1. Field of the Invention
This invention relates in general to a cold cathode fluorescent display (CFD) and in particular, to a high luminance, high efficiency, long lifetime, monochrome or multi-color or fall-color ultra-large screen display device, which can display character, graphic and video images for both indoor and outdoor applications.
2. Description of the Prior Art
The major prior technologies for ultra-large screen display are as follows:
This display screen consists of a lot of incandescent lamps. The white lamps are always used for displaying a white and black character and graphic. The color incandescent lamps, which use red, green, and blue (R, G, B) color glass bubbles, are used for displaying multi-color or full-color character, graphic and image. An incandescent lamp display has been widely used for an outdoor character and graphic displays and possesses certain advantages such as high luminance, functionable at direct sunlight with shade and-low cost of lamps. Nevertheless, this technology suffers from the following disadvantages: low luminous efficiency (i.e., white lamp about 10 lm/W; R, G, B<⅓ of white); high power consumption; poor reliability, unexpected lamp failure; short lifetime; expensive maintenance cost; long response time and is unsuitable for video display.
LED has been widely used for indoor large screen and ultra-large screen displays, to display a multi-color and full-color character, graphic and video image. This display is able to generate high luminance for indoor applications and can maintain a long operation lifetime at indoor display luminance level. The disadvantages of LED, however, are as follows: low luminous efficiency and high power consumption especially for the ultra-large screen display; low luminance for outdoor applications especially when a wide viewing angle is required or at direct sunlight; is expensive, especially for an ultra-large screen display because of the need of a lot of LEDs; and has a lower lifetime at a high luminance level.
CRT includes Flood-Beam CRT (e.g., Japan Display '92, p. 285, 1992), and matrix flat CRT (e.g., Sony's Jumbotron as disclosed in U.S. Pat. No. 5,191,259) and Mitsubishi's matrix flat CRT (e.g., SID '89 Digest, p. 102, 1989). The CRT display is generally known for its ability to produce good color compatible with color CRT. The disadvantages of CRT are as follows: low luminance for outdoor applications; low contrast at high ambient illumination operating condition; short lifetime at high luminance operating condition; expensive display device due to complex structure and high anode voltage of about 10 kv.
Hot cathode fluorescent technology has been used in a display system called “Skypix” (SID '91 Digest. p. 577, 1991) which is able to generate a high luminance of about 5000 cd/m.sup.2 and can be operated at direct sunlight. The disadvantages of this system are: low luminous efficiency due to hot cathode and short gas discharge arc length; very high power consumption and short lifetime because of the hot cathode and too many switching times for video display.
At present, the incandescent lamps are commonly used for an outdoor character and graphic display.
The matrix flat CRT, including food beam CRT and matrix CRT, is the most common display for an outdoor video display. Neither of these two technologies presents a display system which can be used in both indoor and outdoor applications possessing unique features overcoming all or substantially all of the disadvantages described above.
The present invention has been made in view of the foregoing disadvantages of the prior art.
Accordingly, it is an object of the present invention to provide a very high luminance large screen and ultra-large screen display using a shaped cold cathode fluorescent lamp (“CCFL”) with a special reflector and luminance enhancement face plate etc. It can be used for both indoor and outdoor applications even at direct sunlight. The dot luminance of the character and graphic display can be up to 15,000 cd/m.sup.2 or more. The area average luminance of the full-color image can be up to 5000 cd/m.sup.2 or more.
It is another object of the present invention to provide long lifetime large screen and ultra-large screen displays. The lifetime can be up to 20,000 hours or more at high luminance operating conditions.
It is one more object of the present invention to provide high luminous efficiency, low power consumption large screen and ultra-large screen displays. The luminance efficiency can be up to 30 lm/W or more.
It is a further object of the invention to provide a high contrast large screen and ultra-large screen display with the appropriate shades, black base plate and luminance and contrast enhancement face plate.
It is still a further object of the present invention to provide good temperature characteristics in large screen and ultra-large screen displays with a temperature control means. The CFD of the present invention can be used for both indoor and outdoor applications, and any ambient temperature condition.
In accordance with the present invention, a CFD is provided including some shaped R, G, B CCFLs, and R, G, B filters, reflectors, a base plate, a luminance and contrast enhancement face plate, a temperature control means, and its driving electronics to control the lighting period or lamp current or ON/OFF of CCFLs according to the image signal, and to control the luminance of CCFLs to display the character, graphic and image with monochrome, multi-color or full-color.
