Abstract:
A plasma display device including a plasma display panel (PDP), a temperature detector for detecting temperature of the PDP, a driver for applying a driving voltage to a scan electrode, and a controller for generating a control signal to control the driver according to the temperature. The driver includes a transistor and first and second resistors. The transistor is coupled between a first power source and the scan electrode. The first power source supplies a scan voltage to the scan electrode. At least one of the first resistor and the second resistor is a variable resistor having a resistance that varies according to the control signal of the controller. A low discharge due to high temperature can be reduced or prevented, and the number of power sources of the plasma display device can be reduced.
Abstract:
An input device and a method for providing an input device are provided. The input device assembly includes a base, a sensor support, and a scissor mechanism attached to the base and the sensor support. The scissor mechanism allows for only substantially uniform translation of the sensor support towards the base in response to a force biasing the sensor support substantially towards the base.
Abstract:
A liquid crystal display device includes a gate line and a data line intersecting each other on a substrate. The liquid crystal display device further includes a photo sensing device and a first thin film transistor (“TFT”) located at an intersection area of the gate line. The photo sensing device operates to sense an ambient light and includes a storage capacitor to store charge generated by light. The photo sensing device is drive by a driving voltage other than the data voltage.
Abstract:
A TFT array substrate includes a gate line, a gate electrode, and a gate pad on a substrate, each of which including stacked layers of a first metal and a transparent conductive material, respectively, a pixel electrode formed of the transparent conductive material, a gate insulation layer on the substrate including the gate line and the gate electrode, the gate insulation layer having first and second open areas exposing the pixel electrode and the gate pad, a semiconductor layer formed on the gate insulation layer, a data line crossing the gate line to define a sub-pixel region, a source electrode diverging from the data line, a drain electrode spaced apart from the source electrode and connected to the pixel electrode, a data pad at an end of the data line; a masking layer covering the data line, the source electrode and the drain electrode, and an oxidation-prevention layer covering the gate pad and the data pad.
Abstract:
A plate heat exchanger realizing improved heat exchange performance by increasing the fluidity of fluids and by promoting turbulence of the fluids, including: heat exchange elements stacked by being laid one on top of another and individually formed by assembling upper and lower plates, with an internal flow channel defined in each of the heat exchange elements and an external flow channel defined between the heat exchange elements, the internal and external flow channels allowing internal and external fluids to pass therethrough, respectively, wherein the upper and lower plates are provided with respective wave patterns having ridges and valleys, each of the heat exchange elements has an inlet port and an outlet port, the upper and lower plates respectively have an upper flange and a lower flange which are assembled with each other through fitting, and first and second flat parts are formed around the upper and lower flanges.
Abstract:
In accordance with example embodiments, a plasma processing apparatus includes a chamber configured to peform a plasma process, an upper plate on the chamber, an antenna under the upper plate and the antenna is configured to generate plasma in the chamber, an upper insulator between the upper plate and the antenna and the upper insulator covers a top of the antenna, a lower insulator covering a bottom of the antenna, an antenna support ring configured to fix the antenna to the upper plate, and a metal gasket adhered to the antenna support ring.
Abstract:
A TFT array substrate includes a gate line, a gate electrode, and a gate pad on a substrate, each of which including stacked layers of a first metal and a transparent conductive material, respectively, a pixel electrode formed of the transparent conductive material, a gate insulation layer on the substrate including the gate line and the gate electrode, the gate insulation layer having first and second open areas exposing the pixel electrode and the gate pad, a semiconductor layer formed on the gate insulation layer, a data line crossing the gate line to define a sub-pixel region, a source electrode diverging from the data line, a drain electrode spaced apart from the source electrode and connected to the pixel electrode, a data pad at an end of the data line; a masking layer covering the data line, the source electrode and the drain electrode, and an oxidation-prevention layer covering the gate pad and the data pad.
Abstract:
A method of controlling a picture quality of a flat panel display for automatically analyzing a shape, a size, and brightness of a display stain of indeterminate shape having an irregular pattern, and compensating brightness of the display stain of indeterminate shape on the basis of the analyzed result is disclosed. The method of controlling a picture quality of the flat panel display comprises measuring brightness of a display stain, which is generated on a flat display panel, at a vertical direction and a horizontal direction, respectively; imaginarily dividing the display stain in a predetermined distance along a direction that a brightness change is large among the vertical direction and the horizontal direction in accordance with the measured result; detecting edge points where divided border lines of the divided display stains and an edge of the display stain are joined; determining compensation values, which are applied to a plurality of compensation applying surfaces that are defined by the edge points and the divided border lines within the display stain; and adjusting digital video data to be displayed at the compensation applying surfaces using the compensation values.
Abstract:
A switching control circuit for a scan driving unit or a sustain driving unit of a plasma display panel driving device is disclosed. The switching control circuit includes a level shift circuit configured to generate a level-shifted signal by level shifting a control signal to a level referenced to a negative reference voltage, where the control signal was referenced to a ground voltage. The switching control circuit also includes a driver IC configured to amplify the level-shifted signal, and a switching circuit configured to perform a switching operation corresponding to the output signal.
Abstract:
Provided is a memo synchronization system, a mobile system, and a method for synchronizing memo data. The memo synchronization system includes a storage device, an authentication unit configured to authenticate a user by receiving authentication information of the user from a mobile terminal via a memo application installed in the mobile terminal, and a synchronization unit stored on the storage device and configured to synchronize memo data stored in the mobile terminal with memo data stored in a web storage space of an online memo service based on a request for synchronization transmitted from the mobile terminal through the memo application. The request for synchronization includes a synchronization request generated by the memo application according to an event set by the user.