The present invention relates to a current-supplying circuit and a current-controlling circuit, and more particularly to a LED current-supplying circuit and a LED current-controlling circuit.
In recent years, light emitting diodes (LEDs) capable of emitting light with high luminance and high illuminating efficiency have been developed. In comparison with a common incandescent light, a LED has lower power consumption, long service life, and quick response speed. With the maturity of the LED technology, LEDs will replace all conventional lighting facilities. Until now, LEDs are widely used in many aspects of daily lives, such as automobile lighting devices, handheld lighting devices, backlight sources for LCD panels, traffic lights, indicator board displays, and the like.
When an electronic device (e.g. a LCD panel) having multiple LED strings is operated, the currents passing through all LED strings shall be identical for a purpose of obtaining uniform brightness. Due to different inherent characteristics of these LED strings, the currents passing therethrough are not identical and the brightness is usually not uniform. Therefore, the use life of individual LED string is shortened or even the whole electronic device has a breakdown.
For obtaining uniform brightness of multiple LED strings, several current sharing techniques have been disclosed. For example, referring to
For providing the same current magnitude to each LED string, the secondary DC-to-DC converting circuits are indispensable to the conventional LED current-controlling circuits. Therefore, the overall circuitry cost is high but the current density is low. In the conventional LED current-supplying circuit, a specified bus voltage VDC is generated at the DC bus by the primary DC-to-DC converting circuit 12, and the bus voltage VDC is converted into regulated DC current required for the LED strings by the secondary DC-to-DC converting circuits. Under this circumstance, the conventional LED current-supplying circuit needs two-stage DC-to-DC converting circuits. Since there is a constant voltage drop between the input terminal and the output terminal of the secondary DC-to-DC converting circuit, the voltage drop causes power loss. Generally, the power loss is increased as the output voltage of the LED string is increased. In other words, the conventional LED current-supplying circuit has low efficiency, high circuitry cost and low current density.
There is a need of providing improved LED current-supplying circuit and LED current-controlling circuit to obviate the drawbacks encountered from the prior art.
It is an object of the present invention to provide a LED current-controlling circuit for directly receiving the pulse width modulation voltage from the primary DC-to-DC converting circuit and generating regulated DC voltage to power the LCD strings. By adjusting parameters of the magnetic amplifier controller, the currents passing through all LED strings are identical and thus all LEDs have the same brightness values. Consequently, the overall circuitry cost is reduced but the current intensity is enhanced.
Another object of the present invention provides a LED current-supplying circuit using the LED current-controlling circuit of the present invention so as to achieve high efficiency, low circuitry cost and high current density.
In accordance with an aspect of the present invention, there is provided a LED current-controlling circuit for receiving a pulse width modulation voltage and outputting a first current having a specified DC current level required to power a first LED string of multiple LED strings. The LED current-controlling circuit includes a first magnetic amplifier, a first current detecting circuit, a first magnetic amplifier controller and a first diode. The first magnetic amplifier has a terminal connected to an input terminal of the LED current-controlling circuit and the other terminal connected to the first LED string. The first current detecting circuit is connected to the first LED string in series for detecting the first current flowing through the first LED string. The first magnetic amplifier controller is connected to the first current detecting circuit for controlling on/off statuses of the first magnetic amplifier. The first diode has a terminal connected to an output terminal of the first magnetic amplifier and the first LED string and the other terminal connected to the first magnetic amplifier controller. The first magnetic amplifier controller controls on/off statuses of the first magnetic amplifier according to the magnitude of the first current, thereby maintaining the first current at the specified DC current level.
In accordance with another aspect of the present invention, there is provided a LED current-supplying circuit for driving a first LED string and a second LED string. The LED current-supplying circuit includes a main power rectifying circuit, a primary DC-to-DC converting circuit, a first current-controlling circuit, and a second current-controlling circuit. The main power rectifying circuit receives and rectifies an AC input voltage into a rectified input voltage. The primary DC-to-DC converting circuit has an input terminal connected to an output terminal of the main power rectifying circuit for converting the rectified input voltage into a first pulse width modulation voltage and a second pulse width modulation voltage. The first current-controlling circuit has an input terminal connected to a first output terminal of the primary DC-to-DC converting circuit and an output terminal connected to the first LED string. The second current-controlling circuit has an input terminal connected to a second output terminal of the primary DC-to-DC converting circuit and an output terminal connected to the second LED string. The first pulse width modulation voltage and the second pulse width modulation voltage are respectively received by the first current-controlling circuit and the second current-controlling circuit, thereby generating a first current and a second current.
