WO2016090734A1 - 室内数字集中控制系统及其应用的空调、取暖或制冷设备 - Google Patents

室内数字集中控制系统及其应用的空调、取暖或制冷设备 Download PDF

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Publication number
WO2016090734A1
WO2016090734A1 PCT/CN2015/071485 CN2015071485W WO2016090734A1 WO 2016090734 A1 WO2016090734 A1 WO 2016090734A1 CN 2015071485 W CN2015071485 W CN 2015071485W WO 2016090734 A1 WO2016090734 A1 WO 2016090734A1
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WIPO (PCT)
Prior art keywords
motor
control system
indoor
control module
motor control
Prior art date
Application number
PCT/CN2015/071485
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English (en)
French (fr)
Inventor
胡戈
张政
赵勇
Original Assignee
中山大洋电机股份有限公司
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Publication of WO2016090734A1 publication Critical patent/WO2016090734A1/zh
Priority to US15/619,564 priority Critical patent/US10073473B2/en

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    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05DSYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
    • G05D23/00Control of temperature
    • G05D23/19Control of temperature characterised by the use of electric means
    • G05D23/1919Control of temperature characterised by the use of electric means characterised by the type of controller
    • 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
    • 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
    • F24F11/30Control or safety arrangements for purposes related to the operation of the system, e.g. for safety or monitoring
    • 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
    • F24F11/50Control or safety arrangements characterised by user interfaces or communication
    • F24F11/54Control or safety arrangements characterised by user interfaces or communication using one central controller connected to several sub-controllers
    • 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
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • 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
    • F24F11/62Control or safety arrangements characterised by the type of control or by internal processing, e.g. using fuzzy logic, adaptive control or estimation of values
    • F24F11/63Electronic processing
    • 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
    • F24F11/70Control systems characterised by their outputs; Constructional details thereof
    • F24F11/80Control systems characterised by their outputs; Constructional details thereof for controlling the temperature of the supplied air
    • F24F11/86Control systems characterised by their outputs; Constructional details thereof for controlling the temperature of the supplied air by controlling compressors within refrigeration or heat pump circuits
    • 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
    • F24F11/70Control systems characterised by their outputs; Constructional details thereof
    • F24F11/80Control systems characterised by their outputs; Constructional details thereof for controlling the temperature of the supplied air
    • F24F11/87Control systems characterised by their outputs; Constructional details thereof for controlling the temperature of the supplied air by controlling absorption or discharge of heat in outdoor units
    • F24F11/871Control systems characterised by their outputs; Constructional details thereof for controlling the temperature of the supplied air by controlling absorption or discharge of heat in outdoor units by controlling outdoor fans
    • 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
    • F24F11/88Electrical aspects, e.g. circuits
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05DSYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
    • G05D23/00Control of temperature
    • G05D23/19Control of temperature characterised by the use of electric means
    • G05D23/1917Control of temperature characterised by the use of electric means using digital means
    • 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
    • F24F11/30Control or safety arrangements for purposes related to the operation of the system, e.g. for safety or monitoring
    • F24F11/41Defrosting; Preventing freezing
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F2110/00Control inputs relating to air properties
    • F24F2110/10Temperature
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F2110/00Control inputs relating to air properties
    • F24F2110/10Temperature
    • F24F2110/12Temperature of the outside air
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F2110/00Control inputs relating to air properties
    • F24F2110/20Humidity

Definitions

  • DC brushless motor which has the characteristics of high energy saving, high reliability and controllability, low noise, easy to realize intelligence, etc., can solve the shortage of AC motor. Therefore, DC brushless motor is used in many equipments to reduce Low energy consumption.
  • each DC brushless motor has an independent motor controller.
  • Motor controllers include separate power sections, microprocessors, inverters and rotors Position detection unit.
  • each motor controller is provided with a power supply part, a microprocessor, an inverter circuit, and a motor operation parameter detecting unit, thereby causing the entire control part circuit to be overlapped and configured, the structure is complicated, and the hardware and software cannot be fully utilized. Resources will inevitably lead to a significant increase in product costs and waste of resources.
  • heat dissipation becomes a more difficult problem.
  • the above motor control module has two DC brushless motor control modules and two AC motor control modules, two DC brushless motor control modules are used to control two permanent DC brushless motors, and two AC motor control modules are used to control 2 AC motor.
  • the above motor control module has three DC brushless motor control modules and one AC motor control module, three DC brushless motor control modules are used to control three permanent magnet motors, and one AC motor control module is used to control one AC. Motor.
  • the motor controlled by the motor control module is a general-purpose 3-phase AC motor on the market, or a PSC AC motor, or an ECM motor without a controller.
  • the motor is a brushless DC motor comprising a stator assembly, a permanent magnet rotor assembly and a casing assembly, the stator assembly being magnetically coupled with the permanent magnet rotor assembly, the stator assembly comprising an electronic core and a coil wound on the stator core Winding, coil windings from the motor control module to obtain alternating current to produce rotation
  • the field drives the rotor to rotate, and the outdoor unit control system communicates with the MCU master controller through the first input interface.
  • the thermostat THERMOSTAT is connected to the MCU master controller through the second input interface, and the MCU master controller passes two relays and its drive. The circuit controls the electric heater.
  • a third object of the present invention is to provide a two-machine air conditioning system, which can control a plurality of motors by using an indoor digital centralized control system, and each motor does not have a controller, and utilizes an indoor digital centralized control system.
  • the overlapping circuit configuration is deleted, the circuit structure is simplified, the product cost is greatly reduced, the resource waste is reduced, and at the same time, the application system can be easily matched, and the use is flexible and convenient.
  • a programming port module a first input interface, a second input interface, and two relays and a driving circuit thereof, wherein the power supply part supplies power to each part of the circuit, and the MCU total controller communicates with the first indoor unit control system through the first input interface,
  • the MCU controller communicates with the second indoor unit control system through the second input interface, and the external computer can rewrite the MCU master controller control program through the programming port module, and the MCU master controller is connected to the four motors through the four motor control modules.
  • motors are respectively mounted on the first blower, the first induced draft fan, the second blower and the second induced draft fan, wherein the motor comprises a stator assembly, a rotor assembly and a casing assembly, the stator assembly and the rotor assembly are magnetically coupled, and the stator
  • the assembly includes an electronic core and a coil winding wound on the stator core. The coil winding obtains alternating current from the motor control module to generate a rotating magnetic field to drive the rotor to rotate.
