WO2004107546A1 - Power factor correction circuit and method of varying switching frequency - Google Patents

Power factor correction circuit and method of varying switching frequency Download PDF

Info

Publication number
WO2004107546A1
WO2004107546A1 PCT/US2003/013859 US0313859W WO2004107546A1 WO 2004107546 A1 WO2004107546 A1 WO 2004107546A1 US 0313859 W US0313859 W US 0313859W WO 2004107546 A1 WO2004107546 A1 WO 2004107546A1
Authority
WO
WIPO (PCT)
Prior art keywords
current
charging
voltage
period
pfc circuit
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/US2003/013859
Other languages
French (fr)
Inventor
Joel Turchi
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Semiconductor Components Industries LLC
Original Assignee
Semiconductor Components Industries LLC
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Semiconductor Components Industries LLC filed Critical Semiconductor Components Industries LLC
Priority to HK06101178.6A priority Critical patent/HK1081334B/en
Priority to CNB038142376A priority patent/CN100423417C/en
Priority to AU2003228831A priority patent/AU2003228831A1/en
Priority to PCT/US2003/013859 priority patent/WO2004107546A1/en
Priority to US10/512,768 priority patent/US7123494B2/en
Priority to TW093110996A priority patent/TWI334256B/en
Publication of WO2004107546A1 publication Critical patent/WO2004107546A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02MAPPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
    • H02M1/00Details of apparatus for conversion
    • H02M1/42Circuits or arrangements for compensating for or adjusting power factor in converters or inverters
    • H02M1/4208Arrangements for improving power factor of AC input
    • H02M1/4225Arrangements for improving power factor of AC input using a non-isolated boost converter
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B70/00Technologies for an efficient end-user side electric power management and consumption
    • Y02B70/10Technologies improving the efficiency by using switched-mode power supplies [SMPS], i.e. efficient power electronics conversion e.g. power factor correction or reduction of losses in power supplies or efficient standby modes

