Abstract:
There is provided a liquid crystal display device having a pixel electrode including a transmissive pixel electrode and a reflective pixel electrode. The liquid crystal display device includes a TFT array substrate, an opposing substrate, a sealing material that bonds the both substrates, an organic film formed on the TFT array substrate and having a thick film portion provided below the pixel electrode and a thin film portion provided outside the thick film portion, a columnar spacer formed on the opposing substrate and holding substrate gap between the both substrates, and a gap retaining pad formed in a region outside the display region and inside the sealing material to adjust the substrate gap outside the display region according to the substrate gap on the pixel electrode. The columnar spacer holds the substrate gap between the both substrates over the gap retaining pad and over the pixel electrode.
Abstract:
A propylene-based polymer which is suitably applicable to foam molding, sheet molding, blow molding or the like, because of having good flow characteristics, high melt tension, high swell ratio and thus good molding workability.It is attained by a propylene-based polymer or the like characterized by satisfying the following requirements (i) to (vi).Requirement (i): MFR is 0.1 g/10 minutes to 100 g/10 minutes.Requirement (ii): Q value by GPC is 3.5 to 10.5.Requirement (iii): ratio of components with a molecular weight of equal to or higher than 2,000,000, in a molecular weight distribution curve obtained by GPC, is equal to or larger than 0.4% by weight and less than 10% by weight.Requirement (iv): components, which elute at a temperature of equal to or lower than 40° C., are equal to or less than 3.0% by weight, in temperature rising elution fractionation by ODCB.Requirement (v): isotactic triad fraction (mm) measured with 13C-NMR is equal to or higher than 95%.Requirement (vi): strain hardening degree (λmax), in measurement of extensional viscosity, is equal to or higher than 6.0.
Abstract:
A recording medium imaging apparatus includes an irradiation unit configured to irradiate a recording medium with light, an imaging unit configured to capture reflected light which is irradiated by the irradiation unit and reflected by the recording medium as a surface image, and a reference plate which includes a background that reflects light irradiated by the irradiation unit, and a mark that has a different reflectance ratio to the background, wherein the imaging unit captures reflected light reflected by the reference plate as a surface image and includes a control unit that determines a type of the recording medium based on the surface image of the reference plate and the surface image of the recording medium.
Abstract:
Provided is a thin film transistor having a semiconductor film disposed in a plurality of portions on a substrate, a source electrode and a drain electrode which are disposed, on a semiconductor film, in contact with the semiconductor film while being spaced from each other, and a gate electrode which is disposed across the source electrode and the drain electrode via a gate insulating film; an auxiliary capacitance electrode which is disposed on the semiconductor film while in contact with the semiconductor film; a source line which has the semiconductor film in a lower layer, extends from the source electrode; a gate line which extends from the gate electrode; a pixel electrode which is electrically connected to the drain electrode; and an auxiliary capacitance electrode connecting line which electrically connects the auxiliary capacitance electrodes to each other in the adjacent pixels.
Abstract:
The timing of obtaining an output value for use in a determination of a recording medium is generated from a received ultrasonic wave and a waveform generated by delaying the ultrasonic wave, whereby it is possible to reduce an influence of a reflection wave from the peripheral members and an influence of a change in the environment to improve the accuracy of determination of the recoding medium.
Abstract:
In an image forming apparatus identifying recording materials to decide printing conditions, information concerning the type of the recording materials identified by a recording material identification unit is stored for each paper feed port. In a subsequent print job to be printed, the use of the information having been stored in advance makes it possible to omit the recording material identification process for the subsequent recording materials. This stored information includes individual information for each recording material and a determined value obtained from a plurality of a plurality of pieces of individual information. Once the determined value is set, the determined value is used thereafter. These pieces of stored individual information and the determined value are initialized when a change of paper or the like is detected at the paper feed port corresponding to the value and to the information.
Abstract:
An apparatus for continuously manufacturing a sheet of molded compound includes a first conveying unit for continuously conveying a lower film. First and second impregnation rollers are provided above the lower film for impregnating a viscous material and a solid material to obtain a compound mixture to be dropped onto the lower film. First and second scraping rollers are provided below the first and second impregnation rollers to scrape the compound mixture from the impregnation rollers. A scattering roller is provided below the first impregnation roller upstream from the first scraping roller relative the feed direction of the lower film. The scattering roller is positioned to act upon rotation to prevent scattering of portions of the composite mixture caused at least in part by the first scraping roller. A second conveying unit is provided for conveying an upper film. Included in the second conveying unit is a guide roller positioned below the second impregnation unit downstream the second scraping roller relative the feed direction of the lower film. The guide roller is positioned with the upper film disposed thereabout to prevent scattering of portions of the composite mixture caused at least in part by the second scrapping roller. Supply pipes are provided for supplying the viscous material which are disposed above the first and second impregnation rollers. Each supply pipe includes a plurality of openings which have varying opening areas to compensate for a decrease in an internal pressure of the supply pipe as the viscous material flows within the supply pipe.
Abstract:
An array substrate has regions in which an intermediate resist film thickness is formed and processed by an intermediate exposure amount which does not completely expose a resist, respectively on a drain electrode, source terminal, and a common connection wiring which are made of a second conductive film. Thin film patterns or a common wiring made of a first conductive film is formed in substantially entire regions on the bottom layers of the regions so that the heights from a substrate are substantially the same.
Abstract:
An object of the present invention is to provide a polyethylene-based resin composition excellent in the moldability and at the same time, excellent in the balance between impact strength and stiffness as well as in the transparency, and a molded product and a film, which are obtained by the molding of the polyethylene-based resin composition. The polyethylene-based resin composition of the present invention comprises from 41 to 99 wt % of (A) an ethylene-based polymer satisfying specific conditions and from 1 to 59 wt % of (B) an ethylene-based polymer satisfying specific conditions, wherein MFR of the composition as a whole is from 0.05 to 50 g/10 min and the density is from 0.910 to 0.960 g/cm3.
Abstract translation:本发明的目的是提供一种成型性优异,同时在冲击强度和刚度以及透明性之间的平衡方面优异的聚乙烯类树脂组合物,以及成型体和膜,其中 是通过模塑聚乙烯类树脂组合物得到的。 本发明的聚乙烯类树脂组合物含有(A)满足特定条件的(A)乙烯类聚合物和1〜59重量%(B)满足特定条件的乙烯系聚合物的41〜99重量%,其中, 组合物的总体MFR为0.05〜50g / 10min,密度为0.910〜0.960g / cm 3。
Abstract:
There is provided a TFT substrate including a gate electrode having a thick film part and a thin film part with a smaller film thickness than the thick film part, a semiconductor active film formed above the thick film part and the thin film part of the gate electrode, an ohmic contact film formed on an inside of the semiconductor active film and on the semiconductor active film corresponding to the thin film part on an outside of the thick film part, and an electrode film constituting a source electrode and a drain electrode, having a planar shape identical to or on an inside of the ohmic contact film, and formed on the ohmic contact film.