Patent classifications
B60L53/16
Method for operating an electric vehicle and control device for an electric vehicle
A method for operating an electric vehicle, in which an automatic unlocking function for a vehicle-side charging interface is activated if it is established on the basis of an ascertained position of the electric vehicle that the electric vehicle is arranged at a public charging column. The activated automatic unlocking function effectuates automatic unlocking of the charging interface as soon as a charging procedure of the electric vehicle is ended and thus a charging cable connected to the vehicle-side charging inter-face is released. The invention furthermore relates to a control device for an electric vehicle.
Method for Increasing Safety During Charging of a Vehicle Battery
A computer-implemented method for increasing safety during charging of a vehicle battery of a vehicle by a charging station, the method comprising the steps of calculating a forecast value for a maximum safe charging current by the controller of the vehicle based on sensor data generated by sensors of the vehicle and adjusting the charging current provided by the charging station in response to the forecast value of a maximum safe charging current.
SOLAR TENT FOR MEDICAL USES IN THE FIELD
The solar tent comprises a canopy tent with integrated solar panels into the roof of a medical tent design. This technology allows the tent to capture solar energy, and convert it into electrical energy which can then be used to power lights, medical devices, and other equipment. This technology is foldable and collapsible to allow the tent to be both deployed and stored rapidly. The solar tent helps medical professionals overcome the challenges of lack of sufficient electricity while operating from a canopy tent, in the face of COVID-19.
System and method for recharging an electric vehicle
In an aspect, a system for recharging an electric vehicle. A system includes an electric vehicle. An electric vehicle includes at least a propulsor. An electric vehicle includes a recharging connector electrically connected to a power source. An electric vehicle includes a power storage unit. A power storage unit is configured to store power. An electric vehicle includes a power supply circuit. A power supply circuit is in electric communication with a power storage unit and recharging connector. A power supply circuit includes a buck-boost regulator. A buck-boost regulator includes at least an inductor. A buck-boost regulator includes a switching device to supply intermittent current to at least an inductor. At least one of at least an inductor and a switching device is a component of at least a propulsor motor.
System and method for recharging an electric vehicle
In an aspect, a system for recharging an electric vehicle. A system includes an electric vehicle. An electric vehicle includes at least a propulsor. An electric vehicle includes a recharging connector electrically connected to a power source. An electric vehicle includes a power storage unit. A power storage unit is configured to store power. An electric vehicle includes a power supply circuit. A power supply circuit is in electric communication with a power storage unit and recharging connector. A power supply circuit includes a buck-boost regulator. A buck-boost regulator includes at least an inductor. A buck-boost regulator includes a switching device to supply intermittent current to at least an inductor. At least one of at least an inductor and a switching device is a component of at least a propulsor motor.
Hinged flap cover with angled seal for electric vehicle charging inlet
A charging inlet for an electric vehicle (EV) includes a body defining an opening having a conductive terminal arranged therein. A sealing cover is pivotally attached to the body and is moveable between an open position exposing the opening and conductive terminal, and a closed position sealing the opening and the conductive terminal with respect to an external environment. A sealing element of the cover defines a sealing plug including an angled sealing rib defined about an outer periphery thereof. The sealing plug and sealing rib are configured to engage with the opening of inlet body for sealing the opening with the cover in the closed position.
Hinged flap cover with angled seal for electric vehicle charging inlet
A charging inlet for an electric vehicle (EV) includes a body defining an opening having a conductive terminal arranged therein. A sealing cover is pivotally attached to the body and is moveable between an open position exposing the opening and conductive terminal, and a closed position sealing the opening and the conductive terminal with respect to an external environment. A sealing element of the cover defines a sealing plug including an angled sealing rib defined about an outer periphery thereof. The sealing plug and sealing rib are configured to engage with the opening of inlet body for sealing the opening with the cover in the closed position.
CHARGING STATION AND METHOD FOR AUTOMATICALLY CHARGING AN ELECTRICAL ENERGY STORAGE MEANS IN A VEHICLE
The invention relates to a device and a method for automatically charging an electrical energy storage means in a vehicle. For this purpose, firstly, the position of a charging socket on a vehicle is determined, based on vehicle-specific data. Subsequently, a charging robot travels on the ground near to the charging socket. Then, the charging robot establishes a galvanic connection between the charging station and charging socket. For this purpose, the charging robot introduces a contact head connected to the charging station into the charging socket of the vehicle. After termination of the charging process, the contact head is removed from the charging socket, thereby releasing the vehicle.
IN-CABLE CONTROL BOX MOUNTED ON ELECTRIC VEHICLE CHARGING CABLE AND METHOD FOR CHARGING ELECTRIC VEHICLE USING THE SAME
An in-cable control box (ICCB) mounted on an electric vehicle (EV) charging cable, which performs conductive charging for an EV as connected to a power outlet and an inlet of the EV, includes at least one processor, a first communication module, a second communication module, and a memory storing instructions executed by the at least one processor. Also, the instructions are configured to cause the first communication module to collect information on an EV by communicating with an electric vehicle communication controller (EVCC) of the EV; and cause the second communication module to transmit the information on the EV to a supply equipment communication controller (SECC). As such, it is possible to charge the EV in an economical manner as compared to a standard defining conductive charging process.
DISCHARGING CONTROL SYSTEM OF VEHICLE, DISCHARGING CONNECTOR, VEHICLE, AND DISCHARGING CONTROL METHOD OF VEHICLE
A discharging control system of a vehicle that supplies power to a load device outside the vehicle via a power cable, includes a connection signal line, a detector, and a controller. The connection signal line is configured such that a potential thereof changes in response to a discharging connector provided on the power cable being connected to the vehicle. The detector is configured to detect the potential of the connection signal line. The controller is configured to control a physical quantity related to the power supplied from the vehicle to the load device, based on the potential detected by the detector.