Definitions

  • the present invention relates in general to integrated circuits and, more particularly, to integrated power factor correction circuits .
  • Lighting fixtures and other electrical systems have a low power factor because they draw current from the alternating current (AC) mains only near its peak voltage levels, rather than throughout the cycle. Since the voltage peaks' occur at the same time for all users in a given distribution network, the aggregate effect is to load the network's generators with a high current at the voltage peaks and little or no current at other times . Such loading generates harmonic distortion of the mains voltage, high neutral currents in three-phase distribution networks and the possible malfunctioning of devices operating from the mains. To avoid the line distortion, regional utility companies are forced to oversize their distribution networks, which requires a large capital investment.
  • PFC power factor correction
  • Europe's IEC1000-3-2 specification requires PFC in lighting systems as well as the power supplies of certain other electrical devices.
  • the PFC typically is accomplished with PFC circuits that switch the mains current through a coil at a frequency much higher than the mains frequency, and then discharge the coil current through a blocking diode into a capacitor to develop a direct current (DC) supply voltage that is further regulated to power the device or system.
  • the current switching is controlled so that the average value of the coil. current is proportional to the AC mains voltage, i.e., in-phase and substantially sinusoidal. This method results in power factors of .995 or more, with 1.0 being ideal.
  • a significant portion of previous PFC circuits operate in a continuous conduction mode, where a new switching cycle is initiated before the previous cycle's coil current discharges to zero.
  • Continuous conduction mode PFC systems require a high performance coil and a blocking diode with a fast recovery time in order to maintain an efficient power transfer.
  • the high performance coil and blocking diode have a high cost, which increases the manufacturing cost of the continuous mode PFC systems.
  • these systems typically operate at a fixed switching frequency, and therefore produce a high peak energy that requires a costly filter to suppress the resulting electromagnetic interference (EMI) .
  • EMI electromagnetic interference
  • Other PFC systems operate in a critical or borderline conduction mode where a new switching cycle is initiated just as the coil current reaches zero.
  • Critical conduction mode circuits provide a high power factor but they operate over a wide switching frequency range, and require complex and costly filters to suppress the EMI. Also, under low power conditions, the switching frequency is so high that propagation delays through the PFC circuit degrade the achievable power factor.
  • Other PFC circuits operate in a discontinuous mode in which the coil current is allowed to decay to zero for a period of time on each switching cycle. These systems can be made to switch at a fixed frequency to reduce the EMI spectrum and allow the use of narrow band EMI filters. However, like the continuous conduction mode PFC circuits, these systems generate high peak levels of radiated energy at a single frequency that can be difficult to suppress even with the narrow band filters. [0007] Hence, there is a need for a PFC circuit and method that switches over a controlled range in order to reduce the EMI filtering cost of an electrical system. Brief Description of the Drawings
  • FIG. 1 is a schematic diagram of a power factor correction (PFC) circuit
  • FIG. 2 is a timing diagram showing waveforms of the PFC circuit
  • FIG. 3 is a schematic diagram of a portion of the PFC circuit including an oscillator
  • FIG. 4 is a schematic diagram of the oscillator in a first alternate embodiment
  • FIG. 5 is a schematic diagram of the oscillator in a second alternate embodiment
  • FIG. 6 is a circuit diagram of the PFC circuit in an alternate embodiment
  • FIG. 7 is a circuit diagram of the PFC circuit in another alternate embodiment.
  • FIG. 1 is a schematic diagram of a power factor correction (PFC) circuit 100 for correcting the power factor of an alternating current (AC) mains operating at a sinusoidal AC voltage VAC while supplying a load current I LOAD to a load 28.
  • PFC circuit 100 produces a direct current (DC) output voltage V 0 u ⁇ at an output node 30.
  • DC direct current
  • PFC circuit 100 provides a high power factor for the AC mains by correcting the power factor at an input node 32 operating at an input voltage V ⁇ N that is derived by rectifying VAC.
  • PFC circuit 100 uses feedback to produce a resistive load between node 32 and the negative terminal of bridge 20 which, in the embodiment of FIG. 1, operates at ground potential.
  • the average value of current flowing through node 32, and therefore the AC mains is in phase with V ⁇ N .
  • PFC circuit 100 functions as a step up switching regulator in which resistors 16-17 function as a voltage divider to establish a value of V 0 u ⁇ that is boosted to a level higher than the peak level of VAC.
  • VAC has a value of about two hundred twenty volts root- mean-square (RMS) and a frequency of about fifty hertz
  • PFC circuit 100 produces output voltage V 0 u ⁇ with a value of about four hundred volts DC.
  • VAC has a value of about one hundred ten volts RMS and V 0 u ⁇ a frequency of sixty hertz
  • PFC circuit 100 may generate V 0 u ⁇ at a value of about two hundred thirty volts DC.
  • PFC circuit 100 The size, breakdown voltage, etc., of PFC circuit 100 components may be selected so that systems setting V 0 u ⁇ at about four hundred volts DC can be operated from virtually any mains in the world. Such systems are referred to as universal mains systems. In most regions, VAC has a typical range of about plus and minus twenty percent.
  • PFC circuit 100 is configured to combine a power factor correction function with a voltage regulator in a single stage that produces V 0 u ⁇ at a lower voltage than the peak VAC voltage.
  • resistors 16-17 may be selected so that PFC circuit 100 provides V 0 u ⁇ at a level of, say, five volts.
  • EMI filter 15 is a lowpass filter that passes the low frequency component of VAC while suppressing high frequency switching signals generated by PFC circuit 100. In one embodiment, EMI filter 15 is configured to suppress signal components above about one kilohertz.
  • Diode bridge 20 is a standard full-wave bridge rectifier that rectifies line voltage VAC and produces a rectified sine wave input voltage V ⁇ N at node 32 with a frequency of twice the frequency of VAC or about one hundred hertz and a peak value of about three hundred ten volts.
  • Capacitor 19 is connected across diode bridge 20 to further reduce VAC noise.
  • PWM control circuit 31 increases the widths of the VDR IVE pulses, which increases the charge transferred to capacitor 27 from coil 25 to regulate V 0 u ⁇ to its specified level. Accordingly, PWM control circuit 31 is configured so that the widths of the V DRIVE pulses are constant throughout a cycle of V ⁇ N if load current I LOAD is constant with respect to the frequency of V ⁇ N / or about one hundred twenty hertz.
  • PFC control circuit 4 10 is suitable for integrating on a semiconductor die to form an integrated circuit .
  • Oscillator 35 is configured as a voltage controlled oscillator that has an input 39 for sensing an input current I ⁇ N derived from input voltage V ⁇ N .
  • Input 39 operates near ground potential so that I ⁇ N is effectively equal to V N /R ⁇ s, where Ris is the resistance of resistor 18. Since V ⁇ N has the shape of a rectified sine wave, I ⁇ N also has a rectified sinusoidal shape and is therefore representative of V N .
  • An output provides clock signal CLK at a frequency whose variation is dependent on I ⁇ N .
  • the magnitude of I ⁇ N is selected such that clock signal CLK varies over a range of less than two to one, which is significantly less than the switching frequency range of critical conduction mode PFC circuits, whose frequency spectrum often spans a range of twenty to one or more.
  • oscillator 35 generates CLK with a nominal frequency of about forty kilohertz and a range from about thirty kilohertz to about fifty kilohertz.
  • the controlled CLK switching frequency range reduces 5 the peak EMI radiation at any single frequency while generating a limited spectrum of EMI radiated energy to allow EMI filter 15 to be configured in a less complex and costly fashion that reduces the overall cost of PFC circuit 100.
  • the nominal operating frequency of CLK is selected so that when operating at
  • D CYCLE (T CHG +TD S CHG) /T C L K represents the duty cycle of the nonzero coil current during each CLK period T CLK -
  • a high power factor is achieved when the average coil current I COIL _ CL K follows the rectified sinusoidal shape of V ⁇ N , which occurs if T C HG*DCYCLE is made constant.
  • V ACRMS i the root-mean-square value of line voltage VAC.
  • PFC circuit 100 operates with average input power ⁇ P ⁇ N > being constant. Since V ACRMS and L are constant, the constant load condition results in the product
  • oscillator 35 has inputs operating near ground potential, one for sensing input voltage V N with a sense current I IN developed through resistor 18 and another for sensing output voltage V 0 u ⁇ with a current I 0 u ⁇ developed through resistor 45. Oscillator 35 subtracts I from I ou ⁇ to obtain a difference current used to establish the instantaneous value of CLK period T CLK and therefore switching frequency F s .
