The present disclosure relates generally to a lens and a light source module incorporating the lens, wherein the light source module has an improved uniform light distribution.
LEDs are solid state light emitting devices formed of semiconductors, which are more stable and reliable than other conventional light sources such as incandescent bulbs. Thus, LEDs are being widely used in various fields such as numeral/character displaying elements, signal lights, light sources for lighting and display devices.
Nowadays, LED light sources are widely applied for illumination, such as being used in the backlight. A traditional light source module includes an LED light source and a lens coupled to the LED light source. However, a light distribution of the traditional light source module is mostly concentrated at an optical axis (i.e., a center) of the lens while becomes gradually weaker towards a periphery thereof. Therefore, such a lens and a light source module using the lens are difficult to satisfy the requirements of uniform light distribution.
What is needed therefore is a lens and a light source module incorporating the lens which can overcome the above mentioned limitations.
Many aspects of the present embodiments can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present embodiments. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the views.
Referring to
In the present embodiment, the light incident face 1021 is a concave face and the light exit face 105 is a convex face. The light incident face 1021 is a paraboloid in shape. The central portion 101 of the light exit face 105 is flat. Alternatively, the light incident face 1021 is an ellipsoid in shape, and the central portion 101 of the light exit face 105 projects outwardly.
The lens 10 further includes an annular connecting face 102. The connecting face 102 interconnects the light incident face 1021 and the light exit face 105. The light incident face 1021 is located at a center of the connecting face 102. The light incident face 1021 is recessed inwardly from an inner periphery of the connecting face 102 toward the light exit face 105. The light incident face 1021 and the connecting face 102 cooperatively define a receiving space 106 for receiving the LED light source 30 therein.
The light exit face 105 includes a secondary light exit face 103 and a primary light exit face 104. The secondary light exit face 103 extends upwardly from an outer periphery of the connecting face 102. The secondary light exit face 103 is cylindrical. The primary light exit face 104 bends inwardly and upwardly from a top periphery of the secondary light exit face 103. The central portion 101 of the light exit face 105 is located at a center of the primary light exit face 104.
The LED light source 30 is received in the receiving space 106 and faces the light incident face 1021 of the lens 10. The LED light source 30 is located at the optical axis X of the lens 10. That is to say, an optical axis of the LED light source 30 coincides with the optical axis X of the lens 10.
Light emitted from the LED light source 30 which is refracted into the lens 10 through the light incident face 1021 is mostly refracted out of the lens 10 through the primary light exit face 104, with the remaining portion of light refracting out of the lens 10 through the secondary light exit face 103.
The lens 10 is made of transparent or translucent material such as glass, polycarbonate, for transmission of the light rays emitted from the LED light source 30. The micro dot patterns 20 are formed on the primary light exit face 104 of the light exit face 105 by screen printing processes, photolithographic processes, dry-etch mask or like.
The plurality of micro dot patterns 20 are compactly arranged in a square matrix on the central portion 101 of the light exit face 105. Each micro dot pattern 20 is hemispherical. The micro dot patterns 20 are spaced from each other. Alternatively, each micro dot pattern 20 is pyramid shaped, and the plurality of micro dot patterns 20 are arranged in a series of concentric circles, and the concentric circles are spaced from each other to leave a gap (not shown) therebetween. A portion of light directly passes through the gap to propagate in the forward direction of the light source module 100.
In the present disclosure, the plurality of micro dot patterns 20 are arranged on the central portion 101 of the light exit face 105 to scatter light rays concentrated near the optical axis X of the lens 10; thus the light source module 100 having a uniform light distribution is obtained.
Referring to
It is believed that the present embodiments and their advantages will be understood from the foregoing description, and it will be apparent that various changes may be made thereto without departing from the spirit and scope of the disclosure or sacrificing all of its material advantages, the examples hereinbefore described merely being preferred or exemplary embodiments of the disclosure.
Number | Date | Country | Kind |
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101149447 A | Dec 2012 | TW | national |
Number | Name | Date | Kind |
---|---|---|---|
7483220 | Kittelmann et al. | Jan 2009 | B2 |
7837349 | Chinniah et al. | Nov 2010 | B2 |
D642141 | Kuwaharada et al. | Jul 2011 | S |
8038319 | Bailey | Oct 2011 | B2 |
8246216 | Jiang et al. | Aug 2012 | B2 |
8967833 | Wang et al. | Mar 2015 | B2 |
20060120085 | Hsieh et al. | Jun 2006 | A1 |
20070258247 | Park et al. | Nov 2007 | A1 |
20110096553 | Shimokawa | Apr 2011 | A1 |
20110280023 | Lee et al. | Nov 2011 | A1 |
Number | Date | Country | |
---|---|---|---|
20140177234 A1 | Jun 2014 | US |