H03K17/12

SWITCHING DEVICE AND ELECTRONIC CIRCUIT
20220239289 · 2022-07-28 ·

A switching device 1 includes a SiC semiconductor chip 11 which has a gate pad 14, a source pad 13 and a drain pad 12 and in which on-off control is performed between the source and the drain by applying a drive voltage between the gate and the source in a state where a potential difference is applied between the source and the drain, a sense source terminal 4 electrically connected to the source pad 13 for applying the drive voltage, and an external resistance (source wire 16) that is interposed in a current path between the sense source terminal 4 and the source pad 13, is separated from sense source terminal 4, and has a predetermined size.

Switches with main-auxiliary field-effect transistor configurations

Disclosed herein are switching or other active FET configurations that implement a branch design with one or more interior FETs of a main path coupled in parallel with one or more auxiliary FETs of an auxiliary path. Such designs include a circuit assembly for performing a switching function that includes a branch with a plurality of auxiliary FETs coupled in series and a main FET coupled in parallel with an interior FET of the plurality of auxiliary FETs. The body nodes of the FETs can be interconnected and/or connected to a body bias network. The body nodes of the FETs can be connected to body bias networks to enable individual body bias voltages to be used for individual or groups of FETs.

DEVICE FOR CONTROLLING SEMICONDUCTOR CIRCUIT BREAKERS IN THE HIGH-VOLTAGE RANGE
20220224326 · 2022-07-14 ·

The invention relates to a device for controlling a plurality of semiconductor circuit breakers by means of driver voltages for the synchronous operation of a plurality of loads in the high-voltage range, where the driver voltages can be provided by a transformer. According to the invention, the driver voltages for the semiconductor circuit breakers are tapped from a single secondary winding of the transformer, where electronic voltage level converter circuits are provided to obtain the driver voltages from the secondary winding of the transformer at the required magnitude.

LEVEL ADJUSTING CIRCUIT AND GATE DRIVING DEVICE INCLUDING THE SAME
20220224328 · 2022-07-14 ·

A level adjusting circuit includes a parallel resistor-capacitor (RC) sub-circuit, a first diode and an adjustable voltage supply. The RC sub-circuit includes an input capacitor and an input resistor, and includes an input node electrically connected to a driving signal source for receiving a driving signal therefrom, and an output node that outputs an adjusted driving signal. The first diode and the adjustable voltage supply are electrically connected, and are further electrically connected to the output node and a reference voltage node, respectively.

CONTROL METHOD AND CONTROL APPARATUS FOR SWITCHING APPARATUS
20220103167 · 2022-03-31 ·

This application provides a control method for a switching apparatus. The switching apparatus includes at least two switching devices connected in parallel, a minimum pulse width limit of the first switching device is less than a minimum pulse width limit of the second switching device, and the first switching device and the second switching device are in a turn-off state. The method includes: obtaining on-state holding time of the switching apparatus; controlling the at least two switching devices to remain in a cut-off state when the on-state holding time is less than the minimum pulse width limit of the first switching device; and controlling the first switching device to perform a switching operation when the on-state holding time is greater than or equal to the minimum pulse width limit of the first switching device. The application can reduce a loss of the switching device and reduce output distortion.

Switching apparatus and method for operating a switching apparatus

A switching apparatus electrically connects an electrical load to an energy source and contains a main current path which has a switching unit with a circuit breaker, via which the electrical load is connected to the energy source in a supply mode. An auxiliary current path is connected in parallel with the main current path and in which a first switch is arranged. A disconnection mode is performed in which the circuit breaker is open and the electrical load is connected only to the auxiliary current path to reduce electrical energy stored inside the electrical load. A diagnostic mode is also provided, in which the switching unit is open and the electrical load is connected to the energy source only via the auxiliary current path to supply the electrical load. A control unit for activating the diagnostic mode is also provided.

Switching circuits having drain connected ferrite beads

A circuit includes an electronic component package that comprises a first lead, a second lead, and a third lead; and a III-N transistor encased in the electronic component package, the III-N transistor including a drain, a gate, and a source, where the source is coupled to the first lead, the gate is coupled to the second lead, and the drain is coupled to the third lead. The circuit includes a high voltage node and a resistor, the resistor having a first terminal coupled to the high voltage node and a second terminal coupled to the third lead. The circuit further includes a ferrite bead connected in parallel to the resistor and coupled between the third lead and the high voltage node. When switching, the deleterious effects of a parasitic inductance of the circuit's power loop are mitigated by the ferrite bead and the resistor.

Intelligent multi-level voltage gate driving system for semiconductor power devices
11277127 · 2022-03-15 ·

An improved gate driver using a microcontroller (uC), a voltage selector (VS), an adjustable voltage regulator (AVR), and an auxiliary current sinking circuit (ACSC) to actively provide selectable drive signals either higher, lower or equal to the basic on voltage and off voltage drive signals for a selected semiconductor device thereby providing an active voltage-mode gate driver for actively speeding up or slowing both the on time and off time transitions of a semiconductor.

AC switch, and uninterruptible power supply and voltage sag compensator including AC switch

An AC switch (1) includes a first thyristor (T1), a second thyristor (T2), a third thyristor (T3), and a fourth thyristor (T4). The first thyristor (T1) has an anode connected to an AC power source (2), and a cathode connected to a load (3). The second thyristor (T2) is connected in antiparallel to the first thyristor (T1). The third thyristor (T3) has an anode connected to the AC power source (2), and a cathode connected to the load (3). The fourth thyristor (T4) is connected in antiparallel to the third thyristor (T3). A current detector (5) detects the AC current supplied from the AC power source (2) to the load (3). A controller (6) causes the first thyristor (T1) and the third thyristor (T3) to conduct alternately and causes the second thyristor (T2) and the fourth thyristor (T4) to conduct alternately, for each one-cycle period of the AC current, in accordance with the detection value from the current detector (5).

ELECTRICAL SYSTEM COMPRISING AT LEAST TWO MODULES
20210296890 · 2021-09-23 ·

The invention relates to an electrical system (100) comprising at least two modules (200, 300), wherein a module (200, 300) comprises at least one switching element (210, 310). The first module (200) comprises a first switching element (210) made of a first semiconductor material and the second module (300) comprises a second switching element (310) made of a second semiconductor material.