WO2020172923A1 - 配电控制装置、配电控制方法、无线配电控制系统及方法 - Google Patents

配电控制装置、配电控制方法、无线配电控制系统及方法 Download PDF

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Publication number
WO2020172923A1
WO2020172923A1 PCT/CN2019/078715 CN2019078715W WO2020172923A1 WO 2020172923 A1 WO2020172923 A1 WO 2020172923A1 CN 2019078715 W CN2019078715 W CN 2019078715W WO 2020172923 A1 WO2020172923 A1 WO 2020172923A1
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WIPO (PCT)
Prior art keywords
power distribution
control
wireless communication
short
state
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PCT/CN2019/078715
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English (en)
French (fr)
Inventor
陈加敏
田西蒙
波里尔⋅吉拉姆
莫利顿⋅维维恩
程颖
刘瀚翼
赵海军
双兵
沈佳丽
傅杨剑
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Schneider Electric Industries SAS
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Schneider Electric Industries SAS
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Publication of WO2020172923A1 publication Critical patent/WO2020172923A1/zh
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    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J13/00Circuit arrangements for providing remote monitoring or remote control of equipment in a power distribution network
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • YGENERAL 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
    • Y04INFORMATION OR COMMUNICATION TECHNOLOGIES HAVING AN IMPACT ON OTHER TECHNOLOGY AREAS
    • Y04SSYSTEMS INTEGRATING TECHNOLOGIES RELATED TO POWER NETWORK OPERATION, COMMUNICATION OR INFORMATION TECHNOLOGIES FOR IMPROVING THE ELECTRICAL POWER GENERATION, TRANSMISSION, DISTRIBUTION, MANAGEMENT OR USAGE, i.e. SMART GRIDS
    • Y04S40/00Systems for electrical power generation, transmission, distribution or end-user application management characterised by the use of communication or information technologies, or communication or information technology specific aspects supporting them
    • Y04S40/12Systems for electrical power generation, transmission, distribution or end-user application management characterised by the use of communication or information technologies, or communication or information technology specific aspects supporting them characterised by data transport means between the monitoring, controlling or managing units and monitored, controlled or operated electrical equipment
    • Y04S40/126Systems for electrical power generation, transmission, distribution or end-user application management characterised by the use of communication or information technologies, or communication or information technology specific aspects supporting them characterised by data transport means between the monitoring, controlling or managing units and monitored, controlled or operated electrical equipment using wireless data transmission

Definitions

  • the present disclosure relates to the field of automation control and power distribution, and more specifically to a power distribution control device, a power distribution control method, a wireless power distribution control system, and a wireless power distribution control method.
  • the power distribution control device is connected to the main controller and power distribution devices (such as contactors or pulse switches). It receives control commands from the main controller and realizes the status of the power distribution device. Control, so as to realize the power-on and power-off process of the external circuit connected with the power distribution device.
  • the present disclosure provides a power distribution control device, a power distribution control method, a wireless power distribution control system, and a wireless power distribution control method.
  • a power distribution control device Using the power distribution control device, power distribution control method, wireless power distribution control system, and wireless power distribution control method provided by the present disclosure, on the basis of achieving good power distribution control, the volume of the power distribution control device can be effectively reduced and made It has lower cost, and the power distribution control device has good robustness.
  • a power distribution control device is provided, the power distribution control device is connected to the power distribution device, the power distribution device has contacts, and the power distribution control device includes: a short-range wireless communication module , Which receives control commands in short-range wireless communication, and generates and outputs control signals according to the received control commands; control module, which is connected to short-range wireless communication modules and power distribution devices, and receives control signals from short-range wireless communication modules , And control the contacts in the power distribution device to be in an open state or a closed state according to the received control signal.
  • the power distribution control device may further include one or more of the following features, individually or in combination.
  • control module includes: a micro control unit, which receives the control signal from the short-range wireless communication module, and generates and outputs a state control signal according to the received control signal; a driving circuit, which controls from the micro The unit receives the state control signal, and generates and outputs a drive signal according to the received state control signal; the output circuit receives the drive signal from the drive circuit and generates a power distribution control signal according to the received drive signal to control the power distribution
  • the contacts of the device are in an open or closed state.
  • control module further includes a detection circuit for acquiring status information of the power distribution device, the control module sends the status information to the short-range wireless communication module, and the short-range wireless communication module transmits the The status information is sent to the local gateway through short-range wireless communication.
  • a power distribution control method including: receiving a control command in a short-range wireless communication manner and generating a control signal according to the received control command; and controlling a power distribution device according to the control signal The contact is open or closed.
  • the power distribution control method according to the present disclosure may further include one or more of the following features, individually or in combination.
  • controlling the contacts in the power distribution device to be in an open state or a closed state according to the control signal includes: generating a state control signal according to the control signal; generating a driving signal according to the state control signal; The driving signal generates a power distribution control signal to control the contact of the power distribution device to be in an open state or a closed state.
  • control module further includes: acquiring status information of the power distribution device; and sending the status information to the local gateway in a short-range wireless communication manner.
  • a wireless power distribution control system includes: a user module that receives a control command input by a user and outputs the control command; a local gateway that receives The control command of the user module and the output of the control command in the short-range wireless communication mode; the power distribution control device receives the control command from the local gateway in the short-range wireless communication mode and controls the contacts in the power distribution device according to the received control command.
  • the point is open or closed.
  • the wireless power distribution control system according to the present disclosure may further include one or more of the following features, individually or in combination.
  • the power distribution control device is connected to a power distribution device, the power distribution device has contacts, and the power distribution control device includes: a short-range wireless communication module that receives control in a short-range wireless communication mode Commands, and generate and output control signals according to the received control commands; the control module is connected to the short-range wireless communication module and the power distribution device, receives control signals from the short-range wireless communication module, and controls the station according to the received control signal
  • the contacts in the power distribution device are in an open state or a closed state.
  • control module further includes a detection circuit for acquiring status information of the power distribution device, the control module sends the status information to the short-range wireless communication module, and the short-range wireless communication module transmits the The status information is sent to the local gateway through short-range wireless communication.
  • the local gateway determines whether the received state information of the power distribution device is consistent with the expected state of the current control command from the user module. When the state of the power distribution device is consistent with the expected state of the current control command, The local gateway sends the status information of the power distribution device; when the status of the power distribution device is inconsistent with the expected status of the current control command, the local gateway sends alarm information.
  • a wireless power distribution control method includes: a user module receives a control command input by a user and outputs the control command; a local gateway receives a control command from the user module and The control command is output in the short-range wireless communication mode; the power distribution control device receives the control command from the local gateway in the short-range wireless communication mode and controls the contact in the power distribution device to be in an open state or a closed state according to the received control command .
  • the wireless power distribution control method according to the present disclosure may further include one or more of the following features, individually or in combination.
  • the power distribution control device receives a control command from the local gateway in a short-range wireless communication mode and controls the contact in the power distribution device to be in an open state or a closed state according to the received control command, including: power distribution control device A control command is received in a short-range wireless communication manner and a control signal is generated according to the control command; and the contact in the power distribution device is controlled to be in an open state or a closed state according to the control signal.
  • the wireless power distribution control method further includes: the power distribution control device obtains state information of the power distribution device; and the power distribution control device sends the state information to the local gateway in a short-range wireless communication manner.
  • the local gateway determines whether the received state information of the power distribution device is consistent with the expected state of the current control command from the user module. When the state of the power distribution device is consistent with the expected state of the current control command, The local gateway sends the status information of the power distribution device; when the status of the power distribution device is inconsistent with the expected status of the current control command, the local gateway sends alarm information.
  • power distribution control can be well completed, and in particular, it can effectively reduce the size of the power distribution control device And it has a lower cost, and the power distribution control device has good robustness.
  • FIG. 1 shows a flowchart of a power distribution control method 700 according to an embodiment of the present disclosure
  • FIG. 2 shows a flowchart of a process in which a control module according to an embodiment of the present disclosure receives a control signal from a short-range wireless communication module and controls a contact in the power distribution device to be in an open state or a closed state according to the received control signal;
  • FIG. 3 shows a flowchart of a variation 710 of the power distribution control method according to an embodiment of the present disclosure
  • FIG. 4 shows a schematic diagram of a power distribution control device 100 according to an embodiment of the present disclosure
  • FIG. 5 shows a schematic diagram of the control module 110 according to an embodiment of the present disclosure
  • FIG. 5B shows a schematic diagram of the driving circuit 112 according to an embodiment of the present disclosure
  • FIG. 6 shows a schematic diagram of a variant of the control module 110 according to an embodiment of the present disclosure, which includes a detection circuit 114;
  • FIG. 7A shows a flowchart of a wireless power distribution control method 950 according to an embodiment of the present disclosure
  • FIG. 7B shows a flowchart of a process in which a local gateway receives a control command from a user module according to an embodiment of the present disclosure
  • FIG. 8 shows a flowchart of a state information processing process 960 by a local gateway according to an embodiment of the present disclosure
  • FIG. 9A shows a schematic diagram of a wireless power distribution control system 800A according to an embodiment of the present disclosure
  • FIG. 9B shows a schematic diagram of a wireless power distribution control system 800B according to an embodiment of the present disclosure
  • FIG. 9C shows a schematic diagram of a wireless power distribution control system 800C according to an embodiment of the present disclosure
  • FIG. 10A shows a schematic diagram of a variant 900A of the wireless power distribution control system according to an embodiment of the present disclosure
  • FIG. 10B shows a schematic diagram of a variant 900B of the wireless power distribution control system according to an embodiment of the present disclosure
  • FIG. 10C shows a schematic diagram of a variant 900C of the wireless power distribution control system according to an embodiment of the present disclosure.
  • any number of different modules may be used and run on the user terminal and/or server.
