Driver circuit for LED light
10111286 ยท 2018-10-23
Assignee
Inventors
Cpc classification
International classification
Abstract
A method and circuit for driving an LED lighting device from an AC power source includes a rectifier and a plurality of strings of LEDs. Each string of LEDs includes a plurality of LEDs. A plurality of switches is controlled by a controller for opening and closing the switches. The controller is adapted to vary the number of strings conducting electricity by applying voltage from the rectifier to arrangements of the plurality of strings of LEDs selected based upon the present voltage of the output of the rectifier and the forward bias voltage of each of the strings of LEDs.
Claims
1. A circuit for driving an LED lighting device from an AC power source comprising: a rectifier; a ground; a plurality of strings of LEDs in series between the rectifier and the ground, each string of LEDs comprising a plurality of LEDs; a plurality of switches controlled by a controller for opening and closing the switches wherein the controller is adapted to vary the number of strings conducting electricity by applying voltage from the rectifier to arrangements of the plurality of strings of LEDs selected based upon the present voltage of the output of the rectifier and the forward bias voltage of each of the strings of LEDs, wherein the switches comprise a plurality of transistors each electrically connected to a lead of each string of LEDs, and wherein each of the transistors is situated between the lead of each string of LEDs and a pair of leads electrically connecting the transistors to the controller; and a current control device, wherein the current control device is comprised of a current mirror situated between the plurality of switches and the ground, wherein a first one of the pair of leads is connected between a reference voltage and the current mirror, and wherein a second one of the pair of leads is connected between the current mirror and the ground.
2. The device of claim 1 wherein the controller comprises a plurality of resistors, wherein each one of the resistors is situated in the first one of the pair of leads between the current mirror and the reference voltage.
3. The device of claim 1 wherein the controller comprises a plurality of resistors connected in series with a lead of each resistor electrically connected to the gate of a corresponding transistor from the plurality of transistors and positioned through the first one of the pair of leads between the reference voltage and the current mirror.
4. The device of claim 1 wherein the current mirror is situated between a reference voltage and the ground.
5. A circuit for driving an LED lighting device from an AC power source comprising: a rectifier; a ground; a plurality of strings of LEDs in series between the rectifier and the ground, wherein each string of LEDs comprises a plurality of LEDs arranged in series; a plurality of switches, wherein each of the switches is electrically connected to a respective lead of each string of LEDs; a current control device situated between the plurality of switches and the ground, wherein the current control device is comprised of a current mirror situated between the reference voltage and the ground; and a controller for opening and closing the switches, wherein the controller is adapted to vary the number of strings conducting electricity by applying voltage from the rectifier to arrangements of the plurality of strings of LEDs selected based upon the present voltage of the output of the rectifier and the forward bias voltage of each of the strings of LEDs, wherein each of the switches is situated between the lead of each string of LEDs and a pair of leads electrically connecting the switches to the controller, wherein a first one of the pair of leads is connected between a reference voltage from the rectifier and the current control device, and wherein a second one of the pair of leads is connected between the current control device and the ground.
6. The device of claim 5 wherein the switches comprise a plurality of transistors each electrically connected to the respective lead of each string of LEDs, and wherein the controller comprises a plurality of resistors connected in series with a lead of each resistor electrically connected to the gate of a corresponding transistor from the plurality of transistors and positioned through the first one of the pair of leads between the reference voltage and the current mirror.
7. The device of claim 3, further comprising: a resistor in a lead between the rectifier and the resistors connected in series; and a Zener diode situated between the lead between the resistor and the ground, wherein the Zener diode provides a reference voltage at the lead between the resistor and the resistors connected in series.
8. The device of claim 6, further comprising: a resistor in a lead between the rectifier and the resistors connected in series; and a Zener diode situated between the lead between the resistor and the ground, wherein the Zener diode provides a reference voltage at the lead between the resistor and the resistors connected in series.
9. A circuit for driving an LED lighting device from an AC power source comprising: a rectifier; a ground; a plurality of strings of LEDs in series between the rectifier and the ground, each string of LEDs comprising a plurality of LEDs; a plurality of switches, wherein each of the switches is electrically connected to a respective lead of each string of LEDs; a current control device, wherein the current control device is comprised of a current mirror situated between the plurality of switches and the ground; and a controller for opening and closing the switches, wherein the controller is adapted to vary the number of strings conducting electricity by applying voltage from the rectifier to arrangements of the plurality of strings of LEDs selected based upon the present voltage of the output of the rectifier and the forward bias voltage of each of the strings of LEDs, wherein each of the switches is situated between the lead of each string of LEDs and a pair of leads electrically connecting the switches to the controller, wherein a first one of the pair of leads is connected between a reference voltage from the rectifier and the current mirror, and wherein a second one of the pair of leads is connected between the current mirror and the ground.
