Abstract:
A flat-type fluorescent lamp and liquid crystal display having minimum pin-shaped holes include a first substrate, a second substrate forming a plurality of discharging spaces together with the first substrate, and external electrodes that cover the outer edge surfaces of the first and the second substrates while perpendicularly extending across the discharging spaces. The second substrate is substantially as thick as the first substrate, especially at the position covered by the external electrodes.
Abstract:
A flat fluorescent lamp includes a lamp body having a plurality of discharge spaces, an external electrode that is formed at both ends of the lamp body and intersects the discharge spaces, and an auxiliary electrode coupled to the lamp body and electrically connected to the external electrode. The external electrode includes a main electrode portion intersecting the discharge spaces and a first compensation electrode portion extending from the main electrode portion such that the first compensation electrode portion is formed at the outermost discharge spaces of the discharge spaces. The auxiliary electrode is formed at the outermost discharge spaces where the first compensation electrode portion is formed. Thus, a pin-hole defect of the flat fluorescent lamp may be prevented.
Abstract:
A flat light-emitting lamp includes a first common discharge unit for producing a first electrical discharge according to a first AC waveform having a first phase, a second common discharge unit for producing a second electrical discharge according to a second AC waveform having a second phase different from the first phase, and a plurality of discharge tubes each having first ends connected to the first common discharge unit and second ends connected to the second common discharge unit. The discharge tubes emit light according to the electrical discharges of the first and second common discharge units.
Abstract:
An external electrode fluorescent lamp for a backlight, including: a lamp that emits light; a first external electrode at one end of the lamp, and a second external electrode at a second end of the lamp; a dividing electrode between the first and second external electrodes and defining a plurality of divided regions; and a separating wall inside the lamp corresponding to the dividing electrode and separating the lamp into the divided regions.
Abstract:
An optical film includes liquid crystal layers and adhesive layers. The liquid crystal layers are disposed at a base substrate. Each of the liquid crystal layers reflects light having a first wavelength and transmits light having a wavelength different from the first wavelength. Each of the adhesive layers is disposed between adjacent ones of the liquid crystal layers to combine the liquid crystal layers.
Abstract:
A flat-type fluorescent lamp includes a body having a plurality of discharge spaces, an electrode part disposed inside the body and crossing each of the discharge spaces and a light generating part generating a visible light by using the emitted electron. The electrode part includes an electron-transporting electrode transporting electrons from an exterior and an electron-emitting electrode on the transporting electrode to activate emission of the electrons to the discharge spaces. The flat-type fluorescent lamp has high brightness and low power consumption.
Abstract:
A flat fluorescent lamp includes a first substrate, a second substrate combined with the first substrate to define a plurality of discharge spaces, and a first external electrode formed on the outer surface of the second substrate to cross the discharge spaces. A first region of the second substrate corresponding to an outermost discharge space has a thickness thinner than that of a second region of the second substrate corresponding to remaining discharge spaces not disposed outermost. Thus, the outermost discharge space may have a compensated luminance, thereby improving luminance uniformity of light emitted from the flat fluorescent lamp and display quality of the liquid crystal display device including the flat fluorescent lamp.
Abstract:
A backlight unit is disclosed, to obtain the simplified assembling process by simplifying the external structure, which includes a plurality of light-emitting lamps arranged in one direction; a cover bottom having a central bottom and a quadrangle frame formed as one body, to receive both ends of each of the light-emitting lamps; and a reflective sheet formed on the inner surface of the cover bottom.
Abstract:
A backlight assembly includes a receiving container having a bottom and a side member to provide a receiving space, a flat-type fluorescent lamp received into the receiving container to emit a light, and a supporting member having a buffer disposed between the receiving container and the flat-type fluorescent lamp to buff an impact applied to the flat-type fluorescent lamp while supporting the flat-type fluorescent lamp. The buffer has protrusions protruding from a face of the supporting member. Thus, the backlight assembly may enhance impact resistance of the backlight assembly and prevent damage of the flat-type fluorescent lamp.
Abstract:
A flat luminescent lamp and a method for manufacturing the same are disclosed in the present invention. More specifically, a flat luminescent lamp includes first and second substrates each having a plurality of grooves in sides which the first and second substrates face into each other, first and second electrodes in the grooves, first and second phosphor layers in the first and second substrates including the first and second electrodes, respectively, and a frame for sealing the first and second substrates.