Correction control module for power factor correction circuit
10732658 ยท 2020-08-04
Assignee
Inventors
Cpc classification
G05F1/70
PHYSICS
H02M1/0009
ELECTRICITY
H02M1/42
ELECTRICITY
Y02P80/10
GENERAL 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
G01R19/0053
PHYSICS
Y02B70/10
GENERAL 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
International classification
G05F1/70
PHYSICS
G01R19/00
PHYSICS
H02M1/42
ELECTRICITY
Abstract
A correction control module for a power factor correction circuit comprises a current sampling unit, an adjustment unit and a control unit. The current sampling unit generates a sampling current based on the operation of a power factor correction circuit. The adjustment unit is connected to the current sampling unit and receives the sampling current. The adjustment unit is composed of a fixed resistance branch and a variable resistance branch connected in parallel with the fixed resistance branch, and the variable resistance and fixed resistance branches receive the sampling current to generate a node voltage. The control unit controls a resistance of the variable resistance branch based on an input voltage and an output voltage of the power factor correction circuit. Thus, an equivalent resistance of the variable resistance branch and the fixed resistance branch is changed according to an operating state of the power factor correction circuit.
Claims
1. A correction control module for a power factor correction circuit, comprising: a current sampling unit, generating a sampling current based on an operation of a power factor correction circuit; an adjustment unit, connected to the current sampling unit and receiving the sampling current, the adjustment unit being composed of a fixed resistance branch and a variable resistance branch connected in parallel with the fixed resistance branch, the variable resistance branch comprising a first field-effect transistor, and the variable resistance branch and the fixed resistance branch receiving the sampling current to generate a node voltage; and a control unit, connected to the power factor correction circuit and the adjustment unit to obtain the node voltage, an input voltage, and an output voltage, the control unit generating a control signal based on the input voltage and the output voltage, the control signal being output to a gate of the first field-effect transistor, causing the first field-effect transistor to operate in a linear mode to change an equivalent resistance of the variable resistance branch and the fixed resistance branch, so that the node voltage being not affected by high or low levels of the input voltage.
2. The correction control module for the power factor correction circuit as claimed in claim 1, wherein the control unit comprises a node voltage input end and a reference potential connection end, one of a plurality of parallel nodes of the variable resistance branch and the fixed resistance branch is connected to the node voltage input end, and the other parallel node is connected to the reference potential connection end.
3. The correction control module for the power factor correction circuit as claimed in claim 1, wherein the variable resistance branch comprises a first resistor connected in series with the first field-effect transistor, and the fixed resistance branch comprises at least one second resistor.
4. The correction control module for the power factor correction circuit as claimed in claim 3, wherein the power factor correction circuit comprises an input capacitor, the current sampling unit comprises at least one third resistor connected to a negative pole of the input capacitor, and an operational amplifier, the operational amplifier comprises a positive input end connected to one end of the third resistor that is not connected to the input capacitor, a negative input end connected to the third resistor and the negative pole of the input capacitor, and an output end connected to the adjustment unit.
5. The correction control module for the power factor correction circuit as claimed in claim 3, wherein the power factor correction circuit comprises a second field-effect transistor, the current sampling unit comprises a first current comparator and a first diode, and the first current comparator comprises a first winding connected in series with a drain of the second field-effect transistor, and a second winding magnetically coupled to the first winding and connected to the first diode.
6. The correction control module for the power factor correction circuit as claimed in claim 5, wherein the power factor correction circuit comprises an output capacitor, and a second diode connected to the output capacitor, a negative pole of the second diode is connected to a positive pole of the output capacitor, the current sampling unit comprises a second current comparator and a third diode, the second current comparator comprises a third winding connected in series with a positive pole of the second diode, and a fourth winding magnetically coupled to the third winding and connected to the third diode.
7. The correction control module for the power factor correction circuit as claimed in claim 3, wherein the power factor correction circuit comprises an output capacitor, and a second diode connected to the output capacitor, a negative pole of the second diode is connected to a positive pole of the output capacitor, the current sampling unit comprises a second current comparator and a third diode, the second current comparator comprises a third winding connected in series with a positive pole of the second diode, and a fourth winding magnetically coupled to the third winding and connected to the third diode.
8. The correction control module for the power factor correction circuit as claimed in claim 1, wherein the power factor correction circuit comprises an input capacitor, the current sampling unit comprises at least one third resistor connected to a negative pole of the input capacitor, and an operational amplifier, the operational amplifier comprises a positive input end connected to one end of the third resistor that is not connected to the input capacitor, a negative input end connected to the third resistor and the negative pole of the input capacitor, and an output end connected to the adjustment unit.
9. The correction control module for the power factor correction circuit as claimed in claim 1, wherein the power factor correction circuit comprises a second field-effect transistor, the current sampling unit comprises a first current comparator and a first diode, and the first current comparator comprises a first winding connected in series with a drain of the second field-effect transistor, and a second winding magnetically coupled to the first winding and connected to the first diode.
10. The correction control module for the power factor correction circuit as claimed in claim 9, wherein the power factor correction circuit comprises an output capacitor, and a second diode connected to the output capacitor, a negative pole of the second diode is connected to a positive pole of the output capacitor, the current sampling unit comprises a second current comparator and a third diode, the second current comparator comprises a third winding connected in series with a positive pole of the second diode, and a fourth winding magnetically coupled to the third winding and connected to the third diode.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(7) The detailed description and technical content of the present invention is described with reference to the accompanying drawings as follows.
(8) Please refer to
(9) On the other hand, the control unit 14 is implemented by an integrated circuit (IC), and the control unit 14 is connected to the power factor correction circuit 200 and the adjustment unit 13 to obtain the node voltage 134, an input voltage 21, and an output voltage 22. Also, the control unit 14 is directly connected to an input point and an output point of the power factor correction circuit 200 to obtain the input voltage 21 and the output voltage 22. Moreover, by using the node voltage 134 as a control reference, the control unit 14 provides a pulse width modulation signal 142 (i.e. PWM signal) to a second field-effect transistor 23 of the power factor correction circuit 200 through a control signal output end 141. Thus, the control unit 14 is able to adjust power factor actively. In addition, the control unit 14 of the present invention generates a control signal 143 based on the input voltage 21 and the output voltage 22, and the control signal 143 is a signal generated by pulse width modulation technique. However, an object being controlled by the control signal 143 is different from that being controlled by the pulse width modulation signal 142. Specifically, the first field-effect transistor 133 is controlled by the control signal 143, and the second field-effect transistor 23 is controlled by the pulse width modulation signal 142.
(10) The control signal 143 is output to a gate 135 of the first field-effect transistor 133. The first field-effect transistor 133 is controlled by the control signal 143 to operate in a linear mode (or ohm mode). Resistance of the first field-effect transistor 133 is changed according to the control of the control signal 143, thereby causing a change in a resistance of the variable resistance branch 132. Thus, the equivalent resistance of the variable resistance branch 132 and the fixed resistance branch 131 is changed. Also, when a high voltage is input into the correction control module 100 from the power factor correction circuit 200, the correction control module 100 is capable of preventing current harmonic distortion from being generated since the node voltage 134 is not affected even though the sampling current 110 is decreased. Therefore, power factor correction of the power factor correction circuit 200 is optimized.
(11) Please refer to
(12) Please refer to
(13) Moreover, the input voltage 21 mentioned above is regarded as the voltage which is input by the power factor correction circuit 200. In addition, please refer to