  • a two-machine air conditioning system comprising a first outdoor unit, a first outdoor unit control system, a second outdoor unit, a second outdoor unit control system, a first indoor unit, a first indoor unit control system, a second indoor unit, and a a second indoor unit control system
  • the first outdoor unit includes a first compressor and a first cooling fan
  • the first compressor and the first cooling fan are controlled by the first outdoor unit control system
  • the second outdoor unit includes a second compressor and Two
  • the cooling fan, the second compressor and the second cooling fan are controlled by the second outdoor unit control system
  • the first outdoor unit control system is in communication with the first indoor unit control system
  • the second outdoor unit control system and the second indoor unit control system Connecting the communication
  • the temperature controller THERMOSTAT is respectively connected to the first indoor unit control system and the second indoor unit control system
  • the first indoor unit includes a first blower and a first induced draft fan
  • the second indoor unit includes a second blower and a second induced draft fan
  • the indoor unit includes two indoor digital centralized
  • the MCU controller of one indoor digital centralized control system is installed and connected to two motors through two motor control modules, and the other indoor
  • the MCU master controller of the digital centralized control system is installed and connected with two motors through two motor control modules, and four motors are respectively mounted on the first blower, the first induced draft fan, the second blower and the second induced draft fan, the motor
  • the stator assembly, the rotor assembly and the casing assembly are magnetically coupled to the rotor assembly.
  • the stator assembly includes an electronic core and a coil winding wound on the stator core. The coil winding obtains an alternating current from the motor control module to generate a rotating magnetic field to drive the rotor. Turn.
  • a fourth object of the present invention is to provide a heating or cooling device which can control two motors by using an indoor digital centralized control system, and each motor does not have a controller, and uses an indoor digital centralized control system to delete overlapping circuit configurations.
  • the circuit structure is simplified, the product cost is greatly reduced, the resource waste is reduced, and at the same time, the application system can be easily matched, and the use is flexible and convenient.
  • a heating or cooling device comprising a PWM main controller and a thermostat, characterized in that it further comprises an indoor digital centralized control system, the indoor digital centralized control system comprises a power supply part, an MCU total controller, two motor control modules, The programming port module and the PWM signal input interface, the power supply part supplies power to each part of the circuit, the MCU total controller communicates with the PWM main controller through the PWM signal input interface, and the external computer can rewrite the MCU total controller control program through the programming port module.
  • the MCU total controller feedback signal is sent to the PWM main controller, and the MCU total controller is connected to the first blower motor and the second blower motor through two motor control modules, the motor is a DC brushless motor, including a stator assembly and a rotor assembly.
  • the stator assembly includes an electronic core and a coil winding wound on the stator core.
  • the coil winding obtains alternating current from the motor control module to generate a rotating magnetic field to drive the rotor to rotate.
  • the heating or cooling device may be a coil fan that uses a compressor, or a resistance wire, or a gas, or a hot and cold water to cool or warm.
  • Figure 1 is a block diagram of a first embodiment of the present invention
  • Figure 2 is a schematic block diagram of an indoor digital centralized control system of the present invention
  • FIG. 3 is a schematic diagram of the connection of the indoor digital centralized control system of the present invention.
  • Figure 4 is a structural view showing an embodiment of the present invention using a brushless DC motor
  • Figure 7 is a second electrical connection diagram of the present invention using a motor control module
  • Figure 9 is a fourth electrical connection diagram of the present invention using a motor control module
  • Figure 10 is a fifth electrical connection diagram of the present invention using a motor control module
  • Figure 11 is a wiring diagram of the digital centralized control system of the present invention applied to a single air conditioner
  • Figure 13 is a further development view of Figure 12;
  • Figure 14 is another block diagram of the digital centralized control system of the present invention applied to a two-machine air conditioner.
  • Figure 15 is a block diagram of a digital centralized control system of the present invention applied to a heating or cooling apparatus.
  • an indoor digital centralized control system is connected to an application system controller for receiving an instruction of an application system controller and controlling at least one motor to operate. It includes a power supply part, an MCU total controller, several motor control modules, a programming port module and an input interface.
  • the power supply part supplies power to each part of the circuit, and the MCU total controller communicates with the indoor application system controller through the input interface, and the external The computer can rewrite the MCU master controller control program through the programming port module.
  • the MCU master controller is connected to a motor through a motor control module.
  • the motor includes a stator assembly, a rotor assembly and a casing assembly, and the stator assembly and the rotor assembly are magnetic. Coupling, the stator assembly includes an electronic iron core and a coil winding wound on the stator core. The coil winding obtains alternating current from the motor control module to generate a rotating magnetic field to drive the rotor to rotate.
  • the plurality of motors controlled by the present invention may be an AC motor or a DC brushless motor, and the DC brushless motor has no controller.
  • the DC brushless motor 100 includes a casing. Assembly 101, stator assembly 102, rotor assembly 103 and rotor position detection unit 104; of course rotor position Detection unit 104 is optional; see the statement below.
  • the motor controlled by the motor control module is a general-purpose 3-phase AC motor on the market, or a PSC AC motor, or an ECM motor without a controller.
  • the motor control module is an AC motor control module or a DC brushless motor control module, and the AC motor control module is a relay and a driving circuit thereof.
  • the DC brushless motor control module includes a rotor.
  • the position detecting unit 104, the microprocessor and the inverting unit, the rotor position detecting unit 104 sends the rotor position data of the permanent magnet motor to the microprocessor, and the microprocessor controls the coil winding of the inverter unit to output the alternating current to the stator core.
  • the microprocessor is connected to the MCU master controller for communication.
  • the motor control module is an AC motor control module or a DC brushless motor control module, and the AC motor control module is a relay and a driving circuit thereof.
  • the DC brushless motor control module includes a phase.
  • the current detecting unit, the microprocessor and the inverter unit, the phase current detecting unit sends the current data of the permanent magnet motor to the microprocessor, and the microprocessor controls the inverter unit to output the alternating current to the coil winding on the stator core, and the micro processing
  • the device communicates with the MCU master controller.
  • the motor control module is an AC motor control module or a DC brushless motor control module, and the AC motor control module is a relay and a driving circuit thereof.
  • the DC brushless motor control module includes a rotor.
  • the position detecting unit and the inverter unit, the rotor position detecting unit sends the rotor position data of the permanent magnet motor to the MCU total controller, and the MCU master controller controls the inverter unit to output the alternating current to the coil winding on the stator core.
  • the AC motor control module is a relay and its drive circuit.
  • the motor control module has four DC brushless motor control modules for controlling four DC brushless motors. Or the motor control module has 2 DC brushless motor control modules and 2 AC motor control modules, 2 blocks.
  • the DC brushless motor control module is used to control two permanent magnet motors, and two AC motor control modules are used to control two AC motors.
  • the motor control module has 3 DC brushless motor control modules and 1 AC motor control module, 3 DC brushless motor control modules are used to control 3 DC brushless motors, and 1 AC motor control module is used to control 1 set. AC motor.
  • the digital centralized control system of the present invention is the Digital Centralized Controller System (DCCS), which is only an indoor unit of the motor controller, for example, an air handling unit, a gas furnace, a fan coil, and a variable air volume end. Its purpose is to control the digital motor movement designed by our company.
