This application claims the benefit of Korean Patent Application Nos. 2004-37025 filed on May 24, 2004 and 2004-58249 filed on Jul. 26, 2004 in the Korean Intellectual Property Office, the disclosure of which is incorporated herein by reference.
1. Field of the Invention
The present general inventive concept relates to a projection television, and more particularly, to a projection television displaying an image through a cathode ray tube (CRT) assembly on a screen.
2. Description of the Related Art
Generally, a projection television employs an optical device such as a projector, and projects an image beam to a rear surface of a screen to form an image.
Especially, the projection television has an advantage of enlarging the screen, and thus its demand is increased.
As shown in
However, the conventional projection television has a problem of displaying a seriously distorted image because cathode ray tubes in the CRT assembly 5 are arranged side by side and thus the image beam cannot be vertically projected to the screen 1. Accordingly, to make the image displayed on the screen 1 so as to be matched with the rectangular screen 1, an amount of electric current introduced to a deflection coil is increased resulting in an increase of power consumption as well as heat generation.
Recently, a CRT assembly structured to a delta-type has been developed to solve the foregoing problem of the conventional projection television, but it is accompanied by a coupler to support a cathode ray tube (CRT) and a projection lens, and accordingly its cooling system is complicated.
Moreover, considering that a lenticular lens of the screen is suitable for the CRT arranged side by side, light of red (R), green (G) and blue (B) cannot be evenly distributed over the screen if the CRT assembly is structured to the delta-type, and accordingly quality of the image displayed on the screen is relatively low.
Accordingly, the present general inventive concept provides a projection television which simplifies a structure of a coupler and enables light of red, green and blue of a cathode ray tube (CRT) assembly to be efficiently and evenly distributed over a screen.
Additional aspects and advantages of the present general inventive concept will be set forth in part in the description which follows and, in part, will be obvious from the description, or may be learned by practice of the general inventive concept.
The foregoing and/or other aspects and advantages of the present general inventive concept may be achieved by providing a projection television comprising a cathode ray tube (CRT) assembly, and a screen to form an image thereon by an image beam projected from the CRT assembly, the CRT assembly comprising a plurality of RGB CRTs arranged in a delta-type; a plurality of projection lenses respectively provided in front of each of the RGB CRTs; and a coupler provided between each of the RGB CRTs and each corresponding projection lens to accommodate a first, a second and a third coolant accommodators corresponding to each of the RGB CRTs, wherein at least one of the first, the second and the third coolant accommodators comprises a coolant injection port, and the other coolant accommodators respectively comprise coolant communication holes to communicate with the coolant accommodator in which the coolant injection port is provided.
The projection television may further comprise a bellows provided in the coolant injection port.
The coupler may comprise a front supporter to support a front portion of the RGB CRTs and to accommodate the first, the second and the third coolant accommodators; and a rear supporter coupled to the front supporter to support a rear portion of the RGB CRTs.
The front supporter and the rear supporter may be coupled by a screw.
The screen may comprise a lenticular lens and a fresnel lens, and the lenticular lens may comprise a first lens and a second lens in contact with to each other.
The first lens and the second lens may be crossed each other.
The first lens and the second lens may respectively comprise embossing-type light transmitting parts; and light absorbing parts protruding between the light transmitting parts.
These and/or other aspects and advantages of the present general inventive concept will become apparent and more readily appreciated from the following description of the embodiments, taken in conjunction with the accompany drawings of which:
Reference will now be made in detail to the embodiments of the present general inventive concept, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to like elements throughout. The embodiments are described below in order to explain the present general inventive concept by referring to the figures.
As shown in
The screen 12 may be supported by a supporting bracket (not shown) at an end thereof, and coupled to a rear side of the mask 15.
The size of the mask 15 may be big enough to cover the screen 12, and thus may form a front appearance of the projection television by having its edge cover outer sides of the screen 12.
The casing 16 may form a side and rear appearance of the projection television, and may be firmly coupled to the mask 15 forming the front appearance by a screw or the like. The casing 16 may comprise an upper casing 16a on which the reflection mirror 18 may be mounted; and a lower casing 16b standing up in a lower portion of the casing 16 to accommodate the CRT assembly 20 therein. The lower casing 16b can be slimmed because the CRT assembly may be structured in a delta type.
On a bottom side of the casing 16 may be provided a print circuit board (not shown) to control the CRT assembly 20, and a supporting plate 19 may be provided in the lower portion of the casing 16 to stably support the casing 16.
The reflection mirror 18 may reflect an image beam projected through the CRT assembly 20 to a rear surface of the screen 12.
As shown in
The respective RGB CRTs 30 and each of the corresponding projection lenses 40 may be in contact with each other and strongly coupled by a coupling device. Each RGB CRT 30 may generate an image beam, and each corresponding projection lens 40 may project the image beam to the reflection mirror 18.
The coupler 50 may support the plurality of RGB CRTs 30 and the projection lenses 40, and may comprise a first, a second and a third coolant accommodators 52, 54, and 56 respectively coupled to each of the RGB CRTs 30 and each of the corresponding projection lenses 40 to accommodate a first, second and third coolants. Further, the coupler 50 may comprise a front supporter 50a to support a front portion of the RGB CRT 30, having the first, the second and the third coolant accommodators 52, 54, and 56 mounted thereon; and a rear supporter 50b coupled to the front supporter 50a to support a rear portion of the RGB CRT 30. The front supporter 50a and the rear supporter 50b may be coupled by a screw or other various coupling devices.
Ethylene glycol or glycerin may be used as the coolant to cool down heat generated from the RGB CRT 30, and the coupler 50 may contain aluminum, which has excellent heat proofing qualities.
In a side of the coupler 50 may be provided a bellows 60 to flexibly respond to a pressure change of the coolant in the first, the second and the third coolant accommodators 52, 54, and 56. In other words, the bellows 60 may be flexible and durable to expansion and contraction of the coolant with respect to a temperature change so as to sustain the pressure of the coolant.
Accordingly, the bellows 60 may be made of a rubbery material considering durability and elasticity thereof, and can be selectively structured as a well-known form as necessary.
As shown in
Meanwhile, the coolant injection port 53 may be provided in any one of the first, the second, and the third coolant accommodators 52, 54, and 56, and the coolant communication holes 55 and 57 provided in the other two thereof.
A communication structure between the first, the second and the third coolant accommodators 52, 54, and 56 may vary as long as the coolant is evenly distributed to the respective coolant accommodators 52, 54, and 56 through the communication structure.
As shown in
The light transmitting parts 13a and 14a may uniformly distribute the light of red, green and blue along vertical and horizontal directions of the screen 12, and the light absorbing parts 13b and 14b may absorb the external light, such as sunlight and natural/artificial lighting, so as to prevent contrast of an image from being decreased.
Although a few embodiments of the present general inventive concept have been shown and described, it will be appreciated by those skilled in the art that changes may be made in these embodiments without departing from the principles and spirit of the general inventive concept, the scope of which is defined in the appended claims and their equivalents.
Number | Date | Country | Kind |
---|---|---|---|
2004-37025 | May 2004 | KR | national |
2004-58249 | Jul 2004 | KR | national |