Patent classifications
C03C2217/78
High heat-resistant composition and method of manufacturing three-dimensional substrate using the same
A heat-resistant composition including: a binder resin including at least two of a silicone-modified polyester resin, a siloxane compound, or a silanol compound; a pigment including at least two of iron cobalt chromite black spinel (ICCB), copper chromite black spinel (CCB), iron chromite manganese (ICM), or carbon black; and a catalyst.
Hard coating film and window and image display device using same
The present invention relates to a hard coating film including a substrate and a hard coating layer provided on at least one surface of the substrate, in which the hard coating layer includes a cured product of a hard coating composition containing a fluorine-based UV-curable-functional-group-containing compound, dendritic acrylate, a conductive polymer, and a solvent, the conductive polymer being included in a specific amount, whereby the hard coating film is applicable to a flexible display device and can simultaneously exhibit hard coating performance and antifouling performance even in the form of a single layer that does not include a separate antifouling layer, and in particular, the high antifouling effect can be maintained even in the presence of variously changing environmental conditions, and to a window and an image display device using the same.
Coated glasses with high effective fracture toughness
Glass-based articles comprise high effective fracture toughness. Glass-based articles comprise: a glass-based substrate comprising opposing first and second surfaces defining a substrate thickness (t.sub.s), a substantially planar central portion, and a perimeter portion; a polymer coating disposed on at least a portion of at least one of the first or the second surfaces; and an effective fracture toughness that is greater than or equal to 1.25 MPa.Math.m.sup.0.5 as measured at room temperature.
FOLDABLE ULTRATHIN GLASS WITH TRANSPARENT, IMPACT-RESISTANT HARD COATING
A foldable ultrathin glass article includes an ultrathin chemically-tempered foldable glass substrate having a thickness of approximately 100 microns or less and a compressive surface stress of at least 100 MPa. A single-layer hard coating is bonded to the first and/or second surface of the ultrathin tempered glass foldable substrate without an adhesive layer. The hard coating includes at least one silsesquioxane having a silicon-oxygen core framework directly bonded to the ultrathin tempered glass foldable substrate. The impact resistance defined by a maximum pen drop height without glass failure is at least four times greater than the ultrathin tempered glass foldable substrate without the hard coating. The hard coating has a surface hardness of at least 7H surface hardness and has a hydrophobic surface with a water contact angle of at least 100°. The coating has a transparency of at least 98 percent compared to uncoated substrates.
PROTECTIVE COATING ON AN EDGE OF A GLASS CORE
Embodiments described herein may be related to apparatuses, processes, and techniques directed to a protective coating for an edge of a glass layer, in particular a glass core within a substrate of a package, where the protective coating serves to protect the edge of the glass core and fill in cracks at the edges of the glass. This protective coating will decrease cracking during stresses applied to the glass layer during manufacturing or operation. Other embodiments may be described and/or claimed.
Delamination resistant glass containers with heat-tolerant coatings
- Kaveh Adib ,
- Dana Craig Bookbinder ,
- Theresa Chang ,
- Paul Stephen Danielson ,
- Steven Edward DeMartino ,
- Melinda Ann Drake ,
- Andrei Gennadyevich Fadeev ,
- James Patrick Hamilton ,
- Robert Michael Morena ,
- Santona Pal ,
- John Stephen Peanasky ,
- Chandan Kumar Saha ,
- Robert Anthony Schaut ,
- Susan Lee Schiefelbein ,
- Christopher Lee Timmons
Disclosed herein are delamination resistant glass pharmaceutical containers which may include a glass body having a Class HGA1 hydrolytic resistance when tested according to the ISO 720:1985 testing standard. The glass body may have an interior surface and an exterior surface. The interior surface of the glass body does not comprise a boron-rich layer when the glass body is in an as-formed condition. A heat-tolerant coating may be bonded to at least a portion of the exterior surface of the glass body. The heat-tolerant coating may have a coefficient of friction of less than about 0.7 and is thermally stable at a temperature of at least 250° C. for 30 minutes.
Chemically strengthened glass and method for manufacturing chemically strengthened glass
Provided is a tempered glass sheet, including: a compressive stress layer having a compressive stress of 20 MPa or more continuously from a main surface in a depth direction thereof; a tensile stress layer that is arranged on an inner side with respect to the compressive stress layer in a sheet thickness direction and has a tensile stress of 20 MPa or more continuously in a depth direction thereof; and a stress-neutral layer arranged between the compressive stress layer and the tensile stress layer, wherein the stress-neutral layer has a compressive stress of less than 20 MPa and/or a tensile stress of less than 20 MPa continuously in the sheet thickness direction, and has a thickness of 5.3% or more of a sheet thickness.
DELAMINATION RESISTANT GLASS CONTAINERS WITH HEAT-TOLERANT COATINGS
- Kaveh Adib ,
- Dana Craig Bookbinder ,
- Theresa Chang ,
- Paul Stephen Danielson ,
- Steven Edward DeMartino ,
- Melinda Ann Drake ,
- Andrei Gennadyevich Fadeev ,
- James Patrick Hamilton ,
- Robert Michael Morena ,
- Santona Pal ,
- John Stephen Peanasky ,
- Chandan Kumar Saha ,
- Robert Anthony Schaut ,
- Susan Lee Schiefelbein ,
- Christopher Lee Timmons
Disclosed herein are delamination resistant glass pharmaceutical containers which may include a glass body having a Class HGA1 hydrolytic resistance when tested according to the ISO 720:1985 testing standard. The glass body may have an interior surface and an exterior surface. The interior surface of the glass body does not comprise a boron-rich layer when the glass body is in an as-formed condition. A heat-tolerant coating may be bonded to at least a portion of the exterior surface of the glass body. The heat-tolerant coating may have a coefficient of friction of less than about 0.7 and is thermally stable at a temperature of at least 250° C. for 30 minutes.
GLASS CONTAINER WITH A PROTECTIVE COATING OF ACRYLATE URETHANE POLYMER DEPOSITED ON AN EXTERIOR SURFACE OF THE GLASS CONTAINER; METHOD OF PRODUCING SUCH GLASS CONTAINER AND USE OF SUCH GLASS CONTAINER
A glass container comprising: an exterior surface and an interior surface opposite to the exterior surface; and a coating of acrylate urethane polymer deposited at least over a portion of the exterior surface, characterized in that said glass container has a lightweight index L, calculated as L=[weight of container (g)/(volume of container (ml)).sup.0.77]*0.44 of less than 1, preferably less than 0.90, more preferably less than 0.75 and most preferably less than 0.60.
Containers and methods for improved mechanical strength
Containers are provided that include a body structure having a top end that defines an opening, a sealed base end, and a sidewall structure extending between the top and base ends, in which the sidewall structure has an interior surface and an exterior surface, the interior surface defining an interior space, and a protective coating that includes a diamond-like carbon on at least a portion of the exterior surface of the sidewall structure. Methods for enhancing the mechanical strength of containers are also provided.