The above contents of the present invention will become more readily apparent to those ordinarily skilled in the art after reviewing the following detailed description and accompanying drawings, in which:
The present invention will now be described more specifically with reference to the following embodiments. It is to be noted that the following descriptions of preferred embodiments of this invention are presented herein for purpose of illustration and description only. It is not intended to be exhaustive or to be limited to the precise form disclosed.
The present invention relates to a LED current-supplying circuit and a LED current-controlling circuit. The LED current-supplying circuit and the LED current-controlling circuit are applied to multiple LED strings. Each LED string includes a plurality of LEDs. For clarification, each LED string having two LEDs is shown in the drawings.
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In this embodiment, the turn ratio of the primary winding assembly Np to the first secondary winding assembly Ns1, the turn ratio of the primary winding assembly Np to the second secondary winding assembly Ns2, and the turn ratio of the primary winding assembly Np to the third secondary winding assembly Ns3 are equal. As a result, the waveforms of the first pulse width modulation voltage VPWM1, the second pulse width modulation voltage VPWM2 and the main pulse width modulation voltage VPWMS are identical. For maintaining the average voltage of the first pulse width modulation voltage VPWM1 and the second pulse width modulation voltage VPWM2 within a specified range (e.g. 12˜24 volt), the PWM controller 222 controls the on or off duration of the switching circuit 221 according to the feedback signal Vf. In other words, the duty ratios of the first pulse width modulation voltage VPWM1 and the second pulse width modulation voltage VPWM2 are automatically adjusted. Therefore, the primary DC-to-DC converting circuit 22 will generate the first pulse width modulation voltage VPWM1 and the second pulse width modulation voltage VPWM2 to the first current-controlling circuit 23a and the second current-controlling circuit 23b.
An example of the DC-to-DC converting circuit 22 includes but is not limited to a fly back DC-to-DC converting circuit, a forward DC-to-DC converting circuit or a clamp-forward DC-to-DC converting circuit. In some embodiments, the DC-to-DC converting circuit 22 further comprises a reset circuit 225. The reset circuit 225 is electrically connected to the primary winding assembly Np of the transformer T. By the reset circuit 225, the electrical energy in the primary winding assembly Np of the transformer T is reset.
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In the first current-controlling circuit 23a, the first magnetic amplifier 23a1 has a terminal connected to the first output terminal of the DC-to-DC converting circuit 22 and the other terminal connected to the input terminal of the first rectifying circuit 23a2 and the cathode of the first diode D1. The input terminal of the first filtering circuit 23a3 is connected to the output terminal of the first rectifying circuit 23a2. The other terminal of the first filtering circuit 23a3 is connected to the first LED string 24a. The first current detecting circuit 23a4 is connected to the first LED string 24a and the output loop of the first current-controlling circuit 23a in series. The first magnetic amplifier controller 23a5 is connected to the anode of the first diode D1 and the first current detecting circuit 23a4.
In this embodiment, the first current detecting circuit 23a4 and the second current detecting circuit 23b4 are resistors. The first rectifying circuit 23a2 comprises a third diode D3 and a fourth diode D4. The cathode of the third diode D3 is connected to the cathode of the fourth diode D4 and the input terminal of the first filtering circuit 23a3. The anode of the third diode D3 is connected to the output terminal of the first magnetic amplifier 23a1. The anode of the fourth diode D4 is electrically connected to the common terminal. The second rectifying circuit 23b2 comprises a fifth diode D5 and a sixth diode D6. The cathode of the fifth diode D5 is connected to the cathode of the sixth diode D6 and the input terminal of the second rectifying circuit 23b2. The anode of the fifth diode D5 is connected to the output terminal of the second magnetic amplifier 23b1. The anode of the sixth diode D6 is electrically connected to the common terminal.
