H02M3/338

Switch-mode power supplies including three-level LLC circuits for low line and high line operation
11108329 · 2021-08-31 · ·

A switch-mode power supply includes a pair of input terminals for receiving an alternating current (AC) or direct current (DC) voltage input from an input power source, a pair of output terminals for supplying a direct current (DC) voltage output to a load, and at least four switches coupled in a three-level LLC circuit arrangement between the pair of input terminals and the pair of output terminals. The power supply also includes a voltage doubler power factor correction (PFC) circuit coupled between the pair of input terminals and the three-level LLC circuit, and a control circuit coupled to operate the at least four switches to supply the DC voltage output to the load.

Transformer and LLC resonant converter having the same

A transformer and an LLC resonant converter are provided. The transformer includes first and second cores configured to include a pair of outer foots and a middle foot positioned between the outer foots, and to induce a magnetic field formation; first and second inductor winding parts configured to include a conductor surrounding a circumference of each of the pair of outer foots of the first core, and to be connected in series with each other; and first and second transformer winding parts configured to include a conductor surrounding a circumference of each of the pair of outer foots of the second core, wherein the pair of outer foots of the first core face the pair of outer foots of the second core, the middle foot of the first core faces the middle foot of the second core, and the first core and the second core are disposed to be spaced apart from each other.

Output stabilization circuit and DC/DC converter circuit
11855546 · 2023-12-26 · ·

An output stabilization circuit includes: a primary-side circuit including first and second self-excited oscillator circuits connected to a direct-current power supply; and a secondary-side circuit, wherein the first and second self-excited oscillator circuits include power transmission coils, resonant capacitors, switching element pairs, and feedback coils, the second self-excited oscillator circuit further includes a phase shift filter, the phase shift filter includes a primary-side control coil that is magnetically coupled to a secondary-side control coil included in the secondary-side circuit and that has a characteristic that an inductance changes depending on a current flowing through the secondary-side control coil.

STARTER CIRCUIT FOR ENERGY HARVESTING CIRCUITS
20210028688 · 2021-01-28 ·

The present disclosure provides a starter circuit for energy harvesting circuits for an energy source having a first and a second potential of an input voltage, in particular for thermoelectric generators.

STARTER CIRCUIT FOR ENERGY HARVESTING CIRCUITS
20210028689 · 2021-01-28 ·

The present disclosure provides a starter circuit for energy harvesting circuits for an energy source having a first and a second potential of the input voltage, in particular for thermoelectric generators.

Resonant isolated converters for power supply charge balancing systems and other systems

A converter circuit includes a primary side having a resonator and a first control circuit configured to control the resonator. The converter circuit also includes a secondary side having a resonant rectifier and a second control circuit configured to control the resonant rectifier. The converter circuit further includes a transformer configured to electrically isolate the primary side from the secondary side. The second control circuit is configured to turn the resonant rectifier on and off. The first control circuit may be configured to detect when the resonant rectifier is off and, in response, turn the resonator off without using a feedback signal from the secondary side. The first control circuit may be configured to detect when the resonant rectifier is off by detecting when input power to the primary side decreases. The resonant rectifier could be turned on and off by detuning the resonant rectifier.

Resonant isolated converters for power supply charge balancing systems and other systems

A converter circuit includes a primary side having a resonator and a first control circuit configured to control the resonator. The converter circuit also includes a secondary side having a resonant rectifier and a second control circuit configured to control the resonant rectifier. The converter circuit further includes a transformer configured to electrically isolate the primary side from the secondary side. The second control circuit is configured to turn the resonant rectifier on and off. The first control circuit may be configured to detect when the resonant rectifier is off and, in response, turn the resonator off without using a feedback signal from the secondary side. The first control circuit may be configured to detect when the resonant rectifier is off by detecting when input power to the primary side decreases. The resonant rectifier could be turned on and off by detuning the resonant rectifier.

METHOD FOR CONTROLLING DISCHARGE OF POWER STORAGE DEVICE
20210021148 · 2021-01-21 ·

A method for controlling a discharge of a power storage device includes: a first step of discharging, in a first section of a discharging period, a part of an electric charge stored in a power storage through a first discharge path and a second discharge path of a discharge circuit; and a second step of discharging, in a second section of the discharging period, a remaining part of the electric charge through the second discharge path. The first discharge path includes a zener diode connected to one end of the power storage. The second discharge path includes a first transistor connected to the one end of the power storage. The first section is a period in which a voltage of the one end of the power storage is higher than a breakdown voltage of the zener diode. The second section is a period in which a voltage of the one end of the power storage is lower than the breakdown voltage of the zener diode. An output current of the first transistor in the second section is greater than an output current of the first transistor in the first section.

SWITCHING CONTROL FOR POWER CONVERTERS
20210021192 · 2021-01-21 ·

In a described example, a circuit includes a mode control circuit having an input and a mode control output. The mode control output is adapted to be coupled to a mode input of a DC-to-DC power converter. The mode control circuit is configured to provide a mode control signal at the mode control output. The mode control signal has a frequency and a duty cycle for causing the power converter to operate within an inaudible frequency range by transitioning the power converter between a power save mode and a pulse width modulation (PWM) mode. The mode control circuit is configured to control the duty cycle responsive to the input of the mode control circuit.

PRIMARY CONTROLLER APPLIED TO A PRIMARY SIDE OF A POWER CONVERTER AND OPERATIONAL METHOD THEREOF
20210013809 · 2021-01-14 ·

A primary controller applied to a primary side of a power converter includes a current compensation circuit and a compensation voltage generation circuit. The current compensation circuit is used for generating a compensation current to a sensing resistor of the primary side according to a direct voltage and an auxiliary voltage, wherein the auxiliary voltage corresponds to an output voltage of a secondary side of the power converter, and the compensation current changes a peak voltage of the primary side. The compensation voltage generation circuit is used for generating a compensation voltage according to a reference current, a discharge time of the secondary side, and a peak current, wherein the reference current is changed with the output voltage. The compensation current and the reference current are used for making an output current of the secondary side of the power converter not be changed with the output voltage.