C03C2201/40

COMPOSITION FOR INORGANIC MOLDED ARTICLE PRODUCTION USE, AND METHOD FOR PRODUCING INORGANIC MOLDED ARTICLE
20200140318 · 2020-05-07 ·

A resin composition for inorganic molded article production use, which is provided with inorganic particles each containing amorphous SiO.sub.2 and a photocurable resin composition, in which the photocurable resin composition contains a photocurable resin precursor and a photopolymerization initiator, the content of the inorganic particles is 60% by mass or more with respect to the total amount of the photocurable resin composition and the inorganic particles and is 60% by mass or more with respect to the entire amount of the resin composition for inorganic molded article production use, and the viscosity of the composition for inorganic molded article production use is 10000 mPa.Math.s or less.

OPTICAL GLASS, PREFORM, AND OPTICAL ELEMENT
20200131076 · 2020-04-30 ·

There are provided an optical glass that has a low temperature coefficient of relative refractive index and that can contribute to correction of the influence on image formation characteristics due to temperature change, and a preform and an optical element that use the optical glass.

The optical glass contains, on a mass % basis, 20.0% to 40.0% of a P.sub.2O.sub.5 component, 25.0% to 50.0% of a Nb.sub.2O.sub.5 component, and 3.0% to 30.0% of a total mass (Na.sub.2O+K.sub.2O), wherein a temperature coefficient (40 C. to 60 C.) of a relative refractive index (589.29 nm) is in the range of +3.010.sup.6 to 10.010.sup.6 ( C..sup.1).

GLASS-CEREMIC ARTICLE AND GLASS-SERAMIC FOR ELECTRONIC DEVICE COVER PLATE
20200131080 · 2020-04-30 ·

The present invention discloses a glass-ceramic article and a glass-ceramic for an electric device cover plate, the glass-ceramic comprises, as a predominant crystalline phase, lithium silicate and the quartz crystalline phase, and has a composition expressed in weight percent including: SiO.sub.2: 65-85%, Al.sub.2O.sub.3: 1-15%, Li.sub.2O: 5-15%, ZrO.sub.2: 0.1-10%, P.sub.2O.sub.5: 0.1-10%, K.sub.2O: 0-10%, MgO: 0-10%, ZnO: 0-10%, and Na.sub.2O: 0-5%, wherein (SiO.sub.2+Al.sub.2O.sub.3+Li.sub.2O+ZrO.sub.2)/P.sub.2O.sub.5 is 40-90, the falling ball test height is 700 mm or more. By reasonable component design, the present invention achieves excellent mechanical properties of the glass-ceramic and the glass-ceramic article of the present invention and obtains the glass-ceramic or the glass-ceramic article suitable for electronic devices at a lower cost.

ULTRAVIOLET-SHIELDING GLASS SHEET AND VEHICLE WINDOW PANE USING THE GLASS SHEET
20200017397 · 2020-01-16 ·

The present invention provides a glass sheet having a good property of blocking transmission of ultraviolet light, having a low to moderate visible transmittance, being relatively thin, being capable of substantially blocking transmission of solar ultraviolet light, and also having a good solar shielding property. The glass sheet of the present invention has a thickness of 1 to 5 mm, a Tuv 380 of 1.5% or less, a Tuv 400 of 2.5% or less, a visible transmittance (YA) of 5 to 40%, and a solar transmittance (TG) of 5 to 45%, and is formed from a glass composition, wherein the glass composition includes: 1.0 to 5.0 wt % T-Fe.sub.2O.sub.3; 1.0 to 5.0 wt % TiO.sub.2; and 50 to 600 wt. ppm CoO as coloring components in addition to predetermined base composition, a FeO ratio is 5 to 40%, and the sum of T-Fe.sub.2O.sub.3 multiplied by 2 and TiO.sub.2 is 7.0% or more.