In this embodiment, the first filtering circuit 23a3 comprises a first inductor L1 and a first capacitor C1. The first inductor L1 has a terminal connected to a terminal of the first capacitor C1 and the other terminal connected to the input terminal of the first filtering circuit 23a3. The other terminal of the first capacitor C1 is electrically connected to the common terminal. The second filtering circuit 23b3 comprises a second inductor L2 and a second capacitor C2. The second inductor L2 has a terminal connected to a terminal of the second capacitor C2 and the other terminal connected to the input terminal of the second filtering circuit 23b3. The other terminal of the second capacitor C2 is electrically connected to the common terminal.
In this embodiment, the rectifying and filtering circuit 223 comprises a seventh diode D7, an eighth diode D8, a third inductor L3 and a third capacitor C3. The cathode of the seventh diode D7 is connected to the cathode of the eighth diode D8 and a terminal of the third inductor L3. The anode of the seventh diode D7 is connected to the third secondary winding assembly Ns3 of the transformer T. The anode of the eighth diode D8 is electrically connected to the common terminal. The other terminal of the third inductor L3 is connected to the output terminal of the rectifying and filtering circuit 223 and a terminal of the third capacitor C3. The other terminal of the third capacitor C3 is electrically connected to the common terminal.
In this embodiment, the feedback circuit 224 comprises a first resistor R1 and a second resistor R2. The first resistor R1 and the second resistor R2 are connected in series to the output terminal of the feedback circuit 24. The other terminal of the second resistor R2 is electrically connected to the common terminal. By the serially-connected resistors R1 and R2, DC output voltage Vo is subject to voltage division so as to generate the feedback signal Vf.
Similarly, the magnitude of hindered electrical energy of the second pulse width modulation voltage VPWM2 is determined by adjusting the on duration and the off duration of the second magnetic amplifier 23b1 under control of the second magnetic amplifier controller 23b5. That is, the output voltage V1b of the second magnetic amplifier 23b1 excludes the hindered electrical energy, which is denoted as a dotted line. The output voltage V1b of the second magnetic amplifier 23b1 is rectified by the second rectifying circuit 23b2 to generate an output voltage V2b of the second rectifying circuit 23b2. The output voltage V2b of the second rectifying circuit 23b2 is filtered by the second filtering circuit 23b3 and provides a regulated DC voltage and the second current I2 to the second LED string 24b. The regulated DC voltage and the second current I2 will be changed according to the magnitude of hindered electrical energy of the second pulse width modulation voltage VPWM2. For precisely controlling the magnitude of the second current I2, the second current detecting circuit 23b4 will detect the magnitude of the second current I2 under control of the second magnetic amplifier controller 23b5. According to the magnitude of the second current I2, the second magnetic amplifier controller 23b5 generates a second control current IMag2. According to the second control current IMag2, the second magnetic amplifier 23b1 is selectively conducted or shut off such that the magnitude of the second current I2 is maintained at a certain level.
In this embodiment, the first pulse width modulation voltage VPWM1 inputted into the first current-controlling circuit 23a and the second pulse width modulation voltage VPWM2 inputted into the second current-controlling circuit 23b are substantially identical. The first magnetic amplifier controller 23a5 and the second magnetic amplifier controller 23b5 have the same parameters. Consequently, the magnitude of the first current I1 controlled by the first magnetic amplifier controller 23a5 is equal to the magnitude of the second current I2 controlled by the second magnetic amplifier controller 23b5. In some embodiments, the first pulse width modulation voltage VPWM1 and the second pulse width modulation voltage VPWM2 are different. By simply setting the parameters of the first magnetic amplifier controller 23a5 and the second magnetic amplifier controller 23b5, the magnitude of the first current I1 controlled by the first magnetic amplifier controller 23a5 will be equal to the magnitude of the second current I2 controlled by the second magnetic amplifier controller 23b5.
