Various embodiments relate to a lens and an omnidirectional illumination device including the lens.
With the advantages of long life, energy saving, environmental friendly and shake-resistant, the LED light sources can be applied in a wide area. With the development of manufacture technology, the cost of the LEDs becomes lower and lower, and the optical efficiency is increased a lot. It is a trend that solid-state lighting (SSL) replaces the traditional lighting devices.
The US Energy Star criteria have certain requirements for omnidirectional SSL replacement lamps (shown in
In the related art, there are many solutions to get light source redistribution for LED lamps. The first solution is optimizing LEDs' array, and the second solution is using reflector to redistribute light.
Patent with the number of WO2009/059125A1 discloses an optical assembly including a single LED lamp and a rotationally symmetrical reflective light transformer providing an omnidirectional pattern with a pre-calculated intensity distribution.
Patent with the number of EP2180234A1 discloses an omnidirectional light bulb containing a transparent body member and a contact member at an end of the body member that could be screwed into a conventional light bulb socket for establishing electrical connections. The light bulb also contains at least a disc and a supporting pole. A number of LEDs are back-to-back configured along the circumference of each disc, so as to realize the omnidirectional illumination.
Patent with the number of US2002/0114170A1 discloses an incandescent light source replaced with omnidirectional distribution. A light guide receives and guides light output from the light source. The light guide further extends out from the light source. A reflector is positioned in the light guide and reflects the light guided through the light guide to provide appropriate edge illumination.
Among all of the above solutions, no solution is proposed for achieving omnidirectional illumination through the design of a lens.
Various embodiments provide a lens for omnidirectional illumination and an omnidirectional illumination device including the lens, which can eliminate the defects of the various solutions in the related art and have the advantages of low manufacturing cost, simple manufacturing process, uniform light distribution, and omnidirectional illumination.
According to a first aspect of the present disclosure, a lens for omnidirectional illumination is provided, characterized in that, the lens is rotationally symmetrical and includes a light incident surface, a first refractive surface, a first reflective surface, a second refractive surface and a third refractive surface, to be rotationally symmetrical, respectively, a first portion of light which passed through the light incident surface is refracted by the first refractive surface to produce first emergent light, a second portion of the light which passed through the light incident surface is reflected by the first reflective surface to the second refractive surface, and then is refracted by the second refractive surface to produce second emergent light, and a third portion of the light which passed through the light incident surface is refracted by the third light refractive surface to produce third emergent light, the first emergent light, the second emergent light and the third emergent light jointly achieved omnidirectional illumination.
According to the present disclosure, omnidirectional illumination is provided by designing the lens to have a plurality of refractive surfaces and reflective surfaces. The first emergent light for forward illumination is provided through the first refractive surface, the third emergent light which is achieved through the third light refractive surface achieves backward illumination which is different from the forward illumination, the second emergent light for backward illumination is provided by the cooperation of the first reflective surface and the second refractive surface, to supplement the third emergent light, and thereby, omnidirectional illumination is provided.
According to various embodiments, the lens includes a bottom surface, a top surface, and side surface connecting the top surface with the bottom surface, the bottom surface is partially curved to form the light incident surface for a light source, the top surface includes the first refractive surface and the first reflective surface, and the side surface include the second refractive surface and the third light refractive surface. Forward illumination of the top region is achieved using the first refractive surface, inclinedly downward illumination in the side direction is achieved using the third light refractive surface, the deflection of the direction of the light rays is achieved using the second refractive surface and the first reflective surface, such that the light rays turn downwards for illumination, which achieves backward illumination.
Preferably, the top surface includes the first refractive surface in the center, and the first reflective surface at the edge and surrounding the first refractive surface. Thus, forward illumination within the center of the top region is achieved using the first refractive surface. Further, it is more convenient for the first reflective surface to match with the second refractive surface in the side direction.
Preferably, the side surfaces include the second refractive surface connected with the first reflective surface, and the third refractive surface connected with the bottom surface. This design optimizes the matching of the first reflective surface and the second refractive surface, and the refraction of the third portion of the light going through the light incident surface by the third light refractive surface.