  • the digital motor movement is as shown in Figure 4, Figure 5 and Figure 6, including the stator assembly 102 and the rotor assembly 103 + Hall sensor assembly (corresponding to the rotor position detection unit). 104). All motor drive circuits are integrated into the digital centralized control system DCCS, hence the name "centralized" control system.
  • Its purpose is to use some type of thermostat as well as a main system controller, such as an existing integrated furnace controller, or a compatible third-party outdoor unit controller. It is used to replace relay boards or system controllers, blower systems, etc. in residential air conditioning treatment or fan systems, and its purpose is not to replace the integrated stove controller.
  • Product Type A digitally controlled fan motor, such as residential air conditioning processing applications, 208-240vac, to 1 hp;
  • Type II a digitally controlled fan motor, plus a digital induced draft fan, such as Residential furnace application, 115Vac, 1/3HP–1HP;
  • Type III Control two digital motors, such as commercial fan coils, to 1hp, 115-277vac;
  • Type IV Control two digital blower motors, plus two A motor.
  • the power supply part described above has a very wide input voltage, is an adaptive input power supply, can input 115V, 205V-230V, 277V, 460V, etc.; motor interface part: can only have 3-phase line voltage input U, V, W When the Hall detection component is used, the motor also feeds back the HALL signal line and the low voltage power line.
  • a single air conditioning system includes an outdoor unit, an outdoor unit control system, and an indoor unit.
  • the outdoor unit includes a compressor and a cooling fan.
  • the compressor and the cooling fan are controlled by the outdoor unit control system
  • the indoor unit includes an indoor digital centralized control system
  • the indoor digital centralized control system includes a power supply part, an MCU total controller, a motor control module, a programming port module,
  • the first input interface, the second input interface, and two relays and their driving circuits, the power supply part supplies power to each part of the circuit, and the MCU total controller passes through the input interface
  • the indoor application system controller is connected to communicate, and the external computer can rewrite the MCU total controller control program through the programming port module.
  • the MCU total controller is connected to a motor driven blower through a motor control module, and the motor is a DC brushless motor.
  • the stator assembly, the permanent magnet rotor assembly and the casing assembly are magnetically coupled to the permanent magnet rotor assembly.
  • the stator assembly includes an electronic core and a coil winding wound on the stator core, and the coil winding obtains an alternating current from the motor control module.
  • a rotating magnetic field is generated to drive the rotor to rotate, and the outdoor unit control system is connected to the MCU master controller through the first input interface, and the thermostat THERMOSTAT is connected to the MCU master controller through the second input interface, and the MCU master controller passes two relays and Its drive circuit controls the electric heater.
  • the motor 100 uses a DC brushless motor without a controller, and the two relays and their driving circuits are a first relay and its driving circuit and a second two relays and a driving circuit thereof.
  • the motor 100 is used to drive a blower inside the indoor unit.
  • a dual-machine air conditioning system includes a first outdoor unit, a first outdoor unit control system, and a second outdoor unit.
  • a second outdoor unit control system a first indoor unit, a first indoor unit control system, a second indoor unit, and a second indoor unit control system
  • the first outdoor unit including a first compressor and a first cooling fan
  • the first compressor And the first cooling fan is controlled by the first outdoor unit control system
  • the second outdoor unit includes a second compressor and a second cooling fan
  • the second compressor and the second cooling fan are controlled by the second outdoor unit control system
  • the first outdoor unit The machine control system is in communication with the first indoor unit control system
  • the second outdoor unit control system is in communication with the second indoor unit control system
  • the temperature controller THERMOSTAT is connected to the first indoor unit control system and the second indoor unit control system, respectively.
  • the motor control module is installed and connected with four motors, and the four motors are respectively mounted on the first blower, the first induced draft fan, the second blower and the second induced draft fan, wherein the motor comprises a stator assembly, a rotor assembly and a casing assembly, and the stator The assembly is magnetically coupled to the rotor assembly.
  • the stator assembly includes an electronic core and a coil winding wound on the stator core. The coil winding obtains alternating current from the motor control module to generate a rotating magnetic field to drive the rotor to rotate.
  • the first blower, the first induced draft fan, the second blower, and the second induced draft fan may all adopt a DC brushless motor without a motor controller. It is also possible to use a DC blower motor without a motor controller for the first blower and the second blower, and an AC motor for the first induced draft fan and the second induced draft fan.
  • the thermostat THERMOSTAT controls two sets of indoor units//outdoor machines.
  • the key of this control logic is “simultaneous start-up, simultaneous stop, same air volume, one error and the other one also stops reporting error”.
  • a dual-machine air conditioning system includes a first outdoor unit, a first outdoor unit control system, and a second outdoor unit.
  • a second outdoor unit control system a first indoor unit, a first indoor unit control system, a second indoor unit, and a second indoor unit control system
  • the first outdoor unit including a first compressor and a first cooling fan
  • the first compressor And the first cooling fan is controlled by the first outdoor unit control system
  • the second outdoor unit includes a second compressor and a second cooling fan
  • the second compressor and the second cooling fan are controlled by the second outdoor unit control system
  • the first outdoor unit The machine control system is in communication with the first indoor unit control system
  • the second outdoor unit control system is in communication with the second indoor unit control system
  • the temperature controller THERMOSTAT is connected to the first indoor unit control system and the second indoor unit control system, respectively.
  • An indoor unit includes a first blower and a first induced draft fan, and the second indoor unit includes a second blower and a second induced draft fan, wherein the indoor unit includes two indoor digital centralized control systems
  • the indoor digital centralized control system includes a power supply part, an MCU total controller, two motor control modules, a programming port module, a first input interface and a second input interface, and the power supply part supplies power to each part of the circuit, wherein one indoor digital centralized control system
  • the MCU main controller communicates with the first indoor unit control system through the first input interface, and the MCU main controller of the other indoor digital centralized control system communicates with the second indoor unit control system through the first input interface, two indoor numbers
  • the centralized control system communicates via the second communication port, and the external computer can overwrite the MCU master controller control program through the programming port module.
  • one of the MCU master controllers of the indoor digital centralized control system is installed and connected to two motors through two motor control modules.
  • the MCU master controller of another indoor digital centralized control system is installed and connected to two motors through two motor control modules.
  • Four motors are respectively mounted on the first blower, the first induced draft fan, the second blower and the second induced draft fan, the motor comprising a stator assembly, a rotor assembly and a casing assembly, the stator assembly and the rotor assembly are magnetically coupled, and the stator assembly
  • the utility model comprises an electronic iron core and a coil winding wound on the stator core. The coil winding obtains alternating current from the motor control module to generate a rotating magnetic field to drive the rotor to rotate.
  • the first blower, the first induced draft fan, the second blower, and the second induced draft fan may all adopt a DC brushless motor without a motor controller. It is also possible to use a DC blower motor without a motor controller for the first blower and the second blower, and an AC motor for the first induced draft fan and the second induced draft fan.
  • a heating or cooling device including a PWM main controller and a thermostat, is characterized in that it further comprises an indoor digital centralized control system, and the indoor digital centralized control system includes a power supply part and an MCU.
