种新的技术方案。
通过本发明,能够整体控制多个室内空气调节装置,并且能够调节室内空气环境模拟目标空气环境。
通过以下参照附图对本发明的示例性实施例的详细描述,本发明的其它特征及其优点将会变得清楚。
附图说明
被结合在说明书中并构成说明书的一部分的附图示出了本发明的实施例,并且连同其说明一起用于解释本发明的原理。
图1是智能空气控制盒的第一实施例的连接示意图。
图2是智能空气控制盒的第二实施例的连接示意图。
具体实施方式
现在将参照附图来详细描述本发明的各种示例性实施例。应注意到:除非另外具体说明,否则在这些实施例中阐述的部件和步骤的相对布置、数字表达式和数值不限制本发明的范围。
以下对至少一个示例性实施例的描述实际上仅仅是说明性的,决不作为对本发明及其应用或使用的任何限制。
对于相关领域普通技术人员已知的技术、方法和设备可能不作详细讨论,但在适当情况下,所述技术、方法和设备应当被视为说明书的一部分。
在这里示出和讨论的所有例子中,任何具体值应被解释为仅仅是示例性的,而不是作为限制。因此,示例性实施例的其它例子可以具有不同的值。
应注意到:相似的标号和字母在下面的附图中表示类似项,因此,一旦某一项在一个附图中被定义,则在随后的附图中不需要对其进行进一步讨论。
本发明中提到的终端可以例如是智能手机、平板电脑等,其上安装有 控制智能空气控制盒的软件例如应用APP等。
本发明中提到的室内空气调节装置,是指能够调节室内空气状态的设备,例如为空调、加湿器、除湿机、空气净化器、全热换气扇等。
参考图1所示为智能空气控制盒的第一实施例,包括:主控单元11、第一通信单元14、第二通信单元15、第三通信单元16、存储单元12、以及传感器单元13。主控单元1与其它各个单元连接以控制其它各个单元的运作。
第一通信单元14和云服务器2之间,第二通信单元15和室内空气调节装置4之间,以及第三通信单元16和终端3之间分别建立双向的通信链路,下面详述通信链路的实现过程:
1.智能空气控制盒1的第一通信单元14连接路由器,然后启动第一SOCKET或HTTP服务端以供终端3连接以及启动第二SOCKET或HTTP服务端以供室内空气调节装置4连接;
2.终端3连接同一个路由器,然后把路由器的信息以UDP广播包的形式发送出去;
3.每个室内空气调节装置4都内置一个通信模块,收到终端3发送的UDP广播包后,解析UDP广播包获取该路由器的信息,然后连接该路由器。室内空气调节装置4的通信模块随后启动一个SOCKET或HTTP服务端;
4.终端3新启动一个SOCKET或HTTP客户端连接智能空气控制盒1的第一SOCKET或HTTP服务端,发送指令通知智能空气控制盒1将要连接的室内空气调节装置4的通信模块的唯一ID和室内空气调节装置4的类型;
5.终端3新建一个SOCKET或HTTP客户端连接室内空气调节装置4的通信模块的SOCKET或HTTP服务端;
6.终端3向室内空气调节装置4的通信模块发送指令让通信模块同智能空气控制盒1建立SOCKET或HTTP连接,室内空气调节装置4的通信模块新建一个SOCKET或HTTP客户端与智能空气控制盒1的第二SOCKET或HTTP服务端连接。
上述过程描述了智能空气控制盒与终端以及室内空气调节装置的连 接过程,但本发明不局限于上述实现方式,本领域技术人员还可以根据应用需求和软硬件环境设置其它的连接过程。
智能空气控制盒1上电联网后,第一通信单元14主动去指定的云服务器2下载目标空气数据并且存储在存储单元12中,如果后续用户手动修改这份目标空气数据或者自定义一份目标空气数据,终端3会发送一条命令通知智能空气控制盒1去云服务器2下载更新后的目标空气数据。智能空气控制盒1可以每隔一段时间从云服务器2请求目标空气数据,并且保存在存储单元12中。
传感器单元13感测室内空气取得室内空气数据,并且通过通信总线将所述室内空气数据发送至主控单元11。主控单元11可以定时从传感器单元13取得室内空气数据,同时保存在存储单元12中。所述通信总线可以为I2C总线、SPI总线、UART总线、RS485总线、Modbus总线等。所述传感器单元13可以包括以下任一或组合:温度传感器、湿度传感器、PM2.5传感器、甲醛浓度传感器、CO2浓度传感器、异味传感器等。
主控单元11将目标空气数据、室内空气数据存储在存储单元12中,存储单元12中还存储有室内空气调节装置4的ID和类型,室内空气调节装置4的ID可以是室内空气调节装置4的通信模块的唯一ID。
所述主控单元11用于根据所述目标空气数据、室内空气数据、以及室内空气调节装置的类型按照预先设定的一系列算法生成模拟目标空气的空气调节指令,所述空气调节指令中包含室内空气调节装置4的ID。
所述第二通信单元15根据所述室内空气调节装置的ID将所述空气调节指令发送至相应的室内空气调节装置4,例如发送制冷命令到空调设备,发送除湿命令到除湿机,室内空气调节装置4进行相应的动作,从而达到控制室内空气环境模拟目标空气环境的目的。
