The present invention relates to a hot cathode type discharge lamp lighting device capable of performing stable discharge operation and nonstep dimming control.
There has conventionally been provided a discharge lighting device capable of performing dimming control of a hot cathode type discharge lamp such as a fluorescent lamp. In the case of dimming, as a tube current is decreased (dimming level is increased), a filament temperature is decreased, and as the tube current is further decreased, discharge cannot be maintained, which in turn causes moving striations and flickering.
A conventional device addressing such a problem is described in, for example, Patent document 1. As illustrated in
Patent document 1: Japanese Unexamined Patent Publication No. 1995-211478
Patent document 2: Japanese Unexamined Patent Publication No. 2001-357994
However, the above conventional example separately requires a power supply for controlling a tube current of a discharge lamp and that for controlling a filament current, and therefore has a problem that a circuit becomes complicated, and the number of parts is increased, resulting in an increase in cost.
In order to solve the above-described problem, the present invention is configured as one-converter power supply configuration, and has an object to provide a hot cathode type discharge lamp lighting device capable of ensuring stable discharge operation of a discharge lamp and simultaneously performing nonstep dimming control by increasing a filament current in response to a decrease in a tube current upon dimming.
1. In order to accomplish the above-described object, a first aspect of the present invention has: an oscillation control circuit for determining a frequency with time constant of R and C; a L-C series resonant circuit connected to a half-bridge or a full bridge circuit operating at said frequency; and a circuit in which one ends of hot cathode filaments at both ends of a hot cathode type discharge tube are respectively connected to both ends of a resonant capacitor, and a capacitor is further connected to other ends of the filaments at the both ends of the hot cathode type discharge tube to perform lighting; whereby (nonstep dimming) of a tube current is achieved by changing the oscillation frequency with a DC dimming control voltage by use of a variable capacitance diode as a capacitor for determining the frequency of the oscillation control circuit. Also, by simultaneously changing the tube current and a filament current of the hot cathode type discharge lamp in one-converter power supply configuration, and increasing the filament current as the tube current is decreased upon dimming, a reduction of a filament temperature can be prevented to maintain stable discharge. Simultaneously with this, the invention is characterized in that the capacitor (including a variable capacitance diode) for determining the oscillation frequency of the oscillation control circuit is configured by a plurality of parallel-connected capacitors; and by switching between these capacitors, a sufficient preheat current is ensured, and stable operation is performed.
According to the present invention, differently from multiple-converter power supply configuration in the conventional example, by employing the one-converter power supply configuration in which the L-C series resonant circuit is connected to the half-bridge or the full-bridge circuit, and increasing the filament current along with the nonstep dimming and the decrease in tube current upon the dimming, the reduction of the filament current can be prevented to maintain the stable discharge. Simultaneously with this, by arbitrarily setting the preheat current, the hot cathode type discharge lamp lighting device capable of achieving an increase in lifetime of a discharge lamp and stable lighting operation can be provided.
2. A second aspect of the present invention is characterized in that, in the first aspect of the present invention, the dimming (PWM dimming) is achieved by performing ON/OFF operation of capacitance of the capacitors at a frequency as low as 100 to 300 Hz, and controlling a time ratio of said ON/OFF.
According to the present invention, by using with the DC control dimming in the first aspect of the present invention, a hot cathode type discharge lamp lighting device capable of ensuring a wide dimming range and maintaining the stable discharge operation upon the dimming can be provided.
3. A third aspect of the present invention is characterized in that, in the second aspect of the present invention, a rise part of a power supply voltage fed from outside is detected, and by decreasing the capacitance of the capacitor for determining the oscillation frequency of the oscillation control circuit for a period of a few milliseconds in the rise part, the oscillation frequency is increased only during the period to suppress an overshoot voltage of a tube voltage of the hot cathode type discharge lamp.
