The present invention generally relates to lighting systems. More particularly, the present invention relates to lighting systems that employ lenses to collect light from a light source and direct the light within the lighting system.
In automotive vehicle lighting applications, a single light-emitting diode (LED) does not provide enough light intensity to meet the light intensity requirements of the application. Therefore, multiple LEDs are used. A plurality of low-powered LEDs, ten or more for example, each with its own dedicated reflector or lens optics, are used in many automotive lighting applications. Each LED typically has its own near field lens (NFL) to provide efficient light collection and distribution within the vehicle lighting system.
In order for the NFL to function properly, each LED must be placed at the focal point of the NFL. NFLs typically have focal points located along a single center axis, and therefore, the LED must be located along this center axis. With reference to
Since a single LED typically does not provide enough light intensity in vehicle lighting applications, multiple LEDs are typically used, each having its own NFL 10. However, multiple LED and lens assemblies increase the size and complexity of the packaging of the vehicle lighting system, increasing the overall cost of the vehicle lighting system.
In view of the above, it is apparent that there exists a need for a compact lighting system that meets the intensity requirements of the automotive industry.
In addressing the enumerated drawbacks and other limitations of the related art, the present invention provides a lens assembly that is compact, while providing the requisite light intensity. The lens assembly of the invention uses multiple LEDs with a single lens or NFL. To accomplish this, the lens has a plurality of focal points forming a focal ring, rather than a single focal point. Multiple LEDs or other light sources are positioned along the focal ring, providing for much brighter light intensity than would be available using a single light source.
More particularly, a lens having a main body for use with a plurality of light sources is provided. The main body of the lens is substantially radially symmetrical about an axis of revolution, which extends through a light-collecting face and a light-emitting face. The lens defines a plurality of focal points, and the focal points form a focal ring surrounding the axis.
In another aspect, the lens is incorporated into a light assembly having a plurality of light sources. Preferably, the light sources are positioned coincident with the focal ring.
Further objects, features, and advantages of this invention will become readily apparent to persons skilled in the art after a review of the following description, with reference to the drawings and claims that are appended to and form a part of this specification.
Referring now to
Referring to the top half 18 cross section of the lens 20 seen in
The top half 18 of the cross section of the lens 20 has an optical axis Y, containing focal point F, that extends through the light-emitting face 22 and axial surface 26 of the light-collecting face 24. In the present lens 20, the focal point F is the location at which a light source can emanate light rays and the light rays will be refracted through the light-collecting face 24, reflected through the lens 20 and transmitted through the light-emitting face 22 in a substantially collimated manner. As seen in
When the top half 18 of the cross section of the lens 20 is rotated about the axis of a revolution X, the optical axis Y will also be rotated around the axis of revolution X and will form a cylindrical pattern of an infinite number of optical axes Y. Similarly, the focal point F will also be rotated around the axis of revolution X forming a circular pattern of an infinite number of focal points F, which is hereinafter referred to as a focal ring 31 that surrounds the axis of revolution X. Although the lens may be constructed of any suitable material, such as glass, the lens 20 is preferably constructed of an optical grade thermoplastic material.
With reference to
As noted above, some of the light rays 36 emitted from the light sources 34 are transmitted through the axial surface 26. These light rays 36 are refracted through the axially-facing surface 26 of the lens 20 in a mostly collimated manner. The light rays 36 then continue through the lens 20 and are emitted from the lens 20 by the light-emitting face 22.
Other light rays 36 emitted from the light sources 34 are transmitted through the radial surface 28. These light rays 36 are refracted through the lens 20 until they reach a side surface 38, which preferably has a free form shape formed as a smooth curve created from several parabolic segments. At least a portion of the light rays 36 hitting the side surface 38, and preferably a majority of the light rays 36 hitting the side surface 38, will be reflected by the principle of total internal reflection (TIR), as is commonly known in the art. In this embodiment the light rays 36 are reflected by the side surface 38 in a collimated manner toward the light-emitting face 22; however, it is contemplated that the side surface 38 could reflect the light rays 36 without collimating them, while still being within the spirit and scope of the present invention.
In the embodiment of
A light assembly 132, which is substantially similar to the light assembly 32 of
In the embodiment of
Alternatively, with reference to
It is also contemplated by the present invention that the wave optics 244 could be oriented horizontally to spread the light rays 236 in the X-direction, while keeping the light rays 236 collimated in the Z-direction. In other words, the wave optics could be oriented in a perpendicular direction to the wave optics 244 illustrated in
As a person skilled in the art will readily appreciate, the above description is meant as an illustration of implementation of the principles of this invention. This description is not intended to limit the scope or application of this invention in that the invention is susceptible to modification, variation, and change, without departing from the spirit of this invention, as defined in the following claims.
Number | Name | Date | Kind |
---|---|---|---|
4329047 | Kikuchi et al. | May 1982 | A |
5319496 | Jewell et al. | Jun 1994 | A |
5924788 | Parkyn, Jr. | Jul 1999 | A |
6547423 | Marshall et al. | Apr 2003 | B2 |
6724543 | Chinniah et al. | Apr 2004 | B1 |
6819505 | Cassarly et al. | Nov 2004 | B1 |
7160522 | Minano Dominguez et al. | Jan 2007 | B2 |
7168839 | Chinniah et al. | Jan 2007 | B2 |
7461960 | Opolka et al. | Dec 2008 | B2 |
7548670 | Ijzerman et al. | Jun 2009 | B2 |
7580192 | Chu et al. | Aug 2009 | B1 |
20040080835 | Chinniah et al. | Apr 2004 | A1 |
20050152153 | Amano | Jul 2005 | A1 |
20060203353 | Park et al. | Sep 2006 | A1 |
20060238881 | Park et al. | Oct 2006 | A1 |
20070109791 | Chinniah et al. | May 2007 | A1 |
Number | Date | Country | |
---|---|---|---|
20080310159 A1 | Dec 2008 | US |