Other objects and many of the attendant advantages of the present invention will be readily appreciated as the same becomes better understood by reference to the following detailed description when considered in connection with the accompanying drawings, wherein:
a) and 1(b) show a mosaic CCFL assembly type CFD with
a) and 3(b) are partially cross-sectional views of two types of reflectors and the CCFLs.
a) is another schematic driving circuit diagram of CFD.
b) is a timing diagram to illustrate the operation of the circuit of
a) is an alternative schematic driving circuit diagram of CFD.
b) is a timing diagram to illustrate the operation of the circuit of
a) is a different schematic driving circuit diagram of CFD.
b) is a timing diagram to illustrate the operation of the circuit of
Now, a CFD according to the present invention will be described with reference to the accompanying drawings.
The CFD of the present invention has two types: CCFL assembly type and CCFL lamp type.
The CFD of the present invention can be a single piece structure or a mosaic structure. For the ultra-large screen CFD, it is always made in a mosaic type, i.e., the display screen is assembled by some mosaic tiles.
a) and 1(b) show a mosaic CCFL assembly type CDF wherein
The shape of CCFL can be a “U” shape, serpentine shape, circular shape or other shapes. For the white or monochromic display, the pixels can be one shaped CCFL or two or more different color CCFLs. 104 is the base plate for the installation of the CCFLs 102, its driver 105 and other parts are described below. 106 is a black non-reflective surface between CCFLs 102 and the base plate 104 to absorb the ambient incident light and to increase the contrast of the display image. 107 are the electrode terminals of CCFLs 102, said electrode terminals 107 are bended towards the back of the base plate 104 and are connected to drivers 105. 108 is a reflector. 109 is a luminance and contrast enhancement face plate. 110 is the black shade to absorb the ambient incident light, including sunlight, to increase the contrast of the display image. 111 is a heating and temperature control means seated between CCFL 102 and base plate 104, and close to CCFL 102 to make the CCFL operating at an optimum temperature, e.g., 30° C. to 75° C., to guarantee the luminance and color uniformity of the display image and to get high luminance, high luminance efficiency, and to quickly start the display system at any ambient temperature. The heating and temperature control means 111 has a heat conductive plate 112. One mosaic tile may have one or several pieces of the heat conductive plate 112 to ensure that all CCFLs are operated at the same optimum temperature. Between the heating and temperature control means 111 and base plate 104, there is a heat preservation layer 113 to decrease the heat loss and to decrease the power consumption.
a) and (b) are the cross-sectional view of two kinds of reflectors and CCFL for the CCFL assembly type CFD as shown in
The said heating means 404 can simply be a heated air flow. The heat air flows through the whole screen between the face plate and the base plate. Some temperature sensors and control circuits are used to detect and control the temperature of the CCFL chamber.
Referring now to
The CFD as illustrated in
a) is yet another schematic diagram for the driving circuit of CFD. The symbols x1, x2 . . . are the scanning lines. The symbols y1, y2 . . . are the column data electrodes. 1001 are the CCFLs. 1002 are the DC/AC converters. 1003 are AC voltage switches. One line of the CCFL or one group of CCFLs has one DC/AC converter 1002. When the switch 1003 is turned ON according to the image signal, the related CCFL will be lighted, and the character, graphic and image can be displayed. In this case, because the starting voltage of CCFL is larger than the sustained voltage, all CCFLs in the same line or same group should start at the same time as shown in
a) shows a low AC voltage switch driving circuit. The symbols x1, x2 . . . are scanning lines. The symbols y1, y2 . . . are column data electrodes. 1101 are the CCFLs. 1102 are DC/AC converters, which outputs a low AC voltage, e.g., several to ten volts and tens kHz. One line of CCFL or one group of CCFLs has one DC/AC converter. 1103 are low AC voltage switches. 1104 are transformers from which the low AC voltage can be changed to a high AC voltage. 1105 are coupling capacitors. The driving timing diagram is shown in
This Application is a continuation of application Ser. No. 11/555,597, filed Nov. 1, 2006, which is a continuation of application Ser. No. 10/214,006, filed Aug. 7, 2002; which is a continuation of application Ser. No. 09/733,706, filed Dec. 8, 2000, now abandoned; which application is a continuation of application Ser. No. 09/183,763, filed Oct. 30, 1998, now U.S. Pat. No. 6,211,612; which is a continuation of application Ser. No. 08/532,077, filed Sep. 22, 1995, now U.S. Pat. No. 5,834,889. These applications are incorporated herein by reference as if fully set forth herein.
Number | Date | Country | |
---|---|---|---|
Parent | 11555597 | Nov 2006 | US |
Child | 12335411 | US | |
Parent | 10214006 | Aug 2002 | US |
Child | 11555597 | US | |
Parent | 09733706 | Dec 2000 | US |
Child | 10214006 | US | |
Parent | 09183763 | Oct 1998 | US |
Child | 09733706 | US | |
Parent | 08532077 | Sep 1995 | US |
Child | 09183763 | US |