  • FIG. 2 shows two CLK cycles or periods T C K , a first period that runs from time TO to time T4 and a second, longer period that runs from time T5 to time T9.
  • V ⁇ N is shown as being constant during each period, but with a value V ⁇ m during the first period that is lower than its value V ⁇ 2 during the second period.
  • V N has a substantially constant voltage value V INI , so that charging current I CHG increases linearly until time Tl, when it reaches a peak value of •
  • V DRIVE makes a transition from a high logic level to a low logic level, turning off transistor 29 to allow the energy stored in coil 25 to be transferred through blocking diode 26 to capacitor 27.
  • the voltage dropped across blocking diode 26 is small in comparison to a voltage (V 0 u ⁇ -V ⁇ N ) , so one can consider that (V 0 u ⁇ -V ⁇ N ⁇ ) is applied across coil 25, and that I DSCHG decreases linearly at a rate (V 0 u ⁇ -V ⁇ N ⁇ ) /L 5 , until it discharges to zero at time (V 0 UT-VINI) - [0030] At time T2 , clock signal CLK is reset from a high level to a low level, which does not cause a change in the voltage level of drive signal V DRIVE -
  • I COIL remains at zero for a nonconducting period characteristic of a discontinuous mode of operation of PFC circuit 100.
  • V DRIVE makes another high to low transition to disable transistor 29 and allow magnetic energy stored in coil 25 to be transferred as discharging current I DSCHG through blocking diode 26 for storing on capacitor 27.
  • a substantially constant voltage V 0UT -V IN2
  • I DSC H decreases in a linear fashion with a slope (V 0UT - I 2 ) /L25/ until it discharges to zero at time ( 0 u-V ⁇ N 2) - Since V IN2 > INI coil current I COI L reaches a higher peak current Ip ⁇ 2 but discharges at a slower rate (V 0 u ⁇ -V ⁇ N 2) L25 • second nonconducting period commences at time T8 when I COIL discharges to zero and lasts until the second switching cycle ends and another switching cycle begins at time T9.
  • FIG. 3 is a circuit diagram showing a portion of PFC circuit 100 including oscillator 35 in further detail along with resistors 18 and 45.
  • Oscillator 35 includes current mirrors 57- 60, switches 62-65, a timing capacitor 68 and a comparator 69.
  • Oscillator 35 is configured as a voltage controlled oscillator that produces clock signal CLK as a series of pulses generated at a nominal or center frequency that is modulated in proportion to the difference (V 0 u ⁇ -V ⁇ N ) •
  • Timing capacitor 68 is connected between a timing node 70 and ground potential.
  • Capacitor 68 typically is integrated on the same die as other components of PFC control circuit 10, but alternatively may be formed as an external capacitor. In one embodiment, capacitor 68 has a value of about one hundred picofarads. Capacitor 68 is sequentially charged and discharged by currents I ⁇ M2 , I ⁇ M3/ I 0M2 and I 0M3 as described below to form a triangle or ramp voltage V RAMP on node 70.
  • Switches 62-65 are implemented with transistors that are respectively enabled or turned on either by clock signal CLK - ⁇ - or a complementary clock signal CLK as shown. Hence, switches 62 and 65 are enabled or closed when CLK is logic high, while switches 63 and 64 are closed when CLK is logic high and CLK is logic low.
  • Comparator 69 is configured as a hysteretic comparator that compares a voltage developed on timing node 70 with a reference voltage V REF to produce clock signal CLK at its output. Comparator 69 has outputs that provide the complementary clock signals CLK and CLK , or CLK may be derived by inverting CLK with a separate inverter (not shown) .
  • an internal hysteresis circuit reduces the comparison reference by a hysteresis amount V H ⁇ s ⁇ to a value (VREF-V H Y ST ) -
  • CLK remains logic high until V RAMP discharges to a level below (V RE F- V HYST ) / at which point CLK transitions to a logic low.
  • V RAMP is produced as a triangle wave that cycles between V RE F and (VRE F -V H Y S T) as shown in FIG. 2.
  • Current mirrors 57-58 include scaled transistors that produce mirrored currents Imi/ I IM2 I DO and I IM 4 that are proportional to, or multiples of, input sense current I ⁇ N -
  • current mirrors 59-60 include scaled transistors that produce mirrored currents I OMI / I OM2 and I 0M 3 that are proportional to, or multiples of, output sense current I OU T-
  • Oscillator 35 operates as follows. Assume that initially, clock signal CLK is logic low, so switches 63 and 64 are closed, switches 62 and 65 are open and V RAMP i increasing with a value less than V REF as shown in FIG. 2.
  • V RAM P reaches the level of (V REF -VHYST) / at which time CLK transitions to a logic low, which closes switches 63-64 and opens switches 62 and 65.
  • Capacitor 68 is then charged by current I 0M2 while being discharged by current I ⁇ M3 .
  • Currents I ⁇ M3 and I 0M2 are scaled so that I IM3 ⁇ I OM2 which results in charging capacitor 68 with an effective difference current (I O M2-I IM3 ) •
  • I O M2-I IM3 effective difference current
  • FIG. 4 is a circuit diagram showing a portion of PFC circuit 100 including further detail of oscillator 35 in an alternate embodiment along with resistor 18.
  • Oscillator 35 includes current sources 80-81, current mirrors 57-58, switches 62-65, a timing capacitor 68 and a comparator 69.
  • Current source 80 supplies a charging reference current I REFI from supply voltage V C c to node 70 when CLK is high and switch 64 is closed
  • current source 81 supplies a scaled or mirrored discharging reference current I REF2 to node 70 when CLK is high and switch 65 is closed.
  • FIG. 5 is a schematic diagram showing further detail of oscillator 35 in yet another alternate embodiment.
  • This embodiment has a similar operation and structure as the embodiment described in FIG. 4, except that comparator 69 is non-hysteretic and the V RAMP switching limits are established with a limit voltage V LIM that is generated with circuitry that includes resistors 83-84 and 88-89, a capacitor 85, a squaring circuit or multiplier 86, a division circuit 87 and a switch 90.
  • switch 90 closes and V D ⁇ v is voltage divided by resistors 88-89 to establish a lower limit of V RAMP at a level
  • V LIM V REF / (K 8 * ⁇ VINI> 2 ) *RS9/ (Rss+Rsg) , where R 88 and R 89 are the resistances of resistors 88 and 89, respectively.
  • I COIL has a sinusoidal waveform in phase with V N due to the power factor correcting operation of PFC circuit 100.
  • I COIL is sensed in its return path through resistor 72 to diode bridge 20, which develops a current sense voltage V C s across resistor 72 on a node 39 to modulate F sw .
  • resistor 72 has a resistance of about 0.1 ohms, so Vcs has a value of about -0.1 volts when I COIL has a magnitude of one ampere.
  • the power factor of this embodiment is believed to be lower than that of the previously described embodiments because the instantaneous value of I COI L only approximates the rectified sinusoidal shape of V - Nevertheless, this version has a low power consumption and can be fabricated at a low cost, which make it suitable for many applications not requiring the highest achievable power factor.
  • the power factor can be improved by connecting a capacitance across resistor 72. The capacitance is selected to filter out high frequency components, e.g., those above the frequency of V I # to produce a waveform at node 39 that more ideally approximates a rectified sine wave.
  • FIG. 7 shows a portion of PFC circuit 100 in the embodiment described in FIG.
  • Transistors 76-77 are shown as being formed as a matched or scaled pair of NPN bipolar transistors, whose emitter areas are scaled in a predetermined ratio.
  • Current source 78 supplies a current I R through transistor 77 to establish a base- emitter voltage that biases the base electrode of transistor 76 to a fixed potential .
  • Resistor 82 typically is formed as an external resistor to avoid deleterious effects resulting from the negative potential of current sense voltage V C s when I COIL is flowing.
  • transistor 76 and 77 have the same emitter area ratio, their respective emitters operate at substantially the same potential, so current I I is proportional to I COIL since ISE NS E substantially equals I M ⁇ (neglecting 57 base current) and V C s+ (R 8 2*I S EN S E) is zero, where the resistance of resistor 82 is R 82 , and selected to provide a desired sampling current ISENSE through transistor 76. Then • ISENSE is mirrored by current mirrors 58-59 to provide differential charging and discharging currents (IR EF I-IM3) and (IR EF 2 ⁇ IMI) / respectively, to timing node 70 as described above.
  • the present invention provides a PFC circuit that operates in a discontinuous mode with a fixed switching pulsewidth.
  • the discontinuous mode of operation allows the PFC circuit to be fabricated with low cost blocking diode, which reduces the system cost.
  • a pulse width modulator is synchronized to transition edges of a clock signal to generate pulses that establish a charging period for a coil current. The coil current is then discharged over a discharging period to develop a PFC output voltage from an input signal .
  • An oscillator generates the clock signal so that its clock period is longer than the sum of the charging and discharging periods, thereby ensuring discontinuous mode operation.
  • the oscillator has an input for sensing an input signal of the PFC circuit to modify the clock period in a controlled fashion to maintain the product of the charging period and the duty cycle of the coil current constant.
  • the PFC circuit thereby switches the coil current over a predefined frequency range to facilitate the reduction of electromagnetic interference with a low cost EMI filter.

