Patent classifications
H02H7/00
INTELLIGENT WINDOW SYSTEM AND IN-VEHICLE SYSTEM
The disclosure provides an intelligent window system and an in-vehicle system, and relates to the technical field of window display. The intelligent window system of the disclosure includes: a plurality of dimming glasses and a central processer. The plurality of dimming glasses are communicatively coupled to the central processor and configured to adjust light transmittance according to a dimming instruction sent by the central processor.
POWER SUPPLY CONTROL DEVICE, TEST METHOD, AND COMPUTER PROGRAM
A power supply control device controls a supply of power by switching a FET on or off. A current that rises when a current flowing through the FET rises flows through a resistor circuit. A drive circuit makes a notification when a voltage across both ends of the resistor circuit reaches a voltage greater than or equal to a reference voltage. A microcomputer instructs an application circuit to apply a voltage to the resistor circuit. As a result, the application circuit applies a voltage greater than or equal to the reference voltage to the resistor circuit. After instructing the application circuit to stop applying the voltage to the resistor circuit, the microcomputer determines whether or not the drive circuit is making the notification.
Axial gap generator measurement tool
A tool includes a device including a housing and a rotor, the rotor to rotate about a longitudinal axis, and an axial gap generator including a stator assembly positioned adjacent to the rotor. The axial gap generator generates a voltage signal as a function of a gap spacing between the stator assembly and the rotor, the gap spacing being parallel to the longitudinal axis.
Overcurrent protection method, overcurrent protection circuit, and display device
This application discloses an overcurrent protection method, an overcurrent protection circuit, and a display device. The overcurrent protection method includes: setting an overcurrent protection value as an overcurrent protection threshold of a current clock signal branch; enabling the overcurrent protection threshold, and controlling to turn off a level shifting circuit; detecting a real-time current of a current clock signal branch in a first substrate row driving circuit; and comparing the real-time current with the overcurrent protection threshold, and when the real-time current is greater than or equal to the overcurrent protection threshold, cutting off a power supply of the current clock signal branch in the first substrate row driving circuit, and enabling overcurrent protection.
Over-voltage protection method and device cross-references to related application
Embodiments of the present disclosure provide an over-voltage protection method, an over-voltage protection device and a display device. When the voltage value of the output signal is greater than the first preset voltage threshold, it is determined whether the voltage value of the output signal meets the preset over-voltage protection condition. If the voltage value of the output signal is detected to meet the preset over-voltage protection condition, the first control signal is output to stop output of the output signal or lower the voltage value of the output signal.
SUPERCONDUCTING MAGNET SYSTEM AND QUENCH PROTECTION CIRCUIT THEREOF
The disclosure discloses a superconducting magnet system and a quench protection circuit thereof. The quench protection circuit includes: a superconducting unit, a first diode integrated element, a second diode integrated element, a third diode integrated element, a low-temperature superconducting switch, a thermal shield and a vacuum vessel. The superconducting unit is composed of M superconducting coils connected in series. The low-temperature superconducting switch is connected to the first superconducting coil and the M-th superconducting coil. The first diode integrated element is connected in parallel with the low-temperature superconducting switch; the thermal shield and the second diode integrated element are connected in series and then connected in parallel at both ends of any symmetrical coil subsets in the superconducting unit. The vacuum vessel and the third diode integrated element are connected in series and then connected in parallel at both ends of any symmetrical coil subset of the superconducting unit.
OVERVOLTAGE PROTECTION OF ACCELERATOR COMPONENTS
An over-voltage protection system for an accelerator can include: a plurality of DC power supplies configured to provide a plurality of voltage levels up to a desired voltage level; and an acceleration tube electrically connected to the plurality of DC power supplies and configured to accelerate a charged particle. The acceleration tube can include a plurality of stages. Each stage can include a plurality of electrodes and a plurality of varistors configured to discharge energy in response to an overvoltage event. One electrode of the plurality of electrodes can be electrically coupled to a voltage level of the plurality of voltage levels. The plurality of electrodes and the plurality of varistors can be electrically coupled to each other and arranged in an alternating fashion.
POWER CONVERSION CIRCUIT WITH INDICATOR COUPLED TO INPUT TERMINAL TO SIGNAL CONDITION OF THE CONTROLLER
A power conversion circuit has a controller with an input terminal and a circuit configured to drive an electric current out of the input terminal in response to a condition of the controller. An indicator is coupled to the input terminal of the controller. The controller includes a clock signal controlling the electric current out of the input terminal. The input terminal is a voltage sensing terminal or feedback input terminal in some embodiments.
Semiconductor device including a control circuit
A semiconductor device includes a semiconductor portion with a main FET and a control circuit. The main FET includes a gate electrode to control a current flow through a body zone between a source zone and a drift zone. The control circuit receives a local drift zone potential of the main FET cell and outputs an output signal indicating when the local drift zone potential exceeds a preset threshold. The control circuit may turn down or switch off the main FET and/or may output an overcurrent indication signal when the local drift zone potential exceeds the preset threshold.
Semiconductor device including a control circuit
A semiconductor device includes a semiconductor portion with a main FET and a control circuit. The main FET includes a gate electrode to control a current flow through a body zone between a source zone and a drift zone. The control circuit receives a local drift zone potential of the main FET cell and outputs an output signal indicating when the local drift zone potential exceeds a preset threshold. The control circuit may turn down or switch off the main FET and/or may output an overcurrent indication signal when the local drift zone potential exceeds the preset threshold.