  • the port module rewrites the MCU total controller control program, the MCU total controller feedback signal to the PWM main controller, and the MCU total controller is connected to the first blower motor and the second blower motor through two motor control modules, the motor is DC a brushless motor comprising a stator assembly, a rotor assembly and a casing assembly, the stator assembly being magnetically coupled to the rotor assembly, the stator assembly comprising an electronic core and a coil winding wound on the stator core, the coil winding obtaining an alternating current generated from the motor control module
  • the rotating magnetic field drives the rotor to rotate.
  • the heating or cooling device is a compressor, or a resistance wire, or a gas furnace, or a hot and cold water machine.

Abstract

一种室内数字集中控制系统及其应用的空调、取暖或制冷设备,该室内数字集中控制系统包括电源部分、MCU总控制器、若干个电机控制模块、编程端口模块和输入接口,电源部分为各部分电路供电,MCU总控制器通过输入接口与室内应用系统控制器连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,MCU总控制器通过一个电机控制模块安装连接一台电机,电机包括定子组件(102)、转子组件(103)和机壳组件(101),定子组件(102)与转子组件(103)磁耦合,定子组件(102)包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动。

Description

室内数字集中控制系统及其应用的空调、取暖或制冷设备 技术领域:
本发明涉及室内数字集中控制系统及其应用的空调、取暖或制冷设备。
背景技术:
近几年,随着电器领域竞争本发明涉及室内数字集中控制系统及其应用的空调、取暖或制冷设备,所述的室内数字集中控制系统,包括电源部分、MCU总控制器、若干个电机控制模块、编程端口模块和输入接口,电源部分为各部分电路供电,MCU总控制器通过输入接口与室内应用系统控制器连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,MCU总控制器通过一个电机控制模块安装连接一台电机,所述的电机包括定子组件、转子组件和机壳组件,定子组件与转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动。它可以控制多台电机,利用室内数字集中控制系统删除重叠的电路配置,简化电路结构,大大降低产品成本,减少资源浪费,可以方便匹配应用系统,使用灵活方便。日趋激烈,对产品技术要求不断提高,如要求产品节能环保、可控性智能化程度高、开发周期短、噪音小等。作为核心部件——电机,无疑成为解决上述技术问题的关键部件,传统的电机采用单相交流电机PSC,单相交流电机效率低,比较耗能、噪音也大,可控性智能程度低。
随着电机技术的发展,出现了永磁同步电机,该种电机必须带有电机控制器,利用电机控制器实现电流的电子换向的目的,所以行业里也有人简称ECM电机(electronically commutated motor)或者直流无刷电机,具有节能环保、可靠性和可控性都比较高、噪音小、容易实现智能化等特点,可以解决交流电机的不足,因此,许多设备中开始应用直流无刷电机,以降低能耗。
现在的中央空调系统,通风系统、洗衣机系统等电器设备中存在多台电机,如图1所示,如果采用多台直流无刷电机,每台直流无刷电机带有独立的电机控制器,每个电机控制器都包括独立的电源部分、微处理器、逆变单元和转子 位置检测单元。现有的技术方案中,每个电机控制器都设置电源部分、微处理器、逆变电路和电机运行参数检测单元,因此导致整个控制部分电路重叠配置,结构复杂,也不能充分利用硬件和软件资源,势必造成产品成本的大大增加和资源的浪费。另外,电机控制器由于布局空间有限,散热成为较为棘手的问题。
发明内容:
本发明的一个目的是提供一种室内数字集中控制系统,它可以控制多台电机,各电机都不带控制器的,利用室内数字集中控制系统删除重叠的电路配置,简化电路结构,大大降低产品成本,减少资源浪费,同时,可以方便匹配应用系统,使用灵活方便。
本发明的目的是通过下述技术方案予以实现的:
一种室内数字集中控制系统,它连接在应用系统控制器上,用来接收应用系统控制器的指令并可控制至少一台电机工作,它包括电源部分、MCU总控制器、若干个电机控制模块、编程端口模块和输入接口,电源部分为各部分电路供电,MCU总控制器通过输入接口与室内应用系统控制器连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,MCU总控制器通过一个电机控制模块安装连接一台电机,所述的电机包括定子组件、转子组件和机壳组件,定子组件与转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动。
上述所述的电机控制模块是交流电机控制模块或者是直流无刷电机控制模块,所述交流电机控制模块是继电器及其驱动电路,所述的直流无刷电机控制模块包括转子位置检测单元,微处理器和逆变单元,转子位置检测单元将永磁电机的转子位置数据送到微处理器,微处理器控制逆变单元工作输出交流电到定子铁芯上的线圈绕组,微处理器与MCU总控制器连接通信。
上述所述的电机控制模块是交流电机控制模块或者是直流无刷电机控制模块,所述交流电机控制模块是继电器及其驱动电路,所述的直流无刷电机控制 模块 包括相电流检测单元,微处理器和逆变单元,相电流检测单元将永磁电机的电流数据送到微处理器,微处理器控制逆变单元工作输出交流电到定子铁芯上的线圈绕组,微处理器与MCU总控制器连接通信。
上述所述的电机控制模块是交流电机控制模块或者是直流无刷电机控制模块,所述交流电机控制模块是继电器及其驱动电路,所述的直流无刷电机控制模块 包括转子位置检测单元和逆变单元,转子位置检测单元将永磁电机的转子位置数据送到MCU总控制器,MCU总控制器控制逆变单元工作输出交流电到定子铁芯上的线圈绕组。
上述所述的电机控制模块是交流电机控制模块或者是直流无刷电机控制模块,所述交流电机控制模块是继电器及其驱动电路,所述的直流无刷电机控制模块包括相电流检测单元和逆变单元,相电流检测单元将永磁电机的电流数据送到MCU总控制器,MCU总控制器控制逆变单元工作输出交流电到定子铁芯上的线圈绕组。