Landscapes

  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Rectifiers (AREA)
  • Dc-Dc Converters (AREA)

Abstract

A power factor correction (PFC) circuit (10) includes a pulse width modulator (31) operating in response to a clock signal (CLK) for switching a coil current (ICOIL) over a charging period (TCHG) to correct a power factor at a node (32). The coil current discharges over a discharging period (TDSCHG) to develop an output voltage (VOUT) at an output (30). An oscillator (35) generates the clock signal to have a clock period (TCLK) longer than the sum of the charging and discharging periods, thereby operating in a discontinuous mode, and has an input (39) for sensing the input signal to modify the clock period.

Description

PO ER FACTOR CORRECTION CIRCUIT AND METHOD OF VARYING SWITCHING
FREQUENCY
Background of the Invention
[0001] The present invention relates in general to integrated circuits and, more particularly, to integrated power factor correction circuits . [0002] Lighting fixtures and other electrical systems have a low power factor because they draw current from the alternating current (AC) mains only near its peak voltage levels, rather than throughout the cycle. Since the voltage peaks' occur at the same time for all users in a given distribution network, the aggregate effect is to load the network's generators with a high current at the voltage peaks and little or no current at other times . Such loading generates harmonic distortion of the mains voltage, high neutral currents in three-phase distribution networks and the possible malfunctioning of devices operating from the mains. To avoid the line distortion, regional utility companies are forced to oversize their distribution networks, which requires a large capital investment.
[0003] Some governments are trying to relieve this problem by requiring system manufacturers to incorporate power factor correction (PFC) in some electrical systems. For example, Europe's IEC1000-3-2 specification requires PFC in lighting systems as well as the power supplies of certain other electrical devices. The PFC typically is accomplished with PFC circuits that switch the mains current through a coil at a frequency much higher than the mains frequency, and then discharge the coil current through a blocking diode into a capacitor to develop a direct current (DC) supply voltage that is further regulated to power the device or system. The current switching is controlled so that the average value of the coil. current is proportional to the AC mains voltage, i.e., in-phase and substantially sinusoidal. This method results in power factors of .995 or more, with 1.0 being ideal.
[0004] A significant portion of previous PFC circuits operate in a continuous conduction mode, where a new switching cycle is initiated before the previous cycle's coil current discharges to zero. Continuous conduction mode PFC systems require a high performance coil and a blocking diode with a fast recovery time in order to maintain an efficient power transfer. However, the high performance coil and blocking diode have a high cost, which increases the manufacturing cost of the continuous mode PFC systems. Moreover, these systems typically operate at a fixed switching frequency, and therefore produce a high peak energy that requires a costly filter to suppress the resulting electromagnetic interference (EMI) . [0005] Other PFC systems operate in a critical or borderline conduction mode where a new switching cycle is initiated just as the coil current reaches zero. Critical conduction mode circuits provide a high power factor but they operate over a wide switching frequency range, and require complex and costly filters to suppress the EMI. Also, under low power conditions, the switching frequency is so high that propagation delays through the PFC circuit degrade the achievable power factor. [0006] Other PFC circuits operate in a discontinuous mode in which the coil current is allowed to decay to zero for a period of time on each switching cycle. These systems can be made to switch at a fixed frequency to reduce the EMI spectrum and allow the use of narrow band EMI filters. However, like the continuous conduction mode PFC circuits, these systems generate high peak levels of radiated energy at a single frequency that can be difficult to suppress even with the narrow band filters. [0007] Hence, there is a need for a PFC circuit and method that switches over a controlled range in order to reduce the EMI filtering cost of an electrical system. Brief Description of the Drawings
[0008] FIG. 1 is a schematic diagram of a power factor correction (PFC) circuit; FIG. 2 is a timing diagram showing waveforms of the
PFC circuit;
FIG. 3 is a schematic diagram of a portion of the PFC circuit including an oscillator;
FIG. 4 is a schematic diagram of the oscillator in a first alternate embodiment;
FIG. 5 is a schematic diagram of the oscillator in a second alternate embodiment;
FIG. 6 is a circuit diagram of the PFC circuit in an alternate embodiment; and FIG. 7 is a circuit diagram of the PFC circuit in another alternate embodiment.
Detailed Description of the Drawings
[0009] In the figures, elements having the same reference number have similar functionality.
[0010] FIG. 1 is a schematic diagram of a power factor correction (PFC) circuit 100 for correcting the power factor of an alternating current (AC) mains operating at a sinusoidal AC voltage VAC while supplying a load current ILOAD to a load 28. PFC circuit 100 is controlled by a PFC control circuit 10 operating in a discontinuous mode from a supply voltage VCc=12.0 volts, and includes an electromagnetic interference (EMI) filter 15, a capacitor 19, a diode bridge 20, resistors 16-18 and 45, an inductor or coil 25, a blocking diode 26 and an output capacitor 27. PFC circuit 100 produces a direct current (DC) output voltage V0uτ at an output node 30.
[0011] In general, PFC circuit 100 provides a high power factor for the AC mains by correcting the power factor at an input node 32 operating at an input voltage VΪN that is derived by rectifying VAC. In effect, PFC circuit 100 uses feedback to produce a resistive load between node 32 and the negative terminal of bridge 20 which, in the embodiment of FIG. 1, operates at ground potential. As a result, the average value of current flowing through node 32, and therefore the AC mains, is in phase with VιN.
[0012] In particular, PFC circuit 100 functions as a step up switching regulator in which resistors 16-17 function as a voltage divider to establish a value of V0uτ that is boosted to a level higher than the peak level of VAC. In one embodiment, where VAC has a value of about two hundred twenty volts root- mean-square (RMS) and a frequency of about fifty hertz, PFC circuit 100 produces output voltage V0uτ with a value of about four hundred volts DC. In some geographical regions, where VAC has a value of about one hundred ten volts RMS and V0uτ a frequency of sixty hertz, PFC circuit 100 may generate V0uτ at a value of about two hundred thirty volts DC. The size, breakdown voltage, etc., of PFC circuit 100 components may be selected so that systems setting V0uτ at about four hundred volts DC can be operated from virtually any mains in the world. Such systems are referred to as universal mains systems. In most regions, VAC has a typical range of about plus and minus twenty percent. [0013] In an alternative embodiment, PFC circuit 100 is configured to combine a power factor correction function with a voltage regulator in a single stage that produces V0uτ at a lower voltage than the peak VAC voltage. For example, resistors 16-17 may be selected so that PFC circuit 100 provides V0uτ at a level of, say, five volts. [0014] EMI filter 15 is a lowpass filter that passes the low frequency component of VAC while suppressing high frequency switching signals generated by PFC circuit 100. In one embodiment, EMI filter 15 is configured to suppress signal components above about one kilohertz. [0015] Diode bridge 20 is a standard full-wave bridge rectifier that rectifies line voltage VAC and produces a rectified sine wave input voltage VιN at node 32 with a frequency of twice the frequency of VAC or about one hundred hertz and a peak value of about three hundred ten volts.
Capacitor 19 is connected across diode bridge 20 to further reduce VAC noise.
[0016] Coil 25 has a typical inductance L25=100.0 microhenries and a low equivalent series resistance for high efficiency operation.
[0017] PFC control circuit 10 includes a transistor 29, a pulsewidth modulated (PWM) control circuit 31 and an oscillator 35. [0018] PWM control circuit 10 receives a clock signal CLK from oscillator 35 and initiates a series of pulses referred to as a drive signal VDRIVE that switch transistor 29. Resistors 16 and 17 operate as a voltage divider that divides output voltage VOUT to produce a feedback signal VFB at an input 36. In one embodiment, PWM control circuit 31 compares feedback voltage VFB with an internally generated reference voltage to modulate the widths of the VDRIVE pulses. Hence, as load 28 draws an increased load current ILOAD to discharge capacitor 27 and reduce output voltage V0uτ, the level of feedback voltage VFB is correspondingly lower. In response, PWM control circuit 31 increases the widths of the VDRIVE pulses, which increases the charge transferred to capacitor 27 from coil 25 to regulate V0uτ to its specified level. Accordingly, PWM control circuit 31 is configured so that the widths of the VDRIVE pulses are constant throughout a cycle of VιN if load current ILOAD is constant with respect to the frequency of VιN/ or about one hundred twenty hertz. In one embodiment, PFC control circuit 410 is suitable for integrating on a semiconductor die to form an integrated circuit .
[0019] Transistor 29 is a high current n-channel metal-oxide- semiconductor field effect transistor that switches coil current ICOIL through coil 25. In one embodiment, transistor 29 is a power transistor able to switch peak values of ICOIL greater than two amperes. Transistor 29 typically has a large gate capacitance greater than five hundred picofarads. Transistor 29 is shown as being integrated on a die with other components of PFC control circuit 10, but alternatively may be formed as an external discrete device. [0020] Coil current ICOIL has a component charging current ICHG and a component discharging current IDSCHG- The time when transistor 29 is on is referred to as a charging period TCHG during which charging current ICHG flows through coil 25 and transistor 29 to store magnetic energy in coil 25. When load current ILOAD is constant, TCHG i constant throughout a cycle of VιN. When transistor 29 switches off, the stored magnetic energy flows as discharge current IDSCHG from coil 25 through blocking diode 26 to capacitor 27 to develop output voltage V0uτ on node 30. The time during which discharge current IDSCHG flows is referred to as a discharging period TDSCHG/ which varies in accordance with the peak value of charging current TCHG and the voltage level of VιN.