According to the present invention, a hot cathode type discharge lamp lighting device capable of easily suppressing overshoot of rise waveforms of the tube voltage and the filament current in the rise part of the L-C series resonant circuit in the first aspect of the present invention by switching the capacitor with a transistor.
4. A fourth aspect of the present invention is characterized in that, in the first aspect of the present invention, a frequency smoothing circuit for gradually changing the frequency during a transition period from a preheating period to lighting operation of the discharge lamp is added to prevent lighting trouble and simultaneously reduce an overshoot voltage of a tube voltage. According to the present invention, by making gradual a rise waveform of a current flowed through the variable capacitance diode, a peak point of a series LC resonant circuit frequency-gain curve can be surely passed through to make a transition to a lighting frequency in the process of the transition of the frequency from a preheat frequency to the lighting frequency, and therefore a hot cathode type discharge lamp lighting device that prevents the lighting trouble and simultaneously reduces the overshoot voltage of the tube voltage can be provided.
5. A fifth aspect of the present invention is characterized in that, in the first aspect of the present invention, DC control and PWM control of the dimming can be performed.
According to the present invention, regarding the dimming in a range in which the tube current is large, the DC control dimming is performed, whereas in a range in which the tube current is small, the PWM dimming is performed, and thereby a discharge lamp lighting device characterized by being capable of achieving both ensuring of a variable range of the dimming, and stable discharge operation can be provided.
6. A sixth aspect of the present invention is characterized by, in the first aspect of the present invention, having a function of amplifying and determining detection signals for high-pressure side/low-pressure side open detection/protection, high-pressure side overvoltage protection, tube overcurrent protection, and high-pressure side leakage protection of the hot cathode type discharge tube to stop operation of a separately-excited PWM oscillation control integrated circuit. According to the present invention, a discharge lamp lighting device characterized by ensuring safety for leak current, tube voltage rise, and rube current rise due to filament disconnection in the hot cathode type discharge tube can be provided.
7. A seventh aspect of the present invention is characterized in that, in the first aspect of the present invention, the resonant capacitor of the series resonant output circuit is configured by a plurality of parallel-connected capacitors; by switching between these capacitors, the resonant frequency of the output circuit is changed; and by respectively optimizing a frequency-gain curve of the series LC resonant circuit for preheating and lighting, the preheat current and the tube current of the discharge lamp are optimized to surely perform the lighting.
According to the present invention, by switching between the resonant capacitors to respectively optimize the frequency-gain curve of the series LC resonant circuit for the preheating and the lighting, optimum gains respectively for the preheating and the lighting can be obtained, and the large preheat current and the tube current can be obtained. Also, by, after the switching between the resonant capacitors, changing the oscillation frequency of the oscillation circuit to perform the lighting operation, the hot cathode type discharge lamp is lit just before a peak frequency of the series L-C resonant circuit frequency-gain curve is reached, and simultaneously the peak frequency of the L-C resonant circuit frequency-gain curve is set to the same as a frequency upon the lighting, whereby a hot cathode type discharge lamp lighting device capable of preventing lighting failure due to peak skip to surely perform the lighting can be provided.
8. An eighth aspect of the present invention is characterized in that, in the first aspect of the present invention, the capacitor connected in series to the filaments of the discharge lamp is configured by a plurality of parallel-connected capacitors, and by switching between these capacitors, the filament current for the lighting is adjusted to an adequate value. According to the present invention, the filament current for the lighting operation can be set to any adequate value, and therefore a discharge lamp lighting device characterized by being capable of maintaining stable discharge of a hot cathode type discharge lamp upon dimming and achieving a long life time can be provided.
9. A ninth aspect of the present invention is characterized by, in the first to eighth aspects of the present invention, being capable of parallel connecting two or more series LC resonant circuits to a stage subsequent to the separately-excited oscillation control circuit and the half-bridge or full-bridge circuit. According to the present invention, by making a multiple parallel connection of the series L-C resonant circuits and discharge lamps, a multiple-discharge-lamp device can be easily achieved and provided.
