The present application is a national stage entry according to 35 U.S.C. §371 of PCT application No.: PCT/EP2008/050945 filed on Jan. 28, 2008, which claims priority from Chinese application No.: 200710005804.0 filed on Feb. 25, 2007.
The present invention relates to a charge pump electronic ballast.
In recent years, the electronic ballast using charging capacitor and high frequency AC source for power factor correction (PFC) has become a very attractive circuit topology. The charging capacitor adjusts the waveform of the input current in a way similar to a “charge pump”, so such kind of circuit is also called “charge pump” power factor regulator.
Said charge pump electronic ballast is usually designed with respect to the input voltage of 220V-240V, but when the input voltage is 220V-240V, there is a high voltage stress during the ignition of a lamp.
In some cases of application, however, the input voltage, i.e. the output voltage of the AC source is usually a low voltage such as 127V, so there is a need for a charge pump electronic ballast circuit for use with low input voltage, which could solve the problem of high voltage stress and is cost-effective and simple.
The aim of the present invention is to provide a simple charge pump electronic ballast for use with low input voltage.
According to one embodiment of the present invention, a charge pump electronic ballast for use with low input voltage is provided. Said charge pump electronic ballast comprises a DC/AC inverter circuit composed of two switching transistors, a resonant circuit composed of a resonant inductor and a resonant capacitor, and further comprises a voltage multiplying rectifying circuit for transforming low input AC voltage into high output DC voltage, and a charge pump circuit composed of an inductor and a first pump capacitor.
In a preferred embodiment, one terminal of said first pump capacitor is coupled to a first input of the voltage multiplying rectifying circuit and is coupled to an output of the AC power supply via the inductor of said charge pump circuit, and the other terminal of said first pump capacitor is coupled to said resonant capacitor via a lamp, with a second input of the voltage multiplying rectifying circuit being coupled to the other output of said AC power supply.
In a preferred embodiment, said voltage multiplying rectifying circuit is a voltage doubling rectifying circuit composed of two diodes and two capacitors.
In a preferred embodiment, the connection point of said two diodes is the first input of said voltage multiplying rectifying circuit, the connection point of said two capacitors is the second input of said voltage multiplying rectifying circuit, and two terminals of the parallel circuit composed of a first half-bridge including said two diodes and a second half-bridge including said two capacitors are the outputs of said voltage multiplying rectifying circuit.
In a preferred embodiment, said charge pump electronic ballast further comprises a shutdown protection circuit which has a thyristor.
In a preferred embodiment, said charge pump electronic ballast further comprises a first resistor having one terminal coupled to said other terminal of the first pump capacitor and the other terminal coupled to the anode of the thyristor, and it further comprises a second resistor having one terminal coupled to said other terminal of the first pump capacitor and the other terminal coupled to a output of the voltage multiplying rectifying circuit.
In a preferred embodiment, a third diode and a fourth diode are provided to be coupled between the first half-bridge and the outputs of the voltage multiplying rectifying circuit respectively, wherein said third diode and fourth diode and the two diodes of the first half-bridge are in series aiding connection, and said charge pump electronic ballast further comprises a second pump capacitor having one terminal coupled to said other terminal of the first pump capacitor and having the other terminal coupled to the connection point of the first half-bridge and the fourth diode.
The present invention will be illustrated in detail below with reference to the figures, wherein
The present invention will be described in detail by means of embodiments in conjunction with the figures.
Such a circuit structure avoids the high voltage stress in the bus during the ignition period, because if the lamp is not ignited, the charge pump circuit does not work at all, while after the lamp has been ignited, the resonant capacitor C4 will be a high frequency AC source to implement the power factor correction together with the pump capacitor C3.
When the input voltage is 127V and the input power is 35.4 W, ideal experimental results are obtained by using the charge pump electronic ballast according to the present invention, i.e. PF (Power Factor)=0.96, THD (Total Harmonic Distortion)=6.5%, Ilamp rms=295.3 mA, CF (Crest Ratio)=1.6, and Vbus=385V.
Currently, many popular ballasts are provided with shutdown protection circuits, most of which use thyristor as the core component. In this circumstance, the ballast circuit has to provide enough holding current for the thyristor to maintain the shutdown protection circuit, because when the thyristor is switched on, if the main loop current, i.e. the holding current decreases to be close to zero, the thyristor will be switched off, and the shutdown protection circuit will be released.
In the charge pump electronic ballast as shown in
In the charge pump electronic ballast of the present invention, a large pump capacitor C3 is used to obtain better performance of the charge pump electronic ballast. But on the other hand, the pump capacitor C3 has a great influence on the holding current. The larger the pump capacitor C3 is, the larger the obtained modulated current becomes. If such modulated current is large enough to pull the holding current of thyristor D3 down to zero, the thyristor will be switched off and the shutdown protection circuit will be open.
Therefore, in order to solve this problem, an improved charge pump electronic ballast having a shutdown protection circuit according to the present invention is provided as shown in
While the present invention has been described with reference to various illustrative embodiments thereof, the present invention is not intended that the invention be limited to these specific embodiments. Those skilled in the art will recognize that variations, modifications, and combinations of the disclosed subject matter can be made without departing from the spirit and scope of the invention as set forth in the appended claims.
Number | Date | Country | Kind |
---|---|---|---|
2007 1 0005804 | Feb 2007 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/EP2008/050945 | 1/28/2008 | WO | 00 | 8/25/2009 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2008/101764 | 8/28/2008 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
4398126 | Zuchtriegel | Aug 1983 | A |
5400241 | Bergervoet | Mar 1995 | A |
5955841 | Moisin et al. | Sep 1999 | A |
6034489 | Weng | Mar 2000 | A |
6198231 | Schemmel et al. | Mar 2001 | B1 |
6316883 | Cho et al. | Nov 2001 | B1 |
6603274 | Ribarich et al. | Aug 2003 | B2 |
6642670 | Zhang et al. | Nov 2003 | B2 |
7061781 | Heckmann et al. | Jun 2006 | B2 |
7154227 | Heckmann | Dec 2006 | B2 |
7626344 | Alexandrov | Dec 2009 | B2 |
20020140373 | Ribarich et al. | Oct 2002 | A1 |
Number | Date | Country |
---|---|---|
3503778 | Nov 1986 | DE |
4425823 | Jan 1996 | DE |
1023761 | Jan 1989 | JP |
6215885 | Aug 1994 | JP |
10271831 | Oct 1998 | JP |
Entry |
---|
English language abstract for DE 3503778C2, Aug. 7, 1986. |
International Search Report of PCT/EP2008/050945 mailed Jun. 5, 2009. |
English language abstract for DE 4425823A1, Jan. 11, 1996. |
English Abstract of JP1023761 A. Jan. 26, 1989. |
English Abstract of JP10271831 A. Oct. 9, 1998. |
Number | Date | Country | |
---|---|---|---|
20110006700 A1 | Jan 2011 | US |