上述电机控制模块有4块直流无刷电机控制模块,用来控制4台永磁电机。
上述电机控制模块有2块直流无刷电机控制模块和2块交流电机控制模块,2块直流无刷电机控制模块用来控制2台永直流无刷电机,2块交流电机控制模块用来控制2台交流电机。
上述电机控制模块有3块直流无刷电机控制模块和1块交流电机控制模块,3块直流无刷电机控制模块用来控制3台永磁电机,1块交流电机控制模块用来控制1台交流电机。
所述的输入接口是串行通信接口,或者是继电器信号接口,或者是模拟信号接口和或者是PWM信号接口。或者是继电器信号接口是包括线电压120VAC,208‐230VAC,277VAC,460VAC,24VAC等信号连接。
所述的电机控制模块控制的电机是市面上的通用型3相交流电机,或者是PSC交流电机,或者是不带控制器的ECM电机。
本发明的室内数字集中控制系统与现有技术相比具有如下优点:1)它可以 控制多台电机,各电机都不带控制器的,利用室内数字集中控制系统直接控制电机,删除重叠的电路配置,简化电路结构,大大降低产品成本,减少资源浪费,同时,可以方便匹配应用系统,使用灵活方便,有利大范围推广应用。2)室内数字集中控制系统可以控制多台交流电机和直流无刷电机,使用灵活方便,可以方便替代现有系统的;3)散热快。
本发明的第二个目的是提供一种单机空调系统,它采用一个室内数字集中控制系统和一台电机替换原空调处理机的鼓风机电机,简单方便,使用灵活。
本发明一种单机空调系统的技术方案如下:
一种单机空调系统,包括室外机、室外机控制系统和室内机,室外机包括压缩机和散热风扇,压缩机和散热风扇受室外机控制系统控制,其特征在于:室内机包括室内数字集中控制系统,室内数字集中控制系统包括电源部分、MCU总控制器、1个电机控制模块、编程端口模块、第一输入接口、第二输入接口和2个继电器及其驱动电路,电源部分为各部分电路供电,MCU总控制器通过输入接口与室内应用系统控制器连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,MCU总控制器通过一个电机控制模块安装连接1台电机驱动鼓风机,所述的电机是直流无刷电机,包括定子组件、永磁转子组件和机壳组件,定子组件与永磁转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动,室外机控制系统通过第一输入接口与MCU总控制器连接通信,温控器THERMOSTAT通过第二输入接口与MCU总控制器连接通信,MCU总控制器通过2个继电器及其驱动电路来控制电加热器。
本发明的单机空调系统与现有技术相比具有的优点是:采用一个室内数字集中控制系统和一台电机替换原空调处理机的鼓风机电机,简单方便,使用灵活,对原系统改造容易。
本发明的第三个目的是提供一种双机空调系统,它利用室内数字集中控制系统可以控制多台电机,各电机都不带控制器的,利用室内数字集中控制系统 删除重叠的电路配置,简化电路结构,大大降低产品成本,减少资源浪费,同时,可以方便匹配应用系统,使用灵活方便。
本发明一种双机空调系统的技术方案如下:
一种双机空调系统,包括第一室外机、第一室外机控制系统、第二室外机、第二室外机控制系统、第一室内机、第一室内机控制系统、第二室内机和第二室内机控制系统,第一室外机包括第一压缩机和第一散热风扇,第一压缩机和第一散热风扇受第一室外机控制系统控制,第二室外机包括第二压缩机和第二散热风扇,第二压缩机和第二散热风扇受第二室外机控制系统控制,第一室外机控制系统与第一室内机控制系统连接通信,第二室外机控制系统与第二室内机控制系统连接通信,温控器THERMOSTAT分别连接第一室内机控制系统和第二室内机控制系统,第一室内机包括第一鼓风机和第一引风机,第二室内机包括第二鼓风机和第二引风机,其特征在于:室内机包括室内数字集中控制系统,室内数字集中控制系统包括电源部分、MCU总控制器、4个电机控制模块、编程端口模块、第一输入接口、第二输入接口和2个继电器及其驱动电路,电源部分为各部分电路供电,MCU总控制器通过第一输入接口与第一室内机控制系统连接通信,MCU总控制器通过第二输入接口与第二室内机控制系统连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,MCU总控制器通过4个电机控制模块安装连接4台电机,4台电机分别安装在第一鼓风机、第一引风机、第二鼓风机和第二引风机上,所述的电机包括定子组件、转子组件和机壳组件,定子组件与转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动。
一种双机空调系统,包括第一室外机、第一室外机控制系统、第二室外机、第二室外机控制系统、第一室内机、第一室内机控制系统、第二室内机和第二室内机控制系统,第一室外机包括第一压缩机和第一散热风扇,第一压缩机和第一散热风扇受第一室外机控制系统控制,第二室外机包括第二压缩机和第二 散热风扇,第二压缩机和第二散热风扇受第二室外机控制系统控制,第一室外机控制系统与第一室内机控制系统连接通信,第二室外机控制系统与第二室内机控制系统连接通信,温控器THERMOSTAT分别连接第一室内机控制系统和第二室内机控制系统,第一室内机包括第一鼓风机和第一引风机,第二室内机包括第二鼓风机和第二引风机,其特征在于:室内机包括2个室内数字集中控制系统,室内数字集中控制系统包括电源部分、MCU总控制器、2个电机控制模块、编程端口模块、第一输入接口和第二输入接口,电源部分为各部分电路供电,其中一个室内数字集中控制系统的MCU总控制器通过第一输入接口与第一室内机控制系统连接通信,另一个室内数字集中控制系统的MCU总控制器通过第一输入接口与第二室内机控制系统连接通信,两个室内数字集中控制系统通过第二通信端口连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,其中一个室内数字集中控制系统的MCU总控制器通过2个电机控制模块安装连接2台电机,另一个室内数字集中控制系统的MCU总控制器通过2个电机控制模块安装连接2台电机,4台电机分别安装在第一鼓风机、第一引风机、第二鼓风机和第二引风机上,所述的电机包括定子组件、转子组件和机壳组件,定子组件与转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动。
本发明的双机空调系统与现有技术相比具有的优点是:1)采用一个室内数字集中控制系统可以控制4台电机,各电机都不带控制器的,利用室内数字集中控制系统删除重叠的电路配置,简化电路结构,大大降低产品成本,减少资源浪费,同时,可以方便匹配应用系统,使用灵活方便。2)采用2个室内数字集中控制系统分别控制2台电机,各电机都不带控制器的,2个室内数字集中控制系统之间相互通信,利用室内数字集中控制系统删除重叠的电路配置,简化电路结构,大大降低产品成本,减少资源浪费,同时,可以方便匹配应用系统,使用灵活方便。
本发明的第四个目的是提供一种取暖或制冷设备,它利用室内数字集中控制系统可以控制2台电机,各电机都不带控制器的,利用室内数字集中控制系统删除重叠的电路配置,简化电路结构,大大降低产品成本,减少资源浪费,同时,可以方便匹配应用系统,使用灵活方便。
本发明取暖或制冷设备的技术方案如下:
一种取暖或制冷设备,包括PWM主控制器和温控器,其特征在于:它还包括室内数字集中控制系统,室内数字集中控制系统包括电源部分、MCU总控制器、2个电机控制模块、编程端口模块和PWM信号输入接口,电源部分为各部分电路供电,MCU总控制器通过PWM信号输入接口与PWM主控制器连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,MCU总控制器反馈信号到PWM主控制器,MCU总控制器通过2个电机控制模块安装连接第一鼓风机电机和第二鼓风机电机,所述的电机是直流无刷电机,包括定子组件、转子组件和机壳组件,定子组件与转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动。
该取暖或制冷设备是可以是采用压缩机,或者是电阻丝,或者是燃气,或者是冷热水来制冷或通暖的盘管风机。
本发明与现有技术相比具有如下优点:利用室内数字集中控制系统可以控制2台鼓风机电机,各电机都不带控制器的,利用室内数字集中控制系统删除重叠的电路配置,简化电路结构,大大降低产品成本,减少资源浪费,同时,可以方便匹配应用系统,使用灵活方便。
附图说明:
图1是本发明的实施例一的方框图;
图2是本发明室内数字集中控制系统的原理方框图;
图3是本发明室内数字集中控制系统的连接示意图;
图4是本发明使用直流无刷电机的一种实施结构图;
图5本图4的剖视图。
图6是本发明使用电机控制模块的第一种电气连接图;
图7是本发明使用电机控制模块的第二种电气连接图;
图8是本发明使用电机控制模块的第三种电气连接图;
图9是本发明使用电机控制模块的第四种电气连接图;
图10是本发明使用电机控制模块的第五种电气连接图;
图11是本发明的数字集中式控制系统应用在单机空调方面接线图;
图12是本发明的数字集中式控制系统应用在双机空调方面的一种方框图;
图13是图12的进一步展开图;
图14是本发明的数字集中式控制系统应用在双机空调方面的另一种方框图。
图15本发明的数字集中式控制系统应用在一种取暖或制冷设备的方框图。
具体实施方式:
下面通过具体实施例并结合附图对本发明作进一步详细的描述。
实施例一:图2、图3所示,一种室内数字集中控制系统,它连接在应用系统控制器上,用来接收应用系统控制器的指令并可控制至少一台电机工作,其特征在于:它包括电源部分、MCU总控制器、若干个电机控制模块、编程端口模块和输入接口,电源部分为各部分电路供电,MCU总控制器通过输入接口与室内应用系统控制器连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,MCU总控制器通过一个电机控制模块安装连接一台电机,所述的电机包括定子组件、转子组件和机壳组件,定子组件与转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动。
本发明控制的多台电机可以是交流电机或者直流无刷电机,所述的直流无刷电机是不带控制器,如图4、图5、图6所示,直流无刷电机100包括机壳组件101、定子组件102、转子组件103和转子位置检测单元104;当然转子位置 检测单元104是可有可无的;见如下的陈述。所述的电机控制模块控制的电机是市面上的通用型3相交流电机,或者是PSC交流电机,或者是不带控制器的ECM电机。
所述的电机控制模块是交流电机控制模块或者是直流无刷电机控制模块,所述交流电机控制模块是继电器及其驱动电路,如图6所示,所述的直流无刷电机控制模块包括转子位置检测单元104,微处理器和逆变单元,转子位置检测单元104将永磁电机的转子位置数据送到微处理器,微处理器控制逆变单元工作输出交流电到定子铁芯上的线圈绕组,微处理器与MCU总控制器连接通信。
所述的电机控制模块是交流电机控制模块或者是直流无刷电机控制模块,所述交流电机控制模块是继电器及其驱动电路,如图6所示,所述的直流无刷电机控制模块包括相电流检测单元,微处理器和逆变单元,相电流检测单元将永磁电机的电流数据送到微处理器,微处理器控制逆变单元工作输出交流电到定子铁芯上的线圈绕组,微处理器与MCU总控制器连接通信。
所述的电机控制模块是交流电机控制模块或者是直流无刷电机控制模块,所述交流电机控制模块是继电器及其驱动电路,如图8所示,所述的直流无刷电机控制模块包括转子位置检测单元和逆变单元,转子位置检测单元将永磁电机的转子位置数据送到MCU总控制器,MCU总控制器控制逆变单元工作输出交流电到定子铁芯上的线圈绕组。
所述的电机控制模块是交流电机控制模块或者是直流无刷电机控制模块,所述交流电机控制模块是继电器及其驱动电路,如图9所示,所述的直流无刷电机控制模块包括相电流检测单元和逆变单元,相电流检测单元将永磁电机的电流数据送到MCU总控制器,MCU总控制器控制逆变单元工作输出交流电到定子铁芯上的线圈绕组。
如图10所示,所述交流电机控制模块是继电器及其驱动电路。
电机控制模块有4块直流无刷电机控制模块,用来控制4台直流无刷电机。或者电机控制模块有2块直流无刷电机控制模块和2块交流电机控制模块,2块 直流无刷电机控制模块用来控制2台永磁电机,2块交流电机控制模块用来控制2台交流电机。或者电机控制模块有3块直流无刷电机控制模块和1块交流电机控制模块,3块直流无刷电机控制模块用来控制3台直流无刷电机,1块交流电机控制模块用来控制1台交流电机。
本发明所称数字集中控制系统的英文是Digital Centralized Controller System(简称DCCS),它只是电机控制器的室内单元,例如,空气处理机组,燃气炉,风机盘管,变风量末端。它的目的是控制本公司设计的数字电机机芯,数字电机机芯如图4、图5和图6所述,包括定子组件102和转子组件103+霍尔传感器组件(相当于转子位置检测单元104)。所有的电动机驱动电路集成数字集中控制系统DCCS里面,因此得名“集中”控制系统。它的目的是使用某种类型的温控器以及主系统控制器,如现有的集成炉控制器,或兼容的第三方的室外单元控制器。它是用来取代在住宅空调处理或风机系统的中继板或系统控制器、鼓风机系统等,它的目的不是取代一体炉具控制器。
打算用来应用如下产品:产品类型:Ⅰ型:一个数字控制风机电机,如住宅空调处理应用,208-240vac,到1hp;Ⅱ型:一个数字控制风机电机,加上一个数字的引风机,如住宅炉上的应用,115Vac,1/3HP–1HP;III型:控制两个数字电机,如商业风机盘管,到1hp,115-277vac;Ⅳ型:控制两个数字鼓风机马达,再加上两个引电机。
上述所述的电源部分具有非常广的输入电压,是一个自适应输入电源,可以输入115V、205V-230V、277V、460V等;,电机接口部分:可以只有3相线电压输入U、V、W;当带有霍尔检测元件时,电机还要反馈HALL的信号线和低压电源线。
具体应用实施例二:本实施例是对实施例一的具体应用,如图11所示,一种单机空调系统,包括室外机、室外机控制系统和室内机,室外机包括压缩机和散热风扇,压缩机和散热风扇受室外机控制系统控制,其特征在于:室内机包括室内数字集中控制系统,室内数字集中控制系统包括电源部分、MCU总控制器、1个电机控制模块、编程端口模块、第一输入接口、第二输入接口和2个继电器及其驱动电路,电源部分为各部分电路供电,MCU总控制器通过输入接口与 室内应用系统控制器连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,MCU总控制器通过一个电机控制模块安装连接1台电机驱动鼓风机,所述的电机是直流无刷电机,包括定子组件、永磁转子组件和机壳组件,定子组件与永磁转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动,室外机控制系统通过第一输入接口与MCU总控制器连接通信,温控器THERMOSTAT通过第二输入接口与MCU总控制器连接通信,MCU总控制器通过2个继电器及其驱动电路来控制电加热器。