  • the modules are merely illustrative, and different modules may be used for different aspects of the system and method.
  • a flowchart is used in this application to illustrate the operations performed by the system according to the embodiments of the application. It should be understood that the preceding or following operations are not necessarily performed exactly in order. On the contrary, the various steps can be processed in reverse order or simultaneously as required. At the same time, you can also add other operations to these processes, or remove a step or several operations from these processes.
  • FIG. 1 shows a flowchart of a power distribution control method 700 according to an embodiment of the present disclosure.
  • step S701 a control command is received in a short-range wireless communication mode and a control signal is generated according to the control command.
  • the control command may be a control command directly input by the user, or may also be a control command generated by further processing the user's control command.
  • the embodiments of the present disclosure are not limited by the source of the control command.
  • the short-range wireless communication method may be, for example, a short-range wireless communication method based on the Zigbee protocol, or it may also be a Bluetooth communication method.
  • the embodiments of the present disclosure are not limited by the specific type of the selected short-range wireless communication method.
  • the generated control signal may be, for example, a voltage control signal, or may also be a current control signal, which may be a continuous signal or a pulse signal, and may adopt a high level or a low level as its effective level.
  • the embodiments of the present disclosure are not limited by the type of control signal.
  • control command can be received through a short-range wireless communication module inside the control device, and the wireless communication module further converts the control command into a control signal, and outputs the control signal to the control module of the control device for subsequent processing .
  • step S702 the contact in the power distribution device 200 is controlled to be in an open state or a closed state according to the control signal.
  • the power distribution device can be, for example, a contactor (iCT), or it can also be a pulse switch (iTL).
  • the power distribution device 200 can be installed in an industrial power distribution box or a household power distribution box, with one end of its contact Connected to the power supply of the distribution box, the other end can be connected to an external load, the external load can be industrial field equipment, such as motors, sensors, and it can also be a household load circuit.
  • the embodiments of the present disclosure are not limited by the specific type of the power distribution device and the type of external load connected to the power distribution device.
  • the control signal is a power supply control signal, which controls the contacts in the power distribution device 200 to be in a closed state, so as to realize the control of the external load connected to the power distribution device 200.
  • the control signal is a power-off control signal, which controls the contact in the power distribution device 200 to be in an open state, thereby realizing the connection to the power distribution device 200 Power off the external load.
  • wireless power distribution control can be well realized, and because it uses short-range wireless communication to interact with external data commands, there is no need to connect additional signal lines and communication lines, and there is no need to set up communication lines and internal
  • the safety isolation circuit between the power lines simplifies the circuit design of the power distribution control device, reduces the volume and manufacturing cost of the power distribution control device, and reduces electromagnetic interference.
  • FIG. 2 shows a flowchart of a process of controlling the contacts in the power distribution device 200 to be in an open state or a closed state according to the control signal according to an embodiment of the present disclosure.
  • step S7021 a state control signal is generated according to the control signal.
  • the state control signal may be, for example, a voltage control signal, or may also be a current control signal, which may be a continuous signal or a pulse signal, and may adopt a high level or a low level as its effective level.
  • the embodiments of the present disclosure are not limited by the type of the state control signal.
  • step S7022 a driving signal is generated according to the state control signal.
  • the driving signal may be, for example, a voltage control signal or a current control signal, which may be a continuous signal or a pulse signal, and may adopt a high level or a low level as its effective level.
  • the embodiments of the present disclosure are not limited by the type of driving signal.
  • the driving signal is generated by, for example, a driving circuit.
  • the driving circuit may be, for example, a bridge circuit, such as an H-bridge circuit, or it may also be a driving circuit of other form or structure.
  • the embodiments of the present disclosure are not composed of a driving circuit. And its structural constraints.
  • a power distribution control signal is generated according to the driving signal to control the contact of the power distribution device 200 to be in an open state or a closed state.
  • the power distribution control signal can be generated by an output circuit, for example, by the closing and opening actions of the contacts of a relay, or by changes in the logic output of other circuits or modules.
  • the embodiments of the present disclosure are not controlled by power distribution. Restrictions on the way the signal is generated.
  • the relevant control command when a control command is received, the relevant control command can be obtained in time and the corresponding power distribution control can be realized based on the control command, which helps to improve the working efficiency of the power distribution control device.
  • FIG. 3 shows a flowchart of a variation 710 of the power distribution control method according to an embodiment of the present disclosure.
  • step S711 state information of the power distribution device 200 is acquired.
  • Obtaining the status information of the power distribution device 200 can be achieved, for example, by detecting the status of the device by a detection circuit, or can be achieved by periodically receiving status signals from the device.
  • the detection circuit may be connected to the contacts of the power distribution device 200, for example, to obtain the status of the contacts, or it may detect changes in current or voltage inside the power distribution device to identify it.
  • Working status The embodiments of the present disclosure are not limited by the specific way of acquiring the status information of the power distribution device.
  • step S712 After obtaining the status information of the power distribution device 200, in step S712, the status information is sent to the local gateway 300 in a short-range wireless communication manner.
  • the status information may be periodically sent to the local gateway based on a preset time interval, or the status information may be sent in response to a user's query command.
  • the embodiments of the present disclosure are not limited by the trigger condition and frequency of sending status information.
  • FIG. 4 shows a schematic diagram of a power distribution control device 100 according to an embodiment of the present disclosure.
  • the power distribution control device 100 is connected to a power distribution device 200, and the power distribution device 200 has contacts.
  • the power distribution control device 100 includes a short-range wireless communication module 120 and a control module 110.
  • the short-range wireless communication module 120 is configured to receive control commands in a short-range wireless communication manner, and generate and output control signals according to the received control commands.
  • the short-range wireless communication module 120 includes a receiving terminal and a signal output terminal.
  • the receiving terminal is used to receive control commands from the outside in a short-range wireless communication mode
  • the signal output terminal is used to output corresponding signals to the control module 110. control signal.
  • the control module 110 is connected to the short-range wireless communication module 120 and the power distribution device 200, receives control signals from the short-range wireless communication module 120, and controls the contacts in the power distribution device 200 to open according to the received control signals State or closed state.
  • the short-range wireless communication module 120 when the control command is a power supply command, the short-range wireless communication module 120 outputs a power supply control signal to the control module 110, and the control module 110 controls the contact in the power distribution device 200 to be closed in response to the power supply control signal. State, so as to realize power supply to the external load connected to the power distribution device 200; when the control command is a power-off command, the short-range wireless communication module 120 outputs a power-off control signal to the control module 110, and the control module 110 responds The power-off control signal controls the contact in the power distribution device 200 to be in an open state, so as to realize power-off of the external load connected to the power distribution device 200.
  • wireless power distribution control can be well realized, and because it uses wireless communication to interact with external data commands, there is no need to connect additional signal lines and communication lines, and no Furthermore, a safety isolation circuit between the communication line and the internal power line is provided, which simplifies the circuit design of the power distribution control device, reduces the volume and manufacturing cost of the power distribution control device, and reduces electromagnetic interference.
  • FIG. 5 shows a schematic diagram of the control module 110 according to an embodiment of the present disclosure.
  • control module 110 includes a micro control unit 111, a driving circuit 112 and an output circuit 113.
  • the micro control unit 111 is configured to receive the control signal from the short-range wireless communication module 120, and generate and output a state control signal according to the received control signal.
  • the driving circuit 112 is configured to receive the state control signal from the micro control unit 111, and generate and output a driving signal according to the received state control signal.
  • the driving circuit may be, for example, a bridge circuit, such as an H-bridge circuit, or it may also be a driving circuit of other forms or structures.
  • the embodiments of the present disclosure are not limited by the composition and structure of the driving circuit.
  • the drive circuit When the drive circuit is an H-bridge circuit, it has, for example, a control signal input terminal and a drive signal output terminal. When different state control signals are received at the control signal input terminal, it can output to the output circuit 113 through the drive output terminal. The corresponding drive signal for the current direction.
  • the output circuit 113 is configured to receive a driving signal from the driving circuit 112 and generate a power distribution control signal according to the received driving signal, and control the contact of the power distribution device 200 to be in an open state or a closed state.
  • the output circuit may be, for example, a relay or a drive circuit of other form or structure, and the embodiments of the present disclosure are not limited by the composition and structure of the output circuit.
  • the relay When the output circuit is a relay, the relay has a contact, and the contact can be in an open state or a closed state. And the relay has, for example, a control input terminal and a power distribution control signal output terminal.
  • the power supply drive signal from the drive circuit 112 When the power supply drive signal from the drive circuit 112 is received at the control input terminal, its relay contacts are closed, and the power distribution control signal output terminal
  • the electrical control device 200 outputs a power supply signal so that the contacts of the power distribution device 200 are in a closed state; when the power-off driving signal from the drive circuit 112 is received at the control input, the relay contacts are opened, and the power distribution control signal is output at this time
  • the terminal no longer outputs a power supply signal to the power distribution control device 200, and the contacts of the power distribution device 200 are in an open state.
  • FIG. 5B shows a schematic diagram of the driving circuit 112 according to an embodiment of the present disclosure.
  • the driving circuit when the driving circuit is an H-bridge circuit and the output circuit is a relay, the driving circuit may have 4 bridge arms, which are B 1 , B 2 , B 3 , and B 4 , and the signal input terminal s 2 includes the open The signal input terminal s 21 and the closing signal input terminal s 22 .
  • the signal on signal at its input terminal 21 receives the opening control signal s from a micro control unit 111, i.e., its opening signal upon receiving the high level input terminal s, the arm B 2 and B 4 is turned 21, the driving circuit at this time
  • the output terminal s 3 outputs an open signal, that is, the current signal as shown by the solid arrow in Figure 1B.
  • the relay as the output circuit controls its relay contact to be in an open state in response to the received open signal; when it is at the closed signal input terminal
  • the bridge arms B 1 and B 3 are turned on.