参考图2所示为智能空气控制盒的第二实施例,和第一实施例的不同之处在于,由于室内空气调节装置4内部通常置有传感器,所以智能空气盒1中不再设置传感器单元,而是通过第二通信单元15从室内空气调节装置4中取得室内空气数据。智能空气控制盒1和室内空气调节装置4连接在同一个路由器上,处在同一个局域网类内;他们之间可以使用TCP通信, 智能空气控制盒1可以以间隔10s向每个室内空气调节装置4发送一条查询室内空气调节装置4状态的命令,室内空气调节装置4收到命令后向智能空气控制盒1回复自身的全部状态,其中就包括室内空气调节装置4的传感器测得的室内空气数据;同样智能空气控制盒1会将收到的室内空气数据保存在存储单元12中。
在以上两个实施例中,所述终端3会向智能空气控制盒1发送控制命令,可以包括模拟目标空气环境的命令,智能空气控制盒1的主控单元11随即按照预先设定的一系列算法生成模拟目标空气的空气调节指令,并且通过第二通信单元15控制室内空气调节装置4进行工作;还可以包括查询智能空气控制盒状态的查询命令,例如间隔10s向智能空气控制盒1发送一条查询智能空气控制盒1状态的命令,智能空气控制盒1向终端回复当前控制状态。
通过本发明,能够整体智能的控制多个室内空气调节装置,并且能够调节室内空气环境模拟目标空气环境。
本领域技术人员应当明白,可以通过各种方式包括软件和硬件的方式实现智能空气控制盒中的各个单元,也可以将某些单元合并在一起实现,例如可以将第一、第二、第三通信单元合并在一起实现。本发明可以是硬件结合计算机程序产品,计算机程序产品可以包括计算机可读存储介质,其上载有实现本发明的各个方面的计算机可读程序指令。
虽然已经通过例子对本发明的一些特定实施例进行了详细说明,但是本领域的技术人员应该理解,以上例子仅是为了进行说明,而不是为了限制本发明的范围。本领域的技术人员应该理解,可在不脱离本发明的范围和精神的情况下,对以上实施例进行修改。本发明的范围由所附权利要求来限定。

Claims (10)

  1. 一种智能空气控制盒,其特征在于,包括:主控单元、第一通信单元、第二通信单元、存储单元、以及传感器单元;所述主控单元与其它各个单元连接以控制其它各个单元的运作;
    所述第一通信单元用于从服务器下载目标空气数据;
    所述传感器单元用于感测室内空气取得室内空气数据;
    所述存储单元用于存储所述目标空气数据、所述室内空气数据、以及室内空气调节装置的ID和类型;
    所述主控单元用于比较所述目标空气数据和所述室内空气数据并按照预先设定的算法生成用于将室内空气状态调节为目标空气状态的空气调节指令,所述空气调节指令中包含室内空气调节装置的ID;
    所述第二通信单元用于根据所述室内空气调节装置的ID将所述空气调节指令发送至相应的室内空气调节装置。
  2. 根据权利要求1所述的智能空气控制盒,其特征在于,所述智能空气控制盒还包括第三通信单元;所述第三通信单元用于接收终端的命令以及将命令的执行结果发送至所述终端;所述主控单元还用于执行终端的命令。
  3. 根据权利要求1或2任一项所述的智能空气控制盒,其特征在于,所述第三通信单元包括与终端的SOCKET或HTTP客户端建立连接的第一SOCKET或HTTP服务端。
  4. 根据权利要求1-3任一项所述的智能空气控制盒,其特征在于,所述第二通信单元包括与室内空气调节装置的SOCKET或HTTP客户端建立连接的第二SOCKET或HTTP服务端。
  5. 根据权利要求1-4任一项所述智能空气控制盒,其特征在于,所述主控单元与所述传感器单元通过通信总线连接;所述通信总线为下列任一:I2C总线、SPI总线、UART总线、RS485总线、Modbus总线。
  6. 根据权利要求1-5任一项所述的智能空气控制盒,其特征在于,所述传感器单元包括以下任一或组合:温度传感器、湿度传感器、PM2.5传 感器、甲醛浓度传感器、CO2浓度传感器、异味传感器。
  7. 一种智能空气控制盒,其特征在于,包括:主控单元、第一通信单元、第二通信单元、以及存储单元;所述主控单元与其它各个单元连接以控制其它各个单元的运作;
    所述第一通信单元用于从服务器下载目标空气数据;
    所述第二通信单元用于接收室内空气调节装置感测的室内空气数据;
    所述存储单元用于存储所述目标空气数据、所述室内空气数据、以及室内空气调节装置的ID和类型;
    所述主控单元用于比较所述目标空气数据和所述室内空气数据并按照预先设定的算法生成用于将室内空气状态调节为目标空气状态的空气调节指令,所述空气调节指令中包含室内空气调节装置的ID;
    所述第二通信单元用于根据所述室内空气调节装置的ID将所述空气调节指令发送至相应的室内空气调节装置。
  8. 根据权利要求7所述的智能空气控制盒,其特征在于,所述智能空气控制盒还包括第三通信单元;所述第三通信单元用于接收终端的命令以及将命令的执行结果发送至所述终端;所述主控单元还用于执行终端的命令。
  9. 根据权利要求7或8任一项所述的智能空气控制盒,其特征在于,所述第三通信单元包括与终端的SOCKET或HTTP客户端建立连接的第一SOCKET或HTTP服务端。
  10. 根据权利要求7-9任一项所述的智能空气控制盒,其特征在于,所述第二通信单元包括与室内空气调节装置的SOCKET或HTTP客户端建立连接的第二SOCKET或HTTP服务端。
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