The present invention relates to a method for controlling an inverter under altering voltage and particularly to a method to change the electric conductive interval of the electric conductive cycle of the inverter to maintain the existing dimming range and stabilize actuating electric output and protect the life span of transformers and loads.
Backlight module is a key element of the actuating light source of a display panel. Besides, providing a lighting source, the dimming function to alter the actual light projection effect in response to the environment illuminating condition is the basic function of the backlight module in practical applications.
The actuating electric source for the backlight modules now on the market mostly adopts high voltage inverters. They can be classified in current feeding push-pull parallel resonant inverters and single stage inverters. The transformers used in the inverters include winding transformers and piezoelectric transformers. Their duty cycle waveforms are shown in
1. As the dimming duty cycle is squeezed, the actual applicable dimming range of the backlight module is affected. As shown in
2. The oscillation amplitude of the transformer and actuator is changed (such as from 10V to 20V) when the input voltage is altered. This will shorten the life span of the transformer and actuator.
3. When the input voltage fluctuates greatly and is not stable, the lamp current of the cold cathode lamp will generate a higher waveform factor. As a result, blacking phenomenon is easily occurred to the ignition end of the cold cathode lamp.
Therefore the primary object of the present invention is to solve the aforesaid disadvantages occurred to the conventional techniques of altering dimming duty cycle under the varying input voltage. The present invention alters the electric conductive interval of the electric conductive cycle without changing the dimming duty cycle, electric conductive cycle and transformer oscillation duty cycle to maintain the existing dimming range and a constant voltage amplitude oscillation of the transformer, and generate symmetrical and even lamp current on the load (cold cathode lamp) so that the life span of the transformer and load can be maintained without suffering.
The foregoing, as well as additional objects, features and advantages of the invention will be more readily apparent from the following detailed description, which proceeds with reference to the accompanying drawings.
Please refer to
A. A first controller 1 to receive an external dimming signal 11 to determine dimming duty cycles 1i, 1k, 1p, and 1r. The first controller 1 is a pulse-width modulation (PWM) impulse signal generator. The external dimming signal 11 is set by users through an external dimming knob. As shown in
B. A second controller 2 to receive the dimming duty cycles 1l, 1k, 1p and 1r, and the input voltage 7 and respond to operating conditions of a transformer 4 of an inverter to determine output electric conductive cycles 2i, 2k, 2p and 2r. The second controller 2 is a PWM frequency generator or a micro-controller 10 integrated with the first controller 1. The circuit of the embodiment adopts a piezoelectric transformer 4. Depending on the size of the input voltage 7, the second controller 2 may be coupled with a floating voltage level device 21. In
C. An actuator 3 to receive the electric conductive cycles 2i, 2k, 2p and 2r to determine oscillation duty cycles 3i, 3k, 3p and 3r to be output to the transformer 4 of the inverter. The actuator 3 may be a double-switch power transistor, and generates the sinuous oscillation duty cycles 3i, 3k, 3p and 3r through the charging effect of an inductor 41. As shown in
D. When the input voltage 7 alters, the invention provides a preset reference electricity value, and compares with the input voltage 7 and outputs a modulated signal to an electricity detector 6 of the second controller 2, and according to the alteration of the input voltage 7, changes the electric conductive interval of the electric conductive cycles 2i, 2k, 2p and 2r based on the oscillation duty cycles 3i, 3k, 3pand 3r of the transformer 4 at step C. The electricity detector 6 may be a linear logic circuit containing a comparator or a comparison circuit of a micro-controller 10 integrally built in the second controller 2, or a micro-controller 10 formed by integrating the first controller 1, second controller 2 and electricity detector 6. At step D, a feedback electricity 51 may be obtained and make the union comparison with the input voltage 7 to determine the electric conductive interval of electric conductive cycles 2j, 2m, 2q and 2u. Meanwhile, the electricity detector 6 is a linear logic circuit of a window type comparator. The determination criteria of union are divided as follows:
D1: When the feedback electricity 51 and the input voltage 7 are unchanged, the dimming duty cycles 1i, 1k, 1p and 1r and the electric conductive interval of the electric conductive cycles 2l, 2k, 2p and 2r remained unchanged.
D2: When the feedback electricity 51 alters, but the input voltage 7 is unchanged, the dimming duty cycles 1i, 1k, 1p and 1r are changed according to the alteration of the feedback electricity 51. But the electric conductive interval of the electric conductive cycles 2l, 2k, 2p and 2r remained unchanged. This situation mostly occurs to the lamp current of a cold cathode lamp 5 having an abrupt and a short abnormal condition or damage. In such an occasion, return to the normal condition usually takes place. If return to the normal condition fails, the cold cathode lamp 5 could be damaged and has to be replaced.
D3: When the feedback electricity 51 remained unchanged, but the input voltage 7 alters, dimming duty cycles 1j, 1m, 1q and 1u remain unchanged. The electric conductive interval of the electric conductive cycles 2j, 2m, 2q and 2u are altered according to alteration of the input voltage 7.
D4: When the feedback electricity 51 and the input voltage 7 are changed, the dimming duty cycles 1i, 1k, 1p and 1r remain unchanged. The electric conductive interval of the electric conductive cycles 2j, 2m, 2q and 2u are altered according to alteration of the input voltage 7 if the allowing range of the actuator 3 is not exceeded. If the allowing range of the actuator 3 is exceeded, the dimming duty cycles 1j, 1m, 1q and 1u are changed according to alteration of the feedback electricity 51, and the electric conductive interval of the electric conductive cycles 2j, 2m, 2q and 2u are altered according to alteration of the input voltage 7.
Based on the determination criteria of D3 and D4 previously discussed, also referring to
E: The electric conductive cycles 2j, 2m, 2q and 2u are generated after the electric conductive interval depicted at step D has been altered. Under the charge and discharge effect of the inductor 41, the oscillation duty cycles 3j, 3m, 3q and 3u of the transformer 4 remain unchanged. The oscillation voltage amplitude also is maintained at 10V. Namely, the transformer 4 oscillates under the same voltage amplitude. Hence the life span of the transformer 4 can be maintained, and the lamp current of the cold cathode lamp 5 is maintained constant. Therefore blacking of one end can be reduced, and the service life of the cold cathode lamp 5 increases.
While the preferred embodiments of the invention have been set forth for the purpose of disclosure, modifications of the disclosed embodiments of the invention as well as other embodiments thereof may occur to those skilled in the art. Accordingly, the appended claims are intended to cover all embodiments which do not depart from the spirit and scope of the invention.
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