电机100采用不带控制器的直流无刷电机,2个继电器及其驱动电路分别是第一继电器及其驱动电路和第二2个继电器及其驱动电路。电机100用于驱动室内机里面的鼓风机。
实施例三:本实施例是对实施例一的具体应用,如图12、图13所示,一种双机空调系统,包括第一室外机、第一室外机控制系统、第二室外机、第二室外机控制系统、第一室内机、第一室内机控制系统、第二室内机和第二室内机控制系统,第一室外机包括第一压缩机和第一散热风扇,第一压缩机和第一散热风扇受第一室外机控制系统控制,第二室外机包括第二压缩机和第二散热风扇,第二压缩机和第二散热风扇受第二室外机控制系统控制,第一室外机控制系统与第一室内机控制系统连接通信,第二室外机控制系统与第二室内机控制系统连接通信,温控器THERMOSTAT分别连接第一室内机控制系统和第二室内机控制系统,第一室内机包括第一鼓风机和第一引风机,第二室内机包括第二鼓风机和第二引风机,其特征在于:室内机包括室内数字集中控制系统,室内数字集中控制系统包括电源部分、MCU总控制器、4个电机控制模块、编程端口模块、第一输入接口、第二输入接口和2个继电器及其驱动电路,电源部分为各部分电路供电,MCU总控制器通过第一输入接口与第一室内机控制系统连接通信,MCU总控制器通过第二输入接口与第二室内机控制系统连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,MCU总控制器通过4个 电机控制模块安装连接4台电机,4台电机分别安装在第一鼓风机、第一引风机、第二鼓风机和第二引风机上,所述的电机包括定子组件、转子组件和机壳组件,定子组件与转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动。第一鼓风机、第一引风机、第二鼓风机和第二引风机可以全部采用不带电机控制器的直流无刷电机。也可以第一鼓风机、第二鼓风机采用不带电机控制器的直流无刷电机,第一引风机、第二引风机采用交流电机。
本发明的双机空调系统,温控器THERMOSTAT控制两套室内机//室外机,这个控制逻辑的关键是“同时启动,同时停止,同样风量,一台出错则另一台也停机报错”。
实施例四:本实施例是对实施例一的具体应用,如图12、图14所示,一种双机空调系统,包括第一室外机、第一室外机控制系统、第二室外机、第二室外机控制系统、第一室内机、第一室内机控制系统、第二室内机和第二室内机控制系统,第一室外机包括第一压缩机和第一散热风扇,第一压缩机和第一散热风扇受第一室外机控制系统控制,第二室外机包括第二压缩机和第二散热风扇,第二压缩机和第二散热风扇受第二室外机控制系统控制,第一室外机控制系统与第一室内机控制系统连接通信,第二室外机控制系统与第二室内机控制系统连接通信,温控器THERMOSTAT分别连接第一室内机控制系统和第二室内机控制系统,第一室内机包括第一鼓风机和第一引风机,第二室内机包括第二鼓风机和第二引风机,其特征在于:室内机包括2个室内数字集中控制系统,室内数字集中控制系统包括电源部分、MCU总控制器、2个电机控制模块、编程端口模块、第一输入接口和第二输入接口,电源部分为各部分电路供电,其中一个室内数字集中控制系统的MCU总控制器通过第一输入接口与第一室内机控制系统连接通信,另一个室内数字集中控制系统的MCU总控制器通过第一输入接口与第二室内机控制系统连接通信,两个室内数字集中控制系统通过第二通信端口连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程 序,其中一个室内数字集中控制系统的MCU总控制器通过2个电机控制模块安装连接2台电机,另一个室内数字集中控制系统的MCU总控制器通过2个电机控制模块安装连接2台电机,4台电机分别安装在第一鼓风机、第一引风机、第二鼓风机和第二引风机上,所述的电机包括定子组件、转子组件和机壳组件,定子组件与转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动。第一鼓风机、第一引风机、第二鼓风机和第二引风机可以全部采用不带电机控制器的直流无刷电机。也可以第一鼓风机、第二鼓风机采用不带电机控制器的直流无刷电机,第一引风机、第二引风机采用交流电机。
实施例五:如图15所示,一种取暖或制冷设备,包括PWM主控制器和温控器,其特征在于:它还包括室内数字集中控制系统,室内数字集中控制系统包括电源部分、MCU总控制器、2个电机控制模块、编程端口模块和PWM信号输入接口,电源部分为各部分电路供电,MCU总控制器通过PWM信号输入接口与PWM主控制器连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,MCU总控制器反馈信号到PWM主控制器,MCU总控制器通过2个电机控制模块安装连接第一鼓风机电机和第二鼓风机电机,所述的电机是直流无刷电机,包括定子组件、转子组件和机壳组件,定子组件与转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动。该取暖或制冷设备是压缩机、或者是电阻丝,或者是燃气炉,或者是冷热水机。
上述实施例为本发明的较佳实施方式,但本发明的实施方式不限于此,其他任何未背离本发明的精神实质与原理下所作的改变、修饰、替代、组合、简化,均为等效的置换方式,都包含在本发明的保护范围之内。

Claims (15)

  1. 一种室内数字集中控制系统,它连接在应用系统控制器上,用来接收应用系统控制器的指令并可控制至少一台电机工作,其特征在于:它包括电源部分、MCU总控制器、若干个电机控制模块、编程端口模块和输入接口,电源部分为各部分电路供电,MCU总控制器通过输入接口与室内应用系统控制器连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,MCU总控制器通过一个电机控制模块安装连接一台电机,所述的电机包括定子组件、转子组件和机壳组件,定子组件与转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动。
  2. 根据权利要求1所述的一种室内数字集中控制系统,其特征在于:所述的电机控制模块是交流电机控制模块或者是直流无刷电机控制模块,所述交流电机控制模块是继电器及其驱动电路,所述的直流无刷电机控制模块包括转子位置检测单元,微处理器和逆变单元,转子位置检测单元将永磁电机的转子位置数据送到微处理器,微处理器控制逆变单元工作输出交流电到定子铁芯上的线圈绕组,微处理器与MCU总控制器连接通信。
  3. 根据权利要求1所述的一种室内数字集中控制系统,其特征在于:所述的电机控制模块是交流电机控制模块或者是直流无刷电机控制模块,所述交流电机控制模块是继电器及其驱动电路,所述的直流无刷电机控制模块包括相电流检测单元,微处理器和逆变单元,相电流检测单元将永磁电机的电流数据送到微处理器,微处理器控制逆变单元工作输出交流电到定子铁芯上的线圈绕组,微处理器与MCU总控制器连接通信。