Cover glass lamination structure and manufacturing method thereof

A cover glass lamination structure includes: a glass substrate having opposed first and second surfaces; an ultraviolet (UV) textured layer disposed on the first surface; and a coating layer disposed on the UV textured layer, wherein an inner edge of the coating layer extends beyond an inner edge of the UV textured layer and is attached to the first surface.

LITHIUM-ALUMINOSILICATE GLASS, LITHIUM-ALUMINOSILICATE CHEMICALLY STRENGTHENED GLASS, PREPARATION METHOD THEREFOR, AND APPLICATION THEREOF
20240116799 · 2024-04-11 ·

Disclosed in the present application is a lithium-aluminosilicate glass. The lithium-aluminosilicate glass includes, by mole percent of oxides, the following components: SiO.sub.2, 62-68 mol %; Al.sub.2O.sub.3, 9-14 mol %; Na.sub.2O, 6-10 mol %; K.sub.2O, 0.2-0.7 mol %; and Li.sub.2O, 8.0-14.0 mol %; where (Li.sub.2O+Na.sub.2O+MgO)/Al.sub.2O.sub.3 is 1.7-2.5. By means of controlling the mole percents of SiO.sub.2, Al.sub.2O.sub.3, Na.sub.2O, K.sub.2O, and Li.sub.2O, as well as the range of the ratio (Li.sub.2O+Na.sub.2O+MgO)/Al.sub.2O.sub.3, it is consequently ensured that the obtained lithium-aluminosilicate glass, upon chemical strengthening, has high strength, satisfies a requirement of a client with respect to film-peeling electrostatic voltage, and further has uniquely advantageous effects of a lower melting temperature and being able to save energy and reduce energy consumption.

Near infrared shielding and laser-resistant window

Near-infrared shielding includes a glass material. The shielding provides transmittance at wavelengths between 390 to 700 nm, but near infrared absorbing species are distributed throughout the glass material and the shielding blocks light in the near infrared range. Further, the glass material has a near zero or negative coefficient of thermal expansion, allowing the glass material to heat up when the shielding is blocking a near infrared laser, without expanding much.

Composition for inorganic molded article production use, and method for producing inorganic molded article

A resin composition for inorganic molded article production use, which is provided with inorganic particles each containing amorphous SiO.sub.2 and a photocurable resin composition, in which the photocurable resin composition contains a photocurable resin precursor and a photopolymerization initiator, the content of the inorganic particles is 60% by mass or more with respect to the total amount of the photocurable resin composition and the inorganic particles and is 60% by mass or more with respect to the entire amount of the resin composition for inorganic molded article production use, and the viscosity of the composition for inorganic molded article production use is 10000 mPa.Math.s or less.

WOLLASTONITE CRYSTALLIZED GLASS FOR ARTIFICIAL TOOTH AND METHOD FOR COLORING SAME
20190194058 · 2019-06-27 ·

Disclosed are a wollastonite crystallized glass for an artificial tooth and a method for coloring same, the method enabling a production of a uniform shade without degrading the physical properties of a crystallized glass by means of simply adding a small amount of coloring additive powder when preparing the crystallized glass.

POLYCHROMATIC ARTICLES AND METHODS OF MAKING THE SAME

An article includes SiO.sub.2 from about 40 mol % to about 80 mol %, Al.sub.2O.sub.3 from about 1 mol % to about 20 mol %, B.sub.2O.sub.3 from about 3 mol % to about 50 mol %, WO.sub.3 plus MoO.sub.3 from about 1 mol % to about 18 mol % and at least one of: (i) Au from about 0.001 mol % to about 0.5 mol %, (ii) Ag from about 0.025 mol % to about 1.5 mol %, and (iii) Cu from about 0.03 mol % to about 1 mol %, and R.sub.2O from about 0 mol % to about 15 mol %. The R.sub.2O is one or more of Li.sub.2O, Na.sub.2O, K.sub.2O, Rb.sub.2O and Cs.sub.2O. R.sub.2O minus Al.sub.2O.sub.3 ranges from about 12 mol % to about 3.8 mol %.