1. Field of the Invention
The present invention relates to an illuminator that comprise one or a plurality of light panels which further comprise highly directional solid-state lighting units, wherein the light panel comprising an array of the highly directional solid-state lighting units needs no additional optical elements to collimate or condense the light emitted from the light panel. The present invention also relates to the applications thereof in video display apparatuses, rear projection televisions, printers, scanners, copy machines, and more.
2. Description of the Related Art
A conventional projection apparatus is typically applied to a front projection lens or a large screen. Light sources such as halogen lamps and arc lamps with high luminance have to be used. Although these kinds of lamps exhibit high luminance, they have disadvantages which include high power consumption, high operating temperature, poor color gamut, UV-IR issues, volatile glass bulb construction, sizable mass and volume, longer switch time, short lifespan, higher costs, and, due to the use of mercury, and not being environmentally friendly. Therefore, these kinds of lamps are only used when high luminance is required.
Semiconductor optical elements with directional light emission such as Photonic Crystal Light Emitting Diodes (PC-LED), Laser Diodes (LD), Vertical Cavity Surface Emitting Lasers (VCSEL), and those of that sort are plausible substitutes for the light units.
A conventional LED light source uses a built in focus and diffusive optical element and is packaged with an external reflective optical element in order to achieve a collimated or focused light beam.
U.S. Pat. No. 6,644,814 (Ogawa et al.) discloses a LED-Illumination type DMD projector which is illustrated in
U.S. Pub. No. 2004/0062044 (Hanano) discloses an illumination apparatus and image projection apparatus which utilize the illumination apparatus as shown in
U.S. Pat. No. 6,517,211 (Mihara) discloses an illumination device for a projection-type display and projection-type display apparatus as shown in
U.S. Pat. No. 6,547,421 (Sugano) discloses a display apparatus as shown in
In the conventional display apparatus, since there are many optical lenses such as coupling lenses, two fly-eye lenses and three condenser lenses used between light source and light valve, the optical system is costly and large. It is difficult to realize a feasibly compact apparatus. Furthermore, the luminous flux emitted from the plurality of light sources passes through so many optical lenses that utilized efficiency and system brightness is decreased.
U.S. Pat. No. 6,648,475 (Roddy et al.) discloses a method and apparatus for increasing color gamut of a display as shown in
The conventional apparatus offers a four separate color light source solution to expanding color gamut in different optical paths. The use of myriad optical components results in a costly and complicated display system. This results in a large system size. Moreover, the use of numerous optical components increases optical path which lowers utilized efficiency and system brightness. Longer optical path also create difficulties in adjusting the four optical paths to reach a balanced color performance. As a result, some lateral color smearing appears on the display surface.
In summary, there is a desire to increase the durability, luminous flux, and practicality of light sources. Increasing system brightness, uniformity and optical utilized efficiency, lowering manufacturing costs and power consumption, expanding color gamut and dynamic color control, and realizing compact vivid video display apparatuses are all fields that can be improved upon.
The primary object of the present invention is to provide an illuminator or a light module that comprises one or a plurality of light panels which further comprise at least one highly directional solid-state lighting unit, wherein the light emitted from the solid-state lighting unit has high directivity and has its own color. Arrays of the solid-state lighting units are packaged on the same or different light panels.
Another objective of the present invention is to provide apparatuses for employing the light panel or illuminator according to the present invention in a video display apparatus.
The primary characteristic of the present invention is to utilize a highly directional solid-state lighting unit as the light source, wherein the aforementioned solid-state lighting unit has a beam divergence solid angle of less than 15 degrees in contrast to a traditional LED chip that has a light output with diffusion radiation characteristics, in order that the light panel which comprises at least one aforementioned lighting unit can offer a directional light output.
Another characteristic of the present invention is that there is no focus, diffusive optical elements, and/or any kind of external reflection to optical elements, which are utilized to collimate or condense the light emitted from the solid-state lighting unit, between each solid-state lighting unit and a protective transparent cover window of the light panel.