  • the signal output terminal s 3 of the drive circuit outputs a closing signal. That is, the current signal shown by the dashed arrow in FIG. 1B, the relay as the output circuit controls its relay contact to be in a closed state in response to the received closing signal.
  • the control module can obtain the relevant control command in time and realize the corresponding power distribution control based on the control command. Helps improve the efficiency of power distribution control devices.
  • FIG. 6 shows a schematic diagram of a variant of the control module 110 according to an embodiment of the present disclosure, which includes a detection circuit 114.
  • control module 110 further includes a detection circuit 114 for acquiring status information of the power distribution device 200, and the control module 110 sends the status information to the short-range wireless communication module 120, The distance wireless communication module 120 sends the status information to the local gateway 300 in a short distance wireless communication manner.
  • the detection circuit may, for example, be connected to the contacts of the power distribution device 200 to obtain the state of the contacts thereof, or it may detect changes in current or voltage inside the power distribution device to identify its working state.
  • the embodiments of the present disclosure are not limited by the detection method of the detection circuit.
  • the power distribution control device 100 can realize real-time monitoring of the state of the power distribution device 200, and can further output the detected state information, which is beneficial to the power distribution control device to achieve reliable power distribution control.
  • the power distribution detection device further includes a power supply circuit, which supplies power to various functional circuits in the power distribution detection device, such as a micro-control unit and a first detection circuit.
  • the power circuit can, for example, convert an external AC power source into a power supply circuit required by the power distribution detection device.
  • the power distribution detection device further includes an electromagnetic compatibility (EMC) protection circuit, which is connected to the power supply circuit, and is designed to suppress electromagnetic interference from the external environment and at the same time suppress electromagnetic radiation from the product.
  • EMC electromagnetic compatibility
  • the power distribution detection device further includes a button circuit, which is connected to the micro-control unit, which can convert the button signal input by the user into a control command that can be recognized by the micro-control unit, so that the user can realize through button operation For the functional control of power distribution detection devices.
  • the power distribution detection device further includes an external storage circuit and a debugging upgrade circuit, which are respectively connected to the micro-control unit for storing upgrade packages and implementing the upgrade process for the device.
  • FIG. 7A shows a flowchart of a wireless power distribution control method 950 according to an embodiment of the present disclosure.
  • step S951 the user module 400 receives the control command input by the user and outputs the control command.
  • the user module 400 may be one or more dedicated or general computer system modules, such as a personal computer, a notebook computer, a tablet computer, a mobile phone, a personal digital assistant (PDA), and any smart portable device.
  • a personal computer such as a personal computer, a notebook computer, a tablet computer, a mobile phone, a personal digital assistant (PDA), and any smart portable device.
  • PDA personal digital assistant
  • the embodiments of the present disclosure are not limited by the specific types of user modules.
  • the user module output control command can be realized by wired means, for example, Ethernet (Ethernet), or wireless means, for example, by a mobile communication system, such as the third generation mobile communication system (3G) or the fourth generation mobile communication system ( 4G) or through general packet radio service technology (GPRS).
  • a mobile communication system such as the third generation mobile communication system (3G) or the fourth generation mobile communication system ( 4G) or through general packet radio service technology (GPRS).
  • GPRS general packet radio service technology
  • the local gateway 300 receives the control command from the user module 400 and outputs the control command in a short-range wireless communication manner.
  • the local gateway can receive control commands, for example, through wired means, such as Ethernet (Ethernet), or wireless means, for example, through a mobile communication system, such as the third-generation mobile communication system (3G) or the fourth-generation mobile communication system ( 4G) or through general packet radio service technology (GPRS).
  • a mobile communication system such as the third-generation mobile communication system (3G) or the fourth-generation mobile communication system ( 4G) or through general packet radio service technology (GPRS).
  • GPRS general packet radio service technology
  • a cloud gateway 500 is further provided between the user module 400 and the local gateway 300, and the process of the local gateway 300 receiving the control command from the user module 400 in step S952 can be described in more detail.
  • FIG. 7B shows a flowchart of a process in which the local gateway receives a control command from the user module 400 according to an embodiment of the present disclosure.
  • step S9521 the cloud gateway 500 receives a control command from the user module 400, and then, in step S9522, the cloud gateway 500 sends the control command to the local gateway 300.
  • the cloud gateway may be, for example, an Facebook Cloud gateway, an Amazon cloud gateway, a COM'X cloud gateway, or other types of cloud gateways.
  • the embodiments of the present disclosure are not limited by the specific cloud gateway type selected.
  • the cloud gateway receives and sends control commands, for example, through wired means, such as Ethernet (Ethernet), or wireless means, for example, through mobile communication systems, such as third-generation mobile communication systems (3G) or fourth-generation mobile communications System (4G) implementation, or through general packet radio service technology (GPRS).
  • wired means such as Ethernet (Ethernet)
  • wireless means for example, through mobile communication systems, such as third-generation mobile communication systems (3G) or fourth-generation mobile communications System (4G) implementation, or through general packet radio service technology (GPRS).
  • GPRS general packet radio service technology
  • the cloud gateway receives the control command from the user module and sends the control command to the local gateway, so that the number of power distribution control devices controlled by the control command in a single user module can be further expanded, the scope of power distribution control is expanded, and the power distribution is improved. Control efficiency.
  • a cloud server 600 is further provided between the user module 400 and the cloud gateway 500, and the cloud gateway 500 receives the control command from the user module 400 in step S9521, which can be described in more detail.
  • step S9521-1 the cloud server 600 receives the control command from the user module 400, and secondly, in step S9521-2, the cloud server 600 sends the control command to the cloud gateway 300.
  • the cloud server may be, for example, an Facebook Cloud server, a Tencent Cloud server, a Huawei Cloud server, or other types of cloud servers, and the embodiments of the present disclosure are not limited by the specific server type selected.
  • the cloud server receives and sends control commands, for example, through wired means, such as Ethernet (Ethernet), or wirelessly, for example, through mobile communication systems, such as third-generation mobile communication systems (3G) or fourth-generation mobile communications.
  • 3G third-generation mobile communication systems
  • 4G fourth-generation mobile communications
  • System (4G) implementation or through general packet radio service technology (GPRS).
  • GPRS general packet radio service technology
  • the method of receiving the control command from the user module through the cloud server and sending the control command to the cloud gateway makes it possible to further expand the number of power distribution control devices controlled by the control command input in a single user module and expand the scope of power distribution control , Improve the efficiency of power distribution control.
  • the power distribution control device 100 receives the control command from the local gateway 300 in the short-range wireless communication mode and controls the contact in the power distribution device 200 to be in an open state according to the received control command Or closed state.
  • the user can realize remote wireless power distribution control by inputting corresponding control commands in the user module, and because this method uses wireless communication for data command interaction, there is no need to connect additional signal lines and The communication line simplifies the design of the wireless power distribution control system.
  • the power distribution control device 100 receives a control command from the local gateway 300 in a short-range wireless communication mode and controls the contact in the power distribution device 200 to be in an open state or according to the received control command.
  • the closed state includes: the power distribution control device 100 receives a control command in a short-range wireless communication mode and generates a control signal according to the received control command, and the power distribution control device 100 controls the contact in the power distribution device 200 according to the control signal.
  • the point is open or closed.
  • the wireless power distribution control can be well realized, and because there is no need to connect additional signal lines and communication lines, there is no need to set up a safety isolation circuit between the communication line and the internal power line, which simplifies the power distribution control
  • the circuit design of the device reduces the volume and manufacturing cost of the power distribution control device, and reduces electromagnetic interference.
  • the method further includes: the power distribution control device 100 obtains status information of the power distribution device 200, and the power distribution control device 100 sends the status information to the local device in a short-range wireless communication manner. Gateway 300.
  • the process of obtaining the status information of the power distribution device through the detection circuit and sending it to the local gateway enables the power distribution control device to realize real-time monitoring of the status of the power distribution device and further output the detected status information. Conducive to the realization of reliable power distribution control.
  • FIG. 8 shows a flowchart of a process 960 of the local gateway 300 processing status information according to an embodiment of the present disclosure.
  • step S961 the local gateway 300 determines the received status information of the power distribution device 200 and the current control from the user module 400 Whether the expected status of the command is consistent or not, if the status of the power distribution device 200 is consistent with the expected status of the current control command, then in step S962, the local gateway 300 sends the status information of the power distribution device. If the state of the power distribution device 200 is inconsistent with the expected state of the current control command, in step S963, the local gateway 300 sends an alarm message.
  • the detection circuit when the detection circuit is connected to the contact of the power distribution device 200 to detect the state of the contact, when the current control command is a power supply command, if the state information received by the local gateway 300 is that the contact is closed, it determines the received state If the information is consistent with the current control command, it will send the state information of the contact closure to the user module; if the state information received by the local gateway 300 is that the contact is open, it judges that the received state information is inconsistent with the current control command. Alarm information will be sent to the user module.
  • a cloud gateway 500 is also provided between the user module 400 and the local gateway 300.
  • the cloud gateway receives the state from the local gateway 300 Information and send it to the user module. At this time, the status information in the cloud gateway and the user module will be updated synchronously.
  • the cloud gateway receives the alarm information from the local gateway 300 and sends the alarm information to the user module.
  • a cloud server 600 is further provided between the user module 400 and the cloud gateway 500.
  • the cloud gateway receives the state from the local gateway 300 The information is sent to the cloud server, and the cloud server further sends the status information to the user module. At this time, the contact status information in the cloud gateway, cloud server, and user module will be updated synchronously.
  • the cloud gateway receives the alarm information from the local gateway 300 and sends it to the cloud server, and the cloud server sends the alarm information to the user module.
