Abstract:
A plasma display panel includes a first substrate and a second substrate disposed opposite to each other and having a plurality of discharge spaces therebetween forming a display region for implementing images. Display electrodes are provided in lateral sides of the discharge spaces and extend in a first direction. Address electrodes extend in a second direction crossing the display electrodes. A dummy cell region and a frit region are provided outside of the display region. The frit region includes a first frit formed on a periphery of the first substrate, a second frit formed on a periphery of the second substrate, a dielectric layer disposed between the first substrate and the second substrate and covering the display electrodes, and electrode terminals drawn out from the display electrodes to an edge of the first substrate and the second substrate.
Abstract:
A PDP (plasma display panel) includes: a front substrate; a rear substrate arranged opposite to the front substrate; front barrier ribs arranged between the front substrate and the rear substrate and formed of a dielectric material, the front barrier ribs partitioning discharge cells together with the front and rear substrates; front and rear discharge electrodes arranged within the front barrier ribs to surround the discharge cells, and extended in parallel along discharge cells of one row; address electrodes extended along discharge cells of another row intersecting with a row of the discharge cells where the front and rear discharge electrodes are arranged; phosphor layers arranged within the discharge cells; and a discharge gas injected in the discharge cells, in which the address electrode includes discharge portions formed in a loop shape disposed at the discharge cells and connecting portions connecting the discharge portions.
Abstract:
A plasma display panel is provided which includes a first panel and a second panel, a gas exhaust port and a gas exhaust tube. The first panel and the second panel are attached to each other such that discharge cells are formed and an image can be generated through a gas discharge within the discharge cells. The gas exhaust port is formed near at least one edge of the first panel and defines a passageway for communicating with the discharge cells. The gas exhaust tube is provided near an outer edge of the first panel in which the gas exhaust port is formed and communicates with the discharge cells via the gas exhaust port. The gas exhaust port and the gas exhaust tube are disposed such that the center lines of each are not aligned with each other.
Abstract:
A plasma display apparatus is disclosed. In one embodiment, the apparatus transfers heat generated from a plasma display panel through a thermally conductive layer, and thus, prevents the heat from being locally concentrated on the plasma display panel, and has an improved heat dissipation performance. Furthermore, the plasma display apparatus reduces vibration generated in a circuit portion attached to a chassis or a plasma display panel, thereby reducing noise. The plasma display apparatus includes a plasma display panel, a chassis supporting the plasma display panel, and a sheet interposed between the plasma display panel and the chassis and comprising a thermally conductive layer contacting the plasma display panel and a noise reduction layer contacting the chassis.
Abstract:
A plasma display panel. A first substrate and a second substrate are provided opposing one another with a predetermined gap therebetween. Address electrodes are formed on the second substrate. Barrier ribs are mounted between the first substrate and the second substrate defining a plurality of discharge cells. Phosphor layers are formed within the discharge cells. Discharge sustain electrodes are formed on the first substrate. The discharge sustain electrodes include bus electrodes that extend such that a pair of the bus electrodes is provided for each of the discharge cells, and protrusion electrodes extending from each of the bus electrodes such that a pair of opposing protrusion electrodes is formed within an area corresponding to each discharge cell. A distal end of each protrusion electrode includes an indentation such that a gap is formed between the pair of opposing protrusion electrodes, and an aperture is formed in each protrusion electrode.
Abstract:
A plasma display panel including: a first substrate; a plurality of first electrodes and a plurality of second electrodes, the first and second electrodes being disposed in parallel on the first substrate; a first dielectric surrounding the first electrodes and the second electrodes and connecting the first electrodes and the second electrodes; a passivation layer on the first dielectric and on the first electrodes and the second electrodes; a second substrate facing the first substrate; a plurality of third electrodes on the second substrate and crossing the first electrodes and the second electrodes; and a second dielectric on the third electrodes.
Abstract:
A plasma display panel includes a first substrate and a second substrate opposing one another with a predetermined gap therebetween. Address electrodes are formed on the second substrate. Barrier ribs are mounted in the gap between the first substrate and the second substrate to define a plurality of discharge cells. Phosphor layers are formed in each of the discharge cells. Discharge sustain electrodes are formed in a direction intersecting the address electrodes and paired such that each of the discharge cells is in communication with a pair of the discharge sustain electrodes. Each of the discharge sustain electrodes include extension sections that extend into the discharge cells such that a pair of opposing extension sections is formed in each of the discharge cells. Distal ends of each of the extension sections extended from at least one of each pair of the bus electrodes are formed having a concave section.
Abstract:
A plasma display panel includes a first substrate and a second substrate, the second substrate disposed facing the first substrate, a dielectric wall disposed between the first and second substrates to define a plurality of discharge cells, a plurality of discharge electrode pairs buried within the dielectric wall, a plurality of phosphor layers formed in the discharge cells, and a gas exhaust path unit formed between the dielectric wall and at least one of the substrates.
Abstract:
A plasma display panel is provided. The plasma display panel comprises a plurality of first electrodes and a plurality of second electrodes; wherein the first electrodes and the second electrodes cross at a discharge space; wherein prominent electrodes are formed at a portion of the first electrodes where the first electrodes cross with the second electrodes to extend the area of the address electrodes so that a stable address discharge may occur, and vertical centers of the prominent electrodes are asymmetrical with respect to vertical centers of the discharge spaces, which may be coated with red, green, and blue fluorescent layers.
Abstract:
A plasma display panel including a first substrate; a second substrate spaced apart from the first substrate and to face the first substrate; a plurality of barrier ribs disposed between the first substrate and the second substrate to define a plurality of discharge cells between the first and second substrates; and a plurality of pairs of discharge electrodes buried in the barrier ribs to surround at least a portion of each of the discharge cells, wherein the discharge cells are disposed in a zigzag fashion.