Abstract:
A Plasma Display Panel (PDP) includes: a first substrate; a second substrate arranged parallel to the first substrate; a partition wall interposed between the first and second substrates; a groove formed on the partition wall; and a reflection preventive layer formed on the groove to reduce reflective luminance in a display area.
Abstract:
A plasma display panel (PDP) in which high luminance images can be formed at low voltage. The PDP includes first and second substrates which with a predetermined space therebetween; a plurality of barrier ribs disposed between the first and second substrates, including longitudinal barrier ribs and transverse barrier ribs having a height 10˜50% lower than the longitudinal barrier ribs in a direction towards the first substrate and connecting the longitudinal barrier ribs, the plurality of barrier ribs defining a plurality of discharge cells together with the first and second substrates; a plurality of pairs of sustain electrodes crossing the longitudinal barrier ribs; and a plurality of address electrodes to cross the pairs of sustain electrodes; and a fluorescent layer formed in each of the discharge cells.
Abstract:
The plasma display device has an improved structural assembly that includes improved heat transfer interfaces between each of a chassis base and a PDP and a thermally conductive member interposed therebetween. The plasma display device may include a plasma display panel; a chassis base supporting the plasma display panel; a thermally conductive member disposed between the plasma display panel and the chassis base; a first adhesive layer formed between the plasma display panel and the thermally conductive member to adhere the plasma display panel and the thermally conductive member; and a second adhesive layer formed between the thermally conductive member and the chassis base to adhere the thermally conductive member and the chassis base. An adhesive strength of the first adhesive layer may be greater than an adhesive strength of the second adhesive layer.
Abstract:
A plasma display device includes a plasma display panel for displaying an image by a gas discharge. A chassis base is attached to the plasma display panel and supports the plasma display panel. At least one printed circuit board is mounted on the a side of the chassis base at opposite the side supporting the plasma display panel. At least one flexible printed circuit connects electrodes of the plasma display panel and terminals of the printed circuit boards. An anisotropic conductive film is between the terminal of the printed circuit board and a terminal of the flexible printed circuit and connects the terminal of the printed circuit board and the terminal of the flexible printed circuit. The printed circuit board includes at least one dummy groove outside a region of the printed circuit board facing the flexible printed circuit.
Abstract:
A plasma display panel plasma display panel includes a first substrate, a second substrate facing the first substrate, address electrodes between the first and second substrates, barrier ribs between the first and the second substrates, the barrier ribs defining discharge cells, phosphor in each discharge cell and first and second opaque electrodes between the first and second substrates, the first and second opaque electrodes extending orthogonally to the address electrodes. Each opaque electrode includes a first layer and a second layer, the first layer being narrower than the second layer. Each discharge cell is between a corresponding address electrode on a first side and a corresponding pair of first and second opaque electrodes on a second side, opposite the first side.
Abstract:
A plasma display apparatus and a method of manufacturing a plasma display apparatus are provided. According to the invention, the accuracy of alignment of the plasma display apparatus is improved. A plasma display apparatus according to one embodiment of the present invention comprises a plasma display panel for producing images and a chassis to which the plasma display panel is attached. The plasma display panel comprises at least one aligning mark and is attached to a first surface of the chassis. The chassis comprises at least one aligning hole corresponding in position to the position of the aligning mark on the plasma display panel. The chassis comprises aluminum and an anti-reflective material. The anti-reflective material is present in the chassis in an amount ranging from about 12 to about 26 parts by weight per 100 parts by weight aluminum.
Abstract:
A plasma display panel is provided having a plurality of scan electrodes and sustain electrodes formed parallel to each other in pairs on a first substrate, and a plurality of address electrodes formed on a second substrate that cross the plurality of first and second electrode pairs. A reset waveform is applied to a scan electrode during a reset period, and a scan pulse that falls from a first voltage level to a second voltage level is applied to the can electrode during an address period. A pre-scan pulse of a third voltage level, which is higher than the first voltage level, is applied to a scan electrode between the reset and address periods, and either a magnitude of the third voltage level or a width of the pre-scan pulse is adjusted according to patterns of subfield data.
Abstract:
A plasma display panel design having a display area and a peripheral area surrounding the display area. Within the display area are discharge cells, and within the peripheral area are dummy cells that serve as a location where fluorescent paste is injected onto in an early stage of making the display, enabling the injection amount and injection speed from a nozzle to stabilize before the fluorescent material is deposited into the discharge cells. A surface area that the fluorescent material is deposited on in the peripheral area is increased to provide for a more rapid stabilization of the injection pressure and injection amount of the paste in the making of the display. A sufficient gap is present between a sealant and the dummy structure so that air and foreign matter can be expelled.
Abstract:
A plasma display according to an exemplary embodiment of the present invention applies different driving methods according to a maximum grayscale level of image data input for one field. When the maximum grayscale level of the field is higher than a reference level, an address period for selecting a light emitting cell and a non-light emitting cell from a plurality of discharge cells and a sustain period for sustain-discharging light emitting cells among the plurality of discharge cells are simultaneously driven in a plurality of sequential subfields after a first subfield. When the maximum grayscale level of the field is less than the reference level, the address period and the sustain period are time-separately driven in the plurality of subfields.
Abstract:
A plasma display device having a structure that reduces the probability of breakdown of the signal transmitting unit. The plasma display device includes a chassis base, a PDP supported in front of the chassis base, a driving circuit board that drives the PDP and is supported on a rear side of the chassis base, and a signal transmitting unit that couples the driving circuit board and the PDP by detouring the chassis base, wherein the ratio of H/W of a separation distance H with respect to a distance W between a connection portion and a vertical portion of the signal transmitting unit is 0.075≦H/W≦0.500.
Abstract translation:一种具有降低信号发送单元故障概率的结构的等离子体显示装置。 等离子体显示装置包括底架,支撑在底座前面的PDP,驱动电路板,驱动PDP并被支撑在底座的后侧;以及信号发送单元,其将驱动电路板 和PDP通过迂回底盘,其中间隔距离H的H / W相对于信号发送单元的连接部分和垂直部分之间的距离W的比率为0.075 <= H / W <= 0.500 。