Patent classifications
H02J7/00306
MANAGEMENT DEVICE FOR SECONDARY BATTERY, AND METHOD OF MANAGING SECONDARY BATTERY
A management device manages a secondary battery which includes a positive electrode having an active material with a characteristic where a potential flat portion exists in a relationship between a capacity and a potential. The management device includes a management unit which detects an occurrence of temporary degradation of the secondary battery when an SOC correlation associated value which is associated with an SOC of the secondary battery is acquired and the SOC which corresponds to the acquired SOC correlation associated value is equal to or less than a preset prescribed SOC or when a state value relating to a voltage of the secondary battery is acquired and a magnitude relationship between the acquired state value relating to the voltage of the secondary battery and a preset threshold value satisfies a predetermined condition.
PROTECTIVE CIRCUIT
A protective circuit (1A) is provided with: a protective element (10A): a plurality or secondary battery cells (20), (20), . . . ; an external positive electrode terminal (30a) and an external negative electrode terminal (30b); an auxiliary power supply (40); a first controlling dev ice (50): and a switch (60). The protective element (10A) includes: a first fusible conductor (15) of which the two ends are connected to a first terminal (11) and a second terminal (12): and a heat generating body (16) disposed in a first energizing path (P1.sub.A) between a third terminal (13) and a fourth terminal (14). The auxiliary power supply (40) is provided electrically independently of the plurality of secondary battery cells (20), (20), . . . . In this protective circuit (1A), a signal from the first controlling device (50) causes the switch (60) to switch in such a way as to conduct electricity, thus causing the heat generating body (16) of the protective element (10A) to generate heat which fuses the first fusible conductor (15), thereby isolating the plurality of secondary battery cells (20), (20), . . . from the external negative electrode terminal (30b).
BATTERY PROTECTION CIRCUIT AND PROTECTION METHOD THEREOF
The present invention relates to a battery protection circuit and a method for protecting the battery protection circuit in which instead of connecting the charge/discharge FET on the current path between the battery and the external system, when an abnormal condition occurs in the battery, the 0V voltage of the battery cell is transmitted to the external system through the disconnection of the voltage sensing line to cut off the abnormal current of the battery in the external system.
Battery protection device and method for DC power supply
Disclosed are a battery protection device and method for DC power supply. The device comprises: a first branch circuit unit and a second branch circuit unit; a monitoring unit is connected with a DC power supply, the first branch circuit unit and the second charge circuit unit respectively; the first branch circuit unit and the second branch circuit unit are connected in parallel, with one end connected to the DC power source and the other end connected to the load units in series via a battery unit; when the monitoring unit detects that the DC power supply supplies power normally, it controls the first branch circuit unit to conduct, the DC power supply supplies power to the load units; when the monitoring unit detects that the DC power supply supplies power abnormally, it controls the second branch circuit unit to conduct, the battery unit supplies power to the load units.
Power supply system
An operation mode selection unit selects an efficiency priority mode for minimizing the overall loss in a power supply system based on a load request voltage obtained in accordance with the condition of a load and on the conditions of DC power supplies, and generates a mode selection signal in accordance with the selection result. When SOC and/or output power have/has reached power supply restriction values in any DC power supply, an operation mode modification unit generates a final mode selection instructing signal so as to modify selection of the efficiency priority mode by the mode selection signal to select an operation mode in which power distribution between the DC power supplies can be controlled.
Electrical storage system for vehicle
An electrical storage system includes a main battery, an auxiliary battery, a bidirectional DC-DC converter and a controller. The bidirectional DC-DC converter is provided between the auxiliary battery and a power supply path from the main battery to a driving motor. The bidirectional DC-DC converter steps down an output voltage from the power supply path to the auxiliary battery, and steps up an output voltage from the auxiliary battery to the power supply path. The controller controls charging and discharging of the auxiliary battery. The controller, when an allowable output power of the main battery decreases and an electric power becomes insufficient for a required vehicle output, supplies an electric power to the power supply path by discharging the auxiliary battery by using the bidirectional DC-DC converter. The controller, when an allowable input power of the main battery decreases and a regenerated electric power generated by the driving motor is not entirely charged into the main battery, charges part of the regenerated electric power into the auxiliary battery by using the bidirectional DC-DC converter.
Motor driven appliance
A motor driven appliance comprises a battery, a motor, at least one switch, a control unit, an abnormality detection unit, a determination unit, and a processing unit. The at least one switch comprises an operation switch. The control unit controls driving of the motor by controlling power supply from the battery to the motor when the operation switch is turned on. The abnormality detection unit detects abnormality of the appliance. The determination unit determines whether the detected abnormality is a first type abnormality that can be cleared when the operation switch is switched from on to off, or is a second type abnormality that cannot be cleared even if the operation switch is merely switched from on to off. The processing unit is configured to perform a specific process when it is determined that the detected abnormality is the second type abnormality.
Device and method for charging a battery discharged beyond at least one operating threshold
Example implementations include obtaining charging power from a power source, obtaining a charging command, activating a trickle current to a battery, entering a first charging state in response to a condition that a voltage of the battery does not satisfy a deep discharge threshold, and entering a second charging state in response to a condition that a voltage of the battery satisfies a deep discharge threshold. Example implementations can further include supplying the trickle current in a burst to the battery in response to a condition that the voltage of the battery does not satisfy a fuel gauge threshold, upon entering the second charging state. Example implementations can further include supplying the trickle current continuously to the battery in response to a condition that the voltage of the battery satisfies the fuel gauge threshold, upon entering the second charging state.
POWER CONVERSION SYSTEM
When a plurality of storage batteries is used by connecting them in parallel, since the progress of degradation differs among the storage batteries, a power conversion system includes a degradation information acquisition device for acquiring the degradation information of the storage batteries; a temperature information acquisition device for detecting the temperature information of the storage batteries, and a control device for controlling the storage battery power converter based on the degradation information of the storage batteries by the degradation information acquisition device and the temperature information of the storage batteries by the temperature information acquisition device so that the degradation states of the plurality of the storage batteries can be matched.
NOVEL INTELLIGENT REMOTE CONTROLLABLE BATTERY SYSTEM
The disclosure relates to a novel intelligent remote controllable battery system, comprising a wireless signal reception/transmission module, a charging-discharging control module, a battery and a voltage input/output port, wherein the wireless signal reception/transmission module is electrically connected to the charging-discharging control module, wherein the battery, the charging-discharging control module and the voltage input/output port are electrically connected in sequence; wherein the wireless signal reception/transmission module is configured to receive a wireless control signal from an external remote control device, wherein the charging-discharging control module is configured to convert an output voltage of the battery to a voltage with specific specification based on the wireless control signal and output the voltage with specific specification to an external electric equipment through the voltage input/output port, and is further configured to convert an input voltage from an external power supply through the voltage input/output port to a specification-predetermined voltage for charging the battery.