Yet another characteristic of the present invention is that the array of the highly directional solid-state lighting unit can mount directly onto the light panel without the use of any built in focus, diffusive optical elements, and/or any kind of external reflection optical elements, which are utilized to collimate or condense the light emitted from the light panel since each light component itself emitted from the highly directional solid-state lighting unit has high directivity.
Still another characteristic of the present invention is that as fewer optical components are used in apparatuses according to the present invention, and those apparatuses are compact in size and light in weight, and the manufacturing cost also can be reduced.
Further another characteristic of the present invention is that the present invention can decrease the optical path so that the efficiency and brightness of the system can be increased, and the power consumption also can be reduced, and additionally the problems of color balance and lateral color smear appearing on the display surface can be avoided.
The light panel itself of the present invention comprises highly directional solid-state lighting units with one or more colors. The different color solid-state lighting units of high directivity are mixed and arranged on the light panel. Multiple color light panels can be dynamically controlled via an electrical circuit to offer a wide variety of colors.
According to one aspect of the present invention, a light module, which functions as a uniform and highly luminous solid-state light source, comprises:
According to one aspect of the present invention, an illuminator, which functions as a uniform and highly luminous solid-state light source, comprises:
According to one aspect of the present invention, there are multiple ways to arrange the highly directional solid-state lighting units on the light panel of the present invention, such as an orderly rectangular placement or an off-set placement.
According to one aspect of the present invention, the surface of the light panel can be either curved or flat.
According to one aspect of the present invention, the shape of the light panel is not limited to that of being a rectangular shape, and can resemble various shapes including circle, triangle and so forth.
According to one aspect of the present invention, the light panel of the light module or the illuminator comprises a first, second and third principal color solid-state lighting unit, wherein the first, second and third color is red, green and blue.
According to one aspect of the present invention, in addition to the first, second and third color mentioned above, the light panel of the light module or the illuminator comprises an additional fourth, fifth, sixth or more than sixth principal color solid-state lighting unit, wherein the additional fourth, fifth, sixth principal color is yellow, cyan-green, cyan-blue, in order to form a four, five, six or more than six principal color light source and expand color gamut.
According to one aspect of the present invention, the light module or the illuminator can comprise more than one light panel.
The present invention provides apparatuses for employing the light module or the illuminator of the present invention in a video display apparatus.
According to one aspect of the present invention, a video display apparatus comprises:
The video display apparatus of the present invention provides good color purity and expansive color gamut as well as exerts high optical uniformity, high utilized efficiency, and high system brightness. On top of that, the present invention realizes all of the above through a compact and economical vivid video display apparatus.
According to one embodiment of the present invention, the video display apparatus of the present invention can further includes an illuminating lens at the outlet of the integrator. The color light beam emitted from the light panel enters the integrator and is uniformized by the integrator. It then passes through the illuminating lens that modifies the angle and shape of the light beam, and is directed onto the spatial light modulator where it is modulated, and then passes through the projection lens.
A single optical path embodiment of the video display apparatus of the present invention includes at least a light panel, an integrator, an illuminating lens, a spatial light modulator (SLM), and a projection lens.
In a multiple optical path embodiment of the video display apparatus of the present invention, an SLM used in the above single optical path embodiment can be replaced by two or three SLMs, and can be accompanied by some optical lenses and mirrors for the purpose of separating, directing, transmitting, converting, dividing or recombining different color light beam. The optical lenses and mirrors collectively form a kind of color optics group that modulates color light beam from the integrator and transmits it onto the projection lens.
Since light emitted from the light panel of the illuminator of the present invention irradiates upon the SLM uniformly, the total light output of the video display apparatus can be increased by augmenting the electric current or by increasing the number of solid-state lighting units on the light panel. Consequently, the optical efficacy and system brightness can be efficiently enhanced.
Two or more aforementioned illuminator can be applied to the video display apparatus of the present invention, which too would result in increased brightness.
In contrast to the conventional video display apparatus, the video display apparatus of the present invention does not utilize any optical lenses or elements, which collimate or condense the light emitted from the light panel, between the light panel and the integrator.
Furthermore, the sparse use of optical components in the video display apparatus of the present invention enables it to cost less than the conventional video display apparatus. Consequent to its using few optical components, the apparatus of the present invention is compact in size and light in weight.