  • the wireless power distribution control system is formed into a closed loop, which can feedback the current status of the power distribution device to the user in real time, and send it to the power distribution control device based on the status of the power distribution device. Control commands to enhance the reliability and robustness of the system.
  • FIG. 9A shows a schematic diagram of a wireless power distribution control system 800A according to an embodiment of the present disclosure.
  • the wireless power distribution control system 800A includes: a user module 400, a local gateway 300, and a power distribution control device 100.
  • the user module 400 is configured to receive a control command input by a user and output the control command.
  • the user module output control command can be realized by wired means, for example, Ethernet (Ethernet), or wireless means, for example, by a mobile communication system, such as the third generation mobile communication system (3G) or the fourth generation mobile communication system ( 4G) or through general packet radio service technology (GPRS).
  • a mobile communication system such as the third generation mobile communication system (3G) or the fourth generation mobile communication system ( 4G) or through general packet radio service technology (GPRS).
  • GPRS general packet radio service technology
  • the local gateway 300 is configured to receive control commands from the user module 400 and output the control commands in a short-range wireless communication manner.
  • the local gateway can receive control commands, for example, through wired means, such as Ethernet (Ethernet), or wireless means, for example, through a mobile communication system, such as the third-generation mobile communication system (3G) or the fourth-generation mobile communication system ( 4G) or through general packet radio service technology (GPRS).
  • a mobile communication system such as the third-generation mobile communication system (3G) or the fourth-generation mobile communication system ( 4G) or through general packet radio service technology (GPRS).
  • GPRS general packet radio service technology
  • the power distribution control device 100 is configured to receive a control command from the local gateway 300 in a short-range wireless communication manner and control the contact in the power distribution device 200 to be in an open state or a closed state according to the received control command.
  • the power distribution control device 100 is connected to a power distribution device 200, the power distribution device 200 has contacts, and the power distribution control device 100 includes a short-range wireless communication module 120 and a control module 110.
  • the short-range wireless communication module 120 receives control commands in a short-range wireless communication mode, and generates and outputs control signals according to the received control commands;
  • the control module 110 is connected to the short-range wireless communication module 120 and the power distribution device 200,
  • the wireless communication module 120 receives the control signal, and controls the contact in the power distribution device 200 to be in an open state or a closed state according to the received control signal.
  • the user can realize remote wireless power distribution control by entering the corresponding control commands in the user module, and because the wireless communication method is used for data command interaction, there is no need to connect additional signal lines and communication lines , Simplifies the design of the wireless power distribution control system, reduces the volume and manufacturing cost of the power distribution control device, and reduces electromagnetic interference.
  • FIG. 9B shows a schematic diagram of a wireless power distribution control system 800B according to an embodiment of the present disclosure.
  • a cloud gateway 500 is further provided between the user module 400 and the local gateway 300, and the cloud gateway 500 is configured as The control command from the user module 400 is received and the control command is sent to the local gateway 300.
  • the cloud gateway can communicate with multiple local gateways, thereby further expanding the number of power distribution control devices controlled by control commands in a single user module, expanding the scope of power distribution control, and improving power distribution control s efficiency.
  • FIG. 9C shows a schematic diagram of a wireless power distribution control system 800C according to an embodiment of the present disclosure.
  • a cloud server 600 is further provided between the user module 400 and the cloud gateway 500, and the cloud server 600 receives The control command of the module 400 and sends the control command to the cloud gateway 300.
  • the cloud server can communicate with multiple cloud gateways, which can further expand the number of power distribution control devices controlled by the control commands input in a single user module, expand the scope of power distribution control, and increase the distribution The efficiency of electrical control.
  • control module 110 further includes a detection circuit 114 for acquiring status information of the power distribution device 200, and the control module 110 sends the status information to the short-range wireless communication module 120, The communication module 120 sends the status information to the local gateway 300 in a short-range wireless communication manner.
