LED FLASH RING SURROUNDING CAMERA LENS
20170307962 · 2017-10-26
Assignee
Inventors
Cpc classification
G03B15/03
PHYSICS
G02B6/0068
PHYSICS
G03B15/06
PHYSICS
G02B6/0036
PHYSICS
G03B15/0442
PHYSICS
G03B15/05
PHYSICS
International classification
G03B15/05
PHYSICS
G03B15/06
PHYSICS
Abstract
A flash system for an electronic device includes a ring-shaped light guide having a central opening. A camera lens is positioned in or behind the opening. A first light emitting diode (“LED”) is mounted on a printed circuit board (“PCB”), and the LED and PCB are encapsulated by a molded light guide of the flash system. An identical LED and PCB are encapsulated at an opposite end of the molded light guide (i.e., 180 degrees away). The back surfaces of each PCB diffusively reflects light from the LED on the other PCB. Light extraction features on the light guide surface uniformly leak out light from the LEDs. The light emission profile of the light guide has a peak axially aligned with the central opening of the light guide and rolls off to the edge of the camera's field of view.
Claims
1. A flash system comprising: a light guide shaped as a ring having a central opening, the light guide having light extraction features on a light exit surface of the light guide; a first printed circuit board including first conductors, the first printed circuit board having a first surface for electrically connecting a first light emitting diode (LED) to the first conductors; a first LED mounted on the first surface and electrically connected to the first conductors, wherein at least a first portion of the first printed circuit board and all of the first LED is encapsulated in the light guide, wherein a second portion of the first printed circuit board extends from the light guide for being connected to a power source, and wherein the light guide is configured to internally reflect light from the first LED within the light guide until emitted through the light exit surface.
2. The system of claim 1 further comprising a camera lens positioned in or behind the central opening.
3. The system of claim 1 further comprising: a second printed circuit board including second conductors, the second printed circuit board having a second surface for electrically connecting a second LED to the second conductors; a second LED mounted on the second surface and electrically connected to the second conductors, wherein at least a first portion of the second printed circuit board and all of the second LED is encapsulated in the light guide, wherein a second portion of the second printed circuit board extends from the light guide for being connected to the power source, wherein the light guide is configured to internally reflect light from the first LED and the second LED until emitted through the light exit surface for illuminating the subject, wherein a second back surface of the second printed circuit board is configured to reflect light from the first LED, and wherein a first back surface of the first printed circuit board is configured to reflect light from the second LED.
4. The system of claim 3 wherein the first back surface of the first printed circuit board is a first diffusive white surface, and wherein the second back surface of the second printed circuit board is a second diffusive white surface.
5. The system of claim 1 wherein the first LED is a top emitting LED, and the first surface of the first printed circuit board is substantially perpendicular to the light exit surface of the light guide, and wherein the first printed circuit board has a first reflective back surface.
6. The system of claim 1 wherein the first LED is a side emitting LED, and the first surface of the first printed circuit board is parallel to the light exit surface of the light guide.
7. The system of claim 1 further comprising additional LEDs and printed circuit boards encapsulated in the light guide.
8. The system of claim 1 wherein the light extraction features on the light exit surface vary in one or more of shape, size, and/or configuration to extract different amounts of impinging light to cause light exiting around the light exit surface to be substantially uniform.
9. The system of claim 1 wherein a light emission profile of light emitted from the light exit surface, at a particular distance from the light guide, has a peak that is substantially axially aligned with the central opening and rolls off away from the central opening.
10. An electronic device comprising: a housing; a flash system disposed on the housing; a camera disposed in the housing; and a camera lens coupled to the camera and disposed within a central opening of a light guide of the flash system, wherein the flash system comprises: the light guide, shaped as a ring having the central opening, the light guide having light extraction features on a light exit surface of the light guide; a first printed circuit board including first conductors, the first printed circuit board having a first surface for electrically connecting a first light emitting diode (LED) to the first conductors; a first LED mounted on the first surface and electrically connected to the first conductors, wherein at least a first portion of the first printed circuit board and all of the first LED is encapsulated in the light guide, wherein a second portion of the first printed circuit board extends from the light guide for being connected to a power source, and wherein the light guide is configured to internally reflect light from the first LED within the light guide until emitted through the light exit surface.