The present invention has the one-converter power supply configuration in which the L-C series resonant circuit is connected to the half-bridge or full-bridge circuit, differently from the conventional configuration including a plurality of converter power supplies, and has an effect capable of preventing the reduction in the filament temperature to maintain the stable discharge by increasing the filament current along with the nonstep dimming and the decrease in tube current upon the dimming.
Regarding the dimming, the DC control and the PWM control are combined, and thereby the present invention has an effect capable of obtaining the wide dimming range.
The present invention can arbitrarily set the preheat current, and therefore has an effect capable of achieving the increase in lifetime of the discharge lamp and the stable lighting operation.
By starting from a high oscillation frequency upon activation of the power supply, the present invention can suppress the overshoot of the tube voltage. Also, by adding the frequency smoothing circuit for gradually changing the frequency during the transition period from the preheating period to the lighting operation of the discharge lamp, the present invention has an effect of preventing the lighting trouble and simultaneously reducing the overshoot voltage of the tube voltage.
By detecting the leak current, tube voltage rise, and tube current rise due to the filament disconnection in the hot cathode type discharge tube to stop oscillation of a separately-excited PWM control IC, the present invention has an effect of enhancing safety.
By switching between the resonant capacitors to respectively optimize the series L-C resonant circuit frequency-gain curve for the preheating and the lighting, the present invention can respectively obtain the adequate gains for the preheating and the lighting, and the large preheat current and the tube current. Also, the present invention can set the peak frequency of the series L-C resonant circuit and the frequency upon the lighting close to each other, and therefore has an effect capable of surely performing the lighting operation of the hot cathode type discharge lamp just before the peak frequency of the series L-C resonant circuit frequency-gain curve is reached by changing the oscillation frequency of the oscillation circuit to perform the lighting operation after the switching between the resonant capacitors.
By configuring the capacitor connected in series to the filaments of the hot cathode type discharge lamp by the plurality of parallel-connected capacitors, and ON-OFF switching between these capacitors to adjust the filament current upon the lighting to the adequate value, the present invention has an effect capable of maintaining the stable discharge of the discharge lamp upon the dimming.
By making a multiple parallel connection of the series L-C resonant circuits to the stage subsequent to the separately-excited oscillation control circuit and the half-bridge or full-bridge circuit, the present invention has an effect capable of easily achieving and providing the multiple-discharge-lamp device.
A first embodiment of the present invention is described below on the basis of
The half-bridge series resonant circuit 2 is configured by connecting a DC cut capacitor C1, a resonant coil L1, and a resonant capacitor C2 in series. An output of the half-bridge series resonant circuit 2 is connected to a high-pressure side filament F1 of a discharge lamp 1. Also, a low-pressure side filament F2 of the discharge lamp 1 is connected to ground through an overcurrent detecting resistor R3. The other terminals of the filaments F1 and F2 of the discharge lamp 1 are connected to a capacitor C3 for determining a filament current. Both ends of the resonant capacitor C2 are respectively connected with overvoltage detecting capacitors C4 and C5, and a midpoint between the capacitors C4 and C5 is inputted, through a diode D3, to an OP amplifier IC4 for amplifying a protection circuit detection signal. Also, a high frequency noise component generated when the filament F1 or F2 is disconnected to cause a leak current is differentiated by a capacitor C6 and a resistor R1, then integrated by a diode D2, a resistor R19, and a capacitor C17, and converted into a DC voltage, which is inputted as a detection signal to the OP amplifier IC4 for amplifying a protection circuit detection signal. Between a low-pressure side of the resonant capacitor C2 and ground, the overcurrent detecting resistor R3 is connected, and a voltage generated between both ends of the overcurrent detecting resistor R3 is inputted to the OP amplifier IC4 for amplifying a protection circuit detection signal through a diode D1 as an overcurrent detection signal. Also, between an intersection of the filament F2 and the capacitor C3, and the half-bridge power supply, a resistor R18 for detecting disconnection of the filament F2 is connected, and the above intersection with the filament F2 is inputted, through a diode D4, to the OP amplifier IC4 for amplifying a protection circuit detection signal. An output of the OP amplifier IC4 for amplifying a protection circuit detection signal is inputted to the latch protection circuit 6 and an IC2 including a protection circuit mask circuit 11.
