G01R19/0038

METHOD FOR MONITORING AN ON-BOARD POWER SUPPLY OF A MOTOR VEHICLE
20230366914 · 2023-11-16 ·

A method for monitoring an on-board power supply of a motor vehicle. A power distributor is provided, via which a supply voltage is supplied to a safety-relevant consumer and via which non-safety-relevant consumers are supplied. A disconnection of consumers takes place if at least one measure of the voltage applied at least to the safety-relevant consumer reaches a limit value. After disconnecting consumers, the measure of the voltage applied to the safety-relevant consumer is ascertained. The measure of the voltage applied to the respective safety-relevant consumer is respectively compared to a further limit value for a sufficient voltage. From the disconnected consumers, at least one consumer to be connected is selected, which is connected if the limit value is respectively reached at the safety-relevant consumers. The consumer to be connected is selected as a function of a connection measure such that the connection measure is not exceeded.

DETERMINATION OF DIAGNOSTIC PLAUSIBILITY OF PHASE CURRENT MEASUREMENTS
20230366968 · 2023-11-16 ·

A method of evaluating current sensor measurements of an electric machine system includes acquiring a first current signal corresponding to a first measurement of a first phase current of a three phase electric current supply to an electric machine, and acquiring a second current signal corresponding to a second measurement of a second phase current of the three phase electric current supply. The method also includes determining a machine velocity, shifting the first current signal by a signal processing component to generate a shifted first current signal having a shifted phase, the signal processing component including a tuning parameter that is a function of the machine velocity, calculating an amplitude difference between the shifted first current signal and the second current signal, and determining a plausibility of the first measurement and the second measurement based on the difference.

METHOD, DEVICE AND SYSTEM FOR MEASURING FREQUENCY DOMAIN CHARACTERISTICS, AND STORAGE MEDIUM
20230341447 · 2023-10-26 ·

A method for measuring frequency domain characteristics of a PDN having an output terminal connected to a power supply end of a functional circuit. The method includes: a to-be-measured output interface of the functional circuit is acquired; the to-be-measured output interface is controlled to output a first level signal having a first preset rule; remaining at least one output interface of the functional circuit, other than the to-be-measured output interface, is controlled to output a second level signal having a second preset rule according to a first frequency; changing voltage values corresponding to the first frequency and output by the to-be-measured output interface are acquired; and a characteristic impedance of the PDN at the first frequency is determined based on the changing voltage values corresponding to the first frequency.

TROUBLESHOOTING SYSTEM AND METHOD FOR CURRENT SENSORS
20230121422 · 2023-04-20 ·

The present disclosure provides a troubleshooting system for current sensors including a motor, three current sensors and a controller. The three current sensors respectively sense three phase currents of the three-phase current of the motor to obtain three current sensing values. The controller is configured to control the three-phase current of the motor. When the sum of the three current sensing values is greater than a threshold, the controller controls the three phase currents to be zero, and a first offset sensor and a current offset are obtained. When the sum of the three current sensing values equals the current offset, a second offset sensor is obtained. If the first offset sensor and the second offset sensor are the same current sensor, the controller outputs a warning signal, if the first offset sensor and the second offset sensor are different current sensors, the controller controls the motor to stop operating.

MOTOR INVERTER
20230117130 · 2023-04-20 ·

A motor inverter is provided. The motor inverter is coupled to an input power source and a motor and controls the mechanical switch to receive or turn off the input power source. The motor inverter includes primary and secondary auxiliary circuits, a microprocessor, a gate driver, and a motor drive circuit. The primary and secondary auxiliary circuits are coupled to the input power source and outputs first and second output voltages respectively. The microprocessor operates the driving switches of the motor drive circuit through the gate driver to switch the input power source for driving the motor. If the microprocessor determines that the first output voltage is abnormal and the motor rotational speed exceeds a safe speed limit, the microprocessor controls the driving switches to form an active short circuit for stopping the motor, and the microprocessor turns off the mechanical switch for protecting the input power source.

VOLTAGE TRACKING CIRCUIT
20230384353 · 2023-11-30 ·

A voltage tracking circuit includes delay line blocks, a phase detector delay line block, phase detection circuitry, and a controller. The controller determines a first voltage based on a quantity of active delay line blocks among the plurality of delay line blocks and determines a second voltage based on information received from the phase detection circuitry. The controller determines a measured value of a voltage provided by the voltage regulator voltage based on the first voltage and the second voltage.

Sensor Assembly Outputting a Condition of a Sensor

A sensor assembly includes a sensor generating a sensor signal, an output unit and a condition unit receiving the sensor signal output from the sensor, and a test line connected to the sensor and the condition unit. The output unit outputs a signal output representative of a state detected by the sensor. The condition unit outputs a condition output representative of a condition of the sensor. The test line is bidirectional and outputs the condition output.

SEMICONDUCTOR DEVICE
20230387678 · 2023-11-30 ·

According to one embodiment, a semiconductor device includes, a first terminal, a second terminal, a third terminal, a first circuit configured to output a first signal of a first level if a temperature satisfies a condition, and a second circuit configured, if the first circuit outputs the first signal of the first level, to provide electrical insulation between the second terminal and the third terminal, wherein the first circuit includes an element provided between a first interconnect and the first terminal, and the first circuit outputs the first signal of the first level regardless of the temperature if a first voltage is supplied to the first interconnect.

Smart electronic switch

A circuit includes a monitor circuit. The monitor circuit includes a nonlinear functional unit configured to receive a current sense signal and to generate a power signal representing the power of the current sense signal. The circuit further includes a first filter configured to receive the power signal and to generate a first filtered signal and a second filter configured to receive an input signal that depends on the current sense signal and to generate a second filtered signal. A comparator circuit is configured to receive the first filtered signal and the second filtered signal and to compare the first filtered signal with a first threshold value and the second filtered signal with a second threshold value. The protection signal is indicative of whether the first filtered signal exceeds the first threshold value or the second filtered signal exceeds the second threshold value.

DEMODULATION PHASE CALIBRATION USING EXTERNAL INPUT
20220326045 · 2022-10-13 ·

A MEMS device may output a signal during operation that may include an in-phase component and a quadrature component. An external signal having a phase that corresponds to the quadrature component may be applied to the MEMS device, such that the MEMS device outputs a signal having a modified in-phase component and a modified quadrature component. A phase error for the MEMS device may be determined based on the modified in-phase component and the modified quadrature component.