The embodiments described herein relate to a system and method for providing light.
Energizing light sources such as light emitting diodes (LEDs) by applying pulse width modulated (PWM) signals is common. The use of pulse width modulation techniques to energize light sources enable a reduction in heat dissipation by the lighting system. However, it is known that the direct application of PWM signals to the light sources may cause electromagnetic interference (EMI) and/or radio frequency interference (RFI). In many cases, EMI and RFI undesirably effects the performance of the lighting system and other adjacent electrical systems.
The embodiments described herein were conceived in view of these and other disadvantages of conventional PWM techniques for energizing light sources.
The embodiments described herein include a lighting system and method that enables an efficient emission of light while reducing the generation of electromagnetic interference (EMI) and/or radio frequency interference (RFI). The lighting system includes a light source configured to emit light. In one embodiment, the light source may be a light emitting diode (LED). A regulator may be electrically coupled to the light source and be adapted to receive a pulse width modulated (PWM)signal. In response to the PWM signal, the regulator generates a ramp signal that energizes the light source causing the emission of light.
The method of providing light includes generating a PWM signal and receiving the PWM signal at a regulator. The method also includes generating a ramp signal in response to the PWM signal through the use of the regulator. Additionally, the method may include generating a control signal in response to the ramp signal that causes an emission of light from the light source.
The novel features of the described embodiments are set forth with particularity in the appended claims. These embodiments, both as to their organization and manner of operation, together with further advantages thereof, may be best understood with reference to the following description, taken in connection with the accompanying drawings in which:
As required, a detailed description of embodiments are disclosed herein. However, it is to be understood that the disclosed embodiments are merely exemplary of the invention that may be embodied in various and alternative forms. The figures are not necessarily to scale, and some features may be exaggerated or minimized to show details of particular components. Therefore, specific functional details disclosed herein are not to be interpreted as limiting, but merely as a representative basis for the claims and/or as a representative basis for teaching one skilled in the art.
Referring to
As shown, lighting system 10 includes an outer lens 12 that is optimally positioned on the lighting system 10 to allow the illumination of adjacent areas. In one embodiment, outer lens 12 may be comprised of a translucent or transparent plastic material. Lighting system 10 includes a light guide 14 that guides and/or directs light created by a light source. Light guide 14 includes a raised portion 14a and a lower portion 14b. As shown, light guide 14, including portions 14a and 14b, has openings 16. Openings 16 allow light that is directed by light guide 14 to exit light guide 14. Arrows 18 illustrate how light travels within lighting system 10 as light exits openings 16.
In one embodiment, a switch panel 20 is mounted adjacent to outer lens 12. Switch panel 20 may have one or more buttons that control the illumination of a dome light, a reading light, and the like. It is recognized that the buttons on switch panel 20 may control other functions such as opening a garage door, opening a vehicle door, etc., without departing from the scope of the present invention.
Now referring to
Arrows 20 illustrate the travel of light from a light source 22 through lens 12. Light source 22, which may be a light emitting diode (LED), emits light onto light guide 14. The emitted light enters light guide 14 and is reflected substantially parallel with light guide 14 by reflective edge 14d. The light reflected by reflective edge 14d is then reflected onto reflective edges 14e. Reflective edges 14e then cause the light to be reflected downward toward reflectors 28 and 26. Reflectors 28 and 26 may have a highly reflective surface and a curved profile that causes the light 20 to be reflected upward so as to traverse lens 12. Although
Light source 22 may be energized by a regulator 24. In one embodiment, regulator 24 may be coupled to light source 22 through the use of a flexible circuit. Utilizing a flexible circuit improves packaging options for lighting system 10, particularly in space constrained areas. Regulator 24 is also coupled to a power source (B+). In one embodiment, although not necessarily, the B+ source includes a direct current power source, such as a battery, ultra capacitor and the like that is located on a vehicle. As will be described hereinafter, regulator 24 is adapted to generate a ramp signal that causes the energization of light source 22.
Referring to
Controller 32 is adapted to generate PWM signals in response to signals received from input 30. Input 30 may include input signals generated as a response to the opening of a door, signals from a vehicle key fob, or a dome lamp switch. It is recognized that other inputs may be received by a controller 32 in addition to those specifically enumerated depending upon the specific implementation of the described embodiments.
Once the inputs are received by controller 32, controller 32 generates PWM signals having a desired duty cycle and frequency. The PWM signals are received by integrator 24a. Integrator 24a integrates, over time, the PWM signals received from controller 32. The output of integrator 24a may be a ramp signal having a progressively increasing voltage, which propagates through diode 24b. Diode 24b prevents the flow of current towards integrator 24a.
Error amplifier 24c receives the ramp signal as well as any signals from a node 25. The error amplifier 24c assesses the voltages of the ramp signal and any signal received from node 25. Based on the differences in the voltages, error amplifier generates a control signal for switch 24d. As shown, the control signal may be a base current for the transistor implementation of switch 24d that controls the flow of current from a B+ terminal through switch 24d to light source 22. Accordingly, light source 22 is energized in a substantially linear manner without being directly powered by a PWM signal.
A switch 34 and a diode 36, being coupled to the power source, may also be connected to regulator 24. Switch 34 may represent a switch in the vehicle including, but not limited to, a map light switch, a reading light switch, and the like. As such, in one embodiment, switch 34 may be manually engaged by a user. When switch 34 is closed, current flows from the power source (B+) through diode 36. Diode 36 prevents the flow of current in an undesirable direction (e.g., towards switch 34). Error amplifier 24c receives the signal that is transmitted as a result of the closing of switch 34. In response, error amplifier generates a control signal for switch 2d to enable the flow of current across switch 24d thereby energizing light source 22.
While the best mode for carrying out the invention has been described in detail, those familiar with the art to which this invention relates will recognize various alternative designs and embodiments for practicing the invention as defined by the following claims.
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| 20080259627 A1 | Oct 2008 | US |