Patent classifications
H02M1/0051
Power converter and related system
Embodiments of the present disclosure disclose a power converter and a related system. The power converter includes a controller and a power conversion circuit. The power conversion circuit is configured to convert an input power of an input power supply into an output power of a load, where the input power supply is an external power supply connected to the power converter. The controller is configured to control on/off of the first switch element, to implement connection/disconnection between the input power supply and the inductive element; and control the unidirectional conduction circuit to be turned on before the first switch element is turned on in the power conversion cycle.
Semiconductor device and method for manufacturing the same
According to one embodiment, a semiconductor device includes first and second electrodes, first, fourth, and sixth semiconductor regions of a first conductivity type, a junction region, a fifth semiconductor region of a second conductivity type, and a gate electrode. The junction region includes a second semiconductor region of the first conductivity type and a third second semiconductor region of the second conductivity type. The second semiconductor regions and the third semiconductor regions are alternately provided in a second direction perpendicular to a first direction. A concentration of at least one first element selected from the group consisting of a heavy metal element and a proton in the junction region is greater a concentration of the first element in the fourth semiconductor region, or a density of traps in the junction region is greater than that in the first semiconductor region and greater than that in the fourth semiconductor region.
METHOD AND APPARATUS FOR CONTROLLING REVERSE CURRENT OF PHASE-SHIFTED FULL-BRIDGE CIRCUIT
A control method includes determining an error value of a reverse input current of a phase-shifted full-bridge circuit based on sampling and reference values of the reverse input current, determining a compensation control quantity of a switch drive signal of the phase-shifted full-bridge circuit based on the error value. The compensation control quantity corresponds to a period or a duty cycle of the switch drive signal. The method further includes determining period and duty cycle control quantities of the switch drive signal based on the compensation control quantity. The period control quantity is within a value range of the period of the switch drive signal, and the duty cycle control quantity is within a value range of the duty cycle of the switch drive signal. The method also includes controlling the switch drive signal based on the period control quantity and the duty cycle control quantity.
Power supply having a resonant topology, method of operating a power supply having a resonant topology and apparatus
An apparatus includes a switching circuit, a resonant circuit coupled to an output of the switching circuit, a rectification circuit coupled between the resonant circuit and an output of the apparatus, and a controller coupled to the switching circuit. The controller, during a soft start-up operation of the power supply, is configured to switch a plurality of switches with a variable limited maximum duty cycle at a minimum frequency and after the variable limited maximum duty cycle reaches the limited maximum duty cycle at the minimum frequency, simultaneously switch the frequency to a maximum frequency and switch the duty cycle to a minimum duty cycle at the maximum frequency for a same on-time as the limited maximum duty cycle at the minimum frequency.
Short pulse gate signal voltage balancing in series-connected MOSFETs
A voltage balancing circuit for use in a power converter is described. In one example, a power converter includes series-connected switching transistors for power conversion, and a voltage balancing control loop. The voltage balancing control loop includes a measurement circuit electrically coupled to a transistor in the pair of series-connected switching transistors. The measurement circuit is electrically coupled to measure a body voltage reference of the transistor. The voltage balancing control loop also includes a balancing circuit configured to generate a balancing pulse signal for adjusting a voltage across the transistor using the body voltage reference, and a circuit configured to combine the balancing pulse signal with a gate drive pulse signal for the transistor, to form a balanced gate drive pulse signal for the transistor. The balanced gate drive pulse signal helps to equalize the body diode voltages of the series-connected switching transistors, particularly during “off” periods.
POWER CONVERTER AND RELATED SYSTEM
Embodiments of the present invention disclose a power converter and a related system. The power converter includes a controller and a power conversion circuit. The power conversion circuit is configured to convert an input power of an input power supply into an output power of a load, where the input power supply is an external power supply connected to the power converter. The controller is configured to control on/off of the first switch element, to implement connection/disconnection between the input power supply and the inductive element; and control the unidirectional conduction circuit to be turned on before the first switch element is turned on in the power conversion cycle.
Power converter and related system
Embodiments of the present disclosure disclose a power converter and a related system. The power converter includes a controller and a power conversion circuit. The power conversion circuit is configured to convert an input power of an input power supply into an output power of a load, where the input power supply is an external power supply connected to the power converter. The controller is configured to control on/off of the first switch element, to implement connection/disconnection between the input power supply and the inductive element; and control the unidirectional conduction circuit to be turned on before the first switch element is turned on in the power conversion cycle.
Power converter
A power converter is connected between a power supply source of a first direct current power and a power supply destination of a second direct current power obtained by performing power conversion on the first direct current power. The power converter includes: a switching element; a reactor; a first diode; a first capacitor; a second diode. The reactor is connected to a first end of the switching element. The first end of the switching element and a first end of the reactor are connected to a first connection point. A cathode of the first diode is connected to a second end of the reactor. The cathode of the first diode and the second end of the reactor are connected to a second connection point. The second diode includes an anode connected to the first connection point and a cathode connected to the power supply destination.
Rectifier circuit and power supply unit
A transient current in a rectifier circuit is effectively reduced. In the rectifier circuit, a current flows from a power supply to a coil when a transistor is turned ON. When the transistor is turned OFF, the current of the coil flows into a second rectifier.
ELECTRONIC CIRCUIT AND SEMICONDUCTOR MODULE
An electronic circuit having a first terminal and a second terminal. The electronic circuit includes a first diode having a PN junction where a forward voltage is a first voltage, a second diode having a Schottky junction where the forward voltage is a second voltage that is smaller than the first voltage, a first wiring member coupling the first terminal to the second terminal via the first diode, and a second wiring member coupling the first terminal to the second terminal via the second diode. The second wiring member has an inductance larger than an inductance of the first wiring member.