[0021] Oscillator 35 is configured as a voltage controlled oscillator that has an input 39 for sensing an input current IιN derived from input voltage VΪN. Input 39 operates near ground potential so that IιN is effectively equal to VN/Rιs, where Ris is the resistance of resistor 18. Since VιN has the shape of a rectified sine wave, IιN also has a rectified sinusoidal shape and is therefore representative of VN. An output provides clock signal CLK at a frequency whose variation is dependent on IιN. In one embodiment, the magnitude of IιN is selected such that clock signal CLK varies over a range of less than two to one, which is significantly less than the switching frequency range of critical conduction mode PFC circuits, whose frequency spectrum often spans a range of twenty to one or more. In one embodiment, oscillator 35 generates CLK with a nominal frequency of about forty kilohertz and a range from about thirty kilohertz to about fifty kilohertz.
[0022] The controlled CLK switching frequency range reduces 5 the peak EMI radiation at any single frequency while generating a limited spectrum of EMI radiated energy to allow EMI filter 15 to be configured in a less complex and costly fashion that reduces the overall cost of PFC circuit 100. The nominal operating frequency of CLK is selected so that when operating at
10 its highest level in response to input current IIN/ the period of CLK is still low enough to operate PFC circuit 100 in a discontinuous mode, i.e., a mode in which ICOIL is zero for a nonzero portion of a switching cycle. [0023] Switching cycles of PFC control circuit 10 are
15 initiated by clock signal CLK which operates with a period much smaller than the period of VιN, so a substantially constant voltage VΪN appears across coil 25 during any particular switching cycle. As a result, charging current ICHG increases linearly with a slope approximately equal to VιN/L to reach a
20 peak value IPEAK=TCHG*VIN/L . Similarly, the slope of discharging current IDSCHG is substantially equal to (V0uτ-VιN) /L, and its duration TDSCHG=L*IPEAK/ (V0uτ-VιN) . Hence, the total period when ICOIL is nonzero is given by
V 25 1) T COIL — ~ T z CHG + ' T * DSCHG — ~ ^ T • l T PK • ■ ouτ vlN » (v0UT -vIN)
Hence coil current ICOIL flows as a triangle wave whose average value ICOIL_CLK over a CLK period TCLK is given by
n 5 1 r _ AT * 1 CHG V cHG + * DSCHG ) _ * IN ( p. \
J U Δ } 1 COIL_ CLK γ r τ V CHG U CYCLE )
Z • 1 CLK Z • L - b- where DCYCLE= (TCHG+TDSCHG) /TCLK represents the duty cycle of the nonzero coil current during each CLK period TCLK- A high power factor is achieved when the average coil current ICOIL_CLK follows the rectified sinusoidal shape of VιN, which occurs if TCHG*DCYCLE is made constant.
[0024] Since charging time TCHG is constant when load current ILOAD constant, in order to maintain the product TCHG*DCYCLE constant and achieve a high power factor, oscillator 35 varies the switching frequency Fs of CLK to keep DCYCLE substantially constant. The average input power <PιN> over a period of input voltage VI is given by equation 3),
i
Figure imgf000009_0001
where VACRMS i the root-mean-square value of line voltage VAC. When load current ILOAD is constant, PFC circuit 100 operates with average input power <PΪN> being constant. Since VACRMS and L are constant, the constant load condition results in the product
4 ^ ) ' ( VT- CHG * D ^ CYCLE ) ) = 2 * L τ - 2 * (P'") v ACRMS being constant as well. From these relationships, it can be shown that the switching frequency Fs needed to achieve a high -power factor is given by
Figure imgf000009_0002
As a consequence, when switching frequency FS is made proportional to the difference between output voltage V0uτ and the instantaneous rectified input voltage VΪN, PFC circuit 100 operates with a PFC approaching one. In fact, under the described steady state conditions, V0uτ i regulated, and therefore constant, so equation 5) can be simplified to
6) FSw = Zι * (Kι -VBI ) , where Ki is a constant, K2=V0uτ and the regulation arrangement - y -
adj usts TCHG so that Kx at a given <PIN> and VAC
Figure imgf000010_0001
operating point. To achieve a high power factor, CLK frequency Fsw effectively is modulated with VΪN so that Fs has a lower value near the VIN peaks and a higher value when V is near zero volts. To accomplish this, oscillator 35 has inputs operating near ground potential, one for sensing input voltage VN with a sense current IIN developed through resistor 18 and another for sensing output voltage V0uτ with a current I0uτ developed through resistor 45. Oscillator 35 subtracts I from Iouτ to obtain a difference current used to establish the instantaneous value of CLK period TCLK and therefore switching frequency Fs . [0025] The detailed operation of PFC circuit 100 can be seen by referring to the timing diagram of FIG. 2, showing waveforms of input voltage VΪN, coil current ICOI / drive signal VDRIVE and clock signal CLK over selected switching periods (T4-T0) and (T9-T5), each having a duration in the range of about fifty microseconds, with (T9-T5) > (T4-T0) . FIG. 2 shows two CLK cycles or periods TC K, a first period that runs from time TO to time T4 and a second, longer period that runs from time T5 to time T9. Although input voltage VΪN varies as a rectified sinusoid, the
CLK period is much shorter than the VI period. Consequently, in order to better describe the invention, VΪN is shown as being constant during each period, but with a value Vιm during the first period that is lower than its value VΪ 2 during the second period.
[0026] Assume that initially, just prior to time TO, both CLK and VDRIVE are logic low and transistor 29 and blocking diode 26 are off, so that ICOIL=0.0 amperes. [0027] At time TO, a first switching cycle begins as clock signal CLK transitions from a logic low level to a logic high level to initiate a pulse of drive signal VDRIVE- Transistor 29 turns on to charge coil 25 with charging current ICHG at a linearly increasing rate VιN/L25 since the voltage across transistor 29 is nearly zero, and consequently the entire voltage VΪN is effectively applied across coil 25. Hence, charging current ICHG increases at a rate proportional to the instantaneous value of VrN.
[0028] During the interval from time TO to Tl, input signal VN has a substantially constant voltage value VINI, so that charging current ICHG increases linearly until time Tl, when it reaches a peak value of
Figure imgf000011_0001
• [0029] At time Tl, VDRIVE makes a transition from a high logic level to a low logic level, turning off transistor 29 to allow the energy stored in coil 25 to be transferred through blocking diode 26 to capacitor 27. The voltage dropped across blocking diode 26 is small in comparison to a voltage (V0uτ-VιN) , so one can consider that (V0uτ-VιNι) is applied across coil 25, and that IDSCHG decreases linearly at a rate (V0uτ-VιNι) /L5, until it discharges to zero at time
Figure imgf000011_0002
(V0UT-VINI) - [0030] At time T2 , clock signal CLK is reset from a high level to a low level, which does not cause a change in the voltage level of drive signal VDRIVE-
[0031] From time T3 to time T4 , ICOIL remains at zero for a nonconducting period characteristic of a discontinuous mode of operation of PFC circuit 100.
[0032] At time T4, the first switching cycle ends and another switching cycle begins. Several CLK switching cycles may follow.
[0033] At time T5 , the designated second cycle commences with a low to high CLK and VDRIVE transition, but with input voltage VIN operating at a higher effective voltage value VιN2>VιNι . The higher VN2 value causes charging current ICHG to increase linearly and at a faster rate through coil 25 and transistor 29, and to reach a peak value IPK2=VIN2 *TCHG/L25 at time T6 that is higher than peak value IPKι . Note that TCHG= (T1-T0 ) = (T6-T5 ) has a constant value when ILOAD is constant . [0034] At time T6 , VDRIVE makes another high to low transition to disable transistor 29 and allow magnetic energy stored in coil 25 to be transferred as discharging current IDSCHG through blocking diode 26 for storing on capacitor 27. During the interval from time T6 to time T8, a substantially constant voltage (V0UT-VIN2) is applied across coil 25, so IDSCH decreases in a linear fashion with a slope (V0UT- I 2) /L25/ until it discharges to zero at time
Figure imgf000012_0001
( 0u-VιN2) - Since VIN2> INI coil current ICOIL reaches a higher peak current Ipκ2 but discharges at a slower rate (V0uτ-VτN2) L25 • second nonconducting period commences at time T8 when ICOIL discharges to zero and lasts until the second switching cycle ends and another switching cycle begins at time T9. [0035] At time T7 , clock signal CLK makes a high to low transition that does not affect the level of drive signal VDRIVE- [0036] FIG. 3 is a circuit diagram showing a portion of PFC circuit 100 including oscillator 35 in further detail along with resistors 18 and 45. Oscillator 35 includes current mirrors 57- 60, switches 62-65, a timing capacitor 68 and a comparator 69. Oscillator 35 is configured as a voltage controlled oscillator that produces clock signal CLK as a series of pulses generated at a nominal or center frequency that is modulated in proportion to the difference (V0uτ-VιN) • [0037] Timing capacitor 68 is connected between a timing node 70 and ground potential. Capacitor 68 typically is integrated on the same die as other components of PFC control circuit 10, but alternatively may be formed as an external capacitor. In one embodiment, capacitor 68 has a value of about one hundred picofarads. Capacitor 68 is sequentially charged and discharged by currents IιM2, IιM3/ I0M2 and I0M3 as described below to form a triangle or ramp voltage VRAMP on node 70.
[0038] Switches 62-65 are implemented with transistors that are respectively enabled or turned on either by clock signal CLK - λ - or a complementary clock signal CLK as shown. Hence, switches 62 and 65 are enabled or closed when CLK is logic high, while switches 63 and 64 are closed when CLK is logic high and CLK is logic low.