Preferably, the second refractive surface has a profile inclined with respect to and extending towards, starting from the first reflective surface, a symmetrical axis of the lens so as to form an acute angle with the first reflective surface. The design of the second refractive surface relies on the design of the first reflective surface. The numerical value of the inclination angle of the second refractive surface with respect to the first reflective surface and the degree at which the second refractive surface inclinedly extends towards the symmetrical axis of the lens rely on the size, position and specific profile of the first reflective surface. The general principle is that the emergence range of the second emergent light shall comply with the expected light distribution.
Preferably, the second refractive surface inclinedly extends towards the symmetrical axis of the lens, in such an extent that all of light rays from the first reflective surface emerge from the second refractive surface. Therefore, the second portion of the light going through the light incident surface is converted to the second emergent light at high efficiency.
According to various embodiments, the bottom surface includes the concave light incident surface in the center, and a planar supporting base surface at the edge and surrounding the light incident surface. In this way, the concave light incident surface provides an accommodation cavity for a light source, and the planar supporting base surface provides convenience for arranging a lens.
Preferably, the third light refractive surface is connected with the supporting base surface and has a profile inclined with respect to and extending towards, starting from the supporting base, the symmetrical axis of the lens so as form an acute angle with the supporting base surface, so as to try to achieve light projection of the third emergent light as backward as possible in the side direction.
Preferably, the third light refractive surface extends towards the symmetrical axis of the lens to a boundary of the second portion of the light incident upon the first reflective surface, which achieves clear demarcation between the second portion of the light and the third portion of the light, and try to achieve light projection of the third emergent light as backward as possible in the side direction.
Preferably, the first reflective surface is a planar surface or an inclined surface. The first reflective surface is designed according to the expected second emergent light.
Preferably, the first refractive surface, the second refractive surface and the third light refractive surface are respectively a spline curve in a cross section.
Preferably, the light incident surface is an arc surface in a cross section, and more preferably, the light incident surface is a semicircular surface in a cross section, which, thereby, tries not to change the distribution of the light from the light source.
According to a second aspect of the present disclosure, an omnidirectional illumination device is provided, characterized by including a directional light source and a lens having the above features, so as to omnidirectionally distribute the light from the directional light source by using the lens.
The lens and the omnidirectional illumination device according to the present disclosure have the advantages of low manufacturing cost, simple manufacturing process, uniform light distribution, and omnidirectional illumination.
In the drawings, like reference characters generally refer to the same parts throughout the different views. The drawings are not necessarily to scale, emphasis instead generally being placed upon illustrating the principles of the disclosed embodiments. In the following description, various embodiments described with reference to the following drawings, in which:
The following detailed description refers to the accompanying drawing that show, by way of illustration, specific details and embodiments in which the disclosure may be practiced.
As can be seen from
As can be seen from
As the lens according to the present disclosure is rotationally symmetrical, better illumination is finally achieved through overlapping of emergent light in a circumferential direction of the lens.
In conjunction with
According to the second embodiment of the lens of the present disclosure which is not shown, the first reflective surface 3 is designed to be an inclined surface.
Likewise, the third light refractive surface 5 is connected with a planar portion of the bottom surface, viz. a supporting base surface, and has an inclined profile, starting from the supporting base surface and extending towards the symmetrical axis of the lens, so as to form an acute angle with the supporting base surface. The third light refractive surface 5 extends to a boundary of the second portion A2 of the light incident upon the first reflective surface 3.
While the disclosed embodiments have been particularly shown and described with reference to specific embodiments, it should be understood by those skilled in the art that various changes in form and detail may be made therein without departing from the spirit and scope of the disclosed embodiments as defined by the appended claims. The scope of the disclosed embodiments is thus indicated by the appended claims and all changes which come within the meaning and range of equivalency of the claims are therefore intended to be embraced.
10 lens
100 omnidirectional illumination device
1 light incident surface
2 first refractive surface
3 first reflective surface
4 second refractive surface
5 third light refractive surface
A1 first portion
A2 second portion
A3 third portion
B1 first emergent light
B2 second emergent light
B3 third emergent light
Number | Date | Country | Kind |
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201210021809.3 | Jan 2012 | CN | national |
The present application is a national stage entry according to 35 U.S.C. §371 of PCT application No.: PCT/ep2013/051588 filed on Jan. 28, 2013, which claims priority from Chinese application No.: 201210021809.3 filed on Jan. 31, 2012, and is incorporated herein by reference in its entirety.
Filing Document | Filing Date | Country | Kind |
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PCT/EP2013/051588 | 1/28/2013 | WO | 00 |