1. Field of the Invention
This invention generally relates to a light emitting diode (LED) driver, and more specifically relates to a driving control technology of auto voltage adjustment for keeping steady driving current. The present invention is operable to drive high power LEDs (e.g. lighting LED and backlight LED).
2. Description of the Prior Art
In traditionally industrial producing, there are two methods for a constant current driver: one is constant-voltage method to clamp driving current by regulating a setting voltage; the other is constant-current method to clamp driving current by regulating a current source. As the constant-voltage method shown in
Furthermore, using a current mirror to clamp the driving current by a reference current source is anther constant-current method. As shown in
The main objective of this invention is to provide a controllable driver and a driving system with an excellent stability for LEDs. Except a constant-current technology, a particular technology of voltage adjuster in the present invention can auto adjust appliance's driving voltage to fit different requirements for keeping steady driving current even in facing the possible rise on temperature or voltage desire by certain situations.
A driving system according to the present invention can integrate all the said functions successfully but no need of too much chip space especially for light mobile specification.
Further, with the particular technology of voltage adjuster, an additional adjustable-voltage source combined with a user control interface expands the driving system's applicability. Users can select different driving voltages to fit diverse appliance requirements through the control interface. Additionally, an over-temperature and an over-current protection are equipped in the present invention to prevent harms from over-temperature and over-current happenings especially in high power lighting and backlight LEDs.
The present invention will be apparent after reading the detailed description of the preferred embodiments hereinafter in reference to the accompanying drawings.
As an embodiment of the invention, a controllable driver 500 to drive a stead current from high voltage Vapp1 501 to low voltage Vapp2 502 in an application 520 comprises: (a) a DC voltage input 510 for DC voltage Vo supply; (b) a 1st field effect transistor (FET) 131 as a voltage adjustor to adjust voltage differential (Vapp1-Vapp2) on the appliance for voltage desire from the steady driving current Iapp requirement by changing its drain-to-source voltage differential; (c) a controller 530 to control gate voltage of the 1st FET; and (d) a current controller 140 to clamp the steady driving current as setting. The controller 532 can is operable to detect voltage variation of the appliance and send negative feedback voltage to gate of the 1st FET in order to auto adjust drain-to-source voltage differential of the 1st FET and compensate the said voltage desire for keeping steady driving current. By this negative feedback circuit, the controllable driver in this invention can automatically adjust the proper driving voltage to maintain the steady driving current with excellent stability event in facing large voltage fluctuation, effective resistor variation, hardly objective and subjective situations and so on.
Further, an adjustable-voltage source 110 coupled with this invention is operable to take an external voltage source VDD and supply the said DC voltage Vo to the DC voltage input. Furthermore, a controllable interface 160 is operable to take user commands for changing the driving system's setting. With the adjustable-voltage source and the controllable interface, the range of adjustable voltage in this invention becomes more flexible to fit most part of appliance.
Moreover, an over-temperature protection and an over-current protection on circuit 534 of gate voltage of the 1st FET or on the current control are operable to cut-off driving current or set the upper limit of driving current at over-temperature and over-current conditions to remain the controllable driver's normal operation. A temperature sensor 552 and a current monitor 553 are operable to be included in this invention to strengthen the over-temperature and over-current protections.
A driving system to drive a steady current on an appliance mainly comprises six parts: (a) a DC voltage input 510 for DC voltage Vo supply; (b) an output for appliance 501 to supply high voltage Vapp1 to the appliance; (c) an input for appliance 502 to supply low voltage Vapp2 to the appliance; (d) a 1st field effect transistor (FET) 131 as a voltage adjuster; (e) a 1st operation amplifier (OpAmp) 132 operable to detect voltage variation of the appliance and send negative feedback voltage to gate of the 1st FET in order to auto adjust drain-to-source voltage differential of the 1st FET and compensate voltage desire for keeping steady driving current; and (f) a current controller 140 to clamp the steady driving current as setting.
The driving system according to the present invention, wherein the current controller as shown in
In order to compensate the said voltage desire on time, the 1st FET has a connection between its source and the output for appliance and a connection between its drain and the DC voltage input in order to adjust voltage differential between the said DC voltage Vo and the output for appliance voltage Vapp1; likewise the 1st OpAmp has an input voltage through its negative input from the input for appliance voltage Vapp2 and output the said negative feedback voltage to gate of the 1st FET. Similarly, the 1st FET has a connection between its drain and the input for appliance and a connection between its source and negative input of the 1st OpAmp in order to adjust voltage differential between the input for appliance voltage Vapp2 and negative input voltage of the 1st OpAmp; likewise the 1st OpAmp output the said negative feedback voltage to gate of the 1st FET. In both circuit, they can auto adjust drain-to-source voltage differential of the 1st FET to compensate the said voltage desire for keeping steady driving current. Further, a capacitance between source or drain of the 1st FET and ground is operable to adjust source or drain voltage of the 1st FET.
For over-temperature and over-current situations in most high power appliance, the present invention is operable to equip: a temperature sensor to detect system temperature Tsys, cut off the driving current as an over-temperature protection when Tsys>T1, and reset for normal operation when system temperature is back to safe operation temperature Tsys<T2 (as arrows in
The driving system according to the present invention can be associated with an adjustable-voltage source 110 comprising: a DC-DC converter 111 or a voltage regulator or an AC-DC converter to rise/lower and rectify an external voltage source VDD for output of the DC voltage Vo as shown in
Accordingly, as disclosed by the above description and accompanying drawings, the present invention surely can accomplish its objective to provide a controllable driver and a driving system with excellent stability for LEDs, and may be put into industrial use especially for mass product.
It should be understood that various modifications and variations could be made from the teaching disclosed above by the persons familiar in the art, without departing the spirit of the present invention.