[0039] Comparator 69 is configured as a hysteretic comparator that compares a voltage developed on timing node 70 with a reference voltage VREF to produce clock signal CLK at its output. Comparator 69 has outputs that provide the complementary clock signals CLK and CLK , or CLK may be derived by inverting CLK with a separate inverter (not shown) . When comparator 69 is producing CLK with, for example, a logic high level, an internal hysteresis circuit reduces the comparison reference by a hysteresis amount VHγsτ to a value (VREF-VHYST) - As a result, CLK remains logic high until VRAMP discharges to a level below (VREF- VHYST) / at which point CLK transitions to a logic low. The effect of the hysteresis is that VRAMP is produced as a triangle wave that cycles between VREF and (VREF-VHYST) as shown in FIG. 2. In one embodiment in which supply voltage Vc=12.0 volts, VREF has a value of about three volts and VHYST has a value of about one volt, so the voltage difference (VREF-VHYST) has a level of about two volts .
[0040] Current mirrors 57-58 include scaled transistors that produce mirrored currents Imi/ IIM2 IDO and IIM4 that are proportional to, or multiples of, input sense current IιN- Similarly, current mirrors 59-60 include scaled transistors that produce mirrored currents IOMI/ IOM2 and I0M3 that are proportional to, or multiples of, output sense current IOUT- [0041] Oscillator 35 operates as follows. Assume that initially, clock signal CLK is logic low, so switches 63 and 64 are closed, switches 62 and 65 are open and VRAMP i increasing with a value less than VREF as shown in FIG. 2. At time TO, CLK transitions to a logic high, which closes switches 62 and 65 and opens switches 63-64 to discharge capacitor 68 with current I0M3 while concurrently charging with current IιM2 - Current mirrors 57-60 are ratioed so that I0M3 is higher than IM2/ so the algebraic sum of currents I0M3 and IιM2 results in a net difference current (IOM3-IIM2) that discharges capacitor 68 to decrease the level of VRAMP-
[0042] At time T2 , VRAMP reaches the level of (VREF-VHYST) / at which time CLK transitions to a logic low, which closes switches 63-64 and opens switches 62 and 65. Capacitor 68 is then charged by current I0M2 while being discharged by current IΪM3. Currents IιM3 and I0M2 are scaled so that IIM3<IOM2 which results in charging capacitor 68 with an effective difference current (IOM2-IIM3) • When capacitor 68 is charged to a point where VRAMP>VREF/ CLK makes a low to high transition to begin another cycle. [0043] The scaling or mirroring ratios of current mirrors 57- 60 are further selected so that capacitor 68 is charged and , discharged with currents (IOM2~I M3) =K3* (V0UT-VIN) and (IOM3- I1M2) =K4* (VOU -VIN) / respectively, where K3 and K4 are constants. It can be shown that switching frequency FSw has the form shown in equation 6) above, which results in a power factor approaching one .
[0044] FIG. 4 is a circuit diagram showing a portion of PFC circuit 100 including further detail of oscillator 35 in an alternate embodiment along with resistor 18. Oscillator 35 includes current sources 80-81, current mirrors 57-58, switches 62-65, a timing capacitor 68 and a comparator 69. [0045] Current source 80 supplies a charging reference current IREFI from supply voltage VCc to node 70 when CLK is high and switch 64 is closed, and current source 81 supplies a scaled or mirrored discharging reference current IREF2 to node 70 when CLK is high and switch 65 is closed. The scaling or mirroring ratios of current mirrors 57-58 and current sources 80-81 are selected so that capacitor 68 is charged with a difference current (IIREFI-I∞) =K5* (VREF-VIN) when CLK is high, where K5 is a constant, and discharged with a difference current (IREF2~ IIM2) =K7* (VREF-VIN) , where K7 is a constant. It should be evident that these equations establish switching frequency Fs in accordance with equation 6) above, thereby achieving a power factor approaching one, assuming that VREF is representative of a desired value of V0uτ-
[0046] FIG. 5 is a schematic diagram showing further detail of oscillator 35 in yet another alternate embodiment. This embodiment has a similar operation and structure as the embodiment described in FIG. 4, except that comparator 69 is non-hysteretic and the VRAMP switching limits are established with a limit voltage VLIM that is generated with circuitry that includes resistors 83-84 and 88-89, a capacitor 85, a squaring circuit or multiplier 86, a division circuit 87 and a switch 90. [0047] As shown above, for a constant ILOAD and TCHG high power factors are achievable if CLK frequency FSw is proportional to (V0UT _VIN) - However, as shown in equation 6) , Fsw has a large variation if VN has a high amplitude, particularly at the voltage peaks where the peak ICOIL currents flow. This embodiment provides a circuit that reduces the overall frequency variation or jitter as follows.
[0048] Resistors 83-84 operate as a voltage divider that divides input voltage VΪN, and capacitor 85 cooperates with resistors 83-84 to produce a low pass filter that produces an average voltage <VιNι> whose ripple is substantially zero, or at least is small compared to the rectified sine wave shape of VΪN- In one embodiment, resistors 83-84 and capacitor 85 are selected to set the low pass corner frequency to about ten hertz, so that VR is substantially a DC voltage. As a result of this low pass filtering, <VNι> is indicative of the average value of VN. [0049] Multiplier 86 is a standard analog multiplier circuit that squares average voltage VLNI to produce a squared voltage VSQ=K8*<VINI>2/ where K8 is a constant.
[0050] Division circuit 87 divides a reference voltage VREF by VSQ to produce a voltage VLIM=VDIV=VREF/ (K8*<VINI>2) , which is coupled through resistor 88 to set an upper limit of VRAMP at an input of comparator 69 when clock signal CLK is low. When CLK is high, switch 90 closes and VDιv is voltage divided by resistors 88-89 to establish a lower limit of VRAMP at a level VLIM=VREF/ (K8*<VINI>2) *RS9/ (Rss+Rsg) , where R88 and R89 are the resistances of resistors 88 and 89, respectively. [0051] Hence, switching frequency Fsw=K9*<VιN>2* (VREF-VIN) , where Kg is a constant. This option allows oscillator 35 to limit the switching frequency variations to facilitate EMI filtering. [0052] FIG. 6 is a schematic diagram of PFC circuit 100 in an alternate embodiment. This embodiment eliminates the need for resistor 18 and its dissipated power PRI8=I N2*RI8, where Rχ8 is the resistance of resistor 18. Hence, this embodiment is suitable for applications requiring low standby power and a less than ideal power factor. [0053] The embodiment of FIG. 6 modulates switching frequency Fsw with the instantaneous value of coil current ICOIL, rather than input voltage VN- On average, ICOIL has a sinusoidal waveform in phase with VN due to the power factor correcting operation of PFC circuit 100. ICOIL is sensed in its return path through resistor 72 to diode bridge 20, which develops a current sense voltage VCs across resistor 72 on a node 39 to modulate Fsw. In one embodiment, resistor 72 has a resistance of about 0.1 ohms, so Vcs has a value of about -0.1 volts when ICOIL has a magnitude of one ampere. Alternatively, ICOIL can be measured using other techniques, like a current transformer rather than current sensing resistor 72. The use of coil current ICOIL, rather than input voltage VιN, to vary switching frequency FΞw is a approach suitable for either continuous mode or discontinuous mode PFC circuits or for an embodiment in which power factor correction is combined in a single stage with a downstream voltage regulator or converter.
[0054] The power factor of this embodiment is believed to be lower than that of the previously described embodiments because the instantaneous value of ICOIL only approximates the rectified sinusoidal shape of V - Nevertheless, this version has a low power consumption and can be fabricated at a low cost, which make it suitable for many applications not requiring the highest achievable power factor. In one embodiment, the power factor can be improved by connecting a capacitance across resistor 72. The capacitance is selected to filter out high frequency components, e.g., those above the frequency of VI # to produce a waveform at node 39 that more ideally approximates a rectified sine wave. [0055] FIG. 7 shows a portion of PFC circuit 100 in the embodiment described in FIG. 6, including a resistor 82, a current source 78 and further detail of current mirror 57 of oscillator 35. [0056] Transistors 76-77 are shown as being formed as a matched or scaled pair of NPN bipolar transistors, whose emitter areas are scaled in a predetermined ratio. Current source 78 supplies a current IR through transistor 77 to establish a base- emitter voltage that biases the base electrode of transistor 76 to a fixed potential . [0057] Resistor 82 typically is formed as an external resistor to avoid deleterious effects resulting from the negative potential of current sense voltage VCs when ICOIL is flowing. If transistor 76 and 77 have the same emitter area ratio, their respective emitters operate at substantially the same potential, so current I I is proportional to ICOIL since
Figure imgf000017_0001
ISENSE substantially equals IMι (neglecting 57 base current) and VCs+ (R82*ISENSE) is zero, where the resistance of resistor 82 is R82, and selected to provide a desired sampling current ISENSE through transistor 76. Then
Figure imgf000017_0002
• ISENSE is mirrored by current mirrors 58-59 to provide differential charging and discharging currents (IREFI-IM3) and (IREF2~IMI) / respectively, to timing node 70 as described above. [0058] In summary, the present invention provides a PFC circuit that operates in a discontinuous mode with a fixed switching pulsewidth. The discontinuous mode of operation allows the PFC circuit to be fabricated with low cost blocking diode, which reduces the system cost. A pulse width modulator is synchronized to transition edges of a clock signal to generate pulses that establish a charging period for a coil current. The coil current is then discharged over a discharging period to develop a PFC output voltage from an input signal . An oscillator generates the clock signal so that its clock period is longer than the sum of the charging and discharging periods, thereby ensuring discontinuous mode operation. The oscillator has an input for sensing an input signal of the PFC circuit to modify the clock period in a controlled fashion to maintain the product of the charging period and the duty cycle of the coil current constant. The PFC circuit thereby switches the coil current over a predefined frequency range to facilitate the reduction of electromagnetic interference with a low cost EMI filter.