After termination of the preheating period, an output voltage at Point A of the reset integrated circuit IC13 of the preheating period control circuit 12 in
Next, dimming operation is described. As a dimming DC control signal 13 in
If the tube current is decreased too much by increasing the dimming DC control voltage, weak discharge occurs in which regular discharge cannot be maintained, and therefore flickering and moving striations may appear, resulting in extinction. As a measure for this, as illustrated in
Next, operation of an abnormality detecting circuit 4 in
Next, disconnection protection operation for the filaments F1 and F2 is described. The capacitor C3 side of the low-pressure side filament F2 of the discharge lamp 1 is pulled up to a power supply voltage of 200 V by the resistor R18. The intersection voltage between the filament F2 and the capacitor C3 becomes [200 V×(resistance value of the resistor R3+resistance value of the filament F2)/resistance value of the resistor R18]. The resistance value of the resistor R18 is preset to a value sufficiently larger than (resistance value of the resistor R3+resistance value of the filament F2). A bias voltage to the filament F2 is inputted to the OP amplifier IC4 through the diode D4. If the filament F2 is made highly resistive or disconnected by some problem, the input voltage of the OP amplifier IC4 is increased, and therefore as described above, the oscillation stop state of the separately-excited PWM control integrated circuit IC1 is maintained. On the other hand, if the high-pressure side filament F1 is made highly resistive or disconnected, the tube current is increased and the above-describe overvoltage protection circuit is operated. As described above, the present invention is characterized by using both of the overvoltage protection circuit of a capacitor voltage dividing system and the bias voltage detecting circuit for the low-pressure side filament F2, and based on this, can easily detect disconnection of the high- and low-pressure side filaments F1 and F2 with accuracy.
Next, operation of the overcurrent protection circuit is described. The resistor R3 is an overcurrent detecting resistor, through which the tube current+filament current flow. The voltage generated between the both ends of the resistor R3 is inputted to the OP amplifier IC4 through the diode D3. If the tube current or the filament current of the discharge lamp 1 is increased by some abnormality, and thereby the voltage between the both ends of R3 becomes some threshold or more, the output of the OP amplifier IC4 becomes 14 V to operate the above-described latch protection circuit 6, and therefore the oscillation stop state of the separately-excited PWM control integrated circuit IC1 is maintained.
Next, operation of the leak current protection circuit is described. Differential detection of a high frequency leak current noise component, which is caused by leakage due to disconnection of the filament F1 or F2 of the discharge lamp 1, high-pressure side pattern foil disconnection, or the like, is performed with the capacitor C6 and the resistor R1; the detected value is integrated with the resistor R19 and the capacitor C17; and the integrated value is defined as a detection voltage. If the detection voltage becomes equal to or more than some threshold, the output of the OP amplifier IC4 becomes 14 V, so that the above-described latch protection circuit 6 is operated, and therefore the oscillation stop state of the separately-excited PWM control integrated circuit IC1 is maintained.
In the following, a second embodiment of the present invention is described on the basis of
In the following, a third embodiment of the present invention is described on the basis of
In the following, a fourth embodiment of the present invention is described on the basis of
As described above, a discharge lamp lighting device according to the present invention can achieve stable driving and dimming of a low-cost high-efficiency discharge lamp at low cost, and is therefore useful for lighting devices of various home appliances, and a LCD backlight device.
Number | Date | Country | Kind |
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2006-335103 | Nov 2006 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2007/071863 | 11/5/2007 | WO | 00 | 5/4/2009 |