The present invention relates to an improved power filter circuit, particularly to an improved power filter circuit, which can still maintain a superior output power factor under the influenced of load variation and power supply instability.
With the advance of science and technology, people rely on electrical energy more and more, and electrical power has been a dispensable resource for modem life. Before, people were to be contented as long as there was no scarcity of electrical power. However, owing to the uprise of the living standard and the upgrade of the scientific-technological industry, high-quality power supply has been the common target of all countries. In many countries, the traditional industry has been evolved into the high-technology and high-added-value industry, and it means that various precision equipments have been extensively used; therefore, the requirement of electrical power has also changed, and in addition to purchasing the uprise of power supply quantity, users also pay much attention to the quality of power supply. For power supply quantity, building a multitude of power plants is not the only way to solve the power problem; promoting the power factor or the power efficiency of various electrical products is also an effective method. At present, most electrical equipments utilize direct current directly or indirectly; however, owing to generator systems and the need of power transmission, power plants provide alternating current. Therefore, users have to transform alternating current into direct current with AD/DC converter. Owing to low cost and simple structure, the common AD/DC converter is the diode bridge rectifier, which needs only four diodes. Refer to
The main function of a power filter circuit is to make voltage and current in-phase and make a load perform like a resistor, and the abovementioned function can be implemented with various circuit designs, which can be divided into passive power filter circuits and active power filter circuits. Both of them are to be described below:
In conclusion, the conventional passive and active power filter circuits of power supplies respectively have the problems of noise, lower energy conversion efficiency, and complicated circuit, which makes them unsuitable for use.
The primary objective of the present invention is to improve the power factor of power supplies in order to meet the electrical standard and save fabrication cost.
To achieve the abovementioned objective, the present invention proposes an improved power filter circuit of power supplies, which integrates the passive power filter circuit and the active power filter circuit, wherein via designing the configuration of the circuit, the present invention combines the advantages of the passive power filter circuit and the active power filter circuit and avoids the disadvantages thereof; the active power filter circuit can offset the current phase advance or the current phase lag, which the passive power filter circuit can not solve; the improved power filter circuit of the present invention is electrically coupled to a rectifier having AC input terminals and DC output terminals; two filter capacitors are coupled to the DC output terminals of the rectifier; a power source filter circuit, which extends the current switch-on time that the DC current from the DC output terminals charges those two filter capacitors, is installed to the AC input terminals or the DC output terminals of the rectifier; the power source filter circuit further comprises: a first power factor regulating circuit, which creates a harmonic oscillation effect corresponding to the filter capacitors to have a first extended current switch-on time; and a second power factor regulator, which utilizes boosted voltage to force the filter capacitors to store electrical energy and has a second extended current switch-on time to offset the first extended current switch-on time.
As shown in
The second power factor regulating circuit 16 further comprises:
A front voltage-booster loop 162, further comprising: a voltage-booster inductor winding L2, a power transistor Q3, and a diode D1, and used to raise the voltage output by the rectifier 15 to the rated value at which electrical energy can be stored in those two filter capacitors C5, C6 in order to offset the current phase advance or the current phase lag, which the first power factor regulating circuit 14 cannot solve, so that there is always current created during the whole voltage cycle, and the front voltage-booster loop 162 advances the first extended current switch-on time and postpones the second extended current switch-on time;
A current-limiting protection loop 163, used to limit the output power (watt) of the second power factor regulating circuit 16;
An overvoltage protection loop 164, used to limit the output voltage of the second power factor regulating circuit 16;
An error-amplifying loop 165, used to detect the terminal voltages of the filter capacitors C5, C6;
A line current-detecting loop 166, used to detect the current, which charges the filter capacitors C5, C6; and
A PWM controller 167, used to regulate the output of the front voltage-booster loop 162.
The operation process of the second power factor regulating circuit 16 is described as follows: when AC power is input from power terminals 10 and passes through the overload protection circuit 11, surge current limitation circuit 12, first filter circuit 13, and first power factor regulating circuit 14, it is rectified by the rectifier 15 (otherwise, a rectifier may also be installed between the power source terminals 10 and the front voltage-booster loop 162); the power transistor Q3 of the front voltage-booster loop 162 raises the voltage output by the rectifier 15 from voltage-booster inductor winding L2 to the rated value; the PWM controller 167 receives the detected parameters from the current-limiting protection loop 163, overvoltage protection loop 164, error-amplifying loop 165, and line current-detecting loop 166 and then performs comparisons and calculations to work out the working bandwidth to control the power transistor Q3 so that the power output by the second power factor regulating circuit 16 can be maintained within the rated value.
The process of creating and acquiring the parameters is described as follows:
After the front voltage-booster loop 162 sends out the rated voltage a and the rated current b″ with the waveforms shown in
The working power source output by the second filter circuit 17 is sent into the voltage transformer 19 via the power source push circuit 18 to be converted into the working power sources of different voltages therein; the working power sources of different voltages are separately processed by the output rectifier 20, which is coupled to the secondary side of the voltage transformer 19, and then respectively filtered by their own output filter circuits 23, 24 and then sent out. The working power source is also bypassed to the power source feedback circuit 21 so that according to the values calculated from the feedback signals, the controller IC 211 of the power source feedback circuit 21 can modify the working bandwidth of the gates of the power transistors Q1, Q2 and control the power that the power transistors Q1, Q2 output to the voltage transformer 19. The controller IC 211 is powered by the VCC power source circuit 22, and the VCC power source circuit 22 is further powered by a 5V-output STB working power source.
In summary, the improved power filter circuit of the present invention combines the advantages of the passive power filter circuit and the active power filter circuit and to meet the requirements of the electrical standard and achieve the objectives of small size and low fabrication cost.
The present invention has been described above with those preferred embodiments; however, it is not intended to limit the scope of the present invention, and any equivalent modification and variation according to the spirit of the present invention is still to be included within the scope of the present invention, and the scope of the present invention is defined in the claims stated below.
Number | Date | Country | Kind |
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094102829 | Jan 2005 | TW | national |