Abstract in simplified Chinese:本发明揭示者为一种等离子显示器,其中包括有:一后部基板;各第一电极,以预定图型形成于后部基板的上部表面上;第二与第三电极,形成于各第一电极上而以一预定距离分离并互相平行且垂直于各第一电极的方向;各辅助电极,互相平行配置于该等第二与第三电极间,该等电极为了电气上浮置而互相靠近者;一电介质层形成于后部基板的上部表面上,于其中该等第一电极,第二电极,第三电极及辅助电极系埋入于该基板而且电气上互相绝缘;及一前方基板系耦接于后部基板上部用以界定放电空间者。
Abstract:
Flash tubes for photographic use, in particular a flash tube is adapted to provide a light output adapted to FP-sync, Flat Peak. The flash tube includes a length of glass tubing enclosing a gas for use in the flash tube, a cathode inside a first end part of glass tubing and an anode inside a second end part of glass tubing. The cathode includes an element that helps to ionize the gas that is wound around the cathode, such that a spark stream starts from the upper part of the cathode and is prevented from spreading down wards on the cathode and changing the arc length during the light output adapted to FP-sync.
Abstract:
An arc chamber has a liner operably coupled to body. The liner has a second surface recessed from a first surface and a hole having a first diameter. The liner has a liner lip extending upwardly from the second surface toward the first surface that surrounds the hole and has a second diameter. An electrode has a shaft and head. The shaft has a third diameter that is less than the first diameter and passes through the body and hole and is electrically isolated from the liner by an annular gap. The head has a fourth diameter and a third surface having an electrode lip extending downwardly from the third surface toward the second surface. The electrode lip has a fifth diameter that is between the second and fourth diameters. A spacing between the liner lip and electrode lip defines a labyrinth seal and generally prevents contaminants from entering the annular gap. The shaft has an annular groove configured to accept a boron nitride seal.
Abstract:
There is provided a plasma display device that has a first, a second, and a third electrodes, phosphors emitting a light depending on discharges generated by applying voltages of the first to third electrodes, and a drive circuit for applying a pulse to the third electrode in every time discharge light emission is generated by applying an alternating pulse between the first and second electrodes, and the time at which the pulse of the third electrode reaches 50% of its amplitude in the trailing edge takes place before the time of the first peak of the light emission waveform.
Abstract:
A plasma-discharge light emitting device is provided. The plasma-discharge light emitting device may include: rear and front panels separated from each other in a predetermined interval, wherein at least one discharge cell may be provided between the rear and front panels, and wherein plasma discharge may be generated in the discharge cells; a pair of discharge electrodes provided on at least one of the rear and front panels for each of the discharge cells; a trench provided as a portion of each of the discharge cells between the pair of the discharge electrodes; and electron-emitting material layers provided on both sidewalls of the trench.
Abstract:
A rear substrate of plasma display panel comprises a substrate, a plurality of address electrodes, a plurality of auxiliary address electrodes, a rib and a fluorescent layer. The rib is disposed on the substrate to define a plurality of discharge spaces. Each of the address electrodes is disposed in each of the discharge spaces. The auxiliary address electrodes are disposed between the substrate and the rib. When an address signal is inputted to the address electrodes, the auxiliary address electrodes are grounded for reducing the probability of error discharge. During sustain period, the auxiliary address electrodes are coupled to a positive voltage for preventing ion bombardment of phosphors layer.
Abstract:
A plasma display device is provided. The plasma display device includes a plasma display panel (PDP); an upper substrate and a lower substrate which face each other; a plurality of scan electrodes and a plurality of sustain electrodes which are disposed on the upper substrate; a plurality of first barrier ribs which are disposed on the lower substrate in parallel with the scan electrodes and the sustain electrodes; a plurality of second barrier ribs which are disposed on the lower substrate, intersect the first barrier ribs, and are higher than the first barrier ribs; and a plurality of auxiliary electrodes which are disposed on the upper substrate and overlap the first barrier ribs. Accordingly, it is possible to improve the luminance and brightness of a PDP by forming horizontal barrier ribs to be lower than vertical barrier ribs. In addition, it is possible to reduce the amount of invalid power of a PDP by preventing crosstalk from occurring between a pair of sustain electrodes with a barrier rib interposed therebetween.
Abstract:
A plasma display apparatus is provided. The plasma display apparatus including an upper substrate; a plurality of first electrodes and second electrodes formed in the upper substrate; a lower substrate arranged to be opposite to the upper substrate; and a plurality of third electrodes and barrier ribs formed in the lower substrate includes a black matrix formed in the upper substrate to be overlapped with the barrier ribs; and a fourth electrode formed on the black matrix to intersect the third electrodes, wherein at least one of the plurality of first and second electrodes is formed in one layer.
Abstract:
A plasma display panel, which enables low voltage addressing and reduces deterioration of the fluorescent layers, thereby achieving excellent luminance, includes: a front substrate having sustaining electrodes arranged at predetermined intervals; a front dielectric layer adapted to bury the sustaining electrodes; a rear substrate facing the front substrate and including address electrodes arranged orthogonal to the sustaining electrodes; a rear dielectric layer adapted to bury the address electrodes; barrier walls adapted to define stripe-shaped discharge spaces arranged between the front substrate and rear substrate, the stripe-shaped discharge spaces being parallel to and alternating with the address electrodes; fluorescent layers arranged within the discharge spaces; and at least one floating electrode respectively arranged within the barrier walls in a longitudinal direction of the barrier walls. Alternatively, first and second barrier walls can be adapted to define discharge spaces arranged between the front substrate and rear substrate, the first barrier walls arranged parallel to and alternating with the address electrodes, and the second barrier walls arranged perpendicular to the first barrier walls and at least one floating electrode respectively arranged within the first and second barrier walls and in a longitudinal direction of the first and second barrier walls.
Abstract:
A plasma display panel includes a first substrate and a second substrate facing each other. A barrier rib together with the first substrate and the second substrate defines a plurality of discharge cells for generating a gas discharge. First discharge electrodes extend in a direction in correspondence with respective discharge cells. Third discharge electrodes are disposed in the barrier rib, extend in the direction and correspond with respective first discharge electrodes in the respective discharge cells. Fourth discharge electrodes are disposed in the barrier rib, extend in the direction, are separated from respective third discharge electrodes and face respective third discharge electrodes with respect to centers of the discharge cells. Address electrodes intersect the direction. Phosphor layers are formed in the discharge cells.