11. The electronic device of claim 1, wherein the flash system further comprises: a second printed circuit board including second conductors, the second printed circuit board having a second surface for electrically connecting a second LED to the second conductors; a second LED mounted on the second surface and electrically connected to the second conductors, wherein at least a first portion of the second printed circuit board and all of the second LED is encapsulated in the light guide, wherein a second portion of the second printed circuit board extends from the light guide for being connected to the power source, wherein the light guide is configured to internally reflect light from the first LED and the second LED until emitted through the light exit surface for illuminating the subject, wherein a second back surface of the second printed circuit board is configured to reflect light from the first LED, and wherein a first back surface of the first printed circuit board is configured to reflect light from the second LED.
12. The electronic device of claim 11 wherein the first back surface of the first printed circuit board is a first diffusive white surface, and wherein the second back surface of the second printed circuit board is a second diffusive white surface.
13. The electronic device of claim 10 wherein the first LED is a top emitting LED, and the first surface of the first printed circuit board is substantially perpendicular to the light exit surface of the light guide, and wherein the first printed circuit board has a first reflective back surface.
14. The electronic device of claim 10 wherein the first LED is a side emitting LED, and the first surface of the first printed circuit board is parallel to the light exit surface of the light guide.
15. The electronic device of claim 10, wherein the flash system further comprises additional LEDs and printed circuit boards encapsulated in the light guide.
16. The electronic device of claim 10 wherein the light extraction features on the light exit surface vary in one or more of shape, size, and/or configuration to extract different amounts of impinging light to cause light exiting around the light exit surface to be substantially uniform.
17. The electronic device of claim 10 wherein a light emission profile of light emitted from the light exit surface, at a particular distance from the light guide, has a peak that is substantially axially aligned with the central opening and rolls off away from the central opening.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009]
[0010]
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[0016] Elements that are the same or similar are labeled with the same numeral.
DETAILED DESCRIPTION
[0017]
[0018] The LED 10 is mounted on a printed circuit board (“PCB”) such as a metal core printed circuit board (“MCPCB”) 24 having an insulating layer 26 and a metal pattern 28 for connecting a flash power supply to the contacts 14/16. The MCPCB 24 has a white (diffusively reflective) back surface formed by a reflective layer 30 that, in some embodiments, comprises white diffusing particles, such as TiO.sub.2. The front surface of the MCPCB 24 (opposite the back reflective surface 30) may also be coated with the reflective layer. In one embodiment, the LED 10 is about 1 mm wide or less, and the MCPCB 24 is about 1-2 mm wide so that the portion of the MCPCB 24 supporting the LED 10 can be encapsulated in a thin, acrylic ring-shaped light guide. The LED 10 is “top-emitting” because light is emitted out of the top of the LED 10 (in the “up” direction in
[0019]
[0020]
[0021] Two of the front-emitting LEDs 10 from
[0022] One end of the MCPCB 24 extends out from the light guide 38, and its contact pads are electrically connected to an LED flash controller 52 on another circuit board, forming part of the flash module. The LED flash controller 52 is configured to control the LED 10 brightness and illumination time in for various uses such as when generating a brief pulse for use as a camera flash or for a longer duration when used, for example, as a flashlight. The ends of the MCPCBs 24 that extend beyond the light guide 38 also sink heat away from the LEDs 10.
[0023] As shown in
[0024] Also shown in
[0025]
[0026] The light guide 38 may be 1-3 mm thick to encapsulate the LED and MCPCB and sufficiently mix the light. A larger light guide 38 improves light emission uniformity around the ring. Since the height of a side emitting LED may be less than the width of the MCPCB, the thickness of the light guide 38 in
[0027]
[0028]
[0029] Besides the functional advantage of the ring-shaped flash, the unaesthetic yellow phosphor typically present in white color LEDs is less visible since the LEDs are mounted sideways in the light guide 38 (
[0030]
[0031] While particular embodiments have been shown and described, it will be obvious to those skilled in the art that changes and modifications may be made without departing from this disclosure in its broader aspects and, therefore, the appended claims are to encompass within their scope all such changes and modifications as fall within the true spirit and scope of this disclosure.