  • the power distribution control device 100 can realize real-time monitoring of the state of the power distribution device 200, and can further output the detected state information, which is beneficial to improve the wireless power distribution control system configuration. Reliability of electrical control.
  • the local gateway 300 is configured to determine whether the received state information of the power distribution device 200 is consistent with the expected state of the current control command from the user module 400. Wherein, when the state of the power distribution device 200 is consistent with the expected state of the current control command, the local gateway 300 sends the state information of the power distribution device. When the state of the power distribution device 200 is inconsistent with the expected state of the current control command, the local gateway 300 sends an alarm message.
  • the detection circuit when the detection circuit is connected to the contact of the power distribution device 200 to detect the state of the contact, when the current control command is a power supply command, if the state information received by the local gateway 300 is that the contact is closed, it determines the received state If the information is consistent with the current control command, it will send the state information that the contact is closed; if the state information received by the local gateway 300 is that the contact is open, it judges that the received state information is inconsistent with the current control command, and it will send an alarm information.
  • 10A, 10B, and 10C respectively show schematic diagrams of variants 900A, 900B, and 900C of the wireless power distribution control system according to an embodiment of the present disclosure.
  • the local gateway 300 when the state of the power distribution device 200 is consistent with the expected state of the current control command, the local gateway 300 sends the state information of the power distribution device to the user module to update the contact state information in the user module.
  • the local gateway 300 sends an alarm message to the user module.
  • the cloud gateway 500 when the state of the power distribution device 200 is consistent with the expected state of the current control command, the cloud gateway receives the state information from the local gateway 300 and sends it to the user module, At this time, the status information in the cloud gateway and user module will be updated synchronously.
  • the cloud gateway receives the alarm information from the local gateway 300 and sends the alarm information to the user module.
  • the cloud gateway receives the state information from the local gateway 300 and sends it To the cloud server, the cloud server further sends the status information to the user module. At this time, the contact status information in the cloud gateway, the cloud server and the user module will be updated synchronously.
  • the cloud gateway receives the alarm information from the local gateway 300 and sends it to the cloud server, and the cloud server sends the alarm information to the user module.
  • the local gateway determines whether the received status information of the power distribution device is consistent with the expected status of the current control command from the user module and send the judgment result, so that the internal wireless power distribution control system forms a closed loop, which can change the current power distribution device
  • the status of the power distribution device 200 can be fed back to the user in real time, and the control commands sent to the power distribution control device can be adjusted in time based on the status of the power distribution device 200 to enhance the reliability and robustness of the system.
  • first/second embodiment means a certain feature, structure, or characteristic related to at least one embodiment of the present application. Therefore, it should be emphasized and noted that “an embodiment” or “an embodiment” or “an alternative embodiment” mentioned twice or more in different positions in this specification does not necessarily refer to the same embodiment. . In addition, some features, structures, or characteristics in one or more embodiments of the present application can be appropriately combined.

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Abstract

一种配电控制装置、配电控制方法、无线配电控制系统及无线配电控制方法,所述配电控制装置(100)连接有配电装置(200),所述配电装置(200)具有触点,所述配电控制装置(100)包括:短距无线通信模块(120),其以短距无线通信方式接收控制命令,并根据所接收的控制命令产生并输出控制信号;控制模块(110),其与短距无线通信模块(120)和配电装置(200)连接,从短距无线通信模块(120)接收控制信号,并根据所接收的控制信号控制所述配电装置(200)中的触点处于打开状态或闭合状态。

Description

配电控制装置、配电控制方法、无线配电控制系统及方法
相关申请的交叉引用
本申请要求于2019年02月28日提交的中国专利申请第201910151311.0号的优先权,该中国专利申请的全文通过引用的方式结合于此以作为本申请的一部分。
技术领域
本公开涉及自动化控制领域及配电领域,更具体地涉及一种配电控制装置、配电控制方法、无线配电控制系统及无线配电控制方法。
背景技术
随着自动化控制在民用和商用领域的广泛应用,配电控制装置在楼宇配电箱/配电柜和家用配电箱中起到日益重要的作用,因此配电控制装置也面临着更高的要求。在目前的配电控制中,配电控制装置与总控制器及配电装置(例如接触器或脉冲开关)采取有线连接,其接收来自总控制器的控制命令并实现对配电装置的状态的控制,从而实现对于与该配电装置相连接的外部电路上电及断电过程。
然而,采用有线连接的方式实现配电控制时,需要连接较多的信号线、通信线,易造成电磁干扰,且增加了配电控制装置的体积及成本;且当同一个总控制器需要控制较多的配电控制装置时,在总控制器侧将需要诸多接口,增加了其制造成本且难于工程实现。
因此,需要一种在实现良好配电控制的前提下,具有较低成本及较高可靠性的配电控制装置。
发明内容
针对以上问题,本公开提供了一种配电控制装置、配电控制方法、无线配电控制系统及无线配电控制方法。利用本公开提供的配电控制装置、配电控制方法、无线配电控制系统及无线配电控制方法,可以在实现良好配电控 制的基础上,有效减小配电控制装置的体积并使其具有较低的成本,且该配电控制装置具有良好的鲁棒性。
根据本公开的一方面,提出了一种配电控制装置,所述配电控制装置连接有配电装置,所述配电装置具有触点,所述配电控制装置包括:短距无线通信模块,其以短距无线通信方式接收控制命令,并根据所接收的控制命令产生并输出控制信号;控制模块,其与短距无线通信模块和配电装置连接,从短距无线通信模块接收控制信号,并根据所接收的控制信号控制所述配电装置中的触点处于打开状态或闭合状态。