10. The device of claim 9 wherein the controller comprises a plurality of resistors connected in series with a lead of each resistor electrically connected to the corresponding switch for the respective lead of each string of LEDs and positioned through the first one of the pair of leads between the reference voltage and the current mirror.
11. The device of claim 10, further comprising: a resistor in a lead between the rectifier and the resistors connected in series; and a Zener diode situated between the lead between the resistor and the ground, wherein the Zener diode provides a reference voltage at the lead between the resistor and the resistors connected in series.
12. The device of claim 9 wherein the current mirror is situated between the reference voltage and the ground.
Description
DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENT
(8) While this invention is susceptible of embodiment in many different forms, there is shown in the drawings and will herein be described in detail preferred embodiments of the invention with the understanding that the present disclosure is to be considered as an exemplification of the principles of the invention and is not intended to limit the broad aspect of the invention to the embodiments illustrated.
(9) The present invention relates to circuit for driving LED light boards. The circuit may be located within the replacement unit, such as when the board is intended as a direct replacement in a light fixture for an incandescent light bulb, or the circuit may be located within a light fixture specifically intended for use within a light fixture that allows replacement of the LEDs without requiring replacement of the driver circuit. The new circuit will drive a long LED string with multiple taps. When the line voltage changes, different taps will be switched on and off so the power dissipation on the CCR is maintained at a relatively low level and so the LED light output duty cycle is large.
(10) Referring to
(11) As the voltage increases during the first half wave of the half-wave sinusoidal input and after the bias voltage of LED string 12 is met, the voltage from the rectifier increases to a voltage that meets the bias voltage of LED string 12 and LED string 14 when connected in series. At that voltage, the control 28 opens switch 20 and closes switch 22, and the LEDs of LED string 12 and LED string 14 begin to conduct and produce light.
(12) When the voltage further increases during the first half wave of the half-wave sinusoidal input and when the voltage of the rectifier 10 reaches the bias voltage of LED strings 12, 14 and 16, the control 28 closes switch 24 and opens switch 22 to allow the current to flow through the three strings of LEDs 12, 14, and 16. The LEDs of LED string 12, 14 and 16 begin to conduct and produce light.
(13) Next and finally, when the voltage of the rectifier further increases during the first half wave of the half-wave sinusoidal input and reaches the bias voltage of LED strings 12, 14, 16 and 18 when connected in series, the control 28 closes switch 26 and opens switch 24 to allow the current to flow through the four strings of LEDs 12, 14, 16 and 18. The LEDs of LED string 12, 14, 16 and 18 begin to conduct and produce light.
(14) As the voltage from the rectifier begins to fall on the decreasing portion of the first half wave of the half-wave sinusoidal input, the control 28 causes switch 26 to open and switch 24 to close as the voltage falls below the bias voltage of all four strings of LEDs 12, 14, 16 and 18. Likewise, as the voltage of the rectifier 10 falls below the bias voltage of LED string 12, 14, and 16, the switch 22 closes and the switch 24 opens. As the voltage of the rectifier 10 further falls below the bias 15 voltage of LED strings 12 and 14, the control 28 closes switch 20 and opens switch 22.
(15) After passing through the various strings of LEDs 12, 14, 16 and 18 and switches 20, 22, 24, and 26, the current passes through a constant current device 30 and to ground 32.
(16) As the next half wave comes from the rectifier, the above cycle restarts and continues for each successive half wave.
(17) As can be seen from
(18) As seen in
(19) The rectifier 10 could include or not include output smoothing techniques, such as employing a filter capacitor, valley filling power factor correction circuit (PFC). Employing smoothing techniques may be able to reduce the voltage swings applied to the circuit from the rectifier, but may come at the cost of affecting the power factor by an impermissible amount.
(20) Referring to
(21) As can be seen with reference to
(22) Referring to
(23) The above examples show that the invention, as defined by the claims, has far ranging application and should not be limited merely to the embodiments shown and described in detail. Instead the invention should be limited only to the explicit words of the claims, and the claims should not be limited to only the embodiments shown in the specification. The scope of protection is only limited by the scope of the accompanying claims.