In some embodiments, the LED current-supplying circuit 2 further comprises a brightness-adjustable circuit (not shown), which is electrically connected to the first magnetic amplifier controller 23a5 and the second magnetic amplifier controller 23b5. By the brightness-adjustable circuit, the parameters of the first magnetic amplifier controller 23a5 and the second magnetic amplifier controller 23b5 are adjusted. As a consequence, the magnitude of the first current I1 and the magnitude of the second current I2 as well as the brightness values of the first LED string 24a and the second LED string 24b are adjusted.
In the above embodiments, the LED current-supplying circuit 2 is illustrated by referring to two current-controlling circuits. Nevertheless, the LED current-supplying circuit 2 may have three or more than three current-controlling circuits. Each current-controlling circuit has similar circuitry configuration similar to the first current-controlling circuit 23a and the second current-controlling circuit 23b. As a result, the three or more than three current-controlling circuits can provide electricity to three or more than three LED strings so as to achieve equal current sharing among these LED strings.
It is noted that, however, those skilled in the art will readily observe that numerous modifications and alterations may be made while retaining the teachings of the invention. For example, in some embodiments, the first current-controlling circuit 23a only comprises a first magnetic amplifier 23a1, a first current detecting circuit 23a4, a first diode D1 and a first magnetic amplifier controller 23a5. The first magnetic amplifier 23a1 has a terminal connected to the first output terminal of the DC-to-DC converting circuit 22 and the other terminal connected to the cathode of the first diode D1 and the first LED string 24a. The first current detecting circuit 23a4 is connected to the first LED string 24a and the output loop of the first current-controlling circuit 23a in series. The first magnetic amplifier controller 23a5 is connected to the anode of the first diode D1 and the first current detecting circuit 23a4. Consequently, the output voltage V1a of the first magnetic amplifier 23a1 is directly transmitted to the first LED string 24a and generates the first current I1 to power the first LED string 24a without the need of passing through the first rectifying circuit 23a2 and the first filtering circuit 23a3.
Similarly, the second current-controlling circuit 23b only comprises a second magnetic amplifier 23b1, a second current detecting circuit 23b4, a second diode D2 and a second magnetic amplifier controller 23b5. The second magnetic amplifier 23b1 has a terminal connected to the second output terminal of the DC-to-DC converting circuit 22 and the other terminal connected to the cathode of the second diode D2 and the second LED string 24b. The second current detecting circuit 23b4 is connected to the second LED string 24b and the output loop of the second current-controlling circuit 23b in series. The second magnetic amplifier controller 23b5 is connected to the anode of the second diode D2 and the second current detecting circuit 23b4. Consequently, the output voltage V1b of the second magnetic amplifier 23b1 is directly transmitted to the second LED string 24b and generates the second current I2 to power the second LED string 24b without the need of passing through the second rectifying circuit 23b2 and the second filtering circuit 23b3.
From the above description, the LED current-controlling circuit of the present invention is capable of balancing the currents passing through the LED strings without the need of using the conventional secondary DC-to-DC converting circuit. In other words, the LED current-controlling circuit can directly receives the pulse width modulation voltage from the primary DC-to-DC converting circuit, thereby generating a regulated DC voltage to power the LCD strings. By adjusting parameters of the magnetic amplifier controller, the currents passing through all LED strings are identical and thus all LEDs have the same brightness values. Consequently, the overall circuitry cost is reduced but the current intensity is enhanced.
Moreover, the LED current-supplying circuit of the present invention needs only one primary DC-to-DC converting circuit to provide the pulse width modulation voltage to the LED current-controlling circuit. In other words, the primary DC-to-DC converting circuit doesn't need to generate the bus voltage of a specified DC voltage level. By adjusting parameters of the magnetic amplifier controller, the currents passing through all LED strings are identical and thus all LEDs have the same brightness values, thereby achieving high efficiency, low circuitry cost and high current density.
While the invention has been described in terms of what is presently considered to be the most practical and preferred embodiments, it is to be understood that the invention needs not be limited to the disclosed embodiment. On the contrary, it is intended to cover various modifications and similar arrangements included within the spirit and scope of the appended claims which are to be accorded with the broadest interpretation so as to encompass all such modifications and similar structures.
Number | Date | Country | Kind |
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097124766 | Jul 2008 | TW | national |