H02J13/00022

POWER USAGE PATTERN COLLECTOR AND CHARGING CONTROLLER
20200373775 · 2020-11-26 ·

Present invention concerns charging of a power source of a device. A power usage pattern collector is configured to: collect data on power usage in a device, power source of which is chargeable, with regard to at least one particular criterion having influence on power usage in the device; and determine at least one power usage pattern by use of the collected data, said power usage pattern specifying power usage in the device with regard to at least one particular reoccurring criterion. A charging controller is configured to: acquire at least one power usage pattern; and control charging of a power source of a device by use of the at least one acquired power usage pattern. Present invention relates also to corresponding methods, correspondingly arranged computer program products, correspondingly arranged computer-readable recording media, and a system comprising the power usage pattern collector and the charging controller.

PHOTOVOLTAIC POWER OPTIMIZATION SYSTEM
20200373761 · 2020-11-26 ·

The disclosure discloses a photovoltaic power optimization system, comprising: a plurality of photovoltaic panels; a photovoltaic optimizing module array comprising a plurality of photovoltaic optimizing modules connected in series, each of the photovoltaic optimizing modules being electrically connected to at least one of the photovoltaic panels; an inverter electrically connected to an output terminals of the photovoltaic optimizing module array for converting a DC power into an AC power; and a data center unit communicates wirelessly with at least one of the photovoltaic optimizing modules, and also communicates with the inverter via power line.

INTELLIGENT CIRCUIT BREAKERS WITH AIR-GAP AND SOLID-STATE SWITCHES

A circuit breaker comprises a solid-state switch, an air-gap electromagnetic switch, switch control circuitry, a zero-crossing detection circuit, and a current sensor. The solid-state and air-gap switches are connected in series in an electrical path between line input and load output terminals of the circuit breaker. The switch control circuitry controls the solid-state and air-gap switches. The zero-crossing detection circuit detects zero crossings of an AC power waveform on the electrical path. The current sensor senses current flow in the electrical path to detect a fault condition based on the sensed current flow. In response to a detected fault condition, the switch control circuitry generates control signals to place the solid-state switch into a switched-off state and place the air-gap switch into a switched-open state after the solid-state switch is placed into the switched-off state. The switch control circuitry utilizes zero-crossing detection signals output from the zero-crossing detection circuit to determine when to place the air-gap switch into the switched-open state.

INTELLIGENT CIRCUIT BREAKERS WITH SOLID-STATE BIDIRECTIONAL SWITCHES

A circuit breaker comprises a solid-state bidirectional switch, a switch control circuit, current and voltage sensors, and a processor. The solid-state bidirectional switch is connected between a line input terminal and a load output terminal of the circuit breaker, and configured to be placed in a switched-on state and a switched-off state. The switch control circuit control operation of the bidirectional switch. The current sensor is configured to sense a magnitude of current flowing in an electrical path between the line input and load output terminals and generate a current sense signal. The voltage sensor is configured to sense a magnitude of voltage on the electrical path and generate a voltage sense signal. The processor is configured to process the current and voltage sense signals to determine operational status information of the circuit breaker, a fault event, and power usage information of a load connected to the load output terminal.

INTELLIGENT CIRCUIT BREAKERS WITH VISUAL INDICATORS TO PROVIDE OPERATIONAL STATUS

A circuit breaker includes a circuit breaker housing, an air-gap switch disposed within the housing, and a first visual indicator configured to provide an indication of an open state and a closed state of the air-gap switch. The first visual indicator includes a first window that is formed as part of the circuit breaker housing, and first and second indicator elements disposed within the circuit breaker housing. The first indicator element is configured to move into position behind the first window as the air-gap switch is placed into the open state and thereby provide a visual indication of the open state of the air-gap switch. The second indicator element is configured to move into position behind the first window as the air-gap switch is placed into the closed state and thereby provide a visual indication of the closed state of the air-gap switch.

INTELLIGENT CIRCUIT BREAKERS

A circuit breaker includes an electromechanical switch, a current sensor, a voltage sensor, and a processor. The electromechanical switch is serially connected between a line input terminal and a load output terminal of the circuit breaker, and configured to be placed in a switched-closed state or a switched-open state. The current sensor is configured to sense a magnitude of current flowing in a path between the line input and load output terminals and generate a current sense signal. The voltage sensor is configured to sense a magnitude of voltage at a point on the path between the line input and load output terminals and generate a voltage sense signal. The processor is configured to receive and process the current sense signal and the voltage sense signal to determine operational status information of the circuit breaker and determine power usage information of a load connected to the load output terminal.

INTELLIGENT CIRCUIT BREAKERS WITH DETECTION CIRCUITRY CONFIGURED TO DETECT FAULT CONDITIONS

A circuit breaker includes a solid-state switch, a sense resistor, a current detection circuit, and a switch control circuit. The solid-state switch and sense resistor are connected in series in an electrical path between a line input terminal and a load output terminal of the circuit breaker. The current detection circuit is configured to (i) sample a sense voltage that is generated across the sense resistor in response to load current flowing through the sense resistor, (ii) detect an over-current fault condition based on the sampled sense voltage, and (iii) output a fault detection signal in response to detecting the over-current fault condition. The switch control circuit is configured to control the solid-state switch, wherein the switch control circuit is configured to switch-off the solid-state switch in response to the fault detection signal output from the current detection circuit.

Method and apparatus for providing energy device and system status
10838447 · 2020-11-17 · ·

A method and apparatus is described for providing energy system status information. A status indication device may be mounted near an entry door for determining when an individual is about to leave an area. When the status indication device determines that an individual is about to leave an area, it displays an energy status to the individual, so that the individual can decide whether to place energy-consuming devices in a conservation mode of operation.

Parking lot bumper inductive charger with automatic payment processing
10836269 · 2020-11-17 ·

A charging station for an electric vehicle, including payment processing over a communications network, is disclosed. The charging station includes a housing having an elongated shape emulating a parking bumper, including an elongated planar element disposed at an acute angle to a floor and designed to provide a barrier to wheels of the electric vehicle, an inductive charging element, a sensor for detecting a location of the electric vehicle in relation to the planar element of the charging station, a radio frequency receiver for receiving a signal including a unique identifier associated with the electric vehicle, a network interface controller configured for transmitting the unique identifier to a server and for receiving confirmation of payment for inductive charging provided to the electric vehicle and a processor configured for activating the inductive charging element to provide inductive charging to the electric vehicle responsive to receiving the confirmation of payment.

Management method, management device, distributed power supply, and management system
10840709 · 2020-11-17 · ·

A management method comprises: a step A of transmitting, from a management device to a distributed power supply which operates in a first state in which a reverse power flow from a facility to a power grid is not permitted, a permission message permitting to operate in a second state in which the reverse power flow is permitted; a step B of switching by the distributed power supply, the operation of the first state to the operation of the second state after receiving the permission message; and a step C of switching by the distributed power supply, the operation of the second state to the operation of the first state, even when switching from the operation of the second state to the operation of the first state is not instructed, if a predetermined condition is satisfied.