根据本公开的配电控制装置还可包括以下一个或多个特征,单独地或结合地。
在一些实施例中,所述控制模块包括:微控制单元,其从短距无线通信模块接收所述控制信号,并根据所接收的控制信号产生并输出状态控制信号;驱动电路,其从微控制单元接收所述状态控制信号,并根据所接收的状态控制信号产生并输出驱动信号;输出电路,其从驱动电路接收驱动信号并根据所接收的驱动信号生成配电控制信号,控制所述配电装置的触点处于打开状态或闭合状态。
在一些实施例中,所述控制模块还包括检测电路,用于获取配电装置的状态信息,所述控制模块将所述状态信息发送至短距无线通信模块,短距无线通信模块将所述状态信息以短距无线通信方式发送至本地网关。
根据本公开的另一方面,提供了一种配电控制方法,包括:以短距无线通信方式接收控制命令并根据所接收的控制命令产生控制信号;根据所述控制信号控制配电装置中的触点处于打开状态或闭合状态。
根据本公开的配电控制方法还可包括以下一个或多个特征,单独地或结合地。
在一些实施例中,根据所述控制信号控制配电装置中的触点处于打开状态或闭合状态包括:根据所述控制信号产生状态控制信号;根据所述状态控制信号产生驱动信号;根据所述驱动信号产生配电控制信号以控制所述配电装置的触点处于打开状态或闭合状态。
在一些实施例中,所述控制模块还包括:获取配电装置的状态信息;以短距无线通信方式将所述状态信息发送至本地网关。
根据本公开的另一方面,提供了一种无线配电控制系统,所述无线配电控制系统包括:用户模块,其接收用户输入的控制命令并输出所述控制命令;本地网关,其接收来自用户模块的控制命令并将所述控制命令以短距无线通信方式输出;配电控制装置以短距无线通信方式接收来自本地网关的控制命令并根据所接收的控制命令控制配电装置中的触点处于打开状态或闭合状态。
根据本公开的无线配电控制系统还可包括以下一个或多个特征,单独地或结合地。
在一些实施例中,所述配电控制装置连接有配电装置,所述配电装置具有触点,所述配电控制装置包括:短距无线通信模块,其以短距无线通信方式接收控制命令,并根据所接收的控制命令产生并输出控制信号;控制模块,其与短距无线通信模块和配电装置连接,从短距无线通信模块接收控制信号,并根据所接收的控制信号控制所述配电装置中的触点处于打开状态或闭合状态。
在一些实施例中,所述控制模块还包括检测电路,用于获取配电装置的状态信息,所述控制模块将所述状态信息发送至短距无线通信模块,短距无线通信模块将所述状态信息以短距无线通信方式发送至本地网关。
在一些实施例中,所述本地网关判断接收到的配电装置的状态信息与来自用户模块的当前控制命令的预期状态是否一致,在配电装置的状态与当前控制命令的预期状态一致时,本地网关发送配电装置的状态信息;在配电装置的状态与当前控制命令的预期状态不一致时,本地网关发送报警信息。
根据本公开的另一方面,提供了一种无线配电控制方法,所述方法包括:用户模块接收用户输入的控制命令并将所述控制命令输出;本地网关接收来自用户模块的控制命令并将所述控制命令以短距无线通信方式输出;配电控制装置以短距无线通信方式接收来自本地网关的控制命令并根据所接收的控制命令控制配电装置中的触点处于打开状态或闭合状态。
根据本公开的无线配电控制方法还可包括以下一个或多个特征,单独地或结合地。
在一些实施例中,配电控制装置以短距无线通信方式接收来自本地网关的控制命令并根据所接收的控制命令控制配电装置中的触点处于打开状态或 闭合状态包括:配电控制装置以短距无线通信方式接收控制命令并根据所述控制命令产生控制信号;根据所述控制信号控制配电装置中的触点处于打开状态或闭合状态。
在一些实施例中,无线配电控制方法还包括:配电控制装置获取配电装置的状态信息;配电控制装置以短距无线通信方式将所述状态信息发送至本地网关。
在一些实施例中,所述本地网关判断接收到的配电装置的状态信息与来自用户模块的当前控制命令的预期状态是否一致,在配电装置的状态与当前控制命令的预期状态一致时,本地网关发送配电装置的状态信息;在配电装置的状态与当前控制命令的预期状态不一致时,本地网关发送报警信息。
利用本公开提供的配电控制装置、配电控制方法、无线配电控制系统及无线配电控制方法,可以很好的完成配电控制,特别地,其可以有效减小配电控制装置的体积并使其具有较低的成本,且该配电控制装置具有良好的鲁棒性。
附图说明
为了更清楚地说明本公开的实施例的技术方案,下面将对实施例的附图作简单地介绍,显而易见地,下面描述中的附图仅仅涉及本公开的一些实施例,而非对本公开的限制。
图1示出了根据本公开实施例的配电控制方法700的流程图;
图2示出了根据本公开实施例的控制模块从短距无线通信模块接收控制信号并根据所接收的控制信号控制配电装置中的触点处于打开状态或闭合状态的过程的流程图;
图3示出了根据本公开实施例的配电控制方法的一个变体710的流程图;
图4示出了根据本公开实施例的配电控制装置100的示意图;
图5示出了根据本公开实施例的控制模块110的示意图;
图5B示出了根据本公开实施例的驱动电路112的示意图;
图6示出了根据本公开实施例的控制模块110的一个变体的示意图,其包括检测电路114;
图7A示出了根据本公开实施例的无线配电控制方法950的流程图;
图7B示出了根据本公开实施例的本地网关从用户模块接收控制命令的过程的流程图;
图8示出了本公开实施例本地网关对状态信息处理过程960的流程图;
图9A示出了根据本公开实施例的无线配电控制系统800A的示意图;
图9B示出了根据本公开实施例的无线配电控制系统800B的示意图;
图9C示出了根据本公开实施例的无线配电控制系统800C的示意图;
图10A示出了根据本公开实施例的无线配电控制系统的一个变体900A的示意图;
图10B示出了根据本公开实施例的无线配电控制系统的一个变体900B的示意图;
图10C示出了根据本公开实施例的无线配电控制系统的一个变体900C的示意图。
具体实施方式
将参照附图详细描述根据本公开的各个实施例。这里,需要注意的是,在附图中,将相同的附图标记赋予基本上具有相同或类似结构和功能的组成部分,并且将省略关于它们的重复描述。
为使本公开的实施例的目的、技术方案和优点更加清楚,下面将结合本公开的实施例的附图,对本公开的实施例的技术方案进行清楚、完整地描述。显然,所描述的实施例是本公开的一部分实施例,而不是全部的实施例。基于所描述的本公开的实施例,本领域普通技术人员在无需创造性劳动的前提下所获得的所有其他实施例,都属于本公开保护的范围。
除非另作定义,此处使用的技术术语或者科学术语应当为本公开所属领域内具有一般技能的人士所理解的通常意义。本公开中使用的“第一”、“第二”以及类似的词语并不表示任何顺序、数量或者重要性,而只是用来区分不同的组成部分。同样,“包括”或者“包含”等类似的词语意指出现该词前面的元件或者物件涵盖出现在该词后面列举的元件或者物件及其等同,而不排除其他元件或者物件。“连接”或者“相连”等类似的词语并非限定于物理的或者机械的连接,而是可以包括电性的连接,不管是直接的还是间接的。“上”、“下”、“左”、“右”等仅用于表示相对位置关系,当被描述对象的绝对 位置改变后,则该相对位置关系也可能相应地改变。
如本申请和权利要求书中所示,除非上下文明确提示例外情形,“一”、“一个”、“一种”和/或“该”等词并非特指单数,也可包括复数。一般说来,术语“包括”与“包含”仅提示包括已明确标识的步骤和元素,而这些步骤和元素不构成一个排它性的罗列,方法或者设备也可能包含其他的步骤或元素。
虽然本申请对根据本申请的实施例的系统中的某些模块做出了各种引用,然而,任何数量的不同模块可以被使用并运行在用户终端和/或服务器上。所述模块仅是说明性的,并且所述系统和方法的不同方面可以使用不同模块。
本申请中使用了流程图用来说明根据本申请的实施例的系统所执行的操作。应当理解的是,前面或下面操作不一定按照顺序来精确地执行。相反,根据需要,可以按照倒序或同时处理各种步骤。同时,也可以将其他操作添加到这些过程中,或从这些过程移除某一步或数步操作。
图1示出了根据本公开实施例的配电控制方法700的流程图。
参照图1,首先,在步骤S701中,以短距无线通信方式接收控制命令并根据所述控制命令产生控制信号。
所述控制命令可以是用户直接输入的控制命令,或者也可以是对用户的控制指令进行进一步处理而生成的控制命令。本公开的实施例不受所述控制命令的来源的限制。
所述短距无线通信方式例如可以是基于Zigbee协议的短距无线通信方式,或者其也可以是蓝牙通信方式,本公开的实施例不受所选择的短距无线通信方式的具体类型的限制。
所生成的控制信号例如可以为电压控制信号,或者也可以为电流控制信号,其可为持续信号或脉冲信号,并且可以采用高电平或低电平为其有效电平。本公开的实施例不受控制信号的类型的限制。
例如,可以通过控制装置内部的短距无线通信模块来接收控制命令,所述无线通信模块进一步地将所述控制命令转换为控制信号,并将该控制信号输出至控制装置的控制模块进行后续处理。
产生控制信号后,在步骤S702中,根据所述控制信号控制配电装置200中的触点处于打开状态或闭合状态。
所述配电装置例如可以是接触器(iCT),或者其也可以是脉冲开关 (iTL),所述配电装置200可安装于工业配电箱或家用配电箱中,其触点的一端连接至配电箱的供电电源,另一端可连接至外部负载,所述外部负载可以是工业现场设备,例如电机、传感器,其也可以是家用负载电路。本公开的实施例不受配电装置的具体类型及配电装置所连接的外部负载的种类的限制。
例如,当所述控制命令为供电命令时,所述控制信号为供电控制信号,其控制所述配电装置200中的触点处于闭合状态,从而实现对与该配电装置200连接的外部负载的供电;当所述控制命令为断电命令时,所述控制信号为断电控制信号,其控制所述配电装置200中的触点处于打开状态,从而实现对与该配电装置200连接的外部负载的断电。
通过上述配电控制方法,可以良好实现无线配电控制,且由于其采用短距无线通信方式与外部进行数据指令交互,无需再连接额外的信号线及通信线,也无需再设置通信线路及内部电源线路间的安全隔离电路,简化了配电控制装置的电路设计,减小了配电控制装置的体积和制造成本,降低了电磁干扰。
图2示出了根据本公开实施例的根据所述控制信号控制配电装置200中的触点处于打开状态或闭合状态的过程的流程图。
如图2所示,首先,在步骤S7021中,根据所述控制信号产生状态控制信号。
所述状态控制信号例如可以为电压控制信号,或者也可以为电流控制信号,其可为持续信号或脉冲信号,并且可以采用高电平或低电平为其有效电平。本公开的实施例不受状态控制信号的类型的限制。
产生状态控制信号后,在步骤S7022中,根据所述状态控制信号产生驱动信号。
所述驱动信号例如可以是电压控制信号,或者也可以为电流控制信号,其可为持续信号或脉冲信号,并且可以采用高电平或低电平为其有效电平。本公开的实施例不受驱动信号的类型的限制。
所述驱动信号例如由驱动电路产生,所述驱动电路例如可以是桥式电路,如H桥电路,或者其也可以是其他形式或构造的驱动电路,本公开的实施例不受驱动电路的组成及其结构的限制。
产生驱动信号后,在步骤S7023中,根据所述驱动信号产生配电控制 信号以控制所述配电装置200的触点处于打开状态或闭合状态。
所述配电控制信号可以由输出电路产生,例如由继电器的触点的闭合和打开动作而产生,也可以由其他电路或模块逻辑输出的变化而产生,本公开的实施例不受配电控制信号的产生方式的限制。
通过上述方法,在接收到控制命令时,可以及时获取相关控制命令并基于所述控制命令实现相应的配电控制,有助于提高配电控制装置的工作效率。
图3示出了根据本公开实施例的配电控制方法的一个变体710的流程图。
如图3所示,在一些实施例中,首先,在步骤S711中,获取配电装置200的状态信息。
获取配电装置200的状态信息例如可以通过检测电路检测装置状态来实现,或者可以通过定期接收来自装置的状态信号实现。当通过检测电路获取状态信息时,所述检测电路例如可以连接至配电装置200的触点,用于获取其触点的状态,或者其可以检测配电装置内部的电流或电压变化以识别其工作状态。本公开的实施例不受获取配电装置的状态信息的具体方式的限制。
获取配电装置200的状态信息后,在步骤S712中,以短距无线通信方式将所述状态信息发送至本地网关300。
例如可以基于预设时间间隔,定时将所述状态信息发送至本地网关,或者可以响应于用户的查询命令而发送所述状态信息。本公开的实施例不受发送状态信息的触发条件和频次的限制。
通过上述方法,使得可以实现对于配电装置的状态的实时监测,并且进一步地,可向外输出检测到的状态信息,有利于配电控制装置实现可靠的配电控制。
图4示出了根据本公开实施例的配电控制装置100的示意图。
参照图4,所述配电控制装置100连接有配电装置200,所述配电装置200具有触点。所述配电控制装置100包括短距无线通信模块120以及控制模块110。
所述短距无线通信模块120被配置为以短距无线通信方式接收控制命令,并根据所接收的控制命令产生并输出控制信号。
例如,所述短距无线通信模块120包括接收端及信号输出端,所述接 收端用于以短距无线通信方式接收来自外部的控制命令,并且信号输出端用于向控制模块110输出相应的控制信号。