Claims

CLAIMSWhat is claimed is:
1. A power factor correction (PFC) circuit, comprising: a pulse width modulator operating in response to a clock signal for switching a coil current over a charging period to correct a power factor at a first node, wherein the coil current discharges over a discharging period to develop an output voltage; and an oscillator having an output for generating the clock signal to have a clock period longer than the sum of the charging and discharging periods, and a first input for sensing the input signal of the PFC circuit to modify the clock period.
2. The PFC circuit of claim 1, wherein a load current of the output voltage is constant, the charging and discharging periods are summed over the clock period to define a duty cycle of the coil current, and the input signal modifies the clock period to maintain the product of the duty cycle and the charging period constant.
3. The PFC circuit of claim 1, wherein the input signal of the PFC circuit operates substantially as a rectified sine wave voltage.
4. The PFC circuit of claim 1, wherein the oscillator is formed as a voltage controlled oscillator to include: a ramp generator operating in response to the clock signal and having a second node for supplying a charging current to a capacitance to generate a ramp voltage that increases from a first reference level to a second reference level over the charging period; a comparator for comparing the ramp voltage with first and second reference voltages and having an output coupled to the output of the oscillator; and a current mirror having a first input for receiving an input current representative of the input signal to provide a first mirrored current to the second node for subtracting from the charging current to modify the clock period.
5. The PFC circuit of claim 4, wherein the current mirror provides a second mirrored current for charging the second node and the ramp generator includes : a first current source coupled to the second node for supplying the charging current; and a second current source coupled for discharging the second node with a discharging current from which the second mirrored current is subtracted.
6. The PFC circuit of claim 1, wherein the pulse width modulator has a feedback input coupled for sensing the output voltage to adjust the charging period of the pulses in response to a load current of the PFC circuit.
7. The PFC circuit of claim 1, wherein the output voltage has a higher value than a peak voltage of the input signal.
8. The PFC circuit of claim 1, wherein the input signal is representative of the coil current.
9. The PFC circuit of claim 8, further comprising a sense resistor coupled to the first input of the oscillator for routing the coil current to develop a sense voltage.
10. A power factor correction (PFC) circuit operating in a discontinuous mode, comprising: a pulse width modulator having an input for receiving pulses having pulsewidths representative of a load current of the PFC circuit for charging coil currents that are discharged to develop an output voltage; and an oscillator having an output for generating the pulses at a frequency selected for discharging the coil current to zero, and an input for sensing an input signal of the PFC circuit to modify the frequency.
11. The PFC circuit of claim 10, wherein the output voltage is developed at a node and the pulses have trailing edges for discharging the coil currents to a capacitance of the node to develop the output voltage.
12. The PFC circuit of claim 11, wherein the pulsewidths are substantially equal when the load current is constant.
13. A method of correcting a power factor of an input signal, comprising: generating pulses with a clock signal to establish a charging period for a coil current, wherein a clock period of the clock signal is longer than a sum of the charging period and a discharging period of the coil current; discharging the coil current to zero over the discharging period to develop an output voltage; and sensing the input signal of the PFC circuit to modify the clock period.
14. The method of claim 13, wherein a load current of the output voltage is constant, the charging and discharging periods are summed over the clock period to define a duty cycle of the coil current, and the input signal modifies the clock period to maintain the product of the duty cycle and the charging period constan .
15. The method of claim 14, further comprising: charging a capacitance with a charging current to generate a ramp voltage; comparing the ramp voltage with a first reference voltage to produce the clock signal; and mirroring an input current representative of the input signal to provide a first mirrored current to the capacitance to modify the clock period.
16. The method of claim 15, wherein mirroring includes subtracting the first mirrored current from the charging current to modify the clock period.
17. The method of claim 16, wherein mirroring includes enabling the first mirrored current in response to the first transition of the clock signal,
18. The method of claim 15, wherein charging includes increasing the ramp voltage with the charging current, and comparing includes producing a first transition of the clock signal .
19. The method of claim 15, further comprising: discharging the capacitance with a discharging current to decrease the ramp voltage; and comparing the ramp voltage with a second reference voltage to produce a second transition of the clock signal.
20. The method of claim 18, further comprising mirroring the input current to provide a second mirrored current for subtracting from the discharging current to modify the clock period.
21. A power factor correction (PFC) circuit, comprising: a pulse width modulator operating in response to a clock signal for synchronizing pulses that establish a coil current from an input voltage, where the coil current is discharged to develop an output voltage; and an oscillator having an output for generating the clock signal at a frequency, and an input for sensing the coil current to modify the frequency.
22. The PFC circuit of claim 21, wherein the clock signal goes through first transitions from a first logic level to a second logic level and second transitions from the second logic level to the first logic level, and the pulse width modulator generates the pulses in response to the first transitions.
23. The PFC circuit of claim 21, wherein the pulses have a constant pulsewidth.
24. The PFC circuit of claim 21, further comprising a current path coupled to the input of the oscillator for routing the coil current to develop a sense signal.
25. The PFC circuit of claim 24, wherein the current path includes a resistor across which the sense signal is developed.
PCT/US2003/013859 2003-05-06 2003-05-06 Power factor correction circuit and method of varying switching frequency Ceased WO2004107546A1 (en)

Priority Applications (6)

Application Number Priority Date Filing Date Title
HK06101178.6A HK1081334B (en) 2003-05-06 Power factor correction circuit and method of varying switching frequency
CNB038142376A CN100423417C (en) 2003-05-06 2003-05-06 Power factor calibration circuit and method for switching frequency variation
AU2003228831A AU2003228831A1 (en) 2003-05-06 2003-05-06 Power factor correction circuit and method of varying switching frequency
PCT/US2003/013859 WO2004107546A1 (en) 2003-05-06 2003-05-06 Power factor correction circuit and method of varying switching frequency
US10/512,768 US7123494B2 (en) 2003-05-06 2003-05-06 Power factor correction circuit and method of varying switching frequency
TW093110996A TWI334256B (en) 2003-05-06 2004-04-20 Power factor correction circuit and method of varying switching frequency

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/US2003/013859 WO2004107546A1 (en) 2003-05-06 2003-05-06 Power factor correction circuit and method of varying switching frequency

Publications (1)

Publication Number Publication Date
WO2004107546A1 true WO2004107546A1 (en) 2004-12-09

Family

ID=33488736

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US2003/013859 Ceased WO2004107546A1 (en) 2003-05-06 2003-05-06 Power factor correction circuit and method of varying switching frequency

Country Status (4)

Country Link
CN (1) CN100423417C (en)
AU (1) AU2003228831A1 (en)
TW (1) TWI334256B (en)
WO (1) WO2004107546A1 (en)

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7777474B2 (en) 2006-06-09 2010-08-17 Fujitsu Semiconductor Limited DC-DC converter with oscillator and monitoring function
CN102457175A (en) * 2010-10-29 2012-05-16 英飞特电子(杭州)有限公司 Circuit and method for improving dynamic response speed of PFC circuit
WO2012087337A3 (en) * 2010-12-24 2013-01-03 Semiconductor Components Industries, Llc Power factor controller and method
WO2012109450A3 (en) * 2011-02-10 2013-03-21 Solar Power Technologies, Inc. Dynamic frequency and pulse-width modulation of dual-mode switching power controllers in photovoltaic arrays
EP2512208A3 (en) * 2011-04-13 2014-05-14 Panasonic Corporation Solid light source lighting device and illumination fixture using the same
US9190900B2 (en) 2012-10-15 2015-11-17 Infineon Technologies Ag Active power factor corrector circuit
US9618955B2 (en) 2008-11-07 2017-04-11 Power Integrations, Inc. Method and apparatus to increase efficiency in a power factor correction circuit

