Nova Patents
EP1575152B1

Power factor correction circuits

Abstract

This record has no abstract on file.

EP1575152B1, drawing sheet 1
Sheet 1 of 11

Term

Term ended

Expired 4 February 2025, 1.6 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

5 claims: 2 independent, 3 dependent

  1. 1
    A bi-directional boost circuit for power factor correction, comprising:a first inductor (503), a second inductor (504), a first diode (508), a second diode (508), a first switch (512), a second switch (514), and a capacitor (520) to convert an AC Input voltage, rectify the AC input voltage, and generate an output DC voltage, a first terminal of the first inductor (603) and a first terminal of the second inductor (504) being coupled to the AC input voltage, a second terminal of the first inductor (503) being coupled to a first terminal of the first diode (506) and to a first terminal of the first switch (612), a second terminal of the second inductor (504) being coupled to a first terminal of the second diode (508) and to a first terminal of the second switch (514), a second terminal of the first switch (512) and a second terminal of the second switch (514) being coupled to ground, and a second terminal of the first diode (506) and a second terminal of the second diode (508) being coupled to a terminal of the capacitor (520), another terminal of the capacitor (520) being coupled to ground, the output DC voltage being the voltage across the capacitor (520);and a power factor control circuit (518) arranged to control an inductor current waveform to form a substantially sinusoidal waveform that is In phase with the AC input voltage, the power factor circuit including: a waveform generator (532) to recede the AC input voltage and generate a haversign waveform;a pulse width modulator (530) to generate a pulsed signal based on the output DC voltage;a multiplier to multiply the haversign waveform and the pulsed signal and to create a multiplied haversign signal;an arrangement (534) configured to strip off high frequency characteristics of the multiplied haversign signal to create a haversign signal;a first control circuit (536) coupled to a control input of the first switch (512), and configured to monitor a first inductor current through the first switch (512), and to compare a magnitude of the haversign signal to a magnitude of the first Inductor current to generate a first drive signal to turn off the first switch if the magnitude of the first Inductor current is larger than the magnitude of the haversign signal, the first drive signal being, In use, output to the control terminal of the first switch;and a second control circuit (538) coupled to a control input of the second switch (514), and configured to monitor a second inductor current through the second switch (514), and to compare a magnitude of the haversign signal to a magnitude of the second inductor current to generate a second drive-signal to turn off the second switch if the magnitude of the second inductor current is larger than the magnitude of the haversign signal, the second drive signal being, In use, output to the control terminal of the second switch..
  2. 5
    A method of power factor correction, comprising:using a first inductor (503), a second inductor (504), a first diode (506), a second diode (508), a first switch (512), a second switch (514), and a capacitor (520) to convert an AC input voltage, rectify the AC input voltage, and generate an output DC voltage, a first terminal of the first Inductor (603) and a first terminal of the second inductor (504) being coupled to the AC input voltage, a second terminal of the first inductor (503) being coupled to a first terminal of the first diode (506) and to a first terminal of the first switch (512), a second terminal of the second inductor (504) being coupled to a first terminal of the second diode (508) and to a first terminal of the second switch (514), a second terminal of the first switch (512) and a second terminal of the second switch (514) being coupled to ground, and a second terminal of the first diode (306) and a second terminal of the second diode (508) being coupled to a terminal of the capacitor (520), another terminal of the capacitor (520) being coupled to ground, the output DC voltage being the voltage across the capacitor (520);receding, at a waveform generator (532), the AC input voltage, and generating a haversign waveform;generating a pulsed signal (530) based on the output DC voltage;multiplying the haversign waveform and the pulsed signal to create a multiplied haversign signal;stripping off high frequency characteristics (534) of the multiplied haversign signal to create a haversign signal;monitoring at a first control circuit (536) a first inductor current through the first switch (512);comparing a magnitude of the haversing signal with a value of the first inductor current and generating a first driving signal to turn off the first switch (512) if the value of the first inductor current is larger than the magnitude of the haversign signal, and providing this first driving signal to a control terminal of the first switch (512);monitoring at a second control circuit (538) a second inductor current through the second switch (514);comparing a magnitude of the haversign signal with a value of the second inductor current;and generating a second driving signal to turn off the second switch (514) if the value of the second inductor current is larger than the magnitude of the haversign signal, and providing this second driving signal to a control terminal of the second switch (514).