所述控制模块110与短距无线通信模块120和配电装置200连接,从短距无线通信模块120接收控制信号,并根据所接收的控制信号控制所述配电装置200中的触点处于打开状态或闭合状态。
例如,当所述控制命令为供电命令时,短距无线通信模块120向控制模块110输出供电控制信号,控制模块110响应于所述供电控制信号控制所述配电装置200中的触点处于闭合状态,从而实现对与该配电装置200连接的外部负载的供电;当所述控制命令为断电命令时,短距无线通信模块120向控制模块110输出断电控制信号,控制模块110响应于所述断电控制信号控制所述配电装置200中的触点处于打开状态,从而实现对与该配电装置200连接的外部负载的断电。
通过设置具有短距无线通信模块的配电控制装置,可以良好实现无线配电控制,且由于其采用无线的通信方式与外部进行数据指令交互,无需再连接额外的信号线及通信线,也无需再设置通信线路及内部电源线路间的安全隔离电路,简化了配电控制装置的电路设计,减小了配电控制装置的体积和制造成本,降低了电磁干扰。
图5示出了根据本公开实施例的控制模块110的示意图。
如图5所示,所述控制模块110包括微控制单元111、驱动电路112及输出电路113。
其中,所述微控制单元111被配置为从短距无线通信模块120接收所述控制信号,并根据所接收的控制信号产生并输出状态控制信号。
所述驱动电路112被配置为从微控制单元111接收所述状态控制信号,并根据所接收的状态控制信号产生并输出驱动信号。
其中,所述驱动电路例如可以是桥式电路,如H桥电路,或者其也可以是其他形式或构造的驱动电路,本公开的实施例不受驱动电路的组成及其结构的限制。
当驱动电路为H桥电路时,其例如具有控制信号输入端和驱动信号输出端,当在控制信号输入端接收到不同的状态控制信号时,其可通过驱动输出端向输出电路113输出具有不同电流方向的相应驱动信号。
输出电路113被配置为从驱动电路112接收驱动信号并根据所接收的 驱动信号生成配电控制信号,控制所述配电装置200的触点处于打开状态或闭合状态。
所述输出电路例如可以为继电器或其他形式或构造的驱动电路,本公开的实施例不受输出电路的组成及其结构的限制。
当输出电路为继电器时,所述继电器具有触点,所述触点可处于打开状态或闭合状态。且所述继电器例如具有控制输入端和配电控制信号输出端,当在控制输入端接收到来自驱动电路112的供电驱动信号时,其继电器触点闭合,此时配电控制信号输出端向配电控制装置200输出供电信号,使得配电装置200的触点处于闭合状态;当在控制输入端接收到来自驱动电路112的断电驱动信号时,继电器触点打开,此时配电控制信号输出端不再向配电控制装置200输出供电信号,配电装置200的触点处于打开状态。
图5B示出了根据本公开实施例的驱动电路112的示意图。
参照图5B,上述过程可以更具体地描述。例如当驱动电路为H桥电路,输出电路为继电器时,所述驱动电路可具有4条桥臂,其分别为B 1、B 2、B 3、B 4,且其信号输入端s 2包括开启信号输入端s 21和闭合信号输入端s 22。当其在开启信号输入端s 21接收来自微控制单元111的开启控制信号时,即其开启信号输入端s 21接收高电平时,桥臂B 2及B 4导通,此时驱动电路的信号输出端s 3输出开启信号,即如图1B中实线箭头所示的电流信号,作为输出电路的继电器响应于接收到的开启信号控制其继电器触点处于打开状态;当其在闭合信号输入端s 22接收来自微控制单元的闭合控制信号时,即其闭合信号输入端s 22接收高电平时,桥臂B 1及B 3导通,此时驱动电路的信号输出端s 3输出闭合信号,即如图1B中虚线箭头所示的电流信号,作为输出电路的继电器响应于所接收到的闭合信号控制其继电器触点处于闭合状态。
通过在控制模块中设置微控制单元、驱动电路、输出电路,在短距无线通信模块接收到控制命令时,控制模块可以及时获取相关控制命令并基于所述控制命令实现相应的配电控制,有助于提高配电控制装置的工作效率。
图6示出了根据本公开实施例的控制模块110的一个变体的示意图,其包括检测电路114。
在一些实施例中,如图6所示,控制模块110还包括检测电路114,用于获取配电装置200的状态信息,控制模块110将所述状态信息发送至短距无线通信模块120,短距无线通信模块120将所述状态信息以短距无线通信方式发送至本地网关300。
所述检测电路例如可以连接至配电装置200的触点,用于获取其触点的状态,或者其可以检测配电装置内部的电流或电压变化以识别其工作状态。本公开的实施例不受检测电路的检测方式的限制。
通过设置检测电路,使得配电控制装置100可以实现对于配电装置200的状态的实时监测,并且进一步地可向外输出检测到的状态信息,有利于配电控制装置实现可靠的配电控制。
在一些实施例中,所述配电检测装置还包括电源电路,其为配电检测装置中各功能电路,如微控制单元、第一检测电路供电。所述电源电路例如可将外部的交流电源转换为配电检测装置所需的供电回路。
在一些实施例中,所述配电检测装置还包括电磁兼容(EMC)保护电路,其与电源电路连接,其旨在抑制外部环境的电磁干扰,并同时抑制产品对外的电磁辐射。
在一些实施例中,所述配电检测装置还包括按钮电路,其与微控制单元相连接,其可将用户输入的按钮信号转换为微控制单元可识别的控制指令,使得用户经由按钮操作实现对于配电检测装置的功能控制。
在一些实施例中,所述配电检测装置还包括外部存储电路和调试升级电路,其分别与微控制单元相连接,用于存储升级包并实现对于装置的升级过程。
图7A示出了根据本公开实施例的无线配电控制方法950的流程图。
如图7A所示,首先,在步骤S951中,用户模块400接收用户输入的控制命令并将所述控制命令输出。
所述用户模块400可以为一个或多个专用或通用的计算机系统模块,例如个人电脑、笔记本电脑、平板电脑、手机、个人数码助理(personal digital assistance,PDA)及任何智能便携设备。本公开的实施例不受用户模块的具体类型的限制。
用户模块输出控制命令例如可以通过有线方式,例如通过以太网(Ethernet)实现,也可以通过无线方式,例如通过移动通信系统,如第三 代移动通信系统(3G)或第四代移动通信系统(4G)实现,或者通过通用分组无线服务技术(GPRS)实现。本公开的实施例不受所选取的具体的通信方式的限制。
用户模块输出控制命令后,在步骤S952中,本地网关300接收来自用户模块400的控制命令并将所述控制命令以短距无线通信方式输出。
本地网关接收控制命令例如可以通过有线方式,例如通过以太网(Ethernet)实现,也可以通过无线方式,例如通过移动通信系统,如第三代移动通信系统(3G)或第四代移动通信系统(4G)实现,或者通过通用分组无线服务技术(GPRS)实现。本公开的实施例不受所选取的具体的通信方式的限制。
在一些实施例中,所述用户模块400与本地网关300之间还设置有云网关500,则在步骤S952中本地网关300接收来自用户模块400的控制命令的过程可更具体地描述。
图7B示出了根据本公开实施例的本地网关接收来自用户模块400的控制命令的过程的流程图。
如图7B所示,首先,在步骤S9521中,所述云网关500接收来自用户模块400的控制命令,其后,在步骤S9522中,云网关500将所述控制命令发送至本地网关300。
所述云网关例如可以为阿里云网关、亚马逊云网关、COM’X云网关或其他类型的云网关,本公开的实施例不受所选取的具体云网关的类型的限制。
云网关接收和发送控制命令例如可以通过有线方式,例如通过以太网(Ethernet)实现,也可以通过无线方式,例如通过移动通信系统,如第三代移动通信系统(3G)或第四代移动通信系统(4G)实现,或者通过通用分组无线服务技术(GPRS)实现。本公开的实施例不受所选取的具体的通信方式的限制。
通过云网关从用户模块接收控制命令并将该控制命令发送至本地网关,使得可以进一步扩大单个用户模块中控制命令所控制的配电控制装置的个数,扩大配电控制的范围,提高配电控制的效率。
在一些实施例中,所述用户模块400和云网关500之间还设置有云服务器600,则在步骤S9521中云网关500接收来自用户模块400的控制命 令可以更具体地描述。
如图7B所示,首先,在步骤S9521-1中,所述云服务器600接收来自用户模块400的控制命令,其次,在步骤S9521-2中,云服务器600将所述控制命令发送至云网关300。
所述云服务器例如可以为阿里云服务器、腾讯云服务器、华为云服务器或其他类型的云服务器,本公开的实施例不受所选取的具体服务器的类型的限制。
云服务器接收和发送控制命令例如可以通过有线方式,例如通过以太网(Ethernet)实现,也可以通过无线方式,例如通过移动通信系统,如第三代移动通信系统(3G)或第四代移动通信系统(4G)实现,或者通过通用分组无线服务技术(GPRS)实现。本公开的实施例不受所选取的具体的通信方式的限制。
通过云服务器从用户模块接收控制命令并将该控制命令发送至云网关的方法,使得可以进一步扩大单个用户模块中输入的控制命令所控制的配电控制装置的个数,扩大配电控制的范围,提高配电控制的效率。
本地网关输出控制命令后,在步骤S953中,配电控制装置100以短距无线通信方式接收来自本地网关300的控制命令并根据所接收的控制命令控制配电装置200中的触点处于打开状态或闭合状态。
通过上述无线配电控制方法,用户可以通过在用户模块中输入相应控制命令来实现远程的无线配电控制,且由于该方法采用无线的通信方式进行数据命令交互,无需再连接额外的信号线及通信线,简化了无线配电控制系统的设计。
在一些实施例中,如前所述,配电控制装置100以短距无线通信方式接收来自本地网关300的控制命令并根据所接收的控制命令控制配电装置200中的触点处于打开状态或闭合状态包括:配电控制装置100以短距无线通信方式接收控制命令并根据所接收的控制命令产生控制信号,并且所述配电控制装置100根据所述控制信号控制配电装置200中的触点处于打开状态或闭合状态。
通过上述无线配电控制方法,可以良好实现无线配电控制,且由于无需再连接额外的信号线及通信线,也无需再设置通信线路及内部电源线路间的安全隔离电路,简化了配电控制装置的电路设计,减小了配电控制装 置的体积和制造成本,降低了电磁干扰。
在一些实施例中,所述方法还包括:所述配电控制装置100获取配电装置200的状态信息,并且所述配电控制装置100以短距无线通信方式将所述状态信息发送至本地网关300。
通过检测电路获得配电装置状态信息并将其发送至本地网关的过程,使得配电控制装置可以实现对于配电装置的状态的实时监测,并且进一步地可向外输出检测到的状态信息,有利于实现可靠的配电控制。
图8示出了本公开实施例本地网关300对状态信息的处理过程960的流程图。
如图8所示,在一些实施例中,在本地网关对状态信息处理时,首先,在步骤S961中,本地网关300判断接收到的配电装置200的状态信息与来自用户模块400的当前控制命令的预期状态是否一致,若配电装置200的状态与当前控制命令的预期状态一致,则在步骤S962中,本地网关300发送配电装置的状态信息。若配电装置200的状态与当前控制命令的预期状态不一致,则在步骤S963中,本地网关300发送报警信息。
例如,当检测电路连接至配电装置200的触点以检测触点状态,在当前控制命令为供电命令时,若本地网关300接收到的状态信息为触点闭合,则其判断所接收的状态信息与当前控制命令一致,其将向用户模块发送该触点闭合的状态信息;若本地网关300接收到的状态信息为触点开启,则其判断所接收的状态信息与当前控制命令不一致,其将向用户模块发送报警信息。
在一些实施例中,所述用户模块400与本地网关300之间还设置有云网关500,当配电装置200的状态与当前控制命令的预期状态一致时,云网关从本地网关300接收该状态信息并将其发送至用户模块,此时将同步更新云网关及用户模块中的状态信息。在配电装置200的状态与当前控制命令的预期状态不一致时,云网关从本地网关300接收报警信息并向用户模块发送所述警报信息。
在一些实施例中,所述用户模块400和云网关500之间还设置有云服务器600,则当配电装置200的状态与当前控制命令的预期状态一致时,云网关从本地网关300接收状态信息并将其发送至云服务器,云服务器进一步将该状态信息发送至用户模块,此时将同步更新云网关、云服务器及用户 模块中的触点状态信息。在配电装置200的状态与当前控制命令的预期状态不一致时,云网关从本地网关300接收报警信息并将其发送至云服务器,云服务器向用户模块发送所述警报信息。
通过本地网关对状态信息的处理过程,使得无线配电控制系统内部形成为闭环,可将当前配电装置的状态实时反馈给用户,并可基于配电装置的状态及时调整发送至配电控制装置的控制命令,增强系统的可靠性及鲁棒性。
图9A示出了根据本公开实施例的无线配电控制系统800A的示意图。
参照图9A,所述无线配电控制系统800A包括:用户模块400、本地网关300及配电控制装置100。
所述用户模块400被配置为接收用户输入的控制命令并输出所述控制命令。