  4. 根据权利要求1所述的一种室内数字集中控制系统,其特征在于:所述的电机控制模块是交流电机控制模块或者是直流无刷电机控制模块,所述交流电机控制模块是继电器及其驱动电路,所述的直流无刷电机控制模块包括转子位置检测单元和逆变单元,转子位置检测单元将永磁电机的转子位置数据送 到MCU总控制器,MCU总控制器控制逆变单元工作输出交流电到定子铁芯上的线圈绕组。
  5. 根据权利要求1所述的一种室内数字集中控制系统,其特征在于:所述的电机控制模块是交流电机控制模块或者是直流无刷电机控制模块,所述交流电机控制模块是继电器及其驱动电路,所述的直流无刷电机控制模块包括相电流检测单元和逆变单元,相电流检测单元将永磁电机的电流数据送到MCU总控制器,MCU总控制器控制逆变单元工作输出交流电到定子铁芯上的线圈绕组。
  6. 根据权利要求1至5任何一项所述的一种室内数字集中控制系统,其特征在于:电机控制模块有4块直流无刷电机控制模块,用来控制4台永磁电机。
  7. 根据权利要求1至5任何一项所述的一种室内数字集中控制系统,其特征在于:电机控制模块有2块直流无刷电机控制模块和2块交流电机控制模块,2块直流无刷电机控制模块用来控制2台直流无刷电机,2块交流电机控制模块用来控制2台交流电机。
  8. 根据权利要求1至5任何一项所述的一种室内数字集中控制系统,其特征在于:电机控制模块有3块直流无刷电机控制模块和1块交流电机控制模块,3块直流无刷电机控制模块用来控制3台直流无刷电机,1块交流电机控制模块用来控制1台交流电机。
  9. 根据权利要求1至5任何一项所述的一种室内数字集中控制系统,其特征在于:所述的输入接口是串行通信接口,或者是继电器信号接口,或者是模拟信号接口和或者是PWM信号接口。
  10. 根据权利要求1至5任何一项所述的一种室内数字集中控制系统,其特征在于:所述的电机控制模块控制的电机是市面上的通用型3相交流电机,或者是PSC交流电机,或者是不带控制器的ECM电机。
  11. 一种单机空调系统,包括室外机、室外机控制系统和室内机,室外机包括压缩机电机和风扇电机,压缩机电机和风扇电机受室外机控制系统控制,其特征在于:室内机包括室内数字集中控制系统,室内数字集中控制系统包括 电源部分、MCU总控制器、1个电机控制模块、编程端口模块、第一输入接口、第二输入接口和2个继电器及其驱动电路,电源部分为各部分电路供电,MCU总控制器通过输入接口与室内应用系统控制器连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,MCU总控制器通过一个电机控制模块安装连接1台电机驱动鼓风机,所述的电机是直流无刷电机,包括定子组件、永磁转子组件和机壳组件,定子组件与永磁转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动,室外机控制系统通过第一输入接口与MCU总控制器连接通信,温控器THERMOSTAT通过第二输入接口与MCU总控制器连接通信,MCU总控制器通过2个继电器及其驱动电路来控制电加热器。
  12. 一种双机空调系统,包括第一室外机、第一室外机控制系统、第二室外机、第二室外机控制系统、第一室内机、第一室内机控制系统、第二室内机和第二室内机控制系统,第一室外机包括第一压缩机和第一散热风扇,第一压缩机和第一散热风扇受第一室外机控制系统控制,第二室外机包括第二压缩机和第二散热风扇,第二压缩机和第二散热风扇受第二室外机控制系统控制,第一室外机控制系统与第一室内机控制系统连接通信,第二室外机控制系统与第二室内机控制系统连接通信,温控器THERMOSTAT分别连接第一室内机控制系统和第二室内机控制系统,第一室内机包括第一鼓风机和第一引风机,第二室内机包括第二鼓风机和第二引风机,其特征在于:室内机包括室内数字集中控制系统,室内数字集中控制系统包括电源部分、MCU总控制器、4个电机控制模块、编程端口模块、第一输入接口、第二输入接口和2个继电器及其驱动电路,电源部分为各部分电路供电,MCU总控制器通过第一输入接口与第一室内机控制系统连接通信,MCU总控制器通过第二输入接口与第二室内机控制系统连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,MCU总控制器通过4个电机控制模块安装连接4台电机,4台电机分别安装在第一鼓风机、第一引风机、第二鼓风机和第二引风机上,所述的电机包括定子组件、转子组件 和机壳组件,定子组件与转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动。
  13. 一种双机空调系统,包括第一室外机、第一室外机控制系统、第二室外机、第二室外机控制系统、第一室内机、第一室内机控制系统、第二室内机和第二室内机控制系统,第一室外机包括第一压缩机和第一散热风扇,第一压缩机和第一散热风扇受第一室外机控制系统控制,第二室外机包括第二压缩机和第二散热风扇,第二压缩机和第二散热风扇受第二室外机控制系统控制,第一室外机控制系统与第一室内机控制系统连接通信,第二室外机控制系统与第二室内机控制系统连接通信,温控器THERMOSTAT分别连接第一室内机控制系统和第二室内机控制系统,第一室内机包括第一鼓风机和第一引风机,第二室内机包括第二鼓风机和第二引风机,其特征在于:室内机包括2个室内数字集中控制系统,室内数字集中控制系统包括电源部分、MCU总控制器、2个电机控制模块、编程端口模块、第一输入接口和第二输入接口,电源部分为各部分电路供电,其中一个室内数字集中控制系统的MCU总控制器通过第一输入接口与第一室内机控制系统连接通信,另一个室内数字集中控制系统的MCU总控制器通过第一输入接口与第二室内机控制系统连接通信,两个室内数字集中控制系统通过第二通信端口连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,其中一个室内数字集中控制系统的MCU总控制器通过2个电机控制模块安装连接2台电机,另一个室内数字集中控制系统的MCU总控制器通过2个电机控制模块安装连接2台电机,4台电机分别安装在第一鼓风机、第一引风机、第二鼓风机和第二引风机上,所述的电机包括定子组件、转子组件和机壳组件,定子组件与转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动。
  14. 一种取暖或制冷设备,包括PWM主控制器和温控器,其特征在于:它 还包括室内数字集中控制系统,室内数字集中控制系统包括电源部分、MCU总控制器、2个电机控制模块、编程端口模块和PWM信号输入接口,电源部分为各部分电路供电,MCU总控制器通过PWM信号输入接口与PWM主控制器连接通信,外部的计算机可以通过编程端口模块改写MCU总控制器控制程序,MCU总控制器反馈信号到PWM主控制器,MCU总控制器通过2个电机控制模块安装连接第一鼓风机电机和第二鼓风机电机,所述的电机是直流无刷电机,包括定子组件、转子组件和机壳组件,定子组件与转子组件磁耦合,定子组件包括电子铁芯和卷绕在定子铁芯上的线圈绕组,线圈绕组从电机控制模块获取交流电产生旋转磁场驱动转子转动。
  15. 根据权利要求14所述的一种取暖或制冷设备,其特征在于:该取暖或制冷设备是压缩机,或者是电阻丝,或者是燃气炉,或者是冷热水机。
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