Abstract:
A sampling method with adjusting duty ratios is provided and includes the following steps. A first working pulse signal which has a pulse-width duty ratio D in a switching period Ts is provided. A first adjusting period comprising first N successive switching periods of the first working pulse signal is set, wherein N is a natural number larger than 1. A second working pulse signal which has second N successive switching periods with their corresponding pulse-width duty ratio D1, D2, . . . , DN to drive the switch in the converter circuit is provided and the measured signal is generated, wherein the sum of D1, D2, . . . , DN substantially equals to N·D and the second N successive switching periods constitute a second adjusting period.
Abstract:
A resonant converter and voltage stabilizing method thereof are provided. The resonant converter includes a converting stage circuit, a diode-rectifying stage circuit, a filter and load stage circuit, a logic circuit, a driving circuit, and an energy-recycling circuit. The method includes steps of recycling an energy from the filter and load stage circuit to the converting stage circuit when the resonant converter is light- or zero-loaded.
Abstract:
A power module includes a first power chip and a second power chip, each of which has at least two electrodes. The power module is applied to a power converter having a power density higher than 15 W/inch3 and a maximum efficiency higher than 92%, or to a power converter having a power density higher than 20 W/inch3 or having a maximum efficiency higher than 93%. At least one of the power chips operates at a frequency higher than 25 kHz.
Abstract translation:功率模块包括第一功率芯片和第二功率芯片,每个芯片具有至少两个电极。 功率模块被应用于功率密度高于15W / inch 3且最大效率高于92%的功率转换器,或者功率密度高于20W / inch 3的功率转换器或具有高于 93%。 功率芯片中的至少一个以高于25kHz的频率工作。
Abstract:
An assembled circuit comprising a substrate, a coil, a first conductive segment, a second conductive segment, a first through-hole connector and a second through-hole connector is disclosed. The first conductive segment is electrically connected to one end of the first through-hole connector, the other end of the first through-hole connector is electrically connected to one end of the second through-hole connector via the first conductive segment, and the other end of the second through-hole connector is electrically connected to the second conductive segment.
Abstract:
An electrical component is disclosed, the electrical component comprising: a magnetic body having a top surface, a bottom surface, wherein at least one first conductive through hole is formed from the top surface to bottom surface of the magnetic body; and a coil disposed in the magnetic body, wherein a first end of the coil is electrically connected to one of the at least one first conductive through hole.
Abstract:
A coil assembly includes at least one insulated wire and an electromagnetic interference shielding layer. The insulated wire is wound into a winding coil part. The winding coil part includes a first wire-outlet segment, a second wire-outlet segment and a central through-hole. The electromagnetic interference shielding layer is formed on the winding coil part for shielding the insulated wire. The electromagnetic interference shielding layer has lateral projection profile on the winding coil part. The electromagnetic interference shielding layer has a radial gap such that the electromagnetic interference shielding layer is a non-conducting loop.
Abstract:
A power semiconductor package structure includes a carrier, a first power chip, a second power chip, a first conductive sheet, a second conductive sheet and a third conductive sheet. The first power chip has a first surface and a second surface opposing to the first surface. A first control electrode and a first main power electrode are disposed on the first surface, and a second main power electrode is disposed on the second surface. The second surface is disposed on the carrier, and electrically connected to the carrier through the second main power electrode. The second power chip has a third surface and a fourth surface opposing to the third surface. A third main power electrode is disposed on the third surface, and a fourth main power electrode is disposed on the fourth surface. The fourth surface is disposed on the first power chip. The first conductive sheet is electrically connected to the first main power electrode and the fourth main power electrode. The second conductive sheet is electrically connected to the third main power electrode. The third conductive sheet is electrically connected to the first control electrode. At least a part of the first control electrode is non-covered by the second power chip along a projection direction, which is perpendicular to the carrier.
Abstract:
The present invention discloses a transformer structure. The transformer structure comprises a first primary winding, and a first secondary circuits. The first secondary circuits comprises a filtering capacitor, a conductive Cu windings and a rectifier configured onto the printed circuit board (PCB) forming the first secondary circuits PCB winding. The first primary winding and the secondary circuits are interleaved with each other.
Abstract:
A resonant converter and voltage stabilizing method thereof are provided. The resonant converter includes a converting stage circuit, a diode-rectifying stage circuit, a filter and load stage circuit, a logic circuit, a driving circuit, and an energy-recycling circuit. The method includes steps of recycling an energy from the filter and load stage circuit to the converting stage circuit when the resonant converter is light- or zero-loaded.
Abstract:
A driver for driving a driving element includes: a signal source, for providing a square signal; a first modulation circuit, for providing on-pulses and off-pulses according to edges of the square signal; a transformer for coupling output signals of the first modulation circuit to a secondary winding of the transformer to form coupled signals; a second modulation circuit for providing first operating pulses according to coupled on-pulses of the coupled signals, and providing second operating pulses according to coupled off-pulses of the coupled signals; a switch device for turning off the switch device according to the first operating pulses and turning on the switch device according to the second operating pulses, and when the switch device is turned off, coupled on-pulses charge an equivalent capacitor of the driving element to a first driving potential to turn on the driving element, and when the switch device is turned off, the equivalent capacitor discharges to a second driving potential to turn off the driving element, and the width of the on-pulses is less than 1000 ns.