用户模块输出控制命令例如可以通过有线方式,例如通过以太网(Ethernet)实现,也可以通过无线方式,例如通过移动通信系统,如第三代移动通信系统(3G)或第四代移动通信系统(4G)实现,或者通过通用分组无线服务技术(GPRS)实现。本公开的实施例不受所选取的具体的通信方式的限制。
所述本地网关300被配置为接收来自用户模块400的控制命令并将所述控制命令以短距无线通信方式输出。
本地网关接收控制命令例如可以通过有线方式,例如通过以太网(Ethernet)实现,也可以通过无线方式,例如通过移动通信系统,如第三代移动通信系统(3G)或第四代移动通信系统(4G)实现,或者通过通用分组无线服务技术(GPRS)实现。本公开的实施例不受所选取的具体的通信方式的限制。
所述配电控制装置100被配置为以短距无线通信方式接收来自本地网关300的控制命令并根据所接收的控制命令控制配电装置200中的触点处于打开状态或闭合状态。
在一些实施例中,所述配电控制装置100连接有配电装置200,所述配电装置200具有触点,所述配电控制装置100包括短距无线通信模块120和控制模块110。其中短距无线通信模块120以短距无线通信方式接收控制命令,并根据所接收的控制命令产生并输出控制信号;控制模块110与 短距无线通信模块120和配电装置200连接,从短距无线通信模块120接收控制信号,并根据所接收的控制信号控制所述配电装置200中的触点处于打开状态或闭合状态。
通过设置无线配电控制系统,用户可以通过在用户模块中输入相应控制命令来实现远程的无线配电控制,且由于采用无线的通信方式进行数据指令交互,无需再连接额外的信号线及通信线,简化了无线配电控制系统的设计,减小了配电控制装置的体积和制造成本,降低了电磁干扰。
图9B示出了根据本公开实施例的无线配电控制系统800B的示意图。
如图9B所示,在一些实施例中,在前述无线配电控制系统800A的基础上,所述用户模块400与本地网关300之间还设置有云网关500,所述云网关500被配置为接收来自用户模块400的控制命令并将所述控制命令发送至本地网关300。
通过设置云网关,所述云网关可以与多个本地网关进行通信,从而可以进一步扩大单个用户模块中控制命令所控制的配电控制装置的个数,扩大配电控制的范围,提高配电控制的效率。
图9C示出了根据本公开实施例的无线配电控制系统800C的示意图。
如图9C所示,在一些实施例中,在前述无线配电控制系统800B的基础上,所述用户模块400和云网关500之间还设置有云服务器600,所述云服务器600接收来自用户模块400的控制命令并将所述控制命令发送至云网关300。
通过设置云服务器,所述云服务器可以与多个云网关进行通信,从而可以进一步扩大单个用户模块中输入的控制命令所控制的配电控制装置的个数,扩大配电控制的范围,提高配电控制的效率。
在一些实施例中,所述控制模块110还包括检测电路114,用于获取配电装置200的状态信息,所述控制模块110将所述状态信息发送至短距无线通信模块120,短距无线通信模块120将所述状态信息以短距无线通信方式发送至本地网关300。
通过在控制模块中设置检测电路,使得配电控制装置100可以实现对于配电装置200的状态的实时监测,并且进一步地可向外输出检测到的状态信息,有利于提高无线配电控制系统配电控制的可靠性。
在一些实施例中,所述本地网关300被配置为判断接收到的配电装置 200的状态信息与来自用户模块400的当前控制命令的预期状态是否一致。其中,在配电装置200的状态与当前控制命令的预期状态一致时,本地网关300发送配电装置的状态信息。在配电装置200的状态与当前控制命令的预期状态不一致时,本地网关300发送报警信息。
例如,当检测电路连接至配电装置200的触点以检测触点状态,在当前控制命令为供电命令时,若本地网关300接收到的状态信息为触点闭合,则其判断所接收的状态信息与当前控制命令一致,其将发送该触点闭合的状态信息;若本地网关300接收到的状态信息为触点开启,则其判断所接收的状态信息与当前控制命令不一致,其将发送报警信息。
图10A、10B、10C分别示出了根据本公开实施例的无线配电控制系统的变体900A、900B、900C的示意图。
如图10A所示,在配电装置200的状态与当前控制命令的预期状态一致时,本地网关300向用户模块发送配电装置的状态信息,更新用户模块中的触点状态信息。在配电装置200的状态与当前控制命令的预期状态不一致时,本地网关300向用户模块发送报警信息。
如图10B所示,在存在云网关500的情况下,当配电装置200的状态与当前控制命令的预期状态一致时,云网关从本地网关300接收该状态信息并将其发送至用户模块,此时将同步更新云网关及用户模块中的状态信息。在配电装置200的状态与当前控制命令的预期状态不一致时,云网关从本地网关300接收报警信息并向用户模块发送所述警报信息。
如图10C所示,在存在云网关500和云服务器600的情况下,当配电装置200的状态与当前控制命令的预期状态一致时,云网关从本地网关300接收该状态信息并将其发送至云服务器,云服务器进一步将该状态信息发送至用户模块,此时将同步更新云网关、云服务器及用户模块中的触点状态信息。在配电装置200的状态与当前控制命令的预期状态不一致时,云网关从本地网关300接收报警信息并将其发送至云服务器,云服务器向用户模块发送所述警报信息。
通过设置本地网关判断接收到的配电装置的状态信息与来自用户模块的当前控制命令的预期状态是否一致并将判断结果发送,使得无线配电控制系统内部形成为闭环,可将当前配电装置的状态实时反馈给用户,并可基于配电装置200的状态及时调整发送至配电控制装置的控制命令,增 强系统的可靠性及鲁棒性。
本申请使用了特定词语来描述本申请的实施例。如“第一/第二实施例”、“一实施例”、和/或“一些实施例”意指与本申请至少一个实施例相关的某一特征、结构或特点。因此,应强调并注意的是,本说明书中在不同位置两次或多次提及的“一实施例”或“一个实施例”或“一替代性实施例”并不一定是指同一实施例。此外,本申请的一个或多个实施例中的某些特征、结构或特点可以进行适当的组合。
除非另有定义,这里使用的所有术语(包括技术和科学术语)具有与本公开所属领域的普通技术人员共同理解的相同含义。还应当理解,诸如在通常字典里定义的那些术语应当被解释为具有与它们在相关技术的上下文中的含义相一致的含义,而不应用理想化或极度形式化的意义来解释,除非这里明确地这样定义。
上面是对本公开的说明,而不应被认为是对其的限制。尽管描述了本公开的若干示例性实施例,但本领域技术人员将容易地理解,在不背离本公开的新颖教学和优点的前提下可以对示例性实施例进行许多修改。因此,所有这些修改都意图包含在权利要求书所限定的本公开范围内。应当理解,上面是对本公开的说明,而不应被认为是限于所公开的特定实施例,并且对所公开的实施例以及其他实施例的修改意图包含在所附权利要求书的范围内。本公开由权利要求书及其等效物限定。

Claims (14)

  1. 一种配电控制装置(100),所述配电控制装置(100)连接有配电装置(200),所述配电装置(200)具有触点,所述配电控制装置(100)包括:
    短距无线通信模块(120),其以短距无线通信方式接收控制命令,并根据所接收的控制命令产生并输出控制信号;
    控制模块(110),其与短距无线通信模块(120)和配电装置(200)连接,从短距无线通信模块(120)接收控制信号,并根据所接收的控制信号控制所述配电装置(200)中的触点处于打开状态或闭合状态。
  2. 如权利要求1所述的配电控制装置(100),其中,所述控制模块(110)包括:
    微控制单元(111),其从短距无线通信模块(120)接收所述控制信号,并根据所接收的控制信号产生并输出状态控制信号;
    驱动电路(112),其从微控制单元(111)接收所述状态控制信号,并根据所接收的状态控制信号产生并输出驱动信号;
    输出电路(113),其从驱动电路(112)接收驱动信号并根据所接收的驱动信号生成配电控制信号,控制所述配电装置(200)的触点处于打开状态或闭合状态。
  3. 如权利要求1所述的配电控制装置(100),其中,所述控制模块(110)还包括检测电路(114),用于获取配电装置(200)的状态信息,所述控制模块(110)将所述状态信息发送至短距无线通信模块(120),短距无线通信模块(120)将所述状态信息以短距无线通信方式发送至本地网关(300)。
  4. 一种配电控制方法,包括:
    以短距无线通信方式接收控制命令并根据所述控制命令产生控制信号;
    根据所述控制信号控制配电装置(200)中的触点处于打开状态或闭合状态。
  5. 如权利要求4所述的配电控制方法,其中,根据所述控制信号控制配电装置(200)中的触点处于打开状态或闭合状态包括:
    根据所述控制信号产生状态控制信号;
    根据所述状态控制信号产生驱动信号;
    根据所述驱动信号产生配电控制信号以控制所述配电装置(200)的触点处于打开状态或闭合状态。
  6. 如权利要求4所述的配电控制方法,还包括:
    获取配电装置(200)的状态信息;
    以短距无线通信方式将所述状态信息发送至本地网关(300)。
  7. 一种无线配电控制系统(800),所述无线配电控制系统(800)包括:
    用户模块(400),其接收用户输入的控制命令并输出所述控制命令;
    本地网关(300),其接收来自用户模块(400)的控制命令并将所述控制命令以短距无线通信方式输出;
    配电控制装置(100)以短距无线通信方式接收来自本地网关(300)的控制命令并根据所接收的控制命令控制配电装置(200)中的触点处于打开状态或闭合状态。
  8. 如权利要求7所述的无线配电控制系统(800),所述配电控制装置(100)连接有配电装置(200),所述配电装置(200)具有触点,所述配电控制装置(100)包括:
    短距无线通信模块(120),其以短距无线通信方式接收控制命令,并根据所接收的控制命令产生并输出控制信号;
    控制模块(110),其与短距无线通信模块(120)和配电装置(200)连接,从短距无线通信模块(120)接收控制信号,并根据所接收的控制信号控制所述配电装置(200)中的触点处于打开状态或闭合状态。
  9. 如权利要求8所述的无线配电控制系统(800),所述控制模块(110)还包括检测电路(114),用于获取配电装置(200)的状态信息,所述控制模块(110)将所述状态信息发送至短距无线通信模块(120),短距无线通信模块(120)将所述状态信息以短距无线通信方式发送至本地网关(300)。
  10. 如权利要求9所述的无线配电控制系统(800),其中,所述本地网关(300)判断接收到的配电装置(200)的状态信息与来自用户模块(400)的当前控制命令的预期状态是否一致,
    在配电装置(200)的状态与当前控制命令的预期状态一致时,本地网关(300)发送配电装置的状态信息;
    在配电装置(200)的状态与当前控制命令的预期状态不一致时,本地网 关(300)发送报警信息。
  11. 一种无线配电控制方法,所述方法包括:
    用户模块(400)接收用户输入的控制命令并将所述控制命令输出;
    本地网关(300)接收来自用户模块(400)的控制命令并将所述控制命令以短距无线通信方式输出;
    配电控制装置(100)以短距无线通信方式接收来自本地网关(300)的控制命令并根据所接收的控制命令控制配电装置(200)中的触点处于打开状态或闭合状态。
  12. 如权利要求11所述的无线配电控制方法,其中,配电控制装置(100)以短距无线通信方式接收来自本地网关(300)的控制命令并根据所接收的控制命令控制配电装置(200)中的触点处于打开状态或闭合状态包括:
    配电控制装置(100)以短距无线通信方式接收控制命令并根据所述控制命令产生控制信号;
    根据所述控制信号控制配电装置(200)中的触点处于打开状态或闭合状态。
  13. 如权利要求11所述的无线配电控制方法,其中还包括:
    配电控制装置(100)获取配电装置(200)的状态信息;
    配电控制装置(100)以短距无线通信方式将所述状态信息发送至本地网关(300)。
  14. 如权利要求13所述的无线配电控制方法,其中,所述本地网关(300)判断接收到的配电装置(200)的状态信息与来自用户模块(400)的当前控制命令的预期状态是否一致,
    在配电装置(200)的状态与当前控制命令的预期状态一致时,本地网关(300)发送配电装置的状态信息;
    在配电装置(200)的状态与当前控制命令的预期状态不一致时,本地网关(300)发送报警信息。
PCT/CN2019/078715 2019-02-28 2019-03-19 配电控制装置、配电控制方法、无线配电控制系统及方法 Ceased WO2020172923A1 (zh)

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