In the apparatus of the present invention, the vivid and sharp color video image can be realized through a dynamic switch on/off the solid-state lighting units synchronized with a video signal from the SLM and an input video signal source such as a personal computer, video gaming system, laptop or any other input signal source. The full true colors, white color balance and color temperature can also be modified and controlled dynamically.
Even though the total size of the light panel of the present invention is quite small, the light panel offers a high luminous output. Enhancing the total luminous output is easily achieved by increasing electric current or by adding more solid-state lighting units on the light panel.
This invention also provides an apparatuses for employing the illuminator of the present invention in a printer, scanner or copy machine. Furthermore, the uniform light can also be directed to an acousto-optical modulator (AOM) or an electro-optical modulator (EOM) in applications that see fast switch circumstances such as in chemical, physical, and biological studies, fiber communications, 3D displays, high resolution microscopy, spectrometers and similar applications.
As shown in the drawings for purpose of illustration, the present invention is embodied in several different types of illuminators and light modules and can be applied to video display apparatuses and other applications.
The present invention illustrates different kinds of illuminators. An illuminator comprises at least a light panel and an integrator. The examples of illuminators, marked as illuminator 80, are shown in
The light beams emitted from the solid-state lighting units 701 are more directional than those of conventional LEDs. Therefore, there is no focus, diffusive optical element, and/or external reflection optical element, which collimate or condense the light emitted from the solid-state lighting units 701, between each solid-state lighting unit 701 and the protective transparent cover window 72 of the light panel 70, and that there is no collimating or condensing optical elements existing between the light panel 70 and the integrator 74. Above that, the optical power of light beam emitted from each solid-state lighting unit 701 of the light panel 70 is distributed primarily within a small solid angle Ω less than 15 degrees as shown in
The individual solid-state lighting units 701 can be of the same or different color. There are multiple ways to arrange the solid-state lighting units 701 on the light panel 70 such as an orderly rectangular placement or an off-set placement as illustrated in
The feasible solid-state lighting units 701 in the present invention include Photonic Crystal Light Emitting Diodes (PC-LED), Laser Diodes (LD), Vertical Cavity Surface Emitting Lasers (VCSEL), and other directional solid-state light sources.
The surface of the light panel 70 can be either curved or flat. Additionally, the shape of the light panel 70 is not limited to that of a rectangular shape. The shape of the light panel 70 can resemble various shapes such as a circle, triangle and so forth. The light panel 70 is protected via a transparent cover window 72 as shown in
Since no build in optical elements in the light unit, the pitch size between the units 701 in the array can be as small as possible, and the light panel 701 can be very compact and have highly lumen output. For example, a 10×10 light panel 70, with each individual solid-state lighting unit 701 emits around 5-20 lumens, may has an area of only ˜1 cm2 and emits between 500-2000 lumens.
Because the light distribution pattern is un-uniform at long distances, an integrator is used to uniformize the spatial and angular distribution. The taper or the parallel integrators, typically rods, will be called integrator 74 as shown in
There is no need to dispose any optical element between light panel 70 and the integrator 74. The illuminator 80 has a simple structure that it is not only compact in size and cheap to manufacture, but also offers high luminance and uniformity.
In general, the illuminator 80 of the present invention introduced above can be applied to non-polarization applications. A polarization conversion element (PCE) can be added to the illuminator 80 to the polarization applications.
The illuminator 80 introduced above includes only one light panel 70, and has no other element disposed between the light panel 70 and the integrator 74. For convenience, the light panel 70 and other elements disposed before the integrator 74 are collectively called a light module. The light module 90 is defined to have only one light panel as indicated in
In summary, we can incorporate different light modules 90 into the illuminator 80 for different applications and products according to the need of variant markets and customers. Described below are some examples of applications to which the illuminator of the present invention can be applied.
The other optical element such as an illuminating lens, a reflection mirror, a dichroic mirror, a polarization conversion element (PCE), or other optical lenses and mirrors can be disposed at the outlet of the integrator 74 of the illuminator 80 of the present invention to form another type of light source.