Families Citing this family (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7400127B2 (en) * 2005-05-23 2008-07-15 Semiconductor Components Industries, L.L.C. Method for regulating an output signal and circuit therefor
JP4205744B2 (en) * 2006-08-29 2009-01-07 エルピーダメモリ株式会社 CALIBRATION CIRCUIT, SEMICONDUCTOR DEVICE INCLUDING THE SAME, AND METHOD FOR ADJUSTING OUTPUT CHARACTERISTICS OF SEMICONDUCTOR DEVICE
US7969134B2 (en) * 2008-03-27 2011-06-28 Semiconductor Components Industries, Llc Method of forming a power supply controller and structure therefor
US20130182469A1 (en) * 2012-01-16 2013-07-18 System General Corporation Electro-magnetic interference reduction circuit for power converters and method for the same
CN104377951B (en) * 2014-11-12 2017-04-19 广东美的制冷设备有限公司 power factor correction method and device, air conditioner and electric appliance
JP6778267B2 (en) * 2016-08-30 2020-10-28 ヌヴォトンテクノロジージャパン株式会社 Switching power supply and semiconductor device
US10003328B1 (en) * 2017-08-17 2018-06-19 Qualcomm Incorporated Hybrid pulse-width control circuit with process and offset calibration
US11201540B2 (en) * 2019-02-07 2021-12-14 F'real! Foods, Llc Motor control circuit with power factor correction
TWI899771B (en) * 2023-12-26 2025-10-01 全漢企業股份有限公司 Power supply and its control circuit

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5146398A (en) * 1991-08-20 1992-09-08 Led Corporation N.V. Power factor correction device provided with a frequency and amplitude modulated boost converter
EP0582813A2 (en) * 1992-08-10 1994-02-16 International Business Machines Corporation Critically continuous boost converter
EP0585077A1 (en) * 1992-08-25 1994-03-02 General Electric Company Power supply circuit with power factor correction

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR0134914B1 (en) * 1995-06-29 1998-04-25 김광호 Analog oscillation circuit

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5146398A (en) * 1991-08-20 1992-09-08 Led Corporation N.V. Power factor correction device provided with a frequency and amplitude modulated boost converter
EP0582813A2 (en) * 1992-08-10 1994-02-16 International Business Machines Corporation Critically continuous boost converter
EP0585077A1 (en) * 1992-08-25 1994-03-02 General Electric Company Power supply circuit with power factor correction

Cited By (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7777474B2 (en) 2006-06-09 2010-08-17 Fujitsu Semiconductor Limited DC-DC converter with oscillator and monitoring function
US9618955B2 (en) 2008-11-07 2017-04-11 Power Integrations, Inc. Method and apparatus to increase efficiency in a power factor correction circuit
CN102457175A (en) * 2010-10-29 2012-05-16 英飞特电子(杭州)有限公司 Circuit and method for improving dynamic response speed of PFC circuit
WO2012087337A3 (en) * 2010-12-24 2013-01-03 Semiconductor Components Industries, Llc Power factor controller and method
US9484803B2 (en) 2010-12-24 2016-11-01 Semiconductor Components Industries, Llc Method for regulating an output voltage
US9787202B2 (en) 2010-12-24 2017-10-10 Semiconductor Components Industries, Llc Method for regulating an output voltage using a converter configured to operate in a critical conduction mode and a frequency fold-back mode and structure
WO2012109450A3 (en) * 2011-02-10 2013-03-21 Solar Power Technologies, Inc. Dynamic frequency and pulse-width modulation of dual-mode switching power controllers in photovoltaic arrays
EP2512208A3 (en) * 2011-04-13 2014-05-14 Panasonic Corporation Solid light source lighting device and illumination fixture using the same
US8872444B2 (en) 2011-04-13 2014-10-28 Panasonic Corporation Lighting device for solid-state light source and illumination apparatus including same
US9190900B2 (en) 2012-10-15 2015-11-17 Infineon Technologies Ag Active power factor corrector circuit
US9450436B2 (en) 2012-10-15 2016-09-20 Infineon Technologies Ag Active power factor corrector circuit

Also Published As

Publication number Publication date
TW200505137A (en) 2005-02-01
TWI334256B (en) 2010-12-01
HK1081334A1 (en) 2006-05-12
AU2003228831A1 (en) 2005-01-21
CN100423417C (en) 2008-10-01
CN1663101A (en) 2005-08-31

Similar Documents

Publication Publication Date Title
US7123494B2 (en) Power factor correction circuit and method of varying switching frequency
US5180964A (en) Zero-voltage switched FM-PWM converter
US7514912B2 (en) System and method for power controller
CN101908829B (en) power controller
US6970365B2 (en) Controlled frequency power factor correction circuit and method
Jang et al. New two-inductor boost converter with auxiliary transformer
US6049473A (en) Harmonic-injection control technique for three-phase, discontinuous-conduction-mode, high-power-factor boost rectifiers with improved line-transient response
KR100206143B1 (en) High power factor compensation circuit
WO2004107546A1 (en) Power factor correction circuit and method of varying switching frequency
EP2509205A1 (en) Control device of the switching frequency of a quasi-resonant switching converter and related control method.
EP0941570A1 (en) Method and apparatus for automatic average current mode controlled power factor correction without input voltage sensing
JP2004509587A (en) Power factor correction control circuit and power supply including the same
JPH04211813A (en) Power supply having improved power factor correction
Spangler et al. A comparison between hysteretic and fixed frequency boost converters used for power factor correction
CN105099188A (en) DC-DC Converter
Lynch Under the hood of a DC/DC boost converter
CN116076024A (en) Digital On-Time Generation for Buck Converters
Willers et al. A BIFRED converter with a wide load range
Qi et al. Dual-boost single-phase PFC input current control based on output current sensing
Wijeratne et al. A comparative study of two buck-type three-phase single-stage ac–dc full-bridge converters
Qi et al. Dual-boost PFC converter control without input current sensing
CN111355367A (en) Power supply controller with frequency jittering effect and related control method
WO2003050935A1 (en) Controlled frequency power factor correction circuit and method
HK1081334B (en) Power factor correction circuit and method of varying switching frequency
JP2025514168A (en) Power Factor Correction System

Legal Events

Date Code Title Description
ENP Entry into the national phase

Ref document number: 2006087298

Country of ref document: US

Kind code of ref document: A1

WWE Wipo information: entry into national phase

Ref document number: 10512768

Country of ref document: US

AK Designated states

Kind code of ref document: A1

Designated state(s): AE AG AL AM AT AU AZ BA BB BG BR BY BZ CA CH CN CO CR CU CZ DE DK DM DZ EC EE ES FI GB GD GE GH GM HR HU ID IL IN IS JP KE KG KP KR KZ LC LK LR LS LT LU LV MA MD MG MK MN MW MX MZ NI NO NZ OM PH PL PT RO RU SC SD SE SG SK SL TJ TM TN TR TT TZ UA UG US UZ VC VN YU ZA ZM ZW

AL Designated countries for regional patents

Kind code of ref document: A1

Designated state(s): GH GM KE LS MW MZ SD SL SZ TZ UG ZM ZW AM AZ BY KG KZ MD RU TJ TM AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HU IE IT LU MC NL PT RO SE SI SK TR BF BJ CF CG CI CM GA GN GQ GW ML MR NE SN TD TG

WWE Wipo information: entry into national phase

Ref document number: 20038142376

Country of ref document: CN

121 Ep: the epo has been informed by wipo that ep was designated in this application
WWP Wipo information: published in national office

Ref document number: 10512768

Country of ref document: US

122 Ep: pct application non-entry in european phase
NENP Non-entry into the national phase

Ref country code: JP