Abstract:
As for a switching power source, by alternately turning on first and second MOS transistors (Q1, Q2), a resonance current flows to a primary winding (L1) of a transfonner (T), and an alternate current is transmitted to a secondary side (L2). With respect to an alternate signal generated in a secondary winding (L2), a gate voltage is applied so that third MOS transistor (Q3) and fourth MOS transistor (Q4) are conductive, respectively, while the polarity of the alternate signal is positive. Rectifying currents are flowed to a capacitor (Co) and a full-wave rectification is executed. Since a control signal for synchronous control is supplied from a signal source to control the first and second switching elements (Q1, Q2) via transformers (Ta, Tb), a switching timing can be accurately coincided with an on/off timing of a synchronous rectifying device by a simple circuit.
Abstract:
Provided is an electric storage system including: a plurality of electric storage devices including a plurality of modules, a battery management unit, and a line concentrator connected with the battery management unit; wherein the plurality of modules include a battery unit, a voltage measurement unit, a temperature measurement unit and a current measurement unit, and wherein the battery management unit is configured to control at least one of the plurality of electric storage devices based on an instruction transmitted from the line concentrator.
Abstract:
There is provided a power supply circuit including a first series regulator including a first semiconductor element and a first constant voltage source, and a second series regulator including a second semiconductor element and a second constant voltage source, wherein the first series regulator and the second series regulator are cascaded and an input voltage to the first series regulator is a high voltage equal to or greater than 500 V.
Abstract:
As for a switching power source, by alternately turning on first and second MOS transistors (Q1, Q2), a resonance current flows to a primary winding (L1) of a transfonner (T), and an alternate current is transmitted to a secondary side (L2). With respect to an alternate signal generated in a secondary winding (L2), a gate voltage is applied so that third MOS transistor (Q3) and fourth MOS transistor (Q4) are conductive, respectively, while the polarity of the alternate signal is positive. Rectifying currents are flowed to a capacitor (Co) and a full-wave rectification is executed. Since a control signal for synchronous control is supplied from a signal source to control the first and second switching elements (Q1, Q2) via transformers (Ta, Tb), a switching timing can be accurately coincided with an on/off timing of a synchronous rectifying device by a simple circuit.
Abstract:
A power storage device provided with: a plurality of serially-connected power storage units having at least one cell; cell balance units connected in parallel to each of the power storage units with a switch interposed therebetween; and a controller for charging the plurality of power storage units at a first constant current value, and, when the power storage unit having the highest voltage from amongst the plurality of power storage units reaches a first potential, performing a control so as to connect the power storage unit having the highest voltage with the cell balance unit corresponding to the highest voltage and switch the charging current to a second constant current value which is smaller than the first constant current value.
Abstract:
A power storage device provided with: a plurality of serially-connected power storage units having at least one cell; cell balance units connected in parallel to each of the power storage units with a switch interposed therebetween; and a controller for charging the plurality of power storage units at a first constant current value, and, when the power storage unit having the highest voltage from amongst the plurality of power storage units reaches a first potential, performing a control so as to connect the power storage unit having the highest voltage with the cell balance unit corresponding to the highest voltage and switch the charging current to a second constant current value which is smaller than the first constant current value.
Abstract:
There is provided a charging device including a charging voltage providing unit configured to provide a maximum charging voltage for an electricity storage unit, wherein the electricity storage unit includes a plurality of battery cells, and wherein the maximum charging voltage satisfies an equation (1) below: Maximum Charging Voltage = Total Battery Voltage + (Fully Charged Voltage - Maximum Cell Voltage)* n (1) wherein n represents a total number of the battery cells connected in series.
Abstract:
A power storage device includes: power storage units each including at least one battery, the power storage units being connected in series; cell balance units connected in parallel to the respective power storage units via switches; and a control unit that performs control to charge the power storage units with a first constant current value, and, when the power storage unit having the highest voltage among the power storage units reaches a first potential, connect the corresponding one of the cell balance units to the power storage unit having the highest voltage, and switch the charging current to a second constant current value that is smaller than the first constant current value.
Abstract:
Provided is a power storage apparatus, including: series circuits, the series circuits being formed of first coils and first switching elements, the first coils and the first switching elements being connected to a plurality of battery units in parallel; second coils electromagnetically coupled to the first coils; second switching elements connected to the second coils in series; a capacitor inserted between two common power source lines for commonly supplying voltage to both ends of the series circuits of the second coils and the second switching element related to the plurality of battery units; and a control unit that supplies a control pulse signal to the first switching element and the second switching element for equalizing voltage of each of the plurality of battery units, in which an amount of charge obtained by dividing an amount of transferred charge necessary for eliminating a voltage difference between the first battery unit and the second battery unit into 10 or more is transferred by switching operations of the first and second switching elements.
Abstract:
There is provided a power supply circuit including a first series regulator including a first semiconductor element and a first constant voltage source, and a second series regulator including a second semiconductor element and a second constant voltage source, wherein the first series regulator and the second series regulator are cascaded and an input voltage to the first series regulator is a high voltage equal to or greater than 500 V.