A conventional video display apparatus is composed of a light source, a collimating or condensing optics group, an uniformizing light optics (be typically composed of a couple of fly-eyes lens array or a rod), an illuminating optics group, a color separation and combination optics group (color optics group), one or multiple SLMs and a projection lens.
In the video display apparatus of the present invention, the collimating or condensing optics group, between each solid-state lighting unit 701 and the protective transparent cover window 72, or between the light panel 70 and the integrator 74, is not needed and can be eliminated. In general, all illuminators 80 and light modules introduced above can be applied to the video display apparatus described below. For convenience, we use the light module 90 as a representative for all the light modules in the following embodiments of the video display apparatus shown in
According to an embodiment of the present invention, a portion of a reflective spatial light modulator (R-SLM) based video display apparatus suitable for a DMD-based or a GLV-based video display apparatus is shown in 1002 and an R-SLM 1003. The R-SLM 1003 modulates the color light beam, the modulated color light beam reflects back to the SLM illuminating lens 1002, and then passes through a projection lens 1004. In this embodiment, the illuminating lens 1001, the reflection mirror 903 and the SLM illuminating lens 1002 collectively form a kind of color optics group.
The R-SLM can be a digital micro-mirror device (DMD) panel, a grating light valve (GLV) panel or a liquid crystal on silicon (LCOS) panel. The apparatus shown in
When a liquid crystal on silicon (LCOS) panel is used in the R-SLM based video display apparatus, a polarizer should be disposed between SLM illuminating lens 1002 and R-SLM 1003 to get better contrast in the projection image.
Furthermore, the illuminators of the present invention can apply to a printer, a scanner, a copy machine, an electro-optical modulator (EOM) or an acousto-optical modulator (AOM).
In summary, the light module and the illuminator of the present invention introduced above offer a high uniform luminous output. When applying the illuminator to a video display apparatus, the system brightness can be enhanced simply by increasing electric current or by increasing the number of solid-state lighting unit arrays on the light panel. The size of the illuminator is very small and the total system layout can be made compact when the illuminator of the present invention is applied to a video display apparatus. A palm like projector can be realized through the present invention. The expanded large color gamut could be reached through one or multiple light panels' solution. The yellow deficiency problem in a typical DMD-based projector or a rear projection television (RPTV) can be solved through the invention. A vivid video display apparatus can be carried out through the dynamic control of switching different color wavelength solid-state lighting units on and off. The system contrast and a sharp image also can be further improved upon through the synchronization of the light panel, an SLM, and input video signal source from a personal computer, a laptop, gaming system, or some other signal sources. The full true colors, white point balance, and color temperature can also be modified and control dynamically. The lifetime of a solid-state lighting unit is longer and it consumes less power than a high intensity discharge lamp. The manufacturing and maintenance cost for the illuminators of the present invention in video display apparatuses is lower than those of the conventional video display apparatus. Moreover, it becomes possible to realize a mobile projector that is driven by a battery. The mobile projector can be connected to an Internet or wireless equipment, such as a personal digital assistant, a cell phone, a MP3 player, a digital still camera (DSC), a notebook, or it can be applied to an automobile or some other mobile projection applications. When the Internet or wireless equipment is equipped with a camera and is connected to the signal of the mobile projector, the whole systems form a two-way input and output system. A picture can be captured by a camera and sent to the Internet or wireless equipment, or vice versa. In summary, a very compact, low cost and moving two-way dynamic vivid video display apparatus can be realized through the present invention.
Thus, what is provided is a new illuminator of the present invention applied in video display apparatuses or other system for projection of high color reproduction motion-picture images from digital data, wherein an improved color gamut can be obtained, also an ultra-compact, low cost and moving two-way dynamic vivid video display apparatus can be realized through the present invention.
Although the present invention has been disclosed above via the preferred embodiment, it is not intended to limit the scope of the present invention. It is to be appreciated by persons skilled in the art that any equivalent variation and modification without departing from the spirit of the present invention should be included within the scope of the present invention. The scope of the present invention is to be dependent upon the appended claims stated below.