The present invention relates to an integration rod structure for digital projector; more specifically, to an integration rod structure comprising a length of hollow integration rod 1 and a length of solid integration rod combined together.
Digital Light Processing (DLP) is a widely used projection technology. DLP has several advantages, including, high brightness, accurate tone reproduction, a fast response time, noise-free operation, and thin and light composition.
In a DLP projector, a digital control method and a reflection principle are adopted. Light bean from the light source are collected and focused by the lens to pass through an integration rod and a color wheel. The light bean are then projected onto a Digital Micro-mirror Device (DMD). Since the DMD includes several movable micro mirrors, driving electrodes may control the tilt angle and deflection time of each movable mirror. Then, the light bean are projected to form an image by switching the direction of the light ray reflections.
The main function of the integration rod is to homogenize the light beam from the source passing to produce a homogenized light beam. Usually the integration rod can be classified as a hollow integration rod or a solid integration rod. The hollow integration rod is a hollow light channel with an internal surface coated a reflecting film for reflecting incoming light multiple times while the light passing through, and allowing the light emitted from the end of the light channel. While a light beam is reflected inside the integration rod with more times, a more uniform light beam can be emitted from the integration rod. However, the reflective index of the coated reflecting film has its physical limitation, once the length of the hollow integration rod is too long, the more number of times the light is reflected, the more energy loss of the light is resulted, and the illumination of the entire projection system is therefore reduced.
In contrast, the solid integration rod produces the light beam reflection completely inside the optical rod and then emits the light beam. Therefore, the energy of the light beam is not lost due to the influence of the length of the integration rod. However, compared to the hollow integration rod, the incident angle of light beams entering the solid integration rod after refraction at the incident-beam surface is relatively smaller than the number of reflections of the light beams inside the optical rod. Thus, in order to achieve the same degree of uniformity in the projected image as that of the hollow integration rod, the length of the solid integration rod is necessary longer. It usually requires at least one and a half times the length as the hollow integration rod requires.
Therefore, to combine both of the advantages from the hollow and solid integration rod, to improve the convention product structure, the main object of the present invention is to provided an new integration rod structure for homogenizing the light beam from source with lower energy loss in a shorter distance.
In order to achieve the above mentioned objects, An integration rod structure is provided, comprising a length of hollow integration rod and a length of solid integration rod, using the length of hollow integration rod to reflect an incident light beam and direct it to pass through the length of solid integration rod to acquire a homogeneous light beam in a shorter length than known solid integration rod with lower energy loss during the refraction light path.
The mentioned objects, various other objects, advantages, and features of the present invention will be more fully understood from the following detailed description of the preferred aspect of the invention when considered in connection with the accompanying drawings below.
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As we know, the total reflection effect within the solid integration rod (10) is the principle to prevent the energy loss when light reflects and passing through the solid integration rod (10), and transformed a homogenized light beam; Therefore, once the surface of the solid integration rod (10) is touched, clipped or contaminated with dusts, will infect the total reflection effect. Preferably, when bonding the solid integration rod (10) with the hollow integration rod (20), it is suggested to add small particles (23) into the adhesive (24) and mixed it. For instance, the small particles (23) can be a plurality of small balls of 1˜1000 μm in average diameter, to less the contact area between the glass substrate (21) and the surface of solid integration rod (10) after the adhesive (24) solidified.
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This description is intended to provide specific examples of individual embodiments for clearly disclose the present invention. Accordingly, the invention is not limited to these embodiments or to the use of elements having the specific configurations and shapes as presented herein. All alternative modifications and variations of the present invention which fall within the spirit and broad scope of the appended claims are included.
Number | Date | Country | Kind |
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093212301 | Aug 2004 | TW | national |