The present invention relates to light pipes constructed with light-scattering material for extracting light from side of the light pipe. One aspect of the invention relates to construction of light pipes with the light-scattering material substantially confined to a radial swath, along the longitudinal axis of the light pipes, of substantially less than 360 degrees.
Light pipe is used in two main ways. In an end-light application, the light pipe is optimized to carry light along its length, and transmit it at the output face of the light pipe. In a side-light application, light is extracted out the side of the light pipe and provides illumination along its length. Often, light extracted from the side of a light pipe over the full 360 degrees around the light pipe is undesirable because a reflector would be needed to redirect a significant portion of the light towards the intended area to be illuminated. Some of the redirected light impinges on the light pipe and may be either absorbed into the light pipe so as to reduce side-light output, or is scattered into unintended directions. This is the same drawback associated with fluorescent lighting and results in an inefficient fixture for delivering light onto the target surface.
One aspect of the present invention relates to distributing light-scattering material only in a radial swath, along the longitudinal axis of the light pipe, of substantially less than 360 degrees. This results in extraction of side light in a directional manner, rather than over the full 360 degrees around the light pipe. The light-scattering material could be of the reflective type, of the refractive type, or of both types.
In accordance with one embodiment of the invention, it would be desirable to distribute light-scattering material in the core of a light pipe with a density gradient for achieving uniformity in side-light emission along the length of the light pipe. As used herein, “uniformity” in side-light emission means that the lumen output as between inlet and outlet portions of a side-light emitting section of the light pipe is within plus or minus 20 percent of the average value of each other. More uniformity than this may also be desirable in some circumstances.
In accordance with another embodiment of the invention, it would be desirable to eliminate the inefficient fixture and reflector combination for use with a light pipe by extracting the light only in the desired direction, towards a target area to be illuminated.
A first embodiment of the invention provides a light pipe with uniform side-light emission. The light pipe has a core comprising a polymer, and a fluoropolymer cladding on the core with a lower refractive index than the core. Light-scattering material is distributed within the core along an active section of light pipe in which side-light emission is desired, with a density gradient chosen to achieve uniform side-light emission.
A second embodiment of the invention also provides a light pipe with uniform side-light emission. The light pipe has a core comprising a polymer, and a fluoropolymer cladding on the core with a lower refractive index than the core. Light-scattering material is distributed within at least one of the cladding and the core along an active section of light pipe in which side-light emission is desired. The light-scattering material is distributed within at least one of the core or the cladding along the active section of the light pipe with a density gradient chosen to yield uniform side light emission, and substantially only in a radial swath, along the longitudinal axis of the light pipe, of substantially less than 360 degrees, so that light preferentially exits the light pipe from the radial swath.
The foregoing, second embodiment eliminates the inefficient fixture and reflector combination for use with a light pipe by extracting the light only in the desired direction, towards a target area to be illuminated.
In the drawing figures, like reference numerals refer to like parts, and so written description of a part may appear in an earlier figure, for instance.
a is a side view in perspective of a prior art light pipe in which the distribution of light-scattering material in a cladding is uniform.
b is a side view in perspective of a prior art light pipe in which the density of light-scattering material distributed within a cladding has a gradient for achieving uniform illumination.
a is a side view in perspective of a prior art light pipe showing light-scattering material distributed within the core of the light pipe core in a uniform manner.
b is a side view in perspective of a light pipe in which the density of light-scattering material distributed within a core of a light pipe has gradient for achieving uniform illumination.
a shows a simplified cross sectional view of a light pipe in which light-scattering material is placed in a radial swath of the light pipe cladding, along a longitudinal axis of the light pipe, of substantially less than 360 degrees.
b shows a simplified cross sectional view of a light pipe in which light-scattering material is placed in a radial swath of the light pipe core, along a longitudinal axis of the light pipe, of substantially less than 360 degrees.
a shows a fragment of light pipe with a uniform distribution of light-scattering material; and
a is a simplified, perspective view of various portions of a prior art co-extrusion die in operation, with a molten flow of cladding material partially cutaway.
b is a simplified, cross-sectional slice of various portions of a co-extrusion die taken at Arrows 60—60 in
c is a cross-sectional view of a light pipe formed according to the die apparatus of
d is similar to
e is a simplified, cross-sectional view of a light pipe formed according to the die apparatus of
f is a side plan view of a nozzle for the core of
g is a simplified, cross-sectional view of a light pipe formed according to the die apparatus of
This description discusses the three topics of (1) context of the invention, (2) principles of the light pipes of the invention, and (3) manufacturing concerns.
An efficient means of extracting light from a light pipe for sidelight illumination is through the addition light-scattering material to the light pipe. The light-scattering material may comprise refractive-type material or reflective-type material or both. A preferred light-scattering material is titanium dioxide (TiO2) particles, but other light-scattering material as will be apparent to those of ordinary skill in the art can be used. The light-scattering material can be added to the light pipe in either the core of the light pipe, the cladding surrounding the core, or both. Through the use of an extrusion process, the light-scattering material could be added to the cladding, the core, or both in either a uniformly distributed manner or in a gradient manner where the concentration of light-scattering material becomes more dense along the length of the light pipe to vary the light-extraction efficiency of the light pipe.
In accordance with the prior art,
Further, in accordance with the prior art,
Also in accordance with the prior art,
b shows a light pipe 60 with a polymer core 62 and a fluoropolymer cladding 64 on the core having a lower refractive index than the core. Light-scattering material 66, which may comprise reflective- or refractive-type light-scattering particles, for instance, has a density along the light pipe in the direction 68 of supply light that has a gradient for achieving uniformity of side light emission. In particular, the further away form supply light 68, the higher the density of light-scattering material.
In accordance with a preferred embodiment of the invention, light-scattering material (not shown) may also be added to the light pipe in a manner that would favor light extraction from one side of the light pipe over the other.
Thus,
Similarly,
Light-scattering material can be placed in a light pipe both in a light-pipe cladding, as in
Regarding the embodiments of
In making the light pipes of
a shows two nozzles for forming two portions of a light pipe. Specifically, it shows a nozzle 130 for forming a core 132 of a light pipe 134, and another nozzle 136 for forming a cladding 138, shown in a molten state before reaching and surrounding the core at location 140. With this background on a basic co-extrusion process, the following details of making the embodiments of
b shows nozzles 130 and 136 for making the core and cladding, respectively, from the perspective of Arrows 60—60 in
d shows another arrangement of nozzles for modifying the die of
For making the embodiment of
f shows nozzle 130 of
g shows a light pipe 134c made from the modified apparatus of
Finally, to obtain a differential density, or a density gradient, for light-scattering material, light-scattering material may be metered into the various flows of molten material as discussed in connection with
The co-extrusion technology discussed in connection with
While the invention has been described with respect to specific embodiments by way of illustration, many modifications and changes will occur to those skilled in the art. It is, therefore, to be understood that the appended claims are intended to cover all such modifications and changes as fall within the true scope and spirit of the invention.
This application claims priority from U.S. Provisional Application No. 60/453,398 filed Mar. 10, 2003 and from U.S. Provisional Application No. 60/467,224 filed May 1, 2003.
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Number | Date | Country | |
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20040179777 A1 | Sep 2004 | US |
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60453398 | Mar 2003 | US | |
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